IP Library Granted Patent US 11,325,956
Granted Patent B2
US 11,325,956 · App. 16/265,864 · Granted May 10, 2022

Dual-AAV vector-based systems and methods for delivering oversized genes to mammalian cells

Inventors: Sanford L. Boye (Gainesville, FL); Shannon E. Boye (Gainesville, FL); Frank Dyka (Gainesville, FL); William W. Hauswirth (Gainesville, FL)
Assignee: University of Florida Research Foundation, Incorporated
C07K14/47A61K48/0066C12N15/86C07K14/4716C12N2750/14143C12N2800/40C12N2830/50C12N2840/445C12N2999/007
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Quick Facts
Patent No.
US 11,325,956
App. No.
16/265,864
Granted
May 10, 2022
Kind
B2
Abstract

Disclosed are materials and methods for treating diseases of the mammalian eye, and in particular, Usher syndrome 1B (USH1B). The invention provides AAV-based, dual-vector systems that facilitate the expression of full-length proteins whose coding sequences exceed that of the polynucleotide packaging capacity of an individual AAV vector. In one embodiment, vector systems are provided that include i) a first AAV vector polynucleotide that includes an inverted terminal repeat at each end of the polynucleotide and a suitable promoter followed by a partial coding sequence that encodes an N-terminal portion of a full-length polypeptide; and ii) a second AAV vector polynucleotide that includes an inverted terminal repeat at each end of the polynucleotide and a partial coding sequence that encodes a C-terminal portion of a full-length polypeptide, optionally followed by a polyadenylation (pA) signal sequence. In another embodiment, the vector system includes i) a first AAV vector polynucleotide comprising an inverted terminal repeat at each end, a suitable promoter followed by a partial coding sequence that encodes an N-terminal portion of a full-length polypeptide followed by a splice donor site and intron and ii) a second AAV vector polynucleotide comprising an inverted terminal repeat at each end, followed by an intron and a splice-acceptor site for the intron, followed by a partial coding sequence that encodes a C-terminal portion of a full-length polypeptide, optionally followed by a polyadenylation (pA) signal sequence. The coding sequence or the intron sequence in the first and second AAV vectors preferably includes a sequence region that overlaps.

Claims (15)

1. A hybrid polynucleotide vector system comprising

i) a first AAV vector polynucleotide comprising an inverted terminal repeat at each end of the polynucleotide, and between the inverted terminal repeats a promoter followed by a partial coding sequence that encodes an N-terminal part of a selected full-length polypeptide followed by a splice donor site and an intron, and

ii) a second AAV vector polynucleotide comprising an inverted terminal repeat at each end of the polynucleotide, and between the inverted terminal repeats an intron and a splice acceptor site for the intron, and optionally followed by a partial coding sequence that encodes a C-terminal part of the selected full-length polypeptide, followed by a polyadenylation (pA) signal sequence,

wherein the selected full-length polypeptide is expressed in a photoreceptor cell or a retinal pigment epithelium cell,

wherein the intron sequence in the first and second AAV vectors comprises a polynucleotide sequence that overlaps.

2. The polynucleotide vector system of claim 1 , wherein the polynucleotide sequence overlap in the intron sequence in the first and second AAV vectors is about 50 to about 500 nucleotides in length.

3. The polynucleotide vector system of claim 1 , wherein the promoter is selected from the group consisting of a chimeric CMV β actin (smcBA) promoter, a human myosin 7a gene-derived promoter, a cone transducin a (TαC) gene-derived promoter, a rhodopsin promoter, a cGMP-phosphodiesterase β-subunit promoter, a human rhodopsin kinase (hGRK1) promoter, a rod specific IRBP promoter, a RPE-specific vitelliform macular dystrophy-2 [VMD2] promoter, and combinations thereof.

4. The polynucleotide vector system of claim 1 , wherein the selected full-length polypeptide is encoded by a gene of about 5 Kb to about 10 Kb in length.

5. The polynucleotide vector system of claim 1 , wherein the first AAV vector polynucleotide comprises the nucleotide sequence of SEQ ID NO:3, and the second AAV vector polynucleotide comprises the nucleotide sequence of SEQ ID NO:4.

6. The polynucleotide vector system of claim 1 , wherein the selected full-length polypeptide is a human myosin VIIA polypeptide.

7. The polynucleotide vector system of claim 6 , wherein the human myosin VIIa polypeptide comprises the amino acid sequence of SEQ ID NO:6 or SEQ ID NO:8.

8. The polynucleotide vector system of claim 1 , wherein the photoreceptor cell comprises a rod cell, a cone cell, or any combination thereof.

9. An isolated host cell comprising the polynucleotide vector system of claim 1 .

10. The isolated host cell of claim 9 , wherein the cell is a photoreceptor cell, a cone cell, a rod cell, a retinal cell, or any combination thereof.

11. A virus or an infectious viral particle comprising the first AAV vector polynucleotide or the second AAV vector polynucleotide of claim 1 .

Assignments (2)
CONFIRMATORY LICENSE Recorded Feb 7, 2023
From: UNIVERSITY OF FLORIDA
To: NATIONAL INSTITUTES OF HEALTH (NIH), U.S. DEPT. OF HEALTH AND HUMAN SERVICES (DHHS), U.S. GOVERNMENT
Reel/Frame 062668/0494 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 26, 2019
From: BOYE, SANFORD L.; BOYE, SHANNON E.; DYKA, FRANK; HAUSWIRTH, WILLIAM W.
To: UNIVERSITY OF FLORIDA RESEARCH FOUNDATION, INCORPORATED
Reel/Frame 049593/0495 →
Continuity (4)
Division 14279142 · May 15, 2014
Continuation PCTUS2012065645 · Nov 16, 2012
Provisional Application 61560437 · Nov 16, 2011
Related Publication 20190153050A1 · May 23, 2019
Cited By (6)
US 12,188,041 US 12,359,221 US 12,377,169 US 12,410,442 US 12,589,168 US 12,605,466