Compositions for and methods of treating and / or preventing glutaric aciduria type-i

EP4665853A1Pending Publication Date: 2025-12-24DUKE UNIV +2
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Application Number
EP2024775799
Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-03-22
Filing Date
2024-03-22
Publication Date
2025-12-24

AI Technical Summary

Technical Problem

Current treatments for glutaric aciduria type-I (GA-1) are imperfect, leading to ongoing acute and long-term neurological complications despite early diagnosis and dietary management, necessitating the development of alternative therapies.

Method used

The use of recombinant glutaryl-CoA dehydrogenase (GCDH) nucleic acid molecules for protein replacement therapy, combined with nucleic acid inhibition of alpha-aminoadipate-semialdehyde synthase (AASS) through gene editing or silencing oligonucleotides, to reprogram the metabolic pathway and reduce toxic intermediate accumulation.

Benefits of technology

This approach effectively reduces toxic metabolite levels and improves neurological outcomes, as demonstrated by increased survival rates and improved motor performance in animal models, indicating potential for treating and preventing GA-1 progression.

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Abstract

Disclosed herein are compositions for use in methods of treating and / or preventing Glutaric Aciduria Type 1 and in methods of reprogramming a metabolic pathway.
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Description

COMPOSITIONS FOR AND METHODS OF TREATING AND / OR PREVENTING GLUTARIC ACIDURIA TYPE-ICROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims the benefit of priority to U.S. Provisional Patent Application No. 63 / 491,533 filed 22 March 2023, which is incorporated by reference herein in its entirety.REFERENCE TO THE SEQUENCE LISTING

[0002] The Sequence Listing submitted 22 March 2024 as a .xml file named “22_2055_WO2_Sequence_Listing”, created on 22 March 2024 and having a size of 434,433 bytes is hereby incorporated by reference pursuant to 37 C.F.R. § 1.52(e)(5).BACKGROUND

[0003] Glutaric aciduria type I (GA-1), is a rare neurometabolic organic aciduria caused by glutaryl-CoA dehydrogenase (GCDH) deficiency. It is an autosomal recessive inborn error of lysine (primarily) and tryptophan catabolism with an estimated worldwide prevalence of 1 : 30,000 to 1 : 100,000 live births (Lindner M, et al. (2006) J Inherit Metab Dis. 29:378-382; Kolker S, et al. (2006) Pediatr Res. 59:840-847). Due to founder gene mutations, the incidence of GA-1 is higher in the old order Amish population of Pennsylvania (Strauss KA, et al. (2003) Am J Med Genet C Semin Med Genet. 121C(l):38-52) and the Lumbee Native Indian Tribe population of North Carolina (Basinger AA, et al. (2006) Mol Genet Metab. 88:90-92). Even though GCDH expression is mainly hepatic, loss of its enzymatic activity leads to accumulation of toxic intermediates with predominantly neurological sequelae. Symptomatic patients present with neonatal macrocephaly, subdural hematomas and acute retinal hemorrhage. Infants are at risk of acute encephalopathic crises triggered by recurrent febrile illness, or poor intake, damaging the brain striatum. Infantile acute striatal necrosis is the hallmark of the disease and the primary cause of morbidity and mortality. Putamin injury is associated with behavioral regression. (Strauss KA, et al. (2003) Am J Med Genet C Semin Med Genet. 121C(l):38-52). Some patients have insidious onset disease with late-onset neurologic sequelae. (Strauss KA, et al. (2003) Am J Med Genet C Semin Med Genet. 121C(l):38-52).

[0004] Standard of care therapy is dietary restriction of lysine and tryptophan, carnitine supplementation, symptomatic treatment of neurological manifestations, and high calorie glucose infusion during physiologic stress to prevent metabolic crises and strokes. Despite early diagnosis made possible with newborn screening (NBS) and improved management of patients with GA-1, 25-33% of these patients continue to develop acute and long-term neurological complications. (Strauss KA, et al. (2003) Am J Med Genet C Semin Med Genet. 121C: 53-70; Sauer SW, et al.(2006) J Neurochem. 97:899-910). This indicates that dietary treatment is imperfect and reveals an urgent need to develop alternative, more effective therapies.

[0005] Consequently, the present disclosure provides compositions for and methods of treating and / or preventing glutaric aciduria type-I (GA-I) and methods of reprogramming a metabolic pathway.BRIEF DESCRIPTION OF THE FIGURES

[0006] FIG. 1A-FIG. IF show knockout mice and transplantation experiments. FIG. 1A shows lysine catabolism pathway scheme in peroxisomes and mitochondria. FIG. IB shows Kaplan- Meier survival curves of Gcdh' ' knockout mice transplanted with wild type hepatocytes (Gcdh ) on high protein diet (casein). FIG. 1C shows Glutaric acid (GA) and 3-hydroxy GA (3-OH-GA) of groups after 10 days (non-transpl anted) or 160 days (transplanted). FIG. ID shows RFP immunohistochemistry only detecting healthy hepatocytestransgenic mlmG) while FIG. IE shows Western blot (GCDH and beta actin) with liver lysates of low and high repopulated transplanted animals (4 each). FIG. IF shows Kaplan-Meier survival curves of single Gcdh ) knockout and double knockout (Gcdh^' / Aass7') mice on high protein diet. FIG. 1G shows GA and 3-OH-GA of single Gcdh ) knockout and double knockout (Gcdh ~ / 7Aass~ / ~)' mice after 5 days on high protein diet. FIG. 1H shows Kaplan-Meier survival curves of double (Gcdh^ / Aass4) knockout mice transplanted with Gcdh4' hepatocytes. FIG. II shows GA and 3-OH-GA of double (Gcdh47Aass4) knockout mice transplanted with Gcdh " hepatocytes. FIG. 1J shows AASS immunostaining from transplanted double (Gcdh47Aass4') knockout mice. FIG. IK shows Western blot of livers from transplanted double (Gcdh47Aass4~) knockout mice. FIG. IL shows a summary of transplantation models and their outcome. Significance was validated with t test (*p < 0.05, **p < 0.01 ***p < 0.005 and ****p < 0.0001).

[0007] FIG. 2A - FIG. 2C show the neuropathological evaluation of Gcdh' ' mice transplanted with healthy (Gcdh ) hepatocytes. FIG. 2A shows H&E staining of hippocampal brain sections. Hippocampal vacuolation (arrows) and meningeal hemorrhage (arrowheads). FIG. 2B shows quantification of vacuolation and meningeal hemorrhage. FIG. 2C shows C57B6, transplanted and non-transpl anted Gcdh'' knockout mice repopulated with wild type (Gcdh+ / +) hepatocytes. Significance was validated with t test (*p < 0.05, and **p < 0.01).

[0008] FIG. 3A - FIG. 3G show the motor performance of Gcdh' ' mice transplanted with healthy (Gcdh ) hepatocytes. FIG. 3A shows latency to fall from the rotarod across trials. FIG. 3B shows grip strength for the fore paws and FIG. 3C shows grip strength for the hind paws. FIG. 3D open field cumulative locomotor activity, FIG. 3E shows cumulative rearing activity, FIG. 3F shows cumulative distance traveled in the center zone, and FIG. 3G shows the velocity oflocomotion. Data are presented as means ± SEM. Significance was validated with t test, (*p < 0.05 and **p < 0.01).

[0009] FIG. 4A - FIG. 4B show the generation of knockout mice. FIG. 4A shows a schematic representation of murine Aass and Gcdh genes and the sgRNAs used to generate the single Gcdh / _) and double (Gcdh47Aass- / ’) knockout strains. Exonic sgRNA target sites are marked. FIG. 4B shows an image of a DNA gel electrophoresis showing both the wild type and deleted bands of Aass and Gcdh amplified by PCR using genomic DNA from knockout mice generated by CRISPR / Cas9.

[0010] FIG. 5A - FIG. 5C show neurop athologi cal evaluation of double (Gcdh47Aass ') knockout mice transplanted with (Gcdh4) hepatocytes. FIG. 5A shows H&E staining of hippocampal brain sections. Hippocampal vacuolation (arrows). FIG. 5B shows quantification of vacuolation of C57BL, Gcdh4Aass4double knockout repopulated with Gcdh4hepatocytes and Gcdh4Aass4double knockout control (non-transpl anted) mice. FIG. 5C shows quantification of meningeal hemorrhage of C57BL, Gcdh Aass ^ double knockout repopulated with Gcdh4hepatocytes and Gcdh4Aass4double knockout control (non-transplanted) mice. Data are presented as means ± SEM. Significance was validated with t test (****p < 0.0001).

[0011] FIG. 6A shows a schematic representation of AAV virus expressing murine Gcdh cDNA sequence. FIG. 6B shows a pAAV-Gcdh plasmid sequence with annotations extracted from SnapGene.

[0012] FIG. 7A - FIG. 7G show liver directed gene therapy in Gcdh4mice. FIG. 7A - 7E show 5-week-old Gcdh4mice treated with AJW-Gcdh, AAV-GFP (1.5 x 1012vg / mouse at 3 weeks of age) or no injection. FIG. 7A shows Kaplan Meier survival curves of Gcdh4mice on high protein. FIG. 7B shows Western blot of liver and brain lysates from AAV treated mice after harvesting or expiration (controls). FIG. 7C shows C5-DC metabolite levels in blood (before and 4 days after high protein diet) and FIG. 7D shows Glutaric Acid levels in blood and 3-OH-Glutaric Acid levels in liver and brain of Gcdh4mice at 140 days (WN-Gcdh) and upon expiration (AAV-GF and untreated). FIG. 7E - FIG. 7F show neonatal Gcdh4pups treated with low (3 x 1011vg / mouse), intermediate (7.5 x 1011vg / mouse) and high (1.5 x 1012vg / mouse) dose of AAV. FIG. 7F shows Kaplan Meier survival curves of treated Gcdh4mice on high protein after weaning. FIG. 7G shows Western blot for GCDH of treated Gcdh4mice after expiration. Significance was validated with t test (*p < 0.05, **p < 0.01 ***p < 0.005 and ****p < 0.0001).

[0013] FIG. 8A - FIG. 8C show neuropathological evaluation of Gcdh4mice treated with AAV- Gcdh or AAV-GFP control. FIG. 8A shows H&E staining of hippocampal brain sections. Hippocampal vacuolation (arrows). FIG. 8B shows quantification of vacuolation of C57BL,Gcdh~ single knockout controls (AAV-GFP injected) and Gcdh~ ~ single knockout mice injected with AAV-mGcdh. FIG. 8C shows quantification of meningeal hemorrhage of C57BL, Gcdh~~ single knockout controls (AAV-GFP injected) and Gcdh~ ~ single knockout mice injected with AAV-mGcdh. Data are presented as means ± SEM. Significance was validated with t test (*p < 0.05 and **p < 0.01).

[0014] FIG. 9A - FIG. 9G shows motor performance of Gcdh~ ~ mice treated with AAV-Gcdh FIG. 9A shows latency to fall from the rotarod across trials. FIG. 9B shows grip strength for the fore paws. FIG. 9C shows grip strength for the hind paws. FIG. 9D shows open field cumulative locomotor activity. FIG. 9E shows cumulative rearing activity. FIG. 9F shows cumulative distance traveled in the center zone. FIG. 9G shows velocity of locomotion. Data are presented as means ± SEM. Significance was validated with t test (*p < 0.05 and ***p < 0.005).

[0015] FIG. 10A shows schematic representation of the murine Aass gene and sgRNAs used to delete the gene. FIG. 10B shows a schematic representation of the AAV-CRISPR-Aass viruses used to knock out the gene targeting exons 6 and exon 7 of Aass. FIG. 10C shows a pAAV- CRISPR-Aass-Exon6-sgRNA plasmid map. FIG. 10D shows a pAAV-CRISPR-Aass-Exon7- sgRNA plasmid map.

[0016] FIG. 11A - FIG. 11D shows liver specific deletion of Aass in Gcdh~ ~ mice using AAV- CRISPR. Neonatal Gcdh ~ mice were injected with a low (2.4 x 1011vg / mouse), intermediate (6 x 1011vg / mouse) and high (1 x 1012vg / mouse) dose of AAV expressing Cas9 under aliver specific promoter and sgRNA targeting the Aass gene. FIG. 11A shows Kaplan Meier survival curves of experimental groups after exposure to high protein diet. FIG. 11B shows Glutaric Acid and 3- OH-Glutaric Acid levels in liver and brain of wild-type C57B6J mice and treated (AAV-CRISP, high dose) Gcdh~ ~ mice after 60 days high protein diet and upon expiration (day 4, AAV-GFP). FIG. 11C shows AASS immunostaining of livers of depict groups. FIG. 11D shows representative sections of the hippocampus of mice injected with AA V-CR1SPR or AAV-GFP or showing vacuolation (arrows) and hemorrhage (arrowheads). The bottom of the drawing provides the quantification of hippocampal vacuolation and meningeal hemorrhage by blinded veterinarian pathologist. Data are presented as means ± SEM Significance was validated with t test (**p < 0.01, ***p < 0.005 and ****p < 0.0001.

[0017] FIG. 12A - FIG. 12G show motor performance of Gcdh~ ~ mice treated with AAV- CRISPR-Aass virus. FIG. 12A shows latency to fall from the rotarod across trials. FIG. 12B shows grip strength for the fore paws. FIG. 12C shows grip strength for the hind paws. FIG. 12D shows open field cumulative locomotor activity, FIG. 12E shows cumulative rearing activity, FIG. 12F shows cumulative distance traveled in the center zone, and FIG. 12G shows the velocityof locomotion. Data are presented as means ± SEM. Significance was validated with t test (**p < 0.01 and ****p < 0.0001).

[0018] FIG. 13A shows C5-DC metabolite in blood from wild type mice (C57BL) and Gcdh~ ~- AAV-Aass-CRISPR mice before and 4 days after high protein exposure. FIG. 13B shows lysine in blood from wild type mice (C57BL) and Gcdh^-AAV-Aass-CRISPR mice before and 4 days after high protein exposure. FIG. 13C shows tryptophan levels in blood from wild type mice (C57BL) and Gcdh^-AA V-Aass-CRISPR mice before and 4 days after high protein exposure. Data are presented as means ± SEM. Significance was validated with t test (*p < 0.05, **p < 0.01).

[0019] FIG. 14A - FIG. 14B show intravenous injection with siRNA against AASS in Gcdh ~ mice. FIG. 14A shows Kaplan Meier survival curves of treated (siRNA against Aass, at day -1) and control (siRNA non targeting mouse genome, at day -1) Gcdh~ ~ mice on high protein diet (Days: days after high protein diet). FIG. 14B shows immunostaining for AASS of livers postmortem of the treatment group (siRNA against Aass). *p < 0.05 for survival curves using Log-rank (Mantel -Cox) test.

[0020] FIG. 15A - FIG. 15K show Gcdh~ ~ knockout mice: phenotype and rescue by hepatocyte transplantation. FIG. 15A shows the lysine catabolism pathway scheme in peroxisomes, cytosol and mitochondria. FIG. 15B shows brain hemorrhage (arrow) of Gcdh~~ mice after 4 days on high-protein diet exposure. FIG. 15C shows representative H&E staining of the hippocampus with vacuolation (arrow). Boxed area shown with higher magnification on the right. FIG. 15D shows a Kaplan-Meier survival curves of Gcdh~ ~ knockout mice transplanted with wild-type hepatocytes (Gcdh ) on high-protein diet. FIG. 15E shows levels of glutaric acid and FIG. 15F shows levels of 3-OH-glutaric acid in liver and brain of groups after 10 (non-transpl anted) or 160 (transplanted) days on high-protein diet. FIG. 15G shows H&E staining of hippocampal brain sections. Boxed area shown with higher magnification on the right. FIG. 15H shows quantification of hippocampal vacuolation and FIG. 141 shows meningeal hemorrhage levels (Arbitrary Units (AU): 0 = absence; 1 = low; 2 = intermediate; 3 = high; 4 = very high). FIG. 15J shows RFP immunohistochemistry only detecting healthy hepatocytes (Gcdh+ / +, transgenic mTmG). FIG. 15K shows the western blot (GCDH and beta actin) of liver lysates from low and high repopulated transplanted animals (n = 4 each). Data is presented as means ± SD. Significance was validated with t test (FIG. 15D, FIG. 15E) or with Mann-Whitney U test (FIG. 15H, FIG. 151) (*p < 0.05, **p < 0.01 and *** p < 0.005). All mice were transplanted at the age of 2 months and experiments were performed at age of 8 months (see methods for details). Nontransplanted controls are age matched. GCDH: Glutaryl-Co-A Dehydrogenase; AASS: AlphaAminoadipate-Semialdehyde Synthase; RFP: Red Fluorescent Protein; mTmG membrane Tomato membrane GFP.

[0021] FIG. 16A - FIG. 16K show the double knockout Gcdh47Aass4)~ mice: phenotype and transplantation experiments. FIG. 16A shows Kaplan-Meier survival curves of single (Gcdh4) and double Gcdh4Aass" ’) knockout mice on high protein diet. FIG. 16B shows levels of glutaric acid and FIG. 16C shows levels of 3-OH-glutaric acid in liver and brain tissue of single Gcdh4) and double (Gcdh4 / Aass4) knockout mice after 5 and 60 days on high-protein diet, respectively. FIG. 16D shows Kaplan-Meier survival curves of double (Gcdh47Aass4~) knockout mice transplanted with Gcdh4hepatocytes. FIG. 16E shows levels of glutaric acid and FIG. 16F shows levels of 3-OH-glutaric acid in liver and brain of doble knockout (Gcdh4 / Aass ) groups after 5 days (transplanted) and 60 days (non-transpl anted) on high protein diet. Representative AASS immunostaining (FIG. 16G) and Western blot (FIG. 16H) of livers from transplanted double Gcdh47Aass4~) knockout mice. FIG. 161 shows H&E staining of hippocampal brain sections with vacuolation (arrows). Boxed area shown with higher magnification on the right. Quantification of hippocampal vacuolation (FIG. 16J) and brain meningeal hemorrhage (FIG. 16K) levels. Arbitrary Units (AU): 0 = absence; 1 = low; 2 = intermediate; 3 = high; 4 = very high. Data is presented as means ± SD. Significance was validated with t test (FIG. 16B, FIG. 16D) or with Mann-Whitney U test (FIG. 16H, FIG. 16 J) (*p < 0.05, **p < 0.01 and *** p < 0.005). All mice were transplanted at the age of 2 months and experiments were performed at age of 8 months. Non-transplanted controls are age matched.

[0022] FIG. 17A - FIG. 17E shows phenotype of liver-specific GA- 1 model. Gcdh4hepatocytes were transplanted into TIRF transgene free Il2rg 7Rag247Fah4) mice, which have a normal lysine catabolism (Gcdh+ / + / Aass+ / +). FIG. 17 shows a Kaplan Meier survival curve of TIRF mice transplanted with Gcdh4hepatocytes. FIG. 17B shows representative FAH immunohistochemistry of TIRF liver (FAH negative) transplanted with Gcdh4hepatocytes (FAH positive). Glutaric acid (FIG. 17C) and 3-OH-glutaric acid (FIG. 17D) levels in liver and brain of transplanted and non-transplanted mice on high protein diet. FIG. 17E shows summary of hepatocyte transplantation models and their outcomes. Color codes for whole body and / or liver (transplanted hepatocytes) of mice in the diagram correspond to: Blue: Gcdh47Aass+ / +(single knockout); Yellow: Gcdh47Aass4' (double knockout); Grey: Gcdh+ / + / Aass+ / +(wild-type). Significance was validated with Mann- Whitney U test (*p < 0.05 and **p < 0.01). All mice were transplanted at the age of 2 months and experiments were performed at age of 8 months (see methods). Non-transplanted controls are age matched. I12rg: 11-2 receptor gamma; Rag2: recombination activating gene 2; fah: fumaryl acetoacetate hydrolase.

[0023] FIG. 18A - FIG. 18K shows liver-directed AAV gene therapy in Gcdh~ ~ mice. FIG. 18A - FIG. 181 show five-week-old Gcdh~~ mice were intravenously injected with AW-Gcdh or AAN-GFP at a dose of 1.5 x 1012vg / mouse. FIG. 18A show Kaplan Meier survival curves of Gcdh ~ mice on high-protein diet. FIG. 18B shows GCDH Western blot analysis of liver and brain lysates from AAV -treated mice after harvesting or expiration (controls). FIG. 18C shows representative GCDH immunostaining of liver in treatment group. FIG. 18D shows C5-DC metabolite levels in whole blood of all experimental groups before and 4 days after high protein diet. Glutaric Acid (FIG. 18E) and 3-OH-glutaric Acid (FIG. 18F) levels in liver and brain tissue of Gcdh ~ mice at 140 days (AAV-G / r) or upon expiration (AAV-GFF and untreated). FIG. 18G shows H&E staining of hippocampal brain sections showing vacuolation (arrows) and meningeal hemorrhage (arrowheads). Boxed area shown with higher magnification on the right. Quantification of hippocampal vacuolation (FIG. 18H) and brain meningeal hemorrhage (FIG. 181) levels. Arbitrary Units (AU): 0 = absence; 1 = low; 2 = intermediate; 3 = high; 4 = very high. FIG. 18 J - FIG. 18K show neonatal Gcdh~ ~ pups treated with low (3 x 1011vg / mouse), intermediate (7.5 x 1011vg / mouse) and high (1.5 x 1012vg / mouse) dose of AAV. FIG. 18J shows Kaplan Meier survival curves of treated Gcdh~~ mice on high protein after weaning. Western blot (FIG. 18K) and GCDH immunostaining (FIG. 18L) of treated (high dose) Gcdh~ ~ mice after expiration. Data is presented as means ± SD. Significance was validated with t-test (FIG. 18 FIG. 18, FIG. 18E, FIG. 18F) or Mann- Whitney U test (FIG. 18G, FIG. 18H) (*p < 0.05, **p < 0.01, and ***p < 0.005). All mice were transplanted at the age of 2 months and experiments were performed at age of 8 months (see methods for details). Non-transplanted controls are age matched. AAV: Adeno-Associated Virus; C5-DC: glutarylcamitine; GCDH: Glutaryl-Co-A Dehydrogenase.

[0024] FIG. 19A - FIG. 19G show liver specific deletion of Aass in Gcdh~~ mice using AAV- CRISPR. Neonatal Gcdh~ mice were injected with a low (2.4 x 1011vg / mouse), intermediate (6 x 1011vg / mouse) and high (1 x 1012vg / mouse) dose of AAV expressing Cas9 under aliver specific promoter and sgRNA targeting the Aass gene. FIG. 19A shows Kaplan Meier survival curves of experimental groups on high protein diet. Glutaric Acid (FIG. 19B) and 3-OH-glutaric acid (FIG. 19C) levels in liver and brain of wild-type C57BL / 6 mice and treated (AAV-CRISPR, high dose) Gcdh~ ~ mice after 60 days on high protein diet and upon expiration (day 4, AAV-GFF). FIG. 19D shows AASS immunostaining of livers of experimental groups. FIG. 19E shows representative hippocampal sections of mice injected with AA F-CRISPR or AAV-GFP showing vacuolation (arrows) and hemorrhage (arrowheads). Quantification of hippocampal vacuolation (FIG. 19F) and meningeal hemorrhage (FIG. 19G). Data is presented as means ± SD. Significance wasvalidated with t test (FIG. 19B) and with Mann-Whitney test (FIG. 19D) (**p < 0.01, and ***p < 0.005 AAV: Adeno-Associated Virus; Gcdh: Glutaryl-Co-A Dehydrogenase. AASS: Alpha Aminoadipate-Semialdehyde Synthase.

[0025] FIG. 20A - FIG. 20B show generation of Gcdh~ ~ mice. FIG. 20A show schematic representation of the murine Gcdh gene and the sgRNAs used to generate the Gcdh ~ knockout strains in C57BL / 6 and TIRF (transgene free Il2rg / ' / Rag2' / ' / Fah' / ). Exonic sgRNA target sites are marked in blue. FIG. 20B shows image of a DNA gel electrophoresis showing both the wild type and deleted bands of Gcdh amplified by PCR using genomic DNA from knockout mice generated by CRISPR / Cas9. sgRNA: single guide RNA.

[0026] FIG. 21A - FIG. 21B shows phenotype characterization of 4 weeks-old Gcdh~ ~ mice on high protein diet. Representative H&E staining of the liver (FIG. 21A) and the kidney (FIG. 21B) of Gcdh~ ~ mice after four days on high-protein diet.

[0027] FIG. 22A - FIG. 22G show motor performance of Gcdh~ ~ mice transplanted with healthy (Gcdh ) hepatocytes. Grip strength for the fore paws (FIG. 22A) and for the hind paws (FIG. 22B). Open field cumulative locomotor activity (FIG. 22C), cumulative rearing activity (FIG. 22C), cumulative distance traveled in the center zone (FIG. 22E), cumulative time in the center zone (FIG. 22F), and velocity of locomotion (FIG. 22G). Significance was validated with t test (*p < 0.05, **p < 0.01).

[0028] FIG. 23A - FIG. 23B show generation of double (Gcdh~ ~ Aass^ ) knockout mice. FIG. 23A shows schematic representation of murine Aass and Gcdh genes and the sgRNAs used to generate the double (Gcdh+ / + / Aass- / ’) knockout strains. Exonic sgRNA target sites are marked on color. FIG. 23B is an image of a DNA gel electrophoresis showing both the wild type and deleted bands of Aass and Gcdh amplified by PCR using genomic DNA from knockout mice generated by CRISPR / Cas9. sgRNA: single guide RNA.

[0029] FIG. 24A - FIG. 24B show gene therapy vectors. Schematic representation of Adeno- Associate Virus (AAV) expressing murine Gcdh (FIG. 24A) and GFP (FIG. 24B) sequences. GFP: Green fluorescent protein; HLP: Hybrid Liver Promoter; Syn PolyA: Synthethic Polyadenylation Signal; ITR: Inverted Terminal Repeat.

[0030] FIG. 25A - FIG. 25G show motor performance of Gcdh~ ~ mice treated with AAV-Gcdh. FIG. 25A shows latency to fall from the rotarod across trials. Grip strength for the fore paws (FIG. 25B) and for the hind paws (FIG. 25C). Open field cumulative locomotor activity (FIG. 25D), cumulative rearing activity (FIG. 25E), cumulative distance traveled in the center zone (FIG. 25F), cumulative time in the center zone (FIG. 25G), and velocity of locomotion (FIG. 25H) Significance was validated with t test (*p < 0.05, **p < 0.01, and ***p < 0.005).

[0031] FIG. 26A - FIG. 26B show CRISPR gene therapy design and vectors. FIG. 26A shows schematic representation of the murine Aass gene and sgRNAs used to delete the gene (FIG. 26B) schematic representation of the AA V-CRISPR-Aass viruses used to knock out the gene targeting exons 6 and exon 7 of Aass. SaCas9: Staphylococcus aureus Cas9; Syn PolyA: Synthetic Poly Adenylation Signal; ITR: Inverted Terminal Repeat; HLP: Hybrid Liver Promoter

[0032] FIG. 27A - FIG. 27H show motor performance of Gcdh ~ mice treated with AAV- CRISPR. FIG. 27A show the latency to fall from the rotarod across trials. FIG. 27B- FIG. 27C show grip strength for the fore paws (FIG. 27B) and for the hind paws (FIG. 27C). FIG. 27D- FIG. 27G show open field cumulative locomotor activity (FIG. 27D), cumulative rearing activity (FIG. 27E), cumulative distance traveled in the center zone (FIG. 27F), cumulative time in the center zone (FIG. 27G) and velocity of locomotion (FIG. 27H). Significance was validated with t test (*p < 0.05 and ***p < 0.005).

[0033] FIG. 28A - FIG. 28B show biochemical analysis of AAV-CRISPR treated Gcdh~ ~ mice. Lysine (FIG. 28A) and tryptophan (FIG. 28B) levels in blood from wild type mice (C57BL / 6) and AAV-CRISP treated mice four days after high protein exposure. Significance was validated with t test.

[0034] FIG. 29A - FIG. 29B show intravenous injection with siRNA against AASS in Gcdh~~ mice. Aass siRNA (8 mg / kg) solution was injected into the tail vein of 3-week-old GcdlT ~ mice and put on high protein diet 48 hours later. FIG. 29A shows Kaplan Meier survival curves of treated (siRNA targeting Aass) and control (siRNA non targeting mouse genome) Gcdh~ ~ mice on high protein diet (Days: days after high protein diet). FIG. 29B shows representative immunostaining for AASS of liver from treatment group (post-mortem), p < 0.05 for survival curves using Log-rank (Mantel-Cox) test.

[0035] FIG. 30A and FIG. 30B show expression of AASS in HepG2 cells after incubation with ASO or siRNA targeting AASS. HepG2 cells were incubated for 48 hours with different ASO (FIGS. 30A) or siRNA (FIG. 30B) in experimental triplicates. Extracted RNA was used for RT- qPCR for AASS and GAPDH (normalization) in technical duplicates. ASO against PCSK9 and a scrambled siRNA were used as negative controls. One way ANOVA followed by post-hoc Dunnett’s Test (Graph Pad PRISM, Version 10.2.0), were used to determine significance relative to negative control. “*”meaning p <0.05, “**” p<0.01, “****” p<0.0001.

[0036] FIG. 31 shows introduced mutations in the human GCDH protein sequence. Schematic representation of Lysine (K) to arginine (R) substitutions. Number on the left stand for the mutant (031, 032 and 033) or wildtype (027) constructs.

[0037] FIG. 32 shows Western blotting of transfected HEK293 with GCDH mRNA variants. Different GCDH mRNA constructs (027, 031, 032 and 033) were transfected and cells lysed at 24, 48, 72 and 96 hours for Western blotting using antibodies for GCDH and beta-actin.

[0038] FIG. 33A-FIG. 33E show Validation of LNP production. FIG. 33A depicts HEK293T cells transfected with GFP LNP for 24 hours (left) and non transfected control cells (right). FIG. 33B depicts Western blotting of GCDH LNP (packaged as LNP) and GCDH RNA transfection (same construct as used for LNP but not packaged). FIG. 33C and FIG. 33D depict graphs from RC Bioanalyzer detecting nucleic acids in form of the GCDH mRNA before LNP packaging (FIG. 33C ) and extracted from LNP, 10 days after GCDH LNP production (FIG. 33D). In vivo validation by Western blotting of liver tissue from Gcdh- / - mice injected with different doses (1.5- 6mg / kg) of GCDH LNP 027, 031, 032 and 033 analyzed between 2-8 days postinjection (FIG. 33E). As positive control served a wildtype mouse (Gcdh ) and a non injected Gcdh~ ~ mouse

[0039] FIG. 34A-FIG. 34D show survival of GCDH LNP treated Gcdh- / - mice on high protein diet. Mice were intravenously injected with 6mg / kg GCDH LNPs and put immediately on casein (high protein) diet. Depicted are survival curves of GCDH LNP 027 (FIG. 34A) 032 (FIG. 34B), 032 (FIG. 34C) and 033 (FIG. 34D). Survival was analyzed using the log-rank (Mantel-Cox) test (Graph Pad PRISM, Version 10.2.0), p<0.5, “**” p<0.01, “n.s.” not significant.

[0040] FIG. 35A shows a graphical depiction of target sequence for antisense oligonucletides ASO 1, ASO ex4, ASO ex8, ASO exl6, ASO78304, and ASO 28 in relation to the exons of mouse Aass. FIG. 35B shows a graphical depiction of target sequence for siRNA oligonucletides siRNA 1, siRNA 2, siRNA 3, siRNA 4, and siRNA 5 in relation to ASO ex4 and the exons of mouse Aass. In FIGS. 35A-35B, the sequence of the mouse has truncated 5’ and 3’ regions (e.g., mouse AASS CCDS 19937.1 - SEQ ID NO:203).

[0041] FIGS. 36A-36E depict the plasmid sequence map for pAM-026, pAM-027, pAM-031, pAM-032, and pAM-033, with annotations extracted from SnapGene.

[0042] FIG. 37 shows relative normalized expression of the endogenous human AASS gene in HEK 293T cells treated with individual siRNAs. Data are normalized to GAPDH and are shown relative to RNAiMax. Sample key for ASO ID#: A is #024; B is #025; C is #023; D is #030; E is #004; F is #028; G is #029; H is #009; I is #006; J is #003; K is #010; L is #027, M is #012, N is #007, O is #005, P is #019, Q is #008; R is #018; and S is #011. Statistical analysis completed using one-way ANOVA with Tukey’s multiple comparisons test, *p<0.05.

[0043] FIG. 38 shows relative normalized expression of the human AASS gene in HEK 293T cells treated with individual siRNAs. Cells were first transfected with an expression vector for the human AASS gene and then treated with the oligonucleotides. Sample key for ASO ID#: Ais #024; B is #025; C is #023; D is #030; E is #004; F is #028; G is #029; H is #009; I is #006; J is #003; K is #010; L is #027, M is #012, N is #007, O is #005, P is #019, Q is #008; R is #018; and S is #011. Data are normalized to GAPDH and are shown relative to RNAiMax. Statistical analysis completed using one-way ANOVA with Tukey’s multiple comparisons test, *p<0.05.

[0044] FIG. 39 shows relative normalized expression of the endogenous human AASS gene in HEK 293T cells treated with individual antisense oligonucleotides. Data are normalized to GAPDH and are shown relative to RNAiMax. Statistical analysis completed using one-way ANOVA with Tukey’s multiple comparisons test, *p<0.05.

[0045] FIG. 40 shows relative normalized expression of the human AASS gene in HEK 293T cells treated with individual antisense oligonucleotides. Cells were first transfected with an expression vector for the human AASS gene and then treated with the oligonucleotides. Data are normalized to GAPDH and are shown relative to RNAiMax. Statistical analysis completed using one-way ANOVA with Tukey’s multiple comparisons test, *p<0.05.BRIEF SUMMARY

[0046] Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding a recombinant glutaryl-CoA dehydrogenase (GCDH). The recombinant GCDH may comprise one or more functional domains. The recombinant GCDH may be used for therapeutic replacment of defective GCDH protein in a subject (e.g., protein replacement therapy), either alone or in combination with nucleic acid inhibition of the aminoadipate-semialdehyde synthase (AASS) gene or mRNA (e.g., using a silencing oligonucleotide or a gene editing system that targets AASS). The isolated nucleic acid molecule encoding the recombinant GCDH may be an mRNA, optionally a modified mRNA (mmRNA).

[0047] Disclosed herein is an expression cassette comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO:01 or SEQ ID NO:02, and may be operably linked a promoter. Disclosed herein is an expression cassette comprising a disclosed isolated nucleic acid molecule comprising an isolated nucleic acid molecule encoding a glutaryl-CoA dehydrogenase (GCDH), wherein the nucleic acid sequence may comprise the sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, or a variant thereof, which may be operably linked to a promoter. The GCDH may be a variant GCDH sequence comprising one or more substitutions selected from K163R, K240R, K202R, OR K371R; the substitutions K163R and K240R; the substitutions K202R and K371R; or the substitutions selected K163R, K202R, K240R, and K371R. The GCDH may comprise or consist of the amino acid sequence set forth in any one of SEQ ID NOS:3, SEQ ID NO:200, SEQ ID NO:201, or SEQ ID NO:202. A nucleicacid sequence encoding the variant GCDH sequence may comprise the sequence set forth in SEQ ID NO: 197, SEQ ID NO: 198, or SEQ ID NO: 199, or SEQ ID NO: 196, or a variant thereof.

[0048] The expression cassette and / or isolated nucleic acid encoding the GCDH may further comprise a 5’UTR sequence or a 3 ’UTR sequence, optionally wherein the 5’UTR sequence comprises of the sequence set forth in SEQ ID NO: 189 and / or the 3 ’UTR sequence comprises of the sequence set forth in SEQ ID NO: 190. Also disclosed herein is a vector comprising the expression cassette and / or isolated nucleic acid encoding the GCDH. In some aspects, a vector encoding the GCDH may be selected from sequence of any one of SEQ ID NOS: 192-195.

[0049] Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system. The target gene of interest, e.g., containing a target sequence for the gene editing system, may be an aminoadipate-semialdehyde synthase (AASS) gene or mRNA (e.g., NM_005763.4). The gene editing system may be selected from CRISPR gene editing system (e.g., a CRISPR-Cas of any class, type, or subtype), prime editing system, base editing system, zinc-finger nuclease gene editing system, TALEN gene editing system, ARCUS nuclease gene editing system, meganuclease gene editing system, recombinase gene editing system, transposase gene editing system, integrase gene editing system, or homologous recombination gene editing system. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system. The one or more elements may comprise an endonuclease and a sgRNA directed at a target sequence in a target gene of interest. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed a target sequence in the AASS gene.

[0050] Disclosed herein are silencing oligonucleotides, for silencing a target gene. The silencing oligonucleotides may target a target sequence within an aminoadipate-semialdehyde synthase (AASS) gene or mRNA (e.g., NM_005763.4). Also disclosed herein are target sequences of an AASS gene or mRNA for targeting by such silencing oligonucleotides. In an aspect, such target sequences within the AASS may be within any one of exons 1-25, or exons 2-24, or the 5’UTR and 3’ UTR. In an aspect, a silencing olignucleotide targets a target sequence within an overlap region between any two adjacent exons selected from exons 1-25. The overlap region between a first and second region may vary from about 90% of the number of nucleotides of the overlap region being within the first region and about 10% of the number of nucleotides of the overlap region being within the second region, to about 10% of the number of nucleotides of the overlap region being within the first region and about 90% of the number of nucleotides of the overlapregion being within the second region. In an aspect, the silencing oligonucleotide may be selected from an siRNA, antisense oligonucleotide, miRNA, shRNA, ssRNA, dsRNA, piRNA, or a 3'UTR of mRNA.

[0051] Disclosed herein are specific target sequences for the AASS gene, selected from any one of SEQ ID NOS:33, 34, 41-65, 67-72, 74-117, 120-182, which can be targeted by a gene editing system, or a silencing oligonucleotide (e.g., siRNA or antisense oligonucleotide or other gene expression reducing oligonucleotides) as described herein.

[0052] Disclosed herein is a viral vector comprising a disclosed isolated nucleic acid molecule (e.g., comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase). Disclosed herein is a viral vector comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding aminoadipate-semialdehyde synthase.

[0053] Disclosed herein is a viral vector comprising a nucleic acid sequence encoding a glutaryl- CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO:01 or a fragment thereof. Disclosed herein is a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO:02 or a fragment thereof. Disclosed herein is a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system. The one or more elements may comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the glutaryl-CoA dehydrogenase gene. Disclosed herein is a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipate-semialdehyde synthase gene.

[0054] Disclosed herein is a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the glutaryl-CoA dehydrogenase gene. Disclosed herein is a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the glutaryl-CoA dehydrogenase gene.

[0055] Disclosed herein is a viral vector comprising the sequence set forth in SEQ ID NO: 19, SEQ ID NO:20, or SEQ ID NO:21. Disclosed herein a vector comprising the sequence set for in SEQ ID NO:92. Disclosed herein is a vector comprising the sequence set for in SEQ ID NO:93.Disclosed herein a vector comprising the sequence set for in SEQ ID NO:94. Disclosed herein a vector comprising the sequence set for in SEQ ID NO:95.

[0056] Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expression of the nucleic acid sequence generates a functional glutaryl- CoA dehydrogenase. Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector (e.g., a viral vector or non-viral vector) comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expression of glutaryl-CoA dehydrogenase is restored. Disclosed herein a method of protein replacement therapy for defective glutaryl-CoA dehydrogenase.

[0057] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO:01, wherein expression of glutaryl-CoA dehydrogenase is restored. Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO:02, wherein expression of glutaryl-CoA dehydrogenase is restored.

[0058] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expression of glutaryl-CoA dehydrogenase is restored.

[0059] Disclosed herein is a method of reprogramming a metabolic pathway, the method comprising administering to a subject in need thereof a therapeutically effective amount of a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the expression of the nucleic acid molecule disrupts the expression and / or function of the target gene.

[0060] Disclosed herein is a method of reprogramming a metabolic pathway, the method comprising administering to a subject in need thereof a therapeutically effective amount of a viral vector comprising a nucleic acid sequence encoding a gene editing system and a sgRNA directedat a target sequence in a target gene of interest, wherein the expression of the nucleic acid molecule disrupts the expression and / or function of the target gene.

[0061] Disclosed herein is a method of reprogramming a metabolic pathway, the method comprising administering to a subject in need thereof a therapeutically effective amount of a first viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, and administering a therapeutically effective amount of a second viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system.

[0062] Disclosed herein is a method of reprogramming a metabolic pathway, the method comprising administering to a subject in need thereof a therapeutically effective amount of a first viral vector comprising a nucleic acid sequence encoding a gene editing system and a sgRNA directed at a target gene of interest, and administering a therapeutically effective amount of a second viral vector comprising a nucleic acid sequence encoding an endonuclease and a sgRNA directed at a target sequence in the target gene of interest. Disclosed herein is a method of reprogramming a metabolic pathway, the method comprising administering to a subject in need thereof a therapeutically effective amount of a viral vector comprising a nucleic acid sequence encoding a Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipatesemialdehyde synthase gene; and administering to the subject a therapeutically effective amount of a second viral vector comprising a nucleic acid sequence encoding a Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipate-semialdehyde synthase gene.

[0063] Disclosed herein is a method of reprogramming a metabolic pathway, the method comprising administering to a subject in need thereof a therapeutically effective amount of a viral vector comprising a nucleic acid sequence encoding an endonuclease and a sgRNA directed at a target sequence in a target gene of interest, wherein the target gene comprises the aminoadipate- semialdehyde synthase gene, a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene, and wherein the expression of the nucleic acid molecule disrupts the expression and / or function of the target gene.DETAILED DESCRIPTION

[0064] The present disclosure describes formulations, compounded compositions, kits, capsules, containers, and / or methods thereof. It is to be understood that the inventive aspects of which are not limited to specific synthetic methods unless otherwise specified, or to particular reagents unless otherwise specified, as such may, of course, vary. It is also to be understood that theterminology used herein is for the purpose of describing particular aspects only and is not intended to be limiting. Although any methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, example methods and materials are now described.

[0065] All publications mentioned herein are incorporated herein by reference to disclose and describe the methods and / or materials in connection with which the publications are cited. The publications discussed herein are provided solely for their disclosure prior to the filing date of the present application. Nothing herein is to be construed as an admission that the present invention is not entitled to antedate such publication by virtue of prior invention.Abbreviations.

[0066] SaCas9: Staphylococcus Aureus Cas9; Syn PolyA: Synthetic Poly Adenylation Signal; ITR: Inverted Terminal Repeat; HLP: Hybrid Liver Promoter; GCDH: Glutaryl-Co-A Dehydrogenase; ORF: Open Reading Frame; Syn PolyA: Synthetic Poly Adenylation Signal; AASS: Alpha Aminoadipate-Semialdehyde Synthase; C5-DC: glutarylcamitine.Terms.

[0067] Before the present compounds, compositions, articles, systems, devices, and / or methods are disclosed and described, it is to be understood that they are not limited to specific synthetic methods unless otherwise specified, or to particular reagents unless otherwise specified, as such may, of course, vary. It is also to be understood that the terminology used herein is for the purpose of describing particular aspects only and is not intended to be limiting. Although any methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, example methods and materials are now described.

[0068] This disclosure describes inventive concepts with reference to specific examples. However, the intent is to cover all modifications, equivalents, and alternatives of the inventive concepts that are consistent with this disclosure.

[0069] As used in the specification and the appended claims, the singular forms “a”, “an”, and “the” include plural referents unless the context clearly dictates otherwise.

[0070] The phrase “consisting essentially of’ limits the scope of a claim to the recited components in a composition or the recited steps in a method as well as those that do not materially affect the basic and novel characteristic or characteristics of the claimed composition or claimed method. The phrase “consisting of’ excludes any component, step, or element that is not recited in the claim. The phrase “comprising” is synonymous with “including”, “containing”, or “characterized by”, and is inclusive or open-ended. “Comprising” does not exclude additional, unrecited components or steps.

[0071] As used herein, when referring to any numerical value, the term “about” means a value falling within a range that is ± 10% of the stated value.

[0072] Ranges can be expressed herein as from “about” one particular value, and / or to “about” another particular value. When such a range is expressed, a further aspect includes from the one particular value and / or to the other particular value. Similarly, when values are expressed as approximations, by use of the antecedent “about,” it will be understood that the particular value forms a further aspect. It will be further understood that the endpoints of each of the ranges are significant both in relation to the other endpoint and independently of the other endpoint. It is also understood that there are a number of values disclosed herein, and that each value is also herein disclosed as “about” that particular value in addition to the value itself. For example, if the value “10” is disclosed, then “about 10” is also disclosed. It is also understood that each unit between two particular units are also disclosed. For example, if 10 and 15 are disclosed, then 11, 12, 13, and 14 are also disclosed.

[0073] References in the specification and concluding claims to parts by weight of a particular element or component in a composition denotes the weight relationship between the element or component and any other elements or components in the composition or article for which a part by weight is expressed. Thus, in a compound containing 2 parts by weight component X and 5 parts by weight component Y, X and Y are present at a weight ratio of 2:5 and are present in such ratio regardless of whether additional components are contained in the compound.

[0074] The terms “optional” or “optionally”may mean that the subsequently described event or circumstance can or cannot occur, and that the description includes instances where said event or circumstance occurs and instances where it does not. In an aspect, a disclosed method can optionally comprise one or more additional steps, such as, for example, repeating an administering step or altering an administering step.

[0075] The term “subject” may refer to the target of administration, e.g., a human being. The term “subject” also includes domesticated animals (e.g., cats, dogs, etc.), livestock (e.g., cattle, horses, pigs, sheep, goats, etc.), and laboratory animals (e.g., mouse, rabbit, rat, guinea pig, fruit fly, etc.). Thus, the subject of the herein disclosed methods can be a vertebrate, such as a mammal, a fish, a bird, a reptile, or an amphibian. Alternatively, the subject of the herein disclosed methods can be a human, non-human primate, horse, pig, rabbit, dog, sheep, goat, cow, cat, guinea pig, or rodent. The term does not denote a particular age or sex, and thus, geriatric, adult, adolescent, and child subjects, as well as fetuses, whether male or female, are intended to be covered. In an aspect, a subject can be a human subject. In an aspect, a subject can have a disease or disorder characterized by lysine catabolism dysfunction.

[0076] The term “diagnosed” may mean having been subjected to an examination by a person of skill, for example, a physician, and found to have a condition (such as GA-1) that can be diagnosed or treated by one or more of the disclosed compositions or by one or more of the disclosed methods. For example, “diagnosed with a disease or disorder characterized by lysine catabolism dysfunction” means having been subjected to an examination by a person of skill, for example, a physician, and found to have a condition (GA-1) that can be treated by one or more of the disclosed compositions or by one or more of the disclosed methods. For example, “suspected of having a disease or disorder characterized by lysine catabolism dysfunction” can mean having been subjected to an examination by a person of skill, for example, a physician, and found to have a condition (such as GA-1) that can likely be treated by one or more of the disclosed compositions or by one or more of the disclosed methods. In an aspect, an examination can be physical, can involve various tests (e.g., blood tests, genotyping, biopsies, etc.), diagnostic evaluations (e.g., X- ray, CT scan, etc.), and assays (e.g., enzymatic assay), or a combination thereof. In an aspect, an examination can be objective and / or subjective.

[0077] The term “isolated” may mean altered or removed from the natural state through human intervention. For example, naturally occurring siRNAs in living animals are not “isolated”, but synthetic siRNAs or siRNAs that are partially or completely separated from coexisting materials in their natural state are “isolated”. An isolated siRNA can be in substantially purified form or in a non-native environment, such as a cell into which the siRNA has been introduced.

[0078] A “patient” can refer to a subject afflicted with a disease or disorder such as GA-1. In an aspect, a patient can refer to a subject that has been diagnosed with or is suspected of having GA- 1. In an aspect, a patient can refer to a subject that has been diagnosed with or is suspected of having GA-1 and is seeking treatment or receiving treatment for GA-1. In an aspect, a “patient” can refer to a subject afflicted with a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction. In an aspect, a patient can refer to a subject that has been diagnosed with or is suspected of having a disease or disorder a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction. In an aspect, a patient can refer to a subject that has been diagnosed with or is suspected of having a disease or disorder and is seeking treatment or receiving treatment for a disease or disorder (such GA-1).

[0079] The term “mRNA” may mean any transcription / isomer variant from a given gene including but not limited to truncated and modified versions such as but not limited to codon optimization of the gene. It includes also modified mRNA (mmRNA) as described in patent US 2020 / 0354423, which is incorporated herein by reference for its teachings of mmRNA.

[0080] The term “endonuclease” may mean any type of DNA binding molecule that can bind and cut DNA at a specific DNA sequence, such as but not limited to CRISPR, optionally selected from a CRISPR-Cas or CRISPR-KRAB, zinc-finger nucleases, TALEN, ARCUS nuclease or meganucleases. Included in this term are also effector molecules that can instead of cutting DNA (nuclease) repress (transcriptional repression domains such as but not limited to CRISPR-KRAB) or modify (modifier such as but not limited to CRISPR base editing) at or adjacent to the binding site.

[0081] The term “CRISPR” (e.g., as in a CRISPR system or a CRISPR gene editing system) man mean any class of CRISPR system from any bacteria. A CRISPR system may be a CRISPR-Cas system, such as a Class I or Class II CRISPR-Cas system; a Type I, Type II, Type III, Type IV, Type V, or a Type VI CRISPR-Cas system; or a Subtype A, Subtype B, Subtype C, Subtype D, Subtype E, Subtype F, or Subtype U CRISPR-Cas system; or a Cascade, SpCas9, SaCas9, FnCas9, NmCas9, Casl2a (Cpfl), Casl2b (C2cl), Casl2c (C2c3), Casl3a (C2c2), Casl3b(C2c4), Casl3c (C2c7), or Casl3d CRISPR-Cas system. It may or may not have CRISPR effector molecules such as single guide RNA (sgRNA) or transcriptional repression domains such as KRAB, which may or may not be covalently bound to other components of the CRISPR system such as Cas9.

[0082] The term “2'-deoxynucleoside” may mean a nucleoside comprising 2'-H(H) furanosyl sugar moiety, as found in naturally occurring deoxyribonucleic acids (DNA). In an aspect, a 2'- deoxynucleoside may comprise a modified nucleobase or may comprise an RNA nucleobase (e.g., uracil).

[0083] The term “2'-O-methoxyethyl” (also 2'-M0E and 2'-O(CH2)2 — OCH3) may refer to an O- methoxy-ethyl modification at the 2' position of a sugar ring, e.g. a furanose ring. A 2'-O- methoxy ethyl modified sugar is a modified sugar.

[0084] The term “2'-M0E nucleoside” (also 2'-O-methoxyethyl nucleoside) may mean a nucleoside comprising a 2'-M0E modified sugar moiety.

[0085] The term “2 '-substituted nucleoside” or “2-modified nucleoside” may mean a nucleoside comprising a 2 '-substituted or 2'-modified sugar moiety. For example “2 '-substituted” or “2- modified” in reference to a sugar moiety may mean a furanosyl sugar moiety comprising a 2'- substituent group other than H or OH.

[0086] The term “3' target site” may refer to the nucleotide of a target nucleic acid which is complementary to the 3 '-most nucleotide of a particular antisense compound.

[0087] The term “5' target site” may refer to the nucleotide of a target nucleic acid which is complementary to the 5'-most nucleotide of a particular antisense compound.

[0088] The term “5-methylcytosine” may mean a cytosine modified with a methyl group attached to the 5’ position. A 5-methylcytosine is a modified nucleobase.

[0089] The term “amelioration” may refer to a lessening of at least one indicator, sign, or symptom of an associated disease, disorder, or condition. In an aspect, amelioration includes a delay or slowing in the progression of one or more indicators of a condition or disease. The severity of indicators can be determined by subjective or objective measures, which are known to those skilled in the art.

[0090] The term “animal” may refer to a human or non-human animal, including, but not limited to, mice, rats, rabbits, dogs, cats, pigs, and non-human primates, including, but not limited to, monkeys and chimpanzees.

[0091] The term “antisense activity” may mean any detectable or measurable activity attributable to the hybridization of an antisense compound to its target nucleic acid. In an aspect, antisense activity is a decrease in the amount or expression of a target nucleic acid or protein encoded by such target nucleic acid compared to target nucleic acid levels or target protein levels in the absence of the antisense compound to the target.

[0092] The term “antisense compound” may mean a compound comprising an antisense oligonucleotide and optionally one or more additional features, such as a conjugate group or terminal group. Examples of antisense compounds include single-stranded and double-stranded compounds. Examples are antisense oligonucleotides, ribozymes, siRNAs, shRNAs, ssRNAs, and occupancy -based compounds.

[0093] The term “antisense inhibition” may mean reduction of target nucleic acid levels in the presence of an antisense compound complementary to a target nucleic acid compared to target nucleic acid levels in the absence of the antisense compound.

[0094] The term “antisense mechanisms” are all those mechanisms involving hybridization of a compound with target nucleic acid, wherein the outcome or effect of the hybridization is either target degradation or target occupancy with concomitant stalling of the cellular machinery involving, for example, transcription or splicing.

[0095] The term “antisense oligonucleotide” may refer to an oligonucleotide having a nucleobase sequence that is complementary to a target nucleic acid or a region or segment thereof. In an aspect, an antisense oligonucleotide is specifically hybridizable to a target nucleic acid or a region or segment thereof.

[0096] The term “bicyclic nucleoside” or “BNA” may mean a nucleoside comprising a bicyclic sugar moiety. The term “bicyclic sugar” or “bicyclic sugar moiety” may mean a modified sugar moiety comprising two rings, wherein the second ring is formed via a bridge connecting two ofthe atoms in the first ring thereby forming a bicyclic structure. In an aspect, the first ring of the bicyclic sugar moiety is a furanosyl moiety. In certain embodiments, the bicyclic sugar moiety does not comprise a furanosyl moiety.

[0097] The term “branching group” may mean a group of atoms having at least 3 positions that are capable of forming covalent linkages to at least 3 groups. In an aspect, a branching group provides a plurality of reactive sites for connecting tethered ligands to an oligonucleotide via a conjugate linker and / or a cleavable moiety.

[0098] The term “cell-targeting moiety” may mean a conjugate group or portion of a conjugate group that is capable of binding to a particular cell type or particular cell types.

[0099] The term “cleavable moiety” may mean a bond or group of atoms that is cleaved under physiological conditions, for example, inside a cell, an animal, or a human.

[0100] The term “cEt” or “constrained ethyl” may mean a bicyclic sugar moiety comprising a bridge connecting the 4'-carbon and the 2'-carbon, wherein the bridge has the formula: 4'- CH(CH3)-O-2'.

[0101] The term “chemical modification” may mean a chemical difference in a compound when compared to a naturally occurring counterpart. Chemical modifications of oligonucleotides include nucleoside modifications (including sugar moiety modifications and nucleobase modifications) and intemucleoside linkage modifications (e.g., LNA or phosphorthioate). In reference to an oligonucleotide, chemical modification does not include differences only in nucleobase sequence.

[0102] The term “chemically distinct region” may refer to a region of an antisense compound that is in some way chemically different than another region of the same antisense compound. For example, a region having 2 '-O-m ethoxy ethyl nucleotides is chemically distinct from a region having nucleotides without 2 '-O-m ethoxy ethyl modifications.

[0103] The term “chimeric antisense compounds” may mean antisense compounds that have at least 2 chemically distinct regions, each position having a plurality of subunits.

[0104] The term “cleavable bond” may mean any chemical bond capable of being split. In an aspect, a cleavable bond is selected from an amide, a polyamide, an ester, an ether, one or both esters of a phosphodiester, a phosphate ester, a carbamate, a di-sulfide, or a peptide.

[0105] The term “cleavable moiety” may mean a bond or group of atoms that is cleaved under physiological conditions, for example, inside a cell, an animal, or a human.

[0106] The term “complementary” in reference to an oligonucleotide may mean the nucleobase sequence of such oligonucleotide or one or more regions thereof matches the nucleobase sequence of another oligonucleotide or nucleic acid or one or more regions thereof when the two nucleobasesequences are aligned in opposing directions. Nucleobase matches or complementary nucleobases, as described herein, are limited to adenine (A) and thymine (T), adenine (A) and uracil (U), cytosine (C) and guanine (G), and 5-methyl cytosine (mC) and guanine (G) unless otherwise specified. Complementary oligonucleotides and / or nucleic acids need not have nucleobase complementarity at each nucleoside and may include one or more nucleobase mismatches. By contrast, “fully complementary” or “100% complementary” in reference to oligonucleotides means that such oligonucleotides have nucleobase matches at each nucleoside without any nucleobase mismatches.

[0107] The term “conjugate group” may mean a group of atoms that is directly or indirectly attached to a parent compound, e.g., an oligonucleotide.

[0108] The term “conjugate linker” may mean a group of atoms that connects a conjugate group to a parent compound, e.g., an oligonucleotide.

[0109] The term “constrained ethyl nucleoside” (also cEt nucleoside) may mean a nucleoside comprising a bicyclic sugar moiety comprising a 4'-CH(CH3)-O-2' bridge.

[0110] The term “contiguous” in the context of an oligonucleotide may refer to nucleosides, nucleobases, sugar moi eties, or intemucleoside linkages that are immediately adjacent to each other. For example, “contiguous nucleobases” may mean nucleobases that are immediately adjacent to each other.

[0111] The term “designing” or “designed to” may refer to the process of designing an oligomeric compound that specifically hybridizes with a selected nucleic acid molecule.

[0112] The term “GCDH” means any nucleic acid or protein of GCDH. “GCDH nucleic acid” may mean any nucleic acid encoding GCDH. For example, in an aspect, a GCDH nucleic acid includes a DNA sequence encoding GCDH, an RNA sequence transcribed from DNA encoding GCDH (including genomic DNA comprising introns and exons), including a non-protein encoding (i.e., non-coding) RNA sequence, and an mRNA sequence encoding GCDH. “GCDH mRNA” means an mRNA encoding a GCDH protein.

[0113] The term “AASS” may mean any nucleic acid or protein of AASS. The term “AASS nucleic acid” may mean any nucleic acid encoding AASS. For example, in an aspect, a GCDH nucleic acid includes a DNA sequence encoding AASS, an RNA sequence transcribed from DNA encoding AASS (including genomic DNA comprising introns and exons), including a non-protein encoding (i.e., non-coding) RNA sequence, and an mRNA sequence encoding AASS. “AASS mRNA” means an mRNA encoding a AASS protein.

[0114] The term “AASS specific inhibitor” may refer to any agent capable of specifically inhibiting AASS RNA and / or AASS protein expression or activity at the molecular level. Forexample, AASS specific inhibitors include nucleic acids (including antisense compounds), peptides, antibodies, small molecules, and other agents capable of inhibiting the expression of AASS RNA and / or AASS protein.

[0115] The term “dose” may mean a specified quantity of a pharmaceutical agent provided in a single administration, or in a specified period. In an aspect, a dose can be administered in two or more boluses, tablets, or injections. For example, in an aspect, where subcutaneous administration is desired, the desired dose may require a volume not easily accommodated by a single injection. In an aspect, two or more injections can be used to achieve the desired dose. In an aspect, a dose can be administered in two or more injections to minimize injection site reaction in an individual. In an aspect, the pharmaceutical agent is administered by infusion over an extended period or continuously. Doses can be stated as the amount of pharmaceutical agent per hour, day, week, or month.

[0116] The term “effective amount” may mean the amount of compound sufficient to effectuate a desired physiological outcome in an individual in need of the agent. The effective amount may vary among individuals depending on the health and physical condition of the individual to be treated, the taxonomic group of the individuals to be treated, the formulation of the composition, assessment of the individual's medical condition, and other relevant factors.

[0117] The term “efficacy” may mean the ability to produce a desired effect.

[0118] The term “expression” may include all the functions by which a gene's coded information is converted into structures present and operating in a cell. Such structures may include, but are not limited to the products of transcription and translation.

[0119] The term “fully modified” in reference to an oligonucleotide may mean a modified oligonucleotide in which each nucleoside is modified. “Uniformly modified” in reference to an oligonucleotide means a fully modified oligonucleotide in which at least one modification of each nucleoside is the same. For example, the nucleosides of a uniformly modified oligonucleotide can each have a 2'-M0E modification but different nucleobase modifications, and the intemucleoside linkages can be different.

[0120] The term “gapmer” may mean a chimeric antisense compound in which an internal region having a plurality of nucleosides that is positioned between external regions having one or more nucleosides, wherein the nucleosides comprising the internal region are chemically distinct from the nucleoside or nucleosides comprising the external regions. The internal region can be referred to as the “gap” and the external regions can be referred to as the “wings.” In an aspect, the structure of a gapmer may support RNase H cleavage.

[0121] The term “hybridization” may mean the pairing or annealing of complementary oligonucleotides and / or nucleic acid molecules. While not limited to a particular mechanism, the most common mechanism of hybridization involves hydrogen bonding, which can be Watson- Crick, Hoogsteen or reversed Hoogsteen hydrogen bonding, between complementary nucleobases. In an aspect, complementary nucleic acid molecules include, but are not limited to, an antisense compound and a nucleic acid target. In an aspect, complementary nucleic acid molecules include, but are not limited to, an antisense oligonucleotide and a nucleic acid target.

[0122] The term “identifying an animal having, or at risk for having, a disease, disorder and / or condition” may mean identifying an animal having been diagnosed with the disease, disorder and / or condition or identifying an animal predisposed to develop the disease, disorder and / or condition. Such identification can be accomplished by any method including evaluating an individual's medical history and standard clinical tests or assessments.

[0123] The term “immediately adjacent” may mean there are no intervening elements between the immediately adjacent elements of the same kind (e.g., no intervening nucleobases between adjacent nucleobases).

[0124] The term “individual” may mean a human or non-human animal selected for treatment or therapy.

[0125] The term “inhibiting the expression or activity” may refer to a reduction, blockade of the expression or activity relative to the expression or activity in an untreated or control sample, and does not necessarily indicate a total elimination of expression or activity.

[0126] The term “intemucleoside linkage” may mean a group or bond that forms a covalent linkage between adjacent nucleosides in an oligonucleotide. As used herein “modified intemucleoside linkage” may mean any intemucleoside linkage other than a naturally occurring, phosphate intemucleoside linkage. Naturally occurring, non-phosphate linkages are referred to herein as modified intemucleoside linkages.

[0127] The term “phosphorothioate linkage” may mean a linkage between nucleosides wherein the phosphodiester bond of a phosphate linkage is modified by replacing one of the non-bridging oxygen atoms with a sulfur atom. A phosphorothioate linkage is a modified intemucleoside linkage.

[0128] The term “lengthened” antisense oligonucleotides may be those that have one or more additional nucleosides relative to an antisense oligonucleotide disclosed herein; e.g. a parent oligonucleotide.

[0129] The term “linearly modified sugar” or “linearly modified sugar moiety” may mean a modified sugar moiety that comprises an acyclic or non-bridging modification. Such linear modifications are distinct from bicyclic sugar modifications.

[0130] The term “linked deoxynucleoside” may mean a nucleic acid base (A, G, C, T, U) substituted by deoxyribose linked by a phosphate ester to form a nucleotide.

[0131] The term “linked nucleosides” may refer to nucleosides that are connected in a continuous sequence (i.e., no additional nucleosides are present between those that are linked).

[0132] The term “mismatch” or “non-complementary” may mean a nucleobase of a first oligonucleotide that is not complementary to the corresponding nucleobase of a second oligonucleotide or target nucleic acid when the first and second oligonucleotides are aligned. For example, a universal nucleobase, inosine, and hypoxanthine, are capable of hybridizing with at least one nucleobase but are still mismatched or non-complementary with respect to nucleobase to which it hybridized. As another example, a nucleobase of a first oligonucleotide that is not capable of hybridizing to the corresponding nucleobase of a second oligonucleotide or target nucleic acid when the first and second oligonucleotides are aligned is a mismatch or non- complementary nucleobase.

[0133] The term “modified nucleobase” may mean any nucleobase other than adenine, cytosine, guanine, thymidine, or uracil. An “unmodified nucleobase” may mean the purine bases adenine (A) and guanine (G), and the pyrimidine bases thymine (T), cytosine (C) and uracil (U). A “universal base” may be a nucleobase that can pair with any one of the five unmodified nucleobases.

[0134] The term “modified nucleoside” may mean a nucleoside having, independently, a modified sugar moiety and / or modified nucleobase.

[0135] The term “modified nucleotide” may mean a nucleotide having, independently, a modified sugar moiety, modified internucleoside linkage, or modified nucleobase.

[0136] The term “modified oligonucleotide” may mean an oligonucleotide comprising at least one modified intemucleoside linkage, a modified sugar, and / or a modified nucleobase.

[0137] The term “modulating” may refer to changing or adjusting a feature in a cell, tissue, organ or organism. For example, modulating AASS RNA can mean to increase or decrease the level of AASS RNA and / or AASS protein in a cell, tissue, organ or organism. A “modulator” effects the change in the cell, tissue, organ or organism. For example, a AASS antisense compound can be a modulator that decreases the amount of AASS RNA and / or AASS protein in a cell, tissue, organ or organism.

[0138] The term “monomer” may refer to a single unit of an oligomer. Monomers include, but are not limited to, nucleosides and nucleotides, whether naturally occurring or modified.

[0139] The term “motif’ may mean the pattern of unmodified and / or modified sugar moieties, nucleobases, and / or intemucleoside linkages, in an oligonucleotide.

[0140] The term “natural” or “naturally occurring” may mean found in nature. “Naturally occurring intemucleoside linkage” may mean a 3' to 5' phosphodiester linkage. “Natural sugar moiety” may mean a sugar moiety found in DNA (2'-H) or RNA (2'-OH). “Naturally occurring nucleobase” may mean the purine bases adenine (A) and guanine (G), and the pyrimidine bases thymine (T), cytosine (C) and uracil (U). The term “non-complementary nucleobase” may refer to a pair of nucleobases that do not form hydrogen bonds with one another or otherwise support hybridization.

[0141] The term “nucleic acid” may refer to molecules composed of monomeric nucleotides. A nucleic acid may include, but is not limited to, ribonucleic acids (RNA), deoxyribonucleic acids (DNA), single-stranded nucleic acids, double-stranded nucleic acids, and modified forms thereof.

[0142] The term “nucleobase” may mean a heterocyclic moiety capable of pairing with a base of another nucleic acid.

[0143] The term “nucleobase sequence” may mean the order of contiguous nucleobases independent of any sugar, linkage, and / or nucleobase modification.

[0144] The term “nucleoside” may mean a compound comprising a nucleobase and a sugar moiety. The nucleobase and sugar moiety are each, independently, unmodified or modified.

[0145] The term “nucleotide” may mean a nucleoside having a phosphate group covalently linked to the sugar portion of the nucleoside.

[0146] The term “oligomeric compound” may mean a compound comprising an oligonucleotide and optionally one or more additional features, such as a conjugate group or terminal group. Examples of oligomeric compounds include single-stranded and double-stranded compounds, such as, antisense compounds, antisense oligonucleotides, ribozymes, siRNAs, shRNAs, ssRNAs, and occupancy -based compounds.

[0147] The term “oligonucleoside” may mean an oligonucleotide in which the intemucleoside linkages do not contain a phosphorus atom.

[0148] The term “oligonucleotide” may mean a polymer of linked nucleosides each of which can be modified or unmodified, independent one from another.

[0149] The term “parent oligonucleotide” may mean an oligonucleotide whose sequence is used as the basis of design for more oligonucleotides of similar sequence but with different lengths,motifs, and chemistries. The newly designed oligonucleotides may have the same or overlapping sequence as the parent oligonucleotide.

[0150] The term “parenteral administration” may mean administration through injection or infusion. Parenteral administration may include subcutaneous administration, intravenous administration, intramuscular administration, intraarterial administration, intraperitoneal administration, or intracranial administration, e.g. intrathecal or intracerebroventricular administration.

[0151] The terms “pharmaceutically acceptable carrier or diluent” may mean a medium or diluent suitable for use in administering to an animal. For example, a pharmaceutically acceptable carrier can be a sterile aqueous solution, such as PBS or water-for-inj ection.

[0152] The term “pharmaceutically acceptable salts” may mean physiologically and pharmaceutically acceptable salts of compounds, such as oligomeric compounds or antisense compounds, i.e., salts that retain the desired biological activity of the parent compound and do not impart undesired toxicological effects thereto.

[0153] The term “pharmaceutical agent” may mean a compound that provides a therapeutic benefit when administered to an individual.

[0154] The term “pharmaceutical composition” may mean a mixture of compounds suitable for administering to an individual. For example, a pharmaceutical composition may comprise one or more compounds or salts thereof and a sterile aqueous solution.

[0155] The term “phosphorothioate linkage” may mean a modified internucleoside linkage between nucleosides where the phosphodiester bond is modified by replacing one of the nonbridging oxygen atoms with a sulfur atom.

[0156] Theterm “phosphorus moiety” may mean agroup of atoms comprising a phosphorus atom. In an aspect, a phosphorus moiety comprises a mono-, di-, or tri -phosphate, or phosphorothioate.

[0157] The term “portion” may mean a defined number of contiguous (i.e., linked) nucleobases of a nucleic acid. In an aspect, a portion is a defined number of contiguous nucleobases of a target nucleic acid. In an aspect, a portion is a defined number of contiguous nucleobases of an oligomeric compound

[0158] The term “prevent” may refer to delaying or forestalling the onset, development or progression of a disease, disorder, or condition for a period of time from minutes to indefinitely. Prevent may also mean reducing the risk of developing a disease, disorder, or condition.

[0159] The term “prodrug” may mean a form of a compound which, when administered to an individual, is metabolized to another form. In an aspect, the metabolized form is the active, or more active, form of the compound (e.g., drug).

[0160] The term “prophylactically effective amount” may refer to an amount of a pharmaceutical agent that provides a prophylactic or preventative benefit to an animal.

[0161] The term “RefSeq No.” is a unique combination of letters and numbers assigned to a sequence to indicate the sequence is for a particular target transcript (e.g., target gene). Such sequence and information about the target gene (collectively, the gene record) can be found in a genetic sequence database. Genetic sequence databases include the NCBI Reference Sequence database, GenBank, the European Nucleotide Archive, and the DNA Data Bank of Japan (the latter three forming the International Nucleotide Sequence Database Collaboration or INSDC).

[0162] The term “region” may be defined as a portion of the target nucleic acid having at least one identifiable structure, function, or characteristic.

[0163] The term ribonucleotide” may mean a nucleotide having a hydroxy at the 2' position of the sugar portion of the nucleotide.

[0164] The term “RNAi compound” may mean an oligomeric compound that acts, at least in part, through RISC or Ago2 to modulate a target nucleic acid and / or protein encoded by a target nucleic acid. RNAi compounds include, but are not limited to double-stranded siRNA, single-stranded RNA (ssRNA), and microRNA, including microRNA mimics. The term RNAi compound excludes antisense oligonucleotides that act through RNase H.

[0165] The term “segment” may refer to a smaller or sub-portion of region within an antisense compound, an oligonucleotide, or a target nucleic acid.

[0166] The term “side effects” may mean physiological disease and / or conditions attributable to a treatment other than the desired effects. In an aspect, side effects may include injection site reactions, liver function test abnormalities, renal function abnormalities, liver toxicity, renal toxicity, central nervous system abnormalities, myopathies, and malaise. For example, increased aminotransferase levels in serum may indicate liver toxicity or liver function abnormality. For example, increased bilirubin may indicate liver toxicity or liver function abnormality.

[0167] The term “single-stranded” in reference to an antisense compound or oligomeric compound may mean there is one oligonucleotide in the compound.

[0168] The term “self-complementary” in reference to an antisense compound or oligomeric compound may mean a compound that at least partially hybridizes to itself. A compound consisting of one antisense or oligomeric compound, wherein the oligonucleotide of the compound is self-complementary, is a single- stranded compound. A single-stranded antisense or oligomeric compound can be capable of binding to a complementary compound to form a duplex.

[0169] The term “sites” may refer to unique nucleobase positions within a target nucleic acid(e.g., target site).

[0170] The term “slows progression” means decrease in the development of the said disease.

[0171] The term “specifically hybridizable” may refer to an antisense compound having a sufficient degree of complementarity between an antisense oligonucleotide and a target nucleic acid to induce a desired effect, while exhibiting minimal or no effects on non-target nucleic acids.

[0172] The term “specifically inhibit” a target nucleic acid may refer to reducing or blocking expression of the target nucleic acid while exhibiting fewer, minimal, or no effects on non-target nucleic acids reduction and does not necessarily indicate a total elimination of the target nucleic acid's expression.

[0173] The term “sugar moiety” may mean a group of atoms that can link a nucleobase to another group, such as an intemucleoside linkage, conjugate group, or terminal group. In an aspect, a sugar moiety is attached to a nucleobase to form a nucleoside. The term “unmodified sugar moiety” or “unmodified sugar” may mean a 2'-0H(H) furanosyl moiety, as found in RNA, or a 2'-H(H) moiety, as found in DNA. Unmodified sugar moieties have one hydrogen at each of the 1', 3', and 4' positions, an oxygen at the 3' position, and two hydrogens at the 5' position. The terms “modified sugar moiety” or “modified sugar” may mean a furanosyl moiety comprising a non-hydrogen substituent in place of at least one hydrogen of an unmodified sugar moiety, or a sugar surrogate. In an aspect, a modified sugar moiety is a 2 '-substituted sugar moiety. Such modified sugar moieties include bicyclic sugars and linearly modified sugars.

[0174] The term “sugar surrogate” may mean a modified sugar moiety having other than a furanosyl moiety that can link a nucleobase to another group, such as an intemucleoside linkage, conjugate group, or terminal group. Modified nucleosides comprising sugar surrogates can be incorporated into one or more positions within an oligonucleotide. In an aspect, such oligonucleotides are capable of hybridizing to complementary oligomeric compounds or nucleic acids.

[0175] The term “synergy” or “synergize” may refer to an effect of a combination that is greater than additive of the effects of each component alone.

[0176] The term “target gene” may refer to a gene encoding a target.

[0177] The terms “target nucleic acid,” “target RNA,” “target RNA transcript” and “nucleic acid target” may mean a nucleic acid capable of being targeted by silencing oligonucleotides (e.g., antisense oligos or siRNA) or a gene editing systems.

[0178] The term “targeting” may mean the process of design and selection of an antisense compound that will specifically hybridize to a target nucleic acid and induce a desired effect.

[0179] The term “target region” may mean a portion of a target nucleic acid to which one or more antisense compounds is targeted.

[0180] The term “target segment” may mean the sequence of nucleotides of a target nucleic acid to which an antisense compound is targeted. “5' target site” refers to the 5 '-most nucleotide of a target segment. “3' target site” refers to the 3 '-most nucleotide of a target segment.

[0181] The term “terminal group” may mean a chemical group or group of atoms that is covalently linked to a terminus of an oligonucleotide.

[0182] The term “therapeutically effective amount” may mean an amount of a compound, pharmaceutical agent, or composition that provides a therapeutic benefit to an individual.

[0183] The term “treat” may refer to administering a compound or pharmaceutical composition to an animal in order to effect an alteration or improvement of a disease, disorder, or condition in the animal.

[0184] The term “unmodified”, such as when describing nucleobases or nucleotides, may mean that the purine bases adenine (A) and guanine (G), and the pyrimidine bases thymine (T), cytosine (C), and uracil (U), which do not comprise any chemical modification.

[0185] The term “unmodified nucleotide” may mean a nucleotide composed of naturally occurring nucleobases, sugar moieties, and internucleoside linkages. In an aspect, an unmodified nucleotide may be an RNA nucleotide (i.e., P-D-ribonucleotides) or a DNA nucleotide (i.e. [3-D- deoxy rib onucl eoti de) .

[0186] The term “codon optimization” can refer to a process of modifying a nucleic acid sequence for enhanced expression in the host cells of interest by replacing one or more codons or more of the native sequence with codons that are more frequently or most frequently used in the genes of that host cell while maintaining the native amino acid sequence. Various species exhibit particular bias for certain codons of a particular amino acid. As contemplated herein, genes can be tailored for optimal gene expression in a given organism based on codon optimization. Codon usage tables are readily available, for example, at the “Codon Usage Database.” Many methods and software tools for codon optimization have been reported previously. (See, for example, genomes.urv.es / OPTIMIZER / ).

[0187] The phrase “identified to be in need of treatment,” or the like, may refer to selection of a subject based upon need for treatment of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). For example, a subject can be identified as having a need for treatment based upon an earlier diagnosis by a person of skill and thereafter subjected to treatment for a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). In an aspect, the identification can be performed by a person different from the person making the diagnosis. In an aspect, the administration can be performed by one who performed the diagnosis.

[0188] The term “oligonucleotides” and similar terms relate to short oligos composed of naturally occurring nucleotides as well as to oligos composed of synthetic or modified nucleotides, as described in the preceding section on RNAi and siRNA. The terms “polynucleotide” and “oligonucleotide” are used synonymously.

[0189] The terms “inhibit,” “inhibiting”, and “inhibition” may mean to diminish or decrease an activity, level, response, condition, severity, disease, or other biological parameter. In an aspect, “inhibiting” can refer to diminishing the intensity, the duration, the amount, or a combination thereof of symptoms, complications, issues due to a subject’s lysine catabolism dysfunction and / or malfunction (such as GA-1). This can include, but is not limited to, the complete ablation of the activity, level, response, condition, severity, disease, or other biological parameter. This can also include, for example, a 10% inhibition or reduction in the activity, level, response, condition, severity, disease, or other biological parameter as compared to the native or control level (e.g., a subject not having a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1)) or to the level prior to the onset of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). Thus, in an aspect, the inhibition or reduction can be a 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%, or any amount of reduction in between as compared to native or control levels or to the subject’s level prior to the onset of lysine catabolism dysfunction and / or malfunction. In an aspect, the inhibition or reduction can be 10-20%, 20-30%, 30-40%, 40-50%, 50-60%, 60-70%, 70-80%, 80-90%, or 90-100% as compared to native or control levels or to the subject’s level prior to the onset of lysine catabolism dysfunction and / or malfunction (such as GA-1). In an aspect, the inhibition or reduction can be 0-25%, 25-50%, 50-75%, or 75-100% as compared to native or control levels or to the subject’s level prior to the onset of lysine catabolism dysfunction and / or malfunction (such as GA-1).

[0190] The words “treat” or “treating” or “treatment” may include palliative treatment, that is, treatment designed for the relief of symptoms rather than the curing of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1); preventative treatment, that is, treatment directed to minimizing or partially or completely inhibiting the development of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1); and supportive treatment, that is, treatment employed to supplement another specific therapy directed toward the improvement of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). In an aspect, the terms cover any treatment of a subject, including a mammal e.g., a human), and includes: (i) preventing the undesired physiological change and / or pathological condition from occurring in a subject that canbe predisposed to a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1) but has not yet been diagnosed as having it; (ii) inhibiting the physiological change and / or pathological condition (a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1)); or (iii) relieving the physiological change and / or pathological condition, z.e., causing regression of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). For example, in an aspect, treating a disease or disorder can reduce the severity of an established a disease or disorder in a subject by 1%-100% as compared to a control (such as, for example, an individual not having a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1)). In an aspect, treating can refer to a 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, or 100% reduction in the severity of a disease or a disorder or a condition (such as a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1)). For example, treating a disease or a disorder can reduce one or more symptoms of a disease or disorder in a subject by 1%-100% as compared to a control (such as, for example, an individual not having a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1)). In an aspect, treating can refer to 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100% reduction of one or more symptoms of an established a disease or a disorder or a condition (e.g., lysine catabolism dysfunction and / or malfunction (such as GA-1)). It is understood that treatment does not necessarily refer to a cure or complete ablation or eradication of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). However, in an aspect, treatment can refer to a cure or complete ablation or eradication of a disease or a disorder or a condition (such as lysine catabolism dysfunction and / or malfunction (such as GA-1)).

[0191] The term the term “prevent” or “preventing” or “prevention” may refer to to precluding, averting, obviating, forestalling, stopping, or hindering something from happening, especially by advance action. It is understood that where reduce, inhibit, or prevent are used herein, unless specifically indicated otherwise, the use of the other two words is also expressly disclosed. In an aspect, preventing lysine catabolism dysfunction and / or malfunction (such as GA-1) or the worsening of lysine catabolism dysfunction and / or malfunction (such as GA-1) is intended. The words “prevent” and “preventing” and “prevention” also refer to prophylactic or preventative measures for protecting or precluding a subject (e.g., an individual) not having lysine catabolism dysfunction and / or malfunction (such as GA-1) related complication from progressing to that complication.

[0192] The term “operably linked” may mean that expression of a gene or a transgene is under the control of a promoter with which it is spatially connected. A promoter can be positioned 5’ (upstream) or 3 ’ (downstream) of a gene under its control. The distance between the promoter and a gene can be approximately the same as the distance between that promoter and the gene it controls in the gene from which the promoter is derived. As is known in the art, variation in this distance can be accommodated without loss of promoter function.

[0193] The term an “enhancer” such as a transcription or transcriptional enhancer may refer to regulatory DNA segment that is typically found in multicellular eukaryotes. An enhancer can strongly stimulate (“enhance”) the transcription of a linked transcription unit, z.e., it acts in cis. An enhancer can activate transcription over very long distances of many thousand base pairs, and from a position upstream or downstream of the site of transcription initiation. An enhancer can have a modular structure by being composed of multiple binding sites for transcriptional activator proteins. Many enhancers control gene expression in a cell type-specific fashion. Several remote enhancers can control the expression of a singular gene while a singular enhance can stimulate the transcription of one or more genes.

[0194] The term “expression cassette” or “transgene cassette” can refer to a distinct component of vector DNA comprising a transgene and one or more regulatory sequences to be expressed by a transfected cell. Generally, an expression cassette or transgene cassette can comprise a promoter sequence, an open reading frame (i.e., the transgene), and a 3’ untranslated region (e.g., in eukaryotes a polyadenylation site).

[0195] The term “promoter” or “promoters” are known to the art. Depending on the level and tissue-specific expression desired, a variety of promoter elements can be used. A promoter can be tissue-specific or ubiquitous and can be constitutive or inducible, depending on the pattern of the gene expression desired. A promoter can be native (endogenous) or foreign (exogenous) and can be a natural or a synthetic sequence. By foreign or exogenous, it is intended that the transcriptional initiation region is not found in the wild-type host into which the transcriptional initiation region is introduced. Bacteriophage promoters are used for in vitro transcription such as T7, SP6 and T3 RNA polymerases, but are not used in cells

[0196] “Tissue-specific promoters” are known to the art and include, but are not limited to, neuron-specific promoters, muscle-specific promoters, liver-specific promoters, skeletal musclespecific promoters, and heart-specific promoters.

[0197] “Liver-specific promoters” are known to the art and include, but are not limited to, the thyroxin binding globulin (TBG) promoter, the al-microglobulin / bikunin enhancer / thyroid hormone-binding globulin promoter, the human albumin (hALB) promoter, the thyroid hormone-binding globulin promoter, the a- 1 -anti -trypsin promoter, the bovine albumin (bAlb) promoter, the murine albumin (mAlb) promoter, the human al -antitrypsin (hAAT) promoter, the ApoEhAAT promoter comprising the ApoE enhancer and the hAAT promoter, the transthyretin (TTR) promoter, the liver fatty acid binding protein promoter, the hepatitis B virus (HBV) promoter, the DC 172 promoter comprising the hAAT promoter and the al -microglobulin enhancer, the DC 190 promoter comprising the human albumin promoter and the prothrombin enhancer, or any other natural or synthetic liver-specific promoter.

[0198] In an aspect, a disclosed liver-specific promoter can comprise any liver-specific promoter known to the art. In an aspect, a liver specific promoter can comprise about 845-bp and comprise the thyroid hormone-binding globulin promoter sequences (2382 to 13), two copies of al- microglobulinybikunin enhancer sequences (22,804 through 22,704), and a 71 -bp leader sequence (Ill CR, et al. (1997) Blood Coagul Fibrinolysis. 8 Suppl 2:S23-S30).

[0199] The term the terms “administering” and “administration” may refer to any method of providing one or more of the disclosed compositions (such as, for example, a disclosed viral vector). Such methods are well-known to those skilled in the art and include, but are not limited to, the following: oral administration, transdermal administration, administration by inhalation, nasal administration, topical administration, in utero administration, intrahepatic administration, intravaginal administration, epidural administration (such as epidural injection), intracerebroventricular (ICV) administration, ophthalmic administration, intraaural administration, depot administration, topical (skin) administration, otic administration, intraarticular (such as joint or vertebrate injection), intracerebral administration, rectal administration, sublingual administration, buccal administration, and parenteral administration, including injectable such as intravenous administration, intra-CSF administration, intra-cistem magna (ICM) administration, intra-arterial administration, intrathecal (ITH) administration, intramuscular administration, and subcutaneous administration. Administration of a disclosed composition, a disclosed viral vector, a disclosed pharmaceutical formulation, a disclosed therapeutic agent, a disclosed immune modulator, a disclosed proteasome inhibitor, a disclosed small molecule, a disclosed endonuclease, a disclosed oligonucleotide, and / or a disclosed RNA therapeutic can comprise administration directly into the CNS or the PNS.

[0200] The term “administration” or “administering” may refer to routes of introducing a compound or composition provided herein to an individual to perform its intended function. An example of a route of administration that can be used includes, but is not limited to parenteral administration, such as subcutaneous, intravenous, or intramuscular injection or infusion.

[0201] Administration can be continuous or intermittent. Administration can comprise a combination of one or more route. In an aspect, a disclosed composition, a disclosed viral vector, a disclosed pharmaceutical formulation, or any combination thereof can be concurrently and / or serially administered to a subject via multiple routes of administration. For example, in an aspect, administering a disclosed composition, a disclosed viral vector, a disclosed pharmaceutical formulation, or any combination thereof can comprise intravenous administration and intra-cistem magna (ICM) administration. In an aspect, administering a disclosed composition, a disclosed viral vector, a disclosed pharmaceutical formulation, or any combination thereof can comprise IV administration and intrathecal (ITH) administration. Various combinations of administration are known to the art. “Administered concomitantly” or “co-administration” may mean administration of two or more compounds in any manner in which the pharmacological effects of both are manifest in the patient. Concomitant administration does not require that both agents be administered in a single pharmaceutical composition, in the same dosage form, by the same route of administration, or at the same time. The effects of both agents need not manifest themselves at the same time. The effects need only be overlapping for a period of time and need not be coextensive. Concomitant administration or co-administration encompasses administration in parallel or sequentially.

[0202] The term “immune modulator” refers to an agent that is capable of adjusting a given immune response to a desired level (e.g., as in immunopotentiation, immunosuppression, or induction of immunologic tolerance). Examples of immune modulators include but are not limited to, a disclosed immune modulator can comprise aspirin, azathioprine, belimumab, betamethasone dipropionate, betamethasone valerate, bortezomib, bredinin, cy azathioprine, cyclophosphamide, cyclosporine, deoxyspergualin, didemnin B, fluocinolone acetonide, folinic acid, ibuprofen, IL6 inhibitors (such as sarilumab) indomethacin, inebilizumab, intravenous gamma globulin (IVIG), methotrexate, methylprednisolone, mycophenolate mofetil, naproxen, prednisolone, prednisone, prednisolone indomethacin, rapamycin, rituximab, sirolimus, sulindac, synthetic vaccine particles containing rapamycin (SVP -Rapamycin or ImmTOR), thalidomide, tocilizumab, tolmetin, triamcinolone acetonide, anti-CD3 antibodies, anti-CD4 antibodies, anti-CD19 antibodies, anti- CD20 antibodies, anti-CD22 antibodies, anti-CD40 antibodies, anti-FcRN antibodies, anti-IL6 antibodies, anti-IGFIR antibodies, an IL2 mutein, a BTK inhibitor, or a combination thereof. In an aspect, a disclosed immune modulator can comprise one or more Treg (regulatory T cells) infusions (e.g., antigen specific Treg cells to AAV).

[0203] By “determining the amount” can mean both an absolute quantification of a particular analyte (e.g., a toxic catabolite) or a determination of the relative abundance of a particular analyte(e.g., a toxic catabolite). The phrase includes both direct or indirect measurements of abundance or both. In an aspect, determining the amount can refer to measuring the expression of GCDH.

[0204] The term “modifying the method” can comprise modifying or changing one or more features or aspects of one or more steps of a disclosed method. In an aspect, a method can be altered by changing the amount of one or more of the disclosed compositions (e.g., a disclosed viral vector) used in a disclosed method, or by changing the frequency of administration of one or more disclosed compositions (e.g., a disclosed viral vector) in a disclosed method, by changing the duration of time that one or more disclosed compositions (e.g., a disclosed viral vector) is administered in a disclosed method, orby substituting for one ormore of the disclosed components and / or reagents with a similar or equivalent component and / or reagent.

[0205] The term “concurrently” may mean (1) simultaneously in time, or (2) at different times during a common treatment schedule.

[0206] In an aspect, “CpG-free” can mean completely free of CpGs or partially free of CpGs. In an aspect, “CpG-free” can mean “CpG-depleted”. In an aspect, “CpG-depleted” can mean “CpG- free”. In an aspect, “CpG-depleted” can mean completely depleted of CpGs or partially depleted of CpGs. In an aspect, “CpG-free” can mean “CpG-optimized” for a desired and / or ideal expression level. CpG depletion and / or optimization is known to the skilled person in the art.

[0207] The term “contacting” can refer to bringing one or more of the disclosed compositions (e.g., a disclosed viral vector) together with a target area or intended target area (e.g., a population of cells) in such a manner that the disclosed compositions can exert an effect on the intended target or targeted area either directly or indirectly. A target area or intended target area can be one or more cells (e.g., brain cells, liver cells, or both) and / or one or more tissues having toxic catabolite build-up (e.g., the brain, the liver, or both), or any combination thereof. In an aspect, a target area or intended target area can be any cell or any organ infected by a disease or disorder (such as GA- 1). In an aspect, a target area or intended target area can be any organ, tissue, or cells that are affected by a disease or disorder characterized by lysine metabolic dysfunction.

[0208] The term “determining” can refer to measuring or ascertaining the presence and severity of a disease or disorder, such as, for example, characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). “Determining” can refer to measuring or ascertaining an expression level of a protein or gene of interest. “Determining” can refer to measuring or ascertaining the reprogramming of a metabolic pathway. “Determining” can refer to ascertaining or measuring some type of neurologic, physiologic, and / or metabolic function and / or response.

[0209] Methods and techniques used to determine the presence and / or severity of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1) aretypically known to the medical arts. For example, the art is familiar with the ways to identify and / or diagnose the presence, severity, or both of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). Methods can be based on objective and / or subjective means.

[0210] The term “effective amount” and “amount effective” can refer to an amount that is sufficient to achieve the desired result such as, for example, the treatment and / or prevention of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). The term the terms “effective amount” and “amount effective” can refer to an amount that is sufficient to achieve the desired an effect on an undesired condition (e.g., a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1)). For example, a “therapeutically effective amount” refers to an amount that is sufficient to achieve the desired therapeutic result or to have an effect on undesired symptoms, but is generally insufficient to cause adverse side effects.

[0211] In an aspect, “therapeutically effective amount” can mean an amount of the disclosed composition that (i) treats a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1), (ii) attenuates, ameliorates, or eliminates one or more symptoms associated with a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1), or (iii) delays the onset of one or more symptoms of a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1). The specific therapeutically effective dose level for any particular patient will depend upon a variety of factors including the disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1) being treated; the disclosed compositions employed; the disclosed methods employed; the age, body weight, general health, sex and diet of the patient; the time of administration; the route of administration; the rate of excretion of the disclosed compositions employed; the duration of the treatment; drugs used in combination or coincidental with the disclosed compositions employed, and other like factors well known in the medical arts. For example, it is well within the skill of the art to start doses of the disclosed compositions at levels lower than those required to achieve the desired therapeutic effect and to gradually increase the dosage until the desired effect is achieved. If desired, then the effective daily dose can be divided into multiple doses for purposes of administration. Consequently, a single dose of the disclosed compositions, disclosed viral vectors, disclosed pharmaceutical formulations, disclosed therapeutic agents, or a combination thereof can contain such amounts or submultiples thereof to make up the daily dose. The dosage can be adjusted by the individual physician in the event of any contraindications. Dosage can vary, and can be administered in one or more doseadministrations daily, for one or several days. Guidance can be found in the literature for appropriate dosages for given classes of pharmaceutical products. In further various aspects, a preparation can be administered in a “prophylactically effective amount”; that is, an amount effective for prevention of a sign or symptom associated with a disease or disorder characterized by lysine catabolism dysfunction and / or malfunction (such as GA-1).

[0212] The term the term “package insert” can refer to instructions customarily included in commercial packages of therapeutic products, that contain information about the indications, usage, dosage, administration, contraindications and / or warnings concerning the use of such therapeutic products.

[0213] Disclosed are the components to be used to prepare the disclosed compositions, disclosed viral vectors, disclosed pharmaceutical formulations, disclosed therapeutic agents, or a combination thereof used within the methods disclosed herein. These and other materials are disclosed herein, and it is understood that when combinations, subsets, interactions, groups, etc. of these materials are disclosed that while specific reference of each various individual and collective combinations and permutation of these compounds cannot be explicitly disclosed, each is specifically contemplated and described herein. For example, if a particular compound is disclosed and discussed and a number of modifications that can be made to a number of molecules including the compounds are discussed, specifically contemplated is each and every combination and permutation of the compound and the modifications that are possible unless specifically indicated to the contrary. Thus, if a class of molecules A, B, and C are disclosed as well as a class of molecules D, E, and F and an example of a combination molecule, A-D is disclosed, then even if each is not individually recited each is individually and collectively contemplated meaning combinations, A-E, A-F, B-D, B-E, B-F, C-D, C-E, and C-F are considered disclosed. Likewise, any subset or combination of these is also disclosed. Thus, for example, the sub-group of A-E, B- F, and C-E would be considered disclosed. This concept applies to all aspects of this application including, but not limited to, steps in methods of making and using the compositions of the invention. Thus, if there are a variety of additional steps that can be performed it is understood that each of these additional steps can be performed with any specific embodiment or combination of embodiments of the methods of the invention.Glutaric Aciduria Type-1 (GA-1).

[0214] Glutaric aciduria type-1 (GA-1) is a cerebral organic aciduria with neurometabolic features due to Glutaryl-CoA dehydrogenase (GCDH) deficiency. It is an autosomal recessive inborn error of lysine (primarily) and tryptophan metabolism with a worldwide prevalence estimated to be between 1 :30,000 to 1 : 100,000 live births. (Lindner M, et al. (2006) J Inherit Metab Dis. 29:378-382; Kolker S, et al. (2006) Pediatr Res. 59:840-847). GCDH catalyzes mitochondrial oxidative decarboxylation of glutaryl-CoA into crotonyl CoA and CO2 in the L-lysine (Fig.l), L- hydroxylysine and L-tryptophan catabolic pathway. Mutations in the GCDH gene cause characteristic clinical and biochemical phenotypes. The clinical phenotype is neurologic, characterized by macrocephaly at birth, subdural hematomas and acute retinal hemorrhage. During infancy and early childhood, patients with GA-1 are at risk of acute encephalopathic crises triggered by intercurrent illness, fever or fasting; damaging the brain striatum. Infantile acute striatal necrosis is the hallmark of GA-1 and the primary cause of morbidity and mortality leading to dystonia, and multisystem complications. Putamin injury is associated with motor and behavioral regression. Brain imaging shows selective regional (basal ganglia) findings that are symmetric and irreversible. (Strauss KA, et al. (2003) Am J Med Genet C Semin Med Genet. 121 C(l):38-52). Some patients have an insidious onset disease presentation not associated with acute crises. These patients usually present later in life with late-onset neurologic disease (Kolker S, et al. (2006) Pediatr Res. 59:840-847). As an extracerebral manifestation an increased frequency of chronic renal failure in adults has been reported. (Boy N, et al. (2017) J Inherit Metab Dis 40: 75-101).

[0215] The biochemical phenotype is diagnostic in high GA-1 excretors showing elevated 3- hydroxyglutaric acid (neurotoxic), and glutaric acid in urine organic acids and elevated glutarylcamitine (C5DC) in blood, the latter being the biomarker detected on newborn screening (NBS). These catabolites are also elevated in the blood, urine, CSF, and in liver, kidney, and brain tissues. In patients characterized as low excretors, biochemical studies may not be diagnostic, and in that case, GCDH mutation testing may help provide the diagnosis. (Lindner M, et al. (2006) J Inherit Metab Dis. 29:378-382). Early diagnosis and treatment following NBS often has led to more favorable outcomes when compliant with treatment plans. The standard of care treatment in GA-1, aims at reducing lysine; the main offending substrate that feeds into the pathway. This is achieved by restricting protein, mainly exogenous lysine and tryptophan; carnitine supplementation; and intensified emergency therapy with a high caloric glucose infusion to promote anabolism during illness. After the age of 6 years, dietary treatment is less protein restricted with continued metabolic supervision and follow up. There is no specific targeted therapy for GA-1 and untreated or poorly managed individuals with GA-1 develop acute encephalopathic crises during the first 6 years of life leading to poor outcomes and limited response to therapy. (Kolker S, et al. (2006) Pediatr Res. 59:840-847).Lysine Catabolism.

[0216] Lysine is an essential amino acid necessary for protein synthesis. When lysine is not needed for protein synthesis, it proceeds to degradation via two catabolic pathways. Through saccharopine formation by s-deami nation, or pipecolic acid (PA) formation by a-deamination or transamination. Both pathways lead to formation of Al-piperideine-6-carboxylate (P6C) and its open form a-aminoadipic semialdehyde (AASA), which is then converted to a-aminoadipic acid (AAA) by the AASA dehydrogenase (ALDH7A1).Saccharopine Pathway.

[0217] The saccharopine pathway in liver mitochondria is the major pathway for degradation of L-lysine into acetyl-CoA. Lysine is first converted into saccharopine, which is subsequently oxidized to AASA. This ultimately leads to generation of acetyl-CoA that enters the tricarboxylic acid cycle. This pathway is key for irreversible catabolism of extra-cerebral lysine. While the liver is the major organ for lysine catabolism, the kidney is involved, as well as the brain to a lesser degree.The Pipecolate Pathway.

[0218] The pipecolate Pathway in brain peroxisomes is used for breakdown of the fraction of D- lysine that is catabolized in brain peroxisomes. There the a-amino group of lysine is converted to an a-keto function and further metabolized to P6C. During fetal development, the saccharopine pathway prevails in both fetal brain and extracerebral tissues, whereas after birth it maintains a pivotal role in extracerebral lysine catabolism through the liver (mainly), and kidney. Conversely, in adult life, the pipecolate pathway emerges to play the predominant role in brain lysine catabolism with only a minor role in extracerebral tissues.Clinical Disorders Associated with Lysine Degradation.

[0219] Hyperlysinemia Type 1 is an autosomal recessive condition due to an isolated mutation in the LKR subdomain of the AASS gene or mutations causing loss of function of both the LKR and saccharopine dehydrogenase (SDH) domains of the AASS gene. The condition is usually asymptomatic, with benign hyperlysinemia without neurological sequelae.

[0220] Hyperlysinemia Type 2 is also known as saccharopinuria and is due to a deficiency of the SDH domain of AAS. This is a rare recessive inborn error of lysine metabolism associated with mutation of the AASS-SDH subdomain (with preserved LKR function). Clinically, patients with this disorder show signs of developmental delay, cognitive impairment, and spastic diplegia; biochemically, the condition is characterized by both hyperlysinemia and saccharopinuria. Saccharopinuria is due to mutation of the AASS-SDH subdomain and is associated with mitochondrial toxicity.

[0221] Pyridoxine dependent epilepsy is an autosomal recessive disorder caused by mutations in ALDH7A1 an enzyme central to the lysine degradation pathways. Accumulation of high levels of the ALDH7A1 substrate AASA, and its cyclic form P6C is considered diagnostic markers in blood, urine, and CSF. Pipecolate elevations in body fluids can be observed but is not a reliable biomarker. Accumulation of AASA leads to depletion of pyridoxal phosphate, an essential coenzyme derived from vitamin B6. Patients with PDE present early in life with neonatal intractable seizures which are responsive to high doses of pyridoxine.Gene Editing Systems and Components.

[0222] Many gene editing system rely on at least two main components, which are a targeting component (e.g., a nucleic acid sequence that recognizes a target sequence, for example a guide molecule or antisense molecule) and a protein or enzyme (e.g., a nuclease or gene editor). However some gene editing systems such as zinc-finger nucleases, TALENS and meganucleases have only one protein component

[0223] In an aspect, a gene editing system disclosed herein (e.g., as encoded by a nucleic acid as described herein) may comprise a CRISPR gene editing system, optionally selected from a CRISPR-Cas or CRISPR-KRAB gene editing system. In an aspect, a gene editing system disclosed herein may comprise a prime editing system. In an aspect, a gene editing system disclosed herein may comprise a prime editing system. In an aspect, a gene editing system disclosed herein may comprise abase editing system. In an aspect, agene editing system disclosed herein may comprise a zinc-finger nuclease gene editing system. In an aspect, a gene editing system disclosed herein may comprise a TALEN gene editing system. In an aspect, a gene editing system disclosed herein may comprise an ARCUS nuclease gene editing system. In an aspect, a gene editing system disclosed herein may comprise a meganuclease gene editing system. In an aspect, a gene editing system disclosed herein may comprise a recombinase gene editing system, optionally selected from a Cre recombinase or FLP tyrosine recombinase gene editing system. In an aspect, a gene editing system disclosed herein may comprise a transposase gene editing system, optionally selected from a Sleeping Beauty (SB) transposase or ISY100 transposase gene editing system. In an aspect, a gene editing system disclosed herein may comprise an integrase gene editing system, optionally selected from a Streptomyces phage C31 integrase gene editing system. In an aspect, a gene editing system disclosed herein may comprise a homologous recombination gene editing system, optionally selected from small fragment homologous replacement editing system.

[0224] A CRISPR-Cas system relies on two main components for these purposes: a guide RNA (gRNA) and CRISPR-associated (Cas) nuclease. The guide RNA is a specific RNA sequence thatrecognizes the target DNA region of interest and directs the Cas nuclease there for editing. A gRNA may comprise two parts: crispr RNA (crRNA), a 17-20 nucleotide sequence complementary to the target DNA, and a tracr RNA, which serves as a binding scaffold for the Cas nuclease. The gRNA may comprise additional parts that contribute functionality to the gene editing sstem. The CRISPR-associated protein or enzyme is a non-specific endonuclease. It is directed to the specific DNA locus by a gRNA, where it makes a double-strand break.

[0225] CRISPR systems (e.g., CRISPR-Cas systems) are adaptive defense systems originally discovered in bacteria and archaea. CRISPR-Cas systems use RNA-guided nucleases termed CRISPR-associated or “Cas” endonucleases (e.g., Cas9 or Cpfl) to cleave foreign DNA. In a typical CRISPR-Cas system, an endonuclease is directed to a target nucleotide sequence (e.g., a site in the genome that is to be sequence-edited) by sequence-specific, non-coding “guide RNAs” that target single- or double-stranded DNA sequences. Three classes of CRISPR-CAS systems have been identified (e.g., classes I, II, and III). Six types of CRISPR-CAS systems have been identified (e.g., type I, II, III, IV, V, and VI). Seven subtypes of CRISPR-CAS systems have been identified (e.g., subtypes A, B, C, D, E, F, and U). Any class, type, or subytpe of CRISPR-Cas is contempletated for as an aspect of the invention. The class II CRISPR systems use a single Cas endonuclease (rather than multiple Cas proteins). One class II CRISPR system includes a type II Cas endonuclease such as Cas9, a CRISPR RNA (“crRNA”), and a trans-activating crRNA (“tracrRNA”). The crRNA contains a “guide RNA”, typically about 20-nucleotide RNA sequence that corresponds to a target DNA sequence. The crRNA also contains a region that binds to the tracrRNA to form a partially double-stranded structure which is cleaved by RNase III, resulting in a crRNA / tracrRNA hybrid. The crRNA / tracrRNA hybrid then directs the Cas9 endonuclease to recognize and cleave the target DNA sequence. The target DNA sequence must generally be adjacent to a “protospacer adjacent motif’ (“PAM”) that is specific for a given Cas endonuclease; however, PAM sequences appear throughout a given genome. For example, some CRISPR endonucleases identified from various prokaryotic species have unique PAM sequence requirements; examples of PAM sequences include 5’-NGG (Streptococcus pyogenes), 5’- NNAGAA (Streptococcus thermophilus CRISPR1), 5’-NGGNG (Streptococcus thermophilus CRISPR3), and 5’-NNNGATT (Neisseria meningiditis). In an aspect, a SpCas9 (3’NGG - PAM sequence) can comprise SpCas9 VQR (3’NGAN or 3’NGNG), SpCas9 EQR (3’NGAG), or SpCas9 VRER (3’NGCG).

[0226] The term “CRISPR or clustered regularly interspaced short palindromic repeat” is an ideal tool for correction of genetic abnormalities as the system can be designed to target genomic DNA directly. A CRISPR system involves two main components - a Cas9 enzyme and a guide (gRNA).The gRNA contains a targeting sequence for DNA binding and a scaffold sequence for Cas9 binding. Cas9 nuclease is often used to “knockout” target genes hence it can be applied for deletion or suppression of genes involved in metabolism. Similar to ASOs and siRNAs, CRISPR offers a great flexibility in targeting any gene of interest hence, potential CRISPR based therapies can be designed based on the genetic mutation in individual patients. An advantage of CRISPR is its ability to completely ablate the expression of disease genes which can only be suppressed partially by RNA interference methods with ASOs or siRNAs. Furthermore, multiple gRNAs can be employed to suppress or activate multiple genes simultaneously, hence increasing the treatment efficacy and reducing resistance potentially caused by new mutations in the target genes. In an aspect, a disclosed sgRNA can be directed at any functional domain of a target sequence.

[0227] The term “CRISPR-based endonucleases” may include RNA-guided endonucleases that comprise at least one nuclease domain and at least one domain that interacts with a guide RNA. As known to the art, a guide RNA directs the CRISPR-based endonucleases to a targeted site in a nucleic acid at which site the CRISPR-based endonucleases cleaves at least one strand of the targeted nucleic acid sequence. As the guide RNA provides the specificity for the targeted cleavage, the CRISPR-based endonuclease is universal and can be used with different guide RNAs to cleave different target nucleic acid sequences. CRISPR-based endonucleases are RNA-guided endonucleases derived from CRISPR / Cas systems. Bacteria and archaea have evolved an RNA- based adaptive immune system that uses CRISPR (clustered regularly interspersed short palindromic repeat) and Cas (CRISPR-associated) proteins to detect and destroy invading viruses or plasmids. CRISPR / Cas endonucleases can be programmed to introduce targeted site-specific double-strand breaks by providing target-specific synthetic guide RNAs (Jinek et al. (2012) Science. 337:816-821).

[0228] In an aspect, a disclosed CRISPR-based endonuclease can be derived from a CRISPR / Cas type I, type II, or type III system; or a subtype A, subtype B, subtype C, subtype D, subtype E, subtype F, or subtype U system. Non-limiting examples of suitable CRISPR / Cas proteins include Cascade, Cas3, Cas4, Cas5, Cas5e (or CasD), Cas6, Cas6e, Cas6f, Cas7, Cas8al, Cas8a2, Cas8b, Cas8c, Cas9, CaslO, CaslOd, Casl2a (Cpfl), Casl2b (C2cl), Casl2c (C2c3), Casl3a (C2c2), Casl3b(C2c4), Casl3c (C2c7), Casl3d, CasF, CasG, CasH, Csyl, Csy2, Csy3, Csel (or Cas A), Cse2 (or CasB), Cse3 (or CasE), Cse4 (or CasC), Cscl, Csc2, Csa5, Csn2, Csm2, Csm3, Csm4, Csm5, Csm6, Cmrl, Cmr3, Cmr4, Cmr5, Cmr6, Csbl, Csb2, Csb3, Csxl7, Csxl4, CsxlO, Csxl6, CsaX, Csx3, Cszl, Csxl5, Csfl, Csf2, Csf3, Csf4, Cul966, FnCas9, NmCas9, SaCas9, or SpCas9.

[0229] In an aspect, a disclosed CRISPR-based endonuclease can be derived from a type II CRISPR / Cas system. For example, in an aspect, a CRISPR-based endonuclease can be derivedfrom a Cas9 protein. The Cas9 protein can be from Streptococcus pyogenes, Streptococcus thermophilus, Streptococcus sp, Nocardiopsis dassonvillei, Streptomyces pristinaespiralis, Streptomyces viridochromogenes, Streptomyces viridochromogenes, Streptosporangium roseum, Streptosporangium roseum, Alicyclobacillus acidocaldarius, Bacillus pseudomycoides, Bacillus selenitireducens, Exiguobacterium sibiricum, Lactobacillus delbrueckii, Lactobacillus salivarius, Microscilla marina, Burkholderiales bacterium, Polaromonas naphthalenivorans, Polaromonas sp., Crocosphaera watsonii, Cyanothece sp., Microcystis aeruginosa, Synechococcus sp., Acetohalobium arabaticum, Ammonifex degensii, Caldicelulosiruptor becscii, Candidatus Desulforudis, Clostridium botulinum, Clostridium difficile, Finegoldia magna, Natranaerobius thermophilus, Pelotomaculum thermopropionicum, Acidithiobacillus caldus, Acidithiobacillus ferrooxidans, Allochromatium vinosum, Marinobacter sp., Nitrosococcus halophilus, Nitrosococcus watsoni, Pseudoalteromonas haloplanktis, Ktedonobacter racemifer, Methanohalobium evestigatum, Anabaena variabilis, Nodularia spumigena, Nostoc sp., Arthrospira maxima, Arthrospira platensis, Arthrospira sp., Lyngbya sp., Microcoleus chthonoplastes, Oscillatoria sp., Petrotoga mobilis, Thermosipho africanus, or Acaryochloris marina. In an aspect, the CRISPR-based nuclease can be derived from a Cas9 protein from Staphylococcus Aureus or Streptococcus pyogenes.

[0230] In general, CRISPR / Cas proteins can comprise at least one RNA recognition and / or RNA binding domain. RNA recognition and / or RNA binding domains can interact with the guide RNA such that the CRISPR / Cas protein is directed to a specific genomic or genomic sequence. CRISPR / Cas proteins can also comprise nuclease domains (i.e., DNase or RNase domains), DNA binding domains, helicase domains, protein-protein interaction domains, dimerization domains, as well as other domains.

[0231] The CRISPR-based endonuclease can be a wild type CRISPR / Cas protein, a modified CRISPR / Cas protein, or a fragment of a wild type or modified CRISPR / Cas protein. The CRISPR / Cas protein can be modified to increase nucleic acid binding affinity and / or specificity, alter an enzymatic activity, and / or change another property of the protein. For example, in an aspect, nuclease (i.e., DNase, RNase) domains of the CRISPR / Cas protein can be modified, deleted, or inactivated. A CRISPR / Cas protein can be truncated to remove domains that are not essential for the function of the protein. A CRISPR / Cas protein also can be truncated or modified to optimize the activity of the protein or an effector domain fused with a CRISPR / Cas protein.

[0232] In an aspect, a disclosed CRISPR-based endonuclease can be derived from a wild type Cas9 protein or fragment thereof. In an aspect, a disclosed CRISPR-based endonuclease can be derived from a modified Cas9 protein. For example, the amino acid sequence of a disclosed Cas9protein can be modified to alter one or more properties (e.g., nuclease activity, affinity, stability, etc.) of the protein. Alternatively, domains of the Cas9 protein not involved in RNA-guided cleavage can be eliminated from the protein such that the modified Cas9 protein is smaller than the wild type Cas9 protein.

[0233] As known to the art, once the target gene and Cas nuclease have been selected, the next step is to design the specific guide RNA sequence. Several software tools exist for designing an optimal guide with minimum off-target effects and maximum on-target efficiency. Commercially available software programs include, but are not limited to, Synthego Design Tool, Broad Institute GPP sgRNA Designer, CRISPOR, CHOPCHOP, Off-Spotter, Cas-OFFinder, CRISPR-Era, Benchling CRISPR Guide RNA Design tool, and E-CRISP. The skilled person can use these programs without undue experimentation.

[0234] The term CRISPR-mediated insertion of exon (CRISPIE) is a technique that allows for the nearly error-free insertion of coding sequences with high efficiency. Instead of targeting gene exons, CRISPIE targets introns and inserts a designer donor module, which includes an exon encoding the desired protein sequence and the surrounding intronic sequences. INDELs occurring at the insertion junction within the intronic region of DNA will be spliced out, resulting in very low error rates at the mRNA level (>98% correct). CRISPIE is flexible and broadly compatible with: (1) both N- and C-terminal labeling, (2) proteins with diverse structures and functions, including pre- and post-synaptic proteins and cytoskeletal proteins, (3) all major transfection methods, (4) FPs with diverse colors, and (5) multiple animal species. In part because introns offer ample editing sites to choose from, and because INDELs at the DNA level do not affect the success of editing, a high labeling efficiency (up to 43%) was achieved in cortical neurons of living mice. Importantly, CRISPIE-mediated DNA insertions are erasable. By flanking the donor module with additional designer CRISPR editing sites in the intronic region, the inserted DNA fragment can be erased at a later time. CRISPIE may allow for the routine labeling of proteins at endogenous levels and can be expanded to the insertion of other genetically encoded functional sequences to manipulate protein function. (See Zhong H, et al. (2021) eLife.10:e64911, which is incorporated by reference for its teaching of CRISPIE).• RNA Interference (RNAi) and Small Interfering RNA (siRNA).

[0235] RNA interference (RNAi) is a sequence-specific RNA degradation process that provides a relatively easy and direct way to knock down, or silence, theoretically any gene. In naturally occurring RNAi, a double-stranded RNA (dsRNA) is cleaved by an RNase I II / hel i case protein, Dicer, into small interfering RNA (siRNA) molecules, a dsRNA of 19-27 nucleotides (nt) with 2- nt overhangs at the 3' ends. These siRNAs are incorporated into a multi component-ribonucl easecalled RNA-induced silencing complex (RISC). One strand of siRNA remains associated with RISC and guides the complex toward a cognate RNA that has sequence complementary to the guider ss-siRNA in RISC. This siRNA-directed endonuclease digests the RNA, thereby inactivating it. Recent studies have revealed that chemically synthesized 21 -27-nt siRNAs exhibit RNAi effects in mammalian cells, and the thermodynamic stability of siRNA hybridization (at terminals or in the middle) plays a central role in determining the molecule's function. These and other characteristics of RISC, siRNA molecules, antisense oligonucleotides, and RNAi have been described.

[0236] Applications of RNAi in mammalian cells in the laboratory or, potentially, in therapeutic settings, use either chemically synthesized siRNAs or endogenously expressed molecules. The endogenous siRNA is first expressed as small hairpin RNAs (shRNAs) by an expression vector (plasmid or virus vector) and is then processed by Dicer into siRNAs.Compositions for Use in the Disclosed MethodsGCDH Nucleic Acid Molecules

[0237] Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase (GCDH). Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more functional domains of glutaryl-CoA dehydrogenase. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl- CoA dehydrogenase can be derived from a non-mammalian species or from a mammalian species. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can be that of a non-mammalian species or that of a mammalian species.

[0238] In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise the sequence set forth in SEQ ID NO:01 or in SEQ ID NO:02. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise the functional domains of the sequence set forth in SEQ ID NO:01 or in SEQ ID NO:02. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise a sequence having at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or greater than about 95% identity to the sequence set forth in SEQ ID NO: 01 or in SEQ ID NO:02.

[0239] In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise the sequence set forth in SEQ ID NO: 17 or in SEQ ID NO: 18. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise a sequence having at least about 50%, at least about 55%, at least about 60%, at least about 65%, at leastabout 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or greater than about 95% identity to the sequence set forth in SEQ ID NO: 17 or in SEQ ID NO: 18.

[0240] In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise the sequence of Gene ID 2639 or of Gene ID 270076. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise a sequence having at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or greater than about 95% identity to the sequence of Gene ID 2639 or the sequence of Gene ID 270076.

[0241] In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise the sequence of Gene ID 2639 or of Gene ID 270076 or one or more functional domains thereof. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise a sequence having at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or greater than about 95% identity to the sequence of Gene ID 2639 or the sequence of Gene ID 270076 or one or more functional domains thereof.

[0242] In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise the sequence set forth in NCBI Reference Sequence NG 009292 from bases 5001 to 13840 or the sequence set forth in NCBI Reference Sequence NC_000074.7 from bases 85629378 to 85613016. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise a sequence having at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or greater than about 95% identity to the sequence set forth in NCBI Reference Sequence NG_009292 from bases 5001 to 13840 or the sequence set forth in NCBI Reference Sequence NC_000074.7 from bases 85629378 to 85613016.

[0243] In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise one or more nucleotide substitutions, insertions, deletions, modifications, or any combination thereof. The techniques to introduce one or more substitutions, insertions, deletions, modifications, or any combination thereof are known to the skilled person.

[0244] The GCDH may be a variant GCDH sequence comprising one or more substitutions selected from K163R, K240R, K202R, OR K371R; the substitutions K163R and K240R; the substitutions K202R and K371R; or the substitutions selected K163R, K202R, K240R, andK371R. The GCDH may comprise or consist of the amino acid sequence set forth in any one of SEQ ID NOS:3, SEQ ID NO:200, SEQ ID NO:201, or SEQ ID NO:202. A nucleic acid sequence encoding the variant GCDH sequence may comprise the sequence set forth in SEQ ID NO: 197, SEQ ID NO: 198, or SEQ ID NO: 199, or SEQ ID NO: 196, or a variant thereof

[0245] In an aspect, a disclosed isolated nucleic acid molecule can be codon-optimized for expression in a mammalian cell or a human cell. In an aspect, a disclosed isolated nucleic acid molecule can be CpG-free or CpG-depleted. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can be codon-optimized for expression in a mammalian cell or a human cell. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can be CpG-free or CpG-depleted.

[0246] In an aspect, a disclosed isolated nucleic acid molecule can further comprise a nucleic acid sequence encoding a carb oxy -terminal fluorescent label and / or fluorescent tag, an amino-terminal fluorescent label and / or fluorescent tag, or a combination thereof.

[0247] In an aspect, a disclosed fluorescent label and / or fluorescent tag can comprise green fluorescent protein (EGFP), mEmerald, enhanced yellow fluorescent protein (EYFP), mApple, TdTomato, mCherry, miRFP670, any known fluorescent label or tag, or any combination thereof. Fluorophores and fluorescent labels are known in the art.

[0248] In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can restore the functionality of a missing, dysfunctional, and / or mutated glutaryl-CoA dehydrogenase in a cell or a subject. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase (i) can restore liver-specific modulation of lysine catabolism, (ii) restore one or more aspects of lysine homeostasis, (iii) can reduce or decrease the level of toxic catabolites in the liver and / or brain of a subject, (iv) can restore the metabolic flux from glutaryl- CoA to crotonyl-CoA, (v) can improve motor performance (e.g., strength, gait, balance, coordination, and combinations thereof) of a subject, (vi) can improve memory function of a subject, (vii) can reduce anxiety in a subject, (viii) can reduce and / or prevent neurological sequelae (e.g., neonatal macrocephaly, subdural hematomas, acute retinal hemorrhage, encephalopathy, striatal necrosis, and combinations thereof), (ix) can improve and / or reduce and / or eliminate vascular dysfunction in a subject, (x) can improve a subject’s quality of life, (xi) can increase and / or prolong a subject’s life span, (xii) can increase a subject’s survivability, or (xiii) any combination thereof.

[0249] In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase (i) can restore liver-specific modulation of lysine catabolism, (ii) restore one or more aspects of lysine homeostasis in the subject’s liver, (iii) can reduce or decrease the level of toxic catabolitesin the liver and / or brain of a subject, (iv) can restore the metabolic flux from glutaryl-CoA to crotonyl-CoA in the subject’s liver, or (v) any combination thereof.

[0250] In an aspect, a disclosed isolated nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can treat and / or prevent Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed isolated nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can improve and / or diminish and / or ameliorate one or more symptoms associated Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed isolated nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can improve and / or diminish and / or ameliorate one or more pathologies associated with Glutaric Aciduria Type-1 in a subject.

[0251] In an aspect, a disclosed isolated nucleic acid molecule can comprise the nucleic acid sequence for one or more regulatory elements. In an aspect, a disclosed regulatory element can comprise a promoter, an enhancer, an internal ribosomal entry sites (IRES), and other expression control elements (e.g., transcription termination signals, such as polyadenylation signals and poly- U sequences), or any combination thereof. Regulatory elements can include those that direct constitutive expression of a nucleotide sequence in many types of host cells and those that direct expression of the nucleotide sequence only in certain host cells (e.g., tissue-specific regulatory sequences such as brain cells or neurons).

[0252] In an aspect, a disclosed isolated nucleic acid molecule can comprise a promoter operably linked to a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase. In an aspect, a disclosed promoter can comprise a tissue specific promoter. In an aspect, a disclosed tissue specific promoter can comprise a neuron-specific promoter, a muscle-specific promoter, a liverspecific promoter, a skeletal muscle-specific promoter, and heart-specific promoter. In an aspect, a disclosed tissue-specific promoter can comprise a brain cell specific promoter. Brain cell specific promoter are known to the art and can comprise a synapsin 1 (Synl) promoter, a calmodulin / calcium dependent kinase II (CAMKII) promoter, a glial fibrillary acidic protein (GFAP) promoter, a Rgs5 promoter, a S100 beta promoter, a neuron-specific enolase (NSE) promoter, a Thyl promoter, or any combination thereof. In an aspect, a disclosed promoter can comprise a promoter / enhancer.

[0253] In an aspect, a disclosed promoter can comprise a liver-specific promoter. Liver specific promoters are known to the art. In an aspect, a disclosed liver promoter can comprise the sequence set forth in SEQ ID NO:26. In an aspect, a disclosed promoter can comprise a type III RNA polymerase III promoter. Type III RNA polymerase III promoters are known to the art. In an aspect, a disclosed type III RNA polymerase III promoter can comprise a U6 promoter. In an aspect, a disclosed U6 promoter can comprise the sequence set forth in SEQ ID NO:27.

[0254] In an aspect, a disclosed isolated nucleic acid molecule can comprise one or more OLLAS tag. In an aspect, a disclosed OLLAS tag can comprise the sequence set forth in SEQ ID NO:31.

[0255] In an aspect, a disclosed isolated nucleic acid molecule can comprise a nuclear localization signal (NLS). In an aspect, a disclosed NLS can comprise the sequence set forth in SEQ ID NO:30 or SEQ ID NO:32. NLS are known to the skilled person in the art. In an aspect, a disclosed isolated nucleic acid molecule can comprise one or more inverted terminal repeats (ITRs). In an aspect, the one or more disclosed ITRs can be derived from AAV2 or AAV9. In an aspect, a disclosed ITR can comprise the sequence set forth in any one of SEQ ID NO:22 or SEQ ID NO:23. In an aspect, a disclosed isolated nucleic acid molecule can comprise a polyA sequence. In an aspect, a disclosed polyA sequence can comprise the sequence set forth in SEQ ID NO:24 or SEQ ID NO:25. In an aspect, a disclosed isolated nucleic acid molecule can comprise one or more hemagglutinin (HA) tags. In an aspect, a disclosed HA tag can comprise the sequence set forth in SEQ ID NO:29. In an aspect, a disclosed isolated nucleic acid molecule can comprise a TracrRNA sequence. In an aspect, a TracrRNA sequence can comprise the sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.

[0256] Disclosed herein is an isolated nucleic acid sequence comprising the sequence set forth in SEQ ID NO: 19 or a fragment thereof. Disclosed herein is an isolated nucleic acid sequence comprising a sequence having at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or more to the sequence set forth in SEQ ID NO: 19 or a fragment thereof.

[0257] In an aspect, a disclosed isolated nucleic acid molecule encoding a disclosed isolated nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can be packaged in a viral vector (as discussed infra) or a non-viral vector. In an aspect, a disclosed non-viral vector can be a polymer-based vector, a peptide-based vector, a lipid nanoparticle, a solid lipid nanoparticle, or a cationic lipid-based vector. In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can be packaged in a recombinant AAV viral vector (e.g., AAV8 or AAVcc47).

[0258] In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase can be derived from a nonmammalian species or from a mammalian species. In an aspect, a disclosed encoded glutaryl- CoA dehydrogenase can be that of a non-mammalian species or that of a mammalian species.

[0259] In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase can comprise the sequence set forth in SEQ ID NO:03 or in SEQ ID NO:04. In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase can comprise a sequence having about 50%, about 55%, about 60%, about 65%,about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, or more identity to the sequence set forth in SEQ ID NO:03 or in SEQ ID NO:04.

[0260] In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase can comprise the sequence of NCBI Reference Sequence NP 000150.1 or the sequence of NCBI Reference Sequence XP_036009971.1. In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase can comprise one or more amino acid substitutions, insertions, deletions, modifications, or any combination thereof. The techniques to introduce one or more substitutions, insertions, deletions, modifications, or any combination thereof are known to the skilled person.

[0261] In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase (GCDH) can be a variant GCDH comprising one or more amino acid substitutions (e.g., relative to a wild-type GCDH sequence). The wild-type GCDH may be a human sequence. A variant GCDH may comprise one or more substitutions at positions relative to SEQ ID NO:3. A variant GCDH may be a fragment of full-length GCDH, which comprises at least one functional domain. In an aspect, a variant GCDH may comprise one or more substitutions selected from K163R, K240R, K202R, or K371R, wherein amino acid numbering is according to SEQ ID NO:3. In an aspect, a variant GCDH may comprise one or more substitutions selected from K163R, K240R, K202R, or K371R, wherein amino acid numbering is according to SEQ ID NO:3. A variant GCDH may comprise the substitutions K163R and K240R, wherein amino acid numbering is according to SEQ ID NO:3. A variant GCDH may comprise the substitutions K202R and K371R, wherein amino acid numbering is according to SEQ ID NO:3. A variant GCDH may comprise the substitutions K163R, K202R, K240R, and K371R, wherein amino acid numbering is according to SEQ ID NO: 3. In an aspect, a variant GCDH comprises the amino acid sequence set forth in SEQ ID NO:200, SEQ ID NO:201, or SEQ ID NO:202, or a fragment thereof.

[0262] In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise the sequence set forth in SEQ ID NO: 197, SEQ ID NO: 198, or SEQ ID NO: 199. In an aspect, a disclosed nucleic acid sequence encoding a glutaryl-CoA dehydrogenase can comprise a sequence having about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, or more identity to the sequence set forth SEQ ID NO: 197, SEQ ID NO: 198, or SEQ ID NO: 199.

[0263] In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase (i) can restore liver-specific modulation of lysine catabolism, (ii) restore one or more aspects of lysine homeostasis, (iii) can reduce or decrease the level of toxic catabolites in the liver and / or brain of a subject, (iv) can restore the metabolic flux from glutaryl-CoA to crotonyl-CoA, (v) can improve motor performance (e.g., strength, gait, balance, coordination, and combinations thereof) of a subject,(vi) can improve memory function of a subject, (vii) can reduce anxiety in a subject, (viii) can reduce and / or prevent neurological sequelae (e.g., neonatal macrocephaly, subdural hematomas, acute retinal hemorrhage, encephalopathy, striatal necrosis, and combinations thereof), (ix) can improve and / or reduce and / or eliminate vascular dysfunction in a subject, (x) can improve a subject’s quality of life, (xi) can increase and / or prolong a subject’s life span, (xii) can increase a subject’s survivability, or (xiii) any combination thereof.

[0264] In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase can treat and / or prevent Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase can improve and / or diminish and / or ameliorate one or more symptoms associated Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed encoded glutaryl-CoA dehydrogenase encoding a glutaryl-CoA dehydrogenase can improve and / or diminish and / or ameliorate one or more pathologies associated with Glutaric Aciduria Type-1 in a subject.

[0265] Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding green fluorescent protein (GFP).

[0266] Disclosed herein is an expression cassette comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase operably linked a promoter. Disclosed herein is an expression cassette comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO:01 or in SEQ ID NO:02, and is operably linked a promoter.

[0267] Disclosed herein is an expression cassette comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO: 17, SEQ ID NO: 18, SEQ ID NO: 197, SEQ ID NO: 198, or SEQ ID NO: 199, and is operably linked a promoter.CRISPR Based Nucleic Acid Molecules

[0268] Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system. The gene editing system may be a CRISPR-based system, such as that from a bacteria. A CRISPR gene editing system may be a CRISPR-Cas system, such as a Class I or Class II CRISPR-Cas system. A CRISPR gene editing system may be a Type I, Type II, Type III, Type IV, Type V, or a Type VI CRISPR-Cas system. A CRISPR gene editing system may be a Subtype A, Subtype B, Subtype C, Subtype D, Subtype E, Subtype F, or Subtype U CRISPR-Cas system. A CRISPR gene editing system may a Cascade, SpCas9, SaCas9, FnCas9, NmCas9, Casl2a (Cpfl), Casl2b (C2cl), Casl2c (C2c3), Casl3a (C2c2), Casl3b(C2c4), Casl3c (C2c7), or Casl3d CRISPR-Cas system. It may or may not haveCRISPR effector molecules. For example, the gene editing system may lack an sgRNA or transcriptional repression domains such as KRAB.

[0269] Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in a target gene of interest. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in a target in the aminoadipatesemialdehyde synthase gene.

[0270] Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the a-aminoadipic semialdehyde gene. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the a- aminoadipic semialdehyde gene. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the kynurenine aminotransferase 2 gene. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the dehydrogenase El and transketolase domain-containing protein 1 gene. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the L-lysine alpha-oxidase gene. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the ketimine reductase mu- crystallin protein gene. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the peroxisomal sarcosine oxidase gene. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system,wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the pyrroline-5 -carboxylate reductase gene.

[0271] In an aspect, a disclosed element of a gene editing system can be a CRISPR-based endonuclease. In an aspect, a disclosed endonuclease can be Cas9. In an aspect, a disclosed Cas9 can be that of Staphylococcus aureus or Streptococcus pyogenes. In an aspect, a disclosed Cas9 can be derived from Staphylococcus aureus or Streptococcus pyogenes. In an aspect, a disclosed Cas9 can be that of or derived from a species other than S. aureus or S. Pyogenes. In an aspect, a disclosed Cas9 can be any known Cas9 (see, e.g., those discussed supra). In an aspect, a disclosedCas9 can be any Cas9 analog. Cas9 is well known to the art and the skilled person can identify and employ a Cas9 from one or more species without undue experimentation.

[0272] In an aspect, a disclosed Cas9 can have a sequence having at least 75%, at least 80%, at least 85%, at least 90%, or at least 95% identity to the set forth in SEQ ID NO:28 or a fragment thereof. In an aspect, a disclosed Cas9 can comprise one or more amino acid substitutions, insertions, deletions, modifications, or any combination thereof. The techniques to introduce one or more substitutions, insertions, deletions, modifications, or any combination thereof into a sequence encoding Cas9 are known to the skilled person.

[0273] In an aspect, a disclosed element of a gene editing system can comprise a sgRNA. The art is familiar with sgRNAs and the skilled person can identify and employ a sgRNA without undue experimentation. In an aspect, a disclosed sgRNA can be directed at any functional domain of a target sequence. In an aspect, a disclosed sgRNA can be directed at a target sequence in the glutaryl-CoA dehydrogenase gene. In an aspect, a disclosed sgRNA can comprise an sgRNA directed at a target sequence in a disclosed mouse glutaryl-CoA dehydrogenase (mGcdh) gene or at a disclosed human glutaryl-CoA dehydrogenase gene. In an aspect, a disclosed mGcdh gene can comprise the sequence set forth in SEQ ID NO: 02. In an aspect, a disclosed hGCDH gene can comprise the sequence set forth in SEQ ID NO:01. In an aspect, a disclosed hGCDH gene can comprise the sequence set forth in SEQ ID NO: 17. In an aspect, a disclosed hGCDH gene can comprise the sequence set forth in SEQ ID NO: 18. In an aspect, a disclosed sgRNA can comprise an sgRNA directed at a target sequence in exon 3 of mouse glutaryl-CoA dehydrogenase(mGcdh) gene. In an aspect, a disclosed sgRNA directed at a target sequence in exon 3 of mGcdh gene can comprise the sequence set forth in SEQ ID NO: 05. In an aspect, a disclosed sgRNA can comprise an sgRNA directed at a target sequence in exon 5 of mouse glutaryl-CoA dehydrogenase (mGcdh) gene. In an aspect, a disclosed sgRNA directed at a target sequence in exon 5 of mGcdh can comprise the sequence set forth in SEQ ID NO:06.

[0274] In an aspect, a disclosed sgRNA can be directed at aminoadipate-semialdehyde synthase gene. For example, in an aspect, a disclosed aminoadipate-semialdehyde synthase can comprise a human or a mouse aminoadipate-semialdehyde synthase. In an aspect, a disclosed sgRNA can comprise an sgRNA directed at a target sequence in exon 6 of mouse aminoadipate-semialdehyde synthase (mAass) gene. In an aspect, a disclosed sgRNA directed at a target sequence in exon 6 of mAass gene can comprise the sequence set forth in SEQ ID NO:07 or SEQ ID NO:08. In an aspect, a disclosed sgRNA can comprise an sgRNA directed at a target sequence in exon 7 of mouse aminoadipate-semialdehyde synthase (mAass) gene. In an aspect, a disclosed sgRNA directed at a target sequence in exon 7 of mAass gene can comprise the sequence set forth in SEQ ID NO:09 or SEQ ID NO: 10. In an aspect, a disclosed sgRNA can be directed at any functional domain of a target sequence. An sgRNA targeting AASS may target a similar region of AASS as the target sites as described herein for a silencing oligonucleotide, e.g., in the same UTR, exon, or portion there as described herein, if that position also satisfies sgRNA structural requirements (e.g., PAM site proximity).

[0275] In an aspect, a disclosed nucleic acid sequence encoding an aminoadipate-semialdehyde synthase can be derived from a non-mammalian species or from a mammalian species. In an aspect, a disclosed nucleic acid sequence encoding an aminoadipate-semialdehyde synthase can be that of a non-mammalian species or that of a mammalian species.

[0276] In an aspect, a disclosed nucleic acid sequence encoding an aminoadipate-semialdehyde synthase can comprise the sequence set forth in SEQ ID NO: 01 or in SEQ ID NO: 02. In an aspect, a disclosed nucleic acid sequence encoding an aminoadipate-semialdehyde synthase can comprise a sequence having about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, or more identity to the sequence set forth in SEQ ID NO: 01 or in SEQ ID NO: 02.

[0277] In an aspect, a disclosed nucleic acid sequence encoding an aminoadipate-semialdehyde synthase can comprise the sequence set forth in SEQ ID NO: 17 or in SEQ ID NO: 18. In an aspect, a disclosed nucleic acid sequence encoding an aminoadipate-semialdehyde synthase can comprise a sequence having about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, or more identity to the sequence set forth in SEQ ID NO: 17 or in SEQ ID NO: 18.

[0278] In an aspect, a disclosed encoded aminoadipate-semialdehyde synthase can comprise the sequence of NCBI Reference Sequence NP 000150.1 or the sequence of NCBI Reference Sequence XP_036009971.1.

[0279] In an aspect, a disclosed encoded aminoadipate-semialdehyde synthase can comprise one or more amino acid substitutions, insertions, deletions, modifications, or any combination thereof. The techniques to introduce one or more substitutions, insertions, deletions, modifications, or any combination thereof are known to the skilled person.

[0280] In an aspect, a disclosed element of a gene editing system can comprise a TracrRNA. In an aspect, a TracrRNA can be directed a target gene of interest. For example, a TracrRNA can be directed at at a target sequence in human or mouse aminoadipate-semialdehyde synthase gene or at a human or mouse glutaryl-CoA dehydrogenase gene. In an aspect, a disclosed TracrRNA can be directed at a target sequence in exon 6 of Aaas or exon 7 of Aass. In an aspect, a disclosed TracrRNA can comprise the sequence set forth in SEQ ID NO: 11 or in SEQ ID NO: 12.

[0281] In an aspect, a disclosed an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise a nucleic acid sequence encoding two ITRs, a first promoter, a sgRNA, a second promoter, and a Cas9. In an aspect, a disclosed first promoter is operably linked to a disclosed sgRNA. In an aspect, a disclosed second promoter is operably linked to a disclosed Cas9.

[0282] In an aspect, a disclosed an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise a nucleic acid sequence encoding two ITRs, a promoter, a sgRNA, a TracrRNA, a second promoter, and a Cas9. In an aspect, a disclosed promoter is operably linked to a disclosed sgRNA. In an aspect, a disclosed promoter is operably linked to a disclosed Cas9.

[0283] In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise one or more nucleotide substitutions, insertions, deletions, modifications, or any combination thereof. The techniques to introduce one or more substitutions, insertions, deletions, modifications, or any combination thereof are known to the skilled person. In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can be codon-optimized for expression in a mammalian cell or a human cell. In an aspect, a disclosed isolated nucleic acid molecule can be CpG-free or CpG-depleted.

[0284] In an aspect, a disclosed isolated nucleic acid molecule can further comprise a nucleic acid sequence encoding a carboxy -terminal fluorescent label and / or fluorescent tag, an amino-terminal fluorescent label and / or fluorescent tag, or a combination thereof. In an aspect, a disclosed fluorescent label and / or fluorescent tag can comprise green fluorescent protein (EGFP), mEmerald, enhanced yellow fluorescent protein (EYFP), mApple, TdTomato, mCherry,miRFP670, any known fluorescent label or tag, or any combination thereof. Fluorophores and fluorescent labels are known in the art.

[0285] In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system (i) can restore liver-specific modulation of lysine catabolism, (ii) restore one or more aspects of lysine homeostasis, (iii) can reduce or decrease the level of toxic catabolites in the liver and / or brain of a subject, (iv) can restore the metabolic flux from glutaryl-CoA to crotonyl-CoA, (v) can improve motor performance (e.g., strength, gait, balance, coordination, and combinations thereof) of a subject, (vi) can improve memory function of a subject, (vii) can reduce anxiety in a subject, (viii) can reduce and / or prevent neurological sequelae (e.g., neonatal macrocephaly, subdural hematomas, acute retinal hemorrhage, encephalopathy, striatal necrosis, and combinations thereof), (ix) can improve and / or reduce and / or eliminate vascular dysfunction in a subject, (x) can improve a subject’s quality of life, (xi) can increase and / or prolong a subject’s life span, (xii) can increase a subject’s survivability, or (xiii) any combination thereof.

[0286] In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can treat and / or prevent Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can improve and / or diminish and / or ameliorate one or more symptoms associated Glutaric Aciduria Type-1 in a subject.

[0287] In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise the nucleic acid sequence for one or more regulatory elements. In an aspect, a disclosed regulatory element can comprise a promoter, an enhancer, an internal ribosomal entry sites (IRES), and other expression control elements (e.g., transcription termination signals, such as polyadenylation signals and poly-U sequences), or any combination thereof. Regulatory elements can include those that direct constitutive expression of a nucleotide sequence in many types of host cells and those that direct expression of the nucleotide sequence only in certain host cells (e.g., tissue-specific regulatory sequences such as brain cells or neurons).

[0288] In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can improve and / or diminish and / or ameliorate one or more pathologies associated with Glutaric Aciduria Type-1 in a subject.

[0289] In an aspect, a first disclosed promoter can comprise a type III RNA polymerase III promoter. Type III RNA polymerase III promoters are known to the art. In an aspect, a disclosed type III RNA polymerase III promoter can comprise a U6 promoter. In an aspect, a disclosed U6promoter can comprise the sequence set forth in SEQ ID NO:27. In an aspect, a first disclosed promoter can comprise the sequence set forth in SEQ ID NO:27.

[0290] In an aspect, a first disclosed promoter (e.g., a disclosed U6 promoter) can be operably linked to a disclosed sgRNA (such as, for example, a disclosed sgRNA for mouse or human aminoadipate-semialdehyde synthase). In an aspect, a second disclosed promoter can comprise a liver-specific promoter. Liver specific promoters are known to the art. In an aspect, a disclosed liver promoter can comprise the sequence set forth in SEQ ID NO:26. In an aspect, a second disclosed promoter (e.g., a liver-specific promoter) can be operably linked to a disclosed Cas9 (such as, for example, a disclosed SaCas9).

[0291] In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise one or more inverted terminal repeats (ITRs). In an aspect, the one or more disclosed ITRs can be derived from AAV2 or AAV9. In an aspect, a disclosed ITR can comprise the sequence set forth in any one of SEQ ID NO:22 or SEQ ID NO:23. In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise a first 5’ ITR and a second 3 ’ ITR.

[0292] In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise one or more OLLAS tag. In an aspect, a disclosed OLLAS tag can comprise the sequence set forth in SEQ ID NO:31.

[0293] In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise a nuclear localization signal (NLS). In an aspect, a disclosed NLS can comprise the sequence set forth in SEQ ID NO:30 or SEQ ID NO:32. NLS are known to the skilled person in the art. In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise a polyA sequence. In an aspect, a disclosed polyA sequence can comprise the sequence set forth in SEQ ID NO:24 or SEQ ID NO:25. In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can comprise one or more hemagglutinin (HA) tags. In an aspect, a disclosed HA tag can comprise the sequence set forth in SEQ ID NO:29.

[0294] In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system can be packaged in a viral vector (as discussed infra) or a non-viral vector. In an aspect, a disclosed non-viral vector can be a polymer- based vector, a peptide-based vector, a lipid nanoparticle, a solid lipid nanoparticle, or a cationic lipid-based vector. In an aspect, a disclosed isolated nucleic acid molecule comprising a nucleicacid sequence encoding one or more element of a gene editing system can be packaged in a recombinant AAV viral vector (e.g., AAV8 or AAVcc47).

[0295] Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO:20 or SEQ ID NO:21, or a fragment thereof. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the nucleic acid sequence comprises a sequence having at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or more to the sequence set forth in SEQ ID NO:20 or SEQ ID NO:21, or a fragment thereof.

[0296] Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the nucleic acid molecule is represented by FIG. 10C. Disclosed herein is an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the nucleic acid molecule is represented by FIG. 10D.

[0297] Disclosed herein is an expression cassette comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system operably linked to one or more promoters.

[0298] Disclosed herein is an expression cassette comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in a target gene of interest, wherein the endonuclease is operably linked a promoter and wherein the sgRNA is operably linked to a promoter.

[0299] Disclosed herein is an expression cassette comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in aminoadipate-semialdehyde synthase gene, wherein the endonuclease is operably linked a promoter and wherein the sgRNA is operably linked to a promoter.Silencing Oligonucleotides

[0300] In an aspect, a nucleic acid as disclosed herein may be silencing oligonucleotide, which may hybridize to a targeted gene (e.g., its mRNA) at a target site, and silences the gene and / or inhibits protein expression or activity. A silencing oligonucleotide may be single stranded, or double stranded. The silencing oligonucleotide may be an siRNA, antisense oligonucleotide, ribozymes, miRNA, shRNA, ssRNA, dsRNA, piRNA, or a 3'UTR of mRNA. A silencingoligonucleotide can target any part of a gene, to silence the gene and / or inhibit expression or activity.

[0301] In an aspect, a silencing oligonucleotide can target any part of the aminoadipatesemialdehyde synthase gene, a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene.

[0302] Disclosed herein is a silencing oligonucleotide that can target any part of the aminoadipatesemialdehyde synthase gene. Disclosed herein is a silencing oligonucleotide that can target any part of the aminoadipate-semialdehyde synthase gene, the sequence of which is set forth in SEQ ID NO:36, or is accessible at the NBCBI Reference NM 005763.4 entitled Homo sapiens aminoadipate-semialdehyde synthase (AASS), mRNA; nuclear gene for mitochondrial product. Nucleotide position numbering of AASS for target sequence identification, as described herein, may be based upon the SEQ ID NO:36, SEQ ID NO:206, or sequence of which is accessible at the NBCBI Reference that a skilled artisan would recognize as for AASS (e.g., human AASS at NCBI Ref.: NM_005763.4). Disclosed herein is is a silencing oligonucleotide that can target any part of an aminoadipate-semialdehyde synthase gene comprising the sequence set forth in SEQ ID NO:38 or SEQ ID NO:39.

[0303] Disclosed herein is a silencing oligonucleotide that can target any part of an the aminoadipate-semialdehyde synthase sequence comprising the sequence set forth in SEQ ID NO:35 or SEQ ID NO:36. Disclosed herein is a silencing oligonucleotide that can target any part of the aminoadipate-semialdehyde synthase sequence comprising the sequence set forth in SEQ ID NO:38 or SEQ ID NO:39.

[0304] In an aspect, a targeted part of an AASS sequence can comprise about 15 to about 35 base pairs. In an aspect, a targeted part of an AASS sequence can comprise about 20 to about 30 base pairs. In an aspect, a targeted part of an AASS sequence can comprise about 20 to about 24 base pairs. In an aspect, a targeted part of an AASS sequence can comprise about 21 to about 22 base pairs. In an aspect, a disclosed silencing oligonucleotide effects a complete silencing of the aminoadipate-semialdehyde synthase gene.

[0305] In an aspect, a disclosed silencing oligonucleotide can effect the partial silencing of the a- aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5- carboxylate reductase gene. In an aspect, a disclosed silencing oligonucleotide can effect thecomplete silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene. In an aspect, a disclosed silencing oligonucleotide can effect the partial silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5 -carboxylate reductase gene in a subject’s liver. In an aspect, a disclosed silencing oligonucleotide can effect the complete silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene in a subject’s liver.

[0306] In an aspect, a targeted part of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene can comprise about 15 to about 35 base pairs. In an aspect, a targeted part of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domaincontaining protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene can comprise about 20 to about 30 base pairs. In an aspect, a targeted part of the a- aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5- carboxylate reductase gene can comprise about 20 to about 24 base pairs. In an aspect, a targeted part of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene can comprise about 21 to about 22 base pairs.

[0307] In an aspect, a disclosed silencing oligonucleotide can effect the partial silencing of the aminoadipate-semialdehyde synthase gene. In an aspect, a disclosed silencing oligonucleotide can effect the complete silencing of the aminoadipate-semialdehyde synthase gene. In an aspect, a disclosed silencing oligonucleotide can effect the partial silencing of the aminoadipate-semialdehyde synthase gene in a subject’s liver. In an aspect, a disclosed silencing oligonucleotide can effect the complete silencing of the aminoadipate-semialdehyde synthase gene in a subject’s liver.

[0308] A silencing oligonucleotide that targets the aminoadipate-semialdehyde synthase gene can target a target site or sequence within the aminoadipate-semialdehyde synthase gene. The target site or target squence may be within an exon of the aminoadipate-semialdehyde synthase gene, or between two exons (e.g., at an overlap region). A overlap region may be a portion of the the aminoadipate-semialdehyde synthase gene that a silencing oligonucleotide hybridizes with (e.g., targets), where a portion of the hybridization occurs at a first region, and another portion of the hybridization occurs at a second region. Therefore, a silencing oligonucleotide may target and hybridize two regions (e.g., a first region, and and a second region) simultaneously, concurrently, or sequentially. The first and second regions may be adjacent to each other. The silencing oligonucleotide may target a target sequence within the AASS (e.g., AASS gene or AASS mRNA) with the 5’UTR, within exon 1, within exon 2, within exon 3, within exon 4, within exon 5, within exon 6, within exon 7, within exon 8, within exon 9, within exon 10, within exon 11, within exon12, within exon 13, within exon 14, within exon 15, within exon 16, within exon 17, within exon18, within exon 19, within exon 20, within exon 21, within exon 22, within exon 23, within exon24, within exon 24, within exon 25, within the 3’UTR, or within a portion of any one of exons 1-25 or the 5’UTR or 3 ’UTR of the AASS (e.g., AASS gene or AASS mRNA).

[0309] In an aspect, a silencing oligonucleotide may target an overlap region of the AASS (e.g., AASS gene or AASS mRNA) comprising a portion of a first region of AASS and a portion of a second region of AASS. The portion of the first region of AASS may be within the 5’UTR of AASS and the portion of the second region of AASS may be within exon 1 of AASS. The portion of the first region of AASS may be within exon 1 of AASS and the portion of the second region of AASS may be within exon 2 of AASS. The portion of the first region of AASS may be within exon 2 of AASS and the portion of the second region of AASS may be within exon 3 of AASS. The portion of the first region of AASS may be within exon 3 of AASS and the portion of the second region of AASS may be within exon 4 of AASS. The portion of the first region of AASS may be within exon 4 of AASS and the portion of the second region of AASS may be within exon 5 of AASS. The portion of the first region of AASS may be within exon 5 of AASS and the portion of the second region of AASS may be within exon 6 of AASS. The portion of the first region of AASS may be within exon 6 of AASS and the portion of the second region of AASS may be within exon 7 of AAS. The portion of the first region of AASS may be within exon 7 of AASS and the portion of the second region of AASS may be within exon 8 of AASS. The portionof the first region of AASS may be within exon 8 of AASS and the portion of the second region of AASS may be within exon 9 of AASS. The portion of the first region of AASS may be within exon 9 of AASS and the portion of the second region of AASS may be within exon 10 of AASS. The portion of the first region of AASS may be within exon 10 of AASS and the portion of the second region of AASS may be within exon 11 of AASS. The portion of the first region of AASS may be within exon 11 of AASS and the portion of the second region of AASS may be within exon 12 of AASS. The portion of the first region of AASS may be within exon 12 of AASS and the portion of the second region of AASS may be within exon 13 of AASS. The portion of the first region of AASS may be within exon 13 of AASS and the portion of the second region of AASS may be within exon 14 of AASS. The portion of the first region of AASS may be within exon 14 of AASS and the portion of the second region of AASS may be within exon 15 of AASS. The portion of the first region of AASS may be within exon 15 of AASS and the portion of the second region of AASS may be within exon 16 of AASS. The portion of the first region of AASS may be within exon 16 of AASS and the portion of the second region of AASS may be within exon 17 of AASS. The portion of the first region of AASS may be within exon 17 of AASS and the portion of the second region of AASS may be within exon 18 of AASS. The portion of the first region of AASS may be within exon 18 of AASS and the portion of the second region of AASS may be within exon 19 of AASS. The portion of the first region of AASS may be within exon 19 of AASS and the portion of the second region of AASS may be within exon 20 of AASS. The portion of the first region of AASS may be within exon 20 of AASS and the portion of the second region of AASS may be within exon 21 of AASS. The portion of the first region of AASS may be within exon 21 of AASS and the portion of the second region of AASS may be within exon 22 of AASS. The portion of the first region of AASS may be within exon 22 of AASS and the portion of the second region of AASS may be within exon 23 of AASS. The portion of the first region of AASS may be within exon 23 of AASS and the portion of the second region of AASS may be within exon 24 of AASS. The portion of the first region of AASS may be within exon 24 of AASS and the portion of the second region of AASS may be within exon 25 of AASS. The portion of the first region of AASS may be within exon 25 of AASS and the portion of the second region of AASS may be the 3’UTR of AASS.

[0310] At an overlap region, the hybridization location of the silencing oligonucleotide may be distributed between the first and second regions of the overlap (e.g., a ratio of overlap). Different percentages of the length of the oligonucleotide may be hybridized with the first region and second exon. At an overlap region, about 90% of the number of nucleotides of the overlap region may be within the first region and about 10% of the number of nucleotides of the overlap region maywithin the second region. At an overlap region, about 80% of the number of nucleotides of the overlap region may be within the first region and about 20% of the number of nucleotides of the overlap region may be within the second region. At an overlap region, about 70% of the number of nucleotides of the overlap region may be within the first region and about 30% of the number of nucleotides of the overlap region may be within the second region. At an overlap region, about 60% of the number of nucleotides of the overlap region may be within the first region and about 40% of the number of nucleotides of the overlap region may be within the second region. At an overlap region, about 50% of the number of nucleotides of the overlap region may be within the first region and about 50% of the number of nucleotides of the overlap region may be within the second region. At an overlap region, about 40% of the number of nucleotides of the overlap region may be within the first region and about 60% of the number of nucleotides of the overlap region may be within the second region. At an overlap region, about 30% of the number of nucleotides of the overlap region may be within the first region and about 70% of the number of nucleotides of the overlap region may be within the second region. At an overlap region, At an overlap region, about 20% of the number of nucleotides of the overlap region may be within the first region and about 80% of the number of nucleotides of the overlap region may be within the second region. At an overlap region, about 10% of the number of nucleotides of the overlap region may be within the first region and about 90% of the number of nucleotides of the overlap region may be within the second region.

[0311] In an aspect, a silencing oligonucleotide may target a target sequence comprising one or more nucleotide positions of an exon of an AASS gene or mRNA as disclosed herein. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 127-142 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 256-271 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 355-370 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 433-448 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 486-501 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 572-587 of thesequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 661-676 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 777-792 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 858-873 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1045-1060 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1329-1344 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1345-1360 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1378-1393 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1490-1505of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1672-1687 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1832-1847 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1944-1959 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 2042-2057 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 2072-2087 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 2220-2235 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 2384-2399 of the sequence set forth in SEQ IDNO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 2588-2603 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 2714-2729 of the sequence set forth in SEQ ID NO:36.

[0312] A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 615-635 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 726-746 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 742-760 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 742-762 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 843-863 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 911-929 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 911-931 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1010-1030 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1154-1172 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1154-1174 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1292-1310 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1292-1312 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1355-1375 of thesequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1358-1376 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1358-1378 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1364-1384 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1476-1496 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1521-1541 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1531-1551 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 1613-1633 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 2222-2242 of the sequence set forth in SEQ ID NO:36. A silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions 2438-2458 of the sequence set forth in SEQ ID NO:36. In an aspect, the silencing oligonucleotide may a single stranded antisense oligonucleotide. In an aspect, the silencing oligonucleotide may be an double stranded siRNA.

[0313] In an aspect, a silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA corresponding to positions within a window of about 20 nucleotides or less, in the 3’ direction from a starting position selected from position 95, 103, 104, 105, 292, 489, 533, 534, 726, 739, 740, 893, 1059, 1181, 1447, 1448, 1449, 2197, 2211, 2468, 2492, 2498, 2804, 2805, 2526, 3061, 3929, 4002, 4003, 4004, 5278, 5283, 5411, 5416, 5417, 5605, 5678, or 5679 of an AASS gene or AASS mRNA, e.g., having the sequence set forth in SEQ ID NO:36. From said starting positions (e.g., 95, 103, 104, 105, 292, 489, 533, 534, 726, 739, 740, 893, 1059, 1181, 1447, 1448, 1449, 2197, 2211, 2468, 2492, 2498, 2804, 2805, 2526, 3061, 3929, 4002, 4003, 4004, 5278, 5283, 5411, 5416, 5417, 5605, 5678, or 5679 of the AASS), the said window of nucleotides may comprises about 19 nucleotides or less, 18 nucleotides or less, 17 nucleotides or less, 16 nucleotides or less, 15 nucleotides or less, 14nucleotides or less, 13 nucleotides or less, 12 nucleotides or less, 11 nucleotides or less, 10 nucleotides or less, 9 nucleotides or less, 8 nucleotides or less, 7 nucleotides or less, 6 nucleotides or less, 5 nucleotides or less, 4 nucleotides or less, 3 nucleotides or less, 2 nucleotides, or one nucleotide in the 3’ direction from said starting position of the AASS. In an aspect, the silencing oligonucleotide may a single stranded antisense oligonucleotide. In an aspect, the silencing oligonucleotide may be a double stranded siRNA. In an aspect, a silencing oligonucleotide is equal to or longer than its target sequence.

[0314] In an aspect, a silencing oligonucleotide may target a target sequence comprising one or more nucleotides of the AASS gene or AASS mRNA, e.g., corresponding to positions within a window of about 20 nucleotides or less, in the 3 ’ direction from a starting position selected from position , 31, 105, 195, 280, 488, 530, 892, 1060, 1144, 1306, 1384, 1385, 1455, 2100, 2151, 2214, 2825, 2914, 4003, 4004, 4366, 5283, or 5679 of an AASS gene or AASS mRNA having the sequence set forth in SEQ ID NO:36. From said starting positions (e.g., 95, 103, 104, 105, 292, 489, 533, 534, 726, 739, 740, 893, 1059, 1181, 1447, 1448, 1449, 2197, 2211, 2468, 2492, 2498, 2804, 2805, 2526, 3061, 3929, 4002, 4003, 4004, 5278, 5283, 5411, 5416, 5417, 5605, 5678, or 5679 of the AASS), the said window of nucleotides may comprises about 19 nucleotides or less, 18 nucleotides or less, 17 nucleotides or less, 16 nucleotides or less, 15 nucleotides or less, 14 nucleotides or less, 13 nucleotides or less, 12 nucleotides or less, 11 nucleotides or less, 10 nucleotides or less, 9 nucleotides or less, 8 nucleotides or less, 7 nucleotides or less, 6 nucleotides or less, 5 nucleotides or less, 4 nucleotides or less, 3 nucleotides or less, 2 nucleotides, or one nucleotide in the 3’ direction from said starting position of the AASS. In an aspect, the silencing oligonucleotide may a single stranded antisense oligonucleotide. In an aspect, the silencing oligonucleotide may be a double stranded siRNA.

[0315] In an aspect, a silencing oligonucleotide may target a target sequence of any one of the silencing olignucleotides disclosed in the Examples of the application, selected from the target sequence of any one of TABLES 10-15, or the reverse complement thereof.

[0316] It is contemplated that any isolated nucleic acid described herein, which targets AASS, may target a targeting site as described herein this section.

[0317] In an aspect, silencing oligonucleotide may comprise or consist of a nucleic acid sequence selected from any one of SEQ ID NOS:33, 34, 41-65, 67-72, 74-117, 120-182, or a reverse complement thereof. In an aspect, silencing oligonucleotide may comprise or consist of a nucleic acid sequence as described herein the Examples.

[0318] In an aspect, a silencing oligonucleotide (e.g., siRNA or an antisense oligonucleotide) may be conjugated to a tissue-targeting moiety. The tissue-targeting moiety may be liver-tissuespecific. The tissue targeting moiety may comprise one or more GalNAc, optionally two GalNAc (e.g., a GalNAc dimer) or three GalNAc (e.g., a GalNAc trimer).

[0319] The silencing oligonucleotide comprising or consisting of said nucleic acid sequences, or as described herein the Examples, may be chemically modified as described herein, e.g. by phosphorothioation, or locked nucleic acid design. In an aspect, the silencing oligonucleotide may a single stranded antisense oligonucleotide. In an aspect, the silencing oligonucleotide may be an double stranded siRNA. siRNA Oligonucleotides

[0320] Generally, as known to the art, siRNAs can be silencing oligonucleotides that can be used to silence genes. In an aspect, a gene to be silenced by the siRNA or the silenced gene is AASS. In an aspect, the process is as follows: (i) double-stranded RNA is cleaved by the Dicer enzyme, which forms siRNA, (ii) double-stranded siRNA then enters the cell and forms the RNA-induced silencing complex (RISC) with other proteins, (iii) this is unwound, which forms the singlestranded siRNA, (iv) the strand of RNA with the 5’ end base pairing that is thermodynamically less stable remains part of the RISC complex, which strand can now scan for complementary mRNA, (v) once this anti-sense strand binds to the target mRNA, mRNA cleavage is induced, and (vi) the foreign mRNA is recognized by the host cell as abnormal and is degraded. Now, translation is not possible, and the gene is silenced.

[0321] Disclosed herein is an siRNA that can target any part of an aminoadipate-semialdehyde synthase gene. Disclosed herein is an siRNA that can target any part of the aminoadipate- semialdehyde synthase gene comprising the sequence set forth in SEQ ID NO: 35 or SEQ ID NO:36. Disclosed herein is an siRNA that can target any part of an aminoadipate-semialdehyde synthase gene comprising the sequence set forth in SEQ ID NO:38 or SEQ ID NO:39.

[0322] In an aspect, a targeted part of an AASS sequence by siRNA can comprise about 15 to about 35 base pairs. In an aspect, a targeted part of an AASS sequence by siRNA can comprise about 20 to about 30 base pairs. In an aspect, a targeted part of an AASS sequence by siRNA can comprise about 20 to about 24 base pairs. In an aspect, a targeted part of an AASS sequence by siRNA can comprise about 21 to about 22 base pairs.

[0323] In an aspect, the siRNA comprises a double stranded oligonucleotide, which is about 15 to about 35 base pairs in length. In an aspect, the siRNA comprises a double stranded oligonucleotide, which is about 20 to about 30 base pairs in length, an aspect, the siRNA comprises a double stranded oligonucleotide, which is about 20 to about 24 base pairs in length an aspect, the siRNA comprises a double stranded oligonucleotide, which is about 21 to about 22 base pairs in length

[0324] In an aspect, the siRNA comprises a sense and antisense strand, respectively, selected from: SEQ ID NO:74 and SEQ ID NO:75; SEQ ID NO:76 and SEQ ID NO:77; SEQ ID NO:78 and SEQ ID NO:79; SEQ ID NO:80 and SEQ ID NO:81; SEQ ID NO:82 and SEQ ID NO:83; SEQ ID NO:84 and SEQ ID NO:85; SEQ ID NO:86 and SEQ ID NO:87; SEQ ID NO:88 and SEQ ID NO:89; SEQ ID NO:90 and SEQ ID NO:91; SEQ ID NO:92 and SEQ ID NO:93; SEQ ID NO:94 and SEQ ID NO:95; SEQ ID NO:96 and SEQ ID NO:97; SEQ ID NO:98 and SEQ ID NO:99; SEQ ID NO: 100 and SEQ ID NO: 101; SEQ ID NO: 102 and SEQ ID NO: 103; SEQ ID NO: 104 and SEQ ID NO: 105; SEQ ID NO: 106 and SEQ ID NO: 107; SEQ ID NO: 108 and SEQ ID NO: 109; SEQ ID NO: 110 and SEQ ID NO: 111; SEQ ID NO: 112 and SEQ ID NO: 113; SEQ ID NO: 114 and SEQ ID NO: 115; SEQ ID NO: 116 and SEQ ID NO: 117; or SEQ ID NO: 118 and SEQ ID NO: 119.

[0325] In an aspect, a disclosed siRNA effects the complete silencing of the aminoadipatesemialdehyde synthase gene. In an aspect, a disclosed siRNA can effect the partial silencing of the aminoadipate-semialdehyde synthase gene. In an aspect, a disclosed siRNA can effect the complete silencing of the aminoadipate-semialdehyde synthase gene. In an aspect, a disclosed siRNA can effect the partial silencing of the aminoadipate-semialdehyde synthase gene in a subject’s liver. In an aspect, a disclosed siRNA can effect the complete silencing of the aminoadipate-semialdehyde synthase gene in a subject’s liver.

[0326] Disclosed herein is an siRNA that can target any part of the aminoadipate-semialdehyde synthase gene, a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene.

[0327] In an aspect, a disclosed siRNA can effect the partial silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5- carboxylate reductase gene. In an aspect, a disclosed siRNA can effect the complete silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene. In an aspect, a disclosed siRNA can effect the partial silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysinealpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene in a subject’s liver. In an aspect, a disclosed siRNA can effect the complete silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5 -carboxylate reductase gene in a subject’s liver.Antisense Oligonucleotides (ASOs)

[0328] Generally, as known to the art, antisense oligonucleotides can be silencing oligonucleotides that can be used to silence genes. In an aspect, a gene to be silenced by an ASO or the silenced gene is AASS. Disclosed herein is an antisense oligonucleotide that can target any part of an aminoadipate-semialdehyde synthase gene. Disclosed herein is an antisense oligonucleotide that can target any part of the aminoadipate-semialdehyde synthase gene comprising the sequence set forth in SEQ ID NO:35 or SEQ ID NO:36. Disclosed herein is an antisense oligonucleotide that can target any part of an aminoadipate-semialdehyde synthase gene comprising the sequence set forth in SEQ ID NO:38 or SEQ ID NO:39.

[0329] In an aspect, a targeted part of an AASS sequence by an ASO can comprise about 14 to about 30 nucleotides. In an aspect, a targeted part of an AASS sequence by an ASO can comprise about 15 to about 28 nucleotides. In an aspect, a targeted part of an AASS sequence by an ASO can comprise about 16 to about 26 nucleotides. In an aspect, a targeted part of an AASS sequence by an ASO can comprise about 17 to about 24 nucleotides.

[0330] In an aspect, a disclosed antisense oligonucleotide (ASO) targets a target sequence of AASS, wherein the target sequence comprises any one of SEQ ID NOS:33, 34, 41-65, 67-72, 74- 117, 120-182, or a reverse complement thereof. In an aspect, an ASO comprises or consists of a a nucleic acid sequence selected from from any one of SEQ ID NOS:33, 34, 41-65, 67-72, 74- 117, 120-182, or a reverse complement thereof.

[0331] In an aspect, a disclosed antisense oligonucleotide effects the complete silencing of the aminoadipate-semialdehyde synthase gene. In an aspect, a disclosed antisense oligonucleotide can effect the partial silencing of the aminoadipate-semialdehyde synthase gene. In an aspect, a disclosed antisense oligonucleotide can effect the complete silencing of the aminoadipate- semialdehyde synthase gene. In an aspect, a disclosed antisense oligonucleotide can effect the partial silencing of the aminoadipate-semialdehyde synthase gene in a subject’s liver. In an aspect, a disclosed antisense oligonucleotide can effect the complete silencing of the aminoadipate- semialdehyde synthase gene in a subject’s liver.

[0332] Disclosed herein is an antisense oligonucleotide that can target any part of the aminoadipate-semialdehyde synthase gene, a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene.

[0333] In an aspect, a disclosed antisense oligonucleotide can effect the partial silencing of the a- aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5- carboxylate reductase gene. In an aspect, a disclosed antisense oligonucleotide can effect the complete silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene. In an aspect, a disclosed antisense oligonucleotide can effect the partial silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5 -carboxylate reductase gene in a subject’s liver. In an aspect, a disclosed antisense oligonucleotide can effect the complete silencing of the a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene in a subject’s liver.Therapeutic mRNA

[0334] mRNA therapy involves introduction of an mRNA sequence (e.g., an isolated nucleic acid encoding a gene) to subject, such as for instance, to be used in protein replacement therapy. An mRNA oligonuclotide may be used to induce functional expression of a target gene or protein. Disclosed herein is mRNA therapy which can be directed to one or more enzymes in the pipecolate pathway, the saccharopine pathway, or both. In an aspect, a disclosed mRNA molecule can be used to induce functional GCDH expression in a mammal or a mammalian cell. In an aspect, the disclosed functional GCDH can be induced in a subject’s liver or brain or in cells found in the liver or in the brain.

[0335] In an aspect, a disclosed mRNA sequence can be used to induce functional a-aminoadipic semialdehyde, the kynurenine aminotransferase 2, the dehydrogenase El and transketolasedomain-containing protein 1, the L-lysine alpha-oxidase, the ketimine reductase mu-cry stallin protein, the peroxisomal sarcosine oxidase, or the pyrroline-5-carboxylate reductase expression in a mammal or a mammalian cell. In an aspect, the disclosed functional a-aminoadipic semialdehyde, the kynurenine aminotransferase 2, the dehydrogenase El and transketolase domain-containing protein 1, the L-lysine alpha-oxidase, the ketimine reductase mu-cry stallin protein, the peroxisomal sarcosine oxidase, or the pyrroline-5-carboxylate reductase can be induced in a subject’s liver or brain or in cells found in the liver or in the brain.

[0336] In an aspect, a disclosed mRNA sequence comprises (i) at least one 5'-cap structure; (ii) a 5'-UTR; (iii) an open reading frame (ORF) encoding a functional protein of interest (e.g., a GCDH that is recombinant, or wildtype, or a variant); (iv) a 3 '-UTR; and (v) a poly-A region. The mRNA nucleotide may futher comprise a promoter, optionally selected from a T7 promoterr. The open reading frame (ORF) of the gene of interest may be flanked by a 5’ untranslated region (UTR) which may contain a strong Kozak translational initiation signal and / or an 3 ’UTR, optionally a n alpha-globin 3 ’UTR, which may include an oligo(dT) sequence for templated addition of a poly- A tail. Moreover, multiple 5’ or 3’ UTRs may be included in the flanking regions and may be the same or of different sequences.

[0337] In an aspect, a disclosed mRNA sequence (e.g., an isolated nucleic acid encoding a gene) may be a modified mRNA (mmRNA). An mmRNA encodes a polypeptide of interested, but is preferable for its modifications that avoid limitations of its unmodified counterpart mRNA molecule. Such modifications are improved structural features, which are ones in which two or more linked nucleotides are inserted, deleted, duplicated, inverted, or randomized in a mRNA. Traditional mRNA molecule can comprise at least a coding region, a 5’UTR, a 3’UTR, a 5’cap and a poly-A tail. Modified mRNAs comprise one or more structural and / or chemical modifications or alterations which impart useful properties to the polynucleotide. For instance, mmRNAs may reduce immunogenicity, increase stability, or enchance the therapeutic effectiveness compared to a traditional mRNA.

[0338] The 5’ cap structure of mRNA is critical for nuclear export and mRNA stability, as 5’decapping may subject a nucleic acid molecule for degradation. Modifications toward a non- hydrolyzable cap are preferred. In an aspect, the at least one 5’ cap structure is selected from capO, capl, cap 2, N-6 methyladenosine cap 1, N6-methylyad enosine cap 2, ARC A, inosine, Nl- methyl-guanosine, 2-fluoro-guanosine, 7-deaza-guanosine, 8-oxo-guanosine, 2-amino-guanosine, LNA-guanosine, or 2-azido-guanosine. Additional modifications that can be included as a 5’ cap structure on a mRNA (e.g., mmRNA) may be alpha-thio-guanosine nucleotides; phosphorothioate linkage in form of a 5’-ppp-5’cap; modified guanosine nucleotides in the 5’ cap, such as alpha-methyl-phosphonate and seleno-phosphate nucleotides; 2 ’-0 -methylation of the ribose sugars of 5’-terminal and / or 5’-anteterminal nucleotides of the mRNA. Additional modifications that can be included as a 5’ cap structure on a mRNA (e.g., mmRNA) may be synthetic cap analogs; chemical caps; chemical cap analogs; or structural or functional cap analogs, which are different from natural (i.e. endogenous, wild-type or physiological) 5 ’-caps in their chemical structure. Cap analogs may be chemically (i.e. non-enzymatically) or enzymatically synthesized and / or linked to the mRNA. Additional modifications that can be included as a 5’ cap structure on a mRNA (e.g., mmRNA) may be an Anti-Reverse Cap Analog (ARCA) cap (e.g., two guanines linked by a 5-5- triphosphate group, wherein one guanine contains an N7 methyl group as well as a 3-O-methyl group (i.e., N7,3’-O-dimethyl-guanosine-5-triphosphate-5-guanosine)); or mCAP, which similar to ARCA but comprising a 2’-O-methyl group on guanosine.

[0339] A 5’UTR of an mRNA or mmRNA disclosed herein may comprise a Kozak sequence. Kozak sequences may comprise the consensus sequence CCR(A / G)CCAUGG, where R is a purine, which is three bases upstream of the start codon (AUG), which is followed by another ‘G’. The 5’UTR may comprise a 5’UTR of a liver-expressed mRNA, such as albumin, serum amyloid A, Apolipoprotein A / B / E, transferrin, alpha fetoprotein, erythropoietin, or Factor VIII. Such liverspecific 5’UTR could be used to enhance expression of a functional GCDH protein in in hepatic cell lines or liver. The 5’UTR can also be non-natural, e.g. synthetic. The 5’UTR may comprises or consist of the seqeunce set forth in SEQ ID NO: 189, or a fragment thereof.

[0340] The ORF may also include various upstream or downstream additions, such as, but not limited to, p-globin, tags, etc.

[0341] A 3’UTR of an mRNA or mmRNA disclosed herein may comprise an alpha-globin 3- UTR. The 3’UTR may comprise or consist of the seqeunce set forth in SEQ ID NO: 190. The 3’UTR may comprise one or more AU rich elements, optionally a class 1 AU rich elements, Class 2 AU rich elements, or a Class 3 AU rich element. The 3’UTR may comprise one or more microRNA binding sites.

[0342] In an aspect, a disclosed mRNA molecule can comprise at least one nonstandard nucleobase. In an aspect, a disclosed modified mRNA (mmRNA) sequence may comprise a 1- methyl'P modification. In an aspect, a disclosed modified mRNA sequence may comprise a 1 5- methylcytidine (5-methylC) modification. (See, Kariko K et al. Immunity 23: 165-75 (2005); Kariko K et al. Mol Ther 16: 1833-40 (2008); Anderson B R et al. NAR (2010)), each of which are herein incorporated by reference in their entireties. In an aspect, a disclosed modified mRNA sequence may comprises a 5-methoxyuridine (5-methoxyU) modification. In an aspect, a disclosed modified mRNA sequence may comprises a 5-methylC modificatoin. In an aspect, adisclosed modified mRNA sequence may comprises a 2-thio-uridine modfication. In an aspect, a disclosed modified mRNA sequence may comprise N1 -methylpseudouridine or other potential modification provided for by U.S. Patent No.: 10,898,574 B2.

[0343] In an aspect, a disclosed mRNA molecule can be encapsulated within a nanoparticle (e.g., a lipid nanoparticle). For example, in an aspect, a disclosed nanoparticle can be a liposome. In an aspect, a disclosed liposome can comprise one or more cationic lipids, one or more non-cationic lipids, and one or more PEG-modified lipids. In an aspect, a disclosed liposome can comprise one or more cholesterol-based lipids. In an aspect, a disclosed liposome comprises one or more cationic lipids, one or more non-cationic lipids, one or more cholesterol-based lipids and one or more PEG-modified lipids. In an aspect, a disclosed liposome can comprise no more than three distinct lipid components (such as, for example, a sterol-based cationic lipid). In an aspect, a disclosed sterol-based cationic lipid can be imidazole cholesterol ester (ICE), GL-TES-SA-DME- E18-2, TL1-01D-DMA, SY-3-E14-DMAPr, TL1-10D-DMA, Guan-SS-Chol, GL-TES-SA- DMP-E18-2, HEP-E4-E10, HEP-E3-E10, TL1- 04D-DMA, GL-TES-SA-DME-E18-2, TL1- 01D-DMA, SY-3-E14-DMAPr, TL1-10D-DMA, or a combination thereof.

[0344] In an aspect, a disclosed nanoparticles can have a size of less than about 200 nm, or less than about 150 nm, or less than about 120 nm, or less than about 110 nm, or less than about 100 nm, or less than about 80 nm, or less than about 60 nm, or less than about 50 nm, or less than about 40 nm, or less than about 30 nm.Viral Vectors

[0345] Disclosed herein is a viral vector comprising a disclosed isolated nucleic acid molecule. Disclosed herein is a viral vector comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase. Disclosed herein is a viral vector comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding aminoadipate-semialdehyde synthase. Disclosed herein is viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding green fluorescent protein (GFP). Disclosed herein is a viral vector comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, aminoadipate-semialdehyde synthase, or green fluorescent protein.

[0346] Disclosed herein is a viral vector comprising a nucleic acid sequence encoding a glutaryl- CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO:01 or a fragment thereof. Disclosed herein is a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO:02 or a fragment thereof. Disclosed herein is a viral vectorcomprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO: 17 or a fragment thereof. Disclosed herein is a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO: 18 or a fragment thereof.

[0347] Disclosed herein is a viral vector comprising a nucleic acid sequence encoding a glutaryl- CoA dehydrogenase, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO:01, wherein the sequence comprises one or more nucleotide substitutions, insertions, deletions, modifications, or any combination thereof. Disclosed herein is a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO:02, wherein the sequence comprises one or more nucleotide substitutions, insertions, deletions, modifications, or any combination thereof.

[0348] Disclosed herein is a viral vector comprising a nucleic acid sequence encoding a glutaryl- CoA dehydrogenase, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO: 17, wherein the sequence comprises one or more nucleotide substitutions, insertions, deletions, modifications, or any combination thereof. Disclosed herein is a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO: 18, wherein the sequence comprises one or more nucleotide substitutions, insertions, deletions, modifications, or any combination thereof.

[0349] Disclosed herein is a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system.

[0350] Disclosed herein is a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in a target gene of interest.

[0351] Disclosed herein is a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in glutaryl-CoA dehydrogenase gene.

[0352] Disclosed herein is a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the oneor more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in aminoadipate-semialdehyde synthase gene

[0353] Disclosed herein is a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system. Said gene editing system may a gene editing system as described herein.

[0354] Disclosed herein is a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in a target gene of interest. Disclosed herein is a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the glutaryl-CoA dehydrogenase gene.

[0355] Disclosed herein is a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipate-semialdehyde synthase gene.

[0356] Disclosed herein is a recombinant AAVcc47 vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system. Disclosed herein is a recombinant AAVcc47 vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in a target gene of interest. Disclosed herein is a recombinant AAVcc47 vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the glutaryl-CoA dehydrogenase gene. Disclosed herein is a recombinant AAVcc47 vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipate-semialdehyde synthase gene.

[0357] Disclosed herein is a viral vector comprising the sequence set forth in SEQ ID NO: 19. Disclosed herein is a viral vector comprising the sequence set forth in SEQ ID NO:20. Disclosed herein is a viral vector comprising the sequence set forth in SEQ ID NO:21.

[0358] In an aspect, a disclosed viral vector can comprise a nucleic acid sequence encoding a carb oxy -terminal fluorescent label and / or fluorescent tag, an amino-terminal fluorescent labeland / or fluorescent tag, or a combination thereof. In an aspect, a disclosed fluorescent label and / or fluorescent tag can comprise green fluorescent protein (EGFP), mEmerald, enhanced yellow fluorescent protein (EYFP), mApple, TdTomato, mCherry, miRFP670, any known fluorescent label or tag, or any combination thereof. Fluorophores and fluorescent labels are known.

[0359] In an aspect, a disclosed viral vector can be an adenovirus vector, an AAV vector, a herpes simplex virus vector, a retrovirus vector, a lentivirus vector, and alphavirus vector, a flavivirus vector, a rhabdovirus vector, a measles virus vector, a Newcastle disease viral vector, a poxvirus vector, or a picomavirus vector. In an aspect, a disclosed viral vector can be an adenovirus vector, an adenovirus-associated (AAV) vector, or a lentivirus vector. In an aspect, a disclosed AAV vector can be a recombinant AAV (rAAV) vector.

[0360] In an aspect, a disclosed AAV vector can include naturally isolated serotypes including, but not limited to, AAV1, AAV2, AAV3 (including 3a and 3b), AAV4, AAV5, AAV6, AAV7, AAV8, AAVrh8, AAV9, AAV10, AAVrhlO, AAV11, AAV12, AAV13, AAVrh39, AAVrh43, AAVcy.7 as well as bovine AAV, caprine AAV, canine AAV, equine AAV, ovine AAV, avian AAV, primate AAV, non-primate AAV, and any other virus classified by the International Committee on Taxonomy of Viruses (ICTV) as an AAV. In an aspect, an AAV capsid can be a chimera either created by capsid evolution or by rational capsid engineering from a naturally isolated AAV variants to capture desirable serotype features such as enhanced or specific tissue tropism and / or a host immune response escape. Naturally isolated AAV variants include, but not limited to, AAV-DJ, AAV-HAE1, AAV-HAE2, AAVM41, AAV- 1829, AAV2 Y / F, AAV2 T / V, AAV2i8, AAV2.5, AAV9.45, AAV9.61, AAV-B1, AAV-AS, AAV9.45A-String (e.g., AAV9.45-AS), AAV9.45Angiopep, AAV9.47-Angiopep, and AAV9.47-AS, AAV-PHP.B, AAV-PHP.eB, AAV-PHP.S, AAV-F, AAVcc.47, and AAVcc.81. In an aspect, a disclosed AAV vector can be AAV-Rh74 or a related variant (e.g., capsid variants like RHM4-1). In an aspect, a disclosed AAV vector can comprise AAVcc.47.

[0361] In an aspect of a disclosed AAV vector, a disclosed nucleic acid sequence can have a coding sequence that is less than about 4.5 kilobases.

[0362] In an aspect, a disclosed vector can comprise the nucleic acid sequence for one or more regulatory elements. In an aspect, a disclosed regulatory element can comprise a promoter, an enhancer, an internal ribosomal entry sites (IRES), and other expression control elements (e.g., transcription termination signals, such as polyadenylation signals and poly-U sequences), or any combination thereof. Regulatory elements can include those that direct constitutive expression of a nucleotide sequence in many types of host cells and those that direct expression of the nucleotidesequence only in certain host cells (e.g., tissue-specific regulatory sequences such as brain cells or neurons).

[0363] In an aspect, a disclosed vector can comprise a promoter operably linked to a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase. In an aspect of a disclosed vector, a disclosed promoter can comprise a tissue specific promoter. In an aspect of a disclosed vector, a disclosed tissue specific promoter can comprise a neuron-specific promoter, a muscle-specific promoter, a liver-specific promoter, a skeletal muscle-specific promoter, and heart-specific promoter. In an aspect of a disclosed vector, a disclosed tissue-specific promoter can comprise a brain cell specific promoter. Brain cell specific promoter are known to the art and can comprise a synapsin 1 (Synl) promoter, a calmodulin / calcium dependent kinase II (CAMKII) promoter, a glial fibrillary acidic protein (GFAP) promoter, a Rgs5 promoter, a S100 beta promoter, a neuron-specific enolase (NSE) promoter, a Thyl promoter, or any combination thereof.

[0364] In an aspect of a disclosed vector, a disclosed promoter can comprise a liver-specific promoter. Liver specific promoters are known to the art. In an aspect of a disclosed vector, a disclosed liver promoter can comprise the sequence set forth in SEQ ID NO:26. In an aspect of a disclosed vector, a disclosed promoter can comprise a type III RNA polymerase III promoter. Type III RNA polymerase III promoters are known to the art. In an aspect, a disclosed type III RNA polymerase III promoter can comprise a U6 promoter. In an aspect of a disclosed vector, a disclosed U6 promoter can comprise the sequence set forth in SEQ ID NO:27.

[0365] In an aspect, a disclosed vector can comprise one or more OLLAS tag. In an aspect, a disclosed OLLAS tag can comprise the sequence set forth in SEQ ID NO:31. In an aspect, a disclosed vector can comprise a nuclear localization signal (NLS). In an aspect, a disclosed NLS can comprise the sequence set forth in SEQ ID NO:30 or SEQ ID NO:32. NLS are known to the skilled person in the art. In an aspect, a disclosed vector can comprise one or more inverted terminal repeats (ITRs). In an aspect, the one or more disclosed ITRs can be derived from AAV2 or AAV9. In an aspect, a disclosed ITR can comprise the sequence set forth in any one of SEQ ID NO:22 or SEQ ID NO:23. In an aspect, a disclosed vector can comprise a polyA sequence. In an aspect, a disclosed polyA sequence can comprise the sequence set forth in SEQ ID NO:24 or SEQ ID NO:25. In an aspect, a disclosed vector can comprise one or more hemagglutinin (HA) tags. In an aspect, a disclosed HA tag can comprise the sequence set forth in SEQ ID NO:29. In an aspect, a disclosed vector can comprise a TracrRNA sequence. In an aspect, a TracrRNA sequence can comprise the sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.

[0366] In an aspect, a therapeutically effective amount of disclosed vector can comprise a range of about 1 x IO10vg / kg to about 2 x 1014vg / kg. In an aspect, for example, a disclosed vector canbe administered at a dose of about 1 x 1011to about 8 x 1013vg / kg or about 1 x 1012to about 8 x 1013vg / kg. In an aspect, a disclosed vector can be administered at a dose of about 1 x 1013to about 6 x 1013vg / kg. In an aspect, a disclosed vector can be administered at a dose of at least about 1 x IO10, at least about 5 x IO10, at least about 1 x 1011, at least about 5 x 1011, at least about 1 x 1012, at least about 5 x 1012, at least about 1 x 1013, at least about 5 x 1013, or at least about 1 x 1014vg / kg. In an aspect, a disclosed vector can be administered at a dose of no more than about 1 x IO10, no more than about 5 x IO10, no more than about 1 x 1011, no more than about 5 x 1011, no more than about 1 x 1012, no more than about 5 x 1012, no more than about 1 x 1013, no more than about 5 x 1013, or no more than about 1 x 1014vg / kg. In an aspect, a disclosed vector can be administered at a dose of about 1 x 1012vg / kg. In an aspect, a disclosed vector can be administered at a dose of about 1 x 1011vg / kg. In an aspect, a disclosed vector can be administered in a single dose, or in multiple doses (such as 2, 3, 4, 5, 6, 7, 8, 9 or 10 doses) as needed for the desired therapeutic results (such as for example, reprogramming a metabolic pathway).

[0367] In an aspect, a disclosed viral vector can be validated and / or characterized using an animal model such as mice and / or C. elegans.

[0368] In an aspect, a disclosed vector can restore the functionality of a missing, dysfunctional, and / or mutated glutaryl-CoA dehydrogenase in a cell or a subj ect. In an aspect, a disclosed vector (i) can restore liver-specific modulation of lysine catabolism, (ii) restore one or more aspects of lysine homeostasis, (iii) can reduce or decrease the level of toxic catabolites in the liver and / or brain of a subject, (iv) can restore the metabolic flux from glutaryl-CoA to crotonyl-CoA, (v) can improve motor performance (e.g., strength, gait, balance, coordination, and combinations thereof) of a subject, (vi) can improve memory function of a subject, (vii) can reduce anxiety in a subject, (viii) can reduce and / or prevent neurological sequelae (e.g., neonatal macrocephaly, subdural hematomas, acute retinal hemorrhage, encephalopathy, striatal necrosis, and combinations thereof), (ix) can improve and / or reduce and / or eliminate vascular dysfunction in a subject, (x) can improve a subject’s quality of life, (xi) can increase and / or prolong a subject’s life span, (xii) can increase a subject’s survivability, or (xiii) any combination thereof.

[0369] In an aspect, a disclosed vector can treat and / or prevent Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed vector can improve and / or diminish and / or ameliorate one or more symptoms associated Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed vector can improve and / or diminish and / or ameliorate one or more pathologies associated with Glutaric Aciduria Type-1 in a subject.Formulations

[0370] Disclosed herein is a pharmaceutical formulation comprising one or more disclosed GCDH nucleic acid molecules, disclosed CRISPR based nucleic acid molecules, disclosed viral vectors, disclosed cells, disclosed plasmids, or any combination thereof, and at least one pharmaceutically acceptable carrier.

[0371] Disclosed herein is a pharmaceutical formulation comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, and at least one pharmaceutically acceptable carrier.

[0372] Disclosed herein is a pharmaceutical formulation comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in a target gene of interest, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipatesemialdehyde synthase gene, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising a disclosed isolated nucleic acid molecule, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding aminoadipate-semialdehyde synthase, and at least one pharmaceutically acceptable carrier.

[0373] Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding green fluorescent protein (GFP), and at least one pharmaceutically acceptable carrier.

[0374] Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding glutaryl- CoA dehydrogenase, aminoadipate-semialdehyde synthase, or green fluorescent protein, and at least one pharmaceutically acceptable carrier.

[0375] Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO:01 or a fragment thereof, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO: 02 or a fragment thereof, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising a nucleic acid sequence encoding a glutaryl- CoA dehydrogenase, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO:01 or SEQ ID NO: 02, wherein the sequence comprises one or more nucleotide substitutions, insertions, deletions, modifications, or any combination thereof, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprises the sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, wherein the sequence comprises one or more nucleotide substitutions, insertions, deletions, modifications, or any combination thereof, and at least one pharmaceutically acceptable carrier.

[0376] Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in a target gene of interest, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the glutaryl-CoA dehydrogenase gene, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipatesemialdehyde synthase gene, and at least one pharmaceutically acceptable carrier.

[0377] Disclosed herein is a pharmaceutical formulation comprising a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in a target gene of interest, and at least one pharmaceutically acceptable carrier.

[0378] Disclosed herein is a pharmaceutical formulation comprising a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at glutaryl-CoA dehydrogenase, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipate-semialdehyde synthase gene, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a recombinant AAVcc47 vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, and at least one pharmaceutically acceptable carrier.

[0379] Disclosed herein is a pharmaceutical formulation comprising a recombinant AAVcc47 vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in the target gene of interest, and at least one pharmaceutically acceptable carrier.

[0380] Disclosed herein is a pharmaceutical formulation comprising a recombinant AAVcc47 vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the glutaryl-CoA dehydrogenase gene, and at least one pharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a recombinant AAVcc47 vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipate-semialdehyde synthase gene, and at least onepharmaceutically acceptable carrier. Disclosed herein is a pharmaceutical formulation comprising a viral vector comprising the sequence set forth in SEQ ID NO: 19, SEQ ID NO:20, or SEQ ID NO:21, and at least one pharmaceutically acceptable carrier.

[0381] In an aspect, a disclosed pharmaceutical formulation can comprise at least one lyoprotectant. In an aspect, a disclosed lyoprotectant can comprise peptone, glycerol, lactose, gelatin, glucose, sucrose, trehalose, dextran, maltodextrin, adonitol, sodium glutamate, or any combination thereof. Lyoprotectants are known to those skilled in the art.

[0382] In an aspect, a disclosed pharmaceutical formulation can comprise at least one gelling agent, preferably a pharmaceutically acceptable gelling agent. In an aspect, a disclosed pharmaceutical formulation can comprise at least preservative such as, for example, benzyl alcohol, cresols, benzoic acid, phenol, parabens, or sorbic acid. In an aspect, a disclosed pharmaceutical formulation can comprise at least one stabilizer such as, for example, a surfactant, a polymer, a polyol, a poloxamer, an albumin, a gelatin, a trehalose, a protein, a sugar, a polyvinylpyrrolidone, a N-acetyl -tryptophan (NAT), a caprylate (e.g., sodium caprylate), a polysorbate (e.g., P80), an amino acid, and a divalent metal cation (e.g., zinc).Cells

[0383] Disclosed herein is a cell comprising a disclosed isolated nucleic acid molecule or a disclosed plasmid. Disclosed herein are cells transfected by one or more disclosed nucleic acid molecules. Disclosed herein are cells transduced by one or more disclosed vectors.

[0384] Disclosed herein are cells having a GCDH ” genotype. Disclosed herein are cells having a AASS7’ genotype. Disclosed herein are cells having a GCDH / ' and AASS7’ genotype.

[0385] Disclosed herein are cells having a Gcdh" genotype. Disclosed herein are cells having a Aass7‘ genotype. Disclosed herein are cells having a Gcdh 7’ and Aass7‘ genotype.

[0386] Disclosed herein are cells demonstrating a GCDH7' genotype following transduction with a disclosed viral vector. Disclosed herein are cells demonstrating a AASS7’ genotype following transduction with a disclosed viral vector. Disclosed herein are cells demonstrating a GCDH7' and AASS7’ genotype following transduction with a disclosed viral vector.

[0387] Disclosed herein are cells demonstrating a Gcdh7‘ genotype following transduction with a disclosed viral vector. Disclosed herein are cells demonstrating a Aass7‘ genotype following transduction with a disclosed viral vector. Disclosed herein are cells demonstrating a Gcdh 7’ and Aass7‘ genotype following transduction with a disclosed viral vector.

[0388] In an aspect, disclosed transduced cells can comprise any central nervous system cells. CNS cells include but are not limited to neurons, glial cells, vascular cells, and combinations thereof. As known to the art, neurons include sensory neurons, motor neurons, interneurons, brainneurons, and combinations thereof. Neurons includes multipolar neurons, unipolar neurons, bipolar neurons, pseudo-unipolar neurons, and combinations thereof. In an aspect, disclosed transduced cells can comprise hepatocytes. In an aspect, disclosed transduced cells can comprise mammalian brain cells or mammalian hepatocytes.

[0389] Disclosed herein are cells transfected by a disclosed plasmid. Disclosed herein are cells transduced by a vector comprising the sequence set forth in SEQ ID NO: 19. Disclosed herein are cells transduced by a vector comprising the sequence set forth in SEQ ID NO:20. Disclosed herein are cells transduced by a vector comprising the sequence set forth in SEQ ID NO:21. Disclosed herein are cells transfected by an isolated nucleic acid molecule comprising the sequence set forth in SEQ ID NO:01 or SEQ ID NO:02. Disclosed herein are cells transfected by an isolated nucleic acid molecule comprising the sequence set forth in SEQ ID NO: 17 or in SEQ ID NO: 18. Disclosed herein are cells transfected by an isolated nucleic acid molecule comprising the sequence set forth in SEQ ID NO:35 or in SEQ ID NO:36. Disclosed herein are cells transfected by an isolated nucleic acid molecule comprising the sequence set forth in SEQ ID NO:37 or in SEQ ID NO:38.

[0390] In an aspect, disclosed cells can comprise cells harvested and / or obtained from a subject. In an aspect, disclosed cells can comprise cells harvested and / or obtained from a subject suspected of having or diagnosed with GA-1. Techniques to achieve transfection are known to the art and using transfected cells are known to the art.Plasmids

[0391] Disclosed herein is a plasmid used in a disclosed method. Disclosed herein is a plasmid comprising one or more disclosed isolated nucleic acid molecules (e.g., any one of the nucleic acid sequences of SEQ ID NOS: 1-SEQ ID NO:206). Disclosed herein is a plasmid comprising one or more disclosed proteins (e.g., the nucleic acid encoding any one of the protein sequeences of SEQ ID NOS: 1 -SEQ ID NO:206).

[0392] For example, in an aspect, a disclosed plasmid can comprise an isolated nucleic acid molecule comprising the sequence set forth in any one of SEQ ID NO:01 - SEQ ID NO:02, or a fragment thereof. In an aspect, a disclosed plasmid can comprise an isolated nucleic acid molecule encoding the sequence set forth in SEQ ID NO:03 or SEQ ID NO:04, or a fragment thereof. In an aspect, a disclosed plasmid can comprise an isolated nucleic acid molecule comprising the sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, or a fragment thereof. In an aspect, a disclosed plasmid can comprise an isolated nucleic acid molecule comprising the sequence set forth in SEQ ID NO:35 or SEQ ID NO:36, or a fragment thereof. In an aspect, a disclosed plasmidcan comprise an isolated nucleic acid molecule comprising the sequence set forth in SEQ ID NO:38 or SEQ ID NO:39, or a fragment thereof.

[0393] In an aspect, a disclosed plasmid can comprise a nucleic acid sequence for a disclosed fluorescent label and / or fluorescent tag. In an aspect, a disclosed fluorescent label and / or fluorescent tag can comprise green fluorescent protein (EGFP), mEmerald, enhanced yellow fluorescent protein (EYFP), mApple, TdTomato, mCherry, miRFP670, any known fluorescent label or tag, or any combination thereof. Fluorophores and fluorescent labels are known.Kits

[0394] Disclosed herein is a kit comprising one or more disclosed isolated nucleic acid molecules (e.g., silencing oligonucleotide, e.g. siRNA or antisense oligonucleotide), one or more disclosed vectors, one or more disclosed cells, one or more disclosed plasmids, or any combination thereof.

[0395] Disclosed herein is a kit comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase. Disclosed herein is a kit comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system. Disclosed herein is a kit comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in the target gene of interest. Disclosed herein is a kit comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at aminoadipate-semialdehyde synthase.

[0396] Disclosed herein is a kit comprising a viral vector comprising a disclosed isolated nucleic acid molecule. Disclosed herein is a kit comprising a viral vector comprising a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, or a disclosed isolated nucleic acid molecule comprising a nucleic acid sequence encoding aminoadipate-semialdehyde synthase, or a nucleic acid sequence encoding green fluorescent protein (GFP).

[0397] Disclosed herein is a kit comprising a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO:01 or a fragment thereof, or comprising a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO: 02 or a fragment thereof.

[0398] Disclosed herein is a kit comprising a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise thesequence set forth in SEQ ID NO: 17 or a fragment thereof, or comprising a viral vector comprising a nucleic acid sequence encoding a glutaryl-CoA dehydrogenase, wherein the nucleic acid sequence comprise the sequence set forth in SEQ ID NO: 18 or a fragment thereof.

[0399] Disclosed herein is a kit comprising a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system. Disclosed herein is a kit comprising a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in the target gene of interest.

[0400] Disclosed herein is a kit comprising a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the glutaryl-CoA dehydrogenase gene.

[0401] Disclosed herein is a kit comprising a viral vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipate-semialdehyde synthase gene. Disclosed herein is a kit comprising a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system. Disclosed herein is a kit comprising a recombinant AAV vector comprising an isolated nucleic acid molecule comprising a nucleic acid sequence encoding one or more element of a gene editing system, wherein the one or more elements comprises an endonuclease and a sgRNA directed at a target sequence in a target gene of interest.

[0402] Disclosed herein is a kit comprising a viral vector comprising the sequence set forth in SEQ ID NO: 19. Disclosed herein is a kit comprising a viral vector comprising the sequence set forth in SEQ ID NO:20. Disclosed herein is a kit comprising a viral vector comprising the sequence set forth in SEQ ID NO:21.

[0403] Disclosed herein is a kit comprising cells comprising a disclosed isolated nucleic acid molecule or a disclosed plasmid. Disclosed herein is a kit comprising cells transfected by one or more disclosed nucleic acid molecules. Disclosed herein is a kit comprising cells transduced by one or more disclosed vectors.

[0404] Disclosed herein is a kit comprising cells having a Gcdh' ' genotype. Disclosed herein is a kit comprising cells having a Aass" ’ genotype. Disclosed herein is a kit comprising cells having a Gcdh' ' and Aass7' genotype. Disclosed herein is a kit comprising cells demonstrating a Gcdh''genotype following transduction with a disclosed viral vector. Disclosed herein is a kit comprising cells demonstrating a Aass" genotype following transduction with a disclosed viral vector. Disclosed herein is a kit comprising cells demonstrating a Gcdh7' and Aass7' genotype following transduction with a disclosed viral vector.

[0405] Disclosed herein is a kit comprising cells having a GCDH7' genotype. Disclosed herein is a kit comprising cells having a AASS7' genotype. Disclosed herein is a kit comprising cells having a GCDH7' and AASS7' genotype. Disclosed herein is a kit comprising cells demonstrating a GCDH7' genotype following transduction with a disclosed viral vector. Disclosed herein is a kit comprising cells demonstrating a AASS7' genotype following transduction with a disclosed viral vector. Disclosed herein is a kit comprising cells demonstrating a GCDH7' and AASS7' genotype following transduction with a disclosed viral vector.

[0406] Disclosed herein is a kit comprising cells transfected by a disclosed plasmid. Disclosed herein is a kit comprising cells transduced by a vector comprising the sequence set forth in SEQ ID NO: 19. Disclosed herein is a kit comprising cells transduced by a vector comprising the sequence set forth in SEQ ID NO:20. Disclosed herein is a kit comprising cells transduced by a vector comprising the sequence set forth in SEQ ID NO:21. Disclosed herein is a kit comprising one or more disclosed compositions and / or components and / or agents that can be used in any disclosed method.

[0407] Disclosed herein is a kit comprising one or more disclosed compositions and / or components and / or agents that can be used in validating and / or characterizing a disclosed composition (such as, for example, a disclosed isolated nucleic acid molecule, a disclosed plasmid, a disclosed viral vector, or any combination thereof). In an aspect, validating and / or characterizing can comprise using an animal model such as mice and / or C. elegans.

[0408] In an aspect of a disclosed kit, a disclosed fluorescent label or a fluorescent tag. In an aspect, a disclosed fluorescent label or disclosed fluorophore can comprise enhanced green fluorescent protein (EGFP), mEmerald, enhanced yellow fluorescent protein (EYFP), mApple, TdTomato, mCherry, miRFP670, any known fluorescent label or tag, or any combination thereof. Fluorophores and fluorescent labels are known in the art.

[0409] In an aspect, a disclosed kit can comprise at least two components constituting the kit. Together, the components constitute a functional unit for a given purpose (such as, for example, performing any aspect of a disclosed method including preparing the components used in a disclosed method). Individual member components can be physically packaged together or separately. For example, a kit comprising an instruction for using the kit can or cannot physically include the instruction with other individual member components. Instead, the instruction can besupplied as a separate member component, either in a paper form or an electronic form which can be supplied on computer readable memory device or downloaded from an internet website, or as recorded presentation. In an aspect, a kit for use in a disclosed method can comprise one or more containers holding a disclosed composition, a disclosed pharmaceutical formulation, a disclosed therapeutic agent, and a label or package insert with instructions for use. In an aspect, suitable containers include, for example, bottles, vials, syringes, blister pack, etc. The containers can be formed from a variety of materials such as glass or plastic. The container can hold a disclosed composition, a disclosed pharmaceutical formulation, a disclosed therapeutic agent, or a combination thereof, and can have a sterile access port (for example the container can be an intravenous solution bag or a vial having a stopper pierceable by a hypodermic injection needle). The label or package insert can indicate that a disclosed composition, a disclosed viral vector, a disclosed nucleic acid molecule, a disclosed cell, or a combination thereof, can be used in a disclosed method. A kit can comprise additional components necessary for administration such as, for example, other buffers, diluents, filters, needles, and syringes.

[0410] In an aspect, a disclosed kit can be used (i) to restore liver-specific modulation of lysine catabolism, (ii) to restore one or more aspects of lysine homeostasis in a subject’s liver, (iii) to reduce or decrease the level of toxic catabolites in the liver and / or brain of a subject, (iv) to restore the metabolic flux from glutaryl-CoA to crotonyl-CoA in a subject’s liver, (v) to improve motor performance (e.g., strength, gait, balance, coordination, and combinations thereof) of a subject, (vi) to improve memory function of a subject, (vii) to reduce anxiety in a subject, (viii) to reduce and / or prevent neurological sequelae (e.g., neonatal macrocephaly, subdural hematomas, acute retinal hemorrhage, encephalopathy, striatal necrosis, and combinations thereof), (ix) to improve and / or reduce and / or eliminate vascular dysfunction in a subject, (x) to improve a subject’s quality of life, (xi) to increase and / or prolong a subject’s life span, (xii) to increase a subject’s survivability, or (xiii) to effect any combination thereof. In an aspect, a disclosed kit can be used treat and / or prevent Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed kit can be used to improve and / or diminish and / or ameliorate one or more symptoms associated Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed kit can be used to improve and / or diminish and / or ameliorate one or more pathologies associated with Glutaric Aciduria Type-1 in a subject.Methods Employing GCDH Nucleic Acid MoleculesMethods of Restoring the Expression of Glutaryl-CoA Dehydrogenase

[0411] Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoAdehydrogenase, wherein expression of the nucleic acid sequence generates a functional glutaryl- CoA dehydrogenase.

[0412] Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expression of the nucleic acid sequence generates a functional glutaryl- CoA dehydrogenase in the subject’s liver.

[0413] Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO:01 or SEQ ID NO:02, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase. Disclosed herein is a method of restoring the expression of glutaryl- CoA dehydrogenase, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO:01 or SEQ ID NO:02, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase in the subject’s liver.

[0414] Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase. Disclosed herein is a method of restoring the expression of glutaryl- CoA dehydrogenase, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase in the subject’s liver.

[0415] Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method comprising treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase. Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method comprising treating a subject in need thereof by administering to the subj ect a therapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expressionof the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase in the subject’s liver.

[0416] Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method comprising treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO:01 or SEQ ID NO:02, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase. Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO:01 or SEQ ID NO:02, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase in the subject’s liver.

[0417] Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase. Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase in the subject’s liver. In an aspect, the GCDH may be a variant GCDH sequence comprising one or more substitutions selected from K163R, K240R, K202R, OR K371R; the substitutions K163R and K240R; the substitutions K202R and K371R; or the substitutions selected K163R, K202R, K240R, and K371R. A nucleic acid sequence encoding the variant GCDH sequence may comprise the sequence set forth in SEQ ID NO: 197, SEQ ID NO: 198, or SEQ ID NO: 199, or SEQ ID NO: 196, or a variant thereof.

[0418] Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the sequence set forth in SEQ ID NO: 19, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase. Disclosed herein is a method of restoring the expression of glutaryl-CoA dehydrogenase, the method treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the sequence set forth inSEQ ID NO: 19, wherein expression of the nucleic acid sequence generates a functional glutaryl- CoA dehydrogenase in the subject’s liver.

[0419] In an aspect, a disclosed method can restore normal lysine catabolism in the subject’s liver.

[0420] In an aspect, a disclosed method can further comprise deleting and / or disrupting one or more other catabolic genes.

[0421] In an aspect, a disclosed method can further comprise deleting and / or disrupting the aminoadipate-semialdehyde synthase gene, a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene, or any combination thereof.

[0422] In an aspect, the expression of glutaryl-CoA dehydrogenase can be restored in the subject’s liver. In an aspect of a disclosed method, the disclosed subject in need thereof can have or can have been diagnosed with a glutaric aciduria type 1 (GA-1). In an aspect, a subject can be male or female. In an aspect, a subject can be an adult, a teenager, an adolescent, a child, a toddler, a baby, or an infant.

[0423] In an aspect of a disclosed method, the disclosed subject’s GA-1 related and / or associated behavior can be modulated. In an aspect of a disclosed method, the disclosed subject’s GA-1 related and / or associated physiology can be modulated.

[0424] In an aspect of a disclosed method, administering a disclosed viral vector can be administered systemically or directly. In an aspect, administering a disclosed viral vector molecule can comprise oral administration, intravenous administration, intratumoral administration, intraperitoneal administration, or any combination thereof. In an aspect, administering a disclosed viral vector can be administered by any method of administration disclosed herein. In an aspect, a disclosed viral vector can be administered via multiple routes either concurrently or sequentially. A skilled clinician can determine the best route of administration for a subject at a given time.

[0425] In an aspect of a disclosed method, administering a disclosed viral vector can be targeted to the subject’s liver, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase.

[0426] In an aspect, a disclosed nucleic acid sequence can comprise only the sequence for the functional domains.

[0427] In an aspect of a disclosed method, administering a disclosed viral vector can comprise a single dose, or in multiple doses (such as 2, 3, 4, 5, 6, 7, 8, 9 or 10 doses) as needed for the desiredtherapeutic results. In an aspect, multiple doses can be administered via the same route or via differing routes of administration. In an aspect, a disclosed viral vector can be administered via multiple routes of administration.

[0428] In an aspect, a disclosed viral vector can comprise a recombinant AAV vector. In an aspect, a disclosed AAV vector can comprise AAVcc.47. In an aspect, a disclosed AAV vector can comprise AAV8.

[0429] In an aspect, a therapeutically effective amount of disclosed vector can comprise a range of about 1 x IO10vg / kg to about 2 x 1014vg / kg. In an aspect, for example, a disclosed vector can be administered at a dose of about l x 1011to about 8 x 1013vg / kg or about 1 x 1012to about 8 x 1013vg / kg. In an aspect, a disclosed vector can be administered at a dose of about 1 x 1013to about 6 x 1013vg / kg. In an aspect, a disclosed vector can be administered at a dose of at least about 1 x IO10, at least about 5 x IO10, at least about 1 x 1011, at least about 5 x 1011, at least about 1 x 1012, at least about 5 x 1012, at least about 1 x 1013, at least about 5 x 1013, or at least about 1 x 1014vg / kg. In an aspect, a disclosed vector can be administered at a dose of no more than about 1 x IO10, no more than about 5 x IO10, no more than about 1 x 1011, no more than about 5 x 1011, no more than about 1 x 1012, no more than about 5 x 1012, no more than about 1 x 1013, no more than about 5 x 1013, or no more than about 1 x 1014vg / kg. In an aspect, a disclosed vector can be administered at a dose of about 1 x 1012vg / kg. In an aspect, a disclosed vector can be administered at a dose of about 1 x 1011vg / kg. In an aspect, a disclosed vector can be administered in a single dose, or in multiple doses (such as 2, 3, 4, 5, 6, 7, 8, 9 or 10 doses) as needed for the desired therapeutic results (such as for example, restoring the expression of GA-1).

[0430] In an aspect, a disclosed method can further comprise monitoring the subject for adverse effects following the administering step and / or the treating step. In an aspect, wherein in the absence of adverse effects, the method can further comprise continuing to treat the subject and / or continuing to monitor the subject. In an aspect, wherein in the presence of adverse effects, the method can further comprise modifying one or more steps of the method. In an aspect, modifying can comprise modifying the treating step, modifying the administering step, or both.

[0431] In an aspect, modifying the treating step can comprise changing the amount of the vector administered to the subject, changing the frequency of administration of the vector, changing the duration of administration of the vector, changing the route of administration of the vector, or any combination thereof. In an aspect, modifying the administering step can comprise changing the amount of the vector administered to the subject, changing the frequency of administration of the vector, changing the duration of administration of the vector, changing the route of administration of the vector, or any combination thereof.

[0432] In an aspect of a disclosed method, a disclosed CRISPR / Cas9 editing system can be applied to one or more gene or gene product of any enzyme in the lysine catabolism pathways (i.e., the pipecolate pathway and the saccharopine pathway). In an aspect, these enzymes can include, but are not limited to aminoadipate-semialdehyde synthase, a-aminoadipic semialdehyde, the kynurenine aminotransferase 2, the dehydrogenase El and transketolase domain-containing protein 1, the L-lysine alpha-oxidase, the ketimine reductase mu-crystallin protein, the peroxisomal sarcosine oxidase, or the pyrroline-5-carboxylate reductase, or any combination thereof. In an aspect, for example, a disclosed CRISPR / Cas9 editing system can be applied to one or more amino acides in a disclosed enzyme comprising the sequence set forth in SEQ ID NO:03 or SEQ ID NO:04 or SEQ ID NO:37 or SEQ ID NO:40.

[0433] In an aspect, a disclosed method can further comprise administering to the subject a therapeutically effective amount of a therapeutic agent. Therapeutic agents are known. In an aspect, a disclosed method can further comprise administering to the subject a therapeutically effective amount of one or more immune modulators. In an aspect, the one or more immune modulators comprise methotrexate, rituximab, intravenous gamma globulin, Tacrolimus, prednisolone or a prednisolone analog, SVP-Rapamycin, bortezomib, or a combination thereof.

[0434] In an aspect, a disclosed method can further comprise monitoring the subject for adverse effects following the administering of one or more therapeutic agents and / or the administering of one or more immune modulators. In an aspect, wherein in the absence of adverse effects following the administering of one or more therapeutic agents and / or immune modulators, the method can further comprise continuing to treat the subject and / or continuing to monitor the subject. In an aspect, wherein in the presence of adverse effects, the method can further comprise modifying one or more steps of the method. In an aspect, modifying can comprise modifying the administering step of one or more therapeutic agents and / or immune modulators. In an aspect, modifying the administering step can comprise changing the amount of one or more therapeutic agents and / or immune modulators administered to the subject, changing the frequency of administration of one or more therapeutic agents and / or immune modulators, changing the duration of administration of the vector, changing the route of administration of one or more therapeutic agents and / or immune modulators, or any combination thereof.

[0435] In an aspect, a disclosed method can further comprise monitoring the subject’s metabolic and / or physiologic improvement following the administering and / or treating step and / or following the administering and / or treating steps. In an aspect, a clinician can measure and / or determine the subject’s metabolic and / or physiologic status over time to identify one or more improvements and / or one or more diminishments. In an aspect of a disclosed method, a clinician can use thesubject’s metabolic and / or physiologic status and / or the trend of the subject’s metabolic and / or physiological status and / or trend to make a treatment decision and / or to modify an aspect of a disclosed method and / or to continue treating the subject and / or continue to administer a disclosed vector, a disclosed composition, a disclosed therapeutic agent, and / or a disclosed immune modulator, or any combination thereof. In an aspect, metabolic and / or physiologic data can inform the clinician.

[0436] In an aspect, techniques to monitor, measure, and / or assess the restoring of the expression of glutaryl-CoA dehydrogenase can comprise qualitative (or subjective) means as well as quantitative (or objective) means. These means are known to the skilled. In an aspect, a disclosed method can comprise subjecting the subject to one or more invasive or non-invasive diagnostic assessments. Diagnostic assessments are known to the art. In an aspect, a disclosed non-invasive diagnostic assessment can comprise x-rays, computerized tomography (CT) scans, magnetic resonance imaging (MRI) scans, ultrasounds, positron emission tomography (PET) scans, or any combination thereof. In an aspect, a disclosed invasive diagnostic assessment can comprise a tissue biopsy or exploratory surgery.

[0437] In an aspect, a disclosed increase and / or a disclosed improvement can comprise a 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%, or any amount of an increase and / or improvement when compared to a control subject (such as, for example, a subject that has not received a disclosed treatment (e.g., administration of a disclosed viral vector)). In an aspect, a disclosed increase and / or a disclosed improvement can comprise a 10-20%, 20-30%, 30-40%, 40- 50%, 50-60%, 60-70%, 70-80%, 80-90%, or 90-100% or any amount of an increase and / or improvement when compared to a control subject (such as a subject that has not received a disclosed treatment (e.g., administration of a disclosed viral vector)).

[0438] In an aspect, a disclosed decrease and / or a disclosed reduction can comprise a 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%, or any amount of a decrease and / or reduction when compared to a control subject (such as, for example, a subject that has not received a disclosed treatment (e.g., administration of a disclosed viral vector)). In an aspect, a disclosed decrease and / or a disclosed reduction can comprise a 10-20%, 20-30%, 30-40%, 40-50%, 50- 60%, 60-70%, 70-80%, 80-90%, or 90-100% or any amount of a decrease and / or reduction when compared to a control subject (such as a subject that has not received a disclosed treatment (e.g., administration of a disclosed viral vector)).

[0439] In an aspect, a disclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise repeating an administering step one or more times. In an aspect, adisclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise repeating a treating step one or more times.

[0440] In an aspect, a disclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise restoring liver-specific modulation of lysine catabolism, (ii) restoring one or more aspects of lysine homeostasis, (iii) reducing and / or decreasing the level of toxic catabolites in the liver and / or brain of a subject, (iv) restoring the metabolic flux from glutaryl-CoA to crotonyl-CoA, (v) improving motor performance (e.g., strength, gait, balance, coordination, and combinations thereof) of a subject, (vi) improving memory function of a subject, (vii) reduce anxiety in a subject, (viii) reducing and / or preventing neurological sequelae (e.g., neonatal macrocephaly, subdural hematomas, acute retinal hemorrhage, encephalopathy, striatal necrosis, and combinations thereof), (ix) improving and / or reducing and / or eliminating vascular dysfunction in a subject, (x) improving a subject’s quality of life, (xi) increasing and / or prolong a subject’s life span, (xii) increasing a subject’s survivability, or (xiii) any combination thereof.

[0441] In an aspect, a disclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise restoring liver-specific modulation of lysine catabolism in the subject’s liver, (ii) restoring one or more aspects of lysine homeostasis in the subject’s liver, (iii) reducing and / or decreasing the level of toxic catabolites in the liver and / or brain of a subject, (iv) restoring the metabolic flux from glutaryl-CoA to crotonyl-CoA in the subject’s liver, or (v) any combination thereof.

[0442] In an aspect, a disclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise treating and / or preventing Glutaric Aciduria Type-1 disease progression in a subject.

[0443] In an aspect, a disclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise improving and / or diminishing and / or ameliorate one or more symptoms associated Glutaric Aciduria Type-1 disease progression in a subject.

[0444] In an aspect, a disclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise improving and / or diminishing and / or ameliorate one or more pathologies associated with Glutaric Aciduria Type-1 disease progression in a subject.

[0445] In an aspect, a disclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise restoring one or more aspects of cellular homeostasis and / or cellular functionality in a subject.

[0446] In an aspect, a disclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise reprogramming a metabolic pathway. In an aspect, a disclosedmetabolic pathway can comprise lysine catabolism. In an aspect, a disclosed metabolic pathway can comprise a disclosed pipecolate pathway and / or a disclosed saccharopine pathway.Methods of Treating and / or Preventing GA-1 Disease Progression

[0447] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expression of glutaryl-CoA dehydrogenase is restored.

[0448] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expression of glutaryl-CoA dehydrogenase is restored in the subject’s liver.

[0449] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO:01 or SEQ ID NO:02, wherein expression of glutaryl-CoA dehydrogenase is restored. Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO:01 or SEQ ID NO:02, wherein expression of glutaryl-CoA dehydrogenase is restored in the subject’s liver.

[0450] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO: 17, wherein expression of glutaryl-CoA dehydrogenase is restored. Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising administering to a subject in need thereof a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO: 18, wherein expression of glutaryl-CoA dehydrogenase is restored.

[0451] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expression of glutaryl-CoA dehydrogenase is restored. Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising treating a subject in need thereof by administering to the subject atherapeutically effective amount of a vector or viral vector comprising a nucleic acid sequence encoding glutaryl-CoA dehydrogenase, wherein expression of glutaryl-CoA dehydrogenase is restored in the subject’s liver.

[0452] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO: 01 or SEQ ID NO: 02, wherein expression of glutaryl-CoA dehydrogenase is restored. Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO:01 or SEQ ID NO:02, wherein expression of glutaryl-CoA dehydrogenase is restored in the subject’s liver.

[0453] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method comprising treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, wherein expression of glutaryl-CoA dehydrogenase is restored. Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the nucleic acid sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, wherein expression of glutaryl-CoA dehydrogenase is restored in the subject’s liver.

[0454] Disclosed herein is a method of treating and / or preventing GA-1 disease progression, the method treating a subject in need thereof by administering to the subject a therapeutically effective amount of a vector or viral vector comprising the sequence set forth in SEQ ID NO: 19, wherein expression of glutaryl-CoA dehydrogenase is restored.

[0455] In an aspect, a disclosed method can restore normal lysine catabolism in the subject’s liver.

[0456] In an aspect, a disclosed method can further comprise deleting and / or disrupting one or more other catabolic genes. In an aspect, a disclosed method can further comprise deleting and / or disrupting the aminoadipate-semialdehyde synthase gene, a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5-carboxylate reductase gene, or any combination thereof.

[0457] In an aspect of a disclosed method, the disclosed subject in need thereof can have or can have been diagnosed with a glutaric aciduria type 1 (GA-1). In an aspect, a subject can be male or female. In an aspect, a subject can be an adult, a teenager, an adolescent, a child, a toddler, a baby, or an infant.

[0458] In an aspect of a disclosed method, the disclosed subject’s GA-1 related and / or associated behavior can be modulated. In an aspect of a disclosed method, the disclosed subject’s GA-1 related and / or associated physiology can be modulated.

[0459] In an aspect of a disclosed method, administering a disclosed viral vector can be administered systemically or directly. In an aspect, administering a disclosed viral vector molecule can comprise oral administration, intravenous administration, intratumoral administration, intraperitoneal administration, or any combination thereof. In an aspect, administering a disclosed viral vector can be administered by any method of administration disclosed herein. In an aspect, a disclosed viral can be administered via multiple routes either concurrently or sequentially. A skilled clinician can determine the best route of administration for a subject at a given time.

[0460] In an aspect of a disclosed method, administering a disclosed viral vector can be targeted to the subject’s liver, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase.

[0461] In an aspect, a disclosed nucleic acid sequence can comprise only the sequence for the functional domains.

[0462] In an aspect of a disclosed method, administering a disclosed viral vector can comprise a single dose, or in multiple doses (such as 2, 3, 4, 5, 6, 7, 8, 9 or 10 doses) as needed for the desired therapeutic results. In an aspect, multiple doses can be administered via the same route or via differing routes of administration. In an aspect, a disclosed viral vector can be administered via multiple routes of administration.

[0463] In an aspect, a disclosed viral vector can comprise a recombinant AAV vector. In an aspect, a disclosed AAV vector can comprise AAVcc.47. In an aspect, a disclosed AAV vector can comprise AAV8.

[0464] In an aspect, a therapeutically effective amount of disclosed vector can comprise a range of about 1 x 1010vg / kg to about 2 x 1014vg / kg. In an aspect, for example, a disclosed vector can be administered at a dose of about l x 1011to about 8 x 1013vg / kg or about 1 x 1012to about 8 x 1013vg / kg. In an aspect, a disclosed vector can be administered at a dose of about 1 x 1013to about 6 x 1013vg / kg. In an aspect, a disclosed vector can be administered at a dose of at least about 1 x 1010, at least about 5 x 1010, at least about 1 x 1011, at least about 5 x 1011, at least about1 x 1012, at least about 5 x 1012, at least about 1 x 1013, at least about 5 x 1013, or at least about 1 x 1014vg / kg. In an aspect, a disclosed vector can be administered at a dose of no more than about 1 x IO10, no more than about 5 x IO10, no more than about 1 x 1011, no more than about 5 x 1011, no more than about 1 x 1012, no more than about 5 x 1012, no more than about 1 x 1013, no more than about 5 x 1013, or no more than about 1 x 1014vg / kg. In an aspect, a disclosed vector can be administered at a dose of about 1 x 1012vg / kg. In an aspect, a disclosed vector can be administered at a dose of about 1 x 1011vg / kg. In an aspect, a disclosed vector can be administered in a single dose, or in multiple doses (such as 2, 3, 4, 5, 6, 7, 8, 9 or 10 doses) as needed for the desired therapeutic results (such as for example, restoring the expression of GA-1).

[0465] In an aspect, a disclosed method can further comprise monitoring the subject for adverse effects following the administering step and / or the treating step. In an aspect, wherein in the absence of adverse effects, the method can further comprise continuing to treat the subject and / or continuing to monitor the subject. In an aspect, wherein in the presence of adverse effects, the method can further comprise modifying one or more steps of the method. In an aspect, modifying can comprise modifying the treating step, modifying the administering step, or both.

[0466] In an aspect, modifying the treating step can comprise changing the amount of the vector administered to the subject, changing the frequency of administration of the vector, changing the duration of administration of the vector, changing the route of administration of the vector, or any combination thereof. In an aspect, modifying the administering step can comprise changing the amount of the vector administered to the subject, changing the frequency of administration of the vector, changing the duration of administration of the vector, changing the route of administration of the vector, or any combination thereof.

[0467] In an aspect of a disclosed method, a disclosed CRISPR / Cas9 editing system can be applied to one or more gene or gene product of any enzyme in the lysine catabolism pathways (i.e., the pipecolate pathway and the saccharopine pathway). In an aspect, these enzymes can include, but are not limited to aminoadipate-semialdehyde synthase, a-aminoadipic semialdehyde, the kynurenine aminotransferase 2, the dehydrogenase El and transketolase domain-containing protein 1, the L-lysine alpha-oxidase, the ketimine reductase mu-crystallin protein, the peroxisomal sarcosine oxidase, or the pyrroline-5-carboxylate reductase, or any combination thereof. In an aspect, for example, a disclosed CRISPR / Cas9 editing system can be applied to one or more amino acides in a disclosed enzyme comprising the sequence set forth in SEQ ID NO:03 or SEQ ID NO:04 or SEQ ID NO:37 or SEQ ID NO:40.

[0468] In an aspect, a disclosed method can further comprise administering to the subject a therapeutically effective amount of a therapeutic agent. Therapeutic agents are known. In anaspect, a disclosed method can further comprise administering to the subject a therapeutically effective amount of one or more immune modulators. In an aspect, the one or more immune modulators comprise methotrexate, rituximab, intravenous gamma globulin, Tacrolimus, prednisolone or a prednisolone analog, SVP-Rapamycin, bortezomib, or a combination thereof.

[0469] In an aspect, a disclosed method can further comprise monitoring the subject for adverse effects following the administering of one or more therapeutic agents and / or the administering of one or more immune modulators. In an aspect, wherein in the absence of adverse effects following the administering of one or more therapeutic agents and / or immune modulators, the method can further comprise continuing to treat the subject and / or continuing to monitor the subject. In an aspect, wherein in the presence of adverse effects, the method can further comprise modifying one or more steps of the method. In an aspect, modifying can comprise modifying the administering step of one or more therapeutic agents and / or immune modulators. In an aspect, modifying the administering step can comprise changing the amount of one or more therapeutic agents and / or immune modulators administered to the subject, changing the frequency of administration of one or more therapeutic agents and / or immune modulators, changing the duration of administration of the vector, changing the route of administration of one or more therapeutic agents and / or immune modulators, or any combination thereof.

[0470] In an aspect of a disclosed method, a disclosed CRISPR / Cas9 editing system can be applied to one or more gene or gene product in the lysine catabolism pathways (i.e., the pipecolate pathway and the saccharopine pathway). In an aspect, these enzymes can include, but are not limited to aminoadipate-semialdehyde synthase, a-aminoadipic semialdehyde, the kynurenine aminotransferase 2, the dehydrogenase El and transketolase domain-containing protein 1, the L- lysine alpha-oxidase, the ketimine reductase mu-crystallin protein, the peroxisomal sarcosine oxidase, or the pyrroline-5-carboxylate reductase, or any combination thereof. In an aspect, for example, a disclosed CRISPR / Cas9 editing system can be applied to one or more amino acides in a disclosed enzyme comprising the sequence set forth in SEQ ID NO:03 or SEQ ID NO:04 or SEQ ID NO:37 or SEQ ID NO:40.

[0471] In an aspect, a disclosed method can further comprise monitoring the subject’s metabolic and / or physiologic improvement following the administering and / or treating step and / or following the administering and / or treating steps. In an aspect, a clinician can measure and / or determine the subject’s metabolic and / or physiologic status over time to identify one or more improvements and / or one or more diminishments. In an aspect of a disclosed method, a clinician can use the subject’s metabolic and / or physiologic status and / or the trend of the subject’s metabolic and / or physiological status and / or trend to make a treatment decision and / or to modify an aspect of adisclosed method and / or to continue treating the subject and / or continue to administer a disclosed vector, a disclosed composition, a disclosed therapeutic agent, and / or a disclosed immune modulator, or any combination thereof. In an aspect, metabolic and / or physiologic data can inform the clinician.

[0472] In an aspect, techniques to monitor, measure, and / or assess the restoring of the expression of glutaryl-CoA dehydrogenase can comprise qualitative (or subjective) means as well as quantitative (or objective) means. These means are known to the skilled person. In an aspect, a disclosed method can comprise subjecting the subject to one or more invasive or non-invasive diagnostic assessments. Diagnostic assessments are known to the art. In an aspect, a disclosed non-invasive diagnostic assessment can comprise x-rays, computerized tomography (CT) scans, magnetic resonance imaging (MRI) scans, ultrasounds, positron emission tomography (PET) scans, or any combination thereof. In an aspect, a disclosed invasive diagnostic assessment can comprise a tissue biopsy or exploratory surgery.

[0473] In an aspect, a disclosed increase and / or a disclosed improvement can comprise a 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%, or any amount of an increase and / or improvement when compared to a control subject (such as, for example, a subject that has not received a disclosed treatment (e.g., administration of a disclosed viral vector)). In an aspect, a disclosed increase and / or a disclosed improvement can comprise a 10-20%, 20-30%, 30-40%, 40- 50%, 50-60%, 60-70%, 70-80%, 80-90%, or 90-100% or any amount of an increase and / or improvement when compared to a control subject (such as a subject that has not received a disclosed treatment (e.g., administration of a disclosed viral vector)).

[0474] In an aspect, a disclosed decrease and / or a disclosed reduction can comprise a 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%, or any amount of a decrease and / or reduction when compared to a control subject (such as, for example, a subject that has not received a disclosed treatment (e.g., administration of a disclosed viral vector)). In an aspect, a disclosed decrease and / or a disclosed reduction can comprise a 10-20%, 20-30%, 30-40%, 40-50%, 50- 60%, 60-70%, 70-80%, 80-90%, or 90-100% or any amount of a decrease and / or reduction when compared to a control subject (such as a subject that has not received a disclosed treatment (e.g., administration of a disclosed viral vector)).

[0475] In an aspect, a disclosed method of treating and / or preventing GA-1 disease progression can comprise repeating an administering step one or more times. In an aspect, a disclosed method of restoring the expression of glutaryl-CoA dehydrogenase can comprise repeating a treating step one or more times.

[0476] In an aspect, a disclosed method of treating and / or preventing GA-1 disease progression can comprise restoring liver-specific modulation of lysine catabolism, (ii) restoring one or more aspects of lysine homeostasis, (iii) reducing and / or decreasing the level of toxic catabolites in the liver and / or brain of a subject, (iv) restoring the metabolic flux from glutaryl-CoA to crotonyl- CoA, (v) improving motor performance (e.g., strength, gait, balance, coordination, and combinations thereof) of a subject, (vi) improving memory function of a subject, (vii) reduce anxiety in a subject, (viii) reducing and / or preventing neurological sequelae (e.g., neonatal macrocephaly, subdural hematomas, acute retinal hemorrhage, encephalopathy, striatal necrosis, and combinations thereof), (ix) improving and / or reducing and / or eliminating vascular dysfunction in a subject, (x) improving a subject’s quality of life, (xi) increasing and / or prolong a subject’s life span, (xii) increasing a subject’s survivability, or (xiii) any combination thereof.

[0477] In an aspect, a disclosed method of treating and / or preventing GA-1 disease progression can comprise restoring expression of glutaryl-CoA dehydrogenase. In an aspect, a disclosed method of treating and / or preventing GA-1 disease progression can comprise improving and / or diminishing and / or ameliorate one or more symptoms associated Glutaric Aciduria Type-1 in a subject. In an aspect, a disclosed method of treating a...

Claims

CLAIMSWhat is claimed is:

1. An isolated nucleic acid molecule, comprising a nucleic acid sequence encoding a recombinant glutaryl-CoA dehydrogenase (GCDH).

2. The isolated nucleic acid molecule of Claim 1, wherein the recombinant GCDH comprises one or more functional domains.

3. The isolated nucleic acid molecule of Claim 1 or 2, wherein the encoded recombinant GCDH comprises the amino acid sequence set forth in SEQ ID NO:3.

4. The isolated nucleic acid molecule of any one of Claims 1-3, wherein the nucleic acid sequence encoding the recombinant GCDH comprises a sequence having at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or greater than about 95% identity to the protein coding sequence set forth in SEQ ID NO: 17 or SEQ ID NO: 18, or a fragment thereof.

5. The isolated nucleic acid of Claim 1 or 2, wherein the encoded recombinant GCDH is a variantGCDH comprising one or more amino acid substitutions.

6. The isolated nucleic acid of Claim 5, wherein the recombinant GCDH comprises a) one or more substitutions selected from K163R, K240R, K202R, or K371R; b) a set of substitutions selected from K163R and K240R; c) a set of substitutions selected from K202R and K371R; d) or a set of substitutions selected from K163R, K202R, K240R, and K371R, wherein amino acid numbering is according to SEQ ID NO:3.

7. The isolated nucleic acid of Claim 5 or 6, wherein the variant GCDH comprises the amino acid sequence set forth in SEQ ID NO:200, SEQ ID NO:201, or SEQ ID NO:202, or a fragment thereof.

8. The isolated nucleic acid molecule of any one of Claims 6-7, wherein the nucleic acid sequence encoding the recombinant GCDH comprises a sequence having at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or greaterthan about 95% identity to the sequence set forth in SEQ ID NO: 197, SEQ ID NO: 198, or SEQ ID NO: 199, or a fragment thereof.

9. The isolated nucleic acid molecule of any one of claims 1-6, further comprising a) at least one 5 '-cap; b) a 5’UTR sequence, optionally wherein the 5’UTR sequence comprises the sequence set forth in SEQ ID NO: 189; c) an open reading frame (ORF) encoding the recombinant or wildtype GCDH; d) a 3’UTR sequence, optionally comprising the sequence set forth in SEQ ID NO: 190; and / or e) a poly-A region.

10. The isolated nucleic acid molecule of any one of Claims 1-9, which is an mRNA molecule, optionally a modified mRNA (mmRNA).

11. The isolated nucleic acid molecule of any one of Claims 1-10, wherein the isolated nucleic acid molecule is encapsulated or attached to a delivery vehicle.

12. The isolated nucleic acid molecule of Claim 11, wherein the delivery vehicle is a lipid nanoparticle.

13. An isolated nucleic acid molecule, comprising a nucleic acid sequence encoding one or more elements of a gene editing system, wherein the gene editing system targets a target sequence within the aminoadipate-semialdehyde synthase (AASS) gene.

14. The isolated nucleic acid molecule of Claim 13, wherein the target sequence within the AASS gene renders a partial knockout or a complete knockout of AASS protein activity or expression.

15. The isolated nucleic acid molecule of Claim 13 or 14, wherein the gene editing system is selected from a a) CRISPR gene editing system, optionally selected from a CRISPR-Cas or CRISPR-KRAB gene editing system; b) prime editing system; c) base editing system; d) zinc-finger nuclease gene editing system; e) TALEN gene editing system;f) ARCUS nuclease gene editing system; g) meganuclease gene editing system; h) recombinase gene editing system, optionally selected from a Cre recombinase or FLP tyrosine recombinase gene editing system; i) transposase gene editing system, optionally selected from a Sleeping Beauty (SB) transposase or ISY100 transposase gene editing system; j) integrase gene editing system, optionally selected from a Streptomyces phage C31 integrase gene editing system, or k) homologous recombination gene editing system, optionally selected from small fragment homologous replacement editing system.

16. The isolated nucleic acid molecule of claim 15, wherein the gene editing system is a CRISPR-Cas system selected from a) a Class I or Class II CRISPR-Cas system; b) a Type I, Type II, Type III, Type IV, Type V, or a Type VI CRISPR-Cas system; or c) a Subtype A, Subtype B, Subtype C, Subtype D, Subtype E, Subtype F, or Subtype UCRISPR-Cas system; or d) a Cascade, SpCas9, SaCas9, FnCas9, NmCas9, Casl2a (Cpfl), Casl2b (C2cl), Casl2c(C2c3), Casl3a (C2c2), Casl3b(C2c4), Casl3c (C2c7), or Casl3d CRISPR-Cas system.

17. The isolated nucleic acid molecule of Claim 15 or 16, wherein the gene editing system is aCRISPR-Cas system, and the one or more elements of the gene editing system comprises a Cas9 endonuclease, optionally an SaCas9 endonuclease.

18. The isolated nucleic acid molecule of Claim 17, wherein the Cas9 endonuclease is encoded by a sequence having at least 80%, at least 85%, at least 90%, or at least 95% identity to the sequence set forth in SEQ ID NO:28.

19. The isolated nucleic acid molecule of any one of Claims 13-18, wherein the target sequence within the AASS gene is selected from: a) within the 5’UTR, within exon 1, within exon 2, within exon 3, within exon 4, within exon 5, within exon 6, within exon 7, within exon 8, within exon 9, within exon10, within exon 11, within exon 12, within exon 13, within exon 14, within exon15, within exon 16, within exon 17, within exon 18, within exon 19, within exon20, within exon 21, within exon 22, within exon 23, within exon 24, within exon24, within exon 25, within the 3’UTR, or within a portion of any one of exons 1- 25 or the 5’UTR and 3 ’UTR of the AASS gene; or b) an overlap region of the AASS gene comprising a portion of a first region of AASS and a portion of a second region of AASS, wherein i) ii) the portion of the first region of AASS is within exon 1 of AASS and the portion of the second region of AASS is within exon 2 of AASS; iii) the portion of the first region of AASS is within exon 2 of AASS and the portion of the second region of AASS is within exon 3 of AASS; iv) the portion of the first region of AASS is within exon 3 of AASS and the portion of the second region of AASS is within exon 4 of AASS; v) the portion of the first region of AASS is within exon 4 of AASS and the portion of the second region of AASS is within exon 5 of AASS; vi) the portion of the first region of AASS is within exon 5 of AASS and the portion of the second region of AASS is within exon 6 of AASS; vii) the portion of the first region of AASS is within exon 6 of AASS and the portion of the second region of AASS is within exon 7 of AAS ; viii) the portion of the first region of AASS is within exon 7 of AASS and the portion of the second region of AASS is within exon 8 of AASS; ix) the portion of the first region of AASS is within exon 8 of AASS and the portion of the second region of AASS is within exon 9 of AASS; x) the portion of the first region of AASS is within exon 9 of AASS and the portion of the second region of AASS is within exon 10 of AASS; xi) the portion of the first region of AASS is within exon 10 of AASS and the portion of the second region of AASS is within exon 11 of AASS; xii) the portion of the first region of AASS is within exon 11 of AASS and the portion of the second region of AASS is within exon 12 of AASS; xiii) the portion of the first region of AASS is within exon 12 of AASS and the portion of the second region of AASS is within exon 13 of AASS; xiv) the portion of the first region of AASS is within exon 13 of AASS and the portion of the second region of AASS is within exon 14 of AASS; xv) the portion of the first region of AASS is within exon 14 of AASS and the portion of the second region of AASS is within exon 15 of AASS;xvi) the portion of the first region of AASS is within exon 15 of AASS and the portion of the second region of AASS is within exon 16 of AASS; xvii) the portion of the first region of AASS is within exon 16 of AASS and the portion of the second region of AASS is within exon 17 of AASS; xviii) the portion of the first region of AASS is within exon 17 of AASS and the portion of the second region of AASS is within exon 18 of AASS; xix) the portion of the first region of AASS is within exon 18 of AASS and the portion of the second region of AASS is within exon 19 of AASS; xx) the portion of the first region of AASS is within exon 19 of AASS and the portion of the second region of AASS is within exon 20 of AASS; xxi) the portion of the first region of AASS is within exon 20 of AASS and the portion of the second region of AASS is within exon 21 of AASS; xxii) the portion of the first region of AASS is within exon 21 of AASS and the portion of the second region of AASS is within exon 22 of AASS; xxiii) the portion of the first region of AASS is within exon 22 of AASS and the portion of the second region of AASS is within exon 23 of AASS; xxiv) the portion of the first region of AASS is within exon 23 of AASS and the portion of the second region of AASS is within exon 24 of AASS; or xxv) the portion of the first region of AASS is within exon 24 of AASS and the portion of the second region of AASS is within exon 25 of AASS..

20. The isolated nucleic acid molecule of Claim 19, wherein the overlap region comprises a) about 90% of the number of nucleotides of the overlap region being within the first region and about 10% of the number of nucleotides of the overlap region being within the second region; b) about 80% of the number of nucleotides of the overlap region being within the first region and about 20% of the number of nucleotides of the overlap region being within the second region; c) about 70% of the number of nucleotides of the overlap region being within the first region and about 30% of the number of nucleotides of the overlap region being within the second region; d) about 60% of the number of nucleotides of the overlap region being within the first region and about 40% of the number of nucleotides of the overlap region being within the second region;e) about 50% of the number of nucleotides of the overlap region being within the first region and about 50% of the number of nucleotides of the overlap region being within the second region; f) about 40% of the number of nucleotides of the overlap region being within the first region and about 60% of the number of nucleotides of the overlap region being within the second region; g) about 30% of the number of nucleotides of the overlap region being within the first region and about 70% of the number of nucleotides of the overlap region being within the second region; h) about 20% of the number of nucleotides of the overlap region being within the first region and about 80% of the number of nucleotides of the overlap region being within the second region; or i) about 10% of the number of nucleotides of the overlap region being within the first region and about 90% of the number of nucleotides of the overlap region being within the second region.

21. The isolated nucleic acid molecule of Claim 13, wherein the gene editing system is a CRISPR gene editing system, and the one or more elements of the gene editing system comprises an sgRNA, which targets the AASS gene.

22. The isolated nucleic acid molecule of Claim 21, wherein the sgRNA comprises the sequence set forth in any one of SEQ ID NOS:7-10.

23. The isolated nucleic acid molecule of Claim 13, wherein the gene editing system is a CRISPR gene editing system, and the one or more elements of the gene editing system comprises a Cas9 endonuclease encoded by the sequence set forth in SEQ ID NO:28, and an sgRNA comprising the sequence set forth in any one of SEQ ID NOS:7-10.

24. A vector, comprising the isolated nucleic acid encoding the recombinant GCDH according to any one of Claims 1-10.

25. The vector of Claim 24, comprising a promoter operably linked to the nucleic acid sequence encoding the recombinant GCDH.

26. The vector of Claim 24 or 25, wherein the promoter comprises a liver specific promoter.

27. The vector of Claim 26, wherein the liver specific promoter comprises or consists of the sequence set forth in SEQ ID NO:26.

28. A viral vector, comprising the vector of any one of Claims 24-27.

29. The viral vector of Claim 28, which is selected from an adeno-associated viral (AAV) vector, adenoviral vector, retroviral vector, lentiviral vector, poxviral vector, or a herpes simplex viral vector.

30. The viral vector of Claim 29, which is an AAV vector selected from AAV8 or AAVcc47.

31. A non-viral vector, comprising the vector of any one of Claims 24-27.

32. The non-viral vector of Claim 31, which is a lipid nanoparticle, cationic particle, cationic liposome, cationic polymer, or a lipid-polymer..

33. A vector, comprising the isolated nucleic acid molecule encoding the one or more elements of a gene editing system according to any one of Claims 13-23.

34. The vector of Claim 33, comprising a promoter operably linked to the one or more elements of the gene editing system.

35. The vector of Claim 34, wherein the promoter comprises a liver specific promoter.

36. The vector of any one of Claims 31-35, wherein the gene editing system is a CRISPR-Cas system, and the one or more elements of the gene editing system comprises a Cas9 endonuclease, optionally an SaCas9 endonuclease, which is operably linked to the liver specific promoter.

37. The vector of Claim 35 or 36, wherein the liver specific promoter comprises the sequence set forth in SEQ ID NO:26.

38. The vector of any one of Claims 31-37, comprising a promoter operably linked to an sgRNA.

39. The vector of Claim 38, wherein the promoter operably linked to the sgRNA comprises a U6 promoter.

40. The vector of Claim 39, wherein the U6 promoter comprises the sequence set forth in SEQ ID NO:27.

41. A viral vector, comprising the vector of any one of Claims 33-40.

42. The viral vector of Claim 41, which is selected from an adeno-associated viral (AAV) vector, adenoviral vector, retroviral vector, lentiviral vector, poxviral vector, or a herpes simplex viral vector.

43. The viral vector of Claim 42, which is an AAV vector selected from AAV8 or AAVcc47.

44. A viral vector, comprising: the sequence set forth in SEQ ID NO: 19, SEQ ID NO:20, or SEQID N0:21.

45. A non-viral vector, comprising the vector of any one of Claims 33-40.

46. The non-viral vector of claim 45, which is a lipid nanoparticle, cationic particle, cationic liposome, cationic polymer, or a lipid-polymer.

47. A method of modulating lysine catabolism in the liver, the method comprising: administering to a subject in need thereof a therapeutically effective amount of a silencing oligonucleotide, wherein the silencing oligonucleotide silences a gene in one or more lysine catabolism pathways in the liver of the subject, and / or administering to a subject in need thereof a therapeutically effective amount of the vector of any one of Claims 24-27, the viral vector of any one of Claims 28-30, or the non-viral vector of Claim 31 or 32, wherein expression of the nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase (GCDH) in the liver of the subject.

48. A method of modulating lysine catabolism in the liver, the method comprising: administering to a subject in need thereof a therapeutically effective amount of silencing oligonucleotide, wherein the silencing oligonucleotide silences a gene in one or more lysine catabolism pathways in the liver of the subject, and / or administering to a subject in need thereof a therapeutically effective amount of protein replacement therapy, wherein expression of the encoded nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase (GCDH) in the liver of the subject.

49. The method of Claim 48, wherein the protein replacement therapy is an mRNA therapy, gene therapy, or therapeutic administration of a recombinant protein.

50. The method of Claim 48 or 49, wherein the protein replacement therapy increases expression of a functional glutaryl-CoA dehydrogenase (GCDH) in the liver of the subject, optionally wherein the GCDH comprises a) one or more substitutions selected from K163R, K240R, K202R, OR K371R; b) a set of substitutions selected from K163R and K240R; c) a set of substitutions selected from K202R and K371R; d) or a set of substitutions selected from K163R, K202R, K240R, and K371R.

51. The method of any one of Claims 47-50, wherein the silencing oligonucleotide is selected from an siRNA, antisense oligonucleotide, miRNA, shRNA, ssRNA, dsRNA, piRNA, or a 3 UTR of mRNA.

52. The method of any one of Claims 47-51, wherein the silencing oligonucleotide is conjugated to a tissue-targeting moiety.

53. The method of Claim 52, wherein the tissue-targeting moiety targets the liver.

54. The method of Claim 53, wherein the tissue-targeting moiety comprises one or more GalNAc, optionally two or three GalNAc.

55. The method of any one of Claims 47-54, wherein silencing oligonucleotide targets a target sequence within the aminoadipate-semialdehyde synthase (AASS) gene.

56. The method of claim 55, wherein target sequence within the AASS gene is selected from: a) within the 5’UTR, within exon 1, within exon 2, within exon 3, within exon 4, within exon 5, within exon 6, within exon 7, within exon 8, within exon 9, within exon 10, within exon 11, within exon 12, within exon 13, within exon 14, within exon15, within exon 16, within exon 17, within exon 18, within exon 19, within exon20, within exon 21, within exon 22, within exon 23, within exon 24, within exon24, within exon 25, within the 3 ’ UTR, or within a portion of any one of exons 1-25 or the 5’UTR or 3 ’UTR of the AASS gene; or b) an overlap region of the AASS gene comprising a portion of a first region of AASS and a portion of a second region of AASS, wherein i) portion of the first region of AASS is within the 5’UTR of AASS and the portion of the second region of AASS is within exon 1 of AASS; ii) the portion of the first region of AASS is within exon 1 of AASS and the portion of the second region of AASS is within exon 2 of AASS;iii) the portion of the first region of AASS is within exon 2 of AASS and the portion of the second region of AASS is within exon 3 of AASS; iv) the portion of the first region of AASS is within exon 3 of AASS and the portion of the second region of AASS is within exon 4 of AASS; v) the portion of the first region of AASS is within exon 4 of AASS and the portion of the second region of AASS is within exon 5 of AASS; vi) the portion of the first region of AASS is within exon 5 of AASS and the portion of the second region of AASS is within exon 6 of AASS; vii) the portion of the first region of AASS is within exon 6 of AASS and the portion of the second region of AASS is within exon 7 of AAS ; viii) the portion of the first region of AASS is within exon 7 of AASS and the portion of the second region of AASS is within exon 8 of AASS; ix) the portion of the first region of AASS is within exon 8 of AASS and the portion of the second region of AASS is within exon 9 of AASS; x) the portion of the first region of AASS is within exon 9 of AASS and the portion of the second region of AASS is within exon 10 of AASS; xi) the portion of the first region of AASS is within exon 10 of AASS and the portion of the second region of AASS is within exon 11 of AASS; xii) the portion of the first region of AASS is within exon 11 of AASS and the portion of the second region of AASS is within exon 12 of AASS; xiii) the portion of the first region of AASS is within exon 12 of AASS and the portion of the second region of AASS is within exon 13 of AASS; xiv) the portion of the first region of AASS is within exon 13 of AASS and the portion of the second region of AASS is within exon 14 of AASS; xv) the portion of the first region of AASS is within exon 14 of AASS and the portion of the second region of AASS is within exon 15 of AASS; xvi) the portion of the first region of AASS is within exon 15 of AASS and the portion of the second region of AASS is within exon 16 of AASS; xvii) the portion of the first region of AASS is within exon 16 of AASS and the portion of the second region of AASS is within exon 17 of AASS; xviii) the portion of the first region of AASS is within exon 17 of AASS and the portion of the second region of AASS is within exon 18 of AASS; xix) the portion of the first region of AASS is within exon 18 of AASS and the portion of the second region of AASS is within exon 19 of AASS;xx) the portion of the first region of AASS is within exon 19 of AASS and the portion of the second region of AASS is within exon 20 of AASS; xxi) the portion of the first region of AASS is within exon 20 of AASS and the portion of the second region of AASS is within exon 21 of AASS; xxii) the portion of the first region of AASS is within exon 21 of AASS and the portion of the second region of AASS is within exon 22 of AASS; xxiii) the portion of the first region of AASS is within exon 22 of AASS and the portion of the second region of AASS is within exon 23 of AASS; xxiv) the portion of the first region of AASS is within exon 23 of AASS and the portion of the second region of AASS is within exon 24 of AASS; xxv) the portion of the first region of AASS is within exon 24 of AASS and the portion of the second region of AASS is within exon 25 of AASS; or xxvi) the portion of the first region of AASS is within exon 25 of AASS and the portion of the second region of AASS is within the 3’UTR of AASS.

57. The method of Claim 56, wherein the overlap region comprises a) about 90% of the number of nucleotides of the overlap region being within the first region and about 10% of the number of nucleotides of the overlap region being within the second region; b) about 80% of the number of nucleotides of the overlap region being within the first region and about 20% of the number of nucleotides of the overlap region being within the second region; c) about 70% of the number of nucleotides of the overlap region being within the first region and about 30% of the number of nucleotides of the overlap region being within the second region; d) about 60% of the number of nucleotides of the overlap region being within the first region and about 40% of the number of nucleotides of the overlap region being within the second region; e) about 50% of the number of nucleotides of the overlap region being within the first region and about 50% of the number of nucleotides of the overlap region being within the second region; f) about 40% of the number of nucleotides of the overlap region being within the first region and about 60% of the number of nucleotides of the overlap region being within the second region;g) about 30% of the number of nucleotides of the overlap region being within the first region and about 70% of the number of nucleotides of the overlap region being within the second region; h) about 20% of the number of nucleotides of the overlap region being within the first region and about 80% of the number of nucleotides of the overlap region being within the second region; or i) about 10% of the number of nucleotides of the overlap region being within the first region and about 90% of the number of nucleotides of the overlap region being within the second region.

58. The method of any one of Claims 55-57, wherein the target sequence within the AASS gene comprises a) one or more nucleotides of the AASS gene corresponding to positions 127-142, positions 256-271, positions 355-370, positions 433-448, positions 486-501, 572- 587, positions 661-676, positions 777-792, positions 858-873, positions 1045- 1060, positions 1329-1344, positions 1345-1360, positions 1378-1393, 1490-1505, positions 1672-1687, positions 1832-1847, positions 1944-1959, positions 2042- 2057, positions 2072-2087, positions 2220-2235, positions 2384-2399, positions 2588-2603, or positions 2714-2729 of an AASS gene having the sequence set forth in SEQ ID NO:36; b) one or more nucleotides of the AASS gene corresponding to positions 615-635, positions 726-746, positions 742-760, positions 742-762, positions 843-863843- 863, positions 911-929, positions 911-931, positions 1010-1030, positions 1154- 1172, positions 1154-1174, positions 1292-1310, positions 1292-1312, positions 1355-1375, positions 1358-1376, positions 1358-1378, positions 1364-1384, positions 1476-1496, positions 1521-1541, positions 1531-1551, positions 1613- 1633, positions 2222-2242, or positions 2438-2458 of an AASS gene having the sequence set forth in SEQ ID NO:36; c) one or more nucleotides of the AASS gene corresponding to positions within about 20 nucleotides in the 3’ direction from starting position 95, 103, 104, 105, 292, 489, 533, 534, 726, 739, 740, 893, 1059, 1181, 1447, 1448, 1449, 2197, 2211, 2468, 2492, 2498, 2804, 2805, 2526, 3061, 3929, 4002, 4003, 4004, 5278, 5283, 5411, 5416, 5417, 5605, 5678, 5679 of an AASS gene having the sequence set forth in SEQ ID NO:36;d) one or more nucleotides of the AASS gene corresponding to positions within about 20 nucleotides in the 3’ direction from starting position 6, 31, 105, 195, 280, 488, 530, 892, 1060, 1144, 1306, 1384, 1385, 1455, 2100, 2151, 2214, 2825, 2914, 4003, 4004, 4366, 5283, or 5679 of an AASS gene having the sequence set forth in SEQ ID NO:36.

59. The method of any one of Claims 53-58, wherein the silencing oligonucleotide comprises or consists of a nucleic acid sequence selected from any one of SEQ ID NOS:33, 34, 41-65, 67-72, 74-117, 120-182, or a reverse complement thereof.

60. The method of any one of Claims 47-59, wherein the gene in the one or more lysine catabolism pathways comprises the aminoadipate-semialdehyde synthase gene, a-aminoadipic semialdehyde gene, the kynurenine aminotransferase 2 gene, the dehydrogenase El and transketolase domain-containing protein 1 gene, the L-lysine alpha-oxidase gene, the ketimine reductase mu-crystallin protein gene, the peroxisomal sarcosine oxidase gene, or the pyrroline-5 -carboxylate reductase gene.

61. A method of restoring the expression of glutaryl-CoA dehydrogenase (GCDH), the method comprising: a) administering to a subject in need thereof a therapeutically effective amount of the vector of any one of Claims 24-27, the viral vector of any one of Claims 28-30, or the non-viral vector of Claim 31 or 32, wherein expression of the encoded nucleic acid sequence generates a functional glutaryl-CoA dehydrogenase in the liver.

62. The method of any one of Claims 47-61, wherein the activity or expression of glutaryl-CoA dehydrogenase is restored in the liver of the subject.

63. The method of any one of Claims 47-61, wherein normal lysine catabolism is restored in the subj ect.

64. The method of any one of Claims 47-61, wherein the subject has been diagnosed with glutaric aciduria type 1 (GA-1).

65. The method of any one of Claims 47-61, wherein administering the vector, viral vector, or protein replacement therapy comprises intravenous administration or intrahepatic administration.

66. The method of Claim 47 or 61, wherein a therapeutically effective amount of the viral vector comprises a range of about 1 x IO10vg / kg to about 2 x 1014vg / kg.

67. The method of any one of Claim 47-66, further comprising monitoring the subject for adverse effects following the administering step.

68. The method of Claim 67, wherein in the presence of adverse effects, the method further comprises modifying one or more steps of the method.

69. The method of any one of Claims 61-68, further comprising administering to the subject a therapeutically effective amount of a therapeutic agent.

70. The method of any one of Claims 61-69, further comprising administering to the subject a therapeutically effective amount of one or more immune modulators.

71. The method of Claim 70, wherein the one or more immune modulators comprise methotrexate, rituximab, intravenous gamma globulin, Tacrolimus, prednisolone or a prednisolone analog, SVP-Rapamycin, bortezomib, or a combination thereof.

72. The method of any one of Claims 47-71, further comprising monitoring the subject’s metabolic and / or physiologic improvement.

73. The method of any one of Claims 47-72, wherein liver-specific modulation of lysine catabolism is restored, wherein one or more aspects of lysine homeostasis is restored in the subject’s liver, wherein the level of toxic catabolites in the liver is reduced, wherein the level of toxic catabolites in the brain is reduced, wherein the metabolic flux from glutaryl-CoA to crotonyl-CoA is restored in the subject’s liver, wherein the subject’s motor performance is improved, wherein the subject’s memory function is improved, wherein the subject’s anxiety is reduced and / or prevented, wherein the subject’s neurological sequelae are reduced and / or prevented, wherein the subject’s vascular dysfunction is improved, wherein the subject’s quality of life is improved, wherein the subject’s life span is increased, wherein the subject’s survivability is increased, or any combination thereof.

74. A method of reprogramming a metabolic pathway, the method comprising administering to a subject in need thereof a therapeutically effective amount of a viral vector comprising a nucleic acid sequence encoding a Cas9 endonuclease and a sgRNA directed at a target sequence in the aminoadipate-semialdehyde synthase (AASS) gene.

75. The method of Claim 74, wherein normal lysine catabolism is restored.

76. The method of Claim 74 wherein the viral vector comprises the viral vector of any one ofClaims 41-44.

77. The method of Claim 74, wherein administering the viral vector comprises intravenous administration or intrahepatic administration.

78. The method of Claim 74, wherein a therapeutically effective amount of the viral vector comprises a range of about 1 x IO10vg / kg to about 2 x 1014vg / kg.

79. The method of Claim 74, further comprising monitoring the subject for adverse effects following the administering step.

80. The method of Claim 79, wherein in the presence of adverse effects, the method further comprises modifying one or more steps of the method.

81. The method of any one of Claims 74-80, further comprising administering to the subject a therapeutically effective amount of a therapeutic agent.

82. The method of any one of Claims 74-81, further comprising administering to the subject a therapeutically effective amount of a one or more immune modulators.

83. The method of Claim 82, wherein the one or more immune modulators comprise methotrexate, rituximab, intravenous gamma globulin, Tacrolimus, prednisolone or a prednisolone analog, SVP-Rapamycin, bortezomib, or a combination thereof.

84. The method of any one of Claims 74-83, further comprising monitoring the subject’s metabolic and / or physiologic improvement.

85. The method of Claim 74, wherein the expression of the nucleic acid sequences eliminates the functionality of aminoadipate-semialdehyde synthase in the subject’s liver.

86. The method of any one of Claims 74-85, wherein liver-specific modulation of lysine catabolism is restored, wherein one or more aspects of lysine homeostasis is restored in the subject’s liver, wherein the level of toxic catabolites in the liver is reduced, wherein the level of toxic catabolites in the brain is reduced, wherein the metabolic flux from glutaryl-CoA to crotonyl-CoA is restored in the subject’s liver, wherein the subject’s motor performance is improved, wherein the subject’s memory function is improved,wherein the subject’s anxiety is reduced and / or prevented, wherein the subject’s neurological sequelae are reduced and / or prevented, wherein the subject’s vascular dysfunction is improved, wherein the subject’s quality of life is improved, wherein the subject’s life span is increased, wherein the subject’s survivability is increased, or any combination thereof.

87. The method of any one of Claims 74-85, wherein the metabolic pathway that is reprogrammed comprises a lysine metabolic pathway.

88. The method of Claim 87, wherein the lysine metabolic pathway comprises the pipecolate pathway and / or the saccharopine pathway.

89. A method of treating and / or preventing GA-1 disease progression, the method comprising: administering to the liver of a subj ect in need thereof a therapeutically effective amount of hepatocytes, wherein the hepatocytes are GCDH+ / + / AASS+ / +.

90. The method of Claim 89, wherein liver-specific modulation of lysine catabolism is restored, wherein one or more aspects of lysine homeostasis is restored in the subject’s liver, wherein the level of toxic catabolites in the liver is reduced, wherein the level of toxic catabolites in the brain is reduced, wherein the metabolic flux from glutaryl-CoA to crotonyl-CoA is restored in the subject’s liver, wherein the subject’s motor performance is improved, wherein the subject’s memory function is improved, wherein the subject’s anxiety is reduced and / or prevented, wherein the subject’s neurological sequelae are reduced and / or prevented, wherein the subj ect’ s vascular dysfunction is improved, wherein the subject’s quality of life is improved, wherein the subject’s life span is increased, wherein the subject’s survivability is increased, or any combination thereof.

91. A silencing oligonucleotide, which hybridizes to a targeted mRNA, wherein the targeted mRNA encodes aminoadipic semialdehyde synthase (AASS) or a portion thereof.

92. The silencing oligonucleotide of Claim 91, wherein the targeted mRNA comprises the sequence of SEQ ID NO:36 or a portion thereof.

93. The silencing oligonucleotide of Claim 91, wherein the targeted mRNA encodes an AASS comprising the amino acid sequence of SEQ ID NO:37 or a portion thereof.

94. The silencing oligonucleotide of any one of Claims 91-93, wherein the silencing oligonucleotide is conjugated to a tissue-targeting moeity.

95. The silencing oligonucleotide of Claim 94, wherein the tissue-targeting moiety targets the liver.

96. The silencing oligonucleotide of Claim 95, wherein the tissue-targeting moiety comprises one or more GalNAc, optionally two GalNAc or three GalNAc.

97. The silencing oligonucleotide of any one of Claims 91-96, which targets a target sequence within the AASS mRNA selected from: a) within the 5’UTR, within exon 1, within exon 2, within exon 3, within exon 4, within exon 5, within exon 6, within exon 7, within exon 8, within exon 9, within exon 10, within exon 11, within exon 12, within exon 13, within exon 14, within exon15, within exon 16, within exon 17, within exon 18, within exon 19, within exon20, within exon 21, within exon 22, within exon 23, within exon 24, within exon24, within exon 25, within the 3’UTR, or within a portion of any one of exons 1-25 or the 5’UTR or 3 ’UTR of the AASS mRNA; or b) an overlap region of the AASS mRNA comprising a portion of a first region of AASS and a portion of a second region of AASS, wherein i) the portion of the first region of AASS is within the 5’UTR of AASS and the portion of the second region of AASS is within the 3’UTR of AASS; ii) the portion of the first region of AASS is within exon 1 of AASS and the portion of the second region of AASS is within exon 2 of AASS; iii) the portion of the first region of AASS is within exon 2 of AASS and the portion of the second region of AASS is within exon 3 of AASS; iv) the portion of the first region of AASS is within exon 3 of AASS and the portion of the second region of AASS is within exon 4 of AASS; v) the portion of the first region of AASS is within exon 4 of AASS and the portion of the second region of AASS is within exon 5 of AASS; vi) the portion of the first region of AASS is within exon 5 of AASS and the portion of the second region of AASS is within exon 6 of AASS; vii) the portion of the first region of AASS is within exon 6 of AASS and the portion of the second region of AASS is within exon 7 of AAS ; viii) the portion of the first region of AASS is within exon 7 of AASS and the portion of the second region of AASS is within exon 8 of AASS; ix) the portion of the first region of AASS is within exon 8 of AASS and the portion of the second region of AASS is within exon 9 of AASS;x) the portion of the first region of AASS is within exon 9 of AASS and the portion of the second region of AASS is within exon 10 of AASS; xi) the portion of the first region of AASS is within exon 10 of AASS and the portion of the second region of AASS is within exon 11 of AASS; xii) the portion of the first region of AASS is within exon 11 of AASS and the portion of the second region of AASS is within exon 12 of AASS; xiii) the portion of the first region of AASS is within exon 12 of AASS and the portion of the second region of AASS is within exon 13 of AASS; xiv) the portion of the first region of AASS is within exon 13 of AASS and the portion of the second region of AASS is within exon 14 of AASS; xv) the portion of the first region of AASS is within exon 14 of AASS and the portion of the second region of AASS is within exon 15 of AASS; xvi) the portion of the first region of AASS is within exon 15 of AASS and the portion of the second region of AASS is within exon 16 of AASS; xvii) the portion of the first region of AASS is within exon 16 of AASS and the portion of the second region of AASS is within exon 17 of AASS; xviii) the portion of the first region of AASS is within exon 17 of AASS and the portion of the second region of AASS is within exon 18 of AASS; xix) the portion of the first region of AASS is within exon 18 of AASS and the portion of the second region of AASS is within exon 19 of AASS; xx) the portion of the first region of AASS is within exon 19 of AASS and the portion of the second region of AASS is within exon 20 of AASS; xxi) the portion of the first region of AASS is within exon 20 of AASS and the portion of the second region of AASS is within exon 21 of AASS; xxii) the portion of the first region of AASS is within exon 21 of AASS and the portion of the second region of AASS is within exon 22 of AASS; xxiii) the portion of the first region of AASS is within exon 22 of AASS and the portion of the second region of AASS is within exon 23 of AASS; xxiv) the portion of the first region of AASS is within exon 23 of AASS and the portion of the second region of AASS is within exon 24 of AASS; xxv) the portion of the first region of AASS is within exon 24 of AASS and the portion of the second region of AASS is within exon 25 of AASS; xxvi) the portion of the first region of AASS is within exon 25 of AASS and the portion of the second region of AASS is within the 3’UTR of AASS.

98. The silencing oligonucleotide of Claim 97, wherein the overlap region comprises a) about 90% of the number of nucleotides of the overlap region being within the first region and about 10% of the number of nucleotides of the overlap region being within the second region; b) about 80% of the number of nucleotides of the overlap region being within the first region and about 20% of the number of nucleotides of the overlap region being within the second region; c) about 70% of the number of nucleotides of the overlap region being within the first region and about 30% of the number of nucleotides of the overlap region being within the second region; d) about 60% of the number of nucleotides of the overlap region being within the first region and about 40% of the number of nucleotides of the overlap region being within the second region; e) about 50% of the number of nucleotides of the overlap region being within the first region and about 50% of the number of nucleotides of the overlap region being within the second region; f) about 40% of the number of nucleotides of the overlap region being within the first region and about 60% of the number of nucleotides of the overlap region being within the second region; g) about 30% of the number of nucleotides of the overlap region being within the first region and about 70% of the number of nucleotides of the overlap region being within the second region; h) about 20% of the number of nucleotides of the overlap region being within the first region and about 80% of the number of nucleotides of the overlap region being within the second region; or i) about 10% of the number of nucleotides of the overlap region being within the first region and about 90% of the number of nucleotides of the overlap region being within the second region.

99. The silencing oligonucleotide of any one of Claims 91-98, wherein the target sequence within the AASS mRNA comprises a) one or more nucleotides of the AASS gene corresponding to positions 127-142, positions 256-271, positions 355-370, positions 433-448, positions 486-501, 572- 587, positions 661-676, positions 777-792, positions 858-873, positions 1045- 1060, positions 1329-1344, positions 1345-1360, positions 1378-1393, 1490-1505,positions 1672-1687, positions 1832-1847, positions 1944-1959, positions 2042- 2057, positions 2072-2087, positions 2220-2235, positions 2384-2399, positions 2588-2603, or positions 2714-2729 of an AASS gene having the sequence set forth in SEQ ID NO:36; b) one or more nucleotides of the AASS gene corresponding to positions 615-635, positions 726-746, positions 742-760, positions 742-762, positions 843-863, positions 911-929, positions 911-931, positions 1010-1030, positions 1154-1172, positions 1154-1174, positions 1292-1310, positions 1292-1312, positions 1355- 1375, positions 1358-1376, positions 1358-1378, positions 1364-1384, positions 1476-1496, positions 1521-1541, positions 1531-1551, positions 1613-1633, positions 2222-2242, or positions 2438-2458 of an AASS gene having the sequence set forth in SEQ ID NO: 36; c) one or more nucleotides of the AASS gene corresponding to positions within about 20 nucleotides in the 3’ direction from starting position 95, 103, 104, 105, 292, 489, 533, 534, 726, 739, 740, 893, 1059, 1181, 1447, 1448, 1449, 2197, 2211, 2468, 2492, 2498, 2804, 2805, 2526, 3061, 3929, 4002, 4003, 4004, 5278, 5283, 5411, 5416, 5417, 5605, 5678, 5679 of an AASS gene having the sequence set forth in SEQ ID NO:36; d) one or more nucleotides of the AASS gene corresponding to positions within about 20 nucleotides in the 3’ direction from starting position 6, 31, 105, 195, 280, 488, 530, 892, 1060, 1144, 1306, 1384, 1385, 1455, 2100, 2151, 2214, 2825, 2914, 4003, 4004, 4366, 5283, or 5679 of an AASS gene having the sequence set forth in SEQ ID NO:36.

100. The silencing oligonucleotide of any one of Claims 91-99, comprising or consisting of a nucleic acid sequence selected from any one of SEQ ID NOS:33, 34, 41-65, 67-72, 74- 117, 120-182, or a reverse complement thereof.

101. The silencing oligonucleotide of any one of Claims 91-100, wherein the silencing oligonucleotide is single stranded, or double stranded.

102. The silencing oligonucleotide of any one of Claims 91-101, wherein the silencing oligonucleotide is selected from an siRNA, antisense oligonucleotide, miRNA, shRNA, ssRNA, dsRNA, piRNA, or a 3'UTR of mRNA.

103. The silencing oligonucleotide of any one of Claims 91-102, which is encapsulated in a delivery vehicle.

104. The silencing oligonucleotide of Claim 103, wherein the delivery vehicle is a lipid nanoparticle.

105. An siRNA oligonucleotide that can hybridize to a targeted mRNA that encodes aminoadipic semialdehyde synthase (AASS) or a portion thereof.

106. The siRNA oligonucleotide of Claim 105, wherein the targeted mRNA comprises the sequence of SEQ ID NO:36 or a portion thereof.

107. The siRNA oligonucleotide of Claim 105, wherein an encoded AASS comprises the SEQ IDNO:37 or a portion thereof.

108. The siRNA oligonucleotide of any one of claims 105-107, which comprises or consists of a nucleic acid sequence selected from any one of SEQ ID NOS:33, 34, 41-65, 67-72, 74- 117, 120-182, or a reverse complement thereof.

109. The siRNA oligonucleotide of claim 108, which is double stranded and comprises a set of nucleic acid sequences selected from the sequences set forth in: SEQ ID NO:74 and SEQ ID NO:75; SEQ ID NO:76 and SEQ ID NO:77; SEQ ID NO:78 and SEQ ID NO:79; SEQ ID NO:80 and SEQ ID NO:81; SEQ ID NO:82 and SEQ ID NO:83; SEQ ID NO:84 and SEQ ID NO:85; SEQ ID NO:86 and SEQ ID NO:87; SEQ ID NO:88 and SEQ ID NO:89; SEQ ID NO:90 and SEQ ID NO:91; SEQ ID NO:92 and SEQ ID NO:93; SEQ ID NO:94 and SEQ ID NO:95; SEQ ID NO:96 and SEQ ID NO:97; SEQ ID NO:98 and SEQ ID NO:99; SEQ ID NO: 100 and SEQ ID NO: 101; SEQ ID NO: 102 and SEQ ID NO: 103; SEQ ID NO: 104 and SEQ ID NO: 105; SEQ ID NO: 106 and SEQ ID NO: 107; SEQ ID NO: 108 and SEQ ID NO: 109; SEQ ID NO: 110 and SEQ ID NO: 111; SEQ ID NO: 112 and SEQ ID NO: 113; SEQ ID NOA M and SEQ ID NO: 115; SEQ ID NO: 116 and SEQ ID NO: 117; or SEQ ID NO: 118 and SEQ ID NO: 119.

110. The siRNA oligonucleotide of any one of Claims 105-109, wherein the siRNA oligonucleotide is conjugated to a tissue-targeting moiety.

111. The siRNA oligonucleotide of Claim 110, wherein the tissue-targeting moiety targets the liver.

112. The siRNA oligonucleotide of Claim 111, wherein the tissue-targeting moiety comprises one or more GalNAc, optionally two GalNAc or three GalNAc.

113. The siRNA oligonucleotide of any one of Claims 105-112, which is encapsulated in a delivery vehicle.

114. The siRNA oligonucleotide of Claim 113, wherein the delivery vehicle is a lipid nanoparticle.

115. An antisense oligonucleotide comprising 14-30 nucleotides that can hybridize to a targeted mRNA that encodes aminoadipic semialdehyde synthase (AASS) or a portion thereof.

116. The antisense oligonucleotide of Claim 115, wherein the targeted mRNA comprises the sequence of SEQ ID NO:36 or a portion thereof.

117. The antisense oligonucleotide of Claim 115, wherein an encoded AASS comprises the SEQID NO:37 or a portion thereof.

118. The antisense oligonucleotide of any one of claims 115-117, which comprises or consists of a single stranded nucleic acid sequence selected from any one of SEQ ID NOS:33, 34, 41- 65, 67-72, 74-117, 120-182.

119. The antisense oligonucleotide of any one of claims 115-118, wherein the antisense oligonucleotide is conjugated to a tissue-targeting moiety.

120. The antisense oligonucleotide of Claim 119, wherein the tissue-targeting moiety targets the liver.

121. The antisense oligonucleotide of Claim 120, wherein the tissue-targeting moiety comprises one or more GalNAc, optionally two GalNAc or three GalNAc.

122. The antisense oligonucleotide of any one of Claims 115-121, wherein the antisense oligonucleotide is encapsulated in a lipid nanoparticle.

123. A conjugate, comprising a liver-targeting moiety conjugated to an oligonucleotide, wherein the oligonucleotide is a disclosed isolated nucleic acid molecule, a disclosed silencing oligonucleotide, a disclosed siRNA oligonucleotide, or a disclosed antisense oligonucleotide.

124. A lipid nanoparticle encapsulating a disclosed isolated nucleic acid molecule, a disclosed silencing oligonucleotide, a disclosed siRNA oligonucleotide, or a disclosed antisense oligonucleotide.

125. A lipid nanoparticle encapsulating the silencing oligonucleotide of any one of Claims 91-102, the siRNA oligonucleotide of any one of Claims 105-109, or the antisense oligonucleotide of any one of Claims 115-121.

126. A method of reducing one or more catabolites of lysine catabolism, the method comprising administering to a subject in need thereof a disclosed isolated nucleic acid molecule, a disclosed single stranded RNA molecule, a disclosed single stranded RNA molecule, a disclosed antisense oligonucleotide, or any combination thereof.

127. A method of reducing one or more catabolites of lysine catabolism, the method comprising administering to a subject in need thereof the silencing oligonucleotide of any one of Claims 91-102, the siRNA oligonucleotide of any one of Claims 105-109, the antisense oligonucleotide of any one of Claims 115-121, or any combination thereof.

128. The method of Claim 126 or Claim 127, wherein the one or more catabolites comprise glutaric acid (GA), hydroxyglutaric acid (OH-GA), glutarylcamitine (C5-DC), or any combination thereof.

129. The method of Claim 126 or Claim 127, wherein the lysine catabolites are in the brain.

130. The method of Claim 126 or Claim 127, wherein the lysine catabolites are in the liver.

131. The method of Claim 126 or Claim 127, wherein administering comprises administering to the liver the disclosed isolated nucleic acid molecule, the disclosed single stranded RNA molecule, the disclosed single stranded RNA molecule, the disclosed antisense oligonucleotide, or the combination thereof.

132. The method of any of Claim 126-131, further comprising administering to the subject (i) a gene editing system that targets aminoadipic semialdehyde synthase (AASS), or (ii) thereof a gene editing system that disrupts and / or decreases the expression and / or activity level of aminoadipic semialdehyde synthase (AASS).

133. A method of reducing one or more catabolites of lysine catabolism, the method comprising administering to a subject in need thereof an gene editing system, which targets aminoadipic semialdehyde synthase (AASS).

134. The method of Claim 132 or 133, wherein the gene editing system is selected from a a) CRISPR gene editing system, optionally selected from a CRISPR-Cas or CRISPR-KRAB gene editing system; b) prime editing system; c) base editing system; d) zinc-finger nuclease gene editing system; e) TALEN gene editing system; f) ARCUS nuclease gene editing system; g) meganuclease gene editing system; h) recombinase gene editing system, optionally selected from a Cre recombinase or FLP tyrosine recombinase gene editing system; i) transposase gene editing system, optionally selected from a Sleeping Beauty (SB) transposase or ISY100 transposase gene editing system; j) integrase gene editing system, optionally selected from a Streptomyces phage C31 integrase gene editing system, or k) homologous recombination gene editing system, optionally selected from small fragment homologous replacement editing system.

135. The isolated nucleic acid molecule of claim 134, wherein the gene editing system is aCRISPR-Cas system selected from a) a Class I or Class II CRISPR-Cas system; b) a Type I, Type II, Type III, Type IV, Type V, or a Type VI CRISPR-Cas system; or c) a Subtype A, Subtype B, Subtype C, Subtype D, Subtype E, Subtype F, or Subtype UCRISPR-Cas system; or d) a Cascade, SpCas9, SaCas9, FnCas9, NmCas9, Casl2a (Cpfl ), Casl2b (C2cl), Casl2c(C2c3), Casl3a (C2c2), Casl3b(C2c4), Casl3c (C2c7), or Casl3d CRISPR-Cas system136. A method of reducing one or more catabolites of lysine catabolism, the method comprising administering to a subject in need thereof a gene modulator that disrupts and / or decreases the expression and / or activity level of aminoadipic semialdehyde synthase (AASS).

137. The method of Claim 136, wherein the gene modulator is encapsulated in a lipid nanoparticle.

138. The method of Claim 137, wherein the gene modulator is delivered via adeno-associated viral vector.

139. The method of Claim 137 or 138, wherein the gene modulator is an endonuclease.

140. The method of Claim 133 or Claim 134, wherein the one or more catabolites comprise glutaric acid (GA), hydroxyglutaric acid (OH-GA), glutaryl carnitine (C5-DC), or any combination thereof.

141. The method of Claim 133 or Claim 134, wherein the lysine catabolites are in the brain.

142. The method of Claim 133 or Claim 134, wherein the lysine catabolites are in the liver.

143. The method of Claim 133 or Claim 134, wherein administering comprises administering to the subject (i) a gene editing system that targets aminoadipic semialdehyde synthase (AASS), or (ii) a gene editing system that disrupts and / or decreases the expression and / or activity level of aminoadipic semialdehyde synthase (AASS).

144. The method of Claim 143, wherein the gene editing system is an endonuclease.

145. The method of Claim 133 or Claim 134, wherein administering comprises administering to the subject an adeno-associated viral vector comprising (i) a gene editing system that targets aminoadipic semialdehyde synthase (AASS), or (ii) a gene editing system that disrupts and / or decreases the expression and / or activity level of aminoadipic semialdehyde synthase (AASS).

146. The method of Claim 133 or Claim 134, wherein administering comprises administering to the subject a lipid nanoparticle comprising (i) a gene editing system that targets aminoadipic semialdehyde synthase (AASS), or (ii) a gene editing system that disrupts and / or decreases the expression and / or activity level of aminoadipic semialdehyde synthase (AASS).

147. The method of Claim 146, wherein the gene editing system is an endonuclease.

148. The method of any one of Claim 133-147, further comprising administering to the subject one or more of the silencing oligonucleotide of any one of Claims 91-102, the siRNAoligonucleotide of any one of Claims 105-109, the antisense oligonucleotide of any one of Claims 115-119, or any combination thereof.