CLDN18.2 binding molecules and uses thereof
A high-affinity CLDN18.2-binding sdAb addresses the limitations of large monoclonal antibodies by enhancing tissue penetration and cytotoxicity, effectively targeting and killing cancer cells with improved therapeutic outcomes.
Patent Information
- Application Number
- JP2023581053
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-07-14
- Filing Date
- 2022-07-13
- Publication Date
- 2025-10-30
- Estimated Expiration
- 2042-07-13
AI Technical Summary
Current monoclonal antibodies targeting CLDN18.2 have large molecular masses, leading to poor tissue penetration and insufficient therapeutic effects in tumor areas, necessitating the development of smaller, high-affinity single domain antibodies (sdAbs) that specifically bind to CLDN18.2 with minimal binding to CLDN18.1.
Development of a CLDN18.2-binding molecule comprising a single domain antibody (sdAb) with high affinity for CLDN18.2, capable of inducing antibody-dependent cellular cytotoxicity and complement-dependent cytotoxicity, and optionally linked to an Fc region or other protein domains, with specific CDR sequences allowing for bispecific or multispecific binding to additional targets.
The sdAb effectively targets and kills CLDN18.2-positive cancer cells, offering improved therapeutic efficacy through enhanced tissue penetration and cytotoxicity, while maintaining specificity and affinity.
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Abstract
Description
[Background technology]
[0001] The present invention relates to specific CLDN18.2-binding molecules, immunoconjugates and compositions containing the CLDN18.2-binding molecules, nucleic acids encoding the CLDN18.2-binding molecules, host cells containing the same, and methods for preparing the CLDN18.2-binding molecules. The present invention also relates to therapeutic and diagnostic uses of these CLDN18.2-binding molecules, and in particular, to combination treatments of these CLDN18.2-binding molecules with other therapies, such as therapeutic regimens or agents.
[0002] CLDN18, a member of the Claudins protein family, was discovered by Shoichiro Tsukita et al. in 1998. It is an important molecule that constitutes the tight junctions of epithelial cells, determining the permeability of epithelial cells and preventing the diffusion of plasma membrane proteins and lipids (Gunzel, D. and AS Yu (2013). "Claudins and the modulation of tight junction permeability." Physiol Rev 93(2): 525-569). The human CLDN18 gene has two different exons 1, which undergo alternative posttranscriptional splicing to ultimately generate two protein subtypes, CLDN18.1 and CLDN18.2, which differ only in their N-terminal sequences. These two CLDN18 subtype proteins each consist of 261 amino acids and have four transmembrane domains, but are distributed in different tissues: CLDN18.1 is primarily expressed in lung tissue, while CLDN18.2 is expressed only in differentiated gastric mucosal epithelial cells and not in gastric stem cells (Sahin, Ugur et al., "Claudin-18 splice variant 2 is a pan-cancer target suitable for therapeutic antibody development." Clinical Cancer Research 14.23 (2008): 7624-7634).
[0003] CLDN18.2 is highly expressed in various tumor tissues, such as non-small cell lung cancer (25%), gastric cancer (70%), pancreatic cancer (50%), and esophageal cancer (30%), but is barely expressed in normal tissues (Kumar, V. et al., (2018) "Emerging Therapies in the Management of Advanced-Stage Gastric Cancer." Front Pharmacol 9: 404). Due to its differential expression in tumor cells and normal tissues, CLDN18.2 is currently a highly promising target for antitumor drugs.
[0004] To date, the most advanced CLDN18.2-targeting drug is IMAB362, developed by Ganymed, a German company. IMAB362 is a human-mouse chimeric IgG1 antibody that specifically targets CLDN18.2. It binds to the first extracellular domain of CLDN18.2 expressed on tumor cells and induces tumor cell death through antibody-dependent cellular cytotoxicity (ADCC) and complement-dependent cytotoxicity (CDC). In a phase II study of gastric cancer, IMAB362 significantly extended patient survival compared with standard chemotherapy (13.2 months vs. 8.4 months with standard chemotherapy), with the therapeutic effect of IMAB362 being even more pronounced in patients with high Claudin18.2 expression.
[0005] Currently, monoclonal antibody drugs targeting CLDN18.2 are being clinically studied, but monoclonal antibodies (150 kD) have a large molecular mass and poor tissue penetration, resulting in low effective concentrations in the tumor area and insufficient therapeutic effects. Therefore, there is a strong need to continue developing small molecule antibodies targeting CLDN18.2 as therapeutic agents.
[0006] Single domain antibodies (sdAbs) (e.g., nanobodies) are currently the smallest antibody molecules, with molecular weights one-tenth that of conventional antibodies. In addition to the antigen reactivity of monoclonal antibodies, single domain antibodies possess several unique functional properties. For example, they typically exhibit high solubility, good thermostability, tissue permeability, and resistance to degradation by papain and other agents. Furthermore, single domain antibodies can be expressed in a variety of host cells, such as yeast, plant, and mammalian cells, and are highly expressed in high yields, thereby offering significant cost advantages. Therefore, there is a need in the art for the development of novel single domain antibodies (sdAbs) that bind to CLDN18.2 with higher affinity. Summary of the Invention
[0007] As a result of intensive research, the present inventors have developed a CLDN18.2-binding molecule comprising a single domain antibody (sdAb) moiety that specifically recognizes CLDN18.2, which is (1) binds to CLDN18.2, e.g., human CLDN18.2, with high affinity, e.g., the EC 50 is about 0.1 μg / mL to about 10 μg / mL, preferably about 0.1 μg / mL to about 1 μg / mL, (2) specifically binds to CLDN18.2 but does not bind to CLDN18.1; (3) CLDN18.2-positive cancer cells can be killed by antibody-dependent cellular cytotoxicity and / or complement-dependent cytotoxicity.
[0008] Thus, in a first aspect, the present invention provides a CLDN18.2 binding molecule, comprising at least one single domain antibody (sdAb) portion that specifically binds to CLDN18.2, said sdAb portion comprising three complementarity determining regions, CDR1, CDR2 and CDR3, respectively, wherein: (a) CDR1 comprises the amino acid sequence of SEQ ID NO: 1 or a variant of the amino acid sequence of SEQ ID NO: 1 with one or two amino acid changes; (b) CDR2 comprises the amino acid sequence of SEQ ID NO: 2 or a variant of the amino acid sequence of SEQ ID NO: 2 with one or two amino acid changes; and (c) CDR3 comprises the amino acid sequence of SEQ ID NO: 3 or a variant of the amino acid sequence of SEQ ID NO: 3 with one or two amino acid changes; wherein the amino acid changes are amino acid additions, deletions or conservative amino acid substitutions, and preferably the sdAb portion is a camelid VHH, a partially humanized or fully humanized VHH, or a chimeric VHH.
[0009] In some embodiments, the sdAb portion of the CLDN18.2 binding molecule of the invention comprises a CDR1 containing the amino acid sequence SEQ ID NO: 1, a CDR2 containing the amino acid sequence SEQ ID NO: 2, and a CDR3 containing the amino acid sequence SEQ ID NO: 3.
[0010] In some embodiments, the sdAb portion of the CLDN18.2 binding molecule of the invention is (i) the amino acid sequence of SEQ ID NO: 4 or 5, or (ii) comprises an amino acid sequence having at least 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identity to the amino acid sequence of SEQ ID NO: 4 or 5.
[0011] In some embodiments, the CLDN18.2 binding molecule of the invention is further linked at the N- or C-terminus of the sdAb portion to another protein domain, e.g., linked to an Fc region of an immunoglobulin, e.g., linked to an Fc region from an IgG, e.g., IgG1, IgG2, IgG3, or IgG4, or e.g., linked to a fluorescent protein.
[0012] In some embodiments, the CLDN18.2 binding molecule of the present invention is a bispecific or multispecific antibody, preferably the bispecific antibody molecule specifically binds to a CLDN18.2 molecule and a second target protein, the second target protein being, for example, (1) tumor-specific antigens or tumor-associated antigens, such as epidermal growth factor receptor (EGFR1), HER2 / neu, CD20, insulin-like growth factor receptor (IGF-1R), carcinoembryonic antigen, prostate-specific membrane antigen (PSMA), Mucin-1, CD30, CD33, CD137, cMet, or angiopoietin-2 (Ang-2); (2) immune checkpoint molecules of immune cells, such as PD1, CTLA-4, TIM-3, or LAG-3; (3) immune costimulatory molecules of immune cells, such as OX40, ICOS, TLR2, or CD27; (4) A cytokine, for example, selected from IL-1, IL-2, IL-7, IL-15, or IL-33.
[0013] In a second aspect, the present invention provides a method for preparing a CLDN18.2 binding molecule of the present invention, the method comprising culturing a host cell into which a nucleic acid encoding a CLDN18.2 binding molecule of the present invention or an expression vector comprising said nucleic acid has been introduced under conditions suitable for expression of a nucleic acid encoding a CLDN18.2 binding molecule of the present invention, and isolating said CLDN18.2 binding molecule; optionally, the method further comprises recovering said CLDN18.2 binding molecule from said host cell.
[0014] In a third aspect, the present invention provides an immunoconjugate comprising a CLDN18.2 binding molecule of the present invention and another agent, such as a cytotoxic agent.
[0015] In a fourth aspect, the present invention provides a pharmaceutical composition comprising a CLDN18.2 binding molecule or immunoconjugate of the present invention, and an optional pharmaceutical adjuvant.
[0016] In some embodiments, the present invention provides a pharmaceutical composition comprising a CLDN18.2-binding molecule or immunoconjugate of the present invention and another therapeutic agent, and an optional pharmaceutical adjuvant, preferably wherein the other therapeutic agent is selected from a chemotherapeutic agent, another antibody (e.g., an anti-PD-1 antibody or an anti-PD-L1 antibody), or a cytotoxic agent.
[0017] In some embodiments, the present invention provides combination products comprising a CLDN18.2-binding molecule or immunoconjugate of the invention and one or more other therapeutic agents, e.g., a chemotherapeutic agent, a cytotoxic agent, or another antibody, e.g., an anti-PD-1 antibody or an anti-PD-L1 antibody.
[0018] In a fifth aspect, the present invention provides a method for treating a CLDN18.2-associated disease in a subject, comprising administering to the subject a therapeutically effective amount of a CLDN18.2-binding molecule, immunoconjugate, pharmaceutical composition, or combination product of the present invention.
[0019] In some embodiments, the CLDN18.2-associated disease treated by the CLDN18.2-binding molecule, immunoconjugate, pharmaceutical composition, or combination product of the present invention is, for example, a cancer that expresses or overexpresses CLDN18.2.
[0020] In a sixth aspect, the present invention provides a kit for detecting CLDN18.2 in a sample, said kit comprising a CLDN18.2 binding molecule of the present invention; (a) contacting the sample with a CLDN18.2 binding molecule of the present invention; and (b) performing a step of detecting the formation of a complex between said CLDN18.2-binding molecule and CLDN18.2, optionally wherein said CLDN18.2-binding molecule is detectably labeled; This allows determining whether or not an elevated level of CLDN18.2 expression is present in a sample from a subject or individual. [Brief explanation of the drawings]
[0021] The preferred embodiments of the invention described in detail below will be better understood when read in conjunction with the following drawings: For the purpose of illustrating the invention, there are shown in the drawings embodiments that are presently preferred; it should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities of the embodiments shown in the drawings. [Figure 1] This figure shows an SDS-PAGE image of anti-CLDN18.2 heavy chain antibody. The samples are heavy chain antibody NA3SH1-T4, heavy chain antibody NA3SH1-T4-hVH6, heavy chain antibody NA3SH1 as a control, and reference product IPI (ipilimumab). Lane markers indicate protein molecular weights. [Figure 2A] FIG. 1 shows the monomer detection profile of the heavy chain antibody NA3SH1-T4 detected by SEC-HPLC. [Figure 2B] FIG. 1 shows the monomer detection profile of the heavy chain antibody NA3SH1-T4-hVH6 detected by SEC-HPLC. [Figure 2C] FIG. 1 shows the monomer detection profile of the heavy chain antibody NA3SH1 as a control by SEC-HPLC. [Figure 3] FIG. 1 shows the binding curves of anti-CLDN18.2 heavy chain antibodies NA3SH1-T4, NA3SH1-T4-hVH6, and control heavy chain antibody NA3SH1 to hCLDN18.2-HKE293 cells, where MFI represents mean fluorescence intensity. [Figure 4] FIG. 1 shows the binding curves of anti-CLDN18.2 heavy chain antibodies NA3SH1-T4 and NA3SH1-T4-hVH6, and the control heavy chain antibody NA3SH1 to hCLDN18.2-NUGC4 cells, where MFI represents mean fluorescence intensity. [Figure 5] FIG. 1 shows the binding curves of anti-CLDN18.2 heavy chain antibodies NA3SH1-T4 and NA3SH1-T4-hVH6, and the control heavy chain antibody NA3SH1 to hCLDN18.2-KATOIII cells, where MFI represents mean fluorescence intensity. [Figure 6]FIG. 10 shows the positive binding rates of anti-CLDN18.2 heavy chain antibodies NA3SH1-T4 and NA3SH1-T4-hVH6, and control heavy chain antibody NA3SH1 to hCLDN18.1-HEK293 cells at a high concentration (100 μg / mL). [Figure 7] FIG. 1 shows the antibody-dependent cell-mediated cytotoxicity (ADCC) of anti-CLDN18.2 heavy chain antibodies NA3SH1-T4, NA3SH1-T4-hVH6, and control heavy chain antibody NA3SH1 on hCLDN18.2-HEK293 cells. [Figure 8] FIG. 10 shows the antibody-dependent cell-mediated cytotoxicity (ADCC) of the anti-CLDN18.2 heavy chain antibodies NA3SH1-T4 and NA3SH1-T4-hVH6, and the control heavy chain antibody NA3SH1, on hCLDN18.2-KATOIII cells. [Figure 9] FIG. 1 shows the antibody-dependent cell-mediated cytotoxicity (ADCC) of anti-CLDN18.2 heavy chain antibodies NA3SH1-T4 and NA3SH1-T4-hVH6, and the control heavy chain antibody NA3SH1, on hCLDN18.2-NUGC4 cells. DETAILED DESCRIPTION OF THE INVENTION
[0022] Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. All publications, patent applications, patents, and other references mentioned herein are incorporated by reference in their entirety. It should be noted that the materials, methods, and examples described herein are merely illustrative and are not intended to be limiting. Other features, objects, and advantages of the present invention will become apparent from the specification and drawings, and from the appended claims. I. Definition
[0023] For the purpose of describing this specification, the following definitions will be used, and where appropriate, terms used in the singular will also include the plural and vice versa. It is to be understood that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting.
[0024] The term "about," when used in conjunction with a number or value, is meant to cover a range of numbers or values from a lower limit of 5% less than the specified number or value to an upper limit of 5% greater than the specified number or value.
[0025] As used herein, the term "and / or" means any one of the alternatives or more than one of the alternatives.
[0026] As used herein, unless otherwise specified, the terms "comprise" or "comprises" also encompass cases where the stated elements, integers, or steps are included. For example, when referring to an antibody variable region that "comprises" a specific sequence, this also encompasses an antibody variable region consisting of that specific sequence.
[0027] The term "Claudins" refers to integrin membrane proteins present in the tight junctions between epithelia and endothelia, and are important components of tight junctions. They were discovered by Shoichiro Tsukita et al. in 1998. There are 24 members in the family. The human Claudin 18 gene has two alternative exons 1, resulting in the production of two protein subtypes, Claudin 18.1 (also referred to herein as "CLDN18.1") and Claudin 18.2 (also referred to herein as "CLDN18.2"), which differ by only seven amino acid residues in the sequence of approximately 50 amino acids in the first extracellular domain.
[0028] The significant difference in Claudin 18.2 expression between cancerous and normal tissues may be due to the fact that the CpG in the CREB binding site of the Claudin 18.2 promoter is highly methylated in normal tissues, but the CpG methylation level decreases during cell carcinogenesis, and CREB is involved in activating Claudin 18.2 transcription.
[0029] As used herein, the terms "CLDN18.2 antibody," "antibody against CLDN18.2," "antibody that specifically binds to CLDN18.2," "antibody that specifically targets CLDN18.2," and "antibody that specifically recognizes CLDN18.2" are used interchangeably and refer to an antibody that can specifically bind to the Claudin protein CLDN18.2. In particular, in some specific embodiments, the term refers to an antibody that specifically binds to human CLDN18.2, particularly an antibody that specifically binds to human CLDN18.2 but does not specifically bind to human CLDN18.1.
[0030] The term "antibody" is used herein in the broadest sense to refer to a protein that contains an antigen-binding site and covers natural and artificial antibodies of various structures, including, but not limited to, monoclonal antibodies, polyclonal antibodies, multispecific antibodies (e.g., bispecific antibodies), single-chain antibodies, single-domain antibodies, complete antibodies, and antibody fragments. Preferably, the antibodies of the present invention are single-domain antibodies or heavy-chain antibodies.
[0031] The term "antibody fragment" refers to a molecule that contains a portion of an intact antibody and is capable of binding to the antigen to which the intact antibody binds, but is distinct from the intact antibody. Examples of antibody fragments include, but are not limited to, Fv, Fab, Fab', Fab'-SH, F(ab')2, diabodies, linear antibodies, single-chain antibodies (e.g., scFv), single-domain antibodies, bivalent or bispecific antibodies or fragments thereof, camelid antibodies (heavy-chain antibodies), and bispecific or multispecific antibodies formed from antibody fragments.
[0032] The term "complementarity determining region" or "CDR region" or "CDR" refers to a region in an antibody variable domain that is highly variable in sequence and forms structure-defined loops ("hypervariable loops") and / or contains antigen contact residues ("antigen contact points"). CDRs are primarily responsible for binding to an antigen epitope and are numbered sequentially from the N-terminus and comprise CDR1, CDR2, and CDR3, in that order. For a given heavy chain variable region amino acid sequence, the precise amino acid sequence boundaries of each CDR can be determined by any one or a combination of several known antibody CDR assignment systems, such as the Chothia system based on the three-dimensional structure of the antibody and the topology of the CDR loops (Chothia et al. (1989) Nature 342: 877-883; Al-Lazikani et al., "Standard conformations for the canonical structures of immunoglobulins", Journal of Molecular Biology, 273, 927-948 (1997)), the Kabat system based on antibody sequence variability (Kabat et al., Sequences of Proteins of Immunological Interest, 4th ed., US Department of Health and Human Services, National Institutes of Health (1987)), AbM (University of Bath), Contact (University College London), and the international ImMunoGeneTics database (IMGT). (http: / / imgt.cines.fr / ), and a North CDR definition based on affinity propagation clustering utilizing multiple crystal structures.
[0033] Unless otherwise specified, in the present invention, the term "CDR" or "CDR sequence" covers CDR sequences defined in any one of the above ways.
[0034] CDRs may also be defined based on having the same AbM numbering position as a reference CDR sequence (e.g., the sequence of any one of the CDRs exemplified herein). In one embodiment, the CDRs of the single domain antibodies of the invention are positioned based on the AbM numbering protocol.
[0035] Unless otherwise specified, in the present invention, when residue positions in antibody variable regions and CDRs (including heavy chain variable region residues) are referred to, they refer to numbered positions based on the AbM numbering system.
[0036] Antibodies with different specificities (i.e., different binding sites for different antigens) have different CDRs. However, while CDRs differ between antibodies, only a limited number of amino acid positions within a CDR are directly involved in antigen binding. A "minimum binding unit" for antigen binding can be provided by determining the minimal overlap region using at least two of the Kabat, Chothia, AbM, IMGT, and Contact methods. The minimum binding unit may be a subpart of a CDR. As will be apparent to those skilled in the art, residues in other portions of the CDR sequence may be determined depending on the antibody structure and protein folding. Therefore, the present invention also contemplates variants of any CDR presented herein. For example, in a variant of one CDR, the amino acid residues of the minimum binding unit may remain unchanged, while other CDR residues defined by Kabat, Chothia, AbM, IMGT, or Contact may be substituted with conserved amino acid residues.
[0037] The term "single-domain antibody" generally refers to an antibody that can confer antigen binding with only a single variable domain (e.g., a heavy chain variable domain (VH) or a light chain variable domain (VL), a heavy chain variable domain derived from a camelid heavy chain antibody, or a VH-like single domain (v-NAR) derived from a fish IgNAR). That is, the single variable domain does not need to interact with another variable domain to recognize the target antigen. Examples of single-domain antibodies include single-domain antibodies from camelids (llamas and camels) and cartilaginous fish (e.g., nurse sharks) ( WO 2005 / 035572 ). Camelid-derived single-domain antibodies, also referred to as VHHs in this application, are composed of only one heavy chain variable region and contain only a single chain FR4-CDR3-FR3-CDR2-FR2-CDR1-FR1 from the C-terminus to the N-terminus, and are also called "nanobodies." Single-domain antibodies are the smallest currently known units capable of binding to a target antigen.
[0038] The term "heavy-chain antibody (hcAb)" refers to an antibody without a light chain, and may comprise, from N-terminus to C-terminus, VH-CH2-CH3, or VH-CH1-CH2-CH3, or VHH-CH2-CH3, etc., and may constitute a homodimer, e.g., a heavy-chain dimeric antibody without a light chain. A heavy-chain antibody may comprise a VH from a standard antibody or a VHH from a single-domain antibody. In one embodiment, a heavy-chain antibody of the present invention comprises a VHH of a single-domain antibody.
[0039] As used herein, the term "multispecific antibody" refers to an antibody having at least two antigen-binding sites, each of which binds to a different epitope of the same antigen or a different epitope of a different antigen. A multispecific antibody is an antibody that has binding specificities for at least two different antigen epitopes. In one embodiment, the present specification provides a multispecific antibody, also known as a "bispecific antibody," that has binding specificities for a first antigen and a second antigen.
[0040] "Effector function" refers to a biological activity attributable to the immunoglobulin Fc region, which varies depending on the immunoglobulin isotype. Examples of immunoglobulin 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, down-regulation of cell surface receptors (e.g., B cell receptors), and B cell activation.
[0041] The term "antibody-dependent cell-mediated cytotoxicity (ADCC)" refers to one of the major mechanisms by which some cytotoxic effector cells (e.g., natural killer (NK) cells) mediate killing of target cells and foreign host cells. NK cells are activated to perform ADCC after binding, via the Fc region of an antibody, to, for example, the Fc receptor FcγRIIIA (i.e., CD16a) expressed on NK cells. CD16a belongs to the immunoglobulin superfamily transmembrane receptor. Depending on the allelic polymorphism at its N-terminal 158th position, CD16a is differentially expressed as either valine or phenylalanine at position 158. As a result, CD16a subtypes exist in the human population: CD16a-158V / V (accounting for approximately 15%), CD16a-158V / F (accounting for approximately 25%), and CD16a-158F / F (accounting for approximately 60%).
[0042] The term "complement-dependent cytotoxicity (CDC)" refers to the cleavage of target cells in the presence of complement. Activation of the classical complement pathway is initiated by the binding of the first component of the complement system (C1q) to an antibody (of the appropriate subclass) that binds to the same antigen. To assess complement activation, a CDC assay can be performed, for example, by the method described in Gazzano-Santoro et al., J. Immunol. Methods 202:163 (1996).
[0043] The term "chimeric antibody" refers to an antibody molecule in which (a) the constant region or a portion thereof has been modified, replaced, or exchanged so that the antigen-binding site is linked to a constant region of a different or modified class, effector function, and / or species, or to an entirely different molecule (e.g., an enzyme, toxin, hormone, growth factor, drug), etc., that confers new properties to the chimeric antibody, or (b) the variable region or a portion thereof has been modified, replaced, or exchanged with a variable region having a different or modified antigen specificity. For example, a camelid antibody can be modified by changing its constant region to that from a human immunoglobulin. Because of the change to a human constant region, the chimeric antibody can retain specificity in antigen recognition while exhibiting reduced antigenicity in humans compared to the original camelid antibody.
[0044] The term "humanized antibody" refers to a chimeric antibody comprising amino acid residues from non-human CDRs and amino acid residues from human FRs. In some embodiments, all or substantially all CDRs (e.g., CDRs) in a humanized antibody correspond to those of a non-human antibody, and all or substantially all FRs correspond to those of a human antibody. A humanized antibody may optionally contain 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 been humanized.
[0045] The term "human antibody" refers to an antibody 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, and utilizing a human antibody library or other human antibody coding sequence. The definition of human antibody specifically excludes humanized antibodies, which comprise non-human antigen-binding residues.
[0046] The term "Fc region" is used herein to define the C-terminal region of an immunoglobulin heavy chain, which region includes at least a portion of the constant region. The term includes native-sequence Fc regions and variant Fc regions. In some embodiments, a human IgG heavy chain Fc region extends from Cys226 or Pro230 to the carbonyl terminus of the heavy chain. However, the C-terminal lysine (Lys447) of the Fc region may or may not be present. Numbering of amino acid residues in the Fc region or constant region is based on the EU numbering system, also known as the EU index, as described in Kabat et al., Sequences of Proteins of Immunological Interest, 5th Ed. Public Health Service, National Institutes of Health, Bethesda, MD, 1991, unless otherwise specified.
[0047] The term "variable region" or "variable domain" refers to the domain of an antibody heavy or light chain that is involved in binding the antibody to an antigen. The variable domains of the heavy and light chains of a natural antibody usually have similar structures, where each domain contains four conserved framework regions (FR) and three complementarity-determining regions (CDR). (See, for example, Kindt et al., Kuby Immunology, 6 th ed., WH Freeman and Co. p. 91 (2007). A single VH or VL domain is sufficient to confer antigen-binding specificity.
[0048] As used herein, the terms "binding" or "specifically binding" mean that the binding is selective for the antigen and can be distinguished from unwanted or non-specific interactions. The ability of an antibody to bind to a specific antigen can be measured by enzyme-linked immunosorbent assay (ELISA), SPR or biolayer interferometry techniques, or other common binding assays known in the art.
[0049] The term "immune checkpoint molecule" refers to an inhibitory signal molecule present in the immune system that regulates the duration and intensity of immune responses in peripheral tissues, thereby avoiding tissue damage and maintaining tolerance to self-antigens (Pardoll DM., The blockade of immune checkpoints in cancer immunotherapy. Nat Rev Cancer, 2012, 12(4): 252-264). Research has shown that one of the reasons tumor cells can escape the in vivo immune system and proliferate uncontrollably is that they utilize the inhibitory signal pathway of immune checkpoint molecules to suppress T lymphocyte activity, thereby preventing T lymphocytes from effectively exerting their killing effect on tumors (Yao S, Zhu Y, and Chen L., Advances in targeting cell surface signaling molecules for immune modulation. Nat Rev Drug Discov, 2013, 12(2): 130-146). Immune checkpoint molecules include, but are not limited to, programmed cell death protein 1 (PD-1), PD-L2, LAG-3, and TIM-3.
[0050] The term "costimulatory molecule" refers to a binding partner on a T cell that specifically binds to a costimulatory ligand and thereby mediates a costimulatory response (e.g., without limitation, proliferation) of the T cell. A costimulatory molecule refers to a cell surface molecule, other than an antigen receptor or its ligand, that is instrumental in an effective immune response. Costimulatory molecules include, but are not limited to, MHC class I molecules, TNF receptor proteins, immunoglobulin-like proteins, cytokine receptors, integrins, signaling lymphocyte activation molecules (SLAM proteins), activating NK cell receptors, OX40, CD40, GITR, 4-1BB (i.e., CD137), CD27, and CD28. In some embodiments, a "costimulatory molecule" is CD28, OX40, GITR, 4-1BB (i.e., CD137), and / or CD27.
[0051] The term "cytokine" refers to a group of proteins released by one cell group that act on another cell as intercellular mediators. Examples of such cytokines include lymphokines such as IL-1, IL-1α, IL-2, IL-3, IL-4, IL-5, IL-6, IL-7, IL-8, IL-9, IL-11, IL-12, and IL-15; monokines; interleukins (ILs); tumor necrosis factors such as TNF-α or TNF-β; and other polypeptide factors, including gamma interferon.
[0052] The term "immunoconjugate" refers to an antibody conjugated to one or more other substances, including, but not limited to, a cytotoxic agent or a label.
[0053] "Median Effective Concentration (EC 50 The term "EC" refers to the concentration of a drug, antibody, or toxic agent that induces a response that is 50% between baseline and maximum after a specific exposure time. 50 The unit is "μg / mL".
[0054] The term "therapeutically effective amount" refers to an amount that effectively achieves the desired preventive result at the necessary dosage and for the necessary period of time. A therapeutically effective amount of an antibody or antibody fragment, or a conjugate or composition thereof, can vary depending on various factors, such as the disease state, the age, sex, and weight of the individual, and the ability of the antibody or antibody portion to elicit a desired response in the individual. A therapeutically effective amount is also an amount in which any toxic or adverse effects of the antibody or antibody fragment, or a conjugate or composition thereof, are outweighed by the therapeutically beneficial effects. Relative to an untreated subject, a "therapeutically effective amount" preferably inhibits a measurable parameter (e.g., tumor growth rate, tumor volume, etc.) by at least about 20%, more preferably at least about 40%, even more preferably at least about 50%, 60%, or 70%, and even more preferably at least about 80% or 90%. The ability of a compound to inhibit a measurable parameter (e.g., cancer) can be assessed in an animal model system predictive of efficacy in human tumors.
[0055] The terms "individual" or "subject" are used interchangeably and include mammals. 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, an individual or subject is a human.
[0056] The terms "tumor" and "cancer" are used interchangeably herein and cover solid and liquid tumors.
[0057] The terms "cancer" and "cancerous" refer to a physiological disorder in mammals in which cell growth becomes uncontrolled.
[0058] The term "tumor" refers to all neoplastic cell growth and proliferation, whether malignant or benign, and all pre-cancerous and cancerous cells and tissues. The terms "cancer," "cancerous," and "tumor" are not mutually exclusive when referred to herein.
[0059] The term "isolated CLDN18.2-binding molecule" refers to one that has been separated from a component of its natural environment. In some embodiments, the CLDN18.2-binding molecule is purified to greater than 95% or 99% purity, as determined, for example, by electrophoresis (e.g., SDS-PAGE, isoelectric focusing (IEF), capillary electrophoresis) or chromatography (e.g., ion exchange or reverse-phase HPLC, SEC-HPLC). For a review of methods for assessing antibody purity, see, for example, Flatman et al., J. Chromatogr. B 848:79-87 (2007).
[0060] The term "size exclusion high performance liquid chromatography (SEC-HPLC)" is an important method for antibody standardization and quality control. This method isolates molecules primarily based on differences in molecular size or hydrodynamic radius. SEC-HPLC can isolate three main forms of antibodies: a high molecular weight form (HMMS), a main peak (mainly antibody monomer), and a low molecular weight form (LMMS). Antibody purity can be calculated as the ratio of the main peak area to the sum of all peak areas in the chromatogram. SEC-HPLC can measure the proportion of antibody monomer in a formulation product and provide information on the content of soluble aggregates and shear products.
[0061] The term "isolated nucleic acid" refers to a nucleic acid molecule that has been separated from a component of its natural environment. Isolated nucleic acid includes a nucleic acid molecule contained in cells that normally contain the nucleic acid molecule, but the nucleic acid molecule is present extrachromosomally or at a chromosomal location that is different from its natural chromosomal location. An "isolated nucleic acid encoding a CLDN18.2-binding molecule" refers to one or more nucleic acid molecules that encode a chain or fragment thereof of a CLDN18.2-binding molecule, including such nucleic acid molecules in a single vector or separate vectors, and such nucleic acid molecules present at one or more locations in a host cell.
[0062] Calculation of sequence identity between sequences is performed as follows.
[0063] To determine the percent identity of two amino acid sequences or two nucleic acid sequences, the sequences are aligned for optimal comparison (e.g., gaps may be introduced into one or both of the first and second amino acid or nucleic acid sequences for optimal alignment, or non-homologous sequences may be discarded for comparison). In one preferred embodiment, the length of the reference sequence aligned for comparison is at least 30%, preferably at least 40%, more preferably at least 50%, 60%, and even more preferably at least 70%, 80%, 90%, or 100% of the length of the reference sequence. The amino acid residues or nucleotides at corresponding amino acid positions or nucleotide positions are then compared. If a position in the first sequence is occupied by the same amino acid residue or nucleotide as the corresponding position in the second sequence, the molecules are identical at this position.
[0064] Comparison of sequences and calculation of percent identity between two sequences can be accomplished using a mathematical algorithm. In one preferred embodiment, the Needlema and Wunsch ((1970) J. Mol. Biol. 48:444-453) algorithm incorporated into the GAP program in the GCG software package (available at http: / / www.gcg.com) is used to determine percent identity between two amino acid sequences using a Blossum 62 matrix or a PAM250 matrix and a gap weight of 16, 14, 12, 10, 8, 6, or 4 and a length weight of 1, 2, 3, 4, 5, or 6. In yet another preferred embodiment, the GAP program in the GCG software package (available at http: / / www.gcg.com) is used to determine percent identity between two nucleotide sequences using a NWSgapdna.CMP matrix and a gap weight of 40, 50, 60, 70, or 80 and a length weight of 1, 2, 3, 4, 5, or 6. A particularly preferred parameter set (and the parameter set that should be used unless otherwise specified) is a Blossum 62 scoring matrix, with a gap penalty of 12, a gap extension penalty of 4, and a frameshift gap penalty of 5.
[0065] Additionally, the percent identity between two amino acid or nucleotide sequences can be determined using the E. Meyers and W. Miller algorithm ((1989) CABIOS, 4:11-17) incorporated into the ALIGN program (version 2.0), using a PAM120 weighted coset table, a gap length penalty of 12, and a gap penalty of 4.
[0066] Additionally or alternatively, the nucleic acid and protein sequences described herein may further be used as "query sequences" to perform searches against common databases, for example, to identify other family member sequences or related sequences.
[0067] The term "transfection" refers to the process of introducing nucleic acids into eukaryotic cells, particularly mammalian cells. Solutions and techniques used for transfection include, but are not limited to, transfection by chemical and physical methods, such as lipofection and electroporation. Many transfection techniques are well known in the art; see, for example, Graham et al., 1973, Virology 52:456; Sambrook et al., 2001, Molecular Cloning: A Laboratory Manual; Davis et al., 1986, Basic Methods in Molecular Biology, Elsevier; Chu et al., 1981, Gene 13:197.
[0068] The term "fluorescence-activated cell sorting" or "FACS" refers to a special type of flow cytometry. It provides a method for sorting heterogeneous mixtures of biological cells, one cell at a time, into two or more containers based on the specific light scatter and fluorescence characteristics of each cell (FlowMetric. "Sorting Out Fluorescence Activated Cell Sorting". 2017-11-09). Instruments for performing FACS are known to those skilled in the art and are commonly available commercially. Examples of such instruments include the FACS Star Plus, FACScan, and FACSort instruments from Becton Dickinson (Foster City, CA), the Epics C from Coulter Epics Division (Hialeah, FL), and the MoFlo from Cytomation (Colorado Springs, Colorado).
[0069] The term "CLDN18.2-associated disease" refers to any condition caused by, exacerbated by, or otherwise associated with increased expression or activity of CLDN18.2 (eg, human CLDN18.2).
[0070] The term "pharmaceutical composition" refers to a composition that is present in a form that allows the biological activity of the active ingredient contained therein to be effective, and that does not contain other ingredients that are unacceptably toxic to the subject to which the composition is administered.
[0071] The term "pharmaceutical adjuvant" refers to a diluent, adjuvant (eg, Freund's adjuvant (complete and incomplete)), carrier, excipient, stabilizer, or the like, administered with an active substance.
[0072] As used herein, "treatment" refers to slowing, interrupting, preventing, ameliorating, halting, reducing, or reversing the progression or severity of an existing symptom, pathology, condition, or disease. Desired therapeutic effects include, but are not limited to, preventing the onset or recurrence of disease, alleviating symptoms, reducing any direct or indirect pathological consequences of disease, preventing metastasis, slowing the rate of disease progression, ameliorating or alleviating the disease state, and remission or improved prognosis. In some embodiments, the antibody molecules of the invention are used to delay or slow the progression of disease.
[0073] The term "therapeutic agent" as used herein covers any substance that is effective in treating a tumor (e.g., cancer), including chemotherapeutic agents, cytotoxic agents, other antibodies, small molecule drugs, or immunomodulatory agents.
[0074] The term "chemotherapeutic agent" as used herein includes chemical compounds useful in the treatment of cancer, including, but not limited to, antitumor agents such as alkylating agents, antimetabolites, antiestrogens, antiandrogens, and nonsteroidal antiandrogens, etc. For examples of chemotherapeutic agents, see those disclosed in WO2015 / 153513 or WO2016 / 028672 or WO2015 / 138920.
[0075] As used herein, "immunomodulatory agent" refers to a natural or synthetic active agent or drug that suppresses or modulates an immune response. The immune response may be a humoral or cellular response. Immunomodulatory agents include inhibitors of immune checkpoint molecules and activators of costimulatory molecules.
[0076] As used herein, the term "cytotoxic agent" refers to a substance that inhibits or prevents cell function and / or causes cell death or destruction. Examples of cytotoxic agents are disclosed in WO2015 / 153513, WO2016 / 028672 or WO2015 / 138920.
[0077] The term "combination product" refers to a fixed or non-fixed combination or kit of parts for combined administration in the form of a single dosage unit, in which two or more therapeutic agents are independently administered simultaneously at the same time, or separately within a certain time interval, particularly when these time intervals allow the combined therapeutic agents to exhibit a cooperative, e.g., synergistic, effect. The term "fixed combination" refers to the simultaneous administration of a CLDN18.2-binding molecule of the present invention and a combination partner (e.g., another therapeutic agent, e.g., an anti-PD-1 antibody or an anti-PD-L1 antibody) to a patient in the form of a single entity or dosage. A "non-fixed combination" refers to the simultaneous administration of a CLDN18.2-binding molecule of the present invention and a combination partner (e.g., another therapeutic agent, e.g., an anti-PD-1 antibody or an anti-PD-L1 antibody) to a patient as separate entities simultaneously, in parallel, or sequentially without specific time limitations, where such administration provides therapeutically effective levels of the two therapeutic agents in the patient's body. The latter also applies to cocktail therapy, e.g., the administration of three or more therapeutic agents. In one preferred embodiment, the drug combination is a non-fixed combination.
[0078] The terms "combination therapy" or "combination therapy" refer to the administration of two or more therapeutic agents to treat cancer as described in the present disclosure. Such administration includes the conjoint administration of these therapeutic agents substantially simultaneously, e.g., in a single capsule having a fixed ratio of active ingredients. Alternatively, such administration includes the joint, separate, or sequential administration of each active ingredient in multiple or separate containers (e.g., tablets, capsules, powders, and liquids). The powders and / or liquids can be reconstituted or diluted to the desired dosage before administration. In some embodiments, administration further includes sequential use of each type of therapeutic agent at about the same time or at different times. In either case, the treatment regimen provides the beneficial effect of the drug combination in treating the disease or condition described herein.
[0079] The term "vector," as used herein, refers to a nucleic acid molecule capable of propagating another nucleic acid to which it is linked. The term includes vectors as self-replicating nucleic acid structures and vectors that integrate into the genome of a host cell into which they are introduced. Some vectors are capable of directing the expression of nucleic acids that are operatively linked to them. Such vectors are referred to herein as "expression vectors."
[0080] The term "host cell" refers to a cell into which an exogenous polynucleotide has been introduced and to the progeny of such a cell. Host cells include "transformants" and "transformed cells," including the primary transformed cell and its progeny, without regard to the number of transfers. Progeny may not be completely identical to the parent cell in terms of nucleic acid material and may contain mutations. As used herein, "host cells" include mutant progeny that have the same function or biological activity as screened or selected from the originally transformed cell. Host cells are any type of cell line that can be used to produce the antibody molecules of the invention, including eukaryotic cells, e.g., mammalian cells, insect cells, and yeast cells, and prokaryotic cells, e.g., E. coli cells. Host cells include cultured cells, including cells within transgenic animals, transgenic plants, or cultured plant or animal tissue.
[0081] The term "subject / patient sample" refers to a collection of cells, tissues, or bodily fluids obtained from a patient or subject. The source of the tissue or cell sample can be solid tissue, e.g., from a fresh, frozen, and / or preserved organ or tissue sample or a biopsy or aspirate sample; blood or any blood component; bodily fluids such as cerebrospinal fluid, amniotic fluid (amniotic fluid), peritoneal fluid (ascites), or interstitial fluid; cells from a subject during pregnancy or at any stage of development. Tissue samples may contain compounds that are not naturally mixed with tissue in nature, such as preservatives, anticoagulants, buffers, fixatives, nutrients, antibiotics, etc. As used herein, examples of tumor samples include, but are not limited to, tumor biopsies, fine needle aspirates, bronchial washings, pleural fluid (pleural effusion), sputum, urine, surgical specimens, circulating tumor cells, serum, plasma, circulating plasma proteins, ascites, primary cell cultures or cell lines derived from tumors or exhibiting tumor-like properties, and archived tumor samples such as formalin-fixed, paraffin-embedded or frozen tumor samples.
[0082] The term "packaging insert" refers to instructions typically included in the commercial packaging of a therapeutic product, which contain information regarding the indications, methods of use, dosage, administration, concomitant therapy, contraindications and / or warnings related to the application of such therapeutic product. II. CLDN18.2-Binding Molecules of the Invention
[0083] The CLDN18.2 binding molecule of the present invention comprises at least one single domain antibody (sdAb) portion that specifically binds to CLDN18.2 but does not or does not substantially bind to CLDN18.1, said sdAb portion comprising, from N-terminus to C-terminus, three complementarity determining regions, CDR1, CDR2 and CDR3, respectively, wherein: (a) CDR1 comprises the amino acid sequence of SEQ ID NO: 1 or a variant of the amino acid sequence of SEQ ID NO: 1 with one or two amino acid changes; (b) CDR2 comprises the amino acid sequence of SEQ ID NO: 2 or a variant of the amino acid sequence of SEQ ID NO: 2 with one or two amino acid changes; and (c) CDR3 comprises the amino acid sequence of SEQ ID NO: 3 or a variant of the amino acid sequence of SEQ ID NO: 3 with one or two amino acid changes; Here, the amino acid change is an amino acid addition, deletion, or conservative amino acid substitution.
[0084] In some embodiments, the CLDN18.2-binding molecules of the present invention bind to mammalian CLDN18.2, e.g., human CLDN18.2. For example, the CLDN18.2-binding molecules of the present invention specifically bind to the extracellular domain 1 (ECD1) of human CLDN18.2.
[0085] In some embodiments, the CLDN18.2 binding molecule of the invention comprises: (1) binds to CLDN18.2, e.g., human CLDN18.2, with high affinity, e.g., the EC 50 is about 0.1 μg / mL to about 10 μg / mL, preferably about 0.1 μg / mL to about 1 μg / mL; (2) specifically binds to CLDN18.2 and does not bind to CLDN18.1; (3) killing CLDN18.2-positive cancer cells by antibody-dependent cellular cytotoxicity and / or complement-dependent cytotoxicity.
[0086] In some embodiments, the sdAb portion of the CLDN18.2 binding molecule of the invention comprises a CDR1 containing the amino acid sequence SEQ ID NO: 1, a CDR2 containing the amino acid sequence SEQ ID NO: 2, and a CDR3 containing the amino acid sequence SEQ ID NO: 3.
[0087] In some embodiments, the CLDN18.2 binding molecules of the present invention comprise at least one single domain antibody (sdAb) portion that specifically binds to CLDN18.2, and the sdAb portion is a VHH. In some embodiments, the VHH is (i) The amino acid sequence of SEQ ID NO: 4 or 5, (ii) An amino acid sequence having at least 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identity with the amino acid sequence of SEQ ID NO: 4 or 5, or (iii) Comprising or consisting of an amino acid sequence having one or more (preferably 10 or less, more preferably 6, 5, 4, 3, 2, 1 or less) amino acid changes (preferably amino acid substitutions, more preferably amino acid conservative substitutions) compared to the amino acid sequence of SEQ ID NO: 4 or 5, and preferably, said amino acid changes do not occur in the CDR region.
[0088] In some embodiments, the CLDN18.2 binding molecule of the present invention comprises at least one single domain antibody (sdAb) portion that specifically binds to CLDN18.2, and said sdAb portion is a partially humanized or fully humanized VHH, a chimeric VHH. Compared with the VHH of camelidae animals, the partially humanized or fully humanized VHH and chimeric VHH of the present invention have a reduced human anti-camelidae antibody response to the human body, improve the safety of antibody application, and are VHHs with mature affinity.
[0089] In some embodiments, the N-terminus or C-terminus of the sdAb portion of the CLDN18.2 binding molecule of the present invention is linked to the Fc region of an immunoglobulin, optionally via an amino acid linker, for example, via an amino acid linker with a length of 1 to 20 amino acids. In some embodiments, at least 90% of said amino acid linker is glycine and / or serine amino acids. In some embodiments, said Fc region is from IgG, such as from IgG1, IgG2, IgG3 or IgG4. In some embodiments, said Fc region is from IgG1. In some embodiments, said Fc region is from human IgG1.
[0090] In some embodiments of the invention, the amino acid changes described herein comprise amino acid substitutions, insertions or deletions. Preferably, the amino acid changes described herein are amino acid substitutions, preferably conservative substitutions.
[0091] In preferred embodiments, the amino acid changes described herein occur in regions outside the CDRs (e.g., FRs). More preferably, the amino acid changes described herein occur in regions outside the VHH. In some embodiments, the substitutions are conservative substitutions. A conservative substitution refers to the substitution of one amino acid with another amino acid within the same class, for example, the substitution of one acidic amino acid with another acidic amino acid, one basic amino acid with another basic amino acid, or one neutral amino acid with another neutral amino acid. Exemplary substitutions are shown in Table 1 below.
[0092] [Table 1]
[0093] In some embodiments, the glycosylation level of a CLDN18.2-binding molecule provided herein is increased or decreased by modification. Addition or deletion of glycosylation sites in a CLDN18.2-binding molecule can be easily achieved by modifying the amino acid sequence to create or remove one or more glycosylation sites. When a CLDN18.2-binding molecule contains an Fc region, the sugars linked to the Fc region can be altered. In some applications, removal of undesired glycosylation site modifications can be useful; for example, removal of the fucose module can improve antibody-dependent cellular cytotoxicity (ADCC) function (see Shield et al. (2002) JBC 277:26733). In other applications, galactosylation modifications can be performed to modulate complement-dependent cytotoxicity (CDC). In some embodiments, one or more amino acid modifications can be introduced into the Fc region of a CLDN18.2-binding molecule provided herein to generate an Fc region variant, thereby enhancing the efficacy of the CLDN18.2-binding molecule of the present invention in treating cancer, for example.
[0094] In some embodiments, the CLDN18.2-binding molecules of the present invention are in the form of bispecific or multispecific antibody molecules. In one embodiment, the bispecific antibody molecule binds to CLDN18.2 and PD-1. The multispecific antibody molecule may be, for example, a trispecific antibody molecule, comprising a first binding specificity for CLDN18.2 and second and third binding specificities for one or more of PD-1, PD-L1, 4-1BB, OX40, or LAG-3. III. Immunoconjugates
[0095] The present invention further relates to CLDN18.2-binding molecules conjugated to another substance ("immunoconjugates"). In some embodiments, the other substance is, for example, a therapeutic agent (e.g., a cytotoxic agent). Cytotoxic agents include any agent that is detrimental to cells. Examples of cytotoxic agents (e.g., chemotherapeutic agents) suitable for forming immunoconjugates are known in the art. For example, cytotoxic agents include, but are not limited to, toxins such as small molecule toxins or enzymatically active toxins of bacterial, fungal, plant, or animal origin, including radioisotopes, growth inhibitory agents, fragments and / or variants thereof, and various known anti-tumor or anti-cancer agents.
[0096] For further examples of cytotoxic agents (e.g., chemotherapeutic agents) suitable for forming immunoconjugates, see, for example, WO2015 / 153513 or WO2015 / 138920.
[0097] The CLDN18.2-binding molecules of the present invention may also be linked to solid supports, which may be used, inter alia, in immunoassays or for purifying target antigens. Such solid supports include, but are not limited to, glass, cellulose, polyacrylamide, nylon, polystyrene, polyvinyl chloride, or polypropylene.
[0098] In some embodiments, the immunoconjugate is for treating a tumor. In some embodiments, the tumor is a cancer. IV. Nucleic Acids of the Invention and Host Cells Containing Them
[0099] In one aspect, the present invention provides a nucleic acid encoding any of the above CLDN18.2 binding molecules, or fragments thereof, or any one chain thereof. In one embodiment, a vector comprising the nucleic acid is provided. In one embodiment, the vector is an expression vector. In one embodiment, a host cell comprising the nucleic acid or vector is provided. In one embodiment, the host cell is a eukaryotic cell. In another embodiment, the host cell is selected from yeast cells, mammalian cells (e.g., CHO cells or 293 cells), or other cells suitable for preparing antibodies or antigen-binding fragments thereof. In another embodiment, the host cell is a prokaryotic cell.
[0100] For example, the nucleic acids of the present invention include nucleic acids encoding any one of the amino acid sequences set forth in SEQ ID NOs: 4, 5, 8, and 9, or nucleic acids encoding an amino acid sequence having at least 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% identity to any one of the amino acid sequences set forth in SEQ ID NOs: 4, 5, 8, and 9.
[0101] The present invention further covers nucleic acids that hybridize under stringent conditions to the following nucleic acids, or that encode polypeptide sequences that have one or more amino acid substitutions (e.g., conservative substitutions), deletions, or insertions compared to the following nucleic acids: a nucleic acid comprising a nucleic acid sequence that encodes an amino acid sequence set forth in any one of SEQ ID NOs: 4, 5, 8, 9, or a nucleic acid comprising a nucleic acid sequence that encodes an amino acid sequence having at least 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identity to an amino acid sequence set forth in any one of SEQ ID NOs: 4, 5, 8, 9.
[0102] In one embodiment, one or more vectors containing the nucleic acid are provided. In one embodiment, the vector is an expression vector, e.g., a eukaryotic expression vector. Vectors include, but are not limited to, viruses, plasmids, cosmids, lambda phage, or yeast artificial chromosomes (YACs). In one embodiment, the vector is a pcDNA3.3-TOPO vector.
[0103] Once the expression vector or DNA sequence for expression has been prepared, the expression vector may be transfected or introduced into a suitable host cell. Various techniques, such as protoplast fusion, calcium phosphate precipitation, electroporation, reverse transcription viral transduction, viral transfection, gene gun, lipofection, or other common techniques, can be used to achieve this. In the case of protoplast fusion, the cells are cultured in culture medium and screened for appropriate activity. Methods and conditions for culturing the resulting transfected cells and recovering the produced antibody molecules are known to those skilled in the art and can be modified or optimized based on this specification and methods known in the art depending on the particular expression vector and mammalian host cell used.
[0104] Alternatively, cells that have already stably integrated the DNA into their chromosomes can be selected by introducing one or more markers that allow for selection of transfected host cells. Markers can provide, for example, prototrophy in an auxotrophic host, biocide resistance (e.g., antibiotics), or heavy metal (e.g., copper) resistance. The selectable marker gene can be directly linked to the DNA sequence to be expressed or introduced into the same cell by co-transformation. Additional elements may be required for optimal mRNA synthesis. These elements may include splicing signals, transcription promoters, enhancers, and termination signals.
[0105] In one embodiment, a host cell is provided comprising a polynucleotide of the present invention. In some embodiments, a host cell is provided comprising an expression vector of the present invention. In some embodiments, the host cell is selected from yeast cells, mammalian cells, or other cells suitable for producing antibodies. Suitable host cells include prokaryotic microorganisms such as E. coli. Host cells may also be eukaryotic microorganisms such as filamentous fungi or yeast, or various eukaryotic cells, such as insect cells. Vertebrate cells may also be used as hosts. For example, mammalian cell lines engineered for suspension growth may be used. Examples of useful mammalian host cell lines include SV40-transformed monkey kidney CV1 line (COS-7), human embryonic kidney line (HEK293 or 293F cells), 293 cells, baby hamster kidney cells (BHK), 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 (HepG2), Chinese hamster ovary cells (CHO cells), myeloma cell lines such as CHO-S cells, NSO cells, Y0, NS0, P3X63, and Sp2 / 0. For a review of mammalian host cell lines suitable for protein production, see, e.g., Yazaki and Wu, Methods in Molecular Biology, Vol. 248 (ed. BKC Lo, Humana Press, Totowa, NJ), pp. 255-268 (2003). In one preferred embodiment, the host cells are CHO cells or HEK293 cells. V. Production and Purification of CLDN18.2 Binding Molecules of the Invention
[0106] In one embodiment, the invention provides a method for preparing a CLDN18.2-binding molecule, the method comprising culturing a host cell comprising a nucleic acid encoding the CLDN18.2-binding molecule or an expression vector for said nucleic acid under conditions suitable for expression of the nucleic acid encoding the CLDN18.2-binding molecule, and optionally isolating the CLDN18.2-binding molecule. In some embodiments, the method further comprises recovering the CLDN18.2-binding molecule from the host cell (or host cell culture medium).
[0107] To recombinantly produce a CLDN18.2-binding molecule of the present invention, a nucleic acid encoding the CLDN18.2-binding molecule of the present invention is first isolated and inserted into a vector for further cloning and / or expression in a host cell. Such nucleic acid is readily isolated and sequenced by routine procedures, for example, by using an oligonucleotide probe capable of specifically binding to the nucleic acid encoding the CLDN18.2-binding molecule of the present invention.
[0108] The CLDN18.2-binding molecules of the present invention prepared as described herein can be purified by known conventional techniques, such as high-performance liquid chromatography, ion-exchange chromatography, gel electrophoresis, affinity chromatography, size-exclusion chromatography, etc. The actual conditions for purifying a particular protein will also depend on factors such as net charge, hydrophobicity, hydrophilicity, etc., and will be apparent to those skilled in the art. The purity of the CLDN18.2-binding molecules of the present invention can be determined by any one of several well-known analytical methods, including size-exclusion chromatography, gel electrophoresis, high-performance liquid chromatography, etc. VI. Methods for measuring the activity of CLDN18.2-binding molecules of the present invention
[0109] The CLDN18.2-binding molecules of the present invention can be identified, screened, or characterized for their physical / chemical properties and / or biological activity by several assays known in the art. Alternatively, the antigen-binding activity of the CLDN18.2-binding molecules of the present invention can be tested by known methods, such as FACS, ELISA, or Western blotting. Binding to CLDN18.2 can be measured by methods known in the art, and exemplary methods are disclosed herein. In some embodiments, FACS is used to measure the binding of the CLDN18.2-binding molecules of the present invention to cell surface CLDN18.2 (e.g., human CLDN18.2).
[0110] The present invention further provides an assay method for identifying CLDN18.2-binding molecules having biological activity, which may include, for example, ADCC activity, CDC activity, etc.
[0111] Cells used in any of the above in vitro assays include cell lines that naturally express CLDN18.2 or that have been engineered to express CLDN18.2. The cell lines engineered to express CLDN18.2 are cell lines that do not normally express CLDN18.2 but that express CLDN18.2 after transfection with DNA encoding CLDN18.2.
[0112] As can be appreciated, any of the above assays can be performed using an immunoconjugate of the invention in place of a CLDN18.2 binding molecule. VII. Drug Compositions and Drug Formulations
[0113] In some embodiments, the present invention provides a composition comprising any of the CLDN18.2-binding molecules or immunoconjugates thereof described herein, preferably a pharmaceutical composition. In one embodiment, the composition further comprises a pharmaceutical adjuvant. In one embodiment, the composition (e.g., a pharmaceutical composition) comprises a combination of the CLDN18.2-binding molecule of the present invention or an immunoconjugate thereof and one or more other therapeutic agents (e.g., a chemotherapeutic agent, a cytotoxic agent, another antibody, a small molecule drug, or an immunomodulatory agent, such as an anti-PD-1 antibody or an anti-PD-L1 antibody).
[0114] In some embodiments, the composition is for treating a tumor. In some embodiments, the tumor is cancer.
[0115] The present invention further includes compositions (including pharmaceutical compositions or pharmaceutical formulations) comprising a CLDN18.2-binding molecule or an immunoconjugate thereof and / or compositions (including pharmaceutical compositions or pharmaceutical formulations) comprising a polynucleotide encoding a CLDN18.2-binding molecule. These compositions may further comprise suitable pharmaceutical adjuvants, such as pharmaceutical vectors and pharmaceutical excipients including buffering agents, known in the art.
[0116] As used herein, "medicinal vector" includes any and all physiologically compatible solvents, dispersion media, isotonic and absorption delaying agents, and the like. Medicinal vectors suitable for the present invention may be sterile liquids, such as water and oils, including those of petroleum, animal, vegetable, or synthetic origin, such as peanut oil, soybean oil, mineral oil, sesame oil, and the like. Water is a preferred vector when the pharmaceutical composition is administered intravenously. Physiological saline, aqueous dextrose, and glycerin solutions may also be used as liquid vectors, particularly injectable solutions. Suitable excipients include starch, glucose, lactose, sucrose, gelatin, malt, rice, flour, chalk, silica gel, sodium stearate, glyceryl monostearate, talc, sodium chloride, nonfat dry milk, glycerol, propylene, diol, water, ethanol, and the like. For a discussion of the use of excipients and their applications, see also "Handbook of Pharmaceutical Excipients", 5th Edition, R.C. Rowe, P.J. Eskey and S.C. Owen, Pharmaceutical Press, London, Chicago. If desired, the compositions may further contain minor amounts of wetting or emulsifying agents, or pH buffering agents. These compositions can take the form of solutions, suspensions, emulsions, tablets, pills, capsules, powders, sustained-release formulations, and the like.
[0117] Pharmaceutical formulations containing the CLDN18.2 binding molecules described herein can be prepared by mixing the CLDN18.2 binding molecules of the present invention having the desired purity with one or more optional pharmaceutical adjuvants (Remington's Pharmaceutical Sciences, 16th Edition, edited by Osol, A. (1980)), preferably in the form of a lyophilized formulation or an aqueous solution.
[0118] The pharmaceutical compositions or formulations of the present invention may further comprise more than one active ingredient as needed for the particular indication being treated, preferably with active ingredients that have complementary activities that do not adversely affect each other. For example, it may be desirable to further provide other anti-cancer active ingredients, such as chemotherapeutic agents, cytotoxic agents, other antibodies, small molecule drugs, or immunomodulators, such as anti-PD-1 antibodies and anti-PD-L1 antibodies. The active ingredients are present in an appropriate combination in amounts effective for the intended use.
[0119] Sustained-release preparations can be prepared. Suitable examples of sustained-release preparations include semipermeable matrices containing solid hydrophobic polymers of the CLDN18.2 binding molecules of the invention, which matrices are in the form of shaped articles, e.g., films, or microcapsules. VIII. Combination Products or Kits
[0120] In some embodiments, the present invention further provides a combination product comprising a CLDN18.2-binding molecule of the present invention, or an antigen-binding fragment thereof, or an immunoconjugate thereof, and one or more other therapeutic agents (e.g., a chemotherapeutic agent, another antibody, a cytotoxic agent, a small molecule drug, or an immunomodulatory agent, etc.). In some embodiments, the other antibody is, for example, an anti-PD-1 antibody or an anti-PD-L1 antibody.
[0121] In some embodiments, the combination product is for treating a tumor, hi some embodiments, the tumor is a cancer or the like.
[0122] In some forms, two or more components of the combination product may be co-administered to a subject sequentially, separately or simultaneously.
[0123] In some embodiments, the present invention further provides kits comprising the CLDN18.2 binding molecules, pharmaceutical compositions, immunoconjugates or combination products of the invention, and optional packaging inserts providing instructions for administration.
[0124] In some embodiments, the present invention further provides a drug product comprising the CLDN18.2 binding molecule, drug composition, immunoconjugate, or combination product of the present invention, optionally further comprising a packaging insert providing instructions for administration. IX. Uses of the CLDN18.2 Binding Molecules of the Invention
[0125] In one aspect, the present invention relates to a method for treating a disease associated with CLDN18.2 in a subject, the method comprising administering to the subject a therapeutically effective amount of a CLDN18.2 binding molecule disclosed herein or a pharmaceutical composition or immunoconjugate or combination product comprising same.
[0126] In some embodiments, the present invention relates to a method for treating a cancer that expresses or overexpresses CLDN18.2 in a subject, the method comprising administering to the subject a therapeutically effective amount of a CLDN18.2-binding molecule disclosed herein or a pharmaceutical composition or immunoconjugate or combination product comprising same. In some embodiments, the cancer expressing or overexpressing CLDN 18.2 is, for example, bone cancer, blood cancer, lung cancer, liver cancer, pancreatic cancer, esophageal cancer, skin cancer, head and neck cancer, cutaneous or intraocular melanoma, uterine cancer, ovarian cancer, rectal cancer, anal cancer, stomach cancer, colon cancer, breast cancer, prostate cancer, uterine cancer, cancer of the genital and reproductive organs, Hodgkin's disease, esophageal cancer, small intestine cancer, endocrine system cancer, thyroid cancer, parathyroid cancer, adrenal cancer, soft tissue sarcoma, bladder cancer, kidney cancer, renal cell carcinoma, renal pelvis cancer, central nervous system (CNS) tumor, neuroectodermal cancer, spinal axis tumor, glioma, meningioma, and pituitary adenoma; preferably, the cancer is gastric cancer, pancreatic cancer, esophageal cancer, ovarian cancer, or lung cancer.
[0127] The subject can be a mammal, e.g., a primate, preferably a higher primate, e.g., a human (e.g., a patient suffering from or at risk of suffering from a disease described herein). In one embodiment, the subject has or is at risk of suffering from a disease described herein (e.g., a tumor described herein). In some embodiments, the subject is undergoing or has undergone other treatments, e.g., chemotherapy and / or radiation therapy.
[0128] In some embodiments, cancers described herein include, but are not limited to, solid tumors, hematological cancers, soft tissue tumors, and metastatic lesions.
[0129] In some embodiments, the methods of treatment described herein further comprise co-administering to the subject or individual a CLDN18.2 binding molecule or drug composition or immunoconjugate or combination product disclosed herein and one or more other therapies, e.g., therapeutic regimens and / or other therapeutic agents.
[0130] In some embodiments, the treatment modality includes surgery (e.g., tumor resection), radiation therapy (e.g., external particle beam radiation therapy, which involves three-dimensional conformal radiation therapy, to which an irradiation region is designed), local irradiation (e.g., radiation directed to a preselected target or organ) or focused irradiation), etc. The focused irradiation may be selected from stereotactic radiosurgery, fractionated stereotactic radiosurgery, and intensity-modulated radiation therapy. The focused irradiation may have a radiation source selected from particle beams (protons), cobalt-60 (photons), and linear accelerators (X-rays), as described in WO 2012 / 177624.
[0131] Radiation therapy can be administered by one of several methods or a combination of methods, including, but not limited to, external particle therapy, internal radiation therapy, implant radiation, stereotactic radiosurgery, systemic radiation therapy, radiotherapy, and permanent or temporary interstitial brachytherapy.
[0132] In some embodiments, the therapeutic agent is selected from a chemotherapeutic agent, a cytotoxic agent, another antibody, a small molecule drug, or an immunomodulatory agent (e.g., an activator of a costimulatory molecule or an inhibitor of an immune checkpoint molecule).
[0133] Exemplary other antibodies include, but are not limited to, inhibitors of immune checkpoint molecules (e.g., anti-PD-1, anti-PD-L1, anti-TIM-3, anti-CEACAM, or anti-LAG-3), antibodies that stimulate immune cells (e.g., agonist GITR antibodies or CD137 antibodies), etc. Preferably, the other antibodies are selected from anti-PD-1 antibodies and / or anti-PD-L1 antibodies. More preferably, the anti-PD-1 antibodies are nivolumab from Bristol-Myers Squibb (BMS) or pembrolizumab from Merck, and the anti-PD-L1 antibodies are atezolizumab developed by Roche, avelumab jointly developed by Merck KGaA of Germany and Pfizer of the United States, or durvalumab developed by AstraZeneca.
[0134] In some embodiments, the immunomodulatory agent is an activator or agonist of a costimulatory molecule. In one embodiment, the costimulatory molecule agonist is selected from agonists (e.g., agonist antibodies or antigen-binding fragments thereof, or soluble fusions) of the following molecules: OX40, CD2, CD27, CD28, CDS, ICAM-1, LFA-1 (CD11a / CD18), ICOS (CD278), 4-1BB (CD137), GITR, CD30, CD40, BAFFR, HVEM, CD7, LIGHT, NKG2C, SLAMF7, NKp80, CD160, B7-H3, or CD83 ligand.
[0135] The combination therapies of the present invention cover combined administration (where two or more therapeutic agents are contained in the same formulation or in separate formulations) and separate administration, in which case the administration of a CLDN18.2-binding molecule or immunoconjugate, etc., of the present invention may occur before, simultaneously with, and / or after the administration of the other therapy.
[0136] In one embodiment, the administration of the CLDN18.2 binding molecule and the administration of the other therapy (e.g., therapeutic regimen or agent) occurs within about one month of each other, or within about one, two, or three weeks, or within about one, two, three, four, five, or six days.
[0137] The CLDN18.2-binding molecules of the present invention (and pharmaceutical compositions or immunoconjugates comprising same) may be administered by any suitable method, including parenteral, pulmonary, and intranasal administration, and, if localized treatment is required, intralesional administration. Parenteral infusions include 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 dosing is short-term or chronic. The present specification covers various dosing horizons, including, but not limited to, single administration or multiple administrations at multiple time points, bolus infusion, and pulse infusion.
[0138] The appropriate dose of a CLDN18.2 binding molecule of the present invention (when used alone or in combination with one or more other therapeutic agents) for preventing or treating a disease will depend on the type of disease being treated, the type of CLDN18.2 binding molecule, the severity and progression of the disease, whether the CLDN18.2 binding molecule is administered prophylactically or therapeutically, previous treatments, the patient's clinical history and response to the CLDN18.2 binding molecule, and the judgment of the attending physician. The CLDN18.2 binding molecule is suitably administered to the patient at one time or over a series of treatments. Dosages and treatment regimens for CLDN18.2 binding molecules can be determined by those skilled in the art.
[0139] As can be appreciated, any of the above prevention or treatment may be carried out using an immunoconjugate or composition or combination product of the invention instead of a CLDN18.2 binding molecule. X. Methods and Compositions for Diagnostics and Detection
[0140] In some embodiments, any CLDN18.2-binding molecule provided herein can be used to detect the presence of CLDN18.2 in a biological sample. The term "detection," as used herein, includes quantitative or qualitative detection, and exemplary detection methods may involve immunohistochemistry, immunocytochemistry, flow cytometry (e.g., FACS), magnetic beads conjugated to antibody molecules, and ELISA assays. In some embodiments, the biological sample is blood, serum, or other bodily fluid sample derived from an organism. In some embodiments, the biological sample comprises cells or tissue. In some embodiments, the biological sample is from a hyperproliferative or cancerous lesion.
[0141] In one embodiment, a CLDN18.2-binding molecule is provided for use in a diagnostic or detection method. In another aspect, a method for detecting the presence of CLDN18.2 in a biological sample is provided. In some embodiments, the method comprises detecting the presence of CLDN18.2 protein in a biological sample. In some embodiments, the CLDN18.2 is human CLDN18.2. In some embodiments, the method comprises contacting the biological sample with a CLDN18.2-binding molecule described herein under conditions that allow binding between the CLDN18.2-binding molecule and CLDN18.2, and detecting whether a complex is formed between the CLDN18.2-binding molecule and CLDN18.2. The formation of a complex indicates the presence of CLDN18.2. The method may be an in vitro or in vivo method. In one embodiment, the CLDN18.2-binding molecule is used to select a subject suitable for treatment with the CLDN18.2-binding molecule, e.g., where CLDN18.2 is a biomarker for selecting the subject.
[0142] In one embodiment, the CLDN18.2-binding molecules of the present invention can be used to diagnose cancer or tumors, for example, to evaluate (e.g., monitor) the treatment or progression, diagnosis, and / or stage of a disease described herein (e.g., a hyperproliferative or cancerous disease) in a subject. In some embodiments, labeled CLDN18.2-binding molecules are provided. Labels include, but are not limited to, directly detected labels or moieties (e.g., fluorescent labels, chromophore labels, electron-dense labels, chemiluminescent labels, and radioactive labels), and indirectly detected moieties, e.g., by enzymatic reaction or molecular interaction, e.g., enzymes or ligands. Exemplary labels include radioisotopes, 32 P, 14 C. 125 I, 3 H and 131 Examples of suitable enzymes include, but are not limited to, I, rare earth chelates or fluorophores such as fluorescein and its derivatives, rhodamine and its derivatives, dansyl, umbelliferone, luciferases such as firefly luciferase and bacterial luciferase (U.S. Pat. No. 4,737,456), fluorescein, 2,3-dihydrophthalazinediones, horseradish peroxidase (HR), alkaline phosphatase, β-galactosidase, glucoamylase, lytic enzymes, carbohydrate oxidases such as glucose oxidase, galactose oxidase, and glucose-6-phosphate dehydrogenase, heterocyclic oxidases such as uricase and xanthine oxidase, and enzymes that utilize hydrogen peroxide oxidizing dye precursors such as HR, lactoperoxidase, or microperoxidase, biotin / avidin, spin labels, phage labels, stable radicals, and the like.
[0143] In some embodiments of any invention herein, the sample is obtained before treatment with a CLDN18.2-binding molecule. In some embodiments, the sample is obtained after the cancer has already metastasized. In some embodiments, the sample is fixed in formalin and embedded in paraffin (FFPE). In some embodiments, the sample is a biopsy (e.g., a core biopsy), a surgical specimen (e.g., a specimen from a surgical resection), or a fine needle aspirate.
[0144] In some embodiments, CLDN18.2 is detected prior to treatment, eg, prior to the initiation of treatment or prior to a treatment after a treatment interval.
[0145] In some embodiments, a method for treating a tumor is provided, the method comprising testing a subject (e.g., a sample) (e.g., a subject sample containing cancer cells) for the presence of CLDN18.2, thereby determining a CLDN18.2 level, comparing the CLDN18.2 level to a control level (e.g., the level of CLDN18.2 in a sample from a healthy individual), and if the CLDN18.2 level is greater than the control level, administering to the subject a therapeutically effective amount of a CLDN18.2 binding molecule (e.g., a CLDN18.2 binding molecule described herein), optionally in combination with one or more other therapies, thereby treating the tumor.
[0146] As can be understood, each embodiment described in each section of the present invention, e.g., disease, therapeutic agent, treatment regimen, and administration, is equally applicable to or can be combined with other embodiments of the other sections of the present invention. The embodiments described in each section of the present invention, such as properties, uses, and methods suitable for CLDN18.2-binding molecules, are equally applicable to compositions, conjugates, combination products, kits, and the like, comprising CLDN18.2-binding molecules.
[0147] Example
[0148] The following examples are intended to be merely illustrative of the present invention and should not be construed as limiting the present invention in any manner.
[0149] Example 1 Construction and identification of overexpressing cell lines 1.1 Construction and identification of NUGC4 cell lines overexpressing human CLDN18.2
[0150] The human CLDN18.2-overexpressing gastric cancer cell line NUGC4 (hereafter referred to as hCLDN18.2-NUGC4) was constructed by lentiviral transfection and identified by the antibody IMAB362 (Ganymed, Germany, an antibody that specifically binds to CLDN18.2).
[0151] The specific method is as follows: 5 x 10 4 A number of healthy human gastric cancer cells (NUGC4 cells, obtained from the BNCC Seed Bank and numbered BNCC341962) were taken, and a packaged lentivirus (CN109485734B, see the lentivirus packaging method in Example 3) containing the human CLDN18.2 sequence (SEQ ID NO: 10) was added at a multiplicity of infection (MOI) of 30:1. The cells were thoroughly mixed and homogenized. IMDM complete medium (Gibico, 2192731) containing 5 μg / mL polybrene (Wagen Bio) was added and homogenized. The cells were incubated at 37°C in a 5% CO2 incubator for 20 hours. The medium was then removed and replaced with fresh IMDM complete medium, and the incubation continued for 24 hours. The lentivirus-transfected NUGC4 cells were then seeded into a 96-well plate at an average cell density of 0.5 cells / well, with a final concentration of 2. Resistance pressure screening was performed by adding μg / mL puromycin, and the cells were cultured for 2 to 3 weeks in a constant temperature incubator at 37°C with a CO2 concentration of 5%. Clones were selected and identified using the antibody IMAB362. Ultimately, a NUGC4 cell line overexpressing human CLDN18.2 was successfully obtained, which is also referred to herein as the "hCLDN18.2-NUGC4 cell line." 1.2 Construction and identification of HEK293 cell lines overexpressing human CLDN18.2
[0152] The DNA sequence of full-length human CLDN18.2 (SEQ ID NO: 10) was constructed in the pLVX-puro plasmid (Clontech, Cat# 632164), and the resulting plasmid was then transfected into HEK293 cells (ATCC® CRL-1573 TM ) were electroporated. Cell culture was performed by screening with reference to Example 1.1, resistance pressure screening was performed with puromycin, and clones were identified using the antibody IMAB362. Ultimately, a HEK293 cell line overexpressing human CLDN18.2 was successfully obtained, which is also referred to herein as the "hCLDN18.2-HEK293 cell line." 1.3 Construction and identification of CD16a(F158)-NF-AT-Jurkat cell line
[0153] First, construct the NF-AT-Jurkat cell line: pGL4.30 plasmid (Promega, Cat. No.: E8481) containing the NFAT response element (NFAT-RE) DNA sequence was transfected with an electroporator (Invitrogen, Neon TM Jurkat cells (ATCC® TIB-152) were electroporated using the ATCC Transfection System (MP922947). After electroporation, resistance screening was performed using hygromycin B (source medium, S160J7) at a final concentration of 500 μg / mL. The growth of cell line clones was observed over a period of approximately 2-3 weeks, and cell lines from which clones were formed were selected and identified. The identification method was as follows. Some clones were transferred to a 96-well white-bottom plate (Corning, 3610) and stimulated with PMA (10 ng / mL) and ionomycin (1 nM). After incubation in a 37°C, 5% CO2 incubator for 6 hours, Bright glo (Vazyme, DD1204-01) was added. The signal was read using a microplate reader (Molecular Devices: Spectramax i3x). The NF-κB expression levels of different clones were evaluated, and Jurkat cell lines with high NF-AT gene expression (abbreviated as NF-AT-Jurkat cell lines) were obtained.
[0154] The NF-AT-Jurkat cell line was treated with a packaged lentivirus containing the CD16a(F158) sequence (UniProtKB-P08637, where the 158th amino acid is F phenylalanine) at a multiplicity of infection (MOI) of 20:1. Puromycin was added to a final concentration of 2 μg / mL for resistance pressure screening. The cells were then cultured at 37°C in a 5% CO2 incubator for 2-3 weeks, and clones were selected and identified (see Example 7 of the present application for the identification method). Finally, the CD16a(F158)-NF-AT-Jurkat cell line was successfully isolated.
[0155] Example 2 Affinity maturation engineering of anti-CLDN18.2 nanobodies
[0156] In order to improve the specific binding of nanobody Nb-NA3S-H1 to human CLDN18.2, this example carried out affinity maturation modification on nanobody Nb-NA3S-H1.
[0157] Each of the three CDRs defined by AbM of nanobody Nb-NA3S-H1 was mutated at a single site or two consecutive sites, and an affinity-matured phage display library was constructed. The affinity-matured molecules were screened using phage display technology. For the screening method, see Example 3 in WO 2020238730A1.
[0158] After affinity maturation, candidate nanobody Nb-NA3S-H1-T4 was obtained. The complementarity determining region sequence of candidate nanobody Nb-NA3S-H1-T4 was determined by defining CDRs using AbM, and the amino acid sequence of the CDRs is shown in Table 2.
[0159] [Table 2]
[0160] Example 3 Humanization of affinity matured nanobody Nb-NA3S-H1-T4
[0161] The variable region sequences of nanoantibody Nb-NA3S-H1-T4 were aligned with the human antibody germline gene (Germline) database to find one to three germline genes with high homology to nanoantibody Nb-NA3S-H1-T4. Furthermore, considering the drug discovery potential of the germline genes, appropriate germline gene Germline templates were selected for alignment.
[0162] Homology modeling was performed on the nanoantibody Nb-NA3S-H1-T4, and the nanoantibody structural model in the PDB database (http: / / www.rcsb.org / ) was referenced for homology modeling. Combinatorial backmutation design was performed based on the structural model of the nanoantibody Nb-NA3S-H1-T4 and the non-human-derived sites. By backmutation design, the introduction of potential post-translational modification sites was avoided, and finally, the candidate nanoantibody Nb-NA3S-H1-T4-hVH6 with a humanization degree of 96.67% was designed.
[0163] The amino acid sequences (heavy chain single domain variable region) of candidate nanobodies Nb-NA3S-H1-T4 and Nb-NA3S-H1-T4-hVH6 are shown in Table 3.
[0164] [Table 3]
[0165] Example 4 Construction of anti-CLDN18.2 heavy chain antibody
[0166] The C-terminus of the amino acid sequences of nanobody Nb-NA3S-H1, nanobody Nb-NA3S-H1-T4, and nanobody Nb-NA3S-H1-T4-hVH6 was linked to the N-terminus of the human IgG1 Fc region (amino acid sequence shown in SEQ ID NO: 6), respectively, to construct the anti-CLDN18.2 heavy chain antibodies NA3SH1, NA3SH1-T4, and NA3SH1-T4-hVH6.
[0167] Specifically, the gene sequences of Nanobody Nb-NA3S-H1, Nanobody Nb-NA3S-H1-T4, and Nanobody Nb-NA3S-H1-T4-hVH6, as well as the gene sequence of the hIgG1 Fc region (amino acid sequence shown in SEQ ID NO: 6), were obtained by PCR amplification. The gene sequences of each Nanobody were linked to the hIgG1 Fc region gene sequence by overlap extension PCR, and then constructed into the modified eukaryotic expression vector plasmid pcDNA3.3-TOPO (Invitrogen, product code: K830001) by homologous recombination. The expression vectors containing the gene sequences of each anti-CLDN18.2 heavy chain antibody were transformed into E. coli SS320 cells and cultured overnight at 37°C. Plasmid extraction was performed using an endotoxin-free plasmid extraction kit (OMEGA, D6950-01), yielding endotoxin-free anti-CLDN18.2 heavy chain antibody plasmids for eukaryotic expression.
[0168] The amino acid sequences corresponding to the anti-CLDN18.2 heavy chain antibodies are shown in Table 4.
[0169] [Table 4]
[0170] Example 5 Expression, purification and physicochemical characterization of anti-CLDN18.2 heavy chain antibodies 5.1 Expression and Purification of Anti-CLDN18.2 Heavy Chain Antibodies
[0171] The anti-CLDN18.2 heavy chain antibody was expressed using the ExpiCHO transient expression system (Thermo Fisher, A29133). The specific method is as follows: On the day of transfection, the ExpiCHO cell density was increased to 7 × 10 6 ~1×10 7 The cells were cultured in fresh ExpiCHO expression medium pre-warmed to 37°C to a final concentration of 6 x 10 viable cells / mL with a cell viability of >98%. 6 The cells were adjusted to 100 cells / mL.TM The target plasmid was diluted with SFM (1 μg of the anti-CLDN18.2 heavy chain antibody plasmid prepared in Example 4 was added to 1 mL of the medium), and the target plasmid was diluted with OptiPRO TM ExpiFectamine in SFM TM Dilute CHO, mix the two in equal volumes, gently pipette to mix evenly, and add ExpiFectamine TM The CHO / plasmid DNA mixture was prepared and incubated at room temperature for 1-5 min. Then, it was gradually added to the prepared ExpiCHO cell suspension while gently shaking. Finally, the cells were placed on a cell culture shaker and cultured at 37°C in 8% CO2. 18-22 h after transfection, the ExpiCHO DNA was added to the culture medium. TM Enhancer and ExpiCHO TM Feed was added, and the shake flask was continued to be cultured under the conditions of 32°C shaker and 5% CO2. On the 5th day after transfection, the same volume of ExpiCHO TM Feed was added gradually, gently mixing the cell suspension until uniform. Seven to 15 days after transfection, the cell culture supernatant containing the target protein was centrifuged at 15,000 g for 10 minutes. The resulting supernatant was affinity purified using MabSelect SuRe LX (GE, 17547403). The target protein was eluted with 100 mM sodium acetate (pH 3.0), neutralized with 1 M Tris-HCl, and finally transferred to an ultrafiltration tube (Millipore, UFC901096) where it was replaced with PBS buffer. 5.2 SDS-PAGE Identification of Anti-CLDN18.2 Heavy Chain Antibody
[0172] Preparation of non-reducing solutions: 1 μg of each heavy chain antibody and reference sample ipilimumab (also abbreviated as IPI, prepared in a manner similar to Example 5.1) was added to 5x SDS sampling buffer and 40 mM iodoacetamide, heated in a 75°C dry bath for 10 minutes, cooled to room temperature, centrifuged at 12,000 rpm for 5 minutes, and the supernatant was collected.
[0173] Preparation of reducing solution: 2 μg of each heavy chain antibody and reference IPI was added to 5x SDS sampling buffer and 5 mM DTT, heated in a 100°C dry bath for 10 minutes, cooled to room temperature, centrifuged at 12,000 rpm for 5 minutes, and the supernatant was collected.
[0174] Each supernatant was loaded onto a Bis-Tris 4-15% gradient gel (purchased from Jinsrui) and electrophoresed at a constant voltage of 110 V. When the Coomassie Brilliant Blue stain reached the bottom of the gel, the gel was stopped, removed, and placed in Coomassie Brilliant Blue staining solution for 1-2 hours. The staining solution was discarded, and destaining solution was added, changing the destaining solution 2-3 times as necessary. The gel was destained until the background was transparent, and then stored in deionized water. After destaining, the gel was scanned using an Epson V550 color scanner, and reduced and non-reduced band purity was calculated using ImageJ with peak area normalization.
[0175] The results are shown in Figure 1. The bands of each heavy chain antibody and the reference IPI non-reducing gel all matched the expected sizes, and the purity of all was 90% or higher. 5.3 Purity determination of anti-CLDN18.2 heavy chain antibody monomer by SEC-HPLC
[0176] Material preparation: 1. Mobile phase: 150 mmol / L phosphate buffer, pH 7.4. 2. Sample preparation: Each anti-CLDN18.2 heavy chain antibody was diluted to 0.5 mg / mL with the mobile phase solution. The flow rate of the Agilent HPLC 1100 chromatography column (XBridge BEH SEC 3.5 μm, 7.8 mm ID × 30 cm, Waters) was set to 0.8 mL / min, the sample injection volume was 20 μL, and the VWD detector wavelengths were 280 nm and 214 nm.
[0177] The results of size-exclusion high-performance liquid chromatography (SEC-HPLC) of the anti-CLDN18.2 heavy chain antibody of this example are as follows: The proportions of high molecular weight polymers, anti-CLDN18.2 heavy chain antibody monomers, and low molecular weight substances in the sample were calculated using the area normalization method, and the results are shown in Figures 2A to 2C and Table 5.
[0178] As can be seen from Figures 2A to 2C and Table 5, the expression level of heavy chain antibody NA3SH1-T4-hVH6 was more than three times that of heavy chain antibody NA3SH1 and almost twice that of heavy chain antibody NA3SH1-T4. As shown in the SEC-HPLC results, the proportion of heavy chain antibody NA3SH1-T4-hVH6 monomer was the highest, which also means that the content of soluble aggregates and shear products in the product was the lowest.
[0179] [Table 5]
[0180] Example 6 Affinity Activity Analysis of Anti-CLDN18.2 Heavy Chain Antibodies 6.1 Binding ability of anti-CLDN18.2 heavy chain antibodies to hCLDN18.2-HEK293 cells
[0181] Exponentially growing hCLDN18.2-HEK293 cells were harvested and centrifuged at 300 g to remove the supernatant. The cells were resuspended in FACS buffer (PBS containing 1% BSA) and counted to ensure a cell suspension density of 2 × 10 6The concentration of cells / mL was adjusted. Then, 100 μL of hCLDN18.2-HEK293 cells were added to a 96-well round-bottom plate per well and centrifuged at 300 g to remove the supernatant. Different concentrations of heavy chain antibody NA3SH1-T4, heavy chain antibody NA3SH1-T4-hVH6, heavy chain antibody NA3SH1 as a control, and a human IgG1 isotype antibody as an isotype control were added to the corresponding wells. The cells were resuspended and incubated at 4°C for 1 h. After washing the cell mixture three times, PE-labeled anti-human IgG-Fc flow cytometry antibody (Abcam, catalog number 98596) was added, resuspended, and incubated at 4°C for 30 min. After washing the cell mixture three times, 200 μL of FACS buffer was added to resuspend the cells. Finally, the cells were detected and analyzed on-machine using a flow cytometer (Beckman, CytoFLEX AOO-1-1102) using PRISM. TM Data were analyzed by EC 50 values were calculated.
[0182] The results of the FACS binding assay are shown in Figure 3. Both the heavy chain antibodies NA3SH1-T4 and NA3SH1-T4-hVH6 exhibited significantly superior binding ability to CLDN18.2 than NA3SH1 as a control. The EC 50 = 0.2736 μg / mL, and the EC 50 = 0.3099 μg / mL, and the EC 50 =0.5356 μg / mL. 6.2 Binding Ability of Anti-CLDN18.2 Heavy Chain Antibodies to hCLDN18.2-NUGC4 Cells
[0183] Exponentially growing hCLDN18.2-NUGC4 cells were harvested and centrifuged at 300 g to remove the supernatant. The cells were resuspended in FACS buffer (PBS containing 1% BSA) and counted to ensure a cell suspension density of 2 × 10 6The concentration of cells / mL was adjusted. Then, 100 μL of hCLDN18.2-NUGC4 cells were added to a 96-well round-bottom plate per well and centrifuged at 300 g to remove the supernatant. Different concentrations of heavy chain antibody NA3SH1-T4, heavy chain antibody NA3SH1-T4-hVH6, heavy chain antibody NA3SH1 as a control, and a human IgG1 isotype antibody as an isotype control were added to the corresponding wells. The cells were resuspended and incubated at 4°C for 1 h. After washing the cell mixture three times, PE-labeled anti-human IgG-Fc flow cytometry antibody (Abcam, catalog number 98596) was added, resuspended, and incubated at 4°C for 30 min. After washing the cell mixture three times, 200 μL of FACS buffer was added to resuspend the cells. Finally, the cells were detected and analyzed on-machine using a flow cytometer (Beckman, CytoFLEX AOO-1-1102) using PRISM. TM Data were analyzed by EC 50 values were calculated.
[0184] The results of the FACS binding assay are shown in Figure 4. Both the heavy chain antibody NA3SH1-T4 and the heavy chain antibody NA3SH1-T4-hVH6 exhibited significantly superior binding ability to CLDN18.2 than the control heavy chain antibody NA3SH1. The EC 50 = 0.4047 μg / mL, and the EC 50 = 0.8465 μg / mL, and the EC 50 =2.147 μg / mL. 6.3 Binding ability of anti-CLDN18.2 heavy chain antibodies to hCLDN18.2-KATOIII cells
[0185] The hCLDN18.2-KATOIII cells were self-produced, and the preparation method was based on the construction of the human CLDN18.2-KATOIII tumor cell line in Example 1 of CN112480248A.
[0186] Using a similar method as described in Example 6.1, the binding ability of anti-CLDN18.2 heavy chain antibodies to hCLDN18.2-KATOIII cells was measured using hCLDN18.2-KATOIII cells. TM Data were analyzed by EC 50 values were calculated.
[0187] The results of the FACS binding assay are shown in Figure 5. Both the heavy chain antibody NA3SH1-T4 and the heavy chain antibody NA3SH1-T4-hVH6 exhibited significantly superior binding ability to CLDN18.2 than the control heavy chain antibody NA3SH1. The EC 50 = 0.3298 μg / mL, and the EC 50 = 0.3984 μg / mL, and the EC 50 =0.6183 μg / mL. 6.4 Binding ability of anti-CLDN18.2 heavy chain antibodies to hCLDN18.1-HEK293 cells
[0188] 100 μg / mL of heavy chain antibody and target cells hCLDN18.1-HEK293 (self-made, preparation method see 1.3.2 of Example 1 of CN112480248A) were incubated at 4°C for 1 hour, then rinsed three times with the above FACS buffer. 0.5 μg (0.5 mg / mL) of PE-labeled goat anti-human IgG Fc antibody (Abcam, catalog number: ab98596) was added and incubated for 30 minutes at 4°C. After rinsing three times with FACS buffer, the cells were resuspended in 200 μL of FACS buffer and finally detected using a flow cytometer (Beckman, CytoFLEX AOO-1-1102). The binding intensity and cell binding positive rate were recorded.
[0189] As shown in Figure 6, at a high concentration of 100 μg / mL, the positive binding rates of heavy chain antibody NA3SH1-T4-hVH6, heavy chain antibody NA3SH1-T4, and control heavy chain antibody NA3SH1 to hCLDN18.1-HEK293 cells were very close to the positive binding rates of human IgG1 isotype antibodies to hCLDN18.1-HEK293 cells, indicating that neither heavy chain antibody NA3SH1-T4 nor NA3SH1-T4-hVH6 binds to the hCLDN18.1 protein.
[0190] Example 7 ADCC effect of anti-CLDN18.2 heavy chain antibody
[0191] The Fc terminus of the anti-CLDN18.2 heavy chain antibody binds to CD16a (F158) or CD16a (V158) in Jurkat cells, and the VHH terminus binds to CLDN18.2 in the cells, activating the expression of NF-AT protein inside the Jurkat cells. The binding of NF-AT to the NF-AT response element induces the expression of downstream luciferase. When stimulated with different concentration gradients of the anti-CLDN18.2 heavy chain antibody of the present invention, a protein concentration-dependent fluorescence readout graph can be obtained, which can then be used to evaluate the ADCC activity of the antibody. 7.1 ADCC effect of anti-CLDN18.2 heavy chain antibody on hCLDN18.2-HEK293 cells
[0192] Add 50 μL of 4 × 10 cells to each well of a 96-well cell culture plate. 5 hCLDN18.2-HEK293 cells as target cells and 4 x 10 cells / mL 6CD16a(F158)-NF-AT-Jurkat cells were added as effector cells at 1000 cells / mL. The target and effector cells were mixed 1:1 and added to a 96-well white clear-bottom cell culture plate. The cells were then cultured overnight (16-20 hours) in a 37°C incubator. 50 μL of serially diluted heavy chain antibody NA3SH1-T4, heavy chain antibody NA3SH1-T4-hVH6, heavy chain antibody NA3SH1 as a control, and a human IgG1 isotype antibody as an isotype control were added and incubated for 6 hours in a 37°C incubator. 50 μL of Bright-Life (Vazyme, product number DD1204-03) was added to each well, and the wells were incubated in the dark for 10 minutes. Fluorescent signals were then detected. The ADCC detection results are shown in Figure 7.
[0193] As can be seen from Figure 7, the heavy chain antibody NA3SH1-T4-hVH6 exhibited a significantly stronger ADCC killing effect on hCLDN18.2-HEK293 cells than the control heavy chain antibody NA3SH1, and the heavy chain antibody NA3SH1-T4 exhibited an ADCC killing effect on hCLDN18.2-HEK293 cells equivalent to the control heavy chain antibody NA3SH1. 7.2 ADCC effect of anti-CLDN18.2 heavy chain antibody on hCLDN18.2-KATOIII cells
[0194] For the method of detecting the ADCC effect in hCLDN18.2-KATOIII cells, see Example 7.1. The ADCC detection results are shown in Figure 8.
[0195] As can be seen from FIG. 8, compared with the heavy chain antibody NA3SH1 and the heavy chain antibody NA3SH1-T4 as controls, the heavy chain antibody NA3SH1-T4-hVH6 induced the most effective ADCC killing effect on hCLDN18.2-KATOIII cells. 7.3 ADCC effect of anti-CLDN18.2 heavy chain antibody on hCLDN18.2-NUGC4 cells
[0196] For the method of detecting the ADCC effect in hCLDN18.2-NUGC4 cells, see Example 7.1. The ADCC detection results are shown in Figure 9.
[0197] As can be seen from Figure 9, the heavy chain antibody NA3SH1-T4-hVH6 exhibited a significantly stronger ADCC killing effect on hCLDN18.2-NUGC4 cells than the control heavy chain antibody NA3SH1, and the heavy chain antibody NA3SH1-T4 exhibited an ADCC killing effect on hCLDN18.2-NUGC4 cells equivalent to that of the control heavy chain antibody NA3SH1. The present invention includes the following aspects: <Aspect 1> A CLDN18.2 binding molecule, comprising at least one single domain antibody (sdAb) portion that specifically binds to CLDN18.2, said sdAb portion comprising three complementarity determining regions, CDR1, CDR2 and CDR3, respectively, wherein: (a) CDR1 comprises the amino acid sequence of SEQ ID NO: 1 or a variant of the amino acid sequence of SEQ ID NO: 1 with one or two amino acid changes; (b) CDR2 comprises the amino acid sequence of SEQ ID NO: 2 or a variant of the amino acid sequence of SEQ ID NO: 2 with one or two amino acid changes; and (c) CDR3 comprises the amino acid sequence of SEQ ID NO: 3 or a variant of the amino acid sequence of SEQ ID NO: 3 with one or two amino acid changes; wherein the amino acid changes are amino acid additions, deletions or conservative amino acid substitutions, and preferably the sdAb portion is a camelid VHH, a partially humanized or fully humanized VHH, a chimeric VHH. <Aspect 2> 2. The CLDN18.2 binding molecule of embodiment 1, wherein the sdAb portion comprises a CDR1 containing the amino acid sequence SEQ ID NO: 1, a CDR2 containing the amino acid sequence SEQ ID NO: 2, and a CDR3 containing the amino acid sequence SEQ ID NO: 3. <Aspect 3> The sdAb portion comprises: (i) the amino acid sequence of SEQ ID NO: 4 or 5, or (ii) The CLDN18.2 binding molecule of embodiment 1 or 2, comprising an amino acid sequence having at least 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% identity to the amino acid sequence of SEQ ID NO: 4 or 5. <Aspect 4> 4. The CLDN18.2-binding molecule of any one of aspects 1 to 3, wherein the sdAb portion is linked at the N-terminus or C-terminus to another protein domain, e.g., linked to an Fc region of an immunoglobulin, e.g., linked to an Fc region from an IgG, e.g., IgG1, IgG2, IgG3 or IgG4, or e.g., linked to a fluorescent protein. <Aspect 5> (1) binds to CLDN18.2, e.g., human CLDN18.2, with high affinity, e.g., the EC 50 is about 0.1 μg / mL to about 10 μg / mL, preferably about 0.1 μg / mL to about 1 μg / mL; (2) specifically binds to CLDN18.2 and does not bind to CLDN18.1; (3) The CLDN18.2-binding molecule according to any one of aspects 1 to 4, which has one or more properties of killing CLDN18.2-positive cancer cells by antibody-dependent cellular cytotoxicity and / or complement-dependent cytotoxicity. <Aspect 6> a bispecific or multispecific antibody, preferably said bispecific antibody molecule specifically binds to a CLDN18.2 molecule and a second target protein, said second target protein being, for example, (1) a tumor-specific antigen or tumor-associated antigen, such as epidermal growth factor receptor (EGFR1), HER2 / neu, CD20, insulin-like growth factor receptor (IGF-1R), carcinoembryonic antigen, prostate-specific membrane antigen (PSMA), Mucin-1, CD30, CD33, CD137, cMet, or angiopoietin-2 (Ang-2); (2) immune checkpoint molecules of immune cells, such as PD1, CTLA-4, TIM-3, or LAG-3; (3) immune costimulatory molecules of immune cells, such as OX40, ICOS, TLR2, or CD27; (4) The CLDN18.2-binding molecule according to any one of aspects 1 to 5, wherein the CLDN18.2-binding molecule is selected from a cytokine, for example, IL-1, IL-2, IL-7, IL-15, or IL-33. <Aspect 7> An isolated nucleic acid encoding a CLDN18.2 binding molecule according to any one of embodiments 1 to 6. <Aspect 8> A vector comprising the nucleic acid of embodiment 7, wherein the vector is preferably an expression vector, for example, a pcDNA3.3-TOPO vector. <Aspect 9> A host cell comprising the nucleic acid of aspect 7 or the vector of aspect 8, wherein preferably the host cell is a prokaryotic or eukaryotic cell, more preferably selected from an E. coli cell, a yeast cell, or a mammalian cell, and most preferably the host cell is an HEK293 cell or a CHO cell. <Aspect 1> A method for preparing a CLDN18.2 binding molecule of any one of aspects 1 to 6, said method comprising culturing a host cell of aspect 9 under conditions suitable for expression of a nucleic acid encoding a CLDN18.2 binding molecule of any one of aspects 1 to 6, and optionally isolating said CLDN18.2 binding molecule; and optionally, said method further comprising recovering said CLDN18.2 binding molecule from said host cell. <Aspect 11> An immunoconjugate comprising the CLDN18.2 binding molecule of any one of aspects 1 to 6 and another agent, such as a cytotoxic agent. <Aspect 12> A pharmaceutical composition comprising a CLDN18.2 binding molecule according to any one of aspects 1 to 6 or an immunoconjugate of aspect 11, and optionally a pharmaceutical adjuvant. <Aspect 13> A pharmaceutical composition comprising a CLDN18.2-binding molecule of any one of Aspects 1 to 6 or the immunoconjugate of Aspect 11, and another therapeutic agent, and an optional pharmaceutical adjuvant, wherein preferably the other therapeutic agent is selected from a chemotherapeutic agent, another antibody (e.g., an anti-PD-1 antibody or an anti-PD-L1 antibody), and a cytotoxic agent. <Aspect 14> A combination product comprising a CLDN18.2-binding molecule according to any one of aspects 1 to 6, or the immunoconjugate of aspect 11, and one or more other therapeutic agents, such as a chemotherapeutic agent, a cytotoxic agent, or another antibody, such as an anti-PD-1 antibody or an anti-PD-L1 antibody. <Aspect 15> A method for treating a disease associated with CLDN18.2 in a subject, comprising administering to the subject a therapeutically effective amount of a CLDN18.2 binding molecule according to any one of embodiments 1 to 6, an immunoconjugate of embodiment 11, a pharmaceutical composition of embodiment 12 or 13, or a combination product of embodiment 14, wherein the disease associated with CLDN18.2 is, for example, a disease associated with CLDN18.2. 18.2 expressing or overexpressing cancers such as bone cancer, blood cancer, lung cancer, liver cancer, pancreatic cancer, esophageal cancer, skin cancer, head and neck cancer, cutaneous or intraocular melanoma, uterine cancer, ovarian cancer, rectal cancer, anal region cancer, stomach cancer, colon cancer, breast cancer, prostate cancer, uterine cancer, cancer of the genital and reproductive organs, Hodgkin's disease, esophageal cancer, small intestine cancer, endocrine system cancer, thyroid cancer, parathyroid cancer, adrenal gland cancer, soft tissue sarcoma, bladder cancer, kidney cancer, renal cell carcinoma, renal pelvis cancer, central nervous system (CNS) tumors, neuroectodermal cancer, spinal axis tumors, glioma, meningioma and pituitary adenoma, preferably said cancer is gastric cancer, pancreatic cancer, esophageal cancer, ovarian cancer or lung cancer. <Aspect 16> A kit for detecting CLDN18.2 in a sample, the kit comprising a CLDN18.2-binding molecule according to any one of aspects 1 to 6; (a) contacting a sample with a CLDN18.2 binding molecule according to any one of aspects 1 to 6, and (b) a kit for performing a step of detecting the formation of a complex between said CLDN18.2-binding molecule and CLDN18.2, wherein optionally said CLDN18.2-binding molecule is detectably labeled.
Claims
1. A CLDN18.2 binding molecule, comprising at least one single domain antibody (sdAb) portion that specifically binds to CLDN18.2, wherein the sdAb portion comprises three complementarity determining regions, CDR1, CDR2, and CDR3, respectively, wherein: (a) CDR1 is the amino acid sequence of SEQ ID NO: 1; (b) CDR2 is the amino acid sequence of SEQ ID NO: 2; and (c) CDR3 is the amino acid sequence of SEQ ID NO: 3; CLDN18.2 binding molecule.
2. The CLDN18.2 binding molecule of claim 1, wherein the sdAb portion is a camelid VHH, a partially humanized or fully humanized VHH, or a chimeric VHH.
3. The sdAb portion comprises: The CLDN18.2 binding molecule of claim 1 or 2, comprising the amino acid sequence of SEQ ID NO: 4 or 5.
4. The CLDN18.2 binding molecule of claim 1 or 2, wherein the sdAb portion is linked at the N- or C-terminus to another protein domain, for example, to the Fc region of an immunoglobulin, for example, to the Fc region from an IgG, for example, IgG1, IgG2, IgG3 or IgG4, or, for example, to a fluorescent protein.
5. (1) CLDN18.2, for example, human CLDN18.2, binds with high affinity, for example, the EC 20 binding between the CLDN18.2 binding molecule and cell surface CLDN18.2 50 is 0.1 μg / mL to 10 μg / mL; (2) Specifically binds to CLDN18.2 and does not bind to CLDN18.1; (3) The CLDN18.2-binding molecule of claim 1 or 2, which has one or more properties of killing CLDN18.2-positive cancer cells by antibody-dependent cellular cytotoxicity and / or complement-dependent cytotoxicity.
6. A bispecific or multispecific antibody, wherein the bispecific antibody molecule specifically binds to a CLDN18.2 molecule and a second target protein, and the second target protein is, for example, (1) Tumor-specific antigens or tumor-associated antigens, such as epidermal growth factor receptor (EGFR1), HER2 / neu, CD20, insulin-like growth factor receptor (IGF-1R), carcinoembryonic antigen, prostate-specific membrane antigen (PSMA), mucin-1, CD30, CD33, CD137, cMet, or angiopoietin-2 (Ang-2); (2) immune checkpoint molecules of immune cells, such as PD1, CTLA-4, TIM-3, or LAG-3; (3) immune cell co-stimulatory molecules, such as OX40, ICOS, TLR2, or CD27; (4) The CLDN18.2 binding molecule of claim 1 or 2, which is selected from cytokines such as IL-1, IL-2, IL-7, IL-15, or IL-33.
7. An isolated nucleic acid encoding the CLDN18.2 binding molecule of claim 1.
8. A vector comprising the nucleic acid of claim 7, for example, a pcDNA3.3-TOPO vector.
9. A host cell comprising the nucleic acid of claim 7 or the vector of claim 8.
10. A method for preparing a CLDN18.2 binding molecule according to claim 1 or 2, wherein the method further comprises culturing a host cell of claim 9 under conditions suitable for expression of a nucleic acid encoding the CLDN18.2 binding molecule of claim 1 or 2, and optionally isolating the CLDN18.2 binding molecule.
11. An immunoconjugate comprising the CLDN18.2 binding molecule of claim 1 and another substance, such as a cytotoxic agent.
12. A pharmaceutical composition comprising the CLDN18.2 binding molecule of claim 1 or the immunoconjugate of claim 11, and a medicinal adjuvant.
13. A pharmaceutical composition comprising the CLDN18.2-binding molecule of claim 1 or 2 or the immunoconjugate of claim 11, and another therapeutic agent, and a medicinal adjuvant, for example, the other therapeutic agent is selected from a chemotherapeutic agent, another antibody (e.g., an anti-PD-1 antibody or an anti-PD-L1 antibody), and a cytotoxic agent.
14. A combination product comprising the CLDN18.2 binding molecule of claim 1 or 2 or the immunoconjugate of claim 11, and one or more other therapeutic agents, such as chemotherapeutic agents, cytotoxic agents, other antibodies, such as anti-PD-1 antibodies or anti-PD-L1 antibodies.
15. The CLDN18.2-binding molecule of claim 1 or 2, or the immunoconjugate of claim 11, is used to prepare a medicament for treating a disease associated with CLDN18.2 in a subject, such as a cancer that expresses or overexpresses CLDN18.2, such as bone cancer, blood cancer, lung cancer, liver cancer, pancreatic cancer, esophageal cancer, skin cancer, head and neck cancer, skin or intraocular melanoma, uterine cancer, ovarian cancer, rectal cancer, anal cancer, stomach cancer, colon cancer, breast cancer, prostate cancer, uterine cancer, cancer of the genital and reproductive organs, Hodgkin's disease, esophageal cancer, small intestine cancer, endocrine system cancer, thyroid cancer, parathyroid cancer, adrenal cancer, soft tissue sarcoma, bladder cancer, kidney cancer, renal cell carcinoma, renal pelvis cancer, central nervous system (CNS) tumor, neuroectodermal cancer, spinal axis tumor, glioma, meningioma, and pituitary adenoma.
16. A kit for detecting CLDN18.2 in a sample, the kit comprising a CLDN18.2 binding molecule according to claim 1 or 2, (a) contacting a sample with a CLDN18.2 binding molecule according to claim 1 or 2; and (b) A kit for performing a step of detecting the formation of a complex between the CLDN18.2-binding molecule and CLDN18.2, for example, wherein the CLDN18.2-binding molecule is detectably labeled.
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