Anti-CTLA-4 binding proteins and methods of use thereof
Novel CTLA-4 binding proteins are developed to address the need for effective treatments and diagnostics, offering specific binding capabilities to modulate immune responses and treat diseases by inhibiting or activating CTLA-4, enhancing therapeutic and diagnostic applications.
Patent Information
- Application Number
- JP2024014900
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-12-27
- Filing Date
- 2024-02-02
- Publication Date
- 2025-09-29
- Estimated Expiration
- 2039-12-27
AI Technical Summary
There is a need for CTLA-4 binding proteins (ABPs) that can be used in the treatment, diagnosis, and research of various diseases, including cancer and autoimmune diseases, as existing CTLA-4 inhibitors have varying efficacy and there is a lack of effective ABPs with specific binding capabilities.
Development of novel ABPs with specific binding affinity for CTLA-4, including monoclonal, chimeric, humanized, and human antibodies, as well as alternative scaffold proteins, which can inhibit or activate CTLA-4, and methods for producing these ABPs using polynucleotides, vectors, and recombinant host cells.
The ABPs effectively inhibit or activate CTLA-4, modulating immune responses and treating conditions such as cancer and autoimmune diseases by preventing ligand binding, mediating cell killing, or activating regulatory T cells, and are used in pharmaceutical compositions and diagnostic kits.
Smart Images

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Abstract
Description
[Technical Field]
[0001] 1. CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to and the benefit of U.S. Provisional Patent Application No. 62 / 785,659, filed December 27, 2018, the entire contents of which are incorporated herein by reference.
[0002] 2. Sequence Listing This application contains a Sequence Listing for 11998 sequences submitted via EFS-Web, which is incorporated herein by reference in its entirety. The ASCII copy, created on December 20, 2019, is named GGN-010WO_SL.txt and is 1,927,908 bytes in size.
[0003] 3. Field Provided herein are antigen binding proteins (ABPs) having binding specificity for CTLA-4, as well as compositions comprising such ABPs, including pharmaceutical compositions, diagnostic compositions, and kits. Methods of making CTLA-4 ABPs and methods of using CTLA-4 ABPs, for example, for therapeutic, diagnostic, and research purposes, are also provided. [Background technology]
[0004] 4.Background CTLA-4, also known as cytotoxic T lymphocyte-associated protein 4 and CD152 (cluster of differentiation 152), is a cell surface receptor that suppresses T cell inflammatory activity. CTLA-4 is constitutively expressed by regulatory T cells (Tregs) and upregulated in stimulated T cells. CD80 and CD86, which are also expressed on antigen-presenting cells (APCs) such as dendritic cells (DCs), are the primary ligands for CTLA-4. The interaction of CTLA-4 with its ligands is crucial for downregulating immune responses and promoting self-tolerance by suppressing T cell inflammatory activity. This activity not only prevents the immune system from killing cancer cells but also prevents autoimmune diseases.
[0005] CTLA-4 is a member of the immunoglobulin superfamily that is expressed by activated T cells and transmits inhibitory signals to T cells. CTLA-4 binds to CD80 and CD86 with greater affinity and avidity than CD28, thereby enabling its ligand to outcompete CD28. CTLA-4 transmits inhibitory signals to T cells, whereas CD28 transmits stimulatory signals. CTLA-4 is also found on regulatory T cells (Tregs) and contributes to their inhibitory function. T cell activation via the T cell receptor and CD28 results in increased expression of CTLA-4. The mechanism by which CTLA-4 acts in T cells remains somewhat controversial. Biochemical evidence suggested that CTLA-4 recruits phosphatases to the T cell receptor (TCR), resulting in attenuated signals. This study has not yet been confirmed in the literature since its initial publication. More recent studies suggest that CTLA-4 may function in vivo by sequestering and removing B7-1 and B7-2 from the membrane of antigen-presenting cells, thus making them unavailable for CD28 triggering.
[0006] CTLA-4 variants have been associated with insulin-dependent diabetes mellitus, Graves' disease, Hashimoto's thyroiditis, celiac disease, systemic lupus erythematosus, thyroid-associated orbitopathy, primary biliary cirrhosis, and other autoimmune diseases. The relatively high binding affinity of CTLA-4 to CD80 and CD86 makes CTLA-4 a potential treatment for autoimmune diseases. A soluble fusion protein of CTLA-4 and an antibody (CTLA-4-Ig) is in clinical trials for rheumatoid arthritis.
[0007] Tumor cells suppress antitumor immune responses through various mechanisms, including upregulation of Tregs. Recently, CTLA-4 inhibitors have been shown to antagonize the binding of CTLA-4 to its ligand, thereby activating the immune system to attack tumors. CTLA-4 antibodies have also been used to induce antibody-dependent cell-mediated cytotoxicity (ADCC) of Tregs specific to the tumor microenvironment, thereby reducing immune tolerance to tumors. Thus, CTLA-4 antibodies have been used to treat several types of cancer, although with varying efficacy.
[0008] Therefore, there is a need to develop CTLA-4 ABPs that can be used in the treatment, diagnosis, and research of a variety of diseases, including cancer and autoimmune diseases. Summary of the Invention [Means for solving the problem]
[0009] 5. Overview Provided herein are novel ABPs that have binding specificity for CTLA-4, and methods of using such ABPs. The CTLA-4 is human CTLA-4 (SEQ ID NO: 7001) or a fragment of human CTLA-4.
[0010] The ABP can comprise an antibody. In some embodiments, the antibody is a monoclonal antibody. In some embodiments, the antibody is a chimeric antibody. In some embodiments, the antibody is a humanized antibody. In some embodiments, the antibody is a human antibody. In some embodiments, the ABP comprises an antibody fragment. In some embodiments, the ABP comprises an alternative scaffold. In some embodiments, the ABP comprises a single chain variable fragment (scFv).
[0011] The ABPs provided herein can induce various biological effects associated with the inhibition or activation of CTLA-4. In some embodiments, the ABPs provided herein prevent the binding of CTLA-4 to its ligand. In some embodiments, the ABPs provided herein prevent the inhibition of effector T cells by Tregs. In some embodiments, the ABPs directly kill or mediate the killing of Tregs or other CTLA-4-expressing cells in the tumor microenvironment by ADCC and / or ADCP, for example, mediated by the binding of CD16 expressed by NK cells to the ABP Fc domain. In some embodiments, the ABPs inhibit the suppression of effector T cells by regulatory T cells by directly killing Tregs. In some embodiments, the tissue is a tumor. In some embodiments, the ABPs activate CTLA-4, resulting in the expansion and activation of Tregs.
[0012] Kits containing one or more pharmaceutical compositions comprising an ABP and instructions for use of the pharmaceutical compositions are also provided.
[0013] Also provided are isolated polynucleotides encoding the ABPs provided herein and portions thereof.
[0014] Vectors containing such polynucleotides are also provided.
[0015] Recombinant host cells containing such polynucleotides, and recombinant host cells containing such vectors, are also provided.
[0016] Also provided are methods for producing ABPs using the polynucleotides, vectors, or host cells provided herein.
[0017] Pharmaceutical compositions comprising the ABP and a pharmaceutically acceptable excipient are also provided.
[0018] Also provided are methods for treating or preventing a disease or condition in a subject in need thereof, comprising administering to the subject an effective amount of an ABP provided herein or a pharmaceutical composition comprising such an ABP. In some embodiments, the disease or condition is cancer or an autoimmune disease. In some embodiments, the disease or condition is a viral or bacterial infection. In some embodiments, the method further comprises administering one or more additional therapeutic agents. In some embodiments, the additional therapeutic agent is an immunostimulant.
[0019] More specifically, the present disclosure provides an isolated antigen binding protein (ABP) that specifically binds to human cytotoxic T-lymphocyte-associated protein 4 (CTLA-4), comprising: (a) a CDR3-L having a sequence selected from SEQ ID NOs: 3001-3028, and a CDR3-H having a sequence selected from SEQ ID NOs: 6001-6028; or (b) a CDR3-L having a sequence selected from SEQ ID NOs: 9984-10479, and a CDR3-H having a sequence selected from SEQ ID NOs: 11472-11967; or (c) a CDR3-L having the sequence of any one of the CD3-L clones in the library deposited under ATCC Accession No. PTA-125512, and a CDR3-L having the sequence of any one of the CD3-L clones in the library deposited under ATCC Accession No. PTA-125512. In some embodiments, the CDR3-L and CDR3-H are a cognate pair.
[0020] In some embodiments, the ABP comprises (a) a CDR1-L having a sequence selected from SEQ ID NOs: 1001-1028; and a CDR2-L having a sequence selected from SEQ ID NOs: 2001-2028; and a CDR1-H having a sequence selected from SEQ ID NOs: 4001-4028; and a CDR2-H having a sequence selected from SEQ ID NOs: 5001-5028; or (b) a CDR1-L having a sequence selected from SEQ ID NOs: 8992-9487; and a CDR2-L having a sequence selected from SEQ ID NOs: 9488-9983; and a CDR1-H having a sequence selected from SEQ ID NOs: 10480-10975; and a CDR2-H having a sequence selected from SEQ ID NOs: 10976-11471. H; or (c) a CDR1-L having a sequence selected from the CDR1-L of any one of the clones in the library deposited under ATCC Accession No. PTA-125512; and a CDR2-L having a sequence selected from the CDR2-L of any one of the clones in the library deposited under ATCC Accession No. PTA-125512; and a CDR1-H having a sequence selected from the CDR1-H of any one of the clones in the library deposited under ATCC Accession No. PTA-125512; and a CDR2-H having a sequence selected from the CDR2-H of any one of the clones in the library deposited under ATCC Accession No. PTA-125512.
[0021] In some embodiments, the ABP comprises CDR1-L, CDR2-L, CDR3-L, CDR1-H, CDR2-H and CDR3-H, wherein CDR1-L consists of SEQ ID NO: 1001, CDR2-L consists of SEQ ID NO: 2001, CDR3-L consists of SEQ ID NO: 3001, CDR1-H consists of SEQ ID NO: 4001, CDR2-H consists of SEQ ID NO: 5001 and CDR3-H consists of SEQ ID NO: 6001; or CDR1-L consists of SEQ ID NO: 1002, CDR2-L consists of SEQ ID NO: 2002 and CDR3-L consists of or CDR1-L consists of SEQ ID NO: 1003, CDR2-L consists of SEQ ID NO: 2003, CDR3-L consists of SEQ ID NO: 3003, CDR1-H consists of SEQ ID NO: 4003, CDR2-H consists of SEQ ID NO: 5003, and CDR3-H consists of SEQ ID NO: 6003; or CDR1-L consists of SEQ ID NO: 1004 and CDR2-L consists of SEQ ID NO: No. 2004, wherein CDR3-L consists of SEQ ID NO: 3004, wherein CDR1-H consists of SEQ ID NO: 4004, wherein CDR2-H consists of SEQ ID NO: 5004, and wherein CDR3-H consists of SEQ ID NO: 6004; or wherein CDR1-L consists of SEQ ID NO: 1005, wherein CDR2-L consists of SEQ ID NO: 2005, wherein CDR3-L consists of SEQ ID NO: 3005, wherein CDR1-H consists of SEQ ID NO: 4005, wherein CDR2-H consists of SEQ ID NO: 5005, and wherein CDR3-H consists of SEQ ID NO: 6005; or wherein CDR1-L consists of SEQ ID NO: 10 06, wherein CDR2-L consists of SEQ ID NO: 2006, wherein CDR3-L consists of SEQ ID NO: 3006, wherein CDR1-H consists of SEQ ID NO: 4006, wherein CDR2-H consists of SEQ ID NO: 5006, and wherein CDR3-H consists of SEQ ID NO: 6006; or wherein CDR1-L consists of SEQ ID NO: 1007, wherein CDR2-L consists of SEQ ID NO: 2007, wherein CDR3-L consists of SEQ ID NO: 3007, wherein CDR1-H consists of SEQ ID NO: 4007, wherein CDR2-H consists of SEQ ID NO: 5007, and wherein CDR3-H consists of SEQ ID NO: 6007;or CDR1-L consists of SEQ ID NO: 1008, CDR2-L consists of SEQ ID NO: 2008, CDR3-L consists of SEQ ID NO: 3008, CDR1-H consists of SEQ ID NO: 4008, CDR2-H consists of SEQ ID NO: 5008 and CDR3-H consists of SEQ ID NO: 6008; or CDR1-L consists of SEQ ID NO: 1009, CDR2-L consists of SEQ ID NO: 2009, CDR3-L consists of SEQ ID NO: 3009, CDR1-H consists of SEQ ID NO: 4009 and CDR2-H consists of SEQ ID NO: or CDR1-L consists of SEQ ID NO: 1010, CDR2-L consists of SEQ ID NO: 2010, CDR3-L consists of SEQ ID NO: 3010, CDR1-H consists of SEQ ID NO: 4010, CDR2-H consists of SEQ ID NO: 5010, and CDR3-H consists of SEQ ID NO: 6010; or CDR1-L consists of SEQ ID NO: 1011, CDR2-L consists of SEQ ID NO: 2011, and CDR3-L consists of SEQ ID NO: 3011. , wherein CDR1-H consists of SEQ ID NO: 4011, CDR2-H consists of SEQ ID NO: 5011, and CDR3-H consists of SEQ ID NO: 6011; or wherein CDR1-L consists of SEQ ID NO: 1012, CDR2-L consists of SEQ ID NO: 2012, and CDR3-L consists of SEQ ID NO: 3012, wherein CDR1-H consists of SEQ ID NO: 4012, CDR2-H consists of SEQ ID NO: 5012, and CDR3-H consists of SEQ ID NO: 6012; or wherein CDR1-L consists of SEQ ID NO: 1013, and CDR2-L consists of CDR1-L consists of SEQ ID NO: 2013, CDR3-L consists of SEQ ID NO: 3013, CDR1-H consists of SEQ ID NO: 4013, CDR2-H consists of SEQ ID NO: 5013, and CDR3-H consists of SEQ ID NO: 6013; or CDR1-L consists of SEQ ID NO: 1014, CDR2-L consists of SEQ ID NO: 2014, CDR3-L consists of SEQ ID NO: 3014, CDR1-H consists of SEQ ID NO: 4014, CDR2-H consists of SEQ ID NO: 5014, and CDR3-H consists of SEQ ID NO: 6014;or CDR1-L consists of SEQ ID NO: 1015, CDR2-L consists of SEQ ID NO: 2015, CDR3-L consists of SEQ ID NO: 3015, CDR1-H consists of SEQ ID NO: 4015, CDR2-H consists of SEQ ID NO: 5015 and CDR3-H consists of SEQ ID NO: 6015; or CDR1-L consists of SEQ ID NO: 1016, CDR2-L consists of SEQ ID NO: 2016, CDR3-L consists of SEQ ID NO: 3016, CDR1-H consists of SEQ ID NO: 4016 and CDR2-H consists of SEQ ID NO: or CDR1-L consists of SEQ ID NO: 1017, CDR2-L consists of SEQ ID NO: 2017, CDR3-L consists of SEQ ID NO: 3017, CDR1-H consists of SEQ ID NO: 4017, CDR2-H consists of SEQ ID NO: 5017, and CDR3-H consists of SEQ ID NO: 6017; or CDR1-L consists of SEQ ID NO: 1018, CDR2-L consists of SEQ ID NO: 2018, and CDR3-L consists of SEQ ID NO: 3018. , wherein CDR1-H consists of SEQ ID NO: 4018, CDR2-H consists of SEQ ID NO: 5018, and CDR3-H consists of SEQ ID NO: 6018; or wherein CDR1-L consists of SEQ ID NO: 1019, CDR2-L consists of SEQ ID NO: 2019, and CDR3-L consists of SEQ ID NO: 3019, wherein CDR1-H consists of SEQ ID NO: 4019, CDR2-H consists of SEQ ID NO: 5019, and CDR3-H consists of SEQ ID NO: 6019; or wherein CDR1-L consists of SEQ ID NO: 1020, and CDR2-L consists of CDR1-L consists of SEQ ID NO: 2020, CDR3-L consists of SEQ ID NO: 3020, CDR1-H consists of SEQ ID NO: 4020, CDR2-H consists of SEQ ID NO: 5020, and CDR3-H consists of SEQ ID NO: 6020; or CDR1-L consists of SEQ ID NO: 1021, CDR2-L consists of SEQ ID NO: 2021, CDR3-L consists of SEQ ID NO: 3021, CDR1-H consists of SEQ ID NO: 4021, CDR2-H consists of SEQ ID NO: 5021, and CDR3-H consists of SEQ ID NO: 6021;or CDR1-L consists of SEQ ID NO: 1022, CDR2-L consists of SEQ ID NO: 2022, CDR3-L consists of SEQ ID NO: 3022, CDR1-H consists of SEQ ID NO: 4022, CDR2-H consists of SEQ ID NO: 5022 and CDR3-H consists of SEQ ID NO: 6022; or CDR1-L consists of SEQ ID NO: 1023, CDR2-L consists of SEQ ID NO: 2023, CDR3-L consists of SEQ ID NO: 3023, CDR1-H consists of SEQ ID NO: 4023 and CDR2-H consists of SEQ ID NO: or CDR1-L consists of SEQ ID NO: 1024, CDR2-L consists of SEQ ID NO: 2024, CDR3-L consists of SEQ ID NO: 3024, CDR1-H consists of SEQ ID NO: 4024, CDR2-H consists of SEQ ID NO: 5024, and CDR3-H consists of SEQ ID NO: 6024; or CDR1-L consists of SEQ ID NO: 1025, CDR2-L consists of SEQ ID NO: 2025, and CDR3-L consists of SEQ ID NO: 3025. wherein CDR1-H consists of SEQ ID NO: 4025, CDR2-H consists of SEQ ID NO: 5025, and CDR3-H consists of SEQ ID NO: 6025; or wherein CDR1-L consists of SEQ ID NO: 1026, CDR2-L consists of SEQ ID NO: 2026, and CDR3-L consists of SEQ ID NO: 3026, wherein CDR1-H consists of SEQ ID NO: 4026, CDR2-H consists of SEQ ID NO: 5026, and CDR3-H consists of SEQ ID NO: 6026; or wherein CDR1-L consists of SEQ ID NO: 1027 and CDR2-L consists of , consisting of SEQ ID NO: 2027, CDR3-L consisting of SEQ ID NO: 3027, CDR1-H consisting of SEQ ID NO: 4027, CDR2-H consisting of SEQ ID NO: 5027, and CDR3-H consisting of SEQ ID NO: 6027; or CDR1-L consisting of SEQ ID NO: 1028, CDR2-L consisting of SEQ ID NO: 2028, CDR3-L consisting of SEQ ID NO: 3028, CDR1-H consisting of SEQ ID NO: 4028, CDR2-H consisting of SEQ ID NO: 5028, and CDR3-H consisting of SEQ ID NO: 6028;
[0022] In some embodiments, the ABP comprises a variable light chain (V) comprising a sequence at least 97% identical to a sequence selected from SEQ ID NOs: 1-28. L ), and a variable heavy chain (V) comprising a sequence at least 97% identical to a sequence selected from SEQ ID NOs: 101 to 128. H or a variable light chain (V) comprising a sequence at least 97% identical to a sequence selected from SEQ ID NOs: 8000 to 8495 L ), and a variable heavy chain (V) comprising a sequence at least 97% identical to a sequence selected from SEQ ID NOs: 8496 to 8991. H ); or any one of the clones in the library deposited under ATCC accession number PTA-125512 L A variable light chain (V) containing a sequence at least 97% identical to the sequence L ), and any one of the clones in the library deposited under ATCC accession number PTA-125512, V H A variable heavy chain (V) containing a sequence at least 97% identical to the sequence H In some embodiments, V L and V H is a cognate pair.
[0023] In some embodiments, the ABP comprises a variable light chain (V) comprising a sequence selected from SEQ ID NOs: 1-28. L ), and a variable heavy chain (V) comprising a sequence selected from SEQ ID NOs: 101 to 128 H or a variable light chain (V) comprising a sequence selected from SEQ ID NOs: 8000 to 8495 L ), and a variable heavy chain (V) comprising a sequence selected from SEQ ID NOs: 8496 to 8991 H ); or any one of the clones in the library deposited under ATCC accession number PTA-125512 L The variable light chain (V L ), and any one of the clones in the library deposited under ATCC accession number PTA-125512, V H The variable heavy chain (V H In some embodiments, V L and V H is a cognate pair.
[0024] In some embodiments, the ABP comprises an scFv or a full-length monoclonal antibody. In some embodiments, the ABP comprises an immunoglobulin constant region.
[0025] In some embodiments, the ABP has a K of less than 500 nM as measured by surface plasmon resonance. D In some embodiments, the ABP binds to human CTLA-4 with a K of less than 200 nM as measured by surface plasmon resonance. D In some embodiments, the ABP binds to human CTLA-4 with a K of less than 25 nM as measured by surface plasmon resonance. D In some embodiments, the ABP binds to human CTLA-4 with a K of less than 25 nM. D It binds to human CTLA-4 on the cell surface.
[0026] Another aspect of the present disclosure provides a method for treating a disease, the method comprising administering to a subject in need thereof an effective amount of an ABP disclosed herein or a pharmaceutical composition disclosed herein. In some embodiments, the disease is selected from the group consisting of cancer, AIDS, Alzheimer's disease, and a viral or bacterial infection. In some embodiments, the method further comprises administering to the subject one or more additional therapeutic agents. In some embodiments, the additional therapeutic agents are selected from a CTLA-4 inhibitor, a TIGIT inhibitor, a chemotherapeutic agent, an immunostimulant, radiation, a cytokine, a polynucleotide encoding a cytokine, and combinations thereof. In certain embodiments, for example, the following items are provided: (Item 1) 1. An isolated antigen binding protein (ABP) that specifically binds to human cytotoxic T-lymphocyte-associated protein 4 (CTLA-4), comprising: (a) a CDR3-L having a sequence selected from SEQ ID NOs: 3001 to 3028, and a CDR3-H having a sequence selected from SEQ ID NOs: 6001 to 6028; or (b) a CDR3-L having a sequence selected from SEQ ID NOs: 9984 to 10479, and a CDR3-H having a sequence selected from SEQ ID NOs: 11472 to 11967; or (c) a CDR3-L having the sequence of the CD3-L of any one of the clones in the library deposited under ATCC Accession No. PTA-125512, and a CDR3-L having the sequence of the CD3-L of any one of the clones in the library deposited under ATCC Accession No. PTA-125512. 1. An isolated antigen binding protein (ABP) comprising: (Item 2) 2. The ABP of item 1, wherein the CDR3-L and the CDR3-H are a cognate pair. (Item 3) (a) a CDR1-L having a sequence selected from SEQ ID NOs: 1001 to 1028; and a CDR2-L having a sequence selected from SEQ ID NOs: 2001 to 2028; and a CDR1-H having a sequence selected from SEQ ID NOs: 4001 to 4028; and a CDR2-H having a sequence selected from SEQ ID NOs: 5001 to 5028; or (b) a CDR1-L having a sequence selected from SEQ ID NOs: 8992 to 9487; and a CDR2-L having a sequence selected from SEQ ID NOs: 9488 to 9983; and a CDR1-H having a sequence selected from SEQ ID NOs: 10480 to 10975; and a CDR2-H having a sequence selected from SEQ ID NOs: 10976 to 11471; or (c) a CDR1-L having a sequence selected from the CDR1-L of any one of the clones in the library deposited under ATCC Accession No. PTA-125512; and a CDR2-L having a sequence selected from the CDR2-L of any one of the clones in the library deposited under ATCC Accession No. PTA-125512; and a CDR1-H having a sequence selected from the CDR1-H of any one of the clones in the library deposited under ATCC Accession No. PTA-125512; and a CDR2-H having a sequence selected from the CDR2-H of any one of the clones in the library deposited under ATCC Accession No. PTA-125512. 2. The ABP according to item 1, comprising: (Item 4) comprising CDR1-L, CDR2-L, CDR3-L, CDR1-H, CDR2-H and CDR3-H, the CDR1-L consists of SEQ ID NO: 1001, the CDR2-L consists of SEQ ID NO: 2001, the CDR3-L consists of SEQ ID NO: 3001, the CDR1-H consists of SEQ ID NO: 4001, the CDR2-H consists of SEQ ID NO: 5001 and the CDR3-H consists of SEQ ID NO: 6001; or the CDR1-L consists of SEQ ID NO: 1002, the CDR2-L consists of SEQ ID NO: 2002, the CDR3-L consists of SEQ ID NO: 3002, the CDR1-H consists of SEQ ID NO: 4002, the CDR2-H consists of SEQ ID NO: 5002 and the CDR3-H consists of SEQ ID NO: 6002; or the CDR1-L consists of SEQ ID NO: 1003, the CDR2-L consists of SEQ ID NO: 2003, the CDR3-L consists of SEQ ID NO: 3003, the CDR1-H consists of SEQ ID NO: 4003, the CDR2-H consists of SEQ ID NO: 5003 and the CDR3-H consists of SEQ ID NO: 6003; or the CDR1-L consists of SEQ ID NO: 1004, the CDR2-L consists of SEQ ID NO: 2004, the CDR3-L consists of SEQ ID NO: 3004, the CDR1-H consists of SEQ ID NO: 4004, the CDR2-H consists of SEQ ID NO: 5004 and the CDR3-H consists of SEQ ID NO: 6004; or the CDR1-L consists of SEQ ID NO: 1005, the CDR2-L consists of SEQ ID NO: 2005, the CDR3-L consists of SEQ ID NO: 3005, the CDR1-H consists of SEQ ID NO: 4005, the CDR2-H consists of SEQ ID NO: 5005 and the CDR3-H consists of SEQ ID NO: 6005; or the CDR1-L consists of SEQ ID NO: 1006, the CDR2-L consists of SEQ ID NO: 2006, the CDR3-L consists of SEQ ID NO: 3006, the CDR1-H consists of SEQ ID NO: 4006, the CDR2-H consists of SEQ ID NO: 5006, and the CDR3-H consists of SEQ ID NO: 6006; or the CDR1-L consists of SEQ ID NO: 1007, the CDR2-L consists of SEQ ID NO: 2007, the CDR3-L consists of SEQ ID NO: 3007, the CDR1-H consists of SEQ ID NO: 4007, the CDR2-H consists of SEQ ID NO: 5007, and the CDR3-H consists of SEQ ID NO: 6007; or the CDR1-L consists of SEQ ID NO: 1008, the CDR2-L consists of SEQ ID NO: 2008, the CDR3-L consists of SEQ ID NO: 3008, the CDR1-H consists of SEQ ID NO: 4008, the CDR2-H consists of SEQ ID NO: 5008 and the CDR3-H consists of SEQ ID NO: 6008; or the CDR1-L consists of SEQ ID NO: 1009, the CDR2-L consists of SEQ ID NO: 2009, the CDR3-L consists of SEQ ID NO: 3009, the CDR1-H consists of SEQ ID NO: 4009, the CDR2-H consists of SEQ ID NO: 5009 and the CDR3-H consists of SEQ ID NO: 6009; or the CDR1-L consists of SEQ ID NO: 1010, the CDR2-L consists of SEQ ID NO: 2010, the CDR3-L consists of SEQ ID NO: 3010, the CDR1-H consists of SEQ ID NO: 4010, the CDR2-H consists of SEQ ID NO: 5010 and the CDR3-H consists of SEQ ID NO: 6010; or the CDR1-L consists of SEQ ID NO: 1011, the CDR2-L consists of SEQ ID NO: 2011, the CDR3-L consists of SEQ ID NO: 3011, the CDR1-H consists of SEQ ID NO: 4011, the CDR2-H consists of SEQ ID NO: 5011 and the CDR3-H consists of SEQ ID NO: 6011; or the CDR1-L consists of SEQ ID NO: 1012, the CDR2-L consists of SEQ ID NO: 2012, the CDR3-L consists of SEQ ID NO: 3012, the CDR1-H consists of SEQ ID NO: 4012, the CDR2-H consists of SEQ ID NO: 5012 and the CDR3-H consists of SEQ ID NO: 6012; or the CDR1-L consists of SEQ ID NO: 1013, the CDR2-L consists of SEQ ID NO: 2013, the CDR3-L consists of SEQ ID NO: 3013, the CDR1-H consists of SEQ ID NO: 4013, the CDR2-H consists of SEQ ID NO: 5013 and the CDR3-H consists of SEQ ID NO: 6013; or the CDR1-L consists of SEQ ID NO: 1014, the CDR2-L consists of SEQ ID NO: 2014, the CDR3-L consists of SEQ ID NO: 3014, the CDR1-H consists of SEQ ID NO: 4014, the CDR2-H consists of SEQ ID NO: 5014 and the CDR3-H consists of SEQ ID NO: 6014; or the CDR1-L consists of SEQ ID NO: 1015, the CDR2-L consists of SEQ ID NO: 2015, the CDR3-L consists of SEQ ID NO: 3015, the CDR1-H consists of SEQ ID NO: 4015, the CDR2-H consists of SEQ ID NO: 5015 and the CDR3-H consists of SEQ ID NO: 6015; or the CDR1-L consists of SEQ ID NO: 1016, the CDR2-L consists of SEQ ID NO: 2016, the CDR3-L consists of SEQ ID NO: 3016, the CDR1-H consists of SEQ ID NO: 4016, the CDR2-H consists of SEQ ID NO: 5016, and the CDR3-H consists of SEQ ID NO: 6016; or the CDR1-L consists of SEQ ID NO: 1017, the CDR2-L consists of SEQ ID NO: 2017, the CDR3-L consists of SEQ ID NO: 3017, the CDR1-H consists of SEQ ID NO: 4017, the CDR2-H consists of SEQ ID NO: 5017, and the CDR3-H consists of SEQ ID NO: 6017; or the CDR1-L consists of SEQ ID NO: 1018, the CDR2-L consists of SEQ ID NO: 2018, the CDR3-L consists of SEQ ID NO: 3018, the CDR1-H consists of SEQ ID NO: 4018, the CDR2-H consists of SEQ ID NO: 5018 and the CDR3-H consists of SEQ ID NO: 6018; or the CDR1-L consists of SEQ ID NO: 1019, the CDR2-L consists of SEQ ID NO: 2019, the CDR3-L consists of SEQ ID NO: 3019, the CDR1-H consists of SEQ ID NO: 4019, the CDR2-H consists of SEQ ID NO: 5019 and the CDR3-H consists of SEQ ID NO: 6019; or the CDR1-L consists of SEQ ID NO: 1020, the CDR2-L consists of SEQ ID NO: 2020, the CDR3-L consists of SEQ ID NO: 3020, the CDR1-H consists of SEQ ID NO: 4020, the CDR2-H consists of SEQ ID NO: 5020, and the CDR3-H consists of SEQ ID NO: 6020; or the CDR1-L consists of SEQ ID NO: 1021, the CDR2-L consists of SEQ ID NO: 2021, the CDR3-L consists of SEQ ID NO: 3021, the CDR1-H consists of SEQ ID NO: 4021, the CDR2-H consists of SEQ ID NO: 5021 and the CDR3-H consists of SEQ ID NO: 6021; or the CDR1-L consists of SEQ ID NO: 1022, the CDR2-L consists of SEQ ID NO: 2022, the CDR3-L consists of SEQ ID NO: 3022, the CDR1-H consists of SEQ ID NO: 4022, the CDR2-H consists of SEQ ID NO: 5022 and the CDR3-H consists of SEQ ID NO: 6022; or the CDR1-L consists of SEQ ID NO: 1023, the CDR2-L consists of SEQ ID NO: 2023, the CDR3-L consists of SEQ ID NO: 3023, the CDR1-H consists of SEQ ID NO: 4023, the CDR2-H consists of SEQ ID NO: 5023 and the CDR3-H consists of SEQ ID NO: 6023; or the CDR1-L consists of SEQ ID NO: 1024, the CDR2-L consists of SEQ ID NO: 2024, the CDR3-L consists of SEQ ID NO: 3024, the CDR1-H consists of SEQ ID NO: 4024, the CDR2-H consists of SEQ ID NO: 5024, and the CDR3-H consists of SEQ ID NO: 6024; or the CDR1-L consists of SEQ ID NO: 1025, the CDR2-L consists of SEQ ID NO: 2025, the CDR3-L consists of SEQ ID NO: 3025, the CDR1-H consists of SEQ ID NO: 4025, the CDR2-H consists of SEQ ID NO: 5025 and the CDR3-H consists of SEQ ID NO: 6025; or the CDR1-L consists of SEQ ID NO: 1026, the CDR2-L consists of SEQ ID NO: 2026, the CDR3-L consists of SEQ ID NO: 3026, the CDR1-H consists of SEQ ID NO: 4026, the CDR2-H consists of SEQ ID NO: 5026, and the CDR3-H consists of SEQ ID NO: 6026; or the CDR1-L consists of SEQ ID NO: 1027, the CDR2-L consists of SEQ ID NO: 2027, the CDR3-L consists of SEQ ID NO: 3027, the CDR1-H consists of SEQ ID NO: 4027, the CDR2-H consists of SEQ ID NO: 5027, and the CDR3-H consists of SEQ ID NO: 6027; or 2. The ABP of item 1, wherein the CDR1-L consists of SEQ ID NO: 1028, the CDR2-L consists of SEQ ID NO: 2028, the CDR3-L consists of SEQ ID NO: 3028, the CDR1-H consists of SEQ ID NO: 4028, the CDR2-H consists of SEQ ID NO: 5028, and the CDR3-H consists of SEQ ID NO: 6028. (Item 5) A variable light chain (V) comprising a sequence at least 97% identical to a sequence selected from SEQ ID NOs: 1 to 28. L ), and a variable heavy chain (V) comprising a sequence at least 97% identical to a sequence selected from SEQ ID NOs: 101 to 128. H );or A variable light chain (V) comprising a sequence at least 97% identical to a sequence selected from SEQ ID NOs: 8000 to 8495. L), and a variable heavy chain (V) comprising a sequence at least 97% identical to a sequence selected from SEQ ID NOs: 8496 to 8991. H );or Any one of the clones in the library deposited under ATCC accession number PTA-125512 L A variable light chain (V) containing a sequence at least 97% identical to the sequence L ), and any one of the clones in the library deposited under ATCC accession number PTA-125512, V H A variable heavy chain (V) containing a sequence at least 97% identical to the sequence H ) 2. The ABP according to item 1, comprising: (Item 6) The above V L and V H are cognate pairs. (Item 7) A variable light chain (V) comprising a sequence selected from SEQ ID NOs: 1 to 28 L ), and a variable heavy chain (V) comprising a sequence selected from SEQ ID NOs: 101 to 128 H );or A variable light chain (V) comprising a sequence selected from SEQ ID NOs: 8000 to 8495 L ), and a variable heavy chain (V) comprising a sequence selected from SEQ ID NOs: 8496 to 8991 H );or Any one of the clones in the library deposited under ATCC accession number PTA-125512 L The variable light chain (V L ), and any one of the clones in the library deposited under ATCC accession number PTA-125512, V H The variable heavy chain (V H ) 2. The ABP according to item 1, comprising: (Item 8) The above V L and V H are cognate pairs. (Item 9) 9. The ABP according to any of items 1 to 8, comprising an scFv or a full-length monoclonal antibody. (Item 10) 9. The ABP according to any of items 1 to 8, comprising an immunoglobulin constant region. (Item 11) K<500 nM as measured by surface plasmon resonance D 2. The ABP of any preceding item, which binds to human CTLA-4 at (Item 12) K<200 nM as measured by surface plasmon resonance D 12. The ABP according to item 11, which binds to human CTLA-4 at (Item 13) K<25 nM as measured by surface plasmon resonance D 13. The ABP according to item 12, which binds to human CTLA-4 at (Item 14) K<25nM D 14. The ABP according to any one of items 1 to 13, which binds to human CTLA-4 on the cell surface at (Item 15) 15. A pharmaceutical composition comprising the ABP according to any one of items 1 to 14 and an excipient. (Item 16) 1. A method of treating a disease, comprising: Administering an effective amount of the ABP according to any one of items 1 to 14 or the pharmaceutical composition according to item 15 to a subject in need thereof. A method comprising: (Item 17) 17. The method of claim 16, wherein the disease is selected from the group consisting of cancer, AIDS, Alzheimer's disease, and viral or bacterial infections. (Item 18) 18. The method of any of items 16 to 17, further comprising administering to the subject one or more additional therapeutic agents. (Item 19) 19. The method of item 18, wherein the additional therapeutic agent is selected from a CTLA-4 inhibitor, a TIGIT inhibitor, a chemotherapeutic agent, an immunostimulant, radiation, a cytokine, a polynucleotide encoding a cytokine, and combinations thereof. (Item 20) 11. An isolated polynucleotide encoding the ABP according to any one of items 1 to 10. (Item 21) A vector comprising the isolated polynucleotide of item 20. (Item 22) A host cell comprising the isolated polynucleotide of item 20 or the vector of item 21. (Item 23) 1. A method for producing an isolated antigen binding protein (ABP) that specifically binds human CTLA-4, comprising: 23. Expressing the ABP in the host cell of item 22 and isolating the ABP. A method comprising: 6. Brief description of the drawings [Brief explanation of the drawings]
[0027] [Figure 1] Figure 1 summarizes the method for generating an scFv library from B cells isolated from fully human mice and selecting B cells that express antibodies with high affinity for an antigen. Figure 1 discloses SEQ ID NOs: 11971 to 11998, respectively, in order of appearance.
[0028] [Figure 2]Figure 2 illustrates the scFv amplification procedure. First, IgK and IgH are amplified separately using a mixture of primers targeting the IgK C region, IgG C region, and all V regions. Second, the VH and CK primers contain complementary regions that result in the formation of an overlap-extension amplicon, which is the fusion product of IgK and IgH. The complementary region includes a DNA sequence encoding a Gly-Ser-rich scFv linker sequence. Third, semi-nested PCR is performed to add adapters for Illumina sequencing or yeast display.
[0029] [Figure 3] Figure 3 contains a schematic diagram for the monoclonal antibodies selected in these epitope bins.
[0030] [Figure 4] Figure 4 includes plots from histopathological staining of hCTLA-4 KI mice bearing MC38 tumors. The plots show scores for H&E, immunoglobulin (Ig), and C3 staining from the right kidney. ipi is ipilimumab, and CTLA4.A14.2a is antibody A14 cloned onto a murine IgG2a backbone.
[0031] [Figure 5] Figure 5 includes plots showing alkaline phosphatase levels in treated hCTLA4 KI mice bearing MC38 tumors. IPI is ipilimumab, and CTLA4.A14.2a is antibody A14 cloned onto a murine IgG2a backbone. U / L is units per liter.
[0032] [Figure 6] FIG. 6 contains plots of the percentage of intratumoral regulatory T cells (Treg) and intratumoral natural killer (NK) cells after the indicated treatments.
[0033] [Figure 7]Figure 7 includes plots showing the change in body weight of hCTLA4 mice receiving the indicated treatments. Ipi is ipilimumab, and CTLA4.A14.2a is antibody A14 cloned onto a murine IgG2a backbone. Error bars represent the mean ± standard error.
[0034] [Figure 8] Figure 8 includes plots showing the effect of control, Ipi, and anti-CTLA4 treatment as percentages of the indicated cell populations. Ipi is ipilimumab, and CTLA4.A14.2a is antibody A14 cloned onto a murine IgG2a backbone.
[0035] [Figure 9] Figure 9 includes plots showing the effect of control, Ipi, and anti-CTLA4 treatment as percentages of the indicated cell populations. Ipi is ipilimumab, and CTLA4.A14.2a is antibody A14 cloned onto a murine IgG2a backbone.
[0036] [Figure 10] Figure 10 includes plots showing the effect of control, Ipi, and anti-CTLA4 treatment on the percentage of dendritic cells (DCs) and activated dendritic cells (CD86+). Ipi is ipilimumab, and CTLA4.A14.2a is antibody A14 cloned onto a murine IgG2a backbone.
[0037] [Figure 11] FIG. 11 contains plots showing the mean tumor volume after treatment with 0.3 mg / kg of the indicated anti-CTLA4. DETAILED DESCRIPTION OF THE INVENTION
[0038] 7. Detailed Description 7.1.Definition Unless otherwise defined herein, scientific and technical terms used in connection with the present disclosure shall have the meanings commonly understood by those of ordinary skill in the art. Furthermore, unless the context requires otherwise, singular terms shall include the plural, and plural terms shall include the singular. Generally, the nomenclature used in connection with, and the techniques of, cell and tissue culture, molecular biology, immunology, microbiology, genetics, and protein and nucleic acid chemistry and hybridization described herein are those well known and commonly used in the art. The methods and techniques of the present disclosure, unless otherwise indicated, are generally performed according to conventional methods well known in the art and as described in the various general and more specific references mentioned and discussed throughout this specification. See, e.g., Sambrook et al., Molecular Cloning: A Laboratory Manual, 2d ed., Cold Spring Harbor Laboratory Press, 1999. Harbor Laboratory Press, Cold Spring Harbor, NY (1989) and Ausubel et al., Current Protocols in Molecular Biology, Greene Publishing Associates (1992), and Harlow and Lane Antibodies: A Laboratory Manual, Cold Spring Harbor, NY (1994). Spring Harbor Laboratory Press, Cold Spring Harbor, NY (1990) and these references are incorporated herein by reference. Enzymatic reactions and purification techniques are performed according to manufacturer's specifications, as commonly accomplished in the art or as described herein. The terminology used in connection with, and the laboratory procedures and techniques of analytical chemistry, synthetic organic chemistry, medicinal chemistry, and pharmaceutical chemistry described herein are those well known and commonly used in the art. Standard techniques can be used for chemical syntheses, chemical analyses, pharmaceutical preparation, formulation, and delivery, and treatment of patients.
[0039] The following terms, unless otherwise indicated, shall be understood to have the following meanings:
[0040] The terms "CTLA-4," "CTLA-4 protein," and "CTLA-4 antigen" are used interchangeably herein to refer to human CTLA-4 or any variants (e.g., splice variants and allelic variants), isoforms, and species homologs of human CTLA-4 that are naturally expressed by cells or that are expressed by cells transfected with the ctla4 gene. In some embodiments, the CTLA-4 protein is a CTLA-4 protein that is naturally expressed by a primate (e.g., monkey or human), rodent (e.g., mouse or rat), dog, camel, cat, cow, goat, horse, or sheep. In some embodiments, the CTLA-4 protein is human CTLA-4 (hCTLA-4; SEQ ID NO: 7001).
[0041] The term "immunoglobulin" refers to a class of structurally related proteins that generally contain two pairs of polypeptide chains: one pair of light (L) chains and one pair of heavy (H) chains. In "intact immunoglobulins," all four chains are interconnected by disulfide bonds. The structure of immunoglobulins is well characterized. See, e.g., Paul, Fundamental Immunology 7th ed., Ch. 5 (2013) Lippincott Williams & Wilkins, Philadelphia, PA. Briefly, each heavy chain contains a heavy chain variable region (V H )oh and the heavy chain constant region (C H The heavy chain constant region generally comprises C H1 , C H2 and C H3 Each light chain generally contains three domains, abbreviated as V L ) and a light chain constant region. The light chain constant region generally comprises C L A domain generally contains one domain, abbreviated as .
[0042] The term "antigen binding protein" (ABP) refers to a protein comprising one or more antigen binding domains that specifically bind to an antigen or epitope. In some embodiments, the antigen binding domain binds to an antigen or epitope with specificity and affinity similar to that of a naturally occurring antibody. In some embodiments, the ABP comprises an antibody. In some embodiments, the ABP consists of an antibody. In some embodiments, the ABP consists essentially of an antibody. In some embodiments, the ABP comprises an surrogate scaffold. In some embodiments, the ABP consists of an surrogate scaffold. In some embodiments, the ABP consists essentially of an surrogate scaffold. In some embodiments, the ABP comprises an antibody fragment. In some embodiments, the ABP consists of an antibody fragment. In some embodiments, the ABP consists essentially of an antibody fragment. A "CTLA-4 ABP," "anti-CTLA-4 ABP," or "CTLA-4-specific ABP" is an ABP, as provided herein, that specifically binds to the antigen CTLA-4. In some embodiments, the ABP binds to the extracellular domain of CTLA-4. In certain embodiments, the CTLA-4 ABPs provided herein bind to an epitope of CTLA-4 that is conserved among or between CTLA-4 proteins from different species.
[0043] The term "antibody" is used herein in its broadest sense and includes certain types of immunoglobulin molecules that contain one or more antigen-binding domains that specifically bind to an antigen or epitope. Antibodies specifically include intact antibodies (e.g., intact immunoglobulins), antibody fragments, and multispecific antibodies. An example of an antigen-binding domain is a V H -V L Antibody is one type of ABP.
[0044] The term "alternative scaffold" refers to a molecule that can be diversified in one or more regions to generate one or more antigen-binding domains that specifically bind to an antigen or epitope. In some embodiments, the antigen-binding domains bind to an antigen or epitope with specificity and affinity similar to that of a naturally occurring antibody. Exemplary alternative scaffolds include those derived from fibronectin (e.g., Adnectins™), β-sandwich (e.g., iMabs), lipocalin (e.g., Anticalins®), EETI-II / AGRP, BPTI / LACI-D1 / ITI-D2 (e.g., Kunitz domains), thioredoxin peptide aptamers, protein A (e.g., Affibodies®), ankyrin repeat (e.g., DARPins), gamma-B-crystallin / ubiquitin (e.g., affilins), CTLD3 (e.g., tetranectin), finomers, and LDLR-A molecules (e.g., avimers). Further information on alternative scaffolds can be found in Binz et al., Nat. Biotechnol., 2005 23:1257-1268; Skerra, Current Opin. in Biotech., 2007 18:295-304; and Silacci et al., J. Biol. Chem., 2014, 289:14392-14398, and the contents of these references are provided in Each is incorporated herein by reference in its entirety. An alternative scaffold is a type of ABP.
[0045] The term "antigen-binding domain" refers to the portion of an ABP that is capable of specifically binding to an antigen or epitope.
[0046] The terms "full length antibody," "intact antibody," and "whole antibody" are used interchangeably herein to refer to an antibody having a structure substantially similar to a naturally occurring antibody structure, and having a heavy chain that includes an Fc region.
[0047] The term "Fc region" refers to the C-terminal region of the immunoglobulin heavy chain, which in naturally occurring antibodies interacts with Fc receptors and with certain proteins of the complement system. The structures of the Fc regions of various immunoglobulins and the glycosylation sites contained therein are known in the art. See Schroeder and See Cavacini, J. Allergy Clin. Immunol., 2010, 125:S41-52. The c region may be a naturally occurring Fc region, or may be an altered Fc region as described elsewhere in this disclosure.
[0048] V H and V L The regions can be further subdivided into regions of hypervariability ("hypervariable regions (HVRs)," also called "complementarity determining regions (CDRs)"), interspersed with more conserved regions. The more conserved regions are called framework regions (FRs). H and V L Each generally contains three CDRs and four FRs, arranged in the following order (from N-terminus to C-terminus): FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4. The CDRs are involved in antigen binding and affect the antigen specificity and binding affinity of the antibody. See Kabat et al., Sequences of Proteins of Immunological Interest, 5th ed. (1991) Public Health Service, National Institutes of Health, Bethesda, MD, incorporated herein by reference in its entirety.
[0049] Light chains from any vertebrate species can be assigned to one of two types, called kappa (κ) and lambda (λ), based on the sequence of their constant domain.
[0050] Heavy chains from any vertebrate species can be assigned to one of five different classes (or isotypes): IgA, IgD, IgE, IgG, and IgM. These classes are also designated α, δ, ε, γ, and μ, respectively. The IgG and IgA classes are further divided into subclasses based on sequence and functional differences. Humans express the following subclasses: IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2.
[0051] The amino acid sequence boundaries of the CDRs can be determined by one of skill in the art using any of a number of known numbering schemes, including those described in Kabat et al., supra (the "Kabat" numbering scheme); Al-Lazikani et al., 1997, J. Mol. Biol., 273:927-948 ("Chothia" numbering scheme); MacCallum et al., 1996, J. Mol. Biol. 262:732-745 ("Contact" numbering scheme); Lefranc et al., Dev. Comp. Immunol., 2003, 27:55-77 ("IMGT" numbering scheme); and Honegge and Plueckthun, J. Mol. Biol., 2001, 309:657-70 ("AHo" numbering scheme), each of which is incorporated herein by reference in its entirety.
[0052] Table 1 shows the CDR1-L(V) sequences identified by the Kabat and Chothia scheme. L CDR1), CDR2-L(V L CDR2), CDR3-L(V L CDR3), CDR1-H(V H CDR1), CDR2-H(V H CDR2-H (V HFor CDR1-H, residue numbering is provided using both the Kabat numbering scheme and the Chothia numbering scheme.
[0053] CDRs can be designated using antibody numbering software such as Abnum, available at www.bioinf.org.uk / abs / abnum / and described in Abhinandan and Martin, Immunology, 2008, 45:3832-3839, which is incorporated herein by reference in its entirety. [Table 1]
[0054] The "EU numbering scheme" is commonly used when referring to residues in antibody heavy chain constant regions (eg, as reported in Kabat et al., supra).
[0055] An "antibody fragment" comprises a portion of an intact antibody, such as the antigen-binding or variable region of the intact antibody. Antibody fragments include, for example, Fv fragments, Fab fragments, F(ab')2 fragments, Fab' fragments, scFv (sFv) fragments, and scFv-Fc fragments.
[0056] An "Fv" fragment comprises a non-covalently associated dimer of one heavy- and one light-chain variable domain.
[0057] A "Fab" fragment contains the heavy and light chain variable domains, as well as the constant domain of the light chain and the first constant domain of the heavy chain (C H1 Fab fragments can be prepared, for example, by recombinant methods or by papain digestion of a full-length antibody.
[0058] A "F(ab')2" fragment contains two Fab' fragments linked by a disulfide bond near the hinge region. F(ab')2 fragments can be prepared, for example, by recombinant methods or by pepsin digestion of intact antibodies. F(ab')2 fragments can be dissociated, for example, by treatment with β-mercaptoethanol.
[0059] "Single-chain Fv" or "sFv" or "scFv" antibody fragments contain V in a single polypeptide chain. H Domains and V L Contains domain. V H and V L are generally linked by a peptide linker. See Plueckthun A. (1994). In some embodiments, the linker is (GGGGS) n (SEQ ID NO: 11968). In some embodiments, n=1, 2, 3, 4, 5, or 6. See Antibodies from Escherichia coli. In Rosenberg M. & Moore GP (Eds.), The Pharmacology of Monoclonal Antibodies vol. 113 (pp. 269-315). Springer-Verlag, New York, incorporated herein by reference in its entirety.
[0060] An "ScFv-Fc" fragment comprises an scFv linked to an Fc domain. For example, the Fc domain may be linked to the C-terminus of the scFv. The V H or V L (i.e., V H -V L or V L -V H ) may be followed by an Fc domain. Any suitable Fc domain known in the art or described herein can be used. In some cases, the Fc domain comprises an IgG4 Fc domain.
[0061] The term "single domain antibody" refers to a molecule in which one variable domain of an antibody specifically binds to an antigen in the absence of other variable domains. Single domain antibodies and fragments thereof are described in Arabi Ghahroudi et al., FEBS Letters, 1998, 414:521-526 and Muyldermans et al. al., Trends in Biochem. Sci., 2001, 26:230-245, each of which is incorporated herein by reference in its entirety.
[0062] A "monospecific ABP" is an ABP that contains a binding site that specifically binds to a single epitope. An example of a monospecific ABP is a naturally occurring IgG molecule, which is bivalent but recognizes the same epitope in each antigen-binding domain. The binding specificity can be present in any suitable valency.
[0063] The term "monoclonal antibody" refers to an antibody from a population of substantially homogeneous antibodies. A population of substantially homogeneous antibodies contains antibodies that are substantially similar and bind to the same epitope, except for variants that may normally arise during the production of monoclonal antibodies. Such variants are generally present only in small amounts. Monoclonal antibodies are generally obtained by a process that includes the selection of a single antibody from a plurality of antibodies. For example, the selection process can be the selection of a unique clone from a plurality of clones, such as a pool of hybridoma clones, phage clones, yeast clones, bacterial clones, or other recombinant DNA clones. The selected antibody can be further modified, for example, to improve its affinity for the target ("affinity maturation"), humanize the antibody, improve its production in cell culture, and / or reduce its immunogenicity in a subject.
[0064] The term "chimeric antibody" refers to an antibody in which a portion of the heavy and / or light chain is derived from a particular source or species, while the remainder of the heavy and / or light chain is derived from a different source or species.
[0065] "Humanized" forms of non-human antibodies are chimeric antibodies that contain minimal sequence derived from the non-human antibody. Generally, humanized antibodies are human antibodies (recipient antibodies) in which residues from one or more CDRs are replaced by residues from one or more CDRs of a non-human antibody (donor antibody). The donor antibody can be any suitable non-human antibody, such as a mouse, rat, rabbit, chicken, or non-human primate antibody, with the desired specificity, affinity, or biological effect. In some cases, selected framework region residues of the recipient antibody are replaced by the corresponding framework region residues from the donor antibody. Humanized antibodies may also contain residues that are not found in either the recipient antibody or the donor antibody. Such modifications may be made to further refine antibody function. For further details, see Jones et al., Nature, 1986, 321:522-525; Riechmann et al., Nature, 1988, 332:323-329; and Presta, Curr. Op. Struct. Biol., 1992, 2:593-596, each of which is incorporated herein by reference in its entirety.
[0066] A "human antibody" is an antibody having an amino acid sequence that corresponds to that of an antibody produced by a human or human cell, or that corresponds to an amino acid sequence derived from a non-human source that utilizes the human antibody repertoire or sequences encoding human antibodies (e.g., obtained from a human source or designed de novo). Human antibodies specifically do not include humanized antibodies. In some embodiments, rodents are genetically engineered to replace their rodent antibody sequences with human antibodies.
[0067] An "isolated ABP" or "isolated nucleic acid" is an ABP or nucleic acid that has been separated and / or recovered from a component of its natural environment. Components of natural environment may include enzymes, hormones, and other proteinaceous or non-proteinaceous substances. In some embodiments, the isolated ABP is purified sufficiently to obtain at least 15 residues of N-terminal or internal amino acid sequence, for example, by use of a spinning cup sequenator. In some embodiments, the isolated ABP is purified to homogeneity by gel electrophoresis (e.g., SDS-PAGE) under reducing or non-reducing conditions with detection by Coomassie blue or silver stain. The isolated ABP comprises the ABP in situ within a recombinant cell, since at least one component of the ABP's natural environment is absent. In some aspects, the isolated ABP or isolated nucleic acid is prepared by at least one purification step. In some embodiments, the isolated ABP or isolated nucleic acid is purified to at least 80%, 85%, 90%, 95%, or 99% by weight. In some embodiments, the isolated ABP or isolated nucleic acid is purified to at least 80%, 85%, 90%, 95%, or 99% by volume. In some embodiments, the isolated ABP or isolated nucleic acid is provided as a solution containing at least 85%, 90%, 95%, 98%, 99%, or 100% by volume ABP or nucleic acid. In some embodiments, the isolated ABP or isolated nucleic acid is provided as a solution containing at least 85%, 90%, 95%, 98%, 99%, or 100% by volume ABP or nucleic acid.
[0068] "Affinity" refers to the strength of the sum total of non-covalent interactions between a single binding site of a molecule (e.g., an ABP) and its binding partner (e.g., an antigen or epitope). Unless otherwise indicated, as used herein, "affinity" refers to the intrinsic binding affinity, representing a 1:1 interaction between members of a binding pair (e.g., an ABP and an antigen or epitope). The affinity of a molecule X for its partner Y is expressed as the dissociation equilibrium constant (K D) The kinetic component that contributes to the dissociation equilibrium constant is described in more detail below. Affinity can be measured by common methods known in the art, including those described herein. For example, affinity can be determined using surface plasmon resonance (SPR) technology (e.g., BIACORE®) or biolayer interferometry (e.g., FORTEBIO®).
[0069] With respect to the binding of an ABP to a target molecule, the terms "binds to," "specifically binding to," "specifically binds with," "specific for," "selectively binds to," and "selective for" a particular antigen (e.g., a polypeptide target) or epitope on a particular antigen refer to binding that is distinct from nonspecific or nonselective interactions (e.g., with a non-target molecule). Specific binding can be measured, for example, by measuring binding to a target molecule and comparing it to binding to a non-target molecule. Specific binding can also be determined by competition with a control molecule that mimics the recognized epitope on the target molecule. In this case, specific binding is indicated when binding of the ABP to the target molecule is competitively inhibited by the control molecule. In some embodiments, the affinity of a CTLA-4 ABP for a non-target molecule is less than about 50% of its affinity for CTLA-4. In some embodiments, CTLA-4 The affinity of the ABP for the non-target molecule is less than about 40% of its affinity for CTLA-4. In some embodiments, the affinity of the CTLA-4 ABP for the non-target molecule is less than about 30% of its affinity for CTLA-4. In some embodiments, the affinity of the CTLA-4 ABP for the non-target molecule is less than about 20% of its affinity for CTLA-4. In some embodiments, the affinity of the CTLA-4 ABP for the non-target molecule is less than about 10% of its affinity for CTLA-4. In some embodiments, the affinity of the CTLA-4 ABP for the non-target molecule is less than about 1% of its affinity for CTLA-4. In some embodiments, the affinity of the CTLA-4 ABP for the non-target molecule is less than about 0.1% of its affinity for CTLA-4.
[0070] The term "k" d ”(seconds -1 ) as used herein refers to the dissociation rate constant of a particular ABP-antigen interaction. This value is known as k off Also called value.
[0071] The term "k" a " (M -1 × seconds -1 ) as used herein refers to the association rate constant of a particular ABP-antigen interaction. This value is known as k on Also called value.
[0072] The term “K D " (M), as used herein, refers to the dissociation equilibrium constant of a particular ABP-antigen interaction. K D =k d / k a .
[0073] The term “K A " (M -1 ) as used herein refers to the association equilibrium constant of a particular ABP-antigen interaction. K A =k a / k d .
[0074] An "affinity matured" ABP is an ABP with one or more alterations (e.g., in one or more CDRs or FRs) that result in an improvement in the affinity of the ABP for its antigen compared to a parent ABP that does not have the alteration(s). In one embodiment, the affinity matured ABP has nanomolar or picomolar affinity for the target antigen. Affinity matured ABPs can be produced using a variety of methods known in the art. For example, Marks et al. (Bio / Technology, 1992, 10:779-783, incorporated herein by reference in its entirety) report that V H Domains and V LAffinity maturation by domain shuffling is described. Random mutagenesis of CDR and / or framework residues is described, for example, by Barbas et al. (Proc. Nat. Acad. Sci. USA, 1994, 91:3809-3813), Schier et al., Gene, 1995, 169:147-155; Yelton et al., J. Immunol., 1995, 155:1994-2004, Jackson et al., J. Immunol., 1995, 154:3310-33199, and Hawkins et al., J. Mol. Biol., 1992, 226:889-896, each of which is incorporated herein by reference in its entirety.
[0075] An "immunoconjugate" is an ABP conjugated to one or more heterologous molecules.
[0076] "Effector function" refers to the biological activities mediated by the Fc region of an antibody, and these activities may vary depending on the antibody isotype. Examples of antibody effector functions include C1q binding to activate complement-dependent cytotoxicity (CDC), Fc receptor binding to activate antibody-dependent cellular cytotoxicity (ADCC), and antibody-dependent cellular phagocytosis (ADCP).
[0077] As used herein in reference to two or more ABPs, the term "competes with" or "cross-competes with" indicates that two or more ABPs compete for binding to an antigen (e.g., CTLA-4). In one exemplary assay, a surface is coated with CTLA-4, contacted with a first CTLA-4 ABP, and then a second CTLA-4 ABP is added. In another exemplary assay, a surface is coated with a first CTLA-4 ABP, contacted with CTLA-4, and then a second CTLA-4 ABP is added. If the presence of the first CTLA-4 ABP reduces the binding of the second CTLA-4 ABP in either assay, then these ABPs compete. The term "competes with" also includes combinations of ABPs in which one ABP reduces the binding of another ABP, but no competition is observed when the ABPs are added in the reverse order. However, in some embodiments, the first and second ABPs inhibit each other's binding, regardless of the order in which they are added. In some embodiments, one ABP reduces the binding of another ABP to its antigen by at least 25%, at least 50%, at least 60%, at least 70%, at least 80%, at least 85%, at least 90%, or at least 95%. One skilled in the art can select the concentration of antibody used in a competition assay based on the affinity of the ABP for CTLA-4 and the valency of the ABP. The assays described in this definition are for illustrative purposes, and one skilled in the art can utilize any suitable assay to determine whether antibodies compete with each other. Suitable assays include those described in Cox et al., "Immunoassay Methods," in Assay Guidance Manual [Internet], Updated December 24, 2014 (www.ncbi.nlm.nih.gov / books / NBK92434 / ; accessed September 29, 2015); Silman et al., Cytometry, 2001, 44:30-37; and Finco et al., J. Pharm. Biomed. Anal., 2011, 54:351-358, each of which is incorporated by reference herein in its entirety.
[0078] The term "epitope" refers to the portion of an antigen that specifically binds to an ABP. Epitopes often consist of surface-exposed amino acid residues and / or sugar side chains and may have specific three-dimensional structural characteristics as well as specific charge characteristics. Conformational and nonconformational epitopes are distinguished by the fact that the binding of the former conformational epitope may be lost in the presence of denaturing solvents, whereas the binding of the latter nonconformational epitope may not. An epitope may contain amino acid residues directly involved in binding and other amino acid residues not directly involved in binding. The epitope to which an ABP binds can be determined using known epitope determination techniques, such as testing ABP binding to CTLA-4 variants with different point mutations or to chimeric CTLA-4 variants.
[0079] The "identity" percentage between a polypeptide sequence and a reference sequence is defined as the percentage of amino acid residues in the polypeptide sequence that are identical to the amino acid residues in the reference sequence after aligning the sequences and introducing gaps as necessary to achieve the maximum sequence identity percentage.Alignment for determining the percent amino acid sequence identity can be achieved in a variety of ways within the skill of the art, for example, using publicly available computer software such as BLAST, BLAST-2, ALIGN, MEGALIGN (DNASTAR), CLUSTALW, CLUSTAL OMEGA or MUSCLE software.Those skilled in the art can determine the appropriate parameters for aligning sequences, including any algorithms required to achieve maximum alignment over the entire length of the sequences being compared.
[0080] "Conservative substitution" or "conservative amino acid substitution" refers to the substitution of an amino acid with a chemically or functionally similar amino acid. Conservative substitution tables providing similar amino acids are well known in the art. For example, the groups of amino acids provided in Tables 2-4 are considered, in some embodiments, to be conservative substitutions for one another. [Table 2] [Table 3] [Table 4]
[0081] Additional conservative substitutions are described, for example, in Creighton, Proteins: Structures and Molecular Properties 2nd ed. (1993) W.H. Freeman & Co., New York, NY. ABPs generated by making one or more conservative substitutions of amino acid residues in a parent ABP are referred to as "conservatively modified variants."
[0082] The term "treating" (and variations thereof, such as "treat" or "treatment") refers to clinical intervention with the purpose of altering the natural course of a disease or condition in a subject in need thereof. Treatment may be performed prophylactically or during the course of clinical pathological examination. Desirable effects of treatment include preventing the occurrence or recurrence of disease, alleviating symptoms, mitigating any direct or indirect pathological consequences of disease, preventing metastasis, slowing the rate of disease progression, ameliorating or alleviating the condition, and remission, or improved prognosis.
[0083] As used herein, the term "therapeutically effective amount" or "effective amount" refers to an amount of an ABP or pharmaceutical composition provided herein that, when administered to a subject, is effective to treat a disease or disorder.
[0084] As used herein, the term "subject" refers to a mammalian subject. Exemplary subjects include humans, monkeys, dogs, cats, mice, rats, cows, horses, camels, goats, rabbits, and sheep. In certain embodiments, the subject is a human. In some embodiments, the subject has a disease or condition that can be treated with the ABP provided herein. In some aspects, the disease or condition is cancer. In some aspects, the disease or condition is a viral infection.
[0085] The term "package insert" is used to refer to instructions customarily included within the commercial packaging of a therapeutic or diagnostic product (e.g., a kit) that contain information about the indications, uses, dosage, administration, concomitant therapy, contraindications and / or warnings regarding the use of such therapeutic or diagnostic product.
[0086] The term "cytotoxic agent," as used herein, refers to a substance that inhibits or prevents the function of cells and / or causes cell death or destruction.
[0087] "Chemotherapeutic agents" refer to chemical compounds useful in the treatment of cancer. Chemotherapeutic agents include "antihormonal agents" or "endocrine therapeutic agents," which act to regulate, reduce, block, or inhibit the effects of hormones that can promote cancer growth.
[0088] The term "cytostatic agent" refers to a compound or composition that arrests cell growth either in vitro or in vivo. In some embodiments, a cytostatic agent is an agent that reduces the percentage of cells in S phase. In some embodiments, a cytostatic agent reduces the percentage of cells in S phase by at least about 20%, at least about 40%, at least about 60%, or at least about 80%.
[0089] The term "tumor" refers to all neoplastic cell growth and proliferation, whether malignant or benign, and all pre-cancerous and cancerous cells and tissues. The terms "cancer," "cancerous," "cell proliferative disorder," "proliferative disorder," and "tumor" are not mutually exclusive when referred to herein. The terms "cell proliferative disorder" and "proliferative disorder" refer to disorders involving some degree of abnormal cell proliferation. In some embodiments, the cell proliferative disorder is cancer.
[0090] The term "pharmaceutical composition" refers to a preparation that is in a form that allows the biological activity of the active ingredients it contains to be effective in treating a subject, and that does not contain additional ingredients that are unacceptably toxic to the subject.
[0091] The terms "modulate" and "modulation" refer to the reduction or inhibition of a recited variable, or alternatively, the activation It refers to the act of increasing or decreasing something.
[0092] The terms "increase" and "activate" refer to a 10%, 20%, 30%, 40%, 50%, 60%, 70%, 75%, 80%, 85%, 90%, 95%, 100%, 2-fold, 3-fold, 4-fold, 5-fold, 10-fold, 20-fold, 50-fold, 100-fold or greater increase in the stated variable.
[0093] The terms "reduce" and "inhibit" refer to a 10%, 20%, 30%, 40%, 50%, 60%, 70%, 75%, 80%, 85%, 90%, 95%, 2-fold, 3-fold, 4-fold, 5-fold, 10-fold, 20-fold, 50-fold, 100-fold or greater decrease in the stated variable.
[0094] The term "agonize" refers to inducing a biological response associated with receptor activation. An "agonist" refers to the activation of receptor signaling for a specific purpose. An "agonist" is an entity that binds to and stimulates a receptor.
[0095] The term "antagonize" refers to the inhibition of receptor signaling to inhibit a biological response associated with receptor activation. An "antagonist" is an entity that binds to and antagonizes a receptor.
[0096] The term "effector T cells" refers to T helper cells (i.e., CD4 + ) cells, and cytotoxic (i.e., CD8 + ) T cells. CD4 + Effector T cells contribute to the progression of several immunological processes, including the maturation of B cells into plasma cells and memory B cells, and the activation of cytotoxic T cells and macrophages. + Effector T cells destroy virus-infected cells and tumor cells. For more information regarding effector T cells, see Seder and Ahmed, Nature Immunol., 2003, 4:835-842, which is incorporated herein by reference in its entirety.
[0097] The term "regulatory T cells" includes cells that regulate immunological tolerance, for example, by suppressing effector T cells. In some embodiments, regulatory T cells are CD4 + CD25 + Foxp3 + In some embodiments, the regulatory T cells have a CD8 + CD25 + For more information regarding regulatory T cells, see Nocentini et al., Br. J. Pharmacol., 2012, 165:2089-2099, which is incorporated herein by reference in its entirety. Please refer to.
[0098] The term "dendritic cell" refers to a professional antigen-presenting cell that can activate naive T cells and stimulate the growth and differentiation of B cells.
[0099] A "variant" of a polypeptide (e.g., an antibody) comprises an amino acid sequence in which one or more amino acid residues have been inserted, deleted, and / or substituted into the amino acid sequence compared to the native polypeptide sequence, and retains essentially the same biological activity as the native polypeptide. The biological activity of a polypeptide can be measured using standard techniques in the art (e.g., if the variant is an antibody, its activity can be tested by binding assays described herein). Variants of the present disclosure include fragments, analogs, recombinant polypeptides, synthetic polypeptides, and / or fusion proteins.
[0100] A "derivative" of a polypeptide is a polypeptide (e.g., an antibody) that has been chemically modified, for example, by conjugation with another chemical moiety, such as polyethylene glycol, albumin (e.g., human serum albumin), etc., phosphorylation, and glycosylation. Unless otherwise indicated, the term "antibody" includes antibodies comprising two full-length heavy chains and two full-length light chains, as well as derivatives, variants, fragments, and muteins thereof, examples of which are described below.
[0101] A nucleotide sequence is "operably linked" to a regulatory sequence if the regulatory sequence affects the expression (e.g., level, timing, or location) of the nucleotide sequence. A "regulatory sequence" is a nucleic acid that affects the expression (e.g., level, timing, or location) of a nucleic acid to which it is operably linked. A regulatory sequence can, for example, exert its effect directly on the nucleic acid being regulated, or can exert its effect through the action of one or more molecules (e.g., a polypeptide that binds to the regulatory sequence and / or nucleic acid). Examples of regulatory sequences include promoters, enhancers, and other expression control elements (e.g., polyadenylation signals). Further examples of regulatory sequences are described, for example, in Goeddel, 1990, Gene Expression Technology: Methods in Enzymology 185, Academic Press, San Diego, CA, and Baron et al., 1995, Nucleic Acids Res. 23:3605-06.
[0102] A "host cell" is a cell that can be used to express a nucleic acid, e.g., a nucleic acid of the present disclosure. A host cell can be a prokaryote, e.g., E. coli, or a eukaryote, e.g., a unicellular eukaryote (e.g., yeast or other fungi), a plant cell (e.g., tobacco or tomato plant cell), an animal cell (e.g., a human cell, a monkey cell, a hamster cell, a rat cell, a mouse cell, or an insect cell), or a hybridoma. Examples of host cells include CS-9 cells, the COS-7 line of monkey kidney cells (ATCC CRL 1651) (see Gluzman et al., 1981, Cell 23:175), L cells, C127 cells, 3T3 cells (ATCC CCL 163), Chinese hamster ovary (CHO) cells or derivatives thereof, e.g., Veggie Cells grown in serum-free medium. CHO and related cell lines (see Rasmussen et al., 1998, Cytotechnology 28:31) (see references), HeLa cells, BHK (ATCC CRL 10) cell line, CV1 / EBNA cell line (ATCC CCL 70) derived from the African green monkey kidney cell line CV1 (see McMahan et al., 1991, EMBO J. 10:2821), human embryonic kidney cells Examples of host cells include, for example, 293, 293 EBNA or MSR 293, human epithelial A431 cells, human Colo205 cells, other transformed primate cell lines, normal diploid cells, primary tissues, cell lines derived from in vitro culture of primary explants, HL-60, U937, Hak or Jurkat cells. Typically, the host cell is a cultured cell that can be transformed or transfected with a nucleic acid encoding a polypeptide so that such nucleic acid can be expressed in the host cell.
[0103] The phrase "recombinant host cell" can be used to refer to a host cell that has been transformed with or transfected with a nucleic acid to be expressed. A host cell can also be a cell that contains a nucleic acid but does not express the nucleic acid at a desired level unless a regulatory sequence is introduced into the host cell such that the regulatory sequence is operably linked to the nucleic acid. It will be understood that the term host cell refers not only to the particular subject cell but also to the progeny or potential progeny of such a cell. Because certain modifications may occur in subsequent generations due, for example, to mutation or environmental influences, such progeny may not actually be identical to the parent cell, but are still included within the scope of the term as used herein. 7.2. Other Interpretation Provisions
[0104] Ranges stated herein are understood to be shorthand for all of the values within the range, inclusive of the stated endpoints. For example, a range of 1 to 50 is understood to include any number, combination of numbers, or subrange from the group consisting of 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, and 50.
[0105] Unless otherwise indicated, a reference to a compound having one or more stereocenters contemplates each stereoisomer of that compound and all combinations of stereoisomers of that compound. 7.3. Nucleic acids
[0106] In one aspect, the present disclosure provides isolated nucleic acid molecules.Nucleic acids include, for example, polynucleotides encoding all or part of antigen-binding proteins, such as one or both chains of the antibody of the present disclosure, or fragments, derivatives, muteins, or variants thereof; polynucleotides sufficient for use as hybridization probes, PCR primers, or sequencing primers for identifying, analyzing, mutating, or amplifying polynucleotides encoding polypeptides; antisense nucleic acids for inhibiting the expression of polynucleotides; and complementary sequences of the above.Nucleic acids can be of any length. Nucleic acids can be, for example, 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 75, 100, 125, 150, 175, 200, 250, 300, 350, 400, 450, 500, 750, 1,000, 1,500, 3,000, 5,000 or more nucleotides in length, and / or can include one or more additional sequences, e.g., regulatory sequences, and / or can be part of a larger nucleic acid, e.g., a vector. Nucleic acids can be single- or double-stranded and can include RNA and / or DNA nucleotides, as well as artificial variants thereof (e.g., peptide nucleic acids).
[0107] Nucleic acids encoding antibody polypeptides (e.g., heavy or light chains, variable domains only, or full length) can be isolated from B cells of mice immunized with CTLA-4. Nucleic acids can be isolated by conventional procedures, such as polymerase chain reaction (PCR).
[0108] Nucleic acid sequences encoding the variable regions of the heavy and light chain variable regions are provided herein. Due to the degeneracy of the genetic code, those skilled in the art will understand that each of the polypeptide sequences disclosed herein is encoded by a large number of other nucleic acid sequences. The present disclosure provides each degenerate nucleotide sequence encoding each of the antigen-binding proteins of the present disclosure.
[0109] The present disclosure further provides nucleic acids that hybridize to other nucleic acids (e.g., nucleic acids comprising the nucleotide sequence for any of the CTLA-4 genes) under specific hybridization conditions. Methods for hybridizing nucleic acids are well known in the art. See, e.g., Curr. Prot. in Mol. Biol., John Wiley & Sons, NY (1989), 6.3.1-6.3.6. As defined herein, moderately stringent hybridization is defined as hybridization under certain conditions. Hybridization conditions use a pre-wash solution containing 5x sodium chloride / sodium citrate (SSC), 0.5% SDS, 1.0 mM EDTA (pH 8.0); a hybridization buffer of about 50% formamide, 6x SSC, and a hybridization temperature of 55°C (or other similar hybridization solutions, such as those containing about 50% formamide and a hybridization temperature of 42°C); and wash conditions in 0.5x SSC, 0.1% SDS at 60°C. Stringent hybridization conditions involve hybridization in 6x SSC at 45°C, followed by one or more washes in 0.1x SSC, 0.2% SDS at 68°C. Furthermore, one of skill in the art can manipulate hybridization and / or wash conditions to increase or decrease the stringency of hybridization, such that nucleic acids containing nucleotide sequences at least 65, 70, 75, 80, 85, 90, 95, 98, or 99% identical to each other generally remain hybridized to each other. Basic parameters influencing the selection of hybridization conditions, and guidance for devising suitable conditions, are set forth, for example, by Sambrook, Fritsch, and Maniatis (1989, Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, chapters 9 and 11; and Curr. Prot. in Mol. Biol. 1995, Ausubel et al., eds., John Wiley & Sons, Inc., sections 2.10 and 6.3-6.4), and these can be readily understood by one of skill in the art, for example, in the art of DNA sequencing. This can be easily determined based on the length and / or base composition of A.
[0110] Changes can be introduced into nucleic acids by mutation, thereby resulting in changes in the amino acid sequence of a polypeptide (e.g., an antigen-binding protein) that the nucleic acid encodes. Mutations can be introduced using any technique known in the art. In one embodiment, one or more specific amino acid residues are altered, e.g., using a site-directed mutagenesis protocol. In another embodiment, one or more randomly selected residues are altered, e.g., using a random mutagenesis protocol. However done, the mutant polypeptides can be expressed and screened for the desired property (e.g., binding to CTLA-4).
[0111] Mutations can be introduced into a nucleic acid without significantly altering the biological activity of the polypeptide encoded by the nucleic acid. For example, nucleotide substitutions resulting in amino acid substitutions for non-essential amino acid residues can be made. In one embodiment, a nucleotide sequence provided herein for CTLA-4, or a desired fragment, variant, or derivative thereof, is mutated to encode an amino acid sequence containing one or more deletions or substitutions of amino acid residues shown herein to be residues at which two or more sequences for CTLA-4 differ. Alternatively, one or more mutations can be introduced into a nucleic acid that selectively alter the biological activity (e.g., CTLA-4 binding) of the polypeptide encoded by the nucleic acid. For example, the mutation can quantitatively or qualitatively alter the biological activity. Examples of quantitative changes include increased, reduced, or eliminated activity. Examples of qualitative changes include altered antigen specificity of an antigen-binding protein.
[0112] In another aspect, the present disclosure provides nucleic acid molecules that are suitable for use as primers or hybridization probes for detecting nucleic acid sequences of the present disclosure. The nucleic acid molecules of the present disclosure may include only a portion of a nucleic acid sequence encoding a full-length polypeptide of the present disclosure, e.g., a fragment that can be used as a probe or primer, or a fragment that encodes only an active portion of a polypeptide of the present disclosure (e.g., a CTLA-4 binding portion).
[0113] Probes based on the sequences of the nucleic acids of the present disclosure can be used to detect the nucleic acids encoding the polypeptides of the present disclosure or similar nucleic acids, such as transcripts.The probes can contain labeling groups, such as radioisotopes, fluorescent compounds, enzymes, or enzyme cofactors.Such probes can be used to identify cells that express the polypeptides. 7.4. Expression Vectors
[0114] The present disclosure provides a vector comprising a nucleic acid encoding a polypeptide of the present disclosure or a portion thereof. Examples of vectors include, but are not limited to, plasmids, viral vectors, non-episomal mammalian vectors, and expression vectors, such as recombinant expression vectors.
[0115] In another aspect of the present disclosure, expression vectors containing the nucleic acid molecules and polynucleotides of the present disclosure are also provided, as are host cells transformed with such vectors and methods for producing polypeptides. The term "expression vector" refers to a plasmid, phage, virus, or vector for expressing a polypeptide from a polynucleotide sequence. Vectors for polypeptide expression are also used for vector propagation. The expression vector contains, at a minimum, the sequences necessary for the expression of the cloned insert. An expression vector comprises a transcription unit comprising a collection of (1) genetic elements (e.g., promoters or enhancers) that play a regulatory role in gene expression, (2) polypeptide and protein-encoding sequences that are transcribed into mRNA and translated into protein, and (3) appropriate transcription start and stop sequences. These sequences may also include a selectable marker. Suitable vectors for expression in host cells are readily available, and nucleic acid molecules are inserted into the vector using standard recombinant DNA techniques. Such vectors can include promoters that function in specific tissues and viral vectors for expression of polypeptides in target human or animal cells.
[0116] A recombinant expression vector of the present disclosure can comprise a nucleic acid of the present disclosure in a form suitable for expression of the nucleic acid in a host cell. The recombinant expression vector comprises one or more regulatory sequences, selected based on the host cell to be used for expression, operably linked to the nucleic acid sequence to be expressed. Regulatory sequences include those that direct constitutive expression of a nucleotide sequence in many types of host cells (e.g., SV40 early gene enhancer, Rous sarcoma virus promoter, and cytomegalovirus promoter), those that direct expression of a nucleotide sequence only in certain host cells (e.g., tissue-specific regulatory sequences, Voss et al., 1986, Trends Biochem. Sci. 11:287; Maniatis et al., 1987, Science 236:1237, which references are incorporated herein by reference in their entireties. These include promoters that direct the inducible expression of nucleotide sequences in response to a particular treatment or condition (e.g., the metallothionin promoter in mammalian cells, and tet- and / or streptomycin-responsive promoters in both eukaryotic and prokaryotic systems; see id.). It will be appreciated by those of skill in the art that the design of the expression vector can depend on such factors as the choice of the host cell to be transformed, the level of expression of protein desired, etc. The expression vectors of the present disclosure can be introduced into host cells to thereby produce proteins or peptides, such as fusion proteins or peptides, encoded by the nucleic acids described herein.
[0117] In some embodiments, the expression vector is an expression vector purified from one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512. In some embodiments, the expression vector is generated by genetic modification of one of the expression vectors in one of the clones purified from the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512. In some embodiments, the expression vector is generated by using heavy and light chain variable region sequences for one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512.
[0118] The present disclosure further provides a method for producing polypeptides. A variety of other expression / host systems can be utilized. Vector DNA can be introduced into prokaryotic or eukaryotic cell systems by conventional transformation or transfection techniques. These systems include, but are not limited to, microorganisms such as bacteria (e.g., E. coli) transformed with recombinant bacteriophage, plasmid, or cosmid DNA expression vectors; yeast transformed with yeast expression vectors; insect cell systems infected with viral expression vectors (e.g., baculovirus); plant cell systems transfected with viral expression vectors (e.g., cauliflower mosaic virus, CaMV; tobacco mosaic virus, TMV) or transformed with bacterial expression vectors (e.g., Ti or pBR322 plasmid); or animal cell systems. Mammalian cells useful for recombinant protein production include VERO cells, HeLa cells, Chinese hamster ovary (CHO) cell lines, or their derivatives, e.g., Veggie CHO, and related cell lines that grow in serum-free medium (see Rasmussen et al., 1998, Cytotechnology 28:31), or DHFR-containing cells. the defective CHO line DX-B11 (see Urlaub et al., 1980, Proc. Natl. Acad. Sci. USA 77:4216-20), COS cells, e.g., monkey kidney cells COS-7, line (ATCC CRL 1651) (see Gluzman et al., 1981, Cell 23:175), W138, BHK, HepG2, 3T3 (ATCC CCL 163), RIN, MDCK, A549, PC12, K562, L cells, C127 cells, BHK (ATCC CRL 10) cell line, the CV1 / EBNA cell line (ATCC CCL 70) derived from the African green monkey kidney cell line CV1 (see McMahan et al., 1991, EMBO J. 10:2821), human embryonic kidney cells, e.g., 293, 293 EBNA or Mammalian expression can be achieved using a variety of cell lines, including, but not limited to, MSR 293, human epithelial A431 cells, human Colo205 cells, other transformed primate cell lines, normal diploid cells, primary tissues, cell lines derived from in vitro culture of primary explants, HL-60, U937, Hak, or Jurkat cells. Mammalian expression allows for the production of secreted or soluble polypeptides, which can be recovered from the growth medium.
[0119] For stable transfection of mammalian cells, it is known that, depending on the expression vector and transfection technique used, only a small proportion of cells are able to incorporate the foreign DNA into their genome. To identify and select these integrants, a gene encoding a selectable marker (e.g., for resistance to antibiotics) is generally introduced into the host cells along with the gene of interest. Once such cells are transformed with a vector containing not only the desired expression cassette but also the selectable marker, they can be grown in an enriched medium, e.g., before switching the enriched medium to a selective medium. The selectable marker is designed to allow the growth and recovery of cells that successfully express the introduced sequence. Resistant clumps of stably transformed cells can be propagated using tissue culture techniques appropriate for the cell line utilized. A general overview of recombinant protein expression can be found in Methods of Enzymology, v. 185, Goeddell, DV, ed., Academic Press (1990). Preferred selectable markers include those that confer resistance to drugs, such as G418, hygromycin, and methotrexate. Cells that have been stably transfected with the introduced nucleic acid can be identified by, among other things, drug selection (e.g., cells that have incorporated the selectable marker gene will survive, while the other cells die).
[0120] The transformed cells are cultured under conditions that promote expression of the polypeptide, and the polypeptide can be recovered by conventional protein purification procedures (as defined above). One such purification procedure involves, for example, the use of affinity chromatography, using a matrix to which all or a portion of CTLA-4 (e.g., the extracellular domain) is bound. Polypeptides contemplated for use herein include substantially homogeneous recombinant mammalian anti-CTLA-4 antibody polypeptides that are substantially free of endogenous contaminants.
[0121] In some cases, for example, when expressing using a prokaryotic cell system, the expressed polypeptide of the present disclosure may need to be "refolded" and oxidized to the proper three-dimensional structure and generate disulfide bonds to become biologically active. Refolding can be accomplished using a number of procedures well known in the art. Such methods include, for example, exposing the solubilized polypeptide to a pH typically greater than 7 in the presence of a chaotropic agent. The choice of chaotrope is similar to that used for inclusion body solubilization, although the chaotrope is generally used at a lower concentration. Exemplary chaotropic agents are guanidine and urea. In most cases, the refolding / oxidation solution also contains a reducing agent and its oxidized form in a specific ratio to generate a specific redox potential that allows disulfide shuffling to occur for the formation of cysteine bridges. Some commonly used redox couples include cysteine / cystamine, glutathione / dithiobis(GSH), cupric chloride, dithiothreitol DTT / dithiane DTT, and 2-mercaptoethanol (bME) / dithio-bME. In many cases, cosolvents can be used to increase the efficiency of refolding. Commonly used cosolvents include glycerol, polyethylene glycols of various molecular weights, and arginine.
[0122] Additionally, polypeptides can be synthesized in solution or on a solid support according to conventional techniques. A variety of automated synthesizers are commercially available and can be used according to known protocols. See, for example, Stewart and Young, Solid Phase Peptide Synthesis, 2d. Ed., Pierce Chemical Co. (1984); Tam et al., J Am Chem Soc, 105:6442, (1983); Merrifield, Science 232:341-347 (1986); Barany and Merrifield, The Peptides, Gross and Meienhofer, eds., Academic Press, New York, 1-284; Barany et al., Int J Pep Protein Res, 30:705-739 (1987).
[0123] The polypeptides and proteins of the present disclosure can be purified according to protein purification techniques well known to those of skill in the art. These techniques include, at some level, crude fractionation of proteinaceous and non-proteinaceous fractions. After separation of the peptide polypeptide from other proteins, the peptide or polypeptide of interest can be further purified using chromatographic and electrophoretic techniques to achieve partial or complete purification (or purification to homogeneity). The term "purified polypeptide," as used herein, is intended to refer to a composition that is isolatable from other components and that has been purified to any degree relative to the state in which the polypeptide is naturally obtainable. Thus, a purified polypeptide also refers to a polypeptide that has been separated from the environment in which it naturally occurs. Generally, "purified" refers to a polypeptide composition that has been subjected to fractionation to remove various other components and that substantially retains its expressed biological activity. When the term "substantially purified" is used, this designation refers to a peptide or polypeptide composition in which the polypeptide or peptide forms a major component of the composition, e.g., constitutes about 50%, about 60%, about 70%, about 80%, about 85%, about 90% or more of the protein in the composition.
[0124] Various techniques suitable for use in purification are well known to those skilled in the art. These techniques include, for example, precipitation with ammonium sulfate, PEG, antibody (immunoprecipitation), or by heat denaturation, followed by centrifugation; chromatography, for example, affinity chromatography (protein A column), ion exchange, gel filtration, reverse phase, hydroxylapatite, hydrophobic interaction chromatography, isoelectric focusing, gel electrophoresis, and combinations of these techniques. As is generally known in the art, the order of various purification steps may be changed, or certain steps may be omitted, and still result in a method suitable for preparing substantially purified polypeptides. Exemplary purification steps are provided in the following examples.
[0125] Various methods for quantifying the degree of purification of a polypeptide will be known to those skilled in the art in light of the present disclosure. These methods include, for example, determining the specific binding activity of an active fraction or assessing the amount of peptide or polypeptide in a fraction by SDS / PAGE analysis. A preferred method for assessing the purity of a polypeptide fraction is to calculate the binding activity of the fraction, compare it to the binding activity of the initial extract, and then calculate the degree of purification, which is assessed herein by "fold purification." The actual units used to express the amount of binding activity will, of course, depend on the particular assay technique chosen to track purification and whether the polypeptide or peptide exhibits detectable binding activity. 7.5. Antibodies
[0126] CTLA-4 antibodies can be purified from host cells transfected with genes encoding the antibody using a Heparin HP column and eluting the filtered supernatant of the host cell culture fluid using a salt gradient.
[0127] Fab fragments are V L , V H , C L and C H1a monovalent fragment having two Fab fragments linked by a disulfide bridge at the hinge region; an F(ab')2 fragment is a bivalent fragment having two Fab fragments linked by a disulfide bridge at the hinge region; an Fd fragment is a V H and C H1 domain; Fv fragments have the V domain of a single arm of an antibody. L and V H domain; the dAb fragment has a V H Domain, V L Domain, or V H or V L and antigen-binding fragments of the domain (U.S. Patent Nos. 6,846,634, 6,696,245, U.S. Patent Application Publication Nos. 05 / 0202512, 04 / 0202995, 04 / 0038291, 04 / 0009507, 03 / 0039958, Ward et al., Nature 341:544-546, 1989).
[0128] The polynucleotide and polypeptide sequences of specific light and heavy chain variable region domains are described below. Antibodies comprising light and heavy chains are designated by combining the name of the light chain variable domain with the name of the heavy chain variable domain. For example, "L4H7" refers to an antibody comprising the light chain variable domain of L4 (comprising the sequence of SEQ ID NO:4) and the heavy chain variable domain of H7 (comprising the sequence of SEQ ID NO:107). The light chain variable sequences are provided in SEQ ID NOs:1-28, and the heavy chain variable sequences are provided in SEQ ID NOs:101-128.
[0129] In other embodiments, an antibody can comprise a specific heavy or light chain, but the complementary light and heavy chain variable domains remain unspecified. In particular, certain embodiments herein include antibodies that bind to a specific antigen (e.g., CTLA-4) via a specific light or heavy chain, and thus the complementary heavy or light chain can be promiscuous or even unrelated, but can be determined, for example, by screening a combinatorial library. Portolano et al., J. Immunol. V. 150 (3), pp. 880-887 (1993);Clackson et al., Nature v. 352 pp. 624-628 (1991);Adler et al., A natively paired antibody library yields drug leads with higher sensitivity and specificity than a randomly paired antibody library, MAbs (2018));Adler et al., Rare, high-affinity mouse anti-CTLA-4 antibodies that function in checkpoint blockade, discovered using microfluidics and molecular genomics, MAbs (2017).
[0130] Naturally occurring immunoglobulin chains exhibit the same general structure of relatively conserved framework regions (FR) joined by three hypervariable regions, also called complementarity-determining regions or CDRs. Both light and heavy chains contain, from N- to C-terminus, the domains FR1, CDR1, FR2, CDR2, FR3, CDR3, and FR4. The amino acid assignments for each domain are given in Sequences of Proteins of Immunological Interest, 5th Ed., US Dept. of Health and Human Services, PHS, NIH, following the definition by Kabat et al. in NIH Publication no. 91-3242, 1991.
[0131] The term "human antibody," also called "fully human antibody," includes all antibodies having one or more variable and constant regions derived from human immunoglobulin sequences. In one embodiment, all of the variable and constant domains are derived from human immunoglobulin sequences (fully human antibody). These antibodies can be prepared in a variety of ways, including by immunization with the antigen of interest of mice genetically engineered to express antibodies derived from human heavy and / or light chain-encoding genes; examples of these methods are described below.
[0132] A humanized antibody has a sequence that differs from that of an antibody derived from a non-human species by one or more amino acid substitutions, deletions, and / or additions, such that the humanized antibody is less likely to induce an immune response and / or induces a less severe immune response when administered to a human subject compared to a non-human species antibody. In one embodiment, certain amino acids within the framework and constant domains of the heavy and / or light chains of a non-human species antibody are mutated to produce a humanized antibody. In another embodiment, constant domain(s) from a human antibody are fused to variable domain(s) of a non-human species. In another embodiment, one or more amino acid residues within one or more CDR sequences of a non-human antibody are altered to reduce the putative immunogenicity of the non-human antibody when administered to a human subject, where the altered amino acid residues are not important for immunospecific binding of the antibody to its antigen, or the changes to the amino acid sequence made are conservative changes such that binding of the humanized antibody to the antigen is not significantly worse than binding of the non-human antibody to the antigen. Examples of methods for making humanized antibodies can be found in US Pat. Nos. 6,054,297, 5,886,152, and 5,877,293.
[0133] The term "chimeric antibody" refers to an antibody that contains one or more regions from one antibody and one or more regions from one or more other antibodies. In one embodiment, one or more of the CDRs are derived from a human anti-CTLA-4 antibody. In another embodiment, all of the CDRs are derived from a human anti-CTLA-4 antibody. In another embodiment, CDRs from more than one human anti-CTLA-4 antibody are mixed and matched in a chimeric antibody. For example, a chimeric antibody may contain CDR1 from the light chain of a first human anti-CTLA-4 antibody, CDR2 and CDR3 from the light chain of a second human anti-CTLA-4 antibody, and CDRs from the heavy chain of a third anti-CTLA-4 antibody. Furthermore, the framework regions may be derived from one of the same anti-CTLA-4 antibodies, one or more different antibodies, such as a human antibody, or a humanized antibody. In one example of a chimeric antibody, a portion of the heavy and / or light chain is identical to, homologous to, or derived from an antibody from a particular species or belonging to a particular antibody class or subclass, while the remainder of the chain is identical to, homologous to, or derived from an antibody from another species or belonging to another antibody class or subclass. Also included are fragments of such antibodies that exhibit the desired biological activity (i.e., the ability to specifically bind to CTLA-4).
[0134] Those skilled in the art can easily prepare antibody fragments or analogs using the teachings of this specification and techniques well known in the art. Preferred amino and carboxy termini of fragments or analogs are located near the boundaries of functional domains. Structural and functional domains can be identified by comparing nucleotide and / or amino acid sequence data with public or proprietary sequence databases. Computer comparison methods can be used to identify sequence motifs or predicted protein conformation domains present in other proteins with known structure and / or function. Methods for identifying protein sequences that fold into known three-dimensional structures are also known. See, for example, Bowie et al., 1991, Science 253:164.
[0135] Antigen-binding fragments derived from antibodies can be obtained, for example, by proteolytic hydrolysis of antibodies, e.g., pepsin or papain digestion of whole antibodies by conventional methods. For example, antibody fragments can be generated by enzymatic cleavage of antibodies with pepsin to obtain a 5S fragment designated F(ab')2. This fragment can be further cleaved using a thiol reducing agent to generate a 3.5S Fab' monovalent fragment. If necessary, the cleavage reaction can be performed using a blocking group for the sulfhydryl groups resulting from the cleavage of disulfide bonds. Alternatively, enzymatic digestion using papain directly generates two monovalent Fab fragments and an Fc fragment. These methods are described, for example, in U.S. Patent No. 4,331,647 to Goldenberg; Nisonoff et al., Arch. Biochem. Biophys. 89:230, 1960; Porter, Biochem. J. 73:119, 1959; Edelman et al., J. Immunol. 1999, 123:119, 1969; and others. et al., in Methods in Enzymology 1:422 (Academic Press 1967); and Andrews, SM and Titus, JA in Current Protocols in Immunology (Coligan JE, et al., eds), John Wiley & Sons, New York (2003), pages 2.8.1 2.8.10 and 2.10A.1 2.10A.5. Other methods, such as separating heavy chains to form monovalent light-heavy chain fragments (Fd) and then cleaving the fragments, or other enzymatic, chemical, or genetic techniques, can also be used, so long as the fragments bind to the antigen recognized by the intact antibody.
[0136] Antibody fragments may be any synthetic or genetically engineered protein. For example, antibody fragments include isolated fragments consisting of the light chain variable region; "Fv" fragments consisting of the heavy and light chain variable regions; and recombinant single-chain polypeptide molecules (scFv proteins) in which the light and heavy chain variable regions are connected by a peptide linker.
[0137] Another form of antibody fragment is a peptide comprising one or more complementarity-determining regions (CDRs) of an antibody. CDRs (also called "minimal recognition units" or "hypervariable regions") can be incorporated into a molecule, either covalently or noncovalently, to make the molecule an antigen-binding protein. CDRs can be obtained by constructing a polynucleotide encoding the desired CDR. Such polynucleotides are prepared, for example, by synthesizing the variable region using the polymerase chain reaction, using mRNA from antibody-producing cells as a template (see, e.g., Larrick et al., Methods: A Companion to Methods in Enzymology 2:106, 1991; Courtenay Luck, "Genetic Manipulation of Monoclonal Antibodies," in Monoclonal Antibodies: Production, Engineering and Clinical Application, Ritter et al. (eds.), page 166 (Cambridge University Press 1995); and Ward et al., "Genetic Manipulation and Expression of Antibodies," in Monoclonal Antibodies: Principles and Applications, Birch et al., (eds.), page 137 (Wiley-Liss, Inc. 1995).
[0138] Thus, in one embodiment, the binding agent comprises at least one CDR described herein. The binding agent may also comprise at least two, three, four, five, or six CDRs described herein. The binding agent may further comprise at least one variable region domain of an antibody described herein. The variable region domain may be of any size or amino acid composition and generally comprises at least one CDR sequence involved in binding to human CTLA-4, e.g., CDR1-H, CDR2-H, CDR3-H, CDR1-L, CDR2-L, and CDR3-L, specifically described herein, and adjacent to or in-frame with one or more framework sequences. Generally, the variable (V) region domain comprises an immunoglobulin heavy (V) domain. H ) chain and / or light (V L ) chain variable domains. Thus, for example, a V region domain may be monovalent, e.g., 1 x 10 as described below. 7 V can independently bind to human CTLA-4 with an affinity at least equal to M or less, H or V L Alternatively, the V region domain may be bivalent, with V H V H , V H V L , or V L V L V region dimers may contain at least one V domain that may be non-covalently associated. H and at least one V L chain (hereinafter referred to as F V Optionally, the chains can be covalently coupled directly, for example, by a disulfide bond between the two variable domains, or via a linker, for example, a peptide linker, to form a single-chain Fv (scFv).
[0139] The variable region domain may be any naturally occurring variable domain or an engineered version thereof. By engineered version is meant a variable region domain created using recombinant DNA engineering techniques. Such engineered versions include, for example, those created from a specific antibody variable region by inserting, deleting, or changing in or to the amino acid sequence of the specific antibody. A particular example includes an engineered variable region domain containing at least one CDR and optionally one or more framework amino acids from a first antibody and the remainder of the variable region domain from a second antibody.
[0140] The variable region domain can be covalently linked to the C-terminal amino acid of at least one other antibody or fragment thereof. Thus, for example, the V present in the variable region domain can be covalently linked to the C-terminal amino acid of at least one other antibody or fragment thereof. H The V domain can be linked to an immunoglobulin CH1 domain or a fragment thereof. L The domain can be linked to a CK domain or a fragment thereof. Thus, for example, an antibody can be prepared in which the antigen-binding domain is linked to the associated V H and V L The fragment may be a Fab fragment containing the CH1 and CK domains, the C-termini of which are covalently linked to the CH1 and CK domains, respectively. The CH1 domain may be extended with additional amino acids to provide, for example, a hinge region or part of a hinge region domain as found in a Fab' fragment, or to provide additional domains such as antibody CH2 and CH3 domains.
[0141] As described herein, an antibody comprises at least one of these CDRs. For example, one or more CDRs can be incorporated into a known antibody framework region (e.g., IgG1, IgG2, etc.) or conjugated to a suitable vehicle to extend its half-life. Suitable vehicles include, but are not limited to, Fc, polyethylene glycol (PEG), albumin, transferrin, etc. These and other suitable vehicles are known in the art. Such conjugated CDR peptides can be in monomeric, dimeric, trimeric, or other forms. In one embodiment, one or more water-soluble polymers are attached to one or more specific positions of the binding agent, e.g., to the amino terminus.
[0142] In another example, individual V from an antibody (i.e., a CTLA-4 antibody) L or V H The V chain can be used to form other V fragments (or Fab fragments) with the same specificity. H or V L Therefore, V H and V L Random combinations of V chain Ig genes can be expressed as antigen-binding fragments in bacteriophage libraries (e.g., fd or lambda phage). For example, antigen-binding specific V L or V H The parent V L or V H By utilizing the strand library, a combinatorial library can be generated. The combinatorial library can then be screened by conventional techniques, for example, by using a radiolabeled probe (e.g., radiolabeled CTLA-4). See, for example, Portolano et al., J. Immunol. V. 150 (3) pp. 880-887 (1993).
[0143] Diabodies are bivalent antibodies comprising two polypeptide chains, each of which has a V H and V L A bivalent antibody is an antibody that contains two domains, each of which has a linker that is too short to allow pairing between the two domains on the same chain, thereby permitting pairing by each domain with a complementary domain on a different polypeptide chain (see, e.g., Holliger et al., 1993, Proc. Natl. Acad. Sci. USA 90:6444-48, and and Poljak et al., 1994, Structure 2:1121-23). When the two polypeptide chains are identical, the resulting diabody has two identical antigen-binding sites. Polypeptide chains with different sequences can be used to create diabodies with two different antigen-binding sites. Similarly, triabodies and tetrabodies are antibodies that contain three and four polypeptide chains, respectively, forming three or four antigen-binding sites, which may be the same or different.
[0144] Antibody polypeptides, including fibronectin polypeptide monobodies, are also disclosed in U.S. Patent No. 6,703, 199. Other antibody polypeptides that are single-chain polypeptides are disclosed in U.S. Patent Publication No. 2005 / 0238646.
[0145] In certain embodiments, the antibody comprises one or more water-soluble polymers attached thereto, including, but not limited to, polyethylene glycol, polyoxyethylene glycol, or polypropylene glycol. See, e.g., U.S. Patent Nos. 4,640,835, 4,496,689, 4,301,144, 4,670,417, 4,791,192, and 4,179,337. In certain embodiments, the derivative binding agent comprises one or more of monomethoxy-polyethylene glycol, dextran, cellulose, or other carbohydrate-based polymers, poly-(N-vinylpyrrolidone)-polyethylene glycol, propylene glycol homopolymer, polypropylene oxide / ethylene oxide copolymer, polyoxyethylated polyol (e.g., glycerol), and polyvinyl alcohol, as well as mixtures of such polymers. In certain embodiments, the one or more water-soluble polymers are randomly attached to one or more side chains. In certain embodiments, PEG can act to improve the therapeutic capacity of a binding agent, such as an antibody. Certain such methods are discussed, for example, in US Pat. No. 6,133,426, which is hereby incorporated by reference herein for all purposes. 7.6. Antigen-binding proteins
[0146] In one aspect, the disclosure provides antigen binding proteins (eg, antibodies, antibody fragments, antibody derivatives, antibody muteins, and antibody variants) that bind to CTLA-4.
[0147] An antigen-binding protein can have the structure of, for example, a naturally occurring immunoglobulin. An "immunoglobulin" is a tetrameric molecule. In naturally occurring immunoglobulins, each tetramer is composed of two identical pairs of polypeptide chains, each pair having one "light" chain (approximately 25 kDa) and one "heavy" chain (approximately 50-70 kDa). The amino-terminal portion of each chain contains a variable region of approximately 100 to 110 or more amino acids primarily responsible for antigen recognition. The carboxy-terminal portion of each chain defines a constant region primarily responsible for effector function. Human light chains are classified as kappa and lambda light chains. Heavy chains are classified as mu, delta, gamma, alpha, or epsilon, defining the antibody's isotype as IgM, IgD, IgG, IgA, and IgE, respectively. Within light and heavy chains, the variable and constant regions are joined by a "J" region of about 12 or more amino acids, with the heavy chain also including a "D" region of about 10 amino acids. Generally, see Fundamental Immunology Ch. 7 (Paul, W., ed., 2nd ed. Raven Press, NY (1989)) (see, for example, See, e.g., the International Publication No. 2004 / 0100992, which is incorporated in its entirety for all purposes. The variable regions of each light / heavy chain pair form the antibody binding site, such that an intact immunoglobulin has two binding sites.
[0148] In accordance with the present disclosure, antigen binding proteins include antigen binding proteins that inhibit the biological activity of CTLA-4.
[0149] Various antigen-binding proteins may bind to different domains of CTLA-4 or act through different mechanisms of action. As particularly noted herein, domain regions are designed to include groups unless otherwise indicated. For example, amino acids 4-12 refers to nine amino acids: amino acids at positions 4 and 12, as well as the seven intervening amino acids in the sequence. Other examples include antigen-binding proteins that inhibit the binding of CTLA-4 to its ligand. An antigen-binding protein need not completely inhibit CTLA-4-induced activity to find use in the present disclosure; rather, antigen-binding proteins that reduce a particular activity of CTLA-4 are also contemplated for use. (Discussion herein of specific mechanisms of action for antigen-binding proteins that bind to CTLA-4 in treating particular diseases is by way of example only, and the methods presented herein are not constrained thereby.)
[0150] In another aspect, the present disclosure provides antigen-binding proteins comprising a light chain variable region selected from the group consisting of A1LC-A28LC or a heavy chain variable region selected from the group consisting of A1HC-A28HC, as well as fragments, derivatives, muteins, and variants thereof. Such antigen-binding proteins can be designated using the designation "LxHy" (where "x" corresponds to the light chain variable region number and "y" corresponds to the heavy chain variable region number, as they are labeled in the sequences below). That is, for example, "A1HC" denotes a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 101, "A1LC" denotes a light chain variable region comprising the amino acid sequence of SEQ ID NO: 1, etc. More generally, "L2H1" refers to an antigen-binding protein comprising a light chain variable region comprising the amino acid sequence of L2 (SEQ ID NO: 2) and a heavy chain variable region comprising the amino acid sequence of H1 (SEQ ID NO: 101). For clarity, all ranges represented by at least two members of a group include all members of the group between and including the ends of the range members. Thus, the group in the range A1 to A28 includes all members between A1 and A28, as well as members A1 and A28 themselves. The group in the range A4 to A6 includes members A4, A5, and A6, etc.
[0151] In some embodiments, the antigen binding protein comprises a variable (V(D)J) region of both the heavy and light chain sequences identical to one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512. In some embodiments, the antigen binding protein comprises a variable (V(D)J) region of either the heavy or light chain sequence identical to one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512. In some embodiments, the antigen binding protein is expressed from an expression vector in one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512.
[0152] The positions of the CDRs (underlined), which form part of the antigen-binding site, are also shown below, while the framework regions (FRs) are intervening segments of these variable domain sequences. In both the light chain variable region and the heavy chain variable region, there are three CDRs (CDRs 1-3) and four FRs (FRs 1-4). The CDR regions of each light and heavy chain are also grouped by antibody type (A1, A2, A3, etc.). Antigen-binding proteins of the present disclosure include, for example, antigen-binding proteins having a combination of light chain variable domains and heavy chain variable domains selected from the group of combinations consisting of L1H1 (antibody A1), L2H2 (antibody A2), L3H3 (antibody A3), L4H4 (antibody A4), L5H5 (antibody A5), L6H6 (antibody A6), L7H7 (antibody A7), L8H8 (antibody A8), L9H9 (antibody A9), L10H10 (antibody A10), L11H11 (antibody A11), L12H12 (antibody A12), L13H13 (antibody A13), ... and L28H28 (antibody A28).
[0153] In some embodiments, the antigen binding protein comprises all six CDR sequences (three light chain CDRs and three heavy chain CDRs) identical to one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession Number PTA-125512. In some embodiments, the antigen binding protein comprises three of the six CDR sequences (three light chain CDRs or three heavy chain CDRs) identical to one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession Number PTA-125512. In some embodiments, the antigen binding protein comprises one, two, three, four, or five of the six CDR sequences identical to one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession Number PTA-125512.
[0154] In one embodiment, the present disclosure provides an antigen binding protein comprising a light chain variable domain comprising a sequence of amino acids that differs by 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, or 1 residue from a light chain variable domain sequence selected from the group consisting of L1 to L28, wherein each such sequence difference is independently either a deletion, insertion, or substitution of a single amino acid residue. In another embodiment, the light chain variable domain comprises a sequence of amino acids that is at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identical to a light chain variable domain sequence selected from the group consisting of L1 to L28. In another embodiment, the light chain variable domain comprises a sequence of amino acids encoded by a nucleotide sequence that is at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identical to a nucleotide sequence encoding a light chain variable domain selected from the group consisting of L1-L28 (including L1, L2, L3, L4, L5, L6, L7, L8, L9, L10, L11, L12, L13, ... and L28). In another embodiment, the light chain variable domain comprises a sequence of amino acids encoded by a polynucleotide that hybridizes under moderately stringent conditions to the complement of a polynucleotide encoding a light chain variable domain selected from the group consisting of L1-L28. In another embodiment, the light chain variable domain comprises a sequence of amino acids encoded by a polynucleotide that hybridizes under moderately stringent conditions to the complement of a polynucleotide encoding a light chain variable domain selected from the group consisting of L1-L28. In another embodiment, the light chain variable domain comprises a sequence of amino acids encoded by a polynucleotide that hybridizes under moderately stringent conditions to the complement of a light chain polynucleotide L1 through L28.
[0155] In one embodiment, the present disclosure provides an antigen binding protein comprising a light chain variable domain comprising a sequence of amino acids that differs by only 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, or 1 residue from the sequence of a light chain variable domain encoded by one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA- 125512, wherein each such sequence difference is independently either a deletion, insertion, or substitution of a single amino acid residue. In another embodiment, the light chain variable domain comprises a sequence of amino acids that is at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identical to the sequence of a light chain variable domain encoded by one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512. In another embodiment, the light chain variable domain comprises a sequence of amino acids encoded by a nucleotide sequence that is at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identical to the nucleotide sequence for one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512.
[0156] In another embodiment, the present disclosure provides an antigen binding protein comprising a heavy chain variable domain comprising a sequence of amino acids that differs by 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, or 1 residue from a heavy chain variable domain sequence selected from the group consisting of H1-H28, wherein each such sequence difference is independently either a deletion, insertion, or substitution of a single amino acid residue. In another embodiment, the heavy chain variable domain comprises a sequence of amino acids that is at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identical to a heavy chain variable domain sequence selected from the group consisting of H1-H28. In another embodiment, the heavy chain variable domain comprises a sequence of amino acids encoded by a nucleotide sequence that is at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identical to a nucleotide sequence encoding a heavy chain variable domain selected from the group consisting of H1-H28. In another embodiment, the heavy chain variable domain comprises a sequence of amino acids encoded by a polynucleotide that hybridizes under moderately stringent conditions to the complement of a polynucleotide encoding a heavy chain variable domain selected from the group consisting of H1-H28. In another embodiment, the heavy chain variable domain comprises a sequence of amino acids encoded by a polynucleotide that hybridizes under moderately stringent conditions to the complement of a polynucleotide encoding a heavy chain variable domain selected from the group consisting of H1-H28. In another embodiment, the heavy chain variable domain comprises a sequence of amino acids encoded by a polynucleotide that hybridizes under moderately stringent conditions to the complement of a heavy chain polynucleotide disclosed herein.
[0157] In one embodiment, the present disclosure provides an antigen binding protein comprising a heavy chain variable domain comprising a sequence of amino acids that differs by only 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, or 1 residue from the sequence of a heavy chain variable domain encoded by one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA- 125512, wherein each such sequence difference is independently either a deletion, insertion, or substitution of a single amino acid residue. In another embodiment, the heavy chain variable domain comprises a sequence of amino acids that is at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identical to the sequence of a heavy chain variable domain encoded by one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512. In another embodiment, the heavy chain variable domain comprises a sequence of amino acids encoded by a nucleotide sequence that is at least 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% identical to the nucleotide sequence for one of the clones in the library of CTLA-4 binding clones deposited under ATCC Accession No. PTA-125512.
[0158] Certain embodiments of the antigen binding proteins of the present disclosure comprise one or more amino acid sequences that are identical to the amino acid sequences of one or more of the CDRs and / or FRs referenced herein. In one embodiment, the antigen binding protein comprises the light chain CDR1 sequence exemplified above. In another embodiment, the antigen binding protein comprises the light chain CDR2 sequence exemplified above. In another embodiment, the antigen binding protein comprises the light chain CDR3 sequence exemplified above. In another embodiment, the antigen binding protein comprises the heavy chain CDR1 sequence exemplified above. In another embodiment, the antigen binding protein comprises the heavy chain CDR2 sequence exemplified above. In another embodiment, the antigen binding protein comprises the heavy chain CDR3 sequence exemplified above.
[0159] In one embodiment, the disclosure provides an antigen binding protein comprising one or more CDR sequences that differ from the CDR sequences set forth above by no more than 5, 4, 3, 2, or 1 amino acid residue.
[0160] In some embodiments, at least one of the CDR1 sequences of the antigen binding protein is a CDR1 sequence from A1 to A28, CDR1-L1 to 28, or CDR1-H1 to 28 shown in Table 5. In some embodiments, at least one of the CDR2 sequences of the antigen binding protein is a CDR2 sequence from A1 to A28, CDR2-L1 to 28, or CDR2-H1 to 28 shown in Table 5. In some embodiments, at least one of the CDR3 sequences of the antigen binding protein is a CDR3 sequence from A1 to A28, CDR3-L1 to 28, or CDR3-H1 to 28 shown in Table 5.
[0161] In another embodiment, the light chain CDR3 sequence of the antigen binding protein is a light chain CDR3 sequence from A1 to A28 or CDR3-L1 to 28 shown in Table 5, and the heavy chain CDR3 sequence of the antigen binding protein is a heavy chain sequence from A1 to A28 or CDR-H1 to 28 shown in Table 5.
[0162] In another embodiment, the antigen binding protein comprises 1, 2, 3, 4, or 5 CDR sequences that each independently differ from the CDR sequences of A1-A23 by the addition, substitution, and / or deletion of 6, 5, 4, 3, 2, 1, or 0 single amino acid additions, substitutions, and / or deletions, and the antigen binding protein further comprises 1, 2, 3, 4, or 5 CDR sequences that each independently differ from the CDR sequences by the addition, substitution, and / or deletion of 6, 5, 4, 3, 2, 1, or 0 single amino acid additions, substitutions, and / or deletions. In some embodiments, the antigen binding protein comprises 1, 2, 3, 4, or 5 CDR sequences that have at least 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity to the CDR sequences of A1-A28, respectively.
[0163] The nucleotide sequence of A1-A28, or the amino acid sequence of A1-A28, can be altered, for example, by random mutagenesis or site-specific mutagenesis (e.g., oligonucleotide-directed site-specific mutagenesis) to generate altered polynucleotides containing one or more specific nucleotide substitutions, deletions, or insertions compared to the unmutated polynucleotide. Examples of techniques for making such alterations are described in Walder et al., 1986, Gene 42:133; Bauer et al., 1985, Gene 37:73; Craik, BioTechniques, January 1985, 12-19; Smith et al., 1981, Genetic Engineering: Principles and Methods, Plenum Press; and U.S. Pat. Nos. 4,518,584 and 4,518,585. and 4,737,462. These and other methods can be used to generate derivatives of anti-CTLA-4 antibodies that have, for example, desired properties, such as increased affinity, avidity, or specificity for CTLA-4, increased in vivo or in vitro activity or stability, or reduced in vivo side effects compared to the non-derivatized antibody.
[0164] Other derivatives of anti-CTLA-4 antibodies within the scope of the present disclosure include covalent or aggregate conjugation of anti-CTLA-4 antibodies, or fragments thereof, with other proteins or polypeptides, such as by expression of recombinant fusion proteins comprising a heterologous polypeptide fused to the N- or C-terminus of the anti-CTLA-4 antibody polypeptide. For example, the conjugated peptide may be a heterologous signal (or leader) polypeptide, such as the yeast alpha-factor leader, or a peptide such as an epitope tag. Fusion proteins containing antigen-binding proteins may also include a peptide added to facilitate purification or identification of the antigen-binding protein (e.g., poly-His). Antigen-binding proteins may be those described by Hopp et al., Bio / Technology 6:1204, 1988, and U.S. Pat. No. 5,011,912. The FLAG peptide may be linked to the FLAG peptide Asp-Tyr-Lys-Asp-Asp-Asp-Asp-Lys (DYKDDDDK) (SEQ ID NO: 7002), which is a nucleotide sequence that is highly antigenic and provides an epitope that is reversibly bound by a specific monoclonal antibody (mAb), allowing for rapid assay and easy purification of the expressed recombinant protein. Reagents useful for preparing fusion proteins in which the FLAG peptide is fused to a given polypeptide are commercially available (Sigma, St. Louis, MO).
[0165] One suitable Fc polypeptide is described in PCT application WO93 / 10151 (incorporated herein by reference) and is a single-chain polypeptide extending from the N-terminal hinge region to the native C-terminus of the Fc region of a human IgG1 antibody. Another useful Fc polypeptide is the Fc mutein described in U.S. Pat. No. 5,457,035 and Baum et al., 1994, EMBO J. 13:3992-4001. The amino acid sequence of this mutein is The muteins are identical to that of the native Fc sequence set forth in WO 93 / 10151, except that amino acid 19 is changed from Leu to Ala, amino acid 20 is changed from Leu to Glu, and amino acid 22 is changed from Gly to Ala. The muteins exhibit reduced affinity for Fc receptors.
[0166] In other embodiments, the variable portions of the heavy and / or light chains of an anti-CTLA-4 antibody can be used in place of the variable portions of the heavy and / or light chains of the antibody.
[0167] Oligomers containing one or more antigen binding proteins can be used as CTLA-4 antagonists or agonists. The oligomers can be in the form of covalently or non-covalently linked dimers, trimers, or higher oligomers. The use of oligomers containing two or more antigen binding proteins is contemplated, and one example is a homodimer. Other oligomers include heterodimers, homotrimers, heterotrimers, homotetramers, heterotetramers, etc.
[0168] One embodiment is directed to oligomers comprising multiple antigen-binding proteins joined via covalent or non-covalent interactions between peptide moieties fused to the antigen-binding proteins. Such peptides may be peptide linkers (spacers) or peptides with oligomerization-promoting properties. Leucine zippers and certain polypeptides derived from antibodies are among the peptides that can promote oligomerization of antigen-binding proteins bound thereto, as described in more detail below.
[0169] In certain embodiments, the oligomer comprises two to four antigen binding proteins. The antigen binding proteins of the oligomer may be in any form, e.g., a variant or fragment, such as any of the forms described above. Preferably, the oligomer comprises an antigen binding protein that has CTLA-4 binding activity.
[0170] In one embodiment, oligomers are prepared using polypeptides derived from immunoglobulins. For the preparation of fusion proteins comprising certain heterologous polypeptides fused to various portions of antibody-derived polypeptides, including the Fc domain, see, for example, Ashkenazi et al. al., 1991, PNAS USA 88:10535; Byrn et al., 1990, Nature 344:677; and Hollenbaugh et al., 1992 Curr. Prots in Immunol., Suppl. 4, pages 10.19.1 - 10.19.11.
[0171] One embodiment of the present disclosure is directed to a dimer comprising two fusion proteins created by fusing a CTLA-4-binding fragment of an anti-CTLA-4 antibody to the Fc region of an antibody. The dimer can be produced, for example, by inserting a gene fusion encoding the fusion protein into an appropriate expression vector that expresses the gene fusion in a host cell transformed with the recombinant expression vector, and allowing the expressed fusion proteins to assemble into similar antibody molecules, whereupon interchain disulfide bonds are formed between the Fc portions, resulting in a dimer.
[0172] Alternatively, the oligomer is a fusion protein comprising multiple antigen-binding proteins, with or without peptide linkers (spacer peptides). Among suitable peptide linkers are those described in U.S. Patent Nos. 4,751,180 and 4,935,233.
[0173] Another method for preparing oligomeric antigen-binding proteins involves the use of leucine zippers. Leucine zipper domains are peptides that promote oligomerization of the proteins in which they are found. Leucine zippers were originally identified in several DNA-binding proteins (Landschulz et al., 1988, Science 240:1759) and have since been found in a variety of different proteins. Among the known leucine zippers are naturally occurring peptides and their derivatives that dimerize or trimerize. Examples of leucine zipper domains suitable for producing soluble oligomeric proteins are described in PCT application WO 94 / 10308, and the leucine zipper from lung surface protein D (SPD) is described in Hoppe et al., 1994, FEBS Letters 344:191, both of which are incorporated herein by reference. The use of a modified leucine zipper that allows stable trimerization of a heterologous protein fused to it is described by Fanslow et al., 1994, Semin. Immunol. 6:267-78. In one approach, recombinant fusion proteins containing anti-CTLA-4 antibody fragments or derivatives fused to a leucine zipper peptide are expressed in suitable host cells, and the resulting soluble oligomeric anti-CTLA-4 antibody fragments or derivatives are recovered from the culture supernatant.
[0174] In one aspect, the present disclosure provides antigen-binding proteins that interfere with the binding of CTLA-4 to its ligand. Such antigen-binding proteins can be directed against CTLA-4, or fragments, variants, or derivatives thereof, and screened in conventional assays for their ability to interfere with the binding of CTLA-4 to its ligand. Examples of suitable assays are assays that test antigen-binding proteins for their ability to inhibit the binding of a CTLA-4 ligand to cells expressing CTLA-4, or assays that test antigen-binding proteins for their ability to reduce biological or cellular responses resulting from the binding of a CTLA-4 ligand to cell-surface CTLA-4. For example, antibodies can be screened by their ability to bind to immobilized antibody surfaces (CTLA-4). Antigen-binding proteins that block the binding of CTLA-4 to its ligand can be used to treat any CTLA-4-associated condition, including, but not limited to, cancer. In embodiments, human anti-CTLA-4 monoclonal antibodies generated by procedures involving immunization of transgenic mice are used to treat such conditions.
[0175] Antigen-binding fragments of the antigen-binding proteins of the present disclosure can be produced by conventional techniques. Examples of such fragments include, but are not limited to, Fab and F(ab')2 fragments. Antibody fragments and derivatives produced by genetic engineering techniques are also contemplated.
[0176] Additional embodiments include chimeric antibodies, e.g., humanized versions of non-human (e.g., murine) monoclonal antibodies. Such humanized antibodies can be prepared by known techniques and offer the advantage of reduced immunogenicity when the antibody is administered to humans. In one embodiment, a humanized monoclonal antibody comprises a variable domain of a murine antibody (or all or part of its antigen-binding site) and a constant domain derived from a human antibody. Alternatively, a humanized antibody fragment may comprise the antigen-binding site of a murine monoclonal antibody and a variable domain fragment (lacking the antigen-binding site) derived from a human antibody. Procedures for the production of chimeric and further engineered monoclonal antibodies are described in Riechmann et al., 1988, Nature 332:323, Liu et al., 1987, Proc. Nat. Acad. Sci. USA 84:3439, Larrick et al., 1989, Bio / Technology 7:934, and Winter et al., 1993, TIPS 14:139. In one embodiment, the chimeric antibody is R-grafted antibodies. Techniques for humanizing antibodies are discussed in, for example, U.S. Patent Nos. 5,869,619, 5,225,539, 5,821,337, 5,859,205, and 6,881,557, Padlan et al., 1995, FASEB J. 9:133-39, and Tamura et al., 2000, J. Immunol. 164:1432-41.
[0177] Procedures have been developed to generate human or partially human antibodies in non-human animals. For example, mice have been prepared in which one or more endogenous immunoglobulin genes have been inactivated by various means. Human immunoglobulin genes are introduced into the mice to replace the inactivated mouse genes. Antibodies produced in the animals incorporate human immunoglobulin polypeptide chains encoded by the human genetic material introduced into the animal. In one embodiment, a non-human animal, such as a transgenic mouse, is immunized with a CTLA-4 polypeptide so that antibodies directed against the CTLA-4 polypeptide are generated in the animal.
[0178] An example of a suitable immunogen is soluble human CTLA-4, such as a polypeptide comprising the extracellular domain of the protein having the following sequence: SEQ ID NO: 7001, or other immunogenic fragments of that protein. Examples of techniques for the production of human or partially human antibodies and the use of transgenic animals for that production are described in U.S. Patent Nos. 5,814,318, 5,569,825, and 5,545,806; Davis et al., 2003, Production of human antibodies from transgenic mice in Lo, ed. Antibody Engineering: Methods and Protocols, Humana Press, NJ:191-200; Kellermann et al., 2002, Curr Opin Biotechnol. 13:593-97; Russell et al., 2000, Infect. Immun. 68:1820-26, Gallo et al., 2000, Eur J Immun. 30:534-40, Davis et al., 1999, Cancer Metastasis Rev. 18:421-25, Green, 1999, J Immunol Methods. 231:11-23、Jakobovits, 1998, Advanced Drug Delivery Reviews 31:33-42、Green et al., 1998, J Exp Med. 188:483-95、Jakobovits A, 1998, Exp. Opin. Invest. Drugs. 7:607-14、Tsuda et al., 1997, Genomics. 42:413-21、Mendez et al., 1997, Nat Genet. 15:146-56、Jakobovits, 1994, Curr Biol. 4:761-63、Arbones et al., 1994, Immunity. 1:247-60、Green et al., 1994, Nat Genet. 7:13-21、Jakobovits et al., 1993, Nature. 362:255-58、Jakobovits et al., 1993, Proc Natl Acad Sci U S A 90:2551-55、Chen, J., M. Trounstine, F. W. Alt, F. Young, C. Kurahara, J. Loring, D. Huszar. Inter'l Immunol. 5(1993): 647-656、Choi et al., 1993, Nature Genetics 4:117-23;Fishwild et al., 1996, Nature Biotech. 14: 845-51、Harding et al., 1995, Annals of the New York Academy of Sciences、Lonberg et al., 1994, Nature 368: 856-59; 49-101;Lonberg et al., 1995, Internal Review of Immunology 13:65-93;Neuberger, 1996, Nature Biotechnology 14:826;Taylor et al., 1992, Nucleic Acids Res. 20: 6287-95.Taylor et al., 1994, Inter'l Immunol. 6: 579-91, Tomizuka et al., 1997, Nature Genetics 16: 133-43; Nat'lAcad. Sci. USA 97: 722-27、Tuaillon Pro.Nat'lAcad.Sci. USA 90: 3720-24 and Tuaillon et al., 1994, J.Immunol. 152: 2912-20.
[0179] The antigen-binding proteins (e.g., antibodies, antibody fragments, and antibody derivatives) of the present disclosure may comprise any constant region known in the art. The light chain constant region may be, for example, a kappa- or lambda-type light chain constant region, e.g., a human kappa- or lambda-type light chain constant region. The heavy chain constant region may be, for example, an alpha-, delta-, epsilon-, gamma-, or mu-type heavy chain constant region, e.g., a human alpha-, delta-, epsilon-, gamma-, or mu-type heavy chain constant region. In one embodiment, the light or heavy chain constant region is a fragment, derivative, variant, or mutein of a naturally occurring constant region.
[0180] Techniques for deriving antibodies of different subclasses or isotypes from an antibody of interest, i.e., subclass switching, are known. Thus, an IgG antibody may be derived from, for example, an IgM antibody, and vice versa. Such techniques allow the preparation of new antibodies that have the antigen-binding properties of a given antibody (parent antibody), but also exhibit biological properties associated with an antibody isotype or subclass that differs from that of the parent antibody. Recombinant DNA techniques may also be used. Cloned DNA encoding a specific antibody polypeptide, e.g., DNA encoding the constant domain of an antibody of a desired isotype, can be used in such procedures. See also Lantto et al., 2002, Methods Mol. Biol. 178:303-16. I want to be illuminated.
[0181] In one embodiment, the antigen-binding protein of the present disclosure comprises an IgG1 heavy chain domain (H1-H28) of any of A1-A28 or a fragment of an IgG1 heavy chain domain (H1-H28) of any of A1-A28. In another embodiment, the antigen-binding protein of the present disclosure comprises a kappa light chain constant chain region (L1-L28) of A1-A28 or a fragment of a kappa light chain constant region (L1-L28) of A1-A28. In another embodiment, the antigen-binding protein of the present disclosure comprises an IgG1 heavy chain domain (L1-L28) of A1-A28, or a fragment thereof, and a kappa light chain domain (L1-L28) of A1-A28, or a fragment thereof.
[0182] Thus, antigen binding proteins of the present disclosure include, for example, those comprising variable domain combinations L1H1, L2H2, L3H3, L4H4, L5H5, L6H6, L7H7, L8H8, L9H9, L10H10, L11H11, L12H12, L13H13, ..., and L28H28 with the desired isotype (e.g., IgA, IgG1, IgG2, IgG3, IgG4, IgM, IgE, and IgD) and their Fab or F(ab')2 fragments. Additionally, if IgG4 is desired, a point mutation (CPSCP (SEQ ID NO: 11969) → CPPCP (SEQ ID NO: 11970)) can be introduced into the hinge region as described in Bloom et al., 1997, Protein Science 6:407, which is incorporated herein by reference. It may also be desirable to introduce regions to reduce the tendency to form inter-H chain disulfide bonds that can lead to heterogeneity in IgG4 antibodies.
[0183] In one embodiment, the antigen binding protein is present in an amount of 1 x 10 -4 s -1 or lower K off In another embodiment, K off is 5 x 10 -5 s -1 or lower. In another embodiment, K off In another embodiment, the antigen binding protein is substantially identical to an antibody comprising one or more CDRs from an antibody having a combination of light chain and heavy chain variable domain sequences selected from the group of combinations consisting of L1H1, L2H2, L3H3, L4H4, L5H5, L6H6, and L23H28. off In another embodiment, the antigen binding protein binds to CTLA-4 having a K substantially identical to an antibody comprising one of the above exemplified amino acid sequences. offIn another embodiment, the antigen binding protein binds to CTLA-4 having a K that is substantially identical to an antibody comprising one or more CDRs from an antibody comprising one of the above-exemplified amino acid sequences. off It binds to CTLA-4, which has the following structure:
[0184] In one aspect, the present disclosure provides antigen-binding fragments of the anti-CTLA-4 antibodies of the present disclosure. Such fragments may consist entirely of sequences derived from the antibody or may contain additional sequences. Examples of antigen-binding fragments include Fab, F(ab'), single-chain antibodies, diabodies, triabodies, tetrabodies, and domain antibodies. Other examples are described in Lunde et al. et al., 2002, Biochem. Soc. Trans. 30:500-06.
[0185] Single-chain antibodies (scFv) can be formed by linking heavy and light chain variable domain (Fv region) fragments with an amino acid bridge (a short peptide linker, e.g., a synthetic sequence of amino acid residues), resulting in a single polypeptide chain. Such single-chain Fvs (scFvs) consist of two variable domain polypeptides (V L and V H These polypeptides have been prepared by fusing DNA encoding a peptide linker between DNA encoding the variable domains. The resulting polypeptides can fold back on themselves to form antigen-binding monomers or can form multimers (e.g., dimers, trimers, or tetramers), depending on the length of the flexible linker between the two variable domains (Kortt et al., 1997, Prot. Eng. 10:423; Kortt et al., 2001, Biomol. Eng. 18:95-108). (Bird et al., 1988, Science 242:423-26 and Huston et al., 1988, Proc. Natl. Acad. Sci. USA 85:5879-83). L and V H a polypeptide comprising By combining these, it is possible to form multimeric scFvs that bind to various epitopes (Kriangkum et al., 2001, Biomol. Eng. 18:31-40). Techniques developed for this purpose include U.S. Pat. No. 4,946,778; Bird, 1988, Science 242:423; Huston et al., 1988, Proc. Natl. Acad. Sci. USA 85:5879; Ward et al., 1989, Nature 334:544; de Graaf et al., 2002, Methods Mol Biol. 178:379-87. ScFvs comprising the variable domain combinations L1H1, L2H2, L3H3, L4H4, L5H5, L6H6, . . . , and L28H28 are encompassed by the present disclosure. 7.7. Monoclonal antibodies
[0186] In another aspect, the present disclosure provides monoclonal antibodies that bind to CTLA-4. The monoclonal antibodies of the present disclosure can be produced using a variety of known techniques. In general, monoclonal antibodies that bind to specific antigens can be obtained by methods known to those skilled in the art (see, for example, Kohler et al., Nature 256:495, 1975; Coligan et al. (eds.), Current Protocols in Immunology, 1:2.5.12.6.7 (John Wiley & Sons 1991); U.S. Patent Nos. RE32,011, 4,902,614, 4,543,439, and 4,411,993; Monoclonal Antibodies, Hybridomas: A New Dimension in Biological Analyses, Plenum Press, Kennett, McKearn, and Bechtol (eds.) (1980); and Antibodies: A Laboratory Manual, Harlow and Lane (eds.), Cold Spring Harbor Laboratory Press (1988); Picksley et al., "Production of monoclonal antibodies against proteins expressed in E. coli," in DNA Cloning 2: Expression Systems, 2nd Edition, Glover et al. (eds.), page 93 (Oxford University Press 1995). Antibody fragments can be derived therefrom using any suitable standard technique, such as proteolytic digestion or, if desired, proteolytic digestion (e.g., using papain or pepsin), followed by gentle reduction of disulfide bonds and alkylation. Alternatively, such fragments may be produced by recombinant genetic engineering techniques as described herein.
[0187] Monoclonal antibodies can be obtained, for example, as known in the art, by injecting transgenic or knockout animals, such as rats, hamsters, rabbits, or preferably mice, with an immunogen comprising human CTLA-4 [sequence of SEQ ID NO: 7001] or a fragment thereof, according to methods known in the art and described herein. The presence of specific antibody production can be monitored after the initial injection and / or after booster injections by obtaining serum samples and detecting the presence of antibodies that bind to human CTLA-4 or the peptides using any one of several immunodetection methods known in the art and described herein. From animals producing the desired antibodies, lymphoid cells, most commonly cells from the spleen or lymph nodes, are removed to obtain B lymphocytes. The B lymphocytes are then fused with a drug-primed myeloma cell fusion partner, preferably one that is isogenic to the immunized animal and, if desired, has other desired properties (e.g., inability to express endogenous Ig gene products, e.g., P3X63-Ag 8.653 (ATCC No. CRL 1580); NSO, SP20), to generate immortal, eukaryotic cell lines, called hybridomas.
[0188] Lymphocyte (e.g., spleen) cells and myeloma cells are combined with a membrane fusion promoter, such as polyethylene glycol or a non-ionic detergent, for several minutes and then plated at low density in a selective medium that supports the growth of hybridoma cells but not unfused myeloma cells. A preferred selective medium is HAT (hypoxanthine, aminopterin, thymidine). After a sufficient time, usually about one to two weeks, cell colonies are observed. Single colonies are isolated, and antibodies produced by the cells can be tested for binding activity to human CTLA-4 using any one of a variety of immunoassays known in the art and described herein. The hybridomas are cloned (e.g., by limiting dilution cloning or soft agar plaque isolation), and positive clones producing antibodies specific to CTLA-4 are selected and cultured. Monoclonal antibodies from the hybridoma culture may be isolated from the supernatant of the hybridoma culture.
[0189] An alternative method for producing murine monoclonal antibodies is to inject hybridoma cells into the peritoneal cavity of syngeneic mice, e.g., mice that have been treated to promote the formation of ascites fluid containing the monoclonal antibody (e.g., primed with pristane). Monoclonal antibodies can be isolated and purified by a variety of well-established techniques. Such isolation techniques include affinity chromatography with protein A Sepharose, size-exclusion chromatography, and ion-exchange chromatography (e.g., Coligan at pages 2.7.1-2.7.12 and pages 2.9.1-2.9.3; Baines et al., "Purification of Immunoglobulin G (IgG)," in Methods in Molecular Biology, Vol. 10, pages 79-104 (The Humana Press, Inc. 1992). Monoclonal antibodies can be purified by affinity chromatography using appropriate ligands selected based on particular properties of the antibody (e.g., heavy or light chain isotype, binding specificity, etc.). Examples of suitable ligands immobilized on a solid support include protein A, protein G, anti-constant region (light or heavy chain) antibodies, anti-idiotypic antibodies, and TGF-beta binding proteins, or fragments or variants thereof.
[0190] Monoclonal antibodies can be produced using any technique known in the art, for example, by immortalizing spleen cells collected from transgenic animals after the completion of the immunization schedule. Spleen cells can be immortalized using any technique known in the art, for example, by fusing them with myeloma cells to generate hybridomas. Hybridoma cell lines that produce antibodies that bind to CTLA-4 polypeptides are identified. Such hybridoma cell lines and the anti-CTLA-4 monoclonal antibodies produced by them are encompassed by the present disclosure. Myeloma cells used in the hybridoma generation fusion procedure are preferably non-antibody-producing, have high fusion efficiency, and possess enzyme deficiencies that prevent the myeloma cells from growing in certain selective media that support the growth of only the desired fused cells (hybridomas). Examples of suitable cell lines for use in mouse fusions include Sp-20, P3-X63 / Ag8, P3-X63-Ag8.653, NS1 / 1.Ag 4 1, Sp210-Ag14, FO, NSO / U, MPC-11, MPC11-X45-GTG 1.7, and S194 / 5XX0 Bul; examples of cell lines used in rat fusions include R210.RCY3, Y3-Ag 1.2.3, IR983F, and 4B210. Other cell lines useful for cell fusion are U-266, GM1500-GRG2, LICR-LON-HMy2, and UC729-6. Hybridomas or mAbs may be further screened to identify mAbs with specific properties, such as the ability to block CTLA-4-induced activity.
[0191] The antibodies of the present disclosure may be fully human monoclonal antibodies. Provided are isolated, fully human antibodies that specifically bind to CTLA-4, wherein the antigen-binding protein has at least one in vivo biological activity of a human anti-CTLA-4 antibody. 7.8. Methods for generating antibodies
[0192] Fully human monoclonal antibodies can be produced by a number of techniques familiar to those skilled in the art. Such methods include, but are not limited to, Epstein-Barr virus (EBV) transformation of human peripheral blood cells (e.g., containing B lymphocytes), in vitro immunization of human B cells, fusion of splenocytes from immunized transgenic mice carrying inserted human immunoglobulin genes, isolation from a human immunoglobulin V-region phage library, or other procedures known in the art and based on the disclosure herein. For example, fully human monoclonal antibodies can be obtained from transgenic mice engineered to produce specific human antibodies in response to antigen challenge. Methods for obtaining fully human antibodies from transgenic mice are described, for example, in Green et al., Nature 2000, 10, 111-115. Genet. 7:13, 1994; Lonberg et al., Nature 368:856, 1994; Taylor et al., Int. Immun. 6:579, 1994; U.S. Patent No. 5,877,397; Bruggemann et al., 1997 Curr. Opin. Biotechnol. 8:455-58; Jakobovits et al., 1995 Ann. NY Acad. Sci. 764:525-35. In this technique, elements of the human heavy and light chain loci are introduced into strains of mice derived from embryonic stem cell lines containing targeted disruptions of the endogenous heavy and light chain loci (see also Bruggemann et al., Curr. Opin. Biotechnol. 8:455-58 (1997)). For example, human immunoglobulin transgenes The CTLA-4 gene may be a minigene construct on a yeast artificial chromosome or a transgene locus that undergoes B cell-specific DNA rearrangement and hypermutation in mouse lymphoid tissue. Fully human monoclonal antibodies can be obtained by subsequently immunizing transgenic mice capable of producing human antibodies specific to CTLA-4. According to the methods described herein, lymphoid cells from immunized transgenic mice can be used to generate hybridomas secreting human antibodies. Polyclonal serum containing fully human antibodies can also be obtained from the blood of immunized animals.
[0193] Another method for producing the human antibodies of the present disclosure involves immortalizing human peripheral blood cells by EBV transformation. See, for example, U.S. Patent No. 4,464,456. Such immortalized B cell lines (or lymphoblastoid cell lines) producing monoclonal antibodies that specifically bind to CTLA-4 can be identified by the immunodetection methods provided herein, such as ELISA, and then isolated by standard cloning techniques. The stability of lymphoblastoid cell lines producing anti-CTLA-4 antibodies can be improved by fusing the transformed cell lines with mouse myeloma cells to generate mouse-human hybrid cell lines according to methods known in the art (see, for example, Glasky et al., Hybridoma 8: 377-89 (1989)). Human monoclonal antibodies can be isolated by fusing the transformed cell lines with mouse myeloma cells according to methods known in the art (see, for example, Glasky et al., Hybridoma 8: 377-89 (1989)). Yet another method for generating clonal antibodies is in vitro immunization, which involves priming human splenic B cells with human CTLA-4, followed by fusing the primed B cells with a heterohybrid fusion partner. See, e.g., Boerner et al., See 1991 J. Immunol. 147:86-95.
[0194] In certain embodiments, B cells producing anti-human CTLA-4 antibodies are selected, and the light and heavy chain variable regions are cloned from the B cells according to molecular biology techniques known in the art (WO 92 / 02551; U.S. Pat. No. 5,627,052; Babcook et al., Proc. Natl. Acad. Sci. USA 93:7843-48 (1996)) and described herein. B cells from immunized animals can be isolated from the spleen, lymph nodes, or peripheral blood samples by selecting cells producing antibodies that specifically bind to CTLA-4. B cells can also be isolated from humans, for example, from peripheral blood samples.
[0195] Methods for detecting single B cells producing antibodies with a desired specificity, such as by plaque formation, fluorescence-activated cell sorting, in vitro stimulation followed by detection of specific antibodies, are well known in the art. Methods for selection of B cells producing specific antibodies include, for example, preparing a single-cell suspension of B cells in soft agar containing human CTLA-4. Binding of the specific antibody produced by the B cells to the antigen results in the formation of a complex that can be visualized as an immunoprecipitate.
[0196] In some embodiments, B cells producing specific antibodies can be selected using a method that allows for the identification of naturally paired antibodies. For example, the method described in Adler et al., "A natively paired antibody library yields drug leads with higher sensitivity and specificity than a randomly paired antibody library," MAbs (2018), incorporated herein by reference in its entirety, can be used. This method, adapted from Adler et al. and summarized in Figure 1, combines microfluidics, molecular genomics, yeast single-chain variable fragment (scFv) display, fluorescence-activated cell sorting (FACS), and deep sequencing. Briefly, B cells can be isolated from immunized animals and then pooled. The B cells are encapsulated into droplets using oligo-dT beads and a lysis solution, and the beads containing mRNA are purified from the droplets. They are then injected into a second emulsion containing an OE-RT-PCR amplification mix that generates DNA amplicons encoding naturally paired scFvs of heavy and light Ig chains. The library of naturally paired amplicons is then electroporated into yeast for scFv display. High-affinity scFvs are identified using FACS. Finally, deep antibody sequencing can be used to identify all clones in the scFv library before and after selection.
[0197] After selection of B cells producing the desired antibody, the specific antibody gene may be cloned by isolating and amplifying the DNA or mRNA according to methods known in the art and described herein.
[0198] Methods for obtaining antibodies of the present disclosure can also employ various phage display techniques known in the art. See, e.g., Winter et al., 1994 Annu. Rev. Immunol. 12:433-55; Burton et al., 1994 Adv. Immunol. 57:191-280. Combinatorial libraries of human or mouse immunoglobulin variable region genes can be created in phage vectors that can be screened to select Ig fragments (Fab, Fv, sFv, or multimers thereof) that specifically bind to proteins that bind to CTLA-4 or variants or fragments thereof. See, for example, U.S. Patent No. 5,223,409; Huse et al., 1989 Science 246:1275-81; Sastry et al., Proc. Natl. Acad. Sci. USA 86:5728-32 (1989); Alting-Mees et al., Strategies in Molecular Biology 3:1-9 (1990); Kang et al., 1991 Proc. Natl. Acad. Sci. USA 88:4363-66; Hoogenboom et al., 1992 J. Molec. Biol. 227:381-388; Schlebusch et al., 1997 Hybridoma 16:47-52, and references cited therein. See references cited above. For example, a library containing a plurality of polynucleotide sequences encoding Ig variable region fragments may be inserted in frame with a sequence encoding a phage coat protein into the genome of a filamentous bacteriophage, such as M13 or a variant thereof. The fusion protein may be a fusion of the coat protein with the light chain variable region domain and / or the heavy chain variable region domain. According to certain embodiments, immunoglobulin Fab fragments may also be displayed on phage particles (see, e.g., U.S. Pat. No. 5,698,426).
[0199] Antibody fragments fused to another protein, such as a minor coat protein, can also be used to enrich for phage with antigen. Phage are then enriched for rearranged heavy chains (V) from mice immunized with the antigen (e.g., CTLA-4). H) and light chain (V L Using random combinatorial libraries such as those described in (1991), diverse libraries of antibody fragments are displayed on the surface of phage. These libraries can be screened for complementary variable domains and the domains purified, for example, by affinity columns. See Clackson et al., Nature, V. 352 pp. 624-628 (1991).
[0200] Heavy and light chain immunoglobulin cDNA expression libraries may be prepared in lambda phage using, for example, the λImmunoZap™(H) and λImmunoZap™(L) vectors (Stratagene, La Jolla, California). Briefly, mRNA is isolated from a B cell population and used to generate heavy and light chain immunoglobulin cDNA expression libraries in the λImmunoZap(H) and λImmunoZap(L) vectors. These vectors may be screened individually or coexpressed to form Fab fragments or antibodies (see Huse et al., supra; see also Sastry et al., supra). Positive plaques are then converted into non-lytic plasmids, allowing high-level expression of monoclonal antibody fragments from E. coli.
[0201] In one embodiment, in a hybridoma, the variable regions of the genes expressing the monoclonal antibody of interest are amplified using nucleotide primers. These primers may be synthesized by one skilled in the art or purchased from a commercial source (e.g., V, among others). Ha , V Hb , V Hc , V Hd , C H1 , V L and C L(See Stratagene (La Jolla, California), which sells primers for mouse and human variable regions, including primers for the V region. These primers can be used to amplify the heavy or light chain variable region, which can then be inserted into a vector such as ImmunoZAP™ H or ImmunoZAP™ L (Stratagene), respectively. These vectors can then be introduced into E. coli, yeast, or mammalian-based systems for expression. H and V L Large amounts of single-chain proteins containing fusions of the domains may be produced using these methods (see Bird et al., Science 242:423-426, 1988).
[0202] Once cells producing an antibody according to the present disclosure have been obtained using any of the above immunization and other techniques, the gene for the specific antibody may be cloned by isolating and amplifying DNA or mRNA therefrom by standard procedures as described herein. The antibodies produced therefrom may be sequenced to identify the CDRs, and the DNA encoding the CDRs may be manipulated according to the present disclosure as previously described to generate other antibodies.
[0203] CTLA-4 binding agents of the present disclosure preferably modulate the function of CTLA-4 and / or bind to one or more of the domains described herein and / or cross-block the binding of one of the antibodies described herein and / or are cross-blocked from binding to CTLA-4 by one of the antibodies described herein in the cell-based assays described herein and / or in the in vivo assays described herein. Accordingly, such binding agents can be identified using the assays described herein.
[0204] In certain embodiments, antibodies are generated by first identifying antibodies that bind to one or more of the domains provided herein and / or neutralize in the cell-based and / or in vivo assays described herein and / or cross-block the antibodies described herein and / or are cross-blocked from binding to CTLA-4 by one of the antibodies described herein. The CDR regions from these antibodies are then used to insert into a suitable biocompatible framework to generate a CTLA-4 binding agent. The non-CDR portion of the binding agent may be composed of amino acids or may be a non-protein molecule. The assays described herein allow for characterization of the binding agent. Preferably, the binding agent of the present disclosure is an antibody as defined herein.
[0205] Other antibodies according to the present disclosure may be obtained by conventional immunization and cell fusion procedures described herein and known in the art.
[0206] Molecular evolution of the complementarity determining regions (CDRs) in the center of the antibody binding site has also been used to generate antibodies with increased affinity, e.g., Schier et al., 1996, J. Mol. Biol. 263:551 have isolated antibodies with increased affinity for c-erbB-2 as described in (2002). Therefore, such techniques are useful in preparing antibodies against CTLA-4. Antigen-binding proteins directed against CTLA-4 can be used, for example, in assays to detect the presence of CTLA-4 polypeptide, either in vitro or in vivo. Antigen-binding proteins may also be used in purifying CTLA-4 protein by immunoaffinity chromatography.
[0207] While human, partially human, or humanized antibodies are suitable for many applications, particularly those involving administration of antibodies to human subjects, other types of antigen-binding proteins are suitable for certain applications. Non-human antibodies of the present disclosure can be derived, for example, from any antibody-producing animal, such as a mouse, rat, rabbit, goat, donkey, or non-human primate (e.g., a monkey (e.g., a cynomolgus or rhesus monkey) or an ape (e.g., a chimpanzee)). Antibodies from a particular species can be produced, for example, by immunizing an animal of that species with a desired immunogen (e.g., a CTLA-4 polypeptide) or by using an artificial system to generate antibodies of that species (e.g., a bacterial or phage display-based system to generate antibodies of a particular species), or by converting an antibody from one species to an antibody from another species, for example, by replacing the constant region of the antibody with a constant region from another species or by replacing one or more amino acid residues of the antibody so that the antibody more closely resembles the sequence of the antibody from the other species. In one embodiment, the antibody is a chimeric antibody that contains amino acid sequences derived from antibodies from two or more different species.
[0208] Antigen binding proteins may be prepared and screened for desired properties by any of several conventional techniques. Some techniques involve isolating a nucleic acid encoding the polypeptide chain (or portion thereof) of the antigen binding protein of interest (e.g., an anti-CTLA-4 antibody) and manipulating the nucleic acid by recombinant DNA technology. The nucleic acid may be fused to another nucleic acid of interest or may be altered (e.g., by mutagenesis or other conventional techniques), for example, by adding, deleting, or substituting one or more amino acid residues. Furthermore, antigen binding proteins may be purified from cells that naturally express them (e.g., antibodies can be purified from the hybridoma that produces them) or produced in a recombinant expression system using any technique known in the art. See, for example, Monoclonal Antibodies, Hybridomas: A New Dimension in Biological Analyses, Kennet et al. (eds.), Plenum Press, New York (1980); and Antibodies: A Laboratory Manual, Harlow and Land (eds.), Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, (1988).
[0209] Any expression system known in the art can be used to produce the recombinant polypeptides of the present disclosure. Expression systems have been comprehensively detailed above. Generally, host cells are transformed with a recombinant expression vector containing DNA encoding the desired polypeptide. Among the host cells that may be used are prokaryotes, yeast, or higher eukaryotic cells. Prokaryotes include gram-negative or gram-positive organisms, such as E. coli or Bacilli. Higher eukaryotic cells include insect cells and established cell lines of mammalian origin. Examples of suitable mammalian host cell lines include COS-7 line of monkey kidney cells (ATCC CRL 1651) (Gluzman et al., 1981, Cell 23:175), L cells, 293 cells, C127 cells, 3T3 cells (ATCC CCL 163), Chinese hamster ovary (CHO) cells, HeLa cells, BHK (ATCC CRL 1651), and the like. 10) Cell lines and those described in McMahan et al., 1991, EMBO J. 10: 2821 and the CVI / EBNA cell line, derived from the African green monkey kidney cell line CVI (ATCC CCL 70). Suitable cloning and expression vectors for use with bacterial, fungal, yeast, and mammalian cell hosts are described in Pouwels et al. (Cloning Vectors: A Laboratory Manual, Elsevier, New York, 1985).
[0210] It is recognized that the antibodies of the present disclosure may have at least one amino acid substitution, as long as the antibody retains its binding specificity. Therefore, modifications of antibody structure are encompassed within the scope of the present disclosure. These may include conservative or non-conservative amino acid substitutions that do not destroy the antibody's CTLA-4 binding ability. Conservative amino acid substitutions may include non-naturally occurring amino acid residues, typically incorporated by chemical peptide synthesis rather than synthesis in a biological system. These include peptidomimetics and other reverse or inverted forms of amino acid moieties. Conservative amino acid substitutions may involve the replacement of natural amino acid residues with canonical residues, which have little or no effect on the polarity or charge of the amino acid residue at that position.
[0211] Non-conservative substitutions may also involve exchanging a member of one class of amino acid or amino acid mimetic for a member from another class having different physical properties (e.g., size, polarity, hydrophobicity, charge). Such substituted residues may be introduced into regions of the human antibody that are homologous with the non-human antibody, or into the non-homologous regions of the molecule.
[0212] Furthermore, those skilled in the art can generate test variants containing single amino acid substitutions at each desired amino acid residue.Then, the variants can be screened using activity assays known to those skilled in the art.Such variants can be used to collect information on suitable variants.For example, if it is found that a change to a specific amino acid residue destroys, unnecessarily reduces, or causes unsuitable activity, the variant with such a change can be avoided.In other words, based on the information collected from such routine experiments, those skilled in the art can easily determine the amino acids that should be avoided for further substitution, alone or in combination with other mutations.
[0213] Those skilled in the art can use well-known techniques to determine suitable variants of the polypeptides shown herein.In certain embodiments, those skilled in the art can identify suitable areas of the molecule that can be changed without destroying activity by targeting regions that are not considered important for activity.In certain embodiments, those skilled in the art can identify residues and parts of the molecule that are conserved between similar polypeptides.In certain embodiments, even areas that may be important for biological activity or structure can be subjected to conservative amino acid substitution without destroying biological activity or adversely affecting polypeptide structure.
[0214] Furthermore, one skilled in the art can review structure-function studies to identify residues in similar polypeptides that are important for activity or structure. In light of such comparisons, one can predict the importance of amino acid residues in a protein that correspond to amino acid residues that are important for the activity or structure of a similar protein. One skilled in the art can select chemically similar amino acid substitutions for such predicted important amino acid residues.
[0215] Those skilled in the art can also analyze its structure and amino acid sequence relative to the three-dimensional structure of similar polypeptides.In view of this information, those skilled in the art can predict the alignment of the amino acid residues of antibody with respect to its three-dimensional structure.In certain embodiments, the amino acid residues predicted to be present on the surface of protein may be involved in important interactions with other molecules, so those skilled in the art can select such residues to avoid making sudden changes.
[0216] Several scientific papers contribute to the prediction of secondary structure. Moult J., Curr. Op. in Biotech., 7(4):422-427(1996), Chou et al., Biochem., 13(2):222-245(1974) See Chou et al., Biochem., 113(2):211-222 (1974); Chou et al., Adv. Enzymol. Relat. Areas Mol. Biol., 47:45-148 (1978); Chou et al., Ann. Rev. Biochem., 47:251-276 and Chou et al., Biophys. J., 26:367-384 (1979). Furthermore, computer programs are now available to facilitate secondary structure prediction. One method for predicting secondary structure is based on homology modeling. For example, two polypeptides or proteins with greater than 30% sequence identity or greater than 40% similarity often have similar structural topologies. The recent development of the protein structural database (PDB), which includes the potential number of folds within a polypeptide or protein structure, has led to enhanced predictability of secondary structure. See Holm et al., Nucl. Acid. Res., 27(1):244-247(1999). It has been suggested that a limited number of folds exist for a given polypeptide or protein, and that once a critical number of structures are solved, structure prediction becomes dramatically more accurate (Brenner et al., Curr. Op. Struct. Biol., 7(3):369-376(1997)).
[0217] An additional method for predicting secondary structure is "threading" (Jones, D., Curr. Opin. Struct. Biol., 7(3):377-87(1997); Sippl et al., Structure, 4(1):15-19(1996)), "profile analysis" (Bowie et al., Science, 253:164-170(1991); Gribskov et al., Meth. Enzym., 183:146-159(1990); Gribskov et al., Proc. Nat. Acad. Sci., 84(13):4355-4358(1987)), and "evolutionary linkage" (see Holm, supra (1999) and Brenner, supra (1997)). It can be obtained.
[0218] In certain embodiments, antibody variants include glycosylation variants in which the number and / or type of glycosylation sites are altered compared to the amino acid sequence of the parent polypeptide. In certain embodiments, variants contain more or fewer N-linked glycosylation sites than the native protein. N-linked glycosylation sites are characterized by the sequence Asn-X-Ser or Asn-X-Thr, where the amino acid residue designated as X can be any amino acid residue except proline. Substitution of amino acid residues to create this sequence creates a new potential site for the addition of an N-linked carbohydrate chain. Alternatively, substitution to remove this sequence removes an existing N-linked carbohydrate chain. It also results in a rearrangement of the N-linked carbohydrate chain, eliminating one or more N-linked glycosylation sites (typically those that occur naturally) and creating one or more new N-linked sites. Additional preferred antibody variants include cysteine variants in which one or more cysteine residues are deleted or substituted with another amino acid (e.g., serine) compared to the parent amino acid sequence. Cysteine variants can be useful when antibodies must be refolded into a biologically active conformation, for example, after isolation of insoluble inclusion bodies. Cysteine variants generally have fewer cysteine residues than the native protein, and typically have an even number to minimize interactions resulting from unpaired cysteines.
[0219] Desired amino acid substitutions (whether conservative or non-conservative) can be determined by one of skill in the art at the time such substitutions are desired. In certain embodiments, amino acid substitutions can be used to identify key residues of the antibodies to CTLA-4 described herein, or to increase or decrease the affinity of the antibodies to CTLA-4.
[0220] According to certain embodiments, preferred amino acid substitutions are those that (1) reduce susceptibility to proteolysis, (2) reduce susceptibility to oxidation, (3) alter binding affinity for forming protein complexes, (4) alter binding affinity, and / or (5) confer or modify other physiochemical or functional properties of such polypeptides. According to certain embodiments, single or multiple amino acid substitutions (in certain embodiments, conservative amino acid substitutions) may be made in a naturally occurring sequence (in certain embodiments, in a portion of a polypeptide outside the domain(s) that form intermolecular contacts). In certain embodiments, conservative amino acid substitutions typically may not substantially alter the structural features of the parent sequence (e.g., the amino acid substitution should not tend to break helices present in the parent sequence or disrupt other types of secondary structure that characterize the parent sequence). Examples of art-recognized secondary and tertiary structures of polypeptides are found in Proteins, Structures and Molecular Principles (Creighton, Ed., W.H. Freeman and Company, 2002), each of which is incorporated herein by reference. New York (1984); Introduction to Protein Structure (C. Branden and J. Tooze, eds., Garland Publishing, New York, NY (1991)); and Thornton et al. al. Nature 354:105 (1991).
[0221] In certain embodiments, the antibodies of the present disclosure may be chemically conjugated to polymers, lipids, or other moieties.
[0222] The binding agent may comprise at least one of the CDRs described herein incorporated into a biocompatible framework structure. In one example, the biocompatible framework structure comprises a polypeptide or portion thereof sufficient to form a conformationally stable structural support, or framework, or scaffold, capable of displaying, at localized surface regions, one or more sequences of amino acids that bind to an antigen (e.g., CDRs, variable regions, etc.). Such structures may be naturally occurring polypeptides or polypeptide "folds" (structural motifs) or may have one or more modifications to naturally occurring polypeptides or folds, such as amino acid additions, deletions, or substitutions. These scaffolds may be derived from polypeptides of any species (or two or more species), such as humans, other mammals, other vertebrates, invertebrates, plants, bacteria, or viruses.
[0223] Typically, the biocompatible framework structures are based on protein scaffolds or skeletons other than immunoglobulin domains, such as fibronectin, ankyrin, lipocalin, neocarzinostatin, cytochrome b, CP1 zinc finger, P Those based on ST1, coiled-coil, LACI-D1, Z domain and tendamistat domain can be used (see, for example, Nygren and Uhlen, 1997, Curr. Opin. In Struct. Biol., 7, 463-469).
[0224] Humanized antibodies can be produced using techniques known to those skilled in the art (Zhang, W., et al., Molecular Immunology. 42(12):1445-1451, 2005; Hwang W. et al., Methods. 36(1):35-42, 2005; Dall'Acqua WF, et al., Methods 36(1):43-60, 2005; and Clark, M., Immunology Today. 21(8):397-402, 2000).
[0225] Furthermore, those skilled in the art will recognize that suitable binding agents include portions of these antibodies, such as one or more of CDR1-L1 to 28 having SEQ ID NOS: 1001-1028; CDR2-L1 to 28 having SEQ ID NOS: 2001-2028; CDR3-L1 to 28 having SEQ ID NOS: 3001-3028; CDR1-H1 to 28 having SEQ ID NOS: 4001-4028; CDR2-H1 to 28 having SEQ ID NOS: 5001-5028; and CDR3-H1 to 28 having SEQ ID NOS: 6001-6028, as specifically disclosed herein. At least one of the CDR regions may have at least one amino acid substitution from the sequences provided herein, so long as the antibody retains the binding specificity of the unsubstituted CDR. The non-CDR portion of the antibody may be a non-protein molecule, where the binding agent cross-blocks the binding of the antibodies disclosed herein to CTLA-4 and / or neutralizes CTLA-4. The non-CDR portion of the antibody may be a non-protein molecule that exhibits a similar binding pattern to human CTLA-4 peptides in competitive binding assays and / or neutralizes CTLA-4, such as that exhibited by at least one of antibodies A1-A28. The non-CDR portion of the antibody may be composed of amino acids, where the antibody is a recombinant binding protein or a synthetic peptide, and the recombinant binding protein cross-blocks the binding of the antibodies disclosed herein to CTLA-4 and / or neutralizes CTLA-4. The non-CDR portion of the antibody may be composed of amino acids, where the antibody is a recombinant antibody, and the recombinant antibody exhibits a similar binding pattern to human CTLA-4 peptides in human CTLA-4 peptide epitope competitive binding assays (described herein below), such as that exhibited by at least one of antibodies A1-A28.
[0226] The antibody may comprise one or more of the above CDR1-H, CDR2-H, CDR3-H, CDR1-L, CDR2-L, and CDR3-L, and may be obtained by expression from a host cell containing DNA encoding these sequences. DNA encoding each CDR sequence may be determined based on the amino acid sequence of the CDR and synthesized together with any desired antibody variable region framework and constant region DNA sequences using oligonucleotide synthesis, site-directed mutagenesis, and polymerase chain reaction (PCR) techniques as appropriate. DNA encoding variable region frameworks and constant regions is widely available to those skilled in the art from gene sequence databases such as GenBank®.
[0227] Once synthesized, DNA encoding an antibody of the present disclosure, or a fragment thereof, can be amplified and expressed according to any of a variety of well-known procedures for nucleic acid excision, ligation, transformation, and transfection using any number of known expression vectors. Thus, in certain embodiments, expression of an antibody fragment may be preferred in a prokaryotic host, such as Escherichia coli (see, e.g., Plueckthun et al., 1989 Methods Enzymol. 178:497-515). In certain other embodiments, expression of an antibody or a fragment thereof may be preferred in eukaryotic host cells, including yeast (e.g., Saccharomyces cerevisiae, Schizosaccharomyces pombe, and Pichia pastoris), animal cells (including mammalian cells), or plant cells. Examples of suitable animal cells include, but are not limited to, myeloma cells (such as the murine NSO line), COS cells, CHO cells, or hybridoma cells. Examples of plant cells include tobacco, corn, soybean, and rice cells.
[0228] One or more replicable expression vectors containing DNA encoding the variable and / or constant regions of the antibody can be prepared and used to transform an appropriate cell line, such as a non-producing myeloma cell line, e.g., a murine NSO line, or bacteria, e.g., E. coli, in which antibody production occurs. To obtain efficient transcription and translation, the DNA sequence in each vector should contain appropriate regulatory sequences, particularly a promoter and leader sequence operably linked to the variable domain sequence. Specific methods for producing antibodies in this manner are generally well known and routinely used. For example, basic molecular biology procedures are described in Maniatis et al. al. (Molecular Cloning, A Laboratory Manual, 2nd ed., Cold Spring Harbor Laboratory, New York, 1989; see also Maniatis et al., 3rd ed., Cold Spring Harbor Laboratory, New York, (2001)). DNA sequencing was performed as described by Sanger et al. (PNAS 74:5463, (1977)) and Amersham International plc. Mutagenesis can be performed as described in the sequencing handbook, and site-directed mutagenesis can be performed according to methods known in the art (Kramer et al., Nucleic Acids Acids Res. 12:9441,(1984);Kunkel Proc. Natl. Acad. Sci. USA 82:488-92(1985);Kunkel et al., Methods in Enzymol. 154:367-82(1987);the Anglian Biotechnology Ltd. handbook). In addition, numerous publications provide information on DNA manipulation, expression, and Suitable techniques for producing vectors and for preparing antibodies by transformation and culturing appropriate cells are described (Mountain A and Adair, J.R. in Biotechnology and Genetics, 1999). Engineering Reviews (ed. Tombs, MP, 10, Chapter 1, 1992, Intercept, Andover, UK); "Current Protocols in Molecular Biology", 1999, FM Ausubel (ed.), Wiley Interscience, New York).
[0229] If it is desired to improve the affinity of an antibody according to the present disclosure, containing one or more of the above-mentioned CDRs can be achieved by maintaining the CDRs (Yang et al., J. Mol. Biol., 254, 392-403, 1995), chain shuffling (Marks et al., Bio / Technology, 10, 779-783, 1992), using mutant strains of E. coli (Low et al., J. Mol. Biol., 250, 350-368, 1996), DNA shuffling (Patten et al., Curr. Opin. Biotechnol., 8, 724-733, 1997), phage display (Thompson et al., J. Mol. Biol., 256, 7-88, 1996), and sexual PCR (Crameri, Several affinity maturation protocols have been developed, including the use of ribosomal RNA (Ribosomal RNA) and the use of ribosomal RNA (Ribosomal RNA). All of these methods of affinity maturation are discussed by Vaughan et al. (Nature Biotech., 16, 535-539, 1998).
[0230] It is understood by those skilled in the art that some proteins, such as antibodies, may undergo various post-translational modifications. The type and extent of these modifications often vary depending on the host cell system and culture conditions used to express the protein. Such modifications may include changes in glycosylation, methionine oxidation, diketopiperidine formation, aspartic acid isomerization, and asparagine deamidation. A common modification is the loss of a basic residue (e.g., lysine or arginine) at the carboxy terminus due to the action of carboxypeptidase (as described in Harris, RJ Journal of Chromatography 705:129-134, 1995). Arrays
[0231] Antibodies A1 to A28 comprise heavy and light chain V(J)D polynucleotides (also referred to herein as L1 to L28 and H1 to H28, respectively). Antibodies A1 to A28 comprise the sequences listed in Table 5. For example, antibody A1 comprises a light chain L1 (SEQ ID NO: 1) and a heavy chain H1 (SEQ ID NO: 101). The CDR sequences of the light chains (L1 to L28) and heavy chains (H1 to H28) are also assigned specific SEQ ID NOs. For example, the three CDR sequences (CDR1, CDR2 and CDR3) for L1 are CDR1-L1 (sequence number 1001), CDR2-L1 (sequence number 2001) and CDR3-L1 (sequence number 3001), respectively, and the three CDR sequences (CDR1, CDR2 and CDR3) for H1 are CDR1-H1 (sequence number 4001), CDR2-H1 (sequence number 5001) and CDR3-H1 (sequence number 6001). [Table 5-1] [Table 5-2] [Table 5-3] Pharmaceutical Compositions
[0232] Pharmaceutical compositions containing the proteins and polypeptides of the present disclosure are also provided, such compositions comprising a therapeutically or prophylactically effective amount of the polypeptide or protein in a mixture that includes pharmaceutically acceptable materials and physiologically acceptable formulation materials.
[0233] Pharmaceutical compositions may contain formulation materials to modify, maintain, or preserve, for example, the pH, osmolality, viscosity, clarity, color, isotonicity, odor, sterility, stability, dissolution or release rate, adsorption, or penetration of the composition.
[0234] Suitable formulation materials include, but are not limited to, amino acids (such as glycine, glutamine, asparagine, arginine, or lysine); antimicrobial agents; antioxidants (such as ascorbic acid, sodium sulfite, or sodium bisulfite); buffers (such as borate, bicarbonate, Tris-HCl, citrate, phosphate, other organic acids, etc.); bulking agents (such as mannitol or glycine), chelating agents (such as ethylenediaminetetraacetic acid (EDTA)); complexing agents (such as caffeine, polyvinylpyrrolidone, beta-cyclodextrin, or hydroxypropyl-beta-cyclodextrin); fillers; monosaccharides; disaccharides and other carbohydrates (such as glucose, mannose, or dextrin); proteins (such as serum albumin, gelatin, or immunoglobulins); and colorants. agents; flavoring agents and diluents; emulsifiers; hydrophilic polymers (such as polyvinylpyrrolidone); low molecular weight polypeptides; salt-forming counterions (such as sodium); preservatives (such as benzalkonium chloride, benzoic acid, salicylic acid, thimerosal, phenethyl alcohol, methylparaben, propylparaben, chlorhexidine, sorbic acid, or hydrogen peroxide); solvents (such as glycerin, propylene glycol, or polyethylene glycol); sugar alcohols (such as mannitol or sorbitol); suspending agents; surfactants or wetting agents (such as Pluronic®, PEG, sorbitan esters, polysorbates such as polysorbate 20, polysorbate 80, triton, tromethamine, lecithin, cholesterol, tyloxapal, etc.); stability enhancers The pharmaceutical composition may include an agent (sucrose or sorbitol); an isotonicity enhancing agent (alkali metal halide, preferably sodium chloride or potassium chloride, mannitol, sorbitol); a delivery vehicle; a diluent; an excipient and / or pharmaceutical adjuvant. Neutral buffered saline or saline mixed with conspecific serum albumin are examples of suitable diluents. Preservatives such as benzyl alcohol may also be added in accordance with appropriate industry standards. The composition may also be formulated as a lyophilizate using an appropriate excipient solution (e.g., sucrose) as a diluent. Suitable components are non-toxic to recipients at the dosages and concentrations used. Further examples of components that can be used in pharmaceutical formulations can be found in Remington's Pharmaceutical Sciences, 16 th Ed.(1980)and 20 th Ed. (2000), Mack Publishing Company, Easton, PA.
[0235] Optionally, the composition further comprises one or more physiologically active agents, such as an anti-angiogenic agent, a chemotherapeutic agent (e.g., capecitabine, 5-fluorouracil, or doxorubicin), an analgesic agent, etc. (non-exclusive examples of which are provided herein.) In various specific embodiments, the composition comprises 1, 2, 3, 4, 5, or 6 physiologically active agents in addition to the CTLA-4 binding protein.
[0236] In another embodiment of the present disclosure, the compositions disclosed herein can be formulated in neutral or salt form.Exemplary pharmaceutically acceptable salts include acid addition salts (formed with the free amino groups of protein), which are formed with inorganic acids such as hydrochloric acid or phosphoric acid, or organic acids such as acetic acid, oxalic acid, tartaric acid, mandelic acid, etc. Salts formed with free carboxyl groups can be derived from inorganic bases such as sodium hydroxide, potassium hydroxide, ammonium hydroxide, calcium hydroxide, or iron hydroxide, and organic bases such as isopropylamine, trimethylamine, histidine, procaine, etc. Once formulated, liquid preparations are administered in a manner compatible with the dosage formulation and in a therapeutically effective amount.
[0237] Carriers may further include any and all solvents, dispersion media, vehicles, coatings, diluents, antibacterial and antifungal agents, isotonic and absorption delaying agents, buffers, carrier solutions, suspensions, colloids, and the like. The use of such media and agents for pharmaceutically active substances is well known in the art. Except insofar as any conventional media or agent is incompatible with the active ingredient, its use in therapeutic compositions is contemplated. Supplementary active ingredients may also be incorporated into the composition. The phrase "pharmaceutically acceptable" refers to molecular entities and compositions that do not produce allergic or similar adverse reactions when administered to humans.
[0238] The optimal pharmaceutical composition will be determined by one of skill in the art depending, for example, on the intended route of administration, delivery format, and desired dosage. See, e.g., Remington's Pharmaceutical Sciences Such compositions may be used to determine the physical state, stability, and in vivo stability of the polypeptide. This may affect the amount released in vivo and the amount of clearance in vivo. For example, suitable compositions may be water for injection, physiological saline solution for parenteral administration. 7.10.1. Content of active pharmaceutical ingredient
[0239] In typical embodiments, the active ingredients (i.e., proteins and polypeptides of the present disclosure) are present in the pharmaceutical composition at a concentration of at least 0.01 mg / ml, at least 0.1 mg / ml, at least 0.5 mg / ml, or at least 1 mg / ml. In certain embodiments, the active ingredients are present in the pharmaceutical composition at a concentration of at least 1 mg / ml, 2 mg / ml, 3 mg / ml, 4 mg / ml, 5 mg / ml, 10 mg / ml, 15 mg / ml, 20 mg / ml, or 25 mg / ml. In certain embodiments, the active ingredients are present in the pharmaceutical composition at a concentration of at least 30 mg / ml, 35 mg / ml, 40 mg / ml, 45 mg / ml, or 50 mg / ml.
[0240] In some embodiments, the pharmaceutical composition comprises, in addition to the protein or polypeptide of the present disclosure, one or more additional active ingredients, which may be drugs that target various checkpoint receptors, such as PD-1 inhibitors (e.g., anti-PD-1 antibodies) or TIGIT inhibitors (e.g., anti-TIGIT antibodies). 7.10.2. General Formulation
[0241] The pharmaceutical composition may be in any form suitable for human or veterinary medicine, including a liquid, oil, emulsion, gel, colloid, aerosol or solid.
[0242] The pharmaceutical compositions may be formulated for administration by any route of administration suitable for human or veterinary medicine, including enteral and parenteral routes of administration.
[0243] In various embodiments, the pharmaceutical composition is formulated for administration by inhalation. In certain of these embodiments, the pharmaceutical composition is formulated for administration by a vaporizer. In certain of these embodiments, the pharmaceutical composition is formulated for administration by a nebulizer. In certain of these embodiments, the pharmaceutical composition is formulated for administration by an aerosolizer.
[0244] In various embodiments, the pharmaceutical compositions are formulated for oral, buccal, or sublingual administration.
[0245] In some embodiments, the pharmaceutical composition is formulated for intravenous, intramuscular, or subcutaneous administration.
[0246] In some embodiments, the pharmaceutical composition is formulated for intrathecal or intracerebroventricular administration.
[0247] In some embodiments, the pharmaceutical composition is formulated for topical administration. 7.10.3. Pharmaceutical Compositions Adapted for Injection
[0248] For intravenous, cutaneous or subcutaneous injection, or injection into a diseased site, the active ingredient is in the form of a parenterally acceptable aqueous solution that is pyrogen-free and has suitable pH, isotonicity, and stability. Those skilled in the art can easily prepare suitable solutions using isotonic vehicles such as sodium chloride injection, Ringer's injection, lactated Ringer's injection, etc. Preservatives, stabilizers, buffers, antioxidants, and / or other additives may be included as necessary.
[0249] In various embodiments, the unit dosage form is a vial, an ampoule, a bottle, or a pre-filled syringe. In some embodiments, the unit dosage form contains 0.01 mg, 0.1 mg, 0.5 mg, 1 mg, 2.5 mg, 5 mg, 10 mg, 12.5 mg, 25 mg, 50 mg, 75 mg, or 100 mg of the pharmaceutical composition. In some embodiments, the unit dosage form contains 125 mg, 150 mg, 175 mg, or 200 mg of the pharmaceutical composition. In some embodiments, the unit dosage form contains 250 mg of the pharmaceutical composition.
[0250] In typical embodiments, the pharmaceutical composition in the unit dosage form is in liquid form. In various embodiments, the unit dosage form contains between 0.1 mL and 50 ml of the pharmaceutical composition. In some embodiments, the unit dosage form contains 1 ml, 2.5 ml, 5 ml, 7.5 ml, 10 ml, 25 ml, or 50 ml of the pharmaceutical composition.
[0251] In certain embodiments, the unit dosage form is a vial containing 1 ml of the pharmaceutical composition at a concentration of 0.01 mg / ml, 0.1 mg / ml, 0.5 mg / ml, or 1 mg / ml, hi some embodiments, the unit dosage form is a vial containing 2 ml of the pharmaceutical composition at a concentration of 0.01 mg / ml, 0.1 mg / ml, 0.5 mg / ml, or 1 mg / ml.
[0252] In some embodiments, the pharmaceutical composition in unit dosage form is in a solid form, eg, a lyophilizate suitable for solubilization.
[0253] Embodiments of unit dosage forms suitable for subcutaneous, intradermal, or intramuscular administration include pre-filled syringes, auto-injectors, and autoinject pens, each containing a predetermined amount of a pharmaceutical composition described herein above.
[0254] In various embodiments, the unit dosage form is a pre-filled syringe comprising a syringe and a predetermined amount of the pharmaceutical composition. In certain pre-filled syringe embodiments, the syringe is adapted for subcutaneous administration. In certain embodiments, the syringe is suitable for self-administration. In certain embodiments, the pre-filled syringe is a single-use syringe.
[0255] In various embodiments, the pre-filled syringe contains about 0.1 mL to about 0.5 mL of the pharmaceutical composition. In certain embodiments, the syringe contains about 0.5 mL of the pharmaceutical composition. In specific embodiments, the syringe contains about 1.0 mL of the pharmaceutical composition. In certain embodiments, the syringe contains about 2.0 mL of the pharmaceutical composition.
[0256] In certain embodiments, the unit dosage form is an autoinjector pen. The autoinjector pen includes an autoinjector pen containing a pharmaceutical composition described herein. In some embodiments, the autoinjector pen delivers a predetermined volume of the pharmaceutical composition. In other embodiments, the autoinjector pen is configured to deliver a volume of the pharmaceutical composition by the user.
[0257] In various embodiments, the autoinjector pen contains about 0.1 mL to about 5.0 mL of the pharmaceutical composition. In specific embodiments, the autoinjector pen contains about 0.5 mL of the pharmaceutical composition. In particular embodiments, the autoinjector pen contains about 1.0 mL of the pharmaceutical composition. In other embodiments, the autoinjector pen contains about 5.0 mL of the pharmaceutical composition. 7.11. Unit Dosage Form
[0258] The pharmaceutical compositions may conveniently be presented in unit dosage form.
[0259] The unit dosage form is typically suited to one or more particular routes of administration of the pharmaceutical composition.
[0260] In various embodiments, the unit dosage form is suitable for administration by inhalation. In certain of these embodiments, the unit dosage form is suitable for administration by a vaporizer. In certain of these embodiments, the unit dosage form is suitable for administration by a nebulizer. In certain of these embodiments, the unit dosage form is suitable for administration by an aerosolizer.
[0261] In various embodiments, the unit dosage form is suitable for oral, buccal, or sublingual administration.
[0262] In some embodiments, the unit dosage form is suitable for intravenous, intramuscular, or subcutaneous administration.
[0263] In some embodiments, the unit dosage form is suitable for intrathecal or intraventricular administration.
[0264] In some embodiments, the pharmaceutical composition is formulated for topical administration.
[0265] The amount of active ingredient which can be combined with a carrier material to produce a single dosage form will generally be that amount of the compound which produces a therapeutic effect. 7.12.How to use
[0266] Therapeutic antibodies that specifically bind to intact CTLA-4 can be used.
[0267] In vivo and / or in vitro assays can be used as needed to help identify optimal dosage ranges.The exact dosage used in the formulation will also vary depending on the route of administration and the severity of the condition, and should be determined according to the judgment of the practitioner and the circumstances of each individual patient.Effective doses can also be estimated from dose-response curves derived from in vitro or animal model test systems.
[0268] An oligopeptide or polypeptide is within the scope of the present disclosure if it has an amino acid sequence that is at least 75%, 76%, 77%, 78%, 79%, 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identical to at least one of the CDRs provided herein; and / or to the CDRs of a CTLA-4 binding agent that cross-blocks binding to CTLA-4 by at least one of antibodies A1-A28 and / or is cross-blocked from binding to CTLA-4 by at least one of antibodies A1-A28; and / or to the CDRs of a CTLA-4 binding agent that can block binding of CTLA-4 to its ligand.
[0269] CTLA-4 binding agent polypeptides and antibodies are within the scope of the present disclosure if they have an amino acid sequence that is at least 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identical to the variable region of at least one of antibodies A1-A28 and cross-blocks the binding of at least one of antibodies A1-A28 to CTLA-4 and / or is cross-blocked from binding to CTLA-4 by at least one of antibodies A1-A28; and / or is capable of blocking the inhibitory effect of CTLA-4 with respect to its ligand.
[0270] Antibodies according to the present disclosure are -7 M is less than or equal to 1 x 10 -7 M is less than or equal to 0.5 x 10 -7 M is less than or equal to 1 x 10 -8 M is less than or equal to 1 x 10 -9 M is less than or equal to 1 x 10 -10 M is less than or equal to 1 x 10 -11 Less than or equal to M or 1 x 10 -12 M may have a binding affinity for human CTLA-4 that is less than or equal to M.
[0271] The affinity of an antibody or binding partner, and the degree to which an antibody inhibits binding, can be determined using conventional techniques, e.g., as described by Scatchard et al. (Ann. NY Acad. Sci. 51:660-672 (1949)). The affinity of a binding molecule can be determined by those skilled in the art using a method known in the art, or by surface plasmon resonance (SPR; BIAcore, Biosensor, Piscataway, NJ). In surface plasmon resonance, a target molecule is immobilized on a solid phase and exposed to a ligand in a mobile phase flowing along a flow cell. When the ligand binds to the immobilized target, the local refractive index changes, resulting in a change in the SPR angle, and the change in the SPR angle can be monitored in real time by detecting changes in the intensity of the reflected light. The rate of change of the SPR signal can be analyzed to obtain the apparent rate constants for the association and dissociation phases of the binding reaction. The ratio of these values gives the apparent equilibrium constant (affinity) (see, for example, Wolff et al., Cancer Res. 53:2560-65 (1993)).
[0272] Antibodies according to the present disclosure may belong to any immunoglobulin class, e.g., IgG, IgE, IgM, IgD, or IgA. Antibodies according to the present disclosure may be obtained or derived from animals, such as poultry (e.g., chicken) and mammals (including, but not limited to, mice, rats, hamsters, rabbits, or other rodents, cows, horses, sheep, goats, camels, humans, or other primates). The antibody may be an internalizing antibody. Production of antibodies is generally disclosed in U.S. Patent Application Publication No. 2004 / 0146888A1.
[0273] In the above methods for generating antibodies according to the present disclosure, including engineering specific A1-A28 CDRs into new frameworks and / or constant regions, suitable assays (i.e., assays to determine binding affinity to CTLA-4; cross-blocking assays; Biacore-based competitive binding assays; in vivo assays) are available for selecting the desired antibodies. 7.12.1. METHODS OF TREATING DISEASES RESPONSIVE TO CTLA-4 INHIBITORS OR ACTIVATERS
[0274] In another embodiment, a method is provided for treating a subject having a disease that responds to a CTLA-4 inhibitor or activator. The disease may be cancer, an autoimmune disease, or a viral or bacterial infection.
[0275] The terms "treatment," "treating," and the like are generally used herein to mean obtaining a desired pharmacological and / or physiological effect. This effect may be prophylactic, in that a disease, condition, or its symptoms are completely or partially prevented, and / or therapeutic, in that a partial or complete cure is achieved for the disease or condition and / or adverse effects, such as symptoms, caused by the disease or condition. "Treatment," as used herein, encompasses any treatment of a mammalian, particularly a human, disease or condition, including: (a) preventing the disease or condition from occurring in a subject who may be susceptible to the disease or condition but has not yet been diagnosed as having the disease or condition; (b) inhibiting the disease or condition (e.g., arresting its onset); or (c) alleviating the disease or condition (e.g., causing the disease or condition to regress, resulting in the improvement of one or more symptoms). Improvement of any condition can be readily assessed according to standard methods and techniques known in the art. For the disease, the population of subjects treated by the method includes subjects suffering from the undesired condition or disease and subjects at risk of developing the condition or disease.
[0276] By the term "therapeutically effective dose" or "effective amount" is meant a dose or amount that produces a desired effect in those to whom it is administered. The exact dose or amount will depend on the purpose of the treatment, and will be ascertainable by one skilled in the art using known techniques (see, e.g., Lloyd (1999) The Art, Science and Technology of Pharmaceutical Compounding).
[0277] The term "sufficient amount" means an amount sufficient to produce a desired effect.
[0278] The term "therapeutically effective amount" is an amount that is effective in ameliorating symptoms of a disease. A therapeutically effective amount may also be a "prophylactically effective amount" since prevention can be considered treatment.
[0279] The term "ameliorate" refers to any therapeutically beneficial outcome in the treatment of a disease state, for example a neurodegenerative disease state, including prevention, lessening of the severity or progression, amelioration, or cure thereof.
[0280] The actual amount administered, as well as the rate and time course of administration, will depend on the nature and severity of the protein aggregation disorder being treated. The prescription of treatment, e.g., the determination of dosage, etc., is within the responsibility of general practitioners and other doctors, and typically takes into account the disorder being treated, the condition of the individual patient, the delivery site, the method of administration, and other factors known to practitioners. Examples of the above-mentioned techniques and protocols can be found in Remington's Pharmaceutical Sciences, 16th edition, Osol, A. (ed), 1980.
[0281] In some embodiments, the pharmaceutical composition is administered by inhalation, orally, by buccal administration, by sublingual administration, by injection, or by topical administration.
[0282] In some embodiments, the pharmaceutical composition is administered in an amount sufficient to modulate neuronal survival or dopamine release. In some embodiments, the primary cannabinoid is administered in an amount of less than 1 g, less than 500 mg, less than 100 mg, or less than 10 mg per dose.
[0283] In some embodiments, the pharmaceutical composition is administered once daily, 2-4 times daily, 2-4 times weekly, once weekly, or once every two weeks.
[0284] The composition may be administered alone or in combination with other treatments, either simultaneously or sequentially, depending on the condition being treated. For example, the pharmaceutical composition may be administered in combination with one or more drugs that target various checkpoint receptors, such as a PD-1 inhibitor (e.g., an anti-PD-1 antibody) or a TIGIT inhibitor (e.g., an anti-TIGIT antibody). [Example]
[0285] 8. Working Example The following are examples of specific embodiments for carrying out the present disclosure. The examples are provided for illustrative purposes only and are not intended to limit the scope of the present disclosure in any way. Efforts have been made to ensure accuracy with respect to the numbers used (e.g., amounts, temperatures, etc.), but some experimental error and variation should, of course, be allowed for.
[0286] The practice of the present disclosure will employ, unless otherwise indicated, conventional methods of protein chemistry, biochemistry, recombinant DNA techniques and pharmacology, within the skill of the art. Such techniques are explained fully in the references, e.g., T.E. Creighton, Proteins: Structures and Molecular Properties (W.H. Freeman and Company, 1993); A.L. Lehninger, Biochemistry (Worth Publishers, Inc., current edition); addition);Sambrook, et al., Molecular Cloning: A Laboratory Manual(2nd Edition, 1989);Methods In Enzymology(S. Colowick and N. Kaplan eds., Academic Press, Inc.);Remington's Pharmaceutical Sciences, 18th Edition(Easton, Pennsylvania: Mack Publishing Company, 1990);Carey and Sundberg Advanced Organic Chemistry 3 rd Ed. (Plenum Press) Vols A and B (1992). See also Adler et al., A. natively paired antibody library yields drug leads with higher sensitivity and specificity than a randomly paired antibody library, MAbs(2018), and Adler et al., Rare, high-affinity mouse anti-CTLA-4 antibodies The method for generating and selecting antibodies described in MAbs (2017), which function in checkpoint blockade, discovered using microfluidics and molecular genomics, can be used. Example 1 8.1. Example 1: Generation of Antigen-Binding Proteins
[0287] Mouse immunization and sample preparation:
[0288] First, transgenic mice carrying inserted human immunoglobulin genes were immunized with a soluble CTLA-4 immunogen of SEQ ID NO: 7001 (i.e., His-tagged CTLA-4 protein (R&D Systems)) using TiterMax as an adjuvant. 1 μg of immunogen was injected into each heel joint every 3 days for 15 days, and 3 μg of immunogen was administered intraperitoneally. Starting with a 1:200 dilution, serum from each animal was titrated by enzyme-linked immunosorbent assay (ELISA) in a 1:2 dilution series. Each animal received a final intravenous boost of 2.5 μg per heel joint without adjuvant before harvest. After sacrifice, lymph nodes (popliteal, inguinal, axillary, and mesenteric) were surgically removed. Single-cell suspensions for each animal were prepared by manual disruption and subsequent passage through a 70 μm filter. Next, B cells were isolated from each sample using the EasySep™ Mouse Pan-B Cell Isolation Kit (Stemcell Technologies) negative selection kit. Lymph node B cell populations were quantified by counting on a C-Chip hemocytometer (Incyto), and viability was assessed using trypan blue. Cells were then diluted to 5,000–6,000 cells per mL in phosphate-buffered saline (PBS) containing 12% OptiPrep™ Density Gradient Medium (Sigma). This cell mixture was used for microfluidic encapsulation. Approximately 1 million B cells from each of six animals were run through the emulsion droplet microfluidics platform.
[0289] Generation of paired heavy and light chain libraries:
[0290] Using an emulsion droplet microfluidics platform or vortex emulsion, we generated DNA libraries encoding single-cell RNA-derived scFvs with intact, native heavy-light Ig pairings. The DNA library generation methodology was divided into 1) poly(A)+ mRNA capture, 2) multiplexed overlap extension reverse transcriptase polymerase chain reaction (OE-RT-PCR), and 3) nested PCR to remove artifacts and add adapters for deep sequencing or yeast display libraries. The scFv libraries were generated from approximately 1 million B cells from each animal that achieved positive ELISA titers.
[0291] For poly(A)+ mRNA capture, we used a custom-designed parallel-flow emulsion droplet microfluidic chip fabricated from glass (Dolomite). The microfluidic chip had two input channels for fluorocarbon oil (Dolomite), one input channel for the cell suspension mix described above, and one input channel for 1.25 mg / ml oligo-dT beads (NEB) in cell lysis buffer (20 mM Tris pH 7.5, 0.5 M NaCl, 1 mM ethylenediaminetetraacetic acid (EDTA), 0.5% Tween-20, and 20 mM dithiothreitol). The input channel was etched to 50 μm and coated with hydrophobic Pico-Glide (Dolomite) for most of the chip's length, narrowing to 55 μm at the droplet junction. Three Mitos P-Pump pressure pumps (Dolomite) were used to pump liquid through the chip. Droplet size varies with pressure, but typically droplets with a diameter of approximately 45 mm are most stable. The emulsion was collected in a chilled 2 ml microcentrifuge tube and incubated at 40 °C for 15 minutes for mRNA capture. Beads were extracted from the droplets using a Pico-Break (Dolomite). In some embodiments, a vortex was used to create similar single-cell distribution emulsions.
[0292] For multiplex OE-RT-PCR, a glass Telos droplet emulsion microfluidic chip was used (Dolomite). The mRNA-bound beads were resuspended in OE-RT-PCR mix and, together with a mineral oil-based surfactant mix (commercially available from GigaGen), injected into the microfluidic chip at a pressure that generated 27 μm droplets. The OE-RT-PCR mix contained 2× one-step RT-PCR buffer, 2.0 mM MgSO, SuperScript III reverse transcriptase, and Platinum HCl. Taq (Thermo Fisher Scientific) was used with a mixture of primers targeting the IgK C region, IgG C region, and all V regions (Figure 2). The overlapping region was a DNA sequence encoding a Gly-Ser rich scFv linker sequence. Droplet breaking solution (Gig DNA fragments were recovered from the droplets using a QIAquick PCR Purification Kit (Qiagen) and then purified using a QIAquick PCR Purification Kit (Qiagen). In some embodiments, similar OE-RT-PCR emulsions were made using a vortex.
[0293] For nested PCR (Figure 2), the purified OE-RT-PCR products were first run on a 1.7% agarose gel at 150 V for 80 minutes. The 1,200-1,500 base pair (bp) band corresponding to the ligated product was excised and purified using a NucleoSpin Gel and PCR Clean-up Kit (Macherey-Nagel). PCR was then performed, and adapters were added for Illumina sequencing or yeast display. For sequencing, seven-nucleotide randomers were added to increase the accuracy of base calls in the subsequent next-generation sequencing step. Nested PCR was performed using 2x NEBNext High-Fidelity Amplification Mix (NEB) containing either Illumina adapter-containing primers or primers for cloning into yeast expression vectors. The nested PCR products were run on a 1.2% agarose gel at 150 V for 50 minutes. The 800–1100 bp band was excised and purified using a NucleoSpin Gel and PCR Clean-up Kit (Macherey Nagel).
[0294] In some embodiments, the scFv library is not naturally assembling, but rather is randomly assembling, for example, by amplifying scFvs directly from RNA isolated from B cells. Example 2 8.2. Example 2: Isolation of CTLA-4 binders by yeast display
[0295] Library screening:
[0296] Human IgG1-Fc (Thermo Fisher Scientific) and CTLA-4 (R&D Systems) proteins were biotinylated using the EZ-Link Micro Sulfo-NHS-LC-Biotinylation Kit (Thermo Fisher Scientific). The biotinylation reagent was resuspended to 9 mM and added to the protein at a 50-fold molar excess. The reaction was incubated on ice for 2 hours, and then the biotinylation reagent was removed using a Zeba desalting column (Thermo Fisher Scientific). The final protein concentration was calculated using a Bradford assay.
[0297] Next, the six DNA libraries were expressed as surface scFvs in yeast. A yeast surface display vector (pYD) containing the GAL1 / 10 promoter, Aga2 cell wall tether, and a C-terminal c-Myc tag was constructed. The GAL1 / 10 promoter drives scFv protein expression in galactose-containing medium. The Aga2 cell wall tether was required to shuttle the scFv to the yeast cell surface and anchor the scFv in the extracellular space. The c-Myc tag was used to stain yeast cells expressing in-frame scFv proteins during flow sorting. Saccharomyces cerevisiae cells (ATCC) were electroporated (Bio-Rad Gene Pulser II; 0.54 kV, 25 uF, resistance set to infinity) with gel-purified nested PCR products to linearize the pYD vector for in vivo homologous recombination. Transformants were expanded and induced with galactose to generate the yeast scFv display library.
[0298] Two million yeast cells from the expanded scFv library were stained with anti-c-Myc (Thermo Fisher Scientific A21281) and AF488-conjugated secondary antibody (Thermo Fisher Scientific A11039). To select for scFv-expressing cells that bind to CTLA-4, biotinylated CTLA-4 antigen was added to the yeast culture (7 nM final) during the primary antibody incubation and then stained with PE-streptavidin (Thermo Fisher Scientific). Yeast cells were flow-sorted on a BD Influx (Stanford Shared FACS Facility) as double-positive cells (AF488C / PEC), and recovered clones were then plated on SD-CAA plates containing kanamycin, streptomycin, and penicillin (Teknova) for expansion. The expanded first-round FACS clones were then subjected to a second round of FACS using the same antigen at the same molarity (7 nM final). Plasmid minipreps (Zymo Research) were prepared from yeast recovered from the final FACS sort. Tailed-end PCR was used to add Illumina adapters to the plasmid library for deep sequencing.
[0299] In a typical FACS dot plot, the top right quadrant contains yeast that stain for both antigen binding and scFv expression (identified by a C-terminal c-Myc tag). The bottom left quadrant contains yeast that do not stain for antigen or scFv expression. The bottom right quadrant contains yeast that express scFv but do not bind antigen. The frequency of binders in each repertoire was estimated by dividing the number of yeast that double-stained for antigen and scFv expression by the number of yeast that expressed scFv. When sorted at a final antigen concentration of 7 nM, libraries generated from immunized mice yielded only a low percentage of scFv binders (ranging from 0.08% to 1.28%). There was no clear correlation between serum titer and frequency of binders in the repertoire. After expansion of these sorted cells, a second FACS run at a final antigen concentration of 7 nM was performed to increase the specificity of the screening. The frequency of binders in the second FACS round was usually substantially higher than in the first FACS round, ranging from 8.39% to 84.4%. Lower frequency binders in the first sort generally resulted in lower frequency binders in the second sort. This is likely due to lower gating specificity for samples with fewer true binders in the original repertoire.
[0300] Deep repertoire sequencing:
[0301] CTLA-4-binding clones were collected as a library ("library of CTLA-4-binding clones") and subjected to deep repertoire sequencing. Deep repertoire sequencing determined the sequences of all paired variable (V(D)J) regions of both the heavy and light chain sequences. The library of CTLA-4-binding clones was deposited on November 20, 2018, under ATCC deposit number 197361 (American Type Culture Collection (ATCC), 10801 University Boulevard, Manassas, VA 20110 USA) under Budapest Treaty ATCC accession number PTA-125512. Each clone in the library contains an scFv containing paired variable (V(D)J) regions of both the heavy and light chain sequences originating from a single cell. Deep repertoire sequencing determines the sequences of all paired variable (V(D)J) regions of both the heavy and light chain sequences. Partial heavy and light chain sequences obtained from sequencing of yeast scFv libraries are provided in SEQ ID NOs: 1-28 and 101-128. Additional sequences obtained from sequencing of yeast scFv libraries are provided in SEQ ID NOs: 8000-8991. Specifically, the light chain variable (V(D)J) regions of these sequences are determined. L ) sequences include SEQ ID NOs: 8000 to 8495. H ) The sequence includes SEQ ID NOs: 8496-8991.
[0302] The deep antibody sequencing library was quantified using the quantitative PCR Illumina Library Quantification Kit (KAPA) and diluted to 17.5 pM. The library was sequenced on a MiSeq (Illumina) using 500 cycles of MiSeq Reagent Kit v2 according to the manufacturer's instructions. To maintain the linkage between the heavy and light chains and obtain high-quality sequence reads, sequencing was performed in two separate runs. In the first run ("linked run"), the scFv library was directly sequenced, obtaining 340 cycles of forward reads for the light chain V gene and CDR3, and 162 cycles of reverse reads covering the heavy chain CDR3 and a portion of the heavy chain V gene. In the second run ("unlinked run"), the scFv library was first used as a template for PCR to amplify the heavy and light chain V genes separately. Then, 340 cycles of forward reads and 162 cycles of reverse reads were obtained separately for the heavy and light chain Ig. This results in forward and reverse reads that overlap in parts of the CDR3 and V genes, increasing the confidence in nucleotide calls.
[0303] To remove base calling errors, the expected number of errors (E) for a read was calculated from its Phred score. By default, reads with E > 1 were discarded, leaving only those with the most likely zero base calling errors. As an additional quality filter, singleton nucleotide reads were discarded, since sequences found twice or more times are likely correct. Finally, high-quality, concatenated antibody sequences were generated from the concatenated and unconcatenated runs by merging the filtered sequences. Briefly, a series of scripts was written in Python that first merged forward and reverse reads from the unconcatenated runs. All pairs of forward and reverse sequences that contained mismatches were discarded. Next, the nucleotide sequences from the concatenated runs were used to search the merged sequences from the unconcatenated runs. The final output from the scripts is a set of full-length, high-quality variable (V(D)J) sequences with natural heavy and light chain Ig pairings.
[0304] To identify reading frames and FR / CDR junctions, a database of highly curated immunoglobulin sequences was first processed to generate position-specific sequence matrices (PSSMs) for each FR / CDR junction. These PSSMs were used to identify FR / CDR junctions for each of the merged nucleotide sequences generated using the above process. This identified the protein reading frame for each nucleotide sequence. CDR sequences with low discrimination scores relative to the PSSM are indicated by an exclamation point. Sequences were then translated using a Python script. Reads were required to have a reasonable predicted CDR3 sequence; for example, reads with frameshifts between the V and J segments were discarded. Next, UBLAST was performed using the scFv nucleotide sequence as the query and the V and J gene sequences from the IMGT database as the reference sequence. The UBLAST alignment with the lowest E-value was used to assign the V and J gene family and calculate the %ID relative to the germline.
[0305] Each animal yielded 38-50 unique scFv sequences present at a frequency of 0.1% or higher after the second round of FACS selection, including a total of 28 unique scFv candidate binders (SEQ ID NOS: 1-28 for light chains; SEQ ID NOS: 101-128 for heavy chains). A light chain having the sequence of SEQ ID NOS: [n] and a heavy chain having the sequence of SEQ ID NOS: [100+n] are cognate pairs from a single cell and form a single scFv. For example, a light chain of SEQ ID NOS: 1 and a heavy chain of SEQ ID NOS: 101 are cognate pairs, a light chain of SEQ ID NOS: 28 and a heavy chain of SEQ ID NOS: 128 are cognate pairs, etc.
[0306] This method enriched for scFvs that bind to CTLA-4 by two rounds of FACS. Furthermore, many scFvs were not detected in the sequencing data from the initial population of B cells from immunized mice, and most of the scFvs present in the pre-sort mouse repertoire were eliminated after FACS. Thus, this study suggests that most of the antibodies present in the repertoire of immunized mice are not strong binders to the immunogen, and that this method can enrich for rare nM affinity binders from the initial population of B cells from immunized mice. Example 3 8.3. Example 3: Biological Characteristics of Antigen-Binding Proteins
[0307] scFv sequences that were present at low frequency in the pre-sort library and at high frequency in the post-sort library were then synthesized as full-length mAbs in Chinese hamster ovary (CHO) cells. These mAbs contained the two to three most abundant sequences in two FACS runs for each animal.
[0308] CTLA-4 target binding profile
[0309] The binding specificity and affinity of each full-length antibody for CTLA-4 were determined using biolayer interferometry (BLI) and / or surface plasmon resonance (SPR). Anti-cyno CTLA-4 and anti-mouse CTLA-4 affinity was examined using ForteBio (BLI). Anti-human CTLA-4 affinity was measured using Carterra (SPR).
[0310] For BLI, antibodies were loaded onto an Anti-Human IgG Fc (AHC) biosensor using the Octet Red 96 system (ForteBio). The loaded biosensor was immersed in six 1:3 dilutions of antigen starting at 300 nM. Kinetic analysis was performed using a 1:1 binding model and global fitting.
[0311] For SPR, we amine-coupled a medium-density (>1,000 response units) anti-human IgG-Fc reagent (Southern Biotech 2047-01) to a Xantec CMD-50M chip (50 nm carboxymethyl dextran medium-density functional group) activated with 133 mM EDC (Sigma) and 33.3 mM S-NHS (ThermoFisher) in 100 mM MES (pH 5.5). Goat anti-human IgG Fc (Southern Biotech 2047-01) was then coupled at 25 mg / mL in 10 mM sodium acetate (pH 4.5) (Carterra Inc.) for 10 minutes. The surface was then passivated with 1 M ethanolamine (pH 8.5) (Carterra Inc.). The running buffer used for lawn immobilization was HBS-EPC (10 mM HEPES, 150 mM NaCl, 3 mM EDTA, 0.05% Tween 20, pH 7.4; Teknova).
[0312] The sensor chip was then transferred to a continuous flow microspotter (CFM; Carterra Inc.) for array capture. The mAb supernatant was diluted 50-fold in HBS-EPC containing 1 mg / mL BSA (final concentration: 3–10 mg / mL). The sample was captured twice, with 15 and 4 min capture steps in the first and second prints, respectively, using a flow rate of 65 mL / min to create multiple densities. The running buffer in the CFM was also HBS-EPC.
[0313] The sensor chip was then loaded onto an SPR reader (MX-96 system; Ibis Technologies) for kinetic analysis. CTLA-4 was injected at five increasing concentrations in a four-fold dilution series: 1.95, 7.8, 31.25, 125, and 500 nM in running buffer (HBS-EPC containing 1.0 mg / mL BSA). CTLA-4 injections were performed for 5 min in a non-regenerative kinetic series. The series was run at 8 mL / s for 15 min. An injection of 75 mg / mL goat anti-human IgG Fc capture antibody was injected at the end of the series to verify the capture level of each mAb. Binding data were double-referenced by subtracting the interspot surface and blank injections and analyzed for k (association rate), k (dissociation rate), and K (affinity) using Kinetic Interaction Tool software (Carterra Inc.).
[0314] For cell surface binding studies, stably expressing CTLA-4, Flp-In CHO (Thermo Fisher Scientific) cells, were generated and mixed at a 50:50 ratio. One million cells were stained with 1 μg of the disclosed anti-CTLA-4 recombinant antibody in 200 μl of MACS buffer (DPBS containing 0.5% bovine serum albumin and 2 mM EDTA) for 30 minutes at 4°C. The cells were then co-stained with an irrelevant anti-human target APC and anti-human IgG Fc-PE [M1310G05] (BioLegend 41070) antibody for 30 minutes at 4°C. Anti-human CTLA-4-FITC antibody was used as a control for these mixing experiments, and cell viability was assessed with DAPI. Flow cytometry analysis was performed on a BD Influx at the Stanford Shared FACS Facility, and data were analyzed using FlowJo.
[0315] The present inventors have identified antibodies that specifically bind to CTLA-4. D The affinities for human CTLA-4 are given in Table 6. The % inhibition in the Promega assay was calculated for the most potent inhibitor, antibody A5. The affinity, on-rate, off-rate, and KD of each antibody for human CTLA-4 are shown in Table 7. [Table 6-1] [Table 6-2] [Table 7]
[0316] CTLA-4 Ligand Blocking Assay:
[0317] To analyze the ability of antibodies to block CTLA-4 / ligand interactions, a CTLA-4 Blockade Bioassay (Promega) was used according to the manufacturer's instructions. On the day before the assay, APC / Raji cells expressing the CTLA-4 ligands CD80 and CD86 were thawed in 90% Ham's F-12 / 10% fetal bovine serum (FBS) and plated into the inner 60 wells of two 96-well plates. The cells were incubated overnight at 37°C and 5% CO2. On the day of the assay, antibodies were diluted in 99% RPMI / 1% FBS. The antibody dilutions were added to wells containing aAPC / Raji cells expressing CTLA-4 ligands, followed by the addition of CTLA-4 effector cells (thawed in 99% RPMI / 1% FBS). The cell / antibody mixture was incubated at 37°C, 5% CO2 for 6 hours, after which Bio-Glo reagent was added and luminescence was read using a Spectramax i3x plate reader (Molecular Devices). Fold induction was plotted by calculating the ratio of [signal with antibody] / [signal with no antibody], and this plot was used to calculate the EC50 using SoftMax Pro (Molecular Devices). In-house produced ipilimumab was used as a positive control, and antibody binding to an irrelevant antigen was used as a negative control.
[0318] Binding of CTLA-4 to its ligand results in inhibition of T cell signaling. Therefore, antibodies that bind to CTLA-4 and antagonize the CTLA-4 / ligand interaction remove this inhibition, allowing T cell activation. CTLA-4 / ligand checkpoint blockade was tested in an in vitro cellular nuclear factor of activated T cells (NFAT) luciferase reporter assay. In this assay, antibodies whose anti-CTLA-4 epitope resides within the ligand-binding domain antagonize the CTLA-4 / ligand interaction, resulting in an increase in the NFAT-luciferase reporter. Full-length mAb candidates capable of binding to CTLA-4 expressed in CHO cells were assayed. Measurements were performed across several concentrations to obtain EC50 values for each mAb. Several full-length mAbs were found to be functional in checkpoint blockade in a dose-dependent manner, as summarized in Table 6.
[0319] The ability of CTLA4 antibodies (shown in Table 8) to prevent CD80 or CD86 from binding to plate-bound CTLA4 was assessed using ELISA. The EC50 and percent inhibition of each interaction are shown in Table 8. Plates were coated with rhCTLA4-Fc and then blocked with 1x PBST containing 5% w / v nonfat dry milk. After blocking, a dilution series of the indicated antibody was added to the plate. To determine the amount of CD80 or CD86 still capable of binding to plate-bound CTLA4, the plate was washed, followed by the addition of rhCD80-His or rhCD86-His, respectively. Unbound CD80-His / CD86-His was washed away, and mouse anti-His-HRP was added. TMB was used to determine the amount of CD80-His / CD86-His bound to plate-bound CTLA4 in the presence of each antibody.
[0320] In some embodiments of the present disclosure, anti-CTLA-4 antibodies function pharmacologically through antibody-dependent cell-mediated cytotoxicity (ADCC). In some embodiments of the present disclosure, immune-related toxicity associated with anti-CTLA-4 antibody therapy is abrogated with antibodies that function in ADCC but not in checkpoint blockade. [Table 8]
[0321] Epitope binning:
[0322] Epitope binning was performed using high-throughput array SPR in a modified classical sandwich approach. The sensor chip was functionalized using methods similar to those used in the Carterra CFM and SPR affinity studies, except that a CMD-200M chip type (200 nm carboxymethyl dextran, Xantec) was used (200 nm carboxymethyl dextran, Xantec) to couple mAbs at 50 mg / mL to create a higher binding capacity surface (approximately 3,000 reactive units immobilized). The mAb supernatant was diluted 1:1 or 1:10 in running buffer, depending on the mAb concentration in the supernatant.
[0323] The sensor chip was placed in an MX-96 instrument, and the captured mAb ("ligand") was crosslinked to the surface using the bivalent, amine-reactive linker, bis(sulfosuccinimidyl) suberate (BS3, ThermoFisher), which was injected at 0.87 mM in water for 10 min. Excess activated BS3 was neutralized with 1 M ethanolamine (pH 8.5). During each binning cycle, a 7-min injection of 250 mg / mL human IgG (Jackson ImmunoResearch 009-000-003) was used to block residual capacity on either the reference surface or the target spots.
[0324] Next, 250 nM of CTLA-4 protein was injected over the sensor chip, followed by either diluted mAb supernatant ("analyte") or a buffer blank as a negative control. Thus, the analyte mAb would only bind to the antigen if it did not compete with the ligand mAb. At the end of each cycle, a 1-minute regeneration injection was performed using 4 parts Pierce IgG Elution Buffer (ThermoFisher #21004), 1 part 5 M NaCl (0.83 M final), and 1.25 parts 0.85% H3PO4 (0.17% final).
[0325] Epitope bins were then determined using a network community plot algorithm in the SPR epitope data analysis software package (Carterra Inc.). Note that the clustering algorithm groups mAbs for which only analyte data is available separately from mAbs for which both ligand and analyte data are available. This phenomenon is an artifact of the incomplete competition matrix. mAbs with both ligand and analyte data have more mAb-mAb measurements, leading to stronger mAb-mAb connections and tighter relationships in the community plot.
[0326] Epitope binning showed that all mAbs were in a bin distinct from ipilimumab (Figure 3). Example 4 8.4. Example 4: Effect of CTLA-4 ABP on Tumor Growth
[0327] MC38 tumor cells were subcutaneously implanted into the right flank of transgenic mice expressing human CTLA-4 (hCTLA-4 KI mice). On days 8, 11, and 14 post-implantation, hCTLA-4 KI mice were treated with 1 mg / kg of the indicated CTLA-4 antibodies. Specifically, mice were treated with control antibody (n=8), ipilimumab (n=8), CTLA4.A2 antibody (n=8), CTLA4.A14 antibody (n=9), CTLA4.A14.2a antibody (n=8), CTLA4.A7 antibody (n=9), CTLA4.A7 antibody (n=9), and CTLA4.A12 antibody (n=8). The CTLA4.A14.2a antibody is an A14 antibody cloned into a murine IgG2a background, which enhances antibody-dependent cellular cytotoxicity (ADCC) activity. Tumor volumes were measured and tumor growth inhibition was calculated using the following formula: Average inhibition % = (Average (C) - Average (T) / Average (C) × 100% T - the value of the group of the present invention C - control value
[0328] For tumor development, MC38 tumor cells (1 × 10) were cultured in 0.1 ml of PBS. 6 Tumors were implanted subcutaneously in the right flank region using a 24-well platelet counting machine. Cells in exponential growth phase were harvested and quantified using a cell counter prior to tumor implantation. Tumor volume was measured twice weekly in two dimensions using calipers, and volume was calculated in mm using the following formula: 3 The tumor volume is expressed as: V = (L x W x W) / 2, where V is the tumor volume, L is the tumor length (the longest tumor dimension), and W is the tumor width (the longest tumor dimension perpendicular to L). Dosing and tumor and body weight measurements were performed in a laminar The experiments were performed in a Flow Cabinet. Body weight and tumor volume were measured by using StudyDirector™ software (version 3.1.399.19). Animals were administered the indicated protein intraperitoneally (ip) in a sterile saline solution containing 0.1 mg / ml of the indicated protein. Each mouse received 10 microliters of the indicated solution per gram of body weight (resulting in a dose of 1 mg / kg). Animals were dosed on days 0, 3, and 6 after randomization.
[0329] Table 9 shows the percentage of mice whose tumors had a complete response (CR) to treatment. 3 is considered as CR. [Table 9]
[0330] Table 10 shows the percentage of tumor-bearing mice that had a CR but subsequently relapsed by day 56. The CTLA4.A14.2a-treated group that previously showed a CR had only 0% relapse by day 56, demonstrating that ADCC can prolong anti-tumor immunity. [Table 10]
[0331] Table 11 shows the mean inhibition of tumor volume over time when hCTLA-4 KI mice implanted with MC38 tumor cells were treated with 1 mg / kg of control or 1 mg / kg of the indicated CTLA-4 antibody. [Table 11] Example 5 Example 5: Effect of CTLA4 ABP on systemic anti-tumor immunity
[0332] MC38 tumor-bearing hCTLA4 KI mice were treated with the indicated anti-CTLA4 on days 8, 11, and 14 after tumor cell implantation, as described above. Mice whose tumors displayed a CR were re-challenged by implantation of MC38 cells into the opposite flank. Table 12 shows the tumor volumes (mm) of individual mice for either the original or re-challenge tumors on the final day of the study. 3) (73 days after original tumor cell implantation and 30 days after re-challenge implantation). Re-challenge tumors did not grow in mice whose original tumors remained in CR. The three instances of re-challenge tumor growth were in mice whose original tumors had begun to regrow (see Table 12). The results also demonstrated that CTLA4.A2 can induce protective systemic anti-tumor immunity even in cases where the primary tumor (original tumor) recurs (see Table 13). [Table 12] [Table 13] Example 6 8.5. Example 6: Effect of Increasing Doses of CTLA-4 ABP
[0333] MC38 tumors treated with anti-CTLA-4
[0334] Two to eight transgenic mice expressing human CTLA-4 (hCTLA-4 KI mice) were implanted with MC38 tumor cells into the right flank. The average tumor size was 98.5 mm. 2 Randomization began when the IL-16 expression level reached 1. hCTLA-4 KI mice were treated biweekly with the indicated anti-CTLA4 at 5 mg / kg for five doses starting on day 0 after randomization. The antibodies administered are shown in Table 14. CTLA4.A14.2a is antibody A14 cloned in a murine IgG2a backbone that enhances ADCC activity. The prefix 297 represents the hIgG1 1 shows that the Fc is mutated at amino acid N297 to eliminate glycosylation and therefore Fc effector functions, including ADCC.
[0335] A) Tumor growth inhibition
[0336] Over the course of the study, tumor growth inhibition was determined using the following formula: Average inhibition % = (Average (C) - Average (T) / Average (C) × 100% T - the value of the group of the present invention C - control value
[0337] The results showed that antibodies lacking Fc activity reduced overall efficacy. These antibodies were still able to induce tumor regression in some animals, indicating that anti-CTLA4 acts by both Fc-dependent and Fc-independent mechanisms of action, and that anti-CTLA4 lacking Fc activity can induce anti-tumor responses, including ADCC and ADCP (Tables 14 and 15). [Table 14] [Table 15]
[0338] B) Histopathological analysis:
[0339] hCTLA-4 mice were euthanized, and their right kidneys were harvested for histopathological analysis. Tissues were formalin-fixed, paraffin-embedded, and cut into 5-μm sections. These were then placed on glass slides for standard hematoxylin-eosin (H&E) staining and anti-IgG and anti-C3 immunohistochemistry (IHC) staining. Stained slides were prepared as digital images. A board-certified veterinary pathologist with experience in laboratory animal and toxicological pathology evaluated the H&E images for all findings and evaluated the anti-IgG and C3 slides for location, intensity, and percent positive staining. Findings in the H&E images were scored on a scale of 0 to 5 (0 = normal range, 1 = minimal findings or fewest discernible changes, 2 = mild findings, 3 = moderate, 4 = marked, and 5 = severe or maximum possible). Findings on IHC images were scored on a scale of 1 to 4 for intensity (0 = negative, 1 = minimally or slightly positive, and 4 = very dark) and as the percentage of positive cells in the glomerulus (after examining at least five glomeruli).
[0340] H&E, immunoglobulin, or C3 stained images were scored by a blinded pathologist, and the results are shown in Figure 4. The main H&E finding was leukocytes in the renal interstitium, usually without glomerular involvement. Scoring of Ig and C3 deposition in glomeruli is also shown in Figure 4.
[0341] C) Alkaline phosphatase:
[0342] hCTLA-4 mice were also analyzed for changes in alkaline phosphatase levels. Serum alkaline phosphatase levels were determined using the comprehensive diagnostic rotor on an ABAXIS VetScan VS2.
[0343] This study found that ipilimumab (IPI) increases alkaline phosphatase levels, which may be an indicator of immune-mediated hepatitis. CTLA4 antibodies (e.g., CTLA4.A14.2A) showed a reduction in the increase in alkaline phosphatase levels (Figure 5). This reduction in the increase in alkaline phosphatase induced by the CTLA4 antibodies of the present disclosure may indicate that they are less likely to induce immune-mediated hepatitis than treatments such as ipilimumab. Example 7 8.6. Example 7: Effect of CTLA-4 ABP on a Secondary Tumor Model
[0344] RM1 tumors treated with anti-CTLA-4
[0345] Transgenic mice expressing human CTLA-4 (hCTLA-4 KI mice) were implanted with RM1 tumor cells into the right flank. (Human IgG1 isotype negative control n=7, atezolimumab n=8, n=11 for all other groups). hCTLA4 KI mice were treated with the antibodies shown in Table 16. CTLA4 antibody was administered at 5 mg / kg on days 0, 3, and 6 after randomization, and atezolimumab was administered at 5 mg / kg every other week for 3 weeks starting on day 0 after randomization. Human IgG1 isotype negative control was administered at 5 mg / kg on days 0, 3, and 6 after randomization. Mean inhibition of tumor growth was determined on days 0, 4, 7, 11, 14, and 18 using the following formula: Average inhibition % = (Average (C) - Average (T) / Average (C) × 100% T - the value of the group of the present invention C - control value
[0346] Table 16 shows the mean inhibition values for control, CTLA4 antibody, and atezolimumab treatments over the course of the study. [Table 16] Example 8 8.7. Example 8: Combination Treatment (Pembrolizumab and Anti-CTLA4)
[0347] 1 × 10 transgenic mice expressing human CTLA-4 and PD-1 (hCTLA4-hPD1 KI mice, n = 8 per treatment group) were injected into the right flank. 6 MC38 tumor cells were implanted subcutaneously. hCTLA4-hPD1 KI mice were treated with control (1x phosphate buffered saline, or PBS); 2 mg / kg pembrolizumab (pembro), or 2 mg / kg pembro + 5 mg / kg anti-CTLA4, administered i.p. twice weekly for 3 weeks starting on day 1 post-randomization at a dose volume of 10 ml / kg per animal, as shown in Table 17. The mean (%) delta inhibition of tumor growth induced by each treatment compared to the control treatment was calculated using the following formula, and the results are shown in Table 17. Average %Δ inhibition = ((Average (C) - Average (C0)) - (Average (T) - Average (T0))) / (Average (C) - Average (C0)) × 100% T - the value of the group of the present invention T0 - initial value of the group of the present invention C - control value C0 - initial value of the control group [Table 17]
[0348] This study showed that mice treated with pembro alone showed no tumor growth inhibition at day 24, but the addition of the indicated CTLA4 antibody increased tumor growth inhibition over the course of the study.
[0349] At the end of the experiment, selected tumors were harvested and flow cytometry was performed to examine intratumoral immune cell populations. The data show that anti-CTLA4 increased intratumoral NK cell populations while decreasing intratumoral Treg populations (Figure 6). Example 9 8.8. Example 9: Immune-Related Adverse Events
[0350] Transgenic mice expressing human CTLA-4 (hCTLA-4 KI mice) were implanted with MC38 tumor cells into the right flank. hCTLA-4 KI mice were treated with 1 mg / kg of the indicated CTLA-4 antibody on days 8, 11, and 14 post-implantation. Mice were weighed on days 8, 11, 14, and 17 post-implantation. The number of animals was n=8 for ipilimumab, n=9 for A7, n=8 for A2, n=9 for A14, and n=8 for A14.2. The percent change in body weight for mice receiving the indicated anti-CTLA4 treatments is shown in Figure 7.
[0351] Mice treated with CTLA4.A7, CTLA4.A14, and CTLA4.A14.2a did not appear to lose weight after the final dose of anti-CTLA4 (Figure 7). This finding was unexpected, as immune-related adverse events (irAEs) have been reported to be greater when anti-CTLA4s that enhance ADCC (e.g., CTLA.A14.2a) are administered. This data suggests that anti-CTLA4s with reduced blocking activity may limit the induction of irAEs, even when ADCC is enhanced. Example 10 8.9. Example 10: Peripheral Flow Cytometry
[0352] MC38 tumor cells were implanted into the right flank of transgenic mice expressing human CTLA-4 (hCTLA-4 KI mice). hCTLA-4 KI mice were treated with 1 mg / kg of the indicated CTLA-4 antibody on days 8, 11, and 14 after implantation. Peripheral flow cytometry was performed on day 27. 100 μL of blood was used for staining. Findings from peripheral blood flow cytometry are shown in Figures 8–10.
[0353] The results showed that CTLA4.A2 and CTLA4.A14 reduced the increase in peripheral T cells (CD3+). By enhancing ADCC with CTLA4.A14.2a, newly activated T cells (CD69+) were increased. CTLA4.A2 and CTLA4.A14 resulted in fewer non-conventional regulatory cells (CD4+PD1+, CD4+ICOS+) (see Figure 8).
[0354] The results also showed that CTLA4.A2 and CTLA4.A14 more strongly enhanced CD8+ T cells. CTLA4.A2 more strongly enhanced newly activated T cells (CD8+CD69+) and reduced T cell depletion (CD8+PD1+) compared to ipilimumab. ICOS has been described as a pharmacodynamic marker for anti-CTLA4. Enhancement of ADCC with CTLA4.A14.2a appeared to further increase CD8+ICOS+ cells (Figure 9). The results also showed that CTLA4.A2 and CTLA4.A14.2a resulted in reduced peripheral immune activation compared to ipilimumab, as judged by the frequency of dendritic cells (DCs) and activated DCs (CD86+). (See Figure 10.) Example 11 8.10. Example 11: Treatment with Low-Dose CTLA-4 Studies
[0355] Transgenic mice expressing human CTLA-4 (hCTLA-4 KI mice) were subcutaneously implanted with MC38 tumor cells (1E6) in 0.1 ml of PBS in the right flank region for tumor development. Exponentially growing cells were harvested and quantified using a cell counter before tumor implantation. The mean tumor volume was 96.15 mm. 3 When tumor growth was observed, hCTLA-4 KI mice were randomized and treated with 0.3 mg / kg of the indicated anti-CTLA4, ipilimumab, or human IgG1 isotype control (isotype) on days 0, 3, and 6 after randomization. Tumor volumes and mean % inhibition were determined as described in Example 4. CTLA4.A2 and CTLA4.A14 resulted in significantly greater tumor inhibition over the 18-day study. The results of this study are shown in Table 18 and Figure 11. [Table 18] 9. Incorporation by Reference
[0356] All publications, patents, patent applications, and other documents cited in this application are incorporated herein by reference in their entirety for all purposes to the same extent as if each individual publication, patent, patent application, or other document was individually indicated to be incorporated herein by reference for all purposes. 10. Equivalents
[0357] While various specific embodiments have been illustrated and described, the above specification is not limiting. It will be recognized that various modifications may be made without departing from the spirit and scope of the present disclosure. Many modifications will be apparent to those skilled in the art in view of this specification. [Table 19-1] [Table 19-2] [Table 19-3] [Table 19-4] [Table 19-5] [Table 19-6] [Table 20-1] [Table 20-2] [Table 20-3] [Table 20-4] [Table 20-5] [Table 20-6]
Table 20-7
Table 20-8
Table 20-9
Table 20-10
Claims
1. 1. An isolated antigen binding protein (ABP) that specifically binds to human cytotoxic T-lymphocyte-associated protein 4 (CTLA-4), said ABP comprising CDR1-L, CDR2-L, CDR3-L, CDR1-H, CDR2-H, and CDR3-H, wherein: the CDR1-L consists of SEQ ID NO: 1002, the CDR2-L consists of SEQ ID NO: 2002, the CDR3-L consists of SEQ ID NO: 3002, the CDR1-H consists of SEQ ID NO: 4002, the CDR2-H consists of SEQ ID NO: 5002, and the CDR3-H consists of SEQ ID NO: 6002; or the CDR1-L consists of SEQ ID NO: 1005, the CDR2-L consists of SEQ ID NO: 2005, the CDR3-L consists of SEQ ID NO: 3005, the CDR1-H consists of SEQ ID NO: 4005, the CDR2-H consists of SEQ ID NO: 5005, and the CDR3-H consists of SEQ ID NO: 6005; or the CDR1-L consists of SEQ ID NO: 1006, the CDR2-L consists of SEQ ID NO: 2006, the CDR3-L consists of SEQ ID NO: 3006, the CDR1-H consists of SEQ ID NO: 4006, the CDR2-H consists of SEQ ID NO: 5006, and the CDR3-H consists of SEQ ID NO: 6006; or the CDR1-L consists of SEQ ID NO: 1008, the CDR2-L consists of SEQ ID NO: 2008, the CDR3-L consists of SEQ ID NO: 3008, the CDR1-H consists of SEQ ID NO: 4008, the CDR2-H consists of SEQ ID NO: 5008, and the CDR3-H consists of SEQ ID NO: 6008; or the CDR1-L consists of SEQ ID NO: 1009, the CDR2-L consists of SEQ ID NO: 2009, the CDR3-L consists of SEQ ID NO: 3009, the CDR1-H consists of SEQ ID NO: 4009, the CDR2-H consists of SEQ ID NO: 5009, and the CDR3-H consists of SEQ ID NO: 6009; An ABP is an antibody or an antigen-binding fragment thereof.
2. The ABP comprises a variable light chain (V L ) and variable heavy chain (V H ), Here, the V L comprises a sequence that is at least 97% identical to the sequence of SEQ ID NO:2, and H comprises a sequence that is at least 97% identical to the sequence of SEQ ID NO: 102; Here, the V L comprises a sequence that is at least 97% identical to the sequence of SEQ ID NO:5, and The V H comprises a sequence that is at least 97% identical to the sequence of SEQ ID NO: 105; Here, the V L comprises a sequence that is at least 97% identical to the sequence of SEQ ID NO: 6, and H comprises a sequence at least 97% identical to the sequence of SEQ ID NO: 106; Here, the V L comprises a sequence that is at least 97% identical to the sequence of SEQ ID NO: 8, and H comprises a sequence that is at least 97% identical to the sequence of SEQ ID NO: 108; or Here, the V L comprises a sequence that is at least 97% identical to the sequence of SEQ ID NO: 9, and H comprises a sequence that is at least 97% identical to the sequence of SEQ ID NO: 109; The ABP of claim 1.
3. The V L and the V H The ABP of claim 2, wherein:
4. A variable light chain (V L ) comprising the sequence of SEQ ID NO: 2, and a variable heavy chain (V H ) comprising the sequence of SEQ ID NO: 102; a variable light chain (V L ) comprising the sequence of SEQ ID NO: 5, and a variable heavy chain (V H ) comprising the sequence of SEQ ID NO: 105; a variable light chain (V L ) comprising the sequence of SEQ ID NO: 6, and a variable heavy chain (V H ) comprising the sequence of SEQ ID NO: 106; a variable light chain (V L ) comprising the sequence of SEQ ID NO: 8 and a variable heavy chain (V H ) comprising the sequence of SEQ ID NO: 108; or a variable light chain (V L ) comprising the sequence of SEQ ID NO: 9, and a variable heavy chain (V H ) comprising the sequence of SEQ ID NO: 109; 2. The ABP of claim 1, comprising:
5. 5. The ABP of claim 4, wherein the V L and the V H are homologous pairs, wherein the variable light chain (V L ) comprises the sequence of SEQ ID NO: 2, and the variable heavy chain (V H ) comprises the sequence of SEQ ID NO: 102; wherein the variable light chain (V L ) comprises the sequence of SEQ ID NO: 5, and the variable heavy chain (V H ) comprises the sequence of SEQ ID NO: 105; wherein the variable light chain (V L ) comprises the sequence of SEQ ID NO: 6, and the variable heavy chain (V H ) comprises the sequence of SEQ ID NO: 106; or wherein the variable light chain (V L ) comprises the sequence of SEQ ID NO: 8, and the variable heavy chain (V H ) comprises the sequence of SEQ ID NO: 108; or wherein the variable light chain (V L ) comprises the sequence of SEQ ID NO: 9, and the variable heavy chain (V H ) comprises the sequence of SEQ ID NO: 109; ABP.
6. The ABP of any one of claims 1 to 5, comprising an scFv or a full-length monoclonal antibody.
7. The ABP of claim 1 , wherein the ABP comprises an immunoglobulin constant region.
8. A pharmaceutical composition comprising the ABP of any one of claims 1 to 7 and an excipient.
9. A composition comprising an ABP according to any one of claims 1 to 7, or a pharmaceutical composition according to claim 8, for treating a disease in a subject in need thereof.
10. 10. Use of an ABP according to any one of claims 1 to 7 or a pharmaceutical composition according to claim 8 in the manufacture of a medicament for treating a disease in a subject in need thereof.
11. The composition of claim 9 , wherein the disease is cancer.
12. 12. The composition of claim 9 or 11, wherein the ABP is for administration to the subject in combination with one or more additional therapeutic agents.
13. 13. The composition of claim 12, wherein the additional therapeutic agent is a CTLA-4 inhibitor, a TIGIT inhibitor, a chemotherapeutic agent, an immunostimulant, radiation, a cytokine, a polynucleotide encoding a cytokine, or a combination thereof.
14. 8. An isolated polynucleotide encoding the ABP of any one of claims 1 to 7.
15. A vector comprising the isolated polynucleotide of claim 14.
16. 16. A host cell comprising the isolated polynucleotide of claim 14 or the vector of claim 15.
17. 1. A method for producing an isolated antigen binding protein (ABP) that specifically binds to human CTLA-4, comprising:
17. Expressing the ABP in the host cell of claim 16 and isolating the ABP. A method comprising:
18. The use described in claim 10, wherein the disease is cancer.
19. The use of claim 10 or 18, wherein the ABP is for administration to the subject in combination with one or more additional therapeutic agents.
20. The use of claim 19, wherein the additional therapeutic agent is a CTLA-4 inhibitor, a TIGIT inhibitor, a chemotherapeutic agent, an immunostimulant, radiation, a cytokine, a polynucleotide encoding a cytokine, or a combination thereof.
Citation Information
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