IP Library Granted Patent US 12,543,713
Granted Patent B2
US 12,543,713 · App. 17/550,927 · Granted Feb 10, 2026

Mice that make heavy chain antibodies

Inventors: Lynn Macdonald (Harrison, NY); Sean Stevens (Del Mar, CA); Andrew J. Murphy (Croton-on-Hudson, NY)
Assignee: Regeneron Pharmaceuticals, Inc.
A01K67/0278A01K67/0275A01K67/0276C07K16/00C07K16/462C12N15/8509A01K2217/072A01K2217/075A01K2227/105A01K2267/01C07K2317/14C07K2317/20C07K2317/21C07K2317/50C07K2317/52
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Quick Facts
Patent No.
US 12,543,713
App. No.
17/550,927
Granted
Feb 10, 2026
Kind
B2
Abstract

Genetically modified non-human animals and methods and compositions for making and using them are provided, wherein the genetic modification comprises a deletion in an immunoglobulin constant region CH1 gene (optionally a deletion in a hinge region) of an IgG, IgA, IgD, and/or IgE, and wherein the mouse is capable of expressing a functional IgM. Genetically modified mice are described, including mice having a functional IgM gene and modified to have a deletion of a CH1 domain and a hinge region in a heavy chain constant domain that is not an IgM, e.g., in an IgG heavy chain constant domain. Genetically modified mice that make human variable/mouse constant chimeric heavy chain antibodies (antibodies that lack a light chain), fully mouse heavy chain antibodies, or fully human heavy chain antibodies are provided.

Claims (59)

1 . A method of providing a rodent that expresses IgG heavy chain antibodies lacking a C H 1 domain and also expresses IgM antibodies comprised of two light chains and two heavy chains, which IgM heavy chains each include a functional C H 1 domain, the method comprising:

(i) genetically modifying a rodent embryonic stem(ES) cell such that it comprises, at an endogenous Ig heavy chain constant region,

(a) an endogenous IgM constant region gene that encodes an endogenous IgM isotype comprising a C H 1 domain, and

(b) a replacement of an endogenous IgG constant region gene with a genetically modified rodent IgG constant region gene,

wherein the endogenous IgG constant region gene and the genetically modified rodent IgG constant region gene encode the same isotype, and

wherein the genetically modified rodent IgG constant region gene comprises:

a nucleotide sequence comprising from 5′ to 3′: an endogenous switch region, a splice acceptor, a C H 2 exon, a C H 2 intron, and a C H 3 exon, and

deletion in a sequence encoding a C H 1 domain, and encodes a rodent IgG isotype devoid of a C H 1 domain and

(ii) generating a genetically modified rodent from the genetically modified rodent ES cell,

wherein the generated rodent expresses

(a) an IgM immunoglobulin heavy chain that comprises an Ig heavy chain variable domain operably linked to the endogenous IgM isotype comprising a C H 1 domain, and

(b) an IgG immunoglobulin heavy chain that consists essentially of, from N-terminal to C-terminal, an Ig heavy chain variable domain operably linked to the rodent IgG isotype devoid of a C H 1 domain, and

wherein the rodent is a rat or a mouse.

2 . The method of claim 1 , wherein the rodent ES cell further comprises unrearranged human Ig heavy chain variable region VH, DH, and JH gene segments operably linked to the endogenous Ig heavy chain constant region such that the rodent expresses:

(a) a chimeric human/rodent IgM immunoglobulin heavy chain that comprises a human Ig heavy chain variable domain operably linked to the endogenous IgM isotype comprising a C H 1 domain and

(b) a chimeric human/rodent IgG immunoglobulin heavy chain that consists essentially of, from N-terminal to C-terminal, a human Ig heavy chain variable domain operably linked to the rodent IgG isotype devoid of a C H 1 domain.

3 . The method of claim 2 , wherein the unrearranged human Ig heavy chain variable region V H , D H , and J H gene segments replace one or more endogenous Ig heavy chain variable region gene segments.

4 . The method of claim 1 , wherein the genetically modified rodent IgG constant region gene further comprises a deletion in a sequence encoding a hinge such that the rodent IgG isotype is devoid of a C H 1 domain and a hinge.

5 . The method of claim 1 , wherein the endogenous IgG constant region gene is selected from the group consisting of

(i) an IgG1 constant region gene,

(ii) an IgG2a constant region gene,

(iii) an IgG2b constant region gene,

(iv) an IgG3 constant region gene, and

(v) combinations thereof.

6 . The method of claim 5 , wherein the endogenous IgG constant region gene is an IgG1 constant region gene and/or an IgG3 constant region gene.

7 . The method of claim 6 , wherein the endogenous IgG constant region gene is an IgG1 constant region gene, and wherein the rodent expresses:

(a) an endogenous IgG3 constant region gene comprising an IgG3 C H 1 gene segment, an IgG3 hinge region, an IgG3 C H 2 gene segment, and an IgG3 C H 3 gene segment;

(b) an endogenous IgG2a constant region gene comprising an IgG2a C H 1 gene segment, an IgG2a hinge region, an IgG2a C H 2 gene segment, and an IgG2a C H 3 gene segment; and

(c) an endogenous IgG2b constant region gene comprising an IgG2b C H 1 gene segment, an IgG2b hinge region, an IgG2b C H 2 gene segment, and an IgG2b C H 3 gene segment.

8 . The method of claim 7 , further characterized in that the rodent additionally expresses:

(d) an endogenous IgM constant region gene comprising an IgM C H 1 gene segment, an IgM C H 2 gene segment, and an IgM C H 3 gene segment;

(e) an endogenous IgD constant region gene comprising an IgD C H 1 gene segment, an IgD hinge region, an IgD C H 2 gene segment, and an IgD C H 3 gene segment;

(f) an endogenous IgA constant region gene comprising an IgA C H 1 gene segment, an IgA hinge region, an IgA C H 2 gene segment, and an IgA C H 3 gene segment; and

(g) an endogenous IgE constant region gene comprising an IgE C H 1 gene segment, an IgE C H 2 gene segment, and an IgE C H 3 gene segment.

9 . The method of claim 7 , wherein the genetically modified rodent IgG constant region gene comprises, at the deletion point, a sequence set forth as SEQ ID NO:17.

10 . The method of claim 5 , wherein the endogenous IgG constant region gene is an IgG1 constant region gene and an endogenous IgG2a constant region gene, and

wherein the endogenous Ig heavy chain constant region further comprises:

(i) a deletion of an endogenous IgD constant region gene;

(ii) a deletion of an endogenous IgG3 constant region gene;

(iii) a deletion of an endogenous IgG2b constant region gene;

(iv) a deletion of an endogenous IgE constant region gene; or

(v) a deletion of an endogenous IgA constant region gene.

11 . The method of claim 5 , wherein the endogenous IgG constant region gene is an IgG1 constant region gene, and wherein the endogenous Ig heavy chain constant region further comprises:

(i) a deletion of an endogenous IgD constant region gene;

(ii) a deletion of an endogenous IgG3 constant region gene;

(iii) a deletion of an endogenous IgG2a constant region gene;

(iv) a deletion of an endogenous IgG2b constant region gene;

(v) a deletion of an endogenous IgE constant region gene; or

(vi) a deletion of an endogenous IgA constant region gene.

12 . The method of claim 1 , wherein the rodent expresses the IgM immunoglobulin heavy chain associated with a cognate light chain.

13 . The method of claim 1 , wherein the rodent ES cell is from a mouse strain selected from the group consisting of a 129 strain, a C57BL/6 strain, and a mixed 129×C57BL/6 strain.

14 . The method of claim 13 , wherein the rodent ES cell is 50% 129 and 50% C57BL/6.

15 . A method for isolating an Ig heavy chain variable domain and/or nucleic acid encoding same comprising:

isolating a lymphocyte, or hybridoma produced therefrom, from a rodent made according to the method of claim 1 , wherein the lymphocyte or hybridoma expresses a rearranged Ig heavy chain variable region encoding an Ig heavy chain variable domain of an antibody that specifically binds an antigen.

16 . The method of claim 15 , wherein the Ig heavy chain variable domain is a human Ig heavy chain variable domain that is encoded by a rearranged human Ig heavy chain variable region.

17 . The method of claim 16 , further comprising isolating the rearranged human Ig heavy chain variable region from the isolated lymphocyte, or a hybridoma produced therefrom.

18 . The method of claim 17 , further comprising expressing the rearranged human Ig heavy chain variable region in a host cell.

19 . The method of claim 18 , wherein the rearranged human Ig heavy chain variable region is operably linked to a human Ig heavy chain constant region gene.

20 . The method of claim 18 , wherein the human Ig heavy chain constant region gene comprises a deletion in a sequence encoding a C H 1 domain.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 7, 2025
From: MACDONALD, LYNN; STEVENS, SEAN; MURPHY, ANDREW J.
To: REGENERON PHARMACEUTICALS, INC.
Reel/Frame 071616/0739 →
Continuity (5)
Continuation 14674198 · Mar 31, 2015
Continuation 14267279 · May 1, 2014
Division 12965050 · Dec 10, 2010
Provisional Application 61285250 · Dec 10, 2009
Related Publication 20220201993A1 · Jun 30, 2022
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