Anti-TIM-3 antibodies and methods of use thereof

Antibodies targeting human TIM-3 with defined CDRs enhance T cell activation and reduce immunosuppression, addressing TIM-3-mediated immunosuppression in cancer and infectious diseases.

JP7723697B2Active Publication Date: 2025-08-14AGENUS INC
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Patent Information

Application Number
JP2023068767
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2016-11-10
Filing Date
2023-04-19
Publication Date
2025-08-14
Estimated Expiration
2037-05-26

AI Technical Summary

Technical Problem

Current therapies fail to effectively antagonize TIM-3-mediated immunosuppression, which is implicated in various diseases including cancer and infectious diseases, by enhancing T cell activation and reducing Treg-mediated immunosuppression.

Method used

Development of antibodies that specifically bind to human TIM-3, comprising defined complementarity determining regions (CDRs) in the heavy and light chain variable regions, which antagonize TIM-3 function and are internalized upon binding, thereby enhancing T cell activation and reducing immunosuppression.

Benefits of technology

The antibodies enhance T cell activation and reduce immunosuppression, providing therapeutic benefits for cancer and infectious diseases by specifically targeting TIM-3 signaling.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide promising therapeutic agents designed to antagonize TIM-3 signaling for treating diseases that involve TIM-3 mediated immune suppression based on the apparent role of human TIM-3 in regulation of immune response.SOLUTION: The disclosure provides antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and antagonize TIM-3 function. Also provided are, pharmaceutical compositions comprising these antibodies, nucleic acids encoding these antibodies, expression vectors and host cells for producing these antibodies and methods for treating a subject using these antibodies.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 62 / 342,610, filed May 27, 2016; and U.S. Provisional Patent Application No. 62 / 420,276, filed November 10, 2016, each of which is incorporated herein by reference in its entirety.

[0002] Technical Field The present disclosure relates to antibodies that specifically bind to TIM-3 (eg, human TIM-3) and methods of use thereof. [Background technology]

[0003] The protein T-cell immunoglobulin mucin domain-3 (TIM-3) is a type I membrane protein in the immunoglobulin (Ig) superfamily. It has an extracellular variable Ig-like (IgV) domain, an extracellular mucin-like domain, and a cytoplasmic domain with six conserved tyrosine residues (Monney, et al. (2002), Nature, 415:536-41). TIM-3 is involved in the activation of T helper type 1 (Th1) and CD8 + It is expressed in T (Tc1) lymphocytes, some macrophages (Monney, et al. (2002), Nature, 415:536-41), activated natural killer (NK) cells (Ndhlovu, et al. (2012), Blood, 119(16):3734-43), and IL-17-producing Th17 cells (Nakae, et al. (2007), J. Leukoc. Biol. 81:1258-68).

[0004] Studies have shown that TIM-3 functions to inhibit responses mediated by T cells, myeloid cells, and NK cells, and to promote immune tolerance. For example, TIM-3 IgV peptides fused to immunoglobulin domains, which bind and neutralize the TIM-3 ligand, induced hyperproliferation of Th1 cells and release of Th1 cytokines in immunized mice (Sabatos, et al. (2003), Nat. Immunol. 4:1102-10). Indeed, in vivo administration of anti-TIM-3 antibodies enhanced the pathological severity of experimental autoimmune encephalomyelitis, an animal model of multiple sclerosis (Monney, et al. (2002), Nature, 415:536-41). Furthermore, TIM-3 expression is associated with increased CD8 expression in cancer patients. + Upregulated in T cells, e.g., NY-ESO-1-specific CD8 T cells in patients with advanced melanoma + Approximately 30% of T cells show upregulated TIM-3 expression (Fourcade, et al. (2010), J. Exp. Med. 207:2175-86).

[0005] Given the apparent role of human TIM-3 in regulating immune responses, therapeutic agents designed to antagonize TIM-3 signaling hold considerable promise for the treatment of diseases involving TIM-3-mediated immunosuppression. Summary of the Invention

[0006] The present disclosure provides antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and antagonize a function of TIM-3, e.g., TIM-3-mediated immunosuppression. Also provided are pharmaceutical compositions comprising these antibodies, nucleic acids encoding these antibodies, expression vectors and host cells for making these antibodies, and methods of treating subjects with these antibodies. The antibodies disclosed herein are particularly useful for enhancing T cell activation in response to an antigen (e.g., a tumor antigen or an infectious disease antigen) and / or reducing Treg-mediated immunosuppression, and are therefore particularly useful for treating cancer in a subject or for treating an infectious disease in a subject.

[0007] Thus, in one aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein: (a) CDRH1 comprises the amino acid sequence X1X2X3X4X5S (SEQ ID NO: 48); In the array, X1 is R, S, A, G, K, M, or T; X2 is Q, S, A, G, R, or T; X3 is N, Y, G, or Q; X4 is A or Q, X5 is W, M, A, S, or T; (b) CDRH2 comprises the amino acid sequence of WVSAISGSGGSTY (SEQ ID NO: 2); (c) CDRH3 comprises the amino acid sequence of AKGGDYGGNYFD (SEQ ID NO: 3); (d) CDRL1 comprises the amino acid sequence of X1ASQSVX2SSYLA (SEQ ID NO: 52). In the array, X1 is R or G, X2 is absent or S; (e) CDRL2 comprises the amino acid sequence of X1ASX2RAT (SEQ ID NO: 53). In the array, X1 is D or G X2 is N, S, or T; (f) CDRL3 comprises the amino acid sequence of QQYGSSPX1T (SEQ ID NO: 54), wherein X1 is L or I.

[0008] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein: (a) CDRH1 comprises the amino acid sequence X1X2X3X4X5S (SEQ ID NO: 48); In the array, X1 is R, S, A, G, K, M, or T; X2 is Q, S, A, G, R, or T; X3 is N, Y, G, or Q; X4 is A or Q, X5 is W, M, A, S, or T; (b) CDRH2 comprises the amino acid sequence of WVSAISGSGGSTY (SEQ ID NO: 2); (c) CDRH3 comprises the amino acid sequence of AKGGDYGGNYFD (SEQ ID NO: 3); (d) CDRL1 comprises the amino acid sequence of X1ASQSVX2SSYLA (SEQ ID NO: 52). In the array, X1 is R or G, X2 is absent or S; (e) CDRL2 comprises the amino acid sequence of X1ASX2RAT (SEQ ID NO: 53). In the array, X1 is D or G X2 is N, S, or T; (f) CDRL3 comprises the amino acid sequence of QQYGSSPX1T (SEQ ID NO: 54), wherein X1 is L or I.

[0009] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain variable region having complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region having complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein the antibody is internalized upon binding to a cell expressing human TIM-3, and CDRH3 comprises the amino acid sequence AKGGDYGGNYFD (SEQ ID NO: 3).

[0010] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain variable region having complementarity-determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region having complementarity-determining regions CDRL1, CDRL2, and CDRL3, wherein the antibody is internalized upon binding to a cell expressing human TIM-3, and CDRH3 comprises the amino acid sequence AKGGDYGGNYFD (SEQ ID NO: 3).

[0011] In certain embodiments, (a) CDRH1 comprises the amino acid sequence X1X2X3X4X5S (SEQ ID NO: 48); In the array, X1 is R, S, A, G, K, M, or T; X2 is Q, S, A, G, R, or T; X3 is N, Y, G, or Q; X4 is A or Q, X5 is W, M, A, S, or T; (b) CDRH2 comprises the amino acid sequence of WVSAISGSGGSTY (SEQ ID NO: 2); (c) CDRL1 comprises the amino acid sequence of X1ASQSVX2SSYLA (SEQ ID NO: 52). In the array, X1 is R or G, X2 is absent or S; (d) CDRL2 comprises the amino acid sequence of X1ASX2RAT (SEQ ID NO: 53). In the array, X1 is D or G X2 is N, S, or T; (e) CDRL3 comprises the amino acid sequence of QQYGSSPX1T (SEQ ID NO: 54), wherein X1 is L or I.

[0012] In certain embodiments, CDRH1 comprises the amino acid sequence of X1X2NAWS (SEQ ID NO:49), wherein: X1 is R or A; and X2 is Q or R. In certain embodiments, CDRH1 comprises the amino acid sequence of X1X2GQX3S (SEQ ID NO:50), wherein: X1 is K, M, or G; X2 is A or S; and X3 is S or T. In certain embodiments, CDRH1 comprises the amino acid sequence of X1X2QQAS (SEQ ID NO:51), wherein: X1 is S, R, T, or G; and X2 is A, S, T, or G. In certain embodiments, CDRH1 comprises the amino acid sequence selected from the group consisting of SEQ ID NOs: 1 and 4-12.

[0013] In certain embodiments, CDRL1 comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 13 to 16. In certain embodiments, CDRL2 comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 17 to 21. In certain embodiments, CDRL3 comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 22 and 23.

[0014] In certain embodiments, CDRH1, CDRH2, and CDRH3 comprise the amino acid sequences of CDRH1, CDRH2, and CDRH3 set forth in SEQ ID NOs: 1, 2, and 3; 4, 2, and 3; 5, 2, and 3; 6, 2, and 3; 7, 2, and 3; 8, 2, and 3; 9, 2, and 3; 10, 2, and 3; 11, 2, and 3; or 12, 2, and 3.

[0015] In certain embodiments, CDRL1, CDRL2 and CDRL3 comprise the amino acid sequences of CDRL1, CDRL2 and CDRL3 set forth in SEQ ID NOs: 13, 17, and 22; 14, 17, and 22; 15, 18, and 22; 14, 19, and 22; 14, 20, and 22; 14, 21, and 22; 16, 20, and 22; or 14, 17, and 23, respectively.

[0016] In certain embodiments, CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 comprise the amino acid sequences set forth in SEQ ID NOs: 1, 2, 3, 14, 21, and 22; 4, 2, 3, 14, 21, and 22; 5, 2, 3, 14, 21, and 22; 6, 2, 3, 14, 21, and 22; 7, 2, 3, 14, 21, and 22; 8, 2, 3, 14, 21, and 22; 9, 2, 3, 14, 21, and 22; 10, 2, 3, 14, 21, and 22; 11, 2, 3, 14, 21, and 22; or 12, 2, 3, 14, 21, and 22, respectively.

[0017] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 comprise the amino acid sequences set forth in SEQ ID NOs: 1, 2, 3, 14, 21, and 22, respectively.

[0018] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 comprise the amino acid sequences set forth in SEQ ID NOs: 1, 2, 3, 14, 21, and 22, respectively.

[0019] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 comprise the amino acid sequences set forth in SEQ ID NOs: 5, 2, 3, 14, 21, and 22, respectively.

[0020] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 comprise the amino acid sequences set forth in SEQ ID NOs: 5, 2, 3, 14, 21, and 22, respectively.

[0021] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 comprise the amino acid sequences set forth in SEQ ID NOs: 9, 2, 3, 14, 21, and 22, respectively.

[0022] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 comprise the amino acid sequences set forth in SEQ ID NOs: 9, 2, 3, 14, 21, and 22, respectively.

[0023] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 comprise the amino acid sequences set forth in 1, 2, 3, 15, 18, and 22, respectively.

[0024] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, comprising a heavy chain variable region comprising complementarity determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity determining regions CDRL1, CDRL2, and CDRL3, wherein CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 comprise the amino acid sequences set forth in SEQ ID NOs: 1, 2, 3, 15, 18, and 22, respectively.

[0025] In certain embodiments, the antibody is internalized upon binding to cells expressing human TIM-3.

[0026] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, wherein the antibody is internalized upon binding to a cell expressing human TIM-3.

[0027] In a specific embodiment, the following step (a) comprises culturing 2×10 cells per well expressing human TIM-3. 4(b) adding 1111 ng / ml of αHFc-NC-DM1 and 1111 ng / ml of antibody or pab1944w (IgG1, N297A) in a final volume of 100 μl / well; (c) incubating at 37°C and 5% CO for 72 hours; (d) measuring the survival of the cells expressing human TIM-3; and (e) calculating the percentage of cell survival compared to untreated human TIM-3-expressing cells. In certain embodiments, the percentage of cell survival in the presence of the antibody is at least 50% lower than the percentage of cell survival in the presence of pab1944w (IgG1, N297A). In certain embodiments, the cells expressing human TIM-3 are Kasumi-3 cells. In certain embodiments, the cells expressing human TIM-3 are Kasumi-3 cells (ATCC® CRL-2725™). In certain embodiments, the cells expressing human TIM-3 are Jurkat cells engineered to express human TIM-3.

[0028] In a specific embodiment, the following step (a) comprises culturing 2×10 cells per well expressing human TIM-3. 4(b) adding 1111 ng / ml of αHFc-NC-DM1 and 1111 ng / ml of antibody or Hum11 (IgG4, S228P) in a final volume of 100 μl / well; (c) incubating at 37°C and 5% CO for 72 hours; (d) measuring the survival of the human TIM-3-expressing cells; and (e) calculating the percentage of cell survival compared to untreated human TIM-3-expressing cells. In certain embodiments, the percentage of cell survival in the presence of the antibody is at least 50% lower than the percentage of cell survival in the presence of Hum11 (IgG4, S228P). In certain embodiments, the cells expressing human TIM-3 are Kasumi-3 cells. In certain embodiments, the cells expressing human TIM-3 are Kasumi-3 cells (ATCC® CRL-2725™). In certain embodiments, the cells expressing human TIM-3 are Jurkat cells engineered to express human TIM-3.

[0029] In certain embodiments, the antibody comprises a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 55. In certain embodiments, the antibody comprises a heavy chain variable region comprising an amino acid sequence at least 75%, 80%, 85%, 90%, 95%, or 100% identical to an amino acid sequence selected from the group consisting of SEQ ID NOs: 24-35. In certain embodiments, the heavy chain variable region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 24-35. In certain embodiments, the heavy chain variable region comprises the amino acid sequence of SEQ ID NO: 25. In certain embodiments, the heavy chain variable region comprises the amino acid sequence of SEQ ID NO: 28. In certain embodiments, the heavy chain variable region comprises the amino acid sequence of SEQ ID NO: 32. In certain embodiments, the N-terminal glutamic acid (E) residue of the heavy chain variable region of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue.

[0030] In certain embodiments, the antibody comprises a light chain variable region comprising the amino acid sequence of SEQ ID NO: 56. In certain embodiments, the antibody comprises a light chain variable region comprising an amino acid sequence at least 75%, 80%, 85%, 90%, 95%, or 100% identical to an amino acid sequence selected from the group consisting of SEQ ID NOs: 36-47. In certain embodiments, the light chain variable region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 36-47. In certain embodiments, the light chain variable region comprises the amino acid sequence of SEQ ID NO: 46. In certain embodiments, the N-terminal glutamic acid (E) residue of the light chain variable region of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue.

[0031] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 24-35. In certain embodiments, the heavy chain variable region comprises the amino acid sequence of SEQ ID NO: 25. In certain embodiments, the heavy chain variable region comprises the amino acid sequence of SEQ ID NO: 28. In certain embodiments, the heavy chain variable region comprises the amino acid sequence of SEQ ID NO: 32. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 58. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 61. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 65. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 70, 71, 72, 73, 74, or 75. In certain embodiments, the N-terminal glutamic acid (E) residue of the heavy chain of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue.

[0032] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 24-35. In certain embodiments, the heavy chain variable region comprises the amino acid sequence of SEQ ID NO: 25. In certain embodiments, the heavy chain variable region comprises the amino acid sequence of SEQ ID NO: 28. In certain embodiments, the heavy chain variable region comprises the amino acid sequence of SEQ ID NO: 32. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 58. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 61. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 65. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 70, 71, 72, 73, 74, or 75.

[0033] In another aspect, the disclosure provides an antibody or isolated antibody comprising a light chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 36-47. In certain embodiments, the light chain variable region comprises the amino acid sequence of SEQ ID NO: 46. In certain embodiments, the antibody comprises a light chain comprising the amino acid sequence of SEQ ID NO: 69. In certain embodiments, the antibody comprises a light chain comprising the amino acid sequence of SEQ ID NO: 76 or 77. In certain embodiments, the N-terminal glutamic acid (E) residue of the light chain of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue.

[0034] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a light chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 36-47. In certain embodiments, the light chain variable region comprises the amino acid sequence of SEQ ID NO: 46. In certain embodiments, the antibody comprises a light chain comprising the amino acid sequence of SEQ ID NO: 69. In certain embodiments, the antibody comprises a light chain comprising the amino acid sequence of SEQ ID NO: 76 or 77.

[0035] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region and light chain variable region comprise the amino acid sequences set forth in SEQ ID NOs: 24 and 36; 24 and 38; 26 and 42; 24 and 42; 24 and 46; 24 and 43; 26 and 43; 26 and 46; 26 and 41; 24 and 41; 25 and 39; 24 and 47; 25 and 40; 26 and 47; 25 and 37; 25 and 45; 25 and 44; 25 and 46; 25 and 42; 25 and 41; 25 and 43; 25 and 47; 27 and 46; 28 and 46; 29 and 46; 30 and 46; 31 and 46; 32 and 46; 33 and 46; 34 and 46; or 35 and 46, respectively. In certain embodiments, the heavy chain variable region and the light chain variable region comprise the amino acid sequences set forth in SEQ ID NOs: 25 and 46, respectively. In certain embodiments, the heavy chain variable region and the light chain variable region comprise the amino acid sequences set forth in SEQ ID NOs: 28 and 46, respectively. In certain embodiments, the heavy chain variable region and the light chain variable region comprise the amino acid sequences set forth in SEQ ID NOs: 32 and 46, respectively. In certain embodiments, the N-terminal glutamic acid (E) residue of the heavy chain variable region of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue, and / or the N-terminal glutamic acid (E) residue of the light chain variable region of the antibody is replaced with a pyroglutamic acid (pE) residue.

[0036] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain variable region and a light chain variable region, wherein the amino acid sequences of the heavy chain variable region and light chain variable region consist of the amino acid sequences set forth in SEQ ID NOs: 24 and 36; 24 and 38; 26 and 42; 24 and 42; 24 and 46; 24 and 43; 26 and 43; 26 and 46; 26 and 41; 24 and 41; 25 and 39; 24 and 47; 25 and 40; 26 and 47; 25 and 37; 25 and 45; 25 and 44; 25 and 46; 25 and 42; 25 and 41; 25 and 43; 25 and 47; 27 and 46; 28 and 46; 29 and 46; 30 and 46; 31 and 46; 32 and 46; 33 and 46; 34 and 46; or 35 and 46, respectively. In certain embodiments, the amino acid sequences of the heavy chain variable region and the light chain variable region consist of the amino acid sequences set forth in SEQ ID NOs: 25 and 46, respectively. In certain embodiments, the amino acid sequences of the heavy chain variable region and the light chain variable region consist of the amino acid sequences set forth in SEQ ID NOs: 28 and 46, respectively. In certain embodiments, the amino acid sequences of the heavy chain variable region and the light chain variable region consist of the amino acid sequences set forth in SEQ ID NOs: 32 and 46, respectively.

[0037] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region and light chain variable region comprise the amino acid sequences set forth in SEQ ID NOs: 24 and 36; 24 and 38; 26 and 42; 24 and 42; 24 and 46; 24 and 43; 26 and 43; 26 and 46; 26 and 41; 24 and 41; 25 and 39; 24 and 47; 25 and 40; 26 and 47; 25 and 37; 25 and 45; 25 and 44; 25 and 46; 25 and 42; 25 and 41; 25 and 43; 25 and 47; 27 and 46; 28 and 46; 29 and 46; 30 and 46; 31 and 46; 32 and 46; 33 and 46; 34 and 46; or 35 and 46, respectively. In certain embodiments, the heavy chain variable region and the light chain variable region comprise the amino acid sequences set forth in SEQ ID NOs: 25 and 46, respectively. In certain embodiments, the heavy chain variable region and the light chain variable region comprise the amino acid sequences set forth in SEQ ID NOs: 28 and 46, respectively. In certain embodiments, the heavy chain variable region and the light chain variable region comprise the amino acid sequences set forth in SEQ ID NOs: 32 and 46, respectively.

[0038] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain variable region and a light chain variable region, wherein the amino acid sequences of the heavy chain variable region and the light chain variable region are set forth in SEQ ID NOs: 24 and 36; 24 and 38; 26 and 42; 24 and 42; 24 and 46; 24 and 43; 26 and 43; 26 and 46; 26 and 41; 24 and 42, respectively. 1; 25 and 39; 24 and 47; 25 and 40; 26 and 47; 25 and 37; 25 and 45; 25 and 44; 25 and 46; 25 and 42; 25 and 41; 25 and 43; 25 and 47; 27 and 46; 28 and 46; 29 and 46; 30 and 46; 31 and 46; 32 and 46; 33 and 46; 34 and 46; or 35 and 46. In certain embodiments, the amino acid sequences of the heavy chain variable region and the light chain variable region consist of the amino acid sequences set forth in SEQ ID NOs: 25 and 46, respectively. In certain embodiments, the amino acid sequences of the heavy chain variable region and the light chain variable region consist of the amino acid sequences set forth in SEQ ID NOs: 28 and 46, respectively. In certain embodiments, the amino acid sequences of the heavy chain variable region and the light chain variable region consist of the amino acid sequences set forth in SEQ ID NOs: 32 and 46, respectively.

[0039] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain comprising the amino acid sequence of SEQ ID NO:58 and a light chain comprising the amino acid sequence of SEQ ID NO:69.

[0040] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain comprising the amino acid sequence of SEQ ID NO:58 and a light chain comprising the amino acid sequence of SEQ ID NO:69.

[0041] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain comprising the amino acid sequence of SEQ ID NO:61 and a light chain comprising the amino acid sequence of SEQ ID NO:69.

[0042] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain comprising the amino acid sequence of SEQ ID NO: 61 and a light chain comprising the amino acid sequence of SEQ ID NO: 69.

[0043] In another aspect, the disclosure provides an antibody or isolated antibody comprising a heavy chain comprising the amino acid sequence of SEQ ID NO:65 and a light chain comprising the amino acid sequence of SEQ ID NO:69.

[0044] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain comprising the amino acid sequence of SEQ ID NO: 65 and a light chain comprising the amino acid sequence of SEQ ID NO: 69.

[0045] In certain embodiments, the N-terminal glutamic acid (E) residue of the heavy chain of an antibody described herein is replaced with a pyroglutamic acid (pE) residue, and / or the N-terminal glutamic acid (E) residue of the light chain of the antibody is replaced with a pyroglutamic acid (pE) residue.

[0046] In certain embodiments, the antibody comprises a heavy chain variable region having an amino acid sequence derived from a human IGHV3-23 germline sequence. In certain embodiments, the antibody comprises a light chain variable region having an amino acid sequence derived from a human germline sequence selected from the group consisting of IGKV1-27, IGKV3-11, IGKV3-20, and IGKV3D-20.

[0047] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain variable region having an amino acid sequence derived from a human IGHV3-23 germline sequence and a light chain variable region having an amino acid sequence derived from a human germline sequence selected from the group consisting of IGKV1-27, IGKV3-11, IGKV3-20, and IGKV3D-20.

[0048] In certain embodiments, the antibody comprises a heavy chain constant region selected from the group consisting of human IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2. In certain embodiments, the heavy chain constant region is IgG1. In certain embodiments, the amino acid sequence of IgG1 comprises an N297A mutation, numbered according to the EU numbering system. In certain embodiments, the antibody comprises a heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 72. In certain embodiments, the amino acid sequence of IgG1 comprises an N297Q mutation, numbered according to the EU numbering system. In certain embodiments, the IgG1 is a non-fucosylated IgG1. In certain embodiments, the heavy chain constant region is IgG4. In certain embodiments, the amino acid sequence of IgG4 comprises an S228P mutation, numbered according to the EU numbering system. In certain embodiments, the antibody comprises a heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 74.

[0049] In certain embodiments, the antibody comprises a light chain constant region selected from the group consisting of human IgGκ and IgGλ. In certain embodiments, the light chain constant region is IgGκ. In certain embodiments, the antibody comprises a light chain constant region comprising the amino acid sequence of SEQ ID NO: 76. In certain embodiments, the light chain constant region is IgGλ.

[0050] In another aspect, the present disclosure provides an antibody or isolated antibody that cross-competes with an antibody as disclosed herein for binding to human TIM-3. In certain embodiments, the present disclosure provides an antibody or isolated antibody that cross-competes with an antibody comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 55 and 56, respectively, for binding to human TIM-3. In certain embodiments, the present disclosure provides an antibody or isolated antibody that cross-competes with an antibody comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 25 and 46, respectively, for binding to human TIM-3. In certain embodiments, the present disclosure provides an antibody or isolated antibody that cross-competes with an antibody comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 28 and 46, respectively, for binding to human TIM-3. In certain embodiments, the present disclosure provides an antibody or isolated antibody that cross-competes with an antibody comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 32 and 46, respectively, for binding to human TIM-3.

[0051] In another aspect, the present disclosure provides an antibody or isolated antibody that binds to the same epitope on human TIM-3 as an antibody disclosed herein. In a specific embodiment, the present disclosure provides an antibody or isolated antibody that binds to the same epitope on human TIM-3 as an antibody comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 55 and 56, respectively. In a specific embodiment, the present disclosure provides an antibody or isolated antibody that binds to the same epitope on human TIM-3 as an antibody comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 25 and 46, respectively. In a specific embodiment, the present disclosure provides an antibody or isolated antibody that binds to the same epitope on human TIM-3 as an antibody comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 28 and 46, respectively. In a specific embodiment, the present disclosure provides an antibody or isolated antibody that binds to the same epitope on human TIM-3 as an antibody comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 32 and 46, respectively.

[0052] In another aspect, the present disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, wherein the antibody specifically binds to a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101 with lower affinity than to a wild-type TIM-3 protein having the amino acid sequence of SEQ ID NO: 79.

[0053] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to the same epitope on human TIM-3 as an antibody of the invention. In one embodiment, the antibody specifically binds to a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101 with lower affinity than to a wild-type TIM-3 protein having the amino acid sequence of SEQ ID NO: 79.

[0054] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, wherein the antibody does not specifically bind to a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101.

[0055] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to the same epitope of human TIM-3 as an antibody of the invention. In one embodiment, the antibody does not specifically bind to a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101.

[0056] In another aspect, the present disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, wherein binding between the antibody and a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101 is substantially weakened compared to binding between the antibody and a wild-type TIM-3 protein having the amino acid sequence of SEQ ID NO: 79.

[0057] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to the same epitope of human TIM-3 as an antibody of the invention. In one embodiment, binding between the antibody and a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101 is substantially weakened compared to binding between the antibody and a wild-type TIM-3 protein having the amino acid sequence of SEQ ID NO: 79.

[0058] In another aspect, the present disclosure provides an antibody or isolated antibody that specifically binds to human TIM-3, wherein the antibody exhibits reduced or no binding to a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101 compared to binding to a wild-type TIM-3 protein having the amino acid sequence of SEQ ID NO: 79.

[0059] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to the same epitope on human TIM-3 as an antibody of the invention. In one embodiment, the antibody exhibits reduced or no binding to a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101 compared to binding to a wild-type TIM-3 protein having the amino acid sequence of SEQ ID NO: 79.

[0060] In another aspect, the disclosure provides an antibody or isolated antibody that binds, e.g., specifically binds, to an epitope of human TIM-3. In a specific embodiment, the antibody binds to residue 40 of SEQ ID NO:79.

[0061] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to the same epitope of human TIM-3 as an antibody of the invention. In a specific embodiment, the antibody binds to residue 40 of SEQ ID NO:79.

[0062] In another aspect, the disclosure provides an antibody or isolated antibody that binds, e.g., specifically binds, to an epitope of human TIM-3. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO: 93. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO: 94. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO: 95. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO: 96. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO: 97. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO: 98. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO: 99. In a specific embodiment, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO:100.

[0063] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to the same epitope of human TIM-3 as an antibody of the invention. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO:93. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO:94. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO:95. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO:96. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO:97. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO:98. In certain embodiments, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO:99. In a specific embodiment, the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of SEQ ID NO:100.

[0064] In another aspect, the disclosure provides an antibody that, when binding to a human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in a region consisting of the amino acid sequence set forth in SEQ ID NO: 93 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 93 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In another aspect, the disclosure provides an antibody that, when binding to a human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in a region consisting of the amino acid sequence set forth in SEQ ID NO: 94 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 94 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In another aspect, the disclosure provides an antibody that, when binding to a human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in a region consisting of the amino acid sequence set forth in SEQ ID NO: 95 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 95 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In another aspect, the disclosure provides an antibody that, when binding to a human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in a region consisting of the amino acid sequence set forth in SEQ ID NO: 96 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 96 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In another aspect, the disclosure provides an antibody that, when binding to a human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in a region consisting of the amino acid sequence set forth in SEQ ID NO: 97 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 97 in the absence of the antibody, as determined by a hydrogen / deuterium assay.In another aspect, the disclosure provides antibodies that, when bound to human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduce hydrogen / deuterium exchange in a region consisting of the amino acid sequence set forth in SEQ ID NO: 98 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 98 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In some embodiments, reduced hydrogen / deuterium exchange is measured using hydrogen / deuterium exchange (HDX), e.g., as described herein in the Examples.

[0065] In another aspect, the disclosure provides an antibody or isolated antibody that specifically binds to the same epitope of human TIM-3 as an antibody of the invention. In certain embodiments, the antibody, when binding to human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 93 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 93 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In certain embodiments, the antibody, when binding to human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 94 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 94 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In certain embodiments, an antibody, when binding to a human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 95 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 95 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In certain embodiments, an antibody, when binding to a human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 96 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 96 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In certain embodiments, an antibody, when binding to a human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 97 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 97 in the absence of the antibody, as determined by a hydrogen / deuterium assay.In certain embodiments, the antibody, when binding to human TIM-3 protein or a fragment thereof comprising the amino acid sequence of SEQ ID NO: 102, reduces hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 98 compared to hydrogen / deuterium exchange in the region consisting of the amino acid sequence set forth in SEQ ID NO: 98 in the absence of the antibody, as determined by a hydrogen / deuterium assay. In some embodiments, reduced hydrogen / deuterium exchange is measured using hydrogen / deuterium exchange (HDX), e.g., as described herein in the Examples.

[0066] In another aspect, the present disclosure provides an antibody or isolated antibody that binds, e.g., specifically binds, to the same epitope of human TIM-3 as an antibody of the present invention, wherein the epitope is determined, e.g., by hydrogen / deuterium exchange (HDX), as described in the Examples, by Pepscan analysis, as described in the Examples, or by alanine scanning, as described in the Examples.

[0067] In certain embodiments, the antibody comprises a human IgG heavy chain constant region that is a variant of a wild-type human IgG heavy chain constant region, wherein the variant human IgG heavy chain constant region binds to a human Fc gamma receptor with lower affinity than the wild-type human IgG heavy chain constant region binds to the human Fc gamma receptor. In certain embodiments, the human Fc gamma receptor is selected from the group consisting of FcγRI, FcγRII, and FcγRIII. In certain embodiments, the variant human IgG heavy chain constant region is the constant region of IgG1 containing the N297A mutation.

[0068] In certain embodiments, the antibody is a human antibody. In certain embodiments, the antibody antagonizes human TIM-3. In certain embodiments, the antibody inactivates, reduces, or inhibits the activity of human TIM-3. In certain embodiments, the antibody inhibits the binding of human TIM-3 to phosphatidylserine. In certain embodiments, the antibody induces IFNγ production by peripheral blood mononuclear cells (PBMCs) stimulated with staphylococcal enterotoxin (SEA). In certain embodiments, the antibody induces IFNγ or TNFα production by tumor-infiltrating lymphocytes (TILs) stimulated with anti-CD3 and anti-CD28 antibodies.

[0069] In certain embodiments, the antibody is internalized upon binding to cells expressing human TIM-3.

[0070] In another aspect, the present disclosure provides an antibody or isolated antibody as disclosed herein conjugated to a cytotoxic agent.

[0071] In another aspect, the present disclosure provides an antibody or isolated antibody as disclosed herein conjugated to a cytostatic agent.

[0072] In another aspect, the present disclosure provides an antibody or isolated antibody as disclosed herein conjugated to a toxin.

[0073] In another aspect, the present disclosure provides an antibody or isolated antibody as disclosed herein conjugated to a radionuclide.

[0074] In another aspect, the present disclosure provides an antibody or isolated antibody as disclosed herein conjugated to a detectable label.

[0075] In another aspect, the present disclosure provides a pharmaceutical composition comprising an antibody as disclosed herein and a pharmaceutically acceptable carrier or excipient.

[0076] In another aspect, the present disclosure provides a polynucleotide or isolated polynucleotide encoding the heavy and / or light chain of an antibody as disclosed herein. In another aspect, the present disclosure provides a vector comprising the polynucleotide. In another aspect, the present disclosure provides a recombinant host cell comprising the polynucleotide. In another aspect, the present disclosure provides a recombinant host cell comprising the vector. In another aspect, the present disclosure provides a method of making an antibody as disclosed herein, the method comprising culturing a host cell such that the polynucleotide is expressed and the antibody is produced. In one embodiment, the method is an in vitro method.

[0077] In one embodiment, the present invention relates to an antibody of the present invention, or a pharmaceutical composition of the present invention, or a polynucleotide of the present invention, or a vector of the present invention, or a recombinant host cell of the present invention for use as a medicament.

[0078] In one embodiment, the present invention relates to an antibody of the present invention for use as a diagnostic agent, or to a pharmaceutical composition of the present invention, or a polynucleotide of the present invention, or a vector of the present invention, or a recombinant host cell of the present invention.

[0079] In another aspect, the present disclosure provides a method for enhancing T cell activation in response to an antigen in a subject, the method comprising administering to the subject an effective amount of an antibody or pharmaceutical composition as disclosed herein. In another aspect, the present disclosure provides a method for treating cancer in a subject, the method comprising administering to the subject an effective amount of an antibody or pharmaceutical composition as disclosed herein. In certain embodiments of the aforementioned methods, the antibody or pharmaceutical composition is administered subcutaneously. In certain embodiments of the aforementioned methods, the antibody or pharmaceutical composition is administered intravenously. In certain embodiments of the aforementioned methods, the antibody or pharmaceutical composition is administered intratumorally. In certain embodiments of the aforementioned methods, the antibody or pharmaceutical composition is delivered to a tumor-draining lymph node. In certain embodiments of the aforementioned methods, the antibody or pharmaceutical composition is administered intra-arterially.

[0080] In one aspect, the invention relates to an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention for use in a method for enhancing activation of T cells in response to an antigen.

[0081] In one aspect, the invention relates to an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention for use in a method of enhancing T cell activation in response to an antigen in a subject.

[0082] In one aspect, the invention relates to an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention for use in a method of increasing T cell activation in response to an antigen in a subject, comprising administering to the subject an effective amount of a polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention.

[0083] In one aspect, the invention relates to an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention for use in a method for treating cancer.

[0084] In one aspect, the invention relates to an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention for use in a method of treating cancer in a subject.

[0085] In one aspect, the invention relates to an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention for use in a method for treating cancer in a subject comprising administering to the subject an effective amount of the antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention.

[0086] In one embodiment of the antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition for use according to the invention, the antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition is administered subcutaneously or intravenously. In another embodiment of the antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition for use according to the invention, the antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition is administered intratumorally or intra-arterially.

[0087] In certain embodiments, the aforementioned methods further comprise administering to the subject an additional therapeutic agent. Thus, in one embodiment of the antibodies, polynucleotides, vectors, recombinant host cells and / or pharmaceutical compositions for use in the methods of the invention, the method further comprises administering to the subject an additional therapeutic agent.

[0088] In one aspect, the invention relates to (a) an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention, and (b) an additional therapeutic agent for use as a medicament.

[0089] In one aspect, the invention relates to (a) an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention, and (b) an additional therapeutic agent for use in a method for treating cancer.

[0090] In one aspect, the invention relates to a pharmaceutical composition, kit, or kit-of-parts comprising (a) an antibody, polynucleotide, vector, recombinant host cell, and / or pharmaceutical composition of the invention; and (b) an additional therapeutic agent.

[0091] In certain embodiments, the additional therapeutic agent is a chemotherapeutic agent. In certain embodiments, the additional therapeutic agent is a radiotherapeutic agent.

[0092] In certain embodiments, the additional therapeutic agent is a checkpoint targeting agent. In certain embodiments, the checkpoint targeting agent is selected from the group consisting of an antagonistic anti-PD-1 antibody, an antagonistic anti-PD-L1 antibody, an antagonistic anti-PD-L2 antibody, an antagonistic anti-CTLA-4 antibody, an antagonistic anti-TIM-3 antibody, an antagonistic anti-LAG-3 antibody, an antagonistic anti-CEACAM1 antibody, an agonist anti-CD137 antibody, an antagonistic anti-TIGIT antibody, an antagonistic anti-VISTA antibody, an agonist anti-GITR antibody, and an agonist anti-OX40 antibody. In certain embodiments, the additional therapeutic agent is an anti-PD-1 antibody. In certain embodiments, the anti-PD-1 antibody is pembrolizumab. In certain embodiments, the anti-PD-1 antibody is nivolumab.

[0093] In certain embodiments, the additional therapeutic agent is an inhibitor of indoleamine-2,3-dioxygenase (IDO). In certain embodiments, the inhibitor is selected from the group consisting of epacadostat, F001287, indoximod, and NLG919. In certain embodiments, the inhibitor is epacadostat. In certain embodiments, the inhibitor is F001287. In certain embodiments, the inhibitor is indoximod. In certain embodiments, the inhibitor is NLG919.

[0094] In certain embodiments, the additional therapeutic agent is a vaccine. In certain embodiments, the vaccine comprises a heat shock protein peptide complex (HSPPC) comprising a heat shock protein complexed with an antigenic peptide. In certain embodiments, the heat shock protein is hsc70 and is complexed with a tumor-associated antigenic peptide. In certain embodiments, the heat shock protein is gp96 protein and is complexed with a tumor-associated antigenic peptide, wherein the HSPPC is derived from a tumor obtained from the subject. In certain embodiments, the additional therapeutic agent comprises a TCR. In certain embodiments, the additional therapeutic agent is a soluble TCR. In certain embodiments, the additional therapeutic agent is a cell expressing a TCR. In certain embodiments, the additional therapeutic agent is a cell expressing a chimeric antigen receptor. In certain embodiments, the additional therapeutic agent is an antibody that specifically binds to a peptide-MHC complex. In certain embodiments, the additional therapeutic agent is an adjuvant. In one aspect, the invention relates to (a) an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention, and (b) a vaccine for use as a medicament, e.g., for use in a method for treating cancer, wherein optionally, the vaccine comprises a heat shock protein peptide complex (HSPPC) comprising a heat shock protein complexed with an antigenic peptide. In one aspect, the invention relates to a pharmaceutical composition, kit, or kit-of-parts comprising (a) an antibody, polynucleotide, vector, recombinant host cell and / or pharmaceutical composition of the invention, and (b) a vaccine, wherein optionally, the vaccine comprises a heat shock protein peptide complex (HSPPC) comprising a heat shock protein complexed with an antigenic peptide. [Brief explanation of the drawings]

[0095] [Figure 1] 1 is a set of histograms showing binding of anti-TIM-3 antibodies pab2085 (IgG1) and pab2088 (IgG1) or an isotype control antibody to wild-type mouse 1624-5 cells or 1624-5 cells engineered to express human TIM-3, as measured by flow cytometry. [Figure 2]

[0023] Figure 2A is a pair of graphs showing binding of anti-TIM-3 antibodies pab2085 (IgG1) (Figure 2A) and pab2088 (IgG1) (Figure 2B) to recombinant human TIM-1 His (rhTIM-1 His), recombinant human TIM-4 His (rhTIM-4 His), recombinant human TIM-3 His (rhTIM-3 His), recombinant human TIM-3 Fc (rhTIM-3 Fc), and recombinant cynomolgus monkey TIM-3 Fc (rcmTIM-3 Fc) as measured by Luminex assay. Mean fluorescence intensity (MFI) values are plotted versus antibody concentration. [Figure 3] 3A and 3B show the binding of anti-TIM-3 antibodies or isotype control antibodies to mouse 1624-5 cells engineered to express human TIM-3 (FIGS. 3A and 3B) or cynomolgus monkey TIM-3 (FIGS. 3C and 3D), as measured by flow cytometry. The anti-TIM-3 antibodies tested in this study include pab2173, pab2174, pab2175, pab2176, pab2177, pab2178, pab2179, pab2180, pab2181, pab2182, pab2183, pab2184, pab2185, pab2186, pab2187, pab2188, pab2189, pab2190, pab2191, and pab2192, all of which contain the IgG1 Fc region. [Figure 4] Figure 1 shows the binding of anti-TIM-3 antibody pab2085, light chain-optimized variants (pab2184, pab2186, pab2187, pab2188, pab2189, pab2190, pab2191, and pab2192), or an isotype control antibody to primary human CD8+ T cells activated with anti-CD3 and anti-CD28 antibodies, as measured by flow cytometry. The light chain-optimized variants contain an IgG1 variant Fc region. MFI values are plotted against a range of antibody concentrations tested. [Figure 5]1 is a graph showing binding of anti-TIM-3 antibodies, pab2188 (IgG1 variant), or isotype control antibodies to primary cynomolgus monkey CD11b+ bone marrow cells as measured by flow cytometry. MFI values are plotted against the range of antibody concentrations tested. [Figure 6] Figure 6A shows the percent binding between irradiated phosphatidylserine-expressing WR19L mouse lymphoma cells and recombinant human TIM-3 Fc (Figure 6A) or recombinant cynomolgus TIM-3 Fc (Figure 6B) in the presence of titrated anti-TIM-3 antibodies or an IgG1 isotype control antibody. The anti-TIM-3 antibodies tested in this study were pab2085 (IgG1) and pab2188 (IgG1 variant). [Figure 7] 1 is a bar graph showing IFNγ production induced by anti-TIM-3 antibodies or an IgG1 isotype control antibody in combination with the anti-PD-1 antibody pembrolizumab in human peripheral blood mononuclear cells (PBMCs) upon stimulation with Staphylococcal enterotoxin A (SEA). The anti-TIM-3 antibodies tested in this study include light chain-optimized variants pab2175 (IgG1), pab2176 (IgG1), pab2180 (IgG1), pab2182 (IgG1), pab2183 (IgG1 variant), pab2184 (IgG1 variant), pab2186 (IgG1 variant), pab2187 (IgG1 variant), pab2188 (IgG1 variant), pab2189 (IgG1 variant), pab2190 (IgG1 variant), pab2191 (IgG1 variant), and pab2192 (IgG1 variant). [Figure 8]

[0033] Figure 8A-8F is a series of bar graphs showing IFNγ production induced by the anti-TIM-3 antibody pab2188w (IgG1 N297A) or an IgG1 isotype control antibody alone or in combination with the anti-PD-1 antibody pembrolizumab in human PBMCs upon SEA stimulation. The protocol used in the study shown in Figures 8A-8F was modified from the protocol used in the study shown in Figure 7. [Figure 9]9A, 9B, 9E, and 9F are graphs or histograms showing binding of anti-TIM-3 antibodies to TIM-3-expressing cells. Figures 9A, 9B, 9E, and 9F plot MFI values against a range of antibody concentrations tested. Figures 9C and 9D are a set of histograms showing binding of anti-TIM-3 antibodies to TIM-3-expressing cells. The anti-TIM-3 antibodies tested included pab2188w (IgG1, N297A), AM-1 (IgG1, N297A), AM-2 (IgG1, N297A), AM-3 (IgG1, N297A), AM-4 (IgG1, N297A), AM-5 (IgG1, N297A), AM-6 (IgG1, N297A), AM-7 (IgG1, N297A), AM-8 (IgG1, N297A), and AM-9 (IgG1, N297A). The cells examined were Jurkat cells ectopically expressing TIM-3 (Fig. 9A), the human acute myeloid leukemia cell line Kasumi-3, which endogenously expresses TIM-3 (Fig. 9B), human CD8+ T cells stimulated with Staphylococcus enterotoxin A (SEA) (Fig. 9C), cynomolgus monkey CD8+ T cells stimulated with SEA (Fig. 9D), and primary human (Fig. 9E) and cynomolgus monkey (Fig. 9F) CD14+ bone marrow cells. [Figure 10]

[0023] Figure 1 is a graph showing binding of anti-TIM-3 antibodies or IgG1 N297A isotype control antibody to recombinant human TIM-3 His (rhTIM-3 His), recombinant cynomolgus monkey TIM-3 Fc (rcmTIM-3 Fc), recombinant mouse TIM-3 Fc (rmTIM-3 Fc), recombinant human TIM-1 His (rhTIM-1 His), recombinant human TIM-4 His (rhTIM-4 His), recombinant human OX40 His (rhOX40 His), recombinant human GITR Fc (rhGITR Fc), recombinant human DR3 Fc (rhDR3 Fc), and recombinant human CD137 Fc (rhCD137 Fc) as measured by Luminex assay. MFI values are plotted against antibody concentration. The anti-TIM-3 antibodies examined in this study included pab2188w (IgG1, N297A) (Fig. 10B), AM-2 (IgG1, N297A) (Fig. 10C), and AM-6 (IgG1, N297A) (Fig. 10D). [Figure 11]Figure 11A shows the percent binding of recombinant human TIM-3 Fc (Figure 11A) or recombinant cynomolgus monkey TIM-3 Fc (Figure 11B) to phosphatidylserine-expressing WR19L cells in the presence of titrated anti-TIM-3 antibodies or an IgG1 N297A isotype control antibody. The anti-TIM-3 antibodies tested in this study include pab2188w (IgG1, N297A), AM-2 (IgG1, N297A), and AM-6 (IgG1, N297A). [Figure 12] Figure 1 shows bar graphs depicting IFNγ production induced by anti-TIM-3 antibodies or the IgG1 N297A isotype control antibody alone or in combination with the anti-PD-1 antibody pembrolizumab in human PBMCs from two different donors upon SEA stimulation. The anti-TIM-3 antibodies tested included pab2188w (IgG1, N297A), AM-1 (IgG1, N297A), AM-2 (IgG1, N297A), AM-3 (IgG1, N297A), AM-4 (IgG1, N297A), AM-5 (IgG1, N297A), AM-6 (IgG1, N297A), AM-7 (IgG1, N297A), and AM-8 (IgG1, N297A). [Figure 13] Figures 13A and 13B show the production of IFNγ or TNFα by primary tumor-infiltrating lymphocytes (TILs) induced by anti-TIM-3 antibodies or the IgG1 N297A isotype control antibody alone or in combination with the anti-PD-1 antibody pembrolizumab. TILs were isolated from non-small cell lung cancer (NSCLC) (Figures 13A and 13B), gallbladder adenocarcinoma (Figures 13C and 13D), or breast cancer (Figures 13E and 13F) and activated with anti-CD3 / CD28 microbeads. Anti-TIM-3 antibodies tested in this study include pab2188w (IgG1, N297A), AM-2 (IgG1, N297A), and AM-6 (IgG1, N297A). [Figure 14]Figures 14A and 14B show the percent cell viability compared to untreated controls after incubation with anti-TIM-3 antibodies or the IgG1 N297A isotype control antibody. Figures 14A and 14B show treatment with the indicated antibodies in combination with the secondary antibody-drug conjugate αHFc-NC-DM1. Cells examined were Jurkat cells engineered to overexpress TIM-3 (Figure 14A) or Kasumi-3 cells, an acute myeloid leukemia cell line that endogenously expresses TIM-3 (Figure 14B). Figure 14C shows treatment with the indicated antibodies conjugated with monomethyl auristatin E (MMAE). The anti-TIM-3 antibodies examined in this study included pab2188w (IgG1, N297A), AM-2 (IgG1, N297A), AM-6 (IgG1, N297A), and the reference antibodies Hum11 (IgG4, S228P) and pab1944w (IgG1, N297A). [Figure 15]

[0033] Figure 1 is a series of graphs showing TIM-3 internalization in Jurkat cells expressing Halo tag-TIM-3 fusion protein upon incubation with 10 μg / mL of anti-TIM-3 antibody AM-2 or an isotype control antibody, as determined by live-cell confocal fluorescence microscopy at various time points (i.e., 0-3.5 hours). Black dots indicate the mean fluorescence level observed for each condition at a given time point. DETAILED DESCRIPTION OF THE INVENTION

[0096] The present disclosure provides antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and antagonize a function of TIM-3, e.g., TIM-3-mediated immunosuppression. Also provided are pharmaceutical compositions comprising these antibodies, nucleic acids encoding these antibodies, expression vectors and hosts for making these antibodies, and methods of treating subjects using these antibodies. The antibodies disclosed herein are particularly useful for enhancing T cell activation in response to an antigen (e.g., a tumor antigen or an infectious disease antigen), and are therefore particularly useful for treating cancer in a subject or treating or preventing an infectious disease in a subject. All examples of "isolated antibodies" disclosed herein are further contemplated as antibodies that may, but need not be isolated. All examples of "isolated polynucleotides" disclosed herein are further contemplated as polynucleotides that may, but need not be isolated. All examples of "antibodies" disclosed herein are further contemplated as antibodies that may, but need not be isolated. All examples of "polynucleotides" disclosed herein are further contemplated as polynucleotides that may, but need not be isolated.

[0097] 6.1 Definition As used herein, the terms "about" and "approximately," when used to modify a numerical value or numerical range, indicate that deviations of 5% to 10% above (e.g., by 5% to 10% above) and below (e.g., by 5% to 10% below) the value or range remain within the intended meaning of the cited value or range.

[0098] As used herein, the term "TIM-3" refers to T-cell immunoglobulin mucin domain-3 (also known as T-cell immunoglobulin mucin domain-containing-3 protein or Hepatitis A virus cellular receptor 2 (HAVCR2)), which in humans is encoded by the HAVCR2 gene. Swiss-Prot Accession Number Q8TDQ0-1 provides the amino acid sequence of an exemplary human TIM-3. The immature amino acid sequence of human TIM-3 is provided as SEQ ID NO:78. The mature amino acid sequence of human TIM-3 is provided as SEQ ID NO:79. As used herein, the term "human TIM-3" refers to TIM-3 comprising the amino acid sequence of SEQ ID NO:79.

[0099] As used herein, the terms "antibody" and "antibodies" include full-length antibodies, antigen-binding fragments of full-length antibodies, and molecules comprising the CDRs, VH region, or VL region of an antibody. Examples of antibodies include monoclonal antibodies, recombinantly produced antibodies, monospecific antibodies, multispecific antibodies (including bispecific antibodies), human antibodies, humanized antibodies, chimeric antibodies, immunoglobulins, synthetic antibodies, tetrameric antibodies comprising two heavy and two light chain molecules, antibody light chain monomers, antibody heavy chain monomers, antibody light chain dimers, antibody heavy chain dimers, antibody light and heavy chain pairs, intrabodies, heteroconjugate antibodies, antibody-drug conjugates, single domain antibodies, monovalent antibodies, single-chain antibodies or single-chain Fvs (scFvs), camelized antibodies, affibodies, Fab fragments, F(ab')2 fragments, disulfide-linked Fvs (sdFvs), anti-idiotypic (anti-Id) antibodies (including, for example, anti-anti-Id antibodies), and antigen-binding fragments of any of the above. In certain embodiments, the antibodies described herein refer to a population of polyclonal antibodies. An antibody can be any type (IgG, IgE, IgM, IgD, IgA, or IgY), any class (e.g., IgG1, IgG2, IgG3, IgG4, IgA1, or IgA2), or any subclass (e.g., IgG 2a or IgG 2b). In certain embodiments, the antibodies described herein are IgG antibodies or classes (e.g., human IgG1 or IgG4) or subclasses thereof. In specific embodiments, the antibodies are humanized monoclonal antibodies. In another specific embodiment, the antibodies are human monoclonal antibodies.

[0100] As used herein, the terms "VH region" and "VL region" refer to the variable regions of the heavy and light chains of a single antibody, respectively, comprising FR (framework regions) 1, 2, 3, and 4 and CDR (complementarity-determining regions) 1, 2, and 3 (see Kabat, et al., (1991), Sequences of Proteins of Immunological Interest (NIH Publication, No. 91-3242, Bethesda), which is incorporated herein by reference in its entirety).

[0101] As used herein, the term "CDR" or "complementarity-determining region" refers to the discontinuous antigen-binding sites found within the variable regions of both heavy and light chain polypeptides. These particular regions are described by Kabat, et al., J. Biol. Chem. 252, 6609-6616 (1977) and Kabat, et al., Sequences of proteins of immunological interest. (1991), by Chothia, et al., J. Mol. Biol. 196:901-917 (1987), and MacCallum, et al., J. Mol. Biol. 262:732-745 (1996), all of which are incorporated herein by reference in their entireties, wherein the definitions include overlapping or subsets of amino acid residues when compared against each other. In certain embodiments, the term "CDR" refers to a CDR as defined by MacCallum, et al., J. Mol. Biol. 262:732-745 (1996) and Martin, A., "Protein Sequence and Structure Analysis of Antibody Variable Domains," in Antibody Engineering, Kontermann and Dubel, eds., Chapter 31, pp. 422-439, Springer-Verlag, Berlin (2001). In certain embodiments, the term "CDR" refers to a CDR as defined by Kabat, et al., J. Biol. Chem. 252, 6609-6616 (1977) and Kabat, et al., Sequences of proteins of immunological interest. (1991). In certain embodiments, the heavy chain CDRs and light chain CDRs of an antibody are defined using different conventions. For example, in certain embodiments, the heavy chain CDRs are defined according to MacCallum (supra) and the light chain CDRs are defined according to Kabat (supra), with CDRH1, CDRH2, and CDRH3 representing the heavy chain CDRs and CDRL1, CDRL2, and CDRL3 representing the light chain CDRs.

[0102] As used herein, the term "framework (FR) amino acid residues" refers to those amino acids in the framework region of an immunoglobulin chain. The term "framework region" or "FR region" as used herein includes amino acid residues that are part of the variable region but are not part of the CDRs (e.g., using the Kabat or MacCallum definitions of CDRs).

[0103] As used herein, the terms "variable region" and "variable domain" are used interchangeably and are common in the art. A variable region typically refers to a portion of an antibody, generally a portion of both the light and heavy chains, typically the amino-terminal 110-120 or 110-125 amino acids in the mature heavy chain and approximately 90-115 amino acids in the mature light chain, which differ extensively in sequence among antibodies and are responsible for the binding and specificity of a particular antibody to its particular antigen. Sequence diversity is concentrated in those regions called complementarity-determining regions (CDRs), while the more highly conserved regions in the variable region are called framework regions (FRs). Without wishing to be bound by a particular mechanism or theory, it is believed that the CDRs of the light and heavy chains are primarily responsible for the interaction and specificity of the antibody with the antigen. In certain embodiments, the variable region is a human variable region. In certain embodiments, the variable region comprises rodent or murine CDRs and human framework regions (FRs). In certain embodiments, the variable region is a primate (e.g., non-human primate) variable region. In certain embodiments, the variable region comprises rodent or murine CDRs and primate (e.g., non-human primate) framework regions (FRs).

[0104] The terms "VL" and "VL domain" are used interchangeably to refer to the light chain variable region of an antibody.

[0105] The terms "VH" and "VH domain" are used interchangeably to refer to the heavy chain variable region of an antibody.

[0106] As used herein, the terms "constant region" and "constant domain" are interchangeable and common in the art. The constant region is the portion of an antibody, e.g., the carboxyl-terminal portion of the light and / or heavy chain, that is not directly involved in binding the antibody to an antigen, but that can exhibit various effector functions, such as interaction with Fc receptors (e.g., Fc gamma receptors). The constant region of an immunoglobulin molecule generally has a more conserved amino acid sequence than the variable domains of immunoglobulins.

[0107] As used herein, the term "heavy chain", when used in reference to an antibody, can refer to any of the different types based on the amino acid sequence of the constant domain, e.g., alpha (α), delta (δ), epsilon (ε), gamma (γ), and mu (μ), which give rise to the IgA, IgD, IgE, IgG, and IgM classes of antibodies, respectively, including subclasses of IgG, e.g., IgG1, IgG2, IgG3, and IgG4.

[0108] As used herein, when used in reference to an antibody, the term "light chain" can refer to any of the different types based on the amino acid sequence of the constant domain, e.g., kappa (κ) or lambda (λ). The amino acid sequences of light chains are well known in the art. In a specific embodiment, the light chain is a human light chain.

[0109] As used herein, "EU numbering system" refers to the EU numbering convention for antibody constant regions as described in Edelman, GM et al., Proc. Natl. Acad. USA, 63, 78-85 (1969) and Kabat, et al., Sequences of Proteins of Immunological Interest, USDept. Health and Human Services, 5th edition, 1991, each of which is incorporated herein by reference in its entirety.

[0110] "Binding affinity" generally refers to the strength of the sum of 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 indicated, as used herein, "binding affinity" refers to the intrinsic binding affinity that reflects a 1:1 interaction between members of a binding pair (e.g., an antibody and an antigen). The affinity of a molecule X for its partner Y is generally measured by the dissociation constant (K D Affinity can be expressed as the equilibrium dissociation constant (K D ) and the equilibrium association constant (K A ) can be measured and / or expressed by a number of methods known in the art, including, but not limited to, K D is K off / K on It is calculated from the quotient of K A is K on / K off It is calculated from the quotient of K on For example, K refers to the constant for the rate of association of an antibody to an antigen. off K is the dissociation rate constant of the antibody against the antigen. on and K. off can be determined by techniques known to those skilled in the art, for example, BIAcore® or KinExA. As used herein, "low affinity" refers to a large K D Refers to...

[0111] As used herein, the terms "specifically bind," "specifically recognize," "immunospecifically bind," and "immunospecifically recognize" are similar terms in the context of antibodies, and refer to a molecule that binds to an antigen (e.g., an epitope or immune complex) as such binding is understood by those of skill in the art. For example, a molecule that specifically binds to an antigen may generally bind to other peptides or polypeptides with lower affinity, as measured, for example, by immunoassays, BIAcore® or KinExA3000 instruments (Saoidyne Instruments, Boise, ID), or other assays known in the art. In specific embodiments, a molecule that specifically binds to an antigen has a K that is lower than the K that the molecule would have if it were nonspecifically binding to another antigen. A At least 2 logs (for example, multiples of 10), 2.5 logs, 3 logs, or 4 logs or more of K A binds to the antigen.

[0112] In another specific embodiment, a molecule that specifically binds to an antigen does not cross-react with other proteins under similar binding conditions. In another specific embodiment, a molecule that specifically binds to TIM-3 does not cross-react with other non-TIM-3 proteins. In specific embodiments, provided herein are antibodies that bind to TIM-3 (e.g., human TIM-3) with higher affinity than to another unrelated antigen. In certain embodiments, provided herein are antibodies that bind to TIM-3 (e.g., human TIM-3) with 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95% or more higher affinity than to another unrelated antigen, as measured, for example, by radioimmunoassay, surface plasmon resonance, or equilibrium binding exclusion assay. In specific embodiments, the extent of binding of an anti-TIM-3 antibody described herein to an unrelated non-TIM-3 protein is less than 10%, 15%, or 20% of the binding of the antibody to a TIM-3 protein, as measured, for example, by radioimmunoassay.

[0113] As used herein, the term "afucosylation" or "afucosylated" in the context of Fc refers to the substantial lack of fucose covalently attached, directly or indirectly, to residue 297 of the human IgG1 Fc region, numbered according to the EU numbering system, or which corresponds to the residue in a non-IgG1 or non-human IgG1 immunoglobulin. Thus, in a composition comprising a plurality of afucosylated antibodies, at least 70% of the antibodies will not be fucosylated, directly or indirectly (e.g., via an intervening sugar) at residue 297 of the Fc region of the antibodies, and in some embodiments, at least 80%, 85%, 90%, 95%, or 99% will not be fucosylated, directly or indirectly, at residue 297 of the Fc region.

[0114] As used herein, "epitope" is a term used in the art to refer to a localized region of an antigen to which an antibody can specifically bind. An epitope can be, for example, contiguous amino acids of a polypeptide (a linear or continuous epitope), or an epitope can be, for example, comprised of two or more discrete regions of a polypeptide or polypeptides (a conformational, nonlinear, discontinuous, or discontinuous epitope). In certain embodiments, the epitope to which an antibody binds can be determined by, for example, NMR spectroscopy, X-ray diffraction crystallography, ELISA assays, hydrogen / deuterium exchange coupled with mass spectrometry (e.g., liquid chromatography electrospray mass spectrometry), array-based oligo-peptide scanning assays (e.g., constraining peptides using CLIPS (chemical attachment of peptides to scaffolds) to map discrete or conformational epitopes), and / or mutagenesis mapping (e.g., site-directed mutagenesis mapping). For X-ray crystallography, crystallization may be achieved using any of the methods known in the art (e.g., Giege R. et al., (1994), Acta Crystallogr D Biol Crystallogr, 50(Pt 4):339-350; McPherson, A. (1990), Eur. J. Biochem. 189:1-23; Chayen. NE, (1997), Structure, 5:1269-1274; McPherson, A. (1976), J. Biol. Chem. 251:6300-6303, each of which is incorporated herein by reference in its entirety).Antibody:antigen crystals may be studied using well-known X-ray diffraction techniques, such as X-PLOR (Yale University, 1992, distributed by Molecular Simulations, Inc.; see, e.g., Meth. Enzymol. (1985), volumes 114 & 115, eds., Wyckoff, HW. et al.; US2004 / 0014194), and BUSTER (Bricogne G (1993), Acta. Crystallogr. D Biol. Crystallogr. 49 (Pt 1): 37-60; Bricogne G (1997), Meth. Enzymol. 276A: 361-423, ed. Carter, CW; Roversi, P. et al., (2000), Acta. Crystallogr. D Biol. Crystallogr. 56 (Pt 10):1316-1323, each of which is incorporated herein by reference in its entirety. Mutagenesis mapping studies may be accomplished using methods known to those of skill in the art. For a description of mutagenesis methods, including alanine scanning mutagenesis, see, for example, Champe, M. et al., (1995), J. Biol. Chem. 270:1388-1394 and Cunningham, B.C. & Wells, J.A. (1989), Science, 244:1081-1085, each of which is incorporated herein by reference in its entirety. CLIPS (Chemical Linkage of Peptides to Scaffolds) is a technology that presents one or more peptides in a conformationally constrained configuration to behave as functional mimics of complex protein domains. See, for example, U.S. Publication Nos. US2008 / 0139407A1 and US2007 / 099240A1, and U.S. Patent No. 7,972,993, each of which is incorporated by reference in its entirety. In a specific embodiment, the antibody epitope is determined using alanine scanning mutagenesis. In a specific embodiment, the antibody epitope is determined using hydrogen / deuterium exchange coupled with mass spectroscopy.In a specific embodiment, the epitope of the antibody is determined using Pepscan Therapeutics' CLIPS epitope mapping technology.

[0115] As used herein, an "epitope located within a region of human TIM-3" consisting of a specific amino acid sequence or set of amino acid residues refers to an epitope comprising one or more amino acid residues of the specified region, where the specified region includes the first and last specified amino acid residues of the region of human TIM-3. In certain embodiments, the epitope comprises every one of the amino acid residues located within the specified region. In certain embodiments, one or more additional amino acid residues of human TIM-3 outside the specified region bind to the antibody together with the epitope located within the specified region.

[0116] As used herein, the terms "T cell receptor" and "TCR" are used interchangeably and refer to full-length heterodimeric αβ or γδ TCRs, antigen-binding fragments of full-length TCRs, and molecules comprising the CDRs or variable regions of a TCR. Examples of TCRs include, but are not limited to, full-length TCRs, antigen-binding fragments of full-length TCRs, soluble TCRs lacking transmembrane and cytoplasmic regions, single-chain TCRs containing TCR variable regions linked by flexible linkers, engineered disulfide-linked TCR chains, monospecific TCRs, multispecific TCRs (including bispecific TCRs), TCR fusions, human TCRs, humanized TCRs, chimeric TCRs, recombinantly produced TCRs, and synthetic TCRs. The terms encompass wild-type TCRs and genetically engineered TCRs (e.g., chimeric TCRs comprising a chimeric TCR chain comprising a first portion derived from a TCR of a first species and a second portion derived from a TCR of a second species).

[0117] As used herein, the terms "major histocompatibility complex" and "MHC" are used interchangeably and refer to MHC class I molecules and / or MHC class II molecules.

[0118] As used herein, the term "peptide-MHC complex" refers to an MHC molecule (MHC class I or MHC class II) with a peptide bound in an art-recognized peptide-binding pocket of the MHC.

[0119] As used herein, the terms "treat" and "treatment" refer to therapeutic or prophylactic treatments as described herein. Methods of "treatment" employ administration of an antibody to a subject having a disease or disorder, or a subject predisposed to having such a disease or disorder, to prevent, cure, delay, reduce the severity of, or ameliorate one or more symptoms of a disease or disorder, or a recurring disease or disorder, or to prolong the subject's survival beyond that expected in the absence of such treatment.

[0120] As used herein, the term "effective amount" in the context of administration of a therapy to a subject refers to the amount of the therapy that achieves the desired prophylactic or therapeutic effect.

[0121] As used herein, the term "subject" includes any human or non-human animal. In one embodiment, the subject is a human or non-human mammal. In one embodiment, the subject is a human.

[0122] The determination of "percent identity" between two sequences (e.g., amino acid sequences or nucleic acid sequences) can be accomplished using a mathematical algorithm. A specific, non-limiting example of a mathematical algorithm utilized for comparing two sequences is the algorithm of Karlin, S. and Altschul, S.F. (1990), PNAS, 87:2264-2268, modified as in Karlin, S. and Altschul, S.F. (1993), PNAS, 90:5873-5877, each of which is incorporated herein by reference in its entirety. Such an algorithm is incorporated into the NBLAST and XBLAST programs of Altschul, S.F. et al. (1990), J. Mol. Biol. 215:403, which is incorporated herein by reference in its entirety. BLAST nucleotide searches can be performed with the NBLAST nucleotide program parameters set, for example, score=100 and wordlength=12 to obtain nucleotide sequences homologous to the nucleic acid molecules described herein. BLAST protein searches can be performed using XBLAST program parameter settings, e.g., score=50 and word length=3 to obtain amino acid sequences homologous to the protein molecules described herein. To obtain gapped alignments for comparison purposes, gapped BLAST can be used as described in Altschul, S.F. et al., (1997), Nuc. Acids Res., 25:3389-3402, incorporated herein by reference in its entirety. Alternatively, PSI BLAST can be used to perform an iterated search that detects distant relationships (Id.) between molecules. When using BLAST, gapped BLAST, and PSI Blast programs, the default parameters of each program (e.g., XBLAST and NBLAST) can be used (see, e.g., the National Center for Biotechnology Information (NCBI) on the World Wide Web at ncbi.nlm.nih.gov).Another specific, non-limiting example of a mathematical algorithm utilized for comparing sequences is the algorithm of Myers and Miller, 1988, CABIOS, 4:11-17, which is incorporated herein by reference in its entirety. Such an algorithm is incorporated into the ALIGN program (version 2.0), which is part of the GCG sequence comparison software package. When utilizing the ALIGN program to compare amino acid sequences, a PAM120 weight residue table, a gap length penalty of 12, and a gap penalty of 4 can be used.

[0123] The percent identity between two sequences, whether or not there are gaps, can be determined using techniques similar to those described above. In calculating percent identity, typically only exact matches are counted.

[0124] As used herein, the term "internalization" or "internalized" refers to the uptake of an antibody into an intracellular compartment of a cell upon binding of the antibody to an antigen expressed on the surface of the cell.

[0125] 6.2 Anti-TIM-3 antibody In one aspect, the present disclosure provides antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and antagonize the function of TIM-3. The amino acid sequences of exemplary antibodies are set forth in Tables 1-4 herein. [Table 1-1] [Table 1-2] [Table 1-3] [Table 1-4] [Table 1-5] [Table 1-6] [Table 1-7] [Table 1-8] [Table 1-9] [Table 1-10] [Table 1-11] [Table 2] [Table 3] [Table 4] [Table 5] [Table 6]

[0126] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a VH domain that comprises one, two, or all three of the CDRs of a VH domain set forth in Table 1 herein. In certain embodiments, the antibody comprises a CDRH1 of one of the VH domains set forth in Table 1. In certain embodiments, the antibody comprises a CDRH2 of one of the VH domains set forth in Table 1. In certain embodiments, the antibody comprises a CDRH3 of one of the VH domains set forth in Table 1.

[0127] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a VL domain that comprises one, two, or all three of the CDRs of the VL domain set forth in Table 1 herein. In certain embodiments, the antibody comprises a CDRL1 of one of the VL domains set forth in Table 1. In certain embodiments, the antibody comprises a CDRL2 of one of the VL domains set forth in Table 1. In certain embodiments, the antibody comprises a CDRL3 of one of the VL domains set forth in Table 1.

[0128] In certain embodiments, the CDRs of an antibody can be determined according to MacCallum, R. M. et al., (1996), J. Mol. Biol. 262:732-745, which is incorporated herein by reference in its entirety. See also, for example, Martin, A., "Protein Sequence and Structure Analysis of Antibody Variable Domains," in Antibody Engineering, Kontermann and Dubel, eds., Chapter 31, pp. 422-439, Springer-Verlag, Berlin (2001), which is incorporated herein by reference in its entirety. In certain embodiments, the heavy chain CDRs of the antibody are determined according to MacCallum, and the light chain CDRs of the antibody are determined according to a different method.

[0129] In certain embodiments, the CDRs of an antibody can be determined according to Kabat, et al., J. Biol. Chem. 252, 6609-6616 (1977) and Kabat, et al., Sequences of proteins of immunological interest. (1991), each of which is incorporated herein by reference in its entirety. In certain embodiments, the light chain CDRs of the antibody are determined according to Kabat, and the heavy chain CDRs of the antibody are determined according to MacCallum (supra).

[0130] In certain embodiments, the CDRs of an antibody can be determined according to the Chothia numbering scheme, which refers to the positions of the structural loops of an immunoglobulin (see, e.g., Chothia, C. and Lesk, A.M., (1987), J. Mol. Biol. 196:901-917; Al-Lazikani, B. et al., (1997), J. Mol. Biol. 273:927-948; Chothia, C. et al., (1992), J. Mol. Biol. 227:799-817; Tramontano, A. et al., (1990), J. Mol. Biol. 215(1):175-82; and U.S. Patent No. 7,709,226, all of which are incorporated by reference herein in their entireties). Typically, using the Kabat numbering convention, the Chothia CDRH1 loop is located at amino acids 26-32, 33, or 34 of the heavy chain, the Chothia CDRH2 loop is located at amino acids 52-56 of the heavy chain, and the Chothia CDRH3 loop is located at amino acids 95-102 of the heavy chain, while the Chothia CDRL1 loop is located at amino acids 24-34 of the light chain, the Chothia CDRL2 loop is located at amino acids 50-56 of the light chain, and the Chothia CDRL3 loop is located at amino acids 89-97 of the light chain. The ends of the loops in Chothia CDRH1, when numbered using the Kabat numbering convention, vary between H32 and H34 depending on the length of the loop (this is because the Kabat numbering scheme places insertions at H35A and H35B: if neither 35A nor 35B are present, the loop ends at 32; if only 35A is present, the loop ends at 33; and if both 35A and 35B are present, the loop ends at 34).

[0131] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises the CDRs of Chothia VH of the VH disclosed in Table 1 herein. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises the CDRs of Chothia VL of the VL disclosed in Table 1 herein. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises the CDRs of Chothia VH and the CDRs of Chothia VL of an antibody disclosed in Table 1 herein. In certain embodiments, an antibody that specifically binds to TIM-3 (e.g., human TIM-3) comprises one or more CDRs, wherein the Chothia and Kabat CDRs have identical amino acid sequences. In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (eg, human TIM-3) and that comprise a combination of the Kabat and Chothia CDRs.

[0132] In certain embodiments, the CDRs of an antibody can be determined according to the IMGT numbering system as described in Lefranc MP, (1999), The Immunologist, 7:132-136 and Lefranc MP, et al., (1999), Nucleic Acids Res. 27:209-212, each of which is incorporated herein by reference in its entirety. According to the IMGT numbering scheme, CDRH1 is located at positions 26-35, CDRH2 is located at positions 51-57, CDRH3 is located at positions 93-102, CDRL1 is located at positions 27-32, CDRL2 is located at positions 50-52, and CDRL3 is located at positions 89-97.

[0133] In certain embodiments, the present disclosure provides antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and comprise the CDRs of the antibodies disclosed in Table 1, e.g., as determined by the IMGT numbering system as described in Lefranc, MP, (1999) supra and Lefranc, MP, et al., (1999) supra.

[0134] In certain embodiments, the CDRs of an antibody can be determined according to the AbM numbering scheme, which refers to AbM hypervariable regions, which represent a compromise between the Kabat CDRs and Chothia structural loops, and are used by Oxford Molecular's AbM antibody modeling software (Oxford Molecular Group, Inc.), which is incorporated herein by reference in its entirety. In certain embodiments, the present disclosure provides antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and comprise the CDRs of the antibodies disclosed in Table 1 herein, as determined by the AbM numbering scheme.

[0135] In certain embodiments, the disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3), wherein the antibodies comprise a heavy chain variable region comprising the amino acid sequences of the CDRH1, CDRH2, and CDRH3 regions of the VH domain set forth in SEQ ID NO: 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, or 35, and a light chain variable region comprising the amino acid sequences of the CDRL1, CDRL2, and CDRL3 regions of the VL domain set forth in SEQ ID NO: 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, or 47, wherein each CDR is defined according to the MacCallum definition, the Kabat definition, the Chothia definition, a combination of the Kabat definition and the Chothia definition, the IMGT numbering system, or the AbM definition of a CDR.

[0136] In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3), comprising: (a) CDRH1 comprises the amino acid sequence X1X2X3X4X5S (SEQ ID NO: 48); In the array, X1 is R, S, A, G, K, M, or T; X2 is Q, S, A, G, R, or T; X3 is N, Y, G, or Q; X4 is A or Q, X5 is W, M, A, S, or T; (b) CDRH2 comprises the amino acid sequence of WVSAISGSGGSTY (SEQ ID NO: 2); (c) CDRH3 comprises the amino acid sequence of AKGGDYGGNYFD (SEQ ID NO: 3); (d) CDRL1 comprises the amino acid sequence of X1ASQSVX2SSYLA (SEQ ID NO: 52). In the array, X1 is R or G, X2 is absent or S; (e) CDRL2 comprises the amino acid sequence of X1ASX2RAT (SEQ ID NO: 53). In the array, X1 is D or G X2 is N, S, or T; (f) CDRL3 comprises the amino acid sequence of QQYGSSPX1T (SEQ ID NO: 54), wherein X1 is L or I.

[0137] In certain embodiments, CDRH1 comprises the amino acid sequence of X1X2NAWS (SEQ ID NO:49), wherein X1 is R or A; and X2 is Q or R. In certain embodiments, CDRH1 comprises the amino acid sequence of X1X2GQX3S (SEQ ID NO:50), wherein X1 is K, M, or G; X2 is A or S; and X3 is S or T. In certain embodiments, CDRH1 comprises the amino acid sequence of X1X2QQAS (SEQ ID NO:51), wherein X1 is S, R, T, or G; and X2 is A, S, T, or G. In certain embodiments, CDRH1 comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 1 and 4-12. In certain embodiments, CDRL1 comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 13-16. In certain embodiments, CDRL2 comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 17-21. In certain embodiments, CDRL3 comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 22 and 23.

[0138] In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a VH domain comprising the amino acid sequences of CDRH1, CDRH2, and CDRH3 set forth in SEQ ID NOs: 1, 2, and 3; 4, 2, and 3; 5, 2, and 3; 6, 2, and 3; 7, 2, and 3; 8, 2, and 3; 9, 2, and 3; 10, 2, and 3; 11, 2, and 3; or 12, 2, and 3. In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a VH domain comprising the amino acid sequences of CDRH1, CDRH2, and CDRH3 set forth in SEQ ID NOs: 1, 2, and 3, respectively. In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a VH domain comprising the amino acid sequences of CDRH1, CDRH2, and CDRH3 set forth in SEQ ID NOs: 5, 2, and 3, respectively. In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a VH domain comprising the amino acid sequences of CDRH1, CDRH2, and CDRH3 set forth in SEQ ID NOs: 9, 2, and 3, respectively.

[0139] In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a VL domain comprising the amino acid sequences of CDRL1, CDRL2, and CDRL3 set forth in SEQ ID NOs: 13, 17, and 22; 14, 17, and 22; 15, 18, and 22; 14, 19, and 22; 14, 20, and 22; 14, 21, and 22; 16, 20, and 22; or 14, 17, and 23. In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a VL domain comprising the amino acid sequences of CDRL1, CDRL2, and CDRL3 set forth in SEQ ID NOs: 14, 21, and 22, respectively.

[0140] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain variable region comprising CDRH1, CDRH2, and CDRH3 regions, and a light chain variable region comprising CDRL1, CDRL2, and CDRL3 regions, wherein CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 regions are set forth in SEQ ID NOs: 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, 99, 100, 101, , 14, 21, and 22; 4, 2, 3, 14, 21, and 22; 5, 2, 3, 14, 21, and 22; 6, 2, 3, 14, 21, and 22; 7, 2, 3, 14, 21, and 22; 8, 2, 3, 14, 21, and 22; 9, 2, 3, 14, 21, and 22; 10, 2, 3, 14, 21, and 22; 11, 2, 3, 14, 21, and 22; or 12, 2, 3, 14, 21, and 22. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain variable region comprising CDRH1, CDRH2, and CDRH3 regions, and a light chain variable region comprising CDRL1, CDRL2, and CDRL3 regions, wherein the CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 regions comprise the amino acid sequences set forth in SEQ ID NOs: 1, 2, 3, 14, 21, and 22, respectively. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain variable region comprising CDRH1, CDRH2, and CDRH3 regions, and a light chain variable region comprising CDRL1, CDRL2, and CDRL3 regions, wherein the CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 regions comprise the amino acid sequences set forth in SEQ ID NOs: 5, 2, 3, 14, 21, and 22, respectively.In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain variable region comprising CDRH1, CDRH2, and CDRH3 regions, and a light chain variable region comprising CDRL1, CDRL2, and CDRL3 regions, wherein the CDRH1, CDRH2, CDRH3, CDRL1, CDRL2, and CDRL3 regions comprise the amino acid sequences set forth in SEQ ID NOs: 9, 2, 3, 14, 21, and 22.

[0141] In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), comprising a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 55. In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), comprising a heavy chain variable region comprising an amino acid sequence that is at least 75%, 80%, 85%, 90%, 95%, or 100% (e.g., at least 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99%) identical to the amino acid sequence set forth in SEQ ID NO: 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, or 35. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, or 35. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 24. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 25. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 26. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 27. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 28. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 29. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 30. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 31. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 32. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 33. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 34. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 35.In certain embodiments, the N-terminal glutamic acid (E) residue of the heavy chain variable region of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue.

[0142] In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), comprising a light chain variable region comprising the amino acid sequence of SEQ ID NO: 56. In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), comprising a light chain variable region comprising an amino acid sequence that is at least 75%, 80%, 85%, 90%, 95%, or 100% (e.g., at least 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99%) identical to the amino acid sequence set forth in SEQ ID NO: 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, or 47. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, or 47. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 36. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 37. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 38. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 39. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 40. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 41. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 42. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 43. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 44. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 45. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 46. In certain embodiments, the antibody comprises a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 47.In certain embodiments, the N-terminal glutamic acid (E) residue of the light chain variable region of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue.

[0143] In certain embodiments, the disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3), comprising a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 55 and a light chain variable region comprising the amino acid sequence of SEQ ID NO: 56. In certain embodiments, the disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3), comprising a heavy chain variable region comprising an amino acid sequence that is at least 75%, 80%, 85%, 90%, 95%, or 100% (e.g., at least 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99%) identical to the amino acid sequence set forth in SEQ ID NO: 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, or 35, and a light chain variable region comprising an amino acid sequence that is at least 75%, 80%, 85%, 90%, 95%, or 100% (e.g., at least 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99%) identical to the amino acid sequence set forth in SEQ ID NO: 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66 and a light chain variable region comprising an amino acid sequence that is at least 75%, 80%, 85%, 90%, 95%, or 100% (e.g., at least 86, 87, 88, 89, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99%) identical to the amino acid sequence set forth in SEQ ID NO: 9, 40, 41, 42, 43, 44, 45, 46, or 47. In certain embodiments, the antibody comprises a heavy chain variable region having the amino acid sequence set forth in SEQ ID NO: 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, or 35, and a light chain variable region having the amino acid sequence set forth in SEQ ID NO: 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, or 47. In certain embodiments, the antibody comprises heavy and light chain variable regions having the amino acid sequences set forth in SEQ ID NOs: 24 and 36; 24 and 38; 26 and 42; 24 and 42; 24 and 46; 24 and 43; 26 and 43; 26 and 46; 26 and 41; 24 and 41; 25 and 39; 24 and 47; 25 and 40; 26 and 47; 25 and 37; 25 and 45; 25 and 44; 25 and 46; 25 and 42; 25 and 41; 25 and 43; 25 and 47; 27 and 46; 28 and 46; 29 and 46; 30 and 46; 31 and 46; 32 and 46; 33 and 46; 34 and 46; or 35 and 46. In certain embodiments, the antibody comprises heavy and light chain variable regions having the amino acid sequences set forth in SEQ ID NOs: 24 and 36, respectively.In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 24 and 38, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 26 and 42, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 24 and 42, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 24 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 24 and 43, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 26 and 43, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 26 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 26 and 41, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 24 and 41, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 39, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 24 and 47, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 40, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 26 and 47, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 37, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 45, respectively.In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 44, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 42, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 41, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 43, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 25 and 47, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 27 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 28 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 29 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 30 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 31 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 32 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 33 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 34 and 46, respectively. In certain embodiments, the antibody comprises a heavy chain variable region and a light chain variable region having the amino acid sequences set forth in SEQ ID NOs: 35 and 46, respectively.In certain embodiments, the N-terminal glutamic acid (E) residue of the heavy chain variable region of an antibody described herein is replaced with a pyroglutamic acid (pE) residue, and / or the N-terminal glutamic acid (E) residue of the light chain variable region of the antibody is replaced with a pyroglutamic acid (pE) residue.

[0144] In certain embodiments, the present disclosure provides a human IGHV3-23 germline sequence (e.g., an IGHV3-23 having the amino acid sequence of SEQ ID NO: 84). * The present invention provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), comprising a heavy chain variable region having an amino acid sequence derived from framework 1, framework 2, framework 3, CDRH1, and CDRH2 (e.g., 2, 3, 4, or 5 of these regions), wherein one or more regions selected from framework 1, framework 2, framework 3, CDRH1, and CDRH2 are selected from a human IGHV3-23 germline sequence (e.g., an IGHV3-23 having the amino acid sequence of SEQ ID NO: 84). * In one embodiment, framework 1, framework 2, framework 3, CDRH1, and CDRH2 can all be derived from a human IGHV3-23 germline sequence (e.g., an IGHV3-23 having the amino acid sequence of SEQ ID NO: 84). * 04).

[0145] In certain embodiments, the present disclosure provides IGKV1-27 (e.g., having the amino acid sequence of SEQ ID NO: 85, e.g., IGKV1-27 * 01), IGKV3-11 (e.g., having the amino acid sequence of SEQ ID NO: 86, e.g., IGKV3-11 * 01), IGKV3-20 (e.g., having the amino acid sequence of SEQ ID NO: 87, e.g., IGKV3-20 * 01), and IGKV3D-20 (e.g., having the amino acid sequence of SEQ ID NO: 88, e.g., IGKV3D-20 *and a light chain variable region having an amino acid sequence derived from a human germline sequence selected from the group consisting of framework 1, framework 2, framework 3, CDRL1, and CDRL2 (e.g., 2, 3, 4, or 5 of these regions). * 01), IGKV3-11 (e.g., having the amino acid sequence of SEQ ID NO: 86, e.g., IGKV3-11 * 01), IGKV3-20 (e.g., having the amino acid sequence of SEQ ID NO: 87, e.g., IGKV3-20 * 01), and IGKV3D-20 (e.g., having the amino acid sequence of SEQ ID NO: 88, e.g., IGKV3D-20 * In one embodiment, framework 1, framework 2, framework 3, CDRL1 and CDRL2 can all be derived from a human germline sequence selected from the group consisting of IGKV1-27 (e.g., having the amino acid sequence of SEQ ID NO: 85, e.g., IGKV1-27 * 01), IGKV3-11 (e.g., having the amino acid sequence of SEQ ID NO: 86, e.g., IGKV3-11 * 01), IGKV3-20 (e.g., having the amino acid sequence of SEQ ID NO: 87, e.g., IGKV3-20 * 01), and IGKV3D-20 (e.g., having the amino acid sequence of SEQ ID NO: 88, e.g., IGKV3D-20 * 01).

[0146] In certain embodiments, the present disclosure provides a human IGHV3-23 germline sequence (e.g., an IGHV3-23 having the amino acid sequence of SEQ ID NO: 84). * 04) and a heavy chain variable region having an amino acid sequence derived from IGKV1-27 (e.g., having the amino acid sequence of SEQ ID NO: 85, e.g., IGKV1-27 *01), IGKV3-11 (e.g., having the amino acid sequence of SEQ ID NO: 86, e.g., IGKV3-11 * 01), IGKV3-20 (e.g., having the amino acid sequence of SEQ ID NO: 87, e.g., IGKV3-20 * 01), and IGKV3D-20 (e.g., having the amino acid sequence of SEQ ID NO: 88, e.g., IGKV3D-20 * and a light chain variable region having an amino acid sequence derived from a human germline sequence selected from the group consisting of:

[0147] In certain embodiments, the present disclosure provides isolated antibodies that cross-compete for binding to TIM-3 (e.g., human TIM-3) with antibodies comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 24 and 36; 24 and 38; 26 and 42; 24 and 42; 24 and 46; 24 and 43; 26 and 43; 26 and 46; 26 and 41; 24 and 41; 25 and 39; 24 and 47; 25 and 40; 26 and 47; 25 and 37; 25 and 45; 25 and 44; 25 and 46; 25 and 42; 25 and 41; 25 and 43; 25 and 47; 27 and 46; 28 and 46; 29 and 46; 30 and 46; 31 and 46; 32 and 46; 33 and 46; 34 and 46; or 35 and 46, respectively.

[0148] In certain embodiments, the present disclosure provides antibodies described herein, for example, those represented by SEQ ID NOs: 24 and 36; 24 and 38; 26 and 42; 24 and 42; 24 and 46; 24 and 43; 26 and 43; 26 and 46; 26 and 41; 24 and 41; 25 and 39; 24 and 47; 25 and 40; 26 and 47; 25 and 37; 25 and 45; 25 and 44; 25 and 46; 25 and 42; 25 ... or 35 and 46.

[0023] Provided herein are isolated antibodies that bind to the same epitope of TIM-3 (e.g., human TIM-3) as, or an epitope overlapping with, that of, an antibody comprising the amino acid sequences of the heavy and light chain variable regions of any of the antibodies described in any of the preceding paragraphs. 43; 25 and 47; 27 and 46; 28 and 46; 29 and 46; 30 and 46; 31 and 46; 32 and 46; 33 and 46; 34 and 46; or 35 and 46. In certain embodiments, the epitope of the antibody can be determined by, for example, NMR spectroscopy, surface plasmon resonance (BIAcore®), X-ray diffraction crystallography, ELISA assays, hydrogen / deuterium exchange coupled with mass spectrometry (e.g., liquid chromatography electrospray mass spectrometry), array-based oligo-peptide scanning assays, and / or mutagenesis mapping (e.g., site-directed mutagenesis mapping). For X-ray crystallography, crystallization may be achieved using any of the methods known in the art (e.g., Giege R. et al., (1994), Acta Crystallogr D Biol Crystallogr, 50(Pt 4):339-350; McPherson, A. (1990), Eur. J. Biochem. 189:1-23; Chayen. NE, (1997), Structure, 5:1269-1274; McPherson, A. (1976), J. Biol. Chem. 251:6300-6303, all of which are incorporated herein by reference in their entireties).Antibody:antigen crystals may be studied using well-known X-ray diffraction techniques, such as X-PLOR (Yale University, 1992, distributed by Molecular Simulations, Inc.; see, e.g., Meth. Enzymol. (1985), volumes 114 & 115, eds., Wyckoff, HW. et al.; US2004 / 0014194), and BUSTER (Bricogne G (1993), Acta. Crystallogr. D Biol. Crystallogr. 49 (Pt 1): 37-60; Bricogne G (1997), Meth. Enzymol. 276A: 361-423, ed. Carter, CW; Roversi, P. et al., (2000), Acta. Crystallogr. D Biol. Crystallogr. 56 (Pt 10):1316-1323, all of which are incorporated herein by reference in their entirety. Mutagenesis mapping studies may be accomplished using methods known to those of skill in the art. For descriptions of mutagenesis methods, including alanine scanning mutagenesis, see, e.g., Champe, M et al., (1995), supra, and Cunningham, B.C. and Wells, J.A. (1989), supra. In specific embodiments, the epitope of an antibody is determined using alanine scanning mutagenesis. Additionally, antibodies that recognize and bind to the same or overlapping epitope of TIM-3 (e.g., human TIM-3) can be identified using routine techniques such as immunoassays, e.g., by demonstrating the ability of the antibody to block the binding of another antibody to the target antigen, i.e., by competitive binding assays. Competitive binding assays can be used to determine whether two antibodies have similar binding specificities for an epitope. Competitive binding can be determined in an assay in which the immunoglobulin under test inhibits specific binding of a reference antibody to a common antigen, such as, for example, TIM-3 (eg, human TIM-3).Numerous competitive binding assays are available, such as solid-phase direct or indirect radioimmunoassays (RIAs), solid-phase direct or indirect enzyme immunoassays (EIAs), sandwich competition assays (see Stahlli, C. et al., (1983), Methods Enzymol. 9:242-253); solid-phase direct biotin-avidin EIA (see Kirkland, T. N. et al., (1986), J. Immunol. 137:3614-9); solid-phase direct label assays, solid-phase direct label sandwich assays (see Harlow, E. and Lane, D. (1988), Antibodies: A Laboratory Manual, Cold Spring Harbor Press); solid-phase direct label RIA using I-125 label (Morel, G. A. et al., (1988), Antibodies: A Laboratory Manual, Cold Spring Harbor Press); al., (1988), Mol. Immunol. 25(1):7-15); solid-phase direct biotin-avidin EIA (see Cheung, R.C. et al., (1990), Virology, 176:546-52); and direct labeling RIA (see Moldenhauer, G. et al., (1990), Scand. J. Immunol. 32:77-82). Typically, such assays involve the use of purified antigen (e.g., TIM-3, such as human TIM-3), unlabeled test immunoglobulin, and labeled reference immunoglobulin bound to a solid surface or cells bearing one of these. Competitive inhibition can be measured by determining the amount of label bound to the solid surface or cells in the presence of the test immunoglobulin. Typically, the test immunoglobulin is present in excess. Typically, when a competing antibody is present in excess, it will inhibit the specific binding of a reference antibody to a common antigen by at least 50-55%, 55-60%, 60-65%, 65-70%, 70-75%, or more. Competitive binding assays can be configured in a number of different formats using either labeled antigen or labeled antibody. In a common version of this assay, the antigen is immobilized in a 96-well plate. The ability of unlabeled antibodies to block the binding of the labeled antibody to the antigen is then measured using a radioactive or enzymatic label.For further details, see, e.g., Wagener, C. et al., (1983), J. Immunol. 130:2308-2315; Wagener, C. et al., (1984), J. Immunol Methods, 68:269-274; Kuroki, M. et al., (1990), Cancer Res. 50:4872-4879; Kuroki, M. et al., (1992), Immunol. Invest. 21:523-538; Kuroki, M. et al., (1992) Hybridoma, 11:391-407 and Antibodies: A Laboratory Manual, Ed Harlow E & Lane D editors, supra, pp. 386-389, all of which are incorporated herein by reference in their entireties.

[0149] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, or 68. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 57. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 58. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 59. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 60. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 61. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 62. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 63. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 64. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 65. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 66. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 67. In certain embodiments, the antibody comprises a heavy chain comprising the amino acid sequence set forth in SEQ ID NO: 68. In certain embodiments, the N-terminal glutamic acid (E) residue of the heavy chain of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue.

[0150] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a light chain comprising the amino acid sequence set forth in SEQ ID NO: 69. In certain embodiments, the N-terminal glutamic acid (E) residue of the light chain of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue.

[0151] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO:57 and a light chain comprising the amino acid sequence of SEQ ID NO:69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO:58 and a light chain comprising the amino acid sequence of SEQ ID NO:69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO:59 and a light chain comprising the amino acid sequence of SEQ ID NO:69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO:60 and a light chain comprising the amino acid sequence of SEQ ID NO:69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 61 and a light chain comprising the amino acid sequence of SEQ ID NO: 69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 62 and a light chain comprising the amino acid sequence of SEQ ID NO: 69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 63 and a light chain comprising the amino acid sequence of SEQ ID NO: 69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 64 and a light chain comprising the amino acid sequence of SEQ ID NO: 69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 65 and a light chain comprising the amino acid sequence of SEQ ID NO: 69.In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 66 and a light chain comprising the amino acid sequence of SEQ ID NO: 69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 67 and a light chain comprising the amino acid sequence of SEQ ID NO: 69. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 68 and a light chain comprising the amino acid sequence of SEQ ID NO: 69. In certain embodiments, the N-terminal glutamic acid (E) residue of the heavy chain of an antibody as described herein is replaced with a pyroglutamic acid (pE) residue and / or the N-terminal glutamic acid (E) residue of the light chain of the antibody is replaced with a pyroglutamic acid (pE) residue.

[0152] Any Ig constant region can be used in the antibodies disclosed herein. In certain embodiments, the Ig region is a human IgG, IgE, IgM, IgD, IgA, or IgY immunoglobulin molecule, any class of immunoglobulin molecule (e.g., IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2), or any subclass (e.g., IgG 2a and IgG 2b )

[0153] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 70, 71, 72, 73, 74, or 75. In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a light chain constant region comprising the amino acid sequence of SEQ ID NO: 76 or 77.

[0154] In certain embodiments, one or more mutations (e.g., amino acid substitutions) are introduced into the Fc region (e.g., the CH2 domain (residues 231-340 of human IgG1) and / or the CH3 domain (residues 341-447 of human IgG1) and / or hinge region) of an antibody described herein, numbered according to the EU numbering system, to alter one or more functional properties of the antibody, such as, for example, serum half-life, complement fixation, Fc receptor binding, and / or antigen-dependent cellular cytotoxicity.

[0155] In certain embodiments, one or more mutations (e.g., amino acid substitutions) are introduced into the hinge region of the Fc region (CH1 domain) to alter (e.g., increase or decrease) the number of cysteine residues in the hinge region, as described in U.S. Patent No. 5,677,425, which is incorporated herein by reference in its entirety. The number of cysteine residues in the hinge region of the CH1 domain may be altered to, for example, facilitate assembly of the light and heavy chains or to alter (e.g., increase or decrease) the stability of the antibody.

[0156] In a specific embodiment, one or more amino acid mutations (e.g., substitutions, insertions, or deletions) are introduced into the constant region of an IgG or FcRn-binding fragment thereof (preferably an Fc or hinge-Fc domain fragment) to alter (e.g., decrease or increase) the half-life of the antibody in vivo. See, e.g., International Publication Nos. WO 02 / 060919; WO 98 / 23289; and WO 97 / 34631; and U.S. Patent Nos. 5,869,046, 6,121,022, 6,277,375, and 6,165,745, all of which are incorporated by reference in their entireties, for examples of mutations that alter (e.g., decrease or increase) the half-life of an antibody in vivo. In some embodiments, one or more amino acid mutations (e.g., substitutions, insertions, or deletions) are introduced into the IgG constant region or FcRn-binding fragment thereof (preferably a fragment of the Fc or hinge-Fc domain) to decrease the half-life of the antibody in vivo. In other embodiments, one or more amino acid mutations (e.g., substitutions, insertions, or deletions) are introduced into the IgG constant region or FcRn-binding fragment thereof (preferably a fragment of the Fc or hinge-Fc domain) to increase the half-life of the antibody in vivo. In specific embodiments, the antibody may have one or more amino acid mutations (e.g., substitutions) in the second constant (CH2) domain (residues 231-340 of human IgG1) and / or the third constant (CH3) domain (residues 341-447 of human IgG1), numbered according to the EU numbering system. In a specific embodiment, the IgG1 constant region of an antibody described herein comprises a methionine (M) to tyrosine (Y) substitution at position 252, a serine (S) to threonine (T) substitution at position 254, and a threonine (T) to glutamic acid (E) substitution at position 256, numbered according to the EU numbering system. See U.S. Patent No. 7,658,921, incorporated herein by reference in its entirety. Mutants of this type, termed "YTE mutants," have been shown to exhibit a four-fold increased half-life compared to the wild-type form of the same antibody (see Dall'Acqua, WF. et al., (2006), J. Biol. Chem. 281:23514-24, incorporated herein by reference in its entirety).In certain embodiments, the antibody comprises an IgG constant domain comprising one, two, three or more amino acid substitutions of amino acid residues at positions 251-257, 285-290, 308-314, 385-389, and 428-436, numbered according to the EU numbering system.

[0157] In some embodiments, one or more mutations (e.g., amino acid substitutions) are introduced in the Fc region (e.g., the CH2 domain (residues 231-340 of human IgG1) and / or the CH3 domain (residues 341-447 of human IgG1) and / or hinge region) of an antibody described herein, numbered according to the EU numbering system, to increase or decrease the affinity of the antibody for an Fc receptor (e.g., an activating Fc receptor) on the surface of an effector cell. Mutations in the Fc region of an antibody that decrease or increase the affinity of the antibody for an Fc receptor and techniques for introducing such mutations into an Fc receptor or fragment thereof are known to those of skill in the art. Examples of mutations in the Fc receptor of an antibody that can be made to alter the affinity of the antibody for an Fc receptor can be found, for example, in Smith, P. et al., J. Immunol. 1999, 123:111-112, which are incorporated herein by reference in their entirety. al., (2012), PNAS, 109:6181-6186, U.S. Patent No. 6,737,056 and International Publication Nos. WO02 / 060919; WO98 / 23289; and WO97 / 34631.

[0158] In further embodiments, one or more amino acid substitutions are introduced into the Fc region of the IgG constant domain to alter the effector function(s) of the antibody. For example, one or more amino acid residues selected from amino acid residues 234, 235, 236, 237, 297, 318, 320, and 322, numbered according to the EU numbering system, can be replaced with different amino acid residues such that the antibody has altered affinity for an effector ligand but retains the antigen-binding ability of the parent antibody. The effector ligand for which affinity is altered can be, for example, an Fc receptor or the C1 component of complement. This approach is described in further detail in U.S. Patent Nos. 5,624,821 and 5,648,260, each of which is incorporated herein by reference in its entirety. In some embodiments, deletion or inactivation of the constant region domain (via point mutation or other means) may reduce Fc receptor binding of circulating antibodies, thereby increasing tumor localization. See, e.g., U.S. Patent Nos. 5,585,097 and 8,591,886, each of which is incorporated by reference in its entirety, for a description of mutations that delete or inactivate constant domains, thereby increasing tumor localization. In certain embodiments, one or more amino acid substitutions may be introduced in the Fc region of an antibody described herein to remove potential glycosylation sites in the Fc region, which may reduce Fc receptor binding (see, e.g., Shields, R.L. et al., (2001), J. Biol. Chem. 276:6591-604, incorporated by reference in its entirety). In various embodiments, one or more of the following mutations in the constant regions of the antibodies described herein may be made: an N297A substitution; an N297Q substitution; an L235A and an L237A substitution; an L234A and an L235A substitution; an E233P substitution; an L234V substitution; an L235A substitution; a deletion of C236; a P238A substitution; a D265A substitution; an A327Q substitution; or a P329A substitution, numbered according to the EU numbering system.In certain embodiments, a mutation selected from the group consisting of D265A, P329A, and combinations thereof, numbered according to the EU numbering system, may be made in the constant region of an antibody described herein.

[0159] In specific embodiments, the antibodies described herein comprise an IgG1 constant domain with an N297Q or N297A amino acid substitution, numbered according to the EU numbering system. In one embodiment, the antibodies described herein comprise an IgG1 constant domain with a mutation selected from the group consisting of D265A, P329A, and combinations thereof, numbered according to the EU numbering system. In another embodiment, the antibodies described herein comprise an IgG1 constant domain with a mutation selected from the group consisting of L234A, L235A, and combinations thereof, numbered according to the EU numbering system. In certain embodiments, the amino acid residues in the constant regions of the antibodies described herein at positions corresponding to positions L234, L235, and D265 in the human IgG1 heavy chain, numbered according to the EU numbering system, are not L, L, and D, respectively. This approach is described in detail in International Publication No. WO 14 / 108483, which is incorporated herein by reference in its entirety. In a particular embodiment, the amino acids corresponding to positions L234, L235 and D265 in a human IgG1 heavy chain, numbered according to the EU numbering system, are F, E and A or A, A and A, respectively.

[0160] In certain embodiments, one or more amino acids selected from amino acid residues 329, 331, and 322, numbered according to the EU numbering system, in the constant region of an antibody described herein can be replaced with a different amino acid residue such that the antibody has altered C1q binding and / or reduced or abolished complement-dependent cytotoxicity (CDC). This approach is described in further detail in U.S. Patent No. 6,194,551 (Idusogie, et al.), incorporated herein by reference in its entirety. In some embodiments, one or more amino acid residues within amino acid positions 231-238, numbered according to the EU numbering system, in the N-terminal region of the CH2 domain of an antibody described herein are altered, thereby altering the antibody's ability to fix complement. This approach is further described in International Publication No. WO 94 / 29351, incorporated herein by reference in its entirety. In certain embodiments, the following positions, numbered according to the EU numbering system: 238, 239, 248, 249, 252, 254, 255, 256, 258, 265, 267, 268, 269, 270, 272, 276, 278, 280, 283, 285, 286, 289, 290, 292, 293, 294, 295, 296, 298, 301, 303, 305, 307, 309, 312, 315, 320, 322, 324, 326, 327, 328, 329, 330, 331, 332, 333, 334, 335, 336, 337, 338, 339, 340, 341, 342, 343, 344, 345, 346, 347, 348, 349, 350, 351, 352, 353, 354, 355, 356, 357, 358, 359, 360, 361, 362, 363, 364, 365, 366, 367, 368, 369, 370, 371, 372, 373, 374, 375, 376, 377, 378, 379, 380, 381, 382, 383, 384, 38 The Fc region of the antibodies described herein is modified by mutating (e.g., introducing amino acid substitutions) one or more amino acids at 33, 334, 335, 337, 338, 340, 360, 373, 376, 378, 382, 388, 389, 398, 414, 416, 419, 430, 434, 435, 437, 438, or 439 to enhance the ability of the antibody to mediate antibody-dependent cellular cytotoxicity (ADCC) and / or increase the affinity of the antibody for Fcγ receptors. This approach is further described in International Publication No. WO 00 / 42072, which is incorporated herein by reference in its entirety.

[0161] In certain embodiments, the antibodies described herein comprise the constant region of an IgG4 antibody, wherein the serine at amino acid residue 228 of the heavy chain, numbered according to the EU numbering system, is substituted with a proline. In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 74. In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein the antibody comprises a heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 75.

[0162] In certain embodiments, any of the constant region mutations or modifications described herein can be introduced into one or both heavy chain constant regions of an antibody described herein that has two heavy chain constant regions.

[0163] In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (eg, human TIM-3) and function as antagonists.

[0164] In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and reduce the activity of TIM-3 (e.g., human TIM-3) by at least 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% compared to the activity of TIM-3 (e.g., human TIM-3) without the antibody or with an unrelated antibody (e.g., an antibody that does not specifically bind to TIM-3 (e.g., human TIM-3)), as assessed by methods described herein and / or methods known to one of skill in the art. In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and reduce the activity of TIM-3 (e.g., human TIM-3) by at least about 1.2-fold, 1.3-fold, 1.4-fold, 1.5-fold, 2-fold, 2.5-fold, 3-fold, 3.5-fold, 4-fold, 4.5-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold, 15-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, or 100-fold, compared to the activity of TIM-3 (e.g., human TIM-3) without the antibody or with an unrelated antibody (e.g., an antibody that does not specifically bind to TIM-3 (e.g., human TIM-3)), as assessed by methods described herein and / or methods known to one of skill in the art. Non-limiting examples of TIM-3 (e.g., human TIM-3) activity can include TIM-3 (e.g., human TIM-3) signaling, TIM-3 (e.g., human TIM-3) binding to a TIM-3 (e.g., human TIM-3) ligand (e.g., phosphatidylserine), and inhibition of cytokine (e.g., IFN-γ and / or TNF-α) production. In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and inactivate, reduce, or inhibit TIM-3 (e.g., human TIM-3) activity. In specific embodiments, reduction of TIM-3 (e.g., human TIM-3) activity is assessed as described in the Examples below.

[0165] In specific embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and reduce binding of TIM-3 (e.g., human TIM-3) to its ligand (e.g., phosphatidylserine) by at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% compared to binding of TIM-3 (e.g., human TIM-3) to its ligand (e.g., phosphatidylserine) without the antibody or with an unrelated antibody (e.g., an antibody that does not specifically bind TIM-3 (e.g., human TIM-3)), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art. In specific embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and reduce binding of TIM-3 (e.g., human TIM-3) to its ligand (e.g., phosphatidylserine) by at least about 1.2-fold, 1.3-fold, 1.4-fold, 1.5-fold, 2-fold, 2.5-fold, 3-fold, 3.5-fold, 4-fold, 4.5-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold, 15-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, or 100-fold, compared to binding of TIM-3 (e.g., human TIM-3) to its ligand (e.g., phosphatidylserine) without the antibody or with an unrelated antibody (e.g., an antibody that does not specifically bind TIM-3 (e.g., human TIM-3)), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art.

[0166] In specific embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and enhance cytokine production (e.g., IFNγ and / or TNFα) by at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% compared to cytokine production without the antibody or with an unrelated antibody (e.g., an antibody that does not specifically bind to TIM-3 (e.g., human TIM-3)), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art. In specific embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and enhance cytokine production (e.g., IFNγ and / or TNFα) by at least about 1.2-fold, 1.3-fold, 1.4-fold, 1.5-fold, 2-fold, 2.5-fold, 3-fold, 3.5-fold, 4-fold, 4.5-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold, 15-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, or 100-fold relative to cytokine production without the antibody or with an unrelated antibody (e.g., an antibody that does not specifically bind to TIM-3 (e.g., human TIM-3)), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art.

[0167] In specific embodiments, the present disclosure provides a method for the treatment of cancers that specifically bind to TIM-3 (e.g., human TIM-3) and, alone or in combination with an anti-PD-1 antibody (e.g., pembrolizumab or nivolumab), do not specifically bind to an antibody or an unrelated antibody (e.g., an antibody that does not specifically bind to TIM-3 (e.g., human TIM-3)), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art. and an isolated antibody that enhances IFNγ production by at least about 1.2-fold, 1.3-fold, 1.4-fold, 1.5-fold, 2-fold, 2.5-fold, 3-fold, 3.5-fold, 4-fold, 4.5-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold, 15-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, or 100-fold relative to IFNγ production in human peripheral blood mononuclear cells (PBMCs) in response to stimulation with Staphylococcal enterotoxin A (SEA) accompanied by

[0168] In certain embodiments, human peripheral blood mononuclear cells (PBMCs) stimulated with staphylococcal enterotoxin (SEA) in the presence of an antibody described herein that specifically binds to TIM-3 (e.g., human TIM-3) exhibit at least about 1.2-fold, 1.3-fold, 1.4-fold, 1.5-fold, 2-fold, 2.5-fold, 3-fold, 3.5-fold, 4-fold, 4.5-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold, 15-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, or 100-fold increased IFNγ production compared to PBMCs stimulated with SEA alone without antibody or with an irrelevant antibody (e.g., an antibody that does not specifically bind to TIM-3 (e.g., human TIM-3)), as assessed by methods described herein (see Examples, below) and / or methods known to one of skill in the art.

[0169] In specific embodiments, the present disclosure provides an anti-CD3 antibody and an anti-PD-1 antibody that specifically bind to TIM-3 (e.g., human TIM-3) and that, alone or in combination with an anti-PD-1 antibody (e.g., pembrolizumab or nivolumab), are not accompanied by an antibody that specifically binds to TIM-3 (e.g., human TIM-3), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art. The production of IFNγ and / or TNFα is increased by at least about 1.2-fold, 1.3-fold, 1.4-fold, 1.5-fold, 2-fold, 2.5-fold, 3-fold, 3.5-fold, 4-fold, 4.5-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold, 15-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, or 100-fold compared to the production of IFNγ and / or TNFα in tumor-infiltrating lymphocytes (TILs) in response to stimulation with the D28 antibody. In one embodiment, the TILs are derived from a non-small cell lung cancer (NSCLC) tumor. In another embodiment, the TILs are derived from a gallbladder adenocarcinoma tumor. In another embodiment, the TILs are derived from a breast cancer tumor.

[0170] In certain embodiments, tumor-infiltrating lymphocytes (TILs) stimulated with anti-CD3 and anti-CD28 antibodies in the presence of an antibody described herein that specifically binds TIM-3 (e.g., human TIM-3) exhibit at least about 1.2-fold, 1.3-fold, 1.4-fold, 1.5-fold, 2-fold, 2.5-fold, 3-fold, 3.5-fold, 4-fold, 4.5-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold, 15-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, or 100-fold increased production of IFNγ and / or TNFα compared to TILs stimulated with anti-CD3 and anti-CD28 antibodies alone without an antibody that specifically binds TIM-3 (e.g., human TIM-3), as assessed by methods described herein (see Examples, below) and / or methods known to one of skill in the art. In one embodiment, the TILs are derived from a non-small cell lung cancer (NSCLC) tumor. In another embodiment, the TILs are derived from a gallbladder adenocarcinoma tumor. In another embodiment, the TILs are derived from a breast cancer tumor.

[0171] In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3) and internalize upon binding to cells expressing TIM-3 (e.g., human TIM-3). In specific embodiments, at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibodies described herein internalize upon binding to cells expressing TIM-3 (e.g., human TIM-3), as assessed by the methods described herein (see Examples below) or methods known to those of skill in the art. In certain embodiments, an antibody is prepared by the following steps: (a) 2 × 10 cells per well in tissue culture plates 4 seeding cells expressing TIM-3 (e.g., human TIM-3) in the cells; (b) adding the same concentrations of αHFc-NC-DM1 and an antibody described herein or a reference anti-TIM-3 (e.g., human TIM-3) antibody (e.g., 1.5 ng / ml, 4.6 ng / ml, 13.7 ng / ml, 41.2 ng / ml, 123.5 ng / ml, 370 ng / ml, 1111 ng / ml, or 3333 ng / ml) in a final volume of 100 μl / well; (c) incubating at 37°C and 5% CO2 for 72 hours; (d) measuring the survival of cells expressing TIM-3 (e.g., human TIM-3); (e) calculating the percentage of cell survival compared to untreated cells expressing TIM-3 (e.g., human TIM-3), A lower proportion of cells expressing TIM-3 (e.g., human TIM-3) survives in the presence of an antibody described herein than in the presence of a reference anti-TIM-3 (e.g., human TIM-3) antibody. In certain embodiments, the proportion of cells present in the presence of an antibody described herein is at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% lower than the proportion of cells present in the presence of a reference anti-TIM-3 (e.g., human TIM-3) antibody. In certain embodiments, the proportion of cells present in the presence of an antibody described herein is at least about 1.2-fold, 1.3-fold, 1.4-fold, 1.5-fold, 2-fold, 2.5-fold, 3-fold, 3.5-fold, 4-fold, 4.5-fold, 5-fold, 6-fold, 7-fold, 8-fold, 9-fold, 10-fold, 15-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, or 100-fold lower than the proportion of cells present in the presence of a reference anti-TIM-3 (e.g., human TIM-3) antibody. In certain embodiments, the reference anti-TIM-3 (e.g., human TIM-3) antibody is pab1944w (IgG1, N297A). In certain embodiments, the reference anti-TIM-3 (e.g., human TIM-3) antibody is Hum11 (IgG4, S228P). In certain embodiments, the cells expressing TIM-3 (e.g., human TIM-3) are Kasumi-3 cells. In certain embodiments, the cells expressing TIM-3 (e.g., human TIM-3) are Kasumi-3 cells (ATCC® CRL-2725™). In certain embodiments, the cells expressing TIM-3 (e.g., human TIM-3) are Jurkat cells engineered to express TIM-3 (e.g., human TIM-3).

[0172] In certain embodiments, the steps of: (a) 2 × 10 cells per well in tissue culture plates 4 seeding cells expressing TIM-3 (e.g., human TIM-3) in the cells; (b) adding the same concentrations of αHFc-NC-DM1 and an antibody described herein (e.g., 1.5 ng / ml, 4.6 ng / ml, 13.7 ng / ml, 41.2 ng / ml, 123.5 ng / ml, 370 ng / ml, 1111 ng / ml, or 3333 ng / ml) in a final volume of 100 μl / well; (c) incubating at 37°C and 5% CO2 for 72 hours; (d) measuring the survival of cells expressing TIM-3 (e.g., human TIM-3); (e) calculating the percentage of cell survival compared to untreated cells expressing TIM-3 (e.g., human TIM-3), At most 50% of cells expressing TIM-3 (e.g., human TIM-3) survive in the presence of an antibody described herein compared to untreated cells expressing TIM-3 (e.g., human TIM-3). In certain embodiments, at most 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, or 50% of cells expressing TIM-3 (e.g., human TIM-3) survive in the presence of an antibody described herein compared to untreated cells expressing TIM-3 (e.g., human TIM-3). In certain embodiments, αHFc-NC-DM1 and an antibody described herein are added at a concentration of 1111 ng / ml, and at most 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, or 50% of cells expressing TIM-3 (e.g., human TIM-3) survive in the presence of an antibody described herein compared to untreated cells expressing TIM-3 (e.g., human TIM-3). In certain embodiments, αHFc-NC-DM1 and an antibody described herein are added at a concentration of 1111 ng / ml, and at most 50% of cells expressing TIM-3 (e.g., human TIM-3) survive in the presence of an antibody described herein compared to untreated cells expressing TIM-3 (e.g., human TIM-3).

[0173] In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody comprises a CDRH1 comprising the amino acid sequence of X1X2X3X4X5S (SEQ ID NO: 48). In the array, X1 is R, S, A, G, K, M, or T; X2 is Q, S, A, G, R, or T; X3 is N, Y, G, or Q; X4 is A or Q, X5 is W, M, A, S, or T.

[0174] In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3) as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody comprises a CDRH1 comprising the amino acid sequence of X1X2NAWS (SEQ ID NO: 49); In the array, X1 is R or A; X2 is Q or R.

[0175] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3) as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody comprises a CDRH1 comprising the amino acid sequence of X1X2GQX3S (SEQ ID NO: 50); In the array: X1 is K, M, or G; X2 is A or S; X3 is S or T.

[0176] In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3) as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, and wherein the antibody comprises a CDRH1 comprising the amino acid sequence of X1X2QQAS (SEQ ID NO: 51); In the array: X1 is S, R, T, or G; X2 is A, S, T, or G.

[0177] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody comprises a CDRH2 comprising the amino acid sequence of WVSAISGSGGSTY (SEQ ID NO: 2).

[0178] In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody comprises a CDRH3 comprising the amino acid sequence of AKGGDYGGNYFD (SEQ ID NO: 3).

[0179] In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3) as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody comprises a CDRL1 comprising the amino acid sequence of X1ASQSVX2SSYLA (SEQ ID NO: 52); In the array, X1 is R or G, X2 is absent or S.

[0180] In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3) as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody comprises a CDRL2 comprising the amino acid sequence of X1ASX2RAT (SEQ ID NO: 53); In the array, X1 is D or G X2 is N, S, or T.

[0181] In certain embodiments, the disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3) as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody comprises a CDRL3 comprising the amino acid sequence of QQYGSSPX1T (SEQ ID NO: 54); In the sequence, X1 is L or I.

[0182] In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to cells expressing TIM-3 (e.g., human TIM-3), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody specifically binds to TIM-3 (e.g., human TIM-3). For binding, they cross-compete with antibodies comprising the amino acid sequences of the heavy and light chain variable regions set forth in SEQ ID NOs: 24 and 36; 24 and 38; 26 and 42; 24 and 42; 24 and 46; 24 and 43; 26 and 43; 26 and 46; 26 and 41; 24 and 41; 25 and 39; 24 and 47; 25 and 40; 26 and 47; 25 and 37; 25 and 45; 25 and 44; 25 and 46; 25 and 42; 25 and 41; 25 and 43; 25 and 47; 27 and 46; 28 and 46; 29 and 46; 30 and 46; 31 and 46; 32 and 46; 33 and 46; 34 and 46; or 35 and 46, respectively.

[0183] In certain embodiments, the present disclosure provides isolated antibodies that specifically bind to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to a cell expressing TIM-3 (e.g., human TIM-3), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody is an antibody described herein, e.g., SEQ ID NOs: 24 and 36, respectively; 24 and 38; 26 and 42; 24 and 42; 24 and 46; 24 and 43; 26 and 43; 26 and 46; 26 and 41; 24 and 41; 25 and 39; 24 and 47; 25 and 40; 26 and 47; 25 and 37; 25 and 45; 25 and 44; 25 and 46; 25 and 42; 25 and 41; 25 and 43; 25 and 47; 27 and 46; 28 and 46; 29 and 46; 30 and 46; 31 and 46; 32 and 46; 33 and 46; 34 and 46; or 35 and 46.

[0184] In certain embodiments, the present disclosure provides an isolated antibody that specifically binds to TIM-3 (e.g., human TIM-3), wherein at least about 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, or 99% of the antibody is internalized upon binding to cells expressing TIM-3 (e.g., human TIM-3), as assessed by the methods described herein (see Examples below) and / or methods known to one of skill in the art, wherein the antibody comprises a human IgG heavy chain constant region that is a variant of the heavy chain constant region of wild-type human IgG, and wherein the variant human IgG heavy chain constant region binds to human Fc gamma receptor with a lower affinity than the wild-type human IgG heavy chain constant region binds to human Fc gamma receptor. In a specific embodiment, the human Fc gamma receptor is selected from the group consisting of FcγRI, FcγRII, and FcγRIII. In a specific embodiment, the heavy chain constant region of the variant human IgG is an IgG1 constant region containing an N297A mutation, numbered according to the EU numbering system.

[0185] 6.3 Pharmaceutical Compositions Provided herein are compositions comprising an anti-TIM-3 (e.g., human TIM-3) antibody described herein having a desired degree of purity in a physiologically acceptable carrier, excipient, or stabilizer (Remington's Pharmaceutical Sciences, (1990), Mack Publishing Co., Easton, PA). Acceptable carriers, excipients, or stabilizers are nontoxic to recipients at the dosages and concentrations employed and include, for example, 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 alcohol, or benzyl alcohol; alkyl parabens such as methylparaben or propylparaben; catechol; resorcinol; cyclohexanol; 3-pentanol, and m-cresol); low molecular weight (less than 10 residues) polypeptides; for example, serum albumin, gelatin, and the like. hydrophilic polymers, such as polyvinylpyrrolidone; amino acids, such as glycine, glutamine, asparagine, histidine, arginine, or lysine; monosaccharides, disaccharides, glucose, mannose, or other carbohydrates, including 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 TWEEN (labeled), PLURONICS (labeled), or polyethylene glycol (PEG).

[0186] In a specific embodiment, a pharmaceutical composition comprises an anti-TIM-3 (e.g., human TIM-3) antibody described herein in a pharmaceutically acceptable carrier, and optionally one or more additional prophylactic or therapeutic agents. In a specific embodiment, a pharmaceutical composition comprises an effective amount of an antibody described herein in a pharmaceutically acceptable carrier, and optionally one or more additional prophylactic or therapeutic agents. In some embodiments, the antibody is the only active ingredient in the pharmaceutical composition. The pharmaceutical compositions described herein inhibit TIM-3 (e.g., human TIM-3) activity and can be useful for treating conditions such as cancer or infectious diseases. In one embodiment, the invention relates to a pharmaceutical composition of the invention comprising an anti-TIM-3 antibody of the invention for use as a medicament. In another embodiment, the invention relates to a pharmaceutical composition of the invention for use in a method for treating cancer or infectious diseases. In another embodiment, the invention relates to the use of a pharmaceutical composition of the invention for preparing a medicament for treating cancer or infectious diseases.

[0187] Pharmaceutically acceptable carriers used in parenteral formulations include aqueous solvents, non-aqueous solvents, antibacterial agents, isotonic agents, buffers, antioxidants, local anesthetics, suspending and dispersing agents, emulsifying agents, sequestrants or chelating agents, and other pharmaceutically acceptable substances. Examples of aqueous solvents include sodium chloride injection, Ringer's injection, isotonic dextrose injection, sterile water injection, dextrose and lactated Ringer's injection. Non-aqueous parenteral solvents include fixed oils of vegetable origin, cottonseed oil, corn oil, sesame oil, and peanut oil. Antibacterial agents at bacteriostatic or fungistatic concentrations, including phenols or cresols, mercurials, benzyl alcohol, chlorobutanol, methyl and propyl p-hydroxybenzoic acid esters, thimerosal, benzalkonium chloride, and benzethonium chloride, can be added to parenteral formulations packaged in multidose containers. Isotonic agents include sodium chloride and dextrose. Buffers include phosphate and citrate. Antioxidants include sodium bisulfate. Local anesthetics include procaine hydrochloride. Suspending and dispersing agents include sodium carboxymethylcellulose, hydroxypropyl methylcellulose, and polyvinylpyrrolidone. Emulsifying agents include polysorbate 80 (TWEEN® 80). Sequestering or chelating agents include EDTA. Pharmaceutical carriers also include ethyl alcohol, polyethylene glycol, and propylene glycol for water-miscible vehicles; and sodium hydroxide, hydrochloric acid, citric acid, or lactic acid for pH adjustment.

[0188] Pharmaceutical compositions may be formulated for a route of administration to a subject. Specific examples of routes of administration include intranasal, oral, pulmonary, transdermal, intradermal, and parenteral. Parenteral administration, characterized by subcutaneous, intramuscular, or intravenous injection, is also contemplated herein. Injectables can be prepared in conventional forms as liquid solutions or suspensions, in solid forms suitable for solution or suspension in liquid prior to injection, or as emulsions. Injectables, solutions, and emulsions also contain one or more excipients. Suitable excipients include, for example, water, saline, dextrose, glycerol, or ethanol. In addition, if desired, the administered pharmaceutical composition may also contain minor amounts of nontoxic auxiliary substances, such as wetting or emulsifying agents, pH buffers, stabilizers, solubility enhancers, and other such agents, such as sodium acetate, sorbitan monooleate, triethanolamine oleate, and cyclodextrins.

[0189] Formulations for parenteral administration of antibodies include sterile, anhydrous soluble products such as lyophilized powders ready to be combined with a solvent immediately prior to use, including sterile solutions ready for injection, e.g., subcutaneous tablets, sterile suspensions ready for injection, sterile, anhydrous insoluble products ready to be combined with a solvent immediately prior to use, and sterile emulsions. The solutions may be aqueous or non-aqueous.

[0190] If administered intravenously, suitable carriers include physiological saline or phosphate buffered saline (PBS), as well as solutions containing viscosity enhancing and solubilizing agents such as, for example, glucose, polyethylene glycol, and polypropylene glycol, and mixtures thereof.

[0191] Topical mixtures containing antibodies are prepared as described for local and systemic administration. The resulting mixture can be a solution, suspension, emulsion, etc., and can be formulated as a cream, gel, ointment, emulsion, solution, elixir, lotion, suspension, tincture, paste, foam, aerosol, wash, spray, suppository, dressing, skin patch, or any other formulation suitable for topical administration.

[0192] The anti-TIM-3 (e.g., human TIM-3) antibodies described herein can be formulated as aerosols for local administration, such as by inhalation (see, e.g., U.S. Pat. Nos. 4,044,126, 4,414,209, and 4,364,923, which describe aerosols for the delivery of steroids useful in the treatment of inflammatory diseases, particularly asthma, and are incorporated herein by reference in their entireties). These formulations for administration to the respiratory tract can be in the form of an aerosol or solution for inhalation, or as a fine powder for insufflation, alone or in combination with an inert carrier such as lactose. In such cases, the particles of the formulation, in one embodiment, have a diameter of less than 50 microns, and in one embodiment, less than 10 microns.

[0193] The anti-TIM-3 (e.g., human TIM-3) antibodies described herein can be formulated for topical or local application, e.g., in the form of gels, creams, and lotions, for topical application to, e.g., the skin and mucosa, e.g., the eye, as well as for ophthalmic application, or for intracapsular or intrathecal application. Topical administration is contemplated for transdermal delivery, as well as for administration to the eye or mucosa, or for inhalation therapy. Nasal solutions of the antibodies, alone or in combination with other pharmaceutically acceptable excipients, can also be administered.

[0194] Transdermal patches, including iontophoretic and electrophoretic devices, are well known to those of skill in the art and can be used to administer antibodies. For example, such patches are disclosed in U.S. Patent Nos. 6,267,983, 6,261,595, 6,256,533, 6,167,301, 6,024,975, 6,010,715, 5,985,317, 5,983,134, 5,948,433, and 5,860,957, all of which are incorporated by reference in their entireties.

[0195] In certain embodiments, pharmaceutical compositions comprising the antibodies described herein are lyophilized powders, which can be reconstituted for administration as solutions, emulsions, and other mixtures. They may also be reconstituted and formulated as solids or gels. Lyophilized powders are prepared by dissolving the antibodies described herein or pharmaceutically acceptable derivatives thereof in a suitable solvent. In some embodiments, the lyophilized powders are sterile. The solvent may contain excipients that improve the stability or other pharmacological components of the powder or a reconstituted solution prepared from the powder. Excipients that may be used include, but are not limited to, dextrose, sorbitol, fructose, corn syrup, xylitol, glycerin, glucose, sucrose, or other suitable agents. In one embodiment, the solvent may also contain a buffer, such as citrate, sodium phosphate, or potassium phosphate, at approximately neutral pH, or other such buffers known to those of skill in the art. Subsequent sterile filtration of the solution followed by lyophilization under standard conditions known to those of skill in the art provides the desired formulation. In one embodiment, the resulting solution will be apportioned into vials for lyophilization. Each vial may contain a single dose or multiple doses of the compound. The lyophilized powder may be stored under appropriate conditions, such as, for example, at about 4°C to room temperature. Reconstitution of this lyophilized powder with water for injection provides a formulation for use in parenteral administration. For reconstitution, the lyophilized powder is added to sterile water or other suitable carrier. The exact amount depends on the compound selected. Such amounts can be determined empirically.

[0196] The anti-TIM-3 (e.g., human TIM-3) antibodies and other compositions described herein can also be formulated to target specific tissues, receptors, or other areas of the body of the subject being treated. Many such targeting methods are well known to those of skill in the art. All such targeting methods are contemplated herein for use with the present compositions. Non-limiting examples of targeting methods are described, for example, in U.S. Patent Nos. 6,316,652, 6,274,552, 6,271,359, 6,253,872, 6,139,865, 6,131,570, 6,120,751 ... See Nos. 6,071,495, 6,060,082, 6,048,736, 6,039,975, 6,004,534, 5,985,307, 5,972,366, 5,900,252, 5,840,674, 5,759,542, and 5,709,874. In specific embodiments, the antibodies described herein are targeted to tumors.

[0197] Compositions to be used for in vivo administration can be sterile, which is readily accomplished, for example, by filtration through sterile filtration membranes.

[0198] 6.4 Instructions and Use In another aspect, the present disclosure provides a method of treating a subject using an anti-TIM-3 (e.g., human TIM-3) antibody disclosed herein. Any disease or disorder in a subject that would benefit from inhibition of TIM-3 (e.g., human TIM-3) function can be treated using an anti-TIM-3 (e.g., human TIM-3) antibody disclosed herein. The anti-TIM-3 (e.g., human TIM-3) antibody disclosed herein is particularly useful for inhibiting immune system tolerance to tumors and can therefore be used as immunotherapy in subjects with cancer. For example, in certain embodiments, the present disclosure provides a method of enhancing T cell activation in response to an antigen in a subject, the method comprising administering to the subject an effective amount of an anti-TIM-3 (e.g., human TIM-3) antibody or pharmaceutical composition thereof as disclosed herein. In certain embodiments, the present disclosure provides a method of treating cancer in a subject, the method comprising administering to the subject an effective amount of an antibody or pharmaceutical composition thereof as disclosed herein. In certain embodiments, the present disclosure provides an antibody or pharmaceutical composition thereof as disclosed herein for use in a method of treating cancer or an infectious disease. In certain embodiments, the present disclosure provides an antibody as disclosed herein or a pharmaceutical composition thereof for use as a medicament, hi another embodiment, the present disclosure provides an antibody as disclosed herein or a pharmaceutical composition thereof for the preparation of a medicament for treating cancer or an infectious disease.

[0199] Cancers that can be treated with the anti-TIM-3 (e.g., human TIM-3) antibodies or pharmaceutical compositions disclosed herein include, but are not limited to, solid tumors, hematological cancers (e.g., leukemia, lymphoma, myeloma, e.g., multiple myeloma), and metastatic lesions. In one embodiment, the cancer is a solid tumor. Examples of solid tumors include malignant tumors of various organ systems, such as sarcomas and carcinomas, e.g., adenocarcinomas, including those affecting the lung, breast, ovary, lymphatic, gastrointestinal tract (e.g., colon), anus, genital and genitourinary tract (e.g., kidney, urothelium, bladder cells, prostate), pharynx, CNS (e.g., brain, neural or glial cells), head and neck, skin (e.g., melanoma), and pancreas, as well as adenocarcinomas, including malignant tumors such as colon cancer, rectal cancer, renal cell carcinoma, liver cancer, lung cancer (e.g., non-small cell lung cancer or small cell lung cancer), small intestine cancer, and esophageal cancer. The cancer may be early stage, intermediate stage, late stage, or metastatic cancer. In certain embodiments, the cancer is associated with elevated PD-1 activity (e.g., elevated PD-1 expression).

[0200] In one embodiment, the cancer is lung cancer (e.g., lung adenocarcinoma or non-small cell lung cancer (NSCLC) (e.g., NSCLC with squamous and / or non-squamous histology, or NSCLC adenocarcinoma)), melanoma (e.g., advanced melanoma), kidney cancer (e.g., renal cell carcinoma), liver cancer (e.g., hepatocellular carcinoma), myeloma (e.g., multiple myeloma), prostate cancer, breast cancer (e.g., breast cancer that does not express one, two, or all of the estrogen receptor, progesterone receptor, or Her2 / neu, e.g., triple myeloma), In one embodiment, the cancer is selected from NSCLC. In one embodiment, the cancer is renal cell carcinoma. In one embodiment, the cancer is ovarian cancer. In a specific embodiment, the ovarian cancer is platinum-refractory ovarian cancer.

[0201] In one embodiment, the cancer is a blood cancer, e.g., leukemia, lymphoma, or myeloma. In one embodiment, the cancer is a leukemia, e.g., acute lymphoblastic leukemia (ALL), acute myeloid leukemia (AML), acute myeloblastic leukemia (AML), chronic lymphocytic leukemia (CLL), chronic myelogenous leukemia (CML), chronic myelogenous leukemia (CML), chronic myelomonocytic leukemia (CMML), chronic lymphocytic leukemia (CLL), or hairy cell leukemia. In one embodiment, the cancer is a lymphoma, e.g., B-cell lymphoma, diffuse large B-cell lymphoma (DLBCL), activated B-cell-like (ABC) diffuse large B-cell lymphoma, germinal center B-cell (GCB) diffuse large B-cell lymphoma, mantle cell lymphoma, Hodgkin's lymphoma, non-Hodgkin's lymphoma, relapsed non-Hodgkin's lymphoma, refractory non-Hodgkin's lymphoma, relapsed follicular non-Hodgkin's lymphoma, Burkitt's lymphoma, small lymphocytic lymphoma, follicular lymphoma, lymphoplasmacytic lymphoma, or extranodal marginal zone lymphoma. In one embodiment, the cancer is a myeloma, e.g., multiple myeloma.

[0202] In another embodiment, the cancer is selected from carcinoma (eg, advanced or metastatic carcinoma), melanoma, or lung carcinoma, eg, non-small cell lung carcinoma.

[0203] In one embodiment, the cancer is lung cancer, for example, lung adenocarcinoma, non-small cell lung cancer, or small cell lung cancer.

[0204] In one embodiment, the cancer is melanoma, e.g., advanced melanoma. In one embodiment, the cancer is advanced or unresectable melanoma that has not responded to other therapies. In another embodiment, the cancer is melanoma with a BRAF mutation (e.g., a BRAF V600 mutation). In yet another embodiment, an anti-TIM-3 (e.g., human TIM-3) antibody or pharmaceutical composition disclosed herein is administered after treatment with an anti-CTLA-4 antibody (e.g., ipilimumab) with or without a BRAF inhibitor (e.g., vemurafenib or dabrafenib).

[0205] In another embodiment, the cancer is hepatocellular carcinoma, eg, advanced hepatocellular carcinoma with or without viral infection, eg, chronic viral hepatitis.

[0206] In another embodiment, the cancer is prostate cancer, for example, advanced prostate cancer.

[0207] In yet another embodiment, the cancer is a myeloma, for example, multiple myeloma.

[0208] In yet another embodiment, the cancer is a kidney cancer, for example, a renal cell carcinoma (RCC) (eg, metastatic RCC, clear cell renal cell carcinoma (CCRCC) or papillary renal cell carcinoma).

[0209] In yet another embodiment, the cancer is selected from lung cancer, melanoma, renal cancer, breast cancer, colorectal cancer, leukemia, or metastatic lesions of cancer.

[0210] In certain embodiments, the present disclosure provides a method for preventing or treating an infectious disease in a subject, the method comprising administering to the subject an effective amount of an anti-TIM-3 (e.g., human TIM-3) antibody or pharmaceutical composition thereof as disclosed herein. In one embodiment, provided herein is a method for preventing and / or treating an infection (e.g., a viral infection, a bacterial infection, a fungal infection, a protozoan infection, or a parasitic infection). The infection prevented and / or treated according to the method can be caused by an infectious agent identified herein. In specific embodiments, an anti-TIM-3 (e.g., human TIM-3) antibody or composition thereof described herein is the only active agent administered to the subject. In some embodiments, an anti-TIM-3 (e.g., human TIM-3) antibody or composition thereof described herein is used in combination with an anti-infective intervention (e.g., an antiviral, antibacterial, antifungal, or antihelminthic agent) for the treatment of an infectious disease. Thus, in one embodiment, the invention relates to an antibody and / or pharmaceutical composition of the invention for use in a method for preventing and / or treating an infectious disease, optionally wherein the antibody or pharmaceutical composition is the only active agent administered to a subject or wherein the antibody or pharmaceutical composition is used in combination with an anti-infective intervention.

[0211] Infectious diseases that can be treated and / or prevented by the anti-TIM-3 (e.g., human TIM-3) antibodies or pharmaceutical compositions disclosed herein are caused by infectious agents including bacteria, parasites, fungi, protozoa, and viruses. In specific embodiments, the infectious diseases treated and / or prevented by the anti-TIM-3 (e.g., human TIM-3) antibodies or pharmaceutical compositions disclosed herein are caused by viruses. Viral diseases or viral infections that can be prevented and / or treated in accordance with the methods described herein include, but are not limited to, those caused by hepatitis A, hepatitis B, hepatitis C, influenza (e.g., influenza A or B), chickenpox, adenovirus, herpes simplex type I (HSV-I), herpes simplex type II (HSV-II), rinderpest, rhinovirus, echovirus, rotavirus, respiratory syncytial virus, papillomavirus, papovavirus, cytomegalovirus, echinovirus, arbovirus, Hunter virus, coxsackievirus, mumps virus, measles virus, rubella virus, poliovirus, smallpox, Epstein-Barr virus, human immunodeficiency virus type I (HIV-I), human immunodeficiency virus type II (HIV-II), and viral disease pathogens such as viral meningitis, encephalitis, dengue fever, or smallpox.

[0212] Bacterial infections that can be prevented and / or treated include infections caused by Escherichia coli, Klebsiella pneumoniae, Staphylococcus aureus, Enterococcus faecalis, Proteus vulgaris, Staphylococcus viridans, and Pseudomonas aeruginosa. Bacterial diseases caused by bacteria (e.g., Escherichia coli, Klebsiella pneumoniae, Staphylococcus aureus, Enterococcus faecalis, Proteus vulgaris, Staphylococcus viridans, and Pseudomonas aeruginosa) that can be prevented and / or treated in accordance with the methods described herein include, but are not limited to, mycobacterial rickettsiosis, mycoplasma, neisseria, S. pneumonia, Borrelia burgdorferi (Lyme disease), Bacillus antracis (anthrax), tetanus, Streptococcus, Staphylococcus, mycobacterium, whooping cough, cholera, bubonic plague, diphtheria, chlamydia, S. aureus, and legionella.

[0213] Protozoal diseases or infections caused by protozoa that can be prevented and / or treated in accordance with the methods described herein include, but are not limited to, leishmaniasis, coccidiosis, trypanosomiasis, schistosomiasis, or malaria. Parasitic diseases or infections caused by parasites that can be prevented and / or treated in accordance with the methods described herein include, but are not limited to, chlamydiosis and rickettsiosis.

[0214] Fungal diseases or infections caused by fungi that can be prevented and / or treated according to the methods described herein include Candida infection, zygomycosis, Candida mastitis, progressive disseminated trichosporonosis with latent trichosporonemia, disseminated candidiasis, pulmonary paracoccidioidomycosis, pulmonary aspergillosis, Pneumocystis carinii pneumonia, cryptococcal meningitis, coccidioidomycosis meningoencephalitis and cerebrospinal vasculitis, Aspergillus niger infection, Fusarium keratitis, sinus mycosis, Aspergillus fumigatus endocarditis, tibial dyschondroplasia, Candida These include, but are not limited to, those caused by Bacillus glabrata vaginitis, oropharyngeal candidiasis, X-linked chronic granulomatous disease, tinea pedis, cutaneous candidiasis, fungal placentitis, disseminated trichosporonosis, allergic bronchopulmonary aspergillosis, fungal keratitis, Cryptococcus neoformans infection, fungal peritonitis, Curvularia geniculata infection, staphylococcal endophthalmitis, sporotrichosis, and dermatophytosis.

[0215] In certain embodiments, these methods further comprise administering to the subject an additional therapeutic agent. In certain embodiments, the additional therapeutic agent is a chemotherapeutic agent, a radiotherapeutic agent, or a checkpoint targeting agent. In certain embodiments, the chemotherapeutic agent is a hypomethylating agent (e.g., azacytidine). In certain embodiments, the checkpoint targeting agent is selected from the group consisting of an antagonistic anti-CTLA-4 antibody, an antagonistic anti-PD-L1 antibody, an antagonistic anti-PD-L2 antibody, an antagonistic anti-PD-1 antibody, an antagonistic anti-TIM-3 antibody, an antagonistic anti-LAG-3 antibody, an antagonistic anti-CEACAM1 antibody, an agonist anti-CD137 antibody, an antagonistic anti-TIGIT antibody, an antagonistic anti-VISTA antibody, an agonist anti-GITR antibody, and an agonist anti-OX40 antibody.

[0216] In one embodiment, the invention relates to an antibody and / or pharmaceutical composition of the invention for use in a method of the invention, wherein the method comprises administering an additional therapeutic agent to a subject. In one embodiment, the invention relates to (a) an antibody and / or pharmaceutical composition of the invention and (b) an additional therapeutic agent for use as a medicament. In one embodiment, the invention relates to (a) an antibody and / or pharmaceutical composition of the invention and (b) an additional therapeutic agent for use in a method of treating cancer. In a further embodiment, the invention relates to a pharmaceutical composition, kit, or kit-in-part comprising (a) an antibody and / or pharmaceutical composition of the invention and (b) an additional therapeutic agent. In one embodiment, the additional therapeutic agent is a chemotherapeutic agent, a radiotherapeutic agent, or a checkpoint targeting agent.

[0217] In certain embodiments, an anti-PD-1 antibody is used in the methods disclosed herein. In certain embodiments, the anti-PD-1 antibody is nivolumab, also known as BMS-936558 or MDX1106, developed by Bristol-Myers Squibb. In certain embodiments, the anti-PD-1 antibody is pembrolizumab, also known as lambrolizumab or MK-3475, developed by Merck & Co. In certain embodiments, the anti-PD-1 antibody is pidilizumab, also known as CT-011, developed by CureTech. In certain embodiments, the anti-PD-1 antibody is MEDI0680 (also known as AMP-514), developed by Mediimmune. In certain embodiments, the anti-PD-1 antibody is PDR001, developed by Novartis Pharmaceuticals. In certain embodiments, the anti-PD-1 antibody is REGN2810, developed by Regeneron Pharmaceuticals. In certain embodiments, the anti-PD-1 antibody is PF-06801591, developed by Pfizer. In certain embodiments, the anti-PD-1 antibody is BGB-A317 developed by BeiGene. In certain embodiments, the anti-PD-1 antibody is TSR-042 developed by AnaptysBio and Tesaro. In certain embodiments, the anti-PD-1 antibody is SHR-1210 developed by Hengrui.

[0218] Further non-limiting examples of anti-PD-1 antibodies that may be used in the methods of treatment disclosed herein include those described in the following patents and patent applications, all of which are incorporated by reference in their entirety for all purposes: U.S. Patent No. 6,808,710; U.S. Patent No. 7,332,582; U.S. Patent No. 7,488,802; U.S. Patent No. 8,008,449; U.S. Patent No. 8,114,845; U.S. Patent No. 8,168,757; U.S. Patent No. 8,354,509; U.S. Patent No. 8,686,119; U.S. Patent No. 8,735,553; U.S. Patent No. 8,747,847; U.S. Patent No. 8,779,105; U.S. Patent No. 8,927,697; U.S. Patent No. 8,993,731; U.S. Patent No. 9,102,727; U.S. Patent No. 9,205,148; and U.S. Publication No. US2013 / 0139395. 0202623A1; US Publication No. US2013 / 0291136A1; US Publication No. US2014 / 0044738A1; US Publication No. US014 / 0356363A1; US Publication No. US2016 / 0075783A1; and PCT Publication No. WO2013 / 033091A1; PCT Publication No. WO2015 / 036394A1; PCT Publication No. WO2014 / 179664A2; PCT Publication No. WO2014 / 209804A1; PCT Publication No. WO2014 / 206107A1; PCT Publication No. WO2015 / 058573A1; PCT Publication No. WO2015 / 085847A1; PCT Publication No. WO2015 / 200119A1; PCT Publication No. WO2016 / 015685A1; and PCT Publication No. WO2016 / 020856A1.

[0219] In certain embodiments, anti-PD-L1 antibodies are used in the methods disclosed herein. In certain embodiments, the anti-PD-L1 antibody is atezolizumab, developed by Genentech. In certain embodiments, the anti-PD-L1 antibody is durvalumab, developed by AstraZeneca, Celgene, and Mediimmune. In certain embodiments, the anti-PD-L1 antibody is avelumab, also known as MSB0010718C, developed by Merck Serono and Pfizer. In certain embodiments, the anti-PD-L1 antibody is MDX-1105, developed by Bristol-Myers Squibb. In certain embodiments, the anti-PD-L1 antibody is AMP-224, developed by Amplimmune and GSK.

[0220] Non-limiting examples of anti-PD-L1 antibodies that may be used in the methods of treatment disclosed herein include those disclosed in the following patents and patent applications, all of which are incorporated by reference in their entirety for all purposes: U.S. Patent No. 7,943,743; U.S. Patent No. 8,168,179; U.S. Patent No. 8,217,149; U.S. Patent No. 8,552,154; U.S. Patent No. 8,779,108; U.S. Patent No. 8,981,063; U.S. Patent No. 9,175,082; U.S. Publication No. US2010 / 0203056A1; U.S. Publication No. US2003 / 0232323A1; U.S. Publication No. US2013 / 0323249A1; U.S. Publication No. US2014 / 0341917A1; U.S. Publication No. US2015 / 0341917A1; U.S. Publication No. US2016 / 0341917A1; U.S. Publication No. US2017 / 0341917A1; U.S. Publication No. US2018 / 0341917A1; U.S. Publication No. US2019 ... 14 / 0044738A1; US Publication No. US2015 / 0203580A1; US Publication No. US2015 / 0225483A1; US Publication No. US2015 / 0346208A1; US Publication No. US2015 / 0355184A1; and PCT Publication No. WO2014 / 100079A1; PCT Publication No. WO2014 / 022758A 1; PCT Publication No. WO2014 / 055897A2; PCT Publication No. WO2015 / 061668A1; PCT Publication No. WO2015 / 109124A1; PCT Publication No. WO2015 / 195163A1; PCT Publication No. WO2016 / 000619A1; and PCT Publication No. WO2016 / 030350A1.

[0221] In certain embodiments, an anti-TIM-3 (e.g., human TIM-3) antibody disclosed herein is administered to a subject in combination with a compound that targets immunomodulatory enzyme(s), such as, for example, IDO (indoleamine-(2,3)-dioxygenase) and / or TDO (tryptophan 2,3-dioxygenase). Accordingly, in one embodiment, the additional therapeutic agent is a compound that targets immunomodulatory enzyme(s), e.g., an inhibitor of indoleamine-(2,3)-dioxygenase (IDO). In certain embodiments, such a compound is selected from the group consisting of epacadostat (Incyte Corp; see, e.g., WO 2010 / 005958, incorporated herein by reference in its entirety), F001287 (Flexus Biosciences / Bristol-Myers Squibb), indoximod (NewLink Genetics), and NLG919 (NewLink Genetics). In one embodiment, the compound is epacadostat. In another embodiment, the compound is F001287. In another embodiment, the compound is indoximod. In another embodiment, the compound is NLG919. In a specific embodiment, an anti-TIM-3 (e.g., human TIM-3) antibody disclosed herein is administered to a subject in combination with an IDO inhibitor to treat cancer. An IDO inhibitor described herein for use in treating cancer is present in the solid dosage form of a pharmaceutical composition, e.g., a tablet, pill, or capsule, wherein the pharmaceutical composition comprises an IDO inhibitor and a pharmaceutically acceptable excipient. As such, an antibody as described herein and an IDO inhibitor as described herein can be administered separately, sequentially, or simultaneously as separate dosage forms. In one embodiment, the antibody is administered parenterally and the IDO inhibitor is administered orally. In certain embodiments, the inhibitor is selected from the group consisting of epacadostat (Incyte Corp), F001287 (Flexus Biosciences / Bristol-Myers Squibb), indoximod (NewLink Genetics), and NLG919 (NewLink Genetics).Epacadostat is described in PCT Publication No. WO2010 / 005958, which is incorporated herein by reference in its entirety for all purposes. In one embodiment, the inhibitor is epacadostat. In another embodiment, the inhibitor is F001287. In another embodiment, the inhibitor is indoximod. In another embodiment, the inhibitor is NLG919.

[0222] In certain embodiments, the anti-TIM-3 (e.g., human TIM-3) antibodies disclosed herein are administered to a subject in combination with a vaccine. The vaccine can be, for example, a peptide vaccine, a DNA vaccine, or an RNA vaccine. In certain embodiments, the vaccine is a heat shock protein-based tumor vaccine or a heat shock protein-based pathogen vaccine. In certain embodiments, the anti-TIM-3 (e.g., human TIM-3) antibodies disclosed herein are administered to a subject in combination with a vaccine such as those described in WO2016 / 183486, incorporated herein by reference in its entirety (e.g., a vaccine comprising at least one synthetic peptide comprising a cancer-specific mutation present in a cancer derived from a subject). In certain embodiments, the anti-TIM-3 (e.g., human TIM-3) antibodies disclosed herein are administered to a subject in combination with a heat shock protein-based tumor vaccine. Heat shock proteins (HSPs) are a family of highly conserved proteins found universally across all species. Its expression can be potently induced to much higher levels as a result of heat shock or other forms of stress, including exposure to toxins, oxidative stress, or glucose depletion. Five families of HSPs have been classified according to molecular weight: HSP-110, -90, -70, -60, and -28. HSPs deliver immunogenic peptides via cross-presentation pathways in antigen-presenting cells (APCs) such as macrophages and dendritic cells (DCs), leading to T cell activation. HSPs function as chaperone carriers of tumor-associated antigenic peptides, forming complexes capable of inducing tumor-specific immunity. Upon release from dying tumor cells, HSP-antigen complexes are internalized by antigen-presenting cells (APCs), where the antigens are processed into peptides that bind to MHC class I and class II molecules, leading to the activation of antitumor CD8+ and CD4+ T cells. The immunity elicited by HSP complexes derived from tumor preparations is specifically directed against the unique repertoire of antigenic peptides expressed by each target cancer. Thus, in one embodiment, the invention relates to (a) an antibody and / or pharmaceutical composition of the invention, and (b) a vaccine for use as a medicament, e.g., for use in a method for treating cancer.In one embodiment, the present invention relates to a pharmaceutical composition, kit, or kit-of-parts comprising (a) an antibody and / or pharmaceutical composition of the present invention and (b) a vaccine. In one embodiment, the vaccine is a heat shock protein-based tumor vaccine. In one embodiment, the vaccine is a heat shock protein-based pathogen vaccine.

[0223] Heat shock protein peptide complexes (HSPPCs) are protein-peptide complexes consisting of heat shock proteins noncovalently complexed with antigenic peptides. HSPPCs elicit both innate and adaptive immune responses. In specific embodiments, the antigenic peptide(s) are antigenic to the cancer being treated. HSPPCs are efficiently captured by APCs via membrane receptors (primarily CD91) or Toll-like receptors. Internalization of HSPPCs results in functional maturation of APCs with production of chemokines and cytokines, leading to activation of natural killer (NK) cells, monocytes, and Th1- and Th2-mediated immune responses. In certain embodiments, HSPPCs used in the methods disclosed herein comprise one or more heat shock proteins from the hsp60, hsp70, or hsp90 family of stress proteins complexed with antigenic peptides. In certain embodiments, HSPPCs comprise hsc70, hsp70, hsp90, hsp110, grp170, gp96, calreticulin, or a combination of two or more thereof.

[0224] In specific embodiments, the heat shock protein peptide complex (HSPPC) comprises a recombinant heat shock protein (e.g., hsp70 or hsc70) or its peptide-binding domain complexed with a recombinant antigenic peptide. The recombinant heat shock protein can be made by recombinant DNA techniques, for example, using human hsc70 as described in Dworniczak and Mirault, Nucleic Acids Res. 15:5181-5197 (1987) and GenBank Accession Nos. P11142 and / or Y00371, each of which is incorporated herein by reference in its entirety. In certain embodiments, the sequence of Hsp70 is as described in Hunt and Morimoto, Proc. Natl. Acad. Sci. USA 82(19), 6455-6459 (1985) and GenBank Accession Nos. P0DMV8 and / or M11717, each of which is incorporated herein by reference in its entirety. Antigenic peptides can also be prepared by recombinant DNA methods known in the art.

[0225] In certain embodiments, the antigenic peptide comprises a modified amino acid. In certain embodiments, the modified amino acid comprises a post-translational modification. In certain embodiments, the modified amino acid comprises a mimic of a post-translational modification. In certain embodiments, the modified amino acid is Tyr, Ser, Thr, Arg, Lys, or His phosphorylated at the side chain hydroxyl or amine. In certain embodiments, the modified amino acid is a mimic of Tyr, Ser, Thr, Arg, Lys, or His phosphorylated at the side chain hydroxyl or amine.

[0226] In a specific embodiment, an anti-TIM-3 (e.g., human TIM-3) antibody disclosed herein is administered to a subject in combination with a heat shock protein peptide complex (HSPPC), e.g., heat shock protein peptide complex-96 (HSPPC-96), to treat cancer. HSPPC-96 comprises gp96, a 96 kDa heat shock protein (HSP), complexed with an antigenic peptide. HSPPC-96 is a cancer immunotherapy produced from a subject's tumor and contains the antigenic "fingerprint" of the cancer. In certain embodiments, this fingerprint contains unique antigens present only in specific cancer cells of a particular subject, and injection of the vaccine is intended to stimulate the subject's immune system to recognize and attack cells bearing the unique cancer fingerprint. Accordingly, in one embodiment, the invention relates to an antibody and / or pharmaceutical composition of the invention in combination with a heat shock protein peptide complex (HSPPC) for use as a drug and / or in a method for treating cancer.

[0227] In certain embodiments, the HSPPCs, e.g., HSPPC-96, are prepared from tumor tissue of the subject. In specific embodiments, the HSPPCs (e.g., HSPPC-96) are prepared from tumors of the cancer type or metastases thereof being treated. In another specific embodiment, the HSPPCs (e.g., HSPPC-96) are autologous to the subject being treated. In certain embodiments, the tumor tissue is non-necrotic tumor tissue. In certain embodiments, at least 1 gram (e.g., at least 1, at least 2, at least 3, at least 4, at least 5, at least 6, at least 7, at least 8, at least 9, or at least 10 grams) of non-necrotic tumor tissue is used to prepare the vaccine regimen. In certain embodiments, following surgical resection, the non-necrotic tumor tissue is frozen prior to use in vaccine preparation. In some embodiments, the HSPPCs, e.g., HSPPC-96, are isolated from tumor tissue by purification methods, filtered, and prepared into an injectable vaccine. In certain embodiments, the subject receives 6 to 12 doses of HSPPCs, e.g., HSPPC-96. In such embodiments, the HSPPC, eg, HSPPC-96, is administered weekly for the first 4 doses, then once every two weeks for an additional 2-8 doses.

[0228] Further examples of HSPPCs that may be used in accordance with the methods described herein are disclosed in the following patents and patent applications, all of which are incorporated by reference in their entirety: U.S. Patent Nos. 6,391,306, 6,383,492, 6,403,095, 6,410,026, 6,436,404, 6,447,780, 6,447,781, and 6,610,659.

[0229] In certain embodiments, the anti-TIM-3 antibodies disclosed herein are administered to a subject in combination with an adjuvant. A variety of adjuvants can be used depending on the context of the treatment. Non-limiting examples of suitable adjuvants include, but are not limited to, complete Freund's adjuvant (CFA), incomplete Freund's adjuvant (IFA), Montanide ISA (incomplete Seppic adjuvant), Ribi adjuvant system (RAS), Titer Max, muramyl peptides, Syntex adjuvant formulation (SAF), potassium alum (aluminum hydroxide and / or aluminum phosphate), aluminum salt adjuvants, Gerbu® adjuvant, nitrocellulose-absorbed antigens, encapsulated or entrapped antigens, 3 De-O-acylated monophosphoryl lipid A (3 D-MPL), immunostimulatory oligonucleotides, toll-like receptor (TLR) ligands, mannan-binding lectin (MBL) ligands, STING agonists, immune stimulating complexes such as saponin, Quil A, QS-21, QS-7, ISCOMATRIX, and the like. Other adjuvants include CpG oligonucleotides and double-stranded RNA molecules such as poly(A) and poly(C). Combinations of the above adjuvants may also be used. See, for example, U.S. Patent Nos. 6,645,495; 7,029,678; and 7,858,589, all of which are incorporated herein by reference in their entireties. In one embodiment, the adjuvant used herein is QS21STIMULON.

[0230] In certain embodiments, the anti-TIM-3 antibodies disclosed herein are administered to a subject in combination with an additional therapeutic agent comprising a TCR. In certain embodiments, the additional therapeutic agent is a soluble TCR. In certain embodiments, the additional therapeutic agent is a cell expressing a TCR. Thus, in one embodiment, the invention relates to antibodies and / or pharmaceutical compositions of the invention in combination with an additional therapeutic agent comprising a TCR for use as a medicament and / or for use in a method for treating cancer.

[0231] In certain embodiments, the anti-TIM-3 antibodies disclosed herein are administered to a subject in combination with cells expressing a chimeric antigen receptor (CAR). In certain embodiments, the cells are T cells.

[0232] In certain embodiments, the anti-TIM-3 antibodies disclosed herein are administered to a subject in combination with a TCR mimetic antibody. In certain embodiments, the TCR mimetic antibody specifically binds to a peptide-MHC complex. For non-limiting examples of TCR mimetic antibodies, see, e.g., U.S. Patent No. 9,074,000 and U.S. Publication Nos. US2009 / 0304679A1 and US2014 / 0134191A1, each of which is incorporated by reference in its entirety.

[0233] The anti-TIM-3 (e.g., human TIM-3) antibody and additional therapeutic agent (e.g., chemotherapeutic agent, radiotherapeutic agent, checkpoint targeting agent, IDO inhibitor, vaccine, adjuvant, soluble TCR, TCR-expressing cell, chimeric antigen receptor-expressing cell, and / or TCR mimetic antibody) can be administered separately, sequentially, or simultaneously in separate dosage forms. In one embodiment, the anti-TIM-3 (e.g., human TIM-3) antibody is administered parenterally and the IDO inhibitor is administered orally.

[0234] The antibodies or pharmaceutical compositions described herein may be delivered to a subject by a variety of routes, including, but not limited to, parenteral, intranasal, intratracheal, oral, intradermal, topical, intramuscular, intraperitoneal, transdermal, intravenous, intrathecal, intratumoral, conjunctival, intra-arterial, and subcutaneous routes. In certain embodiments, the antibodies or pharmaceutical compositions are delivered intravenously. Pulmonary administration can also be employed, for example, by use of an inhaler or inhaler, and formulation with an aerosolizing agent for use as a spray. In certain embodiments, the antibodies or pharmaceutical compositions described herein are delivered subcutaneously or intravenously. In certain embodiments, the antibodies or pharmaceutical compositions described herein are delivered intra-arterially. In certain embodiments, the antibodies or pharmaceutical compositions described herein are delivered intratumorally. In certain embodiments, the antibodies or pharmaceutical compositions described herein are delivered to a tumor-draining lymph node.

[0235] The amount of the antibody or composition that will be effective in the treatment and / or prevention of the condition will depend on the nature of the disease, and can be determined by standard clinical techniques.

[0236] The precise dose employed in the composition will also depend on the route of administration and the severity of the resulting infection or disease, but should be determined according to the judgment of the attending physician and each subject's circumstances. For example, an effective dose may also vary depending on the means of administration, the target site, the patient's physiological status (including age, weight, and physical condition), whether the patient is human or animal, other drugs administered, or whether the treatment is prophylactic or therapeutic. Typically, the patient is a human, although non-human mammals, including transgenic mammals, can also be treated. Treatment dosages are optimally titrated to optimize safety and efficacy.

[0237] For example, the anti-TIM-3 (e.g., human TIM-3) antibodies described herein can be used to assay levels of TIM-3 (e.g., human TIM-3) protein in biological samples using conventional immunohistological methods known to those skilled in the art, including immunoassays such as enzyme-linked immunosorbent assay (ELISA), immunoprecipitation, or Western blot. Suitable antibody assay labels are known in the art and include, for example, enzyme labels such as glucose oxidase, iodine ( 125 I, 121 I), carbon ( 14 C), sulfur ( 35 S), tritium ( 3 H), indium ( 121 In), and technetium ( 99 Examples of labels include radioisotopes such as 99.99% Tc, luminescent labels such as luminol, and fluorescent labels such as fluorescein and rhodamine, as well as biotin. Such labels can be used to label the antibodies described herein. Alternatively, a secondary antibody that recognizes the anti-TIM-3 (e.g., human TIM-3) antibodies described herein can be labeled and used in combination with the anti-TIM-3 (e.g., human TIM-3) antibodies to detect levels of TIM-3 (e.g., human TIM-3) protein. Thus, in one embodiment, the invention relates to the use of the antibodies of the invention for the in vitro detection of TIM-3 (e.g., human TIM-3) protein in biological samples. In a further embodiment, the invention relates to the use of the anti-TIM-3 antibodies of the invention to assay and / or detect levels of TIM-3 (e.g., human TIM-3) protein in biological samples in vitro, optionally wherein the anti-TIM-3 antibody is conjugated to a radionuclide or detectable label and / or bears a label as described herein and / or wherein immunohistological methods are used.

[0238] Assaying the expression level of TIM-3 (e.g., human TIM-3) protein is intended to include qualitatively or quantitatively measuring or estimating the level of TIM-3 (e.g., human TIM-3) protein in a first biological sample directly (e.g., by measuring or estimating absolute protein levels) or relatively (e.g., by comparing to disease-associated protein levels in a second biological sample). The expression level of TIM-3 (e.g., human TIM-3) polypeptide in a first biological sample can be measured or estimated and compared to the level of a standard TIM-3 (e.g., human TIM-3) protein, the standard being derived from a second biological sample obtained from a disease-free individual or determined by averaging levels from a population of disease-free individuals. As is well understood in the art, once the level of a "standard" TIM-3 (e.g., human TIM-3) polypeptide is known, it can be used repeatedly as a standard for comparison. Thus, in a further embodiment, the present invention relates to an in vitro method for assaying and / or detecting the level of TIM-3 protein, e.g., the level of human TIM-3 protein, in a biological sample, comprising qualitatively or quantitatively measuring or estimating the level of TIM-3 protein, e.g., human TIM-3 protein, in the biological sample by immunohistological methods.

[0239] As used herein, the term "biological sample" refers to a biological sample obtained from a subject, cell line, tissue, or other source of cells potentially expressing TIM-3 (e.g., human TIM-3). Methods for obtaining tissue biopsies and body fluids from animals (e.g., humans) are well known in the art. Biological samples include peripheral blood mononuclear cells.

[0240] The anti-TIM-3 (e.g., human TIM-3) antibodies described herein can be used in prognostic, diagnostic, monitoring, and screening applications, including in vitro and in vivo applications, that are well known and standard to the skilled artisan and are based on the present description. Prognostic, diagnostic, monitoring, and screening assays and kits for in vitro assessment and evaluation of immune system status and / or immune response may be used to predict, diagnose, and monitor, including those known or suspected to have immune system dysfunction, or to evaluate patient samples for expected or desired immune system, antigenic, or vaccine responses. Assessment and evaluation of immune system status and / or immune response is also useful in determining a patient's suitability for drug clinical trials or for administration of a particular chemotherapeutic agent, radiotherapeutic agent, or antibody, including combinations thereof, versus different agents or antibodies. This type of prognostic and diagnostic monitoring and assessment is already being practiced using antibodies against the HER2 protein in breast cancer (HercepTest™, Dako), and assays have also been used to evaluate patients for antibody therapy with Herceptin®. In vivo applications include directed cell therapy and radiological imaging analysis of immune system modulation and immune responses. Thus, in one embodiment, the invention relates to an anti-TIM-3 antibody and / or pharmaceutical composition of the invention for use as a diagnostic agent. In one embodiment, the invention relates to an anti-TIM-3 antibody and / or pharmaceutical composition of the invention for use in a method of predicting, diagnosing, and / or monitoring a subject having or suspected of having an immune system dysfunction, and / or for an expected or desired immune system response, antigenic response, or vaccine response. In another embodiment, the invention relates to the use of an anti-TIM-3 antibody of the invention for predicting, diagnosing, and / or monitoring a subject having or suspected of having an immune system dysfunction, and / or for an expected or desired immune system response, antigenic response, or vaccine response, by assaying and / or detecting levels of human TIM-3 protein in a biological sample from the subject in vitro.

[0241] In one embodiment, anti-TIM-3 (e.g., human TIM-3) antibodies can be used in immunohistochemistry of biopsy samples. In one embodiment, the method is an in vitro method. In another embodiment, anti-TIM-3 (e.g., human TIM-3) antibodies can be used to detect levels of TIM-3 (e.g., human TIM-3) or cells containing TIM-3 (e.g., human TIM-3) on their membrane surface, which can then be linked to specific disease symptoms. The anti-TIM-3 antibodies described herein may carry a detectable or functional label and / or be conjugated to a radionuclide or other detectable label. When a fluorescent label is used, specific binding members may be identified and quantified using currently available microscopy and fluorescence-activated cell sorting analysis (FACS), or a combination of both methodological procedures known in the art. The anti-TIM-3 antibodies described herein may carry or be conjugated to a fluorescent label. Exemplary fluorescent labels include, for example, reactive and conjugated probes, such as aminocoumarins, fluorescein, and Texas Red, Alexa Fluor dyes, Cy dyes, and DyLight dyes. Anti-TIM-3 (e.g., human TIM-3) antibodies can be radioactively labeled or conjugated to radionuclides, e.g., isotopes. 3 H, 14 C. 32 P, 35 S, 36 Cl, 51 Cr, 57 Co, 58 Co, 59 Fe, 67 Cu, 90 Y, 99 Tc, 111 In, 117 Lu, 121 I, 124 I, 125 I, 131 I, 198 Au, 211 At, 213 Bi, 225 Ac and 186The label may carry or be conjugated to a Re. When a radioactive label is used, specific binding of an anti-TIM-3 (e.g., human TIM-3) antibody to TIM-3 (e.g., human TIM-3) may be identified and quantified using currently available, art-known counting means. When the label is an enzyme, detection may be achieved by any of the colorimetric, spectrophotometric, fluorospectrophotometric, amperometric, or gasometric methods currently available and known in the art. This can be achieved by contacting a sample or control sample with an anti-TIM-3 (e.g., human TIM-3) antibody under conditions that allow for the formation of a complex between the antibody and TIM-3 (e.g., human TIM-3). Complexes formed between the antibody and TIM-3 (e.g., human TIM-3) are detected and compared between the sample and the control. In view of the specific binding of the antibodies described herein to TIM-3 (e.g., human TIM-3), the antibodies can be used to specifically detect expression of TIM-3 (e.g., human TIM-3) on the surface of cells. The antibodies described herein can be used to purify TIM-3 (e.g., human TIM-3) via immunoaffinity purification. Also included herein are assay systems that may be prepared in the form of test kits, kits, or kits of parts, for example, for quantitative analysis of the extent of the presence of TIM-3 (e.g., human TIM-3) or TIM-3 (e.g., human TIM-3) / TIM-3 (e.g., human TIM-3) ligand complexes. The systems, test kits, kits, or kits of parts may include labeled components, e.g., labeled antibodies, and one or more additional immunochemical reagents.

[0242] 6.5 Polynucleotides, Vectors, and Methods for Producing Anti-TIM-3 Antibodies In another aspect, provided herein are polynucleotides comprising nucleotide sequences encoding an antibody or fragment thereof (e.g., a light chain variable region and / or a heavy chain variable region) described herein that specifically binds to the TIM-3 (e.g., human TIM-3) antigen, and vectors, e.g., vectors comprising such polynucleotides for recombinant expression in host cells (e.g., E. coli and mammalian cells). Provided herein are polynucleotides comprising nucleotide sequences encoding the heavy and / or light chain of any of the antibodies provided herein, as well as vectors comprising such polynucleotide sequences, e.g., expression vectors for efficient expression in host cells, e.g., mammalian cells.

[0243] As used herein, an "isolated" polynucleotide or nucleic acid molecule is one that is separated from other nucleic acid molecules present in the natural source of the nucleic acid molecule (e.g., in a mouse or human). Furthermore, an "isolated" nucleic acid molecule, e.g., a cDNA molecule, may be substantially free of other cellular material or culture medium if produced by recombinant methods, or substantially free of chemical precursors or other chemicals if chemically synthesized. For example, the language "substantially free" includes preparations of polynucleotides or nucleic acid molecules having less than about 15%, 10%, 5%, 2%, 1%, 0.5%, or 0.1% (particularly less than about 10%) of other materials, e.g., cellular material, culture medium, chemical precursors, and / or other chemicals. In specific embodiments, the nucleic acid molecule(s) encoding the antibodies described herein are isolated and purified.

[0244] In certain aspects, provided herein are antibodies that specifically bind to TIM-3 (e.g., human TIM-3) polypeptides and comprise an amino acid sequence as described herein, as well as polynucleotides that comprise nucleotide sequences encoding antibodies that compete with such antibodies (e.g., in a dose-dependent manner) for binding to TIM-3 (e.g., human TIM-3) polypeptides or that bind to the same epitope as such antibodies.

[0245] In certain aspects, provided herein are polynucleotides comprising a nucleotide sequence encoding the light chain or heavy chain of an antibody described herein. The polynucleotide can comprise a nucleotide sequence encoding a light chain comprising the FRs and CDRs of the VL of an antibody described herein (see, e.g., Table 1), or a nucleotide sequence encoding a heavy chain comprising the FRs and CDRs of the VH of an antibody described herein (see, e.g., Table 1).

[0246] Also provided herein are polynucleotides encoding anti-TIM-3 (e.g., human TIM-3) antibodies that have been optimized, for example, by codon / RNA optimization, replacement with a heterologous signal sequence, and removal of mRNA instability elements. Methods for generating nucleic acids encoding anti-TIM-3 (e.g., human TIM-3) antibodies, or fragments thereof (e.g., light chain, heavy chain, VH domain, or VL domain) that have been optimized for recombinant expression by introducing codon changes and / or removing inhibitory regions in the mRNA, can be performed by adapting the optimization methods described, as appropriate, in, e.g., U.S. Patent Nos. 5,965,726; 6,174,666; 6,291,664; 6,414,132; and 6,794,498, all of which are incorporated herein by reference in their entireties. For example, potential splice sites and destabilizing elements (e.g., A / T or A / U rich elements) within the RNA can be mutated to increase the stability of the RNA for recombinant expression without changing the amino acid encoded by the nucleic acid sequence. Alterations can take advantage of the degeneracy of the genetic code, for example, by using alternative codons for the same amino acid. In some embodiments, conservative mutations, e.g., changing one or more codons to encode a similar amino acid with similar chemical structure and properties and / or function as the original amino acid, may be desirable. Such methods can increase expression of an anti-TIM-3 (e.g., human TIM-3) antibody or fragment thereof by at least 1-fold, 2-fold, 3-fold, 4-fold, 5-fold, 10-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, or 100-fold or more compared to expression of an anti-TIM-3 (e.g., human TIM-3) antibody encoded by a non-optimized polynucleotide.

[0247] In certain embodiments, optimized polynucleotide sequences encoding an anti-TIM-3 (e.g., human TIM-3) antibody or fragment thereof (e.g., VL domain or VH domain) described herein can be hybridized to an antisense (e.g., complementary) polynucleotide of a non-optimized polynucleotide sequence encoding an anti-TIM-3 (e.g., human TIM-3) antibody or fragment thereof (e.g., VL domain or VH domain) described herein. In specific embodiments, optimized polynucleotide sequences encoding an anti-TIM-3 (e.g., human TIM-3) antibody or fragment thereof described herein hybridize to an antisense polynucleotide of a non-optimized polynucleotide sequence encoding an anti-TIM-3 (e.g., human TIM-3) antibody or fragment thereof described herein under highly stringent conditions. In specific embodiments, optimized polynucleotide sequences encoding anti-TIM-3 (e.g., human TIM-3) antibodies or fragments thereof described herein hybridize to antisense polynucleotides of non-optimized polynucleotide sequences encoding anti-TIM-3 (e.g., human TIM-3) antibodies or fragments thereof described herein under highly, moderately, or low stringency conditions. Information regarding hybridization conditions is described, e.g., in U.S. Patent Application No. US2005 / 0048549 (paragraphs 72-73), which is incorporated herein by reference in its entirety.

[0248] Polynucleotides can be obtained and the sequences of polynucleotides can be determined by methods known in the art. Nucleotide sequences encoding the antibodies described herein, e.g., the antibodies described in Table 1 and modified versions of these antibodies, can be determined using methods well known in the art, i.e., nucleotide codons known to encode specific amino acids are constructed in such a way to generate nucleic acids encoding the antibodies. Such polynucleotides encoding antibodies can be constructed from chemically synthesized oligonucleotides (e.g., as described in Kutmeier, G. et al., (1994), BioTechniques, 17:242-6, incorporated herein by reference in its entirety), which briefly involves synthesizing overlapping oligonucleotides containing portions of the antibody-encoding sequence, annealing and ligating the oligonucleotides, and then amplifying the ligated oligonucleotides by PCR.

[0249] Alternatively, polynucleotides encoding the antibodies described herein can be generated from nucleic acid from a suitable source (e.g., a hybridoma) using methods well known in the art (e.g., PCR and other molecular cloning techniques). For example, PCR amplification using synthetic primers hybridizable to the 3' and 5' ends of a known sequence can be performed using genomic DNA obtained from hybridoma cells producing the antibody of interest. Such PCR amplification methods can be used to obtain nucleic acid containing sequences encoding the antibody light chain and / or heavy chain. Such PCR amplification methods can be used to obtain nucleic acid containing sequences encoding the antibody light chain variable region and / or heavy chain variable region. Amplified nucleic acids can be cloned into vectors for expression in host cells and for further cloning, e.g., to generate chimeric and humanized antibodies.

[0250] If a clone containing a nucleic acid encoding a particular antibody is not available, but the sequence of the antibody molecule is known, nucleic acid encoding an immunoglobulin can be chemically synthesized or obtained from a suitable source (e.g., an antibody cDNA library or a cDNA library generated from tissue or cells expressing the antibody, such as hybridoma cells selected to express an antibody described herein, or nucleic acid isolated therefrom, preferably polyA+ RNA) by PCR amplification using synthetic primers hybridizable to the 3' and 5' ends of the sequence, or by cloning using oligonucleotide probes specific for the particular gene sequence, e.g., to identify a cDNA clone encoding the antibody from a cDNA library. Amplified nucleic acids generated by PCR can then be cloned into replicable cloning vectors using methods well known in the art.

[0251] DNA encoding the anti-TIM-3 (e.g., human TIM-3) antibodies described herein can be readily isolated and sequenced using conventional procedures (e.g., by using oligonucleotide probes capable of specifically binding to genes encoding the heavy and light chains of anti-TIM-3 (e.g., human TIM-3) antibodies). Hybridoma cells can serve as a source of such DNA. Once isolated, the DNA can be placed into an expression vector and then transfected into host cells such as, for example, E. coli cells, monkey COS cells, Chinese hamster ovary (CHO) cells (e.g., CHO cells derived from the CHO GS System™ (Lonza)), or myeloma cells that do not otherwise produce immunoglobulin protein, resulting in the synthesis of anti-TIM-3 (e.g., human TIM-3) antibodies in the recombinant host cells.

[0252] To generate whole antibodies, VH and VL sequences can be amplified in scFv clones using PCR primers containing the VH and VL nucleotide sequences, restriction sites, and flanking sequences protecting the restriction sites. Using cloning methods known to those skilled in the art, the PCR-amplified VH domain can be cloned into a vector expressing a heavy chain constant region, e.g., the human gamma 4 constant region, and the PCR-amplified VL domain can be cloned into a vector expressing a light chain constant region, e.g., the human kappa or lambda constant region. In certain embodiments, vectors for expressing VH or VL domains contain an EF-1α promoter, a secretion signal, cloning sites for the variable regions, the constant domains, and a selectable marker such as neomycin. The VH and VL domains can also be cloned into a single vector expressing the necessary constant regions. The heavy chain conversion vector and the light chain conversion vector are then co-transfected into cell lines using techniques known to those skilled in the art to generate stable or transient cell lines expressing full-length antibodies, e.g., IgG.

[0253] For example, the DNA can be modified by substituting the coding sequences for human heavy and light chain constant regions for the murine sequences, or by covalently linking all or part of the coding sequence for a non-immunoglobulin polypeptide to the immunoglobulin coding sequence.

[0254] Also provided are polynucleotides that hybridize under highly, moderately, or low stringency hybridization conditions to polynucleotides encoding the antibodies described herein, hi specific embodiments, the polynucleotides described herein hybridize under highly, moderately, or low stringency hybridization conditions to polynucleotides encoding the VH and / or VL domains provided herein.

[0255] Hybridization conditions are described in the art and are known to those skilled in the art. For example, hybridization under stringent conditions can involve hybridization to filter-bound DNA in 6× sodium chloride / sodium citrate (SSC) at about 45° C., followed by one or more washes in 0.2×SSC / 0.1% SDS at about 50-65° C.; hybridization under highly stringent conditions can involve hybridization to filter-bound nucleic acid in 6×SSC at about 45° C., followed by one or more washes in 0.1×SSC / 0.2% SDS at about 68° C. Hybridization under other stringent hybridization conditions is known to those skilled in the art and has been described, for example, see pages 6.3.1-6.3.6 and 2.10.3 of Ausubel, F.M. et al., eds., (1989), Current Protocols in Molecular Biology, Vol. I, Green Publishing Associates, Inc. and John Wiley & Sons, Inc., New York, which is incorporated herein by reference in its entirety.

[0256] In certain aspects, provided herein are cells (e.g., host cells) expressing (e.g., recombinantly) an antibody described herein that specifically binds to TIM-3 (e.g., human TIM-3), and related polynucleotides and expression vectors. Provided herein are vectors (e.g., expression vectors) comprising a polynucleotide comprising a nucleotide sequence encoding an anti-TIM-3 (e.g., human TIM-3) antibody or fragment thereof for recombinant expression in a host cell, preferably a mammalian cell. Also provided herein are host cells comprising such vectors for recombinantly expressing an anti-TIM-3 (e.g., human TIM-3) antibody (e.g., a human antibody or humanized antibody) described herein. In certain aspects, provided herein are methods of making an antibody described herein, comprising expressing such an antibody from a host cell.

[0257] Recombinant expression of an antibody described herein (e.g., a full-length antibody, antibody heavy and / or light chain, or single-chain antibody described herein) that specifically binds to TIM-3 (e.g., human TIM-3) involves construction of an expression vector containing a polynucleotide encoding the antibody. Once a polynucleotide encoding an antibody molecule, the antibody heavy and / or light chain, or a fragment thereof (e.g., heavy and / or light chain variable region) described herein has been obtained, vectors for the production of the antibody molecule can be produced by recombinant DNA technology using techniques well known in the art. Thus, described herein are methods for preparing a protein by expressing a polynucleotide containing a nucleotide sequence encoding an antibody or antibody fragment (e.g., light or heavy chain). Methods well known to those skilled in the art can be used to construct expression vectors containing the antibody or antibody fragment (e.g., light or heavy chain) coding sequence and appropriate transcriptional and translational control signals. These methods include, for example, in vitro recombinant DNA techniques, synthetic techniques, and in vivo genetic recombination. Also provided are replicable vectors containing a nucleotide sequence encoding an antibody molecule described herein, an antibody heavy or light chain, an antibody heavy or light chain variable region or fragment thereof, or a heavy or light chain CDR, operably linked to a promoter. Such vectors can include, for example, nucleotide sequences encoding the constant region of an antibody molecule (see, e.g., International Publication Nos. WO 86 / 05807 and WO 89 / 01036; and U.S. Patent No. 5,122,464, which are incorporated by reference in their entirety), and an antibody variable region can be cloned into such a vector for expression of the entire heavy chain, the entire light chain, or both the entire heavy and light chains.

[0258] The expression vector can be transferred into cells (e.g., host cells) by conventional techniques, and the resulting cells can then be cultured by conventional techniques to produce an antibody or fragment thereof described herein. Accordingly, provided herein are host cells containing a polynucleotide encoding an antibody or fragment thereof described herein, or a heavy or light chain or fragment thereof, or a single-chain antibody described herein, operably linked to a promoter for expression of such a sequence in the host cell. In certain embodiments, for expression of a double-chain antibody, vectors encoding both the heavy and light chains individually can be co-expressed in the host cell for expression of the entire immunoglobulin molecule, as described in more detail below. In certain embodiments, the host cell contains a vector comprising polynucleotides encoding both the heavy and light chains, or fragments thereof, of an antibody described herein. In a specific embodiment, the host cell contains two different vectors: a first vector comprising a polynucleotide encoding the heavy chain or heavy chain variable region, or fragment thereof, of an antibody described herein, and a second vector comprising a polynucleotide encoding the light chain or light chain variable region, or fragment thereof, of an antibody described herein. In other embodiments, a first host cell comprises a first vector comprising a polynucleotide encoding the heavy chain or heavy chain variable region of an antibody described herein, or a fragment thereof, and a second host cell comprises a second vector comprising a polynucleotide encoding the light chain or light chain variable region of an antibody described herein. In specific embodiments, the heavy chain / heavy chain variable region expressed by the first cell associates with the light chain / light chain variable region of the second cell to form an anti-TIM-3 (e.g., human TIM-3) antibody described herein. In certain embodiments, provided herein are populations of host cells comprising such first host cells and such second host cells.

[0259] In certain embodiments, provided herein is a population of vectors comprising a first vector comprising a polynucleotide encoding the light chain / light chain variable region of an anti-TIM-3 (e.g., human TIM-3) antibody described herein, and a second vector comprising a polynucleotide encoding the heavy chain / heavy chain variable region of an anti-TIM-3 (e.g., human TIM-3) antibody described herein.

[0260] A variety of host-expression vector systems can be utilized to express the antibody molecules described herein (see, e.g., U.S. Pat. No. 5,807,715, incorporated herein by reference in its entirety). Such host-expression vector systems represent vehicles in which a coding sequence of interest may be produced and subsequently purified, but also represent cells which, when transformed or transfected with the appropriate nucleotide coding sequence, are capable of expressing the antibody molecules described herein in situ. These include bacteria (e.g., E. coli and B. subtilis) transformed with recombinant bacteriophage DNA, plasmid DNA, or cosmid DNA expression vectors containing the antibody coding sequence; microorganisms such as yeast (e.g., Saccharomyces Pichia) transformed with recombinant yeast expression vectors containing the antibody coding sequence; insect cell systems infected with recombinant viral expression vectors (e.g., baculovirus) containing the antibody coding sequence; and plant cell systems (e.g., Chlamydomonas sp.) infected with recombinant viral expression vectors (e.g., cauliflower mosaic virus, CaMV; tobacco mosaic virus, TMV) or transformed with recombinant plasmid expression vectors (e.g., Ti plasmid) containing the antibody coding sequence. reinhardtii); or mammalian cell lines (e.g., COS (e.g., COS1 or COS), CHO, BHK, MDCK, HEK293, NS0, PER.C6, VERO, CRL7030, HsS78Bst, HeLa, and NIH3T3, HEK-293T, HepG2, SP210, R1.1, BW, LM, BSC1, BSC40, YB / 20, and BMT10 cells) harboring recombinant expression constructs containing promoters derived from the genome of mammalian cells (e.g., metallothionein promoter) or mammalian viruses (e.g., adenovirus late promoter; vaccinia virus 7.5K promoter).In specific embodiments, cells for expressing an antibody described herein are CHO cells, e.g., CHO cells derived from the CHO GS System™ (Lonza). In certain embodiments, cells for expressing an antibody described herein are human cells, e.g., a human cell line. In specific embodiments, the mammalian expression vector is pOptiVEC™ or pcDNA3.3. In certain embodiments, bacterial cells such as Escherichia coli or eukaryotic cells (e.g., mammalian cells), particularly for the expression of recombinant whole antibody molecules, are used to express a recombinant antibody molecule. Mammalian cells such as Chinese hamster ovary (CHO) cells in conjunction with vectors such as the major intermediate-early gene promoter element derived from human cytomegalovirus are effective expression systems for antibodies (Foecking, M.K. and Hofstetter, H. (1986), Gene, 45:101-5; and Cockett, M.I. et al., (1990), Biotechnology, 8(7):662-7, each of which is incorporated herein by reference in its entirety). In certain embodiments, the antibodies described herein are produced by CHO cells or NS0 cells. In specific embodiments, expression of the nucleotide sequence encoding the antibodies described herein that specifically bind to TIM-3 (e.g., human TIM-3) is regulated by a constitutive promoter, an inducible promoter, or a tissue-specific promoter.

[0261] In bacterial systems, numerous expression vectors may be advantageously selected depending on the use intended for the expressed antibody molecule. For example, for the generation of pharmaceutical compositions of antibody molecules, vectors which direct high levels of fusion protein product that is easily purified may be desirable, where large quantities of such antibodies are to be produced. Such vectors include, but are not limited to, the E. coli expression vector pUR278 (Ruether, U. and Mueller-Hill, B. (1983), EMBO J. 2:1791-1794); pIN vectors (Inouye, S. and Inouye, M. (1985), Nuc. Acids Res. 13:3101-3109; Van Heeke, G. and Schuster, S. M. (1989), J. Biol. Chem. 24:5503-5509), into which antibody coding sequences can be individually ligated in frame with the lacZ coding region to produce a fusion protein, all of which are incorporated herein by reference in their entireties. For example, pGEX vectors can be used to express foreign polypeptides as fusion proteins with glutathione-S-transferase (GST). Generally, such fusion proteins are soluble and can be easily purified from lysed cells by adsorption and binding to a matrix of glutathione-agarose beads followed by elution in the presence of free glutathione. pGEX vectors are designed to contain thrombin or factor Xa protease cleavage sites so that the cloned target gene product can be released from the GST moiety.

[0262] In insect systems, for example, the Autographa californica nuclear polyhedrosis virus (AcNPV) can be used as a vector to express foreign genes. The virus is grown in Spodoptera frugiperda cells. The antibody coding sequence can be cloned individually into non-essential regions (for example, the polyhedrin gene) of the virus and placed under control of an AcNPV promoter (for example, the polyhedrin promoter).

[0263] In mammalian host cells, a number of viral-based expression systems are available. When adenovirus is used as an expression vector, the coding sequence of the antibody of interest can be ligated into an adenovirus transcription / translation control complex, e.g., the late promoter and tripartite leader sequence. This chimeric gene can then be inserted into the adenovirus genome by in vitro or in vivo recombination. Insertion in a non-essential region of the viral genome (e.g., region E1 or E3) will yield recombinant virus capable of viability and expression of the antibody molecule in infected hosts (see, e.g., Logan, J. and Shenk, T. (1984), PNAS, 81(12):3655-9, incorporated herein by reference in its entirety). Specific initiation signals may also be required for efficient translation of the inserted antibody coding sequence. These signals include the ATG initiation codon and adjacent sequences. Furthermore, the initiation codon must be in phase with the reading frame of the desired coding sequence to ensure translation of the entire insert. These exogenous translational control signals and initiation codons can be of a variety of origins, both natural and synthetic. The efficiency of expression can be enhanced by the inclusion of appropriate transcription enhancer elements, transcription terminators (see, e.g., Bitter, G. et al., (1987), Methods Enzymol. 153:516-544, incorporated herein by reference in its entirety).

[0264] In addition, a host cell strain can be chosen that modulates the expression of the inserted sequences, or modifies and processes the gene product in the specific fashion desired. Such modifications (e.g., glycosylation) and processing (e.g., cleavage) of protein products can be important for the function of the protein. Different host cells have characteristic and specific mechanisms for the post-translational processing and modification of proteins and gene products. Appropriate cell lines or host systems can be chosen to ensure the correct modification and processing of the expressed foreign protein. To this end, eukaryotic host cells that possess the cellular machinery for proper processing of the primary transcript, glycosylation, and phosphorylation of the gene product can be used. Such mammalian host cells include, but are not limited to, CHO, VERO, BHK, Hela, MDCK, HEK293, NIH3T3, W138, BT483, Hs578T, HTB2, BT2O, and T47D, NS0 (a murine myeloma cell line that does not endogenously produce any immunoglobulin chains), CRL7O3O, COS (e.g., COS1 or COS), PER.C6, VERO, HsS78Bst, HEK-293T, HepG2, SP210, R1.1, BW, LM, BSC1, BSC40, YB / 20, BMT10, and HsS78Bst cells. In certain embodiments, the anti-TIM-3 (e.g., human TIM-3) antibodies described herein are produced in mammalian cells, such as, for example, CHO cells.

[0265] In specific embodiments, the antibodies described herein have low or no fucose content. Such antibodies can be produced using techniques known to those skilled in the art. For example, the antibodies can be expressed in cells that are deficient or lack the ability to fucosylate. In a specific example, antibodies with reduced fucose content can be produced using a cell line in which both alleles of α1,6-fucosyltransferase are knocked out. The Potelligent® system (Lonza) is an example of such a system that can be used to produce antibodies with reduced fucose content.

[0266] For long-term, high-yield production of recombinant proteins, stable-expressing cells can be generated. For example, cell lines can be engineered that stably express the anti-TIM-3 (e.g., human TIM-3) antibodies described herein. In specific embodiments, the cells provided herein stably express the light chain / light chain variable region and heavy chain / heavy chain variable region that assemble to form the antibodies described herein.

[0267] In certain embodiments, rather than using expression vectors containing viral origins of replication, host cells can be transformed with DNA controlled by appropriate expression control elements (e.g., promoter, enhancer, sequences, transcription terminator, polyadenylation site, etc.) and a selectable marker. Following the introduction of the exogenous DNA / polynucleotide, engineered cells can be grown in an enriched medium for 1-2 days and then switched to a selective medium. The selectable marker on the recombinant plasmid confers resistance to the selection and allows the cells to stably integrate the plasmid into their chromosomes and then grow into foci that can be cloned and expanded into cell lines. This method can be advantageously used to engineer cell lines that express the anti-TIM-3 (e.g., human TIM-3) antibodies or fragments thereof described herein. Such engineered cell lines can be particularly useful in screening and evaluation of compositions that interact directly or indirectly with the antibody molecule.

[0268] Numerous selection systems can be used, including, but not limited to, the genes for herpes simplex virus thymidine kinase (Wigler, M. et al., (1977), Cell, 11(1):223-32), hypoxanthine guanine phosphoribosyltransferase (Szybalska, EH. and Szybalski, W. (1962), PNAS, 48(12):2026-2034), and adenine phosphoribosyltransferase (Lowy, I. et al., (1980), Cell, 22(3):817-23) in tk-, hgprt-, or aprt- cells, respectively, all of which are incorporated herein by reference in their entireties. The following genes were also identified: dhfr, which confers resistance to methotrexate (Wigler, M. et al., (1980), PNAS, 77(6):3567-70; O'Hare, K. et al., (1981) PNAS, 78:1527-31); gpt, which confers resistance to mycophenolic acid (Mulligan, R.C. and Berg, P. (1981), PNAS, 78(4):2072-6); neo, which confers resistance to the aminoglycoside G-418 (Wu, G.Y. and Wu, C.H. (1991), Biotherapy, 3:87-95; Tolstoshev P, (1993), Ann. Rev. Pharmacol. Toxicol. 32:573-596; Mulligan RC, (1993), Science, 260:926-932; and Morgan, RA. and Anderson, WF. (1993), Ann. Rev. Biochem, 62:191-217; Nabel, GJ. and Felgner, PL. (1993), Trends Biotechnol, 11(5):211-5); and hygro, which confers resistance to hygromycin (Santerre, RF. et al., (1984), Gene, 30(1-3):147-56), all of which are incorporated herein by reference in their entireties.Methods commonly known in the art of recombinant DNA technology can be routinely applied to select the desired recombinant clones, and such methods are described, for example, in Ausubel, F. M. et al., (eds.), Current Protocols in Molecular Biology, John Wiley & Sons, NY (1993); Kriegler, M., Gene Transfer and Expression, A Laboratory Manual, Stockton Press, NY (1990); and in Chapters 12 and 13, Dracopoli, N. C. et al., (eds.), Current Protocols in Human Genetics, John Wiley & Sons, NY (1994); Colbere-Garapin, F. et al., (1981), J. Mol. Biol. 150:1-14, all of which are incorporated herein by reference in their entireties.

[0269] The expression level of an antibody molecule can be increased by amplifying the vector (for a review, see Bebbington, C.R. and Hentschel, C.C.G., The use of vectors based on gene amplification for the expression of cloned genes in mammalian cells in DNA cloning, Vol. 3 (Academic Press, New York, 1987), incorporated herein by reference in its entirety). If the marker in the antibody expression vector system is amplifiable, increasing the level of inhibitor present in the host cell culture will increase the copy number of the marker gene. Since the amplified region is associated with the antibody gene, production of the antibody will also increase (Crouse, G.F. et al., (1983), Mol. Cell Biol. 3:257-66, incorporated herein by reference in its entirety).

[0270] Host cells can be co-transfected with two or more expression vectors described herein, where one vector encodes a heavy chain-derived polypeptide and the second vector encodes a light chain-derived polypeptide. The two vectors can contain identical selectable markers that allow for equal expression of the heavy and light chain polypeptides. Host cells can be co-transfected with different amounts of the two or more expression vectors. For example, transfections can be performed with any one of the following ratios of first expression vector to second expression vector: 1:1, 1:2, 1:3, 1:4, 1:5, 1:6, 1:7, 1:8, 1:9, 1:10, 1:12, 1:15, 1:20, 1:25, 1:30, 1:35, 1:40, 1:45, or 1:50.

[0271] Alternatively, a single vector capable of encoding and expressing both heavy and light chain polypeptides can be used. In such situations, the light chain should be placed before the heavy chain to avoid excessive toxic free heavy chain (Proudfoot, NJ. (1986), Nature, 322:562-565; and Kohler, G. (1980), PNAS, 77:2197-2199, each of which is incorporated herein by reference in its entirety). The coding sequences for the heavy and light chains can comprise cDNA or genomic DNA. Expression vectors can be monocistronic or multicistronic. Multicistronic nucleic acid constructs can encode 2, 3, 4, 5, 6, 7, 8, 9, 10 or more genes / nucleotide sequences, or in the range of 2-5, 5-10, or 10-20. For example, a bicistronic nucleic acid construct can include, in the following order: a promoter, a first gene (e.g., the heavy chain of an antibody described herein), and a second gene (e.g., the light chain of an antibody described herein). In such an expression vector, transcription of both genes can be driven by a promoter, while translation of mRNA derived from the first gene can be by a cap-dependent scanning mechanism and translation of mRNA derived from the second gene can be by a cap-independent mechanism, e.g., an IRES.

[0272] Once an antibody described herein has been produced by recombinant expression, it can be purified by methods known in the art for the purification of immunoglobulin molecules, such as, for example, chromatography (e.g., ion exchange, affinity, particularly affinity for a specific antigen followed by Protein A, and sizing column chromatography), centrifugation, differential solubility, or other standard techniques for the purification of proteins. Furthermore, the antibodies described herein can be fused to heterologous polypeptide sequences described herein or otherwise known in the art to facilitate purification.

[0273] In specific embodiments, the antibodies described herein are isolated and purified. Generally, an isolated antibody is substantially free of other antibodies having antigenic specificities different from the isolated antibody. For example, in certain embodiments, preparations of antibodies described herein are substantially free of cellular material and / or chemical precursors. The language "substantially free of cellular material" includes preparations of antibodies in which the antibody is separated from cellular components of the cells from which it is isolated or recombinantly produced. Thus, an antibody that is substantially free of cellular material includes preparations of antibodies having less than about 30%, 20%, 10%, 5%, 2%, 1%, 0.5%, or 0.1% (by dry weight) of heterologous proteins (also referred to herein as "contaminating proteins") and / or antibody variants, e.g., various post-translationally modified forms of antibodies or other various forms of antibodies (e.g., antibody fragments). When an antibody is recombinantly produced, it is also generally substantially free of culture medium, i.e., culture medium represents less than about 20%, 10%, 2%, 1%, 0.5%, or 0.1% of the volume of the protein preparation. When an antibody is produced by chemical synthesis, it is generally substantially free of chemical precursors or other chemicals, i.e., it is separated from chemical precursors or other chemicals involved in the synthesis of the protein. Thus, such preparations of antibodies have less than about 30%, 20%, 10%, or 5% (by dry weight) of chemical precursors or components other than the antibody of interest. In specific embodiments, the antibodies described herein are isolated and purified.

[0274] Antibodies or fragments thereof that specifically bind to TIM-3 (e.g., human TIM-3) can be produced by methods known in the art for the synthesis of antibodies, for example, by chemical synthesis or by recombinant expression techniques. The methods described herein employ, unless otherwise indicated, conventional techniques of molecular biology, microbiology, genetic analysis, recombinant DNA, organic chemistry, biochemistry, PCR, synthesis and modification of oligonucleotides, nucleic acid hybridization, and related fields that are within the skill of the art. These techniques are described, for example, in the references cited herein and are explained more fully in the literature.See, for example, Maniatis, T. et al., (1982), Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory Press; Sambrook, J. et al., (1989), Molecular Cloning: A Laboratory Manual, Second Edition, Cold Spring Harbor Laboratory Press; Sambrook, J. et al., (2001), Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY; Ausubel, F. M. et al., Current Protocols in Molecular Biology, John Wiley & Sons (1987 and annual updates); Current Protocols in Immunology, John Wiley & Sons (1987 and annual updates), Gait (ed.) (1984), Oligonucleotide Synthesis: A Practical Approach, IRL Press; Eckstein (ed.) (1991), Oligonucleotides and Analogues: A Practical Approach, IRL Press, all of which are incorporated herein by reference in their entireties. Press; Birren, B. et al., (eds.) (1999), Genome Analysis: A Laboratory Manual, Cold Spring Harbor Laboratory Press.

[0275] In specific embodiments, the antibodies described herein are antibodies that are prepared, expressed, engineered, or isolated by means involving, for example, synthesis of DNA sequences, creation through genetic engineering (e.g., recombinant antibodies). In certain embodiments, such antibodies comprise a sequence (e.g., a DNA sequence or amino acid sequence) that does not naturally occur within the germline repertoire of antibodies in vivo in an animal or mammal (e.g., a human).

[0276] In one aspect, provided herein is a method of making an antibody that specifically binds to TIM-3 (e.g., human TIM-3), comprising culturing a cell or host cell described herein. In one embodiment, the method is performed in vitro. In particular aspects, provided herein is a method of making an antibody that specifically binds to TIM-3 (e.g., human TIM-3), comprising expressing (e.g., recombinantly expressing) the antibody using a cell or host cell described herein (e.g., a cell or host cell comprising a polynucleotide encoding an antibody described herein). In certain embodiments, the cell is an isolated cell. In certain embodiments, an exogenous polynucleotide has been introduced into the cell. In certain embodiments, the method further comprises purifying the antibody obtained from the cell or host cell.

[0277] Methods for producing polyclonal antibodies are known in the art (see, for example, Chapter 11 in: Short Protocols in Molecular Biology, (2002), 5th Ed., Ausubel, FM. et al., eds., John Wiley and Sons, New York, which is incorporated herein by reference in its entirety).

[0278] Monoclonal antibodies can be prepared using a variety of techniques known in the art, including the use of hybridoma, recombinant, and phage display technologies, or a combination thereof. For example, monoclonal antibodies can be produced using hybridoma methods, including those known in the art and taught, for example, in Harlow, E. and Lane, D., Antibodies: A Laboratory Manual, (Cold Spring Harbor Laboratory Press, 2nd ed. 1988); Hammerling, GJ. et al., in: Monoclonal Antibodies and T-Cell Hybridomas, 563-681 (Elsevier, NY, 1981), each of which is incorporated herein by reference in its entirety. The term "monoclonal antibody," as used herein, is not limited to antibodies produced via hybridoma technology. For example, monoclonal antibodies can be produced recombinantly from host cells exogenously expressing an antibody described herein or a fragment thereof, e.g., the light chain and / or heavy chain of such an antibody.

[0279] In specific embodiments, a "monoclonal antibody," as used herein, is an antibody produced by a single cell (e.g., a hybridoma or a recombinant antibody-producing host cell), wherein the antibody specifically binds to TIM-3 (e.g., human TIM-3), e.g., as determined by ELISA or other antigen-binding or competitive binding assays known in the art or in the Examples provided herein. In certain embodiments, a monoclonal antibody can be a chimeric or humanized antibody. In certain embodiments, a monoclonal antibody is a monovalent antibody or a polyvalent (e.g., bivalent) antibody. In certain embodiments, a monoclonal antibody is a monospecific or multispecific antibody (e.g., a bispecific antibody). The monoclonal antibodies described herein can be made, e.g., by hybridoma methods, such as those described in Kohler, G. and Milstein, C. (1975), Nature, 256:495, incorporated herein by reference in its entirety, or can be isolated from phage libraries, e.g., using the techniques described herein. Other methods for preparing clonal cell lines and the monoclonal antibodies expressed thereby are well known in the art (see, e.g., Chapter 11 in: Short Protocols in Molecular Biology, (2002), 5th Ed., Ausubel, F. M. et al., supra).

[0280] Methods for producing and screening for specific antibodies using hybridoma technology are routine and known in the art. For example, in the hybridoma method, a mouse or a suitable host animal such as, for example, a sheep, goat, rabbit, rat, or macaque monkey is immunized to elicit lymphocytes that produce or are capable of producing antibodies that will specifically bind to the immunizing protein (e.g., TIM-3 (e.g., human TIM-3)). Alternatively, lymphocytes may be immunized in vitro. The lymphocytes are then fused with myeloma cells using a suitable fusing agent, such as polyethylene glycol, to form hybridoma cells (Goding, JW. (Ed.), Monoclonal Antibodies: Principles and Practice, pp. 59-103 (Academic Press, 1986), incorporated herein by reference in its entirety). Additionally, animals can be immunized using the RIMMS (repeated immunization multiple site) method (Kilpatrick, K. E. et al., (1997), Hybridoma, 16:381-9, incorporated herein by reference in its entirety).

[0281] In some embodiments, a mouse (or other animal such as, for example, a rat, monkey, donkey, pig, sheep, hamster, or dog) can be immunized with an antigen (e.g., TIM-3 (e.g., human TIM-3)), and once an immune response is detected, e.g., antibodies specific to the antigen are detected in the mouse's serum, the mouse's spleen is harvested and splenocytes are isolated. The splenocytes are then fused by well-known techniques with suitable myeloma cells, e.g., cells from cell line SP20 available from the American Type Culture Collection (ATCC®) (Manassas, VA), to form hybridomas. Hybridomas are selected and cloned by limiting dilution. In certain embodiments, lymph nodes from the immunized mouse are harvested and fused with NS0 myeloma cells.

[0282] The hybridoma cells thus prepared are preferably seeded and grown in a suitable culture medium containing one or more substances that inhibit the growth or survival of the unfused, parental myeloma cells. For example, if the parental myeloma cells lack the enzyme hypoxanthine guanine phosphoribosyltransferase (HGPRT or HPRT), then the culture medium for hybridomas will usually contain hypoxanthine, aminopterin, and thymidine (HAT medium), which substances prevent the growth of HGPRT-deficient cells.

[0283] A specific embodiment employs myeloma cells that fuse efficiently, support stable high-level production of antibody by selected antibody-producing cells, and are sensitive to a medium such as HAT medium. Among these myeloma cell lines are, for example, the NS0 cell line or those derived from MOPC-21 and MPC-11 mouse tumors available from the Salk Institute Cell Distribution Center, San Diego, CA, USA, and murine myeloma lines such as SP-2 or X63-Ag8.653 cells available from the American Type Culture Collection, Rockville, MD, USA. Human myeloma cell lines and mouse-human heteromyeloma cell lines have also been described for the production of human monoclonal antibodies (Kozbor, D. (1984), J. Immunol. 133:3001-5; Brodeur, et al., Monoclonal Antibody Production Techniques and Applications, pp. 51-63 (Marcel Dekker, Inc., New York, 1987), each of which is incorporated herein by reference in its entirety).

[0284] The culture medium in which the hybridoma cells are growing is assayed for the production of monoclonal antibodies directed against TIM-3 (e.g., human TIM-3). The binding specificity of the monoclonal antibodies produced by the hybridoma cells is determined by methods known in the art, such as immunoprecipitation or by in vitro binding assays, such as radioimmunoassay (RIA) or enzyme-linked immunosorbent assay (ELISA).

[0285] After hybridoma cells producing antibodies of the desired specificity, affinity, and / or activity are identified, the clones may be subcloned by limiting dilution and grown by conventional methods (Goding, JW. (Ed.), Monoclonal Antibodies: Principles and Practice, supra). Suitable culture media for this purpose include, for example, D-MEM medium or RPMI 1640 medium. Additionally, hybridoma cells may be grown in vivo as ascites tumors in an animal.

[0286] The monoclonal antibodies secreted by the subclones are suitably separated from the culture medium, ascites fluid, or serum by conventional immunoglobulin purification procedures such as, for example, protein A Sepharose, hydroxylapatite chromatography, gel electrophoresis, dialysis, or affinity chromatography.

[0287] The antibodies described herein include antibody fragments that specifically recognize TIM-3 (e.g., human TIM-3) and can be generated by techniques known to those skilled in the art. For example, the Fab and F(ab')2 fragments described herein can be generated by proteolytic cleavage of immunoglobulins using enzymes such as papain (to produce Fab fragments) or pepsin (to produce F(ab')2 fragments). The Fab fragment corresponds to one of the two identical arms of an antibody molecule and contains an intact light chain paired with the VH and CH1 domains of the heavy chain. The F(ab')2 fragment contains the two antigen-binding arms of an antibody molecule linked by disulfide bonds in the hinge region.

[0288] Furthermore, the antibodies described herein can also be generated using various phage display methods known in the art. In phage display methods, functional antibody domains are displayed on the surface of phage particles that carry the polynucleotide sequences encoding them. In particular, DNA sequences encoding VH and VL domains are amplified from animal cDNA libraries (e.g., human or mouse cDNA libraries of affected tissues). The DNA encoding the VH and VL domains are recombined together with an scFv linker by PCR and cloned into a phagemid vector. The vector is introduced into E. coli by electroporation, and the E. coli is infected with helper phage. The phages used in these methods are typically filamentous phages, including fd and M13, and the VH and VL domains are usually recombinantly fused to phage gene III or gene VIII. Phage expressing antigen-binding domains that bind to a specific antigen can be selected and identified by the antigen, for example, using labeled antigen or antigen bound or captured to a solid surface or bead.Examples of phage display methods that can be used to generate the antibodies described herein include Brinkman, U. et al., (1995), J. Immunol. Methods, 182:41-50; Ames, R. S. et al., (1995), J. Immunol. Methods, 184:177-186; Kettleborough, C. A. et al., (1994), Eur. J. Immunol. 24:952-958; Persic, L. et al., (1994), Eur. J. Immunol. 24:952-958; Persic, L. et al., (1994), Eur. J. Immunol. 24:952-958; al., (1997), Gene, 187:9-18; Burton, DR. and Barbas, CF. (1994), Advan. Immunol. 57:191-280; PCT Application No. PCT / GB91 / 001134; International Publication Nos. WO90 / 02809, WO91 / 10737, WO92 / 01047, WO92 / 18619, WO93 / 11236, WO95 / 15982, WO95 / 20401, and WO97 / 13844; and Included are those disclosed in U.S. Patent Nos. 5,698,426, 5,223,409, 5,403,484, 5,580,717, 5,427,908, 5,750,753, 5,821,047, 5,571,698, 5,427,908, 5,516,637, 5,780,225, 5,658,727, 5,733,743, and 5,969,108.

[0289] After phage selection, as described in the above references, antibody coding regions from the phage can be isolated and used to generate whole antibodies, including human antibodies, or other desired antigen-binding fragments, which can be expressed in a desired host, including, for example, mammalian cells, insect cells, plant cells, yeast, and bacteria, as described below. Techniques can also be employed to recombinantly produce antibody fragments, such as Fab, Fab', and F(ab')2 fragments, using methods known in the art, such as those disclosed in PCT Publication No. WO 92 / 22324; Mullinax, R.L. et al., (1992), BioTechniques, 12(6):864-9; Sawai, H. et al., (1995), Am. J. Reprod. Immunol. 34:26-34; and Better, M. et al., (1988), Science, 240:1041-1043, all of which are incorporated herein by reference in their entireties.

[0290] In certain embodiments, to generate whole antibodies, PCR primers containing the VH or VL nucleotide sequence, restriction sites, and flanking sequences to protect the restriction sites can be used to amplify the VH or VL sequence from a template, e.g., an scFv clone. Using cloning methods known to those of skill in the art, the PCR-amplified VH domain can be cloned into a vector expressing a VH constant region, and the PCR-amplified VL domain can be cloned into a vector expressing a VL constant region, e.g., human kappa or lambda constant regions. The VH and VL domains can also be cloned into a single vector expressing the necessary constant regions. The heavy chain conversion vector and the light chain conversion vector are then co-transfected into cell lines to generate stable or transient cell lines expressing full-length antibodies, e.g., IgG, using techniques known to those of skill in the art.

[0291] A chimeric antibody is a molecule in which different portions of the antibody are derived from different immunoglobulin molecules. For example, a chimeric antibody can contain the variable region of a mouse or rat monoclonal antibody fused to the constant region of a human antibody. Methods for producing chimeric antibodies are known in the art. See, e.g., Morrison, S.L. (1985), Science, 229:1202-7; Oi, V.T. and Morrison, S.L. (1986), BioTechniques, 4:214-221; Gillies, S.D. et al., (1989), J. Immunol. Methods, 125:191-202; and U.S. Patent Nos. 5,807,715, 4,816,567, 4,816,397, and 6,331,415, all of which are incorporated herein by reference in their entireties.

[0292] A humanized antibody can bind to a predetermined antigen and comprises a framework region having substantially the amino acid sequence of a human immunoglobulin and a CDR having substantially the amino acid sequence of a non-human immunoglobulin (e.g., a murine immunoglobulin). In certain embodiments, a humanized antibody also comprises at least a portion of an immunoglobulin constant region (Fc), typically that of a human immunoglobulin. The antibody may also comprise the CH1, hinge, CH2, CH3, and CH4 regions of the heavy chain. The humanized antibody can be selected from any class, including IgM, IgG, IgD, IgA, and IgE, and any isotype, including IgG1, IgG2, IgG3, and IgG4.Humanized antibodies can be produced by a variety of techniques, including CDR-grafting (European Patent No. EP239400; International Publication No. WO91 / 09967; and U.S. Patent Nos. 5,225,539, 5,530,101, and 5,585,089), veneering, or resurfacing (European Patent Nos. EP592106 and EP519596; Padlan, E. A. (1991), Mol. Immunol. 28(4 / 5):489-498; Studnicka, G. M. et al., (1994), Prot. Engineering, 7(6):805-814; and Roguska, M. A. et al., (1994), Prot. Engineering, 7(6):805-814). al., (1994), PNAS, 91:969-973), chain shuffling (US Pat. No. 5,565,332), and, for example, US Pat. No. 6,407,213, US Pat. al.,(2002),J.Immunol.169:1119-25;Caldas,C.et al.,(2000),Protein Eng.13(5):353-60;Morea,V.et al.,(2000),Methods,20(3):267-79;Baca,M.et al.,(1997),J.Biol.Chem.272(16):10678-84;Roguska,MA.et al.,(1996),Protein Eng. 9(10):895,904; Couto, JR. et al., (1995), Cancer Res. 55(23, Supp.):5973s-5977s; Couto, JR. et al., (1995), Cancer Res. 55(8):1717-22; Sandhu, JS. (1994), Gene, 150(2):409-10, and Pedersen, JT. et al., (1994), J. Mol. Biol. 235(3):959-73, all of which are incorporated herein by reference in their entireties. See also U.S. Application Publication No. US2005 / 0042664A1 (February 24, 2005), which is incorporated herein by reference in its entirety.

[0293] Methods for making multispecific antibodies (e.g., bispecific antibodies) have been described, see, e.g., U.S. Patent Nos. 7,951,917; 7,183,076; 8,227,577; 5,837,242; 5,989,830; 5,869,620; 6,132,992; and 8,586,713, all of which are incorporated by reference herein in their entireties.

[0294] Single domain antibodies, e.g., antibodies lacking light chains, can be made by methods well known in the art (see Riechmann, L. and Muyldermans, S. (1999), J. Immunol. 231:25-38; Nuttall, S.D. et al., (2000), Curr. Pharm. Biotechnol. 1(3):253-263; Muyldermans, S. (2001), J. Biotechnol. 74(4):277-302; U.S. Patent No. 6,005,079; and International Publication Nos. WO 94 / 04678, WO 94 / 25591, and WO 01 / 44301, all of which are incorporated by reference in their entireties.

[0295] Additionally, antibodies that specifically bind to the TIM-3 (e.g., human TIM-3) antigen can similarly be utilized to generate anti-idiotypic antibodies that "mimic" the antigen using techniques well known to those of skill in the art. See, e.g., Greenspan, N.S. and Bona, C.A. (1989), FASEB J. 7(5):437-444; and Nissinoff, A. (1991), J. Immunol. 147(8):2429-2438, each of which is incorporated herein by reference in its entirety.

[0296] In certain embodiments, an antibody described herein that binds to the same epitope of TIM-3 (e.g., human TIM-3) as an anti-TIM-3 (e.g., human TIM-3) antibody described herein is a human antibody. In certain embodiments, an antibody described herein that competitively blocks (e.g., dose-dependently) any one of the antibodies described herein from binding to TIM-3 (e.g., human TIM-3) is a human antibody. Human antibodies can be produced using methods known in the art. For example, transgenic mice that are incapable of expressing functional endogenous immunoglobulins but that can express human immunoglobulin genes can be used. In particular, human heavy and light chain immunoglobulin gene complexes can be introduced randomly or by homologous recombination into mouse embryonic stem cells. Alternatively, human variable, constant, and diversity regions can be introduced into mouse embryonic stem cells in addition to the human heavy and light chain genes. Separately from or simultaneously with the introduction of human immunoglobulin loci by homologous recombination, the mouse heavy and light chain immunoglobulin genes can be made non-functional. In particular, J HHomozygous deletion of the region prevents endogenous antibody production. The modified embryonic stem cells are expanded and microinjected into blastocysts to generate chimeric mice. The chimeric mice are then bred to produce homozygous offspring that express human antibodies. The transgenic mice are immunized in the usual manner with a selected antigen, e.g., all or part of an antigen (e.g., TIM-3 (e.g., human TIM-3)). Monoclonal antibodies directed against the antigen can be obtained from the immunized transgenic mice using conventional hybridoma technology. The human immunoglobulin transgenes harbored by the transgenic mice rearrange during B-cell differentiation and subsequently undergo class switching and somatic mutation. Thus, it is possible to generate therapeutically useful IgG, IgA, IgM, and IgE antibodies using such techniques. For an overview of this technology for producing human antibodies, see Lonberg, N. and Huszar, D. (1995), Int. Rev. Immunol. 13:65-93, which is incorporated herein by reference in its entirety. For a detailed discussion of this technology for producing human antibodies and human monoclonal antibodies and protocols for producing such antibodies, see, e.g., International Publication Nos. WO 98 / 24893, WO 96 / 34096, and WO 96 / 33735; and U.S. Patent Nos. 5,413,923, 5,625,126, 5,633,425, 5,569,825, 5,661,016, 5,545,806, 5,814,318, and 5,939,598, all of which are incorporated herein by reference in their entirety. Examples of mice capable of producing human antibodies include the Xenomouse™ (Abgenix, Inc.; U.S. Pat. Nos. 6,075,181 and 6,150,184), HuAb-Mouse™ (Mederex, Inc. / Gen Pharm; U.S. Pat. Nos. 5,545,806 and 5,569,825), Trans Chromo Mouse™ (Kirin), and KM Mouse™ (Medarex / Kirin), all of which are incorporated herein by reference in their entireties.

[0297] Human antibodies that specifically bind to TIM-3 (e.g., human TIM-3) can be made by a variety of methods known in the art, including the above-mentioned phage display methods using antibody libraries derived from human immunoglobulin sequences (see also U.S. Patent Nos. 4,444,887, 4,716,111, and 5,885,793; and International Publication Nos. WO 98 / 46645, WO 98 / 50433, WO 98 / 24893, WO 98 / 16654, WO 96 / 34096, WO 96 / 33735, and WO 91 / 10741, all of which are incorporated by reference in their entireties).

[0298] In some embodiments, human antibodies can be produced using mouse-human hybridomas. For example, Epstein-Barr virus (EBV)-transformed human peripheral blood lymphocytes can be fused with mouse myeloma cells to generate mouse-human hybridomas that secrete human monoclonal antibodies, and these mouse-human hybridomas can be screened to determine those that secrete human monoclonal antibodies that specifically bind to a target antigen (e.g., TIM-3 (e.g., human TIM-3)). Such methods are known and described in the art; see, e.g., Shinmoto, H. et al., (2004), Cytotechnology, 46:19-23; Naganawa, Y. et al., (2005), Human Antibodies, 14:27-31, each of which is incorporated herein by reference in its entirety.

[0299] 6.6 Kits Also provided are kits comprising one or more antibodies described herein, or pharmaceutical compositions or conjugates thereof. In specific embodiments, provided herein are pharmaceutical packs or kits comprising one or more containers filled with one or more of the components of the pharmaceutical compositions described herein, such as, for example, one or more antibodies provided herein. In some embodiments, the kits contain a pharmaceutical composition described herein and any prophylactic or therapeutic agent, such as those described herein. In certain embodiments, the kits may contain a T cell mitogen, such as, for example, phytohemagglutinin (PHA) and / or phorbol myristate acetate (PMA), or an antibody that stimulates the TCR complex, such as, for example, an anti-CD3 antibody or an anti-CD28 antibody. Optionally, associated with such container(s) is a notice in a form specified by a governmental agency regulating the manufacture, use, or sale of pharmaceuticals or biologics, reflecting approval by the agency of the manufacture, use, or sale for human administration.

[0300] Also provided are kits that can be used in the above methods. In one embodiment, the kit comprises an antibody described herein, preferably a purified antibody, in one or more containers. In a specific embodiment, the kit described herein contains a substantially isolated TIM-3 (e.g., human TIM-3) antigen as a control. In another specific embodiment, the kit described herein further comprises a control antibody that does not react with TIM-3 (e.g., human TIM-3) antigen. In another specific embodiment, the kit described herein contains one or more elements for detecting binding of the antibody to TIM-3 (e.g., human TIM-3) antigen (e.g., the antibody can be conjugated to a detectable substrate, such as a fluorescent compound, an enzymatic substrate, a radioactive compound, or a luminescent compound, or a secondary antibody that recognizes the primary antibody can be conjugated to a detectable substrate). In a specific embodiment, the kit provided herein can include a recombinantly produced or chemically synthesized TIM-3 (e.g., human TIM-3) antigen. The TIM-3 (e.g., human TIM-3) antigen provided in the kit can also be bound to a solid support. In a more specific embodiment, the detection means of the kit described above includes a solid support to which TIM-3 (e.g., human TIM-3) antigen is bound. Such a kit can also include a non-binding reporter-labeled anti-human antibody or anti-mouse / rat antibody. In this embodiment, binding of the antibody to TIM-3 (e.g., human TIM-3) antigen can be detected by binding of the reporter-labeled antibody. In one embodiment, the invention relates to the use of a kit of the invention for in vitro assaying and / or detecting TIM-3 antigen (e.g., human TIM-3) in a biological sample. [Example]

[0301] The examples in this section (ie, Section 7) are provided for purposes of illustration and not limitation.

[0302] 7.1 Example 1: Generation and Characterization of Novel Antibodies Against Human TIM-3 This example describes the generation and characterization of antibodies that bind to human T cell immunoglobulin mucin domain-3 (TIM-3). In particular, this example describes the generation of human antibodies that specifically bind to and inhibit the function of human TIM-3.

[0303] In some of the studies described below, the activity of the anti-TIM-3 antibodies of the present invention was compared with the activity of reference anti-TIM-3 antibodies, pab1944w or Hum11. Antibody pab1944w was generated based on the variable regions of antibody 8213HV0LV0 provided in U.S. Patent No. 8,552,156 (incorporated herein by reference in its entirety). The sequence of pab1944w is shown in Table 7. Antibody pab1944w was expressed as an IgG1 antibody containing an N297A mutation in the Fc region numbered according to the EU numbering system. Antibody Hum11 was generated based on the variable regions of antibody ABTIM3-hum11 provided in U.S. Patent Publication No. US2015 / 0218274 (incorporated herein by reference in its entirety). The sequence of Hum11 is shown in Table 7. Antibody Hum11 was expressed as an IgG4 antibody containing an S228P mutation in the Fc region numbered according to the EU numbering system. [Table 7-1] [Table 7-2]

[0304] 7.1.1 Generation of Anti-TIM-3 Antibodies Using Retrocyte Display™ Technology The generation of Retrocyte Display™ libraries is described herein. For generation of library inserts, total RNA was extracted via phenol / chloroform from FACS-sorted CD19-positive human B lymphocytes. Total RNA was used for first-strand cDNA synthesis using the RevertAid First Strand cDNA Synthesis Kit from Fermentas (Cat# K1621 and K1622). Antibody variable regions were amplified from the cDNA by PCR and cloned into a retroviral expression vector (pCMA). These constructs were then used to transduce mouse pre-B cells using Retrocyte Display™ technology to express antibodies on their surface.

[0305] The Retrocell Display™ library generated as described above was screened against recombinant human TIM-3 and recombinant cynomolgus monkey TIM-3, leading to the identification of two antibodies designated pab2085 and pab2088. The sequence information of the variable regions of pab2085 and pab2088 is summarized in Table 4. Antibodies pab2085 and pab2088 were expressed as IgG1 antibodies and analyzed in the assays described below.

[0306] 7.1.2 Binding of Anti-TIM-3 Antibodies to TIM-3-Expressing Cells Antibodies pab2085 and pab2088 were examined for binding to cells expressing TIM-3 using flow cytometry. Briefly, wild-type mouse 1624-5 cells or 1624-5 cells engineered to express human TIM-3 were incubated with mouse Fc receptor blocker (BD Pharmingen, Cat# 553142) to reduce nonspecific binding. After washing, cells were stained with anti-TIM-3 antibody or isotype control antibody and analyzed using a FACSCalibur (BD Biosciences). Both pab2085 and pab2088 showed binding to 1624-5 cells expressing human TIM-3, but not to wild-type 1624-5 cells (Figure 1).

[0307] 7.1.3 Selectivity Assays for Anti-TIM-3 Antibodies The selectivity of pab2085 and pab2088 for TIM-3 was evaluated against the family members TIM-1 and TIM-4 using suspension array technology. Luminex® microspheres were coupled to recombinant human TIM-3 Fc (R&D Systems, Cat#2365-™), recombinant human TIM-3 His (Sino Biological, Cat#10390-H08H), recombinant cynomolgus TIM-3 Fc (R&D Systems, Cat#7914-™), recombinant human TIM-1 His (R&D Systems, Cat#1750-™), or recombinant human TIM-4 His (R&D, Cat#2929-™) via amine coupling to the COOH bead surface. Purified pab2085, pab2088, and IgG1 isotype control antibodies were diluted to 10, 100, and 1000 ng / ml in assay buffer (Roche, Cat# 11112589001). Each dilution (25 μl) was incubated with 1500 Luminex® microspheres in 5 μl of assay buffer in a 96-half-well filter plate (Millipore, Cat# MABVN1250) for 1 hour in the dark (20°C, 650 rpm). A standard curve was generated using duplicate 25 μl aliquots of a 1:3 serial dilution (0.08-540 ng / ml) of human IgG1 kappa standard (Sigma, Cat# 15154). Detection was performed using 260 μl of goat anti-human IgG F(ab) labeled with R-PE (2.5 μg / ml; Jackson ImmunoResearch, Cat#109-116-097) and an additional 1 hour incubation time (20°C, 650 rpm). Plates were analyzed using a Luminex® 200 system (Millipore). A total of 100 beads were counted per well in a sample volume of 48 μl. The MFI values of PE were used to determine specific or nonspecific binding to the recombinant proteins mentioned above.

[0308] Both pab2085 (Fig. 2A) and pab2088 (Fig. 2B) showed specific binding to human and cynomolgus monkey TIM-3, with no significant binding to TIM-1 or TIM-4 observed at the concentrations tested.

[0309] 7.1.4 Optimization of Anti-TIM-3 Antibodies Using Retrocyte Display™ Technology Antibodies pab2085 and pab2088 share the same heavy chain. To obtain additional anti-TIM-3 antibodies, a heavy chain Retrocytometer Display™ sub-library was generated based on the heavy chains of pab2085 and pab2088 and combined with a more diverse light chain library. Further screening of this new Retrocell Display™ library against recombinant human TIM-3 and recombinant cynomolgus monkey TIM-3 led to the identification of light chain-optimized variants: pab2173, pab2174, pab2175, pab2176, pab2177, pab2178, pab2179, pab2180, pab2181, pab2182, pab2183, pab2184, pab2185, pab2186, pab2187, pab2188, pab2189, pab2190, pab2191, and pab2192. The sequence information of the variable regions of these light chain-optimized variants is listed in Table 4. The light chain-optimized variants were expressed as antibodies containing the wild-type IgG1 Fc region or the IgG1 variant Fc region. The Fc region of this IgG1 mutant does not affect the effector functions of the Fc region.

[0310] The light chain-optimized antibody pab2188 contains a T109S substitution (replacement of threonine with serine at position 109 relative to the wild-type sequence) in the light chain constant domain, numbered according to Kabat, which facilitates in-frame cloning of the variable region constant domain. This mutation is a conservative modification that does not affect antibody binding or function. A wild-type counterpart, designated pab2188w, containing a threonine at position 109 of the light chain, numbered according to Kabat, was also generated. Antibody pab2188w was expressed as an antibody containing the Fc region of IgG1N297A.

[0311] 7.1.5 Binding of Anti-TIM-3 Antibodies to TIM-3-Expressing Cells The light chain-optimized variants were evaluated for binding to cells expressing human or cynomolgus monkey TIM-3 in a flow cytometry assay similar to that described above. All variants showed binding to mouse 1624-5 cells engineered to express human TIM-3 (Figures 3A and 3B) or cynomolgus monkey TIM-3 (Figures 3C and 3D), but not to wild-type mouse 1624-5 cells (data not shown).

[0312] The binding of the light chain-optimized variants to primary human T cells was compared with that of the parent antibody pab2085. Briefly, peripheral blood mononuclear cells (PBMCs) isolated by Ficoll gradient from buffy coats (Research Blood Components, LLC) of healthy donors were enriched for uncontacted pan-T cells using magnetic bead separation (Miltenyi Biotec). The enriched population of T lymphocytes was then activated with plate-bound anti-CD3 antibody (SP34, 3 μg / ml) and soluble anti-CD28 antibody (CD28.1, 2 μg / ml) in RPMI medium supplemented with 10% heat-inactivated FBS for 3 days at 37°C and 5% CO2. Following activation, cells were incubated with human Fc receptor block (FcR block, Biolegend) for 15 minutes at room temperature to reduce nonspecific binding. Anti-TIM-3 antibody or IgG isotype control antibody (12-point titration, 10,000 ng / ml to 0.06 ng / ml) was added to each sample and incubated for 30 min at 4°C. Samples were washed twice, and an antibody cocktail containing anti-CD3 (BV711, OKT3), anti-CD4 (BV605, OKT4), and anti-CD8a (PE, RPA-T8), as well as FITC-conjugated anti-kappa antibodies, all at 2.5 μg / ml, was diluted in buffer (PBS, 2 mM EDTA, 0.5% BSA, pH 7.2), added to each sample, and incubated for 30 min at 4°C. Samples were washed twice and analyzed using an LSRFortessa flow cytometer (BD Biosciences). Flow cytometry plots were analyzed using FACS DIVA in combination with WEHI Weasel software.

[0313] As shown in Figure 4, all light chain-optimized variants tested in this study showed stronger binding to activated human CD8+ T cells than the parent antibody pab2085.

[0314] Next, we examined the binding of the anti-TIM-3 antibody pab2188 to primary cynomolgus monkey cells. Cryopreserved PBMCs (Worldwide Primates, Inc.) isolated from cynomolgus monkeys were thawed, washed, and then subjected to flow cytometry analysis. Prior to antibody incubation, cells were treated with 10% cynomolgus monkey serum (Abcam) for 15 minutes at room temperature to reduce nonspecific binding. Anti-TIM-3 antibody or IgG isotype control antibody (10-point titration, 20,000 ng / ml to 0.6 ng / ml) was added to individual samples and incubated for 30 minutes at 4°C. Samples were washed twice, and an antibody cocktail containing anti-CD11b (BV785, M1 / 70) as well as FITC-conjugated anti-kappa antibody at 2.5 μg / ml diluted in buffer (PBS, 2 mM EDTA, 0.5% BSA, pH 7.2) was added to each sample and incubated for 30 minutes at 4°C. Samples were washed twice and analyzed using an LSRFortessa flow cytometer (BD Biosciences). Flow cytometry plots were analyzed using FACS DIVA in combination with WEHI Weasel software.

[0315] As shown in Figure 5, the anti-TIM-3 antibody pab2188 bound primary cynomolgus monkey bone marrow cells in a dose-dependent manner.

[0316] 7.1.6 Ligand-Blocking Activity of Anti-TIM-3 Antibodies Anti-TIM-3 antibodies were tested for their ability to block binding of recombinant human or cynomolgus monkey TIM-3 to phosphatidylserine expressed by irradiated WR19L mouse lymphoma cells. Anti-TIM-3 antibodies or IgG isotype control antibodies (9-point human titration, 20,000 ng / ml to 70 ng / ml; 6-point cynomolgus monkey titration, 20,000 ng / ml to 625 ng / ml) were incubated with recombinant human TIM-3 Fc (R&D Systems, #2365-™) or recombinant cynomolgus monkey TIM-3 Fc (R&D Systems, #7914-™) (10,000 ng / ml) prepared in 1x Annexin-V binding buffer (10 mM Hepes, pH 7.4, 140 mM NaCl, and 2.5 mM CaCl2) for 30 minutes at room temperature. 1 × 10 WR19L cells irradiated at 20 Gy and resuspended in 1 × Annexin-V binding buffer 6 The samples were then added to an anti-TIM-3:TIM-3-Fc cocktail at a final density of 1:100 / ml and incubated for 45 minutes at room temperature. The samples were washed once, and an antibody cocktail containing a PE-conjugated anti-Fc antibody (1:100 dilution) diluted in 1x Annexin-V binding buffer as well as a viability stain (Biolegend, NIR channel; 1:1000 dilution) was added to each sample and incubated for 20 minutes at room temperature. The samples were then washed once with 1x Annexin-V binding buffer, resuspended in 150 μl of buffer (PBS, 2 mM EDTA, 0.5% BSA, pH 7.2), and analyzed using an LSRFortessa flow cytometer (BD Biosciences). Flow cytometry plots were analyzed using FACS DIVA.

[0317] The anti-TIM-3 antibodies pab2085 and pab2188 blocked the binding of recombinant human TIM-3 (FIG. 6A) and recombinant cynomolgus monkey TIM-3 (FIG. 6B) to phosphatidylserine.

[0318] 7.1.7 Effect of Anti-TIM-3 Antibodies on Human PBMCs upon Staphylococcal Enterotoxin A (SEA) Stimulation The functional activity of the light chain-optimized variants on primary human PBMCs was assessed following stimulation with Staphylococcal enterotoxin A (SEA). Briefly, 1 x 10 cryopreserved human PBMCs (Research Blood Components) were cultured in RPMI 1640 supplemented with Normocin™ (Invivogen #ant-nr) and 10% heat-inactivated FBS (Gibco, Invitrogen Corporation) in a 96-well NUNCLON delta surface plate (NUNC™). 5 Cells were plated at 1000 cells / well. Cells were cultured for 6 days at 37°C and 5% CO2 in the presence of 5 μg / ml of the anti-PD-1 antibody pembrolizumab (lot 7002688300, Myoderm), anti-TIM-3 antibody (10 μg / ml), and SEA superantigen (100 ng / ml, Toxin Technologies). Cell-free supernatants were collected and stored at -80°C until analysis. IFNγ levels were measured using AlphaLISA (Perkin Elmer).

[0319] When combined with the anti-PD-1 antibody pembrolizumab, the light chain-optimized variant enhanced IFNγ production in this primary human PBMC assay (Figure 7).

[0320] The functional activity of pab2188w was analyzed in an SEA stimulation assay using a modified protocol. 1 × 10 cryopreserved human PBMCs (Research Blood Components) were plated in RPMI 1640 supplemented with Normocin™ (Invivogen #ant-nr) and 10% heat-inactivated FBS (Gibco, Invitrogen Corporation) in a 96-well NUNCLON delta surface plate (NUNC™). 5Cells were plated at 1000 cells / well. Cells were cultured for 9 days at 37°C and 5% CO2 in the presence of 5 μg / ml of the anti-PD-1 antibody pembrolizumab (lot 7002688300, Myoderm), anti-TIM-3 antibody (10 μg / ml), and SEA superantigen (100 ng / ml, Toxin Technologies). Cells were then washed once and restimulated with fresh SEA and antibody for 2 days. Cell-free supernatants were collected and stored at -80°C until analysis. IFNγ levels were measured using AlphaLISA (Perkin Elmer).

[0321] As shown in Figures 8A-8F, the anti-TIM-3 antibody pab2188w (IgG1, N297A), alone or in combination with the anti-PD-1 antibody pembrolizumab, enhanced IFNγ production in human PBMCs from multiple donors in this SEA stimulation assay.

[0322] 7.2 Example 2: Optimization of Anti-TIM-3 Antibodies Using CDR Mutagenesis To improve binding affinity, the anti-TIM-3 antibody pab2188w was modified using directed mutagenesis of CDR residues in the heavy and light chain variable regions. Briefly, six Fab phage display libraries containing modified CDRH or CDRL regions, respectively, were generated based on the parent antibody pab2188w using NNK degenerate codon randomization. The Fab phage libraries were subjected to affinity-driven selection against recombinant human TIM-3 and recombinant cynomolgus monkey TIM-3 antigens. Nine clones, designated AM-1, AM-2, AM-3, AM-4, AM-5, AM-6, AM-7, AM-8, and AM-9, were selected based on measurements of binding and dissociation rates. The sequence information of the variable regions of these nine clones is summarized in Table 4. All of these variants share the light chain of pab2188w but contain mutations in the heavy chain CDR1. AM-1 to AM-9 were expressed as full-length antibodies containing the Fc region of IgG1, N297A, and analyzed in the experiments described below.

[0323] 7.2.1 Binding of Anti-TIM-3 Antibodies to TIM-3-Expressing Cells The binding of antibodies AM-1 to AM-9 to Jurkat cells ectopically expressing human TIM-3 was compared with that of the parental antibody pab2188w by flow cytometry analysis. As shown in Figure 9A, all mutants bound to Jurkat cells expressing TIM-3, with AM-2 and AM-6 showing stronger binding than the parental antibody pab2188w. The binding of AM-2 and AM-6 was further analyzed by flow cytometry using Kasumi-3 (ATCC®, CRL-2725™), a human acute myeloid leukemia cell line that endogenously expresses TIM-3 (Figure 9B), as well as Staphylococcus enterotoxin A (SEA)-stimulated human CD8+ T cells (Figure 9C) and SEA-stimulated cynomolgus monkey CD8+ T cells (Figure 9D). Binding to human CD8+ T cells was measured using buffy coats from healthy donors (Research Blood Human PBMCs isolated by Ficoll gradient from Biosciences (Biosciences Components, LLC) were activated with SEA (100 ng / ml) for 8 days in RPMI medium supplemented with 10% heat-inactivated FBS at 37°C and 5% CO2. Following activation, cells were incubated with human Fc receptor block (FcR Block, Biolegend) for 15 minutes at room temperature to reduce nonspecific binding. Anti-TIM-3 antibody or IgG isotype control antibody (12-point titration, 10,000 ng / ml to 0.06 ng / ml) was added to individual samples and incubated for 30 minutes at 4°C. Similarly, for binding to cynomolgus monkey CD8+ T cells, isolated cynomolgus monkey PBMCs were stored in frozen stock (Worldwide Primates). Cells were thawed from a lab at 100°C (Inc.) and activated with SEA (100 ng / ml) for 5 days in RPMI medium supplemented with 10% heat-inactivated FBS at 37°C and 5% CO. Activated cynomolgus monkey PBMCs were incubated with a combination of human Fc receptor blocker (FcR Block, Biolegend) and cynomolgus monkey serum (Abcam) for 15 minutes at room temperature to reduce nonspecific binding.Phycoerythrin-conjugated AM-2 antibody or isotype control antibody (Biolegend, PE-conjugated, six-point titration, 10,000 ng / ml to 41 ng / ml), each at 2.5 μg / ml, and a cocktail of anti-CD4 antibodies (BV605, OKT4) and anti-CD8a antibodies (PE, SK1) were diluted in buffer (PBS, 2 mM EDTA, 0.5% BSA, pH 7.2) and added to each sample and incubated for 30 min at 4°C. Samples were washed twice, and an antibody cocktail containing anti-CD3 (BV711, OKT3), anti-CD4 (BV605, OKT4), and anti-CD8a (PE, RPA-T8), as well as FITC-conjugated anti-kappa antibodies, all at 2.5 μg / ml, was diluted in buffer (PBS, 2 mM EDTA, 0.5% BSA, pH 7.2) and added to each sample and incubated for 30 min at 4°C. Samples were washed twice and analyzed using an LSRFortessa flow cytometer (BD Biosciences). Flow cytometry plots were analyzed using FACS DIVA in conjunction with WEHI Weasel software. Both AM-2 and AM-6 showed binding to Kasumi-3 cells (Figure 9B) and activated human CD8+ T cells (Figure 9C). AM-2 also showed binding to activated cynomolgus monkey CD8+ T cells (Figure 9C) (Figure 9D).

[0324] Next, in a similar assay, binding to primary human and cynomolgus monkey CD14+ bone marrow cells was analyzed by flow cytometry using phycoerythrin (PE)-conjugated pab2188w, AM-2, or an isotype control antibody. Briefly, cryopreserved PBMCs isolated from humans or cynomolgus monkeys (Worldwide Primates Inc.) were thawed, washed, and then subjected to flow cytometry analysis. Prior to incubation with the antibodies, the cells were treated with 10% cynomolgus monkey serum (Abcam, Cat# ab155109) for 15 minutes at room temperature to reduce nonspecific binding. PE-conjugated anti-TIM-3 antibody or IgG isotype control antibody (12-point titration, 10,000 ng / ml to 0.05 ng / ml for human PBMCs and 100,000 ng / ml to 0.5 ng / ml for cynomolgus monkey PBMCs) was added to individual samples in an antibody cocktail containing anti-CD14 antibody (APC, M5E2) and Zombie Green™ fixable viability marker, followed by incubation at 4°C for 30 minutes. Additional samples were reserved for single-stain compensation controls (CD45-FITC, CD45-PE, and CD45-APC; clone MB4-6D6, Miltenyi). Samples were washed twice with buffer and analyzed using an LSRFortessa flow cytometer (BD Biosciences). Flow cytometry plots were analyzed using FACS DIVA in combination with WEHI Weasel software. AM-2 showed stronger binding to human (FIG. 9E) and cynomolgus monkey (FIG. 9F) CD14+ bone marrow cells than the parent antibody pab2188w.

[0325] 7.2.2 Selectivity Assays for Anti-TIM-3 Antibodies The selectivity of AM-2 and AM-6 for TIM-3 was evaluated using suspension array technology. Luminex® microspheres were coupled with recombinant human TIM-3 His (Sino Biological, #10390-H08H), recombinant cynomolgus monkey TIM-3 Fc (Sino Biological, #90312-C02H), recombinant mouse TIM-3 Fc (R&D Systems, #1529-™), recombinant human TIM-1 His (R&D Systems, #1750-™), recombinant human TIM-4 His (R&D, #2929-™), recombinant human OX40 His (Sino Biological, #10481-H08H), recombinant human GITR Fc (R&D Systems, #689-GR), recombinant human DR3 Fc (R&D Systems, #943-D3), and recombinant human CD137 Fc (in-house manufactured materials) via amine coupling to the COOH bead surface. Purified pab2188w (IgG1, N297A), AM-2 (IgG1, N297A), AM-6 (IgG1, N297A), and IgG 1、 N297A isotype control antibody was diluted in assay buffer (Roche 11112589001) to titrate from 10,000 ng / ml to 0.1 ng / ml. Each dilution (25 μl) was incubated with 1500 Luminex® microspheres in 5 μl of assay buffer in a 96-half-well filter plate (Millipore, MABVN1250) for 1 hour in the dark (20°C, 650 rpm). Detection was performed using 60 μl of goat anti-human IgG F(ab)2 labeled with R-PE (2.5 μg / ml; JIR109-116-097) and an additional 1 hour incubation time (20°C, 650 rpm). Plates were analyzed using a Luminex® 200 system (Millipore). A total of 100 beads were counted per well in a sample volume of 48 μl. The MFI values of PE were used to determine specific or nonspecific binding to the recombinant protein.

[0326] The anti-TIM-3 antibodies pab2188w (Fig. 10B), AM-2 (Fig. 10C), and AM-6 (Fig. 10D) showed specific binding to human and cynomolgus monkey TIM-3, but did not detect significant binding to mouse TIM-3, human TIM-1, human TIM-4, human OX40, human GITR, human DR3, or human CD137 at the concentrations tested.

[0327] 7.2.3 Ligand-Blocking Activity of Anti-TIM-3 Antibodies Anti-TIM-3 antibodies AM-2 and AM-6 were further analyzed for their ability to block phosphatidylserine binding to human or cynomolgus monkey TIM-3. Briefly, anti-TIM-3 antibodies or IgG isotype control antibodies (10-point titration, 40,000 ng / ml to 1,000 ng / ml) were incubated with recombinant human TIM-3 Fc (R&D Systems, #2365-™) or recombinant cynomolgus monkey TIM-3 Fc (R&D Systems, #7914-™) (10,000 ng / ml) prepared in 1x Annexin-V binding buffer (10 mM Hepes, 140 mM NaCl, and 2.5 mM CaCl2, adjusted to pH 7.4) for 30 minutes at room temperature. 1x10 WR19L cells irradiated at 20 Gy and resuspended in 1x Annexin-V binding buffer were incubated for 30 minutes at room temperature. 6 The samples were then added to an anti-TIM-3:TIM-3-Fc cocktail at a final density of 1:1 / ml and incubated for 45 minutes at room temperature. The samples were washed once, and an antibody cocktail containing a PE-conjugated anti-Fc antibody (1:100 dilution) diluted in 1x Annexin-V binding buffer as well as a viability stain (Biolegend, NIR channel; 1:1000 dilution) was added to each sample and incubated for 20 minutes at room temperature. The samples were then washed once with 1x Annexin-V binding buffer and analyzed using an LSRFortessa flow cytometer (BD Biosciences). Flow cytometry plots were analyzed using FACS ...

Claims

1. An isolated antibody that specifically binds to human TIM-3, the antibody comprising a heavy chain variable region comprising complementarity-determining regions CDRH1, CDRH2, and CDRH3, and a light chain variable region comprising complementarity-determining regions CDRL1, CDRL2, and CDRL3; (a) CDRH1 comprises the amino acid sequence of SEQ ID NO: 1; (b) CDRH2 comprises the amino acid sequence of SEQ ID NO:2; (c) CDRH3 comprises the amino acid sequence of SEQ ID NO: 3; (d) CDRL1 comprises the amino acid sequence of any one of SEQ ID NOs: 13-16; (e) CDRL2 comprises the amino acid sequence of any one of SEQ ID NOs: 17-21; (f) CDRL3 comprises the amino acid sequence of SEQ ID NO: 22 or 23; An isolated antibody, wherein the antibody does not comprise the CDRH1, CDRH2, CDRH3, CDRL1, CDRL2 and CDRL3 amino acid sequences of SEQ ID NOs: 1, 2, 3, 14, 21 and 22, respectively.

2. 2. The isolated antibody of claim 1, wherein CDRL1, CDRL2 and CDRL3 comprise the amino acid sequences set forth in SEQ ID NOs: 13, 17 and 22; 14, 17 and 22; 15, 18 and 22; 14, 19 and 22; 14, 20 and 22; 16, 20 and 22; or 14, 17 and 23, respectively.

3. 3. The isolated antibody of claim 1 or 2, wherein the antibody is internalized upon binding to a cell expressing human TIM-3.

4. The following steps: (a) 2 x 10 cells expressing human TIM-3 per well 4 placing the cells individually in a tissue culture plate; (b) 1111 ng / ml of αHFc-NC-DM1 and 1111 ng / ml of antibody or pab1944w (IgG) in a final volume of 100 μl / well 1 , N297A), and (c) 37°C and 5% CO 2 Incubating at RT for 72 hours; (d) measuring the viability of the cells expressing human TIM-3; and (e) Calculating the percentage of cell survival compared to untreated human TIM-3-expressing cells and wherein the pab1944w (IgG 1 a lower proportion of cells expressing the human TIM-3 survive in the presence of the antibody than in the presence of the antibody (N297A, N297B, N297C, N297D, N297E, N297F, N297G, N297H, N297H, N297G ...H, N29 The following steps: (a) 2 x 10 cells expressing human TIM-3 per well 4 placing the cells individually in a tissue culture plate; (b) 1111 ng / ml of αHFc-NC-DM1 and 1111 ng / ml of antibody or Hum11 (IgG) in a final volume of 100 μl / well. 4 , S228P), and (c) 37°C and 5% CO 2 Incubating at RT for 72 hours; (d) measuring the viability of the cells expressing human TIM-3; and (e) Calculating the percentage of cell survival compared to untreated human TIM-3-expressing cells and 4 4. The isolated antibody of claim 3, wherein a lower proportion of cells expressing said human TIM-3 survive in the presence of said antibody than in the presence of (S228P).

5. The rate of cell survival in the presence of the antibody is pab1944w (IgG 1 , N297A) or Hum11 (IgG 4 5. The isolated antibody of claim 4, wherein the rate of cell survival is at least 50% lower than the rate of cell survival in the presence of a soluble form of the antibody (S228P).

6. The isolated antibody of any one of claims 3 to 5, wherein the cells expressing human TIM-3 are Kasumi-3 cells or Jurkat cells engineered to express human TIM-3.

7. 7. The isolated antibody of claim 1, wherein the heavy chain variable region comprises an amino acid sequence selected from any one of SEQ ID NOs: 24-26, and the light chain variable region comprises an amino acid sequence selected from any one of SEQ ID NOs: 36-41, 44, and 47.

8. The isolated antibody of claim 7, wherein the heavy chain variable region and the light chain variable region comprise the amino acid sequences set forth in SEQ ID NOs: 24 and 36; 24 and 38; 24 and 41; 24 and 47; 25 and 37; 25 and 39; 25 and 40; 25 and 41; 25 and 44; 25 and 47; 26 and 41; or 26 and 47, respectively.

9. 9. The isolated antibody of any one of claims 1 to 8, wherein the antibody comprises a heavy chain variable region comprising an amino acid sequence derived from a human IGHV3-23 germline sequence and a light chain variable region comprising an amino acid sequence derived from a human germline sequence selected from the group consisting of IGKV1-27, IGKV3-11, IGKV3-20, and IGKV3D-20.

10. the antibody comprises a heavy chain constant region, the heavy chain constant region comprising: (a) human IgG 1 , IgG 2 , IgG 3 , IgG 4 , IgA 1 , and IgA 2 selected from the group consisting of: (b) IgG 1 a heavy chain constant region; (c) IgG containing the N297A mutation numbered according to the EU numbering system 1 a heavy chain constant region; (d) comprising the amino acid sequence of SEQ ID NO: 72; (e) IgG containing the N297Q mutation numbered according to the EU numbering system 1 a heavy chain constant region; (f) non-fucosylated IgG 1 is; (g) IgG 4 a heavy chain constant region; (h) IgG containing the S228P mutation numbered according to the EU numbering system 4 a heavy chain constant region; (i) comprising the amino acid sequence of SEQ ID NO: 74; or (j) a variant of a wild-type human IgG heavy chain constant region, wherein the variant human IgG heavy chain constant region binds to the human Fc gamma receptor with a lower affinity than the wild-type human IgG heavy chain constant region binds to the human Fc gamma receptor; The isolated antibody of any one of claims 1 to 9.

11. the antibody comprises a light chain constant region, the light chain constant region comprising: (a) selected from the group consisting of human IgGκ and IgGλ; (b) a human IgGκ light chain constant region; or (c) comprising the amino acid sequence of SEQ ID NO: 76; The isolated antibody of any one of claims 1 to 10.

12. the antibody specifically binds to a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101 with less affinity than to a wild-type TIM-3 protein having the amino acid sequence of SEQ ID NO: 79; or the antibody does not specifically bind to a mutant TIM-3 protein having the amino acid sequence of SEQ ID NO: 101; The isolated antibody of any one of claims 1 to 11.

13. 13. The isolated antibody of any one of claims 1 to 12, wherein the antibody binds to residue 40 of SEQ ID NO:

79.

14. 14. The isolated antibody of any one of claims 1 to 13, wherein the antibody binds to an epitope located within a region of human TIM-3 consisting of the amino acid sequence of any one of SEQ ID NOs: 93 to 100.

15. The antibody (a) is a human antibody; (b) antagonistic to human TIM-3; (c) inactivating, reducing or inhibiting the activity of human TIM-3; (d) inhibiting the binding of human TIM-3 to phosphatidylserine; (e) induces IFNγ production by peripheral blood mononuclear cells (PBMCs) stimulated with Staphylococcal enterotoxin A (SEA); (f) inducing the production of IFNγ or TNFα by tumor-infiltrating lymphocytes (TILs) stimulated by anti-CD3 and anti-CD28 antibodies; and / or (g) is internalized upon binding to cells expressing human TIM-3; The isolated antibody of any one of claims 1 to 14.

16. 16. The isolated antibody of any one of claims 1 to 15, conjugated to a cytotoxic agent, cytostatic agent, toxin, radionuclide, or detectable label.

17. A pharmaceutical composition comprising the antibody of any one of claims 1 to 16 and a pharmaceutically acceptable carrier or excipient. (b) a heavy chain variable region and a light chain variable region of the antibody according to any one of claims 1 to 16; or (d) the heavy and light chains of the antibody according to any one of claims 1 to 16 An isolated polynucleotide encoding

19. A vector comprising the polynucleotide of claim 18.

20. 20. A recombinant host cell comprising the polynucleotide of claim 18 or the vector of claim 19.

21. 21. A method for producing an antibody that binds to human TIM-3, the method comprising culturing the host cell of claim 20 so that the polynucleotide is expressed and the antibody is produced.

22. 20. The isolated antibody or pharmaceutical composition of any one of claims 1 to 17 for use in a method of enhancing T cell activation in response to an antigen in a subject.

23. 20. The isolated antibody or pharmaceutical composition of any one of claims 1 to 17 for use in the treatment of cancer or infectious disease in a subject in need thereof.

24. (a) the antibody or pharmaceutical composition is administered subcutaneously, intravenously, or intratumorally; (b) the use further comprises administering an additional therapeutic agent, wherein the additional therapeutic agent is: (i) is a chemotherapeutic agent, a radiotherapeutic agent, or a checkpoint-targeting agent; (ii) a checkpoint targeting agent selected from the group consisting of an antagonistic anti-PD-1 antibody, an antagonistic anti-PD-L1 antibody, an antagonistic anti-PD-L2 antibody, an antagonistic anti-CTLA-4 antibody, an antagonistic anti-TIM-3 antibody, an antagonistic anti-LAG-3 antibody, an antagonistic anti-CEACAM1 antibody, an agonist anti-GITR antibody, and an agonist anti-OX40 antibody; (iii) an anti-PD-1 antibody selected from the group consisting of pembrolizumab or nivolumab; (iv) an inhibitor of indoleamine-2,3-dioxygenase (IDO); (v) an inhibitor of IDO selected from the group consisting of epacadostat, F001287, indoximod, and NLG919; (vi) a vaccine; (vii) a vaccine comprising a heat shock protein peptide complex (HSPPC) comprising a heat shock protein complexed with an antigenic peptide; (viii) a vaccine comprising an HSPPC comprising hsc70 complexed with a tumor-associated antigenic peptide; (ix) a vaccine comprising HSPPCs comprising gp96 complexed to a tumor-associated antigenic peptide, wherein the HSPPCs are derived from a tumor in a subject; 24. The isolated antibody or pharmaceutical composition of claim 22 or 23.

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