Artificial expression constructs for selectively regulating gene expression in interneurons
The concatemerized I56i enhancer elements address the limitations of rAAVs by achieving rapid and robust transgene expression in GABAergic interneurons, enhancing research and therapeutic potential.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-10-24
- Publication Date
- 2026-03-13
AI Technical Summary
Existing gene delivery systems, particularly recombinant adeno-associated viruses (rAAVs), face limitations in packaging capabilities and often result in weak gene expression, especially for long gene regulatory and expression elements, which hampers their effectiveness in research and therapeutic applications for GABAergic interneurons.
The use of engineered enhancer elements, specifically a concatemerized core of the I56i enhancer, such as the 3x human/mouse I56i core (3xhl56iCore), enhances rapid and robust transgene expression in forebrain GABAergic interneurons, providing more space for cargo genes and overcoming the limitations of traditional rAAVs.
The engineered enhancer elements achieve significantly higher and faster transgene expression in GABAergic interneurons of various species, including humans and non-human primates, enabling more effective research and therapeutic applications.
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Abstract
Description
[Technical Field]
[0001] Cross-reference of related applications This application claims priority to U.S. Provisional Patent Application No. 62 / 742,835 filed October 8, 2018; No. 62 / 749,012 filed October 22, 2018; and No. 62 / 810,281 filed February 25, 2019, each of which is incorporated herein by reference in the same manner as it is fully described herein.
[0002] Statement on federally supported research or development This invention was made with government support under grant RF1MH114126 from the National Institutes of Health. The government has certain rights in this invention.
[0003] Sequence listing reference The sequence listing relating to this application is provided in text format instead of as a paper copy and is incorporated herein by reference. The name of the text file containing the sequence listing is A166-0006PCT_ST25.txt. The text file is 379KB in size, was created on October 3, 2019, and transmitted electronically via EFS-Web.
[0004] This disclosure provides artificial expression constructs for selectively regulating gene expression in selected central nervous system cell types. These artificial expression constructs can be used to selectively express synthetic genes or modify gene expression in GABAergic forebrain interneurons. [Background technology]
[0005] GABAergic interneurons play a crucial role in the processing and development of the central nervous system. Dysfunction of these cells can contribute to numerous neuropsychiatric disorders, including schizophrenia and autism. GABAergic interneurons also play a role in epilepsy.
[0006] Cell-type or cell-class specific gene delivery using non-pathogenic recombinant adeno-associated viruses (rAAVs) is showing increasing support for the treatment of a wide range of diseases. Including one or more cis-acting DNA regulatory elements, such as specific promoters or enhancers, in rAAVs has been beneficial for providing specificity of expression within specific target cells, including certain cell types or cell classes in the brain.
[0007] Dimidschstein and colleagues (Nat Neurosci 19(12):1743-1749, 2016) developed an rAAV that enables highly selective gene expression in GABAergic interneurons in the telencephalon. This rAAV contains a 527 bp enhancer sequence (called mI56i or mDlx) from the intergenetic space between the distal res-homeobox 5 and 6 genes (Dlx5 / 6), which is spontaneously expressed by forebrain GABAergic interneurons during embryonic development. The construct by Dimidschstein et al. is available on Addgene under ID number 83900 (enhancer drives eGFP expression). Additional constructs that drive various transgenes using mouse or human I56i enhancers are available through Addgene, for example, plasmid ID numbers 83899 (driving GCaMP6f expression), 83898 (driving ChR2 expression), 83895 (driving synthetic eGFP expression), 89897 (driving hM3DREADD expression), 83896 (driving hM4Di expression), and 83894 (driving synthetic tdTomato expression). See also U.S. Patent Application Publication 2018 / 0078658.
[0008] Furthermore, the mI56i enhancer has previously been used to reliably target the reporter gene in a pattern very similar to the normal pattern of Dlx5 / 6 expression during embryonic development (Zerucha et al., J Neuroscience 20:709-721, 2000; Stuhmer et al., Cerebral Cortex 12:75-85, 2002; Stenman et al., J Neuroscience 23:167-174, 2003; Monory et al., Neuron. 51:455-455, 2006; Miyoshi et al., J Neuroscience 30:1532-1594, 2010).
[0009] One significant drawback of using rAAV as a gene delivery system is the limited packaging capabilities of AAV. This is particularly restrictive for including long gene regulatory and expression elements. Furthermore, many existing interneuron-specific rAAV expression constructs can result in weak gene expression, reducing their usefulness in research and therapeutic applications. [Prior art documents] [Patent Documents]
[0010] [Patent Document 1] U.S. Patent Application Publication No. 2018 / 0078658 [Non-patent literature]
[0011] [Non-Patent Document 1] Dimidschstein et al., Nat Neurosci 19(12):1743-1749,2016 [Non-Patent Document 2] Zerucha et al., J Neuroscience 20:709-721,2000 [Non-Patent Document 3] Stuhmer et al.,Cerebral Cortex 12:75-85,2002
Non-Patent Document 4
Non-Patent Document 5
Non-Patent Document 6
Summary of the Invention
Means for Solving the Problems
[0012] The present disclosure overcomes the disadvantages of the prior art by providing engineered enhancer elements that result in rapid and robust cell-specific expression of heterologous coding sequences in forebrain GABAergic interneurons.
[0013] In certain embodiments, the artificial enhancer element comprises a concatemerized core of the I56i enhancer. These artificial enhancer elements result in a more rapid onset of transgene expression compared to a single full-length native (natural) enhancer.
[0014] In certain embodiments, the I56i enhancer core can be derived from, for example, the human, mouse or zebrafish I56i enhancer (SEQ ID NOs: 1, 4 and 5, respectively). The selected core of the I56i enhancer can include SEQ ID NO: 2 (a core shared by humans and mice) or SEQ ID NO: 6 (zebrafish core). In certain embodiments, the core is concatemerized. For example, SEQ ID NO: 3 provides a 3-copy concatemer of the selected human / mouse I56i core and SEQ ID NO: 7 provides a 3-copy concatemer of the selected zebrafish I56i core.
[0015] Particularly interestingly, the synthetic 3x human / mouse core (referred to herein as 3xhl56iCore; SEQ ID NO: 3), despite being a 3x concatemer, is shorter than the original full-length enhancer sequence reported by Dimidschstein et al. (Nat Neurosci 19(12):1743-1749, 2016). Thus, this concatenated core provides more sites for cargo genes linked to the enhancer, which is highly desirable. Furthermore, the peak level of transgene expression driven by the 3xhI56iCore enhancer is much greater than simply three times the level of the original single full-length original enhancer.
[0016] The engineered concatenated I56i core disclosed herein enables a new and improved gene delivery vector that is particularly useful for achieving selective transgene expression in forebrain GABAergic interneurons of diverse animal species, including humans.
[0017] Many of the drawings presented herein are better understood as color drawings. The applicant considers the color versions of the drawings to be part of the original application and reserves the right to present color images of the drawings in later procedures.
Brief Description of the Drawings
[0018] [Figure 1]The virus CN1244 / PHP.eB. 1011 genome copies are delivered intravenously (IV) to adult mice. PHP.eB encodes a capsid derived from AAV9, enabling efficient AAV translocation across the mouse blood-brain barrier and allowing AAV vector delivery in a brain-wide manner. This capsid differs from AAV9 in that the amino acid SAQA (SEQ ID NO: 98), which begins at residue 586, is replaced with SDGTLAVPFKA (SEQ ID NO: 33). The Gad2-T2A-nls-mCherry reporter exhibits behavior in almost all inhibitory neurons in the mouse brain (shown here in the V1 visual cortex), and the delivered CN1244 / PHP.eB virus drives specific SYFP2 reporter activity in forebrain GABAergic neurons. [Figure 2] Figures 2A and 2B. Comparison of CN1244 vs. CN1389 vs. CN1390. (Figure 2A) Schematic diagrams of the three vector constructs, CN1390, CN1389 and CN1244 (CN1203 scAAV). Key: hI56i - full-length human enhancer (black box; SEQ ID NO: 1); selected hI56i core (gray box; SEQ ID NO: 2) and 3× concatemer of the core (gray box; SEQ ID NO: 3); minBG - minimal β-globin promoter; SYFP2 - ultra-yellow fluorescent protein 2; WPRE3 - woodchuck hepatitis virus post-transcriptional regulatory element 3; BGHpA - bovine growth hormone polyA sequence; L-ITR and R-ITR - adeno-associated virus-2 (AAV2) reverse terminal repeats (ITRs). (Figure 2B) Fluorography images showing the relative expression of SYFP2 from AAV vector constructs CN1244, CN1389, and CN1390. Adult wild-type mice were injected postorbitally with 1E+11 genomic copies of the virus shown. Animals were maintained for 3–4 weeks, then euthanized, brains extracted and sliced, and subsequently subjected to live tissue epifluorescence imaging for innate fluorescence. Exposure times were matched to allow direct comparison of transgene expression levels. The first three panels are 500 ms exposure images for each of the shown constructs, and the fourth panel is a shorter (50 ms) exposure image for CN1390. CN1390, with its manipulated concatemerized core, showed potent and more rapid transgene expression. [Figure 3] CN1390 retains cell type specificity for the pan-GABAergic neuron population. Cortical / hippocampal brain section cultures were prepared from P5-10 Gad2-IRES-Cre het / Ai75 het animals. After 1 hour of culture, CN1390 virus suspension was pipetteed onto the section surface to transduce brain cell types. Spontaneous fluorescence was imaged in green and red channels using a Nikon inverted microscope at 10DIV / 10DPI. 10DIV / 10DPI. DIV: days in vitro, DPI: days after infection. [Figure 4] Figures 4A and 4B. Comparison of CN1244 vs. CN1390 in non-human primate exovivo brain section cultures. (Figure 4A) Fluorography images showing relative expression of SYFP2 from AAV vector constructs CN1244 and CN1390. Neocortical sections were cultured from adult macaque brains and infected with nominally identical titer viruses. Brain section cultures were maintained in an incubator for 4 days (4 DIV / 4 DPI) in vitro 4 days after infection, and then used for biofluorescence imaging of living tissues with natural fluorescence. Exposure times were matched to allow direct comparison of transgene expression levels. CN1390, with its engineered concatemerized core, showed potent and more rapid transgene expression. (Figure 4B) Fluorography images showing relative expression of SYFP2 from AAV vector constructs CN1244 and CN1390. Hippocampal sections were cultured from adult macaque brains and infected with viruses exhibiting nominally identical titers. Brain section cultures were maintained in an incubator for 6 days (6 DIV / 6 DPI) in vitro, 6 days after infection, and then used for biofluorescence imaging of living tissues with natural fluorescence. Exposure times were matched to allow for direct comparison of transgene expression levels. CN1390 with an engineered concatemerized core showed potent and more rapid transgene expression. [Figure 5]Figures 5A–5E. CN1390 shows rapid development of transgene expression in human exovivo brain sections. Human exovivo neocortical brain section cultures were prepared from live neurosurgical specimens as described in Ting et al., Scientific Reports 8(1):8407, 2018. After 1 hour of culture, the CN1390 virus suspension was pipetteed onto the section surface to transduce brain cell types. Natural SYFP2 fluorescence was imaged using a Nikon microscope with matched exposure times at 1, 3, and 6 DIV / DPI. Figures 5A–5D show rapid viral gene labeling of human neocortical interneurons for targeted patch-clamp recording and analysis. (Figure 5A) Time course of virus-mediated YFP expression after transduction of human brain sections with CN1390 eB. (Figure 5B) Enlarged view of the area enclosed by the rectangle in (Figure 5A). (Figure 5C) High-magnification image of virus-labeled interneurons showing bipolar morphology. (Figure 5D) Examples of whole-cell recordings from YFP+ human interneurons labeled with four different viruses, showing various firing patterns in response to current injection above the threshold. (Figure 5E) Sections were taken at various time points in culture for terminal patch-clamp recording analysis to establish the firing characteristics of the labeled neurons. Functional analysis of human neocortical interneuron firing patterns and electrical properties by patch-clamp recording was possible as early as 40 hours after CN1390 AAV-PHP.eB virus infection. [Figure 6]CN1390 maintains selectivity for GABAergic cell classes. Viral transduced human organoid sections from four distinct human donors were transduced and isolated at 7–34 DIV / DPI, and 234 single SYFP2+ cells were FACS sorted from glial and debris-depleted cell suspensions and profiled by single-cell RNA-seq (SMARTer V.4). These cells were mapped to the existing MTG cell type taxonomy. The bars at the bottom of the taxonomy indicate the number of SYFP+ cells mapped to the final leaf. The circles further above the taxonomy indicate the number of cells that could only be mapped to that branching point. Note that cells of all major GABAergic classes were labeled, and neither glutamatergic nor glial cells were recovered. The cell types listed from top to bottom are as follows: GABAergic type; 3 Inh L1-2 PAX-6 CDH12, 4 Inh L1-2 PAX6 TNF AIP8L3, 5 Inh L1 SST NMBR (ADARB2+), 6 Inh L1-4 LAMP5 LCP2 (rosehip), 7 Inh L1-2 LAMP5 DBP, 8 Inh L2-6 LAMP5 CA1 (lgtp), Inh L1 SST CHRNA4 (ADARB2+), 14 Inh L1-2 GAD1 MC4R (ADARB2+), 15 Inh L1-2 SST BAGE2 (ADARB2+), 17 Inh L1-3 PAX6 SYT6 (Sncg), 19 Inh L1-2 VIP TSPAN12, 20 Inh L1-4 VIP CHRNA6, 21 Inh L1-3 VIP ADAMTSL1, 22 Inh L1-4 VIP PENK, 27 Inh L2-6 VIP QPCT, 28 Inh L3-6 VIP HS3ST3A1, 29 Inh L1-2 VIP PCDH20, 31 Inh L2-5 VIP SERPINF1, 32 Inh L2-5 VIP TYR, 37 Inh L1-3 VIP CHRM2, 38 Inh L2-4 VIP CBLN1, 39 Inh L1-3 VIP CCDC184, 40 Inh L1-3 VIP GGH, 42 Inh L1-2 VIP LBH, 43 Inh L2-3 VIP CASC6, 45 Inh L2-4 VIPSPAG17、46 Inh L1-4 VIP OPRM1、Inh L3-6 SST NPY(Chodl)、52 Inh L3-6 SST HPGD、55 Inh L4-6 SST B3GAT2、56 Inh L5-6 SST KLHDC8A、57 Inh L5-6 SST NPM1P10、58 Inh L4-6 SST GXYLT2、59 Inh L4-5 SST STK32A、62 Inh L1-3 SST CALB1、63 Inh L3-5 SST ADGRG6、64 Inh L2-4 SST FRZB、65 Inh L5-6 SST TH、66 Inh L5-6 GAD1 GLP1R(LHX6+)、68 Inh L5-6 PVALB LGR5, 71 Inh L4-5 PVALB MEPE, 73 Inh L2-4 PVALB WFDC2, 74 Inh L4-6 PVALB SULF1, 75 Inh L5-6 SST MIR548F2, 76 Inh L2-5 PVALB SCUBE3 (Sunday), 82 Exc L2-5 LAMP5 LTK, 83 Exc L2-4 LINC00507 GLP2R, 84 Exc L2-3 LINC00507 FREM3, 85 Exc L5-6 THEMIS C1QL3, 87 Exc L3-4 RORB CARM1P1, 89 Exc L3-5 RORB ESR1,90 Exc L3-5 RORB COL22A1,92 Exc L3-5 RORB FILIP1L,93 Exc L3-5 RORB TWIST2,96 Exc L4-5 RORB FOLH1B,98 Exc L4-6 RORB SEMA3E,99 Exc L4-5 RORB DAPK2、100 Exc L5-6 RORB TTC12、101 Exc L4-6 RORB C1R、104 Exc L5-6 THEMIS FGF10、105 Exc L4-6 FEZF2 IL26(NP)、106 Exc L5-6 FEZF2 ABO、107 Exc L6 FEZF2 SCUBE1、108 Exc L5-6SLC17A7 IL15, 109 Exc L6 FEZF2 OR2T8, 110 Exc L5-6 FEZF2 EFTUD1P1, glial; OPC L1-6 PDGFRA, Astro L1-6 FGFR3 SLC14A1, Astro L1-2 FGFR3 GFAP, Oligo L1-6 OPALIN, Endo L2-6 NOSTRIN and Micro L1-3 TYROBP. [Figure 7] Rapid expression from CN1390 enables evaluation of human circuit connectivity. Human neocortical organotype sections were transduced with CN1390 and AAV-hSyn1-dTomato for 2.5 days. After only 2.5 days of culture, GABAergic cells and all neurons could be labeled in the culture with CN1390 and AAV-hSyn1-dTomato, respectively. Human synapsin 1 (hSyn1) is a well-known panneuron promoter. This allows for prospective evaluation of connectivity between virus-marked patch cells (labeled with Cascade Blue). The fluorescent dyes listed in the lower left corner of the fluorescence image are (from top to bottom): panGABA-SYFP, hSyn1-dTomato, and Fill-Blue. [Figure 8]Figures 8A and 8B. All major classes of human neocortical GABAergic neurons are marked with CN1390. (Figure 8A) Multiplexed FISH using HCR v3.0 reveals major classes of GABAergic neurons labeled with somatostatin (SST), parvalbumin (PVALB), or vasoactive intestinal peptide (VIP) genes. Labeling with CN1390 in 350 μm thick neocortical brain section cultures is shown. The text in the left image of Figure 8A is as follows: (top left) pia mater surface; (top right) lipofuscin, PVALB, SST, VIP, and SYFP; and (bottom left) Hu, 350 μm section, virus CN1390eB, 7DIV / DPI. (Figure 8B) Marking of expected cell classes by physiology, connectivity, and morphology. Multiplexed FISH reveals molecular identity between a cell class labeled with CN1390 and some patch cells backfilled with neurobiotin and visualized with streptavidin-BV421. The left image in Figure 8B shows cells labeled with SYFP, SST, VIP, PVALB, and lipofuscin. The right image in Figure 8B shows cells labeled with biocitin-BV421. All of these cells exhibit GABAergic cellular morphology and were mostly characterized by SYFP2 expression from CN1390. [Figure 9]Figures 9A-9F. AAV vector reagents for reversing Dravet syndrome (DS) symptoms in Scn1a+ / - mice. (9A) Vector for delivering bacterial epitope-tagged Nav genes (NavBacs). The Nav genes shown here are NavMs (from Magnetococcus marinus), NavBp (from Bacillus pseudofirmus), and NavSheP-D60N (from Shewanella putrifaciens with the genetically modified D60N mutation). All of these examples have an N-terminal epitope tag (hexahistidine for CN1367, or 3×HA for CN1498, CN1499, and CN1500). hI56i refers to the full-length I56i enhancer of SEQ ID NO: 1; 3xhI56iCore refers to the concatemerized core of the I56i enhancer (SEQ ID NO: 3); (9B) Stepwise expression levels from the NavBac vector; (9C) Weak but detectable expression from vector CN1367 in Pvalb interneurons; (9D) Tendency towards seizure protection by vector CN1367; (9E) Vector 1500 drives high levels of expression in Pvalb+ and Pvalb- interneurons throughout the cortex; (9F) Abundant production of HA-tagged NavBac in cell body and proximal processes by vectors 1498 and 1500, but not by 1499. [Figure 10] The CN1500 rAAV vector substantially reverses febrile seizures in Scn1a+ / - mice. The febrile seizure assay shows seizures as the internal body temperature at which they are first detected. (Top) Circles represent Scn1a+ / - mice not transduced with AAV, and diamonds represent animals transduced with CN1500. Large dots and error bars represent the mean + / - SEM for each group of animals. (Bottom) Using Kaplan-Meier curves, the same data trend of remaining seizure-free at different body temperatures is shown as the percentage of mice in each group. [Figure 11]Figures 11A and 11B. Conservation of the I56i enhancer sequence. (Figure 11A) Alignment of human (SEQ ID NO: 1) I56i, mouse (SEQ ID NO: 4) I56i, and zebrafish (SEQ ID NO: 5) I46i enhancer sequences. Residues shared by all three sequences are highlighted in light gray; residues shared between the mouse and human sequences are highlighted in dark gray. The core sequence (SEQ ID NO: 2) corresponds to positions 268-398 of the human sequence shown. Because this is a superconserved enhancer sequence, the mouse and human I56i enhancer core sequences are completely identical (100% sequence identity). It is also very similar to the zebrafish genome sequence, and the orthologous zebrafish enhancer (called I46i) has been used for many years in many situations to enhance transgene expression in neocortical interneurons, including mouse neocortical interneurons. (Figure 11B) Graph showing the similarity between human, mouse, and zebrafish enhancer sequences. The graph shows (labeled from right to left) similarity, absolute complexity, and absolute complexity (Human I56i). [Figure 12] Sequence and characteristics of construct CN1389 pAAV-hI56i(core)-minBG-SYFP2-WPRE3-BGHpA(SEQ ID NO: 41). Selected restriction endonuclease sites are shown, as well as regions corresponding to different parts of the construct. [Figure 13] Sequence and characteristics of construct CN1390 pAAV-3xhI56i(core)-minBG-SYFP2-WPRE3-BGHpA(SEQ ID NO: 42). Selected restriction endonuclease sites are shown, as well as regions corresponding to different parts of the construct. [Figure 14] Sequence and characteristics of construct CN1203 scAAV-hI56i-minbGlobin-SYFP2-WPRE3-BGHpA (SEQ ID NO: 43). Selected restriction endonuclease sites are shown, as well as regions corresponding to different parts of the construct. [Figure 15] Exemplary vector features disclosed herein. [Figure 16]Artificial expression constructs within the scope of the teachings of this disclosure. Each construct begins with a concatemerized core of the hI56i core indicated as * (e.g., SEQ ID NO: 3 or 7). The following abbreviations are also used: minimal β-globin promoter (minB, referred to elsewhere herein as minBglobin), minimal cytomegalovirus promoter (minC, referred to elsewhere herein as minCMV), mutant minimal cytomegalovirus promoter (mut), minimal rhodopsin promoter (minR, referred to elsewhere herein as minRho), cytomegalovirus promoter (CMV), Simian vacuolated virus 40 promoter (SV40), minimal Hsp68 promoter (H68, referred to elsewhere herein as proHSP68), Roussarcoma virus long-term repeat promoter (RSV), fluorescent protein (FP), blue fluorescent protein (BFP), cyan fluorescent protein (CFP), green fluorescent protein (GFP), orange fluorescent protein (OFP), red fluorescent protein (RFP) ), far-red fluorescent protein (fRFP), yellow fluorescent protein (YFP), luciferase (Luc), enzyme (enz), transcription factor (TF), receptor (rec), cell transport protein (CTP), signaling molecule (SM), neurotransmitter (NT), calcium reporter (CR), channelrhodopsin (ChR), guide RNA (gRNA), nuclease (Nuc), woodchuck hepatitis virus post-transcriptional response element (W, called WPRE3 elsewhere herein), bovine growth hormone polyadenylation signal (bG, called bGHpA elsewhere herein), Simian vacuolated virus 40 polyadenylation signal (S, called SV40pA elsewhere herein), internal ribosome entry site 2 (I2, called IRES2 elsewhere herein), and 2A skipping elements (T2A, P2A, E2A, and F2A). [Figure 17]Additional sequences supporting this disclosure: hI56i enhancer: (SEQ ID NO: 1); hI56i enhancer core: (SEQ ID NO: 2); 3xhI56iCore, triple concatemerized core of hI56i enhancer: (SEQ ID NO: 3); mouse I56i enhancer (core is the same as human): (SEQ ID NO: 4); zebrafish I46i enhancer: (SEQ ID NO: 5); zebrafish I46i enhancer core: (SEQ ID NO: 6); 3x concatemerized core of zebrafish I46i enhancer: (SEQ ID NO: 7); β-globin minimal promoter (pBGmin / minBGlobin / minBGprom): (SEQ ID NO: 8); minCMV promoter: (SEQ ID NO: 9); mutant minCMV promoter (SacI RE site removal): (SEQ ID NO: 10); minRho promoter: (SEQ ID NO: 11); Hsp68 minimal promoter (proHsp68): (SEQ ID NO: 12); SYFP2: (SEQ ID NO: 13); EGFP: (SEQ ID NO: 14); Optimized FLP recombinase (FlpO): (SEQ ID NO: 15); Improved Cre recombinase (iCre): (SEQ ID NO: 16); NavMs, endogenous sequence: (SEQ ID NO: 17); NavMs, codon optimized, with N-terminal 3xHA tag and linker: (SEQ ID NO: 18); NavMs, codon optimized, with N-terminal His tag and linker: (SEQ ID NO: 19); NavBp, endogenous sequence Column: (SEQ ID NO: 20); NavBp, codon optimized, with N-terminal 3xHA tag: (SEQ ID NO: 21); NavSheP-D60N, codon optimized, with N-terminal 3xHA tag: (SEQ ID NO: 22); NavSheP endogenous sequence: (SEQ ID NO: 23); WPRE3: (SEQ ID NO: 24); BGHpA: (SEQ ID NO: 25); P2A coding sequence: (SEQ ID NO: 26); P2A: (SEQ ID NO: 27); T2A: (SEQ ID NO: 28); E2A: (SEQ ID NO: 29); F2A: (SEQ ID NO: 30); N-terminal 3XHA tag: (SEQ ID NO: 31); N-terminal 3XHA tag: (SEQ ID NO: 32); PHP.eB capsid: (SEQ ID NO: 90); AAV9 VP1 capsid protein: (SEQ ID NO: 34); tet-transactivator version 2 (tTA2): (SEQ ID NO: 35); CN1367-L-ITR and R-ITR interposition: position 142~2984: (SEQ ID NO: 36);The portion between CN1500-L-ITR and R-ITR: positions 142-2976: (Sequence ID 37); The portion between CN1498-L-ITR and R-ITR: positions 142-2943: (Sequence ID 38); The portion between CN1499-L-ITR and R-ITR: positions 142-2946: (Sequence ID 39); The portion between CN1244-L-ITR and R-ITR: positions 142-2042: (Sequence ID 40); The portion between CN1389-L-ITR and R-ITR corresponds to positions 142-1660: (Sequence ID 41); C The portion between N1390-L-ITR and R-ITR corresponds to positions 142-1897 (SEQ ID NO: 42); the portion between CN1203-L-ITR and R-ITR corresponds to positions 183-2052 (SEQ ID NO: 43); lactase (SEQ ID NO: 44); lipase (SEQ ID NO: 45); helicase (SEQ ID NO: 46); amylase (SEQ ID NO: 47); α-glucosidase (SEQ ID NO: 48); transcription factor SP1 (SEQ ID NO: 49); transcription factor AP-1 (SEQ ID NO: 50); heat shock factor protein 1 (SEQ ID NO: 51) ;CCAAT / enhancer-binding protein (C / EBP) β isoform a (SEQ ID NO: 52); Octamer-binding protein 1 (SEQ ID NO: 53); Transforming growth factor receptor β1 (SEQ ID NO: 54); Platelet-derived growth factor receptor (SEQ ID NO: 55); Epidermal growth factor receptor (SEQ ID NO: 56); Vascular endothelial growth factor receptor (SEQ ID NO: 57); Interleukin-8 receptor α (SEQ ID NO: 58); Caveolin (SEQ ID NO: 59); Dynamine (SEQ ID NO: 60); Clathrin heavy chain 1 isoform 1 (SEQ ID NO: 61); Clathrin heavy chain 2 isoform 1 (SEQ ID NO: 62); Clathrin light chain A isoform a (SEQ ID NO: 63); Clathrin light chain B isoform a (SEQ ID NO: 64); Ras-related protein Rab-4A isoform 1 (SEQ ID NO: 65); Ras-related protein Rab-11A (SEQ ID NO: 66); Platelet-derived growth factor (SEQ ID NO: 67); Transforming growth factor-β3 (SEQ ID NO: 68); Nerve growth factor (SEQ ID NO: 69); Epidermal growth factor (SEQ ID NO: 70); GTPase HRas (SEQ ID NO: 71); Cocaine and Amphetamine Modulated Transcript (Chain A) (SEQ ID NO: 72); Protachykinin-1 (SEQ ID NO: 73); Substance P (SEQ ID NO: 74); Oxytocin-Neurophagin 1 (SEQ ID NO: 75);Oxytocin (SEQ ID NO: 76); Somatostatin (SEQ ID NO: 77); Myosin light chain kinase, green fluorescent protein, calmodulin chimera (A chain) (SEQ ID NO: 78); Gene-encoded green calcium indicator NTnC (A chain) (SEQ ID NO: 79); Calcium indicator TN-XXL (SEQ ID NO: 80); BRET-based autoluminescent calcium indicator (SEQ ID NO: 81); Calcium indicator protein OeNL(Ca2+)-18u (SEQ ID NO: 82); GCaMP6m (SEQ ID NO: 99); GCaMP6s (SEQ ID NO: 100); GCaMP6f (SEQ ID NO: 101); Channelopsin (Channelo psin)1 (SEQ ID NOs. 83 and 102); channelrhodopsin-2 (SEQ ID NOs. 84 and 103); CRISPR-related protein (Cas) (SEQ ID NOs. 85); Cas9 (SEQ ID NOs. 86); CRISPR-related endonuclease Cpf1 (SEQ ID NOs. 87); ribonuclease 4 or ribonuclease L (SEQ ID NOs. 88); deoxyribonuclease IIβ (SEQ ID NOs. 89); sodium channel protein type 1 subunit alpha (SEQ ID NOs. 104); potassium potential-open channel subfamily KQT member 2 (SEQ ID NOs. 105); and voltage-gated L-type calcium channel subunit alpha-1C (SEQ ID NOs. 106). [Modes for carrying out the invention]
[0019] To fully understand brain biology, it is necessary to distinguish and define different cell types. To identify and / or study these different cell types, it is necessary to identify vectors that can selectively label and disrupt them. In mice, recombinase driver lines have proven highly effective in labeling cell populations that share marker gene expression. However, the creation, maintenance, and use of such lines that label cell types with high specificity can be costly, often requiring triple transgenic crosses, resulting in a low frequency of experimental animals. Furthermore, these tools require germline transgenic animals and are therefore not applicable to humans. Recent advances in single-cell profiling, such as single-cell RNA-seq (Tasic et al., Nature 563, 72-78 (2018); Tasic 2016, Nat Neurosci 19, 335-346), as well as neuroelectrophysiological and morphological investigations (Gouwens 2019, Nat Neurosci 22, 1182-1195), have revealed that many recombinant driver lines label heterogeneous mixtures of cell types, often containing multiple subclasses of cells. For example, the Rbp4-Cre mouse driver line, commonly used to label layer 5 (L5) neurons, also labels cells with dramatically different connectivity patterns, such as L5 telencephalon (IT, also known as intercortical) and pyramidal tract (PT, also known as corticocortical) neurons.
[0020] Dimidschstein and colleagues (Nat Neurosci 19(12):1743-1749, 2016) developed an rAAV that enables highly selective gene expression in GABAergic interneurons in the telencephalon. This rAAV contains a 527 bp enhancer sequence (referred to as mI56i or mDlx) derived from the intergenetic space between the distal res-homeobox 5 and 6 genes (Dlx5 / 6), which is spontaneously expressed by forebrain GABAergic interneurons during embryonic development. The construct by Dimidschstein et al. is available on Addgene under ID number 83900 (enhancer drives eGFP expression). Additional constructs that drive various transgenes using mouse or human I56i enhancers are available through Addgene, for example, plasmid ID numbers 83899 (driving GCaMP6f expression), 83898 (driving ChR2 expression), 83895 (driving synthetic eGFP expression), 89897 (driving hM3DREADD expression), 83896 (driving hM4Di expression), and 83894 (driving synthetic tdTomato expression). See also U.S. Patent Application Publication 2018 / 0078658.
[0021] Furthermore, the mI56i enhancer has previously been used to reliably target the reporter gene in a pattern very similar to the normal pattern of Dlx5 / 6 expression during embryonic development (Zerucha et al., J Neuroscience 20:709-721, 2000; Stuhmer et al., Cerebral Cortex 12:75-85, 2002; Stenman et al., J Neuroscience 23:167-174, 2003; Monory et al., Neuron. 51:455-455, 2006; Miyoshi et al., J Neuroscience 30:1532-1594, 2010).
[0022] One significant drawback of using rAAV as a gene delivery system is the limited packaging capabilities of AAV. This is particularly restrictive for including long gene regulatory and expression elements. Furthermore, many existing interneuron-specific rAAV expression constructs can result in weak gene expression, reducing their usefulness in research and therapeutic applications.
[0023] This disclosure overcomes the shortcomings of the prior art by providing artificial enhancer elements containing a concatemerized core of the I56i enhancer. These artificial enhancer elements result in unexpectedly strong peak transgene expression in forebrain GABAergic interneurons after viral transduction of mouse, monkey, and human brain tissue (see Figures 2A, 2B, 3, 4, 5A, 5E, 7, 8A, and 8B). Initiation is also remarkably rapid (see Figures 5A–5E), resulting in faster and higher expression compared directly with, for example, a virus packaged with Addgene plasmid number 83900. The increase in expression appears to be synergistically superlinear, not simply three times the level driven by the original enhancer (Figure 2B).
[0024] In certain embodiments, the I56i enhancer core may be derived from, for example, human and mouse I56i enhancers or zebrafish I46i enhancers (SEQ ID NOs: 1, 4, and 5, respectively). The selected core of the I56i enhancer may include SEQ ID NO: 2 (a core shared by humans and mice) or SEQ ID NO: 6 (a zebrafish I46i core). In certain embodiments, the core is concatemized. For example, SEQ ID NO: 3 provides a 3-copy concatemer of a selected human / mouse I56i core, and SEQ ID NO: 7 provides a 3-copy concatemer of a selected zebrafish I46i core.
[0025] Of particular interest is the synthetic 3× human / mouse core (referred to herein as 3xhl56iCore; SEQ ID NO: 3), which is a 3× concatemer, but is shorter than the original full-length enhancer sequence reported by Dimidschstein et al. (Nat Neurosci 19(12):1743-1749, 2016). When used to construct heterologous expression cassettes such as recombinant adeno-associated virus (rAAV), this artificial enhancer element provides more space for the cargo gene (heterologous coding sequence) ligated to the enhancer. This is highly desirable in many gene expression vectors. For example, space (sequence length) becomes important throughout the vector because many functional protein cargo genes (more commonly effector elements) are too long to fit into AAV vector designs.
[0026] The manipulated concatemerized I56i cores disclosed herein enable novel and improved gene delivery vectors that are particularly useful for achieving selective transgene expression in neocortical GABAergic interneurons in diverse animal species, including humans and non-human primates. Importantly, GABAergic interneurons are deeply involved in central processing and development, and their dysfunction is associated with various brain disorders. Therefore, the enhancers and expression constructs described herein have many immediate applications in research and the development of clinical treatments. Artificial enhancers can be used in experimental situations where the original enhancer hl56i has proven insufficient (e.g., postorbital delivery of a virus encoding a transgene for functional disruption experiments).
[0027] Herein, aspects of the present disclosure will be described with the following additional options and details: (i) artificial expression constructs and vectors for selective expression of genes in selected cell types; (ii) compositions for administration; (iii) cell lines containing the artificial expression constructs; (iv) transgenic animals; (v) methods of use; (vi) kits and commercial packaging; (vii) exemplary embodiments; (viii) experimental examples; and (ix) concluding paragraphs.
[0028] (i) Expression constructs and vectors for selective gene expression in selected cell types. The expression constructs disclosed herein comprise (i) an enhancer sequence resulting in selective expression of a coding sequence within a targeted central nervous system cell type, (ii) the coding sequence to be expressed, and (iii) a promoter. The expression constructs may also comprise other regulatory elements if necessary or beneficial.
[0029] In certain embodiments, an “enhancer” or “enhancer element” is a cis-acting sequence that increases the level of transcription associated with a promoter, can function in either direction with respect to the promoter and the transcribed coding sequence, and can be located upstream or downstream of the promoter or the transcribed coding sequence. There are art-recognized methods and techniques for measuring the function of an enhancer element sequence. Specific examples of enhancer sequences used in the artificial expression constructs disclosed herein include concatemized cores of the I56i enhancer, such as concatenated sequences of SEQ ID NOs. 2 and / or 6, including, for example, SEQ ID NOs. 3 and 7. Additional specific examples of concatemized cores of the I56i enhancer may include sequences 2 and 6 within a single sequence, such as SEQ ID NOs. 2-2-6; SEQ ID NOs. 6-2-6; SEQ ID NOs. 6-2-6-2; SEQ ID NOs. 6-2-2-2; and SEQ ID NOs. 2-6-6.
[0030] In certain embodiments, the targeted central nervous system cell type enhancer is an enhancer used independently or preferentially in the targeted central nervous system cell type. The targeted central nervous system cell type enhancer increases gene expression in the targeted central nervous system cell type but does not substantially direct gene expression in other untargeted cell types, thus possessing neuron-specific transcriptional activity.
[0031] If a coding sequence is selectively expressed in selected neurons and substantially not expressed in other neuronal cell types, the product of the coding sequence is preferentially expressed in the selected cell type. In certain embodiments, preferential expression is greater than 50% expression compared to a reference cell type; greater than 60% expression compared to a reference cell type; greater than 70% expression compared to a reference cell type; greater than 80% expression compared to a reference cell type; or greater than 90% expression compared to a reference cell type. In certain embodiments, the reference cell type refers to untargeted neurons. Untargeted neurons may be located in the same anatomical structure as targeted cells and / or projected into a common anatomical region. In certain embodiments, the reference cell type is located in an anatomical structure adjacent to the anatomical structure containing the targeted cell type. In certain embodiments, the reference cell type is an untargeted neuron having a different gene expression profile than the targeted cells.
[0032] In certain embodiments, the coding sequence product may be expressed at low levels in unselected cell types, for example, less than 1% of the level at which the product is expressed in selected neurons, or at 1%, 2%, 3%, 5%, 10%, 15%, or 20%. In certain embodiments, the targeted central nervous system cell type is the only cell type that expresses the correct combination of transcription factors that bind to the enhancer disclosed herein and drive gene expression. Thus, in certain embodiments, expression occurs only within the targeted cell type.
[0033] In certain embodiments, targeted cell types (e.g., nerves, neurons, and / or non-neurons) can be identified based on transcriptional profiles, e.g., those described in Tasic et al., 2018 Nature. For reference, the following descriptions of nerve cell types and identifying features are also provided: GABAergic interneurons: These express the GABA synthesis genes Gad1 / GAD1 and / or Gad2 / GAD2.
[0034] GABAergic subclass: Lamp 5: Found in many cortical layers, especially the upper layers (L1-L2 / 3), and mainly exhibits neurogliaform and single-bouquet morphology.
[0035] Sncg: Found in many cortical layers, it has molecular overlap with Lamp5 and Vip cells, but Lamp5 or Vip expression is inconsistent, while Sncg expression is more consistent. These neurons express the neurotransmitter Cck and mainly have a multipolar or basket cell morphology.
[0036] Serpinf1: Found in many cortical layers, it has molecular overlap with Sncg and Vip cells, but Sncg or Vip expression is inconsistent, while Serpinf1 expression is more consistent.
[0037] Vip: Found in many cortical layers, but especially frequently in the upper layers (L1-L4), and highly expresses the neurotransmitter vasoactive intestinal peptide (Vip).
[0038] Sst: Found in many cortical layers, but especially frequently in the lower layers (L5-L6). These highly express the neurotransmitter somatostatin (Sst) and frequently block dendritic input to postsynaptic neurons. This subclass includes sleep-active horizontal projection Sst Chodl (or Sst Nos1) neurons, which are quite different from other Sst neurons but express a shared marker gene including Sst.
[0039] Pvalb: Found in many cortical layers, but especially frequently in the lower layers (L5-L6). These cells highly express the neurotransmitter parvalbumin (Pvalb), express Tac1, and frequently attenuate postsynaptic neuron output. This subclass includes chandelier cells, which have a distinct chandelier-like morphology and express the markers Cpne5 and Vipr2 in mice, and NOG and UNC5B in humans.
[0040] Meis2: A distinct subclass defined by a single type, found in L6b and subcortical white matter.
[0041] Lamp5, Sncg, Serpinf1, and VIP: Developmentally derived from progenitor neurons of the caudal basal ganglia primordium (CGE).
[0042] Sst and Pvalb: Developmentally derived from progenitor neurons of the medial basal ganglia primordium (MGE).
[0043] Glutamate-mediated subclass: All: Express glutamate signaling molecules Slc17a6 and / or Slc17a7.
[0044] L2 / 3 IT: Primarily located in layers 2 and 3, and mainly has telencephalon (intercortical) projections.
[0045] L4 IT: Primarily located in layer 4, and mainly has telencephalon (intercortical) projections.
[0046] L5 IT: Primarily located in layer 5, it mainly has telencephalon (intercortical) projections. Also known as L5a.
[0047] L5 PT: Primarily located in layer 5, it mainly has corticospinal projections (pyramidal tract or descending cortex). Also called L5b or L5 CF. These cells are located in the primary motor cortex and adjacent regions and are corticospinal projection neurons. They are associated with motor neuron / motor disorders such as ALS.
[0048] Neocortical L5 extratelinar (ET) projection pyramidal neurons (L5 ET): Thick, tufted pyramidal neurons containing characteristic subtypes found only in specific regions, such as Betz cells, Meynert cells, and von Economo cells.
[0049] L5 NP: Primarily located in layer 5, and mainly has projections nearby.
[0050] L6 CT: Primarily located in layer 6, and mainly has corticothalamic projections.
[0051] L6 IT: Primarily located in layer 6, it mainly has telencephalon (intercortical) projections. This subclass includes L6 IT Car3 cells, which are remarkably similar to the intracortical projection cells of the claustrum.
[0052] L6b: Primarily located in the cortical subplate (L6b), it exhibits projections to local areas (near the cell body), intercortical projections from the VISp to the anterior cingulate cortex, and corticocortical projections to the thalamus.
[0053] A distinct subclass defined by a single CR:L1 type, Cajal-Retzius cells express distinct molecular markers Lhx5 and Trp73.
[0054] Non-neuronal subclass: Star cells: Glial cells derived from neuroectoderm that express the marker Aqp4. They have a distinct star-shaped morphology and are involved in supporting the metabolism of other cells in the brain.
[0055] Oligodendrocytes: Glial cells derived from the neuroectoderm that express the marker Sox10. This category includes oligodendrocyte progenitor cells (OPCs). Oligodendrocytes are a subclass primarily responsible for myelin formation in neurons.
[0056] VLMCs: Vascular leukinous meningeal cells (VLMCs) are a part of the meninges that surround the outer layer of the cortex and express the marker genes Lum and Col1a1.
[0057] Pericytes: Vascular-related cells, also known as parietal cells, that express the marker genes Kcnj8 and Abcc9. Pericytes surround endothelial cells and are important for regulating blood flow in capillaries, and are involved in the permeability of the blood-brain barrier.
[0058] SMC: Vascular cell (SMC) is a vascular-associated cell, also known as a parietal cell, that expresses the marker gene Acta2. SMCs cover arterioles in the brain and are involved in the permeability of the blood-brain barrier.
[0059] Endothelium: Cells that line the blood vessels of the brain. Endothelial cells express the markers Tek and PDGF-β.
[0060] Macrophages: Immune cells including macrophages present in the brain, and perivascular macrophages (PVMs) that may be temporarily associated with brain tissue or included as a byproduct of brain surgery.
[0061] In certain embodiments, the coding sequence is a heterogeneous coding sequence that codes for an effector element. The effector element is a sequence that is expressed to achieve a desired effect and accomplishes it in practice. Examples of effector elements include reporter genes / proteins and functional genes / proteins.
[0062] Exemplary reporter genes / proteins include those expressed by Addgene ID numbers 83894 (pAAV-hDlx-Flex-dTomato-Fishell_7), 83895 (pAAV-hDlx-Flex-GFP-Fishell_6), 83896 (pAAV-hDlx-GiDREADD-dTomato-Fishell-5), 83898 (pAAV-mDlx-ChR2-mCherry-Fishell-3), 83899 (pAAV-mDlx-GCaMP6f-Fishell-2), 83900 (pAAV-mDlx-GFP-Fishell-1), and 89897 (pcDNA3-FLAG-mTET2(N500)).Exemplary reporter genes include, in particular, expressible fluorescent proteins or expressible biotin; blue fluorescent proteins (e.g., eBFP, eBFP2, Azurite, mKalama1, GFPuv, Sapphire, T-sapphire); cyan fluorescent proteins (e.g., eCFP, Cerulean, CyPet, AmCyanl, Midoriishi-Cyan, mTurquoise); green fluorescent proteins (e.g., GFP, GFP-2, tagGFP, turboGFP, EGFP, Emerald, Azami Green, Monomeric Azami Green (mAzamigreen), CopGFP, AceGFP, avGFP, ZsGreenl, Oregon Green™ (Thermo Fisher Scientific)); luciferase; orange fluorescent proteins (mOrange, mKO, Kusabira-Orange, Monomeric) This may include Kusabira-Orange, mTangerine, tdTomato, dTomato; red fluorescent proteins (mKate, mKate2, mPlum, DsRed monomer, mCherry, mRuby, mRFP1, DsRed-Express, DsRed2, DsRed-Monomer, HcRed-Tandem, HcRedl, AsRed2, eqFP611, mRaspberry, mStrawberry, Jred, Texas Red™ (Thermo Fisher Scientific)); far-red fluorescent proteins (e.g., mPlum and mNeptune); yellow fluorescent proteins (e.g., YFP, eYFP, Citrine, SYFP2, Venus, YPet, PhiYFP, ZsYellowl); and those encoding tandem conjugates.
[0063] GFP is composed of 238 amino acids (26.9 kDa) and was originally isolated from the jellyfish Aequorea victoria / Aequorea aequorea / Aequorea forskalea, and emits green fluorescence when exposed to blue light. The GFP of Aequorea victoria has a large excitation peak at 395 nm and a small excitation peak at 475 nm. Its emission peak is at 509 nm, in the lower green part of the visible spectrum. The GFP of Renilla reniformis has a single major excitation peak at 498 nm. Due to its potential for widespread use and the evolving needs of researchers, many different variants of GFP have been designed. The first major improvement was a single-point mutation (S65T) reported in Nature by Roger Tsien in 1995. This mutation dramatically improved the spectral characteristics of GFP, enhancing fluorescence and photostability, shifting the main excitation peak to 488 nm while maintaining peak emission at 509 nm. Adding a 37°C folding efficiency (F64L) point mutant to this scaffold yielded fluorescence-enhanced GFP (EGFP). EGFP is also cited as 55,000 L / (mol●cm), 9.13 x 10⁻²¹ m 2 It possesses an extinction coefficient (denoted by ε), also known as the optical cross-section of the molecule. In 2006, a series of mutations called superfolder GFP were reported, which allows GFP to rapidly fold and mature even when fused with poorly folded peptides.
[0064] Yellow fluorescent protein (YFP) is a gene variant of green fluorescent protein derived from the jellyfish Aequorea victoria. Its excitation peak is at 514 nm and its emission peak is at 527 nm.
[0065] Exemplary functional molecules include functional ion transporters, cell transport proteins, enzymes, transcription factors, neurotransmitters, calcium reporters, channelrhodopsins, guide RNAs, nucleases, or designer receptors (DREADDs) that are activated only by designer drugs.
[0066] Ion transporters are transmembrane proteins that mediate the transport of ions across the cell membrane. These transporters are prevalent in most cell types and are important for regulating cellular excitability and homeostasis. Ion transporters are involved in numerous cellular processes, including action potentials, synaptic transmission, hormone secretion, and muscle contraction. Many important biological processes in living cells involve the transfer of cations such as calcium (Ca2+), potassium (K+), and sodium (Na+) ions through such ion channels. In specific embodiments, ion transporters include voltage-opening sodium channels (e.g., SCN1A), potassium channels (e.g., KCNQ2), and calcium channels (e.g., CACNA1C).
[0067] Exemplary enzymes, transcription factors, receptors, membrane proteins, cell transport proteins, signaling molecules, and neurotransmitters include enzymes such as lactase, lipase, helicase, α-glucosidase, and amylase; transcription factors such as SP1, AP-1, heat shock factor protein 1, C / EBP (CCAA-T / enhancer-binding protein), and Oct-1; receptors such as transforming growth factor receptor β1, platelet-derived growth factor receptor, epidermal growth factor receptor, vascular endothelial growth factor receptor, and interleukin-8 receptor α; membrane proteins and cell transport proteins such as clathrin, dynamin, caveolin, Rab-4A, and Rab-11A; signaling molecules such as nerve growth factor (NGF), platelet-derived growth factor (PDGF), transforming growth factor β (TGFβ), epidermal growth factor (EGF), GTPase, and HRas; and neurotransmitters such as cocaine and amphetamine-regulated transcripts, substance P, oxytocin, and somatostatin.
[0068] In certain embodiments, functional molecules include receptors for neuronal function and state, such as calcium reporters. Intracellular calcium concentration is an important predictor of numerous cellular activities, including neuronal activation, myocyte contraction, and second messenger signaling. A highly sensitive and convenient technique for monitoring intracellular calcium levels is the use of gene-encoded calcium indicators (GECIs). Among GECIs, green fluorescent protein (GFP)-based calcium sensors called GCaMPs are efficient and widely used tools. GCaMPs are formed by the fusion of the N-terminus and C-terminus of the M13 and calmodulin proteins with circulatingly substituted GFP. Some GCaMPs produce different fluorescence emission spectra (Zhao et al., Science, 2011, 333(6051):1888-1891). Exemplary GECIs with green fluorescence include GCaMP3, GCaMP5G, GCaMP6s, GCaMP6m, GCaMP6f, jGCaMP7s, jGCaMP7c, jGCaMP7b, and jGCaMP7f. Furthermore, GECIs exhibiting red fluorescence include jRGECO1a and jRGECO1b. AAV products containing GECIs are commercially available.For example, Vigene Biosciences offers AAV8-CAG-GCaMP3 (catalog number: BS4-CX3AAV8), AAV8-Syn-FLEX-GCaMP6s-WPRE (catalog number: BS1-NXSAAV8), AAV8-Syn-FLEX-GCaMP6s-WPRE (catalog number: BS1-NXSAAV8), AAV9-CAG-FLEX-GCaMP6m-WPRE (catalog number: BS2-CXMAAV9), AAV9-Syn-FLEX-jGCaMP7s-WPRE (catalog number: BS12-NXSAAV9), AAV9-CAG-FLEX- We offer AAV products including jGCaMP7f-WPRE (catalog number: BS12-CXFAAV9), AAV9-Syn-FLEX-jGCaMP7b-WPRE (catalog number: BS12-NXBAAV9), AAV9-Syn-FLEX-jGCaMP7c-WPRE (catalog number: BS12-NXCAAV9), AAV9-Syn-FLEX-NES-jRGECO1a-WPRE (catalog number: BS8-NXAAAV9), and AAV8-Syn-FLEX-NES-jRCaMP1b-WPRE (catalog number: BS7-NXBAAV8).
[0069] In certain embodiments, the calcium reporter includes gene-encoded calcium indicators GECI, NTnC; myosin light chain kinase, GFP, calmodulin chimera; calcium indicator TN-XXL; BRET-based autoluminescent calcium indicator; and / or calcium indicator protein OeNL(Ca2+)-18u).
[0070] In certain embodiments, the functional molecules include modulators of neuronal activity, such as channelrhodopsins (e.g., channelrhodopsin-1, channelrhodopsin-2, and their variants). Channelrhodopsins are a subfamily of retinilidene proteins (rhodopsins) that function as photo-opening ion channels. In addition to channelrhodopsin-1 (ChR1) and channelrhodopsin-2 (ChR2), several variants of channelrhodopsins have been developed. For example, Lin et al. (Biophys J, 2009, 96(5):1803-14) describe creating chimeras of the transmembrane domains of ChR1 and ChR2 in combination with site-directed mutagenesis. Zhang et al. (Nat Neurosci, 2008, 11(6):631-3) describe VChR1, a red-shift channelrhodopsin variant. VChR1 is poorly photosensitive and exhibits insufficient membrane transport and expression. Other known channelrhodopsin variants include the ChR2 variant described in Nagel, et al., Proc Natl Acad Sci USA, 2003, 100(24):13940-5, which is activated by blue light (470 nm) but not sensitive to orange / red light; ChR2 / H134R (Nagel, G., et al., Curr Biol, 2005, 15(24):2279-84); and ChD / ChEF / ChIEF (Lin, JY, et al., Biophys J, 2009, 96(5):1803-14). Additional variants are described in Lin, Experimental Physiology, 2010, 96.1:19-25 and Knopfel et al., The Journal of Neuroscience, 2010, 30(45):14998-15004.
[0071] In certain embodiments, the functional molecules include DNA and RNA editing tools such as CRISPR / CAS (e.g., guide RNA and nucleases, e.g., Cas, Cas9, or cpf1). Functional molecules may also include engineered Cpf1s, e.g., as described in US2018 / 0030425, US2016 / 0208243, WO / 2017 / 184768 and Zetsche et al. (2015) Cell 163:759-771; single gRNAs (e.g., see Jinek et al. (2012) Science 337:816-821; Jinek et al. (2013) eLife 2:e00471; Segal (2013) eLife 2:e00563) or editases, guide RNA molecules, or homologous recombinant donor cassettes.
[0072] Additional information regarding the CRISPR-Cas system and its components can be found in US8697359, US8771945, US8795965, US8865406, US8871445, US8889356, US8889418, US8895308, US8906616, US8932814, US8945839, US8993233 and US8999641 and and related applications; as well as WO2014 / 018423, WO2014 / 093595, WO2014 / 093622, WO2014 / 093635, WO2014 / 093655, WO2014 / 093661, WO2014 / 093694, WO2014 / 093701, WO2014 / 093709, WO2014 / 093712, WO201 4 / 093718, WO2014 / 145599, WO2014 / 204723, WO2014 / 204724, WO2014 / 204725, WO2014 / 204726, W O2014 / 204727, WO2014 / 204728, WO2014 / 204729, WO2015 / 065964, WO2015 / 089351, WO2015 / 0893 This is described in 54, WO2015 / 089364, WO2015 / 089419, WO2015 / 089427, WO2015 / 089462, WO2015 / 089465, WO2015 / 089473 and WO2015 / 089486, WO2016205711, WO2017 / 106657, WO2017 / 127807 and related applications.
[0073] In certain embodiments, functional molecules include designer receptors (DREADDs) that are activated only by designer drugs. Designer receptors (DREADDs) that are activated only by designer drugs can be used to modulate cellular function (Rogan and Roth, Pharmacol. Rev. 2011, 63(2):291-315). This family of evolved muscarinic receptors has been shown to increase (Gs-DREADD; Gq-DREADD) or decrease (Gi / o-DREADD) cellular activity after administration of the inactive synthetic ligand clozapine-n-oxide (Armbruster et al., PNAS, 2007, 104(12):5163-5168). When packaged in viral vectors or expressed in transgenic mouse models, these tools allow for the control of cellular activity in defined spatial and temporal ways. For example, activation of hippocampal neurons by the Gq-DREADD receptor amplifies the gamma rhythm and increases spontaneous motor activity and stereotypic behavior in mice (Alexander et al., Neuron, 2009, 63(1):27-39). DREADD is formed by point mutations in the third and fifth transmembrane regions of the muscarinic receptor (Y149C and A239G of hM3). Furthermore, Gs-binding DREADD contains the second and third intracellular loops of β1-AR instead of the loop of the M3 muscarinic receptor. Some exemplary DREADDs include hM3DREADD (hM3D) and hM4DREADD (hM4D). Various plasmids containing DREADD are commercially available. For example, addgene lists the following AAV plasmids containing DREADD: pAAV-hSyn-DIO-hM3D(Gq)-mCherry (plasmid number 44361), pAAV-hSyn-DIO-hM4d(Gi)-mCherry (plasmid number 44362), pAAV-EF1a-DIO-hM4d(Gi)-mCherry (plasmid number 50461), pAAV-GFAP-HA-hM3D(Gq)-IRES)-mCitrine (plasmid number 50470), and pAAV-CaMKIIa-hM4D(Gi)-mCherry (plasmid number 50477).
[0074] Additional effector elements include Cre, iCre, dgCre, FlpO, and tTA2. iCre refers to Cre with improved codons. dgCre refers to an enhanced GFP / Cre recombinase fusion gene with an N-terminal fusion of the first 159 amino acids of the chromosomal dihydrofolate reductase gene (DHFR or folA) of Escherichia coli strain K-12, modified to have the G67S mutation and also include the R12Y / Y100I destabilization domain mutation. FlpO refers to a codon-optimized form of FLPe that significantly increases protein expression and FRT recombination efficiency in mouse cells. Similar to the Cre / LoxP system, the FLP / FRT system is widely used for gene expression (and the creation of conditional knockout mice mediated by the FLP / FRT system). tTA2 refers to tetracycline transactivator.
[0075] Exemplary expressible elements are expression products that do not contain effector elements, such as non-functional or defective proteins. In certain embodiments, expressible elements can provide a method for testing the effects of their functional counterparts. In certain embodiments, expressible elements are non-functional or defective based on manipulated mutations that render them non-functional. In these embodiments, non-expressible elements are as structurally similar as possible to their functional counterparts.
[0076] Exemplary self-cleaving peptides include 2A peptides that result in the production of two proteins from a single mRNA. 2A sequences are short (e.g., 20 amino acids), allowing for greater use in size-constrained constructs. Specific examples include P2A, T2A, E2A, and F2A. In certain embodiments, the expression construct includes an internal ribosome entry site (IRES) sequence. The IRES allows a ribosome to initiate translation at a second internal site of the mRNA molecule, resulting in the production of two proteins from a single mRNA.
[0077] The coding sequences that encode molecules (e.g., RNA, proteins) described herein are readily available from publicly available databases and publications. The coding sequences may further include various sequence polymorphisms, mutations, and / or sequence variants in which such modifications do not affect the function of the encoded molecule. The terms “coding” or “encoding” refer to the characteristics of a nucleic acid sequence, such as a vector, plasmid, gene, cDNA, or mRNA, that serves as a template for the synthesis of other molecules, such as proteins.
[0078] The term "gene" can include not only coding sequences but also regulatory regions such as promoters, enhancers, and stop regions. The term may further include all introns and other DNA sequences spliced from mRNA transcripts, along with variants arising from alternative splicing sites. Sequences may also include degenerate codons of reference sequences, which may be introduced to provide codon selectivity in a particular organism or cell type.
[0079] Promoters may include general promoters, tissue-specific promoters, cell-specific promoters, and / or cytoplasm-specific promoters. Promoters may also include strong promoters, weak promoters, constitutive expression promoters, and / or inductive promoters. Inductive promoters direct expression in response to specific conditions, signals, or cellular events. For example, a promoter may be an inductive promoter that requires a specific ligand, small molecule, transcription factor, or hormonal protein to influence transcription from the promoter. Specific examples of promoters include minBglobin, CMV, minCMV, mutant minCMV, SV40 early promoter, Hsp68 minimal promoter (proHSP68), and Roussarcoma virus (RSV) long-term repeat (LTR) promoter. Minimal promoters do not have the activity to drive gene expression on their own, but can be activated to drive gene expression when ligated to a proximal enhancer element.
[0080] In certain embodiments, the expression construct is provided within a vector. The term vector refers to a nucleic acid molecule that can transfer or transport another nucleic acid molecule, such as an expression construct. The transferred nucleic acid is generally ligated to the vector nucleic acid molecule, or, for example, incorporated within the vector nucleic acid molecule. The vector may contain sequences that direct autonomous replication within the cell, or sequences that enable integration into host cell DNA. Useful vectors include, for example, plasmids (e.g., DNA plasmids or RNA plasmids), transposons, cosmids, bacterial artificial chromosomes, and viral vectors.
[0081] The term "viral vector" is broadly used to refer to nucleic acid molecules containing virus-derived nucleic acid elements that facilitate the transfer and expression of non-native nucleic acid molecules into cells. The term "adeno-associated virus vector" refers to a viral vector or plasmid containing structural and functional gene elements or portions thereof, primarily derived from AAV. The term "retroviral vector" refers to a viral vector or plasmid containing structural and functional gene elements or portions thereof, primarily derived from retroviruses. The term "lentiviral vector" refers to a viral vector or plasmid containing structural and functional gene elements or portions thereof, primarily derived from lentiviruses, and so on. The term "hybrid vector" refers to a vector containing structural and / or functional gene elements derived from more than one type of virus.
[0082] Adenovirus. An "adenovirus vector" refers to a construct containing sufficient adenovirus sequences to (a) support the packaging of an expression construct and (b) express the coding sequence cloned within itself in sense or antisense direction. Recombinant adenovirus vectors include genetically modified forms of adenovirus. The genetic makeup of adenoviruses is known to be a 36kb, linear, double-stranded DNA virus, allowing for the substitution of large portions of adenovirus DNA with exogenous sequences up to 7kb. Adenovirus DNA can replicate in an episomal manner that does not have potential genotoxicity, so, in contrast to retroviruses, adenovirus infection of host cells does not result in chromosomal integration. Furthermore, adenoviruses are structurally stable, and no genomic rearrangements have been detected after massive amplification.
[0083] Adenoviruses are particularly well-suited as gene transfer vectors due to their medium-sized genome, ease of manipulation, high titer, broad target cell range, and high infectivity. Both ends of the viral genome contain 100-200 base pairs of reverse repeats (ITRs), which are cis-elements necessary for viral DNA replication and packaging. The early (E) and late (L) regions of the genome contain distinct transcription units, separated by the initiation of viral DNA replication. The E1 region (E1A and E1B) encodes proteins responsible for regulating the transcription of the viral genome and several cellular genes. Expression of the E2 region (E2A and E2B) leads to protein synthesis for viral DNA replication. These proteins are involved in DNA replication, late gene expression, and host cell shut-off. The late gene products, including most of the viral capsid proteins, are expressed only after significant processing of a single primary transcript by the major late promoter (MLP). MLP is particularly efficient during the later stages of infection, and all mRNA transcribed from this promoter has a 5'-triple leader (TPL) sequence that makes itself a desirable mRNA for translation.
[0084] Aside from the need for the adenovirus vector to be deficient in replication, or at least conditionally deficient, the properties of the adenovirus vector are not considered important for the successful implementation of the particular embodiments disclosed herein. The adenovirus may be any of the 42 different known serotypes or subgroups A-F. In certain embodiments, adenovirus type 5 of subgroup C is a preferred starting material for obtaining a conditionally deficient adenovirus vector for use in certain embodiments, as it is a human adenovirus for which considerable biochemical and genetic information is known and which has been historically used in most constructs that use adenovirus as a vector.
[0085] As shown, a typical vector is a replication defect and lacks the adenovirus E1 region. Therefore, it is most convenient to introduce the polynucleotide encoding the gene of interest at the location where the E1-coding sequence is removed. However, the location of the construct insertion within the adenovirus sequence is not critical. The polynucleotide encoding the gene of interest may also be inserted in place of the deleted E3 region in an E3 substitution vector or the E4 region when a helper cell line or helper virus compensates for the E4 deficiency.
[0086] Adeno-associated virus (AAV) is a parvovirus discovered as an impurity in adenovirus strains. It is a ubiquitous virus (antibodies are present in 85% of the US human population) and is not associated with any disease. It is also classified as a dependent virus because its replication depends on the presence of helper viruses such as adenoviruses. Various serotypes have been isolated, with AAV-2 being the best characterized. AAV has single-stranded linear DNA that is capsid-encapsulated within capsid proteins VP1, VP2, and VP3, forming dodecahedral virions with a diameter of 20-24 nm.
[0087] The AAV DNA is 4.7 kilobases long. It contains two open reading frames, flanked by two ITRs. The AAV genome contains two main genes: rep and cap. The rep gene codes for the protein responsible for viral replication, and cap codes for the capsid proteins VP1-3. Each ITR forms a T-shaped hairpin structure. These terminal repeats are the only essential cis-components of AAV for integration into the chromosome. Therefore, AAV can be used as a vector, with all viral coding sequences removed and replaced by a cassette of genes for delivery. Three AAV viral promoters have been identified and named p5, p19, and p40 according to their map location. Transcription from p5 and p19 results in the production of the rep protein, while transcription from p40 produces the capsid protein.
[0088] AAV stands out for use within this disclosure due to its excellent safety profile, and because its capsid and genome can be modified to enable expression in selected cell populations. scAAV refers to self-complementary AAV. pAAV refers to plasmid adeno-associated virus. rAAV refers to recombinant adeno-associated virus.
[0089] Other viral vectors can also be used. For example, vectors derived from viruses such as vaccinia virus, poliovirus, and herpesvirus can be used. These offer several attractive properties for various mammalian cells.
[0090] Retroviruses. Retroviruses are a common tool for gene delivery. A "retrovirus" is an RNA virus that reverse transcribes its own genomic RNA into a linear double-stranded DNA copy and then covalently integrates its genomic DNA into the host genome. Once the virus is integrated into the host genome, it is called a "provirus." The provirus acts as a template for RNA polymerase II, directing the expression of RNA molecules that encode structural proteins and enzymes necessary to produce novel viral particles.
[0091] Examples of retroviruses suitable for use in specific embodiments include: Moroni mouse leukemia virus (M-MuLV), Moroni mouse sarcoma virus (MoMSV), Harvey mouse sarcoma virus (HaMuSV), mouse mammary tumor virus (MuMTV), gibbon leukemia virus (GaLV), feline leukemia virus (FLV), spumavirus, friend mouse leukemia virus, mouse stem cell virus (MSCV), and Rous sarcoma virus (RSV) and lentivirus.
[0092] "Lentivirus" refers to a complex group (or genus) of retroviruses. Exemplary viruses include HIV (human immunodeficiency virus; including HIV types 1 and HIV 2); Visna-Maedi virus (VMV); Caprine arthritis-encephalitis virus (CAEV); Equine infectious anemia virus (EIAV); Feline immunodeficiency virus (FIV); Bovine immunodeficiency virus (BIV); and Monkey immunodeficiency virus (SIV). In certain embodiments, an HIV-based vector skeleton (i.e., an HIV cis-acting sequence element) may be used.
[0093] Enhanced safety for the use of certain vectors can be provided by replacing the U3 region of the 5'LTR with a heterologous promoter to drive transcription of the viral genome during viral particle production. Examples of heterologous promoters that can be used for this purpose include, for example, Simian virus 40 (SV40) (e.g., early or late), cytomegalovirus (CMV) (e.g., very early), Moloney's mouse leukemia virus (MoMLV), Rous sarcoma virus (RSV), and herpes simplex virus (HSV) (thymidine kinase) promoters. Typical promoters can drive high levels of transcription in a Tat-independent manner. This replacement reduces the likelihood that recombination will result in a reproducible virus because the virus production system does not have a complete U3 sequence. In certain embodiments, heterologous promoters have additional advantages in controlling how the viral genome is transcribed. For example, a heterologous promoter may be inducible such that transcription of all or part of the viral genome occurs only in the presence of an inducer. Inducers include one or more compounds or physiological conditions such as the temperature or pH under which the host cells are cultured.
[0094] In certain embodiments, the viral vector includes a TAR element. The term "TAR" refers to a "transactivation response" gene element located in the R region of the lentiviral LTR. This element interacts with the lentiviral transactivator (tat) gene element to increase viral replication. However, this element is not required in embodiments where the U3 region of the 5' LTR is replaced by a heterologous promoter.
[0095] The "R region" refers to a region within the retroviral LTR that begins at the beginning of the capping group (i.e., the start of transcription) and ends just before the beginning of the poly(A) tail. The R region is also defined by being sandwiched between the U3 and U5 regions. During reverse transcription, the R region plays a role in moving the initial DNA from one end of the genome to the other.
[0096] In certain embodiments, the expression of heterologous sequences within a viral vector is increased by incorporating post-transcriptional regulatory elements, efficient polyadenylation sites, and optionally, transcription termination signals into the vector. Various post-transcriptional regulatory elements can increase the expression of heterologous nucleic acids. Examples include the woodchuck hepatitis virus post-transcriptional regulatory element (WPRE; Zufferey et al., 1999, J. Virol., 73:2886); the post-transcriptional regulatory element present in hepatitis B virus (HPRE) (Smith et al., Nucleic Acids Res. 26(21):4818-4827, 1998); and others (Liu et al., 1995, Genes Dev., 9:1766). In certain embodiments, the vector includes a post-transcriptional regulatory element such as WPRE or HPRE. In certain embodiments, the vector lacks or does not include a post-transcriptional regulatory element such as WPRE or HPRE.
[0097] Elements that direct the efficient termination and polyadenylation of heterologous nucleic acid transcripts can increase heterologous gene expression. Transcription termination signals are generally found downstream of polyadenylation signals. In certain embodiments, the vector contains a polyadenylation sequence at the 3' end of the polynucleotide encoding the molecule to be expressed (e.g., a protein). The terms "poly(A) site" or "poly(A) sequence" refer to a DNA sequence that directs both the termination and polyadenylation of the initial RNA transcript by RNA polymerase II. The polyadenylation sequence can promote mRNA stability by adding a poly(A) tail to the 3' end of the coding sequence and thus contribute to increased transcription efficiency. Certain embodiments may use BGHpA or SV40pA. In certain embodiments, a preferred embodiment of the expression construct includes a termination element. These elements can contribute to increasing transcription levels and minimizing read-through from this construct to other plasmid sequences.
[0098] In certain embodiments, the viral vector further comprises one or more insulator elements. The insulator elements may contribute to protecting the viral vector expression sequence, e.g., an effector element or an expressible element, from integration site effects (i.e., position effects; see, e.g., Burgess-Beusse et al., PNAS., USA, 99:16433, 2002; and Zhan et al., Hum. Genet., 109:471, 2001), which can be mediated by cis-acting elements present in the genomic DNA and result in the unregulated expression of the imported sequence. In certain embodiments, the viral transport vector comprises one or more insulator elements in the 3'LTR, and once the provirus is integrated into the host genome, the provirus replicates the 3'LTR, thereby comprising one or more insulators in both the 5'LTR and the 3'LTR. Suitable insulators for use in specific embodiments include the chicken β-globin insulator (see Chung et al., Cell 74:505, 1993; Chung et al., PNAS USA 94:575, 1997; and Bell et al., Cell 98:387, 1999), the SP10 insulator (Abhyankar et al., JBC 282:36143, 2007), or other small CTCF-recognizing sequences that function as enhancer-blocking insulators (Liu et al., Nature Biotechnology, 33:198, 2015).
[0099] Beyond the foregoing, a wide range of suitable expression vector types will be known to those skilled in the art. These may include commercially available expression vectors designed for common recombination procedures (e.g., plasmids containing one or more reporter genes and regulatory elements necessary for the expression of the reporter genes in cells). Numerous vectors are commercially available from, for example, Invitrogen, Stratagene, Clontech, etc., and are described in numerous accompanying manuals. In certain embodiments, suitable expression vectors include any plasmid, cosmid, or phage construct (e.g., pUC or Bluescript plasmid series) capable of supporting the expression of the encoded gene in mammalian cells.
[0100] Specific embodiments of the vectors disclosed herein include:
[0101] [Table 1]
[0102] In certain embodiments, SYFP2 in CN1390, CN1244, CN1389, CN1203, CN1367, CN1498, CN1499, CN1500, and CN1838 can be replaced with a channelrhodopsin or calcium reporter such as ChR2 or GCaMP. In certain embodiments, SYFP2 in CN1390 is replaced with ChR2 or GCaMP. 3XzI46i in CN1838 refers to the 3× concatemer of zebrafish I46iCore. See also Figure 16, which provides additional exemplary vector components and combinations of the present disclosure.
[0103] In certain embodiments, a viral vector (e.g., AAV) having a capsid that crosses the blood-brain barrier (BBB) is selected. In certain embodiments, the vector is modified to include a capsid that crosses the BBB. Examples of AAVs with viral capsids that can cross the blood-brain barrier include AAV9 (Gombash et al., Front Mol Neurosci. 2014;7:81), AAVrh.10 (Yang, et al., Mol Ther. 2014;22(7):1299-1309), AAV1R6, AAV1R7 (Albright et al., Mol Ther. 2018;26(2):510), rAAVrh.8 (Yang, et al., see above), AAV-BR1 (Marchio et al., EMBO Mol Med. 2016;8(6):592), AAV-PHP.S (Chan et al., Nat Neurosci. 2017;20(8):1172), and AAV-PHP.B (Deverman et al., Nat Examples include Biotechnol.2016;34(2):204) and AAV-PPS (Chen et al., Nat Med.2009;15:1215). PHP.eB capsid differs from AAV9 in that, when used as a reference, the amino acid starting at residue 586: S-AQ-A (SEQ ID NO: 98) is replaced with S-DGTLAVPFK-A (SEQ ID NO: 33).
[0104] Unlike many other naturally occurring serotypes, AAV9 is a naturally occurring AAV serotype that can cross the blood-brain barrier (BBB) after intravenous injection. It transforms large nodes of the central nervous system (CNS), thereby enabling minimally invasive treatment (Naso et al., BioDrugs. 2017;31(4):317), and has been described in connection with clinical trials for, for example, treatment of superior mesenteric artery (SMA) syndrome with AveXis (AVXS-101, NCT03505099) and CLN3 gene-associated neuronal ceroid lipofuscinosis (NCT03770572).
[0105] AAVrh.10 was first isolated from rhesus macaques and, in humans, exhibits low seropositivity compared to other common serotypes used for gene delivery purposes (Selot et al., Front Pharmacol. 2017;8:441). It has been evaluated in clinical trials LYS-SAF302, LYSOGENE, and NCT03612869.
[0106] Two variants isolated from a library of chimeric AAV vectors (AAV1 capsid domain replaced within AAVrh.10), AAV1R6 and AAV1R7, retain the ability to cross the blood-brain barrier and transform the central nervous system (CNS), while showing a significant reduction in hepatic and vascular endothelial transduction.
[0107] rAAVrh.8 was also isolated from rhesus macaques and showed comprehensive transduction of glial and neuronal cell types in clinically important areas after peripheral administration, and also exhibited reduced peripheral tissue tropism compared to other vectors.
[0108] AAV-BR1 is an AAV2 variant exhibiting the NRGTEWD (SEQ ID NO: 91) epitope, isolated during in vivo screening of a random AAV display peptide library. It exhibits high specificity, with high transgene expression in the brain with minimal off-target affinity (including liver) (Korbelin et al., EMBO Mol Med. 2016;8(6):609).
[0109] AAV-PHP.S (Addgene, Watertown, MA) is a variant of AAV9 created by the CREATE method, encoding the 7-mer sequence QAVRTSL (sequence number 92). It strongly induces peripheral sensory afferent pathways, transducing neurons in the enteric nervous system and invading the spinal cord and brainstem.
[0110] AAV-PHP.B (Addgene, Watertown, MA) is a variant of AAV9 created by the CREATE method, encoding the 7-mer sequence TLAVPFK (SEQ ID NO: 93). It transports the gene across the CNS with higher efficiency than AAV9, transducing a large portion of astrocellular cells and neurons across numerous CNS regions.
[0111] AAV-PPS is an AAV2 variant created by inserting the DSPAHPS (SEQ ID NO: 94) epitope into the AAV2 capsid, and it exhibits dramatically improved brain tropism compared to AAV2.
[0112] For additional information regarding capsids that cross the blood-brain barrier, see Chan et al., Nat. Neurosci. 2017 Aug:20(8):1172-1179.
[0113] (ii) Compositions for administration. The artificial expression constructs and vectors of this disclosure (hereinafter referred to as physiologically active components) may be formulated with carriers suitable for administration to cells, tissue sections, animals (e.g., mice, non-human primates) or humans. The physiologically active components in the compositions described herein may be prepared in a neutral form as free bases or as pharmacokinetically acceptable salts.
[0114] Pharmaceutically acceptable salts include acid addition salts (formed with free amino groups of proteins), which are formed with inorganic acids such as hydrochloric acid or phosphoric acid, or organic acids such as acetic acid, oxalic acid, tartaric acid, or mandelic acid. Salts formed with free carboxyl groups can also be derived from inorganic bases such as sodium hydroxide, potassium, ammonium, calcium, or ferric hydroxide, and organic bases such as isopropylamine, trimethylamine, histidine, and procaine.
[0115] Examples of carriers for physiologically active components include solvents, dispersions, vehicles, coatings, diluents, isotonic agents and absorption retarders, buffers, solutions, suspensions, and colloids. The use of such carriers for physiologically active components is well known in the art. Except for conventional media or agents that are incompatible with the physiologically active components, these can be used with the compositions described herein.
[0116] The phrase "pharmaceutically acceptable carrier" refers to a carrier that, when administered to humans, and in certain embodiments, when administered intravenously (e.g., posterior orbital plexus), does not cause allergic reactions or similar adverse reactions.
[0117] In certain embodiments, the composition may be formulated for intravenous, intraocular, intravitreous, parenteral, subcutaneous, intraventricular, intramuscular, intrathecal, intraspinal, oral, intraperitoneal, oral or nasal inhalation, or direct injection or administration into one or more cells, tissues, or organs.
[0118] The composition may include liposomes, lipids, lipid complexes, microspheres, fine particles, nanospheres and / or nanoparticles.
[0119] The formation and use of liposomes are generally known to those skilled in the art. Liposomes with improved serum stability and circulating half-lives have been developed (see, for example, U.S. Patent No. 5,741,516). Furthermore, various methods for liposomes and liposome-like preparations as potential drug carriers have been described (see, for example, U.S. Patents No. 5,567,434; No. 5,552,157; No. 5,565,213; No. 5,738,868; and No. 5,795,587).
[0120] This disclosure also provides pharmaceutically acceptable nanocapsule formulations of physiologically active components. Nanocapsules can generally encapsulate compounds in a stable and reproducible manner (Quintanar-Guerrero et al., Drug Dev Ind Pharm 24(12):1113-1128,1998; Quintanar-Guerrero et al., Pharm Res.15(7):1056-1062,1998; Quintanar-Guerrero et al., J.Microencapsul.15(1):107-119,1998; Douglas et al., Crit Rev Ther Drug Carrier Syst 3(3):233-261,1987). To avoid side effects due to intracellular polymer overload, ultrafine particles using polymers that are biodegradable in vivo can be designed. Biodegradable polyalkyl-cyanoacrylate nanoparticles that meet these requirements are intended for use in this disclosure. Such particles can be readily prepared as described in Couvreur et al., J Pharm Sci 69(2):199-202, 1980; Couvreur et al., Crit Rev Ther Drug Carrier Syst. 5(1)1-20, 1988; zur Muhlen et al., Eur J Pharm Biopharm, 45(2):149-155, 1998; Zambaux et al., J Control Release 50(1-3):31-40, 1998; and U.S. Patent No. 5,145,684.
[0121] The injectable compositions may include sterile aqueous solutions or dispersions, and sterile powders for the immediate preparation of sterile injectable solutions or dispersions (U.S. Patent No. 5,466,468). For delivery by injection, the form is sterile and fluid to the extent that it can be delivered by syringe. In certain embodiments, the composition is stable under manufacturing and storage conditions and may optionally contain one or more preservative compounds against the contaminating action of microorganisms such as bacteria and fungi. The carrier may be a solvent or dispersion medium containing, for example, water, ethanol, polyols (e.g., glycerol, propylene glycol, and liquid polyethylene glycol), suitable mixtures thereof, and / or vegetable oils. Appropriate fluidity can be maintained, for example, by the use of a coating such as lecithin, by maintaining the required particle size in the case of dispersions, and / or by the use of surfactants. Prevention of microbial action may be provided by various antibacterial and / or antifungal agents, such as parabens, chlorobutanol, phenol, sorbic acid, thimerosal, etc. In various embodiments, the preparation contains an isotonic agent, such as sugars or sodium chloride. The extension of absorption of the injectable composition can be achieved by including absorption-delaying agents, such as aluminum monostearate and gelatin, in the composition. The injectable composition may be preferably buffered as needed, and the diluent may be first isotonicized with sufficient saline and glucose.
[0122] The dispersions may also be prepared in glycols, liquid polyethylene glycols, and mixtures thereof, as well as in oils. As shown, under normal storage and use conditions, these preparations may contain preservatives to prevent microbial growth.
[0123] Sterile compositions can be prepared by incorporating physiologically active components with other optional components (e.g., those listed above) in an appropriate amount of solvent, followed by filtration sterilization. Generally, dispersions are prepared by incorporating various sterilized physiologically active components into a sterile vehicle containing a basic dispersion medium and other desired components (e.g., those listed above). In the case of sterile powders for the preparation of sterile injectable solutions, preferred methods of preparation may include vacuum drying and freeze-drying techniques, which yield a powder of physiologically active components and any further desired components derived from a pre-filtered sterilized solution.
[0124] Oral compositions may be presented in liquid form, such as solutions, syrups, or suspensions, or as formulations that are reconstituted before use with water or other suitable vehicles. Such liquid preparations may be prepared by conventional means using pharmaceutically acceptable additives such as suspending agents (e.g., sorbitol syrup, cellulose derivatives, or hydrogenated edible fats); emulsifiers (e.g., lecithin or acacia); non-aqueous vehicles (e.g., almond oil, oily esters, or fractionated vegetable oils); and preservatives (e.g., methyl or propyl-p-hydroxybenzoate or sorbic acid). The composition may take the form of, for example, tablets or capsules, prepared by conventional means using pharmaceutically acceptable excipients such as binders (e.g., pregelatinized corn starch, polyvinylpyrrolidone, or hydroxypropyl methylcellulose); fillers (e.g., lactose, microcrystalline cellulose, or calcium hydrogen phosphate); lubricants (e.g., magnesium stearate, talc, or silica); disintegrants (e.g., potato starch or sodium starch glycolate); or wetting agents (e.g., sodium lauryl sulfate). The tablets may be coated by methods well known in the art.
[0125] The inhalable composition may be delivered in the form of an aerosol spray preparation from a pressurized pack or nebulizer by the use of a suitable spray, such as dichlorodifluoromethane, trichlorofluoromethane, dichlorotetrafluoroethane, carbon dioxide, or other suitable gas. In the case of a pressurized aerosol, the dose unit may be determined by providing a valve for delivering the measured amount. For example, gelatin capsules and cartridges for use in inhalers or injectors may be formulated to contain a powder mixture of the compound and a suitable powder base (e.g., lactose or starch).
[0126] The composition may also include a microchip device (U.S. Patent No. 5,797,898), an ophthalmic formulation (Bourlais et al., Prog Retin Eye Res, 17(1):33-58, 1998), a transdermal matrix (U.S. Patents No. 5,770,219 and 5,783,208), and feedback-controlled delivery (U.S. Patent No. 5,697,899).
[0127] Auxiliary active ingredients can also be incorporated into the composition.
[0128] Typically, a composition may contain at least 0.1% or more of physiologically active components, but the percentage of physiologically active components may, of course, vary, and for convenience, may be 1 or 2% to 70% or 80% or more, or 0.5% to 99% of the total weight or volume of the composition. The amount of physiologically active components in each physiologically useful composition can usually be prepared in any given unit dose of the compound in a manner that yields a suitable dosage. Solubility, bioavailability, biological half-life, route of administration, product shelf life, and other pharmacological considerations are contemplated by those skilled in the art preparing such pharmaceutical formulations, and therefore, various compositions and dosages may be desirable.
[0129] In certain embodiments, for administration to humans, the composition should meet the sterility, pyrogenicity, and general safety and purity standards required by the U.S. Food and Drug Administration (FDA) or other appropriate regulatory authorities in other countries.
[0130] (iii) Cell lines containing artificial expression constructs. This disclosure includes cells containing artificial expression constructs as described herein. Cells transformed with artificial expression constructs can be used for a number of purposes, including neuroanatomical studies, evaluation of functional and / or non-functional proteins, and drug screening to assess the regulatory properties of enhancers.
[0131] Various host cell lines can be used, but in certain embodiments, the cells are mammalian nerve cells. In certain embodiments, the enhancer sequence of the artificial expression construct is SEQ ID NOs: 3 and / or 7 and / or CN1390, CN1244, CN1389, CN1203, CN1367, CN1498, CN1499, CN1500, CN1838, or a combination of components shown in Figure 16, and the cell line is human, primate, or mouse nerve cell. Cell lines that can be used for gene transfer in this disclosure also include primary cell lines derived from living tissues such as rat or mouse brains, and organelle cell cultures containing brain sections from animals such as rats or mice. The PC12 cell line (available from the United States Cell Culture Lineage Preservation Center, ATCC, Manassas, VA) has been shown to express several neuronal marker proteins in response to nerve growth factor (NGF). The PC12 cell line is considered a nerve cell line and is applicable to use in this disclosure. JAR cells (available from ATCC) are platelet-derived cell lines that express certain neuronal genes, such as the serotonin transporter gene, and may be used in the embodiments described herein.
[0132] WO91 / 13150 describes various cell lines, including neuronal cell lines, and methods for preparing them. Similarly, WO97 / 39117 describes neuronal cell lines and methods for preparing such cell lines. The neuronal cell lines disclosed in these patent applications are applicable to use in this disclosure.
[0133] In certain embodiments, “nerve cell” means one or more cells located within the central nervous system, including neurons and glial cells, as well as neoplastic cells and tumor cells derived from neurons or glial cells. “Nerve cell-derived cell” means a cell that is derived from a nerve cell, has nerve cell origins, or differentiates from a nerve cell.
[0134] In certain embodiments, “neuronal” refers to something that is of a neuron, related to a neuron, or includes a neuron. A neuron is defined by the presence of an axon and dendrites. The term “neuron-specific” refers to something or an activity that is found in or occurs in a neuron or a cell derived from a neuron, but is not found, does not occur, or substantially not found in or substantially does not occur in non-neuronal or non-neuronal cells, such as glial cells like stellates or oligodendrocytes.
[0135] In certain embodiments, non-neuronal cell lines, including mouse embryonic stem cells, may be used. Cultured mouse embryonic stem cells can be used to analyze gene construct expression using transient transfection with plasmid constructs. Mouse embryonic stem cells are pluripotent and undifferentiated. These cells can be maintained in this undifferentiated state by leukemia suppressor (LIF). Retraction of LIF induces differentiation of embryonic stem cells. In culture, stem cells form various differentiated cell types. Differentiation is triggered by the expression of tissue-specific transcription factors, making it possible to evaluate the function of enhancer sequences (see, e.g., Fiskerstrand et al., FEBS Lett 458:171-174, 1999).
[0136] A method for differentiating stem cells into nerve cells involves replacing the stem cell culture medium with a medium containing basic fibroblast growth factor (bFGF) heparin, N2 supplements (e.g., transferrin, insulin, progesterone, putrescine, and selenite), laminin, and polyornithine. A method for generating myelinated oligodendrocytes from stem cells is described in Hu, et al., 2009, Nat. Protoc. 4:1614-22. Bibel, et al., 2007, Nat. Protoc. 2:1034-43 describes a protocol for generating glutamatergic neurons from stem cells, and Chatzi, et al., 2009, Exp. Neurol. 217:407-16 describes a procedure for generating GABAergic neurons. This procedure involves exposing stem cells to all-trans RA for 3 days. Subsequently, after culturing in serum-free neuronal induction medium containing Neurobasal medium supplemented with B27, bFGF, and EGF, 95% of GABA neurons were generated.
[0137] U.S. Patent Application Publication 2012 / 0329714 describes the use of prolactin to increase the number of neural stem cells, and U.S. Patent Application Publication 2012 / 0308530 describes a culture surface having amino groups that promotes neuronal differentiation into neurons, stellates, and oligodendrocytes. Thus, the fate of neural stem cells can be controlled by various extracellular factors. Commonly used factors include brain-derived growth factor (BDNF; Shetty and Turner, 1998, J. Neurobiol. 35:395-425); fibroblast growth factor (bFGF; U.S. Patent No. 5,766,948; FGF-1, FGF-2); neurotrophin-3 (NT-3) and neurotrophin-4 (NT-4); Caldwell, et al. This includes al., 2001, Nat. Biotechnol. 1; 19:475-9); ciliary neurotrophic factor (CNTF); BMP-2 (US Patent Nos. 5,948,428 and 6,001,654); isobutyl 3-methylxanthine; leukemia-suppressing growth factor (LIF; US Patent No. 6,103,530); somatostatin; amphiregulin; neurotrophins (e.g., cyclic adenosine monophosphate; epidermal growth factor (EGF); dexamethasone (glucocorticoid hormone); forskolin; GDNF family receptor ligands; potassium; retinoic acid (US Patent No. 6,395,546); tetanus toxin; and transforming growth factor-α and TGF-β (US Patent Nos. 5,851,832 and 5,753,506).
[0138] In certain embodiments, a yeast one-hybrid system may also be used to identify compounds that inhibit specific protein / DNA interactions, such as the I56i enhancer, its core, and / or the transcription factor of SEQ ID NO: 3 and / or 7.
[0139] Transgenic animals are described below. Cell lines may be derived from such transgenic animals. For example, primary tissue cultures from transgenic mice (e.g., also described below) can provide cell lines with expression constructs already incorporated into the genome (see MacKenzie & Quinn, Proc Natl Acad Sci USA 96:15251-15255, 1999 for an example).
[0140] (iv) Transgenic animals. Another aspect of the present disclosure includes transgenic animals whose genome comprises an artificial expression construct comprising concatemerization of I56i enhancer cores such as SEQ ID NOs. 2 and / or 6 (e.g., SEQ ID NOs. 3 and / or 7) operably linked to heterologous coding sequences. In certain embodiments, the genome of a transgenic animal comprises CN1390, CN1244, CN1389, CN1203, CN1367, CN1498, CN1499, CN1500, CN1838, or a combination of the components shown in Figure 16. In certain embodiments, when a non-integrated vector is used, the transgenic animal includes in one or more artificial expression constructs containing concatemerizations of I56i enhancer cores such as SEQ ID NO: 2 and / or 6 (e.g., SEQ ID NO: 3 and / or 7) within its cells, and / or combinations of CN1390, CN1244, CN1389, CN1203, CN1367, CN1498, CN1499, CN1500, CN1838, or the components shown in Figure 16.
[0141] Detailed methods for producing transgenic animals are described in U.S. Patent No. 4,736,866. Transgenic animals may be any non-human species, but preferably include non-human primates (NHPs), sheep, horses, cattle, pigs, goats, dogs, cats, rabbits, chickens, and rodents such as guinea pigs, hamsters, gerbils, rats, mice, and ferrets.
[0142] In certain embodiments, constructing a transgenic animal results in an organism having an engineered construct present in all cells at the same genomic integration site. Therefore, cell lines derived from such transgenic animals will be consistent insofar as the engineered construct is at the same genomic integration site in all cells, and thus will suffer from the same position-effect variability. In contrast, introducing a gene into a cell line or primary cell culture can induce heterologous expression of the construct. The drawback of this approach is that the expression of the introduced DNA may be influenced by the specific genetic background of the host animal.
[0143] As shown above with respect to cell lines, the artificial expression constructs of this disclosure can be used to genetically modify mouse embryonic stem cells using techniques known in the art. Typically, the artificial expression construct is introduced into cultured mouse embryonic stem cells. The transformed ES cells are then injected into a blastocyst from a host mother, and the host embryo is re-implanted into the mother. This results in a chimeric mouse whose tissues are composed of cells derived from both embryonic stem cells present in the cultured cell line and embryonic stem cells present in the host embryo. Typically, the mice from which the cultured ES cells used for gene transfer originate are selected to have a different coat color than the host mouse into which the transformed cells are injected. Thus, chimeric mice have a variety of coat colors. As long as the germline tissues are at least partially derived from the genetically modified cells, the chimeric mice can be crossed with an appropriate strain to produce offspring with the transgene.
[0144] In addition to the delivery methods described above, the following technologies are also intended as alternative methods for delivering artificial expression constructs to target cells or selected tissues and organs in animals, particularly cells, organs, or tissues of vertebrate mammals: sonophoresis (e.g., ultrasound as described in U.S. Patent No. 5,656,016); intraosseous injection (U.S. Patent No. 5,779,708); microchip devices (U.S. Patent No. 5,797,898); ophthalmic formulations (Bourlais et al., Prog Retin Eye Res, 17(1):33-58, 1998); transdermal matrices (U.S. Patents No. 5,770,219 and 5,783,208); and feedback-controlled delivery (U.S. Patent No. 5,697,899).
[0145] (v) Method of use. In certain embodiments, a composition comprising the physiologically active components described herein is administered to a subject to produce a physiological effect.
[0146] In certain embodiments, this disclosure includes the use of the artificial expression constructs described herein to modulate the expression of heterologous genes partially or completely encoded at a downstream position of the enhancer in the manipulated sequence. Accordingly, this specification provides methods for using the disclosed artificial expression constructs in the research, testing and potential development of pharmaceuticals for the prevention, treatment or improvement of symptoms of disease, dysfunction or disorder.
[0147] Certain embodiments include a method of administering an artificial expression construct comprising SEQ ID NO: 2, SEQ ID NO: 6, SEQ ID NO: 3 and / or SEQ ID NO: 7 as described herein to drive the selective expression of a gene in a selected neuronal cell type.
[0148] Specific embodiments include a method for driving the selective expression of a gene in a selected neuronal cell type by administering an artificial expression construct comprising CN1390, CN1244, CN1389, CN1203, CN1367, CN1498, CN1499, CN1500, CN1838, or a combination of components shown in Figure 16 as described herein, to a subject, wherein the subject may be isolated cells, a network of cells, a tissue section, an experimental animal, a veterinary animal, or a human.
[0149] As is well known in the medical field, the dosage for any given subject depends on many factors, including the size, surface area, age, the specific compound being administered, sex, time and route of administration, overall condition, and other drugs administered concurrently. The dosage of the compounds of this disclosure will vary, but in certain embodiments, the dose is 10% of the artificial expression construct of this disclosure. 5 ~10 100 It may be a copy. In certain embodiments, patients receiving intravenous, intraspinal, posterior orbital, or intrathecal administration of the artificial expression construct 10 6 ~10 22 A copy may be injected.
[0150] An "effective dose" is the amount of a composition required to produce a desired physiological change in a subject. Effective doses are typically administered for research purposes. The effective doses disclosed herein may produce statistically significant effects in animal models or in vitro assays.
[0151] In certain embodiments, the constructs disclosed herein can be used to treat Dravet syndrome. In certain embodiments, the method reduces or prevents seizures or their symptoms in patients who require it. In certain embodiments, the method provided can reduce or prevent one or more different types of seizures. Ideally, the method of the disclosure results in complete prevention of seizures. However, the disclosure also includes methods that reduce the number of seizure occurrences by at least 10%, at least 20%, at least 30%, at least 40%, at least 50%, at least 60%, at least 70%, at least 80%, or at least 90%.
[0152] In general, seizures can include convulsions, repetitive movements, paresthesia, and combinations thereof. Seizures can be classified into focal seizures (also called partial seizures) and generalized seizures. Focal seizures occur on only one side of the brain, while generalized seizures occur on both sides of the brain. Specific types of focal seizures include simple focal seizures, complex focal seizures, and secondary generalized seizures. Simple focal seizures may be limited to or concentrated in a specific lobe of the brain (e.g., the temporal, frontal, parietal, or occipital lobes). Complex focal seizures generally occur in a larger area of one hemisphere than simple focal seizures, but typically occur in the temporal or frontal lobe. When a focal seizure spreads from one side (hemisphere) of the brain to both sides, this seizure is called a secondary generalized seizure. Specific types of generalized seizures include absence seizures (also called petit mal seizures), tonic seizures, atonic seizures, myoclonic seizures, tonic-clonic seizures (also called grand mal seizures), and clonic seizures.
[0153] In certain embodiments, the methods described herein may reduce the frequency of seizures, lessen the severity of seizures, change the type of seizures (e.g., from more severe to less severe), or a combination thereof, in a patient after treatment compared to no treatment (e.g., before treatment) or compared to treatment with alternative conventional treatments.
[0154] The amount of expression construct and the duration of administration of such compositions are within the scope of those skilled in the art who benefit from this teaching. However, administration of an effective amount of the disclosed composition may be achieved by a single dose, such as a single injection of a sufficient number of infected particles to produce an effect in the subject. Alternatively, in some situations, it may be desirable to provide multiple or consecutive doses of the artificial expression construct composition or other gene construct over a relatively short or relatively long period, as can be determined by the individual supervising the administration of such composition. For example, the number of infected particles administered to a mammal may be 10, given as a single dose or divided into two or more doses, as required to achieve the intended effect. 7 , 10 8, 10 9 , 10 10 , 10 11 , 10 12 , 10 13 or even higher amounts of infectious particles / ml. Indeed, in certain embodiments, it may be desirable to administer a combination of two or more different expression constructs to achieve the desired effect.
[0155] In certain situations, it may be desirable to deliver the appropriately formulated artificial expression constructs of the compositions disclosed herein by pipette, retro-orbital injection, subcutaneous, intraocular, intravitreal, parenteral, subcutaneous, intravenous, intracerebroventricular, intramuscular, intrathecal, intraspinal, oral, intraperitoneal, by oral or nasal inhalation, or by direct application or injection into one or more cells, tissues or organs. The methods of administration may also include those described in U.S. Patent No. 5,543,158; U.S. Patent No. 5,641,515 and U.S. Patent No. 5,399,363.
[0156] (vi) Kits and commercial packages. Kits and commercial packages include the artificial expression constructs described herein. The expression constructs may be isolated. In certain embodiments, the components of the expression product may be isolated from each other. In certain embodiments, the expression product may be within a vector, within a viral vector, within a cell, within a tissue section or sample, and / or within a transgenic animal. Such kits may further include one or more reagents, restriction enzymes, peptides, therapeutic agents, pharmaceutical compounds, or means for delivery of the composition, such as syringes, injectables.
[0157] Embodiments of the kit or commercial package may also include, for example, instructions regarding the use of the components included in basic research, electrophysiological research, neuroanatomical research, and / or the research and / or treatment of disorders, diseases or conditions.
[0158] The following exemplary and experimental embodiments are included to illustrate specific embodiments of the Disclosure. Those skilled in the art should recognize in light of the Disclosure that many modifications can be made to specific embodiments disclosed herein, and that similar or analogous results can still be obtained without departing from the spirit and scope of the Disclosure.
[0159] (vii) Exemplary embodiment.
[0160] 1. I56i enhancer core, concatenated I56i enhancer core, or concatenated I56i enhancer.
[0161] 2. An I56i enhancer core, a concatemerized I56i enhancer core, or a concatemerized I56i enhancer according to Embodiment 1, wherein the I56i enhancer is human, mouse, or zebrafish (I46i).
[0162] 3. An I56i enhancer core, a concatemerized I56i enhancer core, or a concatemerized I56i enhancer according to Embodiment 1 or 2, wherein the concatemerized core includes Sequence ID No. 2 or 6.
[0163] 4. An I56i enhancer core, a concatenated I56i enhancer core, or a concatenated I56i enhancer according to any of Embodiments 1 to 3, wherein the concatenated core includes 2, 3, 4, 5, 6, 7, 8, 9, or 10 copies of the I56i core.
[0164] 5. An I56i enhancer core, concatemerized I56i enhancer core, or concatemerized I56i enhancer of Embodiment 4, comprising 2, 3, 4, 5, 6, 7, 8, 9, or 10 copies of sequence numbers 2 and / or 6 (e.g., sequence numbers 2 and 6 within a single sequence, such as sequence number 2-sequence number 2-sequence number 6; sequence number 2-sequence number 6-sequence number 6; sequence number 2-sequence number 6-sequence number 2; sequence number 6-sequence number 2-sequence number 2; and sequence number 6-sequence number 2-sequence number 6).
[0165] 6. An I56i enhancer core, concatemerized I56i enhancer core, or concatemerized I56i enhancer of Embodiment 4 or 5, including copies 2, 3, 4, 5, 6, 7, 8, 9, or 10 of Sequence ID No. 2.
[0166] 7. An I56i enhancer core, concatenated I56i enhancer core, or concatenated I56i enhancer of Embodiment 4 or 5, including copies 2, 3, 4, 5, 6, 7, 8, 9, or 10 of Sequence ID No. 6.
[0167] 8. An I56i enhancer core, concatenated I56i enhancer core, or concatenated I56i enhancer according to Embodiment 4 or 5, including three copies of Sequence ID No. 2.
[0168] 9. An I56i enhancer core, concatenated I56i enhancer core, or concatenated I56i enhancer according to Embodiment 4 or 5, including three copies of Sequence ID No. 6.
[0169] 10. An I56i enhancer core, a concatemerized I56i enhancer core, or a concatemerized I56i enhancer according to Embodiment 8, wherein the concatemerized core includes Sequence ID No. 3.
[0170] 11. An I56i enhancer core, a concatemerized I56i enhancer core, or a concatemerized I56i enhancer according to Embodiment 9, wherein the concatemerized core includes Sequence ID No. 7.
[0171] 12. An artificial expression construct comprising (i) an I56i enhancer core of any of Embodiments 1 to 11, a concatemerized I56i enhancer core, or a concatemerized I56i enhancer; (ii) a promoter; and (iii) a heterogeneous coding sequence.
[0172] 13. An artificial expression construct of Embodiment 12, wherein heterogeneous coding sequences code for effector elements or expressible elements.
[0173] 14. An artificial expression construct of Embodiment 12 or 13, wherein the effector element comprises a reporter protein or a functional molecule.
[0174] 15. An artificial expression construct of Embodiment 14, wherein the reporter protein is a fluorescent protein.
[0175] 16. An artificial expression construct of Embodiment 14 or 15, wherein the effector element is a functional molecule selected from Cre, iCre, dgCre, FlpE, FlpO, or tTA2, or a designer receptor (DREADD) that is activated only by a functional ion transporter, enzyme, transcription factor, receptor, membrane protein, cell transport protein, signaling molecule, neurotransmitter, calcium reporter, channelrhodopsin, CRISPR / CAS molecule, editase, guide RNA molecule, homologous recombination donor cassette, or designer drug.
[0176] 17. An artificial expression construct of any of Embodiments 13, wherein the expressible element is a non-functional molecule.
[0177] 18. An artificial expression construct of Embodiment 17, wherein the non-functional molecule is a non-functional ion transporter, enzyme, transcription factor, receptor, membrane protein, cell transport protein, signaling molecule, neurotransmitter, calcium reporter, channelrhodopsin, CRISPR / CAS molecule, editase, guide RNA molecule, homologous recombination donor cassette, or DREADD.
[0178] 19. An artificial expression construct according to any of embodiments 12 to 18, wherein the expression construct is bound to a capsid that crosses the blood-brain barrier.
[0179] 20. An artificial expression construct of Embodiment 19, wherein the capsid comprises PHP.eB, AAV-BR1, AAV-PHP.S, AAV-PHP.B, or AAV-PPS.
[0180] 21. An artificial expression construct of any of Embodiments 12 to 20, wherein the expression construct includes or encodes a skipping element.
[0181] 22. An artificial expression construct of Embodiment 21, wherein the skipping element comprises the 2A peptide and / or an internal ribosome entry site (IRES).
[0182] An artificial expression construct of Embodiment 22, wherein the 23.2A peptide is selected from T2A, P2A, E2A, or F2A.
[0183] 24. An artificial expression construct of any of Embodiments 12 to 23, wherein the expression construct includes 3XhI56Core, minBglobin, minCMV, SYFP2, His, 3xHA, NavMs, NavBp, NavSheP-D60N, WPRE3, BGHpA, or a set of features selected from combinations of features selected from the constructs shown in Figure 16.
[0184] 25. A vector comprising an artificial expression construct of any of embodiments 12 to 24.
[0185] 26. A vector containing the combination of components shown in Figure 16.
[0186] 27. The vector of Embodiment 26, wherein the vector is a viral vector.
[0187] 28. The vector of Embodiment 26 or 27, wherein the viral vector is a recombinant adeno-associated virus (AAV) vector.
[0188] 29. An adeno-associated virus (AAV) vector comprising at least one heterologous coding sequence, wherein the heterologous coding sequence is under the control of a promoter and enhancer selected from sequence numbers 3 and / or 7.
[0189] 30. A reproducible AAV vector of embodiment 29.
[0190] 31. Transgenic cells comprising any of the expression constructs or vectors described in the above embodiments.
[0191] 32. Transgenic cells of embodiment 31, which are GABAergic interneurons.
[0192] 33. A non-human transgenic animal comprising any of the expression constructs, vectors, or transgenic cells of the above embodiments.
[0193] 34. A non-human transgenic animal of Embodiment 33, which is a mouse or a non-human primate.
[0194] 35. An administerable composition comprising an expression construct, vector, or transgenic cell from any of the embodiments described above.
[0195] 36. A kit comprising any of the above embodiments' expression constructs, vectors, transgenic cells, transgenic animals, and / or administerable compositions.
[0196] 37. A method for selectively expressing heterologous genes in a population of nerve cells in vivo or in vitro, comprising providing an administerable composition of Embodiment 35 to a sample or subject containing a population of nerve cells in a sufficient dose and for a sufficient time, thereby selectively expressing genes in the population of nerve cells.
[0197] 38. The method of Embodiment 37, wherein heterologous genes encode an effector element or an expressible element.
[0198] 39. The method of Embodiment 38, wherein the effector element comprises a reporter protein or a functional molecule.
[0199] 40. The method of Embodiment 39, wherein the reporter protein is a fluorescent protein.
[0200] 41. The method of Embodiment 39 or 40, wherein the effector element is Cre, iCre, dgCre, FlpE, FlpO, or tTA2, or a functional molecule selected from functional ion transporters, enzymes, transcription factors, receptors, membrane proteins, cell transport proteins, signaling molecules, neurotransmitters, calcium reporters, channelrhodopsins, CRISPR / CAS molecules, editases, guide RNA molecules, homologous recombination donor cassettes, or DREADD.
[0201] 42. The method of Embodiment 38, wherein the expressible element is a non-functional molecule.
[0202] 43. The method of Embodiment 42, wherein the non-functional molecule is a non-functional ion transporter, enzyme, transcription factor, receptor, membrane protein, cell transport protein, signaling molecule, neurotransmitter, calcium reporter, channelrhodopsin, CRISPR / CAS molecule, editase, guide RNA molecule, homologous recombination donor cassette, or DREADD.
[0203] 44. A method according to any of embodiments 37 to 43, wherein the provision includes pipetting.
[0204] 45. The method of Embodiment 44, wherein pipetting is performed on brain sections.
[0205] 46. The method of Embodiment 45, wherein the brain section contains GABAergic interneurons.
[0206] 47. The method according to either embodiment 45 or 46, wherein the brain section is from a mouse, human, or non-human primate.
[0207] 48. A method of provision including administration to a living subject, according to any of Embodiments 37 to 43.
[0208] 49. The method of Embodiment 48, wherein the living subject is a human, a non-human primate, or a mouse.
[0209] 50. A method of administration to a living subject by injection, as described in either embodiment 48 or 49.
[0210] 51. The method of Embodiment 50, wherein the injection includes intravenous injection, intraparenchymal injection into brain tissue, intraventricular (ICV) injection, intracisional (ICM) injection, or intrathecal injection.
[0211] 52. Artificial expression constructs consisting of, or essentially derived from, the combination of features shown in Figure 16.
[0212] 53. Ion transporters selected from voltage-opening sodium channels (e.g., SCN1A), potassium channels (e.g., KCNQ2), or calcium channels (e.g., CACNA1C); cell transport proteins selected from clathrin, dynamin, caveolin, Rab-4A, or Rab-11A; enzymes selected from lactase, lipase, helicase, α-glucosidase, and amylase; transcription factors selected from SP1, AP-1, heat shock factor protein 1, C / EBP (CCAA-T / enhancer-binding protein), and Oct-1; receptors selected from transforming growth factor receptor β1, platelet-derived growth factor receptor, epidermal growth factor receptor, vascular endothelial growth factor receptor, and interleukin-8 receptor α; nerve growth factor (NGF), platelet-derived growth factor (PDGF), transforming growth factor β (TGFβ), epidermal growth factor (EGF), and GTPase Signaling molecules selected from HRas; neurotransmitters selected from cocaine and amphetamine regulatory transcripts, substance P, oxytocin and somatostatin; gene-encoded calcium indicators (GECI, NTnC, GCaMP6s, GCaMP6f, GCaMP6m, jGCaMP7s, jGCaMP7f, jGCaMP7b, jGCaMP7c, jRGECO1a, jRGECO1b), myosin light chain kinase, green fluorescent protein, calmodulin chimera, calcium indicator TN-XXL, BRET-based autoluminescent calcium Any of the above embodiments comprises: a calcium reporter selected from the calcium indicator protein OeNL(Ca2+)-18u); a channelrhodopsin selected from channelrhodopsin-1 and channelrhodopsin-2 or a variant thereof; guide RNA; a nuclease selected from Cas, Cas9, Cpf1, ribonuclease 4 and deoxyribonuclease IIβ; and / or an effector element or expressible element that is DREADD (e.g., hM3DREADD, hM4DREADD).
[0213] In this disclosure, if the context describes a reference to or use of the zebrafish type of enhancer described herein, I56i should be interpreted as I46i.
[0214] (viii) Experimental Cases Dravet syndrome (DS) is a drug-resistant, life-threatening form of epilepsy. It typically begins in the first year of life, with fever or body temperature-induced seizures progressing to generalized clonic seizures, tonic-clonic seizures, and unilateral seizures. These seizures are usually resistant to current antiepileptic drugs, which are the first-line treatment for this syndrome, and complete seizure control is typically not achieved. As the disease progresses, most affected children also develop comorbidities, including developmental delay, intellectual disability, impaired motor control and coordination, autistic behaviors, and sleep disturbances, and many die prematurely.
[0215] Heterozygous loss-of-function mutations in SCN1A, the gene encoding the pore-forming subunit of the voltage-opening sodium channel Nav1.1, are the most common cause of DS, occurring in approximately 1 in 16,000 newborns.
[0216] Mouse models created by knocking out Scn1a reproduce several key phenotypic features of this epilepsy, including infantile (P21) epilepsy onset, high susceptibility to febrile seizures, ataxia, spontaneous seizures, sleep disturbances, autistic behaviors, and premature death. Seizures and some comorbidities arise from impaired interneuronal function in these mice.
[0217] This mouse model was used to investigate the effectiveness of a novel viral vector against DS. The virus was delivered by post-orbital injection using an insulin syringe, and its ability to suppress seizures was evaluated using a thermal seizure test. In this test, a thermocontroller and heat lamp were used to slowly raise the core body temperature of the mice until a seizure occurred or until it reached 42.5°C. The effectiveness of the intervention was determined by comparing the seizure onset temperature of treated mice with that of control mice. Additional tests evaluated the effectiveness of the treatment against spontaneous seizures and early mortality using video and electroencephalogram monitoring.
[0218] The viral vector is a novel AAV viral vector named CN1500. This viral vector is a recombinant AAV that expresses the transgene SYFP2-P2A-NavSheP-D60N to rescue a deficiency in the voltage-opening sodium channel Nav1.1. NavSheP-D60N is a modified bacterial voltage-opening sodium channel modified to improve its dynamics and expression in mammalian cells. The transgene expression level is elevated by the addition of the WPRE3 element, and transcription terminates at a bovine growth hormone polyadenylated sequence. Transgene expression is high and restricted to inhibitory cells in forebrain structures, including the cortex and hippocampus, via the 3xhI56iCore synthetic enhancer (SEQ ID NO: 3) located 5' immediately after the CMV minimal promoter. Furthermore, the therapeutic transgene NavSheP-D60N is labeled with an HA epitope tag to confirm correct protein localization.
[0219] To test the efficacy of therapeutic AAV virus vectors, a CN1500 package using the PHP.eB serotype was used. (Scn1a at 35 days postpartum) + / - In a cohort of mice, 2 x 10 per animal 11VG was either injected or left uninjected. AAV was introduced intravenously using the posterior orbital delivery route. Two weeks after viral administration, the susceptibility of the treated and control groups of animals to febrile seizures was evaluated. As previously shown, febrile seizures were measured by steadily raising the body temperature of mice under a heating lamp at 0.5 degrees Celsius every two minutes and measuring the internal body temperature of the mice with a rectal probe. The body temperature at which the mice experienced seizures was recorded.
[0220] The novel therapeutic vector CN1500 was highly expressed in GABAergic cells in both the mouse cortex and hippocampus, but Scn1a experienced fever. + / - The average body temperature of the mice also increased from 38.7°C to 41°C. These data suggest that CN1500 can effectively rescue Scn1a deficiency.
[0221] The references for Example 1 include: Catterall et al. (2010) The Journal of Physiology 588:1849-1859; Cheah et al. (2012) Proceedings of the National Academy of Sciences of the United States of America 109:14646-14651; Kalume (2013) Respiratory Physiol Neurobiol. 189(2):324-8;Kalume et al.,(2007)J Neurosci 27:11065-11074;Kalume et al.,(2013)The Journal of clinical investigation 123:1798-1808;Oakley et al.,(2009)Proceedings of the National Academy of Sciences of the United States of America 106:3994-3999.
[0222] (ix) Concluding paragraph. Nucleic acid sequences described herein are indicated using standard letter abbreviations for nucleotide bases as defined in U.S. Patent Law Enforcement Rules (37 C. FR) 1.822. Only single strands of each nucleic acid sequence are shown, but complementary strands are understood to be included in embodiments where appropriate.
[0223] This includes variants of sequences disclosed and referred to herein. Guidance on determining which amino acid residues may be substituted, inserted, or deleted without impairing biological activity can be found using computer programs such as the art-well-known DNASTAR™ (Madison, Wisconsin) software. Preferably, amino acid modifications in protein variants disclosed herein are conservative amino acid modifications, i.e., substitutions of similarly charged or uncharged amino acids. Conservative amino acid modifications include substitutions of one family of related amino acids in their side chains.
[0224] Suitable conserved amino acid substitutions in peptides or proteins are known to those skilled in the art and can generally be performed without altering the biological activity of the resulting molecule. Those skilled in the art generally recognize that a single amino acid substitution in a non-essential region of a polypeptide does not substantially alter its biological activity (see, for example, Watson et al., Molecular Biology of the Gene, 4th Edition, 1987, The Benjamin / Cummings Pub. Co., p. 224). Naturally occurring amino acids are generally classified into the following conserved substitution families: Group 1: Alanine (Ala), Glycine (Gly), Serine (Ser), and Threonine (Thr); Group 2: (Acidic): Aspartic acid (Asp) and Glutamic acid (Glu); Group 3: (Acidic; also classified as polar, negatively charged residues and their amides): Asparagine (Asn), Glutamine (Gln), Asp, and Glu; Group 4: Gln and Asn; Group 5: (Basic; also classified as polar, positively charged residues): Arginine (Arg), Lysine (Lys), and Histidine (His); Group 6: (Large aliphatic, nonpolar residues): Isoleucine ( Group 7 (non-charged): tyrosine (Tyr), Gly, Asn, Gln, Cys, Ser, and Thr; Group 8 (large aromatic residues): phenylalanine (Phe), tryptophan (Trp), and Tyr; Group 9 (non-polar): proline (Pro), Ala, Val, Leu, Ile, Phe, Met, and Trp; Group 11 (aliphatic): Gly, Ala, Val, Leu, and Ile; Group 10 (small aliphatic, non-polar or slightly polar residues): Ala, Ser, Thr, Pro, and Gly; and Group 12 (sulfur-containing): Met and Cys. Further information can be found in Creighton (1984) Proteins, WH Freeman and Company.
[0225] When making such modifications, the hydropathic index of amino acids may be considered. The importance of the hydropathic amino acid index in conferring interactive biological functions to proteins is generally understood in this field (Kyte and Doolittle, 1982, J.Mol.Biol.157(1),105-32). Each amino acid is assigned a hydropathic index based on its hydrophobic and charge properties (Kyte and Doolittle, 1982). These values are as follows: Ile(+4.5); Val(+4.2); Leu(+3.8); Phe(+2.8); Cys(+2.5); Met(+1.9); Ala(+1.8); Gly(-0.4); Thr(-0.7); Ser(-0.8); Trp(-0.9); Tyr(-1.3); Pro(-1.6); His(-3.2); Glutamate(-3.5); Gln(-3.5); Aspartate(-3.5); Asn(-3.5); Lys(-3.9); and Arg(-4.5).
[0226] It is known in the art that a specific amino acid can be substituted with another amino acid having a similar hydrophobic index and score to produce a protein with similar biological activity, i.e., a biologically functional equivalent protein. When making such a modification, substitutions of amino acids with a hydrophobic index of ±2 are preferred, those within ±1 are particularly preferred, and those within ±0.5 are even more particularly preferred. It is also understood in the art that substitutions of similar amino acids can be effectively carried out based on hydrophilicity.
[0227] As detailed in U.S. Patent No. 4,554,101, the following hydrophilic values are assigned to amino acid residues: Arg (+3.0); Lys (+3.0); Aspartate (+3.0±1); Glutamate (+3.0±1); Ser (+0.3); Asn (+0.2); Gln (+0.2); Gly (0); Thr (-0.4); Pro (-0.5±1); Ala (-0.5); His (-0.5); Cys (-1.0); Met (-1.3); Val (-1.5); Leu (-1.8); Ile (-1.8); Tyr (-2.3); Phe (-2.5); Trp (-3.4). It is understood that amino acids can be substituted with other amino acids having similar hydrophilic values to still obtain bioequivalent, in particular, immunoequivalent proteins. With such modifications, substitutions of amino acids with a hydrophilicity value of ±2 are preferred, those with a value of ±1 or less are particularly preferred, and those with a value of ±0.5 or less are even more particularly preferred.
[0228] As outlined above, amino acid substitutions can be based on the relative similarities of amino acid side-chain substituents, such as their hydrophobicity, hydrophilicity, charge, and size.
[0229] As shown elsewhere, gene sequence variants may include codon-optimizing variants, sequence polymorphisms, splicing variants, and / or mutations that do not affect the function of the encoded product to a statistically significant degree.
[0230] Variants of proteins, nucleic acids, and gene sequences disclosed herein also include sequences having at least 70% sequence identity, 80% sequence identity, 85% sequence identity, 90% sequence identity, 95% sequence identity, 96% sequence identity, 97% sequence identity, 98% sequence identity, or 99% sequence identity with the proteins, nucleic acids, and gene sequences disclosed herein.
[0231] "% sequence identity" refers to the relationship between two or more sequences determined by comparing them. In this field, "identity" also means the degree of sequence relevance between proteins, nucleic acids, or gene sequences, determined by the fit between such sequence strands. "Identity" (often also called "similarity") can be readily calculated by known methods, including those described below: Computational Molecular Biology (Lesk, AM, ed.) Oxford University Press, NY (1988); Biocomputing: Informatics and Genome Projects (Smith, DW, ed.) Academic Press, NY (1994); Computer Analysis of Sequence Data, Part I (Griffin, AM, and Griffin, HG, eds.) Humana Press, NJ (1994); Sequence Analysis in Molecular Biology (Von Heijne, G., ed.) Academic Press (1987); and Sequence Analysis Primer (Gribskov, M. and Devereux, J., eds.) Oxford University Press, NY (1992). Preferred methods for determining identity are designed to give the best fit between sequences being tested. Methods for determining identity and similarity are systematized in publicly available computer programs. Sequence alignment and percentage identity calculations can be performed using the Megalign program in the LASERGENE bioinformatics computing suite (DNASTAR, Inc., Madison, Wisconsin). Multiple sequence alignments can also be performed using the Clustal alignment method (using default parameters (gap penalty = 10, gap length penalty = 10) as described by Higgins and Sharp, CABIOS, 5, 151-153 (1989)).Appropriate programs also include: GCG suite of programs (Wisconsin Package Version 9.0, Genetics Computer Group (GCG), Madison, Wisconsin); BLASTP, BLASTN, BLASTX (Altschul, et al., J.Mol.Biol.215:403-410 (1990); DNASTAR (DNASTAR, Inc., Madison, Wisconsin); and FASTA program incorporating the Smith-Waterman algorithm (Pearson, Comput.Methods Genome Res., [Proc.Int.Symp.] (1994), Meeting Date 1992, 111-20. Editor(s): Suhai, Sandor. Publisher: Plenum, New York, NY. Within the context of this disclosure, if sequence analysis software is used, it will be understood that the results of the analysis will be based on the “default values” of the referenced program. As used herein, “default values” means any set of values or parameters that are initially loaded with the software when the software is first initialized.
[0232] The variants also include nucleic acids that hybridize to the sequences disclosed herein under stringent hybridization conditions and provide the same functionality as the reference sequence. Exemplary stringent hybridization conditions include: 50% formamide, 5XSSC (750 mM NaCl, 75 mM trisodium citrate), 50 mM sodium phosphate (pH 7.6), 5X Denhardt's solution, 10% dextran sulfate, and 20 μg / ml denatured shear salmon sperm DNA, incubated overnight at 42°C, followed by washing the filter with 0.1XSSC at 50°C. Changes in the stringency of hybridization and signal detection are first achieved through manipulation of formamide concentration (lower percentages of formamide result in lower stringency); salt conditions; or temperature. For example, moderately high stringency conditions include incubation at 37°C overnight in a solution containing 6XSSPE (20XSSPE = 3M NaCl; 0.2M NaH2PO4; 0.02M EDTA, pH 7.4), 0.5% SDS, 30% formamide, and 100 μg / ml salmon sperm blocking DNA; followed by washing at 50°C with 1XSSPE and 0.1% SDS. In addition, to achieve lower stringency, washing with a higher salt concentration (e.g., 5XSSC) may be performed after stringent hybridization. Variations of the above conditions may be achieved through the inclusion and / or substitution of alternative blocking reagents used to suppress background in hybridization experiments. Typical blocking reagents include Denhardt's reagent, BLOTTO, heparin, denatured salmon sperm DNA, and commercially available proprietary formulations. The inclusion of specific blocking reagents may necessitate modifications to the hybridization conditions described above due to compatibility issues.
[0233] As those skilled in the art will understand, each embodiment disclosed herein may include, be essentially composed of, or consist of certain mentioned elements, steps, components, or constituents. Accordingly, the terms “include” or “including” should be interpreted as enumerating: “comprise,” “consist of,” or “consist essentially of.” The transition terms “comprise” or “comprises” mean to include, but not limited to, elements, steps, components, or constituents not specifically identified, even if in large quantities. The transition phrase “consisting of” excludes all elements, steps, components, or constituents not specifically identified. The transition phrase “consisting essentially of” limits the scope of the embodiment to the identified elements, steps, components, or constituents, and those that do not substantially affect this embodiment. The substantial effect will be a statistically significant decrease in selective expression in the targeted cell population determined by scRNA-Seq and the following enhancer / targeted cell population pairing: concatemerized core (e.g., SEQ ID NO: 3) / GABAergic interneuron of the I56i enhancer.
[0234] Unless otherwise indicated, all numerical values used herein and in the claims, such as quantities of components, molecular weights and other properties, and reaction conditions, are understood to be modified in all cases by the term "approximately." Therefore, unless otherwise indicated, the numerical parameters shown herein and in the appended claims are approximate and may vary depending on the desired properties sought by the present invention. At a minimum, and without the intention of limiting the application of the doctrine of equivalents of the claims, all numerical parameters should be interpreted at least in light of the reported number of significant figures and by applying common rounding techniques. Where further clarity is needed, the term “approximately” when used in conjunction with a given number or range has the meaning reasonably attributable to a person skilled in the art, namely, indicating a range that is somewhat more or somewhat less than the given number or range, and within the range of ±20%; ±19%; ±18%; ±17%; ±16%; ±15%; ±14%; ±13%; ±12%; ±11%; ±10%; ±9%; ±8%; ±7%; ±6%; ±5%; ±4%; ±3%; ±2%; or ±1% of the given number.
[0235] Although the numerical ranges and parameters representing the broad scope of the present invention are approximations, the numerical values shown in specific embodiments are reported as accurately as possible. However, any numerical value inherently contains certain errors that inevitably arise from the standard deviation found in each test measurement.
[0236] Unless otherwise indicated herein or unless clearly inconsistent with the context, the terms “a,” “an,” “the,” and similar references used in the context describing the invention (in particular, in the context of the following claims) are to be construed as covering both singular and plural forms. The enumeration of ranges of values herein is merely intended to serve as a method of abbreviated notation, referring individually to each of the distinct numerical values that fall within the range. Unless otherwise indicated herein, each individual value is incorporated herein as as it is individually listed herein. All methods described herein may be carried out in any preferred order unless otherwise indicated herein or unless clearly inconsistent with the context. Any and all embodiments or exemplary words (e.g., “such as”) presented herein are intended solely to better illustrate the invention and not to limit the scope of the claimed invention. Nothing in this specification should be construed as indicating that an unclaimed element is essential for carrying out the invention.
[0237] The classification of alternative elements or embodiments of the present invention disclosed herein shall not be construed as limiting. Members of each group may be referred to and claimed individually or in any combination with other members of that group or other elements found herein. It is expected that one or more members of a group may be included in or excluded from a group for convenience and / or patentability. Where any such inclusion or exclusion occurs, this specification shall be deemed to include this group, so as to be qualified to satisfy the description of all Markush groups used in the appended claims.
[0238] Certain embodiments of the present invention are described herein, including the best modes known to the inventors for carrying out the invention. Naturally, modifications of these described embodiments will be apparent to those skilled in the art by reading the foregoing description. The inventors anticipate that those skilled in the art will appropriately utilize such modifications, and they intend that the invention will be carried out in ways other than those specifically described herein. Therefore, the invention includes all modifications and equivalents of the subject matter enumerated in the appended claims, as permitted by applicable law. Furthermore, unless otherwise indicated herein or unless clearly inconsistent with the context, any combination of the above elements in all possible variations is encompassed by the invention.
[0239] Furthermore, numerous references to patents, publications, journal articles, and other texts are made throughout this specification (References). Each of these references is individually incorporated herein by reference in its entirety for the teaching it refers to.
[0240] Finally, the embodiments of the invention disclosed herein are understood to illustrate the principles of the invention. Other modifications that may be used are within the scope of the invention. Therefore, as an example, alternative configurations of the invention, though not limiting, may be used in accordance with the teachings herein. Thus, the invention is not limited to those precisely shown and described herein.
[0241] The details provided herein are illustrative and intended only to illustrate preferred embodiments of the invention, and are presented to provide what is considered to be the most useful and easily understandable explanation of the principles and conceptual aspects of various embodiments of the invention. In this regard, no structural details of the invention are intended to be shown in more detail than necessary for a basic understanding of the invention, and this description, together with the drawings and / or examples, will make to those skilled in the art how some forms of the invention can be actually realized.
[0242] The definitions and descriptions used in this disclosure are intended to govern any future constructions unless explicitly and expressly modified in the following embodiments, or if the application of their meanings would result in any structural or essential inconsistency. Where a construction of terms becomes meaningless or essentially meaningless, the definitions should be taken from Webster's Dictionary, 3rd Edition, or a dictionary known to those skilled in the art, such as the Oxford Dictionary of Biochemistry and Molecular Biology (Ed. Anthony Smith, Oxford University Press, Oxford, 2004).
Claims
1. (i) Concatemers that have 95% or more sequence identity with the sequence of SEQ ID NO: 2 or SEQ ID NO: 6, and that are 3, 4, 5, or 6 copies of a sequence having the same enhancer activity as concatemers that are 3, 4, 5, or 6 copies of SEQ ID NO: 2 or SEQ ID NO: 6, (ii) Toyota, and (iii) An artificial expression construct comprising a coding sequence, However, the artificial expression construct is an artificial expression construct that does not contain concatemers that are copies 3, 4, 5, or 6 of SEQ ID NO: 2 or SEQ ID NO:
6.
2. The artificial expression construct according to claim 1, wherein the coding sequence encodes a fluorescent protein or an ion transporter selected from potassium channels, calcium channels, or electropotentially open sodium channels.
3. The artificial expression construct according to claim 1, wherein the artificial expression construct is conjugated to a nucleic acid sequence encoding a capsid containing PHP.eB, AAV-BR1, AAV-PHP.S, AAV-PHP.B, or AAV-PPS.
4. The artificial expression construct according to claim 1, wherein the artificial expression construct comprises or encodes a skipping element comprising T2A, P2A, E2A, F2A, or an internal ribosome entry site (IRES).
5. An artificial expression construct according to claim 1, contained within a vector for delivery to cells.
6. The artificial expression construct according to claim 5, wherein the vector is a viral vector.
7. The artificial expression construct according to claim 6, wherein the viral vector is a recombinant adeno-associated virus (AAV) vector.
8. A transgenic cell comprising the artificial expression construct described in claim 1.
9. The transgenic cell according to claim 8, which is a GABAergic interneuron.
10. The transgenic cell according to claim 8, which is a lysosomal membrane protein 5 (LAMP5) neuron, a vasoactive intestinal peptide (Vip) neuron, a somatostatin (Sst) neuron, or a parvalbumin (Pvalb) neuron.
11. Transgenic cells according to claim 8, derived from a mouse, human, or non-human primate.
12. A composition for use in a method for selectively expressing coding sequences in a population of nerve cells in vivo or in vitro, The method includes the step of providing an administerable composition containing an artificial expression construct to a sample or subject containing the population of nerve cells in a sufficient dose and for a sufficient amount of time, thereby selectively expressing the coding sequence within the population of nerve cells, Artificial expression constructs, (i) Concatemers that have 95% or more sequence identity with the sequence of SEQ ID NO: 2 or SEQ ID NO: 6, and that are 3, 4, 5, or 6 copies of a sequence having the same enhancer activity as concatemers that are 3, 4, 5, or 6 copies of SEQ ID NO: 2 or SEQ ID NO: 6, (ii) promoter, and (iii) Code array A composition comprising, However, the artificial expression construct is a composition that does not contain concatemers which are copies 3, 4, 5, or 6 of SEQ ID NO: 2 or SEQ ID NO:
6.
13. The composition according to claim 12, wherein the coding sequence codes for a fluorescent protein or an ion transporter selected from potassium channels, calcium channels, or electropotentially open sodium channels.
14. The composition according to claim 12, wherein the provision comprises pipetting to a brain section containing GABAergic interneurons.
15. The composition according to claim 14, wherein the brain section comprises LAMP5 neurons, Vip neurons, Sst neurons, or Pvalb neurons.
16. The composition according to claim 12, wherein the provision includes administering it to a living subject.
17. The composition according to claim 16, wherein the living subject is a human, a non-human primate, or a mouse.
18. The composition according to claim 16, wherein administration to a living subject is by injection.
19. The composition according to claim 18, wherein the injection includes intravenous injection, intraparenchymal injection into brain tissue, intraventricular (ICV) injection, intracisional (ICM) injection, or intrathecal injection.
20. Three, four, five, or six copies of the sequence consisting of sequence number 2 or sequence number 6, or Three, four, five, or six copies of a sequence that has 95% or more sequence identity with the sequence consisting of SEQ ID NO: 2 or SEQ ID NO: 6, and has the same enhancer activity as copies 3, 4, 5, or 6 of SEQ ID NO: 2 or SEQ ID NO:
6. Artificial enhancers that include [this ingredient].
Citation Information
Patent Citations
JPP7695192B
Compositions and method for reducing seizures
US20180078658A1