IP Library › Granted Patent US 11,104,743
Granted Patent B2
US 11,104,743 · App. 17/021,234 · Granted Aug 31, 2021

Genetic engineering of non-human animals for the production of chimeric antibodies

Inventors: Larry Green (San Diego, CA); Hiroaki Shizuya (South Pasadena, CA)
Assignee: ABLEXIS, LLC
C07K16/461A01K67/0275A01K67/0278C07K16/00C07K16/18C12N15/8509A01K2207/15A01K2217/052A01K2217/072A01K2227/105A01K2267/01C07K2317/14C07K2317/24C07K2317/51C07K2317/515C07K2317/52C07K2317/522C07K2317/524C07K2317/526C07K2317/53C07K2317/56C07K2317/64C12N2510/02
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Quick Facts
Patent No.
US 11,104,743
App. No.
17/021,234
Granted
Aug 31, 2021
Kind
B2
Abstract

The invention provides non-human cells and mammals having a genome encoding chimeric antibodies and methods of producing transgenic cells and mammals. Certain aspects of the invention include chimeric antibodies, humanized antibodies, pharmaceutical compositions and kits. Certain aspects of the invention also relate to diagnostic and treatment methods using the antibodies of the invention.

Claims (20)

1. A mouse whose genome comprises a transgene encoding a polypeptide comprising a canine immunoglobulin heavy chain variable region, wherein the transgene comprises (1) a plurality of immunoglobulin heavy chain variable (V) exons encoding canine immunoglobulin heavy chain V polypeptides, (2) mouse immunoglobulin non-coding sequences between the V exons, (3) a plurality of immunoglobulin heavy chain diversity (D) coding sequences encoding canine immunoglobulin heavy chain D polypeptides, (4) mouse immunoglobulin non-coding sequences between the D coding sequences, (5) a plurality of immunoglobulin heavy chain joining (J) coding sequences encoding canine immunoglobulin heavy chain J polypeptides, and (6) mouse immunoglobulin non-coding sequences between the J coding sequences, wherein the transgene is capable of undergoing gene arrangement and thereby upon expression to produce a polypeptide comprising the canine immunoglobulin heavy chain variable region.

2. The mouse according to claim 1 , wherein the mouse immunoglobulin non-coding sequences between the V exons are mouse immunoglobulin heavy chain non-coding sequences.

3. The mouse according to claim 1 , wherein the mouse immunoglobulin non-coding sequences between the D coding sequences are mouse immunoglobulin heavy chain non-coding sequences.

4. The mouse according to claim 1 , wherein the mouse immunoglobulin non-coding sequences between the J coding sequences are mouse immunoglobulin heavy chain non-coding sequences.

5. The mouse according to claim 1 , wherein the non-coding sequences between the V exons, the non-coding sequences between the D coding sequences and the non-coding sequences between the J coding sequences are selected from the group consisting of an intron and cis regulatory sequences.

6. The mouse according to claim 5 , wherein the cis regulatory sequences are selected from promoters, enhancers, recombination signal sequences, splice acceptor sequences and splice donor sequences.

7. The mouse according to claim 1 , wherein the transgene is a synthetic transgene.

8. The mouse according to claim 1 , wherein the mouse immunoglobulin non-coding sequences between the V exons are mouse immunoglobulin light chain non-coding sequences.

9. The mouse according to claim 1 , wherein the mouse immunoglobulin non-coding sequences between the D coding sequences are mouse immunoglobulin light chain non-coding sequences.

10. The mouse according to claim 1 , wherein the mouse immunoglobulin non-coding sequences between the J coding sequences are mouse immunoglobulin light chain non-coding sequences.

11. The mouse according to claim 1 , wherein the transgene further comprises one or more coding sequences encoding an immunoglobulin heavy chain constant (C) polypeptide, wherein the immunoglobulin heavy chain C polypeptide is a canine or mouse immunoglobulin heavy chain C polypeptide.

12. The mouse according to claim 11 , wherein the immunoglobulin heavy chain C polypeptide is a mouse immunoglobulin heavy chain C polypeptide.

13. The mouse according to claim 1 , wherein the transgene further comprises mouse non-coding sequences upstream of the V exons.

14. The mouse according to claim 13 , wherein the non-coding sequences upstream of the V exons are selected from promoters and enhancers.

15. The mouse according to claim 1 , wherein the transgene further comprises mouse non-coding sequences downstream of the J coding sequences.

16. The mouse according to claim 15 , wherein the non-coding sequences downstream of the J coding sequences are selected from polyadenylation sites and 3′ untranslated regions.

17. The mouse according to claim 1 , wherein the genome further comprises a second transgene encoding a canine immunoglobulin light chain, or a portion thereof.

18. The mouse according to claim 17 , wherein the immunoglobulin light chain is a kappa light chain or a lambda light chain.

19. The mouse according to claim 1 , wherein the transgene comprises (1) a plurality of immunoglobulin heavy chain variable (V) exons encoding canine immunoglobulin heavy chain V polypeptides, (2) mouse immunoglobulin heavy chain non-coding sequences between the V exons, (3) a plurality of immunoglobulin heavy chain diversity (D) coding sequences encoding canine immunoglobulin heavy chain D polypeptides, (4) mouse immunoglobulin heavy chain non-coding sequences between the D coding sequences, (5) a plurality of immunoglobulin heavy chain joining (J) coding sequences encoding canine immunoglobulin heavy chain J polypeptides, and (6) mouse immunoglobulin heavy chain non-coding sequences between the J coding sequences; and (7) one or more coding sequences encoding immunoglobulin mouse heavy chain constant (C) polypeptides.

20. A non-human mammalian cell whose genome comprises a transgene encoding a polypeptide comprising a canine immunoglobulin heavy chain variable region, wherein the transgene comprises (1) a plurality of immunoglobulin heavy chain variable (V) exons encoding canine immunoglobulin heavy chain V polypeptides, (2) mouse immunoglobulin non-coding sequences between the V exons, (3) a plurality of immunoglobulin heavy chain diversity (D) coding sequences encoding canine immunoglobulin heavy chain D polypeptides, (4) mouse immunoglobulin non-coding sequences between the D coding sequences, (5) a plurality of immunoglobulin heavy chain joining (J) coding sequences encoding canine immunoglobulin heavy chain J polypeptides, and (6) mouse immunoglobulin non-coding sequences between the J coding sequences, wherein the transgene is capable of undergoing gene arrangement and thereby upon expression to produce a polypeptide comprising the canine immunoglobulin heavy chain variable region.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 15, 2020
From: GREEN, LARRY; SHIZUYA, HIROAKI
To: ABLEXIS, LLC
Reel/Frame 053774/0625 →
Continuity (6)
Continuation 15463806 · Mar 20, 2017
Division 15408114 · Jan 17, 2017
Division 13638522
Provisional Application 61361302 · Jul 2, 2010
Provisional Application 61319690 · Mar 31, 2010
Related Publication 20200407464A1 · Dec 31, 2020