Zinc finger proteins for treating prion disease
Patent Information
- Application Number
- ZA202608700
- Authority / Receiving Office
- ZA · ZA
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-05-07
- Filing Date
- 2026-09-02
- Publication Date
- 2026-09-30
AI Technical Summary
Current treatments for prion diseases, such as Creutzfeldt-Jakob Disease, face challenges in effectively targeting and reducing prion protein expression in the brain due to limitations in delivering therapeutic agents across the blood-brain barrier and inability to target specific brain regions affected by these diseases.
Development of zinc finger proteins (ZFPs) that specifically bind to the prion protein gene (PRNP) and repress its transcription, delivered via engineered AAV capsids to achieve high levels of prion protein reduction with minimal off-target effects, allowing for targeted treatment of prion diseases and other neurodegenerative disorders.
ZFPs provide significant prion protein repression, potentially delaying disease onset and progression, offering a one-time treatment option with broad brain region targeting and reduced toxicity, compared to existing methods.
Abstract
Description
Attorney Docket P.0277.WO 91355.11516 ZINC FINGER PROTEINS FOR TREATING PRION DISEASE CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to U.S. Provisional Application 63 / 564,791, filed on March 13, 2024, U.S. Provisional Application 63 / 643,900, filed on May 7, 2024. The contents of the aforementioned provisional applications are incorporated herein by reference in their entirety. SEQUENCE LISTING
[0002] The instant application contains a Sequence Listing that has been submitted electronically in XML format. The Sequence Listing is hereby incorporated by reference in its entirety. The attached sequence listing comprises 1500 sequences. The attached sequence listing is 1.46 MB in size and has the file name “91355.11516.xml” and has a production date of March 12, 2025. BACKGROUND OF THE INVENTION
[0003] Prion disease refers to a group of progressive neurodegenerative disorders that affect both humans and animals. These disorders are characterized by the accumulation of a misfolded isoform of the prion protein (PrP Scrapie; PrPSc) leading to spongiform changes to the brain associated with neuronal loss and gliosis. The term prion, short for proteinaceous infectious particle, refers to the protein-only nature of these pathogenic isoforms. The abnormally folded protein (PrPSc) can subsequently bind and convert the abundantly expressed physiological form of the prion protein (cellular PrP; PrPC) to the disease-causing isoform PrPSc. This phenomenon is known as self-templating. Although identical in protein sequence, PrPScis drastically different from PrPCbiophysically in terms of solubility, structure, and stability (Riesner, Brit Med Bull. (2003) 66:21-33). Propagation of the PrPScisoform is followed by aggregation, causing neuronal cell death in the central nervous system. Human prion diseases can be genetic (accounting for 10-15% of cases), sporadic or acquired and include Creutzfeldt-Jakob Disease (CJD), Gerstmann-Straussler-Scheinker Syndrome (GSS), Fatal Familial Insomnia (FFI), and Kuru. In humans, prion disease impairs brain function, causing progressive cognitive decline and abnormal movements. Prion disease is always fatal, and typically results in death within a few months to several years of onset of illness.
[0004] The precise function of PrP is still controversial in the field, but among many phenotypes, PrP has been hypothesized to play a role in neurogenesis and neuroprotection, circadian rhythm, myelin maintenance, epithelial to mesenchymal transition 1 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 (EMT) and long-term potentiation (LTP). In addition to the familial forms, prion disease can also be sporadic or acquired. People with sporadic prion disease have no family history of the disease or identifiable mutation in the PRNP gene. Sporadic prion disease occurs when PrPCis spontaneously transformed into PrPSc. Sporadic forms of prion disease include sporadic CJD (sCJD), sporadic fatal insomnia (sFI), and variably protease-sensitive prionopathy (VPSPr). Acquired prion disease results from exposure to PrPScfrom an outside source. For example, variant CJD (vCJD) is a form of acquired prion disease resulting from consumption of beef products containing PrPScfrom cattle with prion disease. In cattle, this form of the disease is known as bovine spongiform encephalopathy (BSE) or “mad cow disease.” Another example of an acquired human prion disease is Kuru, which was identified in the South Fore population in Papua New Guinea. Kuru was transmitted when individuals ate affected human tissue during cannibalistic funeral rituals.
[0005] Reduction of PrP expression is a therapeutic strategy supported by numerous genetic proof of concept studies as well as by the in vivo efficacy of PrP-lowering antisense oligonucleotides (ASOs) shown to prolong the survival of prion-infected mice. See, e.g., Büeler et al., Cell (1993) 73(7):1339-47; Büeler et al., Mol Med Camb Mass. (1994) 1(1):19-30; Fischer et al., EMBO J. (1996) 15(6):1255-64; Mallucci et al., Science (2003) 302(5646):871-4; and Safar et al., J Gen Virol. (2005) 86(Pt 10):2913-23, Minikel et al., Nucleic Acids Res. (2020) 10.1093 / nar / gkaa616. While ASOs achieving 50% PrP knockdown have been shown to delay the onset of prion disease in mice by more than two-fold, greater levels of PrP knockdown may offer further therapeutic benefit. Distribution of PrP knockdown beyond what is achievable with ASOs may also be important for efficacy. Thus, there remains a need for an effective treatment of prion disease by targeting PrP expression.
[0006] International Patent Publication WO 2021067864 (which is herein incorporated by reference in its entirety) shows prion protein gene (PRNP gene) repressing activity of 36 ZFRs selected from a library of 384 ZFRs directed to target the mouse PRNP gene. As generally is the case with genomic therapies targeting the brain, delivering therapeutic reagents across the blood-brain barrier is a significant challenge. Indeed, the clinical potential of AAV vectors as gene delivery tools for neurological diseases is constrained by the low capacity of natural AAV capsids to cross the blood-brain barrier (BBB). As a result, delivery of AAV vectors to the central nervous system (CNS) can require high vector doses or invasive local delivery (injection), both associated with significant risks of vector-induced toxicity. Further, injection relies on diffusion and does not effectively distribute the AAV vector 2 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 throughout the brain. To overcome these limitations, multiple groups have attempted to generate engineered AAV capsids with improved BBB penetration and CNS transduction.
[0007] Moreover, the brain regions targeted by therapeutics may be those most significantly affected in Tauopathies, such as certain cortical regions, the entorhinal cortex, the hippocampus, the cerebellum, the globus pallidus, the thalamus, the midbrain, the caudate, the putamen, the substantia nigra, the pons, and the medulla. ASO therapies and presumably many AAVs therapies are not able to target one or more of these affected regions. SUMMARY OF THE INVENTIOIN
[0008] Disclosed are zinc finger protein (ZFP) domains that target sites in or near the mammalian (e.g., human, non-human primate, rodent, or murine) PRNP gene. The ZFP domains may be fused to a transcription factor to specifically inhibit the mammalian PRNP gene at the DNA level. These fusion proteins, also termed zinc finger protein transcription factors (ZFP-TFs), zinc finger protein repressors (ZFP-Rs), or zinc finger repressors (ZFRs), comprise (i) a ZFP domain that binds specifically to a target region in the PRNP gene and (ii) a transcription repressor domain or epigenetic silencing domain that reduces the transcription of the gene. These proteins can be used to treat prion disease.
[0009] In one aspect, disclosed are fusion proteins comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a mammalian (e.g., human, non-human primate, rodent or murine) prion protein gene (PRNP gene). In some embodiments, the target region of the ZFR is within about 1 kb or 500 bp of a transcription start site (TSS) in the PRNP gene. In some embodiments, the fusion protein may comprise one or more (e.g., two, three, four, five, or six) zinc fingers and it optionally represses expression of the PRNP gene by at least about 40%, 75%, 90%, 95%, or 99% with no or minimal detectable off-target binding or activity. Nonlimiting examples of zinc finger domains are shown in Tables 1 and 3. In some embodiments, the fusion protein comprises one or more recognition helix sequences shown in Tables 1 and 3. In further embodiments, the fusion protein comprises some or all the recognition helix sequences from a single row of Tables 1 and 3, with or without the indicated backbone mutation(s). In certain embodiments, the fusion protein comprises an amino acid sequence shown in Tables 2 and 4.
[0010] In some embodiments, the transcription repression domain of the fusion protein may comprise a KRAB domain, optionally amino acid sequence of KOX1. In the fusion protein, the ZFP domain may be linked to the transcription repressor domain or epigenetic silencing domain through a peptide linker. 3 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0011] In another aspect, disclosed is a nucleic acid construct comprising a coding sequence for the fusion protein, wherein the coding sequence is linked operably to a transcription regulatory element, such as a mammalian promoter that is constitutively active or inducible in a brain cell (e.g., a human synapsin I promoter). Disclosed are host cells comprising the nucleic acid construct. The host cell may be, e.g., a human cell, and / or a brain cell or a pluripotent stem cell, wherein the stem cell is optionally an embryonic stem cell or an inducible pluripotent stem cell (iPSC). Disclosed is a recombinant virus (recombinant adeno- associated virus (AAV), preferably a BBB-penetrant AAV, optionally of serotype AAV1, AAV2, AAV3B, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV11, AAVrh10, AAVrh39, AAVrh74, or STAC-BBB (i.e., CNSRCV300 in US Application No.63 / 606,012), and natural or engineered derivatives thereof.
[0012] In yet another aspect, disclosed is a method of inhibiting expression of prion protein (PrP) in a mammalian brain cell, comprising introducing into the cell a fusion protein, optionally through introduction of a nucleic acid construct (e.g., through a recombinant virus) described herein, thereby inhibiting the expression of PrP in the cell. The mammalian brain cell may be, for example, a human, non-human primate, rodent, or murine cell, and / or may be a neuron, a glial cell, an ependymal cell, or a neuroepithelial cell. In some embodiments, the cell is in the brain of a patient suffering from or at risk of developing prion disease, wherein the prion disease is optionally familial, sporadic, or acquired prion disease, such as Creutzfeldt- Jakob Disease (CJD), sporadic CJD, variant CJD, Gerstmann-Straussler-Scheinker Syndrome (GSS), Fatal Familial Insomnia (FFI), sporadic Fatal Insomnia (sFI), Kuru, or variably protease-sensitive prionopathy (VPSPr).
[0013] Disclosed is a method of treating a neurodegenerative disease in a patient, comprising administering to the patient a recombinant AAV encoding a fusion protein. The neurodegenerative disease may be a prion disease, wherein the prion disease is optionally familial, sporadic, or acquired prion disease, such as CJD, sporadic CJD, variant CJD, GSS, FFI, sFI, Kuru, or VPSPr. In some embodiments, the disease may be a Tauopathy, such as Alzheimer’s disease (AD), progressive supranuclear palsy (PSP), frontotemporal dementia (FTD), or corticobasal degeneration (CBD), or chronic traumatic encephalopathy (CTE). In other embodiments, the disease may be a synucleinopathy, such as Parkinson’s disease (PD), multiple systems atrophy (MSA), or dementia with Lewy bodies (DLB).
[0014] In some embodiments, the AAV encoding a fusion protein is introduced to the patient via intravenous, intrathecal, intracerebroventrical, intra-cisternal magna, or intrathalamic injection, or injection into any cerebral region. 4 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0015] Disclosed are fusion proteins, nucleic acid constructs, and recombinant viruses for use in the methods described in, as well as use of the fusion proteins, nucleic acid constructs, recombinant viruses for the manufacture of a medicament in the methods described herein. A composition comprising: 1) an adeno-associated virus (AAV) capsid protein comprising an amino acid sequence, wherein the amino acid sequence comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the amino acid sequence set forth in any one of SEQ ID NOS: 333, 417, 442, or 673; and 2) an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a mammalian prion protein gene (PRNP gene). In some embodiments, the AAV capsid protein encapsulates the expression construct. In some embodiments, the amino acid sequence comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the amino acid sequence set forth in SEQ ID NO: 333 inserted into SEQ ID. NO: 1497, optionally wherein the insertion is between amino acids 587 and 590. In some embodiments, the AAV capsid protein comprising one or more amino acid sequences selected from the group comprising, consisting, or consisting essentially of SEQ ID NO: 1498, 1499, or 1500. In some embodiments, the AAV capsid protein comprising a VP1 protein comprising a sequence of amino acids set forth in SEQ ID NO: 1498; a VP2 protein comprising the sequence of amino acids set forth in SEQ ID NO: 1499; and a VP3 protein comprising the sequence of amino acids set forth in SEQ ID NO: 1500. In some embodiments, the AAV capsid protein comprising the amino acid sequence having at least 80%, 85%, 90%, 95%, 99% or 100% identity to SEQ ID NO: 1498. In some embodiments, the AAV capsid protein comprising the amino acid sequence having at least 80%, 85%, 90%, 95%, 99% or 100% identity to SEQ ID NO: 1499 or to SEQ ID NO: 1500. In some embodiments, the target region is within about 1 kb or 500 bp of a transcription start site (TSS) in the PRNP gene. In some embodiments, the fusion protein represses expression of the PRNP gene by at least about 40%, 75%, 90%, 95%, or 99% with no or minimal detectable off-target binding or activity. In some embodiments, the transcription repressor domain comprising a KRAB domain, wherein the KRAB domain optionally is from a human KOX1 protein. In some embodiments, the ZFP domain comprising, consisting, or consisting essentially of a DNA-binding recognition helix sequence as shown in Tables 1 and 3. In some embodiments, the ZFP domain comprising, consisting, or consisting essentially of DNA-binding recognition helix sequences shown in a single row in Tables 1 and 3. In some embodiments, the ZFP domain comprising, consisting, or consisting essentially of a DNA- 5 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 binding recognition helix sequences linked as shown in Tables 2 and 4. In some embodiments, the ZFP domain binds to a Target Sequence shown in Tables 1 and 3. In some embodiments, the fusion protein comprising, consisting, or consisting essentially of a sequence shown in Tables 2 and 4.
[0016] Other features, objectives, and advantages of the invention are apparent in the detailed description that follows. It should be understood, however, that the detailed description, while indicating embodiments and aspects of the invention, is given by way of illustration only, not limitation. Various changes and modification within the scope of the invention will become apparent to those skilled in the art from the detailed description. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] FIG. 1A is a diagram illustrating site specific targeting of the PRNP gene by an engineered zinc finger protein-transcriptional repressor (ZFP-R). Binding of the ZFP-R to the gene locus leads to reduced PRNP transcription, which in turn leads to reduced PRNP mRNA and prion protein (PrPC) levels.
[0018] FIG. 1B is a schematic showing the packaging of a transgene encoding a Zinc Finger Repressor (ZFR) targeting the PRNP gene into an AAV capsid protein STAC- BBB (herein defined as SEQ ID NO: 1498). The packaged ZFR in the AAV capsid protein can be administered to a subject for the treatment of a Tauopathy.
[0019] FIG. 2 shows human PRNP repression activity of 10 ZFP-R candidates selected from a library of 961 ZFP-Rs designed to specifically target the human PRNP gene. The y-axis in each graph is human PRNP mRNA expression normalized to the mean of two housekeeping genes (ATP5B and EIF4A2). PRNP levels in human neuroblastoma (SK-N-MC) cells were assessed 20-24 hours after being transfected with mRNA encoding different ZFP- Rs. The mRNA dose increases from left to right (3, 10, 30, 100, 300, 1000 ng per transfection). The bars represent the mean of four technical replicates and the error bars represent standard deviation. The numbers below the graphs are the ID numbers for the ZFP-Rs. An enlarged version of the titration scale is shown at the lower right of the figure. The orange bar in each graph represents the PRNP levels in a non-treated control.
[0020] FIG 3 is a panel of graphs representing the 7 ZFP-Rs after several rounds of in vitro screening using on- and off-targeting analysis. The top panel shows the PRNP- repression activity of ZFP-Rs 31 days after transduction of human iPSC-derived GABAergic neuron cells with the AAV6 serotype. The y-axis in each graph is human PRNP mRNA expression normalized to the mean of two housekeeping genes (ATP5B and EIF4A2). The dark green bars in each graph shows the expression level from the untreated control in each 6 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 experiment. The lighter green bars represent the doses delivered, from left to right: 1e3, 3e3, 1e4, 3e4, 1e5, 3e5 vg / cell (MOI). The middle panel shows a whole transcriptome analysis by Affymetrix genechip arrays of human iPSC-derived GABAergic neurons 19 days post transduction with ZFP-Rs delivered using an AAV6 serotype. Cells were transduced at a dose of 1E5 vg / cell (MOI). The bottom panel shows a whole transcriptome analysis by Affymetrix genechip arrays of mouse cortical neurons 7 days post transduction with ZFP-Rs delivered using an AAV6 serotype. Cells were transduced at 3E3 vg / cell (MOI). There was no repression of the mouse Prnp gene since the target sites recognized by these ZFP-Rs are only present in human prion gene locus, and they are not conserved with the mouse gene. Numbers shown in red and green indicate the counts of downregulated and upregulated off-target genes, respectively. The yellow circle represents the prion transcript (PRNP, middle panel; or Prnp, bottom panel). Red and green circles represent downregulated and upregulated off-target genes, respectively, with the gene names labeled adjacent to each circle.
[0021] FIG.4A is a panel of graphs demonstrating tolerability of the top 5 ZFP-Rs delivered to adult wildtype mice using AAV-PHP.B. The bar graphs show RT-qPCR expression level analysis of the mouse Prnp gene, neuroinflammatory markers (Iba1 and Gfap), and neuronal markers (Rbfoxs and Tubb3) for the brainstem three weeks after intravenous tail vein injection. The expression level of each transcript was normalized to house- keeping transcripts (Atp5b and Eif4a2) and scaled to the mean of the vehicle group. Each bar represents the mean from a treatment group and the error bars represent standard deviation (n=6 animals per group). ZFP-R 89891 showed a significant increase of both neuroinflammatory markers as well as a down-regulation of neuronal markers that indicates potential toxicity. Other ZFP-Rs showed no or minimal changes in neuroinflammatory or neuronal markers. There was no repression of the mouse Prnp gene for all ZFP-Rs as expected since the target sites recognized by these ZFP-Rs are only present in human prion gene locus, and they are not conserved with the mouse gene. A one-way ANOVA analysis followed by Dunnett´s multiple comparison test was used to determine statistical significance; P value <0.05 (*), <0.0001 (****), not significant (ns).
[0022] FIG.4B is a line graph showing mouse body weights measured on different study days. Symbols represent the average body weight from each group and the error bars represent standard deviation. Animals treated with ZFP-R 89891 showed a decline in body weight starting around 12 days after test article administration, which may indicate potential toxicity of the 89891 ZFP-R. 7 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0023] FIG.5 is a panel of bar graphs demonstrating ZFP-R expression and human PRNP repression in a transgenic mouse model that is null for mouse PrPCexpression, and has been engineered to express the full-length human PRNP gene. Five ZFP-Rs were delivered to these mice using AAV-PHP.B intravenous delivery. Eight weeks after dosing, tissue was collected and RT-qPCR analysis was performed to assess the expression level of the human PRNP gene (top panel) and ZFP-R (bottom panel). The y-axis in each graph is normalized PRNP expression (top panel) or absolute ZFP-R mRNA expression (bottom panel). The expression level of the human PRNP gene was normalized to that of the house-keeping genes (Atp5b and Eif4a2) and scaled to the mean of the vehicle group. ZFP-Rs were dosed at 1E13 vg / kg (“-L” for Low dose) or 1E14 vg / kg (“-H” for High dose) and are indicated on the x-axis. The bars represent the mean of values from 5-8 mice. Error bars represent standard deviation. Dose-dependent expression of ZFP-R and repression of PRNP was observed. A one-way ANOVA analysis followed by Dunnett´s multiple comparison test was used to determine statistical significance; P value <0.05 (*), <0.001 (**), <0.0001 (****).
[0024] FIG.6 is a panel of bar graphs showing the expression level of neuron and glia inflammatory markers from four different microdissected brain regions (sensory cortex, striatum, midbrain, cerebellum) 8 weeks after delivery of 5 ZFP-Rs using AAV-PHP.B at two dose levels in transgenic mice expressing the human PRNP gene. The y-axis in each graph is the expression Iba1, Gfap, Rbfox3 and Tubb3 (top to bottom panels) markers normalized to the expression of the house-keeping genes (Atp5b and Eif4a2) and scaled to the mean of the vehicle group. Each AAV.PHP.B ZFP-R was dosed at 1E13 vg / kg (“-L” for Low dose) or 1E14 vg / kg (“-H” for High dose) as indicated on the x-axis. The bars represent the mean of values from 5- 8 mice. Error bars represent standard deviation. A one-way ANOVA analysis followed by Dunnett´s multiple comparison test was used to determine statistical significance; P value <0.05 (*), <0.01 (**), <0.001 (***), <0.0001 (****).
[0025] FIG.7A shows representative confocal images from animals treated at the 1E14 vg / kg (high) dose showing extensive human PRNP mRNA repression in neurons in the thalamus compared to the vehicle control at the single-cell level for all five ZFP-Rs tested. A multiplexed RNAscope in situ hybridization and immunohistochemistry method was used to detect ZFP-R (red) and PRNP (yellow) mRNA expression and immunohistochemistry for identifying neuronal cell types (purple).
[0026] FIG.7B is a bar graph showing % human PRNP repression determined by a Spot total intensity parameter, which quantifies the RNAscope signal detected for human PRNP transcripts. The data are presented for neurons in the thalamus that were categorized as 8 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 having ZFP-R expression based on the RNAscope signal detected using a ZFP-R specific probe. ZFP-R and dosing groups are scaled to the vehicle control group. The upper horizontal line represents the normalized PRNP level in vehicle animals. N = 5-8. Downward arrows with percentages above each bar graph indicate the percent repression of human PRNP compared to the vehicle group.
[0027] FIG. 8 is a panel of bar graphs demonstrating PrP protein repression in transgenic mice expressing human PRNP gene following treatment with ZFP-Rs delivered intravenously using AAV-PHP.B. Prion protein, PrP, was detected and quantified using an anti-PrP antibody-based assay in brain tissue (brainstem, top panel) and cerebrospinal fluid (CSF, bottom panel) 8 weeks after dosing. The y-axis in each graph is the PrP protein level scaled to the mean of the vehicle group. Each AAV.PHP.B ZFP-R was dosed at 1E13 vg / kg (“-L” for Low dose) or 1E14 vg / kg (“-H” for High dose) as indicated on the x-axis. The bars represent the mean of values from 5-8 mice and the error bars represent standard deviation. A dose-dependent reduction of brain and CSF PrP was observed for ZFP-R treated animals.
[0028] FIG.9 is a panel of graphs demonstrating the efficacy of AAV.PHP.B ZFP- R treatment in a mouse model of prion disease. The left panels show survival plots for mice treated with either one of two ZFP-Rs or control treatments at either 60 days post inoculation (dpi) (top left panel) or 122 dpi (bottom left panel). The x axis represents the number of days after the mice were inoculated with misfolded PrPSc. The y axis represents the percentage of surviving mice. The middle panels show the mean body weight measurements per group during the 500 day study. The dashed line at -20% indicates the relative body weight at which mice underwent preterminal humane euthanasia. Body weight averages are shown for groups treated with either one of two ZFP-Rs or control treatments at either 60 days post inoculation (dpi) (top middle panel) or 122 dpi (bottom middle panel). The right panels show the plasma levels of Neurofilament Light Chain (NfL) that received ZFP-R at 60 or 122 days. The average NfL levels are shown for groups treated with either one of two ZFP-Rs or control treatments at either 60 days post inoculation (dpi) (top right panel) or 122 dpi (bottom right panel). The data show that mice that received control treatments (AAV.PHP.B GFP or vehicle) reached terminal endpoint at 160±8 dpi (mean±sd) with a precipitous decline in body weight and increase in plasma NfL. In contrast, the majority of AAV ZFP-R treated mice (n=10 / 19) were alive at 1 year after inoculation with stable body weight and arrested NfL levels, indicating a beneficial effect of ZFP-R treatment at both early and late intervention points in the disease course. ZFP- R treated mice from both the 60 dpi and 122 dpi groups (total n=5) survived to the end of the study at 500 dpi. 9 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0029] FIG.10 is a panel of RT-qPCR expression data demonstrating PRNP gene repression in 35 different regions of the adult cynomolgus monkey brain. Brains tissue was analyzed 19 days after injection of an engineered blood-brain-barrier penetrant AAV capsid encoding a ZFP-R that targets the nonhuman primate PRNP gene. The x axis indicates the brain region from which punches were collected and analyzed. The y axis indicates the average expression level of the nonhuman primate PRNP gene normalized to that of the housekeeping genes (Atp5b and Eif4a2). For each punch, normalized PRNP expression was scaled to the mean of control treated animals. Each dot represents the scaled, normalized PRNP average across all the punches analyzed for one animal. The bar plot represents the average value for the 3 animals and the error bars represent standard deviation. The arrow pointing to a y-value of 1 indicates the average baseline level of prion obtained from prion expression in control- treated animals from the same study. PRNP gene repression ranged from 2-33% across the 35 brain regions analyzed. DETAILED DESCRIPTION OF THE INVENTION
[0030] Disclosed are ZFP domains that target sites (i.e., sequences) in or near the mammalian PRNP gene. A ZFP domain as described herein may be attached or fused to another functional molecule or domain (the functional molecule or domain can include a transcription repressor domain, epigenetic silencing domain, or other molecule or domain that reduces the transcription of a gene). The ZFP domains may be fused to a transcription factor to repress the transcription of the mammalian PRNP gene into RNA. The fusion proteins are called zinc finger protein repressors (ZFRs). These ZFRs comprise a zinc finger protein (ZFP) domain that binds specifically to a target region (i.e., target site) in or near the PRNP gene and a transcription repressor domain that reduces the transcription of the gene. Reducing the level of PrP in neurons by introducing the ZFRs into the brain of a patient is expected to inhibit (e.g., reduce or stop) the formation and spread of PrPSc, thereby treating prion disease (e.g., alleviating symptoms, preventing onset or worsening of symptoms, and extending survival).
[0031] Our ZFR approach to PRNP inhibition has several advantages over the current approaches being tested by others. ZFRs can achieve higher levels of PrP repression than what has been reported for antisense oligonucleotides (ASOs). Further, ZFRs may need to be administered only once (by introducing to the patient a ZFR expression construct such as recombinant viruses, e.g., recombinant AAV), while ASOs require repeated dosing. In addition, the ZFR approach only needs to engage the two alleles of the PRNP gene in the genome of each cell. By contrast, ASOs need to engage numerous copies of the PRNP mRNA 10 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 in each cell. In addition, with the use of recombinant viruses such as recombinant AAV, ZFRs can be delivered to any brain region of interest.
[0032] Disclosed are compositions comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding ZFP domains that target sites (i.e., bind DNA sequences) in or near the human PRNP gene. The AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulates the expression construct to enable delivery of the construct across the blood brain barrier. A ZFP domain as described herein may be attached or fused to another functional molecule or domain. The ZFP domains disclosed herein may be fused to a transcription factor to repress transcription of the human PRNP gene into mRNA. The fusion proteins are called zinc finger protein-repressors (ZFRs) that target specifically the human PRNP gene and repress its transcription into RNA. These ZFRs comprise a zinc finger protein (ZFP) domain that binds specifically to a target region in or near the PRNP gene and a transcription repressor domain or epigenetic silencing domain that reduces the transcription of the gene. Reducing the level of PrP in neurons by introducing the ZFRs into the brain of a patient is expected to inhibit (e.g., reduce or stop) transcription of the PRNP gene.
[0033] The AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct comprising a coding sequence for a fusion protein, the fusion protein comprising a PRNP targeting ZFP approach (See FIG.1A) to PrP inhibition has several advantages over the current approaches being tested by others, which include administration of (i) antisense oligonucleotides (ASOs) that bind PrP mRNA and prevent its translation and (ii) immunotherapeutic anti-PrP antibodies. ZFRs may need to be administered only once (by introducing to the patient an expression construct encoding a ZFR encapsulated into an AAV capsid comprising SEQ ID NO: 1498, while ASOs require repeated dosing. In addition, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct comprising a coding sequence for a fusion protein, the fusion protein comprising a PRNP targeting ZFP approach only needs to engage the two alleles of the PRNP gene in the genome of each cell. By contrast, ASOs need to engage numerous copies of the PRNP mRNA in each cell. Additionally, the distribution and tropism of ASOs is fixed, whereas the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an 11 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding the fusion protein, the fusion protein comprising a ZFP domain that binds to a target region of a human PRNP gene can be targeted to different cell types and brain regions by altering the promoter, serotype, and route of administration. As such, with the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct comprising a coding sequence for a fusion protein, the fusion protein comprising a PRNP targeting ZFP approach, all brain regions can be targeted which in turn translates to treatment for all tauopathy indications. Moreover, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct comprising a coding sequence for a fusion protein, the fusion protein comprising a PRNP targeting ZFP approach can have cell type specificity, i.e., be restricted to CNS cell types. Finally, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct comprising a coding sequence for a fusion protein, the fusion protein comprising a PRNP targeting ZFP approach has rapid pharmacokinetics, i.e., 90-100% single cell potency. In some embodiments, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct comprising a coding sequence for a fusion protein, the fusion protein comprising a PRNP targeting ZFP approach uses an AAV capsid protein comprising SEQ ID. NO: 1498 and an expression construct comprising a fusion protein, the fusion protein comprising a ZFP domain the ZFP domain comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct comprising a coding sequence for a fusion protein, the fusion protein comprising a PRNP targeting ZFP approach uses an AAV capsid protein comprising SEQ ID. NO: 1498 and an expression construct encoding a fusion protein comprising a ZFR shown in a single row of Tables 2 and 4.
[0034] Use of an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263- 1495 and an expression construct encoding a PRNP targeted ZFP fusion protein is advantageous over the antibody approach because antibodies can only bind a subset of PrP protein species or conformations. This may not be sufficient for a robust therapeutic effect. In 12 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 contrast, ZFRs repress PrP expression at the DNA level and lead to lower levels of all forms of PrP, including different PrP conformers and post-translationally modified forms found across Tauopathies. ZFRs are therefore agnostic to the form of the toxic species, unlike antibodies. In addition, antibodies are thought to primarily act on extracellular PrP, whereas ZFRs can reduce total PrP levels inside the cell directly, thereby indirectly lowering extracellular PrP levels. Thus, use of an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 (preferably one of SEQ ID NOs: 333, 417, 442, or 673) and an expression construct encoding a PRNP targeted ZFP fusion protein (preferably the fusion protein comprises DNA- binding recognition helix sequences as shown in a single row of Tables 1 and 3 and / or a ZFR shown in a single row of Tables 2 and 4) is expected to be more effective because PrP exerts its pathology intracellularly and the pathogenic species are unknown. Further, antibodies require repeated administration, typically into the periphery, which results in inefficient crossing of the blood-brain barrier, while ZFRs require only a one-time delivery of their expression constructs and can be administered via several routes, including directly to the brain parenchyma, into the CSF, or intravenously. In some embodiments, the composition for one- time delivery comprises and AAV capsid protein comprising SEQ ID NO: 1498 and an expression construct comprising a coding sequence for a fusion protein, the fusion protein comprising a ZFP domain the ZFP domain comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, the composition for one-time delivery comprises and AAV capsid protein comprising SEQ ID NO: 1498 and an expression construct comprising a coding sequence for a fusion protein, the fusion protein comprising a ZFR shown in a single row of Tables 2 and 4.
[0035] Disclosed is an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263- 1495 (preferably one of SEQ ID NOs: 333, 417, 442, or 673) and an expression construct encoding a PRNP targeted ZFP fusion protein comprising a ZFP domain, the ZFP domain comprising, consisting, or consisting essentially of a DNA-binding recognition helix sequence comprising SEQ ID NOS: 22-30, 31-39, 40-48, 49-57, 58-66, 67-73 ordered as shown in Table 1. Disclosed is an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 (preferably one of SEQ ID NOs: 333, 417, 442, or 673) and an expression construct encoding a PRNP targeted ZFP fusion protein comprising a ZFP domain, the ZFP domain comprising, consisting, or consisting essentially of a DNA-binding recognition helix sequence capable of binding the 13 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 target sequence comprising, consisting, or consisting essentially of any one of SEQ ID NOS: 1, 2, 12, 16, 17, 18, 19, 20 or 21 as shown in Table 1. Disclosed is an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 (preferably one of SEQ ID NOs: 333, 417, 442, or 673) and an expression construct encoding a PRNP targeted ZFP fusion protein comprising a ZFP domain, the ZFP domain comprising, consisting, or consisting essentially of an amino acid sequence selected from SEQ ID NOs: 74-82 as shown in Table 2.
[0036] Disclosed is an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263- 1495 (preferably one of SEQ ID NOs: 333, 417, 442, or 673) and an expression construct encoding a PRNP targeted ZFP fusion protein comprising a ZFP domain, the ZFP domain comprising, consisting, or consisting essentially of a DNA-binding recognition helix sequence comprising SEQ ID NOS: 112-123, 124-135, 136-147, 148-159, 160-171, 172-181 ordered as shown in Table 3. Disclosed is an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263- 1495 (preferably one of SEQ ID NOs: 333, 417, 442, or 673) and an expression construct encoding a PRNP targeted ZFP fusion protein comprising a ZFP domain, the ZFP domain comprising, consisting, or consisting essentially of a DNA-binding recognition helix sequence capable of binding the target sequence comprising, consisting, or consisting essentially of any one of SEQ ID NOS: 83-111 as shown in Table 3. Disclosed is an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 (preferably one of SEQ ID NOs: 333, 417, 442, or 673) and an expression construct encoding a PRNP targeted ZFP fusion protein comprising a ZFP domain, the ZFP domain comprising, consisting, or consisting essentially of an amino acid sequence selected from SEQ ID NOs: 183-194 as shown in Table 4.
[0037] Our approach to prion disease treatment is expected to be safe. About 1:18,000 humans are estimated to be heterozygous for loss-of-function PRNP mutation and yet there are no discernible deleterious effects in these individuals (Minikel et al., 2020).
[0038] Zinc finger protein transcription factors for repressing PrP expression are disclosed in International Patent Publication WO 2021 / 067864, the entirety of which is incorporated by reference herein (PCT Pat. App. No. PCT / US2020 / 054140). Specifically, sections related to sequence listings, Targets of the ZFP Domains, ZFP Domains, Zinc Finger Protein Transcription Factors, Zinc Finger Repression Domains, Peptide Linkers, Expression 14 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 of the ZFRs and Pharmaceutical Applications are incorporated by reference herein in their entirety.
[0039] Fitness maturation of engineered AVV capsid stac-102 is disclosed in International Patent Publication WO WO2024238579, the entirety of which is incorporated by reference herein (PCT Pat. App. No. PCT / US2017 / 064181). Engineered blood brain barrier penetrant AAV capsids are disclosed in International Patent Publication WO 2024 / 238684, the entirety of which is incorporated by reference herein (PCT Pat. App. No. PCT / US2024 / 029507). Specifically, sections related to Libraries of AAV Capsid Proteins, Engineered AAV Capsid Proteins, Development of engineered AAV capsid proteins, Gene editing system, Engineered AAV capsid proteins within a cell, Engineered AAV capsid proteins delivered to a target cell, Methods of detecting engineered AAV capsid proteins, Capsid proteins, CNS (Central Nervous System)- Targeting Molecules (Targeting Peptides), AAV particles, Delivery of AAV Particles, Insertion of Targeting Peptides into Capsid Proteins, and Pharmaceutical Compositions and Dosage Forms are incorporated by reference herein in their entirety. I. Targets of the ZFP Domains
[0040] Zinc finger protein transcription factors for repressing PrP expression is disclosed in International Patent Publication WO 2021 / 067864, the entirety of which is incorporated by reference herein and specifically incorporated by reference in its entirety is the section related to Targets of the ZFP Domains.
[0041] The ZFP domains of the fusion proteins bind specifically to a target region in or near the mammalian (e.g., human, non-human primate,) PRNP gene. The DNA-binding ZFP domain of the ZFRs directs the fusion proteins to a target region of the PRNP gene and brings the transcription repressor domain of the fusion proteins to the target region. The repressor domain then represses the PRNP gene’s transcription by RNA polymerase. The target region can be any suitable site in the PRNP gene that allows repression of gene expression. By way of example, the target region includes, or is adjacent to (either downstream or upstream of) a PRNP transcription start site (TSS), or a PRNP transcription regulatory element (e.g., promoter, enhancer, RNA polymerase pause site, exon / intron boundary, and the like). For example, the target region may be within about 500-1,000 bp upstream and / or downstream of the TSS.
[0042] In some embodiments, the genomic target region is at least 8 bps in length. For example, the target region may be 8 bps to 40 bps in length, such as 12, 15, 18, 21, 24, 27, 15 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 30, 33, or 36 bps in length. The targeted sequence may be on the sense strand of the gene, or the antisense strand of the gene. To ensure targeting accuracy and to reduce off-target binding or activity by the ZFRs, the sequence of the selected PRNP target region preferably has less than 75% homology (e.g., less than 70%, less than 65%, less than 60%, or less than 50%) to sequences in other genes. In certain embodiments, the target region of the ZFRs is 15 -18 bps in length and resides within about 500-1,000 bps of the TSS. Examples of target regions in the human PRNP gene are shown.
[0043] In some embodiments, the engineered ZFPs bind to a target site (i.e., Binding Sequence or Target Sequence) as shown in a single row of Tables 1 and 3 preferably with no or little detectable off-target binding or activity.
[0044] Other criteria for further evaluating target segments include the prior availability of ZFPs binding to such segments or related segments, ease of designing new ZFPs to bind a given target segment, and predicted off-target binding assessment. Table 1. Target DNA-Recognition Helix Amino Acid Sequence Within Each Finger ZFP Sequence ID (capital L L L L L letters) F1 L1 F2 2 F3 3 F4 4 F5 5 F6 6 YR caCTTGCAT YPK TSGN QSA QSG WLR CAGTTGAT DLA LTR( TSGSL DRT DLTR NN( ACCgcctgcg R(SE SEQ SR(SE K(SE (SEQ SEQ ZFC g Q ID ID Q ID Q ID ID ID 8161 (SEQ ID NO: NO: NO: 0 NO: NO: 0 NO: NO: C 3 1) 22) 031)c 40) 0 49) c 58) 0 67) 1 gcCTCGGT QSG QLTH MRH LRH DRS CGTGAGgA HLA LNS( RSDN HLD HLTR YRN GAGGAgaag R(SE SEQ LAR(S D(SE (SEQ T(SE ZFC ctc Q ID ID EQ ID Q ID ID Q ID 8174 (SEQ ID NO: NO: NO: 1 NO: NO: 0 NO: NO: C 7 2) 23) 0 32) c 41) 0 50) c 59) 0 68) 1 ttTACCTGc RSD MRH DRS RSD DRS CTCGGTCG NLA HLD LRHH YRN VLSE NRI TGAGgagag R(SE D(SE LTR(S T(SE (SEQ K(SE ZFC ga Q ID Q ID EQ ID Q ID ID Q ID 8932 (SEQ ID NO: NO: 0 NO: NO: 1 NO: NO: C 4 NO: 12) 24) 0 33) c 42) 0 51) c 60) 0 69) 1 ZFC QSS QSG QSGH QLT RSD MRH 8932 gtCGTGAGg DLS NLA 0 LAR(S HLN 1 NLA HLD C 2 AGAGGAGR(SE 0R(SE c EQ ID 0 S(SE cR(SE 0D(SE 1 16 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 AAGCTcgcg Q ID Q ID NO: Q ID Q ID Q ID gcg NO: NO: 43) NO: NO: NO: (SEQ ID 25) 34) 52) 61) 70) NO: 16)ggGCGCCT RSA QSSD RST QQS RSA gGGGGCCG HLS LRR( DRSD HLV DLR DLS CGGGGctcg R(SE SEQ LSR(S R(SE V(SE R(SE ZFC cgc Q ID ID EQ ID Q ID Q ID Q ID 9197 (SEQ ID NO: NO: 0 NO: NO: 1 NO: NO: C 3 NO: 17) 26) 0 35) c 44) 0 53) c 62) 0 71) 1 cgATGGCA QSG RSDD RNN QSG RKD cCCGCAGG ALA LTR( RSDN DRK DLTR PLK CGGTAtcaac R(SE SEQ LSA(S T(SE (SEQ E(SE ZFC tg Q ID ID EQ ID Q ID ID Q ID 8930 (SEQ ID NO: NO: NO: 0 NO: NO: 1 NO: NO: C 218)27) 0 36) c 45) 0 54) c 63) 0 72) 1 tcCGAGGG RSD DISN RSD RSD QKC GCGGCCA HLS RNA( DRST DRK HLSR HLR ACGGGcggg R(SE SEQ RTK(S K(SE (SEQ S(SE ZFC gagc Q ID ID EQ ID Q ID ID Q ID 8942 (SEQ ID NO: NO: NO: 0 NO: NO: 0 NO: NO: C 7 19) 28) 0 37) c 46) 0 55) c 64) 0 73) 1 cgCGTGAC RSD DRS HKQ GCGTCTCG HLS RKSD RSAD NLT HRD Ggcctgcccgg E(SE RIK(S LTR(S R(SE A(SE ZFC c Q ID EQ ID EQ ID Q ID Q ID 8935 (SEQ ID NO: NO: NO: 0 NO: NO: 0 NO: C 220)29) 0 38) c 47) 0 56) a65)1 RSA DRSN RRS RNG cgCGGGCG DLT LTR( RKQT DLK HLL CGTGACGC R(SE SEQ RTT(S R(SE D(SE ZFC Gtctcgggcctg Q ID ID EQ ID Q ID Q ID 8934 (SEQ ID NO: NO: NO: 0 NO: NO: 0 NO: C 7 21) 30) 0 39) c 48) 0 57) a66)1 Table 1 shows exemplary ZFPs that target human PRNP. Shown in capital letters are the genomic target sequences (i.e., bound sequences) of the DNA-binding recognition helix sequences that are shown in a single row for each five or six finger ZFP shown (i.e., F1-F5, F1-F6, or F1 and F3-F6). Illustrative peptide linker sequences as shown in Table 5 between zinc fingers and between the ZFP domain and the repressor domain for each ZFP are also shown (i.e., L1, L2, L3, L4, L5, or L6). II. ZFP Domains
[0045] Zinc finger protein transcription factors for repressing PrP expression is disclosed in International Patent Publication WO 2021 / 067864, the entirety of which is incorporated by reference herein and specifically incorporated by reference in its entirety is the section related to Zinc Finger Protein Domains. 17 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0046] A “zinc finger protein” or “ZFP” refers to a protein having a DNA-binding domain that is stabilized by zinc. ZFPs bind to DNA in a sequence-specific manner. The individual DNA-binding unit of a ZFP is referred to as a zinc “finger”. Each finger contains a DNA-binding “recognition helix” that is typically comprised of seven amino acid residues and determines DNA binding specificity. A ZFP domain has at least one finger, each finger binds from two to four base pairs of DNA, typically three or four base pairs of DNA. Each zinc finger typically comprises approximately 30 amino acids and chelates zinc. An engineered ZFP can have a novel binding specificity, compared to a naturally-occurring ZFP. Engineering methods include, but are not limited to, rational design and various types of selection. Rational design includes, for example, using databases comprising triplet (or quadruplet) nucleotide sequences and individual zinc finger amino acid sequences, in which each triplet or quadruplet nucleotide sequence is associated with one or more amino acid sequences of zinc fingers that bind the particular triplet or quadruplet sequence. See, e.g., ZFP design methods described in detail in U.S. Pats. 5,789,538 (herein incorporated by reference in its entirety); 5,925,523 (herein incorporated by reference in its entirety); 6,007,988 (herein incorporated by reference in its entirety); 6,013,453 (herein incorporated by reference in its entirety); 6,140,081 (herein incorporated by reference in its entirety); 6,200,759 (herein incorporated by reference in its entirety); 6,453,242 (herein incorporated by reference in its entirety); 6,534,261 (herein incorporated by reference in its entirety); 6,979,539 (herein incorporated by reference in its entirety); and 8,586,526 ((herein incorporated by reference in its entirety); and International Patent Publications WO 95 / 19431 (herein incorporated by reference in its entirety); WO 96 / 06166 (herein incorporated by reference in its entirety); WO 98 / 53057 (herein incorporated by reference in its entirety); WO 98 / 53058 (herein incorporated by reference in its entirety); WO 98 / 53059 (herein incorporated by reference in its entirety); WO 98 / 53060 (herein incorporated by reference in its entirety); WO 98 / 54311 (herein incorporated by reference in its entirety); WO 00 / 27878 (herein incorporated by reference in its entirety); WO 01 / 60970 (herein incorporated by reference in its entirety); WO 01 / 88197 (herein incorporated by reference in its entirety); WO 02 / 016536 (herein incorporated by reference in its entirety); WO 02 / 099084 (herein incorporated by reference in its entirety); and WO 03 / 016496 (herein incorporated by reference in its entirety). A ZFP domain as described herein may be attached or fused to another molecule, for example, a protein. Such ZFP-fusions may comprise a domain that enables gene activation (e.g., activation domain), gene repression (e.g., repression domain), ligand binding (e.g., ligand-binding domain), high-throughput screening (e.g., ligand-binding domain), localized hypermutation (e.g., activation-induced 18 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 cytidine deaminase domain), chromatin modification (e.g., histone deacetylase domain), recombination (e.g., recombinase domain), targeted integration (e.g., integrase domain), DNA modification (e.g., DNA methyl-transferase domain), base editing (e.g., base editor domain), or targeted DNA cleavage (e.g., nuclease domain). Examples of engineered ZFP domains are shown in Tables 1 and 3. Polypeptide sequences of the ZFRs in Table 1, are shown in Table 2. Polypeptide sequences of the ZFRs in Table 3, are shown in Table 4. Table 2. ZFP ID Amino Acid sequence (helix, ZF linker, & interdomain linker) MAPKKKRKVGVPAAMAERPFQCRICMRNFSYPKDLARHIRTHTGEK PFACDICGRKFATSGNLTRHTKIHTGSQKPFQCRICMRNFSTSGSLSR HIRTHTGEKPFACDICGRKFAQSADRTKHTKIHTGSQKPFQCRICMRN FSQSGDLTRHIRTHTGEKPFACDICGRKFAYRWLRNNHTKIHLRQKD AARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYR ZFC8161 NVMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDS 3 ETAFEIKSSVRS(SEQ ID NO: 74) MAPKKKRKVGVPAAMAERPFQCRICMRNFSQSGHLARHIRTHTGEK PFACDICGRKFAQLTHLNSHTKIHTHPRAPIPKPFQCRICMRNFSRSDN LARHIRTHTGEKPFACDICGRKFAMRHHLDDHTKIHTGSQKPFQCRIC MRNFSLRHHLTRHIRTHTGEKPFACDICGRKFADRSYRNTHTKIHLR QKDAARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQI ZFC8174 VYRNVMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETH 7 PDSETAFEIKSSVRS(SEQ ID NO: 75) MAPKKKRKVGVPAAMAERPFQCRICMRNFSRSDNLARHIRTHTGEK PFACDICGRKFAMRHHLDDHTKIHTGSQKPFQCRICMRNFSLRHHLT RHIRTHTGEKPFACDICGRKFADRSYRNTHTKIHTHPRAPIPKPFQCRI CMRNFSRSDVLSEHIRTHTGEKPFACDICGRKFADRSNRIKHTKIHLR QKDAARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQI ZFC8932 VYRNVMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETH 4 PDSETAFEIKSSVRS(SEQ ID NO: 76) MAPKKKRKVGVPAAMAERPFQCRICMRNFSQSSDLSRHIRTHTGEKP FACDICGRKFAQSGNLARHTKIHTGSQKPFQCRICMRNFSQSGHLAR HIRTHTGEKPFACDICGRKFAQLTHLNSHTKIHTHPRAPIPKPFQCRIC MRNFSRSDNLARHIRTHTGEKPFACDICGRKFAMRHHLDDHTKIHLR QKDAARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQI ZFC8932 VYRNVMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETH 2 PDSETAFEIKSSVRS(SEQ ID NO: 77) MAPKKKRKVGVPAAMAERPFQCRICMRNFSRSAHLSRHIRTHTGEKP FACDICGRKFAQSSDLRRHTKIHTGSQKPFQCRICMRNFSDRSDLSRH IRTHTGEKPFACDICGRKFARSTHLVRHTKIHTHPRAPIPKPFQCRICM RNFSQQSDLRVHIRTHTGEKPFACDICGRKFARSADLSRHTKIHLRQK DAARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVY ZFC9197 RNVMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPD 3 SETAFEIKSSVRS(SEQ ID NO: 78) 19 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 ZFP ID Amino Acid sequence (helix, ZF linker, & interdomain linker) MAPKKKRKVGVPAAMAERPFQCRICMRNFSQSGALARHIRTHTGEK PFACDICGRKFARSDDLTRHTKIHTGSQKPFQCRICMRNFSRSDNLSA HIRTHTGEKPFACDICGRKFARNNDRKTHTKIHTHPRAPIPKPFQCRIC MRNFSQSGDLTRHIRTHTGEKPFACDICGRKFARKDPLKEHTKIHLR QKDAARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQI ZFC8930 VYRNVMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETH 2 PDSETAFEIKSSVRS(SEQ ID NO: 79) MAPKKKRKVGVPAAMAERPFQCRICMRNFSRSDHLSRHIRTHTGEK PFACDICGRKFADISNRNAHTKIHTGSQKPFQCRICMRNFSDRSTRTK HIRTHTGEKPFACDICGRKFARSDDRKKHTKIHTGSQKPFQCRICMRN FSRSDHLSRHIRTHTGEKPFACDICGRKFAQKCHLRSHTKIHLRQKD AARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYR ZFC8942 NVMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDS 7 ETAFEIKSSVRS(SEQ ID NO: 80) MAPKKKRKVGVPAAMAERPFQCRICMRNFSRSDHLSEHIRTHTGEKP FACDICGRKFARKSDRIKHTKIHTGSQKPFQCRICMRNFSRSADLTRH IRTHTGEKPFACDICGRKFADRSNLTRHTKIHTGEKPFQCRICMRKFA HKQHRDAHTKIHLRQKDAARGSGGDAKSLTAWSRTLVTFKDVFVDF ZFC8935 TREEWKLLDTAQQIVYRNVMLENYKNLVSLGYQLTKPDVILRLEKGE 2 EPWLVEREIHQETHPDSETAFEIKSSVRS(SEQ ID NO: 81) MAPKKKRKVGVPAAMAERPFQCRICMRNFSRSADLTRHIRTHTGEK PFACDICGRKFADRSNLTRHTKIHTGSQKPFQCRICMRNFSRKQTRT THIRTHTGEKPFACDICGRKFARRSDLKRHTKIHTGEKPFQCRICMRK FARNGHLLDHTKIHLRQKDAARGSGGDAKSLTAWSRTLVTFKDVFV ZFC8934 DFTREEWKLLDTAQQIVYRNVMLENYKNLVSLGYQLTKPDVILRLEK 7 GEEPWLVEREIHQETHPDSETAFEIKSSVRS(SEQ ID NO: 82) Table 2 shows illustrative polypeptide sequences for the ZFRs shown in Table 1. DNA- binding recognition helix sequences are in boldface. Zinc finger linkers are underlined, whereas interdomain linkers are double underlined.
[0047] The ZFP domain of the engineered ZFP fusion proteins may include at least one (e.g., one, two, three, four, five, six, seven, eight, nine, ten, eleven, twelve, thirteen, or more) zinc finger(s). A ZFP domain having one finger typically recognizes a target site that includes 3 or 4 nucleotides. A ZFP domain having two fingers typically recognizes a target site that includes 6 or 8 nucleotides. A ZFP domain having three fingers typically recognizes a target site that includes 9 or 12 nucleotides. A ZFP domain having four fingers typically recognizes a target site that includes 12 to 15 nucleotides. A ZFP domain having five fingers typically recognizes a target site that includes 15 to 18 nucleotides. A ZFP domain having six fingers can recognize target sites that include 18 to 21 nucleotides. 20 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0048] In some embodiments, the engineered ZFPs comprise a DNA-binding recognition helix sequence shown in Tables 1 and 3. For example, an engineered ZFP may comprise the sequence of F1, F2, F3, F4, F5, or F6 as shown in Tables 1 and 3.
[0049] In some embodiments, the engineered ZFPs comprise two adjacent DNA- binding recognition helix sequences shown in a single row of Tables 1 and 3. For example, an engineered ZFP may comprise the sequences of F1-F2, F2-F3, F3-F4, F4-F5, or F5-F6 as shown in a single row of Tables 1 and 3.
[0050] In some embodiments, the engineered ZFPs comprise the DNA-binding recognition helix sequences shown in a single row of Tables 1 and 3. For example, an engineered ZFP may comprise the sequences of F1, F2, F3, F4, F5, and F6 (e.g., F1-F6) ordered as shown in a single row of Tables 1 and 3.
[0051] The target specificity of the ZFP domain may be improved by mutations to the ZFP backbone sequence as described in, e.g., U.S. Pat. Pub.2018 / 0087072. The mutations include those made to residues in the ZFP backbone that can interact non-specifically with phosphates on the DNA backbone but are not involved in nucleotide target specificity (see, e.g., Miller et al., Nat Biotechnol. (2019) 37(8):945-52). In some embodiments, these mutations comprise mutating a cationic amino acid residue to a neutral or anionic amino acid residue. In some embodiments, these mutations comprise mutating a polar amino acid residue to a neutral or non-polar amino acid residue. In further embodiments, mutations are made at positions (-5), (-9) and / or (-14) relative to the DNA binding helix. In some embodiments, a zinc finger may comprise one or more mutations at positions (-5), (-9) and / or (-14). In further embodiments, one or more zinc fingers in a multi-finger ZFP domain may comprise mutations at positions (- 5), (-9) and / or (-14). In some embodiments, the amino acids at positions (-5), (-9) and / or (-14) (e.g., an arginine (R) or lysine (K)) are mutated to an alanine (A), leucine (L), serine (S), aspartate (N), glutamate (E), tyrosine (Y), and / or glutamine (Q). Examples of engineered ZFPs with backbone mutations are shown in Table 3. The symbol “^” in Table 3 indicates that arginine (R) residue at the 4th position upstream of the 1st amino acid in the indicated recognition helix is changed to glutamine (Q), which is shown in bold in Table 4. In each recognition helix sequence, the positions of the seven DNA-binding amino acids are numbered -1, +1, +2, +3, +4, +5, and +6. Thus, the position for the R-to-Q substitution is numbered as (- 5). 21 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Table 3. Target DNA-Recognition Helix Amino Acid Sequence Within Each ZFP Sequence Finger ID (capital letters) F1 L1 F2 L2 F3 L3 F4 L4 F5 L5 F6 L6 QN AN LM ^RS ^RS K( AD DH DRS ^TS SE ttTAAGTT LTR QSG LSR NR GSL Q AAAGGGt (SE DLT (SE KT( SR(S ID GCAGCG Q R(SE Q SEQ EQ NO ctgccaa ID Q ID ID ID ID : ZFC8 (SEQ ID NO: NO: NO: NO: NO: 172 1638 NO: 83) 112) 0 124) 1c 136) 0 148) 0c 160) 0 ) C1 YR WL RN YP QS N( KD ^TS AD ^QS SE caCTTGC LA TSG GSL RTK GDL Q ATCAGTT R(S NLT SR( (SE TR(S ID GATACCg EQ R(SE SEQ Q EQ NO cctgcgg ID Q ID ID ID ID : ZFC8 (SEQ ID NO: NO: NO: NO: NO: 173 9891 NO: 84) 113) 0 125) 0c 137) 0 149) 0c 161) 0 ) C1 ^Q NA NL ttTAAGTT M AAAGGGt ^RS ^RS K( GCAGCG AD DH DRS ^TS SE ctgccaa LTR QSG LSR NR GSL Q (SEQ ID (SE DLT (SE KT( SR(S ID NO: 85) Q R(SE Q SEQ EQ NO ID Q ID ID ID ID : ZFC8 NO: NO: NO: NO: NO: 174 9920 114) 0 126) 1c 138) 0 150) 0c 162) 0 ) C1 ^D ^QS ^RS MR RS GH DN HH ^LR YR gcCTCGG LA ^QLT LA LD HHL NT TCGTGA R(S HLN R(S D(S TR(S (SE GgAGAG EQ S(SE EQ EQ EQ Q GAgaagctc ID Q ID ID ID ID ID ZFC8 (SEQ ID NO: NO: NO: NO: NO: NO 9943 NO: 86) 115) 0 127) 1c 139) 0 151) 0c 163) 0 : C1 22 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Target DNA-Recognition Helix Amino Acid Sequence Within Each ZFP Sequence Finger ID (capital letters) F1 L1 F2 L2 F3 L3 F4 L4 F5 L5 F6 L6 174 ) ^RS DH RSA DRS cgCGTGA LSE RKS DLT NLT HKQ CGCGTC (SE DRI R(S R(S HRD TCGGgcct Q K(SE EQ EQ A(SE gcccggc ID Q ID ID ID Q ID ZFC9 (SEQ ID NO: NO: NO: NO: NO: 1806 NO: 87) 116) 0 128) 0c 140) 0 152) 0a164) C1DR SN RI ^RS LR K( DN HH DRS SE ttTACCTG LA MRH LTR YR RSD Q cCTCGGT R(S HLD (SE NT( VLS ID CGTGAG EQ D(SE Q SEQ E(SE NO gagagga ID Q ID ID ID Q ID : ZFC9 (SEQ ID NO: NO: NO: NO: NO: 175 1852 NO: 88) 117) 0 129) 0c 141) 0 153) 1c 165) 0 ) C1 DR SN RI ^RS ^LR K( DN HH DRS SE ttTACCTG LA MRH LTR YR RSD Q cCTCGGT R(S HLD (SE NT( VLS ID CGTGAG EQ D(SE Q SEQ E(SE NO gagagga ID Q ID ID ID Q ID : ZFC9 (SEQ ID NO: NO: NO: NO: NO: 176 1853 NO: 89) 118) 0 130) 0c 142) 0 154) 1c 166) 0 ) C1 MR HH LD ^QS D( ^QS ^QS GH ^QL ^RS SE gtCGTGA SDL GNL LA THL DNL Q GgAGAG SR( AR(S R(S NS( AR(S ID GAGAAG SEQ EQ EQ SEQ EQ NO CTcgcggcg ID ID ID ID ID : ZFC9 (SEQ ID NO: NO: NO: NO: NO: 177 1870 NO: 90) 119) 0 131) 0c 143) 0 155) 1c 167) 0 ) C1 ZFC9 agGGAGC ^QS HNS ^QS DSS ^QSS QS 1888 TtTCCTAGN 0 SLK 0c AN 0 DR 1c DLS 0 GH C123 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Target DNA-Recognition Helix Amino Acid Sequence Within Each ZFP Sequence Finger ID (capital letters) F1 L1 F2 L2 F3 L3 F4 L4 F5 L5 F6 L6 ACCTGA LA D(SE RTK KK( R(SE LS Aaagcgaa R(S Q ID (SE SEQ Q ID R(S (SEQ ID EQ NO: Q ID NO: EQ NO: 91) ID 132) ID NO: 168) ID NO: NO: 156) NO 120) 144) : 178 ) RS AD ^RS LS AH ^DR RST R(S ggGCGCC LSR QSS SDL HL QQS EQ TgGGGG (SE DLR SR( VR( DLR ID CCGCGG Q R(SE SEQ SEQ V(SE NO GGctcgcgc ID Q ID ID ID Q ID : ZFC9 (SEQ ID NO: NO: NO: NO: NO: 179 1975 NO: 92) 121) 0 133) 0c 145) 0 157) 1c 169) 0 ) C1 ^R KD PL ^QS ^RS ^RN KE GA ^RS DN ND ^QS (SE cgATGGC LA DDL LSA RK GDL Q AcCCGCA R(S TR(S (SE T(S TR(S ID GGCGGT EQ EQ Q EQ EQ NO Atcaactg ID ID ID ID ID : ZFC9 (SEQ ID NO: NO: NO: NO: NO: 180 1999 NO: 110) 122) 0 134) 0c 146) 0 158) 1c 170) 0 ) C1 QK CH ^RS LR DH ^DR RSD S(S tcCGAGG LSR DIS STR DR RSD EQ GGCGGC (SE NRN TK( KK( HLS ID CAACGG Q A(SE SEQ SEQ R(SE NO Gcggggagc ID Q ID ID ID Q ID : ZFC9 (SEQ ID NO: NO: NO: NO: NO: 181 2071 NO: 111) 123) 0 135) 0c 147) 0 159) 0c 171) 0 ) C1 Table 3 shows exemplary R→Q (Arg -> Gln) variants of representative ZFRs targeting the human PRNP gene. Shown in capital letters are the genomic target sequences (i.e., bound sequences) of the DNA-binding recognition helix sequences that are shown in a single row for each five or six finger ZFP shown (i.e., F1-F5 or F1-F6). Table 3 also indicates illustrative peptide linker sequences as shown in Table 5 between zinc fingers and between the ZFP domain and the repressor domain for each ZFP shown (i.e., L1, L2, L3, L4, L5, or L6). The 24 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 symbol “^” indicates that the arginine (R) residue at the 4th position upstream of the 1st amino acid in the indicated finger is changed to glutamine (Q). Table 4. ZFP ID Amino Acid sequence (helix, PCV, ZF linker, & interdomain linker) MAPKKKRKVGVPAAMAERPFQCRICMQNFSRSADLTRHIRTHTGEKP FACDICGRKFAQSGDLTRHTKIHTHPRAPIPKPFQCRICMQNFSRSDHL SRHIRTHTGEKPFACDICGRKFADRSNRKTHTKIHTGSQKPFQCRICMQ NFSTSGSLSRHIRTHTGEKPFACDICGRKFAQNANLMKHTKIHLRQKD AARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRN ZFC8163 VMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSET 8 AFEIKSSVRS(SEQ ID NO: 183) MAPKKKRKVGVPAAMAERPFQCRICMRNFSYPKDLARHIRTHTGEKP FACDICGRKFATSGNLTRHTKIHTGSQKPFQCRICMQNFSTSGSLSRHI RTHTGEKPFACDICGRKFAQSADRTKHTKIHTGSQKPFQCRICMQNFS QSGDLTRHIRTHTGEKPFACDICGRKFAYRWLRNNHTKIHLRQKDAA RGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRNVM ZFC8989 LENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSETAFE 1 IKSSVRS(SEQ ID NO: 184) MAPKKKRKVGVPAAMAERPFQCRICMQNFSRSADLTRHIRTHTGEKP FACDICGRKFAQSGDLTRHTKIHTHPRAPIPKPFQCRICMQNFSRSDHL SRHIRTHTGEKPFACDICGRKFADRSNRKTHTKIHTGSQKPFQCRICMQ NFSTSGSLSRHIRTHTGEKPFACDICGQKFAQNANLMKHTKIHLRQKD AARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRN ZFC8992 VMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSET 0 AFEIKSSVRS(SEQ ID NO: 185) MAPKKKRKVGVPAAMAERPFQCRICMQNFSQSGHLARHIRTHTGEKP FACDICGQKFAQLTHLNSHTKIHTHPRAPIPKPFQCRICMQNFSRSDNL ARHIRTHTGEKPFACDICGRKFAMRHHLDDHTKIHTGSQKPFQCRICM QNFSLRHHLTRHIRTHTGEKPFACDICGQKFADRSYRNTHTKIHLRQK DAARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYR ZFC8994 NVMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSE 3 TAFEIKSSVRS(SEQ ID NO: 186) MAPKKKRKVGVPAAMAERPFQCRICMQNFSRSDHLSEHIRTHTGEKPF ACDICGRKFARKSDRIKHTKIHTGSQKPFQCRICMRNFSRSADLTRHIR THTGEKPFACDICGRKFADRSNLTRHTKIHTGEKPFQCRICMRKFAHK QHRDAHTKIHLRQKDAARGSGGDAKSLTAWSRTLVTFKDVFVDFTRE ZFC9180 EWKLLDTAQQIVYRNVMLENYKNLVSLGYQLTKPDVILRLEKGEEPW 6 LVEREIHQETHPDSETAFEIKSSVRS(SEQ ID NO: 187) MAPKKKRKVGVPAAMAERPFQCRICMQNFSRSDNLARHIRTHTGEKP FACDICGRKFAMRHHLDDHTKIHTGSQKPFQCRICMRNFSLRHHLTR HIRTHTGEKPFACDICGRKFADRSYRNTHTKIHTHPRAPIPKPFQCRICM RNFSRSDVLSEHIRTHTGEKPFACDICGRKFADRSNRIKHTKIHLRQKD AARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRN ZFC9185 VMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSET 2 AFEIKSSVRS(SEQ ID NO: 188) 25 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 ZFP ID Amino Acid sequence (helix, PCV, ZF linker, & interdomain linker) MAPKKKRKVGVPAAMAERPFQCRICMQNFSRSDNLARHIRTHTGEKP FACDICGRKFAMRHHLDDHTKIHTGSQKPFQCRICMQNFSLRHHLTR HIRTHTGEKPFACDICGRKFADRSYRNTHTKIHTHPRAPIPKPFQCRICM RNFSRSDVLSEHIRTHTGEKPFACDICGRKFADRSNRIKHTKIHLRQKD AARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRN ZFC9185 VMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSET 3 AFEIKSSVRS(SEQ ID NO: 189) MAPKKKRKVGVPAAMAERPFQCRICMQNFSQSSDLSRHIRTHTGEKPF ACDICGQKFAQSGNLARHTKIHTGSQKPFQCRICMQNFSQSGHLARHI RTHTGEKPFACDICGQKFAQLTHLNSHTKIHTHPRAPIPKPFQCRICMQ NFSRSDNLARHIRTHTGEKPFACDICGRKFAMRHHLDDHTKIHLRQKD AARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRN ZFC9187 VMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSET 0 AFEIKSSVRS(SEQ ID NO: 190) MAPKKKRKVGVPAAMAERPFQCRICMQNFSQSGNLARHIRTHTGEKP FACDICGRKFAHNSSLKDHTKIHTGSQKPFQCRICMQNFSQSANRTKHI RTHTGEKPFACDICGRKFADSSDRKKHTKIHTHPRAPIPKPFQCRICMQ NFSQSSDLSRHIRTHTGEKPFACDICGRKFAQSGHLSRHTKIHLRQKDA ARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRNV ZFC9188 MLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSETAF 8 EIKSSVRS(SEQ ID NO: 191) MAPKKKRKVGVPAAMAERPFQCRICMQNFSRSAHLSRHIRTHTGEKP FACDICGRKFAQSSDLRRHTKIHTGSQKPFQCRICMQNFSDRSDLSRHI RTHTGEKPFACDICGRKFARSTHLVRHTKIHTHPRAPIPKPFQCRICMR NFSQQSDLRVHIRTHTGEKPFACDICGRKFARSADLSRHTKIHLRQKD AARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRN ZFC9197 VMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSET 5 AFEIKSSVRS(SEQ ID NO: 192) MAPKKKRKVGVPAAMAERPFQCRICMQNFSQSGALARHIRTHTGEKP FACDICGQKFARSDDLTRHTKIHTGSQKPFQCRICMQNFSRSDNLSAHI RTHTGEKPFACDICGQKFARNNDRKTHTKIHTHPRAPIPKPFQCRICMQ NFSQSGDLTRHIRTHTGEKPFACDICGQKFARKDPLKEHTKIHLRQKD AARGSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRN ZFC9199 VMLENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSET 9 AFEIKSSVRS(SEQ ID NO: 193) MAPKKKRKVGVPAAMAERPFQCRICMQNFSRSDHLSRHIRTHTGEKP FACDICGRKFADISNRNAHTKIHTGSQKPFQCRICMQNFSDRSTRTKHI RTHTGEKPFACDICGRKFARSDDRKKHTKIHTGSQKPFQCRICMRNFS RSDHLSRHIRTHTGEKPFACDICGRKFAQKCHLRSHTKIHLRQKDAAR GSGGDAKSLTAWSRTLVTFKDVFVDFTREEWKLLDTAQQIVYRNVML ZFC9207 ENYKNLVSLGYQLTKPDVILRLEKGEEPWLVEREIHQETHPDSETAFEI 1 KSSVRS(SEQ ID NO: 194) Table 4 shows illustrative full protein sequences for R→Q (Arg -> Gln) variants of the ZFRs shown in Table 3. DNA-binding recognition helix sequences are in boldface. Zinc finger linkers are underlined, whereas interdomain linkers are double underlined. 26 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0052] In some embodiments, the engineered ZFPs comprise a DNA-binding recognition helix sequence and associated backbone mutation as shown in Table 3. In some embodiments, the engineered ZFPs comprise the DNA-binding recognition helix sequences and associated backbone mutations as shown in a single row of Table 3.
[0053] In some embodiments, an engineered ZFP described herein comprises the recognition helix and backbone portions of a sequence shown in a single row of Table 4. In some embodiments, an engineered ZFP described herein comprises the recognition helix and backbone portions of a sequence shown in a single row of Table 4 as the sequence would appear following post-translational modification. For example, post-translational modification may remove the initiator methionine residue from a sequence as shown in a single row of Table 4.
[0054] In some embodiments, the ZFRs comprise one or more zinc finger domains. The domains may be linked together via an extendable flexible linker such that, for example, one domain comprises one or more (e.g., 4, 5, or 6) zinc fingers and another domain comprises additional one or more (e.g., 4, 5, or 6) zinc fingers. In some embodiments, the linker is a standard inter-finger linker such that the finger array comprises one DNA binding domain comprising 8, 9, 10, 11 or 12 or more fingers. In other embodiments, the linker is an atypical linker such as a flexible linker. For example, two ZFP domains may be linked to a transcription repressor TF in the configuration (from N terminus to C terminus) ZFP-ZFP-TF, TF-ZFP-ZFP, ZFP-TF-ZFP, or ZFP-TF-ZFP-TF (two ZFP-TF fusion proteins are fused together via a linker).
[0055] In some embodiments, the ZFRs are “two-handed,” i.e., they contain two zinc finger clusters (two ZFP domains) separated by intervening amino acids so that the two ZFP domains bind to two discontinuous target sites. An example of a two-handed type of zinc finger binding protein is SIP1, where a cluster of four zinc fingers is located at the amino terminus of the protein and a cluster of three fingers is located at the carboxyl terminus (see Remacle et al., EMBO J. (1999) 18(18):5073-84). Each cluster of zinc fingers in these proteins is able to bind to a unique target sequence and the spacing between the two target sequences can comprise many nucleotides.
[0056] Alternatively, the DNA-binding domain may be derived from a nuclease. For example, the recognition sequences of homing endonucleases and meganucleases such as I-SceI, I-CeuI, PI-PspI, PI-Sce, I-SceIV, I-CsmI, I-PanI, I-SceII, I-PpoI, I-SceIII, I-CreI, I-TevI, I-TevII and I-TevIII are known. See also U.S. Pats 5,420,032 and 6,833,252; Belfort et al., Nucleic Acids Res. (1997) 25:3379-88; Dujon et al., Gene (1989) 82:115-8; Perler et al., Nucleic Acids Res. (1994) 22:1125-7; Jasin, Trends Genet. (1996) 12:224-8; Gimble et al., J Mol Biol. (1996) 263:163-80; Argast et al., J Mol Biol. (1998) 280:345-53; and the New 27 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 England Biolabs catalogue. In addition, the DNA-binding specificity of homing endonucleases and meganucleases can be engineered to bind non-natural target sites. See, for example, Chevalier et al., Mol Cell (2002) 10:895-905; Epinat et al., Nucleic Acids Res. (2003) 31:2952- 62; Ashworth et al., Nature (2006) 441:656-59; Paques et al., Current Gene Therapy (2007) 7:49-66; and U.S. Pat. Pub.2007 / 0117128. III. Zinc-Finger Protein Transcription Factors
[0057] Zinc finger protein transcription factors for repressing PrP expression is disclosed in International Patent Publication WO 2021 / 067864, the entirety of which is incorporated by reference herein and specifically incorporated by reference in its entirety is the section related to Zinc Finger Protein Transcription Factors.
[0058] The ZFP domains described herein may be fused to a transcription factor. The ZFP domains described herein may be fused to an epigenetic silencing domain. In some embodiments, the transcription factor may be a transcription repressor domain, wherein the ZFP and repressor domains may be associated with each other by a direct peptidyl linkage or a peptide linker, or by dimerization (e.g., through a leucine zipper, a STAT protein N terminal domain, or an FK506 binding protein). As used herein, a “fusion protein” refers to a polypeptide with covalently linked domains as well as a complex of polypeptides associated with each other through non-covalent bonds. The transcription repressor domain or epigenetic silencing domain can be associated with the ZFP domain at any suitable position, including the C- or N-terminus of the ZFP domain.
[0059] In some embodiments, two or more of the ZFRs are used concurrently in a cell, animal, subject, patient, where the ZFRs bind to different target regions in the PRNP gene, so as to achieve optimal repression of PRNP expression. A. Transcription Repressor Domains
[0060] Zinc finger protein transcription factors for repressing PrP expression is disclosed in International Patent Publication WO 2021 / 067864, the entirety of which is incorporated by reference herein and specifically incorporated by reference in its entirety is the section related to Zinc Finger Repressor Domains.
[0061] The ZFRs comprise an engineered ZFP domain as described herein and one or more transcription repressor domain or epigenetic silencing domain that dampen the transcription activity of the PRNP gene. One or more engineered ZFP domains and one or more transcription repressor domains may be joined by a flexible linker. Non-limiting examples of transcription repressor domains and epigenetic silencing domains are the KOX1 KRAB 28 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 domain, KAP-1, MAD, FKHR, EGR-1, ERD, SID, TGF-beta-inducible early gene (TIEG), v- ERB-A, MBD2, MBD3, TRa, histone methyltransferase, histone deacetylase (HDAC), nuclear hormone receptor (e.g., estrogen receptor or thyroid hormone receptor), members of the DNMT family (e.g., DNMT1, DNMT3A, DNMT3B, DNMT3L, or DNMT3L with a Histone 3 tail), Rb, and MeCP2. See, e.g., Bird et al. (1999) Cell 99:451-454; Tyler et al. (1999) Cell 99:443- 446; Knoepfler et al. (1999) Cell 99:447-450; Robertson et al. (2000) Nature Genet.25:338- 342; Neumann et al. (2024) Science.384: ado7082. Additional exemplary repression domains include, but are not limited to, ROM2 and AtHD2A. See, for example, Chem et al. (1996) Plant Cell 8:305-321; and Wu et al. (2000) Plant J.22:19-27.
[0062] In some embodiments, the transcription repressor domain or epigenetic silencing domain comprises a sequence from the Kruppel-associated box (KRAB) domain of the human zinc finger protein 10 / KOX1 (ZNF10 / KOX1) (e.g., GenBank No. NM_015394.4). An exemplary KRAB domain sequence is: DAKSLTAWSR TLVTFKDVFV DFTREEWKLL DTAQQIVYRN VMLENYKNLV SLGYQLTKPD VILRLEKGEE PWLVEREIHQ ETHPDSETAF EIKSSV (SEQ ID NO: 261). Variants of this KRAB sequence may also be used so long as they have the same or similar transcription repressor function. For example, any one of the KRAB domains as described in Alerasool, N., Segal, D., Lee, H. et al. An efficient KRAB domain for CRISPRi applications in human cells. Nat Methods 17, 1093–1096 (2020). https: / / doi.org / 10.1038 / s41592-020- 0966-x.
[0063] In some embodiments, an engineered ZFR described herein binds to a target site as shown in a single row of Tables 1 and 3, preferably with no or little detectable off-target binding or activity. Off-target binding may be determined, for example, by measuring the activity of ZFRs at off-target genes.
[0064] In some embodiments, an engineered ZFR described herein comprises a DNA-binding recognition helix sequence shown in Tables 1 and 3. In some embodiments, an engineered ZFR described herein comprises two adjacent DNA-binding recognition helix sequences shown in a single row in Tables 1 and 3. In some embodiments, an engineered ZFR described herein comprises the DNA-binding recognition helix sequences shown in a single row in Tables 1 and 3. In some embodiments, an engineered ZFR described herein comprises the recognition helix and backbone portions of a sequence shown in a single row in Tables 2 29 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 and 4. In some embodiments, an engineered ZFR described herein comprises an amino acid sequence as shown in a single row in Tables 2 and 4.
[0065] In some embodiments, an engineered ZFR described herein comprises the recognition helix and backbone portions of a sequence shown in a single row in Tables 2 and 4 as the sequence would appear following post-translational modification. In some embodiments, an engineered ZFR described herein comprises an amino acid sequence as shown in a single row in Tables 2 and 4, as the sequence would appear following post- translational modification. For example, post-translational modification may remove the initiator methionine residue from a sequence as shown in a single row in Tables 2 and 4. B. Peptide Linkers
[0066] Zinc finger protein transcription factors for repressing PrP expression is disclosed in International Patent Publication WO 2021 / 067864, the entirety of which is incorporated by reference herein and specifically incorporated by reference in its entirety is the section related to Peptide linkers.
[0067] The ZFP domain and the transcription repressor domain of the ZFRs and / or the zinc fingers within the ZFP domains may be linked through a peptide linker, e.g., a noncleavable peptide linker of about 5 to 50 amino acids (e.g., 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20 or more amino acids). Preferred linkers are typically flexible amino acid subsequences that are synthesized as a recombinant fusion protein. In some embodiments, zinc fingers are linked such that there is no gap between the linked module target subsites in the target nucleic acid molecule. In other embodiments, zinc fingers are linked by linkers designed to allow the linked modules to bind to target sites with 1, 2 or 3 base pair gaps between the linked module target subsites in the target nucleic acid molecule. See, e.g., U.S. Patent No. 8,772,453.
[0068] In some embodiments, the peptide linker is 3 to 20 amino acid residues in length and is rich in G and / or S. Non-limiting examples of such linkers are G4S-type linkers, i.e., linkers containing one or more (e.g., 2, 3, or 4) GGGGS (SEQ ID NO: 15) motifs, or variations of the motif (such as ones that have 1, 2, or 3 amino acid insertions, deletions, and substitutions from the motif).
[0069] Linker design methods and illustrative linkers that may be used to link the ZFP domain and the transcription repressor domain of the ZFRs and / or the zinc fingers within the ZFP domains are described in U.S. Patent NOS: 6,479,626 (herein incorporated by reference in its entirety); 7,851,216 (herein incorporated by reference in its entirety); 8,772,453 (herein incorporated by reference in its entirety); 9,394,531 (herein incorporated by reference 30 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 in its entirety); 9,567,609 (herein incorporated by reference in its entirety); and 10,724,020 (herein incorporated by reference in its entirety); and PCT Publication NOS: WO 1999 / 045132 (herein incorporated by reference in its entirety); WO 2001 / 053480 (herein incorporated by reference in its entirety); WO 2009 / 154686 (herein incorporated by reference in its entirety); WO 2011 / 139349 (herein incorporated by reference in its entirety); WO 2015 / 031619 (herein incorporated by reference in its entirety); and WO 2017 / 136049 (herein incorporated by reference in its entirety). The proteins described herein may include any combination of suitable linkers.
[0070] Non-limiting examples of linkers are DGGGS (SEQ ID NO: 3), TGEKP (SEQ ID NO: 4), LRQKDGERP (SEQ ID NO: 5), GGRR (SEQ ID NO: 6), GGRRGGGS (SEQ ID NO: 7), LRQRDGERP (SEQ ID NO: 8), LRQKDGGGSERP (SEQ ID NO: 9), LRQKD(G3S)2 ERP (SEQ ID NO: 10), TGSQKP (SEQ ID NO: 11), LRQKDAARGS (SEQ ID NO: 13), and LRQKDAARGSGG (SEQ ID NO: 14). Additional illustrative linkers for linking zinc fingers and / or for linking domains are listed in Table 5. The finger-finger linkers listed in Table 5 include portions of backbone sequence, e.g., FQ or FA.
[0071] Table 5 shows illustrative alternate peptide linkers that may be used to link zinc finger amino acid sequences and / or ZFP and functional domain sequences as shown in Tables 1 and Table 3. Table 5 Linker Linker Exemplary Linker Position Category Linker SEQ ID Code Peptide sequence NO: 0a TGEKPFQ 93 0b TGGQRPFQ 94 No base skipping 0c TGSQKPFQ 95 0d TGSQRPFQ 96 0f TGEKPFA 97 1a TGGGGSQRPFQ 98 1b TGGGGSQKPFQ 99 1c THPRAPIPKPFQ 100 Finger-Finger 1 base skipping 1d TPNRRPAPKPFQ 101 1e TVPRPTPPKPFQ 102 1f TYPRPIAAKPFQ 103 2a TGGGGSGGSQRPFQ 104 2b TGGGGSGGSQKPFQ 105 2 base skipping 2d TLAPRPYRPPKPFQ 106 2e TPGGKSSRTDRNKPFQ 107 2f TPNPHRRTDPSHKPFQ 108 31 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 ZFP- C0 LRGSGG 109 functional C1 LRQKDAARGS 13 domain ZFR (interdomain) C1k LRQKDAARGSGG 14 IV. Expression of the ZFRs
[0072] Zinc finger protein transcription factors for repressing PrP expression is disclosed in International Patent Publication WO 2021 / 067864, the entirety of which is incorporated by reference herein and specifically incorporated by reference in its entirety is the section related to Expression of the ZFRs.
[0073] A ZFR may be introduced to a patient through a nucleic acid molecule encoding it. The nucleic acid molecule may be an RNA or cDNA molecule. The nucleic acid molecule may be introduced into the brain of the patient through injection of a composition comprising a lipid:nucleic acid complex (e.g., a liposome). Alternatively, the ZFR may be introduced to the patient through a nucleic acid expression vector comprising a sequence encoding the ZFR. The expression vectors may include expression control sequences such as promoters, enhancers, transcription signal sequences, and transcription termination sequences that allow expression of the coding sequence for the ZFRs in the cells of the nervous system. In some embodiments, the expression vector remains present in the cell as a stable episome. In other embodiments, the expression vector is integrated into the genome of the cell.
[0074] In some embodiments, the promoter on the vector for directing the ZFR expression in the brain is a constitutive active promoter or an inducible promoter. Suitable promoters include, without limitation, a retroviral RSV LTR promoter (optionally with an RSV enhancer), a CMV promoter (optionally with a CMV enhancer), a CMV immediate early promoter, an SV40 promoter, a dihydrofolate reductase (DHFR) promoter, a β-actin promoter, a phosphoglycerate kinase (PGK) promoter, an EFlα promoter, a MoMLV LTR, a CK6 promoter, a TK promoter, a tetracycline responsive promoter (TRE), an HBV promoter, chimeric liver-specific promoters (LSPs), an E2F promoter, the telomerase (hTERT) promoter, a CMV enhancer / chicken β-actin / rabbit β-globin promoter (CAG promoter; Niwa et al., Gene (1991) 108(2):193-9), and an RU-486-responsive promoter. Neuron- or glial-specific promoters such as a Synapsin I promoter, a CAMKII promoter, a MeCP2 promoter, a PrP promoter, a GFAP promoter, or an engineered or natural promoter that restricts expression to neuron and glial cells may also be used.
[0075] Any method of introducing the nucleotide sequence into a cell may be employed, including but not limited to, electroporation, calcium phosphate precipitation, 32 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 microinjection, cationic or anionic liposomes, liposomes in combination with a nuclear localization signal, naturally occurring liposomes (e.g., exosomes), or viral transduction.
[0076] For in vivo delivery of a PRNP-targeting ZFR fusion protein, viral transduction is used using an AAV capsid protein comprising SEQ ID. NO: 1235 encapsulating an expression construct encoding the fusion protein. For in vivo delivery of an expression vector, viral transduction may be used. A variety of viral vectors known in the art may be adapted by one of skill in the art for use in the present disclosure, for example, vaccinia vectors, adenoviral vectors, lentiviral vectors, poxyviral vectors, adeno-associated viral (AAV) vectors, retroviral vectors, and hybrid viral vectors. In some embodiments, the viral vector used herein is a recombinant AAV (rAAV) vector. AAV vectors are especially suitable for CNS gene delivery because they infect both dividing and non-dividing cells, exist as stable episomal structures for long-term expression, and have very low immunogenicity (Hadaczek et al., Mol Ther. (2010) 18:1458-61; Zaiss, et al., Gene Ther. (2008) 15:808-16). Any suitable AAV serotype may be used. For example, the AAV may be AAV1, AAV2, AAV3, AAV3B, AAV4, AAV5, AAV6, AAV7, AAV8, AAV8.2, AAV9, or AAVrh10, or of a pseudotype such as AAV2 / 8, AAV2 / 5, AAV2 / 6 or AAV2 / 9 (i.e., AAV derived from multiple serotypes; for example, the rAAV comprises AAV2 inverted terminal repeats (ITR) in its genome and an AAV8, 5, 6, or 9 capsid). In some embodiments, the expression vector is an AAV viral vector and is introduced to the target human cell by a recombinant AAV virion whose genome comprises the construct, including having the AAV Inverted Terminal Repeat (ITR) sequences on both ends to allow the production of the AAV virion in a production system such as an insect cell / baculovirus production system or a mammalian cell production system). The AAV may be engineered such that its capsid proteins have reduced immunogenicity, enhanced transduction ability, and / or an augmented ability to cross a biological barriers (such as the blood brain barrier) in humans, nonhuman primates, or rodents. In some embodiments, AAV9 is used. Viral vectors described herein may be produced using methods known in the art. Any suitable permissive or packaging cells may be employed to produce the viral particles. For example, mammalian or insect cells may be used as the packaging cell line.
[0077] In some embodiments, a prion-targeting transcriptional repressor (e.g., ZFR) is delivered by STAC-BBB. In some embodiments, any one of the ZFRs described herein are delivered by a BBB penetrant AAV capsid. In some embodiments the BBB penetrant AAV capsid is STAC-BBB.
[0078] In some embodiments, targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) is introduced into the AAV capsid 33 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 proteins VP1, VP2 or VP3, or in two of the capsid proteins in any combination, or in all three. In some embodiments, the targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) is introduced into VP1. In some embodiments, the targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) is introduced into VP2. In some embodiments, the targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) is introduced into VP3. In some embodiments, the targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) is introduced into VP1 and VP2. In some embodiments, the targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) is introduced into VP1 and VP3. In some embodiments, the targeting peptide (SEQ ID NOS: 263- 1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) is introduced into VP2 and VP3. In some embodiments, the targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) is introduced into VP1, VP2, and VP3. In some embodiments, the targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) is introduced at a single site in a capsid protein such as 1496 or 1497.
[0079] In some embodiments, the AAV capsid protein comprises a targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) introduced into the AAV capsid proteins VP1, VP2 or VP3, or in two of the AAV capsid proteins VP1, VP2 or VP3 in any combination, or in all three. In some embodiments, the AAV capsid protein comprises a targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) introduced into VP1. In some embodiments, the AAV capsid protein comprises a targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) introduced into VP2. In some embodiments, the AAV capsid protein comprises a targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) introduced into VP3. In some embodiments, the AAV capsid protein comprises a targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) introduced into VP1 and VP2. In some embodiments, the AAV capsid protein comprises a targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) introduced into VP1 and VP3. In some embodiments, the AAV capsid protein comprises a targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) are introduced into VP2 and VP3. In some embodiments, the AAV capsid protein comprises a targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ ID NOs: 333, 417, 442, or 673) introduced into VP1, VP2, and VP3. In some embodiments, the AAV capsid protein comprises a targeting peptide (SEQ ID NOS: 263-1495, preferably one of SEQ 34 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 ID NOs: 333, 417, 442, or 673) is introduced at a single site in a capsid protein such as 1496 or 1497.
[0080] In some embodiments, the AAV capsid protein comprises one of SEQ ID NO: 333, 417, 442 or 673 introduced into the AAV capsid proteins VP1, VP2 or VP3. In some embodiments, the AAV capsid protein comprises one of SEQ ID NO: 333, 417, 442 or 673 introduced into two of the AAV capsid proteins VP1, VP2 or VP3 in any combination. In some embodiments, the AAV capsid protein comprises one of SEQ ID NO: 333, 417, 442 or 673 introduced into the AAV capsid proteins VP1, VP2 and VP3. In some embodiments, the AAV capsid protein comprises one of SEQ ID NO: 333, 417, 442 or 673 introduced into VP1 and not VP2 or VP3. In some embodiments, the AAV capsid protein comprises one of SEQ ID NO: 333, 417, 442 or 673 introduced into VP2 and not VP1 or VP3. In some embodiments, the AAV capsid protein comprises one of SEQ ID NOs: 333, 417, 442, or 673introduced into VP3 and not VP2 or VP1. In some embodiments, the AAV capsid protein comprises one of SEQ ID NOs: 333, 417, 442, or 673introduced into VP1 and VP2 and not VP3. In some embodiments, the AAV capsid protein comprises one of SEQ ID NOs: 333, 417, 442, or 673introduced into VP1 and VP3 and not VP2. In some embodiments, the AAV capsid protein comprises one of SEQ ID NOs: 333, 417, 442, or 673introduced into VP2 and VP3 and not VP1. In some embodiments, the AAV capsid protein comprises one of SEQ ID NOs: 333, 417, 442, or 673introduced into VP1, VP2, and VP3. In some embodiments, the AAV capsid protein comprises one of SEQ ID NOs: 333, 417, 442, or 673is introduced at a single site in a capsid protein such as 1496 or 1497.
[0081] In some embodiments, the AAV capsid protein comprises SEQ ID NOS: 1498, 1499 or 1500. In some embodiments, the AAV capsid protein comprises SEQ ID NOS: 1498, 1499 and 1500. In some embodiments, the AAV capsid protein comprises SEQ ID NOS: 1498 or 1499 and not 1500. In some embodiments, the AAV capsid protein comprises SEQ ID NOS: 1498 or 1500 and not 1499. In some embodiments, the AAV capsid protein comprises SEQ ID NOS: 1499 or 1500 and not 1498. In some embodiments, the AAV capsid protein comprises SEQ ID NO: 1498 and not 1499 or 1500. In some embodiments, the AAV capsid protein comprises SEQ ID NO: 1499 and not 1498 or 1500. In some embodiments, the AAV capsid protein comprises SEQ ID NO: 1500 and not 1499 or 1498.
[0082] In some embodiments, the composition comprises an AAV capsid protein, the AAV capsid protein comprising SEQ ID NOS: 1498, 1499 or 1500 and an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein 35 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the composition comprises an AAV capsid protein the AVV capsid protein comprising SEQ ID NOS: 1498, 1499 and 1500 and an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the composition comprises an AAV capsid protein, the AAV capsid protein comprising SEQ ID NOS: 1498 or 1499 and an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the composition comprises an AAV capsid protein, the AAV capsid protein comprises SEQ ID NOS: 1498 or 1500 and an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the composition comprises an AAV capsid protein, the AAV protein comprises SEQ ID NOS: 1499 or 1500 and an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the composition comprises an AAV capsid protein, the AAV capsid protein comprises SEQ ID NO: 1498 and not 1499 or 1500 and an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the composition comprises an AAV capsid protein, the AAV capsid protein comprises SEQ ID NO: 1499 and not 1498 or 1500 and an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the composition comprises an AAV capsid protein, the AAV capsid protein comprises SEQ ID NO: 1500 and not 1499 or 1498 and an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene.
[0083] In some embodiments, an expression construct encoding the ZFRs described herein is packaged into an AAV capsid comprising a AAV capsid sequence shown below in 36 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 SEQ ID. NO: 1498 encapsulates an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 (See FIG.1B). In some embodiments, an expression construct encoding the ZFRs described herein is packaged into an AAV capsid comprising a AAV capsid sequence shown below in SEQ ID. NO: 1498 encapsulating an expression construct encoding PRNP ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 (See FIG.1B). In some embodiments, an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 is packaged into an AAV capsid comprising an AAV capsid protein selected from the group comprising, consisting, or consisting essentially of SEQ ID. NO: 1498, SEQ ID. NO: 1499, SEQ ID. NO: 1500 and combinations thereof encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, an expression construct encoding a PRNP ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 is packaged into an AAV capsid comprising an AAV capsid protein selected from the group comprising, consisting, or consisting essentially of SEQ ID. NO: 1498, SEQ ID. NO: 1499, SEQ ID. NO: 1500 and combinations thereof encapsulating an expression construct encoding a fusion protein comprising a PRNP ZFR from Tables 2 and 4. In some embodiments, an expression construct encoding the ZFRs described herein is packaged into an AAV capsid comprising all of SEQ ID. NO: 1498, SEQ ID. NO: 1499, SEQ ID. NO: 1500. In some embodiments, an expression construct encoding the ZFRs described herein is packaged into an AAV capsid comprising one of SEQ ID. NO: 1498, SEQ ID. NO: 1499, SEQ ID. NO: 1500. In some embodiments, an expression construct encoding the ZFRs described herein is packaged into an AAV capsid comprising a plurality of SEQ ID. NO: 1498, SEQ ID. NO: 1499, SEQ ID. NO: 1500.
[0084] In some embodiments, a variant AAV capsid protein sequence may be used. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NO: 1498. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NO: 1499. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NO: 1500. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NOS: 1498, 1499 and 1500. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NO: 1498 and encapsulates an expression 37 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA- binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NO: 1498 and encapsulates an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NO: 1499 and encapsulates an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NO: 1499 and encapsulates an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NO: 1500 and encapsulates an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NO: 1500 and encapsulates an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NOS: 1498, 1499 and 1500 and encapsulates an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, the variant AAV capsid protein sequence is at least 80%, 85%, 90%, 95%, or 99% identical to a SEQ ID. NOS: 1498, 1499 and 1500 and encapsulates an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4.
[0085] In some embodiments, a vector encoding any one of the ZFP or ZFR sequences as shown in Tables 1-4 is packaged into SEQ ID NO.1497. In some embodiments, a vector encoding any one of the ZFP or ZFR sequences as shown in Tables 1-4 is packaged into SEQ ID NO.1496. In some embodiments, a vector encoding any one of the ZFP or ZFR sequences as shown in a single row of Tables 1-4 is packaged into an AAV.
[0086] Here, the novelty is the combination of a PRNP targeting ZFP delivered via a novel AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of 38 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 an amino acid sequence set forth in any one of SEQ ID NO: 263-1495. An AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 is not the same as an AAV. As discussed above, an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 (and in particular SEQ ID 1498) is a specifically modified AAV. In some embodiments, the novel AAV capsid protein has an insertion of a peptide sequence into variable region 8 of the AAV capsid. In some embodiments, the novel AAV capsid protein has an insertion of a peptide sequence into variable region 8 of the AAV capsid and is capable of crossing the blood brain barrier in non- human primates and humans. In some embodiments, the specific sequence of the novel AAV capsid protein has at least 80%, 85%, 90%, 95%, or 99% identity to a sequence shown in SEQ ID NOS: 1498, 1499, or 1500.
[0087] An AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in one of SEQ ID NOs: 333, 417, 442, or 673 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 can facilitate movement of the construct across the blood brain barrier. An AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in one of SEQ ID NOs: 333, 417, 442, or 673 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4 can facilitate movement of the construct across the blood brain barrier. The AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in one of SEQ ID NOs: 333, 417, 442, or 673 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 generally increases or enhances movement of the construct across the blood brain barrier compared to SEQ ID Nos 1496 or 1497. The AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in one of SEQ ID NOs: 333, 417, 442, or 673 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4 generally increases or enhances movement of the construct across the blood brain barrier compared to SEQ ID Nos 1496 or 1497. The efficiency of movement across the blood brain barrier can be increased by at least or about 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%, 200%, 300%, 400%, 500%, 600%, 700%, 800%, 900%, 1000% or 39 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 more, e.g. an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA- binding recognition helix sequences as shown in a single row of Tables 1 and 3 can be at least or about 1.2×, 1.5×, 2×, 3×, 4×, 5×, 6×, 7×, 8×, 9×, 10×, 11×, 12×, 13×, 14×, 15×, 16×, 17×, 18×, 19×, 20×, 30×, 40×, 50×, 60×, 70×, 80×, 90×, 100× or more compared to a non-modified AAV capsid polypeptide (e.g. SEQ ID NO: 1496 or 1497). The efficiency of movement across the blood brain barrier can be increased by at least or about 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%, 200%, 300%, 400%, 500%, 600%, 700%, 800%, 900%, 1000% or more, e.g. an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 can be at least or about 1.2×, 1.5×, 2×, 3×, 4×, 5×, 6×, 7×, 8×, 9×, 10×, 11×, 12×, 13×, 14×, 15×, 16×, 17×, 18×, 19×, 20×, 30×, 40×, 50×, 60×, 70×, 80×, 90×, 100× or more compared to a non-modified AAV capsid polypeptide (e.g. SEQ ID NO: 1496 or 1497). In particular examples, the increased movement of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 across the blood brain barrier is observed in non-human primates and humans in vivo. In particular examples, the increased movement of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 across the blood brain barrier is observed in non-human primates and humans in vivo. An AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 is therefore particularly useful in delivering ZFPs to the brain, such as for therapy of a brain-associated disease or condition. An AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 is therefore particularly useful in delivering ZFPs to the brain, such as for therapy of a brain- associated disease or condition. In some embodiments, the ZFP from the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 is administered to a subject and is 40 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 not expressed outside the brain. In some embodiments, the ZFP from the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4 is administered to a subject and is not expressed outside the brain. In some embodiments, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 comprises, consists, or consists essentially of a hSYN1 promoter that is administered to a subject and is not expressed outside the brain. In some embodiments, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4 comprises, consists, or consists essentially of a hSYN1 promoter that is administered to a subject and is not expressed outside the brain. In some embodiments, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 comprising, consisting, or consisting essentially of a hSYN1 promoter is administered to a subject and is not expressed outside the brain and is administered to the subject by an intravenous, intrathecal, intracerebral, intracerebroventricular, intra-cisternal magna, intrahippocampal, intrathalamic, or intraparenchymal route. In some embodiments, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4 comprising, consisting, or consisting essentially of a hSYN1 promoter is administered to a subject and is not expressed outside the brain and is administered to the subject by an intravenous, intrathecal, intracerebral, intracerebroventricular, intra-cisternal magna, intrahippocampal, intrathalamic, or intraparenchymal route. In some embodiments, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct an expression construct encoding a 41 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 comprising, consisting, or consisting essentially of a hSYN1 promoter is administered to a subject and is not expressed outside the brain and is administered to the subject by an intravenous, intrathecal, intracerebral, intracerebroventricular, intra-cisternal magna, intrahippocampal, intrathalamic, or intraparenchymal route at a dose between 1E12 vg / kg to 5E14 vg / kg or therapeutically effective amount. In some embodiments, the AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising a ZFR as shown in a single row in Tables 2 and 4 comprising, consisting, or consisting essentially of a hSYN1 promoter is administered to a subject and is not expressed outside the brain and is administered to the subject by an intravenous, intrathecal, intracerebral, intracerebroventricular, intra-cisternal magna, intrahippocampal, intrathalamic, or intraparenchymal route at a dose between 1E12 vg / kg to 5E14 vg / kg or therapeutically effective amount. In some embodiments, the subject is a mammal preferably a human.
[0088] An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NO: 1498 encapsulating a heterologous coding sequence the heterologous coding sequence coding a fusion protein comprising, consisting, or consisting essentially of a zinc finger protein (ZFP) domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NO: 1498 encapsulating a heterologous coding sequence the heterologous coding sequence coding a fusion protein comprising, consisting, or consisting essentially of an amino acid sequence as shown in a single row in Tables 2 and 4.
[0089] An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NO: 1499 and a heterologous coding sequence the heterologous coding sequence coding a fusion protein comprising, consisting, or consisting essentially of a zinc finger protein (ZFP) domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NO: 1499 and a heterologous coding sequence the heterologous coding sequence coding a fusion protein comprising, consisting, or consisting essentially of an amino acid sequence as shown in a single row in Tables 2 and 4. 42 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0090] An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NO: 1500 and a heterologous coding sequence the heterologous coding sequence coding a fusion protein comprising, consisting, or consisting essentially of a zinc finger protein (ZFP) domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NO: 1500 and a heterologous coding sequence the heterologous coding sequence coding a fusion protein comprising, consisting, or consisting essentially of an amino acid sequence as shown in a single row in Tables 2 and 4.
[0091] An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof and a heterologous coding sequence the heterologous coding sequence coding a fusion protein comprising, consisting, or consisting essentially of a zinc finger protein (ZFP) domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof and a heterologous coding sequence the heterologous coding sequence coding a fusion protein comprising, consisting, or consisting essentially of an amino acid sequence as shown in a single row in Tables 2 and 4.
[0092] An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof and a PRNP ZFR fused to the KRAB repression domain derived from the human ZNF10 gene. An embodiment comprises a composition comprising a capsid polypeptide comprising SEQ ID NOS: 1498, 1499, 1500 and combinations thereof and a PRNP ZFR fused to the KRAB repression domain derived from the human ZNF10 gene and cloned downstream of the hSYN1 promoter to restrict the expression of the ZFR to neurons. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof and a PRNP ZFR fused to the KRAB repression domain derived from the human ZNF10 gene and cloned downstream of the hSYN1 promoter and flanked by AAV2 inverted terminal repeat sequences.
[0093] An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA- binding recognition helix sequences as shown in a single row of Tables 1 and 3 fused to the 43 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 KRAB repression domain derived from the human ZNF10 gene. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 fused to the KRAB repression domain derived from the human ZNF10 gene. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 fused to the KRAB repression domain derived from the human ZNF10 gene and cloned downstream of the hSYN1 promoter to restrict the expression of the ZFP to neurons. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof encapsulating an expression construct encoding a fusion protein comprising a ZFRZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 fused to the KRAB repression domain derived from the human ZNF10 gene and cloned downstream of the hSYN1 promoter to restrict the expression of the ZFP to neurons. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 fused to the KRAB repression domain derived from the human ZNF10 gene and cloned downstream of the hSYN1 promoter and flanked by AAV2 inverted terminal repeat sequences. An embodiment comprises a composition comprising a capsid polypeptide having SEQ ID NOS: 1498, 1499, 1500 and combinations thereof encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 fused to the KRAB repression domain derived from the human ZNF10 gene and cloned downstream of the hSYN1 promoter and flanked by AAV2 inverted terminal repeat sequences.
[0094] Disclosed is a method for producing an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495, comprising transfecting a host cell with three plasmids – (i) an AAV Helper plasmid containing the AAV2 Rep and STAC-BBB Cap genes, (ii) an Adenovirus Helper plasmid containing the adenovirus helper genes, and (iii) a transgene plasmid containing the sequence to be packaged flanked by AAV2 inverted terminal repeats, under conditions 44 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 suitable to facilitate assembly of an AAV vector comprising a capsid comprising, consisting, or consisting essentially of SEQ ID NOS: 1498, 1499, and / or 1500, wherein the capsid encapsulates an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the ZFP domain comprises, consists, or consists essentially of a DNA-binding recognition helix sequence as shown in Tables 1 and 3. In some embodiments, the ZFP domain comprises, consists, or consists essentially of DNA- binding recognition helix sequences linked as shown in Tables 2 and 4. In some embodiments, the ZFP domain comprises, consists, or consists essentially of DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3. In some embodiments, the ZFP domain binds to a Target Sequence as shown in a single row in Tables 1 and 3. In some embodiments, the fusion protein comprises, consists, or consists essentially of a sequence as shown in a single row in Tables 2 and 4. In some embodiments, the fusion protein comprises a DNA-binding recognition helix sequence having at least 80%, 85%, 90% or 99% identity to a sequence as shown in a single row of Tables 1 and 3. In some embodiments, the fusion protein comprises a sequence having at least 80%, 85%, 90% or 99% identity to a sequence as shown in a single row in Tables 2 and 4. In some embodiments, the fusion protein comprises, consists, or consists essentially of a sequence as shown in a single row in Tables 2 and 4. In some embodiments, the AAV capsid protein comprises SEQ ID NO: 1498.
[0095] Disclosed are methods of administering an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein (e.g., the AAV capsid protein comprises SEQ ID NO: 1498 and the PRNP targeted ZFP fusion protein, the fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3) to a subject. Disclosed are methods of administering an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 encapsulating an expression construct encoding a PRNP targeted ZFP fusion protein (e.g., the AAV capsid protein comprises SEQ ID NO: 1498 and the PRNP targeted ZFP fusion protein comprises a sequence as shown in a single row in Tables 2 and 4) to a subject. In some embodiments, the subject is a human. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present in the right brain hemisphere. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present in the left brain hemisphere. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after 45 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 administration, ZFP expression is present in the right and left brain hemisphere. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present in the right or left brain hemisphere but not both. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is not present outside the brain. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present in the right brain hemisphere across 10 brain levels. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present in the right brain hemisphere across 10 brain levels spanning 35 regions. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present in 7 coronal levels. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present across the rostrocaudal axis. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present inside and outside the brain. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present only inside the brain, not outside the brain. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, PRNP expression is reduced or stopped compared to prior to administration. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, PRNP expression is reduced or stopped compared to prior to administration at all levels and brain regions. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, PRNP expression is reduced or stopped at all levels and brain regions compared to prior to administration. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present in one or more brain cell selected from the group comprising, consisting, or consisting essentially of a motor neuron, a sensory neuron, a dopaminergic neuron, a cholinergic neuron, a glutamatergic neuron, a GABAergic neuron, or a serotonergic neuron, a glial cell, optionally an oligodendrocyte, an astrocyte, a pericyte, a Schwann cell, or a microglial cell, an ependymal cell, a neuroepithelial cell, or combinations thereof. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, PRNP expression is reduced or stopped compared to prior to administration in one or more brain cell selected from the group comprising, consisting, or consisting essentially of a motor neuron, a sensory neuron, a dopaminergic neuron, a cholinergic neuron, a glutamatergic neuron, a GABAergic neuron, or a serotonergic neuron, a glial cell, optionally an oligodendrocyte, an astrocyte, a pericyte, a Schwann cell, or a microglial cell, an ependymal cell, a neuroepithelial cell, or combinations thereof. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present in all brain regions. In some embodiments, 1-60 days, 46 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 preferably 28, 29, or 30 days after administration, PRNP expression is reduced or stopped compared to prior to administration in all brain regions. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, ZFP expression is present in one or more brain region selected from the group comprising, consisting, or consisting essentially of motor cortex, cortical regions, the entorhinal cortex, the hippocampus, the cerebellum, the globus pallidus, the thalamus, the midbrain, the caudate, the putamen, the substantia nigra, the pons, the medulla and combinations thereof. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration, PRNP expression is reduced or stopped compared to prior to administration in one or more brain region selected from the group comprising, consisting, or consisting essentially of motor cortex, cortical regions, the entorhinal cortex, the hippocampus, the cerebellum, the globus pallidus, the thalamus, the midbrain, the caudate, the putamen, the substantia nigra, the pons, the medulla and combinations thereof.
[0096] In some embodiments, the AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA- binding recognition helix sequences as shown in a single row of Tables 1 and 3 is targeted to different cell types and brain regions by altering the promoter, serotype, route of administration and combinations thereof. In some embodiments, expression of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 is restricted to brain cell types following administration. In some embodiments, expression of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 is not detected outside the brain following administration. In some embodiments, PRNP expression is reduced or stopped following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 compared to prior to administration only in brain cell types. In some embodiments, expression of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 is restricted to CNS cell types. In some embodiments, PRNP expression following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 is reduced or stopped compared to prior to administration only in 47 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 CNS cell types. In some embodiments, an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 has rapid pharmacokinetics, i.e., 90-100% single cell potency. In some embodiments, the penetration discussed above is based on a one-time delivery of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, ZFP expression is dose-dependent. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA- binding recognition helix sequences as shown in a single row of Tables 1 and 3, PRNP repression is dose-dependent. In some embodiments, the AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 dose is 1E14 vg / kg. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, ZFP expression is present in individual neurons. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, PRNP transcript levels in individual neurons is reduced or absent compared to prior to administration. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, ZFP expression is present in in NeuN-positive cells. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, PRNP transcript levels in individual neurons is reduced or absent in NeuN-positive cells compared to prior to 48 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 administration. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, PRNP transcript levels in individual neurons is reduced or absent in NeuN-positive cells compared to prior to administration and ZFR signal is undetectable or minimally detected by ISH. In some embodiments, the AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 has a hSYN1 promoter and S100β-positive glial cells do not express ZFP but neurons have ZFP expression.
[0097] Disclosed is a method of treating a subject with a 1E14 vg / kg dose of, or between 1E12 vg / kg to 5E14 vg / kg, an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, the ZFP is expressed in cells selected from the group comprising, consisting, or consisting essentially of the pons region of the brainstem, cervical level of the spinal cord, precentral gyrus region of the motor cortex, temporal cortex, thalamus and combinations thereof. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, the ZFP is expressed in cells selected from the group comprising, consisting, or consisting essentially of the pons region of the brainstem, cervical level of the spinal cord, precentral gyrus region of the motor cortex, temporal cortex, thalamus ChAT- positive motor neurons and combinations thereof. Following administration PRNP transcript levels in individual neurons is reduced compared to prior to administration. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, PRNP transcript levels in individual neurons is reduced or absent compared to prior to administration. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3, PRNP transcript levels in individual neurons is reduced or absent 49 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 in NeuN-positive cells compared to prior to administration. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 PRNP transcript levels in individual neurons is reduced or absent in NeuN-positive cells compared to prior to administration and ZFR signal is undetectable or minimally detected by ISH. In some embodiments, the AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3 has a hSYN1 promoter and S100β-positive glial cells do not express ZFP but neurons have ZFP expression.
[0098] In some embodiments, the AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 is targeted to different cell types and brain regions by altering the promoter, serotype, route of administration and combinations thereof. In some embodiments, expression of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 is restricted to brain cell types following administration. In some embodiments, expression of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 is not detected outside the brain following administration. In some embodiments, PRNP expression is reduced or stopped following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 compared to prior to administration only in brain cell types. In some embodiments, expression of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 is restricted to CNS cell types. In some embodiments, PRNP expression following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 is reduced or stopped compared to prior to administration only in CNS cell types. In some embodiments, an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct 50 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 has rapid pharmacokinetics, i.e., 90-100% single cell potency. In some embodiments, the penetration discussed above is based on a one-time delivery of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, ZFP expression is dose-dependent. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, PRNP repression is dose- dependent. In some embodiments, the AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 dose is 1E14 vg / kg. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, ZFP expression is present in individual neurons. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, PRNP transcript levels in individual neurons is reduced or absent compared to prior to administration. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, ZFP expression is present in in NeuN-positive cells. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, PRNP transcript levels in individual neurons is reduced or absent in NeuN-positive cells compared to prior to administration. In some embodiments, 1-60 days, preferably 28, 29, or 30 days after 51 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, PRNP transcript levels in individual neurons is reduced or absent in NeuN-positive cells compared to prior to administration and ZFR signal is undetectable or minimally detected by ISH. In some embodiments, the AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 has a hSYN1 promoter and S100β-positive glial cells do not express ZFP but neurons have ZFP expression.
[0099] Disclosed is a method of treating a subject with a 1E14 vg / kg dose of, or between 1E12 vg / kg to 5E14 vg / kg, an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, the ZFP is expressed in cells selected from the group comprising, consisting, or consisting essentially of the pons region of the brainstem, cervical level of the spinal cord, precentral gyrus region of the motor cortex, temporal cortex, thalamus and combinations thereof. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, the ZFP is expressed in cells selected from the group comprising, consisting, or consisting essentially of the pons region of the brainstem, cervical level of the spinal cord, precentral gyrus region of the motor cortex, temporal cortex, thalamus ChAT- positive motor neurons and combinations thereof. Following administration PRNP transcript levels in individual neurons is reduced compared to prior to administration. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, PRNP transcript levels in individual neurons is reduced or absent compared to prior to administration. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4, PRNP transcript levels in individual neurons is reduced or absent in NeuN-positive cells compared to prior to 52 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 administration. Following administration of an AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4 PRNP transcript levels in individual neurons is reduced or absent in NeuN-positive cells compared to prior to administration and ZFR signal is undetectable or minimally detected by ISH. In some embodiments, the AAV capsid protein comprising SEQ ID. NO: 1498 encapsulating an expression construct encoding a fusion protein comprising a ZFR, the ZFR comprising an amino acid sequence as shown in a single row in Tables 2 and 4has a hSYN1 promoter and S100β-positive glial cells do not express ZFP but neurons have ZFP expression.
[0100] V. CNS (Central Nervous System)-Targeting Molecules (Targeting Peptides)
[0101] Engineered blood brain barrier penetrant AAV capsids are disclosed in International Patent Publication WO 2024 / 238684, the entirety of which is incorporated by reference herein, and specifically incorporated by reference in its entirety is the section related to CNS (Central Nervous System)- Targeting Molecules (Targeting Peptides).
[0102] Described herein are CNS-targeting molecules, i.e., targeting peptides. In some embodiments, the CNS-targeting molecules have enhanced tropism for a cell or tissue, such as the delivery of genetic material of interest to said cell or tissue, for example a CNS tissue or PNS tissue or a CNS cell or PNS cell.
[0103] In some embodiments, the CNS-targeting molecule comprises a sequence set forth in SEQ ID NO: 263-1495. In some embodiments, the targeting peptide comprises at least 5, 6, 7, 8, or 9 contiguous amino acids of a sequence set forth in SEQ ID NO: 263-1495. In some embodiments, the targeting peptide comprises the sequence set forth in SEQ ID NO: 333. In some embodiments, the targeting peptide comprises the sequence set forth in SEQ ID NO: 417. In some embodiments, the targeting peptide comprises the sequence set forth in SEQ ID NO: 442. In some embodiments, the targeting peptide comprises the sequence set forth in SEQ ID NO: 673. In some embodiments, the targeting peptide comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 333. In some embodiments, the targeting peptide comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 417. In some embodiments, the targeting peptide comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 442. In some embodiments, the targeting peptide comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 673. 53 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0104] In some embodiments, the CNS-targeting molecule comprises variants of the amino acid sequences set forth in SEQ ID NO: 263-1495. In embodiments, a variant refers to any one or more of a substitution, deletion, or addition to any of the amino acids of any of the amino acid sequences set forth in SEQ ID NO: 263-1495. In some embodiments, the variant comprises 1, 2, 3, or 4 substitutions to any of the amino acids of any of the amino acid sequences set forth in SEQ ID NO: 263-1495. In some embodiments, the variant comprises 1, 2, 3, or 4 deletions to any of the amino acids of any of the amino acid sequences set forth in SEQ ID NO: 263-1495. In some embodiments, the variant comprises 1, 2, 3, or 4 insertions to any of the amino acids of any of the amino acid sequences set forth in SEQ ID NO: 263-1495. In some embodiments, the variant comprises any combination of the substitutions, deletions, or insertions described above.
[0105] In embodiments, a variant refers to a variant in the nucleotide sequence that encodes any of the amino acid sequences set forth in SEQ ID NO: 263-1495. In embodiments, the variant in the nucleotide sequence results in encoding any one or more of a substitution, deletion, or addition to any of the amino acids of any of the amino acid sequences set forth in SEQ ID NO: 263-1495. In embodiments, the variant in the nucleotide sequence encodes 1, 2, 3, or 4 substitutions to any of the amino acids of any of the amino acid sequences set forth in SEQ ID NO: 263-1495. In embodiments, the variant in the nucleotide sequence encodes 1, 2, 3, or 4 deletions to any of the amino acids of any of the amino acid sequences set forth in SEQ ID NO: 263-1495. In embodiments, the variant in the nucleotide sequence encodes 1, 2, 3, or 4 insertions to any of the amino acids of any of the amino acid sequences set forth in SEQ ID NO: 263-1495. In embodiments, the variant in the nucleotide sequence encodes any combination of the substitutions, deletions, or insertions described above.
[0106] In some embodiments, the CNS-targeting molecule is fused or conjugated to a small molecule, an antibody, scFV, ASO (antisense oligonucleotide), siRNA, lipid, polymer or recombinant protein. In some embodiments, any of SEQ ID NO: 263-1495 are fused or conjugated to a small molecule, an antibody, scFV, ASO (antisense oligonucleotide), siRNA, lipid, polymer or recombinant protein. In some embodiments, one of SEQ ID NOS: 333, 417, 442, or 673 is fused or conjugated to a small molecule, an antibody, scFV, ASO (antisense oligonucleotide), siRNA, lipid, polymer or recombinant protein. In some embodiments, CNS-targeting molecules may be utilized to enable a small molecule, an antibody, scFV, ASO (antisense oligonucleotide), siRNA, lipid, polymer or recombinant protein to cross the blood brain barrier. 54 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0107] In some embodiments, the CNS-targeting molecules are part of an engineered AAV capsid protein. In some embodiments the engineered capsid protein comprises any of the serotypes of AAV1, AAV2, AAV3B, AAV5, AAV6, AAV8 and AAV9. In embodiments, the capsid protein comprises the serotype AAV2 or AAV9. In some embodiments, the AAV2 serotype comprises SEQ ID NO: 1496. In some embodiments, the AAV2 serotype comprises a variant of SEQ ID NO: 1496. In some embodiments, the AAV9 serotype comprises SEQ ID NO: 1497. In some embodiments, the AAV9 serotype comprises a variant of SEQ ID NO: 1497. In some embodiments, the AAV serotype comprises SEQ ID NOS: 1498, 1499, or 1500. In some embodiments, the AAV serotype comprises a variant of SEQ ID NOS: 1498, 1499, or 1500. In embodiments, a variant refers to any one or more of a substitution, deletion, or addition to any of the amino acids in either of the amino acid sequences set forth in SEQ ID NOs: 1496 or 1497. In embodiments, the variant comprises 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 substitutions of any of the amino acids in either of the amino acid sequences of SEQ ID NOs: 1496 or 1497. In embodiments, the variant comprises 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 deletions of any of the amino acids in either of the amino acid sequences set forth of SEQ ID NOs: 1496 or 1497. In embodiments, the variant comprises 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 insertions of any of the amino acids in either of the amino acid sequences set forth SEQ ID NOs: 1496 or 1497.
[0108] In some embodiments, the variant comprises an amino acid sequence that comprises at least 80% sequence identity to the sequence set forth in SEQ ID NOs: 1496 or 1497 and at least 3, 4, 5, 6, 7, 8, 9 or all contiguous amino acids of any of SEQ ID NOS: 263- 1495. In some embodiments, the variant comprises an amino acid sequence that comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NOs: 1496 or 1497 and at least 3, 4, 5, 6, 7, 8, 9 or all contiguous amino acids of any of SEQ ID NOS: 263-1495.
[0109] In some embodiments, the AAV2 serotype comprises a sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to SEQ ID NO: 1496. In some embodiments, the AAV9 serotype comprises a sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to SEQ ID NO: 1497. In some embodiments, the AAV9 serotype comprises a sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to 55 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 SEQ ID NO: 1498. In some embodiments, the AAV9 serotype comprises a sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to SEQ ID NO: 1499. In some embodiments, the AAV9 serotype comprises a sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to SEQ ID NO: 1500. In some embodiments, the AAV9 serotype comprises a sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to SEQ ID NOS: 1498, 1499, and 1500. In particular embodiments, the portion of the capsid polypeptide that is not the peptide modification comprises at least or about 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, or 96% sequence identity to the AAV9 serotype set forth in SEQ ID NO: 1497.
[0110] In embodiments, a variant refers to a variant in the nucleotide sequence that encodes the amino acid sequences set forth in SEQ ID NOs: 1498, 1499, or 1500. In some embodiments, the variant in the nucleotide sequences results in encoding any one or more of a substitution, deletion, or addition to any of the amino acids of either of the amino acid sequences set forth in SEQ ID NOs: 1498, 1499, or 1500. In embodiments, the variant in the nucleotide sequence encodes 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 substitutions of any of the amino acids in either of the amino acid sequences of SEQ ID NOs: 1496, or 1497. In embodiments, the variant in the nucleotide sequence encodes 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 deletions of any of the amino acids in either of the amino acid sequences of SEQ ID NOS: 1496 or 1497. In some embodiments, the variant in the nucleotide sequence encodes 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 insertions of any of the amino acids in either of the amino acid sequences of SEQ ID NOS: 1496, or 1497.
[0111] In some embodiments, the variant in the nucleotide sequence encodes an amino acid sequence that comprises at least 80% sequence identity to the sequence set forth in SEQ ID NOS: 1496 or 1497 and at least 3, 4, 5, 6, 7, 8, 9 or all contiguous amino acids of any of SEQ ID NOS: 263-1495. In some embodiments, the variant in the nucleotide sequence encodes an amino acid sequence that comprises at least 80%, 85%, 90%, 95% or 99% sequence identity to the sequence set forth in SEQ ID NOS: 1496 or 1497 and at least 3, 4, 5, 6, 7, 8, 9 or all contiguous amino acids of any of SEQ ID NOS: 263-1495.
[0112] In some embodiments, a nucleotide sequence encodes an amino acid sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 56 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 95% identical to SEQ ID NO: 1496 and has at least 3, 4, 5, 6, 7, 8, 9 or all contiguous amino acids of any of SEQ ID NOS: 263-1495. In some embodiments, a nucleotide sequence encodes an amino acid sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to SEQ ID NO: 1497 and has at least 3, 4, 5, 6, 7, 8, 9 or all contiguous amino acids of any of SEQ ID NOS: 263-1495. In some embodiments, a nucleotide sequence encodes an amino acid sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to SEQ ID NO: 1498. In some embodiments, a nucleotide sequence encodes an amino acid sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to SEQ ID NO: 1499. In some embodiments, a nucleotide sequence encodes an amino acid sequence that is at least 80% identical, at least 85% identical, at least 90% identical, or at least 95% identical to SEQ ID NO: 1500.
[0113] In some embodiments, any of the CNS-targeting molecules set forth in any of SEQ ID NO: 263-1495 is inserted into an AAV. In some embodiments, any of the CNS- targeting molecules set forth in any of SEQ ID NO: 263-1495 is inserted into AAV2. In some embodiments, AAV2 comprises the sequence set forth in SEQ ID NO: 1496. In some embodiments, SEQ ID NO: 333 is inserted into SEQ ID NO: 1496. In some embodiments, SEQ ID NO: 417 is inserted into SEQ ID NO: 1496. In some embodiments, SEQ ID NO: 442 is inserted into SEQ ID NO: 1496. In some embodiments, SEQ ID NO: 673 is inserted into SEQ ID NO: 1496. SEQ ID NO: 1496 is AAV2 with an amino acid substitution. In some embodiments, any of the CNS-targeting molecules set forth in any of SEQ ID NO: 263-1495 is inserted into AAV9. In some embodiments, AAV9 comprises the sequence set forth in SEQ ID NO: 1497. In some embodiments, SEQ ID NO: 333 is inserted into SEQ ID NO: 1497. In some embodiments, SEQ ID NO: 417 is inserted into SEQ ID NO: 1497. In some embodiments, SEQ ID NO: 442 is inserted into SEQ ID NO: 1497. In some embodiments, SEQ ID NO: 673 is inserted into SEQ ID NO: 1497. SEQ ID NO: 1497 is AAV9. SEQ ID NO: 333 inserted into SEQ ID NO: 1497 can result in SEQ ID NOS: 1498, 1499, or 1500. In some embodiments, any of the CNS-targeting molecules set forth in any of SEQ ID NO: 263-1495 is inserted into an AAV. In some embodiments, the AAV capsid protein comprises the sequence set forth in SEQ ID NOS: 1498, 1499, or 1500.
[0114] In some embodiments, insertion of SEQ ID NO: 333 into AAV9 results in the sequence set forth in SEQ ID NO: 1498 (referred to as STAC-BBB; CNSRCV300). In some embodiments, insertion of SEQ ID NO: 333 into AAV9 results in a variant sequence of SEQ ID NO: 1496 or 1497. In embodiments, the variant comprises 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 57 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 substitutions, insertions, and / or deletions of any of the amino acids in the amino acid sequence of SEQ ID NO: 1496 or 1497. In some embodiments, the variant comprises at least 80% sequence identity, at least 85% sequence identity, at least 90% sequence identity, at least 95% sequence identity, or at least 99% sequence identity with SEQ ID NOS: 1498, 1499, or 1500 or comprises SEQ ID NOS: 1498, 1499, or 1500. In some embodiments, the variant comprises at least 80% sequence identity, at least 85% sequence identity, at least 90% sequence identity, at least 95% sequence identity, or at least 99% sequence identity with SEQ ID NOS: 1498, 1499, or 1500 but is not SEQ ID NO: 1496 or 1497. In some embodiments, the variant comprises at least 80% sequence identity, at least 85% sequence identity, at least 90% sequence identity, at least 95% sequence identity, or at least 99% sequence identity with SEQ ID NOS: 1498, 1499, or 1500 but is not a wild type AAV. In embodiments, the variant comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NO: 1498, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 333. In embodiments, the variant comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NO: 1498, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 417. In embodiments, the variant comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NO: 1498, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 442. In embodiments, the variant comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NO: 1498, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 673. In embodiments, the variant comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NO: 1499, or 1500, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 333. In embodiments, the variant comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NO: 1499, or 1500, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 417. In embodiments, the variant comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NO: 1499, or 1500, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 442. In embodiments, the variant comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NO: 1499, or 1500, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 673.
[0115] In some embodiments, the variant refers to a variant in the nucleotide sequence that encodes the amino acid sequences set forth in SEQ ID NOS: 1498, 1499, or 1500. In embodiments, the variant in the nucleotide sequence encodes 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 58 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 substitutions, insertions, and / or deletions of any of the amino acids in the amino acid sequence of SEQ ID NOS: 1498, 1499, or 1500. In some embodiments, the variant in the nucleotide sequence encodes an amino acid sequence that comprises at least 80% sequence identity, at least 85% sequence identity, at least 90% sequence identity, at least 95% sequence identity, or at least 99% sequence identity with SEQ ID NO: 14981498, 1499, or 1500. In embodiments, the variant in the nucleotide sequence encodes an amino acid sequence that comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NOS: 1498, 1499, or 1500, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 333. In embodiments, the variant in the nucleotide sequence encodes an amino acid sequence that comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NOS: 1498, 1499, or 1500, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 417. In embodiments, the variant in the nucleotide sequence encodes an amino acid sequence that comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NOS: 1498, 1499, or 1500, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 442. In embodiments, the variant in the nucleotide sequence encodes an amino acid sequence that comprises at least 80%, 85%, 90%, 95%, or 99% sequence identity to the sequence set forth in SEQ ID NOS: 1498, 1499, or 1500, and at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of SEQ ID NO: 673.
[0116] Disclosed is a composition comprising, consisting, or consisting essentially of a) an AAV capsid protein comprising (i) a parent amino acid sequence selected from the group consisting of SEQ ID NO: 1496 or SEQ ID NO: 1497, and (ii) at least one targeting peptide inserted into the parent amino acid sequence of (i), wherein the targeting peptide is selected from any member of the group comprising, consisting, or consisting essentially of SEQ ID NO1: 263-1495 and b) expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, the fusion protein comprises a ZFR shown in a single row of Tables 2 and 4.
[0117] Disclosed is a composition comprising, consisting, or consisting essentially of a) an AAV capsid protein comprising an amino acid sequence selected from the group comprising, consisting, or consisting essentially of SEQ ID NO: 1498, SEQ ID NO: 1499, or SEQ ID NO: 1500 and b) expression construct encoding a fusion protein comprising a zinc 59 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 finger protein (ZFP) domain and a transcription repressor domain, wherein the ZFP domain binds to a target region of a human PRNP gene. In some embodiments, the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3. In some embodiments, the fusion protein comprises a ZFR shown in a single row of Tables 2 and 4.
[0118] AAV particles
[0119] In some embodiments, the CNS-targeting molecules are part of an engineered AAV capsid protein, and the engineered AAV capsid proteins are packaged into AAV particles. In some embodiments, the AAV particles that have enhanced tropism for a target tissue (e.g., CNS and PNS) are provided. CNS-targeting molecules may be inserted into an AAV capsid protein sequence to alter tropism to a particular cell-type, tissue, organ or organism, in vivo, ex vivo or in vitro. In some embodiments, the AAV particles are capable of penetrating the blood brain barrier.
[0120] Delivery of AAV Particles
[0121] The AAV particles may be delivered to one or more target cells, tissues, organs, or organisms. In some embodiments, the AAV particles demonstrate enhanced tropism for a target cell type, tissue or organ. As a non-limiting example, the AAV particle may have enhanced tropism for cells and tissues of the central or peripheral nervous systems (CNS and PNS, respectively), or cells and tissues of a muscle. The AAV particles may, in addition, or alternatively, have decreased tropism for an undesired target cell-type, tissue or organ.
[0122] In some embodiments, the AAV particles are used to deliver a viral genome to a tissue or cells such as CNS or PNS cell or tissue.
[0123] The delivered viral genome may include genetic material of interest, such as, for example, an antibody, an enzyme, or regulatory RNA, amongst others. In some embodiments, the viral genome includes at least one ITR sequence. In some embodiments, the viral genome includes 2 ITR sequences. In some embodiments, the ITR sequences flank the genetic material of interest. In some embodiments, the ITR sequences are complementary to each other. In some embodiments, the ITR regions are derived from the same serotype as the capsid protein. ITR regions may be between 100 and 150 nucleotides in length.
[0124] In some embodiments, the AAV particles can be used to infect a wide range of cells (including quiescent and dividing cells) without integration into the host genome and without replicating. In some embodiments, the genome of the virus contains the components required for the assembly of a functional recombinant virus, or viral particle, which is loaded 60 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 with or engineered to target a particular tissue and express or deliver genetic material of interest to the particular tissue.
[0125] AAV capsid proteins comprising CNS-targeting molecules (targeting peptides)
[0126] In some embodiments, the CNS-targeting molecules, i.e., targeting peptides, are part of a recombinant AAV capsid protein. In some embodiments, AAV capsid proteins described herein may be produced recombinantly and may be based on adeno-associated virus (AAV) wild type sequence.
[0127] CNS-targeting molecules may be inserted into an AAV capsid protein sequence to alter tropism relative to the natural AAV capsid protein, to a particular cell-type, tissue, organ or organism, in vivo, ex vivo or in vitro. Stated another way, CNS-targeting molecules, which refer to the targeting peptides, that are inserted into the capsid protein, allow the capsid protein to penetrate the blood brain barrier.
[0128] In some embodiments, the targeting peptide is used for enhanced or improved transduction of a target cell or tissue (e.g., cells or tissues of the central nervous system (CNS) or peripheral nervous system (PNS)). In some embodiments, the targeting peptide is used to facilitate the AAV capsid protein across the blood brain barrier following administration to a subject. In some embodiments, the targeting peptide is used for enhanced or improved distribution of the genetic material throughout the multiple brain regions, e.g., frontal cortex, sensory cortex, motor cortex, putamen, thalamus, cerebellar cortex, dentate nucleus, caudate, and / or hippocampus. In some embodiments, the targeting peptide is used for enhanced or improved genetic material expression in multiple brain regions. In some embodiments, the targeting peptide is used for enhanced or improved delivery of genetic material of interest to a desired tissue, cell, or organelle.
[0129] In some embodiments, the targeting peptide increases tropism of the AAV capsid to a cell, region, or tissue of the CNS. Examples of CNS cells include but are not limited to neurons (e.g., excitatory neurons, inhibitory neurons, and motor neurons) and glial cells (e.g., ependymal cells, astrocytes, oligodendrocytes. Examples of CNS tissue include but are not limited to the cortex (e.g., frontal cortex, parietal cortex, occipital cortex, temporal cortex), thalamus, hypothalamus, striatum, hippocampus, entorhinal cortex, and basal ganglia.
[0130] In some embodiments, the AAV capsid protein comprising a targeting peptide is capable of increased tropism by at least 1.1-, 1.2-, 1.3-, 1.4-, 1.5-fold, relative to an AAV capsid protein that lacks a targeting peptide. In some embodiments, the AAV capsid 61 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 protein comprising a targeting peptide is capable of increased tropism by over 1.5-fold, relative to an AAV capsid protein that lacks a targeting peptide.
[0131] In some embodiments, the AAV capsid protein comprising the targeting peptide facilitates increased expression of delivered genetic material (e.g., a therapeutic cargo) by at least 1.1-, 1.2-, 1.3-, 1.4-, 1.5-fold in a specific cell, region, or tissue, relative to an AAV capsid protein that lacks a targeting peptide. In some embodiments, the AAV capsid protein comprising the targeting peptide facilitates increased expression of delivered genetic material (e.g., a therapeutic cargo) by more than 1.5-fold in a specific cell, region, or tissue, relative to an AAV capsid protein that lacks a targeting peptide.
[0132] In some examples, the targeting peptide is between 6 amino acids and 20 amino acids in length, for example 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 amino acids in length. In some examples, the targeting peptide is between 9 and 16 amino acids in length. In some examples, the targeting peptide is 9 amino acids in length. In some examples, the targeting peptide is 16 amino acids in length.
[0133] In some embodiments, the targeting peptide comprises an amino acid sequence of any sequence set forth in SEQ ID NO: 263-1495. In some embodiments, the targeting peptide comprises the amino acid sequence set forth in SEQ ID NO: 333. In some embodiments, the targeting peptide comprises the amino acid sequence set forth in SEQ ID NO: 417. In some embodiments, the targeting peptide comprises the amino acid sequence set forth in SEQ ID NO: 442. In some embodiments, the targeting peptide comprises the amino acid sequence set forth in SEQ ID NO: 673. In some embodiments, the targeting peptide comprises at least 3, 4, 5, 6, 7, 8, 9, or all contiguous amino acids of any sequence set forth in SEQ ID NO: 263-1495. In some embodiments, the targeting peptide comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 333. In some embodiments, the targeting peptide comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 417. In some embodiments, the targeting peptide comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 443. In some embodiments, the targeting peptide comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 673. In some embodiments, the targeting peptide is part of an AAV vector. In some embodiments, the targeting peptide is part of a capsid protein of the AAV vector. In some embodiments, nucleic acid sequences encode targeting peptides.
[0134] In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises an amino acid sequence of any sequence set forth 62 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 in SEQ ID NO: 263-1495. In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises an amino acid sequence of SEQ ID NO: 333. In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises an amino acid sequence of SEQ ID NO: 417. In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises an amino acid sequence of SEQ ID NO: 442. In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises an amino acid sequence of SEQ ID NO: 673. In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises at least 3, 4, 5, 6, 7, 8, 9, or all contiguous amino acids of any sequence set forth in SEQ ID NO: 263-1495. In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 333. In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 417. In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 442. In some embodiments, the AAV capsid protein comprise a nucleic acid sequence encoding a peptide that comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NO: 673.
[0135] Insertion of Targeting Peptides into Capsid Proteins
[0136] In some embodiments, a targeting peptide is a part of a capsid protein, and the targeting peptide is inserted at a location between amino acid residues 450 and 600 of the capsid protein. In some embodiments, the amino acid sequence is inserted at a location between amino acid residues 587 and 590 of the AAV9 capsid protein. In some embodiments, the amino acid sequence is inserted at a location between amino acid residues 384 and 386 of the AAV9 capsid protein. In some embodiments, the amino acid sequence is inserted at location between amino acid residues 588 and 589 of the AAV2 capsid protein.
[0137] In some embodiments, a peptide sequence that comprises any of the sequences set forth in SEQ ID NO: 263-1495 is inserted into the capsid protein. In some embodiments, the peptide sequence comprises 3, 4, 5, 6, 7, 8, 9 or all contiguous amino acids of any of the sequences set forth in SEQ ID NO: 263-1495. In some embodiments, disclosed is a peptide sequence that comprises the sequence set forth in SEQ ID NOS: 333, 417, 442, or 673. In some embodiments, the peptide sequence comprises 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the sequence set forth in SEQ ID NOS: 333, 417, 442, or 673. 63 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0138] In some embodiments, a targeting peptide is inserted into any of the AAV capsid protein comprises any of the AAV serotypes AAV1, AAV2, AAV3B, AAV5, AAV6, AAV8 and AAV9. In some embodiments, the AAV capsid protein comprises the AAV2 serotype. In some embodiments, the AAV2 serotype includes a mutation at position 588 from arginine to alanine. In some embodiments, the AAV2 serotype comprises the sequence of SEQ ID NO: 1496. In some embodiments, an amino acid sequence is inserted between positions 450 and 600 of the AAV capsid protein. In some embodiments, an amino acid sequence is inserted between positions 450 and 600 of SEQ ID NO: 1496. In some embodiments, an amino acid sequence is inserted between positions 588 and 589 of the AAV capsid protein. In some embodiments, an amino acid sequence is inserted between positions 588 and 589 of SEQ ID NO: 1496. In some embodiments, the AAV capsid protein comprises the AAV9 serotype. In some embodiments, the AAV9 serotype includes the sequence of SEQ ID NO: 1497. In some embodiments, an amino acid sequence is inserted between positions 450 and 600 of the AAV capsid protein. In some embodiments, an amino acid sequence is inserted between positions 450 and 600 of SEQ ID NO: 1497. In some embodiments, the amino acid sequence is inserted between positions 587 and 590 of the AAV capsid protein. In some embodiments, the amino acid sequence is inserted between positions 587 and 590 of SEQ ID NO: 1497. In some embodiments, the amino acid sequence is inserted between positions 384 and 386 of the AAV capsid protein. In some embodiments, the amino acid sequence is inserted between positions 384 and 386 of SEQ ID NO: 1497. In some embodiments, the amino acid sequence inserted into the AAV2 or AAV9 serotypes comprises an amino acid sequence set forth in SEQ ID NO: 263-1495. In some embodiments, the amino acid sequence inserted into the AAV2 or AAV9 serotypes comprises an amino acid sequence set forth in SEQ ID NOS: 333, 417, 442, or 673. In some embodiments, insertion of the amino acid sequence set forth in SEQ ID NOS: 333 into an AAV9 serotype results in the sequence set forth in SEQ ID NO: 1498 (STAC-BBB, CNSRCV300), SEQ ID NO: 195 is the same as SEQ ID NO: 1498. In some embodiments, the AAV serotype comprises the sequence of SEQ ID NO: 1498. In some embodiments, the AAV serotype comprises the sequence of SEQ ID NOS: 1498, 1499, 1500 and combinations thereof. In some embodiments, insertion of the amino acid sequence set forth in SEQ ID NO: 333 into an AAV serotype results in the sequence set forth in SEQ ID NOS: 1498, 1499, or 1500.
[0139] In some embodiments, a targeting peptide is inserted into an AAV capsid protein. Any targeting peptide described herein may be inserted into a parent AAV capsid protein in any location that results in fully functional AAV particles. The targeting peptide may be inserted into capsid proteins VP1, VP2 and / or VP3. In some embodiments, a targeting 64 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 peptide, is inserted in a hypervariable region of the AAV capsid protein. Non-limiting examples of such hypervariable and / or surface exposed loop of the AAV capsid protein. In some embodiments, the targeting peptide is inserted into the H1 loop. In some embodiments, the targeting peptide is inserted into the DE loop. In some embodiments, the targeting sequencing is inserted into the variable region of the surface exposed loop, for example any of VR-I, VR- II, VR-III, VR-IV, VR-V, VR-VI, VR-VII, VR-VIII and VR-IX. In some embodiments, the targeting peptide comprises any of SEQ ID NO: 263-1495. In some embodiments, the targeting peptide comprises SEQ ID NOS: 333, 417, 442, or 673.
[0140] In some embodiments, the AAV capsid proteins described herein have enhanced tropism for a specific cell or tissue, for example, a CNS or PNS cell or tissue. In some embodiments, the enhanced tropism for a specific cell or tissue is due to the insertion of any of the sequences set forth in SEQ ID NO: 263-1495 into the AAV capsid protein. In some embodiments, the enhanced tropism for a specific cell or tissue is due to the insertion of SEQ ID NO: 333, 417, 442, or 673 in to the AAV capsid protein. In some embodiments, the AAV capsid proteins are capable of penetrating the blood brain barrier. In some embodiments, the AAV capsid proteins described herein are capable of penetrating the blood brain barrier due to the insertion of any of the sequences set forth in SEQ ID NO: 263-1495 into the AAV capsid protein. In some embodiments, the AAV capsid proteins described herein are capable of penetrating the blood brain barrier due to the insertion of SEQ ID NO: 333, 417, 442, or 673 into the AAV capsid protein. In some embodiments, the AAV capsid proteins described herein are capable of distributing throughout multiple brain regions including, but not limited to the frontal cortex, sensory cortex, motor cortex, putamen, thalamus, cerebellar cortex, and hippocampus. In some embodiments, the AAV capsid proteins described herein are capable of distributing throughout multiple brain regions due to the insertion of any of the SEQ ID NO: 263-1495 into the AAV capsid protein. In some embodiments, the AAV capsid proteins described herein are capable of distributing throughout multiple brain regions due to the insertion of SEQ ID NO: 333, 417, 442, or 673 into the AAV capsid protein.
[0141] The peptide sequences listed in Table 6 were inserted into variable region 8 of AAV serotypes 2 and 9. In some embodiments, the peptides are inserted into AAV9 (SEQ ID 1497) between 587 / 590, the insertions are after amino acid 587 and before 590 replacing amino acids 588 and 589. Other peptides inserted into AAV9 indicated in Table 6 are inserted between amino acids 588 / 589. Peptides inserted into AAV2, were inserted between positions 588 / 589 and the wildtype arginine at position 588 is altered to alanine (R588A) (Seq ID 1496). For more detail see WO2024238684, incorporated by reference in its entirety. 65 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Table 6. Sequence Sequence ID Peptide Sequence ID Peptide Sequence Seq ID 878 MKVSAQVQS Seq ID 263 NFRQSEMLN Seq ID 879 NVSQQKMVQ Seq ID 264 QRNTDHITP Seq ID 880 RQQNQDKFS Seq ID 265 MQFDPQKPD Seq ID 881 MSSRTMEIH Seq ID 266 TMSSNDNMR Seq ID 882 HEMIKQSGP Seq ID 267 VKESVQKAA Seq ID 883 QDTDRAGKF Seq ID 268 ILNVSKPDN Seq ID 884 KWEQRGMAH Seq ID 269 SQAAQLPTQ Seq ID 885 TKQHTEMQQ Seq ID 270 QVMAIDAAI Seq ID 886 PMQALQNML Seq ID 271 NDTARERAI Seq ID 887 KVAFQQQIE Seq ID 272 SMAAKVTAE Seq ID 888 QVPRQEVNE Seq ID 273 TLGHQHSPI Seq ID 889 HLEREHKWD Seq ID 274 TVPSSGKQH Seq ID 890 IQRKIQDLA Seq ID 275 AMVQISTPL Seq ID 891 IKGTDSMQQ Seq ID 276 VQVTGTVRF Seq ID 892 TMVSGEARQ Seq ID 277 MIAQKTVVH Seq ID 893 TMVASRQPP Seq ID 278 NTHFQGQPP Seq ID 894 QQRQHQEIT Seq ID 279 MDMQATGKN Seq ID 895 NPESMEAYI Seq ID 280 NLAHTRQPQ Seq ID 896 TSQNGKMSV Seq ID 281 LDIPPMNSS Seq ID 897 SRTSTQPQE Seq ID 282 QHSTPSWPS Seq ID 898 RYAVKGETD Seq ID 283 AFTRHNGTGGKSIYGA Seq ID 899 VALYPNHAE Seq ID 284 ARGARDEFT Seq ID 900 QQTTQHIDS Seq ID 285 RPSNDKAMM Seq ID 901 SSMQEASQI Seq ID 286 AQVHMTMPQ Seq ID 902 KMNSPNQER Seq ID 287 ARQTFQHHL Seq ID 903 MTNRTPASN Seq ID 288 HQTDAPTDW Seq ID 904 IGVRPMISP Seq ID 289 ANMISEPRISYGNDAA Seq ID 905 RQADSRTIE Seq ID 290 IERWQAEII Seq ID 906 EMRNHPAVQ Seq ID 291 VPHNGLHST Seq ID 907 MRTNEPHKE Seq ID 292 RIHDPSLVS Seq ID 908 PTIQRQGMN Seq ID 293 IPATHPQLM Seq ID 909 DIDPEDIST Seq ID 294 ITTVKNVTV Seq ID 910 EIKMQSTQA Seq ID 295 DKSVKSTAI Seq ID 911 QNFPSQNAA Seq ID 296 IRTHEVPLQ Seq ID 912 YRTGPDEIQ Seq ID 297 SPSSTSNNN Seq ID 913 IQHTHSHHE Seq ID 298 LSTTSQVHN Seq ID 914 IISTQEGHI Seq ID 299 NMHNETSMT Seq ID 915 PEGDNTFMI Seq ID 300 NDSRKANIG Seq ID 916 RANAEYLSD Seq ID 301 KPPNVQDAK Seq ID 917 EVSLPSNVK Seq ID 302 FQHMTPKPS Seq ID 918 RMDINRATD Seq ID 303 KQPSRLMEW Seq ID 919 HPSPNTAYV Seq ID 304 VYDQVKATH Seq ID 920 SYHSWFPMG Seq ID 305 SYRNQYDDQ Seq ID 921 AGDRQHMAA 66 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 306 VQSTKQSVQ Seq ID 922 QPKKWGADY Seq ID 307 HQGKVDAQN Seq ID 923 LKQDSRPTY Seq ID 308 IQGEIRVHT Seq ID 924 VSSYQLKSD Seq ID 309 TQTLKVEDR Seq ID 925 RGHSVSDNA Seq ID 310 VQSPPGIMP Seq ID 926 HQAQNQMFK Seq ID 311 VHYAPNYTT Seq ID 927 QASNFITVP Seq ID 312 YGGSETNVR Seq ID 928 VEPHYQQQW Seq ID 313 IRTQTHPQV Seq ID 929 TQGRSQEAT Seq ID 314 ETQVQPIQH Seq ID 930 ATSSRTTLA Seq ID 315 FPVSSVNDV Seq ID 931 PSSIGKHDN Seq ID 316 IQKISQAMA Seq ID 932 RHSGDSIPE Seq ID 317 SQTQIGQPY Seq ID 933 ARPATTQSN Seq ID 318 AIRTNVGPV Seq ID 934 PAPSGNTMA Seq ID 319 TQMSGQTPH Seq ID 935 KSPSMSVVL Seq ID 320 PAKSVMIPY Seq ID 936 IPGPNGQIP Seq ID 321 QRVSQTNSF Seq ID 937 PQDYHMSEH AFAGANYAAWAVNVA Seq ID 938 ATHLRVIYERMNQSLA Seq ID 322 A Seq ID 939 AHGKREVALHLHPDHA Seq ID 323 AVVRPQSTM Seq ID 940 PHTHAQMNL Seq ID 324 PLQTPPSDN Seq ID 941 TVPSQQPGT Seq ID 325 VTVSQQMTK Seq ID 942 AEYKDCHLAQVPSHTA Seq ID 326 DPFEGRIST Seq ID 943 AVGALIQRGFIRPKDA Seq ID 327 NNPTGGIAL Seq ID 944 TETDPMQRM Seq ID 328 ARYTHLVAIQNKEEIA Seq ID 945 HRQVAGEST Seq ID 329 IVTGGVLKP Seq ID 946 SQSPTRIIQ Seq ID 330 THMSTQASI Seq ID 947 RLAIPDGIT Seq ID 331 AVPGEEEQKFEVEKYA Seq ID 948 RPPQNPQTI Seq ID 332 ATDTSHLVV Seq ID 949 VELMRTHST Seq ID 333 YVNIMDDMD Seq ID 950 HQPQYSKSD Seq ID 334 IRPDKQGGV Seq ID 951 ATMQCAHTA Seq ID 335 NQTESQWKG Seq ID 952 KMGGVAAKI Seq ID 336 TNEGLYKDN Seq ID 953 TMNKSADRG Seq ID 337 IMVGNQTVM Seq ID 954 EVDDFVSYG Seq ID 338 IWAEKGLDT Seq ID 955 PMSQKVQSA Seq ID 339 MPSQGYQQV Seq ID 956 IHSKANDVL Seq ID 340 NTFGHNVAP Seq ID 957 AVVSPANAA Seq ID 341 ASRTVSDSIKKLITSA Seq ID 958 RQTQTASEY Seq ID 342 NHTSTPPQQ Seq ID 959 MESHPQAPQ Seq ID 343 NAHAPIPVE Seq ID 960 TFRESEMIM Seq ID 344 KSTNTHEIG Seq ID 961 HHTPQNMVN Seq ID 345 NTRVTNAHD Seq ID 962 KTQQMTPVT Seq ID 346 AHRDACLTGSKIQVDA Seq ID 963 IAPQQTYWK Seq ID 347 AVAAETGQI Seq ID 964 EVHSKVMHP Seq ID 348 NQPSMVNGH Seq ID 965 NKSTSTVAW Seq ID 349 PMTQQHHSM Seq ID 966 ADSAQAMTK Seq ID 350 YEKVDSLMM Seq ID 967 MESRKPNDI 67 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 351 MDVGTHGKA Seq ID 968 NVAQTMIRV Seq ID 352 THNSQVHPS Seq ID 969 HPRDHEHVD Seq ID 353 PTQVRQVQQ Seq ID 970 RVNGSQKES Seq ID 354 ITRTVNTVE Seq ID 971 YSRASSETA Seq ID 355 AMIMSPFGT Seq ID 972 NWGQTQAKQ Seq ID 356 HAFPSFPAA Seq ID 973 AQEMSKDLEEVKAKVA Seq ID 357 KMMDNTPFY Seq ID 974 REMRASQVE Seq ID 358 PQRLSVDPN Seq ID 975 QYIQEHVAK Seq ID 359 TWGTYQHSV Seq ID 976 QVAQTTLPI Seq ID 360 HYQQRDMSQ Seq ID 977 NTVQNMAHQ Seq ID 361 SQGHVQERM Seq ID 978 TQSREMDTQ Seq ID 362 QPRTTGNDF Seq ID 979 DDAAHHGFD Seq ID 363 PKGTISSQQ Seq ID 980 AATPSPVLPDIVMEAA Seq ID 364 REHTAAWFA Seq ID 981 QQASGNNLR Seq ID 365 QLTHSNTSQ Seq ID 982 AKVVTDSMS Seq ID 366 KDMGAGHSM Seq ID 983 SQVVSQGSQ Seq ID 367 ARGAQRLAALGDTAWA Seq ID 984 FQHRANSME Seq ID 368 KQAHREHEE Seq ID 985 ANRGTEWDA Seq ID 369 KSSHPYTDE Seq ID 986 TIDEVDIGY Seq ID 370 MPNHVAYKD Seq ID 987 LQYKAMQVS Seq ID 371 PPTTQYPQT Seq ID 988 AIPVCEAFQCTALSNA Seq ID 372 RSHTTGQDS Seq ID 989 TEDSPQMTQ Seq ID 373 SQLKASVTN Seq ID 990 SGSMTPTTV Seq ID 374 TAPSTRFEV Seq ID 991 LPMPTSQGI Seq ID 375 PSTLEPEVW Seq ID 992 SYPTPQSQT Seq ID 376 YTSPPQMMV Seq ID 993 SASKSFPTA Seq ID 377 PVPSRQVST Seq ID 994 PSQPMKFIN Seq ID 378 LEKVQVHQN Seq ID 995 VEAQHKPAY Seq ID 379 NQIKLQSMS Seq ID 996 IPSPVTAYW Seq ID 380 GVMSPTPMV Seq ID 997 NYLSTSVPR Seq ID 381 PTQRAERYF Seq ID 998 TNSVKMPPS Seq ID 382 PTAKVVDSV Seq ID 999 PQEDVKSVM Seq ID 383 HRIHEVQGG Seq ID 1000 EPHNMKVEK Seq ID 384 KNTTPVGQQ Seq ID 1001 PQKQSLHTV Seq ID 385 AGPPLKGAGGKERPGA Seq ID 1002 KPQGVNVTY Seq ID 386 IQPASGQNM Seq ID 1003 FQRSEVQTI Seq ID 387 YQNQGVNVP Seq ID 1004 AAEPAPDFSDYSEMAA Seq ID 388 NASSQSNAN Seq ID 1005 QRQGGMEAK Seq ID 389 SNTVRGDAA Seq ID 1006 TASVKQQNT Seq ID 390 SKKAEFGTE Seq ID 1007 HRNTESGDQ Seq ID 391 KVSSEMMVH Seq ID 1008 FPKSYEQVQ Seq ID 392 TMIEQRMDQ Seq ID 1009 QGASQRVAI Seq ID 393 PPHIYHHMS Seq ID 1010 HPMAKDVVK Seq ID 394 MVNKAPTGA Seq ID 1011 REQKLYKEP Seq ID 395 KSPVARGDT Seq ID 1012 TEQQWYGRM Seq ID 396 LLKQRQLMD Seq ID 1013 APTNKTVGI 68 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 397 KMKQIELVE Seq ID 1014 QRTAVNEMQ Seq ID 398 RAPNRVNDE Seq ID 1015 PQNAQRVDT Seq ID 399 TMNQAPPAQ Seq ID 1016 KDDDKVGIV Seq ID 400 LVKEDEHWI Seq ID 1017 APAPAAPPSTPAAPKA Seq ID 401 MIGQRDNNS Seq ID 1018 NHAVMHTVS Seq ID 402 TSHMVSHAV Seq ID 1019 MRTQAVDGF Seq ID 403 IQDEEAKYT Seq ID 1020 DIQHATKRE Seq ID 404 TGGSKFPYM Seq ID 1021 ATQAHTMMY Seq ID 405 VEGSAQMIK Seq ID 1022 QGTSEASRY Seq ID 406 FTDISKEPS Seq ID 1023 RNSHGMSES Seq ID 407 TERPMMQQL Seq ID 1024 PNSAHNNSY Seq ID 408 VSLGHDKPV Seq ID 1025 TTGASKDKV Seq ID 409 TQRTHISDM Seq ID 1026 DRTGVWAGE Seq ID 410 TSYSTHASS Seq ID 1027 VQTLDRGSQ Seq ID 411 NTKSADHEY Seq ID 1028 DATAHSLIQ Seq ID 412 RDPLREQRP Seq ID 1029 IGQAPEVND Seq ID 413 LGQRTVQAQ Seq ID 1030 HYAKVTEQA Seq ID 414 VHDMTHQVN Seq ID 1031 DPSVRSNMI Seq ID 415 DYPEYHDIW Seq ID 1032 MSKVSTQDR Seq ID 416 QTQQGNYPK Seq ID 1033 AQDRISQWA Seq ID 417 QASVGTVRV Seq ID 1034 AHLAQPATLSQTIVPA Seq ID 418 SPAHQRGVD Seq ID 1035 NEKIRELPK Seq ID 419 QMYGEKSVS Seq ID 1036 QMTKHETYI Seq ID 420 NTAVQRGSV Seq ID 1037 GAQQYSQVS Seq ID 421 KTIQQTQDV Seq ID 1038 IQDDPMTSM Seq ID 422 QMQTLGDDI Seq ID 1039 VPTVERNSL Seq ID 423 SHTGQTREL Seq ID 1040 KLVMTQTEY Seq ID 424 KRQNTESAF Seq ID 1041 GGVPMKALI Seq ID 425 NFDPLSVAE Seq ID 1042 IQSPQQAMR Seq ID 426 KILQQEPLM Seq ID 1043 SFHGPIKNY Seq ID 427 IVHAVIQST Seq ID 1044 NTKDNAGKD Seq ID 428 TMDHNPIQT Seq ID 1045 ADFSDLYYHTMNNKHA Seq ID 429 KQPTPTNLW Seq ID 1046 QKQIMHPES Seq ID 430 EQGNPGVSI Seq ID 1047 PQPQMGHSM Seq ID 431 IHSRVQQVT Seq ID 1054 QLHTGIQNS Seq ID 432 PQSQYRPAN Seq ID 1055 AFEVMEDHAGTYGLGA Seq ID 433 YRRDQENAI Seq ID 1056 SYVQPTAIM Seq ID 434 TANDAIVAT Seq ID 1057 IQATRNVGV Seq ID 435 ALYVGSKTKEGVVHGA Seq ID 1058 MILVVLQSV Seq ID 436 MASTNVGTS Seq ID 1059 KMFSSSEQF Seq ID 437 AIQASDTYI Seq ID 1060 TTDRDKMAL Seq ID 438 NMQPRIVNA Seq ID 1061 KAINTMIEA Seq ID 439 QSDKEQFKH Seq ID 1062 HMTNGTPMM Seq ID 440 SVINQQAKA Seq ID 1063 MQNSVKQVW Seq ID 441 NVPGSLKIQ Seq ID 1064 SQPKMQETG Seq ID 442 RKDNIPMMV Seq ID 1065 TESHSITPM 69 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 443 NKVHGTIQD Seq ID 1066 QVSQGVHGQ Seq ID 444 SRKDKSEAE Seq ID 1067 TTQMQPMVA Seq ID 445 HAQASQTQF Seq ID 1068 KLTVTRRMF Seq ID 446 HLGHHDGAA Seq ID 1069 AGIATSGSA Seq ID 447 QPQMGVMVQ Seq ID 1070 TPNMQSMSY Seq ID 448 ANLVRNIDA Seq ID 1071 FNDQPQKIF Seq ID 449 SDIKKRNAV Seq ID 1072 PTSVHGQML Seq ID 450 RVMTNSIDV Seq ID 1073 SQTHQVGYP Seq ID 451 KHQQQLAEK Seq ID 1074 QGTTATRPD Seq ID 452 QQTPQTHPV Seq ID 1075 AGGKVQIINKKLDLSA Seq ID 453 IHNAHVPHQ Seq ID 1076 ASLSITEDA Seq ID 454 VSRTPHTDF Seq ID 1077 TSKPPALQG Seq ID 455 MQMKGQQPP Seq ID 1078 KVMEKQGMR Seq ID 456 HQSGQVPNI Seq ID 1079 KTVESPQQQ Seq ID 457 QLTGVASGH Seq ID 1080 AGPSVGRAKGQDAPLA Seq ID 458 PEQSPQMMF Seq ID 1081 RHPSPVNVL Seq ID 459 NTTPQASLM Seq ID 1082 YQNDMRKGT Seq ID 460 DEFGAYMPI Seq ID 1083 LINAHQPQK Seq ID 461 PKLIQQVNT Seq ID 1084 AGHAIENAVRSSLKGA Seq ID 462 KPGPAQVQW Seq ID 1085 GIGTHMTMV Seq ID 463 PLKDVQLSH Seq ID 1086 RTLHVDNSP Seq ID 464 KDPFYRSEN Seq ID 1087 ADLENLRDLLHVGGGA Seq ID 465 SQPGNQLKM Seq ID 1088 QEQANQRPN Seq ID 466 MQNTMRLQD Seq ID 1089 VSAQSMRNP Seq ID 467 ILVKNKDEI Seq ID 1090 TLQQKTYNP Seq ID 468 PVHGQLQGQ Seq ID 1054 FLDSNHSMT Seq ID 469 PTLPGVGMR Seq ID 1055 TDYYSTDDY Seq ID 470 PPQAAQITT Seq ID 1056 AVLTQTMGK Seq ID 471 TKVQQQDSW Seq ID 1057 PAPHSVVQM Seq ID 472 IMTSHTVAV Seq ID 1058 RPNASDIKG Seq ID 473 HPHMAGQQM Seq ID 1059 PQRNTGIVQ Seq ID 474 PVQTQHAVV Seq ID 1091 IVSQTPVAV Seq ID 475 QIGHKQEYN Seq ID 1092 PTTRIGEHP Seq ID 476 HEQQIRRDT Seq ID 1093 RQPTDSYSK Seq ID 477 DRFKTVQNE Seq ID 1094 TVGGKTYAD Seq ID 478 AAFQQTDIT Seq ID 1095 LKNPPLGNQ Seq ID 479 ERSAVVMIA Seq ID 1096 LSQSQSQTY Seq ID 480 QYIQGRQPI Seq ID 1097 PPTAQAQYD Seq ID 481 LREHAYPDV Seq ID 1098 NDQLHISLR Seq ID 482 KLMDQGVTA Seq ID 1099 AKNQYVEED Seq ID 483 TSQKQATHT Seq ID 1100 QARANAFPD Seq ID 484 VPNNKNPQV Seq ID 1101 NGNFAYDHP Seq ID 485 NVVIVMIFM Seq ID 1102 ILQSNTRGI Seq ID 486 AISYRGTWSTAESGAA Seq ID 1103 TQPQQHNEP Seq ID 487 NTTSQTGNV Seq ID 1104 QRHNENVQM Seq ID 488 PQESQPENE Seq ID 1105 AQVLRIRKRANSFLEA 70 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 489 TMGSRQTPI Seq ID 1106 QLRDVQLQH Seq ID 490 TQVVSGQEI Seq ID 1107 YAKQSTQQM Seq ID 491 PEELKSKQT Seq ID 1108 TQVLRDKQP Seq ID 492 INKYSQYTT Seq ID 1109 QNKIEFRPE Seq ID 493 QPTQGTLRA Seq ID 1110 SSHASMSST Seq ID 494 NQVHTKDDS Seq ID 1111 RVVEQGRGI Seq ID 495 YITQIHEDD Seq ID 1112 HRNPTVVVD Seq ID 496 HIGGSGNTM Seq ID 1113 APWNSATVLQQTYHAA Seq ID 497 HQNHPEHAV Seq ID 1114 MWNVTSGAE Seq ID 498 LKGSVQQAP Seq ID 1115 KTQQALVLQ Seq ID 499 PLIPRQEVI Seq ID 1116 QVHQESMFG Seq ID 500 TLVTQSDSS Seq ID 1117 QLNTTKPIA Seq ID 501 LKIDVTKIT Seq ID 1118 EQYAIKQPT Seq ID 502 PSHVGFTSV Seq ID 1119 ALGKTAETH Seq ID 503 LYRDQGNIT Seq ID 1120 KVFHTPEMN Seq ID 504 SVKQMDATH Seq ID 1121 ASQTAPIVT Seq ID 505 QFDRVAQDK Seq ID 1122 TLKKTDDVW Seq ID 506 YPTGTPPAT Seq ID 1123 AHEALSPFYSERLKEA Seq ID 507 DRVQSTSPH Seq ID 1124 QINGSHRIV Seq ID 508 KTQKPYQED Seq ID 1125 ATAQDLFTA Seq ID 509 SQVAEQRGI Seq ID 1126 ATAQDLFTA Seq ID 510 SESMHGSVS Seq ID 1127 SQHTSDMES Seq ID 511 TITDQQSHG Seq ID 1128 YRTATTTNS Seq ID 512 TRHVVTGGY Seq ID 1129 PASKQFTPD Seq ID 513 QQNMKLQVY Seq ID 1130 TATRQEVHH Seq ID 514 SKFTYYDPW Seq ID 1131 TTTGVMVAK Seq ID 515 MAVQHTTNQ Seq ID 1132 NPVFHQSVA Seq ID 516 SSMQGASGV Seq ID 1133 KPVSSQHTP Seq ID 517 MKYSTQTQS Seq ID 1134 TMATAHQTD Seq ID 518 IKQPQSFAQ Seq ID 1135 VVSGVPMSQ Seq ID 519 TPVAQANKN Seq ID 1136 MTFGMQQNK Seq ID 520 QDVMTSPMQ Seq ID 1137 YGQAVVMQN Seq ID 521 PQVLGQDEA Seq ID 1138 LFHKHPDEM Seq ID 522 TDTVDTGSM Seq ID 1139 RMRDQDVTS Seq ID 523 AQEGARQKLHELQEKA Seq ID 1140 MKQTGGSSF Seq ID 524 ATSEYGRAY Seq ID 1141 LQASSGAMF Seq ID 525 LKGPQQQAI Seq ID 1142 NVSTTASQV Seq ID 526 VFREAGNVH Seq ID 1143 IMQTSVGRD Seq ID 527 PKQVSDIMF Seq ID 1144 KLAGVVAIH Seq ID 528 HMMDGGVPY Seq ID 1145 EIKGAADSH Seq ID 529 IRAASTGHM Seq ID 1146 VQQGNPMQR Seq ID 530 PDGYHVEMF Seq ID 1147 HRWVQLWRV Seq ID 531 QAQSNNIYF Seq ID 1148 RAETHKYNP Seq ID 532 TMNGQSKNF Seq ID 1149 RDPAINHDQ Seq ID 533 HQARREVEY Seq ID 1150 PQSQGMQQR Seq ID 534 GDQGRVVSH Seq ID 1151 GIRQDQEYF 71 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 535 ACCPLAEESDNVDSAA Seq ID 1152 ANCRIPA Seq ID 536 QQNQSIFNI Seq ID 1153 GTTMKVQMS Seq ID 537 TSDAVKTDQ Seq ID 1154 NTHSSHIMV Seq ID 538 TQAPDVLPV Seq ID 1155 KQREPGNVG Seq ID 539 TTDTAKATY Seq ID 1156 IYFNDAEQI Seq ID 540 IDEHSEHYV Seq ID 1157 NHTAKAAPL Seq ID 541 PINSRIVDP Seq ID 1158 QHVVGQFPQ Seq ID 542 PDQRGHMYA Seq ID 1159 RIERQHNDQ Seq ID 543 FLMSHSEVQ Seq ID 1160 AEAKRHRPLIALPTQA Seq ID 544 FIQQSNERN Seq ID 1161 EPHTSSQQR Seq ID 545 NPTRDAKPP Seq ID 1162 AEMYCAPLKPAHSARA Seq ID 546 RWGRAQEDE Seq ID 1163 DPHQRMAQQ Seq ID 547 PRNMQPMTD Seq ID 1164 PSITNRQGA Seq ID 548 MVSQREINQ Seq ID 1165 ADEPARKGKVHIPFPA Seq ID 549 MSSSTRMAV Seq ID 1166 LLTPQSRSS Seq ID 550 PLNQHQKIS Seq ID 1167 LTLQGQAKQ Seq ID 551 DNASHVHMQ Seq ID 1168 QEDDQRSDR Seq ID 552 DMKRVDYMQ Seq ID 1169 PTNPGEVPV Seq ID 553 NHLVDRTTQ Seq ID 1170 MLSNEDGTN Seq ID 554 VIQASSITA Seq ID 1171 PMEMTTELF Seq ID 555 AQAMTNKNK Seq ID 1172 MPTQSRQYI Seq ID 556 INFKQEVHQ Seq ID 1173 SKTQHTNPE Seq ID 557 AYAQLPHEK Seq ID 1174 QDSFFQRWA Seq ID 558 AVTIQNWCKRGRKQCA Seq ID 1175 ITIDVQSAK Seq ID 559 NPQNSGMAM Seq ID 1176 PQQSHVVSQ Seq ID 560 SRDRDTAYA Seq ID 1177 VQVGTSVGK Seq ID 561 PHNSPGMTR Seq ID 1178 SAQTSHPIM Seq ID 562 KMMPSQMQD Seq ID 1179 PQEMMALVY Seq ID 563 NHAPVHERM Seq ID 1180 QHYRMRPHT Seq ID 564 RALKQIDAD Seq ID 1181 NMAQHGQLQ Seq ID 565 QRVEGFIQD Seq ID 1182 RHGLTTPDF Seq ID 566 AKTDSCQGDSGGPLVA Seq ID 1183 TTMQRTMDV Seq ID 567 TSASVQSAM Seq ID 1184 PKSHGAHDV Seq ID 568 NVTTHAPTI Seq ID 1185 AIENAVRSSLKVATSA Seq ID 569 RVQTPDHDH Seq ID 1186 PMVDAMVSV Seq ID 570 QVTKEFASF Seq ID 1187 TEQPEPFVF Seq ID 571 ASVTPQYLY Seq ID 1188 LDAVPKNIK Seq ID 572 VTQKTDNTL Seq ID 1189 TGMSQATSR Seq ID 573 VKMGIQAIA Seq ID 1190 PTRPSSETM Seq ID 574 PLDNYLASM Seq ID 1191 RIEGSHPPP Seq ID 575 DENGGVPRI Seq ID 1192 VKGHQEFAN Seq ID 576 HWQQPSIDG Seq ID 1193 MLVGVPQSK Seq ID 577 TPSQGSHGS Seq ID 1194 QRQQPQPFF Seq ID 578 HNGMNQVDK Seq ID 1195 ARMQASALA Seq ID 579 PHMHNMATP Seq ID 1196 DWEAKARVA Seq ID 580 IQVRDRTPE Seq ID 1197 PIASTITNR 72 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 581 APDAHTRMP Seq ID 1198 ENSQPIRPS Seq ID 582 GAVSHHQMI Seq ID 1199 AHMNVQNGKWDSDPSA Seq ID 583 NVQRTGVGN Seq ID 1200 PHQVPRDPV Seq ID 584 PDMLQGKMY Seq ID 1201 TTSTNREVS Seq ID 585 NYFASSDQM Seq ID 1202 PSGVMQDPV Seq ID 586 PRQGSLAHM Seq ID 1203 AKSHELQVA Seq ID 587 SQQVSKQMQ Seq ID 1204 AVNQVHHQM Seq ID 588 KRNQEGNGV Seq ID 1205 SVGRQQQDI Seq ID 589 PMHSSHNDK Seq ID 1206 VAMIKQSSI Seq ID 590 TLQPQHIAK Seq ID 1207 DILIWQHSD Seq ID 591 SAGVVISVV Seq ID 1208 FTTKHVNEQ Seq ID 592 PLVPRNTPQ Seq ID 1209 AKPYSGRRPDAIRLGA Seq ID 593 PNQTQMLNK Seq ID 1210 QSMADPRAM Seq ID 594 PMSSEYRPS Seq ID 1211 AHLASNLSA Seq ID 595 ESAHSEFKV Seq ID 1212 LQHSNQDQE Seq ID 596 PQRVQEQGT Seq ID 1213 NPWDQTKAM Seq ID 597 MVQQSLKPA Seq ID 1214 VTDVFDVYD Seq ID 598 EQQPAQYHG Seq ID 1215 EYDQGVTNF Seq ID 599 TRNAQTTPL Seq ID 1216 QTYSMPQHL Seq ID 600 PARSGVQIV Seq ID 1217 FKTDRDSML Seq ID 601 DVFTRQSEG Seq ID 1218 AIPVPVDGMEYHWGNA Seq ID 602 SMHTHQGGQ Seq ID 1219 PASKNVQPM Seq ID 603 VNQNVRMED Seq ID 1220 RLEISSQQI Seq ID 604 LPQAKMADM Seq ID 1221 IQGLPSMVH Seq ID 605 RMMDNSIHT Seq ID 1222 NIAQNLLME Seq ID 606 MEATAEHRI Seq ID 1223 HPQPSGHFS Seq ID 607 DARAHTQQV Seq ID 1224 IPRQGSQTT Seq ID 608 IKDMEPQLH Seq ID 1225 DVLGQMGKM Seq ID 609 ALITILGTVKPNANRA Seq ID 1226 TYSSPSIGT Seq ID 610 NHQARTGEF Seq ID 1227 EHKDFQVSG Seq ID 611 PKNHPVSAV Seq ID 1228 EVRPKQDFT Seq ID 612 KFPTEDKYI Seq ID 1229 ARYEAVSFMDVNSTWA Seq ID 613 SPVATQKMV Seq ID 1230 PYTQKTGSV Seq ID 614 DLAEHTRFK Seq ID 1231 NFVNNQPGY Seq ID 615 SNTQPRPQQ Seq ID 1232 SGLNMKTSV Seq ID 616 TIDITPRKL Seq ID 1233 AQHTLKHFEHVRMVDA Seq ID 617 PAFVDENPP Seq ID 1234 AQHTLKHFEHVRMVDA Seq ID 618 VSQETRTTI Seq ID 1235 KENPQHGIY Seq ID 619 EHTGGQFRL Seq ID 1236 KSPTPDINT Seq ID 620 MLGKSDQVW Seq ID 1237 LTSSKSDPA Seq ID 621 PQRDMVNMK Seq ID 1238 ARMQASQVA Seq ID 622 NSRPGAAMA Seq ID 1239 RYHRDTIDM Seq ID 623 TQQAPHNAY Seq ID 1240 ASLSITKPA Seq ID 624 PNITGGAIM Seq ID 1241 ASSPGSPGTPGSRSRA Seq ID 625 PDQKMMFKL Seq ID 1242 ADRIPA Seq ID 626 LKHATVEST Seq ID 1243 HETQVKGMQ 73 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 627 QLSRDTRQD Seq ID 1244 TPRATPSMP Seq ID 628 PDSKPHAYH Seq ID 1245 RPTQHQDIN Seq ID 629 MQPPAQQRT Seq ID 1246 TTNTQGAQV Seq ID 630 VTIFDMFDQ Seq ID 1247 HYGWQQVPD Seq ID 631 IMAYTGQPV Seq ID 1248 HPGSSMVPT Seq ID 632 RTEYEMSTR Seq ID 1249 SSVSQVTLR Seq ID 633 QAQRKTEFI Seq ID 1250 MYAAGNVHA Seq ID 634 QGNETKPNS Seq ID 1251 TSGVVQTIH Seq ID 635 RMASQGQDM Seq ID 1252 HMHPAQSEY Seq ID 636 PKDGVPQMQ Seq ID 1253 PQKGDMHTS Seq ID 637 TIAPAIANL Seq ID 1254 ATYQPLFTA Seq ID 638 RTHQSSPDS Seq ID 1255 ATYQPLFTA Seq ID 639 PTTDMQSNI Seq ID 1256 AQSSDIENA Seq ID 640 HATSQKYET Seq ID 1257 QVAIQPQEE Seq ID 641 ALGQARSDA Seq ID 1258 RAVQNVTTM Seq ID 642 PIATAYKTG Seq ID 1259 PSTLVMQSV Seq ID 643 HFKPTQDTS Seq ID 1260 QQQLLDDIP Seq ID 644 RPNTKAMQE Seq ID 1261 WEKHIMIDY Seq ID 645 NMPQGRVAM Seq ID 1262 NQSTSVNTW Seq ID 646 KTINTPNIL Seq ID 1263 TVQEADSQP Seq ID 647 SRIQHDGAQ Seq ID 1264 AGDAIENAVRSSLKVA Seq ID 648 HPPMPNNTK Seq ID 1265 RTDKSQYQP Seq ID 649 RIMPQMQHD Seq ID 1266 ADGGFIYEAGLAPYKA Seq ID 650 AVILELDKTVEHLPTA Seq ID 1267 ARMKDNTPP Seq ID 651 HSTARSGEF Seq ID 1268 STITPMRQI Seq ID 652 SQPQHMNVS Seq ID 1269 QTPIAPPPI Seq ID 653 PGGSYSHVV Seq ID 1270 AQPEHRSER Seq ID 654 TVTHAHPTT Seq ID 1271 ASRANISHA Seq ID 655 IVATAPRVA Seq ID 1272 AAAAGAVVGGLGGYMA Seq ID 656 VTRTSVAIE Seq ID 1273 PQMRQLYHS Seq ID 657 MIVPTPMNQ Seq ID 1274 LEFHSQAMV Seq ID 658 IQVMHSTTH Seq ID 1275 AQKTYQEGD Seq ID 659 QEPTYKNEV Seq ID 1276 AMFSDLYYLTMNNKHA Seq ID 660 VVPTMNNTR Seq ID 1277 VLDYMDIVF Seq ID 661 RETTVYPLQ Seq ID 1278 ADFSDLCYLTMNNKHA Seq ID 662 RITTESTIH Seq ID 1279 ANAVIPA Seq ID 663 AEEVAARRARVVWCAA Seq ID 1280 KRERGMQDY Seq ID 664 DPVRRKMQV Seq ID 1281 GPFTPAGMM Seq ID 665 PYSSKTQDP Seq ID 1282 RKMPQAIDV Seq ID 666 WPETKQEKS Seq ID 1283 GSDPAGFKM Seq ID 667 PNTQHLKAE Seq ID 1284 DAQSIQVSI Seq ID 668 WQSTGKQSI Seq ID 1285 KVNEVMQKD Seq ID 669 KASTDPHSR Seq ID 1286 ATSKVLLLPPDVSALA Seq ID 670 KPTGTIQGY Seq ID 1287 AAAIPA Seq ID 671 HLGTAIVQP Seq ID 1288 ARYADGHAIENAVRSA Seq ID 672 PKFSHATSE Seq ID 1289 SEHDNHQQT 74 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 673 IRDGIQMHV Seq ID 1290 PRVQGNDQA Seq ID 674 TTNQERLQS Seq ID 1291 AVAVHHTPA Seq ID 675 QIKVPPLDQ Seq ID 1292 ADVRDPRGA Seq ID 676 LHHERGPSA Seq ID 1293 ASKTSVVDLLYWRDIA Seq ID 677 KPLGQAQVQ Seq ID 1294 NVNETKGSW Seq ID 678 TPASATRDS Seq ID 1295 AGHAIENAVKSSLKVA Seq ID 679 PQQTQVSGQ Seq ID 1296 ALDWIHGHIRDKEAPA Seq ID 680 ERSSQSIIQ Seq ID 1297 SPKYFTPTM Seq ID 681 YHEWRHIPT Seq ID 1298 KSQVQPQGT Seq ID 682 PLQASGTAY Seq ID 1299 QMDTRIPQR Seq ID 683 TNNGVRSII Seq ID 1300 AFRALSTGEKGFGYKA Seq ID 684 VQPEITPGQ Seq ID 1301 ATCEAVRCDAVHQPPA Seq ID 685 QDDHNKVQQ Seq ID 1302 ERSSQYEKG Seq ID 686 PIVKQNTDT Seq ID 1303 IRPGTAMAP Seq ID 687 HTLPRLQEE Seq ID 1304 SPHSVQGSG Seq ID 688 QPTQGTVRA Seq ID 1305 QQAQKVAGV Seq ID 689 TRPQGPLSP Seq ID 1306 PRDISTAMV Seq ID 690 TYAQPHQNQ Seq ID 1307 PRVTQDLVG Seq ID 691 IQMEQKQQV Seq ID 1308 QQVVTRHEM Seq ID 692 TQTPPQDAS Seq ID 1309 ARMQAKAVA Seq ID 693 SGAQEKWEM Seq ID 1310 ANPRIPA Seq ID 694 ASDTEKEDRSPSAIFA Seq ID 1311 MVEHNHHVM Seq ID 695 PNYQTKMSF Seq ID 1312 AQSSDISPA Seq ID 696 RPGAAVAPA Seq ID 1313 ARPQASAVA Seq ID 697 LAGSHVSTQ Seq ID 1314 NDFDMPGEI Seq ID 698 LPPGNQTNN Seq ID 1315 NRNPTMTGP Seq ID 699 NHQHDIEWF Seq ID 1316 ANAGIPA Seq ID 700 ISEDGSNRK Seq ID 1317 ADFSHLYYLTMNNKHA Seq ID 701 SMGIHPTNA Seq ID 1318 ACELSGYGKHEALSPA Seq ID 702 TPLAMASQK Seq ID 1319 TANKSAPVS Seq ID 703 NVTSNTIQF Seq ID 1320 QGHSMPTYG Seq ID 704 NYNTVPQPK Seq ID 1321 EYRVTDNTQ Seq ID 705 PRVLQGVQV Seq ID 1322 LVAVQQSSG Seq ID 706 TGTRTSAQQ Seq ID 1323 ASPGGNRYPPQGGGGA Seq ID 707 NHHRPDVFV Seq ID 1324 RTDQVMSTK Seq ID 708 PGPNERQIM Seq ID 1325 TSDHLFQYD Seq ID 709 PHDRLPQEV Seq ID 1326 ANNRIPA Seq ID 710 PNAGVMDEE Seq ID 1327 MHTEAIMPR Seq ID 711 TAHYRTAET Seq ID 1328 SVVSVTMNQ Seq ID 712 RPQSSATTH Seq ID 1329 AYKSSCAFSCEEGFEA Seq ID 713 IAHFQPKDT Seq ID 1330 VTVQPHVDI Seq ID 714 FAHPEKGFF Seq ID 1331 MEDKYAYEM Seq ID 715 QAYAKTAQL Seq ID 1332 ASARSPSEA Seq ID 716 TTSVSVMPK Seq ID 1333 QHQDRTPSN Seq ID 717 ASVDTEQRR Seq ID 1334 NRQPIHKDD Seq ID 718 WHEAIIVTG Seq ID 1335 TTMGSPAPM 75 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 719 VDNDIEWKF Seq ID 1336 KQDPRYSYQ Seq ID 720 NRVGSQAPT Seq ID 1337 AQLSITKDA Seq ID 721 AAVIVANPREEIIVKA Seq ID 1338 PRAGTSIAP Seq ID 722 PTTPQMVSL Seq ID 1339 AMPRNSIPA Seq ID 723 ALKNFAKYFLHQSHEA Seq ID 1340 ASVTTVVSA Seq ID 724 KYVNVEVQT Seq ID 1341 SPQGKVSQV Seq ID 725 LLDAGTSGK Seq ID 1342 RVTNVPNAV Seq ID 726 NAPAQQKMM Seq ID 1343 MLPQASAHK Seq ID 727 VDDHAHRQQ Seq ID 1344 ATKEADLPEPSEKQPA Seq ID 728 PVKLANPTN ARGKRGQDAMYEYMA Seq ID 729 HALVHQGAV Seq ID 1345 A Seq ID 730 VFQKSHSTE Seq ID 1346 PNPKSHQWP Seq ID 731 FKQRDSNET Seq ID 1347 ADGAETEVDCNRCVCA Seq ID 732 EQMSQRVGF Seq ID 1348 SDTNTAPQE Seq ID 733 RQAGQFPDS Seq ID 1349 ASKSTTDNDIALLHLA Seq ID 734 ESQANAHNA Seq ID 1350 KYISTGGEW Seq ID 735 PPDSKSLNQ Seq ID 1351 AGDSCVTIMSKDKPTA Seq ID 736 PEQPSQSQY Seq ID 1352 AVLEGDSCVTIMSKDA Seq ID 737 DGIHTSVQM Seq ID 1353 AELPGFLQSGKDKDAA Seq ID 738 RFDLQEGQS Seq ID 1354 QQMSSHQPM Seq ID 739 DRDRAMMNI Seq ID 1355 AYHEREQGQ Seq ID 740 YPPEAQMEM Seq ID 1356 PKHERVGDL Seq ID 741 TAVTTHNGS Seq ID 1357 MENADVNDG Seq ID 742 EWALDQYGA Seq ID 1358 IIEHVSYQY Seq ID 743 ITQSNERMT Seq ID 1359 NQEKQQSNT Seq ID 744 NITHQTMLQ Seq ID 1360 KVIHMDDSY Seq ID 745 MMNGSQQFQ Seq ID 1361 NITINQREH Seq ID 746 QQTTGRVQQ Seq ID 1362 AGGCVTITAEGKPSMA Seq ID 747 LVNPDPMQY Seq ID 1363 QVKQSSQLN Seq ID 748 HTHDMDMTP Seq ID 1364 AADRSSPGA Seq ID 749 PQTKNTMDD Seq ID 1365 NAPRGYMPD Seq ID 750 DPERQTRPY Seq ID 1366 IATPLQKQM Seq ID 751 TKARSDPLE Seq ID 1367 DVHHQYSQI Seq ID 752 RVNDQPYQM Seq ID 1368 HHRDNSQSN Seq ID 753 RPSNVDSAT Seq ID 1369 AGHGECVETINNYTCA Seq ID 754 RMSNDQKSF Seq ID 1370 FQWQEETDT Seq ID 755 SMTSAFDRI Seq ID 1371 AHAHRSDALQLGLGKA Seq ID 756 IHDKQMNNQ Seq ID 1372 MTTPPQSSP Seq ID 757 NEYFPYEDL Seq ID 1373 ANSTWRTVDRLSATAA Seq ID 758 SIVPTANQD Seq ID 1374 TEGRQPVGF Seq ID 759 IFEQAHTNK Seq ID 1375 PQEEGPSQF Seq ID 760 AGDTRSLQV Seq ID 1376 PMNYSHGAL Seq ID 761 LQNQTKPVI Seq ID 1377 ASSSERAHQVLRIRKA Seq ID 762 QGDIVQHHF Seq ID 1378 AILRQQQHLFGSNVTA Seq ID 763 EIQTYKSIV Seq ID 1379 QKPQPQQDP Seq ID 764 KAPSIVQGT Seq ID 1380 HTAATSTKD 76 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 765 QTPQHGTVL Seq ID 1381 SVKAVMPFP Seq ID 766 KLMTMYDGQ Seq ID 1382 ALIFRHHRQ Seq ID 767 LWTNQPSAW Seq ID 1383 PMEPEHMWG Seq ID 768 HSDQMRQMF Seq ID 1384 EKDVMRVVQ Seq ID 769 EWQNEATPA Seq ID 1385 ARCRAIDGDVTFCRPA Seq ID 770 RPERDPMHI Seq ID 1386 ASVGGVFNSLGKGIHA Seq ID 771 AVWQAANTH Seq ID 1387 VASHHFQPQ Seq ID 772 RTATTQGGF Seq ID 1388 TNKQMAYST Seq ID 773 PTNLVEAGE Seq ID 1389 ATPSLPTPPTREPKKA Seq ID 774 TRMNQTPLQ Seq ID 1390 YMEDLDPES Seq ID 775 PSFTQDRDR Seq ID 1391 TMIQAKQLP Seq ID 776 SSAAHTVTY Seq ID 1392 PPRVNDHAT Seq ID 777 SHPQPFMKW Seq ID 1393 AMFDSSNYHGQDLLFA Seq ID 778 QQGVREAFI Seq ID 1394 HPTVQTHSQ Seq ID 779 AQSPLVSSSDSPPRPA Seq ID 1395 LGSSAGVSF Seq ID 780 DSAVRQNPF Seq ID 1396 AGLTTRPGSGLTNIKA Seq ID 781 KSNSMQEAH Seq ID 1397 AGHFSGSGA Seq ID 782 PRQLSSIPS Seq ID 1398 RVQVGPVSS Seq ID 783 DPSAQKQNY Seq ID 1399 SKINPQTPL Seq ID 784 TGAFDDHDI Seq ID 1400 QRDQRVTPQ Seq ID 785 NGTHLVTRA Seq ID 1401 SPAGYQANK Seq ID 786 TGGKVQLGS Seq ID 1402 MTHAQQLPQ Seq ID 787 KQLKTMNDF Seq ID 1403 AFKDSAIGFSRVPPRA Seq ID 788 PHDTRIAVD Seq ID 1404 MTLKREIMS Seq ID 789 ERHIAHTWT Seq ID 1405 IPMQGEQMR Seq ID 790 YRPHPQQHP Seq ID 1406 AQETHYMTR Seq ID 791 YNLPQPKEI Seq ID 1407 AVRHSSDFA Seq ID 792 DTQQQPPYK Seq ID 1408 ALSSSMSMA Seq ID 793 QSNQVKQMD Seq ID 1409 ANPRFNENNRRVIVCA Seq ID 794 IEVKQQQNG Seq ID 1410 AAIENAVRSSLKVATA Seq ID 795 DQTHNIMQK Seq ID 1411 RQGGNIMEK Seq ID 796 VQEEGWLYA Seq ID 1412 PTSQLSAAH Seq ID 797 KQMVAQMSM Seq ID 1413 KPSQTHNDM Seq ID 798 SINGQQHDY Seq ID 1414 AKVAVVRTPPKSPSSA Seq ID 799 TPDMFKSPN Seq ID 1415 HDQGHAAQK Seq ID 800 GNHSVHHQQ Seq ID 1416 AMAAAMGNS Seq ID 801 ENSRTTTVG Seq ID 1417 GDTQPRMQY Seq ID 802 TFVVGQSGK Seq ID 1418 EYPSEIVYS Seq ID 803 APLRPQTGE Seq ID 1419 TWQHTTETS Seq ID 804 QTSSSTHHA Seq ID 1420 TGGAYPVIV Seq ID 805 KIAATALSS Seq ID 1421 AGYGSSSRRAPQTGIA Seq ID 806 PESGQSKMH Seq ID 1422 AVADSRSPA Seq ID 807 VISVGQMAK Seq ID 1423 AGIVSWGRGCALKDKA Seq ID 808 AERPQQGMH Seq ID 1424 AWESDDFTA Seq ID 809 TQQNQIIQR Seq ID 1425 SVDQSHDPN Seq ID 810 ARQAQEKFGKDKSPKA Seq ID 1426 ARPNLPLPA 77 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 811 VTAVTTPSH Seq ID 1427 ARPNLPLPA Seq ID 812 SQVRGPETT Seq ID 1428 TDLADSEWR Seq ID 813 PLNHQQIQR Seq ID 1429 AAFTTTLRGAQRLAAA Seq ID 814 AVVPRPHEI Seq ID 1430 VSNPQPPSR Seq ID 815 TPNMEDNRQ Seq ID 1431 APSLPTPPTREPKKVA Seq ID 816 HRVTGVNDV Seq ID 1432 PTHTQGRES Seq ID 817 FTGNQGAQN Seq ID 1433 AQNAKNGNLPEFGDAA Seq ID 818 PRLAETSSQ Seq ID 1434 KNAVMAPGN Seq ID 819 SPRQSDPAH Seq ID 1435 ALVPIATQTYEAWLGA Seq ID 820 MNDDQQPPP Seq ID 1436 IPMRIETDP Seq ID 821 QMKPLPQAM Seq ID 1437 QARDSPKGW Seq ID 822 YSRHENISY Seq ID 1438 AHRERMSQVMREWEEA Seq ID 823 TEGERVGML Seq ID 1439 SRVSQNEHP Seq ID 824 NHVPVLWAD Seq ID 1440 QRNEKSEFI Seq ID 825 TLAPLATTS Seq ID 1441 QTLPEVTKW Seq ID 826 NQRDVTNLT Seq ID 1442 VKGWQVTER Seq ID 827 QQNNTVPNQ Seq ID 1443 APTTVESHGNYSTQIA Seq ID 828 EKNMHTGVH Seq ID 1444 PRQGPSTNL Seq ID 829 VTLQGATPN Seq ID 1445 AEATDGMLKIQFSAQA Seq ID 830 PTKTSTGQM Seq ID 1446 ALYRQKVEPLRAELQA Seq ID 831 FNVDQHRNS Seq ID 1447 RPLTTEAIV Seq ID 832 PMTLLKDIQ Seq ID 1448 KPGSQQIMD Seq ID 833 DPTRPIETV Seq ID 1449 AHQLLGDLHQEGPPLA Seq ID 834 ERKQQLSEM Seq ID 1450 MEQLVTFKT Seq ID 835 NQEQFGMIV Seq ID 1451 GASMQTALW Seq ID 836 TTQIMVGTK Seq ID 1452 AAFRCLAENAGDVAFA Seq ID 837 MYAKTEVQW Seq ID 1453 IQTQLPPGK Seq ID 838 PVGHQMDVY Seq ID 1454 NTVHQAQIM Seq ID 839 QVFQDRTSL Seq ID 1455 PISNVNQSR Seq ID 840 LKDNQQATF Seq ID 1456 APDLVQEACESELNEA Seq ID 841 AGNTHTLIN Seq ID 1457 AKIQVLVEPDHFKVAA Seq ID 842 KVPPQHLTA Seq ID 1458 AREWFMDLNLPWSSAA Seq ID 843 GIVTATRVQ Seq ID 1459 AEFSSNTVKLTSGHLA Seq ID 844 NIAHHQGSN Seq ID 1460 AFTYKSSCAFSCEEGA Seq ID 845 PAMPGAAAR Seq ID 1461 PYPTQASMK Seq ID 846 VQSITPPQS Seq ID 1462 KPTNSGQEH Seq ID 847 QATHQGQNH Seq ID 1463 LSTGPPEKI Seq ID 848 PTNAPGVTE Seq ID 1464 APQLHVMSA Seq ID 849 MHRAQAIAE Seq ID 1465 TASKMQDSK Seq ID 850 AQASEKMMK Seq ID 1466 AFTSSSGQKAMNGSRA Seq ID 851 RMNIPPNGT Seq ID 1467 AVAEFSEATAELTVSA Seq ID 852 RPSDINSGD Seq ID 1468 INQNKAHDA Seq ID 853 MQPKSAQNV Seq ID 1469 AARLSKELQAAQARLA Seq ID 854 LAASMQGAH Seq ID 1470 ATKPGYVDSIQKGIQA Seq ID 855 TSIITQAAN Seq ID 1471 PTTAPSMVL Seq ID 856 SDREETFNM Seq ID 1472 AGGFVYIAGKCGLVPA 78 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 Seq ID 857 NQYNMQPSK Seq ID 1473 ANPTAKRQFVQSAKEA Seq ID 858 WVSEEHFLT Seq ID 1474 ALALGRFWDYLRWVQA Seq ID 859 QSATSVTSQ Seq ID 1475 ALRVIYERMNQSLSLA Seq ID 860 HARQSYNDP Seq ID 1476 VTMTQATNR Seq ID 861 AMNVISHDGTPA Seq ID 1477 ALLQYNHRVKKLNEIA Seq ID 862 STIMSEAEF Seq ID 1478 ALLGKINLKALAALAA Seq ID 863 HANTNVLEK Seq ID 1479 RQRVSYMDD Seq ID 864 KPQVTPAVH Seq ID 1480 ADMGQQRYD Seq ID 865 AMPDRTMMR Seq ID 1481 ATGVLLRALAGVPVAA Seq ID 866 VAIGQTKTL Seq ID 1482 SIKKDPPTV Seq ID 867 PTDYSVKSV Seq ID 1483 PGKTMLGNH Seq ID 868 IGHHKEMKE Seq ID 1484 HQGDTLQYV Seq ID 869 ASQAIHYNA Seq ID 1485 ALGLGKHNYCRNPDGA Seq ID 870 QVRMEGAEY Seq ID 1486 QERQANKSY Seq ID 871 MKERHEHFE Seq ID 1487 QQTRGVELN Seq ID 872 GQVLMAGTR Seq ID 1488 ASMRVVPMA Seq ID 873 TVSMPVSHA Seq ID 1489 ASSTDKRDA Seq ID 874 NHDRVNVQP Seq ID 1490 ALIGGSIVA Seq ID 875 EELGILNLQ Seq ID 1491 LLHTGTSSH Seq ID 876 ANGNFQVLK Seq ID 1492 TQHQAQVPR Seq ID 877 RQYNTESMH Seq ID 1493 AAGLFGAAEGQAFHLA Seq ID 1494 AENEHAHFQKAKERLA Seq ID 1495 QALVPIATQTYEAWLGA
[0142] Seq ID 1496: AAV2 R588A MAADGYLPDWLEDTLSEGIRQWWKLKPGPPPPKPAERHKDDSRGLVLPGYK YLGPFNGLDKGEPVNEADAAALEHDKAYDRQLDSGDNPYLKYNHADAEFQ ERLKEDTSFGGNLGRAVFQAKKRVLEPLGLVEEPVKTAPGKKRPVEHSPVEP DSSSGTGKAGQQPARKRLNFGQTGDADSVPDPQPLGQPPAAPSGLGTNTMAT GSGAPMADNNEGADGVGNSSGNWHCDSTWMGDRVITTSTRTWALPTYNNH LYKQISSQSGASNDNHYFGYSTPWGYFDFNRFHCHFSPRDWQRLINNNWGFR PKRLNFKLFNIQVKEVTQNDGTTTIANNLTSTVQVFTDSEYQLPYVLGSAHQG CLPPFPADVFMVPQYGYLTLNNGSQAVGRSSFYCLEYFPSQMLRTGNNFTFS YTFEDVPFHSSYAHSQSLDRLMNPLIDQYLYYLSRTNTPSGTTTQSRLQFSQA GASDIRDQSRNWLPGPCYRQQRVSKTSADNNNSEYSWTGATKYHLNGRDSL VNPGPAMASHKDDEEKFFPQSGVLIFGKQGSEKTNVDIEKVMITDEEEIRTTN PVATEQYGSVSTNLQRGNRQAATADVNTQGVLPGMVWQDRDVYLQGPIWA KIPHTDGHFHPSPLMGGFGLKHPPPQILIKNTPVPANPSTTFSAAKFASFITQYS TGQVSVEIEWELQKENSKRWNPEIQYTSNYNKSVNVDFTVDTNGVYSEPRPI 79 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 GTRYLTRNL
[0143] Seq ID 1497: AAV9 MAADGYLPDWLEDNLSEGIREWWALKPGAPQPKANQQHQDNARGLVLPGY KYLGPGNGLDKGEPVNAADAAALEHDKAYDQQLKAGDNPYLKYNHADAEF QERLKEDTSFGGNLGRAVFQAKKRLLEPLGLVEEAAKTAPGKKRPVEQSPQE PDSSAGIGKSGAQPAKKRLNFGQTGDTESVPDPQPIGEPPAAPSGVGSLTMAS GGGAPVADNNEGADGVGSSSGNWHCDSQWLGDRVITTSTRTWALPTYNNH LYKQISNSTSGGSSNDNAYFGYSTPWGYFDFNRFHCHFSPRDWQRLINNNWG FRPKRLNFKLFNIQVKEVTDNNGVKTIANNLTSTVQVFTDSDYQLPYVLGSA HEGCLPPFPADVFMIPQYGYLTLNDGSQAVGRSSFYCLEYFPSQMLRTGNNF QFSYEFENVPFHSSYAHSQSLDRLMNPLIDQYLYYLSKTINGSGQNQQTLKFS VAGPSNMAVQGRNYIPGPSYRQQRVSTTVTQNNNSEFAWPGASSWALNGRN SLMNPGPAMASHKEGEDRFFPLSGSLIFGKQGTGRDNVDADKVMITNEEEIK TTNPVATESYGQVATNHQSAQAQAQTGWVQNQGILPGMVWQDRDVYLQGP IWAKIPHTDGNFHPSPLMGGFGMKHPPPQILIKNTPVPADPPTAFNKDKLNSFI TQYSTGQVSVEIEWELQKENSKRWNPEIQYTSNYYKSNNVEFAVNTEGVYSE PRPIGTRYLTRNL
[0144] Seq ID 1498: CNSRCV300 (STAC-BBB) MAADGYLPDWLEDNLSEGIREWWALKPGAPQPKANQQHQDNARGLVLPGY KYLGPGNGLDKGEPVNAADAAALEHDKAYDQQLKAGDNPYLKYNHADAEF QERLKEDTSFGGNLGRAVFQAKKRLLEPLGLVEEAAKTAPGKKRPVEQSPQE PDSSAGIGKSGAQPAKKRLNFGQTGDTESVPDPQPIGEPPAAPSGVGSLTMAS GGGAPVADNNEGADGVGSSSGNWHCDSQWLGDRVITTSTRTWALPTYNNH LYKQISNSTSGGSSNDNAYFGYSTPWGYFDFNRFHCHFSPRDWQRLINNNWG FRPKRLNFKLFNIQVKEVTDNNGVKTIANNLTSTVQVFTDSDYQLPYVLGSA HEGCLPPFPADVFMIPQYGYLTLNDGSQAVGRSSFYCLEYFPSQMLRTGNNF QFSYEFENVPFHSSYAHSQSLDRLMNPLIDQYLYYLSKTINGSGQNQQTLKFS VAGPSNMAVQGRNYIPGPSYRQQRVSTTVTQNNNSEFAWPGASSWALNGRN SLMNPGPAMASHKEGEDRFFPLSGSLIFGKQGTGRDNVDADKVMITNEEEIK TTNPVATESYGQVATNHQSAYVNIMDDMDQAQTGWVQNQGILPGMVWQD RDVYLQGPIWAKIPHTDGNFHPSPLMGGFGMKHPPPQILIKNTPVPADPPTAF NKDKLNSFITQYSTGQVSVEIEWELQKENSKRWNPEIQYTSNYYKSNNVEFA VNTEGVYSEPRPIGTRYLTRNL
[0145] STAC-BBB VP2 capsid amino acid sequence 80 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0146] KTAPGKKRPVEQSPQEPDSSAGIGKSGAQPAKKRLNFGQTGDTES VPDPQPIGEPPAAPSGVGSLTMASGGGAPVADNNEGADGVGSSSGNWHCDSQWLG DRVITTSTRTWALPTYNNHLYKQISNSTSGGSSNDNAYFGYSTPWGYFDFNRFHCHF SPRDWQRLINNNWGFRPKRLNFKLFNIQVKEVTDNNGVKTIANNLTSTVQVFTDSD YQLPYVLGSAHEGCLPPFPADVFMIPQYGYLTLNDGSQAVGRSSFYCLEYFPSQMLR TGNNFQFSYEFENVPFHSSYAHSQSLDRLMNPLIDQYLYYLSKTINGSGQNQQTLKFS VAGPSNMAVQGRNYIPGPSYRQQRVSTTVTQNNNSEFAWPGASSWALNGRNSLMN PGPAMASHKEGEDRFFPLSGSLIFGKQGTGRDNVDADKVMITNEEEIKTTNPVATES YGQVATNHQSAYVNIMDDMDQAQTGWVQNQGILPGMVWQDRDVYLQGPIWAKIP HTDGNFHPSPLMGGFGMKHPPPQILIKNTPVPADPPTAFNKDKLNSFITQYSTGQVSV EIEWELQKENSKRWNPEIQYTSNYYKSNNVEFAVNTEGVYSEPRPIGTRYLTRNL (SEQ ID NO: 1499)
[0147] STAC-BBB VP3 capsid amino acid sequence MASGGGAPVADNNEGADGVGSSSGNWHCDSQWLGDRVITTSTRTWALPTYNNHL YKQISNSTSGGSSNDNAYFGYSTPWGYFDFNRFHCHFSPRDWQRLINNNWGFRPKR LNFKLFNIQVKEVTDNNGVKTIANNLTSTVQVFTDSDYQLPYVLGSAHEGCLPPFPA DVFMIPQYGYLTLNDGSQAVGRSSFYCLEYFPSQMLRTGNNFQFSYEFENVPFHSSY AHSQSLDRLMNPLIDQYLYYLSKTINGSGQNQQTLKFSVAGPSNMAVQGRNYIPGP SYRQQRVSTTVTQNNNSEFAWPGASSWALNGRNSLMNPGPAMASHKEGEDRFFPL SGSLIFGKQGTGRDNVDADKVMITNEEEIKTTNPVATESYGQVATNHQSAYVNIMD DMDQAQTGWVQNQGILPGMVWQDRDVYLQGPIWAKIPHTDGNFHPSPLMGGFGM KHPPPQILIKNTPVPADPPTAFNKDKLNSFITQYSTGQVSVEIEWELQKENSKRWNPE IQYTSNYYKSNNVEFAVNTEGVYSEPRPIGTRYLTRNL (SEQ ID NO: 1500) V. Pharmaceutical Applications
[0148] Zinc finger protein transcription factors for repressing PrP expression is disclosed in International Patent Publication WO 2021 / 067864, the entirety of which is incorporated by reference herein and specifically incorporated by reference in its entirety is the section related to Pharmaceutical Applications.
[0149] The ZFRs can be used to treat patients in need of downregulation of PrP expression. The patients suffer from, or are at risk of developing, prion disease. The prion disease to be treated may be familial, sporadic, or acquired prion disease, and may be CJD, sCJD, vCJD, GSS, FFI, sFI, Kuru, VPSPr. Patients at risk include those who are genetically predisposed, those who have been exposed to meat from cattle with mad cow disease, those 81 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 who have had been exposed due to iatrogenic means, or exposed to other environmental sources of prions. The disclosure provides a method of treating a neurodegenerative disease in a subject such as a human patient in need thereof, comprising introducing to the nervous system of the subject a therapeutically effective amount (e.g., an amount that allows sufficient repression of PRNP expression) of the ZFR (e.g., a rAAV vector expressing it). In some embodiments, the neurodegenerative disease is prion disease. The term “treating” encompasses any one of alleviation of symptoms, prevention of onset of symptoms, slowing of disease progression, and extension of survival. Biomarkers including, without limitation, prion, PrP, GFAP, or neurofilament light chain (NfL) levels in the cerebrospinal fluid or plasma may also be measured to monitor progress of the treatment.
[0150] The disclosure provides a pharmaceutical composition comprising a viral vector such as a recombinant rAAV whose recombinant genome comprises an expression cassette for the ZFRs. The pharmaceutical composition may further comprise a pharmaceutically acceptable carrier such as water, saline (e.g., phosphate-buffered saline), dextrose, glycerol, sucrose, lactose, gelatin, dextran, albumin, or pectin. In addition, the composition may contain auxiliary substances, such as, wetting or emulsifying agents, pH- buffering agents, stabilizing agents, or other reagents that enhance the effectiveness of the pharmaceutical composition. The pharmaceutical composition may contain delivery vehicles such as liposomes, nanocapsules, microparticles, microspheres, lipid particles, and vesicles.
[0151] In some embodiments, the pharmaceutical composition comprises STAC- BBB and a sequence encoding a prion-targeting transcriptional repressor (e.g., ZFR). In some embodiments, the pharmaceutical composition comprises STAC-BBB and a vector encoding any one of the ZFP or ZFR sequences as shown in a single row in Tables 1-4.
[0152] The cells targeted by the therapeutics of the present disclosure are cells in the brain, including, without limitation, a neuronal cell (e.g., a motor neuron, a sensory neuron, a dopaminergic neuron, a cholinergic neuron, a glutamatergic neuron, a GABAergic neuron, or a serotonergic neuron); a glial cell (e.g., an oligodendrocyte, an astrocyte, a pericyte, a Schwann cell, or a microglial cell); an ependymal cell; or a neuroepithelial cell. The brain regions targeted by the therapeutics may be, for example, cerebral cortex (classic CJD), thalamus (FFI), brainstem (scrapie, BSE, and Chronic Wasting Disease), and cerebellum (Kuru). The targeted brain regions can be reached directly through intrastriatal injection, intrathalamic injection, intracerebral injection, intra-cisterna magna (ICM) injection, or more generally through intraparenchymal injection, intracerebroventricular (ICV) injection, intrathecal injection, or intravenous injection. Other routes of administration include, without 82 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 limitation, intracerebral, intraventricular, intranasal, or intraocular administration. In some embodiments, the viral vector spreads throughout the CNS tissue following direct administration into the cerebrospinal fluid (CSF), e.g., via intrathecal and / or intracerebral injection, or intracisterna-magna injection. In other embodiments, the viral vectors cross the blood-brain-barrier and achieve wide-spread distribution throughout the CNS tissue of a subject following intravenous administration. In other embodiments, the viral vectors are delivered directly to the target regions via intraparenchymal injections. In some cases, the viral vectors may undergo retrograde or anterograde transport to other brain regions following intraparenchymal delivery. In some aspects, the viral vectors have distinct CNS tissue targeting capabilities (e.g., CNS tissue tropisms), which achieve stable and nontoxic gene transfer at high efficiencies.
[0153] By way of example, the pharmaceutical composition may be provided to the patient through intraventricular administration, e.g., into a ventricular region of the forebrain of the patient such as the right lateral ventricle, the left lateral ventricle, the third ventricle, or the fourth ventricle. The pharmaceutical composition may be provided to the patient through intracerebral administration, e.g., injection of the composition into or near the striatum, caudate, putamen, substantia nigra, midbrain, olfactory bulb, cerebrum, medullar, pons, cerebellum, locus coeruleus, pons, medulla, brainstem, globus pallidus, hippocampus, cerebral cortex, cerebrum, intracranial cavity, meninges, dura mater, arachnoid mater, or pia mater of the brain. Intracerebral administration may include, in some cases, administration of an agent into the cerebrospinal fluid (CSF) of the subarachnoid space surrounding the brain.
[0154] In some cases, intracerebral administration involves injection using stereotaxic procedures. Stereotaxic procedures are well known in the art and typically involve the use of a computer and a 3-dimensional scanning device that are used together to guide injection to a particular intracerebral region, e.g., a ventricular region. Micro-injection pumps (e.g., from World Precision Instruments) may also be used. In some cases, a microinjection pump is used to deliver a composition comprising a viral vector. In some cases, the infusion rate of the composition is in a range of 0.1 µl / min to 100 µl / min. As will be appreciated by the skilled artisan, infusion rates will depend on a variety of factors, including, for example, species of the subject, age of the subject, weight / size of the subject, serotype of the AAV, dosage required, and intracerebral region targeted. Thus, other infusion rates may be deemed by a skilled artisan to be appropriate in certain circumstances.
[0155] Delivery of rAAVs to a subject may be accomplished, for example, by intravenous administration. In certain instances, it may be desirable to deliver the rAAVs 83 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 locally to the brain tissue, the spinal cord, cerebrospinal fluid (CSF), neuronal cells, glial cells, meninges, astrocytes, oligodendrocytes, microglia, interstitial spaces, and the like. In some cases, recombinant AAVs may be delivered directly to the CNS by injection into the ventricular region, as well as to the parenchyma, striatum, substantia nigra, cortex, cerebellar lobule, thalamus, hippocampus or other brain region or combination of brain regions. AAVs may be delivered with a needle, catheter or related device, using neurosurgical techniques known in the art, such as by stereotactic injection (see, e.g., Stein et al., J Vir. (1999) 73:3424-9; Davidson et al., PNAS. (2000) 97:3428-32; Davidson et al., Nat Genet. (1993) 3:219-223; and Alisky and Davidson, Hum. Gene Ther. (2000) 11:2315-29.
[0156] Unless otherwise defined herein, scientific and technical terms used in connection with the disclosure shall have the meanings that are commonly understood by those of ordinary skill in the art. Exemplary methods and materials are described below, although methods and materials similar or equivalent to those described herein can also be used in the practice or testing of the disclosure. In case of conflict, the specification, including definitions, will control. Generally, nomenclature used in connection with, and techniques of neurology, medicine, medicinal and pharmaceutical chemistry, and cell biology described herein are those well-known and commonly used in the art. Enzymatic reactions and purification techniques are performed according to manufacturer’s specifications, as commonly accomplished in the art or as described herein. Further, unless otherwise required by context, singular terms shall include pluralities and plural terms shall include the singular. Throughout this specification and embodiments, the words “have” and “comprise,” or variations such as “has,” “having,” “comprises,” or “comprising,” will be understood to imply the inclusion of a stated integer or group of integers but not the exclusion of any other integer or group of integers. All publications and other references mentioned herein are incorporated by reference in their entirety. Although a number of documents are cited herein, this citation does not constitute an admission that any of these documents forms part of the common general knowledge in the art. As used herein, the term “approximately” or “about” as applied to one or more values of interest refers to a value that is similar to a stated reference value. In certain embodiments, the term refers to a range of values that fall within 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, or less in either direction (greater than or less than) of the stated reference value unless otherwise stated or otherwise evident from the context.
[0157] In order that this invention may be better understood, the following examples are set forth. These examples are for purposes of illustration only and are not to be construed as limiting the scope of the invention in any manner. 84 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0158] Exemplary Embodiments
[0159] Non-limiting exemplary embodiments of the disclosure are described below.
[0160] Embodiment 1: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 1, wherein the ZFP ID is 81613.
[0161] Embodiment 2: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 1, wherein the ZFP ID is 81747.
[0162] Embodiment 3: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 1, wherein the ZFP ID is 89324.
[0163] Embodiment 4: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 1, wherein the ZFP ID is 89322.
[0164] Embodiment 5: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 1, wherein the ZFP ID is 91973. 85 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0165] Embodiment 6: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 1, wherein the ZFP ID is 89302.
[0166] Embodiment 7: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 1, wherein the ZFP ID is 89427.
[0167] Embodiment 8: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 1, wherein the ZFP ID is 89352.
[0168] Embodiment 9: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 1, wherein the ZFP ID is 89347.
[0169] Embodiment 10: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 81638.
[0170] Embodiment 11: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition 86 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 89891.
[0171] Embodiment 12: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 89920.
[0172] Embodiment 13: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 89943.
[0173] Embodiment 14: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 91806.
[0174] Embodiment 15: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 91852.
[0175] Embodiment 16: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 91853.
[0176] Embodiment 17: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set 87 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 91870.
[0177] Embodiment 18: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 91888.
[0178] Embodiment 19: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 91975.
[0179] Embodiment 20: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 91999.
[0180] Embodiment 21: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences corresponding to a ZFP ID as shown in a single row of Table 3, wherein the ZFP ID is 92071.
[0181] Embodiment 22: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 2, wherein the ZFP ID is 81613. 88 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0182] Embodiment 23: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 2, wherein the ZFP ID is 81747.
[0183] Embodiment 24: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 2, wherein the ZFP ID is 89324.
[0184] Embodiment 25: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 2, wherein the ZFP ID is 89322.
[0185] Embodiment 26: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 2, wherein the ZFP ID is 91973.
[0186] Embodiment 27: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 2, wherein the ZFP ID is 89302.
[0187] Embodiment 28: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition 89 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 2, wherein the ZFP ID is 89427.
[0188] Embodiment 29: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 2, wherein the ZFP ID is 89352.
[0189] Embodiment 30: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 2, wherein the ZFP ID is 89347.
[0190] Embodiment 31: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 81638.
[0191] Embodiment 32: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 89891.
[0192] Embodiment 33: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 89920.
[0193] Embodiment 34: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set 90 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 89943.
[0194] Embodiment 35: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 91806.
[0195] Embodiment 36: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 91852.
[0196] Embodiment 37: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 91853.
[0197] Embodiment 38: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 91870.
[0198] Embodiment 39: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 91888. 91 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0199] Embodiment 40: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 91975.
[0200] Embodiment 41: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 91999.
[0201] Embodiment 42: A composition comprising an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495 and an expression construct encoding a ZFR fusion protein that binds to a target sequence and comprises the DNA-binding zinc finger recognition helix sequences and backbone mutation(s) corresponding to a ZFP ID as shown in a single row of Table 4, wherein the ZFP ID is 92071.
[0202] Embodiment 43: The composition of any one of embodiments 1-42, wherein the ZFR fusion protein comprises a transcription repressor domain or epigenetic silencing domain.
[0203] Embodiment 44: The composition of embodiment 43, wherein transcription repressor domain comprises a KRAB domain.
[0204] Embodiment 45: The composition of embodiment 44, wherein transcription repressor domain comprises SEQ ID NO: 261.
[0205] Embodiment 46: The composition of any one of embodiments 1-45, wherein the AAV capsid encapsulates the expression construct.
[0206] Embodiment 47: The composition of any one of embodiments 1-46, wherein the AAV capsid sequence is at least 80%, 85%, 90%, 95%, or 99% identical to SEQ ID NOS: 1498, 1499, 1500 and combinations thereof.
[0207] Embodiment 48: The composition of any one of embodiments 1-47, wherein the ZFP domain binds to a target region of a human PRNP gene. 92 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0208] Embodiment 49: The composition of any one of embodiments 1-48, wherein the ZFP domain binds to a target region of a human PRNP gene, wherein the target region is within 1.5 kb of a transcription start site (TSS) in the PRNP gene.
[0209] Embodiment 50: The composition of any one of embodiments 1-49, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the target region is within 1000 bps upstream of the TSS, and / or within 500 bps downstream of the TSS of the PRNP gene.
[0210] Embodiment 51: The composition of any one of embodiments 48-50, wherein the fusion protein represses expression of the PRNP gene by at least about 40%, 75%, 90%, 95%, or 99% compared to an untreated patient with no or minimal detectable off-target binding or activity.
[0211] Embodiment 52: The composition of any one of embodiments 48-51, wherein the DNA-binding zinc finger recognition helix is linked to the transcription repressor or epigenetic silencing domain through a peptide linker.
[0212] Embodiment 53: The composition of any one of embodiments 1-52, wherein the DNA-binding zinc finger recognition helix binds to binds to a Target Sequence as shown in a single row in Tables 1 and 3.
[0213] Embodiment 54: A composition comprising: 1) an AAV capsid protein comprising at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in one of SEQ ID NOs: 333, 417, 442, or 673; and 2) an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene, wherein the ZFP domain of the fusion protein comprises four, five, or six zinc fingers; binds to a Target Sequence shown in Tables 1 and 3; comprises a DNA-binding recognition helix sequence comprising SEQ ID NOS: 22-30, 31-39, 40-48, 49-57, 58-66, 67- 73 ordered as shown in Table 1; a DNA-binding recognition helix sequence comprising SEQ ID NOS: 112-123, 124-135, 136-147, 148-159, 160-171, 172-181 ordered as shown in Table 3; comprises a ZFP transcription factor shown in Tables 2 and 4; comprises the DNA-binding recognition helix sequences linked as shown in Tables 2 and 4; and / or comprises an amino acid sequence selected from SEQ ID NOs: 74-82 in Table 2 or 183-194 in Table 4.
[0214] Embodiment 55: A composition comprising an AAV capsid polypeptide, comprising a peptide modification relative to the AAV9 capsid polypeptide set forth in SEQ ID NO: 1497, wherein: the peptide modification is in variable region 8 (VRVIII) and; the peptide modification comprises an 9 amino acid insertion relative to the AAV9 capsid 93 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 polypeptide set forth in SEQ ID NO: 1497, and comprises the sequence set forth in any one of SEQ ID Nos:263-1495; and the portion of the capsid polypeptide that is not the peptide modification comprises at least or about 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to SEQ ID NO: 1497 and an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3.
[0215] Embodiment 56: A pharmaceutical composition comprising the composition of any one of embodiments 1-55, and a pharmaceutically acceptable carrier.
[0216] Embodiment 57: A host cell comprising the composition of any one of embodiments 1-55.
[0217] Embodiment 58: A host cell comprising the composition of any one of embodiments 1-55 wherein the host cell is a human cell.
[0218] Embodiment 59: A host cell comprising the composition of any one of embodiments 1-55 wherein the host cell is a brain cell.
[0219] Embodiment 60: A host cell comprising the composition of any one of embodiments 1-55 wherein the host cell is a brain cell selected from the group comprising, consisting, or consisting essentially of a motor neuron, a sensory neuron, a dopaminergic neuron, a cholinergic neuron, a glutamatergic neuron, a GABAergic neuron, or a serotonergic neuron, a glial cell, optionally an oligodendrocyte, an astrocyte, a pericyte, a Schwann cell, or a microglial cell, an ependymal cell, a neuroepithelial cell, or combinations thereof.
[0220] Embodiment 61: A method of inhibiting expression of PrP in a human brain cell, comprising introducing into a cell a composition of any one of embodiments 1-55.
[0221] Embodiment 62: A method of inhibiting expression of PrP in a human brain cell, comprising introducing into a subject in need thereof a composition of any one of embodiments 1-55.
[0222] Embodiment 63: The method of embodiment 61-62 wherein the AAV capsid penetrates across the blood brain barrier.
[0223] Embodiment 64: The method of any one of embodiments 61-63 wherein the patient shows ZFP expression.
[0224] Embodiment 65 The method of any one of embodiments 61-64 wherein the patient shows ZFP expression in the brain and / or spinal cord. 94 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0225] Embodiment 66: The method of any one of embodiments 61-65 wherein the patient does not show ZFP expression outside the brain and / or spinal cord.
[0226] Embodiment 67: The method of any one of embodiments 61-66 wherein the patient shows ZFP expression in ChAT-positive motor neurons in the spinal cord.
[0227] Embodiment 68: The method of any one of embodiments 61-67 wherein the patient shows ZFP expression in one or more brain region, wherein the brain region is selected from the group comprising, consisting, or consisting essentially of motor cortex, cortical regions, the entorhinal cortex, the hippocampus, the cerebellum, the globus pallidus, the thalamus, the midbrain, the caudate, the putamen, the substantia nigra, the pons, and the medulla.
[0228] Embodiment 69: The method of any one of embodiments 61-68 wherein the patient shows ZFP expression in a plurality of brain regions, wherein the brain region is selected from the group comprising, consisting, or consisting essentially of motor cortex, cortical regions, the entorhinal cortex, the hippocampus, the cerebellum, the globus pallidus, the thalamus, the midbrain, the caudate, the putamen, the substantia nigra, the pons, and the medulla.
[0229] Embodiment 70: The method of any one of embodiments 61-69 wherein the patient shows ZFP expression in thalamus, pons, cervical spinal cord, precentral gyrus, and temporal cortex.
[0230] Embodiment 71: The method of any one of embodiments 61-70 wherein the patient shows ZFP expression in more than one brain cell, the brain cell selected from the group comprising, consisting, or consisting essentially of a motor neuron, a sensory neuron, a dopaminergic neuron, a cholinergic neuron, a glutamatergic neuron, a GABAergic neuron, or a serotonergic neuron, a glial cell, optionally an oligodendrocyte, an astrocyte, a pericyte, a Schwann cell, or a microglial cell, an ependymal cell, a neuroepithelial cell, and combinations thereof.
[0231] Embodiment 72: The method of any one of embodiments 61-71 wherein the patient shows ZFP expression in a plurality of brain cells, wherein the brain cells are selected from the group comprising, consisting, or consisting essentially of a motor neuron, a sensory neuron, a dopaminergic neuron, a cholinergic neuron, a glutamatergic neuron, a GABAergic neuron, or a serotonergic neuron, a glial cell, optionally an oligodendrocyte, an astrocyte, a pericyte, a Schwann cell, or a microglial cell, an ependymal cell, a neuroepithelial cell, or combinations thereof. 95 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0232] Embodiment 73: The method of any one of embodiments 61-72 wherein in S100β-positive glial cells, ZFP expression is not detected.
[0233] Embodiment 74: The method of any one of embodiments 61-73 wherein ZFP expression is restricted to neurons by a hSYN1 promotor.
[0234] Embodiment 75: The method of any one of embodiments 61-74 wherein ZFP expression in S100β-positive glial cells is the same as prior to the introducing of the composition.
[0235] Embodiment 76: The method of any one of embodiments 61-75 wherein the patient shows PrP repression compared to prior to the introducing of the composition.
[0236] Embodiment 77: The method of any one of embodiments 61-76 wherein the patient shows PrP repression in the brain and / or spinal cord compared to prior to the introducing of the composition.
[0237] Embodiment 78: The method of any one of embodiments 61-77 wherein the patient shows PrP repression in ChAT-positive motor neurons in the spinal cord.
[0238] Embodiment 79: The method of any one of embodiments 61-78 wherein the patient shows PrP repression in more than one brain region, wherein the brain region is selected from the group comprising, consisting, or consisting essentially of motor cortex, cortical regions, the entorhinal cortex, the hippocampus, the cerebellum, the globus pallidus, the thalamus, the midbrain, the caudate, the putamen, the substantia nigra, the pons, the medulla and combinations thereof.
[0239] Embodiment 80: The method of any one of embodiments 61-79 wherein the patient shows PrP repression in a plurality of brain regions, wherein the brain region is selected from the group comprising, consisting, or consisting essentially of motor cortex, cortical regions, the entorhinal cortex, the hippocampus, the cerebellum, the globus pallidus, the thalamus, the midbrain, the caudate, the putamen, the substantia nigra, the pons, the medulla and combinations thereof.
[0240] Embodiment 81: The method of any one of embodiments 61-80 the patient shows PrP repression in a plurality of brain regions, wherein the brain region is selected from the group comprising, consisting, or consisting essentially of in thalamus, pons, cervical spinal cord, precentral gyrus, temporal cortex and combinations thereof.
[0241] Embodiment 82: The method of any one of embodiments 61-81 wherein the patient shows PrP repression in more than one brain cell, the brain cell selected from the group comprising, consisting, or consisting essentially of a motor neuron, a sensory neuron, a dopaminergic neuron, a cholinergic neuron, a glutamatergic neuron, a GABAergic neuron, or 96 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 a serotonergic neuron, a glial cell, optionally an oligodendrocyte, an astrocyte, a pericyte, a Schwann cell, or a microglial cell, an ependymal cell, a neuroepithelial cell, and combinations thereof.
[0242] Embodiment 83: The method of any one of embodiments 61-82 wherein the patient shows PrP repression in the brain and spinal cord.
[0243] Embodiment 84: The method of any one of embodiments 61-83 wherein the patient shows PrP repression in a plurality of NeuN-positive cells wherein ZFP expression is below the limit of detection of an In Situ Hybridization assay.
[0244] Embodiment 85: The method of any one of embodiments 61-84 wherein the subject is a human.
[0245] Embodiment 86: The method of any one of embodiments 61-85 wherein the patient shows PrP repression in a plurality of brain cells, wherein the brain cells are selected from the group comprising, consisting, or consisting essentially of a motor neuron, a sensory neuron, a dopaminergic neuron, a cholinergic neuron, a glutamatergic neuron, a GABAergic neuron, or a serotonergic neuron, a glial cell, optionally an oligodendrocyte, an astrocyte, a pericyte, a Schwann cell, or a microglial cell, an ependymal cell, a neuroepithelial cell, or combinations thereof.
[0246] Embodiment 87: A method of inhibiting expression of PrP in a human brain cell, comprising providing to a cell a composition of any one of claims 1-55 or a pharmaceutical composition according to claim 56, thereby inhibiting the expression of PrP in the cell.
[0247] Embodiment 88: The method of embodiment 87, wherein the human brain cell is a neuron, a glial cell, an ependymal cell, a neuroepithelial cell, an endothelial cell, or an oligodendrocyte.
[0248] Embodiment 89: The method of any one of embodiments 87-88, wherein the cell is in the brain of a patient suffering from or at risk of developing Alzheimer’s disease, frontotemporal dementia, progressive supranuclear palsy, traumatic brain injury (TBI), seizure disorders, corticobasal degeneration (CBD), chronic traumatic encephalopathy (CTE), or another Tauopathy.
[0249] Embodiment 90: The method of any one of embodiments 87-89, comprising introducing into the cell the expression construct that expresses the fusion protein.
[0250] Embodiment 91: A method of treating a Tauopathy in a patient in need thereof, comprising administering to the patient a composition of any one of embodiments 1- 55 or a pharmaceutical of embodiment 56. 97 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0251] Embodiment 92: The method of embodiment 91, wherein the composition is introduced to the patient via an intravenous, intrathecal, intracerebral, intracerebroventricular, intra-cisternal magna, intrahippocampal, intrathalamic, or intraparenchymal route.
[0252] Embodiment 93: The method of embodiment 91 or 92, wherein the Tauopathy is Alzheimer’s disease, or frontotemporal dementia, progressive supranuclear palsy, traumatic brain injury (TBI), seizure disorders, corticobasal degeneration (CBD), or chronic traumatic encephalopathy (CTE).
[0253] Embodiment 94: The method of embodiment 91, 92 or 93, wherein the composition is introduced to the patient at a concentration of 1E14 vg / kg.
[0254] Embodiment 95: The method of any one of embodiments 91-94, wherein introducing into a subject in need thereof comprises administering the composition at a concentration of 1E14 vg / kg or between 1E12 vg / kg to 5E14 vg / kg.
[0255] Embodiment 96: The method of any one of embodiments 91-95, wherein introducing into a subject in need thereof comprises administering the composition by an intravenous, intrathecal, intracerebral, intracerebroventricular, intra-cisternal magna, intrahippocampal, intrathalamic, or intraparenchymal route.
[0256] Embodiment 97: The composition of any one of embodiments 1-55, the pharmaceutical composition of embodiment 107 or the host cell of embodiments 108-111 for use in a method of treating a Tauopathy in a patient in need thereof, comprising administering to the patient a composition of any one of claims 1-55.
[0257] Embodiment 98: The composition of any one of embodiments 1-55, the pharmaceutical composition of embodiment 107 or the host cell of embodiments 108-111 for use in a method of inhibiting expression of PrP in a human brain cell.
[0258] Embodiment 99: Use of composition of any one of embodiments 1-55, the pharmaceutical composition of embodiment 107 or the host cell of embodiments 108-111, for the manufacture of a medicament for inhibiting expression of PrP in a human brain cell and / or treating a Tauopathy in a patient.
[0259] Embodiment 100: Use of composition of any one of embodiments 1-55, the pharmaceutical composition of embodiment 107 or the host cell of embodiments 108-111 for the manufacture of a medicament for use in the method of any one of claims 91-96.
[0260] Non-limiting exemplary embodiments of the disclosure are further described below. 98 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0261] Embodiment 1: A composition comprising an AAV capsid polypeptide, comprising a peptide modification relative to the AAV9 capsid polypeptide set forth in SEQ ID NO: 1497, wherein: the peptide modification is in variable region 8 (VRVIII) and; the peptide modification comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of an amino acid sequence set forth in any one of SEQ ID NO: 263-1495, and the portion of the capsid polypeptide that is not the peptide modification comprises at least or about 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to SEQ ID NO: 1497 and an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3.
[0262] Embodiment 2: The composition of embodiment 1, wherein the peptide modification is in the region of the capsid polypeptide spanning positions 450 and 600, with numbering relative to SEQ ID NO: 1497.
[0263] Embodiment 3: The composition of embodiment 1, wherein the peptide modification is in the region of the capsid polypeptide spanning positions 587 and 590, with numbering relative to SEQ ID NO: 1497 or wherein the peptide modification is in the region of the capsid polypeptide spanning positions 384 and 386, with numbering relative to SEQ ID NO: 1497.
[0264] Embodiment 4: The composition of embodiment 1, 2 or 3, wherein the peptide modification comprises a 9-16 amino acid insertion to the AAV9 capsid polypeptide set forth in SEQ ID NO: 1497.
[0265] Embodiment 5: The composition of embodiment 1, 2, 3 or 4, wherein the peptide modification comprises an amino acid insertion of SEQ ID NO: 333, 417, 442, or 673.
[0266] Embodiment 6: The composition of embodiment 1, 2, 3, 4 or 5, wherein the ZFP domain comprises a DNA-binding recognition helix sequences as shown in a single row of Tables 1 and 3.
[0267] Embodiment 7: A composition comprising an AAV capsid polypeptide, comprising: a) a VP1 protein comprising the sequence of amino acids set forth in SEQ ID NO: 1498; b) a VP2 protein comprising the sequence of amino acids set forth in SEQ ID NO: 1499; c) a VP3 protein comprising the sequence of amino acids set forth in SEQ ID NO: 1500, or d) a sequence having at least or about 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity to the VP1, VP2 or VP3 proteins in a)-c), and 99 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3.
[0268] Embodiment 8: The composition of embodiment 7, wherein the fusion protein comprises a ZFR shown in Tables 2 and 4.
[0269] Embodiment 9: The composition of any one of embodiments 1-8, wherein the capsid crosses the blood brain barrier to a greater extent compared to an AAV vector comprising a capsid polypeptide comprising the sequence of amino acids set forth in SEQ ID NO: 1497.
[0270] Embodiment 10: The composition of any one of embodiments 1-9, wherein the capsid crosses the blood brain barrier by at least or about 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%, 200%, 300%, 400% or 500% greater extent compared to an AAV vector comprising a capsid polypeptide comprising the sequence of amino acids set forth in SEQ ID NO: 1497.
[0271] Embodiment 11: A composition of any one of embodiments 1-10 wherein the capsid encapsulates the fusion protein.
[0272] Embodiment 12: A composition comprising a vector comprising a nucleic acid molecule encoding SEQ ID NOS: 1498, 1499, or 1500 and an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3.
[0273] Embodiment 13: A composition comprising a vector comprising a nucleic acid molecule encoding SEQ ID Nos: 1498, 1499, or 1500 and an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the fusion protein comprises a ZFR shown in Tables 2 and 4.
[0274] Embodiment 14: A host cell, comprising the composition of any one of embodiments 1-13.
[0275] Embodiment 15: A method for introducing a heterologous coding sequence into a host cell, comprising contacting a host cell with the composition of any one of embodiments 1-13. 100 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0276] Embodiment 16: The method of embodiment 15, wherein the host cell is a human brain cell.
[0277] Embodiment 17: The method of embodiment 15 or 16, wherein contacting a host cell with the composition comprises administering the composition to a subject.
[0278] Embodiment 18: The method of embodiment 17, wherein administration of the composition to the subject effects treatment of a Tauopathy-associated disease or condition.
[0279] Embodiment 19: The method of any one of embodiments 15-19, wherein the method is in vitro or ex vivo.
[0280] Embodiment 20: Use of the composition of any one of claims 1-13 for the preparation of a medicament for treating a Tauopathy-associated disease or condition.
[0281] Non-limiting exemplary embodiments of the disclosure are further described below.
[0282] Embodiment 1: Use of a composition comprising an AAV capsid polypeptide, comprising a peptide modification relative to the AAV9 capsid polypeptide set forth in SEQ ID NO: 1497, wherein: the peptide modification is in variable region 8 (VRVIII) and; the peptide modification comprises a 9 amino acid insertion relative to the AAV9 capsid polypeptide set forth in SEQ ID NO: 1497, and comprises the sequence set forth in any one of SEQ ID Nos:263-1495; and the portion of the capsid polypeptide that is not the peptide modification comprises at least or about 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to SEQ ID NO: 1497 and expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3 for inhibiting expression of PrP in a human brain cell and / or treating a Tauopathy in a patient.
[0283] Embodiment 2: Use of the composition of embodiment 1, wherein the peptide modification is in the region of the capsid polypeptide spanning positions 450 and 600, with numbering relative to SEQ ID NO: 1497.
[0284] Embodiment 3: Use of the composition of embodiment 1, wherein the peptide modification is in the region of the capsid polypeptide spanning positions 587 and 590, with numbering relative to SEQ ID NO: 1497 or wherein the peptide modification is in the region of the capsid polypeptide spanning positions 384 and 385, with numbering relative to SEQ ID NO: 1497. 101 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0285] Embodiment 4: Use of the composition of embodiment 1, 2 or 3, wherein the peptide modification comprises a 9-16 amino acid insertion to the AAV9 capsid polypeptide set forth in SEQ ID NO: 1497.
[0286] Embodiment 5: Use of the composition of embodiment 1, 2, 3 or 4, wherein the peptide modification comprises an amino acid insertion of SEQ ID NO: 333, 417, 442, or 673.
[0287] Embodiment 6: Use of the composition of embodiment 1, 2, 3, 4 or 5, wherein the fusion protein comprises a ZFR shown in Tables 2 and 4.
[0288] Embodiment 7: Use of a composition comprising an AAV capsid polypeptide, comprising: a) a VP1 protein comprising the sequence of amino acids set forth in SEQ ID NO: 1498; b) a VP2 protein comprising the sequence of amino acids set forth in SEQ ID NO:1499; c) a VP3 protein comprising the sequence of amino acids set forth in SEQ ID NO: 1500, or d) a sequence having at least or about 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity to the VP1, VP2 or VP3 proteins in a)-c), and an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3 for inhibiting expression of PrP in a human brain cell and / or treating a Tauopathy in a patient.
[0289] Embodiment 8: Use of the composition of embodiment 7, wherein the fusion protein comprises a ZFR shown in Tables 2 and 4.
[0290] Embodiment 9: Use of the composition of any one of embodiments 1-8, wherein the capsid crosses the blood brain barrier to a greater extent compared to an AAV vector comprising a capsid polypeptide comprising the sequence of amino acids set forth in SEQ ID NO: 1497.
[0291] Embodiment 10: Use of the composition of any one of embodiments 1-9, wherein the capsid crosses the blood brain barrier by at least or about 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 100%, 200%, 300%, 400% or 500% greater extent compared to an AAV vector comprising a capsid polypeptide comprising the sequence of amino acids set forth in SEQ ID NO: 1497.
[0292] Embodiment 11: Use of the composition of any one of embodiments 1-10 wherein the capsid encapsulates the fusion protein. 102 4897-1701-6871Attorney Docket P.0277.WO 91355.11516
[0293] Embodiment 12: Use of a composition comprising a vector comprising a nucleic acid encoding SEQ ID NOS: 1498, 1499, or 1500 and an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the ZFP domain comprises DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3.
[0294] Embodiment 13: Use of a composition comprising a vector comprising a nucleic acid encoding SEQ ID NOS: 1498, 1499, or 1500 and an expression construct encoding a fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a human PRNP gene wherein the fusion protein comprising a ZFR shown in Tables 2 and 4.
[0295] Embodiment 14: Use of the composition of any one of embodiments 1-13, wherein the host cell is in one or more brain region comprising, consisting, or consisting essentially of motor cortex, cortical regions, the entorhinal cortex, the hippocampus, the cerebellum, the globus pallidus, the thalamus, the midbrain, the caudate, the putamen, the substantia nigra, the pons, the medulla and combinations thereof.
[0296] Embodiment 15: Use of the composition of any one of embodiments 1-14, wherein the host cell is one or more human brain cell selected from the group comprising, consisting, or consisting essentially of a motor neuron, a sensory neuron, a dopaminergic neuron, a cholinergic neuron, a glutamatergic neuron, a GABAergic neuron, or a serotonergic neuron, a glial cell, optionally an oligodendrocyte, an astrocyte, a pericyte, a Schwann cell, or a microglial cell, an ependymal cell, a neuroepithelial cell, or combinations thereof.
[0297] Embodiment 16: Use of the composition of any one of embodiments 1-15, wherein the composition is administered to a subject via an intravenous, intrathecal, intracerebral, intracerebroventricular, intra-cisternal magna, intrahippocampal, intrathalamic, or intraparenchymal route.
[0298] Embodiment 17: Use of the composition of any one of embodiments 1-16, wherein the composition is administered to a subject at a 1E14 vg / kg dose or a dose between 1E12 vg / kg to 5E14 vg / kg.
[0299] Embodiment 18: Use of the composition of any one of embodiments 1-17, wherein the method is in vitro or ex vivo. 103 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 EXAMPLES Example 1: Screening of Anti-PRNP ZFP-Rs
[0300] In order to identify human specific ZFP-Rs that repress the expression of human PRNP gene, a library of ZFP-Rs were designed targeting human PRNP spanning from 500 bp upstream to 1350 bp downstream of the Transcription Start Site (TSS) and screened for PRNP repression activity. In this study, a KRAB domain sequence DAKSLTAWSR TLVTFKDVFV DFTREEWKLL DTAQQIVYRN VMLENYKNLV SLGYQLTKPD VILRLEKGEE PWLVEREIHQ ETHPDSETAF EIKSSV (SEQ ID NO: 262) was used as the transcription repressor and fused to the C-terminus of the ZFP domain.
[0301] The screening for human ZFP-Rs was performed in the SK-N-MC human neuroepithelial cell line. SK-N-MC cells express the PRNP gene at high levels and are thus appropriate for testing of ZFP-Rs that reduce PRNP expression. Each cell line was cultured in tissue culture flasks until confluency. The cells were plated on 96-well plates and were resuspended in Amaxa®SF solution. The cells were then mixed with ZFP-R mRNA 6 doses (3, 10, 30, 100, 300, and 1000 ng) and transferred to Amaxa®shuttle plate wells. The cells were transfected using the Amaxa®Nucleofector®device (Lonza; program CM-137). Eagle’s MEM cell media was added to each well of the plate. The cells were transferred to a 96-well tissue culture plate and incubated at 37oC for 20 hours. The cells were then lysed and reverse transcription was performed using the C2CT kit following the manufacturer’s instructions. TaqMan quantitative polymerase chain reaction (qPCR) was used to measure the expression levels of PRNP, which were normalized to the geometric mean of the expression levels of the housekeeping genes ATP5B and EIF4A2. A transfection with ZFP 65976 that is known not to target PRNP was used as a negative control. The maximum repression achieved was >99.8%, but ZFP-Rs were also identified that repressed PRNP to a lesser degree (e.g., about 90%, about 75%, or about 50% at the highest dose or in some instances no repression). FIG.2 shows the screening data for exemplary human ZFP-Rs. Example 2: AAV Production for Exemplary ZFP-Rs
[0302] Recombinant adeno-associated virus (rAAV) vectors were generated by the triple transfection method. Briefly, HEK293 cells were plated in ten-layer CellSTACK®chambers (Corning, Acton, MA) and grown for three days to a density of 80%. Three plasmids – (i) an AAV Helper plasmid containing the Rep and Cap genes, (ii) an Adenovirus Helper plasmid containing the adenovirus helper genes, and (iii) a transgene plasmid containing the sequence to be packaged flanked by AAV2 inverted terminal repeats were transfected into the cells using calcium phosphate. After three days, the cells were harvested. The cells were then 104 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 lysed by three rounds of freeze / thaw and the cell debris was removed by centrifugation. The rAAV was precipitated using polyethylene glycol. After resuspension, the virus was purified by ultracentrifugation overnight on a cesium chloride gradient. The virus was formulated by dialysis and then filter-sterilized. After adjusting the titer (virus genomes / ml) of all AAV batches by dilution with PBS + 0.001% Pluronic F-68, the AAVs were aliquoted to single use doses and stored at -80°C until use. After thawing, no refreezing was done. Example 3: Human iPSC-Derived Neuron Culture and ZFP-R AAV Infection
[0303] Human iPSC-derived GABAergic neurons were purchased from Cellular Dynamics International and plated onto poly-L-ornithine- and laminin-coated 96-well plates at a density of 40,000 cells per well and maintained according to the manufacturer’s instructions. The cells were infected with AAV expressing the desired ZFP-R at the indicated MOI 48 hours after plating and maintained for up to 31 days (50-75% media changes performed every 3-5 days). The cells were harvested at the end of the experimental period, RNA was isolated, and RT-qPCR was performed for gene expression analysis. FIG.3 shows PRNP expression levels in iPSC-derived neuronal culture following AAV ZFP-R delivery. For microarray analysis, the cells were transduced with 1E5 VGs / cell 48 hours after plating and harvested 19 days after viral transduction. Example 4: Primary Mouse Neuron Culture and ZFP-R AAV Infection
[0304] Primary mouse cortical neurons (MCNs) were purchased from Gibco. Cells were plated onto poly-D-lysine (PDL)-coated 24-well plates at 300,000 cells / well, and maintained according to the manufacturer’s specifications using Gibco Neurobasal Medium containing GlutaMAX™ I supplement, B27 supplement, and penicillin / streptomycin.48 hours after plating (at DIV2), 30,000 cells / well in 24-well plates were infected with AAV ZFP-R at 3E5 VGs / cell to ensure a 100% transduction rate and harvested 7 days later (at DIV9; 50% media exchanges performed every 3-4 days) followed by RNA isolation and microarray analysis. Example 5: Off-Target Evaluation of Anti-PRNP ZFP-Rs
[0305] To evaluate the potential off-target impact of the ZFP-Rs on global gene expression, microarray analysis (Clariom S Array) was performed on total RNA isolated from human iPSC-derived neurons and primary mouse cortical neurons treated with AAVs encoding representative ZFRs. Microarray analyses were performed following the manufacturer’s protocol (Thermo Fisher Scientific), and the assay results were analyzed using TAC4 software.
[0306] FIG.3 shows microarray results of ZFP-Rs targeting human PRNP gene in human iPSC-derived neurons transduced with ZFP-Rs. FIG.3 shows the microarray results of 105 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 ZFP-Rs targeting human PRNP and their activity in primary mouse cortical neurons. Binding sites selected for human PRNP-targeting ZFP-R do not share homology with mouse Prnp gene locus, thus no prion-specific repression in mouse cortical neurons is expected. Example 6: In Vivo Tolerability Study in Wildtype Mice
[0307] The tolerability of introducing AAV.PHP.B packaged ZFP-Rs targeting the human PRNP gene in wildtype C57BL / 6 mouse was evaluated in the brain via RT-qPCR analysis on neuroinflammatory (Gfap, Iba1) and neuronal (NeuN, Tubb3) markers. Mice were euthanized 3 weeks after intravenously delivered with vehicle (formulation buffer) or test articles (AAV.PHP.B.ZFP-Rs). To harvest the tissue for subsequent analysis, mice were perfused with PBS, and each micro-dissected brain tissue was treated with RNALater for 24 hours, then the RNALater was removed, and tissue were flash-frozen in liquid nitrogen and maintained at -80°C until analysis. Reverse transcription was performed using the High- Capacity RT Kit (Thermo Fisher Scientific) kit following the manufacturer’s instructions. TaqMan quantitative polymerase chain reaction (qPCR) was used to measure the expression levels of the ZFP-R, Prnp, Gfap, Iba1, Rbfox3, and Tubb3. Gene expression levels were normalized to the mean of the expression levels of the housekeeping genes Atp5b and Eif4a2, the scaled to the average value from the Vehicle -treated animals. FIG. 4A shows the RT- qPCR result from the brainstem. Most ZFP-Rs demonstrated minimal or no neuroinflammatory changes nor loss of neurons, except 89891, relative to the control group (vehicle treatment). A graph of body weight during the study shows ZFP-R 89891 treatment resulted in significant body weight loss, necessitating preterminal euthanasia (see FIG.4B). As expected, the human PRNP-targeting ZFP-Rs had no activity on reducing expression of mouse PRNP gene. Example 7: In Vivo Pharmacology Study in Transgenic Mice
[0308] The pharmacological activity of AAV.PHP.B packaged ZFP-Rs targeting the human PRNP gene was tested in Tg25109 transgenic mice, which harbor the full length human PRNP transgene on the background of an endogenous mouse Prnp knock out. Mice were euthanized eight weeks after AAV administration. To harvest the tissue for subsequent analysis, mice were perfused with PBS, and each micro-dissected brain region was treated with RNALater for 24 hours, then the RNALater was removed, and tissue were flash-frozen in liquid nitrogen and maintained at -80°C until analysis. Reverse transcription was performed using the High-Capacity RT Kit (Thermo Fisher Scientific) kit following the manufacturer’s instructions. TaqMan quantitative polymerase chain reaction (qPCR) was used to measure the expression levels of the ZFP-R, human PRNP, Gfap, Iba1, Rbfox3, and Tubb3. Gene expression levels (human PRNP, Gfap, Iba1, Rbfox3, and Tubb3) were normalized to the mean of the 106 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 expression levels of the housekeeping genes Atp5b and Eif4a2 and scaled to the average value of the vehicle-treated animals. A clear dose-dependent (1e13 vs. 1e14 vg / kg) expression of ZFP-R (at the absolute level) and repression of PRNP mRNA expression was revealed by RT- qPCR analysis from various dissected brain regions at the bulk level (FIG.5). At the high dose, all ZFP-Rs showed 40-80% PRNP repression depending on the brain regions.
[0309] Neuroinflammatory (Gfap, Iba1) and neuronal loss (NeuN) marker expression was also evaluated in the brain (FIG. 6). The results are consistent with the tolerability study using wildtype mice, with no ZFP-Rs showing severe neuroinflammatory signs nor neuron loss in the brain.
[0310] Brain hemispheres were removed (including the olfactory bulb and cerebellum) from all mice and placed in 10% NBF at RT for 22-24hr. After fixation, brain hemispheres were transferred to 0.01M PBS + 0.02% Sodium Azide, pH 7.4 ± 0.2 at 2-8֯C. Brain hemispheres were then dissected into 6 coronal slabs (~2mm) and embedded into paraffin blocks and sectioned for multiplexed RNAscope-immunohistochemistry single cell analysis. A multiplexed approach combining in situ hybridization (ISH) to detect mRNA transcripts (i.e. ZFP-R and human PRNP) and immunohistochemistry (IHC) to label putative neurons (NeuN) was used. AAV-PHP.B-hSYN1-ZFP-Rs achieved >90% PRNP repression in neurons of thalamus at 1e14 vg / kg dose (FIG.7A and 7B).
[0311] Prion protein (PrP) expression was also evaluated from microdissected brain tissue and cerebrospinal fluid (FIG.8). Tissue from mice was flash frozen at necropsy. Tissues were lysed and homogenized with MP Biomedicals™ Lysing Matrix D 96-well tube assay. Total protein extracted from each brain tissue lysate was quantified by Bicinchoninic acid (BCA) assay Protein Assay Kit. Levels of PrP protein from brain tissues and CSF were quantified using a biotinylated anti-prion antibody and MSD GOLD 96-Well Small Spot Streptavidin Plate. PrP values were largely reduced (~80% in brainstem and ~75% in CSF) in ZFP-R treated animals at the 1e14 vg / kg dose when compared to the vehicle group. Example 8: In Vivo Evaluation of Efficacy in Prion Disease Mouse Model with Mouse Surrogate ZFP-Rs that Target Mouse Prnp Gene
[0312] To evaluate the potential benefit of using a ZFP-R in an in vivo setting of prion disease, wildtype mice were intracerebrally injected with a misfolded strain (Rocky Mountain Laboratory; RML) of PrPScprions. At either 60 or 122 days post inoculation (dpi), mice were then intravenously injected with a single 1e14 vg / kg dose of AAV.PHP.B encoding mouse Prnp ZFP-Rs or control treatments. Two ZFP-Rs were tested (ZFP-R 81193 or ZFP-R 81200, see, WO2021067864A1 which is hereby incorporated by reference in its entirety) that 107 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 repress the mouse Prnp gene in primary mouse cortical neurons >90% compared to control treatment. Control groups were injected either with vehicle or a 1e14 vg / kg dose of AAV.PHP.B encoding GFP. The ZFP-R and GFP transgenes were expressed from a neuron- specific Synapsin 1 promoter. One additional control group was included that was not inoculated with PrPScor injected with a test article. Mice were monitored for body weight and general cageside behavior. Plasma neurofilament light chain (NfL) levels were assessed monthly. Any mouse that lost 20% body weight or showed predetermined signs of suffering was humanely euthanized. The data show that mice treated with ZFP-Rs had a significant extension in survival at both ZFP-R treatment timepoints compared to the control treatments. This correlated with increases and or stabilization of body weight, as well as a stabilization of plasma NfL levels for several months to over one year. (FIG.9). Example 9: Widespread Prion repression in the nonhuman primate brain following ZFP-R delivery using the engineered BBB penetrant capsid STAC-BBB
[0313] Adult cynomolgus macaques were injected with a single 2e13 vg / kg dose of an engineered AAV capsid that crosses the blood brain barrier in nonhuman primates. The AAV capsid delivered a ZFP-R targeting the primate PRNP gene. The ZFP-R was expressed from a ubiquitous CAG promoter. Animals were euthanized 19 days after test article administration. Brains were sectioned into 4mm coronal slices. For each animal, a total of 220 punch biopsies (2mm in diameter) were collected from across 35 brain regions (regions indicated on the x axis) for RNA analysis. Brain punches were incubated in RNALater for 24 hours at 4 degrees. The RNALater was removed and the punches were flash-frozen in liquid nitrogen and maintained at -80°C. Reverse transcription was performed using the High- Capacity RT Kit (Thermo Fisher Scientific) kit following the manufacturer’s instructions. TaqMan quantitative polymerase chain reaction (qPCR) was used to measure the expression levels of the nonhuman primate PRNP. Gene expression levels were normalized to the mean of the expression levels of the housekeeping genes ATP5B and EIF4A2. The normalized PRNP value for each punch for a given brain region and location is scaled to the average value of the control-treated animals. The average of these scaled, normalized PRNP values for each region is shown for each animal. For each region, at least 2 punches were analyzed per animal. The data show that in the 35 brain regions assessed, PRNP levels were reduced compared to the control-treated animals. (FIG.10). 108 4897-1701-6871
Claims
Attorney Docket P.0277.WO 91355.11516 CLAIMS 1. A fusion protein comprising a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a mammalian prion protein gene (PRNP gene).
2. The fusion protein of claim 1, wherein the target region is within about 1 kb or 500 bp of a transcription start site (TSS) in the PRNP gene.
3. The fusion protein of claim 1 or 2, wherein the PRNP gene is a human or non-human primate PRNP gene.
4. The fusion protein of any one of the preceding claims, wherein the ZFP domain comprises five or six zinc fingers and optionally represses expression of the PRNP gene by at least about 40%, 75%, 90%, 95%, or 99% with minimal to no detectable off-target binding or activity.
5. The fusion protein of any one of the preceding claims, wherein the transcription repressor domain comprises a KRAB domain, optionally amino acid sequence of KOX1.
6. The fusion protein of any one of the preceding claims, wherein the ZFP domain is linked to the transcription repressor domain or the epigenetic silencing domain through a peptide linker.
7. The fusion protein of any one of the preceding claims, wherein the ZFP domain comprises a DNA-binding recognition helix sequence as shown in Tables 1 and 3.
8. The fusion protein of any one of the preceding claims, wherein the ZFP domain comprises the DNA-binding recognition helix sequences as shown in a single row in Tables 1 and 3.
9. The fusion protein of any one of the preceding claims, the ZFP domain comprising, consisting, or consisting essentially of a DNA-binding recognition helix sequences linked as 109 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 shown in Tables 2 and 4.
10. The fusion protein of any one of the preceding claims, the fusion protein comprising, consisting, or consisting essentially of a sequence shown in Tables 2 and 4.
11. The fusion protein of any one of the preceding claims, wherein the ZFP domain binds to a Target Sequence shown in Tables 1 and 3.
12. A nucleic acid construct comprising a coding sequence for the fusion protein of any one of claims 1-11, wherein the coding sequence is linked operably to a transcription regulatory element.
13. The nucleic acid construct of claim 12, wherein the transcription regulatory element is a mammalian promoter that is constitutively active or inducible in a brain cell, and wherein the promoter is optionally a human synapsin I promoter.
14. A host cell comprising the nucleic acid construct of claim 12 or 13.
15. The host cell of claim 14, wherein the host cell is a human cell.
16. The host cell of claim 14, wherein the host cell is a brain cell or a pluripotent stem cell, wherein the stem cell is optionally an embryonic stem cell or an inducible pluripotent stem cell (iPSC).
17. A recombinant virus comprising the nucleic acid construct of claim 12 or 13.
18. The recombinant virus of claim 17, wherein the recombinant virus is recombinant adeno-associated virus (AAV), optionally of serotype AAV1, AAV2, AAV3B, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV11, AAVrh10, AAVrh39, AAVrh74, or STAC- BBB, and natural or engineered derivatives thereof.
19. A pharmaceutical composition comprising the nucleic acid construct of claim 12 or 13, or the recombinant virus of claim 17 or 18, and a pharmaceutically acceptable carrier. 110 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 20. A method of inhibiting expression of prion protein (PrP) in a mammalian brain cell, comprising introducing into the cell a fusion protein of any one of claims 1-11, optionally through introduction of a nucleic acid construct of any one of claim 12 or 13 or the recombinant virus of claim 14 or 15, thereby inhibiting the expression of PrP in the cell.
21. The method of claim 20, wherein the mammalian brain cell is a human, non-human primate, rodent, or murine cell.
22. The method of claim 20 or 21, wherein the mammalian brain cell is a neuron, a glial cell, an ependymal cell, or a neuroepithelial cell.
23. The method of any one of claims 20-22, wherein the cell is in the brain of a patient suffering from or at risk of developing prion disease, wherein the prion disease is optionally familial, sporadic, or acquired prion disease.
24. The method of claim 23, wherein the prion disease is Creutzfeldt-Jakob Disease (CJD), sporadic CJD, variant CJD, Gerstmann-Straussler-Scheinker Syndrome (GSS), Fatal Familial Insomnia (FFI), sporadic Fatal Insomnia (sFI), Kuru, or variably protease-sensitive prionopathy (VPSPr).
25. The method of any one of claims 20-24, comprising introducing into the cell the recombinant virus of claim 17 or 18.
26. A method of treating or preventing a neurodegenerative disease in a patient, comprising administering to the patient a recombinant AAV of claim 18.
27. The method of claim 26, wherein the neurodegenerative disease is prion disease, optionally wherein the prion disease is familial, sporadic, or acquired prion disease.
28. The method of claim 26 or 27, wherein the AAV is introduced to the patient via intravenous, intrathecal, intracerebroventrical, intra-cisternal magna, or intrathalamic injection, or injection into any cerebral region. 111 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 29. The method of claim 27 or 28, wherein the prion disease is Creutzfeldt-Jakob Disease (CJD), sporadic CJD, variant CJD, Gerstmann-Straussler-Scheinker Syndrome (GSS), Fatal Familial Insomnia (FFI), sporadic Fatal Insomnia (sFI), Kuru, or variably protease-sensitive prionopathy (VPSPr).
30. A fusion protein of any one of claims 1-11, a nucleic acid construct of claim 12 or 13, or a recombinant virus of claim 17 or 18 for use in the method of any one of claims 20-29.
31. Use of a fusion protein of any one of claims 1-11, a nucleic acid construct of claim 9 or 10, or a recombinant virus of claim 17 or 18 for the manufacture of a medicament for treating a patient in the method of any one of claims 20-29.
32. A composition comprising: 1) an adeno-associated virus (AAV) capsid protein comprising an amino acid sequence, wherein the amino acid sequence comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the amino acid sequence set forth in any one of SEQ ID NOS: 333, 417, 442, or 673; and 2) an expression construct comprising a coding sequence for a fusion protein, wherein the fusion protein comprises a zinc finger protein (ZFP) domain and a transcription repressor domain or epigenetic silencing domain, wherein the ZFP domain binds to a target region of a mammalian prion protein gene (PRNP gene).
33. The composition of claim 32, wherein the AAV capsid protein encapsulates the expression construct.
34. The composition of any one of the preceding claims 32-33, wherein the amino acid sequence comprises at least 3, 4, 5, 6, 7, 8, or 9 contiguous amino acids of the amino acid sequence set forth in SEQ ID NO: 333 inserted into SEQ ID. NO: 1497, optionally wherein the insertion is between amino acids 587 and 590.
35. The composition of any one of the preceding claims 32-34, the AAV capsid protein comprising one or more amino acid sequences selected from the group comprising, consisting, or consisting essentially of SEQ ID NO: 1498, 1499, or 1500.
36. The composition of any one of the preceding claims 32-35, the AAV capsid protein comprising a VP1 protein comprising a sequence of amino acids set forth in SEQ ID NO: 112 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 1498; a VP2 protein comprising the sequence of amino acids set forth in SEQ ID NO: 1499; and a VP3 protein comprising the sequence of amino acids set forth in SEQ ID NO: 1500.
37. The composition of any one of the preceding claims 32-36, the AAV capsid protein comprising the amino acid sequence having at least 80%, 85%, 90%, 95%, 99% or 100% identity to SEQ ID NO: 1498.
38. The composition of any one of the preceding claims 32-37, the AAV capsid protein comprising the amino acid sequence having at least 80%, 85%, 90%, 95%, 99% or 100% identity to SEQ ID NO: 1499 or to SEQ ID NO: 1500.
39. The composition of any one of the preceding claims 32-38, wherein the target region is within about 1 kb or 500 bp of a transcription start site (TSS) in the PRNP gene.
40. The composition of any one of the preceding claims 32-39, wherein the fusion protein represses expression of the PRNP gene by at least about 40%, 75%, 90%, 95%, or 99% with no or minimal detectable off-target binding or activity.
41. The composition of any one of the preceding claims 32-40, the transcription repressor domain comprising a KRAB domain, wherein the KRAB domain optionally is from a human KOX1 protein.
42. The composition of any one of the preceding claims 32-41, the ZFP domain comprising, consisting, or consisting essentially of a DNA-binding recognition helix sequence as shown in Tables 1 and 3.
43. The composition of any one of the preceding claims 32-41, the ZFP domain comprising, consisting, or consisting essentially of DNA-binding recognition helix sequences shown in a single row in Tables 1 and 3.
44. The composition of any one of the preceding claims 32-43, the ZFP domain comprising, consisting, or consisting essentially of a DNA-binding recognition helix sequences linked as shown in Tables 2 and 4. 113 4897-1701-6871Attorney Docket P.0277.WO 91355.11516 45. The composition of any one of the preceding claims 32-44, the ZFP domain binds to a Target Sequence shown in Tables 1 and 3.
46. The composition of any one of the preceding claims 32-45, the fusion protein comprising, consisting, or consisting essentially of a sequence shown in Tables 2 and 4. 114 4897-1701-6871