Caninized antibody against canine CTLA-4

Caninized antibodies targeting canine CTLA-4 address the gap in existing therapies by blocking CTLA-4 interactions, enhancing immune responses and offering a promising treatment for canine cancer.

JP7757271B2Active Publication Date: 2025-10-21INTERVET INT BV
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Patent Information

Application Number
JP2022502248
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-07
Filing Date
2020-07-15
Publication Date
2025-10-21
Estimated Expiration
2040-07-15

AI Technical Summary

Technical Problem

There is a lack of caninized monoclonal antibodies that effectively block the binding and activity of canine CTLA-4, which are crucial for modulating immune responses and treating canine cancer.

Method used

Development of caninized antibodies against canine CTLA-4 with specific CDRs that bind to and block the interaction between canine CTLA-4 and its ligands CD80 and CD86, derived from murine anti-canine CTLA-4 antibodies, providing a therapeutic modality for canine cancer treatment.

Benefits of technology

The caninized antibodies enhance immune responses and provide a targeted treatment approach for canine cancer by blocking the inhibitory signals mediated by CTLA-4, potentially increasing treatment efficacy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides caninized murine antibodies to canine CTLA-4 that have specific sequences and high binding affinity to canine CTLA-4. The present invention also provides epitopes of canine CTLA-4 for caninized murine antibodies to canine CTLA-4.5. The present invention further relates to the use of these antibodies in the treatment of cancer in dogs and other companion animals.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority under 35 U.S.C. § 119(e) to U.S. Provisional Patent Application No. 62 / 874,287, filed July 15, 2019, U.S. Provisional Patent Application No. 62 / 926,047, filed October 25, 2019, and U.S. Provisional Patent Application No. 63 / 048,873, filed July 7, 2020, the contents of which are incorporated herein by reference in their entireties.

[0002] The present invention relates to antibodies against proteins involved in costimulatory or co-inhibitory signaling pathways, including CTLA-4. More particularly, the present invention relates to caninized antibodies against canine CTLA-4, which have a specific sequence and high binding affinity to canine CTLA-4. The present invention also relates to the use of the antibodies of the present invention in the treatment of canine cancer. [Background technology]

[0003] The initiation or termination of an immune response is mediated through signaling pathways activated by complex interactions among a series of proteins expressed on the surface of many types of immune cells, particularly T lymphocytes and antigen-presenting cells (APCs). Costimulatory signaling pathways result in the development of an immune response and have been shown to be mediated most importantly through the interaction of CD28 on the surface of T cells with B7.1 (also known as CD80) and B7.2 (also known as CD86) family members on the surface of APCs. B7.1 and B7.2 are thought to perform similar functions.

[0004] In contrast, the co-inhibitory pathway results in the inhibition or termination of immune responses and has been shown to be mediated through the interaction between cytotoxic T-lymphocyte-associated protein 4 (CTLA-4) on T cells and CD80 / CD86 proteins on APCs. An additional co-inhibitory signaling pathway has been shown to be mediated through the interaction between programmed death receptor 1 (PD-1) on T cells and programmed death receptor ligand 1 or 2 (PD-L1 / PD-L2) proteins on APCs. Furthermore, it has been shown that the interaction between PD-L1 and CD80 can also result in inhibitory signals within T cells.

[0005] CD80 and CD86 are members of the immunoglobulin (Ig) superfamily [Sharpe and Freeman, Nature Reviews, 2:116-126 (2002)]. CD80 is expressed on activated B cells, activated T cells, macrophages, and dendritic cells [Swanson and Hall, Eur J. Immunol., 23:295-298 (1993); Razi-Wolfe et al., PNAS, 89:4210-4214 (1992)]. CD86 is constitutively expressed on dendritic cells, Langerhans cells, and B cells. Furthermore, CD86 is expressed on monocytes and is upregulated after IFN-γ stimulation [Larsen et al., Immunol., 152:5208-5219 (1994); Inaba, J. Exp. Med. 180:1849-1860 (1994)].

[0006] CD80 and CD86 bind to CD28 and CTLA-4, resulting in distinct functional outcomes [Linsley et al., PNAS, 87:5031-5035 (1990); Linsley et al., J. Exp. Med., 173:721-730 (1991); Azuma et al., Nature, 366:76-79 (1993); Freeman et al., Science, 262:909-912 (1993)]. CD80 and CD86 bind to CTLA-4 with significantly higher affinity than CD80 / CD86 bind to CD28 [van der Merwe, J. Exp. Med., 185:393-402 (1997)].

[0007] CD28 is a homodimeric glycoprotein that is a member of the Ig superfamily [Aruffo and Seed, PNAS, 84:8573-8577 (1987)]. The mature protein has a single extracellular variable domain of 134 amino acid residues containing the hexapeptide motif MYPPPY, which is essential for counter-receptor binding [Riley and June, Blood, 105:13-21 (2005)]. The 41-amino acid cytoplasmic domain of CD28 contains four tyrosine residues that can be phosphorylated upon activation [Sharpe and Freeman, Nat. Rev. Immunol., 2:116-126 (2002)]. CD28 binds to CD4 + Most T cells and CD8 +It is expressed on approximately 50% of T cells [Gross et al., J. Immunol., 149:380-388 (1992); Riley and June, Blood, 105:13-21 (2005)]. After T cell receptor (TCR) ligation, B7.1 / B7.2 bound to CD28 provides important costimulatory signals to T cells, enabling T cell activation and subsequent development of an immune response [Reiser et al., PNAS, 89:271-275 (1992); Jenkins et al., J. Immunol., 147:2461-2466 (1991)]. In the absence of CD28 signals, T cells have been shown to undergo apoptosis or become unresponsive [Jenkins et al., J. Exp. Med. 165:302-319 (1987); Jenkins et al., PNAS, 84:5409-5413 (1987); Schwartz, Science, 248:1349-1356 (1990)]. CD28-B7.1 / B7.2 binding can alter the threshold level of TCR ligation required for activation (e.g., the amount of antigen-MHC complex), shortening the time required to stimulate naive cells and increasing the magnitude of T cell responses [Soskic et al., Advances in Immunology, 124:96-123 (2014)].

[0008] CTLA-4 (CD152) is also a member of the Ig superfamily and consists of a single extracellular domain, a transmembrane domain, and a short cytoplasmic tail [Swanson, Immunology; 1010:169-177 (2000)]. Furthermore, CTLA-4 shares approximately 30% amino acid identity with CD28. CTLA-4 is not constitutively expressed on naive T cells but is rapidly upregulated shortly after CD28 ligation and T cell activation, with CTLA-4 expression levels peaking approximately 48-96 hours after initial T cell activation [Alegre et al., J. Immunol., 157:4762-4770 (1996); Freeman et al., J. Immunol., 149:3795-3801 (1992)]. CTLA-4 binds to both B7.1 and B7.2 with much higher affinity than CD28 [van der Merwe et al., J. Exp. Med., 185:393-402 (1997)]. However, in contrast to the stimulatory effects of CD28-bound B7.1 or B7.2, CTLA-4 functions as an inhibitory receptor essential for down-modulation of immune responses [Walnus et al., Immunity, 1:405-413 (1994); Walnus, J. Exp. Med., 183:2541-2550 (1996); Krummel and Allison, J. Exp. Med., 183:2533-2540 (1996)]. The mechanism by which CTLA-4 mediates its immunosuppressive function is related to its ability to act as a competitive inhibitor of the interaction between CD28 and CD80 / CD86 (reviewed in Swanson, Immunology, 1010:169-177 (2000)). The critical role of CTLA-4 in immune downregulation has been demonstrated in CTLA-4-deficient mice, which die at 3-5 weeks of age from a lymphoproliferative disorder characterized by T cell infiltration in multiple organs (Tivol et al., Immunity, 3:541-5417 (1995); Waterhouse et al., Science, 270:985-988 (1995)).The consequences of CTLA-4 knockout have also been demonstrated to depend on the interaction of CD28 with its ligands, CD80 and CD86, as shown by the absence of disease in CTLA-4 / CD80 / CD86 triple knockout mice [Mandelbrot et al., J. Exp. Med., 189:435-440 (1999)]. This is confirmed by the protection against lymphoproliferation afforded by repeated administration of CTLA-4Ig to CTLA-4 knockout mice [Tivol et al., J. Immunol., 158:5091-5094 (1997)].

[0009] Furthermore, blocking the effects of CTLA-4 with antibodies has been shown to enhance T cell responses in vitro and in vivo, leading to increased anti-tumor immune responses [Leach et al., Science, 271:1734-1736 (1996)]. Based on these findings, the development of CTLA-4 blockers, such as monoclonal antibodies, has been carried out to provide therapeutic modalities for treating cancer [Hodi et al., PNAS, 100(8):4712-4717(2003); Phan GQ et al., PNAS, 100(14):8372-8377(2003); Attia, Journal of Clinical Oncology, 23(25):6043-6053(2005); Comin-Anduix et al., Journal of Translational Medicine, 6:22-22(2008); WO2000037504A2; US8,017,114B2; WO2010097597A1; WO2012120125A1; and Boutros et al., Nat Rev Clin Oncol.,13(8):473-486(2016)].

[0010] PD-1 is a member of the CD28 / CTLA-4 family of immunoregulatory receptors. PD-1 is also a member of the Ig superfamily and contains an extracellular variable domain that binds its ligand and a cytoplasmic tail that binds signaling molecules (reviewed in Zak et al., Cell Structure, 25:1163-1174 (2017)). The cytoplasmic tail of PD-1 contains two tyrosine-based signaling motifs (Zhang et al., Immunity 20:337-347 (2004)). PD-1 expression is not observed on unstimulated T cells, B cells, or myeloid cells. However, PD-1 expression is upregulated on these cells after activation [Chemnitz et al., J. Immunol., 173:945-954 (2004); Petrvas et al., J. Exp. Med., 203:2281-2292 (2006)]. PD-1 is most closely related to CTLA-4, with which it shares approximately 24% amino acid identity [Jin et al., Current Topics in Microbiology and Immunology, 350:17-37 (2010)]. PD-1 reduces T cell activation upon binding to PD-L1 and PD-L2 expressed on the surface of APCs. Binding of either of these ligands to PD-1 negatively regulates antigen signaling via the T cell receptor (TCR). To date, only PD-L1 and PD-L2 are known to function as ligands for PD-1. As with CTLA-4, PD-1 ligation appears to transmit a negative immunoregulatory signal: PD-1 ligation by PD-L1 or PD-L2 results in inhibition of TCR-mediated proliferation and cytokine production [Jin et al., Current Topics in Microbiology and Immunology, 350:17-37 (2010)].In contrast to CTLA-4-deficient animals, PD-1-deficient mice die much later in life and exhibit signs of autoimmunity, although the severity of the observed effects is less severe than that seen in CTLA-4-deficient animals [Nishimura et al., Immunity, 11(2):141-151 (1999); Nishimura et al., Science, 291(5502):319-322 (2001)]. The PD-1 signaling pathway is currently under intensive investigation, and previous studies suggest that PD-L1 / PD-L2 / PD-1 interactions may be involved in the negative regulation of some immune responses by reducing signals downstream of TCR stimulation, leading to reduced cytokine secretion, impaired T cell proliferation, and reduced production of cytotoxic molecules by T cells [Freeman et al., J. Exp. Med., 192(7):1027-1034 (2000)].

[0011] PD-L1 (CD274) is a type 1 membrane protein consisting of IgV-like and IgC-like extracellular domains, a hydrophobic transmembrane domain, and a short 30-amino acid cytoplasmic tail with unknown signaling properties. PD-L1 is recognized as a member of the B7 family, sharing approximately 20% amino acid identity with other B7 family members. PD-L1 binds to the receptor PD-1, which is found on activated T cells, B cells, and myeloid cells. PD-L1 also binds to the costimulatory molecule CD80, but not CD86 [Butte et al., Immunology, 45 (13):3567-3572 (2008)]. The affinity of CD80 for PD-L1 is intermediate between that for CD28 and CTLA-4. The related molecule PD-L2 has no affinity for either CD80 or CD86 but shares its receptor with PD-1. Binding of PD-L1 to its receptor PD-1 on T cells delivers a signal that inhibits TCR-mediated IL-2 production and T cell proliferation. PD-L1 binding to PD-1 also contributes to ligand-induced TCR downmodulation during antigen presentation to naive T cells. Furthermore, binding of PD-L1 to CD80 on T cells leads to T cell apoptosis. The role of PD-1 and PD-L1 as inhibitors of T cell activation has been demonstrated in numerous studies. Based on these findings, PD-1 and PD-L1 blockers, such as monoclonal antibodies, have been developed to provide therapeutic modalities for treating cancer and infectious diseases.

[0012] Humanized monoclonal antibodies that block the binding and activity of canine PD-1, PD-L1, and CTLA-4 have been developed and are now available for use in treating human subjects diagnosed with one of several different types of cancer. Similarly, caninized monoclonal antibodies that block the binding and activity of canine PD-1 and PDL1 have also been reported [US9,944,704B2, US10,106,607B2, and US2018 / 0237535A1; the contents of which are incorporated herein by reference in their entireties]. However, to date, caninized monoclonal antibodies that block the binding and activity of canine CTLA-4 have not been reported.

[0013] The citation of any reference herein should not be construed as an admission that such reference is available as "Prior Art" to the instant application. [Prior art documents] [Patent documents]

[0014] [Patent Document 1] WO2000037504A2 [Patent Document 2] US8,017,114B2 [Patent Document 3] WO2010097597A1 [Patent Document 4] WO2012120125A1 [Patent Document 5] US9,944,704B2 [Patent Document 6] US10,106,607B2 [Patent Document 7] US2018 / 0237535A1 [Non-patent literature]

[0015] [Non-Patent Document 1] Sharpe and Freeman, Nature Reviews,2:116-126(2002) [Non-licensed document 2] Swanson and Hall,Eur J. Immunol.,23:295-298(1993) [Non-licensed document 3] Razi-Wolfe et al.,PNAS,89:4210-4214(1992)

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[0016] The present invention relates to anti-canine cytotoxic T-lymphocyte-associated protein 4 (CTLA-4) antibodies that bind to canine CTLA-4. In a specific embodiment, the antibodies against canine CTLA-4 specifically bind to canine CTLA-4. In a more specific embodiment, the antibodies against canine CTLA-4 also have the ability to block the binding of canine CTLA-4 to canine CD80. In another specific embodiment, the antibodies against canine CTLA-4 also have the ability to block the binding of canine CTLA-4 to canine CD86. In yet another specific embodiment, the antibodies against canine CTLA-4 have the ability to both block the binding of canine CTLA-4 to canine CD80 and block the binding of canine CTLA-4 to canine CD86.

[0017] Additionally, the present invention relates to the complementarity determining regions (CDRs) comprised by these antibodies and the combination of these CDRs in a canine frame (e.g., derived from a murine anti-canine CTLA-4 antibody) to form caninized anti-canine CTLA-4 antibodies. The present invention further relates to the use of such antibodies in the treatment of conditions such as cancer.

[0018] Thus, the present invention provides unique sets of CDRs derived from the six exemplified murine anti-canine CTLA-4 antibodies. Each of the six exemplified murine anti-canine CTLA-4 antibodies has a unique set of CDRs: three light chain CDRs (CDR light 1 (CDRL1), CDR light 2 (CDRL2), and CDR light 3 (CDRL3)) and three heavy chain CDRs (CDR heavy 1 (CDRH1), CDR heavy 2 (CDRH2), and CDR heavy 3 (CDRH3)). As detailed below, there is substantial sequence homology and even some redundancy within each group of CDRs (see, e.g., the set of VL CDR-3s in Table 1 below). Thus, the present invention not only provides the amino acid sequences of the six CDRs derived from the six exemplified murine anti-canine CTLA-4 antibodies, but also provides conservatively modified variants of these CDRs, as well as variants that contain (e.g., share) the same canonical structure and / or bind to one or more (e.g., 1, 2, 3, 4 or more) amino acid residues of canine CTLA-4 that comprise an epitope of canine CTLA-4.

[0019] One aspect of the present invention provides mammalian antibodies that bind to canine cytotoxic T-lymphocyte-associated protein (CTLA-4). In certain embodiments, the mammalian antibodies or antigen-binding fragments thereof of the present invention are murine antibodies. In preferred embodiments, the mammalian antibodies (including murine antibodies of the present invention) or antigen-binding fragments thereof are caninized antibodies or caninized antigen-binding fragments thereof.

[0020] In a specific embodiment, the mammalian antibody specifically binds to canine CTLA-4. In a more specific embodiment, the mammalian antibody against canine CTLA-4 is further capable of blocking the binding of canine CTLA-4 to canine CD80. In another specific embodiment, the mammalian antibody against canine CTLA-4 is further capable of blocking the binding of canine CTLA-4 to canine CD86. In yet another specific embodiment, the mammalian antibody against canine CTLA-4 is capable of both blocking the binding of canine CTLA-4 to canine CD80 and blocking the binding of canine CTLA-4 to canine CD86.

[0021] In certain embodiments, the mammalian antibodies that bind to canine CTLA-4 are isolated antibodies. The present invention further provides antigen-binding fragments of these mammalian antibodies that bind to canine CTLA-4. In certain embodiments, the antibodies comprise three light chain complementarity determining regions (CDRs) [CDR light 1 (CDRL1), CDR light 2 (CDRL2), and CDR light 3 (CDRL3)] and three heavy chain CDRs [CDR heavy 1 (CDRH1), CDR heavy 2 (CDRH2), and CDR heavy 3 (CDRH3)].

[0022] In certain embodiments, the mammalian antibody or antigen-binding fragment thereof comprises a CDRH3 comprising the amino acid sequence of SEQ ID NO:90, a conservatively modified variant of the amino acid sequence of SEQ ID NO:90, or a variant of SEQ ID NO:90 that comprises canonical structure class 7. In more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRH2 comprising the amino acid sequence of SEQ ID NO:88, a conservatively modified variant of the amino acid sequence of SEQ ID NO:88, or a variant of SEQ ID NO:88 that comprises canonical structure class 2A. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRH1 comprising the amino acid sequence of SEQ ID NO:86, a conservatively modified variant of the amino acid sequence of SEQ ID NO:86, or a variant of SEQ ID NO:86 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRL3 comprising the amino acid sequence of SEQ ID NO:96, a conservatively modified variant of the amino acid sequence of SEQ ID NO:96, or a variant of SEQ ID NO:96 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL2 comprising the amino acid sequence of SEQ ID NO: 94, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 94, or a variant of SEQ ID NO: 94 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL1 that similarly comprises the amino acid sequence of SEQ ID NO: 92, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 92, or a variant of SEQ ID NO: 92 that comprises canonical structure class 4.

[0023] In alternative embodiments, the mammalian antibody or antigen-binding fragment thereof comprises a CDRH3 comprising the amino acid sequence of SEQ ID NO: 102, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 102, or a variant of SEQ ID NO: 102 that comprises canonical structure class 9. In more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRH2 comprising the amino acid sequence of SEQ ID NO: 100, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 100, or a variant of SEQ ID NO: 100 that comprises canonical structure class 4. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRH1 comprising the amino acid sequence of SEQ ID NO: 98, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 98, or a variant of SEQ ID NO: 98 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRL3 comprising the amino acid sequence of SEQ ID NO: 108, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 108, or a variant of SEQ ID NO: 108 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL2 which similarly comprises the amino acid sequence of SEQ ID NO: 106, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 106, or a variant of SEQ ID NO: 106 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL1 which similarly comprises the amino acid sequence of SEQ ID NO: 104, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 104, or a variant of SEQ ID NO: 104 that comprises canonical structure class 1.

[0024] In another alternative embodiment, the mammalian antibody or antigen-binding fragment thereof comprises a CDRH3 comprising the amino acid sequence of SEQ ID NO: 113, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 113, or a variant of SEQ ID NO: 113 that comprises canonical structure class 7. In a more particular embodiment, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRH2 comprising the amino acid sequence of SEQ ID NO: 88, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 88, or a variant of SEQ ID NO: 88 that comprises canonical structure class 2A. In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRH1 comprising the amino acid sequence of SEQ ID NO: 86, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 86, or a variant of SEQ ID NO: 86 that comprises canonical structure class 1. In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRL3 comprising the amino acid sequence of SEQ ID NO: 96, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 96, or a variant of SEQ ID NO: 96 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL2 which similarly comprises the amino acid sequence of SEQ ID NO: 94, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 94, or a variant of SEQ ID NO: 94 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL1 which similarly comprises the amino acid sequence of SEQ ID NO: 117, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 117, or a variant of SEQ ID NO: 117 that comprises canonical structure class 4.

[0025] In yet another alternative embodiment, the mammalian antibody or antigen-binding fragment thereof comprises a CDRH3 comprising the amino acid sequence of SEQ ID NO: 115, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 115, or a variant of SEQ ID NO: 115 that comprises canonical structure class 7. In a more particular embodiment, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRH2 comprising the amino acid sequence of SEQ ID NO: 88, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 88, or a variant of SEQ ID NO: 88 that comprises canonical structure class 2A. In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRH1 comprising the amino acid sequence of SEQ ID NO: 86, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 86, or a variant of SEQ ID NO: 86 that comprises canonical structure class 1. In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRL3 comprising the amino acid sequence of SEQ ID NO: 96, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 96, or a variant of SEQ ID NO: 96 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL2 which similarly comprises the amino acid sequence of SEQ ID NO: 122, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 122, or a variant of SEQ ID NO: 122 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL1 which similarly comprises the amino acid sequence of SEQ ID NO: 119, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 119, or a variant of SEQ ID NO: 119 that comprises canonical structure class 4.

[0026] In yet another alternative embodiment, the mammalian antibody or antigen-binding fragment thereof comprises a CDRH3 comprising the amino acid sequence of SEQ ID NO: 114, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 114, or a variant of SEQ ID NO: 114 that comprises canonical structure class 7. In a more particular embodiment, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRH2 comprising the amino acid sequence of SEQ ID NO: 111, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 111, or a variant of SEQ ID NO: 111 that comprises canonical structure class 2A. In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRH1 comprising the amino acid sequence of SEQ ID NO: 109, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 109, or a variant of SEQ ID NO: 109 that comprises canonical structure class 1. In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRL3 comprising the amino acid sequence of SEQ ID NO: 96, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 96, or a variant of SEQ ID NO: 96 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL2 which similarly comprises the amino acid sequence of SEQ ID NO: 121, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 121, or a variant of SEQ ID NO: 121 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL1 which similarly comprises the amino acid sequence of SEQ ID NO: 118, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 118, or a variant of SEQ ID NO: 118 that comprises canonical structure class 4.

[0027] In yet another alternative embodiment, the mammalian antibody or antigen-binding fragment thereof comprises a CDRH3 comprising the amino acid sequence of SEQ ID NO: 116, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 116, or a variant of SEQ ID NO: 116 that comprises canonical structure class 12. In a more particular embodiment, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRH2 comprising the amino acid sequence of SEQ ID NO: 112, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 112, or a variant of SEQ ID NO: 112 that comprises canonical structure class 2A. In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRH1 comprising the amino acid sequence of SEQ ID NO: 110, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 110, or a variant of SEQ ID NO: 110 that comprises canonical structure class 1. In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof similarly comprises a CDRL3 comprising the amino acid sequence of SEQ ID NO: 124, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 124, or a variant of SEQ ID NO: 124 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL2 which similarly comprises the amino acid sequence of SEQ ID NO: 123, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 123, or a variant of SEQ ID NO: 123 that comprises canonical structure class 1. In even more particular embodiments, the mammalian antibody or antigen-binding fragment thereof further comprises a CDRL1 which similarly comprises the amino acid sequence of SEQ ID NO: 120, a conservatively modified variant of the amino acid sequence of SEQ ID NO: 120, or a variant of SEQ ID NO: 120 that comprises canonical structure class 2.

[0028] As noted above, caninized antibodies or caninized antigen-binding fragments thereof against canine CTLA-4 are an important aspect of the present invention, and the present invention provides caninized mammalian antibodies of all such mammalian antibodies, including caninized mouse antibodies. Accordingly, the present invention further provides isolated caninized antibodies or antigen-binding fragments thereof that specifically bind to CTLA-4, comprising a canine IgG heavy chain and a canine kappa or lambda light chain. In particular embodiments of this type, the canine kappa or lambda light chain comprises three light chain complementarity-determining regions (CDRs) [CDR light 1 (CDRL1), CDR light 2 (CDRL2), and CDR light 3 (CDRL3)]; and the canine IgG heavy chain comprises three heavy chain CDRs [CDR heavy 1 (CDRH1), CDR heavy 2 (CDRH2), and CDR heavy 3 (CDRH3)] obtained from a murine anti-canine CTLA-4 antibody. Certain embodiments of the caninized antibodies and antigen-binding fragments thereof of the present invention bind to canine CTLA-4 and / or block the binding of canine CTLA-4 to canine CD80 and / or canine CD86.

[0029] Caninized antibodies or caninized antigen-binding fragments thereof of the invention can include an IgGD comprising a hinge region comprising the amino acid sequence of SEQ ID NO: 128. In a related embodiment, the hinge region comprises the amino acid sequence of SEQ ID NO: 129. In yet another related embodiment, the hinge region comprises the amino acid sequence of SEQ ID NO: 130. In yet another related embodiment, the hinge region comprises the amino acid sequence of SEQ ID NO: 131.

[0030] In an alternative embodiment, the caninized antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 62. In a particular embodiment of this type, the heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 61. In another embodiment, the caninized antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 64. In a particular embodiment of this type, the heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 63. In yet another embodiment, the caninized antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 66. In a particular embodiment of this type, the heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 65. In a more particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 50. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO: 49. In another particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 52. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO: 51. In yet another particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 54. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO:53.

[0031] In an alternative embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 74. In a particular embodiment of this type, the modified heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 73. In another embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 76. In a particular embodiment of this type, the modified heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 75. In yet another embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 78. In a particular embodiment of this type, the modified heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 77. In even more particular embodiments, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 50. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO: 49. In another particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 52. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO: 51. In yet another particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 54. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO:53.

[0032] In a specific embodiment, the caninized antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 66 and a light chain comprising the amino acid sequence of SEQ ID NO: 52. In another embodiment, the caninized antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 66 and a light chain comprising the amino acid sequence of SEQ ID NO: 54.

[0033] In an alternative embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 78 and a light chain comprising the amino acid sequence of SEQ ID NO: 52. In another embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 78 and a light chain comprising the amino acid sequence of SEQ ID NO: 54.

[0034] In another embodiment, the caninized antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 68. In a particular embodiment of this type, the heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 67. In another embodiment, the caninized antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 70. In a particular embodiment of this type, the heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 69. In yet another embodiment, the caninized antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 72. In a particular embodiment of this type, the heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 71. In a more particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 56. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO: 55. In another particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 58. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO: 57. In yet another particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 60. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO:59.

[0035] In an alternative embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 80. In a particular embodiment of this type, the modified heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 79. In another embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 82. In a particular embodiment of this type, the modified heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 81. In yet another embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 84. In a particular embodiment of this type, the modified heavy chain is encoded by the nucleotide sequence of SEQ ID NO: 83. In even more particular embodiments, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 56. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO: 55. In another particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 58. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO: 57. In yet another particular embodiment, the caninized antibody further comprises a light chain comprising the amino acid sequence of SEQ ID NO: 60. In a particular embodiment of this type, the light chain is encoded by the nucleotide sequence of SEQ ID NO:59.

[0036] In certain embodiments, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 72 and a light chain comprising the amino acid sequence of SEQ ID NO: 58. In another embodiment, the caninized antibody comprises a heavy chain comprising the amino acid sequence of SEQ ID NO: 72 and a light chain comprising the amino acid sequence of SEQ ID NO: 60.

[0037] In an alternative embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 84 and a light chain comprising the amino acid sequence of SEQ ID NO: 58. In another embodiment, the caninized antibody comprises a modified heavy chain comprising the amino acid sequence of SEQ ID NO: 84 and a light chain comprising the amino acid sequence of SEQ ID NO: 60.

[0038] The present invention further provides a method for producing a 1×10 -12 Less than M (e.g., 5 × 10 -13In another embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 with a dissociation constant (Kd) of 1×10 M or less. -5 M~1×10 -12 M. In a more particular embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 with a dissociation constant of 1×10 -7 M~1×10 -11 In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 with a dissociation constant of 1×10 -8 M~1×10 -11 In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 with a dissociation constant of 1×10 -8 M~1×10 -10 It binds to canine CTLA-4 with a dissociation constant of M.

[0039] The present invention further provides a method for producing a 1×10 7 M -1 s -1 Larger on-speed (k on In another embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 at 1 x 10 2 M -1 s -1 ~1×10 7 M -1 s -1 In a more particular embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 with an on-rate of 1 x 10 3 M -1 s -1 ~1×10 6 M -1 s -1 In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 with an on-rate of 1 x 10 3 M -1 s -1 ~1×10 5 M -1 s -1In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 with an on-rate of 1 x 10 4 M -1 s -1 ~1×10 5 M -1 s -1 Binds to canine CTLA-4 with an on-rate of .

[0040] The present invention further provides a method for producing a 1×10 -7 s -1 slower off-rate (k off In another embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 at 1 x 10 -3 s -1 ~1×10 -8 s -1 In a more particular embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 with an off rate of 1 x 10 -4 s -1 ~1×10 -7 s -1 In an even more particular embodiment, the mammalian antibody or antigen-binding fragment thereof binds to canine CTLA-4 with an off rate of 1 x 10 -5 s -1 ~1×10 -7 s -1 Binds to canine CTLA-4 with an off-rate of .

[0041] In a specific embodiment, the mammalian antibodies of the present invention (including chimeric antibodies) block the binding of canine CD80 and / or canine CD86 to canine CTLA-4. In a more specific embodiment, the antibodies are administered at a concentration of 1×10 -8 M~1×10 -9 In an even more particular embodiment, the EC50 is 5×10 or lower. -9 M~5×10 -13 In an even more particular embodiment, the EC50 is 5 x 10 -9 M~5×10-11 M. Thus, in certain embodiments, the antibodies of the invention can exhibit one, two, three, four, or all of these properties, i.e., the dissociation constant with canine CTLA-4, the on rate for binding to canine CTLA-4, the off rate for dissociation from the anti-canine CTLA-4 binding complex, or the effective treatment of cancer in an animal subject.

[0042] The present invention further provides caninized mammalian antibodies and antigen-binding fragments that cross-compete with the mammalian antibodies disclosed herein. In a specific embodiment, the caninized mammalian antibody cross-competes with an antibody comprising the six CDRs of 45A9 (see Table 1 below). In a related embodiment, the caninized mammalian antibody cross-competes with an antibody comprising the six CDRs of 27G12 (see Table 1 below). In yet another related embodiment, the caninized mammalian antibody cross-competes with an antibody comprising the six CDRs of 22A11 (see Table 1 below). In yet another related embodiment, the caninized mammalian antibody cross-competes with an antibody comprising the six CDRs of 110E3 (see Table 1 below). In a specific embodiment, the caninized mammalian antibody cross-competes with an antibody comprising the six CDRs of 12B3 (see Tables 1 and 3 below). In another particular embodiment, the caninized mammalian antibody cross-competes with an antibody comprising the six CDRs of 39A11 (see Tables 1 and 3 below). In certain embodiments, the assay is a standard binding assay. In one such embodiment, the standard binding assay is performed using BIACore®. In another such embodiment, the standard binding assay is performed using ELISA. In yet another such embodiment, the standard binding assay is performed by flow cytometry.

[0043] As indicated above, the antibodies (and antigen-binding fragments thereof) of the present invention, including the antibodies (and antigen-binding fragments thereof), can be monoclonal antibodies (and antigen-binding fragments thereof), mammalian antibodies (and antigen-binding fragments thereof), e.g., murine (mouse) antibodies (and antigen-binding fragments thereof), caninized antibodies (and antigen-binding fragments thereof), e.g., caninized mouse antibodies (and antigen-binding fragments thereof). In certain embodiments, the antibodies (and antigen-binding fragments thereof) are isolated.

[0044] In preferred embodiments, caninized antibodies or antigenic fragments thereof of the invention bind to an epitope in the amino acid sequence of canine CTLA-4. In a specific embodiment, the caninized antibody interacts with one or more of the amino acid residues at positions T35, R38, T51, T53, Y90, K93, Y98, and Y102 of the amino acid sequence of SEQ ID NO: 138. In another embodiment, the caninized antibody interacts with one or more of the amino acid residues at positions 35T, R38, S42, K93, and Y102 of the amino acid sequence of SEQ ID NO: 138.

[0045] The present invention further provides caninized antibodies that bind to one or more epitopes or portions thereof of the amino acid sequences of SEQ ID NO: 132, SEQ ID NO: 133, SEQ ID NO: 134, SEQ ID NO: 135, SEQ ID NO: 136, and SEQ ID NO: 137. In a specific embodiment, a caninized antibody of the invention, or an antigenic fragment thereof, binds to an epitope or portion thereof comprised by the amino acid sequence of SEQ ID NO: 132. In a more specific embodiment of this type, the epitope or portion thereof comprises the amino acid sequence of SEQ ID NO: 134. In another embodiment of this type, the epitope or portion thereof comprises the amino acid sequence of SEQ ID NO: 135. In a specific embodiment, the epitope or portion thereof comprises the amino acid sequence of SEQ ID NO: 133. In a more specific embodiment of this type, the epitope or portion thereof comprises the amino acid sequence of SEQ ID NO: 136. In a related embodiment, the caninized antibody binds to one or more epitopes or portions thereof comprised by the amino acid sequence of SEQ ID NO: 134 and / or SEQ ID NO: 136 and / or SEQ ID NO: 135.

[0046] The present invention further provides nucleic acids (including isolated and / or recombinant nucleic acids) encoding any one of the light chains of the caninized antibodies of the present invention. Similarly, the present invention provides isolated nucleic acids (including isolated and / or recombinant nucleic acids) encoding any one of the heavy chains of the caninized antibodies of the present invention.

[0047] The present invention further provides expression vectors comprising one or more of the nucleic acids (which includes isolated nucleic acids) of the present invention. The present invention further provides host cells comprising one or more expression vectors of the present invention.

[0048] In certain embodiments, the antibody is a recombinant antibody or antigen-binding fragment thereof. In related embodiments, the variable heavy domain and the variable light domain are linked by a flexible linker to form a single-chain antibody. In certain embodiments, the antibody or antigen-binding fragment is a Fab fragment. In another embodiment, the antibody or antigen-binding fragment is a Fab' fragment. In yet another embodiment, the antibody or antigen-binding fragment is a (Fab')2 fragment. In yet another embodiment, the antibody or antigen-binding fragment is a diabody. In certain embodiments, the antibody or antigen-binding fragment is a domain antibody. In certain embodiments, the antibody or antigen-binding fragment is a single-domain antibody.

[0049] In certain embodiments, the caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment binds to CTLA-4 in an animal subject (e.g., a dog) being treated for cancer. In more specific embodiments, administration of the caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment of the invention helps ameliorate one or more symptoms of cancer in the animal subject (e.g., a dog) being treated.

[0050] The present invention further provides isolated nucleic acids encoding caninized murine anti-canine CTLA-4 antibodies or portions thereof. In related embodiments, such antibodies or antigen-binding fragments can be used in the preparation of a medicament for treating cancer in a canine subject. Alternatively, or in combination, the present invention provides the use of any of the antibodies or antibody fragments of the present invention for diagnostic uses. In yet additional embodiments, kits are provided that include any of the caninized antibodies or antigen-binding fragments disclosed herein.

[0051] The present invention further provides isolated peptides that bind to caninized antibodies of the invention, comprising 5 to 25 amino acid residues, and that are 90% or more identical to the amino acid sequence of SEQ ID NO: 132. In particular embodiments, the isolated peptide is identical to the amino acid sequence of SEQ ID NO: 132. In more particular embodiments, the isolated peptide comprises 10 to 20 amino acid residues. In related embodiments, the isolated peptide binds to caninized antibodies of the invention, comprising 5 to 25 amino acid residues, and that are 90% or more identical to the amino acid sequence of SEQ ID NO: 133. In particular embodiments, the isolated peptide is identical to the amino acid sequence of SEQ ID NO: 133. In more particular embodiments of this type, the isolated peptide comprises 10 to 20 amino acid residues.

[0052] In yet another embodiment, an isolated peptide that binds to a caninized antibody of the invention comprises an amino acid sequence that is 90% or more identical to the amino acid sequence of SEQ ID NO: 134. In yet another embodiment, an isolated peptide comprises an amino acid sequence that is identical to the amino acid sequence of SEQ ID NO: 134. In another embodiment, an isolated peptide that binds to a caninized antibody of the invention comprises an amino acid sequence that is 90% or more identical to the amino acid sequence of SEQ ID NO: 135. In yet another embodiment, an isolated peptide comprises an amino acid sequence that is 90% or more identical to the amino acid sequence of SEQ ID NO: 135. In another embodiment, an isolated peptide that binds to a caninized antibody of the invention comprises an amino acid sequence that is 90% or more identical to the amino acid sequence of SEQ ID NO: 136. In yet another embodiment, an isolated peptide comprises an amino acid sequence that is identical to the amino acid sequence of SEQ ID NO: 136.

[0053] The present invention further provides fusion proteins comprising such isolated peptides that bind to caninized antibodies of the invention. The present invention further provides fusion proteins comprising any of the above peptides. In specific embodiments, the fusion protein comprises such an antigenic peptide and the Fc region of a non-canine mammalian IgG antibody. In more specific embodiments, the fusion protein comprises the Fc region of a non-canine mammalian IgG antibody. In specific embodiments, the non-canine mammalian IgG antibody is a mouse IgG. In alternative embodiments, the non-canine mammalian IgG antibody is a human IgG. In another embodiment, the non-canine mammalian IgG antibody is an equine IgG. In yet another embodiment, the non-canine mammalian IgG antibody is a porcine IgG. In yet another embodiment, the non-canine mammalian IgG antibody is a bovine IgG.

[0054] In a specific embodiment, the non-canine mammal IgG antibody is an IgG1. In another embodiment, the non-canine mammal IgG antibody is an IgG2a. In yet another embodiment, the non-canine mammal IgG antibody is an IgG3. In yet another embodiment, the non-canine mammal IgG antibody is an IgG4. In another embodiment, the fusion protein comprises any of the above antigenic peptides and maltose binding protein. In yet another embodiment, the fusion protein comprises any of the above antigenic peptides and beta-galactosidase. In yet another embodiment, the fusion protein comprises any of the above antigenic peptides and glutathione S-transferase. In yet another embodiment, the fusion protein comprises any of the above antigenic peptides and thioredoxin. In yet another embodiment, the fusion protein comprises any of the above antigenic peptides and Gro EL. In yet another embodiment, the fusion protein comprises any of the above antigenic peptides and NusA.

[0055] The present invention further provides nucleic acids (which include isolated and / or recombinant nucleic acids) encoding one or more isolated immunogenic and / or antigenic peptides and / or fusion proteins of the invention. The present invention further provides expression vectors comprising such isolated nucleic acids, and host cells comprising one or more expression vectors of the invention.

[0056] The pharmaceutical composition may further comprise an antigenic peptide from canine CTLA-4 (including isolated antigenic peptides), a fusion protein comprising an antigenic peptide from canine CTLA-4 of the present invention, a nucleic acid (including isolated nucleic acid) encoding an antigenic fragment and / or fusion protein of the present invention, an expression vector comprising such a nucleic acid, or any combination thereof, and a pharmaceutically acceptable carrier or diluent. Furthermore, the present invention encompasses pharmaceutical compositions comprising an anti-canine CTLA-4 antibody (including caninized murine anti-canine CTLA-4 antibody) or an antigen-binding fragment thereof of the present invention. Such pharmaceutical compositions may be used to treat cancer, infections, or infectious diseases, may be used as vaccine adjuvants, and / or may be used in methods of increasing immune cell activity, wherein the method comprises administering a therapeutically effective amount of the pharmaceutical composition to a subject in need thereof.

[0057] In certain embodiments, such pharmaceutical compositions further comprise an anti-canine PD-1 antibody (including a caninized murine anti-canine PD-1 antibody) or an antigen-binding fragment thereof. In more specific embodiments, the anti-canine PD-1 antibody is a caninized murine anti-canine PD-1 antibody or an antigen-binding fragment of a caninized murine anti-canine PD-1 antibody.

[0058] In related embodiments, such pharmaceutical compositions further comprise an anti-canine PD-L1 antibody (including a caninized murine anti-canine PD-L1 antibody) or an antigen-binding fragment thereof. In certain embodiments, the anti-canine PD-L1 antibody is a caninized murine anti-canine PD-1 antibody or an antigen-binding fragment of a caninized murine anti-canine PD-1 antibody.

[0059] Accordingly, the present invention provides pharmaceutical compositions comprising one, two, three, or more of the following: an anti-canine PD-L1 antibody, an anti-canine PD-1 antibody, an anti-canine CTLA-4 antibody, an antigen-binding fragment of an anti-canine PD-L1 antibody, an antigen-binding fragment of an anti-canine PD-1 antibody, or an antigen-binding fragment of an anti-canine CTLA-4 antibody. In a specific embodiment, such an anti-canine protein (i.e., anti-canine PD-L1, PD-1, or CTLA-4) antibody or antigen-binding fragment thereof is a murine anti-canine protein antibody. In another embodiment, such an anti-canine protein antibody or antigen-binding fragment thereof is a caninized anti-canine protein antibody. In a more specific embodiment, the anti-canine protein antibody or antigen-binding fragment thereof is a caninized murine anti-canine protein antibody.

[0060] The present invention further provides a method for increasing immune cell activity, comprising administering a therapeutically effective amount of a pharmaceutical composition of the present invention to a subject in need thereof. In a specific embodiment, the method is used in the treatment of cancer. In another embodiment, the method is used in the treatment of an infection or infectious disease. In yet another embodiment, the caninized antibody or antigen-binding fragment thereof of the present invention is used as a vaccine adjuvant. In a specific embodiment, a pharmaceutical composition comprising a caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof can be administered before, after, or simultaneously with a caninized murine anti-canine PD-1 antibody or antigen-binding fragment thereof and / or a caninized murine anti-canine PD-L1 antibody or antigen-binding fragment thereof.

[0061] These and other aspects of the present invention will be better understood by reference to the following Brief Description of the Drawings and Detailed Description. [Brief explanation of the drawings]

[0062] [Figure 1] Figure 1 shows the binding activity of six antibodies to canine CTLA-4 (cCTLA-4). Accordingly, Figure 1 represents a plot of the amount of individual canine CTLA-4 antibodies in ng / mL (Ab Log) added to canine CTLA-4 in an ELISA demonstrating the binding activity of the antibodies to cCTLA-4. The individual antibodies to canine CTLA-4 are designated 27G12, 110E3, 12B3, 45A9, 39A11, and 22A11. [Figure 2] Figure 2 shows antibodies that block the interaction between canine CD86 and CTLA-4. The figure shows a plot of the amount of individual canine CTLA-4 antibodies in ng / mL (Ab Log) added to cCTLA-4 to block the binding of canine CTLA-4 to CD86. The individual antibodies against canine CTLA-4 are identified as 39A11, 27G12, 45A9, 12B3, 110E3, and 22A11. As shown in the figure, the antibodies are able to block the interaction between canine CD86 and CTLA-4. [Figure 3] Figure 3 shows antibodies that block the interaction of canine CD80 with CTLA-4. The figure shows a plot of the amount of individual canine CTLA-4 antibodies in ng / mL (Ab Log) added to cCTLA-4 to block the binding of canine CTLA-4 to CD80. The individual antibodies against canine CTLA-4 are designated 39A11, 27G12, 45A9, 12B3, 110E3, and 22A11. As shown in the figure, the antibodies can also block the interaction of canine CD80 with CTLA-4. [Figure 4]Figures 4A-4G show antibodies binding to CHO cells expressing canine CTLA-4. Figure 4A is the Iso control, Figure 4B is 39A11, Figure 4C is 27G12, Figure 4D is 12B3, Figure 4E is 45A9, Figure 4F is 110E3, and Figure 4G is 22A11. As shown in the figures, the antibodies are capable of binding to CHO cells expressing cCTLA-4. [Figure 5] Figure 5 shows a bar graph quantifying the reduction in three concentrations of individual canine CTLA-4 antibodies added at 25 μg / mL, 50 μg / mL, or 100 μg / mL (Ab) to activate canine PBMC cells to produce IFNγ in the presence of concanavalin A (CoA). The antibodies tested are on the horizontal axis and are labeled CTLA-4 monoclonal antibodies (xCTLA-4 mAb). As shown in the figure, the antibodies are capable of activating canine PBMC cells to produce IFNγ. [Figure 6] Figure 6 shows a plot of the amount of CTLA-4 monoclonal antibody (xCTLA-4; Ab Log ng / mL) that has the same reactivity with canine CTLA-4 as the parent antibody. ELISA results demonstrate that both 12B3 and 39A11 were successfully caninized. Caninized c12B3L3H2 and L3H3 have similar reactivity with cCTLA-4 as the parent 12B3, and caninized c39A11L3H3 has similar reactivity with cCTLA-4 as the parent 39A11. [Figure 7] Figures 7A-7B show the binding epitopes on cCTLA-4 for c12B3 (Figure 7A) and c39A11 (Figure 7B). Two regions of the canine CTLA-4 protein are represented, and the two regions have the amino acid sequences of SEQ ID NO: 132 and SEQ ID NO: 133, respectively (see Table 8 below). Both antibodies bind to the amino acid sequence of SEQ ID NO: 136 (which contains the MYPPPY motif (SEQ ID NO: 137)) and the amino acid sequence of SEQ ID NO: 134. c12B3 also binds to the amino acid sequence of SEQ ID NO: 135. DETAILED DESCRIPTION OF THE INVENTION

[0063] Abbreviation The following abbreviations are used throughout the detailed description and examples of the present invention: [Table 1] TIFF0007757271000002.tif70165

[0064] definition So that the present invention may be more readily understood, certain technical and scientific terms are defined below. Unless specifically defined elsewhere herein, all other technical and scientific terms used herein have the meaning commonly understood by one of ordinary skill in the art to which this invention belongs.

[0065] As used in this specification, including the appended claims, the singular forms of words such as "a," "an," and "the" include their corresponding plural references unless the context clearly dictates otherwise.

[0066] "CTLA-4" is an abbreviation for "cytotoxic T-lymphocyte-associated protein 4," also known as CD152 (cluster of differentiation 152), a protein receptor that functions as an immune checkpoint to downregulate immune responses. The amino acid sequence of canine CTLA-4 is SEQ ID NO: 126. The present invention further provides a caninized murine antibody against canine CTLA-4.

[0067] "Activation" as applied to a cell or receptor means activation or treatment of the cell or receptor with a ligand, unless the context or explicitly indicates otherwise. "Activation" can refer to cell activation regulated by internal mechanisms as well as cell activation regulated by external or environmental factors.

[0068] "Ligand" encompasses natural and synthetic ligands, such as binding compounds derived from cytokines, cytokine variants, analogs, muteins, and antibodies. "Ligand" also encompasses small molecules, such as peptide mimetics of cytokines and peptide mimetics of antibodies.

[0069] The "activity" of a molecule can be expressed or indicated in terms of: binding of the molecule to a ligand or receptor, catalytic activity; ability to stimulate gene expression or cell signaling, differentiation or maturation; antigenic activity, modulation of the activity of other molecules, etc. The "activity" of a molecule can also be indicated in terms of activity in modulating or maintaining cell-cell interactions (e.g., adhesion) or activity in maintaining cellular structure (e.g., cell membrane or cytoskeleton). "Activity" can also refer to specific activity, e.g., [catalytic activity] / [mg protein] or [immunological activity] / [mg protein], concentration in a biological compartment, etc. "Activity" can also refer to modulation of components of the innate or adaptive immune system.

[0070] "Administration" and "treatment," when applied to an animal (e.g., a canine subject), cell, tissue, organ, or biological fluid, refer to contacting an exogenous pharmaceutical, therapeutic, diagnostic agent, or composition to the animal (e.g., a canine subject), cell, tissue, organ, or biological fluid. Treatment of a cell encompasses contacting a reagent to a cell and contacting a reagent to a biological fluid (where the biological fluid contacts the cell).

[0071] "Administration" and "treatment" can also mean in vitro and ex vivo treatments, eg, of a cell, by a reagent, diagnostic, binding compound, or by another cell.

[0072] The term "subject" includes any living organism, preferably an animal, more preferably a mammal (eg, a dog, cat, or human), and most preferably a dog.

[0073] "Treat" or "treating" means administering a therapeutic agent (e.g., a composition comprising any of the antibodies or antigen-binding fragments of the invention) internally or externally to a subject or patient, e.g., a dog, having one or more symptoms of or suspected of suffering from a disease for which the therapeutic agent has therapeutic activity.

[0074] Typically, a therapeutic agent is administered in an amount effective to reduce and / or ameliorate one or more disease symptoms in the subject or population being treated, by inducing a clinically measurable regression of the symptom(s) or preventing the progression of the symptom(s). The amount of a therapeutic agent effective to reduce a particular disease symptom (also referred to as a "therapeutically effective amount") may vary depending on factors such as the disease symptoms, age, and weight of the patient (e.g., dog), and the ability of the pharmaceutical composition to elicit a desired response in the subject. Reduction or amelioration of a disease symptom can be assessed by any clinical measurement typically used by a veterinarian or another skilled healthcare provider to assess the severity or progression of the symptom. An embodiment of the invention (e.g., a method of treatment or article of manufacture) may not be effective in reducing the target disease symptom(s) in all subjects, but should reduce the target disease symptom(s) in a statistically significant number of subjects as determined by any statistical test known in the art (e.g., Student's t-test, chi-squared test, Mann-Whitney U test, Kruskal-Wallis test (H test), Joncke-Tapstra test, and Wilcoxon test).

[0075] "Treatment," when applied to a human subject, veterinary subject (e.g., a dog), or research subject, refers to therapeutic treatment as well as research and diagnostic uses. When applied to a human subject, veterinary subject (e.g., a dog), or research subject, or a cell, tissue, or organ, "treatment" encompasses contacting an antibody or antigen-binding fragment of the invention with, for example, a dog or other animal subject, cell, tissue, physiological compartment, or physiological fluid.

[0076] As used herein, the term "dog" includes all domestic dogs, domestic dogs (Canis lupus familiaris) or members of the Canidae genus (Canis familiaris), unless otherwise indicated.

[0077] As used herein, the term "cat" refers to any member of the family Felidae, including wild, zoo, and domestic members, such as domestic cats, purebred and / or mixed-breed companion cats, show cats, laboratory cats, cloned cats, and wild or feral cats.

[0078] As used herein, the term "canine frame" refers to the amino acid sequences of the heavy and light chains of a canine antibody, excluding the hypervariable region residues, which are defined herein as CDR residues. In the context of caninized antibodies, in most embodiments, the amino acid sequences of the native canine CDRs are replaced in both chains with the corresponding heterologous CDRs (e.g., CDRs from a murine antibody). Optionally, the heavy and / or light chains of the canine antibody can contain some heterologous non-CDR residues to preserve the conformation of the heterologous CDRs in the canine antibody and / or to modify Fc function, e.g., as exemplified below.

[0079] Canine CTLA-4 has been found to comprise the amino acid sequence of SEQ ID NO: 126, including the signal sequence. In certain embodiments, canine CTLA-4 is encoded by a nucleic acid comprising the nucleotide sequence of SEQ ID NO: 125. Although canine CTLA-4 sequences may differ, for example, by having conserved mutations in non-conserved regions, canine CTLA-4 has substantially the same biological function as canine CTLA-4 comprised by the amino acid sequence of SEQ ID NO: 126.

[0080] As used herein, "substitution of an amino acid residue" with another amino acid residue, e.g., within the amino acid sequence of an antibody, is equivalent to "replacing an amino acid residue" with another amino acid residue and means that a particular amino acid residue at a particular position within the amino acid sequence is replaced (or substituted) with a different amino acid residue. Such substitutions can be specifically designed, i.e., alanine can be deliberately replaced with serine at a particular position within the amino acid sequence, for example, by recombinant DNA techniques. Alternatively, a particular amino acid residue or series of amino acid residues of an antibody can be replaced with one or more amino acid residues through a more natural selection process, e.g., based on the ability of an antibody produced by a cell to bind to a given region of its antigen (e.g., a region containing an epitope or portion thereof) and / or such that the antibody contains a particular CDR that retains the same canonical structure as the replaced CDR. Such substitutions / replacements can result in "mutated" CDRs and / or mutant antibodies.

[0081] The costimulatory signaling pathway leads to the development of an immune response and has been shown to be mediated by the interaction of CD28 with CD80 (also known as B7.1) and CD86 (also known as B7.2) on the surface of T cells. CTLA-4 binds to both CD80 and CD86 with significantly higher affinity than CD28, thereby functioning as an inhibitory receptor essential for down-modulation of immune responses. Indeed, the mechanism by which CTLA-4 mediates its immunosuppressive function is related to its ability to act as a competitive inhibitor of the interaction of CD28 with CD80 and CD86. Accordingly, the present invention describes the production and characterization of monoclonal antibodies that block the binding of canine CD80 and canine CD86 to CTLA-4, thereby enabling costimulatory signaling via the binding of canine CD28 to canine CD80 and CD86. Accordingly, these antibodies have utility in the treatment of cancer and other diseases in companion animals as disclosed herein.

[0082] A particular canine CTLA-4 amino acid sequence is generally at least 90% identical to canine CTLA-4 comprising the amino acid sequence of SEQ ID NO: 126, excluding the signal sequence. In certain cases, canine CTLA-4 can be at least 95%, or even at least 96%, 97%, 98%, or 99% identical to canine CTLA-4 comprising the amino acid sequence of SEQ ID NO: 126, excluding the signal sequence. In certain embodiments, canine CTLA-4 amino acid sequence exhibits no more than 10 amino acid differences from canine CTLA-4 comprising the amino acid sequence of SEQ ID NO: 126, excluding the signal sequence. In certain embodiments, canine CTLA-4 amino acid sequence may exhibit no more than 5 amino acid differences, or even no more than 4, no more than 3, no more than 2, or no more than 1 amino acid differences from canine CTLA-4 comprising the amino acid sequence of SEQ ID NO: 126, excluding the signal sequence. Percent identity can be confirmed as described herein below.

[0083] The term "immune response" refers to the actions of lymphocytes, antigen-presenting cells, phagocytes, granulocytes, and soluble macromolecules (e.g., antibodies, cytokines, and complement) produced by such cells or the liver that result in selective damage to, destruction of, or removal from the mammalian body (e.g., the canine body) of, for example, cancer cells, pathogen-infected cells or tissues, or invading pathogens.

[0084] Anti-canine CTLA-4 antibody The present invention provides isolated antibodies (particularly murine anti-canine CTLA-4 antibodies and caninized antibodies thereof) or antigen-binding fragments thereof that bind to canine CTLA-4, and uses of such antibodies or fragments. In certain embodiments, murine anti-canine CTLA-4 CDRs derived from murine anti-canine CTLA-4 antibodies are provided, which have been shown to both bind to canine CTLA-4 and block binding of canine CTLA-4 to one or both of its ligands (canine CD86 or CD80). These CDRs can be inserted into a modified canine frame of a canine antibody to generate a caninized murine anti-canine CTLA-4 antibody.

[0085] As used herein, "anti-canine CTLA-4 antibody" refers to an antibody that is raised against canine CTLA-4 (e.g., in a mammal such as a mouse or rabbit) and specifically binds to canine CTLA-4. An antibody that "specifically binds to canine CTLA-4," and in particular, an antibody that "specifically binds to canine CTLA-4" or an antibody that "specifically binds to a polypeptide containing the amino acid sequence of canine CTLA-4" is an antibody that exhibits preferential binding to canine CTLA-4 compared to other canine antigens, although this binding does not require absolute binding specificity. An anti-canine CTLA-4 antibody is considered "specific" for canine CTLA-4 if its binding determines the presence of canine CTLA-4 in a sample limited to canine proteins, or if it can alter the activity of canine CTLA-4 without unduly interfering with the activity of other molecules in the canine sample (e.g., without causing undesirable results such as false positives in a diagnostic setting or side effects in a therapeutic setting). The degree of specificity required for an anti-canine CTLA-4 antibody may depend on the intended use of the antibody and, in any event, is defined by its suitability for use for its intended purpose. The antibody or binding compound derived from the antigen-binding portion of the antibody of the contemplated method binds to the antigen or its variant or mutein with an affinity that is at least 2-fold greater, preferably at least 10-fold greater, more preferably at least 20-fold greater, and most preferably at least 100-fold greater than the affinity for any other canine antigen.

[0086] As used herein, an antibody is said to specifically bind to a polypeptide containing a given antigen sequence (in this case, a portion of the amino acid sequence of canine CTLA-4) if it binds to a polypeptide containing a portion of the amino acid sequence of canine CTLA-4, but not to another canine protein lacking that portion of the canine CTLA-4 sequence. For example, an antibody that specifically binds to a polypeptide containing canine CTLA-4 may bind to a FLAG®-tagged form of canine CTLA-4, but not to another FLAG®-tagged canine protein. An antibody or binding compound derived from the antigen-binding site of an antibody "specifically" binds to a canine antigen or its variant or mutein if it has an affinity for that canine antigen or variant or mutein thereof that is at least 10-fold greater, more preferably at least 20-fold greater, and even more preferably at least 100-fold greater than its affinity for other canine antigens being tested.

[0087] As used herein, the term "antibody" refers to any form of antibody that exhibits the desired biological activity. It is therefore used in the broadest sense and specifically includes, but is not limited to, monoclonal antibodies (which include full-length monoclonal antibodies), polyclonal antibodies, multispecific antibodies (e.g., bispecific antibodies), canonized antibodies, whole canine antibodies, chimeric antibodies, and camelized single domain antibodies. A "parent antibody" is an antibody obtained by exposure of the immune system to an antigen prior to modification of the antibody for its intended use (e.g., caninization of an antibody for use as a canine therapeutic antibody).

[0088] As used herein, unless otherwise indicated, "antibody fragment" or "antigen-binding fragment" refers to an antigen-binding fragment of an antibody, i.e., an antibody fragment that retains the ability to specifically bind to the antigen bound by the full-length antibody (e.g., a fragment that retains one or more CDR regions). Examples of antigen-binding fragments include, but are not limited to, Fab, Fab', F(ab')2, and Fv fragments; diabodies; linear antibodies; single-chain antibody molecules, e.g., sc-Fv; nanobodies; and multispecific antibodies formed from antibody fragments.

[0089] A "Fab fragment" is a fragment of one light chain and one heavy chain. H The heavy chain of a Fab molecule is incapable of forming disulfide bonds with another heavy chain molecule. An "Fab fragment" can be the product of papain cleavage of an antibody.

[0090] The "fragment crystallizable" ("Fc") region of an antibody H 3 and C H The two heavy chain fragments contain two domains, and the two heavy chain fragments are connected by two or more disulfide bonds and C H The three domains are held together by hydrophobic interactions.

[0091] A "Fab' fragment" is a fragment that contains one light chain and one V H Domain and C H 1 domain and further C H 1 Domain and C H It contains a portion or fragment of one heavy chain, including the region between the two domains, so that interchain disulfide bonds can form between the two heavy chains of the two Fab' fragments to form an F(ab')2 molecule.

[0092] "F(ab')2 fragment" refers to a fragment that contains two light chains and a C H 1 Domain and C HThe F(ab')2 fragment contains two heavy chains with a portion of the constant region between the two domains, thereby forming an interchain disulfide bond between the two heavy chains. The F(ab')2 fragment therefore consists of two Fab' fragments linked by a disulfide bond between the two heavy chains. The "F(ab')2 fragment" may be the product of pepsin cleavage of an antibody.

[0093] The "Fv region" comprises the variable regions from both the heavy and light chains, but lacks the constant regions.

[0094] The term "single chain Fv antibody" or "scFv antibody" refers to the V of an antibody. H Domain and V L

[0033] An Fv polypeptide refers to an antibody fragment containing V domains, where these domains are present in a single polypeptide chain. Generally, the Fv polypeptide contains V domains that enable the scFv to form the desired structure for antigen binding. H Domains and V L It further comprises a polypeptide linker between the domains [see, for example, Pluckthun, THE PHARMACOLOGY OF MONOCLONALANTIBODIES, vol. 113 Rosenburg and Moore eds., Springer-Verlag, New York, pp. 269-315 (1994); WO88 / 01649; and US Pat. Nos. 4,946,778 and 5,260,203].

[0095] As used herein, an anti-canine CTLA-4 antibody or antigen-binding fragment thereof that "blocks" or "blocking" or "binding-blocking" the binding of canine CTLA-4 to its binding partner (ligand) (e.g., canine CD80 or canine CD86) is an anti-canine CTLA-4 antibody or antigen-binding fragment thereof that blocks (partially or completely) the binding of canine CTLA-4 to canine CD86 and / or canine CD80 as determined by a standard binding assay (e.g., BIACore®, ELISA, or flow cytometry). Such "blocking" is exemplified in Example 4 below using an ELISA-based blocking assay.

[0096] As used herein, the term "canonical structure" refers to the local conformation that each of the hypervariable regions of an antibody's heavy and light chains can adopt within the framework they reside in. For each hypervariable region, there are a small number of canonical structures (generally represented by a simple integer such as 1 or 2) that can be predicted with a high degree of accuracy from the amino acid sequence of the corresponding hypervariable region (particularly in light of the amino acid sequence of its framework for the corresponding anti-canine CTLA-4 variable domain). These canonical structures can be determinative as to whether modification of the amino acid sequence of a given CDR results in retention or loss of the ability to bind to its antigen-binding partner (see Chothia and Lesk, Canonical Structures for the hypervariable regions of immunoglobulins, J. Mol. Biol. 196:901-917 (1987); Chothia et al., Conformation of immunoglobulin hypervaribale regions, Nature, 34:877-883 (1989); and Al-Lazikani et al., Standard Conformations for the canonical structures of immunoglobulins, J. Mol. Biol. 273:927-948 (1997)).

[0097] A "domain antibody" is an immunologically functional immunoglobulin fragment that contains only the variable region of a heavy chain or the variable region of a light chain. In some instances, two or more V H The domains are covalently linked with a peptide linker to create a bivalent domain antibody. H The regions can target the same antigen or different antigens.

[0098] A "bivalent antibody" contains two antigen-binding sites. In some instances, the two binding sites have the same antigen specificity. However, a bivalent antibody can be bispecific (see below).

[0099] In certain embodiments, the monoclonal antibodies herein also encompass camelized single-domain antibodies. [See, e.g., Muyldermans et al., Trends Biochem. Sci. 26:230 (2001); Reichmann et al., J. Immunol. Methods 231:25 (1999); WO 94 / 04678; WO 94 / 25591; US ​​6,005,079]. In one embodiment, the present invention provides a method for producing single-domain antibodies comprising the steps of: (a) forming a single-domain antibody comprising two V-domains modified to form a single-domain antibody; (b) forming a single-domain antibody comprising two V-domains modified to form a single-domain antibody; and (c) forming a single-domain antibody comprising two V-domains modified to form a single-domain antibody. H Single domain antibodies containing domains are provided.

[0100] As used herein, the term "diabody" refers to a small antibody fragment with two antigen-binding sites, which fragment contains a light chain variable domain (V) within the same polypeptide chain. L ) linked to a heavy chain variable domain (V H ) including (V H -V L , or V L -V H ). By using a linker that is too short to allow pairing between the two domains on the same chain, the domains are forced to pair with the complementary domains of another chain and create two antigen-binding sites. [See, for example, EP 0404097 B1; WO 93 / 11161; and Holliger et al., Proc. Natl. Acad. Sci. USA 90:6444-6448 (1993)]. For a review of engineered antibody variants, see generally, Holliger and Hudson Nat. Biotechnol. 23:1126-1136 (2005)].

[0101] Typically, antibodies or antigen-binding fragments of the invention retain at least 10% of their canine CTLA-4 binding activity (expressed on a molar basis) compared to their parent antibody. Preferably, antibodies or antigen-binding fragments of the invention retain at least 20%, 50%, 70%, 80%, 90%, 95%, or 100% or more of the canine CTLA-4 binding affinity of the parent antibody. Furthermore, it is also contemplated that antibodies or antigen-binding fragments of the invention can contain conservative or non-conservative amino acid substitutions (also referred to as "conservative variants" or "function-conservative variants" of antibodies) that do not substantially alter their biological activity.

[0102] "Isolated antibody" refers to a purified state, and in that context means that the molecule is substantially free of other biological molecules (e.g., nucleic acids, proteins, lipids, carbohydrates) or other substances (e.g., cell debris and growth medium). In general, the term "isolated" is not intended to imply the complete absence of such substances, or the absence of water, buffers, or salts, unless such substances, or water, buffers, or salts, are present in amounts that would substantially interfere with experimental or therapeutic uses of the binding compounds described herein.

[0103] As used herein, a "chimeric antibody" is an antibody having variable domains derived from a first antibody and constant domains derived from a second antibody, where the first and second antibodies are derived from different species. [US 4,816,567; and Morrison et al., Proc. Natl. Acad. Sci. USA 81:6851-6855 (1984)]. Typically, the variable domains are obtained from an antibody derived from a laboratory animal such as a rodent (the "parent antibody"), and the constant domain sequences are obtained from the animal subject antibody, so that the resulting chimeric antibody is less likely to provoke an adverse immune response in human and canine subjects, respectively, than the parent (e.g., rodent) antibody.

[0104] As used herein, the term "caninized antibody" refers to a form of antibody that contains sequences derived from both canine and non-canine (e.g., murine) antibodies. Generally, caninized antibodies contain substantially all of at least one or more, typically two, variable domains, in which all or substantially all of the hypervariable loops correspond to those of a non-canine immunoglobulin (e.g., including the six murine anti-canine CTLA-4 CDRs exemplified below), and all or substantially all of the framework (FR) regions (and typically all or substantially all of the remaining framework) are those of a canine immunoglobulin. As exemplified herein, caninized antibodies contain both three heavy chain CDRs and three light chain CDRs derived from a murine anti-canine CTLA-4 antibody, along with a canine framework or a modified canine framework. The modified canine frame contains one or more amino acid changes exemplified herein that further optimize the effectiveness of the caninized antibody, for example, to increase its binding to canine CTLA-4 and / or to increase its ability to block the binding of canine CTLA-4 to canine CD86 and / or canine CD80.

[0105] The term "fully canine antibody" refers to an antibody that contains only canine immunoglobulin protein sequences. A fully canine antibody may contain mouse carbohydrate chains if produced in a mouse, in a mouse cell, or in a hybridoma derived from a mouse cell. Similarly, a "mouse antibody" refers to an antibody that contains only mouse immunoglobulin sequences. Alternatively, a fully canine antibody may contain rat carbohydrate chains if produced in a rat, in a rat cell, or in a hybridoma derived from a rat cell. Similarly, a "rat antibody" refers to an antibody that contains only rat immunoglobulin sequences.

[0106] There are four known IgG heavy chain subtypes in dog IgG, which are called IgG-A, IgG-B, IgG-C, and IgG-D. The two known light chain subtypes are called lambda and kappa.

[0107] The variable regions of each light / heavy chain pair form the antibody binding site. Thus, an intact antibody generally has two binding sites. Except in bifunctional or bispecific antibodies, the two binding sites are generally identical.

[0108] Typically, both heavy and light chain variable domains contain three hypervariable regions, also called complementarity-determining regions (CDRs), located within relatively conserved framework regions (FRs). The CDRs are usually aligned by the framework regions, thereby enabling binding to a specific epitope. Generally, from N- to C-terminus, both light and heavy chain variable domains contain FR1, CDR1, FR2, CDR2, FR3, CDR3, and FR4. The assignment of amino acids to each domain generally follows the following definitions: Sequences of Proteins of Immunological Interest, Kabat, et al.; National Institutes of Health, Bethesda, Md.; 5 th ed.;NIH Publ.No.91-3242(1991);Kabat,Adv.Prot.Chem.32:1-75(1978);Kabat,et al.,J.Biol.Chem.252:6609-6616(1977);Chothia,et al., J. Mol. Biol. 196:901-917 (1987); or Chothia, et al., Nature 342:878-883 (1989)].

[0109] As used herein, the term "hypervariable region" refers to the amino acid residues of an antibody that are responsible for antigen binding. Hypervariable regions include amino acid residues from the "complementarity-determining regions" or "CDRs" (i.e., CDRL1, CDRL2, and CDRL3 in the light-chain variable domain and CDRH1, CDRH2, and CDRH3 in the heavy-chain variable domain). (See Kabat et al., Sequences of Proteins of Immunological Interest, 5th Ed., Public Health Service, National Institutes of Health, Bethesda, Md. (1991), which defines antibody CDR regions by sequence; see also Chothia and Lesk, J. Mol. Biol. 196: 901-917 (1987), which defines antibody CDR regions by structure.) As used herein, the term "framework" or "FR" residues refers to variable domain residues other than the hypervariable region residues defined herein as CDR residues.

[0110] In certain embodiments of the invention, in addition to binding and activating canine immune cells, canine or caninized antibodies against CTLA-4 optimally possess the two following attributes: 1. Lack of effector functions such as antibody-dependent cellular cytotoxicity (ADCC) and complement-dependent cytotoxicity (CDC); and 2. Easily purified on a large scale using industry standard techniques such as those based on Protein A chromatography.

[0111] None of the naturally occurring canine IgG isotypes meets both criteria. For example, IgG-B can be purified using Protein A, but has high levels of ADCC activity. IgG-A, on the other hand, binds weakly to Protein A, but also exhibits ADCC activity. Furthermore, neither IgG-C nor IgG-D can be purified on a Protein A column, but IgG-D does not exhibit ADCC activity. (IgG-C does exhibit significant ADCC activity.) One way the present invention addresses these problems is by providing engineered canine IgG-B antibodies specific for CTLA-4 that lack effector functions such as ADCC and can be easily purified using industry-standard Protein A chromatography.

[0112] In an alternative embodiment of the invention, the canine IgG-B or IgG-C antibody specific for CTLA-4 has not been intentionally modified to eliminate / substantially reduce effector function such as ADCC, and therefore retains effector function such as ADCC.

[0113] "Homology" refers to the sequence similarity between two polynucleotide sequences or two polypeptide sequences when optimally aligned. If a position in both compared sequences is occupied by the same base or amino acid monomer subunit, e.g., if a position in each of two DNA molecules is occupied by adenine, the molecules are homologous at that position. The percentage of homology is calculated by dividing the number of homologous positions shared by the two sequences by the total number of positions compared and multiplying by 100. For example, if 6 out of 10 positions in two sequences are identical or homologous when the two sequences are optimally aligned, the two sequences are 60% homologous. Generally, such comparisons are performed when the two sequences are aligned to maximize the percent homology.

[0114] An "isolated nucleic acid molecule" means DNA or RNA of genomic, mRNA, cDNA, or synthetic origin, or any combination thereof, where the isolated polynucleotide is not associated with all or a portion of a polynucleotide found in nature or is linked to a polynucleotide with which it is not linked in nature. For purposes of this disclosure, it should be understood that a "nucleic acid molecule comprising" a particular nucleotide sequence does not encompass intact chromosomes. An isolated nucleic acid molecule "comprising" a specified nucleic acid sequence can, in addition to the specified sequence, include coding sequences for up to 10, or even up to 20, or more other proteins or portions or fragments thereof, or can include operably linked regulatory sequences that control expression of the coding region of the described nucleic acid sequence, and / or can include vector sequences.

[0115] The term "control sequences" refers to DNA sequences necessary for the expression of an operably linked coding sequence in a particular host organism. Control sequences suitable for prokaryotes include, for example, a promoter and, optionally, an operator sequence and a ribosome binding site. Eukaryotic cells are known to utilize promoters, polyadenylation signals, and enhancers.

[0116] A nucleic acid is "operably linked" when it is placed into a functional relationship with another nucleic acid sequence. For example, DNA for a presequence or secretory leader is operably linked to DNA for a polypeptide if it is expressed as a preprotein that participates in the secretion of the polypeptide; a promoter or enhancer is operably linked to a coding sequence if it affects the transcription of the coding sequence; or a ribosome binding site is operably linked to a coding sequence if it is positioned so as to promote translation. Generally, "operably linked" means that the DNA sequences being linked are contiguous, and, in the case of a secretory leader, contiguous and in reading phase. However, enhancers need not be contiguous. Linking is accomplished by ligation at convenient restriction sites. If such sites do not exist, synthetic oligonucleotide adaptors or linkers are used in accord with conventional practice.

[0117] As used herein, the expressions "cell," "cell line," and "cell culture" are used interchangeably, and all such designations include progeny. Thus, the words "transformants" and "transformed cells" include the primary subject cell and cultures derived therefrom without regard for the number of passages. It is further understood that not all progeny will have the precise same DNA content, due to deliberate or inadvertent mutations. Mutant progeny that have the same function or biological activity as screened for in the originally transformed cell are included. Where a different designation is intended, it will be clear from the context.

[0118] As used herein, "germline sequence" refers to the sequence of an unrearranged immunoglobulin DNA sequence. Any suitable source of unrearranged immunoglobulin sequences can be used. Human germline sequences can be obtained, for example, from the JOINSOLVER® Germline Database on the website of the National Institute of Arthritis and Musculoskeletal and Skin Diseases of the United States National Institutes of Health. Mouse germline sequences can be obtained, for example, as described in Giudicelli et al. [Nucleic Acids Res. 33:D256-D261 (2005)].

[0119] Characterization of murine anti-canine CTLA-4 and caninized murine anti-canine CTLA-4 antibodies The present invention provides isolated murine anti-canine CTLA-4 antibodies and caninized versions thereof, and methods for using the antibodies or antigen-binding fragments thereof in the treatment of disease (e.g., the treatment of cancer in dogs). In dogs, there are four IgG heavy chains, designated A, B, C, and D. These heavy chains represent four distinct subclasses of canine IgG, designated IgGA, IgGB, IgGC, and IgGD. Each of the two heavy chains consists of one variable domain (VH) and three constant domains, designated CH-1, CH-2, and CH-3. The CH-1 domain is connected to the CH-2 domain via an amino acid sequence designated the "hinge" or alternatively the "hinge region."

[0120] The DNA and amino acid sequences of these four heavy chains were first identified by Tang et al. [Vet. Immunol. Immunopathol. 80: 259-270 (2001)]. The amino acid and DNA sequences for these heavy chains are also available from the GenBank database. For example, the amino acid sequence of the IgGA heavy chain has accession number AAL35301.1, the IgGB has accession number AAL35302.1, the IgGC has accession number AAL35303.1, and the IgGD has accession number AAL35304.1. Canine antibodies also contain two types of light chains, kappa and lambda. The DNA and amino acid sequences of these light chains are also available from the GenBank database. For example, the amino acid sequence of the kappa light chain has accession number ABY57289.1, and the lambda light chain has accession number ABY55569.1.

[0121] In the present invention, the amino acid sequences for each of the four canine IgG Fc fragments are based on the identified boundaries of the CH1 and CH2 domains determined by Tang et al. (supra). Caninized murine anti-canine CTLA-4 antibodies that bind to canine CTLA-4 include, but are not limited to, the following: antibodies comprising canine IgG-A, IgG-B, IgG-C, and IgG-D heavy chains and / or canine kappa light chains together with murine anti-canine CTLA-4 CDRs. Accordingly, the present invention provides isolated murine anti-canine CTLA-4 and / or caninized murine anti-canine CTLA-4 antibodies, or antigen-binding fragments thereof, that bind to canine CTLA-4 and block binding of canine CTLA-4 to canine CD86 and / or canine CD80.

[0122] The present invention further provides full-length canine heavy chains that can be combined with corresponding light chains to create caninized antibodies. Accordingly, the present invention further provides caninized murine anti-canine antigen antibodies (which include isolated caninized murine anti-canine CTLA-4 antibodies) and methods of using the antibodies or antigen-binding fragments thereof in the treatment of disease (e.g., the treatment of cancer in dogs).

[0123] The present invention further provides caninized murine anti-canine CTLA-4 antibodies comprising a canine crystallizable fragment region (cFc region) that has been engineered to increase, reduce, or eliminate one or more effector functions. In one aspect of the invention, the engineered cFc region reduces or eliminates one or more effector functions. In another aspect of the invention, the engineered cFc region increases one or more effector functions. In a specific embodiment, the engineered cFc region is an engineered canine IgGB Fc region. In another such embodiment, the engineered cFc region is an engineered canine IgGC Fc region. In a specific embodiment, the effector function is antibody-dependent cellular cytotoxicity (ADCC), which is increased, reduced, or eliminated. In another embodiment, the effector function is complement-dependent cytotoxicity (CDC), which is increased, reduced, or eliminated. In yet another embodiment, the cFc region is engineered to increase, reduce, or eliminate both ADCC and CDC.

[0124] To generate mutants of canine IgG lacking effector function, a number of mutant canine IgGB heavy chains were generated. These mutants can contain one or more of the following single or multiple substitutions within the Fc portion of the heavy chain amino acid sequence: P4A, D31A, N63A, G64P, T65A, A93G, and P95A. Mutant heavy chains (i.e., heavy chains containing such amino acid substitutions) were cloned into expression plasmids and co-transfected into HEK293 cells with a plasmid containing a gene encoding the light chain. Intact antibodies expressed and purified from HEK293 cells were analyzed by Fc transfection to examine their potential for mediating immune effector function. γ Binding to RI and C1q was assessed [see US 10,106,607 B2, the contents of which are incorporated herein by reference in their entirety].

[0125] The present invention further provides a modified canine IgGD that comprises, in place of its native IgGD hinge region, the hinge region described below. [Table 2]

[0126] Alternatively, the IgGD hinge region can be genetically modified by replacing the serine residue with a proline residue, i.e., PKESTCKCI of SEQ ID NO: 131. P PCPVPES (the proline residue (P) substituting the naturally occurring serine residue is bold and underlined). Such modifications can result in canine IgGD lacking Fab arm exchange. Modified canine IgGD can be constructed using standard methods of recombinant DNA technology [e.g., Maniatis et al., Molecular Cloning, A Laboratory Manual (1982)]. To construct these mutants, a nucleic acid encoding the amino acid sequence of canine IgGD can be modified to encode the modified IgGD. The modified nucleic acid sequence is then cloned into an expression plasmid for protein expression.

[0127] An antibody or antigen-binding fragment thereof that binds to canine CTLA-4 can contain three, four, five, or six of the complementarity determining regions (CDRs) of the murine anti-canine antibodies described herein. The three, four, five, or six CDRs can be independently selected from the CDR sequences provided below. In a further embodiment, the isolated antibody or antigen-binding fragment thereof that binds to canine CTLA-4 comprises a canine antibody kappa or lambda light chain comprising murine light chain CDR-1, CDR-2, and / or CDR-3, and a canine antibody heavy chain IgG comprising murine heavy chain CDR-1, CDR-2, and / or CDR-3.

[0128] In another embodiment, the present invention provides an antibody that specifically binds to canine CTLA-4 and a canine antibody kappa or lambda light chain comprising a given set of three CDRs that comprise at least 80%, 85%, 90%, 95%, 98% or 99% sequence identity with the amino acid sequences of SEQ ID NOs: 92, 94 and 96 for VLCDR-1, VLCDR-2 and VLCDR-3, respectively, and a canine antibody heavy chain IgG comprising a given set of three CDRs that comprise at least 80%, 85%, 90%, 95%, 98% or 99% sequence identity with the amino acid sequences of SEQ ID NOs: 86, 88 and 90 for VHCDR-1, VHCDR-2 and VHCDR-3, respectively; or a canine antibody kappa or lambda light chain comprising a given set of three CDRs that have at least 80%, 85%, 90%, 95%, 98% or 99% sequence identity with the amino acid sequences of SEQ ID NOs: 104, 106 and 108 for VLCDR-1, VLCDR-2 and VLCDR-3, respectively, and a canine antibody heavy chain IgG comprising a given set of different CDRs that have at least 80%, 85%, 90%, 95%, 98% or 99% sequence identity with the amino acid sequences of SEQ ID NOs: 98, 100 and 102 for VHCDR-1, VHCDR-2 and VHCDR-3, respectively; or a canine antibody kappa or lambda light chain comprising a given set of three CDRs that have at least 80%, 85%, 90%, 95%, 98% or 99% sequence identity with the amino acid sequences of SEQ ID NOs: 117, 94 and 96 for VLCDR-1, VLCDR-2 and VLCDR-3, respectively, and a canine antibody heavy chain IgG comprising a given set of different CDRs that have at least 80%, 85%, 90%, 95%, 98% or 99% sequence identity with the amino acid sequences of SEQ ID NOs: 86, 88 and 113 for VHCDR-1, VHCDR-2 and VHCDR-3, respectively; or Provided are canine antibody kappa or lambda light chains comprising a given set of three CDRs that comprise at least 80%, 85%, 90%, 95%, 98% or 99% sequence identity with the amino acid sequences of SEQ ID NOs: 119, 122 and 96 for VLCDR-1, VLCDR-2 and VLCDR-3, respectively, and canine antibody heavy chain IgG comprising a given set of different CDRs that comprise at least 80%, 85%, 90%, 95%, 98% or 99% sequence identity with the amino acid sequences of SEQ ID NOs: 86, 88 and 115 for VHCDR-1, VHCDR-2 and VHCDR-3, respectively, while still exhibiting desirable binding and functional properties. In another embodiment, an antibody or antigen-binding fragment of the invention comprises a canine framework that comprises a combination of a kappa or lambda light chain and an IgG heavy chain sequence having one or more of the above sets of three light chain CDRs and three heavy chain CDRs with 0, 1, 2, 3, 4, or 5 conservative or non-conservative amino acid substitutions, while still exhibiting favorable binding and functional properties.

[0129] Sequence identity refers to the degree to which two polypeptide amino acids are identical at equivalent positions when the two sequences are optimally aligned. As used herein, an amino acid sequence is 100% "identical" to a second amino acid sequence if the amino acid residues in both sequences are identical. Thus, an amino acid sequence is 50% "identical" to a second amino acid sequence if 50% of the amino acid residues in the two amino acid sequences are identical. Sequence comparisons are performed over contiguous blocks of amino acid residues contained in a given protein (e.g., portions of polypeptides or proteins being compared). Certain embodiments take into account selected deletions or insertions that may differentially alter the correspondence between two amino acid sequences.

[0130] Sequence similarity encompasses identical residues and biochemically related non-identical amino acids. Biochemically related amino acids that share similar properties and may be interchangeable are considered.

[0131] "Conservatively modified variants" or "conservative substitutions" refer to the substitution of an amino acid in a protein with another amino acid having similar properties (e.g., charge, side chain size, hydrophobicity / hydrophilicity, backbone conformation and rigidity, etc.), such that changes can often be made without altering the biological activity of the protein. Those skilled in the art will generally recognize that single amino acid substitutions in non-essential regions of a polypeptide will not substantially alter biological activity (see, e.g., Watson et al., Molecular Biology of the Gene, The Benjamin / Cummings Pub. Co., p. 224 (4th Ed.; 1987)). In addition, substitutions of structurally or functionally similar amino acids are less likely to destroy biological activity. Exemplary conservative substitutions are shown in Table A immediately below. [Table 3]

[0132] Function-conservative variants of the antibodies of the present invention are also contemplated by the present invention. As used herein, the term "function-conservative variant" refers to an antibody or fragment in which one or more amino acid residues have been altered without altering desired properties, such as antigen affinity and / or specificity. Such variants include, but are not limited to, those in which a particular amino acid is replaced with an amino acid having similar properties, such as the conservative amino acid substitutions in Table A above.

[0133] nucleic acid The present invention further encompasses nucleic acids encoding the immunoglobulin chains of the murine anti-canine CTLA-4 and / or caninized murine anti-canine CTLA-4 antibodies and antigen-binding fragments thereof disclosed herein (see, e.g., "Examples," below).

[0134] Also encompassed by the present invention are nucleic acids encoding immunoglobulin polypeptides comprising an amino acid sequence that is at least about 70% identical, preferably at least about 80% identical, more preferably at least about 90% identical, and most preferably at least about 95% identical (e.g., 95%, 96%, 97%, 98%, 99%, 100%) to the amino acid sequence of a caninized antibody provided herein, when compared using a BLAST algorithm, where the algorithm parameters are selected to give the largest match between the respective sequences over the entire length of each reference sequence. The present invention further provides nucleic acids encoding immunoglobulin polypeptides comprising an amino acid sequence that is at least about 70% similar, preferably at least about 80% similar, more preferably at least about 90% similar, and most preferably at least about 95% similar (e.g., 95%, 96%, 97%, 98%, 99%, 100%) to any of the reference amino acid sequences when compared using the BLAST algorithm, where the algorithm parameters are selected to give the largest match between the respective sequences over the entire length of each reference sequence, and are also encompassed by the present invention.

[0135] As used herein, percent nucleotide and amino acid sequence identity can be determined using the C, MacVector (MacVector, Inc. Cary, NC 27519), Vector NTI (Informax, Inc. MD), Oxford Molecular Group PLC (1996), and Clustal W algorithms, using default parameters for alignment and identity. These commercially available programs can also be used to determine sequence similarity using the same or similar default parameters. Alternatively, an Advanced Blast search can be performed under default filter conditions, using, for example, the GCG (Genetics Computer Group, Program Manual for the GCG Package, Version 7, Madison, Wisconsin) pileup program with default parameters.

[0136] The following references relate to the BLAST algorithm, which is often used for sequence analysis: BLAST ALGORITHMS: Altschul, S.F., et al., J. Mol. Biol. 215:403-410 (1990); Gish, W., et al., Nature Genet. 3:266-272 (1993); Madden, T.L., et al., Meth. Enzymol. 266:131-141 (1996); Altschul, S.F., et al., Nucleic Acids Res. 25:3389-3402 (1997); Zhang, J., et al., Genome Res. 7:649-656 (1997); Wootton, J.C., et al., Comput. Chem. 17:149-163 (1993); Hancock, J.M. et al., Comput. Appl. Biosci. 10:67-70 (1994); ALIGNMENT SCORING SYSTEMS: Dayhoff, MO, et al., “A model of evolutionary change in proteins.” in Atlas of Protein Sequence and Structure, vol. 5, suppl. 3. MO Dayhoff (ed.), pp. 345-352, (1978); Natl. Biomed. Res. Found., Washington, DC; Schwartz, RM, et al., “Matrices for detecting distant relationships.” in Atlas of Protein Sequence and Structure, vol. 5, suppl. 3.“ (1978), MO Dayhoff (ed.), pp. 353-358 (1978), Natl. Biomed. (1991); States, DJ, et al., Methods 3:66-70(1991); Henikoff, S., et al., Proc. Natl. Acad. Sci. USA 89:10915-10919 (1992); Altschul, SF, et al., J. Mol. Evol. 36:290-300 (1993); ALIGNMENT STATISTICS: Karlin, S., et al., Proc. Natl. Acad. Sci. USA 87:2264-2268 (1990); Karlin, S., et al., Proc. Natl. Acad. Sci. USA 90:5873-5877 (1993); Dembo, A., et al., Ann. Prob. 22:2022-2039 (1994); Altschul, SF “Evaluating the statistical significance of multiple distinct local alignments.” in Theoretical and Computational Methods in Genome Research (S. Suhai, ed.), pp. 1-14, Plenum, New York (1997).

[0137] The invention further provides expression vectors comprising a nucleic acid of the invention, wherein the nucleic acid is operably linked to a control sequence recognized by a host cell when the host cell is transfected with the vector. Also provided are host cells comprising the expression vectors of the invention, and methods for producing the antibodies or antigen-binding fragments thereof disclosed herein, the methods comprising culturing in a medium a host cell harboring an expression vector encoding the antibody or antigen-binding fragment, and isolating the antibody or antigen-binding fragment thereof from the host cell or medium.

[0138] Caninized murine anti-canine CTLA-4 antibodies can be produced recombinantly by methods known in the art. Mammalian cell lines available as hosts for expression of the antibodies or fragments disclosed herein are well known in the art and include many immortalized cell lines available from the American Type Culture Collection (ATCC). These include, among others, Chinese hamster ovary (CHO) cells, NSO, SP2 cells, HeLa cells, baby hamster kidney (BHK) cells, monkey kidney cells (COS), human hepatocellular carcinoma cells (e.g., Hep G2), A549 cells, 3T3 cells, HEK-293 cells, and many other cell lines. Mammalian host cells include human, mouse, rat, dog, monkey, pig, goat, cow, horse, and hamster cells. Particularly preferred cell lines are selected by determining which cell lines have high expression levels. Other cell lines that can be used are insect cell lines, e.g., Sf9 cells, amphibian cells, bacterial cells, plant cells, and fungal cells. When a recombinant expression vector encoding the heavy chain or antigen-binding portion or fragment thereof, and the light chain and / or antigen-binding fragment thereof is introduced into a mammalian host cell, the antibody is produced by culturing the host cell for a period of time sufficient to allow expression of the antibody in the host cell, or more preferably, secretion of the antibody into the medium in which the host cell is grown.

[0139] Antibodies can be recovered from the culture medium using standard protein purification methods. Furthermore, expression of the antibodies of the invention (or other components derived therefrom) from production cell lines can be enhanced using a number of known techniques. For example, the glutamine synthetase gene expression system (GS system) is a common approach for enhancing expression under certain conditions. The GS system is discussed in whole or in part in connection with European Patent Nos. 0216846, 0256055, and 0323997, as well as European Patent Application No. 89303964.4.

[0140] Generally, glycoproteins produced in a particular cell line or transgenic animal have a glycosylation pattern characteristic of the glycoprotein produced in that cell line or transgenic animal. Thus, the specific glycosylation pattern of an antibody will depend on the particular cell line or transgenic animal used to produce the antibody. However, all antibodies encoded by the nucleic acid molecules provided herein or comprising the amino acid sequences provided herein constitute the present invention, regardless of the glycosylation pattern the antibody may have. Similarly, in certain embodiments, antibodies with a glycosylation pattern comprising only nonfucosylated N-glycans may be advantageous, as these antibodies have been shown to typically exhibit stronger potency both in vitro and in vivo than their fucosylated counterparts (see, e.g., Shinkawa et al., J. Biol. Chem. 278:3466-3473 (2003); U.S. Patent Nos. 6,946,292 and 7,214,775).

[0141] The present invention further encompasses antibody fragments of the murine anti-canine CTLA-4 antibodies disclosed herein. Antibody fragments include F(ab)2 fragments, which can be generated, for example, by enzymatic cleavage of IgG with pepsin. Fab fragments can be generated, for example, by reducing F(ab)2 with dithiothreitol or mercaptoethylamine. Fab fragments are composed of V fragments connected by disulfide bridges. H -C H1 V added to the chain L -C L The F(ab)2 fragment is two Fab fragments attached by two disulfide bridges. The Fab portion of an F(ab)2 molecule consists of the F chain with the disulfide bridge between them. c Contains a portion of the area. F V The fragment is V L Area or V H It is an area.

[0142] In one embodiment, the antibody or antigen-binding fragment comprises a heavy chain constant region, e.g., a canine constant region, e.g., an IgGA, IgGB, IgGC, or IgGD canine heavy chain constant region or a variant thereof. In another embodiment, the antibody or antigen-binding fragment comprises a light chain constant region, e.g., a canine light chain constant region, e.g., a lambda or kappa canine light chain region or a variant thereof. By way of example and not limitation, the canine heavy chain constant region can be derived from IgG-B and the canine light chain constant region can be derived from kappa.

[0143] antibody engineering The caninized murine anti-canine CTLA-4 antibodies of the invention can be engineered to contain modifications to the canine framework and / or canine frame residues within the variable domains of the parent (i.e., canine) monoclonal antibody, for example, to improve the properties of the antibody.

[0144] Epitope binding and binding affinity The present invention further provides antibodies or antigen-binding fragments thereof that bind to the same epitope amino acid residues of canine CTLA-4 as the murine anti-canine CTLA-4 antibodies disclosed herein. In certain embodiments, the murine anti-canine CTLA-4 antibodies or antigen-binding fragments thereof are further capable of inhibiting / blocking the binding of canine CTLA-4 to canine CD86 and / or CD80. In related embodiments, the caninized murine anti-canine CTLA-4 antibodies or antigen-binding fragments thereof are also capable of inhibiting / blocking the binding of canine CTLA-4 to canine CD86 and / or CD80.

[0145] Experimental and diagnostic uses The murine anti-canine CTLA-4 and / or caninized murine anti-canine CTLA-4 antibodies or antigen-binding fragments thereof of the present invention may further be useful in diagnostic assays for canine CTLA-4 protein, for example, in detecting its expression in conjunction with and / or associated with cancer.

[0146] For example, such a method may include the following steps: (a) coating a substrate (e.g., the surface of a microtiter plate well, e.g., the surface of a plastic plate) with a mouse anti-canine CTLA-4 antibody or an antigen-binding fragment thereof; (b) applying a sample to be tested for the presence of canine CTLA-4 to the substrate; (c) washing the plate to remove unbound material in the sample; (d) applying a detectably labeled antibody (e.g., an enzyme-linked antibody) that is also specific for the CTLA-4 antigen; (e) washing the substrate to remove unbound labeled antibody; (f) applying a chemical that is converted by the enzyme into a fluorescent signal when the labeled antibody is enzyme-linked; and (g) detecting the presence of the labeled antibody.

[0147] In a further embodiment, the labeled antibody is labeled with peroxidase, which reacts with ABTS [e.g., 2,2'-azino-bis(3-ethylbenzthiazoline-6-sulfonic acid)] or 3,3',5,5'-tetramethylbenzidine (TMB) to produce a detectable color change. Alternatively, the labeled antibody is labeled with a detectable radioisotope (e.g., tetramethylbenzidine) that can be detected by a scintillation counter in the presence of a scintillant. 3 The mouse anti-canine CTLA-4 antibodies of the present invention can be used in Western blot or immunoprotein blot procedures.

[0148] Such procedures form part of the present invention and include, for example: (i) A membrane or another solid substrate to be tested for the presence of bound canine CTLA-4 or a fragment thereof is contacted with a caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof of the present invention. Such a membrane can be in the form of a nitrocellulose or vinyl-based [e.g., polyvinylidene fluoride (PVDF)] membrane onto which proteins to be tested for the presence of canine CTLA-4 in a non-denaturing PAGE (polyacrylamide gel electrophoresis) gel or an SDS-PAGE (sodium dodecyl sulfate polyacrylamide gel electrophoresis) gel are transferred (e.g., after electrophoretic separation in the gel). Before contacting the membrane with the caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof, the membrane is optionally blocked, e.g., with non-fat dry milk, to allow nonspecific protein-binding sites on the membrane to bind; (ii) washing the membrane one or more times to remove unbound caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof and other unbound substances; and (iii) detecting bound caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof.

[0149] Detection of the bound antibody or antigen-binding fragment can be achieved by binding the antibody or antigen-binding fragment to a detectably labeled secondary antibody (anti-immunoglobulin antibody) and then detecting the presence of the secondary antibody.

[0150] The murine anti-canine CTLA-4 antibodies, caninized murine anti-canine CTLA-4 antibodies, and / or antigen-binding fragments thereof disclosed herein can further be used in immunohistochemistry. Such methods form part of the present invention and include, for example, (1) contacting cells to be tested for the presence of canine CTLA-4 with, for example, a murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof of the present invention; and (2) detecting the antibody or fragment on the surface or within the cell. If the antibody or antigen-binding fragment itself is detectably labeled, it can be detected directly. Alternatively, a detectably labeled secondary antibody can be bound to the antibody or antigen-binding fragment, which is then detected.

[0151] Imaging techniques include SPECT imaging (single photon emission computed tomography) or PET imaging (positron emission tomography). Labels include, for example: iodine-123 ( 123 I) and technetium-99m ( 99m Tc), or in combination with, for example, PET imaging, 11 C. 13 N, 15 O or 18 F, or indium-111 [see, e.g., Gordon et al., International Rev. Neurobiol. 67:385-440 (2005)].

[0152] Cross-blocking antibodies Furthermore, the anti-canine CTLA-4 antibodies or antigen-binding fragments thereof of the present invention also include: any antibodies or antigen-binding fragments thereof that bind to the same epitope of canine CTLA-4 as the antibodies and fragments discussed herein bind, as well as any antibodies or antigen-binding fragments that cross-block (partially or fully) the antibodies or fragments discussed herein for canine CTLA-4 binding or are cross-blocked (partially or fully) by the antibodies or fragments discussed herein for canine CTLA-4 binding; and any variants thereof.

[0153] Cross-blocking antibodies and antigen-binding fragments thereof discussed herein can be identified based on their ability to cross-compete with antibodies disclosed herein (based on the CDRs provided in Example 5 below) (i.e., 45A9, 27G12, 22A11, 110E3; and, more particularly, 12B3 and / or 39A11) in standard binding assays (e.g., BIACore®, ELISA as exemplified below, or flow cytometry). For example, a standard ELISA assay can be used in which recombinant canine CTLA-4 protein is immobilized on a plate, one of the antibodies is fluorescently labeled, and the ability of an unlabeled antibody to compete with the binding of the labeled antibody is assessed. Additionally or alternatively, BIAcore® analysis can be used to assess the ability of an antibody to cross-compete. For example, the ability of a test antibody to inhibit the binding of 27G12, 45A9, 110E3 and / or 22A11; and, more particularly, 12B3 and / or 39A11 to canine CTLA-4 indicates that the test antibody can compete with 27G12, 45A9, 110E3 and / or 22A11 and / or 12B3 and / or 39A11 for binding to canine CTLA-4, and therefore, in some cases, can bind to the same epitope on canine CTLA-4 as 27G12, 45A9, 110E3 and / or 22A11 and / or 12B3 and / or 39A11. As noted above, antibodies and fragments that bind to the same epitope as any of the anti-canine CTLA-4 antibodies or fragments of the invention also form part of the present invention.

[0154] Pharmaceutical Compositions and Administration To prepare pharmaceutical or sterile compositions of the caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof, it can be mixed with a pharmaceutically acceptable carrier or excipient (see, e.g., Remington's Pharmaceutical Sciences and US Pharmacopeia: National Formulary, Mack Publishing Company, Easton, PA (1984)).

[0155] Formulations of therapeutic and diagnostic agents can be prepared by mixing them with acceptable carriers, excipients, or stabilizers, for example, in the form of lyophilized powders, slurries, aqueous solutions, or suspensions [see, e.g., Hardman, et al. (2001) Goodman and Gilman's The Pharmacological Basis of Therapeutics, McGraw-Hill, New York, NY; Gennaro (2000) Remington: The Science and Practice of Pharmacy, Lippincott, Williams, and Wilkins, New York, NY; Avis, et al. (eds.) (1993) Pharmaceutical Dosage Forms: Parenteral Medications, Marcel Dekker, NY; Lieberman, et al. (eds.) (1990) Pharmaceutical Dosage Forms: Tablets, Marcel Dekker, NY; Lieberman, et al. (eds.) (1990) Pharmaceutical Dosage Forms: Disperse Systems, Marcel Dekker, NY]. Dekker, NY; Weiner and Kotkoskie (2000) Excipient Toxicity and Safety, Marcel Dekker, Inc., New York, NY. In one embodiment, the anti-CTLA-4 antibody of the present invention is diluted to an appropriate concentration in sodium acetate solution (pH 5-6), and NaCl or sucrose is added for tonicity. Additional agents, such as polysorbate 20 or polysorbate 80, can be added to enhance stability.

[0156] The toxicity and therapeutic efficacy of an antibody composition administered alone or in combination with another agent may be determined, for example, by the LD 50 (a dose lethal to 50% of the population) and ED 50The dose that is therapeutically effective in 50% of a population can be determined by standard pharmaceutical procedures in cell cultures or experimental animals. The dose ratio between toxic and therapeutic effects is the therapeutic index (LD 50 / ED 50 In certain embodiments, antibodies that exhibit a high therapeutic index are desirable. The data obtained from these cell culture assays and animal studies can be used to formulate a range of dosages for use in dogs. The dosage of such compounds is preferably within the ED range with little or no toxicity. 50 The dosage may vary within this range depending upon the dosage form and route of administration used.

[0157] Methods of administration can vary. Suitable routes of administration include oral, rectal, transmucosal, enteral, parenteral; intramuscular, subcutaneous, intradermal, intramedullary, intrathecal, direct intracerebroventricular, intravenous, intraperitoneal, intranasal, intraocular, inhalation, insufflation, topical, cutaneous, transdermal, or intraarterial. In certain embodiments, a caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof can be administered by an invasive route such as injection. In further embodiments of the invention, a caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof or a pharmaceutical composition thereof is administered intravenously, subcutaneously, intramuscularly, intraarterially, or by inhalation or aerosol delivery. Administration by non-invasive routes (e.g., orally; e.g., in a pill, capsule, or tablet) is also within the scope of the invention.

[0158] The composition can be administered using medical devices known in the art.For example, the pharmaceutical composition of the present invention can be administered by injection using a hypodermic needle (which includes, for example, a pre-filled syringe or an autoinjector).The pharmaceutical composition disclosed herein can also be administered using a needleless hypodermic injection device (for example, the device disclosed in U.S. Patent Nos. 6,620,135; 6,096,002; 5,399,163; 5,383,851; 5,312,335; 5,064,413; 4,941,880; 4,790,824 or 4,596,556).

[0159] The pharmaceutical compositions disclosed herein can also be administered by infusion. Examples of well-known implants and modules for administering pharmaceutical compositions include: U.S. Patent No. 4,487,603, which discloses an implantable microinfusion pump for administering drugs at a controlled rate; U.S. Patent No. 4,447,233, which discloses a drug infusion pump for delivering drugs at a precise infusion rate; U.S. Patent No. 4,447,224, which discloses a variable flow rate implantable infusion device for sustained drug delivery; and U.S. Patent No. 4,439,196, which discloses an osmotic drug delivery system with multi-chamber compartments. Many other such implants, delivery systems, and modules are well known to those skilled in the art.

[0160] Alternatively, murine anti-canine CTLA-4 antibodies or caninized murine anti-canine CTLA-4 antibodies can be administered locally rather than systemically, for example, by injecting the antibody directly into the pathogen-induced lesion or arthritic joint characterized by immunopathology, often in a depot or sustained-release formulation. Furthermore, the antibody can be administered in a targeted drug delivery system, for example, in liposomes coated with tissue-specific antibodies, targeting, for example, pathogen-induced lesions or arthritic joints characterized by immunopathology. The liposomes are targeted to and selectively taken up by the affected tissue.

[0161] The dosing regimen depends on several factors, including the serum or tissue turnover rate of the therapeutic antibody, the level of symptoms, the immunogenicity of the therapeutic antibody, and the accessibility of target cells in the biological matrix. Preferably, the dosing regimen delivers enough therapeutic antibody to produce improvement at the target disease site while simultaneously minimizing undesirable side effects. Thus, the amount of biologic delivered will depend, in part, on the particular therapeutic antibody and the severity of the condition being treated. Guidance on selecting appropriate doses of therapeutic antibodies is available [see, e.g., Wawrzynczak, Antibody Therapy, Bios Scientific Pub. Ltd, Oxfordshire, UK (1996); Kresina (ed.), Monoclonal Antibodies, Cytokines and Arthritis, Marcel Dekker, New York, NY (1991); Bach (ed.), Monoclonal Antibodies and Peptide Therapy in Autoimmune Diseases, Marcel Dekker, New York, NY (1993); Baert, et al., New Engl. J. Med. 348:601-608 (2003); Milgrom et al., New Engl. J. Med. 341:1966-1973 (1999); Slamon et al., New Engl. J. Med. 344:783-792 (2001); Beniaminovitz et al., J. Med. 344:783-792 (2001)]. al.New Engl.J.Med.342:613-619(2000);Ghosh et al.New Engl.J.Med.348:24-32(2003);Lipsky et al.New Engl.J.Med.343:1594-1602(2000)].

[0162] Determination of appropriate dosages will be made by a veterinarian, for example, using parameters or factors known or suspected in the art to affect treatment. Generally, administration will begin at an amount somewhat lower than the optimal dose and then be increased by small increments until the desired or optimal effect is achieved relative to negative side effects. Important diagnostic criteria include symptomatic criteria such as tumor size.

[0163] The antibodies or antigen-binding fragments thereof disclosed herein can be provided by continuous infusion or by doses administered, for example, daily, 1 to 7 times per week, weekly, biweekly, monthly, bimonthly, quarterly, semi-annually, yearly, etc. Doses can be provided, for example, intravenously, subcutaneously, topically, orally, nasally, rectally, intramuscularly, intracerebrally, intraspinally, or by inhalation. The total weekly dose is generally at least 0.05 μg / kg body weight, more typically at least 0.2 μg / kg, 0.5 μg / kg, 1 μg / kg, 10 μg / kg, 100 μg / kg, 0.25 mg / kg, 1.0 mg / kg, 2.0 mg / kg, 5.0 mg / mL, 10 mg / kg, 25 mg / kg, 50 mg / kg, or more [see, e.g., Yang, et al. New Engl. J. Med. 349:427-434 (2003); Herold, et al. New Engl. J. Med. 346:1692-1698 (2002); Liu, et al. J. Neurol. Neurosurg. Psych. 67:451-456 (1999); Portielji, et al. Cancer Immunol. Immunother. 52:133-144 (2003)]. Doses can also be provided to achieve a predetermined target concentration of caninized murine anti-canine CTLA-4 antibody in the subject's serum (e.g., 0.1, 0.3, 1, 3, 10, 30, 100, 300 μg / mL or more). In another embodiment, the caninized murine anti-canine CTLA-4 antibody of the invention is administered subcutaneously or intravenously at 10, 20, 50, 80, 100, 200, 500, 1000, or 2500 mg / subject on a weekly, biweekly, "every four weeks," monthly, bimonthly, or quarterly basis.

[0164] Antigenic peptides recognized by anti-canine CTLA-4 mAbs (e.g., peptides containing epitopes or portions thereof from CTLA-4) can also be used as vaccines to elicit antibodies that block the binding of canine CTLA-4 to canine CD80 and / or CD86. Such vaccines may be useful as therapeutic vaccines for diseases such as cancer. To use these antigenic peptides as vaccines, one or more of these peptides can be conjugated to another carrier protein, either chemically or via recombinant DNA technology, to increase the immunogenicity of these peptides and elicit peptide-specific antibodies. Techniques for conjugating peptides to carrier proteins are known to those skilled in the art. Peptide vaccines can be used to vaccinate animals via IM, S / C, oral, spray, or in ovo routes. Peptide vaccines can be used as subunit proteins expressed from bacteria, viruses, yeast, or baculovirus viral systems. Alternatively, such peptide vaccines can be delivered after administration of various viral or bacterial vectors expressing the peptide vaccine, which can be performed by methods known to those skilled in the art. The peptide vaccine may be administered at a dose of 1-1000 μg and may optionally include an adjuvant and an acceptable pharmaceutical carrier.

[0165] As used herein, "inhibiting" or "treating" or "treatment" includes postponing the onset of symptoms associated with a disorder and / or reducing the severity of symptoms of such a disorder. These terms further include ameliorating existing uncontrolled or undesired symptoms, preventing additional symptoms, and ameliorating or preventing the underlying causes of such symptoms. Thus, these terms refer to a beneficial result being imparted to a vertebrate subject having a disorder, disease, or symptom or having a potential for developing such a disorder, disease, or symptom.

[0166] As used herein, the terms "therapeutically effective amount," "therapeutically effective dose," and "effective amount" refer to an amount of a caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof of the invention that, when administered to a cell, tissue, or subject, alone or in combination with additional therapeutic agents, is effective to produce a measurable improvement in one or more symptoms of a disease or condition, or in the progression of such disease or condition. A therapeutically effective dose further refers to an amount of binding compound sufficient to result in at least partial improvement of a symptom, e.g., treatment, cure, prevention, or amelioration of an associated medical condition, or an increase in the rate of treatment, cure, prevention, or amelioration of such a condition. When applied to an individual active ingredient administered alone, a therapeutically effective dose refers to that ingredient alone. When applied to a combination, a therapeutically effective dose refers to the combined amounts of active ingredients that produce a therapeutic effect, whether administered in combination, sequentially, or simultaneously. An effective amount of a therapeutic agent results in at least a 10%, usually at least a 20%, preferably at least about a 30%, more preferably at least a 40%, and most preferably at least a 50% improvement in a diagnostic criterion or parameter. An effective amount may also result in an improvement in subjective criteria, if such criteria are used to assess disease severity.

[0167] Other combination therapies As described above, the caninized murine anti-canine CTLA-4 antibodies or antigen-binding fragments thereof and / or antigenic peptides of the present invention can be co-administered with one or more additional therapeutic agents (e.g., inhibitors discussed in the next paragraph) and / or caninized murine anti-canine PD-1 antibodies (see, e.g., US9,944,704B2 and US10,106,107B2, the contents of both of which are incorporated herein by reference in their entireties) and / or caninized murine anti-canine PD-L1 antibodies (see, e.g., US20180237535A1, the contents of which are incorporated herein by reference in their entireties). The antibody(ies) can be linked to an agent (as an immunoconjugate) and / or administered separately from the agent or another antibody. In the latter case (separate administration), the antibody can be administered before, after, or simultaneously with the agent, or can be co-administered with another known therapy.

[0168] kit Additionally, kits are provided that include one or more components, including but not limited to, an antibody or antigen-binding fragment discussed herein that specifically binds to CTLA-4 (e.g., a caninized murine anti-canine CTLA-4 antibody or antigen-binding fragment thereof), together with one or more additional components, including a caninized murine anti-canine PD-1 antibody and / or a caninized murine anti-canine PD-L1 antibody. The binding compositions described immediately above can be formulated into pharmaceutical compositions either as pure compositions or in combination with a pharmaceutically acceptable carrier.

[0169] In one embodiment, the kit comprises a binding composition of the invention (e.g., a caninized murine anti-canine CTLA-4 or a pharmaceutical composition thereof) in one container (e.g., a sterile glass or plastic vial) and a caninized murine anti-canine PD-1 antibody and / or a caninized murine anti-canine PD-L1 antibody, or a pharmaceutical composition thereof, in another container (e.g., a sterile glass or plastic vial).

[0170]

[0013] When the kit includes a pharmaceutical composition for parenteral administration to a subject, the kit can also include a device for performing such administration. For example, the kit can include one or more hypodermic needles or other injection devices as discussed above. The kit can further include a package insert containing information regarding the pharmaceutical compositions and dosage forms in the kit. Generally, such information will assist pet owners and veterinarians in the effective and safe use of the enclosed pharmaceutical compositions and dosage forms. For example, the following information regarding the combination of the present invention can be provided in the package insert: pharmacokinetics, pharmacodynamics, clinical trials, efficacy parameters, indications and usage, contraindications, warnings, precautions, adverse reactions, overdose, proper dosage and administration, method of supply, suitable storage conditions, references, manufacturer / distributor information, and patent information.

[0171] For convenience, the antibodies or specific binding substances disclosed herein can be provided in kits, i.e., packaged combinations of predetermined amounts of reagents with instructions for performing a diagnostic or detection assay. When the antibody(ies) is labeled with an enzyme, the kit will contain substrates and cofactors required by the enzyme (e.g., substrate precursors that provide a detectable chromophore or fluorophore). In addition, other additives, such as stabilizers, buffers (e.g., blocking buffer or lysis buffer), and the like, may also be included. The relative amounts of the various reagents can be varied widely to provide concentrations in solution of the reagents that substantially optimize the sensitivity of the assay. In particular, the reagents can be provided as dry powders, usually lyophilized, containing excipients that, when dissolved, provide a reagent solution having the appropriate concentration. [Example]

[0172] Example Example 1 Generation of a mouse monoclonal antibody against canine CTLA-4 and the corresponding mouse-canine chimeric antibody Mouse monoclonal antibodies were generated using mouse hybridoma technology with canine CTLA-4 (cCTLA-4) recombinant protein as the immunogen. Positive hybridoma clones were selected based on antibody reactivity with cCTLA-4 and blocking of the interaction of canine CD86 or CD80 with cCTLA-4 (blocking activity) by ELISA and FACS assays. The selected hybridoma clones were V H and V LThe antibody fragments were sequenced by rapid amplification of cDNA ends (RACE). The six selected monoclonal antibodies are shown as 12B3, 27G12, 39A11, 45A9, 110E3, and 22A11, respectively. The amino acid sequences of the six antibodies are SEQ ID NOS: 2, 4, 6, 8, 10, and 12 for the heavy chain variable regions, and SEQ ID NOS: 14, 16, 18, 20, 22, and 24 for the light chain variable regions, respectively. The CDRs are underlined in the sequences provided below (see also Table 1 below). The corresponding nucleotide sequences encoding the above-identified amino acid sequences are shown as SEQ ID NOS: 1, 3, 5, 7, 9, and 11 for the heavy chain variable regions, and SEQ ID NOS: 13, 15, 17, 19, 21, and 23 for the light chain variable regions, respectively. The nucleotide sequences of the heavy chain variable regions were fused to the nucleotide sequence of a modified canine constant heavy chain (CH1-hinge-CH2-CH3), respectively, to generate chimeric mouse-dog heavy chain nucleotide sequences designated SEQ ID NOs: 25, 27, 29, 31, 33, and 35. The variable regions are shown in bold. The nucleotide sequences of the light chain variable regions were fused to the nucleotide sequence of a canine constant kappa light chain domain, respectively, to generate chimeric mouse-dog light chain nucleotide sequences designated SEQ ID NOs: 37, 39, 41, 43, 45, and 47. The variable regions are shown in bold. The amino acid sequences encoded by the chimeric mouse-dog heavy chain nucleotide sequences were designated SEQ ID NOs: 26, 28, 30, 32, 34, and 36. The amino acid sequences encoded by the chimeric mouse-dog light chain nucleotide sequences were designated SEQ ID NOs: 38, 40, 42, 44, 46, and 48. The variable regions are in bold and the CDRs are underlined. The chimeric human-canine heavy and light chains were cloned into separate expression plasmids using standard molecular biology techniques. Plasmids containing the heavy and light chain genes were transfected into HEK293 cells, and the expressed antibodies were purified from HEK293 cell supernatants using Protein A.

[0173] Example 2 Mouse CDR amino acid sequence The CDRs of the murine anti-canine CTLA-4 monoclonal antibodies are listed in Table 1 below. [Table 4]

[0174] The individual canonical structure assignments for the six CDRs of each of the six antibodies are shown in Table 2 below. [Table 5]

[0175] Example 3 Reactivity of chimeric antibodies with canine CTLA-4 Chimeric antibodies generally have the same reactivity as their parent mouse antibodies. To confirm the reactivity of the six antibodies with cCTLA-4, mouse-canine chimeric antibodies were generated and tested for reactivity with cCTLA-4 by ELISA as follows.

[0176] 1. Immunoplates were coated with 200 ng / well of cCTLA-4 and the plates were incubated overnight at 4°C; 2. The plates were washed three times with PBS containing 0.05% Tween 20 (PBST); 3. The plates were blocked with 0.5% BSA in PBS for 45-60 minutes at room temperature; 4. The plate was washed three times with PBST; 5. Antibody was diluted 3-fold in each row or column of the dilution plate; 6. Transfer the diluted antibody to each column or row of the plate and incubate the plate at room temperature for 45-60 minutes; 7. The plate was washed three times with PBST; 8. To each well of the plate, a 1:2000 dilution of horseradish peroxidase-labeled anti-dog IgG Fc was added, and the plate was incubated at room temperature for 45-60 minutes; 9. The plate was washed three times with PBST; 10. Add TMB substrate to each well of the plate and incubate the plate at room temperature for 10-15 minutes to allow color to develop; 11. The reaction was stopped by adding 100 μL of 1.5 M phosphoric acid to each well; 12. The plate was read at 450 nm with a reference wavelength of 540 nm.

[0177] The ELISA results show that the chimeric antibody is able to bind to cCTLA-4 [see Figure 1].

[0178] Example 4 Blocking activity of chimeric antibodies against the interaction between canine CD86 or CD80 and canine CTLA-4 To examine the blocking activity of the chimeric antibodies, an ELISA-based blocking assay was performed as follows: 1. Coat immunoplates with 200ng / well of cCTLA-4 and incubate the plates overnight at 4°C; 2. Wash the plate three times with PBS containing 0.05% Tween 20 (PBST); 3. Block the plate with 0.5% BSA in PBS for 45-60 minutes at room temperature; 4. Wash the plate three times with PBST; 5. In each row or column of the dilution plate, the antibody was diluted 3-fold, and then 100 ng / well of biotinylated CD86 or CD80 was added. Then, the antibody was mixed; 6. The mixture was transferred to each column or row of the immunoplate, and the plate was incubated at room temperature for 45-60 minutes; 7. The plate was washed three times with PBST; 8. To each well of the plate, a 1:2000 dilution of horseradish peroxidase-conjugated streptavidin was added, and the plate was incubated at room temperature for 45–60 min; 9. The plate was washed three times with PBST; 10. Add TMB substrate to each well of the plate and incubate the plate at room temperature for 10-15 minutes to allow color to develop; 11. The reaction was stopped by adding 100 μL of 1.5 M phosphoric acid to each well; 12. The plate was read at 450 nm with a reference wavelength of 540 nm.

[0179] The chimeric antibody was found to block the interaction of cCTLA-4 with CD86 [Figure 2] and CD80 [Figure 3].

[0180] Example 5 FACS assay to test the binding activity of chimeric antibodies to CHO-cCTLA-4 A CHO-K1 cell line stably expressing cCTLA-4 was generated and used to test the binding and blocking activity of antibodies in a FACS flow assay. To test the cCTLA-4 binding activity of the chimeric antibodies, a FACS assay was performed as follows: 1. CHO-K1-cCTLA-4 cells were grown in culture medium in a T-75 flask, and the cells were passaged when the cells reached 90% confluency; Culture medium: F12K (Gibco, Cat. No. 21127-022), 10% FBS (Gibco, Cat. No. 10099-141), and 4 μg / mL puromycin (Gibco, Cat. No. A1113803); 2. Cells were detached with trypsin-EDTA solution, the cells were resuspended in culture medium, and viable cells were counted with a viability of 95% or more; 3. Spin down the cells, aspirate the supernatant, and then resuspend the cells in FACS buffer (Thermo Fisher Scientific, Cat. No. BDB554656) at 1 x 10 7 cells / mL; 4. Antibody was added to 100 μL of cells and incubated at room temperature for 30 minutes with gentle shaking; 5. Wash the cells 3x with 250 μL of FACS buffer and resuspend the cells in 100 μL of FACS buffer; 6. Cells were stained with FITC-conjugated anti-dog IgG and incubated for 30 min at room temperature with gentle shaking; 7. Wash the cells 3x with 250 μL of FACS buffer and resuspend the cells in 500 μL of FACS buffer; 8. 10,000 cells were read by flow cytometry.

[0181] FACS results show that the chimeric antibody is able to bind to CHO-cCTLA-4 cells [see Figures 4A-G].

[0182] Example 6 Interferon-gamma (IFN-γ) production in canine PBMCs activated by chimeric antibodies Isolation of canine peripheral blood mononuclear cells 1. Approximately 20 mL of whole blood was collected in an EDTA or sodium heparin tube; 2. Blood was transferred to a 50 mL polystyrene tube and diluted 50:50 with HBSS (Thermo Fisher Scientific Catalog No. 21022CM); 3. Add 15 mL of Ficoll-PlaquePlus to 4 x 50 mL SepMate TM Approximately 10 mL of the 50:50 diluted blood was then slowly added to each SepMate tube containing Ficoll (STEMCELL Technologies, Cat. No. 15460). TM added to the side of the tube; 4. The tubes were centrifuged at 1200 × g for 20 minutes; 5. Collect the cells from the gradient interface and transfer them to a 50 mL polypropylene tube. Add HBSS up to the 40-45 mL mark, and then centrifuge the cells at 800 × g for 10 minutes. 6. The supernatant was discarded, the cells were resuspended in 40-45 mL HBSS, and the tube was centrifuged again at 800 × g for 10 minutes; 7. The supernatant was discarded and the cells from each tube were resuspended in 2 mL of canine lymphocyte medium (RPMI medium, Lonza, Cat. No. 12-167Q). Cells were pooled from the same animal; 8. A small aliquot of the cell suspension was taken and mixed with 0.04% trypan blue, and the number of cells was counted; 9. The cell suspension was stored at 2-7°C until use, but was not stored at 2-7°C for 24 hours prior to use.

[0183] Cell proliferation assay for canine peripheral blood mononuclear cells 1. Antibodies were diluted in canine lymphocyte medium to a final concentration of 40 μg / mL (preparation was 160 μg / mL) and sterilized using a 0.2 μm syringe filter. Antibodies were diluted 2-fold in a sterile dilution plate and set aside; 2. Cells were cultured in canine lymphocyte medium at 2.5 × 10 6 cells / mL and dispensed 100 μL per well across a 96-well tissue culture plate; 3. Con A was diluted in canine lymphocyte medium to a final concentration of 250 ng / mL (prepared at 1000 ng / mL), sterilized using a 0.2 μm syringe filter, and 50 μL was added to all wells (one row of eight wells for the cells-only control and the wells for the cells + mAb-only control received no Con A); 4. 100 μL of canine lymphocyte medium per well was added to the cell-only wells, and 50 μL of medium was added to the row containing Con A control wells (Con A+ cells without mAb treatment); 5. 50 μL of diluted mAb was added to replicate wells; 6. The plates were incubated in a humidified incubator at 36±2°C, 4.0-6.0% CO2 for 68-124 hours.

[0184] IFNγ ELISA 1. After 68–124 h of incubation, the plates were centrifuged at 800 × g for 10 min; 2. Supernatant was collected from each well and pooled replicates. These samples can be frozen at -50°C or below for later use or tested immediately; 3. Supernatant samples were diluted appropriately if necessary, and IFN-γ ELISA was performed according to the instructions of the Canine IFN-γ Quantikine ELISA kit [R&D Systems Cat. No. CAIF00].

[0185] The results show that selected antibodies, including 12B3, are able to activate canine T cells to produce IFNγ [see Figure 5 below].

[0186] Example 7 Construction of caninized anti-cCTLA-4 monoclonal antibodies 12B3 and 39A11 Due to their strong binding affinity for cCTLA-4 and their blocking activity against cCTLA-4 and its ligands CD86 and CD80, murine antibodies 12B3 and 39A11 were selected for the generation of the first caninized antibodies. To carry out the caninization process, the DNA sequences encoding the heavy and light chains of canine IgG were determined. The DNA and protein sequences of canine heavy and light chains are known in the art and can be obtained by searching the NCBI gene and protein database. There are four known IgG subtypes of canine IgG, designated IgGA, IgGB, IgGC, and IgGD. Similar to human IgG1, canine IgGB possesses potent effector functions. To eliminate the effector function of IgGB, a modified IgGB (IgGBm) was constructed to remove the native ADCC and CDC functions (see US Pat. No. 10,106,107B2, incorporated herein by reference in its entirety). Canine antibodies contain two types of light chains, designated kappa and lambda. Without being bound to a particular approach, the overall process for producing caninized heavy and light chains that can be mixed in various combinations to produce caninized anti-canine CTLA-4 mAbs can include the following protocol: (i) The CDRs of the heavy and light chains of the selected antibodies were identified. The amino acid sequences of the CDRs were reverse-translated into appropriate DNA sequences; (ii) identified appropriate DNA sequences for the heavy and light chains of canine IgG (e.g., the heavy and light kappa chains of IgGB); (iii) identified the DNA sequences encoding the endogenous CDRs of the canine IgG heavy and light chain DNAs of the above sequences; (iv) DNA sequences encoding the endogenous canine heavy and light chain CDRs were replaced with DNA sequences encoding the CDRs of a selected antibody, and optionally, DNA encoding some canine framework amino acid residues was replaced with DNA encoding selected amino acid residues from the selected antibody framework region; (v) synthesizing the DNA from step (iv) and cloning it into a suitable expression plasmid; (vi) The synthesized plasmids were transfected into HEK293 cells; (vii) Expressed caninized antibodies were purified from HEK293 supernatants; (viii) Purified caninized antibodies were tested for binding to canine CTLA-4.

[0187] The nucleotide and amino acid sequences of the CDRs of 12B3 and 39A11 are set forth in Table 3 below. [Table 6]

[0188] A set of caninized light and heavy chain sequences was constructed, the sequence identification numbers of which are listed in Tables 4-6 below. [Table 7] [Table 8] [Table 9] [Table 10]

[0189] The present invention provides caninized antibodies 12B3 and 39A11 formed by combining caninized heavy and light chains of each antibody listed in the table above; such antibodies exhibit particularly tight binding to cCTLA-4. As shown in Figure 6, ELISA results demonstrate that both 12B3 and 39A11 were successfully caninized. Caninized c12B3L3H2 and L3H3 have reactivity with cCTLA-4 similar to that of the parent 12B3; caninized c39A11L3H3 has reactivity with cCTLA-4 similar to that of the parent 39A11. Chimeras of 12B3 and 39A11 represent their parent antibodies. [Table 11] TIFF0007757271000013.tif210169TIFF0007757271000014.tif205166

[0190] TIFF0007757271000015.tif211169TIFF0007757271000016.tif208170

[0191] TIFF0007757271000017.tif207166TIFF0007757271000018.tif209166TIFF0007757271000019.tif202166TIFF0007757271000020.tif201166

[0192] TIFF0007757271000021.tif217169TIFF0007757271000022.tif207166TIFF0007757271000023.tif205166TIFF0007757271000024.tif213169 TIFF0007757271000025.tif205166TIFF0007757271000026.tif216170TIFF0007757271000027.tif217170TIFF0007757271000028.tif207166

[0193] TIFF0007757271000029.tif203166TIFF0007757271000030.tif208166TIFF0007757271000031.tif237170

[0194] Example 8 Epitope mapping of caninized anti-cCTLA-4 monoclonal antibodies 12B3 and 39A11 The interaction of antibodies with their cognate protein antigens is mediated through the binding of specific amino acids (paratopes) of the antibody with specific amino acids (epitopes) of the target antigen. An epitope is an antigenic determinant that elicits a specific response by immunoglobulins. An epitope consists of a group of amino acids on the surface of an antigen. A protein of interest may contain several epitopes recognized by different antibodies. Epitopes recognized by antibodies are classified as linear epitopes or conformational epitopes. Linear epitopes are formed by a continuous stretch of amino acids in a protein, while conformational epitopes are composed of discontinuous (e.g., distant) amino acids in the primary amino acid sequence but come together after three-dimensional protein folding.

[0195] Epitope mapping refers to the process of identifying the amino acid sequence (i.e., epitope) recognized by an antibody on its target antigen. Identification of epitopes recognized by monoclonal antibodies (mAbs) on target antigens has important applications. For example, it can be useful in the development of new therapeutics, diagnostics, and vaccines. Epitope mapping can also aid in the selection of optimized therapeutic mAbs and help elucidate their mechanisms of action. Epitope information on canine CTLA-4 can also elucidate unique epitopes and define the protective or pathogenic effects of vaccines. Epitope identification may further lead to the development of subunit vaccines based on chemical or genetic conjugation of identified peptide epitopes to carrier proteins or other immunostimulatory agents.

[0196] Epitope mapping can be performed using polyclonal or monoclonal antibodies, and several methods are used for epitope identification, depending on the predicted nature of the epitope (i.e., linear versus conformational). Mapping linear epitopes is more straightforward and relatively easy to perform. To this end, commercial services for linear epitope mapping often use peptide scanning, in which a set of overlapping short peptide sequences of the target protein are chemically synthesized and tested for their ability to bind to an antibody of interest. This strategy is rapid, high-throughput, and relatively inexpensive to implement. On the other hand, mapping discontinuous epitopes is technically more challenging and requires more specialized techniques, such as X-ray cocrystallography of a monoclonal antibody with its target protein, hydrogen-deuterium (H / D) exchange, mass spectrometry combined with enzymatic digestion, and several other methods known to those skilled in the art.

[0197] Mapping the canine CTLA-4 receptor alpha epitope using mass spectrometry: To identify the epitopes of caninized 12B3 (exemplified by 12B3L2H3) and 39A11 (exemplified by 39A11L3H3) on canine CTLA-4, the cCTLA-4 / c12B3L2H3 and cCTLA-4 / c39A11L2H3 complexes were incubated with deuterated crosslinkers and subjected to multienzymatic cleavage. After enrichment of the crosslinked peptides, the samples were analyzed by high-resolution mass spectrometry (nLC-LTQ-Orbitrap MS), and the generated data were analyzed using XQuest and Stavrox software.

[0198] Analysis showed that c12B3L2H3 interacts with amino acid residues at positions 35, 38, 51, 53, 90, 93, 98, and 102 of cCTLA-4, which contains the amino acid sequence of SEQ ID NO: 138 (Figure 7A); c39A11L2H3 interacts with amino acid residues at positions 35, 38, 42, 93, and 102 of cCTLA-4, which contains the amino acid sequence of SEQ ID NO: 138 (Figure 7B). Two specific regions of the canine CTLA-4 protein are shown in Figures 7A and 7B: the amino acid sequences of SEQ ID NO: 132 and SEQ ID NO: 133, respectively (see Table 8 below). In particular, both antibodies bind to SEQ ID NO: 134 and SEQ ID NO: 136, which contain the MYPPPY motif (SEQ ID NO: 137) on cCTLA-4. The MYPPPY motif forms a loop bond with CD80 and CD86, which is a conserved motif for CTLA-4 across species. c12B3 also appears to bind to one additional region on canine CTLA-4 comprising the amino acid sequence of SEQ ID NO: 135. Combined with the results of Example 4, the epitope mapping results further support that both c12B3 and c39A11 are functional antibodies capable of blocking the interaction of canine CTLA-4 with its ligands CD80 and CD86. Additionally, caninized antibodies that bind to the epitopes of SEQ ID NO: 134 and SEQ ID NO: 136 are also part of the present invention. [Table 12]

Claims

1. An isolated mammalian antibody or antigen-binding fragment thereof that binds to canine cytotoxic T-lymphocyte-associated protein 4 (CTLA-4) and blocks the binding of canine CTLA-4 to canine CD80, blocks the binding of canine CTLA-4 to canine CD86, or blocks both the binding of canine CTLA-4 to canine CD80 and the binding of canine CTLA-4 to canine CD86, wherein the antibody or antigen-binding fragment thereof comprises a set of six complementarity determining regions (CDRs), three of which are light chain CDRs [CDR light 1 (CDRL1), CDR light 2 (CDRL2), and CDR light 3 (CDRL3)]; and three of which are heavy chain CDRs [CDR heavy 1 (CDRH1), CDR heavy 2 (CDRH2), and CDR heavy 3 (CDRH3)]; wherein the set of six CDRs is selected from the group consisting of: (i), (ii), (iii), (iv), (v), and (vi); Where, for set (i): CDRL1 comprises the amino acid sequence of SEQ ID NO:92; CDRL2 comprises the amino acid sequence of SEQ ID NO:94; CDRL3 comprises the amino acid sequence of SEQ ID NO:96; CDRH1 comprises the amino acid sequence of SEQ ID NO: 86; CDRH2 comprises the amino acid sequence of SEQ ID NO: 88; and CDRH3 comprises the amino acid sequence of SEQ ID NO:90; Where, for set (ii): CDRL1 comprises the amino acid sequence of SEQ ID NO: 104; CDRL2 comprises the amino acid sequence of SEQ ID NO: 106; CDRL3 comprises the amino acid sequence of SEQ ID NO: 108; CDRH1 comprises the amino acid sequence of SEQ ID NO:98; CDRH2 comprises the amino acid sequence of SEQ ID NO: 100; and CDRH3 comprises the amino acid sequence of SEQ ID NO: 102; Where, for set (iii): CDRL1 comprises the amino acid sequence of SEQ ID NO: 117; CDRL2 comprises the amino acid sequence of SEQ ID NO:94; CDRL3 comprises the amino acid sequence of SEQ ID NO:96; CDRH1 comprises the amino acid sequence of SEQ ID NO: 86; CDRH2 comprises the amino acid sequence of SEQ ID NO: 88; and CDRH3 comprises the amino acid sequence of SEQ ID NO: 113; Where, for set (iv): CDRL1 comprises the amino acid sequence of SEQ ID NO: 119; CDRL2 comprises the amino acid sequence of SEQ ID NO: 122; CDRL3 comprises the amino acid sequence of SEQ ID NO:96; CDRH1 comprises the amino acid sequence of SEQ ID NO: 86; CDRH2 comprises the amino acid sequence of SEQ ID NO: 88; and CDRH3 comprises the amino acid sequence of SEQ ID NO: 115; Where, for set (v): CDRL1 comprises the amino acid sequence of SEQ ID NO: 118; CDRL2 comprises the amino acid sequence of SEQ ID NO: 121; CDRL3 comprises the amino acid sequence of SEQ ID NO:96; CDRH1 comprises the amino acid sequence of SEQ ID NO: 109; CDRH2 comprises the amino acid sequence of SEQ ID NO: 111; and CDRH3 comprises the amino acid sequence of SEQ ID NO: 114; and where for set (vi): CDRL1 comprises the amino acid sequence of SEQ ID NO: 120; CDRL2 comprises the amino acid sequence of SEQ ID NO: 123; CDRL3 comprises the amino acid sequence of SEQ ID NO: 124; CDRH1 comprises the amino acid sequence of SEQ ID NO: 110; CDRH2 comprises the amino acid sequence of SEQ ID NO: 112; and CDRH3 comprises the amino acid sequence of SEQ ID NO: 116; The isolated mammalian antibody or antigen-binding fragment thereof.

2. 2. The isolated mammalian antibody or antigen-binding fragment thereof of claim 1, which is a caninized antibody or caninized antigen-binding fragment thereof.

3. 3. The isolated mammalian antibody or antigen-binding fragment thereof of claim 2, comprising a hinge region comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 128, SEQ ID NO: 129, SEQ ID NO: 130 and SEQ ID NO:

131.

4. (a) CDRL1 comprises the amino acid sequence of SEQ ID NO: 92; (b) CDRL2 comprises the amino acid sequence of SEQ ID NO: 94; (c) CDRL3 comprises the amino acid sequence of SEQ ID NO: 96; (d) CDRH1 comprises the amino acid sequence of SEQ ID NO: 86; (e) CDRH2 comprises the amino acid sequence of SEQ ID NO: 88; and (f) CDRH3 comprises the amino acid sequence of SEQ ID NO: 90; 4. An isolated mammalian antibody or antigen-binding fragment thereof according to claim 2 or 3.

5. a heavy chain comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 62, SEQ ID NO: 64 and SEQ ID NO: 66; or a modified heavy chain comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 74, SEQ ID NO: 76 and SEQ ID NO: 78; or a light chain comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 50, SEQ ID NO: 52 and SEQ ID NO: 54; or 5. The isolated mammalian antibody or antigen-binding fragment thereof of claim 4, comprising the heavy chain or the modified heavy chain in combination with the light chain.

6. 6. The isolated mammalian antibody or antigen-binding fragment thereof of claim 5, comprising a heavy chain comprising the amino acid sequence of SEQ ID NO: 66 or a modified heavy chain comprising the amino acid sequence of SEQ ID NO:

78.

7. 7. The isolated mammalian antibody or antigen-binding fragment thereof of claim 6, comprising a light chain comprising the amino acid sequence of SEQ ID NO:52 or the amino acid sequence of SEQ ID NO:

54.

8. (a) CDRL1 comprises the amino acid sequence of SEQ ID NO: 104; (b) CDRL2 comprises the amino acid sequence of SEQ ID NO: 106; (c) CDRL3 comprises the amino acid sequence of SEQ ID NO: 108; (d) CDRH1 comprises the amino acid sequence of SEQ ID NO: 98; (e) CDRH2 comprises the amino acid sequence of SEQ ID NO: 100; and (f) CDRH3 comprises the amino acid sequence of SEQ ID NO: 102; 4. An isolated mammalian antibody or antigen-binding fragment thereof according to claim 2 or 3.

9. a heavy chain comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 68, SEQ ID NO: 70 and SEQ ID NO: 72; or a modified heavy chain comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 80, SEQ ID NO: 82 and SEQ ID NO: 84; or a light chain comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 56, SEQ ID NO: 58 and SEQ ID NO: 60; or 9. The isolated mammalian antibody or antigen-binding fragment thereof of claim 8, comprising the heavy chain or the modified heavy chain in combination with the light chain.

10. 10. The isolated mammalian antibody or antigen-binding fragment thereof of claim 9, comprising a heavy chain comprising the amino acid sequence of SEQ ID NO: 72 or a modified heavy chain comprising the amino acid sequence of SEQ ID NO:

84.

11. 11. The isolated mammalian antibody or antigen-binding fragment thereof of claim 10, comprising a light chain comprising the amino acid sequence of SEQ ID NO:58 or the amino acid sequence of SEQ ID NO:

60.

12. The antibody or antigen-binding fragment thereof has the following characteristics: (i) 1 x 10 -5 M~1 x 10 -12 binds to canine CTLA-4 with a dissociation constant (Kd) of M; (ii) 1 x 10 2 M -1 s -1 ~1 x 10 7 M -1 s -1 binds to canine CTLA-4 with an on-rate (k on ) of 0.05; (iii) 1 x 10 -3 s -1 ~1 x 10 -8 s -1 binds to canine CTLA-4 with an off rate (koff) of (iv) blocking the binding of canine CTLA-4 to canine CD80; and (v) blocking the binding of canine CTLA-4 to canine CD86; 12. The isolated mammalian antibody or antigen-binding fragment thereof of any one of claims 2 to 11, wherein the antibody or antigen-binding fragment exhibits one, two, three, four or all five of the following:

13. 13. The isolated mammalian antibody or antigen-binding fragment thereof of any one of claims 2 to 12, wherein the antibody or antigen-binding fragment thereof binds to any one or more amino acid sequences selected from the group consisting of SEQ ID NO:132, SEQ ID NO:133, SEQ ID NO:134, SEQ ID NO:135, SEQ ID NO:136, and SEQ ID NO:

137.

14. A pharmaceutical composition comprising the isolated mammalian antibody or antigen-binding fragment thereof of any one of claims 2 to 13 and a pharmaceutically acceptable carrier or diluent.

15. 15. A method of increasing immune cell activity, comprising administering to a canine subject in need thereof a therapeutically effective amount of the pharmaceutical composition of claim 14, said method comprising: (i) to treat cancer; (ii) To treat an infection or infectious disease; (iii) as a vaccine adjuvant; or (iv) for any combination of (i), (ii) and (iii); The method used.

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