Anti-LY6G6D antibodies and methods of use

Bispecific antibodies targeting LY6G6D and CD3 are developed to enhance immune response against cancer cells, addressing the need for effective immunotherapies in treating cancers like CRC.

JP7743357B2Active Publication Date: 2025-09-24GENENTECH INC
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Patent Information

Application Number
JP2022072007
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-13
Filing Date
2022-04-26
Publication Date
2025-09-24
Estimated Expiration
2040-12-14

AI Technical Summary

Technical Problem

There is an unmet need for effective bispecific antibody-based immunotherapies, particularly targeting LY6G6D, to treat cancers such as colorectal cancer (CRC), as current treatments like chemotherapy, radiation therapy, and surgery have low efficacy and immunotherapies using bispecific antibodies are not fully developed.

Method used

Development of antibodies that specifically bind to LY6G6D, including monoclonal, human, humanized, or chimeric antibodies, with defined CDR sequences and framework regions, capable of binding to both LY6G6D and CD3, forming a bispecific antibody that can target and engage cytotoxic cells to destroy tumor cells.

Benefits of technology

The bispecific antibodies effectively engage cytotoxic cells to destroy tumor cells, offering a promising therapeutic approach for cancer treatment by enhancing the immune response against cancer cells.

✦ Generated by Eureka AI based on patent content.

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Abstract

Anti-Ly6G6D (lymphocyte antigen 6 complex, locus G61) antibodies and methods of using same are provided. [Solution] An isolated antibody that binds to the anti-lymphocyte antigen 6 family member G6D (LY6G6D), wherein the antibody comprises an LY6G6D binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein the H1 comprises a heavy chain variable (VH) domain (VH1) comprising complementarity-determining regions (CDRs) of CDR-H1, CDR-H2, and CDR-H3 comprising specific amino acid sequences, and the L1 comprises a light chain variable (VL) domain (VL1) comprising CDR-L1, CDR-L2, and CDR-L3 comprising specific amino acid sequences.
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Description

[Technical Field]

[0001] Sequence Listing This application contains a Sequence Listing that has been submitted electronically in ASCII format and is incorporated herein by reference in its entirety. The ASCII copy, created on December 11, 2020, is named 50474-184JP2_Sequence_Listing_12.11.20_ST25 and is 146,127 bytes in size.

[0002] FIELD OF THE INVENTION Provided herein are anti-Ly6G6D (lymphocyte antigen 6 complex, locus G61) antibodies and methods of using same. [Background technology]

[0003] Cancer remains one of the most deadly threats to human health. In the United States, cancer affects more than 1.7 million new cases each year, making it the second leading cause of death after heart disease, accounting for approximately one in four deaths. Colorectal cancer (CRC), in particular, is the third leading cause of cancer death in the United States, and patients with advanced CRC have a low five-year survival rate. Cancers such as CRC pose a significant and growing threat and burden to society.

[0004] Long-term approaches to cancer treatment include chemotherapy, radiation therapy, and surgery to remove solid tumors. Recently, immunotherapy using bispecific antibodies has been developed. These bispecific antibodies can simultaneously bind to cell surface antigens on cytotoxic cells and tumor cells, with the goal of destroying the tumor cells to which they are bound.

[0005] There is an unmet need in the field to develop effective bispecific antibody-based immunotherapies (e.g., bispecific anti-LY6G6D antibody-based immunotherapies) for use in cancer (e.g., CRC) treatment. Summary of the Invention

[0006] The present invention provides compositions for the treatment of cancer, as well as formulations and methods of use.

[0007] In a first aspect, the invention features an isolated antibody that binds to the anti-lymphocyte antigen 6 family member G6D (LY6G6D), wherein the antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein the H1 comprises a heavy chain variable (VH) domain (VH1) comprising the following complementarity-determining regions (CDRs): (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4 or SEQ ID NO: 111; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5, SEQ ID NO: 112, or SEQ ID NO: 113; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; and the L1 comprises a light chain variable (VL) domain (VL1) comprising the following CDRs: (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3 or any of SEQ ID NOs: 99-107. In some embodiments, the antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein the H1 comprises a heavy chain variable (VH) domain (VH1) comprising the following complementarity determining regions (CDRs): (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; and (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; and the L1 comprises a light chain variable (VL) domain (VL1) comprising the following CDRs: (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3.In some embodiments, the antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein the H1 comprises a heavy chain variable (VH) domain (VH1) comprising the following complementarity-determining regions (CDRs): (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; and (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; and the L1 comprises a light chain variable (VL) domain (VL1) comprising the following CDRs: (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of any one of SEQ ID NOs: 99-107. In some embodiments, the antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein the H1 comprises a heavy chain variable (VH) domain (VH1) comprising the following complementarity-determining regions (CDRs): (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 111; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; and (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; and the L1 comprises a light chain variable (VL) domain (VL1) comprising the following CDRs: (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3. In some embodiments, the antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein H1 comprises a heavy chain variable (VH) domain (VH1) comprising the following complementarity determining regions (CDRs): (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 112 or SEQ ID NO: 113; and (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; and L1 comprises a light chain variable (VL) domain (VL1) comprising the following CDRs: (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3.

[0008] In some embodiments, (a) the VH1 comprises an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 10; (b) the VL1 comprises an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 11; or (c) the antibody comprises the VH1 of (a) and the VL1 of (b).

[0009] In some embodiments, the VH1 comprises the following framework regions (FR): (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 34; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 35; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 36; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 37. In some embodiments, the VH1 comprises the amino acid sequence of SEQ ID NO: 10.

[0010] In some embodiments, the VH1 comprises the following FRs: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 34; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 58; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 36; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 37. In some embodiments, the VH1 comprises the amino acid sequence of SEQ ID NO: 59.

[0011] In some embodiments, the VL1 comprises the following FRs: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 38; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 39; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 40; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 41. In some embodiments, the VL1 comprises the amino acid sequence of SEQ ID NO: 11.

[0012] In some embodiments, the VL1 comprises the following FRs: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 38; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 61; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 40; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 41. In some embodiments, the VL1 comprises the amino acid sequence of SEQ ID NO: 60:

[0013] In another aspect, the disclosure features an isolated antibody that binds to LY6G6D, wherein the antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein the H1 comprises a VH domain (VH1) comprising the amino acid sequence of SEQ ID NO: 10, and the L1 comprises a VL domain (VL1) comprising the amino acid sequence of SEQ ID NO: 11.

[0014] In another aspect, the disclosure features an isolated antibody that binds to LY6G6D, wherein the antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein the H1 comprises a VH domain (VH1) comprising the amino acid sequence of SEQ ID NO: 59, and the L1 comprises a VL domain (VL1) comprising the amino acid sequence of SEQ ID NO: 60.

[0015] In some embodiments, the antibody has a K between about 100 pM and about 10 nM at 37°C as measured using a BIAcore assay. D In some embodiments, the antibody binds to human LY6G6D polypeptide with a K of 6.0 nM or less; 4 nM or less; or 2 nM or less. D It binds to human LY6G6D polypeptide at

[0016] In some embodiments, the antibody is a monoclonal, human, humanized, or chimeric antibody.

[0017] In some embodiments, the antibody is an antibody fragment that binds LY6G6D, hi some embodiments, the antibody fragment is selected from the group consisting of Fab, Fab'-SH, Fv, scFv, and (Fab')2 fragments.

[0018] In some embodiments, the antibody is a full-length antibody or an IgG antibody.

[0019] In some embodiments, the antibody is a monospecific antibody, a multispecific antibody, or a bispecific antibody.

[0020] In some embodiments, the bispecific antibody comprises a CD3 binding domain that binds to Cluster of Differentiation 3 (CD3) and comprises a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein H2 comprises a VH domain (VH2) and L2 comprises a VL domain (VL2).

[0021] In some embodiments, the CD3 binding domain is capable of binding to a human CD3 polypeptide or a cynomolgus monkey CD3 polypeptide. In some embodiments, the human CD3 polypeptide or the cynomolgus monkey CD3 polypeptide is a human CD3ε polypeptide or a cynomolgus monkey CD3ε polypeptide, respectively. In some embodiments, the human CD3 polypeptide or the cynomolgus monkey CD3 polypeptide is a human CD3γ polypeptide or a cynomolgus monkey CD3γ polypeptide, respectively.

[0022] In some embodiments, the antibody has a K between about 1 nM and about 500 nM at 37°C as measured using a BIAcore assay. D In some embodiments, the CD3 binding domain binds to a human CD3ε polypeptide with a K of 250 nM or less. D In some embodiments, the CD3 binding domain binds human CD3ε polypeptide with a K of 100 nM or less. D In some embodiments, the CD3 binding domain binds human CD3ε polypeptide with a K of 15 nM or less. D In some embodiments, the CD3 binding domain binds human CD3ε polypeptide with a K D In some embodiments, the CD3 binding domain binds human CD3ε polypeptide with a K of 5 nM or less. D binds human CD3ε polypeptide.

[0023] In some embodiments, the VH2 comprises the following CDRs: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; and (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; and the VL2 comprises the following CDRs: (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14.

[0024] In some embodiments, the VH2 comprises an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 20; (b) the VL2 comprises an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 21; or (c) the antibody comprises a VH2 of (a) and a VL2 of (b). In some embodiments, the VH2 comprises the amino acid sequence of SEQ ID NO: 20. In some embodiments, the VL2 comprises the amino acid sequence of SEQ ID NO: 21.

[0025] In some embodiments, the VH2 comprises the following CDRs: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; and (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; and the VL2 comprises the following CDRs: (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 50; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 51;

[0026] In some embodiments, (a) the VH2 comprises an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 20; (b) the VL2 comprises an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 55; or (c) the antibody comprises a VH2 of (a) and a VL2 of (b). In some embodiments, the VH2 comprises the amino acid sequence of SEQ ID NO: 20. In some embodiments, the VL2 comprises the amino acid sequence of SEQ ID NO: 55.

[0027] In some embodiments, the VH2 comprises the following FRs: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 43; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45.

[0028] In some embodiments, the VH2 comprises the following FRs: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 62; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45.

[0029] In some embodiments, the VL2 comprises the following FRs: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 47; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49.

[0030] In some embodiments, the VL2 comprises the following FRs: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 63; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49.

[0031] In some embodiments, the H1 and H2 each further comprise a heavy chain constant domain (CH1), and the L1 and L2 each further comprise a light chain constant domain (CL). In some embodiments, the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering) and the CL of L1 comprises an amino acid substitution at V133 (EU numbering). In some embodiments, the CH1 of H1 comprises a S183K mutation and the CL of L1 comprises a V133E mutation. In some embodiments, the CH1 of H2 comprises a S183E mutation and the CL of L2 comprises a V133K mutation. In some embodiments, the CH1 of H1 comprises a S183E mutation and the CL of L1 comprises a V133K mutation. In some embodiments, the CH1 of H2 comprises a S183K mutation and the CL of L2 comprises a V133E mutation.

[0032] In another aspect, the disclosure features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises: an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1); and a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein each of H1 and H2 comprises a heavy chain variable domain (VH) and a heavy chain constant domain (CH1), and each of L1 and L2 comprises a light chain variable domain (VL) and a light chain constant domain (CL), wherein: (a) the LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4 or SEQ ID NO: 111; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5, SEQ ID NO: 112, or SEQ ID NO: 113; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (iv) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2. and (vi) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3 or any of the amino acid sequences of SEQ ID NOs: 99-107; (b) the CD3-binding domain comprises the following six CDRs: (i) a CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) a CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (iii) a CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (iv) a CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering) and the CL of L1 comprises an amino acid substitution at V133 (EU numbering), and / or the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering) and the CL of L2 comprises an amino acid substitution at V133 (EU numbering); and (d) the VH of H1 comprises an amino acid substitution at position Q39 and the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all according to Kabat numbering).In some embodiments, (a) the LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (iv) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3; (b) the CD3-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16. (iii) a CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (iv) a CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (v) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13; and (vi) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering) and the CL of L1 comprises an amino acid substitution at V133 (EU numbering), and / or the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering) and the CL of L2 comprises an amino acid substitution at V133 (EU numbering). and (d) the VH of H1 comprises an amino acid substitution at position Q39 and the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all according to Kabat numbering).

[0033] (a) The LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (iv) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (vi) CDR-L3 comprising any one of the amino acid sequences of SEQ ID NOs: 99 to 107; (b) The CD3-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16. (iii) a CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (iv) a CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (v) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13; and (vi) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering) and the CL of L1 comprises an amino acid substitution at V133 (EU numbering), and / or the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering) and the CL of L2 comprises an amino acid substitution at V133 (EU numbering). and (d) the VH of H1 comprises an amino acid substitution at position Q39 and the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all according to Kabat numbering).

[0034] In some embodiments, (a) the LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 111; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (iv) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3; and (b) the CD3-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16. (iii) a CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (iv) a CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (v) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13; and (vi) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering) and the CL of L1 comprises an amino acid substitution at V133 (EU numbering), and / or the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering) and the CL of L2 comprises an amino acid substitution at V133 (EU numbering). and (d) the VH of H1 comprises an amino acid substitution at position Q39 and the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all according to Kabat numbering).In some embodiments, (a) the LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 112 or SEQ ID NO: 113; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (iv) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3; (b) the CD3-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 1 (iii) a CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (iv) a CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (v) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13; and (vi) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering) and the CL of L1 comprises an amino acid substitution at V133 (EU numbering), and / or the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering) and the CL of L2 comprises an amino acid substitution at V133 (EU numbering). and (d) the VH of H1 comprises an amino acid substitution at position Q39 and the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all according to Kabat numbering).

[0035] In another aspect, the invention features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises: an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1); and a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein each of H1 and H2 comprises a heavy chain variable domain (VH) and a heavy chain constant domain (CH1), and each of L1 and L2 comprises a light chain variable domain (VL) and a light chain constant domain (CL), wherein: The LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4 or SEQ ID NO: 111; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5, SEQ ID NO: 112, or SEQ ID NO: 113; (iii) CDR-H3 comprising SEQ ID NO: 6; (iv) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3 or any of the amino acid sequences of SEQ ID NOs: 99 to 107. (b) the CD3-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (iv) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 50; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 51; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering), (d) the VH of H1 comprises an amino acid substitution at position Q39, the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all according to Kabat numbering).In some embodiments, (a) the LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (iv) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3; (b) the CD3-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (iv) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 12. (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 50; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 51; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering), and the CL of L1 comprises an amino acid substitution at V133 (EU numbering), and / or the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering) and the CL of L2 comprises an amino acid substitution at V133 (EU numbering); and (d) the VH of H1 comprises an amino acid substitution at position Q39, and the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all Kabat numbering).In some embodiments, (a) the LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (iv) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (vi) CDR-L3 comprising the amino acid sequence of any one of SEQ ID NOs: 99-107; (b) the CD3-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (iv) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 12. (v) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 50; and (vi) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 51; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering), and the CL of L1 comprises an amino acid substitution at V133 (EU numbering), and / or the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering) and the CL of L2 comprises an amino acid substitution at V133 (EU numbering); and (d) the VH of H1 comprises an amino acid substitution at position Q39, and the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all according to Kabat numbering).

[0036] In some embodiments, (a) the LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 111; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (iv) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3; (b) the CD3-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; and (iv) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 12. CDR-L1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 50; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 51; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering), and the CL of L1 comprises an amino acid substitution at V133 (EU numbering), and / or the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering) and the CL of L2 comprises an amino acid substitution at V133 (EU numbering); and (d) the VH of H1 comprises an amino acid substitution at position Q39, and the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all according to Kabat numbering).In some embodiments, (a) the LY6G6D-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 111; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 112 or 113; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (iv) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 1; (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3; (b) the CD3-binding domain comprises the following six CDRs: (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (iv) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 12. (v) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 50; and (vi) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 51; (c) the CH1 of H1 comprises an amino acid substitution at S183 (EU numbering), and the CL of L1 comprises an amino acid substitution at V133 (EU numbering), and / or the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering) and the CL of L2 comprises an amino acid substitution at V133 (EU numbering); and (d) the VH of H1 comprises an amino acid substitution at position Q39, and the VL of L1 comprises an amino acid substitution at position Q38, and / or the VH of H2 comprises an amino acid substitution at position Q39 and the VL of L2 comprises an amino acid substitution at position Q38 (all according to Kabat numbering).

[0037] In some embodiments, the VH of H1 comprises an amino acid substitution at Q39 (Kabat numbering), and the VL of L1 comprises an amino acid substitution at Q38 (Kabat numbering). In some embodiments, the CH1 of H2 comprises an amino acid substitution at S183 (EU numbering), and the CL of L2 comprises an amino acid substitution at V133 (EU numbering). In some embodiments, the VH of H2 further comprises an amino acid substitution at position Q39 (Kabat numbering), and the VL of L2 further comprises an amino acid substitution at position Q38 (Kabat numbering). In some embodiments, the CH1 of H1 comprises a S183K mutation (EU numbering), the CL of L1 comprises a V133E mutation (EU numbering), the CH1 of H2 comprises a S183E mutation (EU numbering), and the CL of L2 comprises a V133K mutation (EU numbering). In some embodiments, the VH of H1 comprises a Q39E (Kabat numbering) mutation, the VL of L1 comprises a Q38K mutation, and the VH of H2 comprises a Q39K mutation and the VL of L2 comprises a Q38E mutation (Kabat numbering). In some embodiments, the CH1 of H1 comprises a S183E mutation (EU numbering), the CL of L1 comprises a V133K mutation (EU numbering), the CH1 of H2 comprises a S183K mutation (EU numbering), and the CL of L2 comprises a V133E mutation (EU numbering). In some embodiments, the VH of H1 comprises a Q39K mutation (Kabat numbering), the VL of L1 comprises a Q38E mutation (Kabat numbering), the VH of H2 comprises a Q39E mutation (Kabat numbering), and the VL of L2 comprises a Q38K mutation (Kabat numbering).

[0038] In some embodiments, the VH of H2 comprises the amino acid sequence of SEQ ID NO: 20 and / or the VL of L2 comprises the amino acid sequence of SEQ ID NO: 21. In some embodiments, the VH of H1 comprises the amino acid sequence of SEQ ID NO: 10 and the VL of L1 comprises the amino acid sequence of SEQ ID NO: 11.

[0039] In some embodiments, the VH of H2 comprises the amino acid sequence of SEQ ID NO: 20, and the VL of L2 comprises the amino acid sequence of SEQ ID NO: 55. In some embodiments, the VH of H1 comprises the amino acid sequence of SEQ ID NO: 10, and the VL of L1 comprises the amino acid sequence of SEQ ID NO: 11.

[0040] In some embodiments, the first CH3 domain (CH31) of the H1 Fc region and the second CH3 domain (CH32) of the H2 Fc region each comprise a protrusion or a cavity, and wherein the protrusion or cavity in CH31 is positionable in the cavity or protrusion in CH32, respectively. In some embodiments, CH31 and CH32 meet at the interface between the protrusion and the cavity.

[0041] In some embodiments, the CH31 of the Fc region of the H1 comprises a protrusion, and the CH32 of the Fc region of the H2 comprises a cavity. In some embodiments, (a) the CH31 of the Fc region of the H1 comprises a protrusion comprising a T366W amino acid substitution mutation (EU numbering); (b) the CH32 of the Fc region of the H2 comprises a cavity comprising a T366S, L368A, or Y407V amino acid substitution mutation (EU numbering), or a combination thereof; or (c) both (a) and (b).

[0042] In some embodiments, (a) the CH31 of the Fc region of the H1 comprises a protrusion containing a T366W amino acid substitution mutation (EU numbering); (b) the CH32 of the Fc region of the H2 comprises a cavity containing T366S, L368A, and Y407V amino acid substitution mutations (EU numbering); or (c) both (a) and (b). In some embodiments, (a) the CH31 of the Fc region of the H1 comprises a protrusion containing a T366W amino acid substitution mutation (EU numbering), and (b) the CH32 of the Fc region of the H2 comprises a cavity containing T366S, L368A, and Y407V amino acid substitution mutations (EU numbering); or (c) both (a) and (b).

[0043] In some embodiments, the CH31 of the Fc region of the H1 comprises a cavity, and the CH32 of the Fc region of the H2 comprises a protrusion. In some embodiments, (a) the CH31 of the Fc region of the H1 comprises a cavity comprising a T366S, L368A, or Y407V amino acid substitution mutation (EU numbering) or a combination thereof; (b) the CH32 of the Fc region of the H2 comprises a protrusion comprising a T366W amino acid substitution mutation (EU numbering); or (c) both (a) and (b). In some embodiments, (a) the CH31 of the Fc region of the H1 comprises a cavity comprising a T366S, L368A, and Y407V amino acid substitution mutation (EU numbering); (b) the CH32 of the Fc region of the H2 comprises a protrusion comprising a T366W amino acid substitution mutation (EU numbering); or (c) both (a) and (b). In some embodiments, (a) the CH31 of the Fc region of the H1 comprises a cavity comprising T366S, L368A, and Y407V amino acid substitution mutations (EU numbering), and (b) the CH32 of the Fc region of the H2 comprises a protrusion comprising a T366W amino acid substitution mutation (EU numbering).

[0044] In some embodiments, the Fc region is a human IgG isotype Fc region or a variant thereof. In some embodiments, the Fc region is a variant of a human IgG isotype Fc region. In some embodiments, the variant human IgG isotype Fc region each comprises a mutation at amino acid residue N297 (EU numbering) that results in a lack of glycosylation. In some embodiments, the mutation at amino acid residue N297 is a substitution mutation. In some embodiments, the mutation at amino acid residue N297 reduces the effector function of the Fc region.

[0045] In some embodiments, the substitution mutation is an N297G or N297A mutation. In some embodiments, the variant human IgG isotype Fc regions each comprise an N297G mutation. In some embodiments, the variant human IgG isotype Fc regions each comprise a mutation that reduces an effector function of the Fc region.

[0046] In some embodiments, the mutation that reduces the effector function of the Fc region is a substitution mutation. In some embodiments, the substitution mutation is at amino acid residues E233, L234, L235, D265, and / or P329 (EU numbering). In some embodiments, the substitution mutation is an E233P, L234A, L234V, L235A, D265A, or P329G mutation. In some embodiments, the human IgG isotype Fc region variants each comprise a P329G mutation. In some embodiments, the human IgG isotype Fc region variants each comprise N297G and P329G.

[0047] In some embodiments, the human IgG isotype Fc region variant is a human IgG1 or IgG3 isotype Fc region variant, each further comprising the L234A or L235A mutation. In some embodiments, the human IgG isotype Fc region variant is a human IgG1 or IgG3 isotype Fc region variant, each further comprising the L234A and L235A mutations.

[0048] In some embodiments, the human IgG isotype Fc region variant is a human IgG1 or IgG3 isotype Fc region variant, each further comprising the following substitution mutations: E233P, L234V, and L235A (EU numbering) and a deletion of residue G236 (EU numbering). In some embodiments, the human IgG isotype Fc region variant is a variant of a human IgG1 isotype Fc region.

[0049] In some embodiments, the human IgG isotype Fc region variants are human IgG4 isotype Fc region variants, each comprising the following substitution mutations E233P, F234V, and L235A (EU numbering), and a deletion of residue G236 (EU numbering).

[0050] In some embodiments, the Fc region of the Fc complex is an effector-less Fc region.

[0051] In some embodiments, H1 comprises the amino acid sequence of SEQ ID NO: 7 and L2 comprises the amino acid sequence of SEQ ID NO: 9. In some embodiments, H2 comprises the amino acid sequence of SEQ ID NO: 18 and L2 comprises the amino acid sequence of SEQ ID NO: 19. In some embodiments, H2 comprises the amino acid sequence of SEQ ID NO: 18 and L2 comprises the amino acid sequence of SEQ ID NO: 57.

[0052] In another aspect, the disclosure features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), and the bispecific antibody comprises a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein: (a) H1 comprises the amino acid sequence of SEQ ID NO: 7, (b) L1 comprises the amino acid sequence of SEQ ID NO: 9, (c) H2 comprises the amino acid sequence of SEQ ID NO: 18, and (d) L2 comprises the amino acid sequence of SEQ ID NO: 19.

[0053] In another aspect, the disclosure features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), and the bispecific antibody comprises a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein: (a) H1 comprises the amino acid sequence of SEQ ID NO: 64, (b) L1 comprises the amino acid sequence of SEQ ID NO: 65, (c) H2 comprises the amino acid sequence of SEQ ID NO: 69, and (d) L2 comprises the amino acid sequence of SEQ ID NO: 70.

[0054] In another aspect, the disclosure features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), and the bispecific antibody comprises a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein: (a) H1 comprises the amino acid sequence of SEQ ID NO: 8, (b) L1 comprises the amino acid sequence of SEQ ID NO: 9, (c) H2 comprises the amino acid sequence of SEQ ID NO: 67, and (d) L2 comprises the amino acid sequence of SEQ ID NO: 19.

[0055] In another aspect, the disclosure features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), and the bispecific antibody comprises a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein: (a) H1 comprises the amino acid sequence of SEQ ID NO: 66, (b) L1 comprises the amino acid sequence of SEQ ID NO: 65, (c) H2 comprises the amino acid sequence of SEQ ID NO: 68, and (d) L2 comprises the amino acid sequence of SEQ ID NO: 70.

[0056] In another aspect, the disclosure features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), and the bispecific antibody comprises a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein: (a) H1 comprises the amino acid sequence of SEQ ID NO: 7, (b) L1 comprises the amino acid sequence of SEQ ID NO: 9, (c) H2 comprises the amino acid sequence of SEQ ID NO: 18, and (d) L2 comprises the amino acid sequence of SEQ ID NO: 57.

[0057] In another aspect, the disclosure features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), and the bispecific antibody comprises a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein: (a) H1 comprises the amino acid sequence of SEQ ID NO: 64, (b) L1 comprises the amino acid sequence of SEQ ID NO: 65, (c) H2 comprises the amino acid sequence of SEQ ID NO: 69, and (d) L2 comprises the amino acid sequence of SEQ ID NO: 73.

[0058] In another aspect, the disclosure features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), and the bispecific antibody comprises a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein: (a) H1 comprises the amino acid sequence of SEQ ID NO: 8, (b) L1 comprises the amino acid sequence of SEQ ID NO: 9, (c) H2 comprises the amino acid sequence of SEQ ID NO: 67, and (d) L2 comprises the amino acid sequence of SEQ ID NO: 57.

[0059] In another aspect, the disclosure features a bispecific antibody that binds to LY6G6D and CD3, wherein the bispecific antibody comprises an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), and the bispecific antibody comprises a CD3-binding domain comprising a heavy chain polypeptide (H2) and a light chain polypeptide (L2), wherein: (a) H1 comprises the amino acid sequence of SEQ ID NO: 66, (b) L1 comprises the amino acid sequence of SEQ ID NO: 65, (c) H2 comprises the amino acid sequence of SEQ ID NO: 68, and (d) L2 comprises the amino acid sequence of SEQ ID NO: 73.

[0060] In some embodiments, the antibody has a clearance after intravenous injection of between about 10 ml / kg / day and about 35 ml / kg / day.

[0061] In another aspect, the disclosure features one or more isolated nucleic acids encoding the antibody of any of the previous aspects, or a portion thereof that includes a binding domain that binds to LY6G6D.

[0062] In another aspect, the disclosure features one or more vectors that include one or more isolated nucleic acids of the preceding aspects.

[0063] In another aspect, the disclosure features one or more host cells containing one or more vectors of the previous aspects.

[0064] In some embodiments, the one or more host cells are one or more mammalian host cells. In some embodiments, the one or more mammalian host cells are one or more Chinese hamster ovary (CHO) host cells.

[0065] In some embodiments, the one or more host cells are one or more prokaryotic host cells. In some embodiments, the one or more prokaryotic host cells are one or more E. coli host cells.

[0066] In another aspect, the disclosure features a method of producing the antibody of any of the previous aspects, the method including culturing one or more host cells of any of the previous aspects in a medium. In some aspects, the method further includes recovering the anti-LY6G6D antibody from the one or more host cells or the culture medium.

[0067] In another aspect, the disclosure features a composition including the antibody of any of the previous aspects. In some embodiments, the composition further includes a pharmaceutically acceptable excipient or diluent. In some embodiments, the pharmaceutically acceptable excipient is a buffer, carrier, stabilizer, or preservative. In some embodiments, the composition is a pharmaceutical composition.

[0068] In another aspect, the disclosure features the antibody of any of the preceding aspects for use as a medicament.

[0069] In another aspect, the disclosure features the antibody of any one of the preceding aspects or the composition of any one of the preceding aspects for use in treating or delaying progression of an LY6G6D-positive cancer in a subject in need thereof. In some embodiments, the LY6G6D-positive cancer is colorectal cancer. In some embodiments, the LY6G6D-positive cancer has a microsatellite instability (MSI) status of microsatellite stable (MSS) or microsatellite instability low (MSI-L).

[0070] In another aspect, the disclosure features the use of the antibody of any preceding aspect or the composition of any preceding aspect in the manufacture of a medicament for treating or delaying progression of LY6G6D-positive cancer in a subject. In some embodiments, the LY6G6D-positive cancer is colorectal cancer. In some embodiments, the LY6G6D-positive cancer has an MSI status of MSS or MSI-L.

[0071] In another aspect, the disclosure provides a method of treating or delaying progression of an LY6G6D-positive cancer, the method comprising administering to the subject the antibody of any preceding aspect or the composition of any preceding aspect. In some embodiments, the LY6G6D-positive cancer is colorectal cancer. In some embodiments, the LY6G6D-positive cancer has an MSI status of MSS or MSI-L.

[0072] In another aspect, the disclosure features a kit comprising the antibody of any of the previous aspects and a package insert comprising instructions for using the antibody to treat or delay progression of an LY6G6D-positive cancer in a subject. In some embodiments, the LY6G6D-positive cancer is colorectal cancer. In some embodiments, the LY6G6D-positive cancer has an MSI status of MSS or MSI-L. In some embodiments, the subject is human.

[0073] In another aspect, the disclosure features an isolated antibody that binds to CD3, wherein the antibody comprises a binding domain comprising the following CDRs: (a) a CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) a CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (c) a CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (d) a CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13; and (f) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14. In some embodiments, the antibody comprises: (a) a VH comprising an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 20; (b) a VL comprising an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 21; or (c) a VH such as (a) and a VL such as (b). In some embodiments, the VH comprises the amino acid sequence of SEQ ID NO: 20. In some embodiments, the VL comprises the amino acid sequence of SEQ ID NO: 21.

[0074] In another aspect, the disclosure features an isolated antibody that binds to CD3, wherein the antibody comprises a binding domain comprising the following CDRs: (a) a CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) a CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (c) a CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (d) a CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 50; and (f) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 51. In some embodiments, the antibody comprises: (a) a VH comprising an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 20; (b) a VL comprising an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 55; or (c) a VH such as (a) and a VL such as (b). In some embodiments, the VH comprises the amino acid sequence of SEQ ID NO: 20. In some embodiments, the VL comprises the amino acid sequence of SEQ ID NO: 55.

[0075] In some embodiments, the VH comprises the following FRs: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 43; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45.

[0076] In some embodiments, the VH comprises the following FRs: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 62; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45.

[0077] In some embodiments, (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 47; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49.

[0078] In some embodiments, (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 63; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49.

[0079] In some embodiments, the antibody has a K between about 1 nM and about 500 nM at 37°C as measured using a BIAcore assay. D In some embodiments, the antibody binds to human CD3ε polypeptide at a K D binds to human CD3ε polypeptide at 250 nM or less, 100 nM or less, 15 nM or less, 10 nM or less, or 5 nM or less.

[0080] In some embodiments, the antibody is a monoclonal, human, humanized, or chimeric antibody.

[0081] In some embodiments, the antibody is an antibody fragment that binds to CD3, hi some embodiments, the antibody fragment is selected from the group consisting of Fab, Fab'-SH, Fv, scFv, and (Fab')2 fragments.

[0082] In some embodiments, the antibody is a full-length antibody.

[0083] In some embodiments, the antibody is an IgG antibody.

[0084] In some embodiments, the anti-CD3 antibody is a monospecific antibody.

[0085] In another aspect, the disclosure features an isolated antibody that binds to LY6G6D, wherein the antibody has a binding domain comprising the following complementarity determining regions (CDRs): (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 27; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 28; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 29; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 24; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 25; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 26.

[0086] In some embodiments, the antibody comprises: (a) a VH comprising an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 32; (b) a VL comprising an amino acid sequence having at least 95% sequence identity to the amino acid sequence of SEQ ID NO: 33; or (c) a VH such as (a) and a VL such as (b). In some embodiments, the VH comprises the amino acid sequence of SEQ ID NO: 32. In some embodiments, the VL comprises the amino acid sequence of SEQ ID NO: 33.

[0087] In another aspect, the disclosure features an isolated antibody that binds to LY6G6D, wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 30 and a light chain comprising the amino acid sequence of SEQ ID NO: 31. [Brief explanation of the drawings]

[0088] The application file contains at least one drawing executed in color. Copies of this patent or patent application with color drawing(s) will be provided by the Office upon request and payment of the necessary fee. [Figure 1A] Figure 1A is a plot showing the expression of LY6G6D and LY6G6F in normal (black) and tumor (red) tissues in normalized reads per kilobase million (nRPKM) from The Cancer Genome Atlas (TCGA). LY6G6D is significantly overexpressed in colon tumor tissues. [Figure 1B] FIG. 1B is a plot showing the expression of LY6G6D and LY6G6F in normal tissues of nRPKM from public GTEx project data. [Figure 1C] Figure 1C is a collection of box plots showing the expression of LY6G6D in nRPKM in colorectal cancers (CRCs) with microsatellite instability (MSI) status of microsatellite stable (MSS), microsatellite instability-low (MSI-L), or microsatellite instability-high (MSI-H). The association between MSI status and prognosis in CRCs was demonstrated. [Figure 2A] FIG. 2A is a photomicrograph of normal colon tissue showing immunohistochemical (IHC) staining for LY6G6D. [Figure 2B] FIG. 2B is a photomicrograph of a primary colon tumor showing weak (1+) IHC staining for LY6G6D. [Figure 2C] FIG. 2C is a photomicrograph of a primary colon tumor showing moderate (2+) IHC staining for LY6G6D. [Figure 2D] FIG. 2D is a photomicrograph of a primary colon tumor showing strong (3+) IHC staining for LY6G6D. [Figure 3A]Figure 3A is a pair of graphs showing in vitro killing of HT55 cells (a human colon cancer cell line) supplemented with 10X human PBMCs from donor #1 or donor #2 by an LY6G6D T cell-dependent bispecific antibody (TDB) comprising an anti-LY6G6D1G4 arm and an anti-CD3 38E4v1 or 40G5c arm. The EC50 value for each TDB is listed. [Figure 3B] Figure 3B is a series of graphs showing tumor volume (mm2) of xenografted HT55 tumors in NSG™ mice after treatment with LY6G6D TDB containing the anti-LY6G6D 1G4 arm and anti-CD3 40G5c or 38E4v1 arm. Mice were humanized with healthy donor PBMCs. Treatments containing delivery vehicle and PMBCs or LY6G6D TDB but no PMBCs serve as controls. [Figure 3C] Figure 3C is a graph showing in vitro killing of HT55 cells supplemented with human PBMCs by LY6G6D TDB containing chimeric or humanized anti-LY6G6D 1G4 arms and anti-CD3 38E4v1 arms, and an appendix showing the affinity of the chimeric or humanized 1G4 arms in a BIAcore assay. [Figure 3D] Figure 3D is a series of graphs showing tumor volume (mm) of xenografted HT55 tumors in NSG™ mice after treatment with LY6G6D TDB containing chimeric or humanized anti-LY6G6D 1G4 and anti-CD3 38E4v1 arms. Mice were humanized using healthy donor PBMCs. Treatments containing delivery vehicle and PMBCs or LY6G6D TDB but no PMBCs serve as controls. [Figure 4A]Figure 4A is a ribbon diagram showing the location of engineered glycosylation sites (red, pink, green, and blue circles) in a structural homology model of the LY6G6D polypeptide. Glycosylation sites are color-coded based on their effect on antibody binding. Glycosylation at sites marked with red circles inhibited 1G4 binding. Glycosylation at sites marked with pink circles inhibited 16D7 binding. Glycosylation at sites marked with blue circles did not inhibit 1G4 or 16D7 binding. Green circles mark glycosylation sites in the linker to Fc. [Figure 4B] Figure 4B is a chart showing binding of candidate anti-LY6G6D antibodies to an LY6G6D polypeptide containing engineered glycosylation sites at the indicated residues. Cells marked with an X indicate no detected binding. Cells marked with a W indicate significantly reduced binding. [Figure 4C] Figure 4C is a pair of diagrams showing the locations of engineered glycosylation sites in a structural homology model of the LY6G6D polypeptide in a first orientation and a second orientation rotated 180°. Glycosylation sites that inhibited binding of antibodies in bin 1, bin 2, bin 3, and bin 4 in Figure 4A are indicated by green, purple, blue, and orange circles, respectively. [Figure 4D] FIG. 4D is the annotated LY6G6D polypeptide sequence, with amino acid residues affected by glycosylation mutations color-coded as in FIG. 4C, and bins 1, 2, 3, and 4 in FIG. 4A underlined. [Figure 4E] Figure 4E shows rabbit anti-LY6G6D antibody clones arranged into four different epitope bins. Bin 1 contains three sequence groups, including 20A12, rf.1G4, 6E10, and 4H7. Bin 2 contains six sequence groups, including f.16D7. Bins 3 and 4 each contain three sequence groups. [Figure 4F]Figure 4F is a graph showing binding of rabbit anti-human LY6G6D TDB containing the indicated anti-LY6G6D arm and anti-CD3 40G5c arm from bins 1, 2, 3, or 4 in Figure 4E to HT55 cells (a human colon cancer cell line). Binding is measured as mean fluorescence intensity (MFI). [Figure 4G] FIG. 4G is a graph showing in vitro killing of HT55 cells supplemented with human PBMCs by LY6G6D TDB containing an anti-LY6G6D arm and an anti-CD3 40G5c arm from bins 1, 2, 3, or 4 of FIG. 4E. [Figure 4H] Figure 4H is a series of graphs showing the binding of 1G4 and rabbit anti-LY6G6D antibodies 6E10, 20A12, and 4H7 to the Ly6G6D polypeptide, as measured using a BIAcore assay. The rabbit antibodies were expressed as chimeric antigen-binding fragments (Fabs) with rabbit variable domains and human constant domains. Ly6G6D-Fc was directly immobilized on the chip, and the Fabs were flow-through at 37°C. The KD is displayed below each graph. [Figure 5A] Figure 5A shows the amino acid sequence of the heavy chain variable region of 20A12.QNTv12 (2 cells) (SEQ ID NO: 22) in Kabat numbering order. The complementarity-determining regions (CDRs) CDR H1, CDR H2, and CDR H3 are shown. The CDR sequences according to the Kabat numbering system are underlined. [Figure 5B] Figure 5B shows the amino acid sequence of the light chain variable region of 20A12.QNTv12 (2 cells) (SEQ ID NO: 23) in Kabat numbering order. The CDRs, CDR H1, CDR H2, and CDR H3, are shown. The CDR sequences according to the Kabat definition are underlined. [Figure 5C]Figure 5C shows the amino acid sequence of the heavy chain variable region of 20A12.QNTv12 (1 cell) containing the Q39E amino acid substitution mutation (box) in framework region (FR) 2 (SEQ ID NO: 10). This heavy chain variable region sequence is particularly useful for single-cell production of TDB. The complementarity-determining regions (CDRs) CDR H1, CDR H2, and CDR H3 are shown according to the definitions of Contact, Chossia, and Kabat. CDR sequences according to the Kabat definition are underlined. [Figure 5D] Figure 5D shows the amino acid sequence of the light chain variable region of 20A12.QNTv12 (1 cell) containing the Q38K mutation (box) in FR2 (SEQ ID NO: 11). This light chain variable region sequence is particularly useful for single-cell production of TDB. The complementarity-determining regions (CDRs) CDR H1, CDR H2, and CDR H3 are shown according to the Contact, Chossia, and Kabat definitions. CDR sequences according to the Kabat definition are underlined. [Figure 6A] FIG. 6A is a protein structural model showing the fragment antigen-binding region (Fab) of the 20A12.QNTv12 antibody bound to a polypeptide comprising amino acid residues 94-103 of LY6G6D (RDCYLGDLCN; SEQ ID NO: 78). [Figure 6B] Figure 6B is a region of the protein structure model showing 10 overlay complexes containing the Fab of the 20A12.QNTv12 antibody bound to amino acid residues 94-103 of LY6G6D. 20A12.QNTv12 is shown as a ribbon diagram. The polypeptide containing LY6G6D residues 94-103 is shown as a bar graph, with amino acid residues labeled. [Figure 6C] Figure 6C is a region of the protein structure model showing the heavy chain (HC; pink) and light chain (LC; green) of the 20A12.QNTv12 antibody bound to amino acid residues 94-103 of LY6G6D. The polypeptide containing LY6G6D residues 94-103 is shown as a bar graph, with amino acid residues labeled. [Figure 6D]Figure 6D is a region of the protein structure model showing the HC (pink) and LC (green) of the 20A12.QNTv12 antibody bound to amino acid residues 94-103 of LY6G6D. The polypeptide containing LY6G6D residues 94-103 is shown as a stick diagram with a 2Fo-Fc electron density map outlined at 1.0σ (blue). [Figure 6E] Figure 6E is a region of the protein structure model showing the 20A12.QNTv12 antibody bound to amino acid residues 94-103 of LY6G6D. The CDRs H1, H2, and H3 (H1, H2, and H3, respectively) of the heavy chain variable region of 20A12.QNTv12 and the CDRs L1, L2, and L3 (L1, L2, and L3, respectively) of the light chain variable region of 20A12.QNTv12 are labeled and color-coded in ribbon models. The polypeptide containing LY6G6D residues 94-103 is shown as a bar graph. [Figure 6F] Figure 6F is a region of the protein structure model showing the 20A12.QNTv12 antibody bound to amino acid residues 94-103 of LY6G6D. 20A12.QNTv12 is shown as a space-filling model. The CDRs H1, H2, and H3 (H1, H2, and H3, respectively) of the heavy chain variable region of 20A12.QNTv12 and the CDRs L1, L2, and L3 (L1, L2, and L3, respectively) of the light chain variable region of 20A12.QNTv12 are labeled. Selected residues of 20A12.QNTv12 are labeled, and the interaction between 20A12.QNTv12 and the LY6G6D polypeptide is indicated by a dashed red line. The polypeptide containing LY6G6D residues 94-103 is shown as a bar graph. [Figure 7A] Figure 7A is a region of a protein structure model showing the 1G4 antibody bound to amino acid residues 94-103 of LY6G6D. CDRs H1, H2, and H3 of the heavy chain variable region of 1G4 and CDRs L1, L2, and L3 of the light chain variable region of 1G4 are labeled and colored in the ribbon model. The polypeptide containing LY6G6D residues 94-103 is shown as a bar graph. [Figure 7B]Figure 7B is a region of the protein structure model showing the 20A12.QNTv12 antibody bound to amino acid residues 94-103 of LY6G6D. CDRs H1, H2, and H3 of the heavy chain variable region of 20A12.QNTv12 and CDRs L1, L2, and L3 of the light chain variable region of 20A12.QNTv12 are labeled and colored in the ribbon model. The polypeptide containing LY6G6D residues 94-103 is shown as a bar graph. [Figure 7C] Figure 7C is a protein structural model showing the heavy chain (SEQ ID NO: 96) and light chain (SEQ ID NO: 97) of the fragment antigen-binding region (Fab) of the 20A12.QNTv12 antibody bound to a polypeptide comprising amino acid residues 93-104 of LY6G6D (HRDCYLGDLCNS; SEQ ID NO: 87), and a sequence diagram of LY6G6D residues 93-104 showing the specific residues (orange and underlined) with which 20A12.QNTv12 interacts. Each of these residues is located within 5 Å of the Fab. [Figure 7D] Figure 7D is a region of a protein structure model showing the heavy chain (SEQ ID NO: 96) and light chain (SEQ ID NO: 97) of the fragment antigen-binding region (Fab) of the 20A12.QNTv12 antibody bound to a polypeptide (HRDCYLGDLCNS; SEQ ID NO: 87) comprising amino acid residues 93-104 of LY6G6D. Residues of 20A12.QNTv12 that interact with the LY6G6D polypeptide are labeled. HC indicates the residue in the 20A12.QNTv12 heavy chain, and LC indicates the residue in the 20A12.QNTv12 light chain. [Figure 7E] Figure 7E is a protein structural model showing the heavy chain (SEQ ID NO: 94) and light chain (SEQ ID NO: 95) of the fragment antigen-binding region (Fab) of the 1G4 antibody bound to a polypeptide comprising amino acid residues 93-104 of LY6G6D (HRDCYLGDLCNS; SEQ ID NO: 87), with a diagram of LY6G6D residues 93-104 showing the specific residues (orange and underlined) with which 1G4 interacts. Each of these residues is located within 5 Å of the Fab. [Figure 7F]Figure 7F is a region of a protein structure model showing the heavy chain (SEQ ID NO: 94) and light chain (SEQ ID NO: 95) of the fragment antigen-binding region (Fab) of the 1G4 antibody bound to a polypeptide (HRDCYLGDLCNS; SEQ ID NO: 87) comprising amino acid residues 93-104 of LY6G6D. Residues of 1G4 that interact with the LY6G6D polypeptide are labeled. HC indicates the residue in the 1G4 heavy chain, and LC indicates the residue in the 1G4 light chain. [Figure 8A] Figure 8A is a schematic diagram showing the preparation of an LY6G6D TDB having an anti-CD3 38E4v1 arm containing T366S, L368A, and Y407V amino acid substitution mutations forming the "hole" region and an Fc region with an N297G mutation, paired with an anti-LY6G6D20A12.QNTv12 arm (2 cells) containing T366W amino acid substitution mutations forming the "knob" region and an Fc region with an N297G mutation, where the anti-CD3 arm and anti-LY6G6D arm form a full-length IgG1K TDB. [Figure 8B] Figure 8B is a schematic diagram showing the workflow for producing bispecific antibodies using two host cell lines (two-cell technology). The first arm of the antibody, containing the hole region, is produced in the first host cell line, and the second arm of the antibody, containing the knob region, is produced in the second host cell line. The antibody arms are purified from the host cell line and assembled in vitro. [Figure 8C] Figure 8C is a schematic diagram showing the workflow for producing bispecific antibodies using a single host cell line (single-cell technology). A first arm of the antibody containing the hole region and a second arm of the antibody containing the knob region are produced and purified from a single host cell line. The first and second arms of the antibody contain amino acid substitution mutations as shown in Figure 8D or Figure 8E. [Figure 8D]Figure 8D shows a bispecific antibody produced using a single cell line. The amino acid substitution mutations that introduce charge pairs are shown. The charge pairs include: a Q39K substitution mutation in the VH of the first arm and a Q38E substitution mutation in the VL of the first arm; an S183E substitution mutation in the CH1 of the first arm and a V133K substitution mutation in the CL of the first arm; a Q39E substitution mutation in the VH of the second arm and a Q38K substitution mutation in the VL of the second arm; and an S183K substitution mutation in the CH1 of the second arm and a V133E substitution mutation in the CL of the second arm. [Figure 8E] Figure 8E shows a bispecific antibody generated using a single cell line. Amino acid substitution mutations are shown. Amino acid substitution mutations that introduce charge pairs are shown. The charge pairs include: a Q39E substitution mutation in the VH of the first arm and a Q38E substitution mutation in the VL of the first arm; a Q39K substitution mutation in the VH of the second arm and a Q38E substitution mutation in the VL of the second arm; and a S183E substitution mutation in the CH1 of the second arm and a V133K substitution mutation in the CL of the second arm. This antibody also contains Rosetta YT65 mutations A141I, F170S, S181M, S183A, and V185A in the CH1 of the first arm, and F116A, L135V, S174A, S176F, and T178V mutations in the CL of the first arm. [Figure 9A] Figure 9A is a graph showing in vitro killing of HT55 cells by LY6G6D TDB containing an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 or 40G5c arm. Killing is quantified as % cytotoxicity in a CELLTITER-GLO® assay. TDB was provided at concentrations between 0.01 and 10,000 ng / mL. [Figure 9B] Figure 9B is a graph showing in vitro activation of CD4+ T cells by LY6G6D TDB containing anti-LY6G6D 20A12.QNTv12 arms (2 cells) and anti-CD3 38E4v1 or 40G5c arms. CD4+ T cell activation was measured using fluorescence-activated cell sorting (FACS). [Figure 9C]Figure 9C is a graph showing in vitro activation of CD8+ T cells by LY6G6D TDB containing anti-LY6G6D arm 20A12.QNTv12 (2 cells) and anti-CD3 arm 38E4v1 or 40G5c. CD8+ T cell activation was measured using FACS. [Figure 10A] Figure 10A is a graph showing in vitro killing of HT55 cells by LY6G6D TDB containing an anti-LY6G6D 20A12.v1 arm and an anti-CD3 38E4v1 or 40G5c arm, an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 or 40G5c arm, or an anti-LY6G6D 1G4 arm and an anti-CD3 38E4v1 or 40G5c arm. Killing is quantified as % cytotoxicity in a CELLTITER-GLO® assay. TDB was provided at concentrations between 0.01 and 10,000 ng / mL. [Figure 10B] Figure 10B is a graph showing in vitro activation of CD4+ T cells by LY6G6D TDB containing an anti-LY6G6D 20A12.v1 arm and an anti-CD3 38E4v1 or 40G5c arm, an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 or 40G5c arm, or an anti-LY6G6D 1G4 arm and an anti-CD3 38E4v1 or 40G5c arm. CD4+ T cell activation was measured using FACS. [Figure 10C] Figure 10C is a graph showing in vitro activation of CD8+ T cells by LY6G6D TDB containing an anti-LY6G6D 20A12.v1 arm and an anti-CD3 38E4v1 or 40G5c arm, an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 or 40G5c arm, or an anti-LY6G6D 1G4 arm and an anti-CD3 38E4v1 or 40G5c arm. CD8+ T cell activation was measured using FACS. [Figure 10D]Figure 10D is a graph showing in vitro killing of HT55 cells by LY6G6D TDB containing an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 or 40G5c arm, an anti-LY6G6D 20A12.SNVv12 arm and an anti-CD3 38E4v1 or 40G5c arm, or an anti-LY6G6D 6E10.v23 arm and an anti-CD3 38E4v1 or 40G5c arm. Killing is quantified as % cytotoxicity in a CELLTITER-GLO® assay. [Figure 11A] Figure 11A is a graph showing in vitro killing of Colo320DM, HT55, and LS1034 cells by LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4v1 arm. Killing is quantified as % cytotoxicity in a CELLTITER-GLO® assay. [Figure 11B] FIG. 11B is a series of graphs showing the antigen-binding ability of LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4v1 arm to Colo320DM, HT55, and LS1034 cells as measured by FACS. [Figure 11C] FIG. 11C is a series of photomicrographs showing IHC staining in cell pellets and xenograft tumor samples. [Figure 11D] FIG. 11D is a graph showing killing of HT55 cells supplemented with human PBMCs from healthy donors after 24 hours by LY6G6D TDB containing an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 or 40G5c arm, or by LY6G6D TDB containing an anti-LY6G6D 1G4 arm and an anti-CD3 38E4v1 or 40G5c arm. [Figure 11E]Figure 11E is a graph showing the killing of HT55 cells supplemented with human PBMCs from healthy donors by LY6G6D TDBs containing an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 or 40G5c arm, or by LY6G6D TDBs containing an anti-LY6G6D 1G4 arm and an anti-CD3 38E4v1 or 40G5c arm, after 48 hours. The KD of each TDB is shown in parentheses. [Figure 11F] FIG. 11F is a graph showing in vitro killing of HT55 cells supplemented with human PBMCs from 10 donors by LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4v1 arm. [Figure 11G] Figure 11G is a graph showing in vitro activation of CD8+ T cells by LY6G6D TDB containing an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 arm. CD8+ T cell activation was measured using FACS. [Figure 11H] FIG. 11H is a table showing EC50 values ​​for cell killing and CD8+ T cell activation for 10 PBMC donors. [Figure 11I] Figure 11I is a graph showing in vitro activation of CD8+ T cells by LY6G6D TDB containing the anti-LY6G6D20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4v1 arm in Colo320DM, HT55, and LS1034 cells. CD8+ T cell activation was measured using FACS. [Figure 12] Figure 12 is a graph showing tumor volume (mm2) of xenograft COLO320DM tumors in mice after treatment with LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4.v1 arm. Mice were humanized using healthy donor peripheral blood mononuclear cells (PBMCs). Controls included treatments containing the delivery vehicle and PMBCs, or TDB but no PMBCs. [Figure 13A]Figure 13A is a graph showing in vitro activation of CD4+ T cells by LY6G6D TDB containing anti-LY6G6D arms rb6E, rb11A11, rb5D3, rb7F2, rb20F12, rb20A12, rb5E4, rb3A4, rb17F11, rb4H7, rb3D3, or humanized 1G4 and an anti-CD3 40G5c arm. CD4+ T cell activation was measured using FACS. [Figure 13B] Figure 13B is a graph showing in vitro activation of CD8+ T cells by LY6G6D TDB containing anti-LY6G6D arms rb6E, rb11A11, rb5D3, rb7F2, rb20F12, rb20A12, rb5E4, rb3A4, rb17F11, rb4H7, rb3D3, or humanized 1G4 and an anti-CD3 40G5c arm. CD8+ T cell activation was measured using FACS. [Figure 13C] Figure 13C is a graph showing in vitro killing of HT55 cells supplemented with PMBCs from donor #2 by LY6G6D TDB containing anti-LY6G6D arms rb6E, rb11A11, rb5D3, rb7F2, rb20F12, rb20A12, rb5E4, rb3A4, rb17F11, rb4H7, rb3D3, or humanized 1G4 and anti-CD3 40G5c arms. Killing is quantified as % cytotoxicity in a CELLTITER-GLO® assay. [Figure 13D] Figure 13D is a graph showing in vitro activation of CD4+ T cells by LY6G6D TDB containing anti-LY6G6D arms rb6E, rb11A11, rb5D3, rb7F2, rb20F12, rb20A12, rb5E4, rb3A4, rb17F11, rb4H7, rb3D3, or humanized 1G4 and an anti-CD3 40G5c arm. CD4+ T cell activation was measured using FACS. [Figure 13E]Figure 13E is a graph showing in vitro activation of CD8+ T cells by LY6G6D TDB containing anti-LY6G6D arms rb6E, rb11A11, rb5D3, rb7F2, rb20F12, rb20A12, rb5E4, rb3A4, rb17F11, rb4H7, rb3D3, or humanized 1G4 and anti-CD3 arm 40G5c. CD8+ T cell activation was measured using FACS. [Figure 14A] Figure 14A is a graph showing in vitro killing of HT55 cells supplemented with PMBCs from donor #1 by LY6G6D TDB assembled using a two-cell system and containing an anti-LY6G6D 20A12.QNTv12 arm (two-cell system) and anti-CD3 arms 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, or 38E4.v1(WT), and by TDB assembled using a one-cell system and containing an anti-LY6G6D 20A12.QNTv12 arm (one cell) and anti-CD3 arms 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, 38E4.v1 MD4, or 38E4.v1(WT). The specific residues in MD2, MD3, and MD4 that were mutated relative to the WT 38E4.v1 sequence are indicated in parentheses. Killing is quantified as % cytotoxicity in the CELLTITER-GLO® assay. [Figure 14B] Figure 14B is a graph showing in vitro activation of CD4+ T cells by LY6G6D TDB assembled using a two-cell system and containing an anti-LY6G6D 20A12.QNTv12 arm (two-cell system) and anti-CD3 arm 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, or 38E4.v1(WT), and by TDB assembled using a one-cell system and containing an anti-LY6G6D 20A12.QNTv12 arm (one cell) and anti-CD3 arm 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, 38E4.v1 MD4, or 38E4.v1(WT). CD4+ T cell activation was measured using FACS. [Figure 14C]Figure 14C is a graph showing in vitro activation of CD8+ T cells by LY6G6D TDB assembled using a two-cell system and containing an anti-LY6G6D 20A12.QNTv12 arm (two-cell system) and anti-CD3 arm 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, or 38E4.v1(WT), and by LY6G6D TDB assembled using a one-cell system and containing an anti-LY6G6D 20A12.QNTv12 arm (one cell) and anti-CD3 arm 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, 38E4.v1 MD4, or 38E4.v1(WT). CD8+ T cell activation was measured using FACS. [Figure 15A] 15A is a graph showing in vitro killing of HT55 cells supplemented with PMBCs from donor #2 by LY6G6D TDB assembled using a two-cell system and containing an anti-LY6G6D 20A12.QNTv12 arm (two-cell system) and anti-CD3 arms 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, or 38E4.v1(WT), and by TDB assembled using a one-cell system and containing an anti-LY6G6D 20A12.QNTv12 arm (one cell) and anti-CD3 arms 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, 38E4.v1 MD4, or 38E4.v1(WT). Killing is quantified as % cytotoxicity in a CELLTITER-GLO® assay. [Figure 15B]Figure 15B is a graph showing in vitro activation of CD4+ T cells by LY6G6D TDB assembled using a two-cell system and containing anti-LY6G6D 20A12.QNTv12 arms (two cells) and anti-CD3 arms 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, or 38E4.v1(WT), and by LY6G6D TDB assembled using a one-cell system and containing anti-LY6G6D 20A12.QNTv12 arms (one cell) and anti-CD3 arms 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, 38E4.v1 MD4, or 38E4.v1(WT). CD4+ T cell activation was measured using FACS. [Figure 15C] Figure 15C is a graph showing in vitro activation of CD8+ T cells by LY6G6D TDB assembled using a two-cell system and containing anti-LY6G6D 20A12.QNTv12 arms (two cells) and anti-CD3 arms 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, or 38E4.v1(WT), and by LY6G6D TDB assembled using a one-cell system and containing anti-LY6G6D 20A12.QNTv12 arms (one cell) and anti-CD3 arms 38E4.v1 MD1, 38E4.v1 MD2, 38E4.v1 MD3, 38E4.v1 MD4, or 38E4.v1(WT). CD8+ T cell activation was measured using FACS. [Figure 16A] Figure 16A is a graph showing tumor volume (mm2) of xenograft LS1034 tumors in NSG™ mice after treatment with LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and anti-CD3 40G5c or 38E4.v1 arm. Mice were humanized using healthy donor peripheral blood mononuclear cells (PBMCs). Treatments containing delivery vehicle and PMBCs or LY6G6D TDB but no PMBCs served as controls. "3+" indicates the LY6G6D IHC score of the cell line. [Figure 16B]FIG. 16B is a graph showing the serum concentration (in μg / mL) of LY6G6D TDB in LS1034 NSG™ mice after a single dose of TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 40G5c or 38E4.v1 arm. [Figure 16C] FIG. 16C is a series of graphs showing raw data for the tumor volume assay shown in FIG. 16A. [Figure 17A] Figure 17A is a graph showing tumor volume (mm2) of xenografted HT55 tumors in NSG™ mice after treatment with LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and anti-CD3 40G5c or 38E4.v1 arm. Mice were humanized using healthy donor PBMCs. Controls included treatments with delivery vehicle and PMBCs, or TDB but no PMBCs. "2+" indicates the LY6G6D IHC score of the cell line. [Figure 17B] FIG. 17B is a series of graphs showing raw data for the tumor volume assay shown in FIG. 17A. [Figure 17C] Figure 17C is a graph showing the serum concentration (μg / mL) of LY6G6D TDB in HTT55NSG™ mice after a single dose of TDB containing an anti-LY6G6D20A12.QNTv12 arm (2 cells) and an anti-CD3 40G5c or 38E4.v1 arm, as measured using a generic immunoglobulin pharmacokinetics (GRIP) ELISA. [Figure 18] 18 is a graph and table showing serum concentrations (in μg / mL) in severe combined immunodeficient (SCID) mice after a single 5 mg / kg intravenous dose of LY6G6D TDB containing anti-LY6G6D arm 20A12.QNTv12 (2 cells) and anti-CD3 arm 40G5c or 38E4.v1 and anti-GD B56 antibody. Cmax: maximum serum concentration; AUC0-28: area under the curve; CL: clearance rate; t1 / 2: half-life. [Figure 19]FIG. 19 is a schematic and table showing a toxicity study of LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4.v1 arm in cynomolgus monkeys (cyno). [Figure 20A] FIG. 20A is a graph showing serum concentrations (μg / mL) in cynomolgus monkeys after intravenous administration of a single dose of LY6G6D TDB containing an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4.v1 arm at the indicated doses. [Figure 20B] Figure 20B is a graph and table showing the serum concentrations (in μg / mL) and clearance (CL) of TDB containing various tumor-targeting arms in combination with anti-CD3 38E4v1 or 405Gc arms after a single intravenous dose of 1 mg / kg TDB. [Figure 21] Figure 21 is a series of photomicrographs showing perivascular / vascular mononuclear infiltrates in the brain of Animal No. 6003, which received 15 mg / kg of LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4.v1 arm. The upper left panel shows control (normal) meningeal vessels. The lower left panel shows abnormal meningeal vessels in Animal No. 6003. The right panel shows a magnified view of the abnormal meningeal vessels. [Figure 22A] FIG. 22A is a series of graphs showing concentrations of cytokines G-CSF, IL-1Ra, MCP-1, TNF-α, IL-13, and IL-8 (pg / mL) after administration of a single dose of LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4.v1 arm to cynomolgus monkeys at the indicated doses, as well as a series of graphs showing cytokine concentrations in control (untreated) cynomolgus monkeys. [Figure 22B]Figure 22B is a scatter plot showing the concentrations of C-reactive protein (CRP; pg / mL) and cytokines in control (untreated) cynomolgus monkeys after administration of a single dose of LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4.v1 arm to cynomolgus monkeys at the indicated doses. [Figure 23A] Figure 23A is a pair of graphs showing the percentage of cells gated as CD3+ / CD4+ / CD5+CD25-expressing T helper (Th) lymphocytes (left panel) and CD3+ / CD8+ / CD5+CD25-expressing T cytotoxic (Tc) lymphocytes (right panel) in flow cytometry assays after administration of a single dose of LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4.v1 arm to cynomolgus monkeys at the indicated doses, as well as cytokine concentrations in control (untreated) cynomolgus monkeys. Measurements were taken over 7 days, before treatment (Day 7) and on the day of treatment (Day 1 Pre), and averaged (pre-dose average). Measurements were taken 2, 6, 24, and 168 hours after the end of infusion (EOI). Arrows indicate peaks indicating mild T cell activation. [Figure 23B] Figure 23B is a graph showing the percent of cells gated as CD45+ / CD3+ T lymphocytes in a flow cytometry assay and cytokine concentrations in control (untreated) cynomolgus monkeys after administration of a single dose of LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4.v1 arm to cynomolgus monkeys at the indicated doses. The arrow indicates the peak indicating T cell recovery. [Figure 23C]Figure 23C is a graph showing the percent of cells gated as CD45+ / CD20+ B lymphocytes in a flow cytometry assay and cytokine concentrations in control (untreated) cynomolgus monkeys after administration of a single dose of LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4.v1 arm to cynomolgus monkeys at the indicated doses. The peak indicating B cell recovery is indicated by an arrow. [Figure 23D] Figure 23D is a graph showing the percentage of cells gated as CD45+ / CD16+ natural killer (NK) cells in a flow cytometry assay and cytokine concentrations in control (untreated) cynomolgus monkeys after administration of a single dose of LY6G6D TDB containing the anti-LY6G6D 20A12.QNTv12 arm (2 cells) and the anti-CD3 38E4.v1 arm to cynomolgus monkeys at the indicated doses. [Figure 24A] Figure 24A is a pair of graphs showing binding of Ly6G6D TDB containing an anti-Ly6G6D20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4.v1 arm to human (left panel) and cynomolgus monkey (right panel) Ly6G6D polypeptides, as measured using a BIAcore assay. Ly6G6D-Fc was directly immobilized on the chip, and TDB was flowed at 37°C. [Figure 24B] Figure 24B is a pair of graphs showing the binding of 6G6D TDB containing an anti-Ly6G6D20A12.QNTv12 arm (2 cells) and an anti-CD3 40G5c arm to human (left panel) and cynomolgus monkey (right panel) Ly6G6D polypeptides, as measured using a BIAcore assay. Ly6G6D-Fc was directly immobilized on the chip, and TDB was flowed at 37°C. [Figure 24C]Figure 24C is a pair of graphs showing the binding of Ly6G6D TDB containing an anti-Ly6G6D 1G4 arm and an anti-CD3 38E4.v1 arm to human (left panel) and cynomolgus monkey (right panel) Ly6G6D polypeptides, as measured using a BIAcore assay. Ly6G6D-Fc was directly immobilized on the chip, and TDB was flowed at 37°C. [Figure 24D] Figure 24D is a pair of graphs showing the binding of Ly6G6D TDB containing an anti-Ly6G6D 1G4 arm and an anti-CD3 40G5c arm to human (left panel) and cynomolgus monkey (right panel) Ly6G6D polypeptides, as measured using a BIAcore assay. Ly6G6D-Fc was directly immobilized on the chip, and TDB was flowed at 37°C. [Figure 25] Figure 25 is a series of graphs showing binding of LY6G6D TDB containing anti-LY6G6D20A12.QNTv12 arms (2 cells) and anti-CD3 arm 38E4.v1 (left panel), anti-LY6G6D 20A12.QNTv12 arms (1 cell) and anti-CD3 arm 38E4.v1 MD1 (center panel), or anti-LY6G6D 20A12.QNTv12 arms (1 cell) and anti-CD3 arm 38E4.v1 MD4 (right panel) to human LY6G6D polypeptide as measured using a BIAcore assay. Ly6G6D-Fc was directly immobilized on the chip and TDB was flowed at 37°C. [Figure 26A] Figure 26A is a graph showing tumor volume (mm) of xenografted HT55 tumors in NSG™ mice after treatment with LY6G6D TDB assembled using a one-cell system containing an anti-LY6G6D 20A12.QNTv12 arm (1 cell) and anti-CD3 arms 38E4v1 MD1, 38E4v1 MD4, or 38E4v1(WT), and with LY6G6D TDB assembled using a two-cell system containing an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and anti-CD3 38E4v1 arm (WT). Controls include treatments with delivery vehicle and PMBCs, or treatments with TDB but no PMBCs. [Figure 26B]FIG. 26B is a series of graphs showing raw data for the tumor volume assay shown in FIG. 26A. [Figure 27] Figure 27 is a graph showing the serum concentrations (in μg / mL) of LY6G6D TDBs assembled using a two-cell system containing an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 arm (WT), and LY6G6D TDBs assembled using a one-cell system containing an anti-LY6G6D 20A12.QNTv12 arm (1 cell) and an anti-CD3 38E4v1 MD1 or 38E4v1 MD4 arm. [Figure 28] Figure 28 is a graph showing the serum concentrations (in μg / mL) of LY6G6D TDB assembled using a 1-cell system containing an anti-LY6G6D 20A12.QNTv12 arm (1 cell) and an anti-CD3 38E4v1 MD1 or 38E4v1 MD4 arm, and a 2-cell system containing an anti-LY6G6D 20A12.QNTv12 arm (2 cells) and an anti-CD3 38E4v1 arm (WT). [Figure 29A] Figure 29A is a sequence alignment showing the amino acid sequences of the VLs of anti-CD3 clones 38E4v1, 40G5c, 38E4v1 MD1 (MD1), and 38E4v1 MD4 (MD4). The complementarity-determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are shown according to the definitions of Kontakt, Chossia, and Kabat. CDR sequences according to the Kabat definition are underlined. [Figure 29B] Figure 29B is a sequence alignment showing the amino acid sequences of the VHs of anti-CD3 clones 38E4v1, 40G5c, 38E4v1 MD1 (MD1), and 38E4v1 MD4 (MD4). The complementarity-determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are shown according to the definitions of Kontakt, Chossia, and Kabat. CDR sequences according to the Kabat definition are underlined. [Figure 29C]Figure 29C is a graph showing the results of a transient transfection production assay containing anti-CD3 38E4v1, MD1, 38E4v1.S43P, 38E4v1.T51A, 38E4v1.K55E, and 38E4v1.K89T arms. [Figure 29D] Figure 29D is a graph showing the percentage of properly paired bispecific antibodies produced against LY6G6D TDB containing an anti-LY6G6D arm or an anti-FcRH5 arm and an anti-CD3 arm 38E4v1 (WT), MD1, or mutant 38E4v1 arm with single amino acid substitutions (indicated in brackets) that altered the ratio of targeting arm light chain (LC) DNA to anti-CD3 arm DNA (targeting arm LC:CD3 LC). [Figure 29E] Figure 29E is a graph showing serum concentrations (μg / mL) following a single 5 mg / kg dose of monospecific bivalent anti-CD3 antibodies containing anti-CD3 arms 38E4v1, 40G5c, MD1, MD4, or 38E4v1 K55E in CB-17 SCID mice (n=3 per time point). Anti-gD antibody is shown as a control. Individual data points (symbols) are shown with connected mean values ​​(solid lines). [Figure 29F] Figure 29F is a sequence alignment showing the amino acid sequences of the VLs of anti-CD3 clones 38E4v1, 40G5c, MD1, and MD4 containing the Q38E amino acid substitution mutation (box) in framework region (FR) 2. This light chain variable region sequence is particularly useful for single-cell production of TDB. The complementarity-determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are shown according to the definitions of Contact, Chossia, and Kabat. CDR sequences according to the Kabat definition are underlined. [Figure 29G]Figure 29G is a sequence alignment showing the amino acid sequences of the VHs of anti-CD3 clones 38E4v1, 40G5c, MD1, and MD4, which contain the Q39K amino acid substitution mutation (box) in framework region (FR) 2. This heavy chain variable region sequence is particularly useful for single-cell production of TDB. The complementarity-determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are shown according to the definitions of Contact, Chossia, and Kabat. CDR sequences according to the Kabat definition are underlined. [Figure 30] Figure 30 is a graph showing the results of a transient transfection production assay for two production replicates of the anti-LY6G6D1G4 arm. The anti-CD3 arm 38E4v1 and the anti-GFR1 arm serve as controls. [Figure 31A] FIG. 31A is a diagram of the light chain (LC) and heavy chain (HC) of rabbit clone 20A12 showing the glycosylation site of CDR-L3 and the disulfide bond between the two cysteine ​​residues of CDR-H1 and CDR-L2. [Figure 31B] Figure 31B is a series of graphs measuring the binding of anti-LY6G6D arm 20A12 variants containing the rabbit 20A12 CDRs to the human light chain framework regions hIGKV.1-5, hIGKV.1-39, and hIGKV.4-1, and the human heavy chain framework regions hIGHV.3-23 and hIGHV.3-30 using BIAcore assays. The percent identity to the human germline rb.20A12 sequence and the number of Vernier positions in each variant are shown. [Figure 31C] Figure 31C is a table showing the percent identity of various human VL germline sequences to the rb.20A12 sequence; the number of Vernier positions in each human germline sequence; and the prevalence of the germline sequences in humans. [Figure 31D] Figure 31D is a table showing the percent identity of various human VH germline sequences to the rb.20A12 sequence; the number of Vernier positions in each human germline sequence; and the prevalence of the germline sequences in humans.

[0089] [Figure 32A] FIG. 32A is a diagram of the light chain (LC) and heavy chain (HC) of rabbit clone 20A12 showing the glycosylation site of CDR-L3 and the disulfide bond between the two cysteine ​​residues of CDR-H1 and CDR-L2. [Figure 32B] Figure 32B is a diagram of the LC and HC of humanized 20A12 variant 20A12.v1, showing the glycosylation site in CDR-L3 and the C35S and C50A amino acid substitution mutations that eliminate the disulfide bond between two cysteine ​​residues in CDR-H1 and CDR-L2. 20A12.v1 contains the VH framework regions of hIGHV.3-23 and the VL framework regions of hIGKV.1-39. The human framework regions have been modified at nine positions (circled) to include Vernier residues derived from the 20A12 rabbit sequence. [Figure 32C] Figure 32C is a LC and HC diagram of the refined humanized 20A12 variant, showing the glycosylation site in CDR-L3 and the C35S and C50A amino acid substitution mutations that eliminate the disulfide bond between the two cysteine ​​residues in CDR-H1 and CDR-L2. The refined variant 20A12 contains the VH framework regions of hIGHV.3-23 and the VL framework regions of hIGKV.1-5. The human framework regions have been modified at four positions (circled) to include Vernier residues derived from the 20A12 rabbit sequence. [Figure 32D] Figure 32D is a pair of figures and a table showing the KDs of rb.20A12 and various humanized variants thereof. The center column shows the relative amino acid substitution mutations between the human framework region heavy chain (H) and human framework region light chain (L) sequences of hIGHV.3-23, which revert the amino acid positions to rabbit Vernier residues. [Figure 33A] Figure 33A is a table showing the percent identity of various human VL germline sequences to the rb.6E10 sequence; the number of Vernier positions in each human germline sequence; and the prevalence of the germline sequences in humans. [Figure 33B]Figure 33B is a table showing the percent identity of various human VH germline sequences to the rb.6E10 sequence; the number of Vernier positions in each human germline sequence; and the prevalence of the germline sequences in humans. [Figure 34A] Figure 34A is a series of graphs showing the binding of various chimeric Fabs having rb.20A12 and rb.20A12 variable domains and human constant regions to the Ly6G6D polypeptide, as measured using a BIAcore assay. Each of the chimeric Fabs contains amino acid mutations at C35 of CDR-H1 and C50 of CDR-H2, as follows: C35S-C50A (SA), C35S-C50S (SS), C35I-C50A (IA), C35I-C50S (IS), and C35I-C50I (II). The KD of each chimeric Fab is shown. [Figure 34B] Figure 34B is a sequence diagram showing the glycosylation site in CDR-L3 of rb.20A12 with the sequence NNT, and a table showing the KDs of variants of the above-described refined humanized 20A12 light chain sequence with amino acid substitution mutations at the glycosylation site, as measured using a BIAcore assay for binding to LY6G6D. [Figure 34C] Figure 34C is a series of graphs showing binding of Fab variants of rabbit 20A12, rabbit 20A12 containing C35I and C50A(IA) mutations with QNT amino acid substitution mutations at the glycosylation site of Figure 34B, and Fab variants of refined humanized 20A12 with QNT amino acid substitution mutations at the glycosylation site of Figure 34B to LY6G6D as measured using a BIAcore assay. Ly6G6D-Fc was captured on a Protein A chip and Fab was run at 37°C. [Figure 34D] Figure 34D is a series of graphs showing binding of Fab variants of the refined humanized 20A12 light chain sequence with QNV, SNV, GNT, and SNA amino acid substitution mutations at the glycosylation site in Figure 34B to the Ly6G6D polypeptide, as measured using a BIAcore assay. Ly6G6D-Fc was captured on a Protein A chip and the Fab was run at 37°C. [Figure 35A]FIG. 35A is a diagram showing rabbit 20A12 from FIG. 32A and a graph showing binding of the depicted antibody to LY6G6D as measured using a BIAcore assay. [Figure 35B] Figure 35B is a diagram showing the refined humanized 20A12 variant 20A12.QNTv12 and a graph showing binding of the depicted antibody to LY6G6D as measured using a BIAcore assay. [Figure 36] Figure 36 is a set of graphs showing the binding of 20A12.QNTv12, 6E10.v114, and 1G4 to human and cyno LY6G6D polypeptides and a table summarizing the KD for each assay as measured using a BIAcore assay. Ly6G6D-Fc was directly immobilized on the chip and run in TDB at 37°C. [Figure 37] 37 is a graph showing the results of a transient transfection production assay for the anti-LY6G6D 20A12.QNTv.1 and 20A12.QNTv12 arms. As controls, the anti-CD3 arm 38E4v1 and the anti-FGFR1 arm were prepared. [Figure 38] Figure 38 is a table showing the results of a baculovirus (BV) ELISA assay for nonspecific clearance for the anti-LY6G6D 20A12.QNTv12 (refined 20A12.ver1) arm. [Figure 39] Figure 39 is a table showing the results of a molecular assessment (MA) analysis of TDB containing an anti-LY6G6D 20A12.QNTv12 arm and an anti-CD3 38E4v1 or 40G5c arm. Green coloring indicates assays in which no obvious issues were identified. [Figure 40A]Figure 40A is a sequence alignment showing the amino acid sequence of humanized variant 20A12, comprising the CDRs of rb.20A12, the VH framework regions of human germline sequences hIGHV.3-23 or hIGHV.3-30, and the VL framework regions of human germline sequences hIGHV.1-5, hIGKV.1-39, or hIGKV.4-1, each with rabbit Vernier residues. Complementarity-determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are shown. Residues that differ between the sequences are highlighted. [Figure 40B] Figure 40B is a sequence alignment showing the amino acid sequences of rb.20A12 and humanized variants 20A12.QNTv.1 and 20A12.QNTv12. Complementarity determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are shown. Residues that differ between the sequences are highlighted. [Figure 40C] Figure 40C is a sequence alignment showing the amino acid sequences of the VH of human germline sequence hIGHV.3-23, the VL of human germline sequence hIGHV.1-5, and the VH and VL of humanized 20A12 variants 20A12.QNTv.1 and 20A12.QNTv12. Rabbit Vernier residues present in 20A12.QNTv.1 and 20A12.QNTv12 are indicated by ellipses. Complementarity-determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are indicated. Residues that differ between the sequences are highlighted. [Figure 41] Figure 41 is a table showing the results of the molecular assessment (MA) analysis of 6E10v1 Fab. Green coloring indicates assays in which no obvious problems were identified, while red coloring indicates assays in which problems were identified. [Figure 42] Figure 42 is a series of graphs showing binding of anti-LY6G6D arm 6E10 variants comprising the rabbit 6E10 CDRs and the VH framework regions of human germline sequence hIGHV.3-53, hIGHV.4-4, or hIGHV.3-48, and the VL framework regions of human germline sequence hIGHV.1-5, hIGKV.3-20, or hIGKV.4-1, as measured using a BIAcore assay. The number of Vernier positions for each variant is indicated. [Figure 43A] Figure 43A is a sequence alignment showing the amino acid sequences of humanized variants of 6E10 containing the CDRs of rb.6E10, the VH framework regions of human germline sequences hIGHV.3-53, hIGHV.4-4, or hIGHV.3-48, and the VL framework regions of human germline sequences hIGHV.1-5, hIGKV.3-20, or hIGKV.4-1. Complementarity-determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are shown. Residues that differ between the sequences are highlighted. [Figure 43B] Figure 43B is a sequence alignment showing the amino acid sequences of rb.6E10 and humanized variants 6E10.v23 and 6E10.v114. Complementarity determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are shown. Residues that differ between the sequences are highlighted. [Figure 43C] Figure 43C is a sequence alignment showing the amino acid sequences of the VH of human germline sequence hIGHV.3-53*01, the VL of human germline sequence hIGHV.3-20*01, and the VH and VL of rb.6E10 and the humanized 6E10 variant 6E10.v114. Rabbit Vernier residues present in rb.6E10 and 6E10.v114 are indicated by ellipses. Complementarity-determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are indicated. Residues that differ between the sequences are highlighted. [Figure 43D] Figure 43D is a sequence alignment showing the amino acid sequences of the VH of human germline sequence hIGHV.3-48*01, the VL of human germline sequence hIGHV.1-5*01, and the VH and VL of rb.6E10 and the humanized 6E10 variant 6E10.v23. The rabbit Vernier residues present in rb.6E10 and 6E10.v23 are indicated by ellipses. The complementarity-determining regions (CDRs) CDR L1, CDR L2, and CDR L3 are indicated. Residues that differ between the sequences are highlighted.

[0090] Detailed Description of the Invention I. Definition The term "about" as used herein refers to a normal error range for the respective value, which would be readily understood by one of ordinary skill in the art. As used herein, a reference to "about" a value or parameter includes (and describes) the aspect directed to that value or parameter itself.

[0091] It is understood that aspects of the invention described herein include aspects such as "comprising," "consisting," and "consisting essentially of."

[0092] As used herein, the term "Ly6G6D" or "lymphocyte antigen 6 complex, locus G61," unless otherwise indicated, refers to any native Ly6G6D from any vertebrate, including mammals such as primates (e.g., humans) and rodents (e.g., mice and rats), and encompasses "full-length," unprocessed Ly6G6D as well as any form of Ly6G6D resulting from processing within a cell. The term also encompasses naturally occurring variants of Ly6G6D, including, for example, splice variants or allelic variants. Ly6G6D, also known as G6D, Ly6-D, C6orf23, megakaryocyte-enhanced gene transcript 1 (MEGT1), and NG25, is disclosed as TAT201 in U.S. Patent No. 7,951,546, the entire contents of which are incorporated herein by reference, and has the amino acid sequence of SEQ ID NO:75 and the nucleotide sequence of SEQ ID NO:76, DNA234441. Ly6G6D includes, for example, the human Ly6G6D protein (NCBI RefSeq No. NP_067079.2) having a length of 133 amino acids.

[0093] The terms "anti-LY6G6D antibody" and "antibody that binds to LY6G6D" refer to an antibody that is capable of binding to LY6G6D with sufficient affinity so as to be useful as a diagnostic and / or therapeutic agent in targeting LY6G6D. In one embodiment, the extent to which an anti-LY6G6D antibody binds to an unrelated, non-LY6G6D protein is less than about 10% of the binding of the antibody to LY6G6D, as measured, for example, by radioimmunoassay (RIA). In certain embodiments, an antibody that binds to LY6G6D has a dissociation constant (K D) is ≦1 μM, ≦250 nM, ≦100 nM, ≦15 nM, ≦10 nM, ≦6 nM, ≦4 nM, ≦2 nM, ≦1 nM, ≦0.1 nM, ≦0.01 nM, or ≦0.001 nM (e.g., 10 -8 M or less, e.g., 10 -8 M to 10 -13M Up to, for example, 10 -9 M to 10 -13 In certain embodiments, the anti-LY6G6D antibody binds to an epitope of LY6G6D that is conserved among LY6G6D of different species.

[0094] As used herein, the term "cluster of differentiation 3" or "CD3," unless otherwise indicated, refers to any native CD3 from any vertebrate, including mammals such as primates (e.g., humans) and rodents (e.g., mice and rats), including, for example, the CD3ε, CD3γ, CD3α, and CD3β chains. The term "full-length" encompasses unprocessed CD3 (e.g., unprocessed or unmodified CD3ε or CD3γ) and any form of CD3 resulting from intracellular processing. The term also encompasses naturally occurring variants of CD3, including, for example, splice variants or allelic variants. Examples of CD3 include, for example, the human CD3ε protein, which is 207 amino acids in length (NCBI RefSeq No. NP_000724), and the human CD3γ protein, which is 182 amino acids in length (NCBI RefSeq No. NP_000064).

[0095] The terms "anti-CD3 antibody" and "antibody that binds to CD3" refer to an antibody that is capable of binding to CD3 with sufficient affinity so as to be useful as a diagnostic and / or therapeutic agent that targets CD3. In one embodiment, the extent to which an anti-CD3 antibody binds to an unrelated, non-CD3 protein is less than about 10% of the binding of the antibody to CD3, as measured, for example, by radioimmunoassay (RIA). In certain embodiments, an antibody that binds to CD3 has a dissociation constant (K) of ≦1 μM, ≦250 nM, ≦100 nM, ≦15 nM, ≦10 nM, ≦5 nM, ≦1 nM, ≦0.1 nM, ≦0.01 nM, or ≦0.001 nM. D) (e.g., 10 -8 M or less, e.g., 10 -8 M to 10 -13 M, e.g., 10 -9 M to 10 -13 M). In certain embodiments, the anti-CD3 antibody binds to an epitope of CD3 that is conserved among CD3 of different species.

[0096] As used herein, the term "antibody" is used in the broadest sense and encompasses a variety of antibody structures, including, but not limited to, monoclonal antibodies, polyclonal antibodies, multispecific antibodies (e.g., bispecific antibodies), and antibody fragments (e.g., bis-Fab), so long as they exhibit the desired antigen-binding activity.

[0097] "Affinity" refers to the strength of the total non-covalent interactions between a single binding site of a molecule (e.g., an antibody) and its binding partner (e.g., an antigen). Unless otherwise specified, as used herein, "binding affinity" refers to the specific binding affinity, which reflects a 1:1 interaction between members of a binding pair (e.g., an antibody and an antigen). The affinity of molecule X for partner Y is generally determined by the dissociation constant (K D ) Affinity can be measured by methods common in the art, including those described herein. Specific exemplary and illustrative embodiments for measuring binding affinity are described below.

[0098] An "affinity matured" antibody refers to an antibody that has one or more alterations in one or more hypervariable regions (HVRs) compared to a parent antibody that does not have such alterations, which improve the affinity of the antibody for its antigen.

[0099] The terms "full length antibody," "intact antibody," and "whole antibody" are used interchangeably herein to refer to an antibody having a heavy chain that has a structure substantially similar to a native antibody structure or that contains an Fc region as defined herein.

[0100] "Antibody fragment" refers to a molecule other than an intact antibody that contains a portion of the intact antibody that binds the antigen to which the intact antibody binds. Examples of antibody fragments include, but are not limited to, bis-Fab; Fv; Fab; Fab, Fab'-SH; F(ab')2; diabodies; linear antibodies; single-chain antibody molecules (e.g., scFv, scFab); and multispecific antibodies formed from antibody fragments.

[0101] "Single domain antibody" refers to an antibody fragment that comprises all or a portion of the heavy chain variable domain or all or a portion of the light chain variable domain of an antibody. In certain embodiments, the single domain antibody is a human single domain antibody (see, e.g., U.S. Pat. No. 6,248,516 B1). Examples of single domain antibodies include, but are not limited to, VHHs.

[0102] A "Fab" fragment is an antigen-binding fragment produced by papain digestion of an antibody and consists of the entire L chain along with the variable region domain of the H chain (VH) and the first constant domain of one heavy chain (CH1). Papain digestion of an antibody produces two identical Fab fragments. Pepsin treatment of an antibody produces a single large F(ab')2 fragment, roughly corresponding to two disulfide-linked Fab fragments, which has bivalent antigen-binding activity and is capable of cross-linking antigen. Fab' fragments differ from Fab fragments by having a few additional residues at the carboxy terminus of the CH1 domain, including one or more cysteines from the antibody hinge region. Fab'-SH is the designation used herein for Fab' in which the cysteine ​​residue(s) in the constant domain bear a free thiol group. F(ab')2 antibody fragments were originally produced as pairs of Fab' fragments with hinge cysteines between them. Other chemical couplings of antibody fragments are also known.

[0103] An "Fv" consists of a dimer of one heavy-chain and one light-chain variable domain in tight, non-covalent association. The folding of these two domains results in six hypervariable loops (three loops from each H and L chain) that provide the amino acid residues for antigen binding and confer antigen-binding specificity to the antibody. However, even a single variable domain (or half of an Fv containing only three antigen-specific CDRs) has the ability to recognize and bind antigen, although often with lower affinity than the entire binding site.

[0104] The term "Fc region" herein is used to define the C-terminal region of an immunoglobulin heavy chain, including native-sequence Fc regions and variant Fc regions. Although the boundaries of the Fc region of an immunoglobulin heavy chain might vary, the Fc region of a human IgG heavy chain is usually defined to stretch from the amino acid residue at position Cys226, or from the amino acid residue at position Pro230, to the carboxyl-terminus thereof. The C-terminal lysine of the Fc region (residue 447 according to the EU numbering system) may be removed, for example, during antibody production or purification, or by recombinantly engineering a nucleic acid encoding the antibody heavy chain. Thus, a composition of intact antibodies may include antibody populations with all Lys447 residues removed, antibody populations lacking the removed Lys447 residue, and antibody populations having a mixture of antibodies with and without the Lys447 residue.

[0105] A "functional Fc region" possesses an "effector function" of a native sequence Fc region. Exemplary "effector functions" include C1q binding; CDC; Fc receptor binding; ADCC; phagocytosis; down-regulation of cell surface receptors (e.g., B cell receptors; BCRs); and the like. Such effector functions generally require association of the Fc region with a binding domain (e.g., an antibody variable domain) and can be assessed using various assays, e.g., as disclosed in the definitions herein.

[0106] A "native-sequence Fc region" comprises an amino acid sequence identical to that of an Fc region found in nature. Native-sequence human Fc regions include native-sequence human IgG 1 Fc regions (non-A and A allotypes); native-sequence human IgG 2 Fc regions; native-sequence human IgG 3 Fc regions; and native-sequence human IgG 4 Fc regions, as well as native-occurring variants thereof.

[0107] A "variant Fc region" comprises an amino acid sequence that differs from that of a native-sequence Fc region by virtue of at least one amino acid modification, preferably one or more amino acid substitutions. Preferably, the variant Fc region has at least one amino acid substitution, e.g., about one to about ten amino acid substitutions, and more preferably about one to about five amino acid substitutions, compared to the native-sequence Fc region or the Fc region of the parent polypeptide. The variant Fc region herein will preferably have at least about 80% homology, preferably at least about 90% homology, or more preferably at least about 95% homology, with the native-sequence Fc region and / or the Fc region of the parent polypeptide.

[0108] As used herein, "Fc complex" refers to the CH3 domains of two Fc regions interacting together to form a dimer, or in certain embodiments, two Fc regions interacting to form a dimer, wherein cysteine ​​residues in the hinge regions and / or CH3 domains interact via bonds and / or forces (e.g., van der Waals, hydrophobic forces, hydrogen bonds, electrostatic forces, or disulfide bonds).

[0109] As used herein, "Fc component" refers to the hinge region, CH2 domain, or CH3 domain of the Fc region.

[0110] The "hinge region" is generally defined as extending from about residue 216 to about 230 of IgG (EU numbering), from about residue 226 to about 243 of IgG (Kabat numbering), or from about residue 1 to about 15 of IgG (IMGT unique numbering).

[0111] The "lower hinge region" of an Fc region is usually defined as the stretch of residues immediately C-terminal to the hinge region, ie, residues 233 to 239 (EU numbering) of the Fc region.

[0112] A "variant Fc region" comprises an amino acid sequence that differs from that of a native-sequence Fc region by virtue of at least one amino acid modification, preferably one or more amino acid substitutions. Preferably, the variant Fc region has at least one amino acid substitution, e.g., about one to about ten amino acid substitutions, and more preferably about one to about five amino acid substitutions, compared to the native-sequence Fc region or the Fc region of the parent polypeptide. A variant Fc region herein preferably retains at least about 80% homology with the native-sequence Fc region and / or the Fc region of the parent polypeptide, and most preferably at least about 90% homology thereto, and more preferably at least about 95% homology thereto.

[0113] "Fc receptor" or "FcR" refers to a receptor that binds to the Fc region of an antibody. A preferred FcR is a native-sequence human FcR. Additionally, a preferred FcR is one that binds IgG antibodies (gamma receptors), including receptors of the FcγRI, FcγRII, and FcγRIII subclasses, including allelic variants and alternatively spliced ​​forms of these receptors. FcγRII receptors include FcγRIIA (an "activating receptor") and FcγRIIB (an "inhibiting receptor"), which have similar amino acid sequences that differ primarily in their cytoplasmic domains. Activating receptor FcγRIIA contains an immunoreceptor tyrosine-based activation motif (ITAM) in its cytoplasmic domain. Inhibiting receptor FcγRIIB contains an immunoreceptor tyrosine-based inhibition motif (ITIM) in its cytoplasmic domain (see review M. in Daeron, Annu. Rev. Immunol. 15:203-234 (1997)). FcRs are reviewed in Ravetch and Kinet, Annu. Rev. Immunol. 9:457-492 (1991); Capel et al., Immunomethods 4:25-34 (1994); and de Haas et al., J. Lab. Clin. Med. 126:330-41 (1995). Other FcRs, including those yet to be identified, are encompassed herein by the term "FcR." This term also includes the neonatal receptor FcRn, which is involved in the transfer of maternal IgG to the fetus (Guyer et al., J. Immunol. 117:587 (1976) and Kim et al., J. Immunol. 24:249 (1994)).

[0114] The term "knobs-into-holes" or "KnH" technology, as used herein, refers to a technique that directs pairing of two polypeptides together in vitro or in vivo by introducing a protrusion (knob) into one polypeptide and a cavity (hole) into the other polypeptide at their interacting interface. For example, KnH has been introduced into the Fc:Fc interaction interface, CL:CH1 interface, or VH / VL interface of an antibody (e.g., US2007 / 0178552, WO 96 / 027011, WO 98 / 050431, and Zhu et al. (1997) Protein Science 6:781-788). This is particularly useful for driving the pairing of two different heavy chains together during the production of multispecific antibodies. For example, a multispecific antibody with KnH in the Fc region may further comprise a single variable domain linked to each Fc region, or may further comprise different heavy chain variable domains paired with identical, similar, or different light chain variable domains. KnH technology can also be used to pair two different receptor extracellular domains together, or any other polypeptide sequence comprising different target recognition sequences. "Framework" or "FR" refers to variable domain residues other than hypervariable region (HVR) residues. The FR of a variable domain typically consists of four FR domains: FR1, FR2, FR3, and FR4. Thus, the HVR and FR sequences typically appear in the following order in VH (or VL): FR1-H1(L1)-FR2-H2(L2)-FR3-H3(L3)-FR4.

[0115] The "CH1 region" or "CH1 domain" comprises a stretch of residues from about residue 118 to residue 215 of IgG (EU numbering), from about residue 114 to residue 223 of IgG (Kabat numbering), or from about residue 1.4 to residue 121 of IgG (IMGT unique numbering) (Lefranc MP, Giudicelli V, Duroux P, Jabado-Michaloud J, Folch G, Aouinti S, Carillon E, Duvergey H, Houles A, Paysan-Lafosse T, Hadi-Saljoqi S, Sasorith S, Lefranc G, Kossida S. IMGT®, the international ImMunoGeneTics information system® 25 years on. Nucleic Acids Res. 2015 Jan;43(Database issue):D413-22). The IL-15 or IL-15Rα polypeptide may be covalently linked directly to the first residue of the CH1 domain, or alternatively, to a residue positioned C-terminal to the first residue of CH1. In alternative embodiments, the IL-15 or IL-15Rα polypeptide may be covalently linked to CH1 via a linker, as defined herein.

[0116] The "CH2 domain" of the human IgG Fc region typically spans from about residue 244 to about residue 360 ​​of IgG (Kabat numbering), from about residue 231 to about residue 340 of IgG (EU numbering), or from about residue 1.6 to about residue 125 of IgG (IGMT unique numbering). The CH2 domain is unique in that it is not tightly paired with other domains. Rather, two N-linked branched carbohydrate chains are interposed between the two CH2 domains in an intact native IgG molecule. It has been speculated that the carbohydrates provide a surrogate for domain-domain pairing and help stabilize the CH2 domains. Burton, Molec. Immunol. 22:161-206 (1985).

[0117] The "CH3 domain" comprises the extension from the C-terminal residue of the Fc region to the CH2 domain (i.e., from about amino acid residues 361 to about 478 of IgG (Kabat numbering), from about amino acid residues 341 to about 447 of IgG (EU numbering), or from about amino acid residues 1.4 to about 130 of IgG (IGMT unique numbering)).

[0118] A "CL domain" or "constant light domain" comprises the extension of the C-terminal residues into the light chain variable domain (VL). The light chain of an antibody may be a kappa (κ) ("CK") or lambda (λ) ("Cλ") light chain region. The CK region generally extends from about residues 108 to about 214 in IgG (Kabat or EU numbering) or from about residues 1.4 to about 126 in IgG (IMGT unique numbering). The C residues generally extend from about residue 107a to about residue 215 (Kabat numbering) or from about residue 1.5 to about residue 127 (IMGT unique numbering) (Lefranc MP, Giudicelli V, Douroux P, Jabado-Michaloud J, Folch G, Aouinti S, Carillon E, Duvergey H, Houles A, Paysan-Lafosse T, Hadi-Saljoqi S, Sasorith S, Lefranc G, Kossida S. IMGT®, the international ImMunoGeneTics information system® 25 years on. Nucleic Acids Res. 2015 Jan;43(Database issue):D413-22).

[0119] Light chains (LC) from all vertebrate species can be assigned to one of two clearly distinct types, called kappa and lambda, based on the amino acid sequence of their constant domains. Depending on the amino acid sequence of the constant domain of their heavy chains (CH), immunoglobulins can be assigned to different classes or isotypes. There are five classes of immunoglobulins: IgA, IgD, IgE, IgG, and IgM, each with heavy chains designated α, δ, γ, ε, and μ. The γ and α classes are further divided into subclasses based on relatively minor differences in CH sequence and function; for example, humans express the following subclasses: IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2.

[0120] As used herein, the term "charged region" refers to a position in a polypeptide that contains one or more (e.g., 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10) basic or acidic amino acids that can form a charge pair with a cognate charged region that has one or more (e.g., 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10) basic or acidic amino acids, provided that the charged region and its cognate charged region have opposite overall relative charges.

[0121] As used herein, the term "charge pair" refers to a bond formed between two charged regions that have overall opposite charges.

[0122] The term "chimeric" antibody refers to an antibody in which a portion of the heavy and / or light chain is derived from a particular source or species, while the remainder of the heavy and / or light chain is derived from a different source or species.

[0123] The "class" of an antibody refers to the type of constant domain or constant region contained in the antibody's heavy chain. There are five main classes of antibodies: IgA, IgD, IgE, IgG, and IgM, some of which may be further divided into subclasses (isotypes), e.g., IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2. The heavy-chain constant domains corresponding to the different immunoglobulin classes are called α, δ, ε, γ, or μ, respectively.

[0124] A "human antibody" refers to an antibody produced by a human or human cell, or one having an amino acid sequence corresponding to an antibody of non-human origin that utilizes human antibody-encoding sequences, such as the human antibody repertoire. This definition of human antibody specifically excludes humanized antibodies that contain non-human antigen-binding residues. Human antibodies can be generated using a variety of techniques known in the art, including phage display libraries. Hoogenboom and Winter. J. Mol. Biol. 227:381, 1991; Marks et al. J. Mol. Biol. 222:581, 1991. In addition, methods for preparing human monoclonal antibodies can be used, such as those described in Cole et al., Monoclonal Antibodies and Cancer Therapy, Alan R. Liss, p. 77 (1985); Boerner et al., J. Immunol., 147(1):86-95, 1991. See also van Dijk and van de Winkel, Curr. Opin. Pharmacol. 5:368-74, 2001. Human antibodies can be prepared by administering antigen to transgenic animals, such as immunized xenomouse, which have been engineered to produce such antibodies in response to antigen challenge but whose endogenous gene loci have been disabled (see, for example, U.S. Patent Nos. 6,075,181 and 6,150,584 regarding XENOMOUSE™ technology). See also, for example, Li et al. Proc. Natl. Acad. Sci. USA. 103:3557-3562, 2006 regarding human antibodies generated via a human B-cell hybridoma technology.

[0125] A "human consensus framework" is a framework that represents the most commonly occurring amino acid residues among a selection of human immunoglobulin VL or VH framework sequences. Generally, the selection of human immunoglobulin VL or VH sequences is made from a subgroup of variable domain sequences. Generally, the subgroup of sequences is a subgroup as described in Kabat et al., Sequences of Proteins of Immunological Interest, Fifth Edition, NIH Publication 91-3242, Bethesda, MD (1991), vols. 1-3. In one embodiment, for VL, the subgroup is subgroup kappa I, as described in Kabat et al., supra. In one embodiment, for VH, the subgroup is subgroup kappa III, as described in Kabat et al., supra.

[0126] A "humanized" antibody refers to a chimeric antibody comprising amino acid residues from non-human HVRs and human FRs. In certain embodiments, a humanized antibody comprises substantially all of at least one, and typically two, variable domains, in which all or substantially all HVRs (e.g., CDRs) correspond to those of a non-human antibody and all or substantially all FRs correspond to those of a human antibody. In certain embodiments in which all or substantially all FRs of a humanized antibody correspond to those of a human antibody, any of the FRs of the humanized antibody may comprise one or more amino acid residues from the non-human FR(s) (e.g., one or more Vernier position residues in the FR). A humanized antibody may optionally comprise at least a portion of an antibody constant region derived from a human antibody. A "humanized form" of an antibody refers to an antibody that has undergone humanization, e.g., as a non-human antibody.

[0127] The term "variable region" or "variable domain" refers to the domain of an antibody heavy or light chain that is involved in binding the antibody to an antigen. The variable domains (VH and VL) of the heavy and light chains of a native antibody generally have similar structures, with each domain containing four conserved framework regions (FR) and three hypervariable regions (HVR). (See, e.g., Kindt et al., Kuby Immunology, 6 th (See, e.g., W.H. Freeman and Co., p. 91 (2007).) A single VH or VL domain may be sufficient to confer antigen-binding specificity. Furthermore, a VH or VL domain from an antibody that binds a particular antigen may be used to screen a library of complementary VL or VH domains, respectively. See, e.g., Portolano et al. J. Immunol. 150:880-887, 1993; Clarkson et al. Nature 352:624-628, 1991. As used herein, the term "hypervariable region" or "HVR" refers to each region of an antibody variable domain that is hypervariable in sequence (the "complementarity determining region" or "CDR"). Antibodies generally contain six CDRs: three in the VH (CDR-H1, CDR-H2, CDR-H3) and three in the VL (CDR-L1, CDR-L2, CDR-L3). Exemplary CDRs herein include the following: (a) CDRs located at amino acid residues 26-32 (L1), 50-52 (L2), 91-96 (L3), 26-32 (H1), 53-55 (H2), and 96-101 (H3) (Chothia and Lesk, J. Mol. Biol. 196:901-917, 1987);

[0128] (b) CDRs located at amino acid residues 24-34 (L1), 50-56 (L2), 89-97 (L3), 31-35b (H1), 50-65 (H2), and 95-102 (H3) (Kabat et al., Sequences of Proteins of Immunological Interest, 5th Ed., Public Health Service, National Institutes of Health, Bethesda, MD (1991)); and (c) Antigen contacts occurring at amino acid residues 27c–36 (L1), 46–55 (L2), 89–96 (L3), 30–35b (H1), 47–58 (H2), and 93–101 (H3) (MacCallum et al. J. Mol. Biol. 262:732–745, 1996).

[0129] Unless otherwise indicated, HVR residues and other residues in the variable domain (e.g., FR residues) are numbered herein according to Kabat et al. supra.

[0130] "Single-chain Fv," also abbreviated as "sFv" or "scFv," is an antibody fragment comprising the VH and VL antibody domains connected in a single polypeptide chain. Preferably, the scFv polypeptide further comprises a polypeptide linker between the VH and VL domains, which enables the scFv to form the desired structure for antigen binding. For a review of scFvs, see Pharmacology of Monoclonal Antibodies, vol. 113, Rosenburg and Moore eds., Springer-Verlag, New York, pp. 269-315 (1994); Malmborg et al., J. Immunol. Methods 183:7-13, 1995.

[0131] A "targeting domain" refers to a portion of a compound or molecule that specifically binds to a target epitope, antigen, ligand, or receptor. Targeting domains include, but are not limited to, antibodies (e.g., monoclonal antibodies, polyclonal antibodies, recombinant antibodies, humanized antibodies, and chimeric antibodies), antibody fragments or portions thereof (e.g., bis-Fab fragments, Fab fragments, F(ab')2, scFab, scFv antibodies, SMIPs, single-domain antibodies, diabodies, minibodies, scFv-Fc, affibodies, nanobodies, and the VH and / or VL domains of antibodies), receptors, ligands, aptamers, peptide targeting domains (e.g., cysteine ​​knot proteins (CKPs)), and other molecules with identified binding partners. A targeting domain can target, block, agonize, or antagonize the antigen to which it binds.

[0132] As used herein, the term "monoclonal antibody" refers to an antibody obtained from a population of substantially homogeneous antibodies, i.e., antibodies in which the individual antibodies comprising the population are identical and / or bind the same epitope, except for variant antibodies that contain, for example, naturally occurring mutations or that may arise during the manufacture of a monoclonal antibody preparation, in which such variants are generally present in minor amounts. In contrast to polyclonal antibody preparations, which typically include different antibodies directed against different determinants (epitopes), each monoclonal antibody of a monoclonal antibody preparation is directed against a single determinant on an antigen. Thus, the modifier "monoclonal" indicates the character of the antibody as being obtained from a substantially homogeneous population of antibodies and is not to be construed as requiring production of the antibody by any particular method. For example, monoclonal antibodies used in accordance with the present invention can be produced by a variety of techniques, including, but not limited to, hybridoma methods, recombinant DNA methods, phage display methods, and methods utilizing transgenic animals containing all or part of the human immunoglobulin loci, including, but not limited to, such methods and other exemplary methods for producing monoclonal antibodies described herein.

[0133] The term "multispecific antibody" is used in the broadest sense and specifically refers to antibodies with multiple epitopic specificities. In one embodiment, a multispecific antibody binds to two different targets (e.g., a bispecific antibody). Such multispecific antibodies include, but are not limited to, antibodies comprising a heavy chain variable domain (VH) and a light chain variable domain (VL), wherein the VH / VL unit has multiple epitope specificity; antibodies having two or more VL and VH domains, each VH / VL unit binding a different epitope; antibodies having two or more single variable domains, each of which binds a different epitope; full-length antibodies; antibody fragments such as Fab, Fv, dsFv, scFv, diabodies, bispecific diabodies, and triabodies; and covalently or non-covalently linked antibody fragments. "Polyepitopic specificity" refers to the ability to specifically bind to two or more different epitopes on the same or different targets. "Monospecificity" refers to the ability to bind only one antigen. In one embodiment, a monospecific biepitopic antibody binds two different epitopes on the same target / antigen. In one embodiment, a monospecific polyepitopic antibody binds to multiple different epitopes on the same target / antigen. In some embodiments, a multispecific antibody is an IgG antibody that binds to each epitope with an affinity of 5 μM to 0.001 pM, 3 μM to 0.001 pM, 1 μM to 0.001 pM, 0.5 μM to 0.001 pM, or 0.1 μM to 0.001 pM.

[0134] A "naked antibody" refers to an antibody that is not conjugated to a heterologous moiety (e.g., a cytotoxic moiety) or radiolabel. Naked antibodies may be present in a pharmaceutical formulation.

[0135] "Native antibodies" refer to naturally occurring immunoglobulin molecules with diverse structures. For example, native IgG antibodies are heterotetrameric glycoproteins of approximately 150,000 daltons, containing two identical light chains and two identical heavy chains disulfide-linked. From the N-terminus to the C-terminus, each heavy chain contains a variable region (VH), also called a variable heavy domain or heavy chain variable domain, followed by three constant domains (CH1, CH2, and CH3). Similarly, from the N-terminus to the C-terminus, each light chain contains a variable light region (VL), also called a variable light region or light chain variable region, followed by a constant light region (CL). The light chain of an antibody may be assigned to one of two types, called κ (kappa) or λ (lambda), based on the amino acid sequence of its constant domain.

[0136] As used herein, the term "immunoadhexin" refers to a molecule that combines the binding specificity of a heterologous protein ("adhexin") with the effector functions of an immunoglobulin constant domain. Structurally, an immunoadhesin comprises an amino acid sequence with the desired binding specificity, which is an amino acid sequence other than the antigen recognition and binding site of an antibody (i.e., "heterologous" compared to the constant region of an antibody), fused to an immunoglobulin constant domain sequence (e.g., the CH2 and / or CH3 sequences of an IgG). The adhesin and immunoglobulin constant domain may be separated by an amino acid spacer, if desired. Exemplary adhesin sequences include a contiguous amino acid sequence that constitutes part of a receptor or ligand that binds to a protein of interest. An adhesin sequence may also be a sequence that binds a protein of interest but is not a receptor or ligand sequence (e.g., an adhesin sequence in a peptibody). Such polypeptide sequences can be selected or identified by a variety of methods, including phage display techniques and high-throughput sorting methods. The immunoglobulin constant domain sequence in the immunoadhexin can be obtained from any immunoglobulin, for example, IgG1, IgG2, IgG3, or IgG4 subtypes, IgA (including IgA1 and IgA2), IgE, IgD, or IgM.

[0137] "Chemotherapeutic agents" includes compounds useful in the treatment of cancer. Examples of chemotherapeutic agents include the following and pharmaceutically acceptable salts, acids, and derivatives of any of the foregoing: erlotinib (TARCEVA®, Genentech / OSI Pharm), bortezomib (VELCADE®, Millennium Pharm.), disulfiram, epigallocatechin gallate, salinosporamide A, carfilzomib, 17-AAG (geldanamycin), radicol, lactate dehydrogenase A (LDH-A), fulvestrant (FASLODEX®, AstraZeneca), sunitib (SUTENT®, Pfizer / Sugense), letrozole (FEMARA®, Novartis), imatinib mesylate (GLEEVEC®, Novartis), and finasteride (VATALANIB®, Novartis). Oxaliplatin (ELOXATIN®, Sanofi), 5-FU (5-fluorouracil), leucovorin, rapamycin (sirolimus, RAPAMUNE®, Wyeth), lapatinib (TYKERB®, GSK572016, GlaxoSmithKline).Alkylating agents such as lonafamib (SCH 66336), sorafenib (NEXAVAR®, Bayer Labs), gefitinib (IRESSA®, AstraZeneca), AG1478, thiotepa, CYTOXAN® cyclophosphamide; alkylsulfonates such as busulfan, improsulfan, piposulfan; aziridines such as benzodopa, carbochlore, metredopa, uredopa; ethylenimines and methylmelamines such as altretamine, triethylenemelamine, triethylenephosphamide, triethylenethiophosphamide, trimethylmelamine; acetogenins (especially bullatacin and bullatacinone); camptothecins (topotecan and irinotecan; bryostatin; calistatin; CC-1065 (including adzelesin, carzelesin, and bizele). Cryptophycins (especially cryptophycin 1 and cryptophycin 8); corticosteroids (including prednisone and prednisolone); cyproterone acetate; 5α-reductase inhibitors including finasteride and dutasteride; vorinostat, romidepsin, panobinostat, valproic acid, mocetinostat; dolastatins; aldesleukin, talc; duocarmycins (including synthetic analogs, KW-2189 and CB1-TM1); eletarobin; pancratistatin; sarcodictine; spongistatins; chlorambucil, chromafadine, chlorophosphamide, estramustine, ifosfamide, mechlorestamine, mechlorestamine oxide hydrochloride, melphalan, nobembine, fenesterine, prednimustine, trophosfamide, and nitrogen mustards such as uracil mustard. nitrosoureas such as carmustine, chlorozotocin, fotemustine, lomustine, nimustine, and ranimustine; antibiotics such as the enidine antibiotics (e.g., Eg, calicheamicins, particularly calicheamicin γΙΙ and calicheamicin ωΙΙ (Angew Chem. Intl. Ed. Engl. 1994 33:183-186); dynemicins, including dynemicin A; bisphosphonates such as clodronate; espermycin.Similarly, neocarzinostatin chromophores and related enediyne antibiotic chromophores (enediyne antibiotic chromophores), aclacinomycin, actinomycin, autramycin, azaserine, bleomycin, cactinomycin, carabicin, caminomycin, carzinophilin, chromomycin, dactinomycin, daunorubicin, detorubicin, 6-diazo-5-oxo-L-norleucine, adriamycin (doxorubicin), morpholinodoxorubicin, cyanomorpholinodoxorubicin, 2-pyrrolino-doxorubicin, deoxydoxorubicin), epirubicin, esorubicin, idarubicin, marcellomycin, mitomycins such as mitomycin C, mycophenolic acid, and nogalamycin. Anti-metabolic agents such as olivomycin, peplomycin, porfiromycin, puromycin, chelamycin, rhodrubicin, streptozocin, tubercidin, ubenimex, zinostatin, zorubicin methotrexate and 5-fluorouracil (5-FU); folic acid analogs such as denopterin, methotrexate, pteropterin, trimetrexate; purine analogs such as fludarabine, 6-mercaptopurine, thiamiprine, thioguanine. Pyrimidine analogues such as ancitabine, azacitidine, 6-azauridine, carmofur, cytarabine, dideoxyuridine, doxifuridine, enocitabine, and floxuridine; androgens such as calusterone, dromostanolone propionate, epithiostanol, mepitiosteine, and testolactone; antiadrenergics such as aminoglutethimide, mitotane, and trilosteine.Folic acid supplements such as floric acid; acegraton; aldophosphamide glycosides; aminolevulinic acid; eniluracil; amsacrine; bestravcil; bisantrene; edatraxate; defofamine; demecolcine; diaziquione; elfomitine; elliptinium acetate; epothilone; etoglucide; gallium nitrate; hydroxyurea; lentinan; lonidynin; maytansinoids such as maytansine and ansamitocin; mitoguazone; mitoxantrone; mopidamno ol; nitraelin; pentostatin; phenamet; pirarubicin; losoxantrone; podophyllic acid; 2-ethylhydrazide; procarbazine; PSK® polysaccharide complex (JHS Natural Products, Eugene, Oregon); razoxane; rhizoxin; schizofuran; spirogermanium; tenuazonic acid; triaziquione; 2,2',2''-trichlorotriethylamine; trichothecenes (especially T-2 toxin, veraculin A, roridin A, and anguidine). Urethane; vindesine; dacarbazine; mannomustine; mitobronitol; mitolactol; pipobroman; gacytosine; arabinoside ("Ara-C"); cyclophosphamide; thiotepa; taxoids, such as Taxol (paclitaxel; Bristol-Myers Squibb Oncology, Princeton, NJ), ABRAXANE® (Cremopho-Free), an albumin-engineered nanoparticle formulation of paclitaxel (American Pharmaceutical Partners, Schaumburg, IL), and TAXOTERE® (paclitaxel; Bristol-Myers Squibb Oncology, Princeton, NJ).), and TAXOTERE® (docetaxel, doxetaxel, Sanofi-Aventis), chlorambucil, GEMZAR® (gemcitabine), 6-thioguanine, mercaptopurine, methotrexate, platinum analogs such as cisplatin and carboplatin, vinblastine, etoposide (VP-16), ifosfamide, mitoxantrone, vincristine; navelbain (vinorelbine); nobandrone; teniposide; edatrexate; daunomycin; aminopterin; capecitabine (Xeloda); ibandronate; CPT-11; the topoisomerase inhibitor RFS 2000; difluoromethylornithine (DMFO); retinoids such as retinoic acid.

[0138] Chemotherapeutic agents also include: (i) antihormonal agents that act to regulate or inhibit hormone action on tumors, such as antiestrogens and selective estrogen receptor modulators (SERMs), e.g., tamoxifen (including tamoxifen citrate), raloxifene, droxifene, iodoxifene, 4-hydroxytamoxifen, trioxifene, ketoxifene, LY117018, onapristone, and fareston (toremifene citrate); (ii) aromatase inhibitors that inhibit the enzyme aromatase, which regulates estrogen production in the adrenal glands, such as 4(5)-imidazole, aminoglutethimide, MEGASE® (megstrol acetate), AROMASIN® (exemestane; Pfizer), formestany, fadrozole, Rivisol® (vorozole), Femara® (letrozole; Novartis), and Arimidex® (anastrozole; AstraZeneca); (iii) antiandrogens such as flutamide, nilutamide, bicalutamide, leuprolide, and goserelin; buserelin, tripterelin, medroxyprogesterone acetate, diethylstilbestrol, premarin, fluoxymesterone, all-trans retinoic acid, fenretinide, and tromethorphan. (iv) protein kinase inhibitors; (v) lipid kinase inhibitors; vi) antisense oligonucleotides, particularly those that inhibit the expression of genes in signal transduction pathways involved in abnormal cell proliferation, e.g., PKC-α, Ralf, and H-Ras; (vii) ribozymes such as VEGF expression inhibitors (e.g., ANGIOZYME®), HER2 expression inhibitors; (viii) vaccines, such as gene therapy vaccines, e.g., Allovectin®, Leuvectin®, VAXID®; Proleukin®, rIL-2; topoisomerase 1 inhibitors such as LURTOTECAN®; ABARELIX® rmRH; and (ix) pharmaceutically acceptable salts, acids, and derivatives of any of the foregoing.

[0139] Chemotherapeutic agents also include antibodies such as alemtuzumab (Campath), bevacizumab (AVASTIN®, Genentech), cetuximab (ERBITUX®, Imclone), panitumuzumab (VECTIBIX®, Amgen), rituximab (RITUXAN®, Genentech / Biogen Idec), pertuzumab (OMNITARG®, 2C4, Genentech), trastuzumab (HERCEPTIN®, Genentech), tositumomab (Bexxar, Corixia), and the antibody-drug conjugate gemtuzumab ozogamicin (MYLOTARG®, Wyeth). Additional humanized monoclonal antibodies with therapeutic potential as agents in combination with the compounds of the invention include: apolizumab, aselizumab, atlizumab, bapineuzumab, bivatuzumab mertansine, cantuzumab mertansine, cedelizumab, celizumab pegol, cidfusituzumab, cidtuzumab, daclizumab, eculizumab, efalizumab, epratuzumab, erulizumab, felvizumab, fontolizumab, gemtuzumab ozogamicin, inotuzumab ozogamicin, ipilimumab, labetuzumab, lintuzumab, matuzumab, mepolizumab, motavizumab, motovizumab, natalizumab, nimotuzumab, and norobizumab. Numaravizumab, ocrelizumab, omalizumab, palivizumab, pascolizumab, pecfusituzumab, pexelizumab, pexelizumab, ralivizumab, ranibizumab, reslizumab, reslizumab, reslizumab, rovelizumab, lupizumab, sibrotuzumab siplizumab, sontuzumab, tacatatuzumab tetraxetan, tadoxizumab, talizumab, tefibazumab, tocilizumab, toralizumab, tucotuzumab selmoreukin, tuxituuzumab, umavizumab, urtoxazumab, ustekinumab, visilizumab, and interleukin-12 anti-interleukin-12 (ABT-874 / J695, Wyeth Research, Abbott Laboratories), a human sequence-only full-length IgG1λ antibody engineered to recognize the p40 protein;

[0140] Chemotherapeutic agents also include "EGFR inhibitors," which refer to compounds that bind to or otherwise interact directly with EGFR and inhibit or reduce the signaling activity of EGFR, alternatively referred to as "EGFR antagonists." Examples of such agents include antibodies and small molecules that bind to EGFR.Examples of antibodies that bind to EGFR include MAb 579 (ATCC CRL HB 8506), MAb 455 (ATCC CRL HB 8507), MAb 225 (ATCC CRL 8508), MAb 528 (ATCC CRL 8509) (see U.S. Pat. No. 4,943,533, Mendelsohn et al.), and variants thereof, such as chimerized 225 (C225 or cetuximab; ERBUTIX) and reshaped human 225 (H225) (see WO 96 / 40210, Imclone Systems). Inc.); IMC-11F8, a fully human EGFR-targeting antibody (Imclone); antibodies that bind type II mutant EGFR (U.S. Pat. No. 5,212,290); humanized and chimeric antibodies that bind EGFR, such as those described in U.S. Pat. No. 5,891,996; and human antibodies that bind EGFR, such as ABX-EGF or panitumumab (see WO 98 / 50433, Abgenix / Amgen); EMD 55900 (Stragliotto et al. Eur. J. Cancer 32A:636-640 (1996); EMD7200 (matuzumab) (a humanized EGFR antibody against EGFR that competes for EGFR binding of both EGF and TGF-α (EMD / Merck); a human EGFR antibody, HuMax-EGFR (GenMab); fully human antibodies known as 1.1, E2.4, E2.5, E6.2, E6.4, E2.11, E6.3, and E7.6.3, and described in U.S. Pat. No. 6,235,883; MDX-447 (Medarex Inc); and mAb806 or humanized mAb806 (Johns et al. al., J. Biol. Chem. 279(29):30375-30384 (2004)). Anti-EGFR antibodies can be conjugated to cytotoxic agents, thereby generating immunoconjugates (see, e.g., EP 659,439 A2, Merck Patent GmbH).EGFR antagonists include those described in U.S. Patent Nos. 5,616,582, 5,457,105, 5,475,001, 5,654,307, 5,679,683, 6,084,095, 6,265,410, 6,455,534, 6,521,620, 6,596,726, 6,713,484, 5,770,599, 6,140,332, and 5, and 5,747,498, and the following PCT publications: WO98 / 14451, WO98 / 50038, WO99 / 09016, and WO99 / 24037.Specific small molecule EGFR antagonists include OSI-774 (CP-358774, erlotinib, TARCEVA® Genentech / OSI Pharmaceuticals); PD 183805 (CI 1033, 2-propenamide, N-[4-[(3-chloro-4-fluorophenyl)amino]-7-[3-(4-morpholinyl)propoxy]-6-quinazolinyl]-, dihydrochloride, Pfizer Inc.); ZD1839, gefitinib (IRESSA®) 4-(3'-chloro-4'-fluoroanilino)-7-methoxy-6-(3-morpholinopropoxy)quinazoline, AstraZeneca; ZM105180 ((6-amino-4-(3-methylphenyl-amino)-quinazoline, Zeneca); BIBX-1382 (N8-(3-chloro-4-fluoro-phenyl)-N2-(1-methyl-piperidin-4-yl)-pyrimido[5,4-d]pyrimidine-2,8-diamine, Boehringer Ingelheim; PKI-166 ((R)-4-[4-[(1-phenylethyl)amino]-1H-pyrrolo[2,3-d]pyrimidin-6-yl]-phenol); (R)-6-(4-hydroxyphenyl)-4-[(1-phenylethyl)amino]-7H-pyrrolo[2,3-d]pyrimidine; CL-387785 (N-[4-[(3-bromophenyl)amino]-6-quinazolinyl]-2-butynamide); EKB-569 (N-[4-[(3-chloro-4-fluorophenyl)amino]-3-cyano-7-ethoxy-6-quinazolinyl]-4-(dimethylamino)-2-butynamide) (Wyeth); AG1478 (Pfizer); AG1571 (SU 5271, Pfizer); and dual EGFR / HER2 tyrosine kinase inhibitors, such as lapatinib (TYKERB®, GSK572016 or N-[3-chloro-4-[(3-fluorophenyl)methoxy]phenyl]-6[5[[[2methylsulfonyl)ethyl]amino]methyl]-2-furanyl]-4-quinazolinamine).

[0141] Chemotherapeutic agents include "tyrosine kinase inhibitors," such as the EGFR-targeted drugs described in the previous paragraph; small molecule HER2 tyrosine kinase inhibitors, such as TAK165 available from Takeda; CP-724,714, an oral selective inhibitor of ErbB2 receptor tyrosine kinase (Pfizer and OSI); dual HER inhibitors, such as EKB-569 (available from Wyeth), which preferentially binds to EGFR but inhibits both HER2 and EGFR-overexpressing cells; lapatinib (GSK572016, available from Glaxo-SmithKline); oral HER2 and EGFR tyrosine kinase inhibitors; PKI-166 (available from Novartis); pan-HER inhibitors, such as canertinib (CI-1033, Pharmacia); Raf-1 inhibitors, such as ISIS, which inhibits Raf-1 signaling. antisense drug ISIS-5132 available from Pharmaceuticals; non-HER-targeted TK inhibitors such as imatinib mesylate (GLEEVEC®, available from GlaxoSmithKline); multi-targeted tyrosine kinase inhibitors such as sunitinib (SUTENT®, available from Pfizer); VEGF receptor tyrosine kinase inhibitors such as vatalanib (PTK787 / ZK222584, available from Novartis / Schering AG); MAPK extracellular regulated kinase I inhibitor CI-1040 (available from Pharmacia); quinazolines such as PD 153035, 4-(3-chloroanilino)quinazoline; pyridopyrimidines; pyrimidopyrimidines; pyrrolopyrimidines such as CGP 59326, CGP 60261, and CGP 62706; pyrazolopyrimidine, 4-(phenylamino)-7H-pyrrolo[2,3-d]pyrimidine; curcumin (diferuloylmethane, 4,5-bis(4-fluoroanilino)phthalimide); tyrphostins containing a nitrothiophene moiety; PD-0183805 (Warner-Lamber); antisense molecules (e.g., those that bind to HER-encoding nucleic acids), quinoxalines (U.S. Patent No. 5,804,396); tryphostin (U.S. Patent No. 5,804,396); ZD6474 (Astra Zeneca);PTK-787 (Novartis / Schering AG); pan-HER inhibitors, such as CI-1033 (Pfizer); Affinitac (ISIS 3521, Isis / Lilly); imatinib mesylate (GLEEVEC®); PKI 166 (Novartis); GW2016 (GlaxoSmithKline); CI-1033 (Pfizer); EKB-569 (Wyeth); semaxinib (Pfizer); ZD6474 (AstraZeneca); PTK-787 (Novartis / Schering AG); INC-1C11 (Imclone), rapamycin (sirolimus, RAPAMUNE®); or the following patent publications: U.S. Pat. No. 5,804,396, WO 1999 / 09016 (American Cyanamid), WO 1998 / 43960 (American Cyanamid), WO1997 / 38983 (Warner Lambert), WO1999 / 06378 (Warner Lambert), WO1999 / 06396 (Warner Lambert), WO1996 / 30347 (Pfizer, Inc.), WO1996 / 33978 (Zeneca), WO1996 / 3397 (Zeneca), and WO1996 / 33980 (Zeneca);

[0142] Chemotherapeutic agents include dexamethasone, interferon, colchicine, metoprine, cyclosporine, amphotericin, metronidazole, alemtuzumab, alitretinoin, allopurinol, amifostine, arsenic trioxide, asparaginase, BCG (raw), bevacizumab, bexarotene, cladribine, clofarabine, darbepoetin alfa, denileukin, dexrazoxane, epoetin alfa, erlotinib, filgrastim, histrelin acetate, ibritumomab, interferon alfa-2a, and interferon alfa- 2b, lenalidomide, levamisole, mesna, methoxsalen, nandrolone, nelarabine, nofetumomab, oprelvekin, palifermin, pamidronate, pegademase, pegaspargase, pegfilgrastim, pemetrexed disodium, plicamycin, porfimer sodium, quinacrine, rasburicase, sargramostim, temozolomide, VM-26, 6-TG, toremifene, tretinoin, ATRA, valrubicin, zoledronate, and zoledronic acid, and pharmaceutically acceptable salts thereof.

[0143] Chemotherapeutic agents include hydrocortisone, hydrocortisone acetate, cortisone acetate, tixocortol pivalate, triamcinolone acetonide, triamcinolone alcohol, mometasone, amcinonide, budesonide, desonide, fluocinonide, fluocinolone acetonide, betamethasone, betamethasone sodium phosphate, dexamethasone, dexamethasone sodium phosphate, fluocortolone, hydrocortisone-17-butyrate, and hydrocortisone-17-butyrate. betamethasone-17-valerate, aclometasone propionate, betamethasone valerate, betamethasone dipropionate, prednicarbate, clobetasone-17-butyrate, clobetasone-17-propionate, fluocortolone caproate, fluocortolone pivalate, and fluprednidene acetate; immunoselective anti-inflammatory peptides (ImSAIDs), such as phenylalanine-glutamine-glycine (FEG) and its D-form (feG) (IMULAN) BioTherapeutics, LLC; antirheumatic drugs such as azathioprine, cyclosporine (cyclosporine A), D-penicillamine, gold salts, hydroxychloroquine, leflunomide, minocycline, sulfasalazine, tumor necrosis factor alpha (TNFα) blockers such as etanercept (ENBREL®), infliximab (REMICADE®), adalimumab (HUMIRA®), cetolithumab pegol (CIMZIA®), golimumab ( SIMPONI®), interleukin 1 (IL-1) blockers, such as anakinra (KINERET®), T cell costimulation blockers, such as abatacept (ORENCIA®), interleukin 6 (IL-6) blockers, tocilizumab (ACTEMERA®); interleukin 13 (IL-13) blockers, such as lebrikizumab; interferon alpha (IFN) blockers, such as rontalizumab; beta 7 integrin blockers, such as rhuMAb Beta7; IgE pathway blockers, such as anti-M1 prime; secreted homotrimeric LTa3 and membrane-bound heterotrimeric LTa1 / β2 blockers, such as anti-lymphotoxin alpha (LTa); radioisotopes (e.g., At 211 , I 131 , I 125 , Y90 ,Re 186 ,Re 188 , Sm 153 , Bi 212 , P 32 , Pb 212 , and radioactive isotopes of Lu); various investigational agents such as thioplatin, PS-341, phenylbutyrate, ET-18-OCH3, and farnesyltransferase inhibitors (L-739749, L-744832); polyphenols such as quercetin, resveratrol, piceatannol, epigallocatechin gallate, theaflavins, flavanols, procyanidins, betulinic acid and its derivatives; autophagy inhibitors such as chloroquine; delta-9-tetrahydrocannabinol (dronabinol, MARINOL®); beta-lapachone; lapachol; colchicine; betulinic acid; acetylcamptothecin, scopolectin, and 9-aminocamptothecin; podophyllotoxin; tegafur (UFTORAL®); bexarotene (TARGRETIN®); bisphosphonates such as clodronate (e.g., BONEFOS® or OSTAC®), etidronate (DIDROCAL®), NE-58095, zoledronic acid / zoledronate (ZOMETA®), alendronate (FOSAMAX®), pamidronate (AREDIA®), tiludronate (SKELID®), or risedronate (ACTONEL®); as well as epidermal growth factor receptor (EGF-R); vaccines, such as the THERATOPE® vaccine; perifosine, COX-2 inhibitors (e.g., celecoxib or etoricoxib), proteosome inhibitors (e.g., PS341); CCI-779; tipifarnib (R11577); orafenib, ABT510; Bcl-2 inhibitors such as oblimersen sodium (GENASENSE®); pixantrone; lonafarnib (SCH 6636, SARASAR™); and pharmaceutically acceptable salts, acids, or derivatives of any of the foregoing; and combinations of two or more of the foregoing.

[0144] Chemotherapeutic agents also include nonsteroidal anti-inflammatory drugs (NSAIDs) with analgesic, antipyretic, and anti-inflammatory effects. NSAIDs include nonselective inhibitors of the enzyme cyclooxygenase. Specific examples of nonsteroidal anti-inflammatory drugs include propionic acid derivatives such as aspirin, ibuprofen, fenoprofen, ketoprofen, flurbiprofen, oxaprozin, and naproxen; acetic acid derivatives such as indomethacin, sulindac, etodolac, and diclofenac; enolic acid derivatives such as piroxicam and meloxicam; fenamic acid derivatives such as tenoxicam, droxicam, lonoxicam, isoxicam, mefenamic acid, meclofenamic acid, flufenamic acid, and tolfenamic acid; and COX-2 inhibitors such as celecoxib, etoricoxib, lumiracoxib, parecoxib, rofecoxib, and valdecoxib. Nonsteroidal anti-inflammatory drugs are indicated for the relief of symptoms of rheumatoid arthritis, osteoarthritis, inflammatory arthropathy, ankylosing spondylitis, psoriatic arthritis, Reiter's syndrome, acute gout, dysmenorrhea, metastatic bone pain, headache and migraine, postoperative pain, mild to moderate pain due to inflammation or tissue injury, fever, ileus, and renal colic.

[0145] The term "cytotoxic agent," as used herein, means a substance that inhibits or prevents the function of cells and / or causes the death or destruction of cells. Cytotoxic agents include, but are not limited to, radioisotopes (e.g., At 211 , I 131 , I 125 , Y 90 ,Re 186 ,Re 188 , Sm 153 , Bi 212 , P 32 , Pb 212, and radioactive isotopes of Lu); chemotherapeutic agents or drugs (e.g., methotrexate, adriamycin, vinca alkaloids (vincristine, vinblastine, etoposide), doxorubicin, melphalan, mitomycin C methotrexate, adriamycin, vinca alkaloids (vincristine, vinblastine, etoposide), doxorubicin, melphalan, mitomycin C, chlorambucil, daunorubicin or other mediators); growth inhibitory agents; enzymes such as nucleolytic enzymes and fragments thereof; antibiotics; toxins such as small molecule toxins or enzymatically active toxins of bacterial, fungal, plant or animal origin, including fragments and / or variants thereof; and various antitumor or anticancer agents disclosed below.

[0146] A "disease" is any condition that would benefit from treatment, including, but not limited to, chronic and acute diseases or disorders, including those pathological conditions that predispose a mammal to the disease in question. In some embodiments, the disease is cancer, e.g., colorectal cancer.

[0147] The terms "cell proliferative disorder" and "proliferative disorder" refer to disorders involving some degree of abnormal cell proliferation. In some embodiments, the cell proliferative disorder is cancer. In some embodiments, the cell proliferative disorder is a tumor.

[0148] As used herein, "tumor" refers to all neoblastic cell growth and proliferation, whether malignant or benign, and all pre-cancerous and cancerous cells and tissues. The terms "cancer," "cancerous," "cell proliferative disorder," "proliferative disorder," and "tumor" referred to herein are not mutually exclusive.

[0149] The terms "cancer" and "cancerous" refer to or describe the physiological condition in mammals that is typically characterized by uncontrolled cell growth / proliferation. Aspects of cancer include solid tumor cancers and non-solid tumor cancers. Solid tumor tumors include, but are not limited to, colorectal cancer, melanoma, breast cancer, lung cancer, head and neck cancer, bladder cancer, kidney cancer, ovarian cancer, pancreatic cancer, or prostate cancer, or metastatic forms thereof. The cancer may be an LY6G6D-positive cancer.

[0150] In some embodiments, the cancer is colorectal cancer. As used herein, the terms "colorectal cancer," "CRC," "colon cancer," or "intestinal cancer" refer to cancer originating in the large intestine, e.g., the colon or rectum. In some embodiments, the CRC is a left-sided tumor, i.e., a tumor arising in the distal colon (e.g., the distal one-third of the transverse colon, the splenic flexure, the descending colon, the sigmoid colon, or the rectum). In other embodiments, the CRC is a right-sided tumor, i.e., a tumor arising in the proximal colon (e.g., the proximal two-thirds of the transverse colon, the ascending colon, and the cecum). Right-sided tumors may be associated with decreased OS. In some embodiments, the CRC is metastatic. In some embodiments, the CRC has a microsatellite instability status of "microsatellite stable" ("MSS") or "microsatellite instability low" ("MSI-L"). In other embodiments, the CRC has a microsatellite instability status of "microsatellite instability-high" ("MSI-H"). In some embodiments, the CRC is an LY6G6D-positive (LY6G6D+) CRC.

[0151] As used herein, "microsatellite instability status" or "MSI status" refers to a characterization of microsatellite stability in a patient's tumor tissue. The patient's tumor tissue may be characterized as "microsatellite instability-high" ("MSI-H"), "microsatellite instability-low" ("MSI-L"), or "microsatellite stable" ("MSS"). MSI status can be assessed using a PCR-based approach, such as the MSI Analysis System (Promega, Madison, WI), which includes five pseudomonomorphic mononucleotide repeats (BAT-25, BAT-26, NR-21, NR-24, and MONO-27) for detecting MSI and two pentanucleotide loci (PentaC and PendaD) for confirming identity between normal and tumor samples. The base size of each microsatellite locus can be determined, for example, by gel electrophoresis, and if two or more mononucleotide loci differ in length compared to germline DNA, the tumor may be designated as MSI-H. See, e.g., Le et al. NEJM 372:2509-2520, 2015.

[0152] In some embodiments, the stage of CRC is assessed according to the American Joint Committee on Cancer (AJCC) / Union for International Cancer Control (UICC) TNM classification system of malignant tumors. In the TNM system, cancers are designated with the letters T (tumor size), N (palpable nodes), and / or M (metastasis). T1, T2, T3, and T4 describe the increase in size of the primary lesion. T1, T2, T3, and T4 may be further classified as a or b (e.g., T4a or T4b) to provide further information about the state of the cancer, e.g., local progression. N0, N1, N2, and N3 indicate progressive nodal invasion; M0 and M1 reflect the presence or absence of distant metastasis. In some embodiments, the individual's CRC is stage I, stage II, or stage III CRC, e.g., stage I, stage II, or stage III colon cancer. In some embodiments, the individual does not have stage IV CRC. In some embodiments, the individual does not have metastatic CRC. In certain embodiments, the CRC of the individuals in the reference population is stage I, stage II, stage III, or stage IV CRC, eg, stage I, stage II, stage III, or stage IV colorectal cancer.

[0153] In some embodiments, the cancer is breast cancer. Further embodiments of breast cancer include hormone receptor-positive (HR+) breast cancer, e.g., estrogen receptor-positive (ER+) breast cancer, progesterone receptor-positive (PR+) breast cancer, or ER+ / PR+ breast cancer. Other embodiments of breast cancer include HER2-positive (HER2+) breast cancer. Further embodiments of breast cancer include triple-negative breast cancer (TNBC). In some embodiments, the breast cancer is early-stage breast cancer. In some embodiments, the cancer is lung cancer. Further embodiments of lung cancer include epidermal growth factor receptor-positive (EGFR+) lung cancer. Further embodiments of lung cancer include epidermal growth factor receptor-negative (EGFR-) lung cancer. Further embodiments of lung cancer include non-small cell lung cancer, e.g., squamous cell lung cancer or non-squamous cell lung cancer. Further embodiments of lung cancer include small cell lung cancer. In some embodiments, the cancer is head and neck cancer. Further embodiments of head and neck cancer include squamous cell carcinoma of the head and neck (SCCHN). In some embodiments, the cancer is bladder cancer. Further embodiments of bladder cancer include urothelial bladder cancer (UBC), muscle-invasive bladder cancer (MIBC), or non-muscle-invasive bladder cancer (NMIBC). In some embodiments, the cancer is kidney cancer. Further embodiments of kidney cancer include renal cell carcinoma. In some embodiments, the cancer is liver cancer. Further embodiments of liver cancer include hepatocellular carcinoma. In some embodiments, the cancer is prostate cancer. Further embodiments of prostate cancer include castration-resistant prostate cancer. In some embodiments, the cancer is a metastatic solid cancer. In some embodiments, metastatic solid cancers include metastatic melanoma, breast cancer, colorectal cancer, lung cancer, head and neck cancer, bladder cancer, kidney cancer, ovarian cancer, pancreatic cancer, prostate cancer, etc. In some embodiments, the cancer is a non-solid cancer. Non-solid cancers include, but are not limited to, hematological cancers, such as B-cell lymphoma. Further embodiments of B-cell lymphomas include, for example, chronic lymphocytic leukemia (CLL), diffuse large B-cell lymphoma (DLBCL), follicular lymphoma, myelodysplastic syndrome (MDS), non-Hodgkin's lymphoma (NHL), acute lymphoblastic leukemia (ALL), multiple myeloma, acute myeloid leukemia (AML), or mycosis fungoides (MF).

[0154] "Effector functions" refer to biological activities attributable to the Fc region of an antibody and vary depending on the antibody isotype. Examples of antibody effector functions include: C1q binding and complement-dependent cytotoxicity (CDC); Fc receptor binding; antibody-dependent cell-mediated cytotoxicity (ADCC); phagocytosis; down-regulation of cell surface receptors (e.g., B cell receptors); and B cell activation.

[0155] "Complement-dependent cytotoxicity" or "CDC" refers to the lysis of target cells in the presence of complement. Activation of the classical complement pathway is initiated by the binding of the first component of the complement system (C1q) to antibodies (of the appropriate subclass). To assess complement activation, assays such as those described in Gazzano-Santoro et al., J. Immunol. Methods 202:163 (1996) can be performed.

[0156] "Antibody-dependent cell-mediated cytotoxicity" or "ADCC" refers to a form of cytotoxicity in which secreted Ig bound to Fc receptors (FcR) present on certain cytotoxic cells (e.g., natural killer (NK) cells, neutrophils, macrophages) enables these cytotoxic effector cells to specifically bind to antigen-bearing target cells and subsequently kill them with cytotoxic agents. Antibodies "arm" the cytotoxic cells and are essential for such killing. NK cells, the primary cells mediating ADCC, express only FcγRIII, whereas monocytes express FcγRI, FcγRII, and FcγRIII. FcR expression on hematopoietic cells is summarized in Table 3 on page 464 of Ravetch and Kinet. Annu. Rev. Immunol. 9:457-92, 1991. To assess ADCC activity of a molecule of interest, an in vitro ADCC assay, such as that described in U.S. Patent No. 5,500,362 or 5,821,337, can be performed. Useful effector cells for such assays include peripheral blood mononuclear cells (PBMCs) and natural killer (NK) cells. Alternatively, or additionally, ADCC activity of a molecule of interest can be assessed in an in vivo animal model, such as that disclosed in Clynes et al. Proc. Natl. Acad. Sci. USA 95:652-656, 1998.

[0157] As used herein, "complex" or "complex" refers to the association of two or more molecules that interact with each other through bonds and / or forces (e.g., van der Waals, hydrophobic, hydrophilic forces) that are not peptide bonds. In certain embodiments, the complex is a heteromultimer. The term "protein complex" or "polypeptide complex" as used herein should be understood to include complexes having non-protein entities conjugated to proteins in the protein complex (e.g., including, but not limited to, chemical molecules such as toxins or detection agents).

[0158] As used herein, "delaying progression" of a disease or disorder refers to postponing, preventing, delaying, slowing, stabilizing, and / or postponing the onset of the disease or disorder (e.g., a cell proliferative disorder, e.g., cancer). This delay can be of varying lengths of time, depending on the individual's medical history and / or treatment. As will be apparent to those skilled in the art, a sufficient or significant delay can essentially encompass prevention, in which the individual does not develop the disease. For example, in late-stage cancer, such as the onset of metastases, the onset of metastases may be delayed.

[0159] An "effective amount" of a compound, for example, an anti-LY6G6D antibody of the present invention or a composition thereof (e.g., a pharmaceutical composition), is the minimum amount required to achieve a desired therapeutic or prophylactic result, such as a measurable improvement or prevention of a particular disease (e.g., a cell proliferative disorder, e.g., cancer). The effective amount herein may vary depending on factors such as the patient's condition, age, sex, and weight, as well as the ability of the antibody to elicit a desired response in an individual. An effective amount is also an amount in which the toxic or detrimental effects of treatment outweigh the therapeutically beneficial effects. For prophylactic use, beneficial or desired results include results such as elimination or reduction of the risk, reduction in severity, or delay in the onset of disease, including biochemical, histological, and / or behavioral symptoms of the disease, its complications, and intermediate pathological phenotypes manifesting during disease development. For therapeutic use, beneficial or desired results include clinical results such as a reduction in one or more symptoms attributable to the disease, an improvement in the quality of life of a person afflicted with the disease, a reduction in the dose of other drugs required to treat the disease, an enhancement of the effectiveness of other drugs, such as targeting, a delay in disease progression, and / or an increase in survival time. In the case of cancer or tumors, an effective amount is effective in reducing the number of cancer cells; reducing tumor size; inhibiting (i.e., slowing to some extent, or preferably stopping) the infiltration of cancer cells into peripheral organs; inhibiting (i.e., slowing to some extent, or preferably stopping) tumor metastasis; inhibiting (i.e., slowing to some extent, or preferably stopping) tumor growth; and / or alleviating to some extent one or more symptoms associated with the disease. An effective amount may be administered in one or more doses. For purposes of this invention, an effective amount of a drug, compound, or pharmaceutical composition is an amount sufficient to directly or indirectly achieve prophylactic or therapeutic treatment. As understood clinically, an effective amount of a drug, compound, or pharmaceutical composition may or may not be achieved in combination with another drug, compound, or pharmaceutical composition. Thus, an "effective amount" is considered in the context of administering one or more therapeutic agents; a single agent may be considered to be administered in an effective amount if, in combination with one or more other agents, a desired result is obtained or achieved.

[0160] The term "epitope" refers to a specific site on an antigen molecule to which an antibody binds. In some embodiments, the specific site on an antigen molecule to which an antibody binds is determined by hydroxyl radical footprinting. In some embodiments, the specific site on an antigen molecule to which an antibody binds is determined crystallographically.

[0161] As used herein, a "growth inhibitory agent" refers to a compound or composition that inhibits cell growth in vitro or in vivo. In one embodiment, the growth inhibitory agent is a growth inhibitory antibody that inhibits or reduces proliferation of cells expressing the antigen to which the antibody binds. In another embodiment, the growth inhibitory agent may significantly reduce the proportion of cells in S phase. Embodiments of growth inhibitory agents include agents that block cell cycle progression (at a location other than S phase), such as agents that induce G1 arrest or M-phase arrest. Classical M-phase blockers include vincas (vincristine and vinblastine), taxanes, and topoisomerase II inhibitors (e.g., doxorubicin, epirubicin, daunorubicin, etoposide, and bleomycin). Agents that arrest G1 also induce S-phase arrest, such as DNA alkylating agents such as tamoxifen, prednisone, dacarbazine, mechlorestamine, cisplatin, methotrexate, 5-fluorouracil, and araC. Further information can be found in Mendelsohn and Israel, eds., The Molecular Basis of Cancer, Chapter 1, entitled "Cell cycle regulation, oncogenes, and antitineoplastic drugs" by Murakami et al. (WB Saunders, Philadelphia, 1995), e.g., page 13. Taxanes (paclitaxel and docetaxel) are anticancer drugs derived from the yew tree. Docetaxel (TAXOTERE®, Rhone-Poulenc Rorer), derived from the European yew, is a semisynthetic analog of paclitaxel (TAXOL®, Bristol-Myers Squibb). Paclitaxel and docetaxel promote the assembly of microtubules from tubulin dimers and stabilize microtubules by preventing depolymerization, thereby inhibiting cell mitosis.

[0162] The terms "host cell," "host cell line," and "host cell culture" are used interchangeably and refer to cells into which exogenous nucleic acid has been introduced, including the progeny of such cells. Host cells include "transformants" and "transformed cells," which include the primary transformed cell and its progeny, regardless of the number of passages. The progeny may not be completely identical in nucleic acid content to the parent cell, but may contain mutations. Mutant progeny that have the same function or biological activity as screened or selected for in the originally transformed cell are included herein.

[0163] As used herein, the term "vector" refers to a nucleic acid molecule capable of propagating another nucleic acid to which it is linked. The term includes vectors as self-replicating nucleic acid structures and vectors that integrate into the genome of a host cell into which they are introduced. Certain vectors are capable of directing the expression of nucleic acids to which they are operatively linked. Such vectors are referred to herein as "expression vectors."

[0164] An "immunoconjugate" is an antibody conjugated to one or more heterologous molecules, including but not limited to, cytopathic agents.

[0165] The term "immunomodulator" refers to a class of molecules that modify immune system responses or immune system function. Immunomodulators include, but are not limited to, PD-1 axis binding antagonists, T cell-dependent bispecific antibodies, and mRNA-based personalized cancer vaccines, as well as thalidomide (α-N-phthalimido-glutarimide) and its analogs, OTEZLA® (apremilast), REVLIMID® (lenalidomide), and ACTI-MID™ (pomalidomide), and pharmaceutically acceptable salts or acids thereof.

[0166] A "subject" or "individual" refers to a mammal. Mammals include, but are not limited to, domesticated animals (e.g., cows, sheep, cats, dogs, horses, etc.), primates (e.g., humans, non-human primates such as monkeys), rabbits, and rodents (e.g., mice, rats, etc.). In some embodiments, the subject or individual is a human.

[0167] An "isolated" protein or peptide is one that is separated from a component of its natural environment. In some embodiments, the protein or peptide is purified to greater than 95% or greater than 99% purity, as determined, for example, by electrophoresis (e.g., SDS-PAGE, isoelectric focusing (IEF), capillary electrophoresis) or chromatography (e.g., ion exchange or reverse-phase HPLC).

[0168] An "isolated" nucleic acid refers to a nucleic acid molecule that is separated from a component of its natural environment. Isolated nucleic acid includes a nucleic acid molecule that is present extrachromosomally or at a chromosomal location that is different from its natural chromosomal location than that normally contained in a cell that contains the nucleic acid molecule.

[0169] The term "PD-1 axis-binding antagonist" refers to a molecule that inhibits the interaction of a PD-1 axis binding partner with any one or more of its binding partners, so as to eliminate T cell dysfunction resulting from signaling along the PD-1 signaling axis, thereby restoring or enhancing T cell function (e.g., proliferation, cytokine production, target cell killing). As used herein, PD-1 axis-binding antagonists include PD-1 binding antagonists, PD-L1 binding antagonists, and PD-L2 binding antagonists.

[0170] The term "PD-1 binding antagonist" refers to a molecule that reduces, blocks, inhibits, impairs, or prevents signaling that occurs as a result of the interaction of PD-1 with one or more binding partners, such as PD-L1 and PD-L2. In some embodiments, a PD-1 binding antagonist is a molecule that inhibits the binding of PD-1 to one or more binding partners. In particular embodiments, a PD-1 binding antagonist inhibits the binding of PD-1 to PD-L1 and / or PD-L2. For example, PD-1 binding antagonists include anti-PD-1 antibodies, antigen-binding fragments thereof, immunoadhexins, fusion proteins, oligopeptides, and other molecules that reduce, block, inhibit, impair, or prevent signaling that results from the interaction of PD-1 with PD-L1 and / or PD-L2. In one embodiment, the PD-1 binding antagonist reduces negative costimulatory signals mediated by or through cell surface proteins expressed on T lymphocytes that mediate signaling through PD-1, so that dysfunctional T cells become less dysfunctional (e.g., enhance effector responses to antigen recognition). In some embodiments, the PD-1 binding antagonist is an anti-PD-1 antibody. In a specific embodiment, the PD-1 binding antagonist is MDX-1106 (nivolumab). In another specific embodiment, the PD-1 binding antagonist is MK-3475 (pembrolizumab). In another specific embodiment, the PD-1 binding antagonist is AMP-224. In another specific embodiment, the PD-1 binding antagonist is MED1-0680. In another specific embodiment, the PD-1 binding antagonist is PDR001. In another specific embodiment, the PD-1 binding antagonist is REGN2810. In another specific embodiment, the PD-1 binding antagonist is BGB-108.

[0171] The term "PD-L1 binding antagonist" refers to a molecule that reduces, blocks, inhibits, prevents, or interferes with signaling resulting from the interaction of PD-L1 with any one or more of its binding partners, e.g., PD-1, B7-1. In some embodiments, a PD-L1 binding antagonist is a molecule that inhibits the binding of PD-L1 to a binding partner. In particular embodiments, a PD-L1 binding antagonist inhibits the binding of PD-L1 to PD-1 and / or B7-1. In some embodiments, PD-L1 binding antagonists include anti-PD-L1 antibodies, antigen-binding fragments thereof, immunoadenosins, fusion proteins, oligopeptides, and other molecules that reduce, block, inhibit, impair, or interfere with signaling resulting from the interaction of PD-L1 with one or more binding partners, such as PD-1 or B7-1. In one embodiment, the PD-L1-binding antagonist reduces negative costimulatory signals mediated by or through cell surface proteins expressed on T lymphocytes that mediate signaling through PD-L1, so as to render dysfunctional T cells less dysfunctional (e.g., enhance effector responses to antigen recognition). In some embodiments, the PD-L1-binding antagonist is an anti-PD-L1 antibody. In yet another specific embodiment, the anti-PD-L1 antibody is MPDL3280A (atezolizumab, sold as TECENTRIQ™ with WHO National Drug Information (International Proprietary Name), Recommended INN: List 74, Vol. 29, No. 3, 2015 (see page 387)). In a specific embodiment, the anti-PD-L1 antibody is YW243.55.S70. In another specific embodiment, the anti-PD-L1 antibody is MDX-1105. In another specific embodiment, the anti-PD-L1 antibody is MSB0015718C. In yet another specific embodiment, the anti-PD-L1 antibody is MEDI4736.

[0172] The term "PD-L2 binding antagonist" refers to a molecule that reduces, blocks, inhibits, or prevents signaling that occurs as a result of the interaction of PD-L2 with any of one or more binding partners, such as PD-1. In some embodiments, a PD-L2 binding antagonist is a molecule that inhibits the binding of PD-L2 to one or more binding partners. In particular embodiments, PD-L2 binding antagonists inhibit the binding of PD-L2 to PD-1. In some embodiments, PD-L2 antagonists include anti-PD-L2 antibodies, antigen-binding fragments thereof, immunoadenosins, fusion proteins, oligopeptides, and other molecules that reduce, block, inhibit, impair, or prevent signaling that results from the interaction of PD-L2 with any of one or more binding partners, such as PD-1. In one embodiment, the PD-L2 binding antagonist reduces negative costimulatory signals mediated by or through cell surface proteins expressed on T lymphocytes that mediate signaling through PD-L2, such that dysfunctional T cells become less dysfunctional (e.g., enhance effector responses to antigen recognition). In some embodiments, the PD-L2 binding antagonist is an immunoadhexin.

[0173] The term "protein," as used herein, unless otherwise specified, refers to any native protein from any vertebrate source, including mammals such as primates (e.g., humans) and rodents (e.g., mice and rats). The term includes the "full-length," unprocessed protein, and all forms of the protein that result from processing within the cell. The term also encompasses naturally occurring variants of the protein, such as splice variants or allelic variants.

[0174] "Percent (%) amino acid sequence identity" with respect to a reference polypeptide sequence is defined as the percentage of amino acid residues in a candidate sequence that are identical to those in the reference polypeptide sequence, after aligning the sequences and introducing gaps, if necessary, to achieve the maximum percent sequence identity, without considering conservative substitutions as part of the sequence identity. Alignment for purposes of determining percent amino acid sequence identity can be achieved in a variety of ways that are within the skill of the art, for example, using known computer software such as BLAST, BLAST-2, ALIGN, or Megalign (DNASTAR) software. Those skilled in the art can determine appropriate parameters for sequence alignment, including any algorithms necessary to achieve maximum alignment over the entire length of the sequences being compared. However, for purposes of this specification, % amino acid sequence identity values ​​are generated using the sequence comparison computer program ALIGN-2. The ALIGN-2 sequence comparison computer program was created by Genentech, Inc., and the source code, along with user documentation, has been filed with the U.S. Copyright Office, Washington, DC 20559, and is hereby registered under U.S. Copyright Registration No. TXU510087. The ALIGN-2 program is publicly available from Genentech, Inc., South San Francisco, CA, but can also be compiled from source code. The ALIGN-2 program must be compiled for use on UNIX operating systems, including Digital UNIX V4.0D. All sequence comparison parameters are set by the ALIGN-2 program and do not change.

[0175] In situations where ALIGN-2 is used to compare amino acid sequences, the % amino acid sequence identity of a given amino acid sequence A to a given amino acid sequence B (or can also be expressed as a specific amino acid) with or against which sequence A has or contains a particular % amino acid sequence identity is calculated as follows: 100 times the fraction X / Y, where X is the number of amino acid residues in A and B scored as identical matches by the sequence alignment program ALIGN-2, and Y is the total number of amino acid residues in B. It will be understood that if the length of amino acid sequence A is not equal to the length of amino acid sequence B, the % amino acid sequence identity of A to B will not be equal to the % amino acid sequence identity of B to A. Unless otherwise specified, all % amino acid sequence identity values ​​used herein are obtained as described in the immediately preceding paragraph using the ALIGN-2 computer program.

[0176] The term "pharmaceutical formulation" refers to a formulation that is in a form that allows the biological activity of the active ingredient contained therein to be effective and that does not contain additional ingredients that have unacceptable toxicity to the subject to whom the formulation will be administered.

[0177] A "pharmaceutically acceptable carrier" refers to an ingredient in a pharmaceutical formulation, other than an active ingredient, that is non-toxic to a subject. Pharmaceutically acceptable carriers include, but are not limited to, buffers, excipients, stabilizers, or preservatives.

[0178] "Radiation therapy" refers to the use of directed gamma or beta radiation to induce sufficient damage to cells to limit their ability to function normally or to destroy them completely. It will be appreciated that there are many methods known in the art for determining the dosage and duration of treatment. A typical treatment is a single dose, with a typical dosage being 10 to 200 units (grays) per day.

[0179] As used herein, "treatment" (and grammatical variations thereof, such as "treatment" or "therapeutic") refers to clinical intervention in an attempt to alter the natural course of the individual being treated, and can be performed prophylactically or during the course of clinical pathology. Desirable effects of treatment include, but are not limited to, preventing the onset or recurrence of disease, alleviating symptoms, reducing the direct or indirect pathological effects of disease, preventing metastasis, slowing the rate of disease progression, ameliorating or palliating the disease state, and achieving remission or improving prognosis. In some embodiments, antibodies of the invention (e.g., anti-LY6G6D antibodies of the invention) are used to delay the onset of disease or to slow the progression of disease.

[0180] "Reduce" or "inhibit" refers to the ability to cause an overall decrease, e.g., a 20% or greater decrease, a 50% or greater decrease, or a 75%, 85%, 90%, 95% or greater decrease. In certain embodiments, reduction or inhibition can refer to antibody effector functions mediated by the antibody Fc region, such effector functions specifically including complement-dependent cytotoxicity (CDC), antibody-dependent cellular cytotoxicity (ADCC), and antibody-dependent cellular phagocytosis (ADCP).

[0181] According to the present invention, the term "vaccine" refers to a pharmaceutical preparation (pharmaceutical composition) or product that, upon administration, induces an immune response, particularly a cellular immune response, to recognize and attack pathogens or diseased cells, such as cancer cells. Vaccines may be used for the prevention or treatment of diseases. The vaccine may be a cancer vaccine. As used herein, a "cancer vaccine" is a composition that stimulates a subject's immune response against cancer. Cancer vaccines typically consist of a source of cancer-associated substances or cells (antigens), either autologous (autologous) or allogeneic (allogeneic) to the subject, administered to the subject along with other components (e.g., adjuvants) to further stimulate and enhance the immune response against the antigens. Cancer vaccines may stimulate the subject's immune system to produce antibodies against one or more specific antigens and / or killer T cells to attack cancer cells bearing those antigens.

[0182] The term "personalized cancer vaccine" ("PCV") refers to a cancer vaccine adapted to the needs and special circumstances of an individual cancer patient. In some embodiments, the PCV stimulates an immune response against one or more cancer-specific somatic mutations present in a patient's cancer cells, e.g., as described in PCT Pub. Nos. WO2014 / 082729 and WO2012 / 159754. The cancer-specific somatic mutations may be present in any cancer cell, e.g., tumor cell, e.g., circulating tumor cell, of the patient. In some embodiments, the cancer-specific somatic mutations are discovered using next-generation sequencing. In some embodiments, a polypeptide comprising the cancer-specific somatic mutation or a nucleic acid (e.g., RNA, e.g., in vitro transcribed RNA) encoding the polypeptide comprising the cancer-specific somatic mutation is administered to the patient to stimulate the patient's immune response.

[0183] As used herein, "administration" refers to a method of providing a subject with a dosage of a compound (e.g., an anti-LY6G6D antibody of the invention). In some embodiments, compositions utilized in the methods herein are administered intravenously. Compositions utilized in the methods herein can be administered, for example, intramuscularly, intravenously, intradermally, transdermally, intraarterially, intraperitoneally, intraperitoneally, intracranially, intraarticularly, intrathoracically, intratracheally, intranasally, intravenously, intravenously, intravaginally, intrarectally, or topically. These include intratumorally, intraperitoneally, subperitoneally, subcutaneously, subconjunctivally, intravenously, intramucosally, intraperitoneally, intraocularly, orally, topically, by inhalation, injection, infusion, continuous infusion, directly to target cells, by perfusion bath, catheter, expression, cream, or lipid composition. The method of administration can vary depending on various factors (e.g., the compound or composition being administered and the condition, disease, or severity of the disease being treated).

[0184] II. Compositions and Methods In one embodiment, the invention is based, in part, on anti-lymphocyte antigen 6 complex, locus G61 (anti-LY6G6D) antibodies. The anti-LY6G6D antibodies are multispecific (e.g., bispecific) and bind, in addition to LY6G6D or a fragment thereof, to a second biological molecule, e.g., a T cell surface antigen, e.g., cluster of differentiation 3 (CD3). The antibodies of the invention are useful, for example, for treating or delaying the progression of a cell proliferative disorder, e.g., cancer, e.g., colorectal cancer (CRC) (e.g., LY6G6D-positive CRC), or for enhancing immune function in subjects with such a disorder.

[0185] A. Exemplary Anti-LY6G6D Antibodies In one embodiment, the present invention provides an isolated antibody that binds to LY6G6D. In some embodiments, the anti-LY6G6D antibody binds to human LY6G6D polypeptide (SEQ ID NO: 75) or cynomolgus monkey (cyno) LY6G6D polypeptide (SEQ ID NO: 77). In some embodiments, the anti-LY6G6D antibody binds to an epitope comprising or within amino acids 93-104 (SEQ ID NO: 87), 94-103 (SEQ ID NO: 78), or 99-101 (SEQ ID NO: 79) of LY6G6D (e.g., human LY6G6D). In some embodiments, the anti-LY6G6D antibody binds to one, two, three, or all four of residues Arg94, Leu101, Cys102, and Asn103 of LY6G6D. In some embodiments, the anti-LY6G6D antibody binds to an epitope comprising residues Arg94, Asp95, Cys96, Tyr97, Leu98, Gly99, AsplOO, LeullOl, CysllO2 and AsnlO3 of LY6G6D. In some embodiments, the anti-LY6G6D antibody binds to an epitope comprising residues Arg94, Asp95, Cys96, Tyr97, Leu98, Gly99, AsplOO, LeullOl, CysllO2 and AsnlO3 of LY6G6D.

[0186] The LY6G6D epitope may be determined by binding of the LY6G6D-binding domain of an anti-LY6G6D antibody to a peptide fragment of the epitope. The LY6G6D epitope may be determined by alanine scanning mutagenesis. In one embodiment, a 20%, 30%, 50%, 80% or greater decrease in binding of the LY6G6D-binding domain to the mutated LY6G6D indicates that the mutated amino acid residue in the LY6G6D binding domain in the alanine scanning mutagenesis assay is the epitope residue of the LY6G6D-binding domain. Alternatively, the LY6G6D epitope may be determined by mass spectrometry. In some embodiments, the epitope is determined by crystallography (e.g., crystallography).

[0187] In some embodiments, the LY6G6D epitope may be determined by crystallographic methods by first screening a matrix of precipitates in a sitting or hanging drop vapor diffusion format with an anti-LY6G6D antibody Fab dissolved under specific conditions (e.g., 0.15 M NaCl, 25 mM Tris, pH 7.5 at 10 mg / ml) in combination with a molar excess (e.g., a 2-fold molar excess) of the LY6G6D peptide. Optimized crystals may be grown, for example, from a 1:1 mixture of a reservoir solution containing 70% v / v methylpentanediol and 0.1 M HEPES buffer at pH 7.5. The reservoir can be used as a cryoprotectant. Alternatively, crystals may be cryogenically transferred by rapid immersion in liquid nitrogen.

[0188] Diffraction data from the crystals may be collected at the beamline, and the recorded diffraction may be integrated and scaled using a program such as HKL2000.

[0189] The structure may be phased by molecular replacement (MR) using a program such as Phaser. For example, the MR search model is the Fab subunit derived from the crystal structure of the HGFA / Fab complex (PDB code: 2R0L). The LY6G6D peptide is incorporated into the structure based on the Fo-Fc map. The structure may then be refined with the programs REFMAC5 and PHENIX using a maximum likelihood objective function, anisotropic individual B-factor refinement, and TLS refinement to achieve convergence.

[0190] In some aspects, the present invention provides anti-LY6G6D antibodies having a binding domain comprising at least one, two, three, four, five, or six CDRs selected from the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3 or any of the amino acid sequences of SEQ ID NOs: 99 to 107.

[0191] In some aspects, the present invention provides anti-LY6G6D antibodies having binding domains comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4 or SEQ ID NO: 111; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5, SEQ ID NO: 112, or SEQ ID NO: 113; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3 or any of SEQ ID NOs: 99 to 107.

[0192] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3.

[0193] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 99.

[0194] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 100.

[0195] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 101.

[0196] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 102.

[0197] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 103.

[0198] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 104.

[0199] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 105.

[0200] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 106.

[0201] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 107.

[0202] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 111; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3.

[0203] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 112; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3.

[0204] In some aspects, the present invention provides an anti-LY6G6D antibody having a binding domain comprising all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 113; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3.

[0205] In some cases, an anti-LY6G6D antibody may have a VH domain comprising an amino acid sequence having at least 90% sequence identity (e.g., at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity) to SEQ ID NO: 10, or a sequence thereof, and / or a VL domain comprising an amino acid sequence having at least 90% sequence identity (e.g., at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity) to SEQ ID NO: 11, or a sequence thereof. In particular cases, an anti-LY6G6D antibody may be 20A12.QNTv12 (including one-cell and two-cell manufactured variants), or a derivative or clonal relative thereof. In some embodiments, an anti-LY6G6D antibody has a VH domain comprising the amino acid sequence of SEQ ID NO: 59 or a VL domain comprising the amino acid sequence of SEQ ID NO: 60. In some embodiments, the anti-LY6G6D antibody has a VH domain comprising the amino acid sequence of SEQ ID NO:59 or a VL domain comprising the amino acid sequence of SEQ ID NO:60.

[0206] In some embodiments, the anti-LY6G6D antibody may comprise at least one (e.g., 1, 2, 3, or 4) of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 34; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 35; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 36; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 37. In some embodiments, the anti-LY6G6D antibody may comprise at least one (e.g., 1, 2, 3, or 4) of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 38; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 39; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 40; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 41.

[0207] In some embodiments, the anti-LY6G6D antibody comprises all four of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 34; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 35; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 36; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 37; and / or comprises all four of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 38; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 39; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 40; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 41. In some embodiments, the anti-LY6G6D antibody may have a VH domain comprising the amino acid sequence of SEQ ID NO: 10 and / or a VL domain comprising the amino acid sequence of SEQ ID NO: 11.

[0208] In some embodiments, the anti-LY6G6D antibody may comprise at least one (e.g., 1, 2, 3, or 4) of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 34; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 58; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 36; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 37. In some embodiments, the anti-LY6G6D antibody may comprise at least one (e.g., 1, 2, 3, or 4) of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 38; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 61; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 40; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 41.

[0209] In some embodiments, the anti-LY6G6D antibody comprises all four of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 34; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 58; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 36; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 37, and / or comprises all four of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 38; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 61; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 40; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 41. In some embodiments, the anti-LY6G6D antibody may have a VH domain comprising the amino acid sequence of SEQ ID NO: 59 and / or a VL domain comprising the amino acid sequence of SEQ ID NO: 60.

[0210] In any of the above aspects, the anti-LY6G6D antibody may be humanized. In one embodiment, the anti-LY6G6D antibody comprises the CDRs as in any of the above embodiments, and further comprises an acceptor human framework, e.g., a human immunoglobulin framework or a human consensus framework.

[0211] In a further aspect of the invention, the anti-LY6G6D antibody according to any of the foregoing embodiments is a monoclonal antibody. In some aspects, the anti-LY6G6D antibody is a chimeric or human antibody. In one aspect, the anti-LY6G6D antibody is an antibody fragment, e.g., an Fv, Fab, Fab', scFv, diabody, or F(ab')2 fragment. In another aspect, the antibody is a full-length antibody, e.g., an intact IgG antibody (e.g., an intact IgG1 antibody), or other antibody class or isotype as defined herein.

[0212] In further aspects, anti-LY6G6D antibodies according to any of the foregoing embodiments may incorporate any of the features, either alone or in combination, as described in Sections 1-8 below.

[0213] B. Exemplary Anti-CD3 Antibodies In another aspect, the present invention provides an isolated antibody that binds to cluster of differentiation 3 (CD3) (e.g., CD3ε and / or CD3γ) and has the following six CDR sequences: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13 or SEQ ID NO: 50; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14 or SEQ ID NO: 51, a VL sequence comprising the amino acid sequence of SEQ ID NO: 21, 55, 90, or 92, a VL sequence and a VH sequence comprising the amino acid sequences of SEQ ID NOs: 21 or 55 and 20, respectively, or a VL sequence and a VH sequence comprising the amino acid sequences of SEQ ID NOs: 90 or 92 and 89, respectively. In some cases, the anti-CD3 antibody binds to a human CD3 polypeptide or a cynomolgus monkey (cyno) CD3 polypeptide. In some cases, the human CD3 polypeptide or the cynomolgus monkey CD3 polypeptide is a human CD3ε polypeptide (SEQ ID NO: 80) or a cynomolgus monkey CD3ε polypeptide (SEQ ID NO: 81), respectively. In some cases, the human CD3 polypeptide or the cynomolgus monkey CD3 polypeptide is a human CD3γ polypeptide (SEQ ID NO: 82) or a cynomolgus monkey CD3γ polypeptide (SEQ ID NO: 83), respectively. In some cases, the anti-CD3 antibody binds to an epitope within a CD3 fragment (e.g., human CD3ε) consisting of amino acids 1-26 (SEQ ID NO: 84) or 1-27 (SEQ ID NO: 85) of human CD3ε.

[0214] In some aspects, the present invention provides anti-CD3 antibodies having binding domains comprising all six of: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14.

[0215] In some aspects, the present invention provides anti-CD3 antibodies having a binding domain comprising all six of: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 50; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 51.

[0216] In some cases, the anti-CD3 antibody may have a VH domain comprising an amino acid sequence having the sequence of SEQ ID NO: 20 or 89 and a VL domain comprising an amino acid sequence having the sequence of SEQ ID NO: 21 or 90. In particular cases, the anti-CD3 antibody may be 38E4.v1 MD1, or a derivative or clonal relative thereof.

[0217] In some cases, the anti-CD3 antibody may have a VH domain comprising an amino acid sequence having the sequence of SEQ ID NO: 20 or 89 and a VL domain comprising an amino acid sequence having the sequence of SEQ ID NO: 55 or 92. In particular cases, the anti-CD3 antibody may be 38E4.v1 MD4 or a derivative or clonal relative thereof.

[0218] In some embodiments, the anti-CD3 antibody may comprise at least one (e.g., 1, 2, 3, or 4) of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 43 or SEQ ID NO: 62; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45, and / or may comprise at least one (e.g., 1, 2, 3, or 4) of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 47 or SEQ ID NO: 63; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49.

[0219] In some embodiments, the anti-CD3 antibody comprises all four of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 43; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45, and / or comprises all four of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 47; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49.

[0220] In some embodiments, the anti-CD3 antibody comprises all four of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 62; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45, and / or comprises all four of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 63; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49.

[0221] In any of the above embodiments, the anti-CD3 antibody may be humanized. In one embodiment, the anti-CD3 antibody comprises the CDRs as in any of the above embodiments and further comprises an acceptor human framework, such as a human immunoglobulin framework or a human consensus framework.

[0222] In another aspect, an anti-CD3 antibody is provided, wherein the antibody comprises a VH as in any of the preceding embodiments and a VL as in any of the preceding embodiments, and wherein one or both of the variable domain sequences comprises a post-translational modification.

[0223] In a further aspect, the present invention provides antibodies that bind to the same epitope as the anti-CD3 antibodies provided herein. For example, in certain embodiments, an antibody is provided that binds to the same epitope as an anti-CD3 antibody comprising the VH sequence of SEQ ID NO: 20 and the VL sequence of SEQ ID NO: 21, or an anti-CD3 antibody comprising the VH sequence of SEQ ID NO: 20 and the VL sequence of SEQ ID NO: 55. In certain embodiments, an antibody is provided that binds to an epitope within a CD3 fragment (e.g., human CD3ε) consisting of amino acids 1-26 (SEQ ID NO: 84) or 1-27 (SEQ ID NO: 85) of human CD3ε.

[0224] In a further aspect of the invention, the anti-CD3 antibody according to any of the preceding embodiments is a monoclonal antibody. In other embodiments, the anti-CD3 antibody is a chimeric or human antibody. In one embodiment, the anti-CD3 antibody is an antibody fragment, e.g., an Fv, Fab, Fab', scFv, diabody, or F(ab')2 fragment. In another embodiment, the antibody is a full-length antibody, e.g., an intact IgG antibody (e.g., an intact IgG1 antibody), or other antibody class or isotype as defined herein.

[0225] In further aspects, anti-CD3 antibodies according to any of the foregoing embodiments may incorporate any of the features, either alone or in combination, as described in Sections 1-8 below.

[0226] 1. Antibody affinity In certain embodiments, the antibodies provided herein have a cytotoxicity of ≦1 μM, ≦250 nM, ≦100 nM, ≦15 nM, ≦10 nM, ≦6 nM, ≦4 nM, ≦2 nM, ≦1 nM, ≦0.1 nM, ≦0.01 nM, or ≦0.001 nM (e.g., 10 -8 M or less, e.g., 10 -8 M to 10 -13 Up to M, e.g., 10 -9 M to 10 -13 Dissociation constant (K D )

[0227] In one embodiment, K Dis measured by a radiolabeled antigen binding assay (RIA). In one embodiment, an RIA is performed using a Fab version of the antibody of interest and its antigen. For example, the solution binding affinity of the Fab for the antigen is determined by measuring the binding affinity of the Fab to the antigen at the lowest concentration ( 125 I) Fab is equilibrated with labeled antigen and then measured by capturing the bound antigen on a plate coated with an anti-Fab antibody (see, e.g., Chen et al., J. Mol. Biol. 293:865-881 (1999)). To establish the conditions for the assay, MICROTITER® multiwell plates (Thermo Scientific) are coated overnight with 5 μg / ml of capture anti-Fab antibody (Cappel Labs) in 50 mM sodium carbonate (pH 9.6), then blocked with 2% (w / v) bovine serum albumin in PBS for 2-5 hours at room temperature (approximately 23°C). In a non-adsorbent plate (Nunc #269620), 100 pM or 26 pM [I]-antigen is mixed with serial dilutions of the Fab of interest (e.g., consistent with the evaluation of the anti-VEGF antibody Fab-12 in Presta et al., Cancer Res. 57:4593-4599 (1997)). The Fab of interest is then incubated overnight; however, incubation may be continued for a longer period (e.g., about 65 hours) to reach equilibrium. The mixture is then transferred to a capture plate for incubation at room temperature (e.g., 1 hour). The solution is then removed, and the plate is washed eight times with 0.1% polysorbate 20 (TWEEN-20®) in PBS. When the plates have dried, 150 μl / well of scintillant (MICROSCINT-20™; Packard) is added and the plates are counted for 10 minutes in a TOPCOUNT™ gamma counter (Packard). Concentrations of each Fab that give 20% or less of maximal binding are selected for use in competitive binding assays.

[0228] According to another embodiment, K Dis measured using a BIACORE® surface plasmon resonance assay. For example, assays using a BIACORE®-2000 or BIACORE®-3000 (BIAcore, Inc., Piscataway, NJ) are performed at 37°C using an immobilized antigen CM5 chip at approximately 10 response units (RU). In one embodiment, a carboxymethylated dextran biosensor chip (CM5, BIACORE) is activated with N-ethyl-N'-(3-dimethylaminopropyl)carbodiimide hydrochloride (EDC) and N-hydroxysuccinimide (NHS) according to instructions in the art. The antigen is diluted in 10 mM sodium acetate, pH 4.8, to 5 μg / ml (approximately 0.2 μM) before injection at a flow rate of 5 μl / min to achieve approximately 10 response units (RU) of bound protein. Following injection of the antigen, 1 M ethanolamine is injected to block unreacted groups. For kinetic measurements, two-fold serial dilutions of Fab (0.78 nM to 500 nM) are injected in PBS with 0.05% polysorbate 20 (TWEEN-20™) surfactant (PBST) at 37 °C at a flow rate of approximately 25 μl / min. The binding rate (k on , or k a ) and dissociation rate (k off The equilibrium dissociation constant (K , or Kd) is calculated by simultaneously fitting the association and dissociation sensorgrams using a simple one-to-one Langmuir binding model (BIACORE® Evaluation Software version 3.2). D ) is the ratio k off / k on See, for example, Chen et al., J. Mol. Biol. 293:865-881 (1999). When the on-rate is 10 6 M -1 s -1If the on-rate exceeds 1000 kJ / s, the on-rate can be determined using a fluorescence quenching method that measures the increase or decrease in fluorescence emission intensity (excitation = 295 nm, emission = 340 nm, 16 nm bandpass) of 20 nM antigen-antibody (Fab format) in PBS, pH 7.2, at 37°C in the presence of increasing concentrations of antigen as measured in a spectrophotometer such as a spectrophotometer equipped with stopped-flow (Aviv Instruments) or an 8000 Series SLM-AMINCO™ spectrophotometer (ThermoSpectronic) equipped with a stirred cuvette.

[0229] In some embodiments, the anti-LY6G6D antibodies provided herein have a K of between about 1 nM and about 500 nM at 37°C as measured, for example, using a BIAcore assay. D and bind human LY6G6D polypeptide with a KD of ≦1 μM, ≦250 nM, ≦100 nM, ≦40 nM, ≦30 nM, ≦15 nM, ≦10 nM, ≦6 nM, ≦4 nM, ≦2 nM, ≦1 nM, ≦0.1 nM, ≦0.01 nM, or ≦0.001 nM. In some embodiments, the anti-LY6G6D antibodies provided herein have a KD of between about 100 nM and 0.01 nM; between about 50 nM and 5 nM; between about 40 nM and 10 nM; between about 35 nM and 15 nM; or between about 30 nM and 20 nM. D binds human LY6G6D polypeptide.

[0230] In some embodiments, the anti-CD3 antibodies provided herein bind human CD3 polypeptide with a KD of between about 100 pM and about 10 nM at 37° C. as measured using a BIAcore assay. (e.g., binds to human CD3 with a KD of ≦1 μM, ≦250 nM, ≦100 nM, ≦40 nM, ≦30 nM, ≦15 nM, ≦10 nM, ≦5 nM, ≦2 nM, ≦1 nM, ≦0.1 nM, ≦0.01 nM, or ≦0.001 nM). In some embodiments, the anti-CD3 antibodies provided herein bind human CD3 polypeptide with a KD of between about 100 nM and 0.01 nM; between about 50 nM and 5 nM; between about 40 nM and 10 nM; between about 35 nM and 15 nM; or between about 30 nM and 20 nM.

[0231] 2. Antibody fragment In certain embodiments, the antibodies provided herein (e.g., anti-LY6G6D antibodies or anti-CD3 antibodies) are antibody fragments. Antibody fragments include, but are not limited to, Fab, Fab', Fab'-SH, F(ab')2, Fv, and scFv fragments, as well as other fragments described below. For a review of specific antibody fragments, see Hudson et al. Nat. Med. 9:129-134 (2003). For a reference to scFv fragments, see, e.g., Pluckthuen, in The Pharmacology of Monoclonal Antibodies, vol. 113, Rosenburg and Moore eds., (Springer-Verlag, New York), pp. 269-315 (1994); see also WO 93 / 16185; and U.S. Patent Nos. 5,571,894 and 5,587,458. See US Pat. No. 5,869,046 for a discussion of Fab and F(ab')2 fragments that comprise salvage receptor binding epitope residues and have increased in vivo half-lives.

[0232] Diabodies are antibody fragments with two antigen-binding sites that can be bivalent or bispecific. See, e.g., EP 404,097, WO 1993 / 01161, Hudson et al., Nat. Med. 9:129-134 (2003), and Hollinger et al., Proc. Natl. Acad. Sci. USA 90:6444-6448 (1993). Triabodies and tetrabodies are also described in Hudson et al., Nat. Med. 9:129-134 (2003).

[0233] A single-domain antibody is an antibody fragment that contains all or part of the heavy chain variable domain or all or part of the light chain variable domain of an antibody. In certain embodiments, a single-domain antibody is a human single-domain antibody (Domantis, Inc., Waltham, MA; see, e.g., U.S. Patent No. 6,248,516 B1).

[0234] Antibody fragments can be produced by a variety of techniques, including, but not limited to, proteolytic digestion of intact antibodies and production by recombinant host cells (e.g., E. coli or phage), as described herein.

[0235] 3. Chimeric and humanized antibodies In certain embodiments, an antibody provided herein (e.g., an anti-LY6G6D antibody or an anti-CD3 antibody) is a chimeric antibody. Certain chimeric antibodies are described, for example, in U.S. Pat. No. 4,816,567; and Morrison et al. Proc. Natl. Acad. Sci. USA, 81:6851-6855 (1984)). In one example, a chimeric antibody comprises a non-human variable region (e.g., a variable region derived from a mouse, rat, hamster, rabbit, or non-human primate such as a monkey) and a human constant region. In a further example, a chimeric antibody is a "class-switched" antibody in which the class or subclass has been changed from that of the parent antibody. Chimeric antibodies include antigen-binding fragments thereof.

[0236] In certain embodiments, a chimeric antibody is a humanized antibody. Typically, a non-human antibody is humanized to reduce immunogenicity in humans while retaining the specificity and affinity of the parent non-human antibody. Generally, a humanized antibody comprises one or more variable domains, e.g., in which the HVRs (or portions thereof) are derived from a non-human antibody and the FRs (or portions thereof) are derived from human antibody sequences. Optionally, a humanized antibody also comprises at least a portion of a human constant region. In some embodiments, some FR residues in a humanized antibody are substituted with corresponding residues from a non-human antibody (e.g., the antibody from which the HVR residues are derived), e.g., to restore or improve antibody specificity or affinity.

[0237] Humanized antibodies and methods for their production are reviewed by Almagro and Fransson, Front. Biosci. 13:1619-1633 (2008), and further described in Riechmann et al., Nature 332:323-329 (1988); Queen et al., Proc. Nat'l Acad. Sci. USA 86:10029-10033 (1989); U.S. Patent Nos. 5,821,337, 7,527,791, 6,982,321, and 7,087,409; Kashmiri et al., Methods 36:25-34 (2005) (description of specificity determining region (SDR) grafting); Padlan, Mol. Immunol. 28:489-498 (1991) (description of resurfacing); Dall'Acqua et al., Methods 36:43-60 (2005) (description of FR shuffling); and Osbourn et al., Methods 36:61-68 (2005) and Klimka et al., Br. J. Cancer, 83:252-260 (2000) (description of a "guided selection" approach to FR shuffling).

[0238] Human framework regions that can be used for humanization include, but are not limited to, framework regions selected using the "best-fit" method (see, e.g., Sims et al. J. Immunol. 151:2296 (1993)); framework regions derived from consensus sequences of human antibodies of particular subgroups of light or heavy chain variable regions (see, e.g., Carter et al. Proc. Natl. Acad. Sci. USA, 89:4285 (1992); and Presta et al. J. Immunol., 151:2623 (1993)); human mature (somatically mutated) framework regions or human germline framework regions (see, e.g., Almagro and Fransson, Front. Biosci. 13:1619-1633 (2008)); and framework regions derived from screening of FR libraries (see, e.g., Baca et al. al., J. Biol. Chem. 272:10678-10684 (1997) and Rosok et al., J. Biol. Chem. 271:22611-22618 (1996).

[0239] 4. Human antibodies In certain embodiments, an antibody provided herein (e.g., an anti-LY6G6D antibody or an anti-CD3 antibody) is a human antibody. Human antibodies can be produced using various techniques known in the art. Human antibodies are generally described in van Dijk and van de Winkel, Curr. Opin. Pharmacol. 5:368-74 (2001) and Lonberg, Curr. Opin. Immunol. 20:450-459 (2008).

[0240] Human antibodies can be prepared by administering immunogens to transgenic animals that have been engineered to produce intact human antibodies or intact antibodies with human variable regions in response to antigen challenge. Such animals typically contain all or part of human immunoglobulin loci that replace endogenous immunoglobulin loci, or that are extrachromosomally present or randomly integrated into the animal's chromosomes. In such transgenic mice, endogenous immunoglobulin loci are generally inactivated. For a review of methods for obtaining human antibodies from transgenic animals, see Lonberg, Nat. Biotech. 23:1117-1125 (2005). See also, for example, U.S. Patent Nos. 6,075,181 and 6,150,584, which describe XENOMOUSE™ technology; U.S. Patent No. 5,770,429, which describes HuMab® technology; U.S. Patent No. 7,041,870, which describes KM MOUSE® technology; and U.S. Patent Application Publication No. 2007 / 0061900, which describes VelociMouse® technology. The human variable regions from intact antibodies produced by such animals may be further modified, for example, by combining with different human constant regions.

[0241] Human antibodies can also be produced using hybridoma techniques. Human myeloma cell lines and mouse-human heteromyeloma cell lines for producing human monoclonal antibodies have been described. (See, for example, Kozbor J. Immunol., 133:3001 (1984); Brodeur et al., Monoclonal Antibody Production Techniques and Applications, pp. 51-63 (Marcel Dekker, Inc., New York, 1987); and Boerner et al., J. Immunol., 147:86 (1991)). Human antibodies produced via human B cell hybridoma technology are also described in Li et al., Proc. Natl. Acad. Sci. USA, 103:3557-3562 (2006). Additional methods include those described, for example, in U.S. Patent No. 7,189,826 (describing the production of monoclonal human IgM antibodies from hybridoma cell lines) and Ni, Xiandai Mianyixue, 26(4):265-268 (2006) (describing human-human hybridomas). Human hybridoma technology (trioma technology) is also described in Vollmers and Brandlein, Histology and Histopathology, 20(3):927-937 (2005) and Vollmers and Brandlein, Methods and Findings in Experimental and Clinical Pharmacology, 27(3):185-91 (2005).

[0242] Human antibodies may also be generated by isolating Fv clone variable domain sequences selected from a human-derived phage display library. Such variable domain sequences may then be combined with desired human constant domains. Techniques for selecting human antibodies from antibody libraries are described below.

[0243] 5. Library-derived antibodies Antibodies of the invention (e.g., anti-LY6G6D or anti-CD3 antibodies) can be isolated by screening combinatorial libraries for antibodies with the desired activity or activities. For example, various methods are known in the art for generating phage display libraries and screening such libraries for antibodies with the desired binding characteristics. Such methods are reviewed, for example, in Hoogenboom et al., Methods in Molecular Biology 178:1-37 (O'Brien et al., ed., Human Press, Totowa, NJ, 2001) and described further below: McCafferty et al., Nature 348:552-554; Clackson et al., Nature 352:624-628 (1991); Marks et al., J. Mol. Biol. 222:581-597 (1992); Marks and Bradbury, in Methods in Molecular Biology 248:161-175 (Lo, ed., Human Press, Totowa, NJ, 2003); Sidhu et al., J. Mol. Biol. 338(2):299-310 (2004); Lee et al. al.,J.Mol.Biol.340(5):1073-1093(2004);Fellouse,Proc.Natl.Acad.Sci.USA 101(34):12467-12472(2004);and Lee et al.,J.Immunol.Methods 284(1-2):119-132(2004).

[0244] In a specific phage display method, repertoires of VH and VL genes are separately cloned by polymerase chain reaction (PCR) and randomly recombined into phage libraries, which can then be screened for antigen-binding phage as described by Winter et al., Ann. Rev. Immunol., 12:433-455 (1994). Phage typically display antibody fragments as single-chain Fv (scFv) fragments or as Fab fragments. Libraries from immune sources provide high-affinity antibodies against the immunogen without the need for hybridoma construction. Alternatively, naive repertoires can be cloned (e.g., from humans) without immunization to provide a single source of antibodies against a wide range of non-self and also self antigens, as described by Griffiths et al., EMBO J., 12:725-734 (1993). Finally, naive libraries can be synthetically generated by cloning unrearranged V gene segments from stem cells, using PCR primers containing random sequences to encode highly variable CDR3 regions, and achieving rearrangement in vitro, as described in Hoogenboom and Winter, J. Mol. Biol., 227:381-388 (1992). Patent publications describing human antibody phage libraries include, for example, U.S. Patent No. 5,750,373, and U.S. Patent Publication Nos. 2005 / 0079574, 2005 / 0119455, 2005 / 0266000, 2007 / 0117126, 2007 / 0160598, 2007 / 0237764, 2007 / 0292936, and 2009 / 0002360.

[0245] Antibodies or antibody fragments isolated from a human antibody library are considered human antibodies or human antibody fragments herein.

[0246] 6. Multispecific antibodies In any of the above embodiments, the anti-LY6G6D or anti-CD3 antibodies provided herein are multispecific antibodies, e.g., bispecific antibodies. They are also antibodies (e.g., monoclonal antibodies) that have binding specificities for two different sites. In some embodiments, bispecific antibodies may bind to two different epitopes of LY6G6D. In some embodiments, one of the binding specificities is for LY6G6D and the other is for any other antigen (e.g., a second biological molecule, e.g., a T cell surface antigen, e.g., CD3). In some embodiments, one of the binding specificities is for CD3 and the other is for any other antigen (e.g., a second biological molecule, e.g., a cell surface antigen, e.g., a tumor antigen). In some embodiments, one of the binding specificities is for LY6G6D and the other is for CD3.

[0247] In some embodiments, the anti-LY6G6D antibody has (a) an LY6G6D-binding domain comprising a heavy chain polypeptide (H1) comprising a heavy chain variable (VH) domain (VH1) and a light chain polypeptide (L1) comprising a light chain variable (VL) domain (VL1), and (b) a CD3-binding domain comprising a heavy chain polypeptide (H2) comprising a heavy chain variable (VH) domain (VH2) and a light chain polypeptide (L2) comprising a light chain variable (VL2) domain.

[0248] In some aspects, an anti-CD3 antibody having a first binding domain comprising: (a) a CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) a CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (c) a CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (d) a CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13 or SEQ ID NO: 50; and (f) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14 or SEQ ID NO: 51, e.g., 38E4.v1 MD1 or 38E4.v1 MD4.

[0249] In some embodiments, the cell surface antigen may be expressed at low copy number on the target cell. For example, in some embodiments, the cell surface antigen is expressed or present at less than 35,000 copies per target cell. In some embodiments, the low copy number cell surface antigen is present at between 100 and 35,000 copies per target cell; between 100 and 30,000 copies per target cell; between 100 and 25,000 copies per target cell; between 100 and 20,000 copies per target cell; between 100 and 15,000 copies per target cell; between 100 and 10,000 copies per target cell; between 100 and 5,000 copies per target cell; between 100 and 2,000 copies per target cell; between 100 and 1,000 copies per target cell; or between 100 and 500 copies per target cell. The copy number of a cell surface antigen can be determined, for example, using a standard Scatchard plot.

[0250] For example, in some aspects, an anti-LY6G6D antibody having a binding domain comprising all six of the following may have a second binding domain that binds to CD3: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3. In some embodiments, the first binding domain that binds LY6G6D comprises at least one (e.g., 1, 2, 3, or 4) of heavy chain framework regions FR-H1, FR-H2, FR-H3, and FR-H4 comprising the sequences of SEQ ID NOs: 34-37, respectively, and / or at least one (e.g., 1, 2, 3, or 4) of light chain framework regions FR-L1, FR-L2, FR-L3, and FR-L4 comprising the sequences of SEQ ID NOs: 38-41, respectively. In other embodiments, the first binding domain that binds LY6G6D comprises at least one (e.g., 1, 2, 3, or 4) of heavy chain framework regions FR-H1, FR-H2, FR-H3, and FR-H4 comprising the sequences of SEQ ID NOs: 34, 58, 36, and 37, respectively, and / or at least one (e.g., 1, 2, 3, or 4) of light chain framework regions FR-L1, FR-L2, FR-L3, and FR-L4 comprising the sequences of 38, 61, 40, and 41. In some aspects, a first binding domain that binds LY6G6D can comprise, for example, as possessed by the anti-LY6G6D antibody 20A12.QNTv12 described herein: a) a VH1 domain comprising an amino acid sequence having the sequence of SEQ ID NO: 10 or having at least 90% sequence identity (e.g., at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity) thereto; and b) a VL1 domain comprising an amino acid sequence having the sequence of SEQ ID NO: 11 or having at least 90% sequence identity (e.g., at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity) thereto.In some embodiments, the first binding domain that binds to LY6G6D comprises (a) a VH1 domain comprising an amino acid sequence having the sequence of SEQ ID NO: 59, and (b) a VL1 domain comprising an amino acid sequence having the sequence of SEQ ID NO: 60.

[0251] In some embodiments of the anti-LY6G6D antibody having a second binding domain that binds CD3, the second domain that binds CD3 comprises at least one, two, three, four, five, or six CDRs selected from: a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13 or SEQ ID NO: 50; and f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14 or SEQ ID NO: 51.

[0252] In some embodiments, the second domain that binds to CD3 comprises all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 13; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 14.

[0253] In some embodiments, the second domain that binds to CD3 comprises a binding domain that includes all six of the following: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 15; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 16; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 17; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 12; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 50; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 51.

[0254] In some cases, the second domain that binds to CD3 comprises a VH2 domain having at least 90% sequence identity (e.g., at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity) to or having the sequence of SEQ ID NO: 20, and / or comprises a VL2 domain having at least 90% sequence identity (e.g., at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity) to or having the sequence of SEQ ID NO: 21. In particular cases, the anti-CD3 antibody can be 38E4.v1 MD1, or a derivative or clonal relative thereof.

[0255] In some cases, the second domain that binds to CD3 may have a VH2 domain comprising an amino acid sequence having at least 90% sequence identity (e.g., at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity) to or having the sequence of SEQ ID NO: 20, and / or a VL2 domain comprising an amino acid sequence having at least 90% sequence identity (e.g., at least 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity) to or having the sequence of SEQ ID NO: 55. In particular cases, the anti-CD3 antibody may be 38E4.v1 MD4 or a derivative or clonal relative thereof.

[0256] In some embodiments, the second domain that binds to CD3 may comprise at least one (e.g., 1, 2, 3, or 4) of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 43 or SEQ ID NO: 62; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45, and / or may comprise at least one (e.g., 1, 2, 3, or 4) of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 47 or SEQ ID NO: 63; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49.

[0257] In some embodiments, the anti-CD3 antibody comprises all four of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 43; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45, and / or comprises all four of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 47; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49. In some embodiments, the anti-LY6G6D antibody may have a VH2 domain comprising the amino acid sequence of SEQ ID NO: 20 and / or a VL2 domain comprising the amino acid sequence of SEQ ID NO: 21. In other embodiments, the anti-LY6G6D antibody may have a VH2 domain comprising the amino acid sequence of SEQ ID NO: 20 and / or a VL2 domain comprising the amino acid sequence of SEQ ID NO: 55.

[0258] In some embodiments, the anti-CD3 antibody comprises all four of: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 42; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 62; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 44; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 45, and / or comprises all four of: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 46; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 63; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 48; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 49.

[0259] In some embodiments, bispecific antibodies may be used to localize cytotoxic agents to cells expressing tumor antigens, such as Ly6G6D. Bispecific antibodies can be prepared as full-length antibodies or antibody fragments.

[0260] Techniques for generating multispecific antibodies include, but are not limited to, recombinant coexpression of two immunoglobulin heavy chain-light chain pairs with different specificities (see Milstein and Cuello, Nature 305:537 (1983), WO 93 / 08829, and Traunecker et al., EMBO J. 10:3655 (1991)) and "knob-in-hole" engineering (see, e.g., U.S. Pat. No. 5,731,168). "Knob-in-hole" engineering of multispecific antibodies may be utilized to generate a first arm comprising a knob and a second arm comprising a hole to which the knob of the first arm binds. The knob of a multispecific antibody of the present invention may, in one embodiment, be an anti-CD3 arm. Alternatively, the knob of a multispecific antibody of the present invention may, in one embodiment, be an anti-target / antigen arm. The hole of a multispecific antibody of the present invention may, in one embodiment, be an anti-CD3 arm. Alternatively, the hole of a multispecific antibody of the present invention may, in one embodiment, be an anti-target / antigen arm. Multispecific antibodies may also be engineered using immunoglobulin crossover (also known as Fab domain exchange or CrossMab format) technology (see, e.g., WO2009 / 080253; Schaefer et al., Proc. Natl. Acad. Sci. USA, 108:11187-11192 (2011)).Multispecific antibodies can also be produced by engineering electrostatic steering effects to create antibody Fc heterodimeric molecules (WO 2009 / 089004A1); cross-linking two or more antibodies or fragments (see, e.g., U.S. Pat. No. 4,676,980, and Brennan et al., Science, 229:81 (1985)); using leucine zippers to create bispecific antibodies (see, e.g., Kostelny et al., J. Immunol., 148(5):1547-1553 (1992)); using "diabody" technology to create bispecific antibody fragments (see, e.g., Hollinger et al., Proc. Natl. Acad. Sci. USA, 90:6444-6448 (1993)); and using single-chain Fv (sFv) dimers (see, e.g., Gruber et al., J. Immunol., 148(5):1547-1553 (1992)). al., J. Immunol., 152:5368 (1994); and methods for preparing trispecific antibodies as described, for example, in Tutt et al. J. Immunol. 147:60 (1991).

[0261] Engineered antibodies with three or more functional antigen-binding sites, including "octopus antibodies," are also included herein (see, e.g., US 2006 / 0025576A1).

[0262] The antibodies or fragments herein also include "dual acting FAbs" or "DABs" that contain an antigen binding site that binds to CD3 as well as another, different antigen (e.g., a second biological molecule) (see, e.g., US2008 / 0069820).

[0263] 7. Antibody Variants In some embodiments, amino acid sequence variants of the anti-LY6G6D antibodies and / or anti-CD3 antibodies of the invention (e.g., bispecific anti-LY6G6D antibodies of the invention that bind to LY6G6D, e.g., high affinity (e.g., 20A12.QNTv12), and a second biological molecule, e.g., CD3, TDB antibodies of the invention, or variants thereof, are contemplated. For example, it may be desirable to improve the binding affinity and / or other biological properties of the antibody. Amino acid sequence variants of antibodies can be prepared by introducing appropriate modifications into the nucleotide sequence encoding the antibody or by peptide synthesis. Such modifications include, for example, deletion, and / or insertion, and / or substitution of residues within the amino acid sequence of the antibody. Any combination of deletion, insertion, and substitution can be made to arrive at the final construct, provided that the final construct possesses the desired properties, e.g., antigen binding.

[0264] Substitution, insertion, and deletion mutants In certain embodiments, antibody variants with one or more amino acid substitutions are provided. Sites of interest for substitutional mutagenesis include CDRs and FRs. Conservative substitutions are shown in Table 1 under the heading of "Preferred Substitutions." More substantial changes are provided in Table 1 under the heading of "Exemplary Substitutions," and as further described below with respect to amino acid side chain classes. Amino acid substitutions can be introduced into an antibody of interest to obtain products screened for a desired activity, e.g., retained / improved antigen binding, reduced immunogenicity, or improved ADCC or CDC. TIFF0007743357000001.tif168170

[0265] Amino acids can be grouped according to common side chain properties. (1) Hydrophobic: Norleucine, Met, Ala, Val, Leu, Ile; (2) Neutral hydrophilic: Cys, Ser, Thr, Asn, Gln; (3) Acidic: Asp, Glu; (4) basic: His, Lys, Arg; (5) Residues that influence chain orientation: Gly, Pro; (6) Aromatic: Trp, Tyr, Phe.

[0266] Non-conservative substitution means exchanging members of one of these classes for another.

[0267] Certain substitutional variants involve substituting one or more hypervariable region residues of a parent antibody (e.g., a humanized or human antibody). Generally, the resulting variants selected for further study will have modifications (e.g., improvements) in certain biological properties (e.g., increased affinity, decreased immunogenicity) compared to the parent antibody and / or will substantially retain certain biological properties of the parent antibody. An exemplary substitutional variant is an affinity-matured antibody, which can be conveniently generated, for example, using phage-display-based affinity maturation techniques as described herein. Briefly, one or more CDR residues are mutated, and the variant antibodies displayed on phage are screened for a particular biological activity (e.g., binding affinity).

[0268] To improve antibody affinity, for example, modifications (e.g., substitutions) may be made in the CDRs. Such modifications may be made in CDR "hot spots," i.e., residues encoded by codons that undergo frequent mutation during the somatic maturation process (see, e.g., Chowdhury, Methods Mol. Biol. 207:179-196 (2008)), and / or residues that contact the antigen, and the resulting variant VH or VL are tested for binding affinity. Affinity maturation by construction and reselection from secondary libraries is described herein. (See, e.g., Hoogenboom et al. in Methods in Molecular Biology 178:1-37 (O'Brien et al., ed., Human Press, Totowa, NJ, (2001)). In some embodiments of affinity maturation, diversity is introduced into the variable genes selected for maturation by any of a variety of methods (e.g., error-prone PCR, chain shuffling, or oligonucleotide-directed mutagenesis). A secondary library is then created. The library is then screened to identify antibody variants with the desired affinity. Another method for introducing diversity involves a CDR-directed approach, in which several CDR residues (e.g., 4-6 residues at a time) are randomized. CDR residues involved in antigen binding can be specifically identified using, for example, alanine scanning mutagenesis or modeling. CDR-H3 and CDR-L3 are often targeted in particular.

[0269] In certain embodiments, substitutions, insertions, or deletions can occur within one or more CDRs as long as such modifications do not substantially reduce the ability of the antibody to bind to the antigen. For example, conservative modifications (e.g., conservative substitutions as provided herein) that do not substantially reduce binding affinity can be made in the CDRs. Such modifications can, for example, be outside the antigen-contacting residues in the CDRs. In certain embodiments of the variant VH and VL sequences provided above, each CDR is unaltered or does not contain one or more, two or more, or three or more amino acid substitutions.

[0270] A useful method for identifying antibody residues or regions that can be targeted for mutagenesis is called "alanine scanning mutagenesis," as described by Cunningham and Wells (1989) Science, 244:1081-1085. In this method, residues or groups of target residues (e.g., charged residues such as arg, asp, his, lys, and glu) are identified and substituted with neutral or negatively charged amino acids (e.g., alanine or polyalanine) to determine whether the antibody-antigen interaction is affected. Further substitutions may be introduced at amino acid positions that demonstrate functional sensitivity to the initial substitution. Alternatively or additionally, a crystal structure of the antigen-antibody complex may be used to identify contact points between the antibody and antigen. Such contact or neighboring residues may be targeted or eliminated as substitution candidates. Mutants may then be screened to determine whether they contain desired properties.

[0271] Amino acid sequence insertions include amino- and / or carboxyl-terminal fusions ranging in length from one residue to polypeptides containing 100 or more residues, as well as intrasequence insertions of single or multiple amino acid residues. An example of a terminal insertion is an antibody with an N-terminal methionyl residue. Other insertional variants of the antibody molecule include the fusion to the N- or C-terminus of the antibody to an enzyme (e.g., for ADEPT) or a polypeptide which increases the serum half-life of the antibody.

[0272] A glycosylation mutant In certain embodiments, anti-LY6G6D and / or anti-CD3 antibodies of the invention (e.g., bispecific anti-LY6G6D antibodies of the invention that preferably bind to LY6G6D, preferably with high affinity (e.g., 20A12.QNTv12), and a second biological molecule, e.g., CD3) can be altered to increase or decrease the extent to which the antibody is glycosylated. Addition or deletion of glycosylation sites to an anti-LY6G6D antibody of the invention can be conveniently accomplished by altering the amino acid sequence such that one or more glycosylation sites are created or removed.

[0273] If the antibody comprises an Fc region, the carbohydrate attached to the antibody may be varied. Native antibodies produced by mammalian cells typically contain biantennary oligosaccharides, generally attached by N-linkage to Asn297 in the CH2 domain of the Fc region. See, e.g., Wright et al., TIBTECH 15:26-32 (1997). The oligosaccharides may contain various carbohydrates, such as mannose, N-acetylglucosamine (GlcNAc), galactose, and sialic acid, as well as fucose attached to the GlcNAc "stalk" of the biantennary oligosaccharide structure. In some embodiments, modifications of the oligosaccharides in the antibodies of the invention may be performed to generate antibody variants with specific improved properties.

[0274] In one embodiment, anti-LY6G6D and / or anti-CD3 antibody variants are provided that have carbohydrate structures lacking fucose attached (directly or indirectly) to the Fc region. The amount of fucose in such antibodies can be, for example, between 1% and 80%, between 1% and 65%, between 5% and 65%, or between 20% and 40%. The amount of fucose is determined by calculating the average amount of fucose in the glycan at Asn297 relative to the sum of all glycan structures attached to Asn297 (e.g., complex, hybrid, and high-mannose structures) as measured by MALDI-TOF mass spectrometry, e.g., as described in WO 2008 / 077546. Asn297 refers to the asparagine residue located at approximately position 297 of the Fc region (EU numbering of Fc region residues); however, Asn297 may also be located upstream or downstream of position 297, i.e., approximately ±3 amino acids between positions 294 and 300, due to minor antibody sequence variations. Such fucosylation variants may have improved ADCC function. See, e.g., U.S. Patent Application Publication Nos. 2003 / 0157108 (Presta, L.); 2004 / 0093621 (Kyowa Hakko Kogyo Co., Ltd.).Examples of publications relating to "defucosylated" or "fucose-deficient" antibody variants include: US 2003 / 0157108; WO 2000 / 61739; WO 2001 / 29246; US 2003 / 0115614; US 2002 / 0164328; US 2004 / 0093621; US ​​2004 / 0132140; US 2004 / 0110704; US 2004 / 0110282; US 2004 / 0109865; WO 2003 / 085119; WO 2003 / 084570; WO 2005 / 035586; 2005 / 035778; WO2005 / 053742; WO2002 / 031140; Okazaki et al. J. Mol. Biol. 336:1239-1249 (2004); Yamane-Ohnuki et al. Biotech. Bioeng. 87:614 (2004). Examples of cell lines capable of producing defucosylated antibodies include Lec13 CHO cells deficient in protein fucosylation (Ripka et al. Arch. Biochem. Biophys. 249:533-545 (1986); US Pat. Appl. No. US 2003 / 0157108 A1, Presta, L; and WO2004 / 056312 A1, Adams et al., especially at Example 11), and knockout cell lines, such as alpha-1,6-fucosyltransferase gene,FUT8,knockout CHO cells(see,eg,Yamane-Ohnuki et al.Biotech.Bioeng.87:614(2004);Kanda,Y.et al.,Biotechnol.Bioeng.,94(4):680-688(2006);and WO2003 / 085107).

[0275] Anti-LY6G6D antibody and anti-CD3 antibody variants further provide bisected oligosaccharides, e.g., biantennary oligosaccharides attached to the Fc region of the antibody are bisected by GlcNAc. Such antibody variants may have reduced fucosylation and / or improved ADCC function. Examples of such antibody variants are described, for example, in WO 2003 / 011878 (Jean-Mairet et al.); U.S. Pat. No. 6,602,684 (Umana et al.); and U.S. 2005 / 0123546 (Umana et al.). Antibody variants with at least one galactose residue in the oligosaccharide attached to the Fc region are also provided. Such antibody variants may have improved CDC function. Such antibody variants are described, for example, in WO 1997 / 30087 (Patel et al.); WO 1998 / 58964 (Raju, S.); and WO 1999 / 22764 (Raju, S.).

[0276] b. Fc region mutants In certain embodiments, one or more amino acid modifications may be introduced into the Fc region of an anti-LY6G6D and / or anti-CD3 antibody of the invention (e.g., a bispecific anti-LY6G6D antibody of the invention (e.g., 20A12.QNTv12) that binds to LY6G6D, preferably with high affinity, and a second biological molecule, such as CD3, thereby generating a variant Fc region (see, e.g., US 2012 / 0251531). The variant Fc region may comprise a human Fc region sequence (e.g., a human IgG1, IgG2, IgG3, or IgG4 Fc region) comprising an amino acid modification (e.g., substitution) at one or more amino acid positions.

[0277] In specific embodiments, the present invention contemplates anti-LY6G6D and / or anti-CD3 antibody variants that retain some, but not all, effector functions, making them desirable candidates for applications where the antibody's in vivo half-life is important but where certain effector functions (such as complement and ADCC) are unnecessary or fulminant. In vitro and / or in vivo cytotoxicity assays can be performed to confirm reduced / absent CDC and / or ADCC activity. For example, Fc receptor (FcR) binding assays can be performed to confirm that the antibody lacks FcγR binding (and thus likely lacks ADCC activity) but retains FcRn binding ability. NK cells, the primary cells for mediating ADCC, express only FcγRIII, whereas monocytes express FcγRI, FcγRII, and FcγRIII. Expression of FcRs on hematopoietic cells is summarized in Table 3 on page 464 of Ravetch and Kinet, Annu. Rev. Immunol. 9:457-492 (1991). Non-limiting examples of in vitro assays for assessing ADCC activity of a molecule of interest are described in U.S. Pat. No. 5,500,362 (see, e.g., Hellstrom, I. et al., Proc. Nat'l Acad. Sci. USA 83:7059-7063 (1986)) and Hellstrom, I. et al., Proc. Nat'l Acad. Sci. USA 82:1499-1502 (1985); 5,821,337 (see, Bruggemann, M. et al., J. Exp. Med. 166:1351-1361 (1987)). Alternatively, non-radioactive assays may be employed (ACTI™ Non-Radioactive Cytotoxicity Assay for Flow Cytometry (CellTechnology, Inc. Mountain View, CA), and CytoTox 96® Non-Radioactive Cytotoxicity Assay (Promega, Madison, WI)). Useful effector cells for such assays include peripheral blood mononuclear cells (PBMC) and natural killer (NK) cells.Alternatively or additionally, the ADCC activity of a molecule of interest can be assessed in vivo, for example, in an animal model such as that disclosed in Clynes et al. Proc. Nat'l Acad. Sci. USA 95:652-656 (1998). A C1q binding assay may also be performed to confirm that the antibody is unable to bind C1q and lacks CDC activity. See, for example, the C1q and C3c binding ELISAs in WO 2006 / 029879 and WO 2005 / 100402. A CDC assay can be performed to assess complement activation. (See, e.g., Gazzano-Santoro et al. J. Immunol. Methods 202:163 (1996); Cragg, MS et al. Blood. 101:1045-1052 (2003); and Cragg, MS and MJ Glennie Blood. 103:2738-2743 (2004)). Determination of FcRn binding and in vivo clearance / half-life can also be performed using methods known in the art (e.g., Petkova, SB et al. Int'l. Immunol. 18(12):1759-1769 (2006)).

[0278] Antibodies with reduced effector function include those with substitutions at one or more of Fc region residues 238, 265, 269, 270, 297, 327, and 329 (U.S. Patent Nos. 6,737,056 and 8,219,149). Such Fc variants include Fc variants with substitutions at two or more of amino acid positions 265, 269, 270, 297, and 327, including the so-called "DANA" Fc variant in which residues 265 and 297 are substituted with alanine (U.S. Patent Nos. 7,332,581 and 8,219,149).

[0279] In certain embodiments, the proline at position 329 of the wild-type human Fc region in the antibody is substituted with an amino acid residue large enough to disrupt the proline sandwich within the Fc / Fcγ receptor interface formed between proline 329 of the Fc and tryptophan residues Trp87 and Trp110 of FcgRIII (Sondermann et al. Nature. 406, 267-273, 2000), or with glycine or arginine. In certain embodiments, the antibody further comprises at least one amino acid substitution. In one embodiment, the additional amino acid substitution is S228P, E233P, L234A, L235A, L235E, N297A, N297D, or P331S; in yet another embodiment, the at least one additional amino acid substitution is L234A and L235A in the human IgG1 Fc region, or S228P and L235E in the human IgG4 Fc region (see, e.g., US 2012 / 0251531); and in yet another embodiment, the at least one additional amino acid substitution is L234A and L235A and P329G in the human IgG1 Fc region.

[0280] Certain antibody variants have been described with improved or diminished binding to FcRs (see, e.g., U.S. Pat. No. 6,737,056; WO 2004 / 056312; and Shields et al., J. Biol. Chem. 9(2):6591-6604 (2001)).

[0281] In certain embodiments, the antibody variant comprises an Fc region with one or more amino acid substitutions that improve ADCC, for example, substitutions at positions 298, 333, and / or 334 (EU numbering of residues) of the Fc region.

[0282] In some embodiments, modifications are made in the Fc region that result in altered (i.e., improved or decreased) C1q binding and / or complement dependent cytotoxicity (CDC), e.g., as described in U.S. Pat. No. 6,194,551, WO 99 / 51642, Idusogie et al. J. Immunol. 164:4178-4184 (2000).

[0283] Antibodies with increased half-lives and improved binding to the neonatal Fc receptor (FcRn), which is involved in the transfer of maternal IgG to the fetus (Guyer et al., J. Immunol. 117:587 (1976) and Kim et al., J. Immunol. 24:249 (1994)), are described in US2005 / 0014934A1 (Hinton et al.). These antibodies comprise an Fc region with one or more substitutions therein that improve binding of the Fc region to FcRn. Such Fc variants include those with a substitution at one or more of the following residues in the Fc region: 238, 256, 265, 272, 286, 303, 305, 307, 311, 312, 317, 340, 356, 360, 362, 376, 378, 380, 382, ​​413, 424 or 434, e.g., a substitution at Fc region residue 434 (U.S. Patent No. 7,371,826).

[0284] For other examples of Fc region variants, see also Duncan & Winter, Nature 322:738-40 (1988); U.S. Patent No. 5,648,260; U.S. Patent No. 5,624,821; and WO 94 / 29351.

[0285] In some aspects, the anti-LY6G6D antibody and / or anti-CD3 antibody (e.g., a bispecific anti-LY6G6D antibody) comprises an Fc region comprising an N297G mutation. In some embodiments, the anti-LY6G6D antibody comprising the N297G mutation comprises an anti-LY6G6D arm comprising a first binding domain comprising the following six CDRs: (a) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; (c) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3; and an anti-CD3 arm.

[0286] In some embodiments, an anti-LY6G6D antibody comprising an N297G mutation comprises an anti-CD3 arm comprising a first binding domain comprising: (a) a VH domain comprising the amino acid sequence of SEQ ID NO: 10, (b) a VL domain comprising the amino acid sequence of SEQ ID NO: 11, and an anti-CD3 arm. In other embodiments, an anti-LY6G6D antibody comprising an N297G mutation comprises an anti-CD3 arm comprising a first binding domain comprising: (a) a VH domain comprising the amino acid sequence of SEQ ID NO: 59, (b) a VL domain comprising the amino acid sequence of SEQ ID NO: 60, and an anti-CD3 arm.

[0287] In some embodiments, an anti-LY6G6D antibody comprising an N297G mutation comprises one or more heavy chain constant domains, wherein the one or more heavy chain constant domains are selected from a first CH1 (CH11) domain, a first CH2 (CH21) domain, a first CH3 (CH31) domain, a second CH1 (CH12) domain, a second CH2 (CH22) domain, and a second CH3 (CH32) domain. In some embodiments, at least one of the one or more heavy chain constant domains is paired with another heavy chain constant domain. In some embodiments, the CH31 and CH32 domains form a protrusion or cavity, respectively, and the protrusion or cavity in the CH31 domain is positionable in the cavity or protrusion in the CH32 domain, respectively. In some embodiments, the CH31 and CH32 domains meet at the interface between the protrusion and the cavity. In some embodiments, the CH21 and CH22 domains form a protrusion or cavity, respectively, wherein the protrusion or cavity in the CH21 domain is positionable in the cavity or protrusion in the CH22 domain, respectively. In other embodiments, the CH21 and CH22 domains associate at the interface between the protrusion and cavity. In one embodiment, the anti-LY6G6D antibody is an IgG1 antibody.

[0288] In some embodiments, the anti-CD3 antibody comprising the N297G mutation comprises an anti-LY6G6D arm comprising a first binding domain as follows: (a) a VH domain comprising the amino acid sequence of SEQ ID NO: 10 or SEQ ID NO: 59, and (b) a VL domain comprising the amino acid sequence of SEQ ID NO: 11 or SEQ ID NO: 60, and an anti-CD3 arm, wherein (a) the anti-LY6G6D arm comprises T366S, L368A, Y407V, and N297G substitution mutations, and (b) the anti-CD3 arm comprises T366W and N297G substitution mutations.

[0289] In some embodiments, the anti-CD3 antibody comprising the N297G mutation comprises an anti-LY6G6D arm comprising a first binding domain as follows: (a) a VH domain comprising the amino acid sequence of SEQ ID NO: 10 or SEQ ID NO: 59, and (b) a VL domain comprising the amino acid sequence of SEQ ID NO: 11 or SEQ ID NO: 60, and an anti-CD3 arm, wherein (a) the anti-LY6G6D arm comprises T366W and N297G substitution mutations, and (b) the anti-CD3 arm comprises T366S, L368A, Y407V, and N297G substitution mutations.

[0290] c. Cysteine-engineered antibody variants In certain embodiments, it may be desirable to create cysteine ​​engineered antibodies, e.g., "thioMAbs," in which one or more residues of an antibody are substituted with cysteine ​​residues. In certain embodiments, the substituted residues are located at accessible sites on the antibody. By replacing these residues with cysteine, reactive thiol groups are thereby placed at accessible sites on the antibody, which can be used to conjugate the antibody to other moieties, such as drug moieties or linker-drug moieties, as further described herein. In certain embodiments, any one or more of the following residues may be substituted with cysteine: V205 (Kabat numbering) of the light chain; A118 (EU numbering) of the heavy chain; and S400 (EU numbering) of the heavy chain Fc region. Cysteine ​​engineered antibodies can be generated, for example, as described in U.S. Patent No. 7,521,541.

[0291] d. Antibody derivative In certain embodiments, the anti-LY6G6D antibodies of the invention provided herein (e.g., bispecific anti-LY6G6D antibodies of the invention that bind to LY6G6D, preferably with high affinity (e.g., 20A12.QNTv12)), and second biological molecules, e.g., CD3, may be modified to further contain unprotected moieties that are known in the art and readily available. Suitable moieties for derivatization of antibodies include, but are not limited to, water-soluble polymers. Non-limiting examples of water-soluble polymers include, but are not limited to, polyethylene glycol (PEG), ethylene glycol / propylene glycol copolymers, carboxymethylcellulose, dextran, polyvinyl alcohol, polyvinylpyrrolidone, poly-1,3-dioxolane, poly-1,3,6-trioxane, and ethylene / maleic anhydride copolymers. Polyamino acids (either homopolymers or random copolymers), and dextran or poly(N-vinylpyrrolidone), polyethylene glycol, propylene glycol homopolymer, propylene oxide / ethylene oxide copolymer, polyoxyethylated polyols (e.g., glycerol), polyvinyl alcohol, and mixtures thereof. Polyethylene glycol propionaldehyde may have manufacturing advantages due to its stability in water. The polymers may be of any molecular weight and may be branched or unbranched. The number of polymers attached to the antibody may vary, and when multiple polymers are attached, they may be the same or different molecules. In general, the number and / or type of polymers used for derivatization can be determined based on considerations such as, but not limited to, the specific properties or functions of the antibody to be improved and whether the antibody derivative will be used therapeutically under defined conditions.

[0292] In another embodiment, a conjugate of an antibody and a non-protective moiety is provided that can be selectively heated by exposure to radiation. In one embodiment, the non-protective moiety is a carbon nanotube (Kam et al., Proc. Natl. Acad. Sci. USA 102:11600-11605 (2005)). The radiation can be of any wavelength, including, but not limited to, wavelengths that are not harmful to normal cells but heat the non-protective moiety to temperatures that kill cells proximal to the antibody non-protective moiety.

[0293] 8. Charged Region In some embodiments, the binding domain that binds LY6G6D or CD3 comprises a VH1 comprising a charged region (CR1) and a VL1 comprising a charged region (CR2), where CR1 in VH1 forms a charge pair with CR2 in VL1. In some embodiments, CR1 comprises a basic amino acid residue, and CR2 comprises an acidic amino acid residue. In some embodiments, CR1 comprises a Q39K substitution mutation (Kabat numbering). In some embodiments, CR1 comprises a Q39K substitution mutation. In some embodiments, CR2 comprises a Q38E substitution mutation (Kabat numbering). In some embodiments, CR2 comprises a Q38E substitution mutation. In some embodiments, the second binding domain that binds CD3 comprises a VH2 comprising a charged region (CR3) and a VL2 comprising a charged region (CR4), where CR4 of VL2 forms a charge pair with CR3 of VH2. In some embodiments, CR4 comprises a basic amino acid residue, and CR3 comprises an acidic amino acid residue. In some embodiments, CR4 comprises a Q38K substitution mutation (Kabat numbering). In some embodiments, CR4 consists of a Q38K substitution mutation. In some embodiments, CR3 comprises a Q39E substitution mutation (Kabat numbering). In some embodiments, CR3 consists of a Q39E substitution mutation. In some embodiments, the VL1 domain is linked to a light chain constant domain (CL1) domain, and the VH1 is linked to a first heavy chain constant domain (CH1), wherein CL1 has a charged region (CR5) and CH1 has a charged region (CR6), wherein CR5 of CL1 forms a charge pair with CR6 of CH11. In some embodiments, CR5 comprises a basic amino acid residue, and CR6 comprises an acidic residue. In some embodiments, CR5 comprises a V133K substitution mutation (EU numbering). In some embodiments, CR5 consists of a V133K substitution mutation. In some embodiments, CR6 comprises a S183E substitution mutation (EU numbering). In some embodiments, CR6 consists of an S183E substitution mutation.

[0294] In other embodiments, the VL2 domain is linked to a CL domain (CL2), and the VH2 domain is linked to a CH1 domain (CH12), with CL2 comprising a charged region (CR7) and CH12 comprising a charged region (CR8), and CR8 of CH12 forming a charge pair with CR7 of CL2. In some embodiments, CR8 comprises a basic amino acid residue and CR7 comprises an acidic amino acid residue. In some embodiments, CR8 comprises a S183K substitution mutation (EU numbering). In some embodiments, CR8 consists of a S183K substitution mutation. In some embodiments, CR7 comprises a V133E substitution mutation (EU numbering). In some embodiments, CR7 consists of a V133E substitution mutation.

[0295] In other embodiments, the VL2 domain is linked to a CL domain (CL2) and the VH2 domain is linked to a CH1 domain (CH12), wherein (a) CL2 comprises one or more mutations at amino acid residues F116, L135, S174, S176, and / or T178 (EU numbering), and (b) CH12 comprises one or more mutations at amino acid residues A141, F170, S181, S183, and / or V185 (EU numbering). In some embodiments, CL2 comprises one or more of the following substitution mutations: F116A, L135V, S174A, S176F, and / or T178V. In some embodiments, CL2 comprises the following substitution mutations: F116A, L135V, S174A, S176F, and / or T178V. In some embodiments, CH12 comprises one or more of the following substitution mutations: A141I, F170S, S181M, S183A, and / or V185A. In some embodiments, CH12 comprises the following substitution mutations: A141I, F170S, S181M, S183A, and / or V185A.

[0296] In other embodiments, the binding domain that binds LY6G6D or CD3 comprises a VH domain (VH1) comprising a charged region (CR1) and a VL domain (VL1) comprising a charged region (CR2), where CR2 in VL1 forms a charge pair with CR1 in VH1. In some embodiments, CR2 comprises a basic amino acid residue and CR1 comprises an acidic amino acid residue. In some embodiments, CR2 comprises a Q38K substitution mutation (Kabat numbering). In some embodiments, CR2 comprises a Q38K substitution mutation. In some embodiments, CR1 comprises a Q39E substitution mutation (Kabat numbering). In some embodiments, CR1 comprises a Q39E substitution mutation. In some embodiments, the second binding domain that binds CD3 comprises a VH domain (VH2) comprising a charged region (CR3) and a VL domain (VL2) comprising a charged region (CR4), where CR3 of VH2 forms a charge pair with CR4 of VL2. In some embodiments, CR3 comprises a basic amino acid residue, and CR4 comprises an acidic amino acid residue. In some embodiments, CR3 comprises a Q39K substitution mutation (Kabat numbering). In some embodiments, CR3 consists of a Q39K substitution mutation. In some embodiments, CR4 comprises a Q38E substitution mutation (Kabat numbering). In some embodiments, CR4 consists of a Q38E substitution mutation. In some embodiments, the VL1 domain is linked to a light chain constant domain (CL1), and the VH1 domain is linked to a first heavy chain constant domain (CH11), wherein CL1 comprises a charged region (CR5), CH11 comprises a charged region (CR6), and CR6 of CH11 forms a charge pair with CR5 of CL1. In some embodiments, CR6 comprises a basic amino acid residue, and CR5 comprises an acidic amino acid residue. In some embodiments, CR6 comprises a S183K substitution mutation (EU numbering). In some embodiments, CR6 consists of a S183K substitution mutation. In some embodiments, CR5 comprises a V133E substitution mutation (EU numbering). In some embodiments, CR5 consists of a V133E substitution mutation.

[0297] In other embodiments, the VL2 domain is linked to a CL domain (CL2), and the VH2 domain is linked to a CH1 domain (CH12), wherein CL2 comprises a charged region (CR7), and CH12 comprises a charged region (CR8), and CR7 of CL2 forms a charge pair with CR8 of CH12. In some embodiments, CR7 comprises basic amino acid residues, and C R In some embodiments, CR7 comprises a V133K substitution mutation (including EU numbering). In some embodiments, CR7 comprises a V133K substitution mutation. In some embodiments, C R8 comprises a S183E substitution mutation (EU numbering). In some embodiments, CR8 consists of a S183E substitution mutation.

[0298] In other embodiments, the VL2 domain is linked to a CL domain (CL2) and the VH2 domain is linked to a CH1 domain (CH12), wherein (a) CL2 comprises one or more mutations at amino acid residues F116, L135, S174, S176, and / or T178 (EU numbering), and (b) CH12 comprises one or more mutations at amino acid residues A141, F170, S181, S183, and / or V185 (EU numbering). In some embodiments, CL2 comprises one or more of the following substitution mutations: F116A, L135V, S174A, S176F, and / or T178V. In some embodiments, CL2 comprises the following substitution mutations: F116A, L135V, S174A, S176F, and / or T178V. In some embodiments, CH12 comprises one or more of the following substitution mutations: A141I, F170S, S181M, S183A, and / or V185A. In some embodiments, CH12 comprises the following substitution mutations: A141I, F170S, S181M, S183A, and / or V185A. In some embodiments, the anti-FcRH5 antibody comprises one or more heavy chain constant domains, wherein the one or more heavy chain constant domains comprise a first CH2 domain (CH21), a first CH3 domain (CH31), a second CH2 domain (CH22), and a second CH3 domain (CH32). In some embodiments, at least one of the one or more heavy chain constant domains is paired with another heavy chain constant domain. In some embodiments, in some aspects, CH31 and CH32 each comprise a protrusion (P1) or a cavity (C1), where P1 or C1 in CH31 can be positioned at C1 or P1 in CH32, respectively. In some embodiments, CH31 and CH32 meet at the interface between P1 and C1. In some embodiments, CH21 and CH22 each comprise a (P2) or a cavity (C2), where P2 or C2 in CH21 can be positioned at C2 or P2 in CH22, respectively. In some embodiments, CH21 and CH22 meet at the interface between P2 and C2.

[0299] B. Recombinant Methods and Compositions Anti-LY6G6D antibodies of the invention (e.g., bispecific anti-LY6G6D antibodies of the invention that preferably bind to LY6G6D, preferably with high affinity (e.g., 20A12.QNTv12), and a second biological molecule, e.g., CD3) and / or anti-CD3 antibodies of the invention (e.g., 38E4v1 MD1 (MD1), 38E4v1 MD4 (MD4)) can be produced using recombinant methods and compositions, such as those described in U.S. Pat. No. 4,816,567. In one embodiment, an isolated nucleic acid encoding an anti-LY6G6D antibody described herein is provided. Such a nucleic acid may encode an amino acid sequence comprising the VL of the antibody and / or an amino acid sequence comprising the VH of the antibody (e.g., the light chain and / or the heavy chain of the antibody). In another embodiment, an isolated nucleic acid encoding an anti-CD3 antibody described herein is provided. Such a nucleic acid may encode an amino acid sequence comprising the VL of the antibody and / or an amino acid sequence comprising the VH of the antibody (e.g., the light chain and / or the heavy chain of the antibody). In further embodiments, one or more vectors (e.g., expression vectors) containing such nucleic acids are provided. In further embodiments, host cells containing such nucleic acids are provided. In one such embodiment, the host cell comprises (e.g., transformed with): (1) a vector containing a nucleic acid encoding an amino acid sequence comprising the VL of an antibody and a nucleic acid encoding an amino acid sequence comprising the VH of the antibody, or (2) a vector containing a first vector containing a nucleic acid encoding an amino acid sequence comprising the VL of an antibody and a second vector containing a nucleic acid encoding an amino acid sequence comprising the VH of the antibody. In one embodiment, the host cell is a eukaryotic cell, e.g., a Chinese hamster ovary (CHO) cell or a lymphocytic cell (e.g., a YO, NS, or Sp20 cell). In one embodiment, a method of producing an anti-LY6G6D antibody is provided, wherein the method comprises culturing a host cell containing a nucleic acid encoding the antibody under conditions suitable for expression of the antibody, as described above, and optionally recovering the antibody from the host cell (or host cell culture medium).

[0300] For recombinant production of anti-LY6G6D and / or anti-CD3 antibodies, e.g., as described above, nucleic acids encoding the antibodies are isolated and inserted into one or more vectors for further cloning and / or expression in host cells. Such nucleic acids can be readily isolated and sequenced using conventional procedures (e.g., by using oligonucleotide probes capable of specifically binding to genes encoding the antibody heavy and light chains).

[0301] 1. Two-cell Method for Producing Bispecific Antibodies In some embodiments, an antibody of the invention (e.g., an LY6G6D TDB, e.g., an LY6G6D TDB having an anti-CD3 arm and an anti-LY6G6D arm (e.g., 20A12.QNTv12)) is produced using a method involving two host cell lines. In some embodiments, a first arm of the antibody (e.g., a first arm comprising the hole region) is produced in a first host cell line, and a second arm of the antibody (e.g., a second arm comprising the knob region) is produced in a second host cell line. The antibody arms are purified from the host cell line and assembled in vitro.

[0302] 2. One-cell Method for Producing Bispecific Antibodies In some embodiments, an antibody of the invention (e.g., an LY6G6D TDB, e.g., an LY6G6D TDB having an anti-CD3 arm (e.g., 38E4.v1 MD1 or 38E4.v1 MD4) and an anti-LY6G6D arm (e.g., 20A12.QNTv12)) is produced using a method involving a single host cell line. In some embodiments, the first arm of the antibody (e.g., the first arm constituting the hole region) and the second arm of the antibody (e.g., the second arm constituting the knob region) are produced in and purified from a single host cell line. Preferably, the first arm and the second arm are expressed at comparable levels in the host cell, e.g., both are expressed at high levels in the host cell. Similar levels of expression increase the likelihood of efficient TDB production and reduce the likelihood of light chain (LC) mispairing of the TDB components. The first arm and the second arm of the antibody may each further comprise an amino acid substitution mutation that introduces a charge pair, as described in Section IIB(8) of this specification. Charge pairing can facilitate pairing of cognate heavy and light chains in each arm of the bispecific antibody and minimize mispairing.

[0303] 3.Host cells Suitable host cells for cloning or expressing antibody-encoding vectors include prokaryotic or eukaryotic cells as described herein. For example, antibodies may be produced in bacteria, particularly if glycosylation or Fc effector function is not required. For expression of antibody fragments and polypeptides in bacteria, see, e.g., U.S. Patent Nos. 5,648,237, 5,789,199, and 5,840,523. (See also Charlton, Methods in Molecular Biology, Vol. 248 (BKC Lo, ed., Humana Press, Totowa, NJ, 2003), pp. 245-254, describing expression of antibody fragments in E. coli.) Following expression, antibodies of the invention may be isolated in a soluble fraction from bacterial cell paste or further purified.

[0304] In addition to prokaryotes, eukaryotic organisms such as filamentous fungi and yeast are suitable cloning or expression hosts for antibody-encoding vectors, including bacterial and yeast strains that have been "humanized" in their glycosylation pathways to produce antibodies with partially or fully human glycosylation patterns. See Gerngross, Nat. Biotech. 22:1409-1414 (2004), and Li et al., Nat. Biotech. 24:210-215 (2006).

[0305] Suitable host cells for expressing glycosylated antibodies are also derived from multicellular organisms (invertebrates and vertebrates). Examples of invertebrate cells include plant cells, insect cells, etc. Numerous baculovirus strains have been identified and can be used in conjunction with insect cells, particularly for transfection of Spodoptera frugiperda cells.

[0306] Plant cell cultures can also be used as hosts. See, e.g., U.S. Patent Nos. 5,959,177, 6,040,498, 6,420,548, 7,125,978, and 6,417,429 (describing PLANTIBODIES™ technology for producing antibodies in transgenic plants).

[0307] Vertebrate cells can also be used as hosts, for example, mammalian cell lines adapted to growth in suspension may be useful. Other examples of useful mammalian host cell lines include the SV40 (COS-7) transformed monkey kidney CV1 line; human embryonic kidney lines (e.g., 293 or 293 cells described by Graham et al., J. Gen Virol. 36:59 (1977)); baby hamster kidney cells (BHK); mouse Sertoli cells (e.g., TM4 cells described by Mather, Biol. Reprod. 23:243-251 (1980)); monkey kidney cells (CV1); African green monkey kidney cells (VERO-76); human cervical carcinoma cells (HELA); canine kidney cells (MDCK); buffalo rat liver cells (BRL3A); human lung cells (W138); human hepatocytes (Hep G2); mouse mammary tumor (MMT 060562); TRI cells described, for example, by Mather et al., Annals NY Cad. Sci. 383:44-68 (1982)); MRC 5 cells; and FS4 cells. Other useful mammalian host cell lines include Chinese hamster ovary (CHO) cells, including DHFR-CHO cells (Urlaub et al., Proc. Natl. Acad. Sci. USA 77:4216 (1980)); and myeloma cell lines such as Y0, NS0, and Sp2 / 0. For a review of specific mammalian host cell lines suitable for antibody production, see, for example, Yazaki and Wu, Methods in Molecular Biology, Vol. 248 (BKC Lo, ed., Humana Press, Totowa, NJ), pp. 255-268 (2003).

[0308] C. Assay The anti-LY6G6D antibodies of the invention provided herein (e.g., bispecific anti-LY6G6D antibodies of the invention that bind to LY6G6D, preferably with high affinity (e.g., 20A12.QNTv12), and a second biological molecule, e.g., CD3, a TDB antibody of the invention or a variant thereof) can be identified, screened, or characterized for their physical / chemical properties and / or biological activities by various assays known in the art.

[0309] 1. Binding Assays and Other Assays In one embodiment, the anti-LY6G6D antibody or anti-CD3 antibody of the present invention is tested for its antigen-binding activity by known methods, such as ELISA or Western blot.

[0310] In another embodiment, a competition assay may be used to identify antibodies that compete with an anti-LY6G6D antibody of the invention for binding to LY6G6D, or to identify antibodies that compete with an anti-CD3 antibody of the invention for binding to CD3.

[0311] In an exemplary competitive assay, immobilized LY6G6D is incubated in a solution containing a first labeled antibody that binds to LY6G6D and a second unlabeled antibody being tested for its ability to compete with the first antibody for binding to LY6G6D. The second antibody may be present in the hybridoma supernatant. As a control, immobilized LY6G6D is incubated in a solution containing the first labeled antibody but not in a solution containing the second unlabeled antibody. After incubation under conditions that allow binding of the first antibody to LY6G6D, excess unbound antibody is removed and the amount of label associated with immobilized LY6G6D is measured. If the amount of label associated with immobilized LY6G6D is substantially reduced in the test sample compared to the control sample, this indicates that the second antibody competes with the first antibody for binding to LY6G6D. See, e.g., Harlow and Lane (1988) Antibodies: A Laboratory Manual. Ch. 14 (Cold Spring Harbor Laboratory, Cold Spring Harbor, NY). Another exemplary competitive assay involves immobilized CD3 and a first labeled antibody that binds to CD3, where the assay is performed as described above.

[0312] 2.Activity measurement In one embodiment, an assay is provided for identifying an anti-LY6G6D antibody having biological activity. Biological activity can include, for example, binding to LY6G6D (e.g., LY6G6D on the surface of a tumor) or a peptide fragment thereof, either in vivo, in vitro, or ex vivo. In the case of a multispecific (e.g., bispecific) anti-LY6G6D antibody of the present invention (e.g., a TDB antibody having one anti-LY6G6D arm, e.g., 20A12.QNTv12, and one arm recognizing a second biological molecule, e.g., a cell surface antigen, e.g., CD3), biological activity can also include, for example, effector cell activation (e.g., T cell (e.g., CD8+ and / or CD4+ T cell) activation), expansion of the effector cell population (i.e., an increase in the number of T cells), depletion of the target cell population (i.e., a decrease in the population of cells expressing LY6G6D on their cell surface), and / or target cell killing. Antibodies having such biological activity in vivo and / or in vitro are provided. In certain embodiments, antibodies of the invention are tested for such biological activities, as described in detail in the Examples herein.

[0313] Cells are then washed with RPMI medium containing 10% FBS supplemented with GlutaMax, penicillin, and streptomycin, and approximately 200,000 suspension cells are added to a 96-well U-bottom plate. Cells may be cultured in RPMI 1640 supplemented with 10% FBS at 37°C in a humidified standard cell culture incubator. For the BJAB cell killing assay, 20,000 BJAB cells can be incubated with effector cells, either huPBMCs or purified T cells, at the indicated ratio per assay in the presence of various concentrations of TDB antibody for 24 h.

[0314] D. immunoconjugate The present invention also provides immunoconjugates comprising an anti-LY6G6D antibody and / or an anti-CD3 antibody herein conjugated to one or more cytotoxic agents, such as a chemotherapeutic agent or drug, a growth inhibitory agent, a toxin (e.g., a protein toxin, an enzymatically active toxin of bacterial, fungal, plant, or animal origin, or a fragment thereof), or a radioactive isotope.

[0315] In one embodiment, the immunoconjugate is an antibody-drug conjugate (ADC) in which the antibody is conjugated to one or more drugs, including, but not limited to, maytansinoids (U.S. Pat. Nos. 5,208,020, 5,416,064, and European Patent EP 0 425 235). B1); auristatins such as monomethyl auristatin drug moieties DE and DF (MMAE and MMAF) (see U.S. Patent Nos. 5,635,483, 5,780,588, and 7,498,298); dolastatins; calicheamicin or its derivatives (see U.S. Patent Nos. 5,712,374, 5,714,586, 5,739,116, 5,767,285, 5,770,701, 5,770,710, 5,773,001, and 5,877,296; Hinman et al., Cancer Res. 53:3336-3342 (1993); Lode et al., Cancer Res. Res. 58:2925-2928 (1998); anthracyclines such as daunomycin or doxorubicin (Kratz et al., Current Med. Chem. 13:477-523 (2006); Jeffrey et al., Bioorganic & Med. Chem. Letters 16:358-362 (2006); Torgov et al., Bioconj. Chem. 16:717-721 (2005); Nagy et al., Proc. Natl. Acad. Sci. USA 97:829-834 (2000); Dubowchik et al., Bioorg. & Med. Chem. Letters 12:1529-1532 (2002); King et al. al., J. Med. Chem. 45:4336-4343 (2002); and U.S. Patent No. 6,630,579); methotrexate; taxanes such as docetaxel, paclitaxel, larotaxel, tesetaxel, and ortataxel; trichothecenes; and CC1065.

[0316] In another embodiment, the immunoconjugate comprises an anti-LY6G6D antibody and / or an anti-CD3 antibody described herein conjugated to an enzymatically active toxin or fragment thereof, including, but not limited to, diphtheria A chain, a nonbinding active fragment of diphtheria toxin, exotoxin A chain (from Pseudomonas aeruginosa), ricin A chain, abrin A chain, modeccin A chain, alpha-sarcin, Aleurites fordii proteins, diansin proteins, Phytolaca americana proteins (PAPI, PAPII, and PAP-S), momordica charantia inhibitor, curcin, crotin, sapaonaria officinalis inhibitor, gelonin, mitogenin, restrictocin, phenomycin, enomycin, and a trichothecene.

[0317] In another embodiment, the immunoconjugate comprises an anti-LY6G6D antibody and / or an anti-CD3 antibody as described herein conjugated to a radioactive atom to form a radioactive material. A variety of radioisotopes are available for the production of radioactive materials. Examples include At 211 , I 131 , I 125 , Y 90 ,Re 186 ,Re 188 , Sm 153 , Bi 212 , P 32 , Pb 212 When a radioactive substance is used for detection, it may comprise a radioactive atom, such as tc99m or I123, for scintigraphy studies, or a spin label, such as iodine-123 again, iodine-131, indium-111, fluorine-19, carbon-13, nitrogen-15, oxygen-17, gadolinium, manganese, or iron, for nuclear magnetic resonance (NMR) imaging (also called magnetic resonance imaging, MRI).

[0318] Conjugates of antibodies and cytopathic agents can be prepared using, for example, various bifunctional protein coupling agents: N-succinimidyl-3-(2-pyridyldithio)propionate (SPDP), succinimidyl-4-(N-maleimidomethyl)cyclohexane-1-carboxylate (SMCC), iminothiolane (IT), bifunctional derivatives of imidoesters (such as dimethyl adipimidate HCl), active esters (such as disuccinimidyl suberate), aldehydes (such as glutaraldehyde), bisazide compounds (such as bis(p-azidobenzoyl)hexanediamine), bis-diazonium derivatives (such as bis-(p-diazoniumbenzoyl)-ethylenediamine), diisocyanates (such as toluene 2,6-diisocyanate), and biactive fluorine compounds (such as 1,5-difluoro-2,4-dinitrobenzene). See, e.g., Vitetta et al., Science. Ricin immunotoxins can be prepared as described in [PubMed], 238:1098 (1987). Carbon-14 labeled 1-isothiocyanatobenzyl-3-methyldiethylenetriaminepentaacetic acid (MX-DTPA) is an exemplary chelating agent for conjugating radionucleotides to antibodies. See WO 94 / 11026. The linker may also be a "cleavable linker" that facilitates release of the cytotoxic drug within the cell. For example, an acid-labile linker, a peptidase-sensitive linker, a photolabile linker, a dimethyl linker, or a disulfide-containing linker (Chari et al., Cancer Res. 52:127-131 (1992); U.S. Pat. No. 5,208,020) can be used.

[0319] The immunoconjugates or ADCs described herein expressly contemplate such conjugates prepared using cross-linking reagents that are commercially available (e.g., from Pierce Biotechnology, Inc., Rockford, IL, USA), including, but not limited to, BMPS, EMCS, GMBS, HBVS, LC-SMCC, MBS, MPBH, SBAP, SIA, SIAB, SMCC, SMPB, SMPH, sulfo-EMCS, sulfo-GMBS, sulfo-KMUS, sulfo-MBS, sulfo-SIAB, sulfo-SMCC, and sulfo-SMPB, and SVSB (succinimidyl-(4-vinylsulfone)benzoate).

[0320] E. Methods and Compositions for Diagnostics and Detection In certain embodiments, any of the anti-LY6G6D and / or anti-CD3 antibodies of the invention (e.g., a bispecific anti-LY6G6D antibody of the invention that binds to LY6G6D, preferably with high affinity (e.g., 20A12.QNTv12), and a second biological molecule, e.g., CD3) are useful for detecting the presence of LY6G6D and / or CD3 in a biological sample. As used herein, the term "detection" encompasses quantitative or qualitative detection. In certain embodiments, the biological sample comprises cells or tissues.

[0321] In one embodiment, an anti-LY6G6D antibody is provided for use in a method of diagnosis or detection. In a further aspect, a method for detecting the presence of LY6G6D in a biological sample is provided. In certain embodiments, the method comprises contacting a biological sample with an anti-LY6G6D antibody described herein under conditions that allow binding of the anti-LY6G6D antibody to LY6G6D, and detecting whether a complex is formed between the anti-LY6G6D antibody and LY6G6D. Such a method may be an in vitro method or an in vivo method.

[0322] In another embodiment, an anti-CD3 antibody is provided for use in a method of diagnosis or detection. In a further aspect, a method of detecting the presence of CD3 in a biological sample is provided. In certain embodiments, the method comprises contacting the biological sample with an anti-CD3 antibody described herein under conditions that allow binding of the anti-CD3 antibody to CD3, and detecting whether a complex is formed between the anti-CD3 antibody and CD3. Such a method may be an in vitro method or an in vivo method.

[0323] In certain embodiments, labeled anti-LY6G6D and / or anti-CD3 antibodies are provided. Labels include, but are not limited to, directly detectable labels or moieties (e.g., fluorescent labels, chromogenic labels, electron-dense labels, chemiluminescent labels, radioactive labels, etc.) and indirectly detectable moieties (e.g., enzymes or ligands, etc.) via enzymatic reactions or molecular interactions. Exemplary labels include radioisotopes. 32 P, 14 C. 125 I, 3 H and 131 I, rare earth chelates or fluorophores such as fluorescein and its derivatives, rhodamine and its derivatives, dansyl, umbelliferone, luciferase, luciferases such as firefly luciferase and bacterial luciferase (U.S. Pat. No. 4,737,456), luciferin, 2,3-dihydrophthalazinediones, horseradish peroxidase (HRP), alkaline phosphatase, β-galactosidase, glucoamylase, lysozyme, saccharide oxidases such as glucose oxidase, galactose oxidase, and glucose-6-phosphate dehydrogenase, heterocyclic oxidases such as uricase and xanthine oxidase, enzymes that use hydrogen peroxide to oxidize dye precursors such as HRP, lactoperoxidase, or microperoxidase, biotin / avidin, spin labels, bacteriophage labels, stable free radicals, and conjugates thereof.

[0324] F. Pharmaceutical Preparations The anti-LY6G6D antibodies and / or anti-CD3 antibodies of the present invention (e.g., bispecific anti-LY6G6D antibodies of the present invention that bind to LY6G6D, preferably with high affinity (e.g., 20A12.QNTv12), and a second biological molecule, such as CD3) are prepared by mixing such antibodies having the desired degree of purity with one or more pharmaceutically acceptable carriers (Remington's Pharmaceutical Sciences 16th edition, Osol, A. Ed. 1980)), in the form of a lyophilized formulation or an aqueous solution. Pharmaceutically acceptable carriers are generally nontoxic to recipients at the dosages and concentrations employed, and include, but are not limited to, buffers such as phosphate, citrate, and other organic acids; antioxidants including ascorbic acid and methionine; preservatives (e.g., octadecyldimethylbenzylammonium chloride; hexamethonium chloride; benzalkonium chloride; benzethonium chloride; phenol, butyl, or benzyl alcohol; alkyl parabens such as methyl or propyl paraben; catechol; resorcinol; cyclohexanol; 3-pentanol; and m-cresol); low molecular weight (fewer than about 10 residues) polypeptides; proteins such as serum albumin, gelatin, or immunoglobulins; hydrophilic polymers such as polyvinylpyrrolidone; and amino acids such as glycine, glutamine, asparagine, histidine, arginine, or lysine. Monosaccharides, disaccharides, and other carbohydrates including glucose, mannose, or dextrins; chelating agents such as EDTA; sugars such as sucrose, mannitol, trehalose, or sorbitol; salt-forming counterions such as sodium; metal complexes (e.g., Zn-protein complexes); and / or non-ionic surfactants such as polyethylene glycol (PEG). Exemplary pharmaceutically acceptable carriers herein further include initial drug dispersants, such as a soluble neutral active hyaluronidase glycoprotein (sHASEGP), e.g., human soluble PH-20 hyaluronidase glycoprotein, e.g., rHuPH20 (HYLENEX®, Baxter International, Inc.).Certain exemplary sHASEGPs, including rHuPH20, and methods of use are described in U.S. Patent Publication Nos. 2005 / 0260186 and 2006 / 0104968. In one embodiment, a sHASEGP is combined with one or more additional glycosaminoglycanases, such as chondroitinases.

[0325] Exemplary lyophilized antibody formulations are described in U.S. Patent No. 6,267,958. Aqueous antibody formulations include those described in U.S. Patent No. 6,171,586 and WO2006 / 044908, the latter formulations comprising a histidine acetate buffer.

[0326] The formulations herein may also contain two or more active ingredients as needed for the particular indication being treated, preferably those with complementary activities that do not adversely affect each other. For example, it may be preferable to further provide an additional therapeutic agent (e.g., a chemotherapeutic agent, a cytopathic agent, a growth inhibitory agent, and / or an antihormonal agent, such as those mentioned herein above). Such active ingredients are suitably combined in amounts effective for the intended purpose.

[0327] The active ingredient may be entrapped in colloidal drug delivery systems (e.g., liposomes, albumin microspheres, microemulsions, nanoparticles, and nanocapsules) or in macroemulsions, respectively, in microcapsules prepared, for example, by co-preservation techniques or by interfacial polymerization, such as hydroxymethylcellulose or gelatin microcapsules and poly(methyl methacylate) microcapsules. Such techniques are disclosed in Remington's Pharmaceutical Sciences 16th edition, Osol, A. Ed. (1980).

[0328] Sustained-release preparations may also be prepared. Suitable examples of sustained-release preparations include semipermeable matrices of solid hydrophobic polymers containing the antibody, which matrices are in the form of, for example, shaped articles, films, or microcapsules.

[0329] Formulations to be used for in vivo administration are generally sterile. Sterilization may be readily accomplished, for example, by filtration through sterile filtration membranes.

[0330] G. Therapeutic Methods and Compositions Any of the anti-LY6G6D antibodies and / or anti-CD3 antibodies of the present invention (e.g., a bispecific anti-LY6G6D antibody of the present invention that preferably binds to LY6G6D, preferably an LY6G6D antibody with high affinity (e.g., 20A12.QNTv12), and a second biological molecule, e.g., CD3, preferably with high affinity, e.g., LY6G6D TDB having an anti-LY6G6D arm such as 20A12.QNTv12, and an anti-CD3 arm such as 38E4.v1 MD1 or 38E4.v1 MD4) can be used in therapeutic methods.

[0331] In one aspect, an anti-LY6G6D antibody is provided for use as a pharmaceutical. In a further aspect, an anti-LY6G6D antibody, e.g., an LY6G6D TDB having an anti-CD3 arm (e.g., 38E4.v1 MD1 or 38E4.v1 MD4) and an anti-LY6G6D arm (e.g., 20A12.QNTv12), is provided for use in treating or slowing the progression of a cell proliferative disorder (e.g., cancer, e.g., colorectal cancer). In some embodiments, the cancer is an LY6G6D-positive cancer (e.g., LY6G6D-positive colorectal cancer). In certain embodiments, an anti-LY6G6D antibody is provided for use in a method of treatment. In a specific embodiment, the invention provides an anti-LY6G6D antibody (e.g., an LY6G6D TDB having an anti-CD3 arm (e.g., 38E4.v1 MD1 or 38E4.v1 MD4) and an anti-LY6G6D arm (e.g., 20A12.QNTv12)) for use in a method of treating an individual with a cell proliferative disorder comprising administering to the individual an effective amount of the anti-LY6G6D antibody. In one such embodiment, the method further comprises administering to the individual an effective amount of at least one additional therapeutic agent, e.g., as described below. In a further embodiment, the invention provides an anti-LY6G6D antibody (e.g., an LY6G6D TDB having an anti-CD3 arm (e.g., 38E4.v1 MD1 or 38E4.v1 MD4) and an anti-LY6G6D arm (e.g., 20A12.QNTv12)) for use in enhancing immune function in an individual with a cell proliferative disorder. In certain embodiments, the invention provides anti-LY6G6D antibodies for use in a method of enhancing immune function in an individual with a cell proliferative disorder, comprising administering to the individual an effective amount of an anti-LY6G6D antibody (e.g., a bispecific anti-LY6G6D antibody of the invention that binds to a second biological molecule, e.g., CD3) (e.g., that activates effector cells (e.g., T cells, e.g., CD8+ and / or CD4+ T cells)), expanding (increasing) the effector cell population, depleting the target cell (e.g., cells expressing a second biological molecule recognized by the anti-LY6G6D antibody of the invention, e.g., a bispecific TDB antibody of the invention) population, and / or killing the target cell (e.g., a target tumor cell).An "individual" according to any of the above embodiments may be a human.

[0332] In a further aspect, the present invention provides use of an anti-LY6G6D antibody in the manufacture or preparation of a medicament. In one embodiment, the medicament of the present invention is for the treatment of a cell proliferative disorder (e.g., cancer, e.g., colorectal cancer). In some embodiments, the cancer is an LY6G6D-positive cancer (e.g., LY6G6D-positive colorectal cancer). In a further embodiment, the medicament of the present invention is for use in a method of treating a cell proliferative disorder, comprising administering an effective amount of the medicament to an individual having the cell proliferative disorder. In one such embodiment, the method further comprises administering to the individual an effective amount of at least one additional therapeutic agent, e.g., as described below. In a further embodiment, the medicament of the present invention is for activating effector cells (e.g., T cells, e.g., CD8+ and / or CD4+ T cells), expanding (increasing) an effector cell population, depleting a target cell population (e.g., a population of cells expressing LY6G6D), and / or killing target cells (e.g., target tumor cells) in an individual. In a further embodiment, the agent of the invention is for use in a method of enhancing immune function in an individual with a cell proliferative disorder, comprising administering to the individual an effective amount of the agent to activate effector cells (e.g., T cells, e.g., CD8+ and / or CD4+ T cells), expand (increase) an effector cell population, deplete a target cell population (e.g., a cell population expressing LY6G6D), and / or kill target cells (e.g., target tumor cells). An "individual" according to any of the foregoing embodiments may be a human.

[0333] In a further aspect, the present invention provides methods for treating a cell proliferative disorder (e.g., cancer, e.g., colorectal cancer). In some embodiments, the cancer is an LY6G6D-positive cancer (e.g., LY6G6D-positive colorectal cancer). In one embodiment, the method comprises administering to an individual having such a cell proliferative disorder an effective amount of an anti-LY6G6D antibody, e.g., LY6G6D TDB having an anti-CD3 arm (e.g., 38E4.v1 MD1 or 38E4.v1 MD4) and an anti-LY6G6D arm (e.g., 20A12.QNTv12). In one such embodiment, the method further comprises administering to the individual an effective amount of at least one additional therapeutic agent, e.g., as described below. An "individual" according to any of the foregoing embodiments may be a human.

[0334] In a further aspect, the present invention provides a method for enhancing immune function in an individual with a cell proliferative disorder. In one embodiment, the method comprises administering to the individual an effective amount of an anti-LY6G6D antibody (e.g., LY6G6D TDB having an anti-CD3 arm (e.g., 38E4.v1 MD1 or 38E4.v1 MD4) and an anti-LY6G6D arm (e.g., 20A12.QNTv12)) to activate effector cells (e.g., T cells, e.g., CD8+ and / or CD4+ T cells), expand (increase) the effector cell population, reduce the target cell population (e.g., the population of cells expressing LY6G6D), and / or kill target cells (e.g., target tumor cells). In one embodiment, the "individual" is a human.

[0335] In a further aspect, the present invention provides methods of treating adenocarcinoma (e.g., metastatic colorectal adenocarcinoma, metastatic gastric adenocarcinoma, metastatic pancreatic adenocarcinoma), which may be colorectal cancer, esophageal cancer, gastric cancer, small intestine can...

Claims

1. 1. An isolated antibody that binds to lymphocyte antigen 6 family member G6D (LY6G6D), comprising: The antibody comprises a LY6G6D binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein H1 comprises the following complementarity determining regions (CDRs): (a) a CDR-H1 comprising the amino acid sequence of SEQ ID NO: 4; (b) a CDR-H2 comprising the amino acid sequence of SEQ ID NO: 5; and (c) a CDR-H3 comprising the amino acid sequence of SEQ ID NO: 6; and L1 comprises a heavy chain variable (VH) domain (VH1) comprising the following CDRs: (d) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 1; (e) a CDR-L2 comprising the amino acid sequence of SEQ ID NO: 2; and (f) a CDR-L3 comprising the amino acid sequence of SEQ ID NO: 3; An antibody comprising a light chain variable (VL) domain (VL1) comprising:

2. The antibody of claim 1, wherein (a) VH1 comprises an amino acid sequence having at least 95% sequence identity with the amino acid sequence of SEQ ID NO: 10; (b) VL1 comprises an amino acid sequence having at least 95% sequence identity with the amino acid sequence of SEQ ID NO: 11; or (c) the antibody comprises VH1 of (a) and VL1 of (b).

3. VH1 has the following framework regions (FR): (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 34; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 35; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 36; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 37; The antibody of claim 1 or 2, comprising:

4. The antibody of claim 1 or 2, wherein VH1 comprises the amino acid sequence of SEQ ID NO:

10.

5. VH1 has the following FR: (a) FR-H1 comprising the amino acid sequence of SEQ ID NO: 34; (b) FR-H2 comprising the amino acid sequence of SEQ ID NO: 58; (c) FR-H3 comprising the amino acid sequence of SEQ ID NO: 36; and (d) FR-H4 comprising the amino acid sequence of SEQ ID NO: 37; The antibody of claim 1 or 2, comprising:

6. The antibody of claim 1 or 2, wherein VH1 comprises the amino acid sequence of SEQ ID NO:

59.

7. VL1 comprises the following FR: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 38; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 39; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 40; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 41; The antibody according to any one of claims 1 to 4, comprising:

8. The antibody of any one of claims 1 to 4, wherein VL1 comprises the amino acid sequence of SEQ ID NO:

11.

9. VL1 comprises the following FR: (a) FR-L1 comprising the amino acid sequence of SEQ ID NO: 38; (b) FR-L2 comprising the amino acid sequence of SEQ ID NO: 61; (c) FR-L3 comprising the amino acid sequence of SEQ ID NO: 40; and (d) FR-L4 comprising the amino acid sequence of SEQ ID NO: 41; The antibody of any one of claims 1, 2, 5 and 6, comprising:

10. The antibody of any one of claims 1, 2, 5, and 6, wherein VL1 comprises the amino acid sequence of SEQ ID NO:

60.

11. 1. An isolated antibody that binds to LY6G6D, The antibody comprises an LY6G6D binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein H1 comprises a VH domain (VH1) comprising the amino acid sequence of SEQ ID NO: 10, and L1 comprises a VL domain (VL1) comprising the amino acid sequence of SEQ ID NO:

11.

12. 1. An isolated antibody that binds to LY6G6D, The antibody comprises an LY6G6D binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein H1 comprises a VH domain (VH1) comprising the amino acid sequence of SEQ ID NO: 59, and L1 comprises a VL domain (VL1) comprising the amino acid sequence of SEQ ID NO:

60.

13. The antibody of claim 1 or 2, wherein VH1 comprises the amino acid sequence of SEQ ID NO:

22.

14. The antibody of any one of claims 1, 2, and 13, wherein VL1 comprises the amino acid sequence of SEQ ID NO:

23.

15. 1. An isolated antibody that binds to LY6G6D, The antibody comprises an LY6G6D binding domain comprising a heavy chain polypeptide (H1) and a light chain polypeptide (L1), wherein H1 comprises a VH domain (VH1) comprising the amino acid sequence of SEQ ID NO: 21, and L1 comprises a VL domain (VL1) comprising the amino acid sequence of SEQ ID NO:

22.

16. K between 100 pM and 10 nM at 37°C as measured using a BIAcore assay D The antibody of any one of claims 1 to 15, which binds to human LY6G6D polypeptide at

17. K ≤ 6.0 nM D The antibody of claim 16, which binds to human LY6G6D polypeptide at

18. K below 4 nM D The antibody of claim 17, which binds to human LY6G6D polypeptide at

19. K<2 nM D The antibody of claim 18, which binds to human LY6G6D polypeptide at

20. The antibody according to any one of claims 1 to 19, which is a monoclonal antibody or a humanized antibody.

21. The antibody of any one of claims 1 to 20, wherein the antibody is an antibody fragment that binds to LY6G6D.

22. Antibody fragments include Fab, Fab'-SH, Fv, scFv, and (Fab') 2 22. The antibody of claim 21, selected from the group consisting of:

23. The antibody of any one of claims 1 to 20, wherein the antibody is a full-length antibody.

24. The antibody according to any one of claims 1 to 20 and 23, wherein the antibody is an IgG antibody.

25. The antibody of any one of claims 1 to 24, wherein the antibody is a monospecific antibody.

26. The antibody of any one of claims 1 to 24, wherein the antibody is a multispecific antibody.

27. 27. The antibody of claim 26, wherein the antibody is a bispecific antibody.

28. 28. The antibody of claim 27, wherein the bispecific antibody comprises a binding domain that binds to cluster of differentiation 3 (CD3).

29. An antibody described in any one of claims 1 to 28, having a clearance after intravenous injection of between 10 ml / kg / day and 35 ml / kg / day.

30. One or more isolated nucleic acids encoding the antibody of any one of claims 1 to 29.

31. 31. One or more vectors comprising one or more isolated nucleic acids of claim 30.

32. 32. One or more host cells comprising one or more vectors of claim 31.

33. 33. The one or more host cells of claim 32, wherein the one or more host cells are mammalian host cells.

34. 34. The one or more host cells of claim 33, wherein the one or more mammalian host cells are one or more Chinese hamster ovary (CHO) host cells.

35. 33. The one or more host cells of claim 32, wherein the one or more host cells are one or more prokaryotic host cells.

36. 36. The one or more host cells of claim 35, wherein the one or more prokaryotic host cells are one or more E. coli host cells.

37. A method for producing an antibody that binds to LY6G6D, the method comprising culturing one or more host cells according to any one of claims 32 to 36 in a culture medium.

38. 38. The method of claim 37, further comprising recovering the anti-LY6G6D antibody from one or more host cells or culture medium.

39. A composition comprising the antibody of any one of claims 1 to 29.

40. 40. The composition of claim 39, further comprising a pharmaceutically acceptable excipient or diluent.

41. 41. The composition of claim 40, wherein the pharmaceutically acceptable excipient is a buffer, carrier, stabilizer, or preservative.

42. 42. The composition of claim 41, which is a pharmaceutical composition.

43. An antibody according to any one of claims 1 to 29 or a composition according to any one of claims 39 to 42 for use in a method for detecting the presence of LY6G6D in a biological sample.

Citation Information

Patent Citations

  • Anti-CD3 antibodies and methods of use

    WO2016204966A1