Agonistic CD28 antigen-binding molecules targeting EpCAM
Novel EpCAM-targeting bispecific CD28 antigen-binding molecules with monovalent binding and specific Fc domain modifications enhance T cell activation and tumor cell killing, addressing limitations of existing cancer immunotherapies by inducing durable antitumor responses.
Patent Information
- Application Number
- JP2023571833
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-02
- Filing Date
- 2022-06-01
- Publication Date
- 2025-12-25
- Estimated Expiration
- 2042-06-01
AI Technical Summary
Existing cancer immunotherapies, such as immune checkpoint blockades, only benefit a small fraction of patients due to primary resistance and lack of pre-existing antitumor T cells, necessitating therapies that enhance tumor-specific T cell responses.
Development of novel EpCAM-targeting bispecific agonist CD28 antigen-binding molecules with monovalent binding to CD28 and specific binding to EpCAM, featuring an Fc domain with amino acid substitutions to prevent Fc receptor-mediated cross-linking, enabling tumor-specific activation without multimerization.
The molecules induce potent and long-lasting antitumor responses by synergizing with TCB, enhancing T cell activation and tumor cell killing, overcoming limitations of existing therapies.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to bispecific agonist CD28 antigen-binding molecules characterized by monovalent binding to CD28, including novel humanized EpCAM antibodies, methods for their production, pharmaceutical compositions containing these molecules, and their use as immunomodulators and / or co-stimulators in the treatment of disease, particularly cancer. [Background technology]
[0002] Cancer immunotherapy is becoming an increasingly effective treatment option, capable of producing dramatic and durable responses in cancer types such as melanoma, non-small cell lung cancer, and renal cell carcinoma. This is primarily driven by the success of several immune checkpoint blockades, including anti-PD-1 (e.g., Merck's Keytruda; BMS's Opdivo), anti-CTLA-4 (e.g., BMS's Yervoy), and anti-PD-L1 (e.g., Roche's Tecentriq). While these agents are likely to serve as standard of care or as the backbone of combination therapies for many cancer types, only a small fraction of patients (<25%) benefit from such treatments. Furthermore, various cancers (e.g., prostate cancer, colorectal cancer, pancreatic cancer, sarcoma, non-triple-negative breast cancer) exhibit primary resistance to these immunomodulatory agents. Several reports have indicated that the absence of pre-existing antitumor T cells contributes to the lack or insufficient response in some patients. In summary, despite the impressive anti-cancer effects of existing immunotherapies, there is a clear medical need to address the large cancer patient population and to develop therapies aimed at inducing and enhancing novel tumor-specific T cell responses.
[0003] CD28 is an established member of a subfamily of costimulatory molecules characterized by a paired V-set immunoglobulin superfamily (IgSF) domain linked to a single transmembrane and cytoplasmic domain containing key signaling motifs (Carreno and Collins, 2002). Other members of the subfamily include ICOS, CTLA-4, PD1, PD1H, TIGIT, and BTLA (Chen and Flies, 2013). CD28 expression is restricted to T cells and is common on the majority of all naive and antigen-experienced subsets, including those expressing PD-1 or CTLA-4. CD28 and CTLA-4 are highly homologous and compete for binding to the same B7 molecules, CD80 and CD86, expressed on dendritic cells, B cells, macrophages, and tumor cells (Linsley et al., 1990). The higher affinity of CTLA-4 for the B7 family of ligands allows it to outcompete CD28 for ligand binding and suppress effector T cell responses (Engelhardt et al., 2006). In contrast, PD-1 has been shown to inhibit CD28 signaling by partially dephosphorylating the cytoplasmic domain of CD28 (Hui et al., 2017). Ligation of CD28 by CD80 or CD86 on the surface of professional antigen-presenting cells is strictly required for the functional de novo priming of naive T cells, subsequent clonal expansion, cytokine production, target cell lysis, and long-term memory formation. Binding of the CD28 ligand also promotes the expression of inducible costimulatory receptors such as OX-40, ICOS, and 4-1BB (reviewed in Acuto and Michel, 2003). Upon ligation of CD28, a disulfide-linked homodimer, the membrane-proximal YMNM motif and the distal PYAP motif, has been shown to form a complex with several kinases and adaptor proteins ( Boomer and Green, 2010 ).These motifs are important for the induction of IL2 transcription, which is mediated by CD28-dependent activation of NFAT, AP-1, and NFκB family transcription factors (Fraser et al., 1991; June et al., 1987; Thompson et al., 1989). However, additional, less well-characterized sites for phosphorylation and ubiquitination are found within the cytoplasmic domain of CD28. As reviewed by Esensten et al., 2016, CD28-initiated pathways play an important role in promoting the proliferation and effector function of conventional T cells. CD28 ligation also promotes the anti-inflammatory function of regulatory T cells. CD28 co-stimulates T cells in part by enhancing signals from the T cell receptor, but it has also been shown to mediate intrinsic signaling events (Acuto and Michel, 2003; Boomer and Green, 2010; June et al., 1987). Signals specifically triggered by CD28 regulate many important aspects of T cell function, including downstream protein phosphorylation and other post-translational modifications (e.g., PI3K-mediated phosphorylation), transcriptional changes (e.g., Bcl-xL expression), epigenetic changes (e.g., IL-2 promoter), cytoskeletal remodeling (e.g., microtubule-organizing center orientation), and altered glycolytic rates (e.g., glycolytic flux). CD28-deficient mice exhibit impaired responses to infectious pathogens, allograft antigens, graft-versus-host disease, contact hypersensitivity, and asthma (Acuto and Michel, 2003). Lack of CD28-mediated costimulation results in reduced T cell proliferation in vitro and in vivo, severe inhibition of germinal center formation and immunoglobulin isotype class switching, reduced T helper (Th) cell differentiation, and expression of Th2-type cytokines. CD4-dependent cytotoxic CD8+ T cell responses are also affected. Importantly, CD28-deficient naive T cells exhibited reduced proliferative responses, particularly at lower antigen concentrations. A growing body of literature supports the idea that ligating CD28 on T cells has anti-tumor potential.Recent evidence demonstrates that the anti-cancer effects of PD-L1 / PD-1 and CTLA-4 checkpoint inhibitors are CD28 dependent (Kamphorst et al., 2017; Tai et al., 2007). Clinical studies investigating the therapeutic efficacy of CTLA-4 and PD-1 blockade have shown very promising results in patients with advanced melanoma and other cancers. In addition, the infusion of genetically engineered T cells expressing an artificial chimeric T cell receptor containing an extracellular antigen recognition domain fused to an intracellular TCR signaling domain (CD3z) and an intracellular costimulatory domain (CD28 and / or 4-1BB domain) has shown high response rates and durability of responses in B-cell and other cancers.
[0004] CD28 agonist antibodies can be divided into two categories: (i) CD28 superagonist antibodies and (ii) conventional CD28 agonist antibodies. Activation of naive T cells typically requires both T cell antigen receptor (TCR, signal 1) ligation and CD28 costimulatory signaling (signal 2). CD28 superagonists (CD28SA) are CD28-specific monoclonal antibodies that can autonomously activate T cells without explicit T cell receptor engagement (Hunig, 2012). In rodents, CD28SA activates conventional regulatory T cells. CD28SA antibodies have been shown to be therapeutically effective in multiple models of autoimmunity, inflammation, and transplantation. However, a phase I study of the human CD28SA antibody TGN1412 resulted in a life-threatening cytokine storm in 2006. Follow-up studies suggest that toxicity was caused by a dosing error due to differences in CD28 responsiveness between human T cells and preclinical animal models. TGN1412 is currently being reevaluated in an open-label, multicenter, dose-escalation study in patients with RA and patients with metastatic or unresectable advanced solid malignancies. Conventional agonist antibodies for CD28, such as clone 9.3, mimic the CD28 natural ligand and can enhance T cell activation only in the presence of a T cell receptor signal (signal 1). Published evidence indicates that the binding epitope of an antibody significantly influences whether an agonist antibody is a superagonist or a conventional agonist (Beyersdorf et al., 2005). The superagonist TGN1412 binds to a lateral motif on CD28, whereas the conventional agonist molecule 9.3 binds near the ligand-binding epitope. As a result of their different binding epitopes, superagonist and conventional agonist antibodies differ in their ability to form linear complexes with the CD28 molecule on the surface of T cells. Specifically, TGN1412 can efficiently form linear arrays of CD28, presumably resulting in aggregated signaling components sufficient to overcome the threshold for T cell activation, whereas the conventional agonist 9.3 results in complexes with less linear structures.An attempt to convert a conventional agonist-binding factor based on the 9.3 clone has been previously published using a recombinant bispecific single-chain antibody against melanoma-associated proteoglycan and CD28 (Otz et al., 2009). The reported bispecific single-chain antibody was reported to exert "superagonist" activity despite the use of the conventional CD28 agonist-binding factor 9.3, based on the inherent tendency of bispecific single-chain antibodies to form multimeric constructs.
[0005] Epithelial cell adhesion molecule (EpCAM), also known as tumor-associated calcium signal transduction molecule 1 (TACSTD1), 17-1A, and CD326, is a type I, approximately 40 kDa, transmembrane glycoprotein that is highly expressed in epithelial cancers and at low levels in normal simple epithelia. The structure and function of EpCAM are reviewed, for example, in Schnell et al., Biochimica et Biophysica Acta - Biomembranes (2013), 1828(8): 1989-2001; Trzpis et al. Am J Pathol. (2007) 171(2): 386-395, and Baeuerle and Gires, Br. J. Cancer, (2007) 96:417-423.
[0006] EpCAM is expressed in basement membranes and mediates calcium-independent homophilic cell adhesion. The mature EpCAM molecule (after processing to remove the 23-amino acid signal peptide) contains an N-terminal 242-amino acid extracellular domain containing epidermal growth factor-like repeats, human thyroglobulin (TY) repeats, and a cysteine-poor region; a single-pass 23-amino acid transmembrane domain; and a C-terminal 26-amino acid cytoplasmic domain containing two binding sites for α-actinin and an NPXY internalization motif. EpCAM is frequently overexpressed in cancers of epithelial origin and is also expressed in cancer stem cells, making it a molecule of significant interest for therapeutic and diagnostic purposes. Because EpCAM is frequently highly expressed in cancers and their metastases, it serves as a prognostic marker, a therapeutic target, and an anchor molecule for circulating and disseminated tumor cells (CTCs / DTCs), which are considered a major source of metastatic cancer cells. The extracellular domain of EpCAM can be cleaved to yield the soluble extracellular domain molecule EpEX and the intracellular molecule EpICD. EpICD has been shown to associate with other proteins to form nuclear complexes that upregulate the expression of genes that promote cell proliferation. EpCAM may also be involved in epithelial-to-mesenchymal transition (EMT) and contribute to the formation of large metastases.
[0007] Several clinical trials using anti-EpCAM antibodies have been conducted to treat various carcinomas. The EpCAM-specific antibody Panorex® (edrecolomab; 17-1A) was first approved in Germany for the treatment of colorectal cancer in 1995, but was not approved by the FDA. Furthermore, EpCAM has been useful in enriching, identifying, and characterizing metastatic cells that disseminated from primary tumors to the blood and bone marrow of patients with advanced cancer. Despite existing challenges, EpCAM has been selected as the surface antigen for clinical use to isolate circulating tumor cells (CTCs) with prognostic value and metastatic potential.
[0008] It has been found that combining a T cell bispecific antibody (TCB), such as a critical dose of an anti-CD3 bispecific antibody (CEA-TCB), with an agonistic anti-CD28 molecule achieves better T cell activation. Given that CD28 is expressed at baseline on T cells in various tumor indications (Lavin et al., 2017; Tirosh et al., 2016; Zheng et al., 2017) and that activation of CD28 signaling enhances T cell receptor signaling, the combination of a TCB molecule with an EpCAM-targeted CD28 molecule is expected to act synergistically to induce potent and long-lasting antitumor responses. International Publication No. WO 2020 / 127618 A1 describes tumor-targeted agonistic CD28 antigen-binding molecules. Various tumor targets are described.
[0009] However, the activity of this molecule has been found to be strictly dependent on the properties of the tumor-targeting antibody. Therefore, we describe herein a novel EpCAM-targeting agonist CD28 molecule that exhibits strong synergy with TCB and requires CD28-binding monovalency for strict tumor-targeting dependency in the presence of TCB signaling. Summary of the Invention
[0010] The present invention describes novel EpCAM-targeting bispecific agonist CD28 antigen-binding molecules that achieve tumor-dependent T cell activation and tumor cell killing without the need for multimerization. The bispecific CD28 antigen-binding molecules of the present invention are characterized by monovalent binding to CD28 and by the fact that they contain a specific antigen-binding domain, as defined herein, capable of specific binding to epithelial cell adhesion molecule (EpCAM). Furthermore, the CD28 antigen-binding molecules have an Fc domain composed of a first subunit and a second subunit capable of stable association, which contain one or more amino acid substitutions that reduce the binding affinity and / or effector function of the antigen-binding molecule for Fc receptors. This prevents Fc receptor-mediated cross-linking, and tumor-specific activation is achieved by cross-linking through the binding of the second antigen-binding domain capable of specific binding to EpCAM.
[0011] Therefore, the present invention provides (a) a first antigen-binding domain capable of specific binding to CD28; (b) a second antigen-binding domain capable of specific binding to the antigen-binding domain capable of specific binding to epithelial cell adhesion molecule (EpCAM); and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit containing one or more amino acid substitutions that reduce the binding affinity and / or effector function of the antigen-binding molecule to an Fc receptor; 1. A bispecific agonist CD28 antigen-binding molecule characterized by monovalent binding to CD28, wherein the second antigen-binding domain capable of specific binding to EpCAM comprises: (i) a heavy chain variable region (V) comprising the heavy chain complementarity determining regions CDR-H1 of SEQ ID NO: 309, CDR-H2 of SEQ ID NO: 310, and CDR-H3 of SEQ ID NO: 311; H EpCAM) and a light chain variable region (V) comprising the light chain complementarity determining regions CDR-L1 of SEQ ID NO: 312 or SEQ ID NO: 313, CDR-L2 of SEQ ID NO: 314, and CDR-L3 of SEQ ID NO: 315. L EpCAM); or (ii) a heavy chain variable region (V) comprising the heavy chain complementarity determining regions CDR-H1 of SEQ ID NO: 2, CDR-H2 of SEQ ID NO: 3, and CDR-H3 of SEQ ID NO: 4; H EpCAM) and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 5, CDR-L2 of SEQ ID NO: 6, and CDR-L3 of SEQ ID NO: 7. L EpCAM); or (iii) a heavy chain variable region (V) comprising the heavy chain complementarity-determining regions CDR-H1 of SEQ ID NO: 10, CDR-H2 of SEQ ID NO: 11, and CDR-H3 of SEQ ID NO: 12; H EpCAM) and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 13, CDR-L2 of SEQ ID NO: 14, and CDR-L3 of SEQ ID NO: 15. L EpCAM) The present invention provides a bispecific agonist CD28 antigen binding molecule comprising:
[0012] In one aspect, a bispecific agonist CD28 antigen-binding molecule as defined below is provided, wherein the Fc domain is an IgG, particularly an IgG1 Fc domain or an IgG4 Fc domain. In a particular aspect, the Fc domain composed of a first subunit and a second subunit capable of stable association is an IgG1 Fc domain. In one aspect, the Fc domain comprises the amino acid substitutions L234A and L235A (numbering according to the Kabat EU index). In one aspect, the Fc domain is an Fc domain of the human IgG1 subclass and comprises the amino acid mutations L234A, L235A, and P329G (numbering according to the Kabat EU index).
[0013] In one embodiment a bispecific agonist CD28 antigen binding molecule as defined herein before, wherein the first antigen binding domain capable of specific binding to CD28 comprises: (i) a heavy chain variable region (V) comprising the heavy chain complementarity determining regions CDR-H1 of SEQ ID NO: 26, CDR-H2 of SEQ ID NO: 27, and CDR-H3 of SEQ ID NO: 28; H and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 29, CDR-L2 of SEQ ID NO: 30, and CDR-L3 of SEQ ID NO: 31. L CD28); or (ii) a heavy chain variable region (V) comprising CDR-H1 of SEQ ID NO: 18, CDR-H2 of SEQ ID NO: 19, and CDR-H3 of SEQ ID NO: 20; H CD28) and a light chain variable region (V) comprising CDR-L1 of SEQ ID NO: 21, CDR-L2 of SEQ ID NO: 22, and CDR-L3 of SEQ ID NO: 23. L CD28) A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0014] In one aspect, the antigen binding domain of the bispecific agonist CD28 antigen binding molecule capable of specific binding to CD28 comprises a heavy chain variable region (VH1) comprising CDR-H1 of SEQ ID NO: 26, CDR-H2 of SEQ ID NO: 27 and CDR-H3 of SEQ ID NO: 28. HCD28) and a light chain variable region (V) comprising CDR-L1 of SEQ ID NO: 29, CDR-L2 of SEQ ID NO: 30, and CDR-L3 of SEQ ID NO: 31 L CD28).
[0015] In another aspect, the antigen-binding domain of the bispecific agonist CD28 antigen-binding molecule capable of specific binding to CD28 comprises a heavy chain variable region (VH1) comprising CDR-H1 of SEQ ID NO: 18, CDR-H2 of SEQ ID NO: 19, and CDR-H3 of SEQ ID NO: 20. H CD28) and a light chain variable region (V) comprising CDR-L1 of SEQ ID NO: 21, CDR-L2 of SEQ ID NO: 22, and CDR-L3 of SEQ ID NO: 23. L CD28).
[0016] Furthermore, there is provided a bispecific agonist CD28 antigen binding molecule as defined herein above, wherein the first antigen binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO: 24. H CD28) and a light chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO: 25. L A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0017] In a further aspect, there is provided a bispecific agonist CD28 antigen binding molecule, wherein a first antigen binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 32, SEQ ID NO: 33, SEQ ID NO: 34, SEQ ID NO: 35, SEQ ID NO: 36, SEQ ID NO: 37, SEQ ID NO: 38, SEQ ID NO: 39, SEQ ID NO: 40, and SEQ ID NO: 41. H and a light chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 25, SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 45, SEQ ID NO: 46, SEQ ID NO: 47, SEQ ID NO: 48, SEQ ID NO: 49, SEQ ID NO: 50, and SEQ ID NO: 51. LA bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0018] In another embodiment, the bispecific agonist CD28 antigen binding molecule comprises a first antigen binding domain capable of specific binding to CD28 comprising: (a) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 37 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 44 L CD28), or (b) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 37 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L CD28), or (c) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 41 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 51 L CD28), or (d) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 43 L CD28), or (e) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 44 L CD28), or (f) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 49 L CD28), or (g) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L CD28), or (h) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 33 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L CD28), or (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 43 L CD28), or (j) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 49 L CD28), or (k) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L CD28) A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0019] In one particular aspect, there is provided a bispecific agonist CD28 antigen binding molecule, wherein the first antigen binding domain capable of specific binding to CD28 comprises a heavy chain variable region (VH1) comprising the heavy chain complementarity determining regions of SEQ ID NO: 52, CDR-H2 of SEQ ID NO: 53, and CDR-H3 of SEQ ID NO: 54. H and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 55, CDR-L2 of SEQ ID NO: 56, and CDR-L3 of SEQ ID NO: 57. L In one embodiment, a bispecific agonist CD28 antigen binding molecule is provided, comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 37. H a light chain variable region (V) comprising the CDRs of CD28 and the amino acid sequence of SEQ ID NO: 44; L In one particular embodiment, the first antigen-binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 37. H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 44 L CD28).
[0020] In another particular aspect, there is provided a bispecific agonist CD28 antigen binding molecule, wherein the first antigen binding domain capable of specific binding to CD28 comprises a heavy chain variable region (VH1) comprising the heavy chain complementarity determining regions of SEQ ID NO: 58, CDR-H2 of SEQ ID NO: 59, and CDR-H3 of SEQ ID NO: 60. H and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 61, CDR-L2 of SEQ ID NO: 62, and CDR-L3 of SEQ ID NO: 63. L In one embodiment, a bispecific agonist CD28 antigen binding molecule is provided, comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36. H a light chain variable region (V) comprising the CDRs of CD28 and the amino acid sequence of SEQ ID NO: 43; L In one embodiment, the first antigen-binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36. H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 43 L In a further particular aspect, the bispecific agonist CD28 antigen binding molecule comprises a first antigen binding domain capable of specific binding to CD28, the first antigen binding domain comprising a heavy chain variable region (VH1) comprising the heavy chain complementarity determining regions of SEQ ID NO: 64, CDR-H2 of SEQ ID NO: 65, and CDR-H3 of SEQ ID NO: 66. H and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 67, CDR-L2 of SEQ ID NO: 68, and CDR-L3 of SEQ ID NO: 69. L In one embodiment, a bispecific agonist CD28 antigen binding molecule is provided, comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32. H a light chain variable region (V) comprising the CDRs of CD28 and the amino acid sequence of SEQ ID NO: 25; L In one embodiment, the first antigen-binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32. HCD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L CD28).
[0021] In one aspect, there is provided a bispecific agonist CD28 antigen binding molecule, wherein the second antigen binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (VH1) comprising the heavy chain complementarity determining regions of SEQ ID NO: 309, CDR-H2 of SEQ ID NO: 310, and CDR-H3 of SEQ ID NO: 311. H EpCAM) and a light chain variable region (V) comprising the light chain complementarity determining regions CDR-L1 of SEQ ID NO: 312 or SEQ ID NO: 313, CDR-L2 of SEQ ID NO: 314, and CDR-L3 of SEQ ID NO: 315. L In one aspect, the second antigen-binding domain capable of specific binding to EpCAM is (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 264 L CDR of EpCAM, or (ii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 266 L CDR of EpCAM, or (iii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 267 L CDR of EpCAM, or (iv) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 269 L CDR of EpCAM, or (v) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 259 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 266 L EpCAM CDR Includes:
[0022] In one embodiment, the second antigen-binding domain capable of specific binding to EpCAM comprises: (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 264 L EpCAM), or (ii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 266 L EpCAM), or (iii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 267 L EpCAM), or (iv) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 269 L EpCAM), or (v) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 259 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 266 L EpCAM) Includes:
[0023] In one aspect, there is provided a bispecific agonist CD28 antigen binding molecule, wherein the second antigen binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (VH1) comprising the heavy chain complementarity determining regions of: CDR-H1 of SEQ ID NO: 2, CDR-H2 of SEQ ID NO: 3, and CDR-H3 of SEQ ID NO: 4. H EpCAM) and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 5, CDR-L2 of SEQ ID NO: 6, and CDR-L3 of SEQ ID NO: 7. L In one embodiment, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 8. Ha light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 9; L In a particular embodiment, the second antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 8. H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 9 L EpCAM).
[0024] In another aspect, there is provided a bispecific agonist CD28 antigen binding molecule described herein, wherein the antigen binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (VH1) comprising the heavy chain complementarity determining regions of CDR-H1 of SEQ ID NO: 10, CDR-H2 of SEQ ID NO: 11, and CDR-H3 of SEQ ID NO: 12. H EpCAM) and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 13, CDR-L2 of SEQ ID NO: 14, and CDR-L3 of SEQ ID NO: 15. L In one embodiment, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 16. H a light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 17; L In one particular embodiment, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 16. H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 17 L EpCAM).
[0025] In a further aspect, there is provided a bispecific agonist CD28 antigen-binding molecule as defined herein above, wherein the first antigen-binding domain capable of specific binding to CD28 and / or the second antigen-binding domain capable of specific binding to EpCAM are Fab fragments or crossFab fragments. In one aspect, there is provided a bispecific agonist CD28 antigen-binding molecule as described herein, comprising: (a) a Fab fragment capable of specific binding to CD28, (b) a crossFab fragment capable of specific binding to EpCAM, and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit and the second subunit comprising one or more amino acid substitutions that reduce the binding affinity and / or effector function of the antigen-binding molecule for an Fc receptor. In another aspect, there is provided a bispecific agonist CD28 antigen-binding molecule as described herein, comprising: (a) a crossFab fragment capable of specific binding to CD28; (b) a Fab fragment capable of specific binding to EpCAM; and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit and the second subunit comprising one or more amino acid substitutions that reduce the binding affinity and / or effector function of the antigen-binding molecule for an Fc receptor.
[0026] In one embodiment, the first antigen-binding domain capable of specific binding to CD28 is a Fab fragment in which the variable domains VL and VH of the Fab light and heavy chains, or the constant domains CL and CH1, in particular the variable domains VL and VH, have been replaced by one another. In one embodiment, the second antigen-binding domain capable of specific binding to EpCAM is a conventional Fab fragment.
[0033] In one aspect, the second antigen-binding domain capable of specific binding to EpCAM is a Fab molecule in which in the constant domain CL the amino acid at position 123 (numbering according to Kabat EU index) is substituted by an amino acid selected from lysine (K), arginine (R) or histidine (H) and the amino acid at position 124 (numbering according to Kabat EU index) is independently substituted by lysine (K), arginine (R) or histidine (H); and in the constant domain CHI the amino acid at position 147 (numbering according to Kabat EU index) is independently substituted by glutamic acid (E) or aspartic acid (D) and the amino acid at position 213 (numbering according to Kabat EU index) is independently substituted by glutamic acid (E) or aspartic acid (D) (numbering according to Kabat EU index).
[0027] In one particular embodiment, a bispecific agonist CD28 antigen binding molecule comprising: (i) a first light chain comprising the amino acid sequence of SEQ ID NO: 92, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 91, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 104, and a second light chain comprising the amino acid sequence of SEQ ID NO: 105; or (ii) a first light chain comprising the amino acid sequence of SEQ ID NO: 92, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 91, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 100, and a second light chain comprising the amino acid sequence of SEQ ID NO: 101. A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0028] In a further aspect, there is provided a bispecific agonist CD28 antigen-binding molecule as described herein, wherein the second antigen-binding domain capable of specific binding to EpCAM is a Fab molecule, and the variable domains VL and VH of the Fab light chain and the Fab heavy chain, or the constant domains CL and CH1, in particular the variable domains VL and VH, are replaced by each other. In one aspect, the first antigen-binding domain capable of specific binding to CD28 is a conventional Fab molecule. and wherein in the constant domain CHI the amino acid at position 147 (numbering according to Kabat EU index) is independently substituted by glutamic acid (E) or aspartic acid (D); and wherein the amino acid at position 213 (numbering according to Kabat EU index) is independently substituted by glutamic acid (E) or aspartic acid (D) (numbering according to Kabat EU index).
[0029] In one particular embodiment, a bispecific agonist CD28 antigen binding molecule comprising: (i) a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 271, and a second light chain comprising the amino acid sequence of SEQ ID NO: 272; or (ii) a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 273, and a second light chain comprising the amino acid sequence of SEQ ID NO: 272; or (iii) a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 274, and a second light chain comprising the amino acid sequence of SEQ ID NO: 272; or (iv) a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 275, and a second light chain comprising the amino acid sequence of SEQ ID NO: 272; or (v) a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 273, and a second light chain comprising the amino acid sequence of SEQ ID NO: 276. A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0030] In another aspect, there is provided a bispecific agonist CD28 antigen-binding molecule disclosed herein, wherein the first subunit and the second antigen-binding domain are each a Fab molecule, and the Fc domain is composed of a first subunit and a second subunit capable of stable association, wherein (i) the first antigen-binding domain is fused at the C-terminus of the Fab heavy chain to the N-terminus of the first Fc subunit, and the second antigen-binding domain is fused at the C-terminus of the Fab heavy chain to the N-terminus of the second Fc subunit, or (ii) the second antigen-binding domain is fused at the C-terminus of the Fab heavy chain to the N-terminus of the first Fc subunit, and the first antigen-binding domain is fused at the C-terminus of the Fab heavy chain to the N-terminus of the second Fc subunit. In one aspect, the Fc domain comprises a modification that promotes association of the first and second Fc subunits. In one aspect, the first subunit of the Fc domain comprises the amino acid substitutions S354C and T366W (EU numbering) and the second subunit of the Fc domain comprises the amino acid substitutions Y349C, T366S and Y407V (numbering according to the Kabat EU index).
[0031] Another aspect of the present invention provides one or more isolated polynucleotides encoding the bispecific agonist CD28 antigen-binding molecules of the present invention. The present invention further provides one or more vectors, particularly one or more expression vectors, comprising one or more isolated polynucleotides of the present invention, and host cells comprising one or more isolated polynucleotides or one or more expression vectors of the present invention. In some embodiments, the host cell is a eukaryotic cell, particularly a mammalian cell. In another aspect, there is provided a method for producing the bispecific agonist CD28 antigen-binding molecules described herein, comprising culturing a host cell of the present invention under conditions suitable for expression of the bispecific agonist CD28 antigen-binding molecule. Optionally, the method also comprises recovering the bispecific agonist CD28 antigen-binding molecule. The present invention also encompasses the bispecific agonist CD28 antigen-binding molecules produced by the methods of the present invention.
[0032] The present invention further provides a pharmaceutical composition comprising a bispecific agonist CD28 antigen binding molecule of the present invention and at least one pharmaceutically acceptable excipient. In one aspect, the pharmaceutical composition is for use in the treatment of a disease, particularly cancer.
[0033] The present invention also encompasses methods of using bispecific agonist CD28 antigen-binding molecules or pharmaceutical compositions of the invention. In one aspect, the present invention provides a bispecific agonist CD28 antigen-binding molecule or pharmaceutical composition according to the invention for use as a medicament. In one aspect, a bispecific agonist CD28 antigen-binding molecule described herein is provided for use in (a) enhancing cell activation or (b) enhancing T cell effector function. In one aspect, a bispecific agonist CD28 antigen-binding molecule or pharmaceutical composition according to the invention is provided for use in the treatment of disease. In a specific aspect, the disease is cancer. In another aspect, the bispecific agonist CD28 antigen-binding molecule or pharmaceutical composition according to the invention is for use in the treatment of cancer, and the bispecific agonist CD28 antigen-binding molecule is for administration in combination with chemotherapy, radiation therapy, and / or other agents for use in cancer immunotherapy. In a further aspect, there is provided a bispecific agonist CD28 antigen-binding molecule or pharmaceutical composition for use in the treatment of cancer, wherein the bispecific agonist CD28 antigen-binding molecule is for administration in combination with a T-cell-activating anti-CD3 bispecific antibody. In yet another aspect, there is provided a bispecific agonist CD28 antigen-binding molecule or pharmaceutical composition for use in the treatment of cancer, wherein the bispecific agonist CD28 antigen-binding molecule is for administration in combination with an anti-PD-L1 antibody or an anti-PD-1 antibody.
[0034] Also provided are the use of a bispecific agonist CD28 antigen-binding molecule or pharmaceutical composition according to the invention in the manufacture of a medicament for treating a disease, as well as a method of treating a disease in an individual, comprising administering to the individual a therapeutically effective amount of a bispecific agonist CD28 antigen-binding molecule according to the invention or a composition comprising a bispecific agonist CD28 antigen-binding molecule according to the invention in a pharmaceutically acceptable form. In a specific embodiment, the disease is cancer. In one embodiment, a method is provided for (a) enhancing cell activation or (b) enhancing T cell effector function in an individual, comprising administering to the individual a bispecific agonist CD28 antigen-binding molecule according to the invention or a composition comprising a bispecific agonist CD28 antigen-binding molecule according to the invention in a pharmaceutically acceptable form. In another embodiment, the use of a bispecific agonist CD28 antigen-binding molecule according to the invention in the manufacture of a medicament for treating a disease, wherein the treatment comprises co-administration with chemotherapeutic agents, radiation therapy, and / or other agents for use in cancer immunotherapy, is provided. In a further aspect, there is provided a method of treating a disease in an individual, comprising administering to the individual a therapeutically effective amount of a bispecific agonist CD28 antigen binding molecule of the invention or a composition comprising a bispecific agonist CD28 antigen binding molecule of the invention in a pharmaceutically acceptable form, wherein the method comprises co-administering with chemotherapy, radiation therapy, and / or other agents for use in cancer immunotherapy. In a further aspect, there is provided a method of treating a disease in an individual, comprising administering to the individual a therapeutically effective amount of a bispecific agonist CD28 antigen binding molecule according to the invention or a composition comprising a bispecific agonist CD28 antigen binding molecule according to the invention in a pharmaceutically acceptable form, wherein the method comprises co-administering a T cell-activating anti-CD3 bispecific antibody. In another aspect, there is provided a method of treating a disease in an individual, comprising administering to the individual a therapeutically effective amount of a bispecific agonist CD28 antigen binding molecule according to the invention or a composition comprising a bispecific agonist CD28 antigen binding molecule according to the invention in a pharmaceutically acceptable form, wherein the method comprises co-administering an anti-PD-L1 antibody or an anti-PD-1 antibody.Also provided is a method for inhibiting tumor cell growth in an individual, comprising administering to the individual an effective amount of a bispecific agonist CD28 antigen-binding molecule according to the invention or a composition comprising a bispecific agonist CD28 antigen-binding molecule according to the invention in a pharmaceutically acceptable form, thereby inhibiting tumor cell growth. In any of the above aspects, the individual is preferably a mammal, particularly a human. [Brief explanation of the drawings]
[0035] [Figures 1A-1C] Schematics of exemplary molecules described herein are shown. Figure 1A shows a schematic diagram of a CD28 agonist antibody variant ("Fc silent") as a monovalent hu IgG1 PGLALA isotype. Figure 1B shows a bispecific EpCAM-CD28 antigen binding molecule in a 1+1 format, in which the VH and VL domains of the Fab molecule containing the CD28 antigen binding domain are swapped with each other (VH / VL crossfab), and specific amino acids of the CH1 and CL domains of the Fab molecule containing the EpCAM antigen binding domain are swapped (charge variant) to allow better pairing with the light chain. Figure 1C shows a bispecific EpCAM8 antigen binding molecule in a 1+1 format, in which the VH and VL domains of the Fab molecule containing the EpCAM antigen binding domain are swapped with each other (VH / VL crossfab), and specific amino acids of the CH1 and CL domains of the Fab molecule containing the CD28 antigen binding domain are swapped (charge variant) to allow better pairing with the light chain. [Figures 2A-2D]Alignment of the variable domain of CD28(SA) and its variants is shown. Figure 2A shows an alignment of the CD28(SA) VH domain and its variants for removing cysteine 50 and reducing the affinity of the resulting anti-CD28 binding agent to various degrees. Of note, in VH variants i and j, the CDRs of CD28(SA) were grafted from the IGHV1-2 framework onto the IGHV3-23 framework (Figure 2B). Figure 2C shows an alignment of the CD28(SA) VL domain and its variants for reducing the affinity of the resulting anti-CD28 binding agent to various degrees. In variant t, the CDRs were grafted onto the framework sequence of the trastuzumab (Herceptin) VL sequence (Figure 2D). [Figure 3A-3C] Figure 3 shows binding of reduced-affinity CD28 agonist antibody variants in a monospecific, monovalent IgG format from supernatants to human CD28 on cells. Median fluorescence intensity of binding to CHO cells expressing human CD28 (parental cell line CHO-k1 ATCC#CCL-61 modified to stably overexpress human CD28) was assessed by flow cytometry, compared to a negative control (anti-DP47) and the original CD28 antibody CD28 (SA). Binding curves for variants 1–10 are shown in Figure 3A, those for variants 11–22 are shown in Figure 3B, and those for variants 23–31 are shown in Figure 3C. Technical replicates are shown in SD. [Figures 4A-4D]Figure 1 shows that EpCAM-CD28 bispecific antigen binding molecules (EpCAM(4D5MOC-B)-CD28(SA_variant 8) (P1AF5980), EpCAM(3-17I)-CD28(SA_variant 8) (P1AF5974), EpCAM(MT201)-CD28(SA_variant 15) (P1AE9051), and EpCAM(MT201)-CD28(SA_variant 8) (P1AF5296)) enhance T cell responses to anti-CD3 stimulation in an IL-2 reporter assay. IL-2 reporter cell activation, measured by luminescence readout in counts per second (CPS), is shown after 6 hours of co-incubation with SW403, HT-29, MCF-7, and KATO-III tumor cells in the presence of a suboptimal concentration of anti-CD3 IgG (10 nM) and increasing concentrations of EpCAM-CD28. Three replicates with standard deviation (SD) are shown. The curves with open symbols show activation of IL-2 reporter cells in the absence of anti-CD3 stimulation OKT-3, and the curves with closed symbols show activation of IL-2 reporter cells in the presence of 10 nM OKT-3. Figure 4A: Presence of EpCAM-expressing target cells SW403, Figure 4B: Presence of EpCAM-expressing target cells HT29, Figure 4C: Presence of EpCAM-expressing target cells MCF7, and Figure 4D: Presence of EpCAM-expressing target cells KATO-III. [Figures 5A-5D]EpCAM-CD28 bispecific antigen binding molecules (EpCAM(4D5MOC-B)-CD28(SA_variant 8) (P1AF5980), EpCAM(3-17I)-CD28(SA_variant 8) (P1AF5974), EpCAM(MT201)-CD28(SA_variant 15) (P1AE9051), and EpCAM(MT201)-CD28(SA_variant 8) (P1AF5296)) enhance T cell responses to anti-CD3 stimulation mediated by different concentrations of bispecific anti-CEA / anti-CD3 antibody (CEA-TCB) in an IL-2 reporter assay. Figure 5 shows IL-2 reporter cell activation measured by luminescence readout in counts per second (CPS) after 6 hours of co-incubation with KATO-III cells in the presence of different concentrations of CEA-TCB (10 nM, 5 nM, 1 nM, or no CEA-TCB) and increasing concentrations of EpCAM-CD28. Three replicates with SD are shown. Figure 5A: 10 nM CEA-TCB, Figure 5B: 5 nM CEA-TCB, Figure 5C: 1 nM CEA-TCB, Figure 5D: no CEA-TCB. [Figures 6A-6C] Figures 6A and 6B show the binding of EpCAM-CD28 bispecific antigen-binding molecules (EpCAM(4D5MOC-B)-CD28(SA_variant 8) (P1AF5980), EpCAM(3-17I)-CD28(SA_variant 8) (P1AF5974), EpCAM(MT201)-CD28(SA_variant 15) (P1AE9051), and EpCAM(MT201)-CD28(SA_variant 8) (P1AF5296)) to EpCAM-expressing cells and CD28-expressing cells, respectively. All EpCAM-CD28 bispecific antigen-binding molecules were able to bind to human EpCAM on KATO-III cells (Figures 6A and 6B) and human CD28 on CHO-k1-huCD28 cells (Figure 6C) in a concentration-dependent manner, as assessed by flow cytometry. Triplicates are shown with SD. [Figure 7A-7C]Figure 7 shows a schematic diagram of the EpCAM antigen described and generated herein for testing novel EpCAM antibodies. Figure 7A shows a schematic diagram of a construct containing two EpCAM ECDs and a C-terminal avi-his tag on the knob chain. Figure 7B shows a construct containing one EpCAM ECD and a C-terminal avi-his tag. Figure 7C shows a soluble recombinant EpCAM ECD containing a C-terminal avi-his tag. [Figure 8A] Alignment of the variable domains of 4D5MOC-B, its rehumanized variants, and the germline sequences used for humanization is shown. The variants were generated to remove murine-derived amino acids and increase homology with their closest human germline counterparts. An alignment of the EpCAM (4D5MOC-B) VH domain and its variants is shown in Figure 8A. [Figure 8B] Figure 8B shows an alignment of the variable domains of 4D5MOC-B, its rehumanized variants, and the germline sequences used for humanization. The variants were generated to remove murine-derived amino acids and increase homology with their closest human germline counterparts. Figure 8B shows an alignment of the EpCAM (4D5MOC-B) VL domain with its variants. [Figure 9A-9B] 9A and 9B show schematic diagrams of exemplary molecules described herein. Figure 9A shows a schematic diagram of an anti-human EpCAM antibody variant ("Fc silent") as a monovalent hu IgG1 PGLALA isotype. Figure 9B shows a schematic diagram of an anti-human EpCAM antibody variant ("Fc silent") in a bivalent IgG1 PGLALA isotype format. [Figures 10A-10B] Alignment of the variable domains of murine antibody MOC31, the published humanized variant 4D5MOC-B, and a new independently humanized variant of MOC31 is shown. The alignment of the EpCAM (MOC31) VH domain and its variants is shown in Figure 10A. The alignment of the EpCAM (MOC31) VL domain and its variants is shown in Figure 10B. The CDRs are shown according to Kabat. [Figures 11A-11C]Both EpCAM-CD28 bispecific antigen-binding molecules (EpCAM(4D5MOC-B)-CD28(SA_variant 8) (P1AF5980) and EpCAM(4D5MOC-B)-CD28(SA_variant 15) (P1AG1663)) are shown to enhance T cell responses to anti-CD3 stimulation in an IL-2 reporter assay. IL-2 reporter cell activation measured by luminescence readout after 6 hours of co-incubation with HT-29 cells (FIG. 11A), MKN45 cells (FIG. 11B), or NCI-H1755 cells (FIG. 11C) in the presence of a suboptimal concentration of anti-CD3 IgG (10 nM) and increasing concentrations of EpCAM-CD28 is shown. Triplicates with SD are shown. [Figure 12] Figure 1 shows the strong synergistic effect of combining suboptimal amounts of MAGE-A4 TCB with pCAM-CD28 (EpCAM(4D5MOC-B)-CD28(SA_variant 8) (P1AF5980)). Figure 2 shows tumor cell proliferation of ScaBER cells monitored by continuous live cell imaging using the IncuCyte® ZOOM Live-cell analysis system. Normalized erythrocyte readouts (= target cell proliferation) of the different conditions are plotted over the evaluation time period. Shown are triplicates with SD. [Figures 13A-13D] Figure 13A shows that all bispecific EpCAM-CD28 antigen binding molecules (P1AH2326, P1AH2327, P1AH2328, P1AH2329, and P1AH2330) containing the new EpCAM (MOC31) humanized variant enhance T cell responses to anti-CD3 stimulation in an IL-2 reporter assay. IL-2 reporter cell activation was measured by luminescence readout after 6 hours of co-incubation with HT-29 EpCAM-expressing cells in the presence of a suboptimal concentration of anti-CD3 IgG (10 nM) and increasing concentrations of EpCAM-CD28. Three replicates are shown with SD. Figure 13B shows that no activation is observed in the absence of anti-CD3 IgG (OKT3). As shown in Figure 13C (with anti-CD3 IgG) or Figure 13D (without anti-CD3 IgG), no activation is observed when EpCAM-expressing cells are omitted. [Figures 14A-14F] Suboptimal amounts of MAGE-A4 TCB show strong synergistic effects when combined with all bispecific EpCAM-CD28 antigen binding molecules with the new EpCAM (MOC31) humanized variants P1AH2326 (Figure 14B), P1AH2327 (Figure 14C), P1AH2328 (Figure 14D), P1AH2329 (Figure 14E), and P1AH2330 (Figure 14F), or with EpCAM (4D5MOC-B)-CD28 (SA_variant 8) (P1AF5980) (Figure 14A). Tumor cell proliferation of ScaBER cells monitored by continuous live cell imaging using the IncuCyte® ZOOM Live-cell analysis system. Normalized erythrocyte readouts (= target cell proliferation) of the different conditions are plotted over the evaluation time period. Triplicates with SD are shown. [Figures 15A-15F] Figure 15 shows tumor cell proliferation of ScaBER cells monitored by continuous live cell imaging using the IncuCyte® ZOOM Live-cell analysis system. Normalized erythrocyte readouts (= target cell proliferation) for the different conditions were plotted over the evaluation time period. Triplicates are shown with SD. In the absence of MAGE-A4 TCB, EpCAM-CD28 humanized variants P1AH2326 (Figure 15B), P1AH2327 (Figure 15C), P1AH2328 (Figure 15D), P1AH2329 (Figure 15E), P1AH2330 (Figure 15F), or EpCAM(4D5MOC-B)-CD28(SA_variant8) (P1AF5980) (Figure 15A) showed no activity, demonstrating that the costimulatory effect of EPCAM-CD28 is strongly dependent on the presence of MAGE-A4 TCB. [Figure 16] All bispecific EpCAM-CD28 antigen-binding molecules containing the new EpCAM (MOC31) humanized variants (P1AH2326, P1AH2327, P1AH2328, P1AH2329, and P1AH2330) bind to human EpCAM on HT-29 cells in a concentration-dependent manner, as assessed by flow cytometry. Three replicates are shown in SD. [Figure 17]
[0023] Figure 1 shows the study design for an efficacy study of a bispecific EpCAM-CD28 antibody in combination with an HLA-G TCB in the BC004 PDX model in humanized NSG mice. The design and different treatment groups are shown. [Figure 18] Tumor growth kinetics (mean, +SEM) for all treatment groups are shown (mean tumor volume). [Figures 19A-19E] The y-axis plots tumor growth in individual mice from the five treatment groups. Figure 19A shows tumor growth in individual mice in the vehicle group, Figure 19B shows tumor growth in mice treated with HLA-G TCB alone at 0.5 mg / kg, Figure 19C shows tumor growth in mice treated with HLA-G TCB alone at 0.05 mg / kg, Figure 19D shows tumor growth in mice treated with HLA-G TCB (0.5 mg / kg) and EpCAM-CD28 (1 mg / kg), and Figure 19E shows tumor growth in mice treated with HLA-G TCB (0.05 mg / kg) and EpCAM-CD28 (1 mg / kg). It can be seen that TCB-mediated tumor regression is increased in the presence of the bispecific EpCAM-CD28 antibody. DETAILED DESCRIPTION OF THE INVENTION
[0036] definition Unless defined otherwise, technical and scientific terms used herein have the same meaning as commonly used in the art to which this invention belongs. For purposes of interpreting this specification, the following definitions shall apply, and whenever appropriate, terms used in the singular shall also include the plural and vice versa.
[0037] As used herein, the term "antigen-binding molecule" in its broadest sense refers to a molecule that specifically binds to an antigenic determinant. Examples of antigen-binding molecules are antibodies, multispecific antibodies (e.g., bispecific antibodies), antibody fragments, and scaffold antigen-binding proteins.
[0038] As used herein, the terms "antigen-binding domain that binds to a tumor-associated antigen" or "moiety capable of specific binding to a tumor-associated antigen" refer to a polypeptide molecule that specifically binds to the tumor-associated antigen EpCAM. In one embodiment, the antigen-binding domain is capable of activating signaling via EpCAM. In a particular embodiment, the antigen-binding domain is capable of targeting an entity to which it is attached (e.g., a CD28 antibody) to EpCAM-expressing cells, such as specific types of tumor cells. Antigen-binding domains capable of specific binding to EpCAM include antibodies and fragments thereof as further defined herein. In addition, antigen-binding domains capable of specific binding to a tumor-associated antigen include scaffold antigen-binding proteins as further defined herein, such as binding domains based on designed repeat proteins or designed repeat domains (see, for example, WO 2002 / 020565).
[0039] With respect to an antigen-binding molecule, i.e., an antibody or a fragment thereof, the term "antigen-binding domain" refers to a portion of the molecule comprising a region that specifically binds to and is complementary to a part or all of an antigen. An antigen-binding domain capable of specific antigen binding can be provided, for example, by one or more antibody variable domains (also referred to as antibody variable regions). Specifically, an antigen-binding domain capable of specific antigen binding comprises an antibody light chain variable region (VL) and an antibody heavy chain variable region (VH). In another embodiment, an "antigen-binding domain capable of specific binding to a tumor-associated antigen" may be a Fab fragment or a crossFab fragment. As used herein, the terms "first," "second," or "third" with respect to antigen-binding domains, etc., are used for convenience in distinguishing between two or more of each type of moiety. The use of these terms is not intended to confer a particular order or orientation of the moieties, unless explicitly stated.
[0040] The term "antibody" herein is used in the broadest sense and encompasses a variety of antibody structures, including, but not limited to, monoclonal antibodies, polyclonal antibodies, monospecific and multispecific antibodies (e.g., bispecific antibodies), and antibody fragments, so long as they exhibit the desired antigen-binding activity.
[0041] As used herein, the term "monoclonal antibody" refers to an antibody obtained from a population of substantially homogeneous antibodies, i.e., each individual antibody in the population is identical and / or binds to the same epitope, except for possible variant antibodies containing, for example, naturally occurring mutations or mutations that arise during production of a monoclonal antibody preparation, such variants typically being present in minor amounts. In contrast to polyclonal antibody preparations, which typically include different antibodies directed against different determinants (epitopes), each monoclonal antibody of a monoclonal antibody preparation is directed against a single determinant on an antigen.
[0042] As used herein, the term "monospecific" antibody refers to an antibody having one or more binding sites, each of which binds to the same epitope of the same antigen. The term "bispecific" means that an antigen-binding molecule can specifically bind to at least two different antigenic determinants. Typically, a bispecific antigen-binding molecule contains two antigen-binding sites, each of which is specific for a different antigenic determinant. However, a bispecific antigen-binding molecule may also contain an additional antigen-binding site that binds to an additional antigenic determinant. In certain embodiments, a bispecific antigen-binding molecule can simultaneously bind to two antigenic determinants, particularly two antigenic determinants expressed on two different cells or the same cell. Thus, the term "bispecific" according to the present invention may also include trispecific molecules, such as a CD28 antibody and a bispecific molecule comprising two antigen-binding domains directed against two different target cell antigens.
[0043] The term "valent" as used herein indicates that a specific number of binding sites specific for one antigenic determinant are present in an antigen-binding molecule that is specific for one antigenic determinant. Accordingly, the terms "bivalent," "tetravalent," and "hexavalent" indicate that an antigen-binding molecule has two, four, and six binding sites specific for a particular antigenic determinant, respectively. In certain aspects of the present invention, bispecific antigen-binding molecules according to the present invention may be monovalent with respect to a particular antigenic determinant (meaning that they have only one binding site for that antigenic determinant), or may be bivalent or tetravalent with respect to a particular antigenic determinant (meaning that they have two or four binding sites for that antigenic determinant, respectively).
[0044] The terms "full-length antibody," "intact antibody," and "whole antibody" are used interchangeably herein to refer to antibodies having a structure substantially similar to that of a native antibody. A "native antibody" refers to a naturally occurring immunoglobulin molecule having a variety of structures. For example, native IgG class antibodies are heterotetrameric glycoproteins of approximately 150,000 daltons, composed of two disulfide-bonded light chains and two heavy chains. From the N-terminus to the C-terminus, each heavy chain has a variable region (VH) (also called a variable heavy domain or a heavy chain variable domain) followed by three constant domains (CH1, CH2, and CH3) (also called heavy chain constant regions). Similarly, from the N-terminus to the C-terminus, each light chain has a variable region (VL) (also called a variable light domain or a light chain variable domain) followed by a light chain constant domain (CL) (also called a light chain constant region). The heavy chains of antibodies may be divided into one of five types called α (IgA), δ (IgD), ε (IgE), γ (IgG), or μ (IgM), some of which may be further divided into subtypes, e.g., γ1 (IgG1), γ2 (IgG2), γ3 (IgG3), γ4 (IgG4), α1 (IgA1), and α2 (IgA2). The light chains of antibodies may be assigned to one of two types, called kappa (κ) and lambda (λ), based on the amino acid sequence of their constant domain.
[0045] "Antibody fragment" refers to a molecule other than an intact antibody that contains a portion of an intact antibody that binds to the antigen to which the intact antibody binds. Examples of antibody fragments include, but are not limited to, Fv, Fab, Fab', Fab'-SH, F(ab')2; diabodies, triabodies, tetrabodies, crossFab fragments; linear antibodies; single-chain antibody molecules (e.g., scFv); and single-domain antibodies. For a review of specific antibody fragments, see Hudson et al., Nat Med. 9, 129-134 (2003). For a review of scFv fragments, see, e.g., Pluckthun, The Pharmacology of Monoclonal Antibodies, vol. 113, Rosenburg and Moore eds., Springer-Verlag, New York, pp. 269-315 (1994); see also WO 93 / 16185; and U.S. Pat. Nos. 5,571,894 and 5,587,458. For a description of Fab and F(ab')2 fragments that contain salvage receptor-binding epitope residues and have extended in vivo half-lives, see U.S. Pat. No. 5,869,046. Diabodies are antibody fragments with two antigen-binding sites that may be bivalent or bispecific. See, e.g., EP 404097; WO 1993 / 01161; Hudson et al., Nat Med 9, 129-134 (2003); and Hollinger et al., Proc Natl Acad Sci USA 90, 6444-6448 (1993). Triabodies and tetrabodies are also described in Hudson et al., Nat Med 9, 129-134 (2003). Single-domain antibodies are antibody fragments that contain all or part of the heavy chain variable domain or all or part of the light chain variable domain of an antibody. In certain embodiments, single-domain antibodies are human single-domain antibodies (Domantis, Inc., Waltham, MA; see, e.g., U.S. Pat. No. 6,248,516 B1).Antibody fragments can be produced by a variety of techniques, including, but not limited to, proteolytic digestion of intact antibodies and production by recombinant host cells (e.g., E. coli or phage), as described herein.
[0046] Papain digestion of an intact antibody produces two identical antigen-binding fragments, called "Fab" fragments, each containing the heavy and light chain variable domains, as well as the constant domain of the light chain and the first constant domain (CH1) of the heavy chain. Thus, as used herein, the term "Fab fragment" or "Fab molecule" refers to an antibody fragment containing a light chain fragment containing the variable light (VL) domain and constant domain of the light chain (CL), and a variable heavy (VH) domain and the first constant domain (CH1) of the heavy chain. Fab' fragments differ from Fab fragments by the addition of a few residues at the carboxy terminus of the heavy chain CH1 domain, including one or more cysteines from the antibody hinge region. Fab'-SH is a Fab' fragment in which the cysteine residue(s) in the constant domains bear a free thiol group. Pepsin treatment yields an F(ab')2 fragment containing two antigen-binding sites (two Fab fragments) and part of the Fc region. A "conventional Fab fragment" is composed of a VL-CL light chain and a VH-CH1 heavy chain.
[0047] The term "crossFab fragment" or "xFab fragment" or "crossover Fab fragment" refers to a Fab fragment in which either the variable or constant regions of the heavy and light chains have been exchanged. Two possible chain compositions of crossover Fab molecules are possible and are included in the bispecific antibodies of the present invention. On the other hand, the variable regions of the Fab heavy and light chains are swapped, i.e., the crossover Fab molecule contains a peptide chain composed of a light chain variable (VL) domain and a heavy chain constant domain (CH1), and a peptide chain composed of a heavy chain variable domain (VH) and a light chain constant domain (CL). This crossover Fab molecule is called CrossFab. (VLVH)On the other hand, when the constant regions of the Fab heavy and light chains are replaced, the crossover Fab molecule contains a peptide chain consisting of a heavy chain variable domain (VH) and a light chain constant domain (CL), and a peptide chain consisting of a light chain variable domain (VL) and a heavy chain constant domain (CH1). This crossover Fab molecule is called CrossFab. (CLCH1) It is also called.
[0048] A "single-chain Fab fragment" or "scFab" is a polypeptide consisting of an antibody heavy chain variable domain (VH), antibody constant domain 1 (CH1), antibody light chain variable domain (VL), antibody light chain constant domain (CL), and a linker, where the antibody domains and linker are arranged in the following order from N-terminus to C-terminus: (a) VH-CH1-linker-VL-CL, (b) VL-CL-linker-VH-CH1, (c) VH-CL-linker-VL-CH1, or (d) VL-CH1-linker-VH-CL; and the linker is a polypeptide of at least 30 amino acids, preferably 32 to 50 amino acids. The single-chain Fab fragment is stabilized by a native disulfide bond between the CL and CH1 domains. In addition, these single-chain Fab molecules may be further stabilized by the creation of an interchain disulfide bond through the insertion of cysteine residues (e.g., at position 44 in the variable heavy chain and position 100 in the variable light chain according to the Kabat numbering).
[0049] A "crossover single-chain Fab fragment" or "x-scFab" is a polypeptide consisting of an antibody heavy chain variable domain (VH), antibody constant domain 1 (CH1), antibody light chain variable domain (VL), antibody light chain constant domain (CL), and a linker, wherein the antibody domains and linker are arranged in one of the following N- to C-terminal orders: a) VH-CL-linker-VL-CH1 and b) VL-CH1-linker-VH-CL; together, VH and VL form an antigen-binding site that specifically binds to a given antigen, and the linker is a polypeptide of at least 30 amino acids. In addition, these x-scFab molecules may be further stabilized by the creation of an interchain disulfide bond through the insertion of cysteine residues (e.g., at position 44 in the variable heavy chain and position 100 in the variable light chain, according to the Kabat numbering system).
[0050] A "single-chain variable fragment (scFv)" is a fragment of an antibody heavy chain (V) connected using a short linker peptide of 10 to about 25 amino acids. H ) and light chain (V L ) variable region fusion proteins. The linker is usually rich in glycine for flexibility and rich in serine or threonine for solubility, and H N-terminus and V L The scFv antibody can be linked to the C-terminus of the full-length antibody, or vice versa. This protein retains the properties of the original antibody despite the removal of the constant region and the introduction of the linker. scFv antibodies are described, for example, in Houston, JS, Methods in Enzymol. 203 (1991) 46-96. In addition, antibody fragments can contain a single polypeptide chain characterized by a VH domain (i.e., capable of assembling with a VL domain) or a VL domain (i.e., capable of assembling with a VH domain into a functional antigen-binding site), thereby conferring the antigen-binding properties of a full-length antibody.
[0051] "Scaffold antigen-binding proteins" are known in the art; for example, fibronectin and designed ankyrin repeat proteins (DARPins) have been used as alternative scaffolds for antigen-binding domains. See, e.g., Gebauer and Skerra, Engineered protein scaffolds as next-generation antibody therapeutics. Curr Opin Chem Biol 13:245-255 (2009) and Stumpp et al., Darpins: A new generation of protein therapeutics. Drug Discovery Today 13: 695-701 (2008). In one embodiment of the invention, the scaffold antigen binding protein is selected from the group consisting of CTLA-4 (e.g., cytochrome P456), lipocalin (anticalin), protein A derived molecules such as the Z-domain (affibody), A-domain (avimer / maxibody) of protein A, serum transferrin (transbody); engineered ankyrin repeat proteins (DARPins), variable domains of antibody light or heavy chains (single domain antibodies, sdAb), variable domains of antibody heavy chains (nanobodies, aVH), V NAR Fragments, fibronectin (adnectin), C-type lectin domain (tetranectin); variable domain of novel antigen receptor beta-lactamase (V NAR fragments), human gamma-crystallin or ubiquitin (affilin molecules); Kunitz-type domains of human protease inhibitors, microbodies, e.g., proteins from the knottin family, peptide aptamers, and fibronectin (adnectins). CTLA-4 (cytotoxic T lymphocyte-associated antigen 4) is primarily a cytotoxic T lymphocyte-associated antigen. +It is a CD28 family receptor expressed on T cells. Its extracellular domain has a variable domain-like Ig fold. Loops corresponding to antibody CDRs may be replaced with heterologous sequences to confer different binding properties. CTLA-4 molecules engineered to have different binding specificities are also known as ebibodies (e.g., U.S. Patent No. 7,166,697 B1). Ebibodies are approximately the same size as the isolated variable region of an antibody (e.g., a domain antibody). For further details, see Journal of Immunological Methods 248 (1-2), 31-45 (2001). Lipocalins are a family of extracellular proteins that transport small hydrophobic molecules such as steroids, bilins, retinoids, and lipids. Lipocalins have a rigid beta-sheet secondary structure with many loops at the open end of the conical structure that can be engineered to bind to different target antigens. Anticalins are derived from lipocalins and are between 160 and 180 amino acids in size. For further details, see Biochim Biophys Acta 1482: 337-350 (2000), U.S. Patent No. 7,250,297, and U.S. Patent Publication No. 20070224633. Affibodies are scaffolds derived from Staphylococcus aureus protein A that can be engineered to bind antigens. Domains consist of three helical bundles of approximately 58 amino acids. Libraries are created by randomization of surface residues. For further details, see Protein Eng. Des. Sel. 2004, 17, 455-462 and EP 1641818. Avimers are multidomain proteins derived from the A-domain scaffold family. Natural domains of approximately 35 amino acids conform to defined disulfide-bonded structures. Diversity is generated by shuffling the natural variation displayed by the A-domain family.For further details, see Nature Biotechnology 23(12), 1556-1561 (2005) and Expert Opinion on Investigational Drugs 16(6), 909-917 (June 2007). Transferrin is a monomeric serum transport glycoprotein. Transferrin can be engineered to bind different target antigens by inserting peptide sequences into permissive surface loops. Examples of engineered transferrin scaffolds include transbodies. For further details, see J. Biol. Chem 274, 24066-24073 (1999). Designed ankyrin repeat proteins (DARPins) are derived from ankyrins, a family of proteins that mediate the attachment of integral membrane proteins to the cytoskeleton. A single ankyrin repeat is a 33-residue motif consisting of two alpha helices and a beta-turn. Single ankyrin repeats can be engineered to bind different target antigens by randomizing residues in the first alpha helix and beta-turn of each repeat. The binding interface can be increased by increasing the number of modules (affinity maturation method). For further details, see J. Mol. Biol. 332, 489-503 (2003), PNAS 100(4), 1700-1705 (2003) and J. Mol. Biol. 369, 1015-1028 (2007) and US Patent Application Publication No. 20040132028. Single domain antibodies are antibody fragments consisting of a single monomeric variable antibody domain. The first single domain was derived from the variable domain of a camel-derived antibody heavy chain (nanobody or V). H Furthermore, the term single domain antibody refers to an antibody that contains an autonomous human heavy chain variable domain (aVH) or a shark-derived VH. NARThese include fragments. Fibronectin is a scaffold that can be engineered to bind to antigens. Adnectins consist of a backbone with the native amino acid sequence of the 10th domain of the 15 repeating units of human fibronectin type III (FN3). Three loops at one end of the beta-sandwich can be engineered to enable Adnectins to specifically recognize therapeutic targets of interest. For further details, see Protein Eng. Des. Sel. 18, 435-444 (2005), U.S. Patent Application Publication No. 20080139791, WO2005056764, and U.S. Patent No. 6,818,418. Peptide aptamers are combinatorial recognition molecules that consist of a constant scaffold protein, typically thioredoxin (TrxA), containing a constrained variable peptide loop that is inserted into the active site. For further details, see Expert Opin. Biol. Ther. 5, 783-797 (2005). Microbodies are derived from naturally occurring microproteins of 25-50 amino acids in length that contain 3-4 cysteine bridges. Examples of microproteins include KalataBI, conotoxins, and knottins. Microproteins have loops that can be engineered to contain up to 25 amino acids without affecting the overall folding of the microprotein. For further details on engineered knottin domains, see WO2008098796.
[0052] An "antigen-binding molecule that binds to the same epitope" as a reference molecule refers to an antigen-binding molecule that blocks the binding of the reference molecule to its antigen by 50% or more in a competitive assay; conversely, the reference molecule blocks the binding of the antigen-binding molecule to its antigen by 50% or more in a competitive assay.
[0053] The term "antigen-binding domain" refers to a portion of an antibody-binding molecule that comprises a region that specifically binds to and is complementary to a part or all of an antigen. When an antigen is large, an antigen-binding molecule may bind only to a specific portion of the antigen, which portion is called an epitope. An antigen-binding domain may be provided, for example, by one or more variable domains (also called variable regions). Preferably, the antigen-binding domain comprises an antibody light chain variable domain (VL) and an antibody heavy chain variable domain (VH).
[0054] As used herein, the term "antigenic determinant" is synonymous with "antigen" and "epitope" and refers to the site on a polypeptide polymer to which an antigen-binding moiety binds (e.g., a contiguous stretch of amino acids or a conformational structure composed of different regions of non-contiguous amino acids), forming an antigen-binding moiety-antigen complex. Useful antigenic determinants can be found, for example, on the surface of tumor cells, on the surface of virus-infected cells, on the surface of other diseased cells, on the surface of immune cells, free in serum, and / or in the extracellular matrix (ECM). Unless otherwise specified, proteins useful as antigens herein can be proteins in any naturally occurring form from any vertebrate source, including mammals, e.g., primates (e.g., humans) and rodents (e.g., mice and rats). In certain embodiments, the antigen is a human protein. When a particular protein is referred to herein, the term encompasses the "full-length," unprocessed protein and any form of the protein obtained by intracellular processing. The term also encompasses naturally occurring protein variants, e.g., splice variants or allelic variants.
[0055] "Specific binding" means that the binding is selective for the antigen and can be distinguished from unwanted or non-specific interactions. The binding ability of an antigen-binding molecule to a specific antigen can be measured by either enzyme-linked immunosorbent assay (ELISA) or other techniques well known to those skilled in the art, such as surface plasmon resonance (SPR) technology (analysis on a BIAcore device) (Liljeblad et al., Glyco J 17, 323-329 (2000)) and classical binding assays (Heeley, Endocr Res 28, 217-229 (2002)). In one embodiment, the extent of binding of the antigen-binding molecule to an unrelated protein is less than about 10% of the binding of the antigen-binding molecule to the antigen, as measured, for example, by SPR. In certain embodiments, molecules that bind to an antigen have a binding affinity of ≦1 μM, ≦100 nM, ≦10 nM, ≦1 nM, ≦0.1 nM, ≦0.01 nM, or ≦0.001 nM (e.g., ≦10 -8 M or less, e.g. 10 -8 M to 10 -13 M, e.g. 10 -9 M to 10 -13 It has a dissociation constant (Kd) of 1 M.
[0056] "Affinity" or "binding affinity" refers to the total strength of non-covalent interactions between a single binding site of a molecule (e.g., an antibody) and its binding partner (e.g., an antigen). Unless otherwise specified, as used herein, "binding affinity" refers to the intrinsic binding affinity that reflects a 1:1 interaction between members of a binding pair (e.g., an antibody and an antigen). The affinity of a molecule X for its binding partner Y can generally be expressed by the dissociation constant (Kd), which is the ratio of the detachment rate constant to the dissociation rate constant (koff and kon, respectively). Thus, equivalent affinities can involve different rate constants as long as the ratio of the rate constants is the same. Affinity can be measured by common methods known in the art, including those described herein. A particular method for measuring affinity is surface plasmon resonance (SPR).
[0057] As used herein, "activating T cell antigen" refers to an antigenic determinant expressed on the surface of T lymphocytes, particularly cytotoxic T lymphocytes, which can induce T cell activation upon interaction with an antibody. Specifically, antibody interaction with an activating T cell antigen can induce T cell activation by triggering a signal transduction cascade in the T cell receptor complex. In certain embodiments, the activating T cell antigen is CD3, particularly the epsilon subunit of CD3 (see UniProt No. P07766 (version 189), NCBI RefSeq No. NP_000724.1, SEQ ID NO: 167 for the human sequence; or UniProt No. Q95LI5 (version 49), NCBI GenBank No. BAB71849.1, SEQ ID NO: 168 for the cynomolgus monkey [Macaca fascicularis] sequence).
[0058] As used herein, "T cell activation" refers to one or more cellular responses of T lymphocytes, particularly cytotoxic T lymphocytes, selected from proliferation, differentiation, cytokine secretion, release of cytotoxic effector molecules, cytotoxic activity, and expression of activation markers. Suitable assays for measuring T cell activation are known in the art and described herein.
[0059] "Tumor-associated antigen" or TAA, as used herein, refers to an antigenic determinant displayed on the surface of target cells, e.g., cells within a tumor, such as cancer cells, cells of the tumor stroma, malignant B lymphocytes, or melanoma cells. In certain embodiments, the target cell antigen is an antigen on the surface of a tumor cell. In one particular embodiment, the TAA is EpCAM.
[0060] The term "carcinoembryonic antigen (CEA)," also known as carcinoembryonic antigen-related cell adhesion molecule 5 (CEACAM5), refers to any naturally occurring CEA from any vertebrate source, including mammals such as primates (e.g., humans), non-human primates (e.g., cynomolgus monkeys), and rodents (e.g., mice and rats), unless otherwise specified. The amino acid sequence of human CEA is set forth in UniProt accession number P06731 (version 151, SEQ ID NO: 110). CEA has long been identified as a tumor-associated antigen (Gold and Freedman, J Exp Med., 121:439-462, 1965; Berinstein NL, J Clin Oncol., 20:2197-2207, 2002). Originally classified as a protein expressed only in fetal tissues, CEA has now been identified in several healthy adult tissues. These tissues are primarily of epithelial origin, including cells of the gastrointestinal, respiratory, and genitourinary tracts, as well as cells of the colon, cervix, sweat glands, and prostate (Nap et al., Tumour Biol., 9(2-3):145-53, 1988; Nap et al., Cancer Res., 52(8):2329-23339, 1992). Epithelial-derived tumors and their metastases contain CEA as a tumor-associated antigen. The presence of CEA itself does not imply transformation into cancerous cells, but it does indicate their distribution. In normal tissues, CEA is generally expressed on the apical surface of cells (Hammarstrom S., Semin Cancer Biol. 9(2):67-81 (1999)), making it inaccessible to antibodies in the bloodstream. In contrast to normal tissues, CEA tends to be expressed over the entire surface of cancerous cells (Hammarstrom S., Semin Cancer Biol. 9(2):67-81 (1999)). This change in expression pattern makes CEA more accessible to antibody binding within cancerous cells. Furthermore, CEA expression increases in cancerous cells. Furthermore, increased CEA expression promotes increased cell-cell adhesion, which may lead to metastasis (Marshall J., Semin Oncol., 30(a Suppl. 8):30-6, 2003).The prevalence of CEA expression in various tumor entities is generally very high. Consistent with published data, our own analyses performed on tissue samples confirmed its high prevalence, approximately 95% in colorectal cancer (CRC), 90% in pancreatic cancer, 80% in gastric cancer, 60% in non-small cell lung cancer (NSCLC, co-expressed with HER3), and 40% in breast cancer. Low expression rates were confirmed in small cell lung cancer and glioblastoma.
[0061] CEA is rapidly cleaved from the cell surface and enters the bloodstream either directly from tumors or via the lymphatic system. Because of this property, serum CEA levels have been used as a clinical marker for cancer diagnosis and screening for cancer recurrence, particularly colorectal cancer (Goldenberg D M., The International Journal of Biological Markers, 7:183-188, 1992; Chau I., et al., J Clin Oncol., 22:1420-1429, 2004; Flamini et al., Clin Cancer Res; 12(23):6985-6988, 2006).
[0062] Unless otherwise specified, the term "epithelial cell adhesion molecule (EpCAM)" refers to any native EpCAM from any vertebrate source, including mammals such as primates (e.g., humans), non-human primates (e.g., cynomolgus monkeys), and rodents (e.g., mice and rats). The term encompasses "full-length," unprocessed EpCAM and any form of EpCAM resulting from processing in cells. The term also encompasses naturally occurring variants of EpCAM, such as splice variants or allelic variants. In one embodiment, the antigen-binding molecule of the present invention is capable of specifically binding to human, mouse, and / or cynomolgus monkey EpCAM. The amino acid sequence of human EpCAM is set forth in UniProt (www.uniprot.org) Accession No. P16422 (version 167, SEQ ID NO: 111) or NCBI (www.ncbi.nlm.nih.gov / ) RefSeq NP_002345.2. The extracellular domain (ECD) comprises amino acids 1 to 242 of the mature protein (amino acid sequence of SEQ ID NO: 196). The amino acid sequence of mouse EpCAM is shown in UniProt (www.uniprot.org) accession number Q99JW5 (version 111, SEQ ID NO: 112) or NCBI (www.ncbi.nlm.nih.gov / ) RefSeq NP_032558.2. Epithelial cell adhesion molecule (EpCAM), also known as tumor-associated calcium signaling receptor 1 (TACSTD1), 17-1A, and CD326, is a type I, approximately 40 kDa, transmembrane glycoprotein frequently overexpressed in cancers of epithelial origin and by cancer stem cells, and is therefore a molecule of significant interest for therapy and diagnosis. The extracellular domain EpCAM can be cleaved to yield a soluble extracellular domain molecule, EpEX, and an intracellular molecule, EpICD. EpICD has been shown to associate with other proteins to form nuclear complexes that upregulate the expression of genes that promote cell proliferation. EpCAM may also be involved in epithelial to mesenchymal transition (EMT) and contribute to the formation of large metastases.
[0063] "CD28" (cluster of differentiation 28, Tp44), unless otherwise specified, refers to any CD28 protein from any vertebrate source, including mammals such as primates (e.g., humans), non-human primates (e.g., cynomolgus monkeys), and rodents (e.g., mice and rats). CD28 is expressed on T cells and provides costimulatory signals necessary for T cell activation and survival. T cell stimulation by CD28 in addition to the T cell receptor (TCR) can provide a potent signal for the production of various interleukins. CD28 is a receptor for the CD80 (B7.1) and CD86 (B7.2) proteins and is the only B7 receptor constitutively expressed on naive T cells. The amino acid sequence of human CD28 is set forth in UniProt (www.uniprot.org) accession number P10747 (SEQ ID NO: 1).
[0064] An "agonist antibody" refers to an antibody that has agonist function for a given receptor. Generally, when an agonist ligand (factor) binds to a receptor, the tertiary structure of the receptor protein changes, activating the receptor (if the receptor is a membrane protein, a cell growth signal or the like is usually transduced). If the receptor is a dimer-forming type, an agonist antibody can dimerize the receptor at an appropriate distance and angle, and thus acts in the same way as the ligand. An appropriate anti-receptor antibody can mimic the receptor dimerization caused by the ligand, and therefore can be an agonist antibody.
[0065] A "CD28 agonist antigen-binding molecule" or "CD28 conventional agonist antigen-binding molecule" is an antigen-binding molecule that mimics the natural CD28 ligand (CD80 or CD86) in its role of enhancing T cell activation in the presence of a T cell receptor signal ("signal 2"). T cells require two signals to be fully activated. Under physiological conditions, "signal 1" results from the interaction of the T cell receptor (TCR) molecule with a peptide / major histocompatibility complex (MHC) complex on an antigen-presenting cell (APC), and "signal 2" is provided by ligation of a costimulatory receptor, such as CD28. CD28 agonist antigen-binding molecules can costimulate T cells (signal 2). Although they can also induce T cell proliferation and cytokine secretion in combination with molecules with specificity for the TCR complex, CD28 agonist antigen-binding molecules cannot fully activate T cells without further stimulation of the TCR. However, a subclass of CD28-specific antigen-binding molecules exists, known as CD28 superagonist antigen-binding molecules. A "CD28 superagonist antigen-binding molecule" is a CD28 antigen-binding molecule that can fully activate T cells without further TCR stimulation. CD28 superagonist antigen-binding molecules can induce T cell proliferation and cytokine secretion without prior T cell activation (Signal 1).
[0066] The term "variable domain" or "variable region" refers to the domain of an antibody heavy or light chain that is involved in binding of an antigen-binding molecule to an antigen. The heavy and light chain variable domains (VH and VL, respectively) of natural antibodies generally have similar structures, with each domain containing four conserved framework regions (FR) and three hypervariable regions (HVR). See, for example, Kindt et al., Kuby Immunology, 6th, W.H. Freeman and Co., page 91 (2007). A single VH or VL domain may be sufficient to confer antigen-binding specificity.
[0067] As used herein, the term "hypervariable region" or "HVR" refers to each of the regions of an antigen-binding variable domain, e.g., "complementarity-determining regions" (CDRs), that are hypervariable within the sequence and determine antigen-binding specificity. Generally, an antigen-binding domain comprises six CDRs, three in the VH (CDR-H1, CDR-H2, CDR-H3) and three in the VL (CDR-L1, CDR-L2, CDR-L3). Exemplary CDRs herein include the following: (a) hypervariable loops occurring at amino acid residues 26-32 (L1), 50-52 (L2), 91-96 (L3), 26-32 (H1), 53-55 (H2), and 96-101 (H3) (Chothia and Lesk, J. Mol. Biol. 196:901-917 (1987)); (b) CDRs occurring at amino acid residues 24-34 (L1), 50-56 (L2), 89-97 (L3), 31-35b (H1), 50-65 (H2), and 95-102 (H3) (Kabat et al., Sequences of Proteins of Immunological Interest, 5th Ed. Public Health Service, National Institutes of Health, Bethesda, MD (1991)); and (c) Antigen contacts occurring at amino acid residues 27c-36 (L1), 46-55 (L2), 89-96 (L3), 30-35b (H1), 47-58 (H2), and 93-101 (H3) (MacCallum et al. J. Mol. Biol. 262: 732-745 (1996)).
[0068] Unless otherwise specified, CDRs are determined according to Kabat et al., supra. Those skilled in the art will understand that CDR designations can be determined according to Chothia, supra, McCallum, supra, or any other scientifically accepted nomenclature. Kabat et al. also defined a numbering system for variable region sequences that is applicable to any antibody. Those skilled in the art can unambiguously assign this "Kabat numbering" system to any variable region sequence without relying on experimental data beyond the sequence itself. As used herein, "Kabat numbering" refers to the numbering system defined by Kabat et al., US Dept. of Health and Human Services, "Sequence of Proteins of Immunological Interest" (1983). Unless otherwise specified, references to the numbering of specific amino acid residue positions in antibody variable regions are in accordance with the Kabat numbering system.
[0069] As used herein, the term "affinity matured" in relation to an antigen-binding molecule (e.g., an antibody) refers to an antigen-binding molecule that is derived from a reference antigen-binding molecule, e.g., by mutation, and that binds to the same antigen, preferably the same epitope, as the reference antibody and has a higher affinity for the antigen than the reference antigen-binding molecule. Affinity maturation generally involves modification of one or more amino acid residues in one or more CDRs of the antigen-binding molecule. Typically, the affinity-matured antigen-binding molecule binds to the same epitope as the original reference antigen-binding molecule.
[0070] "Framework" or "FR" refers to variable domain residues other than hypervariable region (HVR) residues. The FR of a variable domain generally consists of four FR domains: FR1, FR2, FR3, and FR4. Thus, the HVR and FR sequences generally appear in VH (or VL) in the following order: FR1-H1(L1)-FR2-H2(L2)-FR3-H3(L3)-FR4.
[0071] For purposes herein, an "acceptor human framework" is a framework comprising the amino acid sequence of a light chain variable domain (VL) framework or a heavy chain variable domain (VH) framework derived from a human immunoglobulin framework or a human consensus framework, as defined below. An acceptor human framework "derived from" a human immunoglobulin framework or a human consensus framework may comprise the same amino acid sequence or may contain amino acid sequence changes. In some embodiments, the number of amino acid changes is 10 or less, 9 or less, 8 or less, 7 or less, 6 or less, 5 or less, 4 or less, 3 or less, or 2 or less. In some embodiments, the VL acceptor human framework is identical in sequence to the VL human immunoglobulin framework sequence or the human consensus framework sequence.
[0072] The term "chimeric" antibody refers to an antibody in which a portion of the heavy and / or light chain is derived from a particular source or species, while the remainder of the heavy and / or light chain is derived from a different source or species.
[0073] The "class" of an antibody refers to the type of constant domain or constant region possessed by its heavy chain. There are five major classes of antibodies: IgA, IgD, IgE, IgG, and IgM, and some of these can be further divided into subclasses (isotypes), e.g., IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2. The heavy-chain constant domains that correspond to the different classes of immunoglobulins are called α, δ, ε, γ, and μ, respectively.
[0074] A "humanized" antibody refers to a chimeric antibody comprising amino acid residues from non-human HVRs and human FRs. In certain embodiments, a humanized antibody comprises substantially all of at least one, and typically two, variable domains, in which all or substantially all of the HVRs (e.g., CDRs) correspond to those of a non-human antibody and all or substantially all of the FRs correspond to those of a human antibody. A humanized antibody may optionally comprise at least a portion of an antibody constant region derived from a human antibody. A "humanized form" of an antibody (e.g., a non-human antibody) refers to an antibody that has undergone humanization. Other forms of "humanized antibodies" encompassed by the present invention are those in which the constant regions have been further modified or altered from those of the original antibody to produce the properties according to the invention, particularly with respect to C1q binding and / or Fc receptor (FcR) binding.
[0075] A "human" antibody is one having an amino acid sequence that corresponds to that of an antibody produced by a human or human cell, or derived from a non-human source that utilizes a human antibody repertoire or other human antibody-coding sequence. This definition of human antibody specifically excludes humanized antibodies, which contain non-human antigen-binding residues. In particular, a "human" or "humanized" antibody comprises a constant region of human origin, including human CH1, CH2, CH3 and / or CL domains, particularly a constant region of the IgG isotype, more particularly a constant region of the IgG1 isotype.
[0076] The term "CL domain" refers to the constant portion of an antibody light chain polypeptide. Exemplary sequences of human constant domains are set forth in SEQ ID NOs: 165 and 166 (human kappa and lambda CL domains, respectively).
[0077] The term "CH1 domain" refers to a portion of an antibody heavy chain polypeptide extending from approximately EU position 118 to EU position 215 (EU numbering system according to Kabat). In one embodiment, the CH1 domain has the amino acid sequence ASTKGPSVFP LAPSSKSTSG GTAALGCLVK DYFPEPVTVS WNSGALTSGV HTFPAVLQSS GLYSLSSVVT VPSSSLGTQT YICNVNHKPS NTKVDKKV (SEQ ID NO: 113). Typically, a segment having the amino acid sequence of EPKSC (SEQ ID NO: 116) then connects the CH1 domain to the hinge region.
[0078] The term "hinge region" refers to a portion of an antibody heavy chain polypeptide that connects the CH1 and CH2 domains in a wild-type antibody heavy chain (e.g., from about position 216 to about position 230, or from about position 226 to about position 230 according to the EU numbering system of Kabat). Hinge regions of other IgG subclasses can be determined by aligning with the hinge region cysteine residues of the IgG1 subclass sequence. Hinge regions are usually dimeric molecules consisting of two polypeptides with identical amino acid sequences. Hinge regions generally contain up to 25 amino acid residues and are flexible, allowing the associated target binding sites to move independently. The hinge region can be subdivided into three domains: the upper, middle, and lower hinge domains (see, e.g., Roux, et al., J. Immunol. 161 (1998) 4083).
[0079] In one aspect, the hinge region has the amino acid sequence DKTHTCPXCP (SEQ ID NO: 117), wherein X is either S or P. In one aspect, the hinge region has the amino acid sequence HTCPXCP (SEQ ID NO: 118), wherein X is either S or P. In one aspect, the hinge region has the amino acid sequence CPXCP (SEQ ID NO: 119), wherein X is either S or P.
[0080] The terms "Fc domain" or "Fc region" are used herein to define the C-terminal region of an antibody heavy chain that contains at least a portion of the constant region. This term includes native sequence Fc regions and variant Fc regions. In the context of molecules already defined by a Fab fragment (containing the CH1 domain), the term "Fc domain" may refer only to the IgG CH2 and CH3 domains.
[0081] The "CH2 domain" of a human IgG Fc region typically extends from about the amino acid residue at EU position 231 to about the amino acid residue at EU position 340 (EU numbering system according to Kabat). In one embodiment, the CH2 domain has the amino acid sequence APELLGGPSV FLFPPKPKDT LMISRTPEVT CVWDVSHEDP EVKFNWYVDG VEVHNAKTKP REEQESTYRW SVLTVLHQDW LNGKEYKCKV SNKALPAPIE KTISKAK (SEQ ID NO: 114). The CH2 domain is unique in that it is not tightly paired with other domains. Rather, two N-linked branched carbohydrate chains are interposed between the two CH2 domains of an intact native Fc region. It has been speculated that carbohydrates may provide an alternative domain-domain pairing and help stabilize the CH2 domains. Burton, Mol. Immunol. 22 (1985) 161-206. In some embodiments, the CH2 domain has a carbohydrate chain attached thereto. A CH2 domain herein may be a native sequence CH2 domain or a variant CH2 domain.
[0082] A "CH3 domain" refers to the portion of an antibody heavy chain polypeptide that comprises the stretch of residues C-terminal to the CH2 domain in the Fc region and extends from approximately EU position 341 to EU position 446 (EU numbering system according to Kabat). In one aspect, the CH3 domain has the amino acid sequence GQPREPQVYT LPPSRDELTK NQVSLTCLVK GFYPSDIAVE WESNGQPENN YKTTPPVLDS DGSFFLYSKL TVDKSRWQQG NVFSCSVMHE ALHNHYTQKS LSLSPG (SEQ ID NO: 115). The CH3 region herein may be a native-sequence CH3 domain or a variant CH3 domain (e.g., a CH3 domain having an introduced "protuberance" ("knob") in one chain and a corresponding introduced "cavity" ("hole") in the other chain; see U.S. Pat. No. 5,821,333, expressly incorporated herein by reference). Such variant CH3 domains may be used to promote heterodimerization of two non-identical antibody heavy chains described herein. In one embodiment, a human IgG heavy chain Fc region extends from Cys226, or from Pro230, to the carboxyl terminus of the heavy chain. However, the C-terminal lysine (Lys447) of the Fc region may be present or absent. Unless otherwise specified herein, the numbering of amino acid residues within an Fc region or constant region is in accordance with Kabat et al., Sequences of Proteins of Immunological Interest, 5th Ed. Public Health Service, National Institutes of Health, Bethesda, MD, It follows the EU numbering system (also known as the EU index) as described in 1991.
[0083] The "knob-into-hole" technique has been described, for example, in U.S. Patent Nos. 5,731,168; 7,695,936; Ridgway et al., Prot Eng 9, 617-621 (1996); and Carter, J Immunol Meth 248, 7-15 (2001). Generally, this method involves introducing a protuberance ("knob") at the interface of a first polypeptide and a corresponding cavity ("hole") at the interface of a second polypeptide, such that the protuberance can be positioned within the cavity to promote heterodimer formation and discourage homodimer formation. The protuberance is constructed by replacing a small amino acid side chain from the interface of the first polypeptide with a larger side chain (e.g., tyrosine or tryptophan). A complementary cavity of the same or similar size as the protuberance is created at the interface of the second polypeptide by replacing large amino acid side chains with smaller ones (e.g., alanine or threonine). The protuberance and cavity can be created by altering the nucleic acid encoding the polypeptide, for example, by site-directed mutagenesis or by peptide synthesis. In a specific embodiment, the knob modification comprises the amino acid substitution T366W in one of the two subunits of the Fc domain, and the hole modification comprises the amino acid substitutions T366S, L368A, and Y407V in the other of the two subunits of the Fc domain. In a further specific embodiment, the subunit of the Fc domain containing the knob modification further comprises the amino acid substitution S354C, and the subunit of the Fc domain containing the hole modification further comprises the amino acid substitution Y349C. The introduction of these two cysteine residues results in the formation of disulfide bridges between the two subunits of the Fc region, thus further stabilizing the dimer (Carter, J Immunol Methods 248, 7-15 (2001)).
[0084] A "region corresponding to the Fc region of an immunoglobulin" is intended to include naturally occurring allelic variants of the Fc region of an immunoglobulin, as well as variants having alterations that produce substitutions, additions, or deletions, but that do not substantially reduce the ability of the immunoglobulin to mediate an effector function (e.g., antibody-dependent cellular cytotoxicity). For example, one or more amino acids can be deleted from the N-terminus or C-terminus of the Fc region of an immunoglobulin without substantially impairing biological function. Such variants can be selected according to general rules known in the art to minimize effects on activity (see, e.g., Bowie, JU et al., Science 247:1306-10 (1990)).
[0085] The term "wild-type Fc domain" refers to an amino acid sequence identical to that of an Fc domain found in nature. Wild-type human Fc domains include native human IgG1 Fc regions (non-A and A allotypes), native human IgG2 Fc regions, native human IgG3 Fc regions, and native human IgG4 Fc regions, as well as naturally occurring variants thereof. Wild-type Fc regions are set forth in SEQ ID NO: 120 (IgG1, Caucasian allotype), SEQ ID NO: 121 (IgG1, Afro-American allotype), SEQ ID NO: 122 (IgG2), SEQ ID NO: 123 (IgG3), and SEQ ID NO: 124 (IgG4).
[0086] The term "variant (human) Fc domain" refers to an amino acid sequence that differs from a "wild-type" (human) Fc domain amino acid sequence by at least one "amino acid mutation." In one embodiment, the variant Fc region has at least one amino acid mutation compared to a native Fc region, e.g., about 1 to about 10 amino acid mutations, and in one embodiment, about 1 to about 5 amino acid mutations in a native Fc region. In one embodiment, the (variant) Fc region has at least about 95% homology to the wild-type Fc region. A particular variant Fc domain disclosed herein is a human IgG1 heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 337, with the mutations L234A, L235A, and P329G.
[0087] The term "effector function" refers to the function of biological activities attributable to the Fc region of an antibody, which varies depending on the antibody isotype. Examples of antibody effector functions include: C1q binding and complement-dependent cytotoxicity (CDC); Fc receptor binding; antibody-dependent cell-mediated cytotoxicity (ADCC); antibody-dependent cellular phagocytosis (ADCP); cytokine secretion; immune complex-mediated antigen uptake by antigen-presenting cells; downregulation of cell surface receptors (e.g., B cell receptors); and B cell activation.
[0088] Fc receptor binding-dependent effector functions can be mediated by the interaction of the Fc region of an antibody with Fc receptors (FcRs), specialized cell surface receptors on hematopoietic cells. Fc receptors belong to the immunoglobulin superfamily and have been shown to mediate both the elimination of antibody-coated pathogens by phagocytosis of immune complexes via antibody-dependent cell-mediated cytotoxicity (ADCC) and the lysis of corresponding antibody-coated red blood cells and various other cellular targets (e.g., tumor cells) (see, e.g., Van de Winkel, JG and Anderson, CL, J. Leukoc. Biol. 49 (1991) 511-524). FcRs are defined by their specificity for immunoglobulin isotypes: Fc receptors for IgG antibodies are called FcγRs. Fc receptor binding is described, for example, in Ravetch, JV and Kinet, JP, Annu. Rev. Immunol. 9 (1991) 457-492; Capel, PJ, et al., Immunomethods 4 (1994) 25-34; de Haas, M., et al., J. Lab. Clin. Med. 126 (1995) 330-341; and Gessner, JE, et al., Ann. Hematol. 76 (1998) 231-248.
[0089] Cross-linking of receptors to the Fc region of IgG antibodies (FcγR) triggers a wide variety of effector functions, including phagocytosis, antibody-dependent cellular cytotoxicity, and release of inflammatory mediators, as well as control of immune complex clearance and antibody production. In humans, three classes of FcγR have been characterized: - FcγRI (CD64) binds monomeric IgG with high affinity and is expressed on macrophages, monocytes, neutrophils, and eosinophils. Modification of the Fc region of IgG at at least one of the amino acid residues E233-G236, P238, D265, N297, A327, and P329 (numbering according to the EU index of Kabat) reduces binding to FcγRI. IgG2 residues at positions 233-236 substituted in IgG1 and IgG4 reduce binding to FcγRI by 10%. 3 2-fold reduction and abolished the human monocyte response to antibody-sensitized red blood cells (Armour, KL, et al., Eur. J. Immunol. 29 (1999) 2613-2624). FcγRII (CD32) binds complex IgG with moderate to low affinity and is widely expressed. This receptor can be divided into two subtypes, FcγRIIA and FcγRIIB. FcγRIIA is found on many cells involved in killing (e.g., macrophages, monocytes, and neutrophils) and appears to be able to activate the killing process. FcγRIIB appears to play a role in inhibitory processes and is found on B cells, macrophages, as well as mast cells and eosinophils. On B cells, FcγRIIB appears to function to suppress the production of additional immunoglobulins and isotype switching, for example, to the IgE class. On macrophages, FcγRIIB acts to inhibit phagocytosis mediated by FcγRIIA. On eosinophils and mast cells, the B form may serve to suppress the activation of these cells via IgE binding to its other receptors. Reduced binding to FcγRIIA is observed, for example, for antibodies comprising an IgG Fc region having a mutation in at least one of amino acid residues E233 to G236, P238, D265, N297, A327, P329, D270, Q295, A327, R292, and K414 (numbering according to the EU index of Kabat). FcγRIII (CD16) binds IgG with moderate to low affinity and exists in two forms. FcγRIIIA is found on NK cells, macrophages, eosinophils, and some monocytes and T cells, and mediates ADCC. FcγRIIIB is highly expressed on neutrophils. Reduced binding to FcγRIIIA is observed, for example, in antibodies containing an IgG Fc region with at least one mutation at amino acid residues E233-G236, P238, D265, N297, A327, P329, D270, Q295, A327, S239, E269, E293, Y296, V303, A327, K338, and D376 (numbered according to the EU index of Kabat).
[0090] Mapping of the binding sites on human IgG1 for Fc receptors, the mutation sites described above, and methods for measuring binding to FcγRI and FcγRIIA are described in Shields, RL, et al., J. Biol. Chem. 276 (2001) 6591-6604.
[0091] The term "ADCC" or "antibody-dependent cellular cytotoxicity" refers to an immune mechanism that results in the lysis of antibody-coated target cells by immune effector cells. Such target cells are cells to which an Fc region-containing antibody or its derivative specifically binds, usually via a protein portion N-terminal to the Fc region. As used herein, the term "reduced ADCC" is defined as either the number of target cells lysed in a given time period by the ADCC mechanism, as defined above, at a given antibody concentration in the medium surrounding the target cells, and / or the increase in antibody concentration in the medium surrounding the target cells required to lyse a given number of target cells in a given time period by the ADCC mechanism. The reduced ADCC is compared to the ADCC mediated by the same unengineered antibody produced by the same type of host cell using the same standard production, purification, formulation, and storage methods, which are known to those skilled in the art. For example, the reduced ADCC mediated by an antibody containing an amino acid substitution in its Fc domain that reduces ADCC is compared to the ADCC mediated by the same antibody without this amino acid substitution in the Fc domain. Suitable assays for measuring ADCC are well known in the art (see, e.g., WO 2006 / 082515 or WO 2012 / 130831). For example, the ability of an antibody to trigger the early steps that mediate ADCC is investigated by measuring binding of the antibody to cells expressing Fcγ receptors, such as recombinantly expressed FcγRI and / or FcγRIIA or NK cells (which constitutively express FcγRIIIA). In particular, binding to FcγR on NK cells is measured.
[0092] An "activating Fc receptor" is an Fc receptor that, following engagement by the Fc region of an antibody, triggers signaling events that stimulate a receptor-bearing cell to carry out an effector function. Activating Fc receptors include FcγRIIIa (CD16a), FcγRI (CD64), FcγRIIa (CD32), and FcαRI (CD89). A particular activating Fc receptor is human FcγRIIIa (SEQ ID NO: 125, UniProt Accession No. P08637, version 141).
[0093] An "ectodomain" is a domain of a membrane protein that extends into the extracellular space (i.e., the space outside the target cell). The ectodomain is usually the part of a protein that initiates contact with a surface that results in signal transduction.
[0094] The term "peptide linker" refers to a peptide comprising one or more amino acids, typically about 2 to 20 amino acids. Peptide linkers may be those known in the art or those described herein. Suitable non-immunogenic linker peptides include, for example, (G4S) n , (SG4) n or G4 (SG4) nand a peptide linker, wherein "n" is generally a number from 1 to 5, typically from 2 to 4, and in particular 2, i.e., the peptide is selected from the group consisting of GGGGS (SEQ ID NO: 126), GGGGSGGGGS (SEQ ID NO: 127), SGGGGSGGGG (SEQ ID NO: 128) and GGGGSGGGGSGGGG (SEQ ID NO: 129), but also includes the sequences GSPGSSSSGS (SEQ ID NO: 130), (GS) (SEQ ID NO: 131), (GS) (SEQ ID NO: 132), GSGSGSGS (SEQ ID NO: 133), GSGSGNGS (SEQ ID NO: 134), GGSGSGSG (SEQ ID NO: 135), GGSGSG (SEQ ID NO: 136), GGSG (SEQ ID NO: 137), GGSGNGSG (SEQ ID NO: 138), GGNGSGSG (SEQ ID NO: 139) and GGNGSG (SEQ ID NO: 140). Peptide linkers of particular interest are (G4S) (SEQ ID NO: 126), (G4S)2 or GGGGSGGGGS (SEQ ID NO: 127), (G4S)3 (SEQ ID NO: 131) and (G4S)4 (SEQ ID NO: 132).
[0095] The term "amino acid," as used herein, refers to the group of naturally occurring carboxy α-amino acids, including alanine (three letter code: ala, one letter code: A), arginine (arg, R), asparagine (asn, N), aspartic acid (asp, D), cysteine (cys, C), glutamine (gln, Q), glutamic acid (glu, E), glycine (gly, G), histidine (his, H), isoleucine (ile, I), leucine (leu, L), lysine (lys, K), methionine (met, M), phenylalanine (phe, F), proline (pro, P), serine (ser, S), threonine (thr, T), tryptophan (trp, W), tyrosine (tyr, Y), and valine (val, V).
[0096] By "fused" or "connected" is meant that the components (e.g., the polypeptide and ectodomain of the TNF ligand family member) are linked by a peptide bond either directly or via one or more peptide linkers.
[0097] "Percent (%) amino acid sequence identity" to a reference polypeptide (protein) sequence is defined as the percentage of amino acid residues in a candidate sequence that are identical to those in the reference polypeptide sequence after aligning the sequences and introducing gaps, if necessary, to achieve the maximum percent sequence identity, without considering any conservative substitutions as part of the sequence identity. Alignment for determining percent amino acid sequence identity can be accomplished in a variety of ways within the skill of the art, for example, using publicly available computer software such as BLAST, BLAST-2, and ALIGN. It can also be achieved using SAWI or Megalign (DNASTAR) software. Those skilled in the art can determine appropriate parameters for aligning sequences, including any algorithms necessary to achieve maximum alignment over the full length of the sequences being compared. However, for purposes herein, percent amino acid sequence identity values are generated using the sequence comparison computer program ALIGN-2. The ALIGN-2 sequence comparison computer program was written by Genentech, Inc., and the source code, together with user documentation, has been filed with the U.S. Copyright Office, Washington, DC 20559, where it is registered under U.S. Copyright Registration No. TXU510087. The ALIGN-2 program is publicly available from Genentech, Inc. (South San Francisco, California), or can be compiled from its source code. The ALIGN-2 program should be compiled for use on UNIX operating systems, including Digital UNIX V4.0D. All sequence comparison parameters are set by the ALIGN-2 program and do not vary.In situations where ALIGN-2 is used for amino acid sequence comparison, the % amino acid sequence identity of a given amino acid sequence A to, with, or in contrast to a given amino acid sequence B (alternatively, it can be written as a given amino acid sequence A having or containing a particular % amino acid sequence identity to, with, or in contrast to a given amino acid sequence B) is calculated as follows: 100 x X / Y; where X is the number of amino acid residues scored as the same match by the sequence alignment program ALIGN-2 in that program's alignment of A and B, and Y is the total number of amino acid residues in B. It will be understood that if the length of amino acid sequence A differs from the length of amino acid sequence B, the % amino acid sequence identity of A to B will differ from the % amino acid sequence identity of B to A. Unless otherwise specified, all % amino acid sequence identity values used herein are obtained as described in the previous paragraph using the ALIGN-2 computer program.
[0098] In certain embodiments, amino acid sequence variants of the CD28 antigen-binding molecules provided herein are contemplated. For example, it may be desirable to improve the binding affinity and / or other biological properties of the CD28 antigen-binding molecules. Amino acid sequence variants of the CD28 antigen-binding molecules can be prepared by introducing appropriate modifications into the nucleotide sequence encoding the molecule or by peptide synthesis. Such modifications include, for example, deletions from and / or insertions into and / or substitutions of residues within the amino acid sequence of the antibody. Any combination of deletions, insertions, and substitutions can be made to arrive at the final construct, as long as the final construct possesses the desired characteristics (e.g., antigen binding). Sites of interest for substitutional mutagenesis include HVRs and framework regions (FRs). Conservative substitutions are provided in Table B under the heading "Preferred Substitutions" and are further described below with reference to amino acid side chain classes (1) to (6). Amino acid substitutions can be introduced into the molecule of interest and the products screened for a desired activity, e.g., retained / improved antigen binding, reduced immunogenicity, or improved ADCC or CDC. TIFF0007792438000001.tif189170
[0099] Amino acids can be classified according to general side chain properties. (1) Hydrophobic: Norleucine, Met, Ala, Val, Leu, Ile; (2) Neutral hydrophilic: Cys, Ser, Thr, Asn, Gln; (3) Acidic: Asp, Glu; (4) basic: His, Lys, Arg; (5) Residues affecting chain orientation: Gly, Pro; (6) Aromatics: Trp, Tyr, Phe.
[0100] Non-conservative substitutions involve exchanging a member of one of these classes for another class.
[0101] The term "amino acid sequence variant" includes substantial variants in which amino acid substitutions are present in one or more hypervariable region residues of a parent antigen-binding molecule (e.g., a humanized or human antibody). Generally, the resulting variant(s) selected for further testing will have modified (e.g., improved) specific biological properties (e.g., increased affinity, reduced immunogenicity) compared to the parent antigen-binding molecule and / or will substantially retain the specific biological properties of the parent antigen-binding molecule. An exemplary substitutional variant is an affinity-matured antibody, which can be conveniently generated using, for example, phage display-based affinity maturation methods such as those described herein. Briefly, variant antigen-binding molecules in which one or more HVR residues are mutated, phage-displayed, and screened for a specific biological activity (e.g., binding affinity). In certain embodiments, substitutions, insertions, or deletions may occur within one or more HVRs, as long as such changes do not substantially reduce the ability of the antigen-binding molecule to bind to an antigen. For example, conservative modifications (e.g., conservative substitutions provided herein) that do not substantially reduce binding affinity may be made in HVRs. A useful method for identifying antibody residues or regions that can be targeted for mutagenesis is called "alanine scanning mutagenesis," as described by Cunningham and Wells (1989) Science, 244:1081-1085. In this method, a residue or target group of residues (e.g., charged residues, e.g., Arg, Asp, His, Lys, and Glu) is identified and replaced with neutral or negatively charged amino acids (e.g., alanine or polyalanine) to determine whether the interaction between the antibody and antigen is affected. Further substitutions may be introduced at amino acid positions that show functional sensitivity to the initial substitution. Alternatively, or in addition, a crystal structure of the antigen-antigen binding molecule complex may be used to identify contact points between the antibody and antigen. Such contact residues and neighboring residues may be targeted or eliminated as candidates for substitution. Variants may be screened to determine whether they contain desired properties.
[0102] Amino acid sequence insertions include amino- and / or carboxyl-terminal fusions ranging in length from one residue to polypeptides containing 100 or more residues, as well as intrasequence insertions of single or multiple amino acid residues. Exemplary insertions include CD28 antigen-binding molecules with N- or C-terminal fusions to polypeptides that increase the serum half-life of the CD28 antigen-binding molecule.
[0103] In certain embodiments, the CD28 antigen-binding molecules provided herein are modified to increase or decrease the degree of glycosylation of the antibody. Glycosylation variants of the molecule are conveniently obtained by altering the amino acid sequence to create or remove one or more glycosylation sites. When the agonistic ICOS-binding molecule contains an Fc domain, the carbohydrate attached to the Fc domain can be modified. Natural antibodies produced by mammalian cells typically contain branched, biantennary oligosaccharides, typically attached to Asn297 in the CH2 domain of the Fc region by an N-linkage. See, for example, Wright et al., TIBTECH 15:26-32 (1997). The oligosaccharides can include various carbohydrates, such as mannose, N-acetylglucosamine (GlcNAc), galactose, and sialic acid, as well as fucose attached to the GlcNAc in the "stem" of the biantennary oligosaccharide structure. In some embodiments, oligosaccharide modifications in agonistic ICOS-binding molecules may be performed to generate variants with specific improved properties. In one aspect, agonistic ICOS-binding molecule variants are provided that have carbohydrate structures lacking fucose attached (directly or indirectly) to the Fc region. Such fucosylated variants may have improved ADCC function; see, for example, U.S. Patent Application Publication No. 2003 / 0157108 (Presta, L.) or U.S. Patent Application Publication No. 2004 / 0093621 (Kyowa Hakko Kogyo Co., Ltd.). Additional variants of the CD28 antigen-binding molecules of the present invention include those with bisected oligosaccharides, e.g., those in which the biantennary oligosaccharide attached to the Fc region is bisected by GlcNAc. Such variants may have reduced fucosylation and / or improved ADCC function. See, e.g., WO 2003 / 011878 (Jean-Mairet et al.); U.S. Pat. No. 6,602,684 (Umana et al.); and U.S. Pat. App. Pub. No. 2005 / 0123546 (Umana et al.). Variants with at least one galactose residue in the oligosaccharide attached to the Fc region are also provided.Such antibody variants have improved CDC function and are described, for example, in WO 1997 / 30087 (Patel et al.); WO 1998 / 58964 (Raju, S.); and WO 1999 / 22764 (Raju, S.).
[0104] In certain embodiments, it may be desirable to generate cysteine-engineered variants of the CD28 antigen-binding molecules of the present invention, e.g., "thioMAbs" in which one or more residues of the molecule are replaced with cysteine residues. In certain embodiments, the substituted residues occur at accessible sites of the molecule. By replacing these residues with cysteine, reactive thiol groups are placed at accessible sites of the antibody, which can be used to conjugate the antibody to other moieties, such as drug moieties or linker-drug moieties, to generate immunoconjugates. In certain embodiments, any one or more of the following residues may be substituted with cysteine: V205 (Kabat numbering) of the light chain, A118 (EU numbering) of the heavy chain, and S400 (EU numbering) of the heavy chain Fc region. Cysteine-engineered antigen-binding molecules may be generated, for example, as described in U.S. Pat. No. 7,521,541.
[0105] In certain embodiments, the CD28 antigen binding molecules provided herein may be further modified to contain additional nonproteinaceous moieties that are known in the art and readily available. Suitable sites for derivatization of antibodies include, but are not limited to, water-soluble polymers. Non-limiting examples of water-soluble polymers include polyethylene glycol (PEG), ethylene glycol / propylene glycol copolymers, carboxymethylcellulose, dextran, polyvinyl alcohol, polyvinylpyrrolidone, poly-1,3-dioxolane, poly-1,3,6-trioxane, ethylene / maleic anhydride copolymers, polyamino acids (either homopolymers or random copolymers), and dextran or poly(n-vinylpyrrolidone), polyethylene glycol, polypropylene glycol homopolymer, polypropylene oxide / ethylene oxide copolymer, polyoxyethylated polyols (e.g., glycerol), polyvinyl alcohol, and mixtures thereof. Polyethylene glycol propionaldehyde may be advantageous during manufacturing due to its stability in water. The polymer may be of any molecular weight and may be branched or unbranched. The number of polymers attached to the antibody can vary, and when more than one polymer is attached, the polymers can be the same or different molecules. Generally, the number and / or type of polymers used for derivatization can be determined by considering, but not limited to, the particular property or function of the antibody to be improved, whether the bispecific antibody derivative will be used therapeutically under particular conditions, etc. In another aspect, conjugates of an antibody and a nonprotein moiety are provided that can be selectively heated by exposure to radiation. In one embodiment, the nonprotein moiety is a carbon nanotube (Kam, NW et al., Proc. Natl. Acad. Sci. USA 102 (2005) 11600-11605). The radiation can be of any wavelength, including, but not limited to, wavelengths that are not harmful to normal cells but that heat the nonprotein moiety to a temperature that kills cells proximal to the antibody-nonprotein moiety.In another embodiment, immunoconjugates of the CD28 antigen binding molecules provided herein can be obtained. An "immunoconjugate" is an antibody conjugated to one or more heterologous molecules, including, but not limited to, a cytotoxic agent.
[0106] The term "polynucleotide" refers to an isolated nucleic acid molecule or construct, such as messenger RNA (mRNA), viral RNA, or plasmid DNA (pDNA). A polynucleotide may contain conventional phosphodiester bonds or non-conventional bonds (e.g., amide bonds, such as those found in peptide nucleic acids (PNAs)). The term "nucleic acid molecule" refers to any one or more nucleic acid segments, e.g., DNA or RNA fragments, present in a polynucleotide. Each nucleotide is composed of a base, specifically a purine or pyrimidine base (i.e., cytosine (C), guanine (G), adenine (A), thymine (T), or uracil (U)), a sugar (i.e., deoxyribose or ribose), and a phosphate group. Nucleic acid molecules are often described by the sequence of bases, which thereby represent the primary (linear) structure of the nucleic acid molecule. The sequence of bases is usually presented from 5' to 3'. As used herein, the term "nucleic acid molecule" encompasses deoxyribonucleic acid (DNA), including, for example, complementary DNA (cDNA) and genomic DNA; ribonucleic acid (RNA), particularly messenger RNA (mRNA); synthetic forms of DNA or RNA; and mixed polymers containing two or more of these molecules. Nucleic acid molecules can be linear or circular. Furthermore, the term "nucleic acid molecule" encompasses both sense and antisense strands, as well as single- and double-stranded forms. Furthermore, nucleic acid molecules described herein can contain naturally occurring or non-naturally occurring nucleotides. Examples of non-naturally occurring nucleotides include modified nucleotide bases with derivatized sugar or phosphate backbone linkages or chemically modified residues. Nucleic acid molecules also encompass DNA and RNA molecules suitable as vectors for directing expression of antibodies of the invention in vitro and / or in vivo, e.g., in a host or patient. Such DNA (e.g., cDNA) or RNA (e.g., mRNA) vectors can be modified or unmodified.For example, mRNA can be chemically modified to enhance the stability of the RNA vector and / or expression of the encoded molecule, such that the mRNA can be injected into a subject to generate antibodies in vivo (see, e.g., Stadler et al. (2017) Nature Medicine 23:815-817, or EP 2101823 B1).
[0107] By "isolated" nucleic acid molecule or polynucleotide is intended a nucleic acid molecule, DNA or RNA, that has been removed from its natural environment. For example, a recombinant polynucleotide encoding a polypeptide contained in a vector is considered isolated for purposes of the present invention. Further examples of isolated polynucleotides include recombinant polynucleotides maintained in heterologous host cells or purified (partially or substantially) polynucleotides in solution. Isolated polynucleotides include polynucleotide molecules contained in cells that normally contain the polynucleotide molecule, but where the polynucleotide molecule is present extrachromosomally or at a chromosomal location that differs from its natural chromosomal location. Isolated RNA molecules include in vivo or in vitro RNA transcripts of the present invention, as well as positive- and negative-stranded forms and double-stranded forms. Furthermore, isolated polynucleotides or nucleic acids of the present invention include such molecules produced synthetically. In addition, polynucleotides or nucleic acids may be or include regulatory elements, such as a promoter, ribosome binding site, or transcription terminator.
[0108] A nucleic acid or polynucleotide having a nucleotide sequence that is, for example, at least 95% "identical" to a reference nucleotide sequence of the present invention means that the nucleotide sequence of the polynucleotide is identical to the reference sequence, except that the nucleotide sequence of the polynucleotide may contain up to five point mutations per 100 nucleotides of the reference nucleotide sequence. In other words, to obtain a polynucleotide having a nucleotide sequence that is at least 95% identical to a reference nucleotide sequence, up to 5% of the nucleotides in the reference sequence may be deleted or replaced with other nucleotides, or up to 5% of the total number of nucleotides in the reference sequence may be inserted into the reference sequence. Such alterations of the reference sequence may occur at the 5' or 3' terminal position of the reference nucleotide sequence, or at any position between these terminal positions, and may be interspersed individually among residues in the reference sequence or interspersed in one or more contiguous groups within the reference sequence. In practice, whether any particular polynucleotide sequence is at least 80%, 85%, 90%, 95%, 96%, 97%, 98% or 99% identical to a nucleotide sequence of the present invention can be conventionally determined using known computer programs, such as those described above for polypeptides (e.g., ALIGN-2).
[0109] The term "expression cassette" refers to a recombinantly or synthetically produced polynucleotide with a set of specific nucleic acid elements that allows transcription of a specific nucleic acid in a target cell. Recombinant expression cassettes can be incorporated into plasmids, chromosomes, mitochondrial DNA, plastid DNA, viruses, or nucleic acid fragments. Typically, the recombinant expression cassette portion of an expression vector comprises, among other sequences, a nucleic acid sequence to be transcribed and a promoter. In a specific embodiment, an expression cassette of the invention comprises a polynucleotide sequence encoding a bispecific antigen-binding molecule of the invention, or a fragment thereof.
[0110] The term "vector" or "expression vector" is synonymous with "expression construct" and refers to a DNA molecule used to introduce and induce expression of a specific gene to which it is operably linked in a target cell. This term includes vectors as self-replicating nucleic acid structures and vectors that are integrated into the genome of a host cell into which they are introduced. The expression vector of the present invention comprises an expression cassette. The expression vector enables stable transcription of large amounts of mRNA. Once the expression vector is inside the target cell, the ribonucleic acid molecule or protein encoded by the gene is produced by the cellular transcription and / or translation machinery. In one embodiment, the expression vector of the present invention comprises an expression cassette comprising a polynucleotide sequence encoding a bispecific antibody of the present invention or a fragment thereof.
[0111] The terms "host cell," "host cell line," and "host cell culture" are used interchangeably and refer to cells into which exogenous nucleic acid has been introduced, including the progeny of such cells. Host cells include "transformants" and "transformed cells," and include the primary transformed cell and its progeny, regardless of the number of passages. The progeny may not be completely identical in nucleic acid content to the parent cell and may contain mutations. Mutant progeny that have the same function or biological activity as screened or selected for in the originally transformed cell are included herein. Host cells are any type of cell line that can be used to produce the bispecific antigen-binding molecules of the invention. Host cells include cultured cells, e.g., cultured mammalian cells, such as CHO cells, BHK cells, NS0 cells, SP2 / 0 cells, YO myeloma cells, P3X63 mouse myeloma cells, PER cells, PER.C6 cells, or hybridoma cells, yeast cells, insect cells, and plant cells, to name just a few, but also include cells contained in transgenic animals, transgenic plants, or cultured plant or animal tissues.
[0112] An "effective amount" of a drug refers to the amount necessary to cause a physiological change in a cell or tissue to which the drug is administered.
[0113] A "therapeutically effective amount" of an agent, e.g., a pharmaceutical composition, refers to an amount effective, at dosages and for periods of time necessary, to achieve the desired therapeutic or prophylactic result. A therapeutically effective amount of an agent, for example, eliminates, reduces, delays, minimizes, or prevents the side effects of a disease.
[0114] An "individual" or "subject" is a mammal. Mammals include, but are not limited to, domestic animals (e.g., cows, sheep, cats, dogs, and horses), primates (e.g., humans and non-human primates such as monkeys), rabbits, and rodents (e.g., mice and rats). In particular, the individual or subject is a human.
[0115] The term "pharmaceutical composition" refers to a preparation in a form such that the biological activity of the active ingredient contained therein is effective, and which does not contain additional ingredients that are unacceptably toxic to the subject to which the formulation is administered.
[0116] A "pharmaceutically acceptable excipient" refers to an ingredient in a pharmaceutical composition other than an active ingredient that is non-toxic to a subject. Pharmaceutically acceptable excipients include, but are not limited to, buffers, stabilizers, or preservatives.
[0117] The term "package insert" is used to refer to instructions customarily included in the commercial packaging of a therapeutic product, which contain information about the indications, usage, dosage, administration, concomitant therapy, contraindications and / or precautions regarding the use of that therapeutic product.
[0118] As used herein, "treatment" (and grammatical variations thereof, such as "treat" or "treating") refers to a clinical intervention that attempts to alter the natural course of the individual being treated, and can be performed prophylactically or during the course of clinical pathology. Desirable effects of treatment include, but are not limited to, preventing the onset or recurrence of disease, alleviating symptoms, diminishing the direct or indirect pathological consequences of disease, preventing metastasis, slowing the rate of disease progression, ameliorating or palliating the disease state, and remission or improved prognosis. In some embodiments, the molecules of the invention are used to delay the onset of disease or slow the progression of disease.
[0119] The terms "combination therapy" or "co-administration" as used herein encompass both combined administration (where two or more therapeutic agents are contained in the same or separate formulations) and separate administration, where administration of an antibody as reported herein may occur before, simultaneously with, and / or after administration of one or more additional therapeutic agents, preferably one or more antibodies.
[0120] The term "cancer" refers to or describes a physiological condition in mammals that is typically characterized by uncontrolled cell growth / proliferation. Thus, as used herein, the term cancer refers to proliferative diseases such as carcinoma, lymphoma (e.g., Hodgkin's lymphoma and non-Hodgkin's lymphoma), blastoma, sarcoma, and leukemia. In particular, the term cancer refers to lymphocytic leukemia, lung cancer, non-small cell lung (NSCL) cancer, bronchioloalveolar carcinoma of the lung, bone cancer, pancreatic cancer, skin cancer, cancer of the head or neck, cutaneous or intraocular melanoma, uterine cancer, ovarian cancer, rectal cancer, cancer of the anal region, stomach cancer, gastric cancer, and the like. cancer), colon cancer, breast cancer, uterine cancer, carcinoma of the fallopian tubes, carcinoma of the endometrium, carcinoma of the cervix, carcinoma of the vagina, carcinoma of the vulva, Hodgkin's disease, cancer of the esophagus, cancer of the small intestine, cancer of the endocrine system, cancer of the thyroid gland, cancer of the parathyroid gland, cancer of the adrenal gland, sarcoma of soft tissue, cancer of the urethra, cancer of the penis, prostate cancer, cancer of the bladder, cancer of the kidney or ureter, renal cell carcinoma, carcinoma of the renal pelvis, mesothelioma, hepatocellular carcinoma, biliary tract cancer, neoplasms of the central nervous system (CNS), spinal axis tumors, brain stem glioma, glioblastoma multiforme, astrocytoma, schwannoma, ependymoma, medulloblastoma, meningioma, squamous cell carcinoma, pituitary adenoma, and Ewing's sarcoma (including refractory aspects of any of the above cancers), or a combination of one or more of the above cancers. In one aspect, the cancer is a solid tumor. In another embodiment, the cancer is a hematological cancer, particularly a leukemia, most particularly acute lymphoblastic leukemia (ALL) or acute myeloid leukemia (AML).
[0121] Bispecific agonist CD28 antigen-binding molecules of the present invention The present invention provides novel bispecific agonist CD28 antigen-binding molecules with particularly advantageous properties, such as producibility, stability, binding affinity, biological activity, targeting efficiency, reduced toxicity, a broader dosage range that can be administered to patients, and thereby potentially enhanced efficacy. The novel bispecific agonist CD28 antigen-binding molecules contain an Fc domain composed of a first subunit capable of stable association and a second subunit containing one or more amino acid substitutions that reduce the binding affinity and / or effector function of the antigen-binding molecule for Fc receptors (Fc-silence), thereby avoiding nonspecific cross-linking via Fc receptors. Instead, they contain a specific antigen-binding domain capable of specific binding to epithelial cell adhesion molecule (EpCAM), which causes cross-linking at tumor sites. Surprisingly, the inventors have discovered that the EpCAM antigen-binding domain described herein, based on its binding characteristics, has advantageous properties that make it more amenable for use in bispecific formats. Furthermore, bispecific agonist CD28 antigen-binding molecules containing these EpCAM antigen-binding domains have been found to have improved functionality and ability to increase T cell activation, particularly in the presence of a T cell-activating anti-CD3 bispecific antibody, thereby achieving enhanced tumor-specific T cell activation.
[0122] In the present invention, (a) a first antigen-binding domain capable of specific binding to CD28; (b) a second antigen-binding domain capable of specific binding to the antigen-binding domain capable of specific binding to epithelial cell adhesion molecule (EpCAM); and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit containing one or more amino acid substitutions that reduce the binding affinity and / or effector function of the antigen-binding molecule to an Fc receptor; 1. A bispecific agonist CD28 antigen-binding molecule with monovalent binding to CD28, wherein the second antigen-binding domain capable of specific binding to EpCAM comprises: (i) a heavy chain variable region (V) comprising the heavy chain complementarity determining regions CDR-H1 of SEQ ID NO: 309, CDR-H2 of SEQ ID NO: 310, and CDR-H3 of SEQ ID NO: 311; H EpCAM) and a light chain variable region (V) comprising the light chain complementarity determining regions CDR-L1 of SEQ ID NO: 312 or SEQ ID NO: 313, CDR-L2 of SEQ ID NO: 314, and CDR-L3 of SEQ ID NO: 315. L or (ii) a heavy chain variable region (V) comprising the heavy chain complementarity determining regions CDR-H1 of SEQ ID NO: 2, CDR-H2 of SEQ ID NO: 3, and CDR-H3 of SEQ ID NO: 4. H EpCAM) and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 5, CDR-L2 of SEQ ID NO: 6, and CDR-L3 of SEQ ID NO: 7. L EpCAM); or (iii) a heavy chain variable region (V) comprising the heavy chain complementarity-determining regions CDR-H1 of SEQ ID NO: 10, CDR-H2 of SEQ ID NO: 11, and CDR-H3 of SEQ ID NO: 12; H EpCAM) and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 13, CDR-L2 of SEQ ID NO: 14, and CDR-L3 of SEQ ID NO: 15. L EpCAM) A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0123] In one aspect, a bispecific agonist CD28 antigen-binding molecule as defined herein above is provided, wherein the Fc domain is an IgG, particularly an IgG1 Fc domain or an IgG4 Fc domain. In a particular aspect, the Fc domain composed of a first subunit and a second subunit capable of stable association is an IgG1 Fc domain. The Fc domain comprises one or more amino acid substitutions that reduce the binding affinity of the antigen-binding molecule to an Fc receptor and / or reduce or eliminate effector function. In one aspect, the Fc domain comprises amino acid substitutions L234A and L235A (numbering according to the Kabat EU index). In one aspect, the Fc domain is an Fc domain of the human IgG1 subclass and comprises amino acid mutations L234A, L235A, and P329G (numbering according to the Kabat EU index). In one aspect, a bispecific agonist CD28 antigen binding molecule is provided, comprising an Fc domain composed of a first subunit and a second subunit capable of stable association, wherein the first subunit comprises the amino acid sequence of SEQ ID NO: 70 (Fc hole PGLALA) and the second subunit comprises the amino acid sequence of SEQ ID NO: 71 (Fc knob PGLALA).
[0124] In one embodiment a bispecific agonist CD28 antigen binding molecule as defined herein before, wherein the first antigen binding domain capable of specific binding to CD28 comprises: (i) a heavy chain variable region (V) comprising the heavy chain complementarity determining regions CDR-H1 of SEQ ID NO: 26, CDR-H2 of SEQ ID NO: 27, and CDR-H3 of SEQ ID NO: 28; H and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 29, CDR-L2 of SEQ ID NO: 30, and CDR-L3 of SEQ ID NO: 31. L CD28); or (ii) a heavy chain variable region (V) comprising CDR-H1 of SEQ ID NO: 18, CDR-H2 of SEQ ID NO: 19, and CDR-H3 of SEQ ID NO: 20; H CD28) and a light chain variable region (V) comprising CDR-L1 of SEQ ID NO: 21, CDR-L2 of SEQ ID NO: 22, and CDR-L3 of SEQ ID NO: 23. LCD28) A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0125] In one aspect, the antigen binding domain of the bispecific agonist CD28 antigen binding molecule capable of specific binding to CD28 comprises a heavy chain variable region (VH1) comprising CDR-H1 of SEQ ID NO: 26, CDR-H2 of SEQ ID NO: 27 and CDR-H3 of SEQ ID NO: 28. H CD28) and a light chain variable region (V) comprising CDR-L1 of SEQ ID NO: 29, CDR-L2 of SEQ ID NO: 30, and CDR-L3 of SEQ ID NO: 31 L CD28).
[0126] In another aspect, the antigen-binding domain of the bispecific agonist CD28 antigen-binding molecule capable of specific binding to CD28 comprises a heavy chain variable region (VH1) comprising CDR-H1 of SEQ ID NO: 18, CDR-H2 of SEQ ID NO: 19, and CDR-H3 of SEQ ID NO: 20. H CD28) and a light chain variable region (V) comprising CDR-L1 of SEQ ID NO: 21, CDR-L2 of SEQ ID NO: 22, and CDR-L3 of SEQ ID NO: 23. L CD28).
[0127] Furthermore, there is provided a bispecific agonist CD28 antigen binding molecule as defined hereinabove, wherein the antigen binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO: 24. H CD28) and a light chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO: 25. L In one aspect, a bispecific agonist CD28 antigen binding molecule is provided, comprising a heavy chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 32, SEQ ID NO: 33, SEQ ID NO: 34, SEQ ID NO: 35, SEQ ID NO: 36, SEQ ID NO: 37, SEQ ID NO: 38, SEQ ID NO: 39, SEQ ID NO: 40, and SEQ ID NO: 41. Hand a light chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 25, SEQ ID NO: 42, SEQ ID NO: 43, SEQ ID NO: 44, SEQ ID NO: 45, SEQ ID NO: 46, SEQ ID NO: 47, SEQ ID NO: 48, SEQ ID NO: 49, SEQ ID NO: 50, and SEQ ID NO: 51. L CD28).
[0128] In another embodiment, the bispecific agonist CD28 antigen binding molecule comprises a first antigen binding domain capable of specific binding to CD28 comprising: (a) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 37 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 44 L CD28), or (b) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 37 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L CD28), or (c) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 41 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 51 L CD28), or (d) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 43 L CD28), or (e) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 44 L CD28), or (f) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 49 L CD28), or (g) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L CD28), or (h) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 33 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L CD28), or (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 43 L CD28), or (j) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 49 L CD28), or (k) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32 H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L CD28) A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0129] In one particular aspect, there is provided a bispecific agonist CD28 antigen binding molecule, wherein the first antigen binding domain capable of specific binding to CD28 comprises a heavy chain variable region (VH1) comprising the heavy chain complementarity determining regions of SEQ ID NO: 52, CDR-H2 of SEQ ID NO: 53, and CDR-H3 of SEQ ID NO: 54. H and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 55, CDR-L2 of SEQ ID NO: 56, and CDR-L3 of SEQ ID NO: 57. L In one embodiment, a bispecific agonist CD28 antigen binding molecule is provided, comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 37. H a light chain variable region (V) comprising the CDRs of CD28 and the amino acid sequence of SEQ ID NO: 44; L It contains the CDRs of CD28.
[0130] In another aspect, there is provided a bispecific agonist CD28 antigen binding molecule, wherein a first antigen binding domain capable of specific binding to CD28 comprises a heavy chain variable region (VH1) comprising the heavy chain complementarity determining regions of SEQ ID NO: 58, CDR-H2 of SEQ ID NO: 59, and CDR-H3 of SEQ ID NO: 60. H and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 61, CDR-L2 of SEQ ID NO: 62, and CDR-L3 of SEQ ID NO: 63. L In one embodiment, a bispecific agonist CD28 antigen binding molecule is provided, comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36. H a light chain variable region (V) comprising the CDRs of CD28 and the amino acid sequence of SEQ ID NO: 43; L In a further aspect, the bispecific agonist CD28 antigen binding molecule comprises a first antigen-binding domain capable of specific binding to CD28, and a heavy chain variable region (VH1) comprising the heavy chain complementarity determining regions of CDR-H1 of SEQ ID NO: 64, CDR-H2 of SEQ ID NO: 65, and CDR-H3 of SEQ ID NO: 66. H and a light chain variable region (V) comprising light chain complementarity determining regions CDR-L1 of SEQ ID NO: 67, CDR-L2 of SEQ ID NO: 68, and CDR-L3 of SEQ ID NO: 69. L In one embodiment, a bispecific agonist CD28 antigen binding molecule is provided, comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32. H a light chain variable region (V) comprising the CDRs of CD28 and the amino acid sequence of SEQ ID NO: 25; L It contains the CDRs of CD28.
[0131] In one embodiment, the antigen binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 24. H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 LIn one embodiment, the antigen-binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 24. H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L and a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 37, which binds to CD28 with reduced affinity compared to an antigen-binding domain comprising H and a light chain variable region (V) comprising CDR-H1, CDR-H2, and CDR-H3 of CD28 and the amino acid sequence of SEQ ID NO: 44. L In one embodiment, the heavy chain variable region (V) comprises the amino acid sequence of SEQ ID NO: 24. H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L The antigen-binding domain capable of specifically binding to CD28 with reduced affinity compared to an antigen-binding domain comprising a heavy chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO: 37. H CD28) and a light chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO:44. L CD28).
[0132] In one particular embodiment, the antigen-binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 37. H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 44 L A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0133] In another particular embodiment, the antigen-binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 36. H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 43 L A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0134] In a further aspect, the antigen-binding domain capable of specific binding to CD28 comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 32. H CD28) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 25 L A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0135] EpCAM targeting bispecific agonist CD28 antigen binding molecule Provided herein is a bispecific agonist CD28 antigen-binding molecule, wherein the antigen-binding domain capable of specific binding to a tumor-associated antigen is a specific antigen-binding domain capable of specific binding to epithelial cell adhesion molecule (EpCAM).
[0136] In one aspect, the second antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (VH1) comprising CDR-H1 having the amino acid sequence of SEQ ID NO: 2, CDR-H2 having the amino acid sequence of SEQ ID NO: 3, and CDR-H3 having the amino acid sequence of SEQ ID NO: 4. H EpCAM) and a light chain variable region (V) comprising CDR-L1 having the amino acid sequence of SEQ ID NO: 5, CDR-L2 having the amino acid sequence of SEQ ID NO: 6, and CDR-L3 having the amino acid sequence of SEQ ID NO: 7. L In one aspect, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 8. H a light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 9; LIn one embodiment, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO:8. H EpCAM) and a light chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO:9. L In particular, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 8. H EpCAM) light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 9 L EpCAM).
[0137] In one aspect, the second antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO:205, SEQ ID NO:206, SEQ ID NO:207, SEQ ID NO:208, SEQ ID NO:209, SEQ ID NO:210, SEQ ID NO:211, SEQ ID NO:212, SEQ ID NO:213, SEQ ID NO:214, and SEQ ID NO:215. H EpCAM) and a light chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO:216, SEQ ID NO:217, SEQ ID NO:218, SEQ ID NO:219, SEQ ID NO:220, SEQ ID NO:221, and SEQ ID NO:222. L A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0138] In one aspect, the bispecific agonist CD28 antigen binding molecule wherein the second antigen binding domain capable of specific binding to EpCAM comprises: (a) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 8 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 9 L EpCAM), or (b) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 205 HEpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (c) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 206 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (d) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 207 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (e) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 208 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (f) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 209 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (g) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 210 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (h) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 211 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 213 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (j) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 214 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (k) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 215 HEpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (l) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 207 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 221 L EpCAM), or (m) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 211 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 221 L EpCAM) A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0139] In one aspect, the bispecific agonist CD28 antigen binding molecule described herein, wherein the second antigen binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 255. H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 256 L In one aspect, a bispecific agonist CD28 antigen binding molecule is provided, which is a new humanized antibody derived from the murine antibody MOC31, having EpCAM (EpCAM). In one aspect, the bispecific agonist CD28 antigen binding molecule described herein, wherein the second antigen binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the heavy chain complementarity determining regions CDR-H1 of SEQ ID NO: 309, CDR-H2 of SEQ ID NO: 310, and CDR-H3 of SEQ ID NO: 311. H EpCAM) and a light chain variable region (V) comprising the light chain complementarity determining regions CDR-L1 of SEQ ID NO: 312 or SEQ ID NO: 313, CDR-L2 of SEQ ID NO: 314, and CDR-L3 of SEQ ID NO: 315. L In one particular aspect, the second antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain complementarity-determining region (CDR-H1) comprising the amino acid sequence of SEQ ID NO: 316, a CDR-H2 comprising the amino acid sequence of SEQ ID NO: 319, and a heavy chain variable region (VH3) comprising the amino acid sequence of SEQ ID NO: 323.H EpCAM), and (iv) a light chain variable region (V) comprising light chain complementarity determining regions (CDR-L1) comprising the amino acid sequence of SEQ ID NO: 325 or SEQ ID NO: 327 or SEQ ID NO: 328 or SEQ ID NO: 330, CDR-L2 comprising the amino acid sequence of SEQ ID NO: 332 or SEQ ID NO: 334 or SEQ ID NO: 335 or SEQ ID NO: 336, and CDR-L3 comprising the amino acid sequence of SEQ ID NO: 315. L EpCAM).
[0140] In one aspect, the bispecific agonist CD28 antigen binding molecule comprises a heavy chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO:257, SEQ ID NO:258, SEQ ID NO:259, SEQ ID NO:260, SEQ ID NO:261, SEQ ID NO:211, SEQ ID NO:262, and SEQ ID NO:263. H EpCAM) and a light chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 264, SEQ ID NO: 265, SEQ ID NO: 266, SEQ ID NO: 267, SEQ ID NO: 268, SEQ ID NO: 269, and SEQ ID NO: 270. L In one particular embodiment, the second antigen-binding domain capable of specific binding to EpCAM comprises: (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 264 L CDR of EpCAM, or (ii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 266 L CDR of EpCAM, or (iii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 267 L CDR of EpCAM, or (iv) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 269L CDR of EpCAM, or (v) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 259 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 266 L EpCAM CDR Includes:
[0141] In one aspect, the bispecific agonist CD28 antigen binding molecule wherein the second antigen binding domain capable of specific binding to EpCAM comprises: (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 264 L EpCAM), or (ii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 266 L EpCAM), or (iii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 267 L EpCAM), or (iv) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 269 L EpCAM), or (v) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 259 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 266 L EpCAM) A bispecific agonist CD28 antigen binding molecule is provided, comprising:
[0142] In another aspect, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (VH1) comprising CDR-H1 having the amino acid sequence of SEQ ID NO: 10, CDR-H2 having the amino acid sequence of SEQ ID NO: 11, and CDR-H3 having the amino acid sequence of SEQ ID NO: 12.H EpCAM) and a light chain variable region (V) comprising CDR-L1 having the amino acid sequence of SEQ ID NO: 13, CDR-L2 having the amino acid sequence of SEQ ID NO: 14, and CDR-L3 having the amino acid sequence of SEQ ID NO: 15. L In one aspect, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 16. H a light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 17; L In one embodiment, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO: 16. H EpCAM) and a light chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO: 17. L In particular, the antigen-binding domain capable of specific binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 16. H EpCAM) light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 17 L EpCAM).
[0143] As used herein, an antigen-binding domain capable of specific binding to EpCAM is a heavy chain variable region (V) comprising (i) CDR-H1 comprising the amino acid sequence of SEQ ID NO: 141, (ii) CDR-H2 comprising the amino acid sequence of SEQ ID NO: 142, and (iii) CDR-H3 comprising the amino acid sequence of SEQ ID NO: 143. H EpCAM) and a light chain variable region (V) comprising (iv) CDR-L1 comprising the amino acid sequence of SEQ ID NO: 144, (v) CDR-L2 comprising the amino acid sequence of SEQ ID NO: 145, and (vi) CDR-L3 comprising the amino acid sequence of SEQ ID NO: 146. LAlso disclosed are bispecific agonist CD28 antigen binding molecules comprising a heavy chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO: 147. H EpCAM) and a light chain variable region (V) comprising an amino acid sequence that is at least about 95%, 96%, 97%, 98%, 99% or 100% identical to the amino acid sequence of SEQ ID NO: 148. L In particular, the antigen-binding domain capable of specifically binding to EpCAM comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 147. H EpCAM) light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 148 L EpCAM).
[0144] Bispecific agonist CD28 antigen-binding molecules that are monovalent for binding to CD28 and monovalent for binding to EpCAM3 (1+1 format) In one aspect, a bispecific agonist CD28 antigen-binding molecule is provided, wherein the first antigen-binding domain capable of specific binding to CD28 and / or the second antigen-binding domain capable of specific binding to EpCAM3 are Fab fragments. In a particular aspect, both the first antigen-binding domain capable of specific binding to CD28 and the second antigen-binding domain capable of specific binding to EpCAM3 are Fab fragments.
[0145] In one aspect, there is provided a bispecific agonist CD28 antigen-binding molecule described herein, comprising: (a) a crossFab fragment capable of specific binding to CD28, (b) a conventional Fab fragment capable of specific binding to EpCAM, and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit and the second subunit comprising one or more amino acid substitutions that reduce the binding affinity of the antigen-binding molecule to an Fc receptor and / or effector function. In another aspect, there is provided a bispecific agonist CD28 antigen-binding molecule described herein, comprising: (a) a conventional Fab fragment capable of specific binding to CD28, (b) a crossFab fragment capable of specific binding to EpCAM, and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit and the second subunit comprising one or more amino acid substitutions that reduce the binding affinity of the antigen-binding molecule to an Fc receptor and / or effector function.
[0146] In one aspect, there is provided a bispecific agonist CD28 antigen-binding molecule as described herein, wherein the first antigen-binding domain capable of specific binding to CD28 is a Fab fragment in which the variable domains VL and VH of the Fab light chain and the constant domains CL and CH1, in particular the variable domains VL and VH, are replaced by one another (crossfab fragment). In one aspect, the first antigen-binding domain capable of specific binding to CD28 is a Fab fragment in which the variable domains VL and VH of the Fab light chain and the constant domains CL and CH1, in particular the variable domains VL and VH, are replaced by one another, and the second antigen-binding domain capable of specific binding to EpCAM is a conventional Fab fragment.
[0033] In one aspect, the second antigen-binding domain capable of specific binding to EpCAM is a Fab fragment in which in the constant domain CL the amino acid at position 123 (numbering according to Kabat EU index) is substituted by an amino acid selected from lysine (K), arginine (R) or histidine (H) and the amino acid at position 124 (numbering according to Kabat EU index) is independently substituted by lysine (K), arginine (R) or histidine (H); and in the constant domain CHI the amino acid at position 147 (numbering according to Kabat EU index) is independently substituted by glutamic acid (E) or aspartic acid (D) and the amino acid at position 213 (numbering according to Kabat EU index) is independently substituted by glutamic acid (E) or aspartic acid (D) (numbering according to Kabat EU index).
[0147] In one particular aspect, a bispecific agonist CD28 antigen binding molecule (molecule F) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 92, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 91, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 104, and a second light chain comprising the amino acid sequence of SEQ ID NO: 105.
[0148] In another specific aspect, a bispecific agonist CD28 antigen binding molecule (molecule K) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 94, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 93, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 104, and a second light chain comprising the amino acid sequence of SEQ ID NO: 105.
[0149] In another specific aspect, a bispecific agonist CD28 antigen binding molecule (molecule D) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 92, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 91, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 100, and a second light chain comprising the amino acid sequence of SEQ ID NO: 101.
[0150] In yet another specific embodiment, a bispecific agonist CD28 antigen binding molecule (molecule D) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 94, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 93, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 100, and a second light chain comprising the amino acid sequence of SEQ ID NO: 101.
[0151] In one aspect, there is provided a bispecific agonist CD28 antigen-binding molecule as described herein, wherein the second antigen-binding domain capable of specific binding to EpCAM is a Fab fragment in which the variable domains VL and VH of the Fab light chain and the constant domains CL and CH1, in particular the variable domains VL and VH, have been replaced by one another (crossfab fragment). In one aspect, the second antigen-binding domain capable of specific binding to EpCAM is a Fab fragment in which the variable domains VL and VH of the Fab light chain and the constant domains CL and CH1, in particular the variable domains VL and VH, have been replaced by one another, and the first antigen-binding domain capable of specific binding to CD28 is a conventional Fab fragment. and wherein in the constant domain CHI the amino acid at position 147 (numbering according to Kabat EU index) is independently substituted by glutamic acid (E) or aspartic acid (D); and wherein the amino acid at position 213 (numbering according to Kabat EU index) is independently substituted by glutamic acid (E) or aspartic acid (D) (numbering according to Kabat EU index).
[0152] In one particular aspect, a bispecific agonist CD28 antigen binding molecule (molecule G) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 106, and a second light chain comprising the amino acid sequence of SEQ ID NO: 107.
[0153] In a further specific aspect, a bispecific agonist CD28 antigen binding molecule (molecule J) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 82, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 76, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 106, and a second light chain comprising the amino acid sequence of SEQ ID NO: 107.
[0154] In one particular aspect, a bispecific agonist CD28 antigen binding molecule (molecule G) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 106, and a second light chain comprising the amino acid sequence of SEQ ID NO: 107.
[0155] In a further specific aspect, provided herein is a bispecific agonist CD28 antigen binding molecule (P1AH2326), comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 271, and a second light chain comprising the amino acid sequence of SEQ ID NO: 272.
[0156] In one particular aspect, a bispecific agonist CD28 antigen binding molecule (P1AH2327) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 273, and a second light chain comprising the amino acid sequence of SEQ ID NO: 272.
[0157] In one particular aspect, a bispecific agonist CD28 antigen binding molecule (P1AH2328) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 274, and a second light chain comprising the amino acid sequence of SEQ ID NO: 272.
[0158] In yet another specific aspect, a bispecific agonist CD28 antigen binding molecule (P1AH2329) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 275, and a second light chain comprising the amino acid sequence of SEQ ID NO: 272.
[0159] In another specific aspect, a bispecific agonist CD28 antigen binding molecule (P1AH2330) is provided, comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83, a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, a second heavy chain comprising the amino acid sequence of SEQ ID NO: 273, and a second light chain comprising the amino acid sequence of SEQ ID NO: 276.
[0160] New EpCAM antibodies In one aspect, new humanized antibodies or antigen-binding domains are provided that are variants of antibody 4D5MOC-B, which comprise a heavy chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO:205, SEQ ID NO:206, SEQ ID NO:207, SEQ ID NO:208, SEQ ID NO:209, SEQ ID NO:210, SEQ ID NO:211, SEQ ID NO:212, SEQ ID NO:213, SEQ ID NO:214, and SEQ ID NO:215. H EpCAM) and a light chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO:216, SEQ ID NO:217, SEQ ID NO:218, SEQ ID NO:219, SEQ ID NO:220, SEQ ID NO:221, and SEQ ID NO:222. L and EpCAM).
[0161] In one particular aspect, an antibody or antigen binding domain capable of specific binding to EpCAM, comprising: (a) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 8 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 9 L EpCAM), or (b) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 205 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 LEpCAM), or (c) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 206 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (d) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 207 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (e) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 208 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (f) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 209 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (g) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 210 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (h) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 211 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 213 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (j) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 214 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (k) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 215 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 216 L EpCAM), or (l) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 207 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 221 L EpCAM), or (m) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 211 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 221 L EpCAM)
[0023] An antibody or antigen-binding domain is provided, comprising:
[0162] In another specific aspect, new humanized antibodies or antigen-binding domains are provided that specifically bind to EpCAM and are based on the murine antibody MOC31. New antibodies or antibody fragments are provided that specifically bind to the EPCAM extracellular domain comprising the amino acid sequence of SEQ ID NO: 196.
[0163]
[0013] In one aspect, an antibody or antigen-binding domain that specifically binds to EpCAM, wherein the antibody or antigen-binding domain comprises a heavy chain complementarity determining region (CDR-H1) comprising the amino acid sequence of SEQ ID NO: 316, a CDR-H2 comprising the amino acid sequence of SEQ ID NO: 319, and a heavy chain variable region (VH1) comprising the amino acid sequence of SEQ ID NO: 323. H EpCAM), and (iv) a light chain variable region (V) comprising light chain complementarity determining regions (CDR-L1) comprising the amino acid sequence of SEQ ID NO: 325 or SEQ ID NO: 327 or SEQ ID NO: 328 or SEQ ID NO: 330, CDR-L2 comprising the amino acid sequence of SEQ ID NO: 332 or SEQ ID NO: 334 or SEQ ID NO: 335 or SEQ ID NO: 336, and CDR-L3 comprising the amino acid sequence of SEQ ID NO: 315. L An antibody or antigen-binding domain comprising:
[0164] In one aspect, there is provided an antibody or antigen-binding domain that specifically binds to EpCAM, wherein the antibody or antigen-binding domain comprises a heavy chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO:257, SEQ ID NO:258, SEQ ID NO:259, SEQ ID NO:260, SEQ ID NO:261, SEQ ID NO:262, and SEQ ID NO:263. HEpCAM) and a light chain variable region (V) comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 264, SEQ ID NO: 265, SEQ ID NO: 266, SEQ ID NO: 267, SEQ ID NO: 268, SEQ ID NO: 269, and SEQ ID NO: 270. L An antibody or antigen-binding domain comprising:
[0165] In one embodiment, the second antigen-binding domain capable of specific binding to EpCAM comprises: (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 264 L CDR of EpCAM, or (ii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 266 L CDR of EpCAM, or (iii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 267 L CDR of EpCAM, or (iv) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 269 L CDR of EpCAM, or (v) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 259 H A light chain variable region (V) comprising the CDRs of EpCAM and the amino acid sequence of SEQ ID NO: 266 L EpCAM CDR Includes:
[0166] In one particular embodiment, the second antigen-binding domain capable of specific binding to EpCAM comprises: (i) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 264 L EpCAM), or (ii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 266 L EpCAM), or (iii) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 267 L EpCAM), or (iv) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 258 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 269 L EpCAM), or (v) a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 259 H EpCAM) and a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 266 L EpCAM) Includes:
[0167] Fc domain modifications that reduce Fc receptor binding and / or effector function The Fc domain of the bispecific agonist CD28 antigen-binding molecules of the present invention consists of a pair of polypeptide chains containing the heavy chain domains of an immunoglobulin molecule. For example, the Fc domain of an immunoglobulin G (IgG) molecule is a dimer, each subunit of which contains the CH2 and CH3 IgG heavy chain constant domains. The two subunits of the Fc domain are capable of stable binding to each other. The Fc domain confers desirable pharmacokinetic properties to the antigen-binding molecules of the present invention, including a long serum half-life and a desirable tissue-blood distribution ratio, which contribute to favorable accumulation in target tissues. On the other hand, this may cause undesired targeting of the bispecific antibodies of the present invention to cells expressing Fc receptors rather than cells containing the desired antigen.
[0168] Thus, the Fc domain of the bispecific agonist CD28 antigen binding molecule exhibits reduced binding affinity to Fc receptors and / or reduced effector function compared to a native IgG1 Fc domain. In certain embodiments, the Fc does not substantially bind to Fc receptors and / or does not induce effector function. In a specific embodiment, the Fc receptor is an Fcγ receptor. In one embodiment, the Fc receptor is a human Fc receptor. In a specific embodiment, the Fc receptor is an activating human Fcγ receptor, more specifically human FcγRIIIa, FcγRI, or FcγRIIa, most specifically human FcγRIIIa. In certain embodiments, the Fc domain does not induce effector function. Decreased effector function includes, but is not limited to, one or more of the following: decreased complement dependent cytotoxicity (CDC), decreased antibody-dependent cell-mediated cytotoxicity (ADCC), decreased antibody-dependent cellular phagocytosis (ADCP), decreased cytokine secretion, decreased immune complex-mediated antigen uptake by antigen-presenting cells, decreased binding to NK cells, decreased binding to macrophages, decreased binding to monocytes, decreased binding to polymorphonuclear cells, decreased direct signaling to induce apoptosis, decreased dendritic cell maturation, or decreased T cell priming.
[0169] In certain embodiments, one or more amino acid modifications may be introduced into the Fc region of an antibody provided herein, thereby generating an Fc region variant. The Fc region variant may comprise a human Fc region sequence (e.g., a human IgG1, IgG2, IgG3, or IgG4 Fc region) containing an amino acid modification (e.g., a substitution) at one or more amino acid positions.
[0170] In a specific aspect, the present invention provides antigen-binding molecules whose Fc region comprises one or more amino acid substitutions that reduce binding to Fc receptors, particularly Fcγ receptors. In one aspect, the present invention provides antibodies whose Fc region comprises one or more amino acid substitutions, and whose ADCC induced by the antibody is reduced to 0 to 20% of the ADCC induced by an antibody comprising a wild-type human IgG1 Fc region.
[0171] In one embodiment, the Fc domain of an antigen-binding molecule of the present invention comprises one or more amino acid mutations that reduce the binding affinity of the Fc domain to an Fc receptor and / or its effector function. Typically, the same one or more amino acid mutations are present in each of the two subunits of the Fc domain. In particular, the Fc domain comprises amino acid substitutions at positions E233, L234, L235, N297, P331, and P329 (EU numbering). In particular, the Fc domain comprises amino acid substitutions at positions 234 and 235 (EU numbering) and / or 329 (EU numbering) of the IgG heavy chain. More specifically, an antigen-binding molecule according to the present invention is provided, comprising an Fc domain with amino acid substitutions L234A, L235A, and P329G ("P329G LALA" (EU numbering)) in the IgG heavy chain. The amino acid substitutions L234A and L235A are referred to as LALA mutations. The "P329G LALA" combination of amino acid substitutions almost completely abolishes Fcγ receptor binding in human IgG1 Fc domains and is described in WO 2012 / 130831, which also describes methods for preparing such mutant Fc domains and determining their properties, such as Fc receptor binding or effector function.
[0172] Fc domains with reduced Fc receptor binding and / or effector function also include those with substitutions of one or more of Fc domain residues 238, 265, 269, 270, 297, 327, and 329 (U.S. Patent No. 6,737,056). Such Fc variants include Fc variants with substitutions at two or more of amino acid positions 265, 269, 270, 297, and 327, including the so-called "DANA" Fc variant with substitutions of residues 265 and 297 to alanine (U.S. Patent No. 7,332,581).
[0173] In another embodiment, the Fc domain is an IgG4 Fc domain. IgG4 antibodies exhibit reduced binding affinity to Fc receptors and reduced effector function compared to IgG1 antibodies. In a more specific embodiment, the Fc domain is an IgG4 Fc domain comprising an amino acid substitution at position S228 (Kabat numbering), in particular the amino acid substitution S228P. In a more specific embodiment, the Fc domain is an IgG4 Fc domain comprising amino acid substitutions L235E, S228P, and P329G (EU numbering). Such IgG4 Fc domain mutants and their Fcγ receptor binding properties are also described in WO 2012 / 130831.
[0174] Variant Fc domains can be prepared by amino acid deletion, substitution, insertion, or modification using genetic or chemical methods well known in the art. Genetic methods can include site-directed mutagenesis of the encoding DNA sequence, PCR, gene synthesis, etc. The exact nucleotide changes can be confirmed, for example, by sequencing.
[0175] Binding to an Fc receptor can be readily determined, for example, by ELISA or by surface plasmon resonance (SPR) using standard equipment, such as a BIAcore instrument (GE Healthcare), and an Fc receptor, which may be obtained, for example, by recombinant expression. Alternatively, the binding affinity of an Fc domain or a cell-activating antibody comprising an Fc domain to an Fc receptor may be assessed using a cell line known to express a particular Fc receptor (e.g., human NK cells expressing the FcγIIIa receptor).
[0176] The effector function of an Fc domain or an antigen-binding molecule of the present invention comprising an Fc domain can be measured by methods known in the art. Suitable assays for measuring ADCC are described herein. Other examples of in vitro assays for assessing the ADCC activity of a molecule of interest are described in U.S. Patent No. 5,500,362; Hellstrom et al. Proc Natl Acad Sci USA 83, 7059-7063 (1986) and Hellstrom et al., Proc Natl Acad Sci USA 82, 1499-1502 (1985); U.S. Patent No. 5,821,337; Bruggemann et al., J Exp Med 166, 1351-1361 (1987). Alternatively, non-radioactive assays can be used (e.g., ACTI for flow cytometry). TM See non-radioactive cytotoxicity assays (CellTechnology, Mountain View, CA); and CytoTox 96® non-radioactive cytotoxicity assays (Promega, Madison, WI). Useful effector cells for such assays include peripheral blood mononuclear cells (PBMCs) and natural killer (NK) cells. Alternatively, or additionally, ADCC activity of the molecule of interest can be assessed in vivo in an animal model such as that disclosed in Clynes et al., Proc Natl Acad Sci (USA) 95, 652-656 (1998).
[0177] In some embodiments, binding of the Fc domain to complement components, specifically C1q, is reduced. Thus, in some embodiments in which the Fc domain is engineered to have reduced effector function, the reduced effector function includes reduced CDC. A C1q binding assay can be performed to determine whether a bispecific antibody of the invention is capable of binding C1q and thus has CDC activity. See, e.g., the C1q and C3c binding ELISAs in WO 2006 / 029879 and WO 2005 / 100402. To assess complement activation, a CDC assay can be performed (see, e.g., Gazzano-Santoro et al., J. Immunol. Methods 202:163 (1996); Cragg, et al., Blood 101:1045-1052 (2003); and Cragg and Glennie, Blood 103:2738-2743 (2004)).
[0178] In one particular embodiment, the Fc domain that exhibits reduced binding affinity to Fc receptors and / or reduced effector function compared to a native IgG1 Fc domain is a human IgG1 Fc domain comprising the amino acid substitutions L234A, L235A and optionally P329G, or a human IgG4 Fc domain comprising the amino acid substitutions S228P, L235E and optionally P329G (numbering according to Kabat EU index). More particularly, it is a human IgG1 Fc domain comprising the amino acid substitutions L234A, L235A and P329G (numbering according to Kabat EU index).
[0179] Fc domain modifications that promote heterodimerization The bispecific agonist CD28 antigen-binding molecules of the present invention comprise different antigen-binding sites fused to one or the other of the two subunits of the Fc domain, which may therefore be contained in two non-identical polypeptide chains. Recombinant coexpression of these polypeptides and subsequent dimerization results in several possible combinations of the two polypeptides. To increase the yield and purity of the bispecific antigen-binding molecules of the present invention during recombinant production, it is advantageous to introduce modifications to the Fc domain of the bispecific antigen-binding molecules of the present invention that promote the desired association of the polypeptides.
[0180] Thus, in a particular aspect, the present invention relates to a bispecific agonist CD28 antigen-binding molecule with monovalent binding to CD28, comprising: (a) one antigen-binding domain capable of specific binding to CD28; (b) at least one antigen-binding domain capable of specific binding to a tumor-associated antigen; and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit and the second subunit containing one or more amino acid substitutions that reduce the binding affinity of the antigen-binding molecule to an Fc receptor and / or the effector function, wherein the Fc domain contains a modification that promotes association of the first subunit and the second subunit of the Fc domain. The most extensive site of protein-protein interaction between the two subunits of a human IgG Fc domain is in the CH3 domain of the Fc domain. Thus, in one aspect, the modification is in the CH3 domain of the Fc domain.
[0181] In a specific embodiment, the modification is a so-called "knob-into-hole" modification, comprising a "knob" modification in one of the two subunits of the Fc domain and a "hole" modification in the other of the two subunits of the Fc domain. Accordingly, the present invention relates to a bispecific agonist CD28 antigen-binding molecule with monovalent binding to CD28, comprising: (a) one antigen-binding domain capable of specific binding to CD28; (b) at least one antigen-binding domain capable of specific binding to a tumor-associated antigen; and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit of the Fc domain comprising the knob and the second subunit of the Fc domain comprising the hole according to the knob-to-hole approach. In a particular embodiment, the first subunit of the Fc domain comprises the amino acid substitutions S354C and T366W (EU numbering), and the second subunit of the Fc domain comprises the amino acid substitutions Y349C, T366S, and Y407V (numbering according to Kabat EU index).
[0182] The "knob-into-hole" technique is described, for example, in U.S. Patent Nos. 5,731,168; 7,695,936; Ridgway et al., Prot Eng 9, 617-621 (1996); and Carter, J Immunol Meth 248, 7-15 (2001). Generally, this method involves introducing a protuberance ("knob") at the interface of a first polypeptide and a corresponding cavity ("hole") at the interface of a second polypeptide, such that the protuberance can be positioned within the cavity to promote heterodimer formation and discourage homodimer formation. The protuberance is constructed by replacing a small amino acid side chain from the interface of the first polypeptide with a larger side chain (e.g., tyrosine or tryptophan). A complementary cavity of identical or similar size to the protuberance is created at the interface of the second polypeptide by replacing the large amino acid side chain with a smaller one (eg, alanine or threonine).
[0183] Thus, in one embodiment, in the CH3 domain of a first subunit of the Fc domain of a bispecific antigen-binding molecule of the invention, an amino acid residue is replaced with an amino acid residue having a larger side chain volume, thereby generating a protuberance in the CH3 domain of the first subunit that can be repositioned within a cavity in the CH3 domain of the second subunit, and in the CH3 domain of a second subunit of the Fc domain, an amino acid residue is replaced with an amino acid residue having a smaller side chain volume, thereby generating a cavity in the CH3 domain of the second subunit into which the protuberance in the CH3 domain of the first subunit can be repositioned. The protuberance and cavity can be created by altering the nucleic acid encoding the polypeptide, for example, by site-directed mutagenesis or by peptide synthesis. In a specific embodiment, in the CH3 domain of the first subunit of the Fc domain, the threonine residue at position 366 is replaced with a tryptophan residue (T366W), and in the (CH3 domain of the) second subunit of the Fc domain, the tyrosine residue at position 407 is replaced with a valine residue (Y407V). In one embodiment, in the second subunit of the Fc domain, the threonine residue at position 366 is further replaced with a serine residue (T366S), and the leucine residue at position 368 is replaced with an alanine residue (L368A).
[0184] In yet a further embodiment, the first subunit of the Fc domain further comprises a replacement of the serine residue at position 354 with a cysteine residue (S354C), and the second subunit of the Fc domain further comprises a replacement of the tyrosine residue at position 349 with a cysteine residue (Y349C). The introduction of these two cysteine residues results in the formation of disulfide bridges between the two subunits of the Fc domain, further stabilizing the dimer (Carter (2001), J Immunol Methods 248, 7-15 (2001)). In a specific embodiment, the first subunit of the Fc domain comprises the amino acid substitutions S354C and T366W (EU numbering), and the second subunit of the Fc domain comprises the amino acid substitutions Y349C, T366S, and Y407V (numbering according to the Kabat EU index).
[0185] In another embodiment, the modification that promotes association of the first and second subunits of the Fc domain comprises a modification that mediates an electrostatic steering effect, e.g., as described in PCT Publication WO 2009 / 089004. Generally, this method involves replacing one or more amino acid residues at the interface of the two Fc domain subunits with a charged amino acid residue, such that homodimer formation is electrostatically unfavorable, but heterodimerization is electrostatically favored.
[0186] The C-terminus of the heavy chain of the bispecific agonist CD28 antigen binding molecule reported herein may be a complete C-terminus ending with the amino acid residue PGK. The C-terminus of the heavy chain may be a shortened C-terminus in which one or two of the C-terminal amino acid residues are removed. In a preferred embodiment, the C-terminus of the heavy chain is a shortened C-terminus P. In a preferred embodiment, the C-terminus of the heavy chain is a shortened C-terminus PG. In one embodiment of all embodiments reported herein, a CD28 antigen binding molecule comprising a heavy chain comprising a C-terminal CH3 domain as specified herein comprises a C-terminal glycine-lysine dipeptide (G446 and K447, numbering according to the Kabat EU index). In one embodiment of all embodiments reported herein, a CD28 antigen binding molecule comprising a heavy chain comprising a C-terminal CH3 domain as specified herein comprises a C-terminal glycine residue (G446, numbering according to the Kabat EU index).
[0187] Modifications within the Fab domain In one aspect, the present invention relates to a bispecific agonist CD28 antigen-binding molecule characterized by monovalent binding to CD28, comprising: (a) a first antigen-binding domain capable of specific binding to CD28; (b) a second antigen-binding domain capable of specific binding to EpCAM; and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit and the second subunit comprising one or more amino acid substitutions that reduce the binding affinity of the antigen-binding molecule for an Fc receptor and / or the effector function thereof, wherein the second antigen-binding domain capable of specific binding to EpCAM is a Fab fragment, and in the Fab fragment, either the variable domains VH and VL or the constant domains CH1 and CL have been exchanged according to crossmab technology.
[0188] Multispecific antibodies with domain replacement / swapping in one binding arm (CrossMabVH-VL or CrossMabCH-CL) are described in WO 2009 / 080252 and Schaefer, W. et al., PNAS, 108 (2011) 11187-1191. These multispecific antibodies clearly reduce by-products caused by mismatches between a light chain for one antigen and an incorrect heavy chain for a second antigen (compared to approaches without such domain replacement).
[0189] In one aspect, the present invention relates to a bispecific agonist CD28 antigen-binding molecule characterized by monovalent binding to CD28, comprising: (a) a first antigen-binding domain capable of specific binding to CD28; (b) a second antigen-binding domain capable of specific binding to EpCAM; and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first and second subunits comprising one or more amino acid substitutions that reduce the binding affinity of the antigen-binding molecule for an Fc receptor and / or the effector function, wherein the variable domains VL and VH in the Fab fragment capable of specific binding to CD28 are swapped with each other such that the VH domain is part of the light chain and the VL domain is part of the heavy chain.
[0190] In another aspect, to further improve correct pairing, a bispecific agonist CD28 antigen-binding molecule characterized by monovalent binding to CD28, comprising (a) a first antigen-binding domain capable of specific binding to CD28, (b) a second antigen-binding domain capable of specific binding to EpCAM, and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association containing one or more amino acid substitutions that reduce the binding affinity and / or effector function of the antigen-binding molecule for Fc receptors, may contain various charged amino acid substitutions (so-called "charged residues"). These modifications may be introduced into the cross-linked or non-cross-linked CH1 and CL domains. In a particular aspect, the invention relates to a bispecific agonist CD28 antigen-binding molecule, in which in one of the CL domains the amino acid at position 123 (EU numbering) is substituted with arginine (R) and the amino acid at position 124 (EU numbering) is substituted with lysine (K), and in one of the CH1 domains the amino acids at positions 147 (EU numbering) and 213 (EU numbering) are substituted with glutamic acid (E). In one particular aspect, in the CL domain of the Fab fragment capable of specific binding to CD28, the amino acid at position 123 (EU numbering) is substituted with arginine (R) and the amino acid at position 124 (EU numbering) is substituted with lysine (K), and in the CH1 domain of the Fab fragment capable of specific binding to CD28, the amino acids at positions 147 (EU numbering) and 213 (EU numbering) are substituted with glutamic acid (E).
[0191] Polynucleotides The present invention further provides isolated polynucleotides encoding the bispecific agonist CD28 antigen-binding molecules described herein, or fragments thereof. One or more isolated polynucleotides encoding the bispecific agonist CD28 antigen-binding molecules of the present invention may be expressed as a single polynucleotide encoding the entire antigen-binding molecule, or as multiple (e.g., two or more) polynucleotides that are co-expressed. Polypeptides encoded by co-expressed polynucleotides may associate, for example, via disulfide bonds or other means, to form a functional antigen-binding molecule. For example, the light chain portion of an immunoglobulin may be encoded by a polynucleotide separate from the heavy chain portion of the immunoglobulin. When co-expressed, the heavy chain polypeptide associates with the light chain polypeptide to form an immunoglobulin. In some embodiments, the isolated polynucleotide encodes the entire bispecific agonist CD28 antigen-binding molecule according to the present invention described herein. In other embodiments, the isolated polynucleotide encodes a polypeptide included in the bispecific agonist CD28 antigen-binding molecule according to the present invention described herein. In certain embodiments, the polynucleotide or nucleic acid is DNA. In other embodiments, a polynucleotide of the invention is RNA, for example in the form of messenger RNA (mRNA). RNA of the invention can be single-stranded or double-stranded.
[0192] Recombinant methods The bispecific agonist CD28 antigen-binding molecules of the present invention can be obtained, for example, by solid peptide synthesis (e.g., Merrifield solid-phase synthesis) or recombinant production. For recombinant production, one or more polynucleotides encoding the bispecific agonist CD28 antigen-binding molecules or polypeptide fragments thereof, for example as described above, are isolated and inserted into one or more vectors for further cloning and / or expression in host cells. Such polynucleotides can be easily isolated and sequenced using conventional procedures. In one embodiment of the present invention, a vector, preferably an expression vector, is provided that contains one or more polynucleotides of the present invention. Methods well known to those skilled in the art can be used to construct expression vectors containing the coding sequence of an antibody (fragment) along with appropriate transcriptional / translational control signals. Such methods include in vitro recombinant DNA techniques, synthetic techniques, and in vivo recombination / genetic recombination. See, for example, the techniques described in Maniatis et al., MOLECULAR CLONING: A LABORATORY MANUAL, Cold Spring Harbor Laboratory, NY (1989); and Ausubel et al., CURRENT PROTOCOLS IN MOLECULAR BIOLOGY, Greene Publishing Associates and Wiley Interscience, NY (1989). Expression vectors can be part of a plasmid, a virus, or can be a nucleic acid fragment. An expression vector contains an expression cassette into which a polynucleotide encoding an antibody or polypeptide fragment thereof (i.e., the coding region) is cloned in operably linked to a promoter and / or other transcriptional or translational control elements. As used herein, a "coding region" is a portion of a nucleic acid consisting of codons translated into amino acids. A "stop codon" (TAG, TGA, or TAA), although not translated into amino acids, is considered to be part of the coding region when present. However, any flanking sequences, such as promoter, ribosome binding site, transcription terminator, introns, 5' and 3' untranslated regions, etc., are not part of the coding region.Two or more coding regions can be present in a single polynucleotide construct (e.g., on a single vector) or in separate polynucleotide constructs (e.g., on separate (different) vectors). Furthermore, any vector may contain a single coding region or two or more coding regions; for example, a vector of the invention may encode one or more polypeptides that are separated into final proteins post- or co-translationally by proteolytic cleavage. Furthermore, a vector, polynucleotide, or nucleic acid of the invention can encode a heterologous coding region, either fused or unfused to a polynucleotide encoding an antibody of the invention, or a polypeptide fragment thereof, or a variant or derivative thereof. Heterologous coding regions include, but are not limited to, specialized elements or motifs such as secretory signal peptides or heterologous functional domains. Operable association refers to the association of a gene product, e.g., a coding region for a polypeptide, with one or more regulatory sequences in such a way as to place expression of the gene product under the influence or control of the regulatory sequences. Two DNA segments (e.g., a polypeptide coding region and its associated promoter) are "operably associated" if induction of promoter function results in transcription of mRNA encoding the desired gene product, and if the nature of the linkage between the two DNA segments does not interfere with the ability of expression control sequences to direct expression of the gene product or the ability of the DNA template to be transcribed. Thus, a promoter region would be operably associated with a polypeptide-encoding nucleic acid if the promoter was capable of effecting transcription of the polypeptide-encoding nucleic acid. A promoter may be a cell-specific promoter that directs substantial transcription of the DNA only in predetermined cells. Other transcription control elements besides a promoter, such as enhancers, operators, repressors, and transcription termination signals, can be operably associated with the polynucleotide to direct cell-specific transcription.
[0193] Suitable promoters and other transcription control regions are disclosed herein. A variety of transcription control regions are known to those of skill in the art. These include, but are not limited to, transcription control regions that function in vertebrate cells, such as promoter and enhancer segments from cytomegalovirus (e.g., the immediate-early promoter in combination with intron A), Simian Virus 40 (e.g., the early promoter), and retroviruses (e.g., Rous sarcoma virus, etc.). Other transcription control regions include those derived from vertebrate genes, such as actin, heat shock proteins, bovine growth hormone, and rabbit α-globin, as well as other sequences capable of controlling gene expression in eukaryotic cells. Further suitable transcription control regions include tissue-specific promoters and enhancers, and inducible promoters (e.g., tetracycline-inducible promoters). Similarly, a variety of translation control elements are known to those of skill in the art. These include, but are not limited to, ribosome binding sites, translation initiation and termination codons, and elements derived from viral systems (particularly internal ribosome entry sites or IRES, also known as CITE sequences). The expression cassette may also include other features such as an origin of replication and / or chromosomal integration elements such as retroviral long terminal repeats (LTRs) or adeno-associated viral (AAV) inverted terminal repeats (ITRs).
[0194] Polynucleotide and nucleic acid coding regions of the present invention can be associated with additional coding regions encoding secretory or signal peptides that direct the secretion of a polypeptide encoded by a polynucleotide of the present invention. For example, if secretion of an antibody or polypeptide fragment thereof is desired, DNA encoding a signal sequence can be placed upstream of the nucleic acid of the antibody or polypeptide fragment thereof of the present invention. According to the signal hypothesis, proteins secreted by mammalian cells have a signal peptide or secretory leader sequence that is cleaved from the mature protein upon initiation of transport of the growing protein chain across the rough endoplasmic reticulum. Those skilled in the art are aware that polypeptides secreted by vertebrate cells usually have a signal peptide fused to the N-terminus of the polypeptide, which is cleaved from the translated polypeptide to generate the secreted or "mature" form of the polypeptide. In certain embodiments, a native signal peptide, such as an immunoglobulin heavy or light chain signal peptide, is used, or a functional derivative of that sequence that retains the ability to direct secretion of a polypeptide operably linked to it is used. Alternatively, a heterologous mammalian signal peptide or a functional derivative thereof may be used. For example, the wild-type leader sequence may be substituted with the leader sequence of human tissue plasminogen activator (TPA) or mouse β-glucuronidase.
[0195] DNA encoding short protein sequences that can be used to facilitate subsequent purification (e.g., histidine tags) or to assist in labeling of the bispecific agonist CD28 antigen-binding molecule may be included internally or at the end of the polynucleotide encoding the antibody of the present invention or a polypeptide fragment thereof.
[0196] In a further aspect of the present invention, host cells are provided comprising one or more polynucleotides of the present invention. In certain embodiments, host cells are provided comprising one or more vectors of the present invention. The polynucleotides and vectors can incorporate any of the features described herein, alone or in combination, in connection with the polynucleotides and vectors, respectively. In one aspect, the host cell comprises (e.g., is transformed or transfected with) a vector comprising a polynucleotide encoding (a portion of) an antibody of the present invention. As used herein, the term "host cell" refers to any type of cell line that can be engineered to produce a fusion protein of the present invention or a fragment thereof. Host cells suitable for replicating and supporting the expression of antigen-binding molecules are well known in the art. Such cells may be transfected or transduced with a particular expression vector, if appropriate, and large amounts of the vector-containing cells can be grown and inoculated into large-scale fermenters to obtain sufficient quantities of antigen-binding molecules for clinical applications. Suitable host cells include prokaryotic microorganisms, such as Escherichia coli, or various eukaryotic cells, such as Chinese hamster ovary cells (CHO), insect cells, etc. For example, polypeptides can be produced in bacteria, particularly when glycosylation is not required. After expression, the polypeptide can be isolated from the bacterial cell paste in a soluble fraction and further purified. In addition to prokaryotes, eukaryotic microbes such as filamentous fungi or yeast are suitable cloning or expression hosts for polypeptide-encoding vectors, including fungal and yeast strains whose glycosylation pathways have been "humanized," resulting in the production of polypeptides with partially or fully human glycosylation patterns. See Gerngross, Nat Biotech 22, 1409-1414 (2004), and Li et al., Nat Biotech 24, 210-215 (2006).
[0197] Suitable host cells for the expression of (glycosylated) polypeptides are also derived from multicellular organisms (invertebrates and vertebrates). Examples of invertebrate cells include plant cells and insect cells. Numerous strains of baculovirus have been identified that can be used in combination with insect cells, particularly for the transfection of Spodoptera frugiperda cells. Plant cell cultures can also be utilized as hosts. See, for example, U.S. Patent Nos. 5,959,177, 6,040,498, 6,420,548, 7,125,978, and 6,417,429 (PLANTIBODIES FOR PRODUCING ANTIBODIES IN TRANSGENIC PLANTS). TMSee, for example, the description of the technique. Vertebrate cells can also be used as hosts. For example, mammalian cell lines that have been adapted to grow in suspension can be useful. Other useful mammalian host cell lines include the SV40-transformed monkey kidney CV1 line (COS-7); human embryonic kidney lines (e.g., 293 or 293T cells described in Graham et al., J Gen Virol 36, 59 (1977)); baby hamster kidney cells (BHK); mouse Sertoli cells (e.g., TM4 cells described in Mather, Biol Reprod 23, 243-251 (1980)); monkey kidney cells (CV1); African green monkey kidney cells (VERO-76); human cervical carcinoma cells (HELA); canine kidney cells (MDCK); buffalo rat liver cells (BRL 3A); human lung cells (W138); human liver cells (Hep G2); mouse mammary tumor (MMT 060562); TRI cells (e.g., as described in Mather et al., Annals NY Acad Sci 383, 44-68 (1982)); MRC 5 cells; and FS4 cells. Other useful mammalian host cell lines include Chinese hamster ovary (CHO) cells, including dhfr-CHO cells (Urlaub et al., Proc Natl Acad Sci USA 77, 4216 (1980)), and myeloma cell lines such as YO, NS0, P3X63, and Sp2 / 0. For a review of specific mammalian host cell lines suitable for protein production, see, for example, Yazaki and Wu, Methods in Molecular Biology, Vol. 248 (BKC Lo, ed., Humana Press, Totowa, NJ), pp. 255-268 (2003). Host cells include cultured cells, such as mammalian cultured cells, yeast cells, insect cells, bacterial cells, and plant cells, but also cells contained within transgenic animals, transgenic plants, or cultured plant or animal tissue, to name a few. In one embodiment, the host cell is a eukaryotic cell, preferably a mammalian cell, such as a Chinese hamster ovary (CHO) cell, a human embryonic kidney (HEK) cell, or a lymphocytic cell (eg, a Y0, NS0, Sp20 cell).Standard techniques for expressing foreign genes in these systems are known in the art. Cells that express a polypeptide containing an immunoglobulin heavy or light chain can be engineered to also express the other immunoglobulin chain, such that the expressed product is an immunoglobulin having both a heavy and a light chain.
[0198] In one aspect, there is provided a method for producing a bispecific agonist CD28 antigen binding molecule of the invention or a polypeptide fragment thereof, comprising culturing a host cell comprising a polynucleotide encoding an antibody of the invention or a polypeptide fragment thereof provided herein under conditions suitable for expression of the antibody of the invention or a polypeptide fragment thereof, and recovering the antibody of the invention or a polypeptide fragment thereof from the host cell (or host cell culture medium).
[0199] In certain embodiments, the antigen-binding domain capable of specific binding to EpCAM (e.g., a Fab fragment) forming part of the antigen-binding molecule comprises at least an immunoglobulin variable region capable of binding to an antigen. The variable region can form part of, and can be derived from, naturally occurring or non-naturally occurring antibodies and fragments thereof. Methods for producing polyclonal and monoclonal antibodies are well known in the art (see, e.g., Harlow and Lane, "Antibodies, a laboratory manual," Cold Spring Harbor Laboratory, 1988). Non-naturally occurring antibodies can be constructed using solid-phase peptide synthesis, produced recombinantly (e.g., as described in U.S. Pat. No. 4,186,567), or obtained, for example, by screening combinatorial libraries containing variable heavy and light chains (see, e.g., U.S. Pat. No. 5,969,108 to McCafferty).
[0200] Immunoglobulins of any animal species can be used in the present invention. Non-limiting immunoglobulins useful in the present invention can be of murine, primate, or human origin. If the fusion protein is intended for human use, chimeric forms of immunoglobulins may be used in which the immunoglobulin constant regions are of human origin. Humanized or fully human forms of immunoglobulins can also be prepared according to methods well known in the art (see, e.g., U.S. Patent No. 5,565,332 to Winter). Humanization may be achieved by a variety of methods, including, but not limited to, (a) grafting CDRs of a non-human (e.g., donor antibody) onto framework and constant regions of a human (e.g., recipient antibody) with or without preserving key framework residues (e.g., those important for maintaining good antigen-binding affinity or antibody function); (b) grafting only non-human specificity-determining regions (SDRs or a-CDRs; residues important for antibody-antigen interaction) onto human framework and constant regions; or (c) grafting entire non-human variable domains but "cloaking" them with human-like segments by replacing surface residues.Humanized antibodies and methods for their production are reviewed, e.g., by Almagro and Fransson, Front Biosci 13, 1619-1633 (2008), and are described, e.g., in Riechmann et al., Nature 332, 323-329 (1988); Queen et al., Proc Natl Acad Sci USA 86, 10029-10033 (1989); U.S. Patent Nos. 5,821,337, 7,527,791, 6,982,321, and 7,087,409; Jones et al., Nature 321, 522-525 (1986); Morrison et al., Proc Natl Acad Sci 81, 6851-6855 (1984); Morrison and Oi, Adv Immunol 44, 65-92. (1988); Verhoeyen et al., Science 239, 1534-1536 (1988); Padlan, Molec Immun 31(3), 169-217 (1994); Kashmiri et al., Methods 36, 25-34 (2005) (describing SDR (a-CDR) grafting); Padlan, Mol Immunol 28, 489-498 (1991) (describing "resurfacing"); Dall'Acqua et al., Methods 36, 43-60 (2005) (describing "FR shuffling"); and Osbourn et al., Methods 36, 61-68 (2005) and Klimka et al., Br J Cancer 83, 252-260 (2000). (describing a "guided selection" approach to FR shuffling). Certain immunoglobulins according to the invention are human immunoglobulins. Human antibodies and human variable regions can be produced using a variety of techniques known in the art.Human antibodies are generally described in van Dijk and van de Winkel, Curr Opin Pharmacol. 5, 368-74 (2001) and Lonberg, Curr Opin Immunol 20, 450-459 (2008). Human variable regions can form part of human monoclonal antibodies produced by hybridoma technology and can be obtained from such antibodies (see, e.g., Monoclonal Antibody Production Techniques and Applications, pp. 51-63 (Marcel Dekker, Inc., New York, 1987)). Human antibodies and human variable regions can also be prepared by administering an immunogen to transgenic animals that have been modified to produce intact human antibodies or intact antibodies with human variable regions in response to antigen challenge (see, e.g., Lonberg, Nat Biotech 23, 1117-1125 (2005)). Human antibodies and human variable regions can also be produced by isolating Fv clone variable region sequences selected from human-derived phage display libraries (see, e.g., Hoogenboom et al. in Methods in Molecular Biology 178, 1-37 (O'Brien et al., ed., Human Press, Totowa, NJ, 2001); and McCafferty et al., Nature 348, 552-554; Clackson et al., Nature 352, 624-628 (1991)). Phage typically display antibody fragments as single-chain Fv (scFv) fragments or as Fab fragments.
[0201] In certain embodiments, the antigen-binding domain contained in the bispecific agonist CD28 antigen-binding molecule is engineered to enhance binding affinity, for example, according to the methods disclosed in PCT Application WO 2012 / 020006 (see Examples regarding affinity maturation) or US 2004 / 0132066. The binding ability of the antigen-binding molecule of the present invention to a specific antigenic determinant can be measured by enzyme-linked immunosorbent assay (ELISA) or other techniques well known to those skilled in the art, such as surface plasmon resonance technology (Liljeblad, et al., Glyco J 17, 323-329 (2000)) and classical binding assays (Heeley, Endocr Res 28, 217-229 (2002)). Competitive assays can be used to identify antigen-binding molecules that compete with a reference antibody for binding to a specific antigen. In certain embodiments, such a competitor antigen-binding molecule binds to the same epitope (e.g., a linear epitope or a conformational epitope) bound by the reference antigen-binding molecule. Detailed exemplary methods for mapping epitopes bound by antigen-binding molecules are provided in Morris (1996) "Epitope Mapping Protocols," in Methods in Molecular Biology, vol. 66 (Humana Press, Totowa, NJ). In an exemplary competitive assay, an immobilized antigen is incubated in a solution containing a first labeled antigen-binding molecule that binds to the antigen and a second unlabeled antigen-binding molecule that is being tested for its ability to compete with the first antigen-binding molecule for binding to the antigen. The second antigen-binding molecule may be present in hybridoma supernatant. As a control, the immobilized antigen is incubated in a solution containing the first labeled antigen-binding molecule but not the second unlabeled antigen-binding molecule. After incubation under conditions that allow the first antibody to bind to the antigen, excess unbound antibody is removed and the amount of label associated with the immobilized antigen is measured. If the amount of label bound to the immobilized antigen is substantially reduced in the test sample compared to the control sample, this indicates that the second antigen-binding molecule competes with the first antigen-binding molecule for binding to the antigen.See Harlow and Lane (1988) Antibodies: A Laboratory Manual ch. 14 (Cold Spring Harbor Laboratory, Cold Spring Harbor, NY).
[0202] The bispecific agonist CD28 antigen-binding molecules of the present invention prepared as described herein can be purified by techniques well known in the art, such as high-performance liquid chromatography, ion exchange chromatography, gel electrophoresis, affinity chromatography, and size-exclusion chromatography. The actual conditions used to purify a particular protein will depend in part on factors such as net charge, hydrophobicity, hydrophilicity, and the like, and will be apparent to those skilled in the art. For affinity chromatography purification, an antibody, ligand, receptor, or antigen to which the antigen-binding molecule binds can be used. For example, a matrix containing protein A or protein G can be used to affinity purify the antigen-binding molecules of the present invention. Sequential protein A or G affinity chromatography and size-exclusion chromatography can be used to isolate the antigen-binding molecule, essentially as described in the Examples. The purity of the CD28 antigen-binding molecule or a fragment thereof can be measured by any of a variety of well-known analytical techniques, including gel electrophoresis, high-pressure liquid chromatography, and the like. For example, the CD28 antigen-binding molecules expressed as described in the Examples were shown to be intact and properly assembled, as shown by reducing and non-reducing SDS-PAGE.
[0203] Assay The physical / chemical properties and / or biological activities of the bispecific agonist CD28 antigen binding molecules provided herein can be identified, screened, or characterized by various assays known in the art.
[0204] 1. Affinity Assay The affinity of the antigen-binding molecules provided herein for their corresponding targets can be determined by surface plasmon resonance (SPR) using standard instruments such as a Proteon instrument (Bio-Rad) and receptor or target proteins, such as those obtainable by recombinant expression, according to the methods described in the Examples. The affinity of TNF family ligand-containing antigen-binding molecules for target cell antigens can also be measured by surface plasmon resonance (SPR) using standard instruments such as a Proteon instrument (Bio-Rad) and receptor or target proteins, for example, obtainable by recombinant expression. In one embodiment, K D is measured by surface plasmon resonance at 25°C using a Proteon® instrument (Bio-Rad).
[0205] 2. Binding Assays and Other Assays The binding of the bispecific antigen-binding molecules provided herein to cells expressing the corresponding receptor can be assessed, for example, by flow cytometry (FACS) using cell lines expressing the specific receptor or target antigen. In one embodiment, CHO cells expressing human CD28 (parent cell line CHO-k1 ATCC#CCL-61 modified to stably overexpress human CD28) are used in binding assays.
[0206] In a further embodiment, a cancer cell line expressing EpCAM was used to demonstrate binding of the bispecific antigen-binding molecule to this target cell antigen.
[0207] 3. Activity Assay In one embodiment, an assay is provided for identifying CD28 antigen-binding molecules with biological activity. Biological activity can include, for example, T cell proliferation and cytokine secretion, or tumor cell killing, as measured by the method described in Example 2. Antigen-binding molecules with such biological activity in vivo and / or in vitro are also provided.
[0208] Pharmaceutical Compositions, Formulations, and Routes of Administration In a further aspect, the present invention provides pharmaceutical compositions comprising any of the bispecific agonist CD28 antigen binding molecules provided herein, for example, for use in any of the following therapeutic methods. In one embodiment, the pharmaceutical composition comprises a bispecific agonist CD28 antigen binding molecule provided herein and at least one pharmaceutically acceptable excipient. In another aspect, the pharmaceutical composition comprises any of the bispecific agonist CD28 antigen binding molecules provided herein and at least one additional therapeutic agent, for example, as described below.
[0209] The pharmaceutical compositions of the present invention comprise a therapeutically effective amount of one or more bispecific antigen-binding molecules dissolved or dispersed in a pharmaceutically acceptable excipient. The phrase "pharmaceutically acceptable or pharmacologically acceptable" refers to molecular entities and compositions that are generally non-toxic to recipients at the dosages and concentrations employed, i.e., do not produce adverse, allergic, or other untoward reactions when administered to animals, such as humans, as needed. The preparation of pharmaceutical compositions containing at least one bispecific agonist CD28 antigen-binding molecule and, optionally, additional active ingredients, will be known to those skilled in the art in light of the present disclosure, as exemplified by Remington's Pharmaceutical Sciences, 18th Ed., Mack Printing Company, 1990, incorporated herein by reference. In particular, the compositions are lyophilized formulations or aqueous solutions. As used herein, "pharmaceutically acceptable excipients" includes any and all solvents, buffers, dispersion media, coatings, surfactants, antioxidants, preservatives (e.g., antibacterial agents, antifungal agents), isotonicity agents, salts, stabilizers, and combinations thereof, as would be known to one of skill in the art.
[0210] Parenteral compositions include those designed for administration by injection, for example, subcutaneous, intradermal, intralesional, intravenous, intraarterial, intramuscular, intrathecal, or intraperitoneal injection. For injection, the TNF family ligand trimeric-containing antigen-binding molecule of the present invention may be formulated in an aqueous solution, preferably in a physiologically compatible buffer, such as Hanks' solution, Ringer's solution, or physiological saline buffer. The solution may contain formulating agents such as suspending agents, stabilizers, and / or dispersing agents. Alternatively, the bispecific agonist CD28 antigen-binding molecule may be in powder form for constitution with a suitable vehicle, such as pyrogen-free water, before use. Sterile injectable solutions are prepared by incorporating the fusion protein of the present invention in the required amount in an appropriate solvent, along with various other ingredients, as listed below, as needed. Sterilization can be easily accomplished, for example, by filtration through a sterile filtration membrane. Generally, dispersions are prepared by incorporating the various sterilized active ingredients into a sterile vehicle containing the basic dispersion medium and / or other ingredients. In the case of sterile powders for preparing sterile injectable solutions, suspensions, or emulsions, the preferred preparation method is vacuum drying or freeze-drying techniques, which yield a powder of the active ingredient and any additional desired ingredients from a previously sterile-filtered liquid medium. The liquid medium should be appropriately buffered, if necessary, and the liquid diluent should first be rendered isotonic with sufficient saline or glucose prior to injection. The composition must be stable under the conditions of manufacture and storage and must be preserved against the contaminating action of microorganisms, such as bacteria and fungi. It is understood that endotoxin contamination should be kept to a minimum at a safe level, e.g., less than 0.5 ng / mg protein.Suitable pharmaceutically acceptable additives include, but are not limited to, buffers such as phosphate, citrate, and other organic acids; antioxidants including ascorbic acid and methionine; preservatives (e.g., octadecyldimethylbenzylammonium chloride; hexamethonium chloride; benzalkonium chloride, benzethonium chloride, phenol, butyl, or benzyl alcohol; alkyl parabens, such as methyl or propyl paraben; catechol; resorcinol; cyclohexanol; 3-pentanol; and m-cresol); low molecular weight (less than about 10 residues) polypeptides; proteins Examples of suitable suspensions include: substances such as serum albumin, gelatin, or immunoglobulins; hydrophilic polymers such as polyvinylpyrrolidone; amino acids such as glycine, glutamine, asparagine, histidine, arginine, or lysine; monosaccharides, disaccharides, and other carbohydrates, including glucose, mannose, or dextrin; chelating agents such as EDTA; sugars such as sucrose, mannitol, trehalose, or sorbitol; salt-forming counterions, such as sodium; metal complexes (e.g., Zn-protein complexes); and / or non-ionic surfactants such as polyethylene glycol (PEG). Aqueous injection suspensions may contain compounds that increase the viscosity of the suspension (e.g., sodium carboxymethylcellulose, sorbitol, dextran, etc.). Optionally, the suspension may also contain suitable stabilizers or agents that increase the solubility of the compounds to allow for the preparation of highly concentrated solutions. Additionally, suspensions of the active compounds may be prepared as appropriate oily injection suspensions. Suitable lipophilic solvents or vehicles include fatty oils such as sesame oil, or synthetic fatty acid esters, such as ethyl oleate or triglycerides, or liposomes.
[0211] The active ingredient may be encapsulated in colloidal drug delivery systems (e.g., liposomes, albumin microspheres, microemulsions, nanoparticles, and nanocapsules) or macroemulsions, or in microcapsules prepared, for example, by coacervation or interfacial polymerization, such as hydroxymethylcellulose or gelatin microcapsules and poly(methyl methacrylate) microcapsules, respectively. Such techniques are disclosed in Remington's Pharmaceutical Sciences (18th Ed. Mack Printing Company, 1990). Sustained-release preparations may also be prepared. Suitable examples of sustained-release formulations include semipermeable matrices of solid hydrophobic polymers containing the polypeptide, which matrices are in the form of shaped articles, for example, films or microcapsules. In certain embodiments, sustained absorption of injectable compositions may be achieved by using agents delaying absorption in the compositions (e.g., aluminum monostearate, gelatin, or combinations thereof). Exemplary pharmaceutically acceptable excipients of the present invention further include interstitial drug dispersing agents, such as soluble neutral-active hyaluronidase glycoproteins (sHASEGPs), e.g., human soluble PH-20 hyaluronidase glycoproteins, e.g., rHuPH20 (HYLENEX®, Baxter International, Inc.). Certain exemplary sHASEGPs, including rHuPH20, and methods of use are described in U.S. Patent Application Publication Nos. 2005 / 0260186 and 2006 / 0104968. In one embodiment, a sHASEGP is combined with one or more additional glycosaminoglycanases (e.g., chondroitinases). Exemplary lyophilized antibody formulations are described in U.S. Patent No. 6,267,958. Aqueous antibody formulations include those described in U.S. Patent No. 6,171,586 and WO 2006 / 044908, the latter of which contains a histidine-acetate buffer. In addition to the compositions described above, bispecific agonist CD28 antigen-binding molecules can also be formulated as depot preparations.Such sustained-release preparations can be administered by implantation (e.g., subcutaneously or intramuscularly) or intramuscular injection. Thus, for example, the bispecific agonist CD28 antigen-binding molecule can be formulated with suitable polymeric or hydrophobic materials (e.g., as an emulsion in an acceptable oil) or ion exchange resins, or as sparingly soluble derivatives, for example, as a sparingly soluble salt.
[0212] Pharmaceutical compositions containing the bispecific agonist CD28 antigen-binding molecules of the present invention can be prepared by conventional mixing, dissolving, emulsifying, encapsulating, entrapping, or lyophilizing processes. Pharmaceutical compositions may be formulated in a conventional manner using one or more physiologically acceptable carriers, diluents, additives, or adjuvants that facilitate processing of proteins into pharmaceutically usable preparations. The appropriate formulation depends on the selected route of administration. The bispecific agonist CD28 antigen-binding molecules of the present invention can be formulated into the composition in free acid or base, neutral, or salt form. Pharmaceutically acceptable salts are salts that substantially retain the biological activity of the free acid or base. Pharmaceutically acceptable salts include acid addition salts, for example, formed with free amino groups of a proteinaceous composition, or formed with inorganic acids such as hydrochloric acid or phosphoric acid, or formed with organic acids such as acetic acid, oxalic acid, tartaric acid, or mandelic acid. Salts formed with free carboxyl groups can also be derived from inorganic bases such as sodium, potassium, ammonium, calcium, or ferric hydroxide; or organic bases such as isopropylamine, trimethylamine, histidine, or procaine. Pharmaceutical salts tend to be more soluble in aqueous and other protic solvents than the corresponding free base forms. The compositions of the present invention may contain more than one active ingredient as needed for the particular indication being treated, preferably those with complementary activities that do not adversely affect each other. Such active ingredients are preferably present in combination in amounts effective for the intended purpose. Formulations used for in vivo administration are generally sterile. Sterilization can be easily accomplished, for example, by filtration through sterile filtration membranes.
[0213] Therapeutic methods and compositions Any of the bispecific agonist CD28 antigen binding molecules provided herein can be used alone or in combination in therapeutic methods.
[0214] In one aspect, a bispecific agonist CD28 antigen binding molecule is provided for use as a pharmaceutical. In a further aspect, a bispecific agonist CD28 antigen binding molecule is provided for use in the treatment of cancer. In a specific aspect, a bispecific agonist CD28 antigen binding molecule is provided for use in a method of treatment. In a specific aspect, provided herein is a bispecific agonist CD28 antigen binding molecule for use in a method of treating an individual with cancer, the method comprising administering an effective amount of a superagonist CD28 antigen binding molecule to the individual. In one such embodiment, the method further comprises administering an effective amount of at least one additional therapeutic agent to the individual.
[0215] In one embodiment, the bispecific agonist CD28 antigen binding molecule is for use in inhibiting the growth of EpCAM-expressing cancer cells. Thus, in a specific embodiment, the bispecific agonist CD28 antigen binding molecule is for use in treating cancers that express EpCAM. Such EpCAM-expressing cancers include, for example, breast cancer, lung cancer, stomach cancer, prostate cancer, ovarian cancer, colorectal cancer, colon cancer, esophageal cancer, tracheal cancer, gastric cancer, bladder cancer, uterine cancer, rectal cancer, or small intestine cancer, pancreatic cancer, or other epithelial cancers, or metastases associated therewith. In a specific embodiment, the EpCAM-expressing cancer is an epithelial cancer or squamous cell carcinoma. In another aspect, the EpCAM-expressing cancer is selected from breast cancer, lung cancer, stomach cancer, prostate cancer, ovarian cancer, colorectal cancer, colon cancer, esophageal cancer, tracheal cancer, gastric cancer, bladder cancer, uterine cancer, rectal cancer, pancreatic cancer, or small intestine cancer.
[0216] In certain aspects, bispecific agonist CD28 antigen-binding molecules are provided for use in methods of treatment. In certain aspects, provided herein are bispecific agonist CD28 antigen-binding molecules for use in methods of treating an individual with cancer, the method comprising administering to the individual an effective amount of a superagonist CD28 antigen-binding molecule. In another aspect, provided are bispecific agonist CD28 antigen-binding molecules for use in methods of treating an individual with an EpCAM-expressing cancer, particularly an epithelial or squamous cell cancer, or a cancer selected from breast cancer, lung cancer, stomach cancer, prostate cancer, ovarian cancer, colorectal cancer, colon cancer, esophageal cancer, tracheal cancer, gastric cancer, bladder cancer, uterine cancer, rectal cancer, pancreatic cancer, or small intestine cancer, the method comprising administering to the individual an effective amount of the bispecific agonist CD28 antigen-binding molecule. In one such embodiment, the method further comprises administering to the individual an effective amount of at least one additional therapeutic agent.
[0217] In a further aspect, provided herein is the use of a bispecific agonist CD28 antigen binding molecule described herein in the manufacture or preparation of a medicament. In one embodiment, the medicament is for the treatment of cancer, particularly cancers that express EpCAM. In a further aspect, the medicament is for use in a method of treating cancer, comprising administering an effective amount of the medicament to an individual with cancer. In one such embodiment, the method further comprises administering to the individual an effective amount of at least one additional therapeutic agent, such as those described below. In another aspect, the medicament is for the treatment of cancer, particularly cancers that express EpCAM. In a further aspect, the medicament is for use in a method of treating cancer, particularly cancers that express EpCAM, comprising administering an effective amount of the medicament to an individual with cancer. In a further aspect, provided herein is a method for treating cancer, particularly cancers that express EpCAM. In one aspect, the method comprises administering to an individual with cancer an effective amount of the bispecific agonist CD28 antigen binding molecule. In one such embodiment, the method further comprises administering to the individual an effective amount of at least one additional therapeutic agent, as described below. An "individual" according to any of the above embodiments may be a human.
[0218] In a further aspect, provided herein is a pharmaceutical formulation comprising any of the bispecific agonist CD28 antigen binding molecules reported herein, for example, for use in any of the above-described therapeutic methods. In one aspect, the pharmaceutical formulation comprises any of the bispecific agonist CD28 antigen binding molecules described herein and a pharmaceutically acceptable carrier. In another aspect, the pharmaceutical formulation comprises any of the bispecific agonist CD28 antigen binding molecules described herein and at least one additional therapeutic agent.
[0219] The bispecific agonist CD28 antigen-binding molecules described herein can be used for treatment alone or in combination with other drugs. For example, the bispecific agonist CD28 antigen-binding molecules described herein can be co-administered with at least one additional therapeutic agent. Thus, bispecific agonist CD28 antigen-binding molecules described herein are provided for use in cancer immunotherapy. In certain embodiments, bispecific agonist CD28 antigen-binding molecules are provided for use in cancer immunotherapy methods. The "individual" according to any of the above aspects is preferably a human.
[0220] Such combination therapy as described above encompasses combined administration (two or more therapeutic agents in the same or separate formulations) and separate administration, where administration of the antibodies described herein can occur before, simultaneously with, and / or after administration of the additional therapeutic agent(s). In one embodiment, administration of the bispecific agonist CD28 antigen binding molecule and administration of the additional therapeutic agent(s) occur within about 1 month, or within about 1, 2, or 3 weeks, or within about 1, 2, 3, 4, 5, or 6 days of each other.
[0221] The antigen-binding molecules reported herein (and any additional therapeutic agents) can be administered by any suitable means, including parenteral, intrapulmonary, and intranasal administration, and, if desired for localized treatment, intralesional administration. Parenteral administration includes intramuscular, intravenous, intraarterial, intraperitoneal, or subcutaneous administration. Dosing can be by any suitable route, for example, injection, such as intravenous or subcutaneous injection, depending in part on whether the administration is short-term or long-term. Various dosing schedules are contemplated herein, including, but not limited to, a single dose or multiple doses over various time periods, a bolus dose, and pulse infusion.
[0222] The bispecific agonist CD28 antigen-binding molecules described herein can be formulated, dosed, and administered in a manner consistent with good medical practice. Factors to consider in this regard include the particular disease being treated, the particular mammal being treated, the clinical condition of the individual patient, the cause of the disease, the site of drug delivery, the method of administration, the administration schedule, and other factors known to medical professionals. The bispecific agonist CD28 antigen-binding molecules are optionally, but not necessarily, formulated with one or more drugs used concomitantly to prevent or treat the disorder in question. The effective amount of such other drugs will depend on the amount of antibody present in the formulation, the type of disorder or treatment, and other factors discussed above. Such other drugs will generally be used in the same dosages and via the same routes of administration as described herein, or at about 1 to 99% of the dosages described herein, or at any dosage and via any route determined empirically / clinically to be appropriate.
[0223] The appropriate dosage of the bispecific agonist CD28 antigen-binding molecules described herein for the prevention or treatment of disease (when used alone or in combination with one or more other additional therapeutic agents) will be determined by the type of disease being treated, the type of antibody, the severity and course of the disease, whether the antibody is being administered for prophylactic or therapeutic purposes, previous treatments, the patient's medical history, response to the antibody, and the discretion of the attending physician. The bispecific agonist CD28 antigen-binding molecule is suitably administered to a patient at one time or over a series of treatments. Depending on the type and severity of the disease, for example, about 1 μg / kg to 15 mg / kg (e.g., 0.5 mg / kg to 10 mg / kg) of the bispecific agonist CD28 antigen-binding molecule may be an initial candidate dosage for administration to a patient, whether administered as one or more individual doses or via continuous infusion. Depending on the above factors, a typical daily dosage may range from about 1 μg / kg to 100 mg / kg or more. For repeated administrations over several days or longer, treatment is typically continued until a desired suppression of disease symptoms occurs, depending on the condition. One exemplary dosage of antibody would be in the range of about 0.05 mg / kg to about 10 mg / kg. Thus, one or more doses of about 0.5 mg / kg, 2.0 mg / kg, 4.0 mg / kg, or 10 mg / kg (or any combination thereof) may be administered to the patient. Such doses may be administered intermittently, for example, weekly or every three weeks (e.g., so that the patient receives from about two to about twenty, or for example, about six, doses of the antibody). An initial higher loading dose, followed by one or more lower doses, may be administered. However, other dosage regimens may be useful. The progress of this therapy is easily monitored by conventional techniques and assays.
[0224] Other Medications and Treatments As mentioned above, the bispecific agonist CD28 antigen binding molecules of the present invention may be administered in combination with one or more other agents. For example, the antigen binding molecules of the present invention may be co-administered with at least one additional therapeutic agent. The term "therapeutic agent" encompasses any agent that can be administered to treat a condition or disease in an individual in need of such treatment. Such additional therapeutic agents may include any active ingredients suitable for the particular indication being treated, preferably those with complementary activities that do not adversely affect each other. In certain embodiments, the additional therapeutic agent is another anti-cancer agent, such as a microtubule-disrupting agent, antimetabolite, topoisomerase inhibitor, DNA intercalator, alkylating agent, hormone therapy, kinase inhibitor, receptor antagonist, activator of tumor cell apoptosis, or anti-angiogenic agent. In certain aspects, the additional therapeutic agent is an immunomodulator, a cytostatic agent, an inhibitor of cell adhesion, a cytotoxic or cytostatic agent, an activator of cell apoptosis, or an agent that sensitizes cells to apoptosis-inducing factors.
[0225] Thus, there is provided a bispecific agonist CD28 antigen binding molecule of the invention or a pharmaceutical composition comprising same for use in the treatment of cancer, wherein the bispecific antigen binding molecule is administered in combination with chemotherapeutic agents, radiation and / or other agents for use in cancer immunotherapy.
[0226] Such other agents are suitably present in combination in amounts effective for the intended purpose. The effective amount of such other agents depends on the amount of fusion protein used, the type of disorder or treatment, and other factors discussed above. The bispecific antigen-binding molecules or antibodies of the present invention are typically used at the same doses and by any route of administration described herein, or at 1-99% of the doses described herein, or at any dose and by any route determined experimentally / clinically appropriate. Such combination therapy as described above encompasses combined administration (where two or more therapeutic agents are included in the same or separate compositions) and single administration (where administration of the bispecific antigen-binding molecules or antibodies of the present invention can occur before, simultaneously with, and / or after administration of an additional therapeutic agent and / or adjuvant).
[0227] In a further aspect, a bispecific agonist CD28 antigen binding molecule as described herein above is provided for use in the treatment of cancer, particularly cancers that express EpCAM, wherein the bispecific agonist CD28 antigen binding molecule is administered in combination with another immunomodulatory agent. The term "immunomodulator" refers to any substance, including monoclonal antibodies, that affects the immune system. The molecules of the present invention can be considered immunomodulatory agents. Immunomodulatory agents can be used as anti-tumor agents for the treatment of cancer. In one aspect, immunomodulatory agents include anti-CTLA4 antibodies (e.g., ipilimumab), anti-PD1 antibodies (e.g., nivolumab or pembrolizumab), PD-L1 antibodies (e.g., atezolizumab, avelumab, or durvalumab), OX-40 antibodies, 4-1BB antibodies, and GITR antibodies. Such combination therapy as described above encompasses combined administration (wherein the two or more therapeutic agents are contained in the same or separate compositions) and separate administration, where administration of the bispecific antigen-binding molecule may occur before, simultaneously with, and / or after administration of the additional therapeutic agent(s) and / or adjuvant.
[0228] T cell bispecific combinations In one embodiment, the bispecific agonist CD28 antigen binding molecules of the invention may be administered in combination with a T cell-activating anti-CD3 bispecific antibody specific for a T cell epitope such as a tumor-associated antigen, e.g., carcinoembryonic antigen (CEA), or an antigen of the human major histocompatibility complex class I (MHC I), e.g., human leukocyte antigen G (HLA-G), or HLA-A2 / MAGE-A4.
[0229] In a particular embodiment, the anti-CD3 bispecific antibody for use in the combination comprises a heavy chain variable region (VH1) comprising the CDR-H1 sequence of SEQ ID NO: 149, the CDR-H2 sequence of SEQ ID NO: 150, and the CDR-H3 sequence of SEQ ID NO: 151. H a light chain variable region (V) comprising the CDR-L1 sequence of SEQ ID NO: 152, the CDR-L2 sequence of SEQ ID NO: 153, and the CDR-L3 sequence of SEQ ID NO: 154; LMore particularly, the anti-CD3 bispecific comprises a first antigen-binding domain comprising a heavy chain variable region (V) that is at least 90%, 95%, 96%, 97%, 98%, or 99% identical to the amino acid sequence of SEQ ID NO: 155. H CD3), and / or a light chain variable region (V) that is at least 90%, 95%, 96%, 97%, 98%, or 99% identical to the amino acid sequence of SEQ ID NO: 156. L In a further embodiment, the anti-CD3 bispecific antibody comprises a first antigen-binding domain comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 155. H CD3), and / or a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 156 L CD3).
[0230] In another aspect, the anti-CD3 bispecific antibody for use in the combination comprises a heavy chain variable region (VH1) comprising the CDR-H1 sequence of SEQ ID NO: 170, the CDR-H2 sequence of SEQ ID NO: 171 and the CDR-H3 sequence of SEQ ID NO: 172. H a light chain variable region (V) comprising the CDR-L1 sequence of SEQ ID NO: 173, the CDR-L2 sequence of SEQ ID NO: 174, and the CDR-L3 sequence of SEQ ID NO: 175; L More particularly, the anti-CD3 bispecific comprises a first antigen-binding domain comprising a heavy chain variable region (V) that is at least 90%, 95%, 96%, 97%, 98% or 99% identical to the amino acid sequence of SEQ ID NO: 176. H CD3), and / or a light chain variable region (V) that is at least 90%, 95%, 96%, 97%, 98%, or 99% identical to the amino acid sequence of SEQ ID NO: 177. L In a further embodiment, the anti-CD3 bispecific antibody comprises a first antigen-binding domain comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 176. H CD3), and / or a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 177 L CD3).
[0231] In another aspect, the anti-CD3 bispecific antibody for use in the combination comprises a heavy chain variable region (VH1) comprising the CDR-H1 sequence of SEQ ID NO: 178, the CDR-H2 sequence of SEQ ID NO: 179 and the CDR-H3 sequence of SEQ ID NO: 180. H a light chain variable region (V) comprising the CDR-L1 sequence of SEQ ID NO: 181, the CDR-L2 sequence of SEQ ID NO: 182, and the CDR-L3 sequence of SEQ ID NO: 183; L More particularly, the anti-CD3 bispecific comprises a first antigen-binding domain comprising a heavy chain variable region (V) that is at least 90%, 95%, 96%, 97%, 98% or 99% identical to the amino acid sequence of SEQ ID NO: 184. H CD3), and / or a light chain variable region (V) that is at least 90%, 95%, 96%, 97%, 98%, or 99% identical to the amino acid sequence of SEQ ID NO: 185. L In a further embodiment, the anti-CD3 bispecific antibody comprises a first antigen-binding domain comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 184. H CD3), and / or a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 185 L CD3).
[0232] In another aspect, the anti-CD3 bispecific antibody for use in the combination comprises a heavy chain variable region (VH1) comprising the CDR-H1 sequence of SEQ ID NO: 277, the CDR-H2 sequence of SEQ ID NO: 278 and the CDR-H3 sequence of SEQ ID NO: 279. H and / or a light chain variable region (V) comprising the CDR-L1 sequence of SEQ ID NO: 280, the CDR-L2 sequence of SEQ ID NO: 281, and the CDR-L3 sequence of SEQ ID NO: 282. L More particularly, the anti-CD3 bispecific comprises a first antigen-binding domain comprising a heavy chain variable region (V) that is at least 90%, 95%, 96%, 97%, 98% or 99% identical to the amino acid sequence of SEQ ID NO: 283. H CD3), and / or a light chain variable region (V) that is at least 90%, 95%, 96%, 97%, 98%, or 99% identical to the amino acid sequence of SEQ ID NO: 284. LIn a further embodiment, the anti-CD3 bispecific antibody comprises a first antigen-binding domain comprising a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 283. H CD3), and / or a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 284 L CD3).
[0233] In one embodiment, the T cell-activating anti-CD3 bispecific antibody specific for a tumor-associated antigen is an anti-CEA / anti-CD3 bispecific antibody. In one embodiment, a bispecific agonist CD28 antigen-binding molecule comprising at least one antigen-binding domain capable of specific binding to EpCAM is suitable for administration in combination with an anti-CEA / anti-CD3 bispecific antibody.
[0234] In one particular aspect, the anti-CEA / anti-CD3 bispecific antibody comprises a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 157, a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 158, a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 159, and a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 160. In a further particular embodiment, the bispecific antibody comprises the polypeptide sequence of SEQ ID NO: 157, the polypeptide sequence of SEQ ID NO: 158, the polypeptide sequence of SEQ ID NO: 159 and the polypeptide sequence of SEQ ID NO: 160 (CEA CD3 TCB).
[0235] In another aspect, the anti-CEA / anti-CD3 bispecific antibody comprises a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 161, a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 162, a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 163, and a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 164. In a further particular embodiment, the bispecific antibody comprises the polypeptide sequence of SEQ ID NO: 161, the polypeptide sequence of SEQ ID NO: 162, the polypeptide sequence of SEQ ID NO: 163 and the polypeptide sequence of SEQ ID NO: 164 (CEACAM5 CD3 TCB).
[0236] Certain bispecific antibodies are further described in PCT Application WO 2014 / 131712 A1. In a further aspect, the anti-CEA / anti-CD3 bispecific antibody may also comprise a bispecific T cell engager (BiTE®). In a further aspect, the anti-CEA / anti-CD3 bispecific antibody is a bispecific antibody described in WO 2007 / 071426 or WO 2014 / 131712.
[0237] In one embodiment, the T cell-activating anti-CD3 bispecific antibody is specific for an antigen of the human major histocompatibility complex class I (MHC I), e.g., an anti-HLA-G / anti-CD3 bispecific antibody. In one embodiment, a bispecific agonist CD28 antigen binding molecule comprising at least one antigen-binding domain capable of specific binding to EpCAM is suitable for administration in combination with an anti-HLA-G / anti-CD3 bispecific antibody.
[0238] In one embodiment, the anti-CD3 bispecific antibody comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 291. H HLA-G), and / or a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 292 LIn one particular embodiment, the anti-HLA-G / anti-CD3 bispecific antibody comprises a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 293, a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 294, two polypeptides at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 295, and a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 296. In a further particular embodiment, the bispecific antibody comprises the polypeptide sequence of SEQ ID NO: 293, the polypeptide sequence of SEQ ID NO: 294, two polypeptide sequences of SEQ ID NO: 295 and the polypeptide sequence of SEQ ID NO: 296 (HLA-G TCB).
[0239] In one embodiment, the T cell activating anti-CD3 bispecific antibody is specific for a T cell epitope such as HLA-A2 / MAGE-A4, e.g., an anti-MAGE-A4 / anti-CD3 bispecific antibody. In one embodiment, a bispecific agonist CD28 antigen binding molecule comprising at least one antigen-binding domain capable of specific binding to EpCAM is suitable for administration in combination with an anti-MAGE-A4 / anti-CD3 bispecific antibody.
[0240] In one embodiment, the anti-CD3 bispecific antibody comprises a heavy chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 303. H MAGE-A4), and / or a light chain variable region (V) comprising the amino acid sequence of SEQ ID NO: 304 LIn one particular aspect, the anti-MAGE-A4 / anti-CD3 bispecific antibody comprises a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 305, a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 306, two polypeptides at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 307, and a polypeptide at least 95%, 96%, 97%, 98% or 99% identical to the sequence of SEQ ID NO: 308. In a further particular aspect, the bispecific antibody comprises the polypeptide sequence of SEQ ID NO: 305, the polypeptide sequence of SEQ ID NO: 306, two polypeptides of SEQ ID NO: 307 and the polypeptide sequence of SEQ ID NO: 308 (MAGE-A4 TCB).
[0241] In one embodiment, the antibody that specifically binds to CD3 is a full-length antibody. In one embodiment, the antibody that specifically binds to CD3 is an antibody of the human IgG class, particularly an antibody of the human IgG1 class. In one embodiment, the antibody that specifically binds to CD3 is an antibody fragment, particularly a Fab molecule or an scFv molecule, more particularly a Fab molecule. In a particular embodiment, the antibody that specifically binds to CD3 is a crossover Fab molecule in which the variable or constant domains of the Fab heavy chain and the Fab light chain are exchanged (i.e., replaced with each other). In one embodiment, the antibody that specifically binds to CD3 is a humanized antibody.
[0242] In another aspect, a combination product is provided comprising a bispecific agonist CD28 antigen-binding molecule as described herein and a T cell-activating anti-CD3 bispecific antibody. In one aspect, the T cell-activating anti-CD3 bispecific antibody specific for a tumor-associated antigen is an anti-CEA / anti-CD3 bispecific antibody. In one aspect, the T cell-activating anti-CD3 bispecific antibody specific for a tumor-associated antigen is an anti-HLA-G / anti-CD3 bispecific antibody. In one aspect, the T cell-activating anti-CD3 bispecific antibody specific for a tumor-associated antigen is an anti-MAGE-A4 / anti-CD3 bispecific antibody.
[0243] Combination with agents that block PD-L1 / PD-1 interactions In one aspect, the bispecific agonist CD28 antigen binding molecules of the invention may be administered in combination with an agent that blocks the PD-L1 / PD-1 interaction, such as a PD-L1 binding antagonist or a PD-1 binding antagonist, in particular an anti-PD-L1 antibody or an anti-PD-1 antibody.
[0244] In one aspect, the agent that blocks the PD-L1 / PD-1 interaction is an anti-PD-L1 antibody. The term "PD-L1," also known as CD274 or B7-H1, refers to any native PD-L1 (particularly "human PD-L1") from any vertebrate source, including mammals such as primates (e.g., humans), non-human primates (e.g., cynomolgus monkeys), and rodents (e.g., mice and rats). The amino acid sequence of fully human PD-L1 is set forth in UniProt (www.uniprot.org) Accession No. Q9NZQ7 (SEQ ID NO: 186). The term "PD-L1 binding antagonist" refers to a molecule that reduces, blocks, inhibits, eliminates, or prevents signaling resulting from the interaction of PD-L1 with any one or more of its binding partners, e.g., PD-1, B7-1. In some aspects, a PD-L1 binding antagonist is a molecule that inhibits the binding of PD-L1 to its binding partners. In specific embodiments, the PD-L1 binding antagonist inhibits the binding of PD-L1 to PD-1 and / or B7-1. In some embodiments, PD-L1 binding antagonists include anti-PD-L1 antibodies, antigen-binding fragments thereof, immunoadhesins, fusion proteins, oligopeptides, and other molecules that reduce, block, inhibit, abrogate, or interfere with signaling resulting from the interaction of PD-L1 with one or more of its binding partners, such as PD-1 or B7-1. In one embodiment, the PD-L1 binding antagonist reduces negative costimulatory signals mediated by or through cell surface proteins expressed on T lymphocytes via signaling through PD-L1, such that dysfunctional T cells are not dysfunctional (e.g., enhance effector responses to antigen recognition). In particular, the PD-L1 binding antagonist is an anti-PD-L1 antibody. The terms "anti-PD-L1 antibody," or "antibody that binds to human PD-L1," or "antibody that specifically binds to human PD-L1," or "agonist anti-PD-L1" refer to antibodies that bind to human PD-L1 in a concentration of 1.0 x 10 -8 KD value of 1.0×10 mol / l or less, in one embodiment, 1.0×10 -9 K in mol / l or less D"PD-L1" refers to an antibody that specifically binds to the human PD-L1 antigen with a binding affinity of 0.01%. Binding affinity is measured using standard binding assays, such as surface plasmon resonance technology (BIAcore®, GE-Healthcare Uppsala, Sweden). In certain aspects, the agent that blocks the PD-L1 / PD-1 interaction is an anti-PD-L1 antibody. In a specific aspect, the anti-PD-L1 antibody is selected from the group consisting of atezolizumab (MPDL3280A, RG7446), durvalumab (MEDI4736), avelumab (MSB0010718C), and MDX-1105. In a specific aspect, the anti-PD-L1 antibody is YW243.55.S70, as described herein. In another specific aspect, the anti-PD-L1 antibody is MDX-1105, as described herein. In yet another specific embodiment, the anti-PD-L1 antibody is MEDI4736 (durvalumab). In a still further embodiment, the anti-PD-L1 antibody is MSB0010718C (avelumab). More particularly, the agent that blocks the PD-L1 / PD-1 interaction is atezolizumab (MPDL3280A). In another embodiment, the agent that blocks the PD-L1 / PD-1 interaction is an anti-PD-L1 antibody comprising a heavy chain variable domain VH (PDL-1) of SEQ ID NO: 187 and a light chain variable domain VL (PDL-1) of SEQ ID NO: 188. In another embodiment, the agent that blocks the PD-L1 / PD-1 interaction is an anti-PD-L1 antibody comprising a heavy chain variable domain VH (PDL-1) of SEQ ID NO: 189 and a light chain variable domain VL (PDL-1) of SEQ ID NO: 190.
[0245] The term "PD-1," also known as CD279, PD1, or programmed cell death protein 1, refers to any native PD-L1 from any vertebrate source, including mammals such as primates (e.g., humans), non-human primates (e.g., cynomolgus monkeys), and rodents (e.g., mice and rats), particularly the human protein PD-1 having the amino acid sequence set forth in UniProt (www.uniprot.org) Accession Number Q15116 (SEQ ID NO: 191). The term "PD-1 binding antagonist" refers to a molecule that inhibits the binding of PD-1 to its ligand binding partner. In some embodiments, the PD-1 binding antagonist inhibits the binding of PD-1 to PD-L1. In some embodiments, the PD-1 binding antagonist inhibits the binding of PD-1 to PD-L2. In some embodiments, the PD-1 binding antagonist inhibits the binding of PD-1 to both PD-L1 and PD-L2. In particular, the PD-L1 binding antagonist is an anti-PD-L1 antibody. The term "anti-PD-1 antibody" or "antibody that binds to human PD-1" or "antibody that specifically binds to human PD-1" or "antagonist anti-PD-1" refers to a PD-1 antibody that specifically binds to human PD-1, and is 1.0 x 10 -8 KD value of 1.0 x 10 mol / l or less, in one embodiment 1.0 x 10 -9This refers to an antibody that specifically binds to the human PD-1 antigen with a binding affinity of KD value of 0.01 mol / L or less. Binding affinity is measured using a standard binding assay, such as surface plasmon resonance technology (BIAcore®, GE-Healthcare Uppsala, Sweden). In one embodiment, the agent that blocks the PD-L1 / PD-1 interaction is an anti-PD-1 antibody. In a specific embodiment, the anti-PD-1 antibody is selected from the group consisting of MDX1106 (nivolumab), MK-3475 (pembrolizumab), CT-011 (pidilizumab), MEDI-0680 (AMP-514), PDR001, REGN2810, and BGB-108, particularly pembrolizumab and nivolumab. In another embodiment, the agent that blocks the PD-L1 / PD-1 interaction is an anti-PD-1 antibody comprising a heavy chain variable domain VH(PD-1) of SEQ ID NO: 192 and a light chain variable domain VL(PD-1) of SEQ ID NO: 193. In another embodiment, the agent that blocks the PD-L1 / PD-1 interaction is an anti-PD-1 antibody comprising a heavy chain variable domain VH(PD-1) of SEQ ID NO: 194 and a light chain variable domain VL(PD-1) of SEQ ID NO: 195.
[0246] In another aspect, there is provided a combination product comprising a bispecific agonist CD28 antigen binding molecule as described herein and an agent that blocks the PD-L1 / PD-1 interaction, such as a PD-L1 binding antagonist or a PD-1 binding antagonist, in particular an anti-PD-L1 antibody or an anti-PD-1 antibody.
[0247] Such combination therapy, as described above, encompasses combined administration (two or more therapeutic agents in the same or separate formulations) and separate administration, where administration of a therapeutic agent can occur before, simultaneously with, and / or after administration of the additional agent or agents. In one embodiment, administration of a therapeutic agent and administration of an additional therapeutic agent occur within about 1 month, or within about 1, 2, or 3 weeks, or within about 1, 2, 3, 4, 5, or 6 days of each other.
[0248] manufactured goods In another aspect of the present invention, an article of manufacture containing materials useful for the treatment, prevention, and / or diagnosis of the aforementioned disorders is provided. The article of manufacture comprises a container and a label or package insert inserted into or associated with the container. Suitable containers include, for example, bottles, vials, syringes, IV solution bags, etc. The container can be formed from a variety of materials, such as glass or plastic. The container holds a compound, alone or in combination with other compositions, effective for the treatment, prevention, and / or diagnosis of a condition and can have a sterile access port (e.g., the container can be an intravenous solution bag or vial with a stopper pierceable by a hypodermic needle). At least one active agent in the composition is a bispecific agonist CD28 antigen-binding molecule of the present invention. The label or insert indicates that the composition is used for treating the selected condition. Additionally, the article of manufacture may comprise (a) a first container containing a composition comprising a bispecific agonist CD28 antigen binding molecule of the invention, contained within the article of manufacture; and (b) a second container containing a composition comprising an additional cytotoxic or other therapeutic agent, contained within the article of manufacture. The article of manufacture in this embodiment of the invention may further comprise a package insert indicating that the composition can be used to treat a particular condition. Alternatively, or in addition, the article of manufacture may further comprise a second (or third) container containing a pharmaceutically acceptable buffer, such as bacteriostatic water for injection (BWFI), phosphate-buffered saline, Ringer's solution, and dextrose solution. The article of manufacture may further comprise other materials desirable from a commercial and user standpoint, including other buffers, diluents, filters, needles, and syringes. TIFF0007792438000002.tif251170TIFF0007792438000003.tif251170TIFF0007792438000004.tif254170TIFF0007792438000005.tif254170TIFF0007792438000006.tif252170TIFF0007792438000007.tif253170TIFF0007792438000008.tif254170TIFF0007792438000009.tif254170TIFF0007792438000010.tif254170TIFF0007792438000011.tif254170TIFF0007792438000012.tif254170TIFF0007792438000013.tif254170TIFF0007792438000014.tif254170TIFF0007792438000015.tif254170TIFF0007792438000016.tif254170TIFF0007792438000017.tif254170TIFF0007792438000018.tif254170TIFF0007792438000019.tif254170TIFF0007792438000020.tif251170TIFF0007792438000021.tif251170TIFF0007792438000022.tif253170TIFF0007792438000023.tif253170TIFF0007792438000024.tif254170TIFF0007792438000025.tif254170TIFF0007792438000026.tif251170TIFF0007792438000027.tif254170TIFF0007792438000028.tif254170TIFF0007792438000029.tif254170TIFF0007792438000030.tif254170TIFF0007792438000031.tif254170TIFF0007792438000032.tif254170TIFF0007792438000033.tif254170TIFF0007792438000034.tif254170TIFF0007792438000035.tif254170TIFF0007792438000036.tif25 4170TIFF0007792438000037.tif253170TIFF0007792438000038.tif254170T IFF0007792438000039.tif253170TIFF0007792438000040.tif253170TIFF00 07792438000041.tif253170TIFF0007792438000042.tif254170TIFF0007792 438000043.tif254170TIFF0007792438000044.tif254170TIFF000779243800 0045.tif254170TIFF0007792438000046.tif251170TIFF0007792438000047. tif253170TIFF0007792438000048.tif254170TIFF0007792438000049.tif25 4170TIFF0007792438000050.tif251170TIFF0007792438000051.tif241170.
[0249] General information regarding the nucleotide sequences of human immunoglobulin light and heavy chains is described in: Kabat, E.A., et al., Sequences of Proteins of Immunological Interest, 5th ed., Public Health Service, National Institutes of Health, Bethesda, MD (1991). The amino acids of antibody chains are numbered and referenced according to the numbering system according to Kabat (Kabat, E.A., et al., Sequences of Proteins of Immunological Interest, 5th ed., Public Health Service, National Institutes of Health, Bethesda, MD (1991)) as defined above. [Example]
[0250] The following are examples of the methods and compositions of the present invention. Given the general description provided above, it will be understood that various other embodiments may be practiced.
[0251] Recombinant DNA Technology Standard methods were used to manipulate DNA as described by Sambrook et al., Molecular Cloning: A laboratory manual; Cold Spring Harbor Laboratory Press, Cold Spring Harbor, New York, 1989. Molecular biological reagents were used according to the manufacturer's instructions. General information regarding the nucleotide sequences of human immunoglobulin light and heavy chains is given in: Kabat, EA et al., (1991) Sequences of Proteins of Immunological Interest, Fifth Ed., NIH Publication No. 91-3242.
[0252] DNA sequencing The DNA sequence was determined by double-strand sequencing.
[0253] Gene synthesis Where necessary, desired gene segments were generated by PCR using appropriate templates or synthesized by automated gene synthesis from synthetic oligonucleotides and PCR products at Geneart AG (Regensburg, Germany) or Genscript (New Jersey, USA). Gene segments flanked by unique restriction endonuclease cleavage sites were cloned into standard cloning / sequencing vectors. Plasmid DNA was purified from transformed bacteria, and concentrations were measured by UV spectroscopy. The DNA sequences of subcloned gene fragments were confirmed by DNA sequencing. Gene segments were designed with appropriate restriction sites to allow subcloning into the respective expression vectors. All constructs were designed with a 5'-terminal DNA sequence encoding a leader peptide that targets the protein for secretion in eukaryotic cells.
[0254] Cell culture technology Standard cell culture techniques were used as described in Current Protocols in Cell Biology (2000), Bonifacino, J.S., Dasso, M., Harford, J.B., Lippincott-Schwartz, J. and Yamada, K.M. (eds.), John Wiley & Sons, Inc.
[0255] Protein purification Proteins were purified from filtered cell culture supernatants according to standard protocols. Briefly, the antibody was applied to a Protein A Sepharose column (GE Healthcare) and washed with PBS. Antibody elution was achieved at pH 2.8, immediately followed by neutralization of the sample. Aggregated proteins were separated from monomeric antibody by size-exclusion chromatography (Superdex 200, GE Healthcare) in PBS or 20 mM histidine, 150 mM NaCl (pH 6.0). Monomeric antibody fractions were pooled, concentrated (if necessary) using, for example, a MILLIPORE Amicon Ultra (30 MWCO) centrifugal concentrator, and frozen and stored at -20°C or -80°C. A portion of the sample was submitted for subsequent protein analysis and analytical characterization, for example, by SDS-PAGE, size-exclusion chromatography (SEC), or mass spectrometry.
[0256] SDS-PAGE The NuPAGE® Pre-Cast Gel System (Invitrogen) was used according to the manufacturer's instructions, specifically, 10% or 4-12% NuPAGE® Novex® Bis-TRIS Pre-Cast gels (pH 6.4) and NuPAGE® MES (reducing gel, containing NuPAGE® antioxidant running buffer additive) or MOPS (non-reducing gel) running buffer.
[0257] Analytical size exclusion chromatography Size exclusion chromatography (SEC) for determining antibody aggregation and oligomeric state was performed by HPLC chromatography. Briefly, Protein A-purified antibodies were applied to a Tosoh TSKgel G3000SW column in 300 mM NaCl, 50 mM KH2PO4 / K2HPO4 (pH 7.5) on an Agilent HPLC 1100 system, or to a Superdex 200 column (GE Healthcare) in 2x PBS on a Dionex HPLC-System. Eluted proteins were quantified by UV absorbance and peak area integration. BioRad Gel Filtration Standard 151-1901 served as the standard.
[0258] mass spectrometry This section describes the characterization of multispecific antibodies containing VH / VL swaps (VH / VL CrossMabs), with emphasis on accurate assembly. The predicted primary structures of deglycosylated intact CrossMabs and deglycosylated / plasmin-digested or deglycosylated / limited LysC-digested CrossMabs were analyzed by electrospray ionization mass spectrometry (ESI-MS).
[0259] VH / VL crossMAbs were deglycosylated with N-glycosidase F in phosphate or Tris buffer at 37°C for up to 17 hours at a protein concentration of 1 mg / ml. Plasmin digestion or LysC (Roche) limited digestion was performed with 100 μg of deglycosylated VH / VL crossMAbs in Tris buffer (pH 8) for 120 hours at room temperature and 40 minutes at 37°C, respectively. Prior to mass spectrometry analysis, samples were desalted by HPLC on a Sephadex G25 column (GE Healthcare). Total mass was determined by ESI-MS on a maXis 4G UHR-QTOF MS system (Bruker Daltonik) equipped with a TriVersa NanoMate source (Advion).
[0260] Determination of binding and binding affinity of multispecific antibodies to their respective antigens using surface plasmon resonance (SPR) (BIACORE). The binding of the generated antibodies to their respective antigens was monitored by surface plasmon resonance using a BIACORE instrument (GE Healthcare Biosciences AB, Uppsala, Sweden). Briefly, for affinity measurements, goat anti-human IgG, JIR 109-005-098 antibody, was immobilized on a CM5 chip via amine coupling for display of the antibody against the respective antigen. Binding is measured in HBS buffer (HBS-P (10 mM HEPES, 150 mM NaCl, 0.005% Tween 20, pH 7.4) at 25°C (or alternatively, 37°C). Antigen (either R&D Systems or in-house purified) is added at various concentrations in solution. Association is measured by 80 s–3 min antigen injection, and dissociation is measured by washing the chip surface with HBS buffer for 3–10 min. KD values are estimated using a 1:1 Langmuir binding model. Negative control data (e.g., buffer curve) are subtracted from sample curves to correct for system-specific baseline drift and reduce noise signals. The respective Biacore Evaluation Software is used to analyze sensorgrams and calculate affinity data.
[0261] Example 1 Generation and production of a bispecific antigen-binding molecule targeting CD28 and epithelial cell adhesion molecule (EpCAM) 1.1 Cloning of a bispecific antigen-binding molecule targeting CD28 and epithelial cell adhesion molecule (EpCAM) Cloning of the human CD28 antigen : A DNA fragment encoding the extracellular domain (amino acids 1–134 of the mature protein) of human CD28 (Uniprot:P10747) was inserted in frame into two different mammalian recipient vectors upstream of a fragment encoding a human IgG1 Fc fragment, which served as a solubility and purification tag. One expression vector contained a "hole" mutation in the Fc region, while the other contained a "knob" mutation. A C-terminal avi tag (GLNDIFEAQKIEWHE, SEQ ID NO: 88) allowed specific biotinylation during coexpression with BirA biotin ligase. Both Fc fragments also contained the PG-LALA mutation. To obtain a dimeric CD28-Fc construct with a monovalent biotinylated avi tag at the C-terminus of the Fc knob chain, both vectors were cotransfected in combination with a plasmid encoding BirA biotin ligase.
[0262] Generation and characterization of a CD28(SA) variant lacking the hotspot and with reduced affinity A CD28 superagonist antibody (SA) having a VH comprising the amino acid sequence of SEQ ID NO: 24 and a VL comprising the amino acid sequence of SEQ ID NO: 25 is described in WO 2006 / 050949.
[0263] Removal of unpaired cysteine residues, tryptophan residues, and deamidation sites, and generation of reduced affinity CD28(SA) variants As part of our detailed binder characterization, we performed a computational analysis of the CD28(SA) variable domain sequence. This analysis revealed an unpaired cysteine in the CDR2 region of VH (position 50, Kabat numbering), a tryptophan residue in CDR3 of VH (position 100a, Kabat numbering), and CDR1 of VL (position 32, Kabat numbering), as well as a potential asparagine deamidation site in CDR2 of VH (position 56, Kabat numbering). Although tryptophan oxidation is a fairly slow process and can be prevented by adding reducing compounds, the presence of unpaired cysteines in antibody variable domains can be important. Free cysteines are reactive and can form stable bonds with other unpaired cysteines in other proteins or components of cells or culture media. Consequently, this can lead to heterogeneous and unstable products with unknown modifications that may be potentially immunogenic and therefore pose a risk to patients. In addition, deamidation of asparagine and the resulting formation of isoaspartic acid and succinimide can affect both in vitro stability and in vivo biological function. Crystal structure analysis of the parent murine binding factor 5.11A revealed that C50 is not involved in binding to human CD28 and can therefore be substituted with similar amino acids, such as serine, without affecting affinity for CD28. However, both the tryptophan residue and asparagine at position 50 are close to or involved in the binding interface, and therefore substitution with similar amino acids may result in decreased binding affinity. In this example, we specifically aimed to decrease the affinity of CD28(SA) for human CD28 for the following reasons: the affinity of CD28(SA) is in the 1-2 nM range, and the binding half-life is approximately 32 minutes. This strong affinity may result in a sink effect in tissues containing large numbers of CD28-expressing cells, such as blood and lymphoid tissues, when intravenously injected into patients. As a result, site-specific targeting of the compound via the targeting moiety may be reduced, and the efficacy of the construct may be reduced.To minimize such effects, several VH and VL variants were generated to reduce affinity to different degrees (Figures 2A and 2C). In addition to the aforementioned positions representing potential stability hotspots, additional residues directly or indirectly involved in binding to human CD28 were replaced with either the original mouse germline amino acids or similar amino acids. Furthermore, the CDRs of both CD28(SA)VL and VH were also grafted onto the respective framework sequences of trastuzumab (Figures 2B and 2D). Several combinations of VH and VL variants were then expressed as monovalent, one-arm anti-CD28 IgG-like constructs, and binding was characterized by SPR.
[0264] Dissociation rate constants (k off ) analysis To characterize the anti-CD28 binding variants in a first step, all binders were expressed as monovalent, one-arm IgG-like constructs (Figure 1A). This format was chosen to characterize binding to CD28 in a 1:1 model. Five days after transfection into HEK cells, supernatants were collected and the titers of the expressed constructs were determined.
[0265] The dissociation rates of anti-CD28 binding factor variants were measured by surface plasmon resonance (SPR) using a ProteOn XPR36 instrument (Biorad) at 25 °C with biotinylated huCD28-Fc antigen immobilized on an NLC chip by neutravidin capture. For immobilization of the recombinant antigen (ligand), huCD28-Fc was diluted to concentrations ranging from 100 to 500 nM in PBST (phosphate-buffered saline with Tween 20, consisting of 10 mM phosphate, 150 mM sodium chloride pH 7.4, and 0.005% Tween 20) and then injected at 25 μl / min for various contact times. This resulted in immobilization levels of 1,000 to 3,000 response units (RU) in a vertical orientation.
[0266] For one-shot kinetic measurements, the injection direction was changed to a horizontal orientation. Based on the titer of the supernatant produced, monovalent one-arm IgG was diluted in PBST to obtain a two-fold dilution series ranging from 100 nM to 6.25 nM. Injections were performed simultaneously at 50 μl / min along separate channels 1–5, with an association time of 120 s and a dissociation time of 300 s. Buffer (PBST) was injected along the sixth channel to provide an "in-line" blank for reference. Because the binding interaction was measured using monovalent one-arm IgG from the supernatant without purification or biochemical characterization, only the off-rate of the protein:protein interaction was used for further conclusions. Dissociation rates were calculated using a simple one-to-one Langmuir binding model in ProteOn Manager v3.1 software by fitting the dissociation sensorgrams. The dissociation rate constants (k) of all clones were calculated. off ) values are summarized in Table 1. Comparison of the generated variants revealed that k off The values were found to be up to 30-fold reduced compared to the parental sequence. TIFF0007792438000052.tif253170TIFF0007792438000053.tif88170
[0267] Binding to human CD28 was tested using CHO cells expressing human CD28 (parental cell line CHO-k1 ATCC#CCL-61 modified to stably overexpress human CD28). To assess binding, cells were harvested, counted, checked for viability, and diluted to 2.5 x 10 in FACS buffer (eBioscience, catalog number 00-4222-26). 5 / ml. 4Cells were incubated with increasing concentrations of CD28 binding factors (1 pM to 100 nM) in round-bottom 96-well plates for 2 hours at 4°C. The cells were then washed three times with cold FACS buffer, incubated with PE-conjugated goat anti-human PE (Jackson ImmunoResearch, catalog no. 109-116-098) for an additional 60 minutes at 4°C, washed once with cold FACS buffer, centrifuged, and resuspended in 100 μl of FACS buffer. Anti-DP47 IgG was included as a negative control to monitor nonspecific binding interactions between the constructs and cells. Binding was assessed by flow cytometry using a FACS Fortessa (BD, software FACS Diva). Binding curves were obtained using GraphPad Prism 6. As can be seen in Figures 3A-3C, the monovalent, one-arm IgG-like CD28 variant constructs showed differences in binding.
[0268] Cloning of a bispecific antigen-binding molecule targeting CD28 and epithelial cell adhesion molecule (EpCAM) To generate expression plasmids, the sequences of each variable domain were subcloned in frame with the respective constant regions previously inserted into the respective recipient mammalian expression vectors. In the Fc domain, Pro329Gly, Leu234Ala, and Leu235Ala mutations (PG-LALA) were introduced into the constant region of the human IgG1 heavy chain to abolish Fcγ receptor binding, according to the method described in International Patent Application WO 2012 / 130831. For the generation of bispecific antibodies, the Fc fragment contained either "knob" mutations (S354C / T366W mutations, numbering according to the Kabat EU index) or "hole" mutations (Y349C / T366S / L368A / Y407V mutations according to the Kabat EU index) to avoid heavy chain mispairing. To avoid mispairing of light chains in bispecific antigen-binding molecules, VH / VL or CH1 / Ckappa domain exchanges were introduced into one binding moiety (CrossFab technology). In another binding moiety, charges were introduced into the CH1 and Ckappa domains, as described in International Patent Application WO 2015 / 150447.
[0269] The production and preparation of the anti-EpCAM antibody MT201 (adecatumumab) is described in U.S. Patent No. 7,632,925 B2. The production of the anti-EpCAM antibody 3-171 is described, for example, in International Publication No. 2010142990 A1. The nucleotide and amino acid sequences of 3-171 in scFv and IgG1 formats (as well as its VH and VL sequences) are disclosed, for example, in Table 1 and Figure 1 of WO 2010142990 A1. The production of the anti-EpCam scFv fragment 4D5MOC-B and its VH and VL sequences is described in Willuda et al., Cancer Research 1999, 59(22), 5758-5767. Bispecific antigen-binding molecules containing an anti-mouse EpCAM antibody (anti-mu EpCAM) have also been prepared. The generation and preparation of the anti-CD28 antibody mab 14226P2 is described in WO 2020 / 132066 A1.
[0270] The following molecules were cloned, the schematics of which are shown in Figure 1B or 1C: Molecule A: Bispecific huIgG1 PG-LALA CrossFab molecule comprising the EpCAM(MT201)-CD28(SA_variant15) 1+1 format, heavy chain amino acid sequences of SEQ ID NOs: 93 and 96, and light chain amino acid sequences of SEQ ID NOs: 94 and 97 (P1AE9051), with a VH / VL exchange in the CD28(SA_variant15) fragment (knob) and charge modifications in the EpCAM(MT201) Fab fragment (hole) (Figure 1B). Molecule B: Bispecific huIgG1 PG-LALA CrossFab molecule comprising the EpCAM(MT201)-CD28(SA_variant8) 1+1 format, heavy chain amino acid sequences of SEQ ID NOs: 91 and 96, and light chain amino acid sequences of SEQ ID NOs: 92 and 97 (P1AF5296), with a VH / VL exchange in the CD28(SA_variant8) Fab fragment (knob) and charge modifications in the EpCAM(MT201) Fab fragment (hole) (Figure 1B). Molecule C: EPCAM(MT201)-CD28(SA_variant8)1+1, a bispecific huIgG1 PG-LALA CrossFab molecule comprising the heavy chain amino acid sequences of SEQ ID NOs: 74 and 98 and the light chain amino acid sequences of SEQ ID NOs: 83 and 99, with charge modifications in the CD28(SA_variant8) Fab fragment (knob) and a VH / VL exchange in the EPCAM Fab fragment (hole) (Figure 1C). Molecule D: EpCAM(3-17I)-CD28(SA_variant8)1+1, a bispecific huIgG1 PG-LALA CrossFab molecule comprising the heavy chain amino acid sequences of SEQ ID NOs: 91 and 100 and the light chain amino acid sequences of SEQ ID NOs: 92 and 101 (P1AF5974), with a VH / VL exchange in the CD28(SA_variant8) Fab fragment (knob) and a charge modification in the EpCAM(3-17I) Fab fragment (hole) (Figure 1B). Molecule E: EpCAM(3-17I)-CD28(SA_variant8)1+1, a bispecific huIgG1 PG-LALA CrossFab molecule comprising the heavy chain amino acid sequences of SEQ ID NOs: 74 and 102 and the light chain amino acid sequences of SEQ ID NOs: 83 and 103, with a charge modification in the CD28(SA_variant8) Fab fragment (knob) and a VH / VL exchange in the EpCAM(3-17I) Fab fragment (hole) (Figure 1C). Molecule F: EpCAM(4D5MOC-B)-CD28(SA_variant8)1+1, a bispecific huIgG1 PG-LALA CrossFab molecule comprising the heavy chain amino acid sequences of SEQ ID NOs: 91 and 104 and the light chain amino acid sequences of SEQ ID NOs: 92 and 105 (P1AF5980), with a VH / VL exchange in the CD28(SA_variant8) Fab fragment (knob) and a charge modification in the EpCAM(4D5MOC-B) Fab fragment (hole) (Figure 1B). Molecule G: EPCAM(4D5MOC-B)-CD28(SA_variant8)1+1, a bispecific huIgG1 PG-LALA CrossFab molecule comprising the heavy chain amino acid sequences of SEQ ID NOs: 74 and 106 and the light chain amino acid sequences of SEQ ID NOs: 83 and 107 (P1AG1810), with a charge modification in the CD28(SA_variant8) Fab fragment (knob) and a VH / VL exchange in the EPCAM(4D5MOC-B) Fab fragment (hole) (Figure 1C). Molecule H (for comparison): A bispecific huIgG1 PG-LALA CrossFab molecule with CD19(8B8-2B11)-CD28(SA_variant8)1+1, a charge modification in the CD28(SA_variant8) Fab fragment (knob), and a VH / VL exchange in the CD19(2B11) Fab fragment (hole) (FIG. 1C). This molecule comprises the heavy chain amino acid sequences of SEQ ID NOs: 74 and 108 and the light chain amino acid sequences of SEQ ID NOs: 83 and 109 (P1AF0175). Molecule I: Bispecific huIgG1 PG-LALA CrossFab molecule comprising the EpCAM(3-17I)-CD28(SA_variant15) 1+1 format, heavy chain amino acid sequences of SEQ ID NOs: 93 and 100, and light chain amino acid sequences of SEQ ID NOs: 94 and 101 (P1AG1662), with a VH / VL exchange in the CD28(SA_variant15) fragment (knob) and charge modifications in the EpCAM(3-17I) Fab fragment (hole) (Figure 1B). Molecule J: EpCAM(4D5MOC-B)-CD28(SA_variant15)1+1, a bispecific huIgG1 PG-LALA CrossFab molecule comprising the heavy chain amino acid sequences of SEQ ID NOs: 76 and 106 and the light chain amino acid sequences of SEQ ID NOs: 82 and 107 (P1AG1811), with a charge modification in the CD28(SA_variant15) Fab fragment (knob) and a VH / VL exchange in the EPCAM(4D5MOC-B) Fab fragment (hole) (Figure 1C). Molecule K: EpCAM(4D5MOC-B)-CD28(SA_variant15)1+1, a bispecific huIgG1 PG-LALA CrossFab molecule comprising the heavy chain amino acid sequences of SEQ ID NOs: 93 and 104 and the light chain amino acid sequences of SEQ ID NOs: 94 and 105 (P1AG1663), with a VH / VL exchange in the CD28(SA_variant15) Fab fragment (knob) and a charge modification in the EpCAM(4D5MOC-B) Fab fragment (hole) (Figure 1B). Molecule L: EpCAM(4D5MOC-B)-CD28(mab 14226P2)1+1, a bispecific huIgG1 PG-LALA CrossFab molecule comprising the heavy chain amino acid sequences of SEQ ID NOs: 106 and 201 and the light chain amino acid sequences of SEQ ID NOs: 107 and 202 (P1AG1812), with charge modifications in the CD28(mab 14226P2) Fab fragment (knob) and a VH / VL exchange in the EPCAM(4D5MOC-B) Fab fragment (hole) (Figure 1C). Molecule M: EpCAM (anti-mu EpCAM)-CD28(SA_variant8)1+1, a bispecific huIgG1 PG-LALA CrossFab molecule comprising the heavy chain amino acid sequences of SEQ ID NOs: 91 and 203 and the light chain amino acid sequences of SEQ ID NOs: 92 and 204 (P1AF5983), with a VH / VL exchange in the CD28(SA_variant8) Fab fragment (knob) and a charge modification in the EpCAM(a) Fab fragment (hole) (Figure 1B).
[0271] 1.2 Production of bispecific antigen-binding molecules targeting CD28 and EpCAM Expression of these molecules is driven by either a chimeric MPSV promoter or a CMV promoter. Polyadenylation is driven by a synthetic poly(A) signal sequence located at the 3' end of the CDS. In addition, each vector contains the EBV OriP sequence for autosomal replication.
[0272] Antibodies and bispecific antibodies were pr...
Claims
1. (a) a first antigen-binding domain capable of specific binding to CD28; (b) a second antigen-binding domain capable of specific binding to epithelial cell adhesion molecule (EpCAM); and (c) an Fc domain composed of a first subunit and a second subunit capable of stable association, the first subunit containing one or more amino acid substitutions that reduce the binding affinity and / or effector function of the antigen-binding molecule to an Fc receptor; A bispecific agonist CD28 antigen-binding molecule characterized by monovalent binding to CD28, comprising: (i) a first antigen-binding domain comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 92 and a first heavy chain comprising the amino acid sequence of SEQ ID NO: 91, and a second antigen-binding domain comprising a second heavy chain comprising the amino acid sequence of SEQ ID NO: 104 and a second light chain comprising the amino acid sequence of SEQ ID NO: 105; or (ii) a first antigen-binding domain comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 92 and a first heavy chain comprising the amino acid sequence of SEQ ID NO: 91, and a second antigen-binding domain comprising a second heavy chain comprising the amino acid sequence of SEQ ID NO: 100 and a second light chain comprising the amino acid sequence of SEQ ID NO: 101; or (iii) a first antigen-binding domain comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83 and a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, and a second antigen-binding domain comprising a second heavy chain comprising the amino acid sequence of SEQ ID NO: 271 and a second light chain comprising the amino acid sequence of SEQ ID NO: 272; or (iv) a first antigen-binding domain comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83 and a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, and a second antigen-binding domain comprising a second heavy chain comprising the amino acid sequence of SEQ ID NO: 273 and a second light chain comprising the amino acid sequence of SEQ ID NO: 272; or (v) a first antigen-binding domain comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83 and a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, and a second antigen-binding domain comprising a second heavy chain comprising the amino acid sequence of SEQ ID NO: 274 and a second light chain comprising the amino acid sequence of SEQ ID NO: 272; or (vi) a first antigen-binding domain comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83 and a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, and a second antigen-binding domain comprising a second heavy chain comprising the amino acid sequence of SEQ ID NO: 275 and a second light chain comprising the amino acid sequence of SEQ ID NO: 272; or (vii) a first antigen-binding domain comprising a first light chain comprising the amino acid sequence of SEQ ID NO: 83 and a first heavy chain comprising the amino acid sequence of SEQ ID NO: 74, and a second antigen-binding domain comprising a second heavy chain comprising the amino acid sequence of SEQ ID NO: 273 and a second light chain comprising the amino acid sequence of SEQ ID NO:
276. Including, Bispecific agonist CD28 antigen binding molecules.
2. 2. The bispecific agonist CD28 antigen binding molecule of claim 1, wherein the Fc domain is of the human IgG1 subclass and comprises the amino acid mutations L234A, L235A and P329G (numbering according to the Kabat EU index).
3. 2. The bispecific agonist CD28 antigen-binding molecule of claim 1, wherein the first and second antigen-binding domains are Fab molecules, respectively, and the Fc domain is composed of a first subunit and a second subunit capable of stable association, and wherein (i) the first antigen-binding domain is fused at the C-terminus of the Fab heavy chain to the N-terminus of the first Fc domain subunit, and the second antigen-binding domain is fused at the C-terminus of the Fab heavy chain to the N-terminus of the second Fc domain subunit, or (ii) the second antigen-binding domain is fused at the C-terminus of the Fab heavy chain to the N-terminus of the first Fc domain subunit, and the first antigen-binding domain is fused at the C-terminus of the Fab heavy chain to the N-terminus of the second Fc domain subunit.
4. 2. The bispecific agonist CD28 antigen binding molecule of claim 1, wherein the Fc domain comprises a modification that promotes association of the first and second subunits of the Fc domain.
5. 2. The bispecific agonist CD28 antigen binding molecule of claim 1, wherein the first subunit of the Fc domain comprises the amino acid substitutions S354C and T366W (EU numbering) and the second subunit of the Fc domain comprises the amino acid substitutions Y349C, T366S and Y407V (numbering according to the Kabat EU index).
6. 10. One or more isolated polynucleotides encoding the bispecific agonist CD28 antigen binding molecule of claim 1.
7. 7. One or more vectors comprising one or more polynucleotides of claim 6.
8. A host cell comprising one or more polynucleotides according to claim 6 or one or more vectors according to claim 7.
9. 10. A method for producing a bispecific agonist CD28 antigen binding molecule, comprising: a) culturing the host cell of claim 8 under conditions suitable for expression of the bispecific agonist CD28 antigen binding molecule; and b) optionally recovering the bispecific agonist CD28 antigen binding molecule.
10. A pharmaceutical composition comprising the bispecific agonist CD28 antigen binding molecule of claim 1 and at least one pharmaceutically acceptable excipient.
11. The pharmaceutical composition according to claim 10 for (a) T cell activation or (b) enhancing T cell effector function.
12. The pharmaceutical composition according to claim 10 for treating a disease.
13. The pharmaceutical composition of claim 12, wherein the disease is cancer.
14. The pharmaceutical composition of claim 10 for treating cancer, which is intended to be administered in combination with other agents for chemotherapy, radiation therapy and / or cancer immunotherapy.
15. The pharmaceutical composition of claim 10 for treating cancer, wherein the pharmaceutical composition is for administration in combination with a T cell-activating anti-CD3 bispecific antibody.
16. The pharmaceutical composition of claim 10 for treating cancer, which is intended to be administered in combination with an anti-PD-L1 antibody or an anti-PD-1 antibody.
17. 11. Use of a bispecific agonist CD28 antigen-binding molecule according to any one of claims 1 to 5, or a pharmaceutical composition according to claim 10, in the manufacture of a medicament for the treatment of a disease.
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