AAV vector variants for ocular gene delivery

Modified AAV capsids with peptide inserts at specific positions improve retinal penetration and transduction efficiency, addressing the challenge of achieving pan-retinal gene transfer and enhancing therapeutic efficacy in ocular gene therapy.

JP7791546B2Active Publication Date: 2025-12-24UNIVERSITY OF BERN +1
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Patent Information

Application Number
JP2022525579
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-10-31
Filing Date
2020-11-02
Publication Date
2025-12-24
Estimated Expiration
2040-11-02

AI Technical Summary

Technical Problem

Current AAV vectors face challenges in effectively penetrating the inner limiting membrane (ILM) and achieving gene transfer to all retinal cell types, particularly inner retinal cells and photoreceptor cells, limiting the efficacy and safety of ocular gene therapy.

Method used

Engineering AAV capsids with peptide inserts at specific positions, such as 453 or 587/588, to enhance retinal penetration and transduction efficiency, reducing binding to heparan sulfate proteoglycans and improving vector delivery across the entire retina.

Benefits of technology

The modified AAV capsids demonstrate enhanced infection and transduction efficiency, allowing pan-retinal gene expression and therapeutic efficacy even in advanced disease stages, surpassing the limitations of existing subretinal administration methods.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to adeno-associated virus capsid polypeptide sequences and their use in therapeutic transgene delivery to the eye and potentially other tissues.
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Description

[Technical Field]

[0001] The present invention relates to adeno-associated virus capsid polypeptide sequences and their use in therapeutic transgene delivery to the eye, targeting photoreceptor cells or retinal pigment epithelial cells. [Background technology]

[0002] Permanent degeneration of light-sensitive retinal photoreceptor cells (PRs) leads to blindness. Photoreceptor cell death can be induced by inherited mutations primarily localized in PRs or retinal pigment epithelial (RPE) cells, such as in retinitis pigmentosa (RP), or by multifactorial conditions that compromise photoreceptor health, such as in age-related macular degeneration (AMD). Genetic mutations responsible for many forms of photoreceptor degeneration have been identified, allowing intervention through the administration of therapeutic transgenes. Current nucleic acid-based therapies targeting PRs are only effective in early disease stages, when damage to PRs is minimal. Gene therapy using appropriate visual gene proteins that confer light sensitivity to functional inner retinal cells may potentially restore vision even in later disease stages. To make such approaches practical in clinical practice, improved vectors with better retinal penetration for gene delivery are needed.

[0003] Adeno-associated virus (AAV)-based recombinant vectors are candidates for therapeutic gene transfer in the eye. Currently, AAV vectors are typically administered subretinally. However, subretinal administration has been shown to result in reduced retinal thickness and visual acuity. In addition, subretinal administration achieves gene transfer and expression only in cells immediately adjacent to the injected volume, whereas an effective administration method should reach cells along the entire width of the retina. Intravitreal injection into the jelly-like fill of the eye (vitreous humor) not only has the potential to deliver vectors to the entire retina, but is also significantly safer and less technically demanding than subretinal injection. However, the inner limiting membrane (ILM), which separates the neural retina from the vitreous humor, is rich in natural receptors for many AAV serotypes, thereby creating a strong barrier against AAV vectors. Engineered AAV vectors that better penetrate the ILM and other retinal barriers when delivered intravitreally are needed to increase the efficacy and safety of ocular AAV gene therapy. Summary of the Invention [Problem to be solved by the invention]

[0004] Based on the above state of the art, it is an object of the present invention to provide means and methods for gene transfer into the retina that allow targeting of all retinal cell types, in particular inner retinal cells and photoreceptor cells. This object is achieved by the subject matter of the independent claims herein. [Means for solving the problem]

[0005] A first aspect of the present invention relates to an adeno-associated virus (AAV) capsid polypeptide comprising a peptide insertion at positions 453 or 587 / 588 of an AAV serotype 2 capsid, located in the highest and second highest capsid lobes, respectively, or at positions homologous thereto in AAV capsids of other serotypes (Table 3: #1, #2). The peptide insertion may have the following sequence: SASEAST (Cap3; SEQ ID NO: 10), DTRPHDQ (Cap5; SEQ ID NO: 11), EHYNSTC (Cap7; SEQ ID NO: 12), PNPNCTL (Cap9; SEQ ID NO: 13), TPPSITA (Cap11; SEQ ID NO: 14), CGESSYL (Cap12; SEQ ID NO: 15), PRTPHTA (Cap13; SEQ ID NO: 16), and ELCDGFA (Cap14; SEQ ID NO: 17) is selected from.

[0006] The peptides may be flanked by short stretches of other amino acids (1, 2, 3, 4, 5, or even 6 AA). Specific examples of flanking amino acids to fill in the indicated sequences at the indicated positions within the capsid sequence may be selected from (but are not limited to): Ala, Leu, Gly, Ser, and Thr.

[0007] This peptide insert increases the infection efficiency of adeno-associated viruses and / or the transduction efficiency of adeno-associated vectors that display the peptide insert on the capsid surface at the position indicated above for I-587, at least for the cell types and tissues tested.

[0008] The peptide inserts may act similarly to I-588 or I-453 due to their cell surface exposure. Without wishing to be bound by theory, we believe that at least part of the effect is due to their lower binding to heparan sulfate proteoglycans in vivo.

[0009] A second aspect of the invention relates to a nucleic acid sequence encoding an AAV capsid polypeptide according to the first aspect. Particular embodiments include inclusion of this nucleic acid sequence in an AAV cap sequence, particularly an AAV serotype 2 capsid sequence, for the generation of capsid-engineered AAV vectors.

[0010] A third aspect of the present invention relates to an agent selected from an AAV capsid polypeptide, an AAV vector, and a nucleic acid sequence for the treatment of a condition affecting retina or RPE cells. An alternative form of this aspect is realized by a method for the treatment of a condition affecting photoreceptor cells or RPE cells, comprising administering to a patient in need thereof an agent according to the present invention.

[0011] Dosage forms containing the agents of the present invention are a further aspect of the invention. [Brief explanation of the drawings]

[0012] [Figure 1] Retinal layer specificity of expression for selected capsid mutants. [Figure 2] 1 is an example of pan-retinal transgene expression throughout the outer layers of the mouse retina after intravitreal injection. [Figure 3] Comparison of transgene expression delivered by novel capsids with AAV2(M6) and AAV2(7m8) after intravitreal injection into mouse eyes. DETAILED DESCRIPTION OF THE INVENTION

[0013] Terms and Definitions The abbreviation AAV in this context relates to adeno-associated virus.

[0014] The term AAV vector, as used herein, refers to a viral vector composed of AAV capsid proteins and an encapsidated AAV nucleic acid. AAV vectors are derived from AAV virions, but are engineered to be unable to replicate in the presence of a helper virus by removing the rep and cap genes from the AAV genome. The encapsidated AAV nucleic acid may contain a transgene to be delivered to a target cell.

[0015] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art (e.g., in cell culture, molecular genetics, nucleic acid chemistry, hybridization techniques, and biochemistry). Standard techniques are used for molecular, genetic, and biochemical methods (see generally Sambrook et al., Molecular Cloning: A Laboratory Manual, 2nd ed. (1989) Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, and Ausubel et al., Short Protocols in Molecular Biology (1999) 4th Ed., John Wiley & Sons, Inc.), and chemical methods.

[0016] The term AAV capsid in this specification refers to a polypeptide encoded by the engineered capsid (cap) gene produced by the inventors and listed herein below. The AAV capsids disclosed herein can be used to assemble recombinant adeno-associated virus vectors for gene therapy.

[0017] References to amino acid positions in the AAV capsid herein are to the capsid amino acid sequence of the adeno-associated virus 2 capsid protein VP1, which has the sequence of SEQ ID NO: 1 (Table 2). (The GenBank accession number for the corresponding nucleic acid sequence is J01901.1.) Corresponding amino acid positions for other homologous adeno-associated virus serotypes are shown in Table 3.

[0018] The term homologous in this context relates to nucleic acid or amino acid sequences derived from various serotypes of AAV. The corresponding positions of the various adeno-associated virus serotypes are shown in Table 3.

[0019] The term transgene in the present context relates to a gene or genetic material that has been transferred from one organism to another. In the present context, the term may also refer to the transfer of a natural or physiologically intact variant of a gene sequence into the tissue of a patient in which it is deleted. The term may further refer to the transfer of a natural coding sequence, the expression of which is driven by a promoter that is absent or silenced in the target tissue.

[0020] The term recombinant in the context of this specification relates to nucleic acid that is the product of one or several cloning, restriction and / or ligation steps and that differs from naturally occurring nucleic acid. Recombinant viral particles comprise recombinant nucleic acid.

[0021] The term intravitreal administration, as used herein, refers to a route of administration of a pharmaceutical agent, such as a viral vector, in which the agent is delivered into the vitreous of the eye. Intravitreal administration is a procedure in which a pharmaceutical agent is placed directly into the space at the back of the eye, called the vitreous cavity, which is filled with a jelly-like fluid called vitreous gel.

[0022] The term subretinal administration in the present context relates to a route of administration of pharmaceutical agents, particularly viral vectors in the present context, into the space between the cells of the retinal pigment epithelium (RPE) and the photoreceptor cells.

[0023] The term polypeptide in the context of this specification relates to a molecule consisting of 50 or more amino acids forming a linear chain, the amino acids being joined by peptide bonds. The amino acid sequence of a polypeptide may refer to the amino acid sequence of the entire protein (as found physiologically) or a fragment thereof. The terms "polypeptide" and "protein" are used interchangeably herein and include proteins and fragments thereof. A polypeptide is disclosed herein as a sequence of amino acid residues.

[0024] The amino acid residue sequences are shown from the amino to the carboxyl terminus. Capital letters at sequence positions refer to L-amino acids in the one-letter code (Stryer, Biochemistry, 3 rd ed. p. 21). Lowercase letters at amino acid sequence positions refer to the corresponding D- or (2R)-amino acid. Sequences are written from left to right in the direction from amino terminus to carboxy terminus. In accordance with standard nomenclature, amino acid residue sequences are designated by three-letter or single-letter codes as shown below: alanine (Ala, A), arginine (Arg, R), asparagine (Asn, N), aspartic acid (Asp, D), cysteine ​​(Cys, C), glutamine (Gln, Q), glutamic acid (Glu, E), glycine (Gly, G), histidine (His, H), isoleucine (Ile, I), leucine (Leu, L), lysine (Lys, K), methionine (Met, M), phenylalanine (Phe, F), proline (Pro, P), serine (Ser, S), threonine (Thr, T), tryptophan (Trp, W), tyrosine (Tyr, Y), and valine (Val, V).

[0025] The term variant refers to a polypeptide that differs from a reference polypeptide but retains essential properties. A typical variant of a polypeptide differs in its primary amino acid sequence from another polypeptide used as a reference. Generally, the differences are limited, so that the sequences of the reference polypeptide and variant are closely similar overall and, in many regions, identical. A variant and reference polypeptide may differ in amino acid sequence by one or more modifications (e.g., substitutions, additions, and / or deletions). A variant of a polypeptide may be naturally occurring, such as an allelic variant, or it may be a variant that is not known to occur naturally.

[0026] The term biological activity in this context refers to a precisely measurable quantity exhibited by a variant of the polypeptide encompassed herein. For example, with respect to the ability of a viral vector to facilitate gene transfer into retinal cells, the biological activity of a capsid variant can be assayed in standard assays by measuring the expression of a transgene (e.g., firefly luciferase) in cultured cells or in model organisms in vivo.

[0027] As used herein, the terms sequence identity and percentage sequence identity refer to values ​​determined by comparing two aligned sequences. Methods for aligning sequences for comparison are well known in the art. Aligning sequences for comparison can be performed using the local homology algorithm of Smith and Waterman, Adv. Appl. Math. 2:482 (1981), the global alignment algorithm of Needleman and Wunsch, J. Mol. Biol. 48:443 (1970), the similarity search method of Pearson and Lipman, Proc. Nat. Acad. Sci. 85:2444 (1988), or computer implementations of these algorithms, including, but not limited to, CLUSTAL, GAP, BESTFIT, BLAST, FASTA, and TFASTA. Software for performing BLAST analysis is publicly available, for example, through the National Center for Biotechnology Information (http: / / blast.ncbi.nlm.nih.gov / ).

[0028] One example for comparing amino acid sequences is the BLASTP algorithm using default settings: Expect threshold: 10; Word size: 3; Max matches in a query range: 0; Matrix: BLOSUM62; Gap Costs: Existence 11, Extension 1; Compositional adjustments: Conditional compositional score matrix adjustment. One such example for comparing nucleic acid sequences is the BLASTN algorithm using default settings: Expect threshold: 10; Word size: 28; Max matches in a query range: 0; Match / Mismatch Scores: 1.-2; Gap costs: Linear. Unless otherwise specified, sequence identity values ​​provided herein refer to values ​​obtained using the BLAST suite of programs using the default parameters specified above for protein and nucleic acid comparisons, respectively (Altschul et al., J. Mol. Biol. 215:403-410 (1990)).

[0029] For purposes of this specification, the term amino acid linker refers to an oligopeptide of variable length used to link two polypeptides to produce a single polypeptide chain. An exemplary embodiment of a linker useful in practicing the invention set forth herein is an oligopeptide chain of 1 to 6 amino acids. Non-limiting examples of amino acid linkers are AAA or AA, as exemplified below.

[0030] AAV is a small, non-pathogenic virus that infects humans and other primate species.

[0031] AAV2 infection begins by docking to the cell surface receptor heparan sulfate proteoglycan (HSPG). Its low binding affinity for glycans induces a reversible structural rearrangement of the capsid that facilitates binding to the coreceptors αvβ5 or α5β1 integrin, leading to the formation of clathrin-coated pits. The clathrin-coated pits are internalized via endocytosis, and the viral particles are transported to the nucleus. The pH decreases due to acidification of the endosomal compartment, a hallmark of endosomal vesicle maturation. Acidification-induced conformational changes occur in the capsid, and the virus escapes from the late endosome by lipolytic pore formation.

[0032] In wild-type AAV, the genome is composed of 4.7 kilobases of single-stranded DNA (ssDNA) of either positive or negative sense. The genome contains three open reading frames (ORFs) flanked by inverted terminal repeats (ITRs). ITRs are self-complementary, CG-rich, T-shaped hairpins at the 5' and 3' ends of the AAV genome and are the only essential viral components present in the recombinant vector genome. The ITRs contain terminal release sites (TRSs) and Rep binding elements (RBEs), which facilitate viral genome replication and encapsidation. The ORFs encode the genes rep, cap, and AAP. The four multifunctional nonstructural Rep proteins encoded by rep are required for the AAV life cycle. Cap encodes the capsid proteins VP1, VP2, and VP3, which interact to form the icosahedral capsid, as well as the assembly activating protein (AAP), which is required to stabilize and transport newly produced VP proteins from the cytoplasm to the cell nucleus. All three VPs are translated from a single mRNA but are differentially spliced: the largest, 90 kDa VP1, is an unspliced ​​transcript, the 72 kDa VP2 is translated from an unconventional ACG start codon, while the smallest, 60 kDa VP3, is translated from an AUG codon. All three VPs have overlapping C-termini.

[0033] VP3 constitutes 90% of the capsid, and VP1 and VP2 share a common C-terminal amino acid sequence with VP3 but possess N-terminal extensions that are buried inside the capsid. The unique N-terminal sequence of VP1 contains phospholipase A2 (PLA2) activity and a nuclear localization signal, which are required for infection. Three VP monomers assemble with two-, three-, and five-fold axial symmetries to create a 60-subunit AAV capsid. A first aspect of the present invention relates to adeno-associated virus (AAV) capsid polypeptides containing a peptide insert in the peak or spike-like protrusion at positions 453 or 587 of the AAV serotype 2 capsid. The peptide insert has the following sequence: SASEAST (Cap3; SEQ ID NO: 10), DTRPHDQ (Cap5; SEQ ID NO: 11), EHYNSTC (Cap7; SEQ ID NO: 12), PNPNCTL (Cap9; SEQ ID NO: 13), TPPSITA (Cap11; SEQ ID NO: 14), CGESSYL (Cap12; SEQ ID NO: 15), PRTPHTA (Cap13; SEQ ID NO: 16), and ELCDGFA (Cap14; SEQ ID NO: 17) In particular, the insert is selected from SASEAST (Cap3; SEQ ID NO: 10), TPPSITA (Cap11; SEQ ID NO: 14), PRTPHTA (Cap13; SEQ ID NO: 16) and ELCDGFA (Cap14; SEQ ID NO: 17).

[0034] The peptide inserts described above may consist of one of the above sequences contained within a 7-13 mer and flanked by 0-6 linker amino acids selected from, but not limited to, Ala, Leu, Gly, Ser, and Thr (6 being the maximum total number of amino acids flanked at the N- and C-termini) inserted at the N- and / or C-termini of the insert sequence shown in the previous paragraph.

[0035] Any positions indicated for the AAV2 sequences presented herein are relative to the reference sequence available at GenBank entry number J01901.1 (Adeno-associated virus 2, complete genome). The corresponding amino acid sequence is shown in Table 2 as SEQ ID NO: 1.

[0036] The spike-like protrusions (peaks) correspond to the most exposed regions of the capsid. The highest peak is located at AAV2 capsid amino acid position 453, and the second highest peak is located at position 587. These peaks accommodate peptide insertions without interfering with capsid assembly, providing an opportunity to target non-permissive cells. Similarly, the protrusions represent important sites for AAV host interaction, receptor binding, and immunogenicity. Notably, in one embodiment, R585 and 588 are mutated to achieve optimal efficacy when an insert is inserted at position 453.

[0037] When referring to the position of a peak or spike-like protrusion where a peptide insert is introduced, it should be understood that the peptide insert can be immediately (toward the C-terminus) after this position or 1 to 6 amino acids further C-terminally. For example, a peptide insert defined to be at position 587 (defined as an insert between previous insertion positions 587 and 588) can start at positions 588 or 589 (1 or 2 amino acids further C-terminally) or 590 (3 amino acids further C-terminally). All of these insertion positions contemplate peptide inserts that do not disrupt the overall capsid structure but rather may increase transduction efficiency.

[0038] This peptide insert increases the retinal penetration and transduction efficiency of the virus after intravitreal delivery.

[0039] In one embodiment, the peptide insert is selected from SASEAST (Cap3; SEQ ID NO: 10), DTRPHDQ (Cap5; SEQ ID NO: 11), EHYNSTC (Cap7; SEQ ID NO: 12), PNPNCTL (Cap9; SEQ ID NO: 13), TPPSITA (Cap11; SEQ ID NO: 14), CGESSYL (Cap12; SEQ ID NO: 15), PRTPHTA (Cap13; SEQ ID NO: 16), and ELCDGFA (Cap14; SEQ ID NO: 17).

[0040] In certain embodiments, the peptide insert is selected from SASEAST (Cap3; SEQ ID NO: 10), TPPSITA (Cap11; SEQ ID NO: 14), PRTPHTA (Cap13; SEQ ID NO: 16), and ELCDGFA (Cap14; SEQ ID NO: 17).

[0041] The peptide insert can be present in the AAV capsid polypeptide either alone or with 1, 2, 3, or 4 flanking spacer amino acids at the amino and / or carboxyl termini. Suitable spacer AA include, but are not limited to, alanine, leucine, glycine, threonine, and serine.

[0042] In our example, due to the cloning strategy used, the N of AAV2 VP1 587 and R 588 The insertion between 585 GNAAAX1X2X3X4X5X6X7-AAR 588 QAA 12-mer, where X1-X7 represent the inserted heptameric oligo and A represents the flanking linker. It should be understood that this is only an example and the invention is not limited to inserts in this exact position with exactly these flanking sequences.

[0043] In embodiments involving insertion positions designated 587 in AAV2, the oligo is always inserted between positions 587 and 588 of VP1 of AAV2. Because it is an insertion, the VP1 AAV2 numbering remains unchanged, and subsequent positions are counted "without the insertion" for substitutions and the like. The inserted peptide contains a heptamer as specified herein, but can potentially be shorter or longer to function. In the embodiment shown in the Examples, we inserted a 12-mer in the form AAA-X1X2X3X4X5X7-AA, but the linker amino acids can be freely selected from Ala, Leu, Gly, Ser, and Thr. The N- and C-terminal linkers can be 0 to 5 AA long. In certain embodiments, the inserted peptide can be 5 to 13 amino acids long, including 0 to 6 linker amino acids.

[0044] In certain embodiments, the peptide insertion (referred to elsewhere herein as "oligo") can be moved 1-5 AA further C-terminal. For AAV2, the insertion site can also be at (e.g., immediately C-terminal to) amino acid 453.

[0045] According to an alternative form of this first aspect of the invention, any of the peptide sequences detailed above is inserted at position 453 of SEQ ID NO: 001 instead of position 587. Furthermore, the location of the insertion may vary, and the peptide sequence may be flanked by the insertions shown above and may consist of 5 to 13 AA. In addition to the peptide insertion at position 453, R587A and R588A mutations may be introduced into VP1 of AAV2 (Boucas Jet al. J Gene Med. 2009 Dec;11(12):1103-13. doi:10.1002 / jgm.1392).

[0046] According to another alternative form of this aspect of the invention, positions homologous to positions 587 / 588 or 453 in AAV serotype 2 can be selected to construct an AAV of another serotype with one of the inserted peptide sequences detailed above (Table 3: #1, #2).

[0047] In one embodiment, the AAV capsid protein is characterized by one or more tyrosine to phenylalanine substitutions of tyrosine residues, the tyrosine residues being present at positions 252, 272, 444, 500, 700, 704 and 730 in the wild-type capsid sequence.

[0048] Some of the capsid variants herein were selected by evolutionary methods for tyrosine-modified capsids.

[0049] In one embodiment, the AAV capsid protein is characterized by one or several tyrosine to phenylalanine substitutions at positions 252, 272, 444, 500, 704, and 730.

[0050] In certain more specific embodiments, the AAV capsid protein is characterized by several tyrosine to phenylalanine substitutions at all of positions 252, 272, 444, 500, 700, and 730.

[0051] According to another alternative of this aspect of the invention, tyrosine positions homologous to any of positions 252, 272, 444, 500, 700, 704, and 730 in AAV serotype 2 can be selected for substitution with phenylalanine to construct AAVs of other serotypes with tyrosine-to-phenylalanine substitutions (Table 3: #3-#9). Additionally, other tyrosine positions can be substituted with phenylalanine.

[0052] In one embodiment, the AAV capsid protein is characterized by one or several threonine to valine substitutions, in particular T491V.

[0053] According to another alternative of this embodiment of the invention, a threonine position homologous to position 491 in AAV serotype 2 can be selected for substitution with valine to construct an AAV of another serotype with a threonine to valine substitution (Table 3: #10).

[0054] In one embodiment, the tyrosine to phenylalanine substitution mentioned above is combined with a threonine to valine substitution, particularly T491V.

[0055] The YF and TV mutations reduce the ubiquitination and therefore the proteasomal degradation of viral particles once internalized by the cell, thereby increasing transduction efficiency.

[0056] In one embodiment, the adeno-associated virus capsid polypeptide comprises an amino acid sequence selected from SEQ ID NO:2-9, or a sequence having at least 85% identity thereto and at least 90% of the biological activity of a sequence selected from SEQ ID NO:2-9.

[0057] Biological activity assays: Whenever reference is made herein to a polypeptide "having at least a percentage of the biological activity of a (reference) sequence," this biological activity can be measured as follows.

[0058] HEK293 cells are cotransfected using calcium phosphate precipitation with a plasmid encoding a test or reference polypeptide, a plasmid carrying a helper adenovirus gene, and a transgene plasmid selected from scCMV-mCitrine, scEf1a-mCitrine, scCMV-EGFP, and scEf1a-EGFP as a reporter. The transgene-containing vector is concentrated by density purification on an iodixanol gradient (Axis-Shield, Oslo), and the 40% iodixanol fraction is then buffer-exchanged, e.g., by Amicon filtration (Millipore). The AAV fraction is titered for DNase-resistant vector genomes by real-time PCR and compared with a standard vector. 3 μl of viral vector is injected intravitreally into anesthetized (100 mg / kg ketamine and 10 mg / kg xylazine) wild-type C57BL / 6J mice. For injection, the virus is titered to E11 GC / ml, and 3 ul of it, i.e., 3 x E8vg per eye, is injected. Mouse retinas are removed 3 weeks after injection for immunohistochemical analysis. Retinal tissue sections from mouse eyes (7 days after transduction) are fixed in 4% (wt / vol) paraformaldehyde in PBS for 40 minutes at room temperature (RT), cryoprotected in graded sucrose solutions (10%, 20%, and 30% sucrose in PBS) for three consecutive nights at 4°C, embedded in cryomolds with OCT compound (Sakura Finetek), and frozen in liquid nitrogen-cooled 2-methylbutane. Vertical sections 10 μm thick are cut on a cryostat, mounted on SuperFrost glass slides (Menzel), and immunohistochemically labeled with EGFP, YFP, mCitrine, or Turbo635 fluorescence and primary and secondary antibodies appropriate for detecting specific retinal cell types. Expression of the reporter in the target cell type is typically quantified by fluorescence and compared to the amount of reporter in the remaining tissue to assess the biological activity of the engineered viral capsid. Alternative measures of biological activity of the engineered viral capsid are the percentage of transduced target cells and the area of ​​expressing tissue.For the avoidance of doubt, assays that quantify reporter expression in the target cell type and compare it to the amount of reporter in the rest of the tissue are used to measure biological activity.

[0059] A second aspect of the invention relates to a nucleic acid sequence encoding an AAV capsid polypeptide according to the first aspect.

[0060] In certain embodiments, the AAV sequence of the present invention does not contain the Rep element that is required for integration into the host genome.Non-integrated viruses are safer for administration to humans.In some embodiments, nucleic acid sequences are designed according to the self-complementary AAV vector genome concept.In all cases, single-stranded DNA sequences are used.

[0061] In certain embodiments, the nucleic acid sequence comprises a transgene, with or without regulatory sequences.

[0062] In one embodiment, the transgene encodes a suitable protein (i.e., RPE65), an siRNA or shRNA (designed to target a region of mRNA to degrade wild-type and mutant RNA of a potential pathogenic gene), or a CRISPR / Cas-gRNA cassette sequence for gene editing.

[0063] In certain embodiments, the transgene encodes a light-sensitive protein such as an invertebrate or vertebrate opsin or a variant thereof.

[0064] In certain embodiments, the transgene encodes channelrhodopsin-2 or a variant thereof.

[0065] In certain embodiments, the transgene encodes a microbial light-gated inhibitory ion pump, such as, for example, halorhodopsin (eNpHR) or archirhodopsin (ArchT).

[0066] In certain embodiments, the transgene encodes a GPCR opsin, such as, for example, human rhodopsin, melanopsin, or cone opsin.

[0067] In certain embodiments, the transgene encodes a receptor protein for a photoswitchable ligand.

[0068] In certain embodiments, the transgene is under the control of a promoter sequence operable in mammalian cells, hi certain embodiments, the promoter sequence is operable in human retinal cells.

[0069] In some embodiments, the promoter is a ubiquitous promoter. In some embodiments, the promoter is a cell-specific promoter.

[0070] In some embodiments, the promoter is a CMV immediate early promoter. In some embodiments, the promoter is a human Ef1a promoter. In some embodiments, the promoter is a photoreceptor-specific promoter.

[0071] A third aspect of the invention relates to an agent selected from an AAV capsid polypeptide according to the first aspect, an AAV vector comprising a capsid polypeptide according to the first aspect and a nucleic acid sequence according to the second aspect, for use in medicine / as a medicament.

[0072] In one embodiment, AAV vectors are used to transduce cells of the eye.

[0073] The eye is made up of three layers made up of various anatomical structures. The fibrous tunica is the outermost layer and consists of the cornea and sclera. The vascular tunica or uvea is the middle layer and consists of the choroid, ciliary body, pigment epithelium, and iris. The retina is the innermost layer and receives its oxygen supply from the blood vessels of the choroid (posterior) and retinal blood vessels (anterior).

[0074] The space between the cornea and the lens is filled with aqueous humor, and the entire posterior cavity behind the lens is filled with a jelly-like substance, the vitreous. The vitreous is composed of water, collagen, fibrils, hyaluronic acid, and ions. The spaces in the retina not occupied by neurons or blood vessels are filled by processes of Müller glia cells that span all of the retinal cell layers.

[0075] The retinal outer limiting membrane (OLM) is formed from the junction between Müller cells (MCs) and the inner segment of photoreceptor cells, acting as a metabolic barrier between the subretinal space and restricting the passage of large molecules. The retinal inner limiting membrane (ILM) is formed by the adjacent junction between MC endfeet and the basement membrane, acting as a diffusion barrier between the vitreous humor and the neural retina.

[0076] The retina is composed of the macula, optic nerve head, fovea, and peripheral retina. Photoreceptor cells are specialized types of neuroepithelial cells found in the retina. Three types of photoreceptor cells are known: rods, cones, and light-sensitive retinal ganglion cells. Rods are distributed in the peripheral region of the retina, while the central pigmented region called the macula is rich in cone photoreceptors. The retinal pigment epithelium (RPE) provides nutrients and maintains the health of photoreceptor cells. The nuclei of photoreceptor cells make up the outer nuclear layer (ONL), while the nuclei of bipolar, amacrine, and horizontal cells are located in the inner nuclear layer (INL).

[0077] In one embodiment, the agent is selected from an AAV capsid polypeptide according to the first aspect, an AAV vector comprising the capsid polypeptide according to the first aspect and a nucleic acid sequence according to the second aspect a. retinal cells or retinal pigment epithelial cells, and / or b. photoreceptor cells, bipolar cells, amacrine cells, or ganglion cells of the retina The invention is for use in the treatment of conditions affecting the immune system.

[0078] In certain embodiments, the agent is for use in the treatment of glaucoma, retinitis pigmentosa, macular degeneration, retinoschisis, Leber's congenital amaurosis, diabetic retinopathy, color blindness or color vision deficiency, melanoma-associated retinopathy, congenital stationary night blindness, cone-rod dystrophy, end-stage age-related macular degeneration, maculopathy, early-onset severe retinal dystrophy, color blindness, ocular albinism, oculocutaneous albinism, Stargardt disease, choroideremia, lysosomal storage diseases affecting the cornea such as spinocerebellar ataxia type 7 (SCAT), mucopolysaccharidosis (MPS) IV and MPS VII, retinoblastoma, intraocular melanoma, hypertensive retinopathy.

[0079] In certain embodiments, the agents of the invention can be used to treat or prevent diseases that affect the inner ear.

[0080] In certain embodiments, the agent is a. Intravitreal administration, particularly intravitreal injection; or b. Subretinal injection It is administered by

[0081] In certain embodiments, the agent is delivered to the posterior segment, anterior segment, sclera, choroid, conjunctiva, iris, lens, or cornea.

[0082] Similarly, within the scope of the present invention is a method for treating a condition selected from rod-cone dystrophies including retinitis pigmentosa, cone-rod dystrophies including macular degeneration, and congenital stationary night blindness (CSBN1) in a patient in need thereof, comprising administering to the patient a viral vector comprising an AAV capsid and / or nucleic acid sequence as described above.

[0083] Similarly, there is provided a dosage form for the prevention or treatment of a condition selected from cone-rod dystrophy, rod-cone dystrophy and congenital stationary night blindness, the dosage form comprising an AAV capsid and / or nucleic acid sequence according to one of the above aspects of the invention.

[0084] The agents and methods disclosed herein provide substantial benefit even at early disease stages when the damage to PR is minimal, and the vectors promoted by this invention are more potent than any existing alternatives.

[0085] For example, whenever alternatives to a single separable feature, such as an AAV serotype protein or capsid peptide insert sequence or a medical indication, are described herein as an "embodiment," it should be understood that such alternatives may be freely combined to form separate embodiments of the invention disclosed herein.

[0086] The present invention is further illustrated by the following examples and figures from which further embodiments and advantages can be derived, which illustrate the invention but are not intended to limit its scope.

[0087] Text description of the illustration image022.gif. Figure 1 shows the cell specificity of expression for selected capsid variants compared to the selected backbone AAV2 (Y252, 272, 444, 500, 700, 730F), hereafter referred to as AAV2(M6) and the state-of-the-art synthetic capsid AAV2(7m8). All AAVs were packaged as self-complementary (scAAV) variants expressing eGFP or mCitrine under two ubiquitous promoters, hEF1a and CMV, to eliminate the possibility of bias of one promoter toward a certain retinal cell type. Expression in the photoreceptor cells (ONL) is significantly enhanced for the novel variants after intravitreal injection, in contrast to AAV2(M6) and AAV2(7m8). The 2.5 μl injected intravitreally yielded comparable titers of 1E+11 vg / ml (except for Cap14, which was 3E+10). Counts were taken from four retinas, mean ± SD. INL, inner nuclear layer; GCL, ganglion cell layer; DAPI, nuclear stain. Number of all cell bodies stained with DAPI. Figure 2. Robust whole retina expression throughout the ONL for the indicated novel capsid mutants at a 100x reduced functional titer compared to state-of-the-art AAV2 (7m8). All injections were of comparable titer, delivering 7.4E+7vg into the vitreous of C57BL / 6 mice. A. Low magnification image focused on the ONL of a mouse retinal whole mount after transduction with scCap5-CMV-EGFP. B-C. Vertical retinal cryosections. Photomicrographs reveal the potency of the novel capsids at lower titers compared to AAV2 (7m8). Figure 3. Comparison of transduction after intravitreal injection of 2.5 μl scAAV into C57BL / 6 mouse eyes (as described, e.g., in van Wyk et al., PLoS Biol, 2015.13(5):p.e1002143). mCitrine expression under the control of the human Ef1a promoter is equivalent to a titer of 1E+11 vg / ml. Photomicrographs of vertically oriented immunolabeled retinal cryosections reveal that scAAV2(Cap3) and scAAV2(Cap5) penetrate well into the ILM and retinal layers and exhibit unparalleled expression efficiency in photoreceptors of the ONL when compared with the state-of-the-art AAV (7m8) or crude library backbone AAV2 (M6). [Example]

[0088] Example 1: Generation of a peptide display library The AAV capsid is an icosahedron with 60 subunits. When the capsid subunits are assembled, spike-like protrusions (peaks) are formed at the three-fold axis of the AAV capsid, which corresponds to the most exposed region of the capsid. In the AAV2 capsid, the highest peak is located at amino acid (AA) 453, and the second highest peak is located at AA 587 / 588 (AAV2-VP1 numbering). These peaks accommodate peptide insertion without interfering with viral capsid assembly and correspond to important sites for host interaction, receptor binding, and immunogenicity. To generate a peptide display library, we cloned the N-terminal fragment of the AAV2 VP1 open reading frame, designated AAV2(M6), which further contains six tyrosine-to-phenylalanine mutations (Y252, 272, 444, 500, 700, 730F). 587 and R 588Randomly selected heptapeptides were inserted between the GH loop and the GH loop (Table 2). The YF and TV mutations (Buening & Srivastava, Mol Ther Methods Clin Dev. 2019 Jan 26;12:248-265. doi:10.1016 / j.omtm.2019.01.008) have previously been shown to reduce ubiquitination and therefore proteasomal degradation of viral particles once internalized by cells (Petrs-Silva et al., Mol Ther, 2011.19:293-301), thereby increasing transduction efficiency and potentially favoring the selection process during intracellular evolution, where mutants are initially very rare. Random insertions can also be made at homologous sites in the GH loop (loop IV) of other capsid serotypes, as shown in Table 3. The approach we used to develop our library was adapted from that of Perabo and colleagues (Perabo et al., Mol Ther, 2003.8:151-157). Two unique restriction sites, AscI and NotI, were introduced into the AAV2(M6) genome between amino acids 587 and 588 (Table 2). The introduced DNA fragment forming the AscI and NotI sites encoded a stop codon flanked by alanine linkers (AAAstopAA). Next, a pool of single-stranded randomly selected 7-mers bearing the NNB codon was introduced into the AAV2(M6) genome between amino acids 587 and 588 (Table 2). 5'-TTGGCGCGCCGCVNNVNNVNNVNNVNNVNNVNNGGCGGCCGCTTTTTTCCTTGA-3' (SEQ ID NO: 25) The dsDNA fragments were synthesized as a dsDNA clone (Eurofins Genomics) and converted into a pool of dsDNA fragments by synthesizing the second strand using the antisense primer 5'-CTCAAGGAAAAAAGC-3' (SEQ ID NO: 26). To generate a 7-mer display library, random dsDNA oligonucleotides were cloned into the AscI-NotI site of the modified AAV(M6) genome, thereby replacing the stop codon. A viral library was generated such that each viral genome was packaged or enveloped within the capsid protein variant encoded by that genome (genotype-phenotype coupling). In addition, capsids were produced such that only one peptide was present in each of the 60 subunits. In this way, functional improvements identified through selection could be linked to the genomic sequence encoding this improved function contained within the viral capsid.

[0089] Example 2: Selection of peptide variants This library was subjected to positive selection in C57BL / 6_Opto-mGluR6 mice generated in our laboratory, which express the red fluorescent marker FP635 in retinal ON bipolar cells (van Wyk et al., PLoS Biol, 2015.13(5):p.e1002143). This mouse line was chosen on the rationale that ON bipolar cells are located deep within the retina and are known to be nonpermissive to AAV transduction, resulting in favorable selection of well-penetrating AAVs and mutants with properties favorable for transducing ON bipolar cells. Briefly, as described in (van Wyk et al., PLoS Biol, 2015.13(5):p.e1002143; van Wyk et al., Front Neurosci, 2017.11:p.161), 5-8 transgenic mice aged 4-6 weeks were inoculated with approximately 5 × 10 11 2.5 μl of iodixanol-purified library with a genome titer of 100 viral genomes (vg) / ml was injected intravitreally into both eyes.

[0090] Ten days later, the eyes were enucleated, and the retinas were gently treated with papain protease and dissociated, followed by fluorescence-activated cell sorting (FACS) for the ON-type bipolar cell population. Successful virions were then PCR-amplified from DNA extracts, further cloned, and repackaged for subsequent injections.

[0091] Ligations of 7-mer oligos into the AAV2(M6) genome were performed in quadruplicate at each cloning step, and 12 clones from each pool were plated and sequenced to determine library convergence after each in vivo selection step. This process of in vivo directed evolution applied positive selection to generate ON-type bipolar cell-permissive AAV variants, similar to the process of natural evolution.

[0092] The capsid genes of 81,738 mutants from the in vivo selected library were identified by next-generation sequencing. Fifteen heptapeptide sequences from the top 67 ranked sequences were selected for functional validation and characterization based on their combination of high overall transduction efficiency (cumulative in NGS), preference for ON-type bipolar cell targeting, and motifs that appeared early in the selection phase or appeared promising in terms of their amino acid sequence (i.e., containing negatively charged or proline residues), as outlined in Table 1. A key feature for all of the library mutants was the positive charge (R) of the heparan sulfate proteoglycan-binding motif of AAV2 through insertion. 585 and R 588 However, peptide sequences with the addition of two alanines in the linker sequence can regain the ability to bind to heparan sulfate proteoglycans (Uhrig and Buening, Gene Therapy). Among the 7-mer insert sequences, there was a moderate preference for charged amino acids at certain positions, e.g., positions 1 or 2 and / or positions 5 or 6, and polar amino acids such as Cys or Ala at position 7 (Table 1).

[0093] Example 3: Identification of novel capsid mutants Recombinant forms of AAV2(M6) 7-mers were cloned for all 15 selected peptides in Table 1. We packaged them together with the scCMV-EGFP transgene (CMV: cytomegalovirus promoter). With the exception of two variants (Cap8 and Cap10), all capsids were 10 11 ~10 12 The AAVs were appropriately packaged at titers of 1000µg / ml. Three weeks after intravitreal injection into adult mice, strong expression, primarily in photoreceptors, was observed for Cap3, Cap5, Cap7, Cap9, Cap11, Cap13, and Cap14 (Table 1, Figures 1-3). Some expression was also observed in cells of the inner retina, such as bipolar cells, amacrine cells, and Müller cells, but almost no expression was observed in retinal ganglion cells. In direct comparison with the productivity of AAV2(7m8), an evolved AAV2 variant (Dalkara et al., Sci Transl Med, 2013.5:189ra76), which is currently considered state-of-the-art for intravitreal injection, our novel variants penetrated the retina significantly better, transducing significantly more photoreceptors but significantly fewer ganglion cells (Figures 1, 1-3). The above results support the conclusion that eight preselected mutants (Cap3, Cap5, Cap7, Cap9 Cap11, Cap13, and Cap14; Table 1) were further packaged with the schEf1a-EGFP-mCitrine transgene (hEf1a: human Ef1a promoter, a "strong," native mammalian ubiquitous promoter) and produced at equivalent titers of 1 × 10 11 vg / ml was confirmed by intravitreal injection into adult mice.

[0094] Similarly, the new variants transduced significantly more photoreceptors than the control AAV2(M6) and AAV(7m8) at comparable titers. Consequently, the selected variants appear to have superior internal limiting membrane and retinal penetration properties compared to AAV2(M6) and AAV2(7m8) and are significantly more effective at transducing photoreceptors in the outer nuclear layer (ONL) (Figure 1).

[0095] Cap14, packaged with scCMV-EGFP and schEf1a-EGFP and injected at 3E+10 vg / ml, performed significantly better than AAV2(7m8) injected at the same low dose (Figures 1 and 2), and even better than AAV2(7m8) at the minimal dose typically used in mice of 1E+12 vg / ml, which holds promise for using lower doses in patients to reduce toxicity and immune response issues.

[0096] [Table 1]

[0097] All 15 selected clones ranked in the top 67 of 60,884 peptides sequenced from isolated ON-type bipolar cell fractions of C57BL / 6_Opto-mGluR6 mice (van Wyk et al., PLoS Biol, 2015.13(5):p.e1002143).

[0098] [Table 2]

[0099] [Table 3]

[0100] [Table 4]

[0101] [Table 5]

[0102] [Table 6]

[0103] [Table 7]

[0104] [Table 8]

[0105] [Table 9]

[0106] The Cap gene in the library consists of VP3 (gray sequence), with the tyrosine to phenylalanine (YF) mutation underlined, and base pair numbering refers to the entire VP1 sequence. Various embodiments of the present invention are described below. 1. An adeno-associated virus (AAV) capsid polypeptide comprising a peptide insertion at position 453 or 587-592 of an AAV serotype 2 capsid, particularly positions 587-592, more particularly position 587, or a position homologous thereto in another serotype of AAV, wherein the peptide insertion is SASEAST (Cap3; SEQ ID NO: 10), DTRPHDQ (Cap5; SEQ ID NO: 11), EHYNSTC (Cap7; SEQ ID NO: 12), PNPNCTL (Cap9; SEQ ID NO: 13), TPPSITA (Cap11; SEQ ID NO: 14), CGESSYL (Cap12; SEQ ID NO: 15), PRTPHTA (Cap13; SEQ ID NO: 16), and ELCDGFA (Cap14; SEQ ID NO: 17) and in particular, said insert is selected from SASEAST (Cap3; SEQ ID NO: 10), TPPSITA (Cap11; SEQ ID NO: 14), PRTPHTA (Cap13; SEQ ID NO: 16) and ELCDGFA (Cap14; SEQ ID NO: 17). 2. An adeno-associated virus capsid polypeptide comprising or consisting essentially of a sequence having at least (≧) 85% identity, particularly ≧90%, more particularly ≧95% identity to SEQ ID NO: 001, characterized by an insertion at position 587, 588, 589, 590, 591 or 592, particularly at position 587, 588 or 589, more particularly at position 587; and The insert is an adeno-associated virus capsid polypeptide that is or comprises a peptide sequence selected from any one of SEQ ID NOs: 10, 11, 12, 13, 14, 15, 16, and 17. 3. The adeno-associated virus capsid polypeptide according to item 2 above, characterized by at least 90% of the biological activity of a sequence selected from SEQ ID NO: 2 to SEQ ID NO: 9. 4. The adeno-associated virus capsid polypeptide according to 2 or 3 above, which is or comprises a sequence selected from SEQ ID NO: 2 to SEQ ID NO: 9. 5. The adeno-associated virus capsid polypeptide according to any one of 1 to 4 above, comprising or consisting essentially of an amino acid sequence selected from SEQ ID NO: 2 to SEQ ID NO: 9. 6.a. one or several tyrosine to phenylalanine substitutions at positions 252, 272, 444, 500, 700, 704 and 730, particularly at positions 252, 272, 444, 500, 704 and 730, more particularly at all of positions 252, 272, 444, 500, 700 and 730; and / or b. one or several threonine to valine substitutions, specifically T491V or an AAV2 capsid characterized by 3. The adeno-associated virus capsid polypeptide according to claim 1 or 2, which is a capsid other than an AAV2 capsid, and which is characterized by one or more tyrosine to phenylalanine substitutions and / or one or more threonine to valine substitutions at homologous positions of the capsid, as described in a. and b. above. 7. A nucleic acid sequence encoding the AAV capsid polypeptide described in any one of 1 to 6 above. 8. A nucleic acid sequence according to claim 7, which is a self-complementary or single-stranded vector genome structure, in particular a self-complementary vector genome. 9. A nucleic acid sequence according to claim 7 or 8, comprising a transgene. 10. The nucleic acid sequence according to claim 9, wherein the transgene encodes a suitable protein, siRNA, shRNA or CRISPR / Cas-gRNA cassette sequence. 11. The nucleic acid sequence according to claim 9, wherein the transgene encodes a light-sensitive protein. 12. The nucleic acid sequence according to any one of 9 to 11 above, wherein the transgene is under the control of a promoter sequence operable in mammalian cells, particularly retinal cells, more particularly human retinal cells. 13. The nucleic acid sequence according to claim 12, wherein the promoter is a ubiquitous or cell-specific promoter. 14. The nucleic acid sequence according to claim 12, wherein the promoter is selected from the CMV immediate early promoter or the hEf1a promoter. 15. An agent selected from an AAV capsid polypeptide as defined in any one of 1 to 6 above and a nucleic acid sequence as defined in any one of 7 to 14 above, for use in medicine / as a medicament. 16.a. Retinal cells or retinal pigment epithelial cells, and / or b. photoreceptor cells, bipolar cells, ganglion cells, or amacrine cells 15. An agent selected from an AAV capsid polypeptide as defined in any one of 1 to 6 above and a nucleic acid sequence as defined in any one of 7 to 14 above for use in the treatment of a condition affecting the immune system. 17. An agent selected from an AAV capsid polypeptide according to any one of 1 to 6 above and a nucleic acid sequence according to any one of 7 to 14 above, for any one of the uses according to 15 or 16 above, a. Intravitreal administration, particularly intravitreal injection; or b. Subretinal injection The agent administered by.

Claims

1. An adeno-associated virus (AAV) capsid polypeptide for gene transfer into a retinal cell type, comprising a peptide insert between positions 587 and 588 of VP1 of an AAV serotype 2 capsid having the amino acid sequence of SEQ ID NO: 1, or between a position homologous to position 587 of SEQ ID NO: 1 and a position homologous to position 588 of SEQ ID NO: 1 of VP1 of an AAV serotype 2 capsid having an amino acid sequence with at least 90% sequence identity to the amino acid sequence of SEQ ID NO: 1, wherein the peptide insert is EHYNSTC (Cap7; SEQ ID NO: 12), PNPNCTL (Cap9; SEQ ID NO: 13), TPPSITA (Cap11; SEQ ID NO: 14), CGESSYL (Cap12; SEQ ID NO: 15), PRTPHTA (Cap13; SEQ ID NO: 16), and ELCDGFA (Cap14; SEQ ID NO: 17) An adeno-associated virus (AAV) capsid polypeptide selected from:

2. 2. The adeno-associated virus (AAV) capsid polypeptide of claim 1, which is or comprises a sequence selected from SEQ ID NO: 4 to SEQ ID NO:

9.

3. 3. The adeno-associated virus (AAV) capsid polypeptide of claim 1 or 2, comprising or consisting of an amino acid sequence selected from SEQ ID NO: 4 to SEQ ID NO:

9.

4. A nucleic acid encoding the adeno-associated virus (AAV) capsid polypeptide of any one of claims 1 to 3.

5. The nucleic acid of claim 4, which is a self-complementary or single-stranded vector genome structure.

6. 6. The nucleic acid of claim 4 or 5, comprising a transgene.

7. The nucleic acid of claim 6, wherein the transgene encodes a protein, an siRNA, an shRNA, or a CRISPR / Cas-gRNA cassette sequence.

8. The nucleic acid of claim 6 , wherein the transgene encodes a light-sensitive protein.

9. 9. The nucleic acid of any one of claims 6 to 8, wherein the transgene is under the control of a promoter sequence operable in a mammalian cell, under the control of a promoter sequence operable in a retinal cell, or under the control of a promoter sequence operable in a human retinal cell.

10. The nucleic acid of claim 9 , wherein the promoter is a ubiquitous or cell-specific promoter.

11. 10. The nucleic acid of claim 9, wherein the promoter is selected from the CMV immediate early promoter or the hEf1a promoter.

12. A pharmaceutical composition comprising the adeno-associated virus (AAV) capsid polypeptide of any one of claims 1 to 3 or the nucleic acid of any one of claims 4 to 11.

13. A pharmaceutical composition according to claim 12 for medical use.

14. a. retinal cells or retinal pigment epithelial cells, and / or b. Photoreceptor cells, bipolar cells, ganglion cells, or amacrine cells The pharmaceutical composition according to claim 12 for treating the diseases of

15. The pharmaceutical composition according to any one of claims 12 to 14, for treating glaucoma, retinitis pigmentosa, macular degeneration, retinoschisis, Leber's congenital amaurosis, diabetic retinopathy, color blindness or color vision deficiency, melanoma-associated retinopathy, congenital stationary night blindness, cone-rod dystrophy, maculopathy, early-onset severe retinal dystrophy, ocular albinism, oculocutaneous albinism, Stargardt disease, choroideremia, spinocerebellar ataxia type 7 (SCAT), lysosomal storage disease, retinoblastoma, intraocular melanoma, or hypertensive retinopathy.

16. The pharmaceutical composition according to any one of claims 13 to 15, a. Intravitreal administration; b. Intravitreal injection, or c. Subretinal administration A pharmaceutical composition administered by

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