Site-specific notch activation molecules and uses thereof

JP2026010057A5Pending Publication Date: 2026-04-20CHUGAI PHARMA CO LTD
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Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
CHUGAI PHARMA CO LTD
Filing Date
2025-10-10
Publication Date
2026-04-20

AI Technical Summary

Technical Problem

Current treatments for dysregulated Notch signaling, such as small molecules and antibodies, suffer from nonspecificity and toxicity, particularly affecting normal tissues and causing side effects like gastrointestinal toxicity.

Method used

Development of multispecific antigen-binding molecules that bind specifically to Notch receptors on one cell and anchor antigens on another cell, enabling anchorage-dependent activation of the Notch signaling pathway, thereby conferring site-specific activation.

Benefits of technology

This approach allows for targeted Notch signaling activation in specific cell types, reducing side effects on normal tissues and enhancing therapeutic efficacy.

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Abstract

To provide a multispecific antigen-binding molecule which enables Notch signaling pathway activation in a cell of interest in a cell anchorage-dependent manner, a method for producing the multispecific antigen-binding molecule, and a pharmaceutical composition comprising such a multispecific antigen-binding molecule as an active ingredient for activating the Notch signaling pathway in a cell of interest.SOLUTION: The present invention provides multispecific antigen-binding molecules comprising a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell and a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present disclosure relates to multispecific antigen-binding molecules that target Notch receptors, uses thereof, and the like. [Background technology]

[0002] Overview of the Notch receptor family and Notch ligands Notch signaling is a highly conserved process essential in a wide range of cellular systems, and its deregulation is associated with numerous developmental disorders and malignancies. In humans and mice, the Notch family of transmembrane receptors consists of four protein paralogs (Notch 1-4) with largely non-redundant functions. Notch receptors undergo post-translational cleavage at the S1 site prior to plasma membrane localization. This cleavage occurs within the trans-Golgi network and is mediated by furin-like proteases (Non-Patent Document 1). The two polypeptides that form mature membrane-bound Notch are called the extracellular domain (ECD) and the transmembrane fragment, which is composed of the transmembrane and intracellular domains. From the N-terminus, the ECD consists of 29–36 epidermal growth factor (EGF)-like domains. EGF repeat 12 has been reported to be the major binding domain involved in receptor-ligand interaction. The EGF-like repeat domain is followed by a negative regulatory region (NRR), which contains three cysteine-rich Lin12 / Notch repeats (LNR) and an HD domain that connects the transmembrane domain and ECD polypeptide to form the Notch heterodimer (Non-Patent Document 1). The NRR is important for mediating autoinhibition of the Notch receptor, preventing activation in the absence of the correct signal (Non-Patent Document 2). Human and mouse Notch ligands of the Delta / Serrate / Lag-2 (DSL) family are divided into two classes, depending on whether they are Delta or Serrate homologs of Drosophila Notch ligands. Delta-like ligands (DLLs) include DLL1, DLL3, and DLL4, while Serrate homologs include Jagged1 (also called Jag1) and Jagged2 (also called Jag2). Despite functional differences among the four Notch receptors, interaction with either DLL or Jagged ligands leads to activation of the same canonical signaling pathway (Non-Patent Document 3).

[0003] Physiological functions of Notch signaling, especially its role in stem cell signaling and tissue regeneration The Notch signaling pathway is recognized as one of the few signaling pathways repeatedly used in multiple developmental processes in embryonic and adult tissues. During development, Notch signaling is involved in the strict control of the balance between self-renewal and differentiation of various tissue stem cells (SCs), maintaining tissue homeostasis and regeneration of damaged tissues (Non-Patent Document 3). The context-specificity of Notch activation determines the specific processes or functional events (e.g., differentiation, proliferation, or apoptosis) that occur and the timing (i.e., developmental stage) of such events (Non-Patent Document 4). Thus, this context-dependent Notch activity can drive many aspects of the development of multicellular eukaryotes and has recently been linked to the fate and maintenance of stem cells in embryonic and adult tissues, including satellite cells, neural stem cells, intestinal stem cells, and hematopoietic stem cells.

[0004] Limitations of current treatments Dysregulation of Notch signaling is associated with numerous developmental disorders and malignancies, making components of Notch signaling attractive therapeutic targets. To date, several small molecules have demonstrated selective inhibition of Notch signaling (Non-Patent Documents 5 and 6). Gamma-secretase inhibitors (GSIs) are widely used to block the proteolytic activity of Notch; however, their action is known to be nonspecific, as they also block the processing of over 90 other substrates, including amyloid precursor protein (APP), E-cadherin, and ErbB4 (Non-Patent Documents 7-9). Furthermore, such compounds inhibit the proteolysis of multiple transmembrane proteins, including all four Notch receptors (Non-Patent Document 10), and chronic administration can cause significant toxicity, most notably severe secretory diarrhea due to colonic goblet cell metaplasia (Non-Patent Document 11). This gastrointestinal toxicity is thought to be due to the inhibition of NOTCH1 and / or NOTCH2, which promote the differentiation of progenitor cells in the colonic crypt into absorptive enterocytes (Non-Patent Document 12).

[0005] Apart from small molecules, several groups have reported antagonistic antibodies selective for specific Notch receptors (Non-Patent Documents 13-17). However, the majority of these Notch antagonist antibodies focus on targeting oncological indications, and their clinical application is limited by similar concerns faced by small molecule inhibitors. [Prior art documents] [Non-patent literature]

[0006] [Non-Patent Document 1] Proc Natl Acad Sci USA. 1998 Jul 7;95(14):8108 [Non-patent document 2] Nature Structural & Molecular Biology, 14, 295-300(2007) [Non-licensed document 3] Development 2013 140: 689-704

Non-licensed Document 4

Non-licensed Document 5

Non-licensed Document 6

Non-licensed Document 7

Non-licensed literature 9

Non-licensed literature 10

Non-licensed Document 11

Non-licensed Document 12

Non-licensed Document 13

Non-licensed Document 14

Non-licensed Document 15

Non-licensed Document 16

[0007] The present inventors have considered that it is challenging to limit the effect of Notch regulation to pathological sites while avoiding side effects in normal tissues. Therefore, improving the site specificity of Notch regulators is one possible strategy for avoiding the side effects of systemic administration of Notch regulators. The present invention is based on this idea. The purpose of the present disclosure is to provide a multispecific antigen-binding molecule that enables Notch signaling pathway activation in target cells in a cell anchorage-dependent manner, a method for producing the multispecific antigen-binding molecule, and a pharmaceutical composition comprising such a multispecific antigen-binding molecule as an active ingredient for activating the Notch signaling pathway in target cells.

[0008] A previous review has described the core components involved in Notch signaling, as well as the ligand / receptor interaction and triggering of proteolytic activation (Cell. 2009 Apr 17;137(2):216-33). According to this report, the authors' theory is as follows: activation of Notch signaling involves: (1) cell-cell contact, which allows the Notch receptor to interact with its ligands (Delta-like and Jagged ligands); (2) upon ligand association, the Notch receptor undergoes a conformational change, generating a mechanical force that exposes a protective domain within the Notch receptor known as the negative regulatory region (NRR). This leads to subsequent proteolytic cleavage of the S2 site, and the remaining domain is recognized and cleaved by constitutively active γ-secretase at the S3 site, releasing the Notch intracellular domain (NICD); and (3) nuclear translocation of NICD from the membrane leads to its binding to the conserved transcription factor CSL;CBF1 / RBPJ, upregulating Notch target genes. [Means for solving the problem]

[0009] The present inventors have discovered that a multispecific antigen-binding molecule comprising a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell and a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell can cause Notch signaling activation in the first target cell when (or only when) the multispecific antigen-binding molecule is bound to the anchor antigen on the second target cell (i.e., anchorage-dependent signaling activation). The tissue or site specificity of Notch signaling pathway activation is conferred by selective binding of the site-specific binding domain to a unique anchor antigen that is specifically, exclusively, or restrictedly expressed in the tissue or cell population of interest. The concept of site-specific Notch "transactivation" can be achieved by adopting such a multispecific antibody format.

[0010] More specifically, the present invention provides: [1] (i) a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. A multispecific antigen-binding molecule comprising: the first target cell and the second target cell are different cells, and the multispecific antigen-binding molecule activates the Notch signaling pathway in the first target cell when the multispecific antigen-binding molecule is bound to the anchor antigen on the second target cell; Multispecific antigen binding molecules. [2] The multispecific antigen-binding molecule of [1], wherein the first target cell is a tissue stem cell, an activated CD4 T lymphocyte, a cell secreting a fibrotic factor, or a pro-tumorigenic cell in the tumor microenvironment. [3] The multispecific antigen-binding molecule of [2], wherein the tissue stem cells are satellite cells, adult intestinal stem cells, or crypt basal columnar (CBC) cells. [4] The multispecific antigen-binding molecule of any one of [1] to [3], wherein the first binding moiety comprises a Notch-binding domain of a Notch receptor ligand. [5] The multispecific antigen-binding molecule of [4], wherein the Notch receptor ligand is a ligand for Notch1, Notch2, Notch3, or Notch4 receptor. [6] The multispecific antigen-binding molecule of [4] or [5], wherein the Notch receptor ligand is Delta protein or Jagged protein. [7] The multispecific antigen-binding molecule of [6], wherein the Delta protein is Delta-like ligand 1 (DLL1), DLL3, or DLL4. [8] The multispecific antigen-binding molecule of [6], wherein the Jagged protein is Jagged 1 or Jagged 2. [9] The multispecific antigen-binding molecule of any one of [1] to [3], wherein the first antigen-binding portion comprises a Fab, scFv, VHH, VL, VH, or single-domain antibody that specifically binds to a Notch receptor.

[10] The multispecific antigen-binding molecule of any one of [1] to [9], wherein the second target cells are selected from the group consisting of non-satellite muscle cells, activated fibroblasts, FcgRIIB-expressing immune cells, GPC3-expressing cancer cells, and cells in intestinal crypts.

[11] The multispecific antigen-binding molecule of

[10] , wherein the FcgRIIB-expressing immune cells are selected from the group consisting of circulating B lymphocytes, monocytes, neutrophils, lymphoid dendritic cells, and myeloid dendritic cells.

[12] The multispecific antigen-binding molecule of

[10] , wherein the anchor antigen on the second target cell is selected from the group consisting of voltage-gated calcium channel subunit α1S (CACNA1S), fibroblast activation protein (FAP), glypican-3 (GPC3), and FcγRIIB (CD32B).

[13] The multispecific antigen-binding molecule of any one of [1] to

[12] , wherein the second antigen-binding portion comprises a Fab, scFv, VHH, VL, VH, single-domain antibody, ligand, or modified Fc region that specifically binds to the anchor antigen.

[14] Any one of the multispecific antigen-binding molecules of [1] to

[13] , further comprising an Fc region.

[15] The Fc region is An altered Fc region that exhibits reduced binding affinity to human Fcγ receptors compared to native human IgG1 Fc domains

[14] A multispecific antigen-binding molecule.

[16] The multispecific antigen-binding molecule of any one of

[13] to

[15] , wherein the second antigen-binding portion comprises a modified Fc region that specifically binds to FcgRIIB.

[17] The multispecific antigen-binding molecule of

[16] , further comprising another first antigen-binding portion.

[18] The multispecific antigen-binding molecule of

[16] , further comprising a third antigen-binding portion that specifically binds to an anchor antigen on a third target cell.

[19] The multispecific antigen-binding molecule of

[18] , wherein the second target cell and the third target cell are different cells or the same cell.

[20] A pharmaceutical composition comprising any one of the multispecific antigen-binding molecules of [1] to

[19] and a pharmaceutically acceptable carrier.

[21] A method for activating the Notch signaling pathway in a first target cell, comprising contacting the first target cell with an effective amount of any one of the multispecific antigen-binding molecules of [1] to

[19] or the pharmaceutical composition of

[20] .

[22] The method of

[21] , wherein the first target cell is in vivo in a mammalian subject.

[23] The method of

[22] , wherein the subject is a human.

[24] An isolated nucleic acid encoding any one of the multispecific antigen-binding molecules of [1] to

[19] .

[25] A vector comprising the nucleic acid of

[24] .

[26] A host cell containing the nucleic acid of

[24] or the vector of

[25] .

[27] A method for producing any one of the multispecific antigen-binding molecules of [1] to

[19] , comprising a step of culturing the host cell of

[26] . [Brief explanation of the drawings]

[0011] [Figure 1] Diagram showing the concept of site-specific Notch activation involving a site-specific binding domain and a polypeptide capable of binding to a Notch receptor and resulting in its activation. (A) A bispecific antibody having one Fab arm capable of specifically binding to an anchor antigen to induce anchorage-dependent transactivation of a Notch receptor by a Notch agonist domain. (B) A multispecific antibody having a modified Fc capable of binding to an anchor antigen and having two Notch agonist domains. (C) A multispecific antibody having a modified Fc capable of binding to an anchor antigen, having a modified Fc capable of binding to one anchor antigen (1), one Notch agonist domain, and an additional binding domain for a second anchor antigen (2) for further specificity. [Figure 2]A diagram showing the concept of a Notch agonist antibody using FcγRIIB selective binding technology (this technology selectively increases the binding affinity of the Fc region to inhibitory FcγRIIb over activating Fcγ receptors including FcγRIIa, FcγRI, and FcγRIIIa by introducing mutations into the Fc region). [Figure 3] Preparation of multispecific Notch agonist antibodies. Diagram of molecular format and nomenclature. (A) Anti-AA / / Jag-Fc consists of an Fc lacking FcγR binding ("FcγR silenced"), the human Jag1 extracellular domain (ECD), and a Fab that binds to a target antigen such as GPC3. Heterodimerization and correct assembly are achieved by knob-into-hole (kih) mutations in the Fc. (B) Jag1 / / Jag1-Fc consists of an Fc lacking FcγR binding and two human Jag1 extracellular domains (ECDs). [Figure 4] Anchorage-dependent Notch activation induced by Notch agonist antibodies. (A) RBP-Jk reporter assay shows the effect of anchorage-dependent Notch activation induced by Notch agonist antibodies in C212 cells stably expressing a luciferase reporter gene (C2C12-Notch reporter cells). Human IgG1 antibody was included as an isotype control. Notch agonist antibodies (10 micrograms (mcg) / mL) were immobilized directly on the culture plate by adsorption, or immobilized with anti-human IgGκ light chain (anti-IgGκ-LC) antibody (10 mcg / mL) adsorbed onto the culture plate, and then seeded with C212-Notch reporter cells or added together with C2C12-Notch reporter cells (no immobilization). Data are expressed as fold luciferase stimulation normalized to isotype control antibody treatment. (B) Human IgG1 antibody was included as an isotype control. Notch agonist antibodies (10 mcg / mL) were either immobilized directly onto the culture plates by adsorption, immobilized with an anti-human IgG Fc-specific antibody (10 mcg / mL) that was first adsorbed onto the culture plates, or added directly to the culture medium without immobilization, with or without an anti-anti-human IgG Fc antibody. [Figure 5] Notch activation depends on the availability and level of anchor antigen. (A) SK-HEP1 cells stably overexpressing GPC3 (SK-PCa 60) were cocultured with C2C12-Notch reporter cells at the indicated cell densities and treated with either an isotype control antibody or anti-GPC3 / / Jag1-Fc antibody (10 mcg / mL) for 24 hours, followed by dual luciferase assays. Data are presented as fold luciferase stimulation normalized to isotype control treatment. (B) SK-HEP1 cells stably overexpressing GPC3 at various levels (high GPC3: SK-PCa 60, medium GPC3: SK-PCA 31, and low GPC3: SK-PCA 13) were cocultured with C2C12-Notch reporter cells and treated with either an isotype control antibody or anti-GPC3 / / Jag1-Fc antibody (10 mcg / mL) for 24 hours, followed by dual luciferase assays. Data are expressed as fold luciferase stimulation normalized to isotype control treatment. [Figure 6] qPCR analysis shows the relative expression of Notch target genes (A) HEY1 and (B) NRARP. Either isotype control antibody or anti-GPC3 / / Jag1-Fc antibody (0 or 25 mcg / mL) was adsorbed onto culture plates overnight before the addition of parental C2C12 cells. C2C12 cells were further treated with either DMSO or the gamma-secretase inhibitor DAPT (10 micromolar) for 24 hours before harvesting for qPCR analysis. [Figure 7]Anchorage-dependent Notch activation induced by a bispecific Notch agonist antibody against a site-specific anchor antigen. (A) Notch reporter cells were cocultured with NIH3T3-FAP-overexpressing cells and treated with either an anti-KLH control antibody or an anti-FAP / / Jag1 bispecific antibody (10 mcg / mL) for 24 hours, followed by luciferase assay. (B) FACS analysis showing the ability of anti-FAP / / Jag1-Fc to bind to surface FAP overexpressed on NIH3T3 cells. (C) Notch reporter cells were cocultured with MDCK-FcγRIIB-overexpressing cells. Jag1 / / Jag1-Fc* consists of a modified Fc that preferentially binds to FcγRIIB as the anchor antigen. [Figure 8]Anchorage-dependent Notch activation induced by bispecific Notch agonist antibodies bearing the extracellular domains of other Notch ligands (i.e., Jagged2, DLL1, DLL3, and DLL4) in place of Jagged1. (A) Bispecific antibodies (10 mcg / mL) consisting of a Notch agonist arm (i.e., a Notch ligand as indicated) and an anti-anchor antigen arm (i.e., anti-KLH or anti-GPC3) were immobilized with anti-human Fc-specific antibodies coated on plates or added directly to Notch reporter cells in culture medium (non-immobilized conditions), followed by luciferase assays. Data are expressed as fold change in relative luciferase units (RLU) after normalization to anti-KLH control antibody treatment. (B) SK-HEP1 cells stably overexpressing GPC3 (SK-PCA 60 and SK-PCA 31) were cocultured with C2C12-Notch reporter cells and treated with bispecific antibodies (10 mcg / mL) consisting of either an anti-KLH antibody or an anti-GPC3 antibody as the anti-anchor antigen-binding arm and the extracellular domain of the indicated human Notch ligand for 24 hours, followed by luciferase assay. Data are presented as fold changes in relative luciferase units (RLU) after normalization to anti-KLH control antibody treatment. (C) Quantification of cell surface GPC3 expression on GPC3-overexpressing cells (SK-PCA 31 and SK-PCA 60) using the Quantum™ Simply Cellular® (QSC) Microsphere Kit from Bangs Laboratories. Data are presented as the number of surface GPC3 expressed per cell. DETAILED DESCRIPTION OF THE INVENTION

[0012] Description of Aspects The techniques and procedures described or referenced herein are generally well understood and can be found, for example, in Sambrook et al., Molecular Cloning: A Laboratory Manual 3rd edition (2001) Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY; Current Protocols in Molecular Biology (F.M. Ausubel, et al. eds., (2003)); the series Methods in Enzymology (Academic Press, Inc.): PCR 2: A Practical Approach (M.J. MacPherson, B.D. Hames and G.R. Taylor eds. (1995)), Harlow and Lane, eds. (1988) Antibodies, A Laboratory Manual, and Animal Cell Culture (R.I. Freshney, ed. (1987)); Oligonucleotide Synthesis (M.J. Gait, ed., 1984); Methods in Molecular Biology, Humana Press; Cell Biology: A Laboratory Notebook (J.E. Cellis, ed., 1998) Academic Press;Animal Cell Culture (RI Freshney), ed., 1987);Introduction to Cell and Tissue Culture (JP Mather and PE Roberts, 1998) Plenum Press;Cell and Tissue Culture: Laboratory Procedures (A. Doyle, JB Griffiths, and DG Newell, eds., 1993-8) J. Wiley and Sons;Handbook of Experimental Immunology (DM Weir and CCBlackwell, eds.);Gene Transfer Vectors for Mammalian Cells (JM Miller and MP Calos, eds., 1987);PCR: The Polymerase Chain Reaction, (Mullis et al., eds., 1994);Current Protocols in Immunology (JE Coligan et al., eds., 1991);Short Protocols in Molecular Biology (Wiley and Sons, 1999);Immunobiology (CA Janeway and P. Travers, 1997);Antibodies (P. Finch, 1997);Antibodies: A Practical Approach (D. Catty., ed., IRL Press, 1988-1989);Monoclonal Antibodies: A Practical Approach (P. Shepherd and C. Dean, eds., Oxford University Press, 2000);Using Antibodies: A Laboratory Manual (E. Harlow and D. Lane (Cold Spring Harbor Laboratory Press, 1999); The Antibodies (M. Zanetti and J.D. Capra, eds., Harwood Academic Publishers, 1995); and those commonly employed by those skilled in the art using conventional methodologies such as those widely used in Cancer: Principles and Practice of Oncology (VT DeVita et al., eds., JB Lippincott Company, 1993).

[0013] The following definitions and detailed description are provided to facilitate understanding of the disclosure described herein.

[0014] definition amino acid As used herein, amino acids are described by one-letter or three-letter codes or both, for example, Ala / A, Leu / L, Arg / R, Lys / K, Asn / N, Met / M, Asp / D, Phe / F, Cys / C, Pro / P, Gln / Q, Ser / S, Glu / E, Thr / T, Gly / G, Trp / W, His / H, Tyr / Y, Ile / I, or Val / V.

[0015] Amino acid modification

[0016] For amino acid modification (herein also referred to as "amino acid substitution" or "amino acid mutation") in the amino acid sequence of an antigen-binding molecule, known methods such as site-directed mutagenesis (Kunkel et al. (Proc. Natl. Acad. Sci. USA (1985) 82, 488-492)) and overlap extension PCR can be appropriately employed. Furthermore, several known methods for amino acid modification to substitute with unnatural amino acids can also be employed (Annu. Rev. Biophys. Biomol. Struct. (2006) 35, 225-249; and Proc. Natl. Acad. Sci. USA (2003) 100 (11), 6353-6357). For example, it is suitable to use a cell-free translation system (Clover Direct (Protein Express)) containing a tRNA in which an unnatural amino acid is bound to a complementary amber suppressor tRNA for the UAG codon (amber codon), which is a type of stop codon.

[0017] As used herein, the term "and / or" when describing the site of an amino acid modification includes any combination of "and" and "or." Specifically, for example, "amino acids at positions 33, 55, and / or 96 are substituted" includes the following variations of amino acid modification: (a) 33, (b) 55, (c) 96, (d) 33 and 55, (e) 33 and 96, (f) 55 and 96, and (g) 33, 55, and 96 amino acids.

[0018] Furthermore, as used herein, expressions indicating amino acid modifications may be appropriately expressed by indicating the one-letter or three-letter code of the amino acid before and after the modification, respectively, before and after the number indicating a specific position. For example, the modification N100bL or Asn100bLeu used to substitute an amino acid contained in an antibody variable region represents a substitution of Asn at position 100b (according to Kabat numbering) with Leu. That is, the number indicates the amino acid position according to Kabat numbering, the one-letter or three-letter amino acid code written before the number represents the amino acid before substitution, and the one-letter or three-letter amino acid code written after the number represents the amino acid after substitution. Similarly, the modification P238D or Pro238Asp used to substitute an amino acid in the Fc region contained in an antibody constant region represents a substitution of Pro at position 238 (according to EU numbering) with Asp. That is, the numbers indicate the amino acid positions according to EU numbering, the one-letter or three-letter amino acid code written before the number indicates the amino acid before substitution, and the one-letter or three-letter amino acid code written after the number indicates the amino acid after substitution.

[0019] Polypeptides As used herein, the term "polypeptide" refers to a molecule composed of monomers (amino acids) linked in a linear chain by amide bonds (also known as peptide bonds). The term "polypeptide" refers to any chain of two or more amino acids and does not refer to a specific length of the product. Thus, peptide, dipeptide, tripeptide, oligopeptide, "protein," "amino acid chain," or any other term used to refer to a chain of two or more amino acids is included within the definition of "polypeptide," and the term "polypeptide" may be used in place of or interchangeably with any of these terms. The term "polypeptide" is also intended to refer to products of post-expression modifications of the polypeptide, including, but not limited to, glycosylation, acetylation, phosphorylation, amidation, derivatization with known protecting / blocking groups, proteolytic cleavage, or modification with non-naturally occurring amino acids. A polypeptide may be derived from a natural biological source or produced by recombinant technology, but need not necessarily be translated from a designated nucleic acid. It may be generated by any method, including chemical synthesis. The polypeptides described herein may be about 3 or more amino acids, 5 or more amino acids, 10 or more amino acids, 20 or more amino acids, 25 or more amino acids, 50 or more amino acids, 75 or more amino acids, 100 or more amino acids, 200 or more amino acids, 500 or more amino acids, 1,000 or more amino acids, or 2,000 or more amino acids in size. Polypeptides may have a defined three-dimensional structure, but they do not necessarily have such a structure. Polypeptides that have a defined three-dimensional structure are said to be folded, while polypeptides that do not have a defined three-dimensional structure but can adopt multiple different conformations are said to be unfolded.

[0020] Percent (%) amino acid sequence identity "Percent (%) amino acid sequence identity" to a reference polypeptide sequence is defined as the percentage of amino acid residues in a candidate sequence that are identical to those in the reference polypeptide sequence, after aligning the sequences to achieve the maximum percent sequence identity and introducing gaps, if necessary, and excluding any conservative substitutions from the sequence identity. Alignment for purposes of determining percent amino acid sequence identity can be achieved by a variety of methods within the skill of the art, for example, using publicly available computer software such as BLAST, BLAST-2, ALIGN, or Megalign (DNASTAR) software. Those skilled in the art can determine appropriate parameters for aligning sequences, including any algorithms necessary to achieve maximum alignment over the entire length of the sequences being compared. However, for purposes herein, percent amino acid sequence identity values ​​are generated using the sequence comparison computer program ALIGN-2. The ALIGN-2 sequence comparison computer program is the copyright of Genentech, Inc., and its source code, together with user documentation, has been filed with the U.S. Copyright Office, Washington, DC 20559, where it is registered under U.S. Copyright Registration No. TXU510087. The ALIGN-2 program is publicly available from Genentech, Inc., South San Francisco, California, or may be compiled from the source code. The ALIGN-2 program is compiled for use on UNIX operating systems, including Digital UNIX V4.0D. All sequence comparison parameters are set by the ALIGN-2 program and do not vary.In situations where ALIGN-2 is used for amino acid sequence comparison, the % amino acid sequence identity of a given amino acid sequence A to, with, or against a given amino acid sequence B (alternatively, one can say that a given amino acid sequence A has or contains a certain % amino acid sequence identity to, with, or against a given amino acid sequence B) is calculated as follows: 100 times the fraction X / Y, where X is the number of amino acid residues scored as identical matches by the sequence alignment program ALIGN-2 in its alignment of A and B, and Y is the total number of amino acid residues in B. It will be understood that if the length of amino acid sequence A is not equal to the length of amino acid sequence B, the % amino acid sequence identity of A to B will not equal the % amino acid sequence identity of B to A. Unless otherwise specified, all % amino acid sequence identity values ​​used herein are obtained using the ALIGN-2 computer program as described in the immediately preceding paragraph.

[0021] Recombination methods and constructs Antibodies and antigen-binding molecules can be produced using recombinant methods and constructs, for example, as described in U.S. Patent No. 4,816,567. In one embodiment, an isolated nucleic acid encoding an antibody described herein is provided. Such a nucleic acid may encode an amino acid sequence comprising the VL and / or an amino acid sequence comprising the VH of the antibody (e.g., the light chain and / or heavy chain of the antibody). In a further embodiment, one or more vectors (e.g., expression vectors) comprising such nucleic acids are provided. In a further embodiment, a host cell comprising such nucleic acids is provided. In one such embodiment, the host cell comprises (e.g., is transformed with) (1) a vector comprising a nucleic acid encoding an amino acid sequence comprising the VL of the antibody and an amino acid sequence comprising the VH of the antibody, or (2) a first vector comprising a nucleic acid encoding an amino acid sequence comprising the VL of the antibody and a second vector comprising a nucleic acid encoding an amino acid sequence comprising the VH of the antibody. In one embodiment, the host cell is eukaryotic (e.g., a Chinese hamster ovary (CHO) cell) or a lymphoid cell (e.g., a Y0, NS0, or Sp2 / 0 cell)). In one embodiment, there is provided a method of making a multispecific antigen-binding molecule of the present disclosure, comprising culturing a host cell comprising nucleic acid encoding the antibody, as described above, under conditions suitable for expression of the antibody, and optionally recovering the antibody from the host cell (or host cell culture medium).

[0022] For recombinant production of the antibodies described herein, nucleic acid encoding the antibody (e.g., such as those described above) is isolated and inserted into one or more vectors for further cloning and / or expression in host cells. Such nucleic acid may be readily isolated and sequenced using conventional procedures (e.g., using oligonucleotide probes capable of binding specifically to genes encoding the antibody heavy and light chains).

[0023] Suitable host cells for cloning or expressing antibody-encoding vectors include prokaryotic or eukaryotic cells as described herein. For example, antibodies may be produced in bacteria, particularly if glycosylation and Fc effector functions are not required. For expression of antibody fragments and polypeptides in bacteria, see, e.g., U.S. Patent Nos. 5,648,237, 5,789,199, and 5,840,523. (See also Charlton, Methods in Molecular Biology, Vol. 248 (BKC Lo, ed., Humana Press, Totowa, NJ, 2003), pp. 245-254, which describes the expression of antibody fragments in E. coli.) After expression, the antibody may be isolated in a soluble fraction from the bacterial cell paste or further purified.

[0024] In addition to prokaryotes, eukaryotic microbes such as filamentous fungi or yeast are suitable cloning or expression hosts for antibody-encoding vectors, including fungal and yeast strains whose glycosylation pathways have been "humanized," resulting in the production of antibodies with partial or fully human glycosylation patterns. See Gerngross, Nat. Biotech. 22:1409-1414 (2004) and Li et al., Nat. Biotech. 24:210-215 (2006).

[0025] Host cells derived from multicellular organisms (invertebrates and vertebrates) are also suitable for expressing glycosylated antibodies. Examples of invertebrate cells include plant and insect cells. Numerous baculovirus strains have been identified for use in conjugation with insect cells, particularly for transformation of Spodoptera frugiperda cells.

[0026] Plant cell cultures can also be used as hosts. See, e.g., U.S. Patent Nos. 5,959,177, 6,040,498, 6,420,548, 7,125,978, and 6,417,429 (describing PLANTIBODIES™ technology for producing antibodies in transgenic plants).

[0027] Vertebrate cells can also be used as hosts. For example, mammalian cell lines that have been adapted to grow in suspension may be useful. Other examples of useful mammalian host cell lines include SV40-transformed monkey kidney CV1 (COS-7); human embryonic kidney (293 or 293 cells, e.g., as described in Graham et al., J. Gen Virol. 36:59 (1977)); baby hamster kidney (BHK) cells; mouse Sertoli cells (TM4 cells, e.g., as described in Mather, Biol. Reprod. 23:243-251 (1980)); monkey kidney (CV1); African green monkey kidney (VERO-76); human cervical carcinoma (HELA); canine kidney (MDCK); Buffalo rat hepatocytes (BRL 3A); human lung cells (W138); human hepatocytes (Hep G2); mouse mammary carcinoma (MMT 060562); TRI cells (e.g., as described in Mather et al., Annals NY Acad. Sci. 383:44-68 (1982)). Other useful mammalian host cell lines include DHFR cells; MRC5 cells; and FS4 cells. - Chinese hamster ovary (CHO) cells, including CHO cells (Urlaub et al., Proc. Natl. Acad. Sci. USA 77:4216 (1980)); and myeloma cell lines such as Y0, NS0, and Sp2 / 0. For a review of specific mammalian host cell lines suitable for antibody production, see, e.g., Yazaki and Wu, Methods in Molecular Biology, Vol. 248 (BKC Lo, ed., Humana Press, Totowa, NJ), pp. 255-268 (2003).

[0028] Recombinant production of the antigen-binding molecules described herein can be carried out in a similar manner to that described above, by using host cells containing (e.g., transformed with) one or more vectors containing nucleic acids encoding an amino acid sequence comprising the entire antigen-binding molecule or a portion of the antigen-binding molecule.

[0029] Antigen-binding molecules and multispecific antigen-binding molecules As used herein, the term "antigen-binding molecule" refers to any molecule containing an antigen-binding site or any molecule that has binding activity to an antigen, and may further refer to molecules such as peptides or proteins having a length of about 5 amino acids or more. Peptides and proteins are not limited to those derived from living organisms; for example, they may be polypeptides produced from artificially designed sequences. They may be any natural polypeptide, synthetic polypeptide, recombinant polypeptide, etc. Scaffold molecules that contain a known stable three-dimensional structure such as an α / β barrel as a scaffold, and a portion of the molecule serves as the antigen-binding site, are also one embodiment of the antigen-binding molecules described herein.

[0030] A "multispecific antigen-binding molecule" refers to an antigen-binding molecule that specifically binds to two or more antigens. The term "bispecific" means that an antigen-binding molecule can specifically bind to at least two different antigenic determinants. The term "trispecific" means that an antigen-binding molecule can specifically bind to at least three different antigenic determinants.

[0031] In certain embodiments, the multispecific antigen-binding molecule of the present application is a bispecific antigen-binding molecule, i.e., a bispecific antigen-binding molecule that specifically binds to a Notch receptor on a first target cell and specifically binds to an anchor antigen on a second target cell.

[0032] In certain embodiments, the first target cell expressing the Notch receptor and the second target cell expressing the anchor antigen are different cells.

[0033] In certain embodiments, the multispecific antigen-binding molecule of the present application is a trispecific antigen-binding molecule, i.e., a trispecific antigen-binding molecule that specifically binds to a Notch receptor on a first target cell, specifically binds to an anchor antigen on a second target cell, and specifically binds to an anchor antigen on a third target cell. In certain embodiments, the first target cell that expresses Notch receptor and the second target cell that expresses anchor antigen are different cells, and the second target cell that expresses anchor antigen and the third target cell that expresses anchor antigen are different cells or the same cell.In certain embodiments, the first target cell that expresses Notch receptor and the third target cell that expresses anchor antigen are different cells.

[0034] The components of the multispecific antigen-binding molecules of the present disclosure can be fused to each other in a variety of configurations, exemplary configurations are illustrated in Figure 1.

[0035] In some aspects, the multispecific antigen-binding molecules of the present invention comprise at least one first antigen-binding moiety (e.g., Notch agonist domain), e.g., one or two first antigen-binding moieties. In some aspects, the multispecific antigen-binding molecules of the present invention comprise at least one second antigen-binding moiety (e.g., site-specific binding domain), e.g., one or two second antigen-binding moieties.

[0036] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. wherein a first target cell and a second target cell are different cells, and the multispecific antigen-binding molecule transactivates the Notch signaling pathway in the first target cell. In one aspect, the characteristic that "a multispecific antigen-binding molecule transactivates the Notch signaling pathway in a first target cell" is alternatively referred to as "a multispecific antigen-binding molecule activates the Notch signaling pathway in a first target cell when (or only when) the multispecific antigen-binding molecule is bound to an anchor antigen on a second target cell." Preferably, the anchor antigen on the second target cell is not expressed (or is not significantly / substantially / specifically expressed) in the first target cell.

[0037] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. wherein the first target cell and the second target cell are different cells.

[0038] In certain aspects, the present disclosure provides multispecific antigen-binding molecules that further comprise an Fc region. In certain embodiments, the Fc region may be an Fc region that exhibits reduced binding affinity to human Fcγ receptors compared to a native human IgG1 Fc domain. In certain embodiments, the Fc region may be an altered Fc region that exhibits reduced Fcγ receptor binding ability compared to the Fcγ receptor binding ability of the Fc region of a wild-type IgG antibody of the same isotype as the multispecific antigen-binding molecule.

[0039] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. wherein a first target cell and a second target cell are different cells, and the multispecific antigen-binding molecule transactivates the Notch signaling pathway in the first target cell.

[0040] In one aspect, the characteristic that "a multispecific antigen-binding molecule transactivates the Notch signaling pathway in a first target cell" is alternatively referred to as "a multispecific antigen-binding molecule activates the Notch signaling pathway in a first target cell when (or only when) the multispecific antigen-binding molecule is bound to an anchor antigen on a second target cell." Preferably, the anchor antigen on the second target cell is not expressed (or is not significantly / substantially / specifically expressed) in the first target cell.

[0041] In one embodiment, the second antigen-binding moiety comprises an altered Fc region that specifically binds to an anchor antigen on a second target cell. In one embodiment, the second antigen-binding moiety comprises an altered Fc region that specifically binds to FcgRIIB as the anchor antigen. In certain embodiments, the multispecific antigen-binding molecule further comprises another first antigen-binding moiety.

[0042] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. wherein a first target cell and a second target cell are different cells, and the multispecific antigen-binding molecule transactivates the Notch signaling pathway in the first target cell. In one aspect, the characteristic that "a multispecific antigen-binding molecule transactivates the Notch signaling pathway in a first target cell" is alternatively referred to as "a multispecific antigen-binding molecule activates the Notch signaling pathway in a first target cell when (or only when) the multispecific antigen-binding molecule is bound to an anchor antigen on a second target cell." Preferably, the anchor antigen on the second target cell is not expressed (or is not significantly / substantially / specifically expressed) in the first target cell.

[0043] In one embodiment, the second antigen-binding moiety comprises an altered Fc region that specifically binds to an anchor antigen on a second target cell. In one embodiment, the second antigen-binding moiety comprises an altered Fc region that specifically binds to FcgRIIB as the anchor antigen. In one embodiment, the multispecific antigen-binding molecule further comprises a third antigen-binding moiety that specifically binds to an anchor antigen on a third target cell.

[0044] In certain embodiments, the second target cell and the third target cell can be different cells or the same cells. In certain embodiments, the first target cell expressing the Notch receptor and the third target cell expressing the anchor antigen are different cells.

[0045] According to any of the above aspects, the components of the multispecific antigen-binding molecule (e.g., antigen-binding portion, Fc region ("Fc domain")) may be fused directly or through various linkers, particularly peptide linkers comprising one or more amino acids, typically about 2-20 amino acids, described herein or known in the art. Suitable non-immunogenic peptide linkers include, for example, (G4S)n, (SG4)n, (G4S)n, or G4(SG4)n peptide linkers, where n is generally a number between 1 and 10, typically between 2 and 4.

[0046] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) a first antigen-binding moiety that specifically binds to a Notch receptor; and (ii) a second antigen-binding moiety that specifically binds to the anchor antigen; wherein the first antigen-binding portion and the second antigen-binding portion each comprise an antibody variable region, the first antibody variable region of the first antigen-binding portion is fused to a first heavy chain constant region, the second antibody variable region of the first antigen-binding portion is fused to a first light chain constant region, the third antibody variable region of the second antigen-binding portion is fused to a second heavy chain constant region, and the fourth antibody variable region of the second antigen-binding portion is fused to a second light chain constant region.

[0047] Pyroglutamylation It is known that when antibody is expressed in cells, antibody is modified after translation.Examples of post-translational modifications include cleavage of lysine at the C-terminus of heavy chain by carboxypeptidase; modification of glutamine or glutamic acid at the N-terminus of heavy chain and light chain to pyroglutamic acid by pyroglutamylation; glycosylation; oxidation; deamidation; and glycation, and such post-translational modifications are known to occur in various antibodies (Journal of Pharmaceutical Sciences, 2008, Vol. 97, p. 2426-2447).

[0048] The multispecific antigen-binding molecules of the present disclosure also include multispecific antibodies that have undergone post-translational modifications. Examples of the multispecific antigen-binding molecules of the present disclosure that have undergone post-translational modifications include multispecific antibodies that have undergone pyroglutamylation at the N-terminus of the heavy chain variable region and / or deletion of lysine at the C-terminus of the heavy chain. It is known in the art that such post-translational modifications by pyroglutamylation at the N-terminus and deletion of lysine at the C-terminus have no effect on the activity of antibodies (Analytical Biochemistry, 2006, Vol. 348, pp. 24-39).

[0049] Antigen-binding moieties that specifically bind to Notch receptors As used herein, the term "antigen-binding moiety" refers to a polypeptide molecule that specifically binds to an antigen. In one embodiment, an antigen-binding moiety can direct the entity to which it is attached to a target site, such as a specific type of cell that expresses a Notch receptor. In another embodiment, an antigen-binding portion that specifically binds to a Notch receptor can activate signal transduction via the Notch receptor, for example, the Notch signaling pathway, in an anchor antigen-dependent manner. The antigen-binding portion may include an antibody, a fragment thereof, or a ligand, as further defined herein. In certain embodiments, the antigen-binding portion may include an antibody antigen-binding domain or antibody variable region, including an antibody heavy chain variable region and an antibody light chain variable region. In certain embodiments, the antigen-binding portion may include an antibody constant region, as further defined herein and known in the art. Useful heavy chain constant regions include any of the five isotypes: α, δ, ε, γ, or μ. Useful light chain constant regions include any of the two isotypes: κ and λ.

[0050] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. wherein a first target cell and a second target cell are different cells, and the multispecific antigen-binding molecule transactivates the Notch signaling pathway in the first target cell. In one aspect, the characteristic that "a multispecific antigen-binding molecule transactivates the Notch signaling pathway in a first target cell" is alternatively referred to as "a multispecific antigen-binding molecule activates the Notch signaling pathway in a first target cell when (or only when) the multispecific antigen-binding molecule is bound to an anchor antigen on a second target cell." Preferably, the anchor antigen on the second target cell is not expressed (or is not significantly / substantially / specifically expressed) in the first target cell.

[0051] As used herein, the terms "first," "second," and "third" with respect to antigen-binding moieties, etc., are used for the convenience of distinguishing between two or more different types of moieties, etc. The use of these terms is not intended to confer a particular order or orientation of the multispecific antigen-binding molecules, unless otherwise specified.

[0052] In one aspect, a first antigen-binding moiety that specifically binds to a Notch receptor of the present disclosure includes any polypeptide that can bind in an anchorage-dependent manner (i.e., simultaneous binding of a site-specific binding domain to its anchor antigen) and activate Notch signaling in a first target cell.

[0053] In certain embodiments, the Notch receptor antigen-binding portion ("first antigen-binding portion") is generally a Fab molecule, particularly a conventional Fab molecule. In certain embodiments, the Notch receptor antigen-binding portion ("first antigen-binding portion") is a "single-chain Fv (scFv)," "single-chain antibody," "Fv," "single-chain Fv2 (scFv2)," "Fab," "F(ab')2," VHH, VL, VH, single-domain antibody, or any antibody fragment.

[0054] In certain embodiments, the Notch receptor antigen-binding portion ("first antigen-binding portion") comprises the Notch-binding domain of a Notch receptor ligand. In certain embodiments, the Notch receptor ligand is a ligand for Notch1, Notch2, Notch3, or Notch4 receptor. Hereinafter, Genbank or RefSeq accession numbers are shown in parentheses. In certain embodiments, the RefSeq accession numbers of human Notch receptors are as follows: Notch1 (NP_060087.3 or P46531), Notch2 (NP_077719.2 (isoform 1) or NP_001186930.1 (isoform 2)), Notch3 (NP_000426.2), or Notch4 (NP_004548.3 or Q99466). In certain embodiments, the Notch receptor ligand is Delta protein or Jagged protein. In certain embodiments, any extracellular domain (ECD) of the ligand disclosed herein can be used as Notch binding domain.In certain embodiments, Delta protein is Delta-like ligand 1 (DLL1) (GenBank accession number ABC26875 or NP005609; RefSeq NP_005609.3), DLL3 (GenBank accession number / RefSeq NP_982353.1 or NP_058637.1), or DLL4 (GenBank accession number NP_982353.1; RefSeq NP_061947.1), its homolog, or functional (Notch binding) variant, fragment, or derivative.In certain embodiments, Delta protein is Delta-like ligand 1 (DLL1) or DLL4.In certain embodiments, the Jagged protein is Jagged 1 (GenBank Accession No. AAC51731; RefSeq NP_000205.1) or Jagged 2 (GenBank Accession No. AAD15562; RefSeq NP_002217.3 (Isoform A) or NP_660142.1 (Isoform B)), a homolog, or a functional (Notch-binding) variant, fragment, or derivative thereof. In certain embodiments, the human Jagged 1 ECD set forth as a partial sequence of SEQ ID NO: 3 or 4 can be used as the Notch-binding domain.

[0055] In certain embodiments, the Notch receptor antigen-binding portion ("first antigen-binding portion") specifically binds to all or part of a partial peptide of a Notch receptor. In certain embodiments, the Notch receptor is a human Notch receptor, a cynomolgus monkey Notch receptor, or a mouse Notch receptor, particularly a human Notch receptor. In certain embodiments, the Notch receptor antigen-binding portion ("first antigen-binding portion") is cross-reactive with (i.e., specifically binds to) human and cynomolgus monkey Notch receptors.

[0056] The multispecific antigen-binding molecules of the present disclosure also include multispecific antibodies that have undergone post-translational modifications. Examples of the multispecific antigen-binding molecules of the present disclosure that have undergone post-translational modifications include multispecific antigen-binding molecules that have undergone pyroglutamylation at the N-terminus of the heavy chain variable region and / or deletion of lysine at the C-terminus of the heavy chain. It is known in the art that such post-translational modifications, such as pyroglutamylation at the N-terminus and deletion of lysine at the C-terminus, have no effect on the activity of antibodies (Analytical Biochemistry, 2006, Vol. 348, pp. 24-39).

[0057] An antigen-binding portion that specifically binds to the anchor antigen In one aspect, the multispecific antigen-binding molecules described herein comprise at least one antigen-binding moiety capable of binding to an anchor antigen (also referred to herein as an "anchor antigen-binding moiety" or "second antigen-binding moiety"). In certain embodiments, the multispecific antigen-binding molecule comprises one antigen-binding moiety capable of binding to voltage-gated calcium channel subunit α1S (CACNA1S), fibroblast activation protein (FAP), glypican-3 (GPC3), or FcγRIIB (CD32B).

[0058] In one aspect, the second antigen-binding moiety that specifically binds to the anchor antigen of the present disclosure includes any polypeptide that can bind to the anchor antigen, so long as the multispecific antigen-binding molecule of the present disclosure is capable of transactivating the Notch signaling pathway in the first target cell.

[0059] In certain embodiments, the anchor antigen-binding portion ("second antigen-binding portion") is generally a Fab molecule, particularly a conventional Fab molecule. In certain embodiments, the anchor antigen-binding portion ("second antigen-binding portion") is a domain comprising an antibody light chain and heavy chain variable region (VL and VH). In certain embodiments, the anchor antigen-binding portion ("second antigen-binding portion") is a "single-chain Fv (scFv)," "single-chain antibody," "Fv," "single-chain Fv2 (scFv2)," "Fab," "F(ab')2," VHH, VL, VH, single-domain antibody, or any antibody fragment.

[0060] In certain embodiments, the anchor antigen-binding portion ("second antigen-binding portion") specifically binds to all or part of a partial peptide of the anchor antigen. In certain embodiments, the anchor antigen is a human anchor antigen, a cynomolgus monkey anchor antigen, or a mouse anchor antigen, particularly a human anchor antigen. In certain embodiments, the anchor antigen-binding portion ("second antigen-binding portion") is cross-reactive with (i.e., specifically binds to) human and cynomolgus monkey anchor antigens.

[0061] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. wherein a first target cell and a second target cell are different cells, and the multispecific antigen-binding molecule transactivates the Notch signaling pathway in the first target cell. In one aspect, the characteristic that "a multispecific antigen-binding molecule transactivates the Notch signaling pathway in a first target cell" is alternatively referred to as "a multispecific antigen-binding molecule activates the Notch signaling pathway in a first target cell when (or only when) the multispecific antigen-binding molecule is bound to an anchor antigen on a second target cell." Preferably, the anchor antigen on the second target cell is not expressed (or is not significantly / substantially / specifically expressed) in the first target cell.

[0062] In certain embodiments, the second antigen-binding portion of the present disclosure specifically binds to GPC3, and the GPC3 antigen-binding portion (the "second antigen-binding portion") comprises the following combination (b1) of H chain CDR1, CDR2, and CDR3, and L chain CDR1, CDR2, and CDR3: (b1) A heavy chain variable region comprising complementarity-determining regions (CDRs) 1, 2, and 3 contained in SEQ ID NO: 7, and a light chain variable region comprising CDRs 1, 2, and 3 contained in SEQ ID NO: 8. Includes.

[0063] In certain embodiments, the GPC3 antigen-binding portion (the "second antigen-binding portion") comprises an antibody variable region comprising a human antibody framework or a humanized antibody framework.

[0064] In certain embodiments, the GPC3 antigen-binding portion (the "second antigen-binding portion") has the following structure (d1): (d1) a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 7 and a light chain variable region comprising the amino acid sequence of SEQ ID NO: 8 Includes.

[0065] In one embodiment, the GPC3 antigen-binding portion (the "second antigen-binding portion") comprises a heavy chain variable region sequence that is at least about 95%, 96%, 97%, 98%, 99%, or 100% identical to SEQ ID NO:7, and a light chain variable region sequence that is at least about 95%, 96%, 97%, 98%, 99%, or 100% identical to SEQ ID NO:8.

[0066] In a specific embodiment, the antigen-binding molecule of the present invention comprises: Sequence of SEQ ID NO: 5 ("Chain 1" comprising the variable heavy domain (VH) and constant heavy domain 1 (CH1) (site-specific binding domain), and the Fc region); The sequence of SEQ ID NO: 6 ("Chain 2" comprising the variable light domain (VL) (site-specific binding domain) and the constant light domain (CL); and Sequence SEQ ID NO: 3 ("Chain 3" containing Jag1 ECD and Fc region) Includes.

[0067] In a specific embodiment, the antigen-binding molecule of the present invention comprises: Sequence of SEQ ID NO: 5 ("Chain 1" comprising the variable heavy domain (VH) and constant heavy domain 1 (CH1) (site-specific binding domain), and the Fc region); The sequence of SEQ ID NO: 6 ("Chain 2" comprising the variable light domain (VL) (site-specific binding domain) and the constant light domain (CL); and Sequence SEQ ID NO: 25 ("Chain 3" containing Jag2 ECD and Fc region) Includes.

[0068] In a specific embodiment, the antigen-binding molecule of the present invention comprises: Sequence of SEQ ID NO: 5 ("Chain 1" comprising the variable heavy domain (VH) and constant heavy domain 1 (CH1) (site-specific binding domain), and the Fc region); The sequence of SEQ ID NO: 6 ("Chain 2" comprising the variable light domain (VL) (site-specific binding domain) and the constant light domain (CL); and Sequence of SEQ ID NO: 26 ("Chain 3" containing DLL1 ECD and Fc region) Includes.

[0069] In a specific embodiment, the antigen-binding molecule of the present invention comprises: Sequence of SEQ ID NO: 5 ("Chain 1" comprising the variable heavy domain (VH) and constant heavy domain 1 (CH1) (site-specific binding domain), and the Fc region); The sequence of SEQ ID NO: 6 ("Chain 2" comprising the variable light domain (VL) (site-specific binding domain) and the constant light domain (CL); and Sequence of SEQ ID NO: 27 ("Chain 3" containing DLL3 ECD and Fc region) Includes.

[0070] In a specific embodiment, the antigen-binding molecule of the present invention comprises: Sequence of SEQ ID NO: 5 ("Chain 1" comprising the variable heavy domain (VH) and constant heavy domain 1 (CH1) (site-specific binding domain), and the Fc region); The sequence of SEQ ID NO: 6 ("Chain 2" comprising the variable light domain (VL) (site-specific binding domain) and the constant light domain (CL); and Sequence of SEQ ID NO: 28 ("Chain 3" containing DLL4 ECD and Fc region) Includes.

[0071] In certain embodiments, the second antigen-binding portion of the disclosure specifically binds to a FAP, and the FAP antigen-binding portion ("second antigen-binding portion") has the following (b1) combination of H chain CDR 1, CDR 2, and CDR 3 and L chain CDR 1, CDR 2, and CDR 3: (b1) a heavy chain variable region comprising complementarity-determining regions (CDRs) 1, 2, and 3 contained in SEQ ID NO: 31, and a light chain variable region comprising CDRs 1, 2, and 3 contained in SEQ ID NO: 32; Includes.

[0072] In certain embodiments, the FAP antigen-binding portion ("second antigen-binding portion") comprises an antibody variable region comprising a human or humanized antibody framework.

[0073] In certain embodiments, the FAP antigen-binding portion ("second antigen-binding portion") has the following structure (d1): (d1) a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 31, and a light chain variable region comprising the amino acid sequence of SEQ ID NO: 32 Includes.

[0074] In one embodiment, the FAP antigen-binding portion ("second antigen-binding portion") comprises a heavy chain variable region sequence that is at least about 95%, 96%, 97%, 98%, 99%, or 100% identical to SEQ ID NO:31, and a light chain variable region sequence that is at least about 95%, 96%, 97%, 98%, 99%, or 100% identical to SEQ ID NO:32.

[0075] In a specific embodiment, the antigen-binding molecule of the present invention comprises: Sequence of SEQ ID NO: 22 ("Chain 1" comprising the variable heavy domain (VH) and constant heavy domain 1 (CH1) (site-specific binding domain), and the Fc region); The sequence of SEQ ID NO: 23 ("Chain 2" comprising the variable light domain (VL) (site-specific binding domain) and the constant light domain (CL); and Sequence SEQ ID NO: 3 ("Chain 3" containing Jag1 ECD and Fc region) Includes.

[0076] In certain embodiments, the second antigen-binding portion of the disclosure specifically binds to FcγRIIB and has the following structure (d1): (d1) an amino acid sequence at least about 95%, 96%, 97%, 98%, 99%, or 100% identical to SEQ ID NO: 30; or (d2) Amino acid sequence of SEQ ID NO: 30 Includes.

[0077] The multispecific antigen-binding molecules of the present disclosure also include multispecific antibodies that have undergone post-translational modifications. Examples of the multispecific antigen-binding molecules of the present disclosure that have undergone post-translational modifications include multispecific antibodies that have undergone pyroglutamylation at the N-terminus of the heavy chain variable region and / or deletion of lysine at the C-terminus of the heavy chain. It is known in the art that such post-translational modifications by pyroglutamylation at the N-terminus and deletion of lysine at the C-terminus have no effect on the activity of antibodies (Analytical Biochemistry, 2006, Vol. 348, pp. 24-39).

[0078] antigen As used herein, the term "antigen" refers to the entire polypeptide macromolecule or a portion of the molecule (e.g., a three-dimensional structure consisting of a continuous stretch of amino acids or a discrete region of non-contiguous amino acids) to which an antigen-binding moiety binds, forming an antigen-binding moiety-antigen complex. Useful antigenic determinants can be found, for example, on the surface of tumor cells, on the surface of virus-infected cells, on the surface of other diseased cells, on the surface of immune cells, free in serum, and / or in the extracellular matrix (ECM). Unless otherwise specified, proteins referred to herein as antigens (e.g., Notch receptors such as Notch1, Notch2, Notch3, and Notch4, voltage-gated calcium channel subunit α1S (CACNA1S), fibroblast activation protein (FAP), glypican-3 (GPC3), and FcγRIIB (CD32B)) can be any naturally occurring form of the protein from any vertebrate source, including mammals such as primates (e.g., humans) and rodents (e.g., mice and rats). In certain embodiments, antigen is human Notch receptor, human CACNA1S, human FAP, human GPC3 or human CD32B.When specific protein is mentioned herein, this term includes " full-length " unprocessed protein and any form of protein that is produced by processing in cells.This term also includes naturally occurring variants of protein, such as splice variants or allelic variants.

[0079] Notch receptors The term "Notch receptor" as used herein refers to any natural Notch receptor and its homologues known to those skilled in the art, including mammals such as primates (for example, humans) and rodents (for example, mice and rats) from any vertebrate source.The amino acid sequence of human Notch receptor 1 (also referred to as Notch1) is listed under Genbank accession number P46531, the amino acid sequence of human Notch receptor 2 (also referred to as Notch2) is listed under Genbank accession number AAH71562.2, the amino acid sequence of human Notch receptor 3 (also referred to as Notch3) is listed under Genbank accession number AAB91371.1, and the amino acid sequence of human Notch receptor 4 (also referred to as Notch4) is listed under Genbank accession number AAC63097.1. The term "Notch signaling pathway," as used herein, refers to a cell signaling cascade resulting from the proteolytic cleavage of mature Notch receptors expressed in the cell membrane due to interactions between Notch proteins and related proteins such as Jagged or Delta proteins.

[0080] In one embodiment, the anchor antigen on the second target cell may be any related antigen, as long as the multispecific antigen-binding molecule is capable of transactivating the Notch signaling pathway in the first target cell.

[0081] In one embodiment, the anchor antigen on the second target cell is preferably not expressed on the first target cell, hi some embodiments, the anchor antigen on the second target cell is preferably not significantly / substantially / specifically expressed on the first target cell. The phrase "not significantly / substantially / specifically expressed" as used herein refers to the expression of a protein such as an anchor antigen at a level of expression, including insignificant, insubstantial, non-specific, or background expression, but not including significant, substantial, or specific expression. Whether expression is significant, substantial, specific, or background can be appropriately determined by those skilled in the art. The level of insignificant, insubstantial, non-specific, or background expression may be zero, or may be close to zero but not zero, or may be so low that it can be technically ignored by those skilled in the art. For those skilled in the art, the phrase "not expressed" may have the same meaning as the phrase "not significantly / substantially / specifically expressed."

[0082] In some embodiments, the appropriate ratio of the first antigen to anchor antigen on the first target cell that can exhibit the agonist activity of the multispecific antigen-binding molecule of the present disclosure can be determined based on the disclosure provided herein and the knowledge available in the art.Thus, although not explicitly stated herein, any ratio of the first antigen to anchor antigen on the first target cell should still be considered within the scope of the present disclosure, as long as such ratio can improve the activity of the multispecific antigen-binding molecule in regulating the target signaling pathway (for example, at least 2.5-fold, 5-fold, 10-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, 100-fold, 150-fold, 200-fold, 250-fold, 300-fold, 400-fold, 500-fold, 600-fold, 700-fold, 800-fold, 900-fold, 1,000-fold or more) compared with the case where an antigen-binding portion specific for either the first antigen or the anchor antigen is used.

[0083] Some examples of ratios of first antigen to anchor antigen on the first target cell range from about 1:1, 2:1, 3:1, 4:1, 5:1, 6:1, 7:1, 8:1, 9:1, 10:1, 11:1, 12:1, 13:1, 14:1, 15:1, 16:1, 17:1, 18:1, 19:1, 20:1, 50:1, 100:1, 200:1, 500:1, or 1000:1, or more.

[0084] In certain embodiments, the multispecific antigen binding molecules described herein bind to an epitope of a Notch receptor, CACNA1S, FAP, GPC3, or CD32B that is conserved among Notch receptor proteins, CACNA1S proteins, FAP proteins, GPC3 proteins, or CD32B proteins from different species.

[0085] CACNA1S (Cav1.1, calcium channel, voltage-gated, L-type, α1S subunit) CACNA1S, also known as calcium channel, voltage-gated, L-type, α1S subunit (Cav1.1), is a protein encoded by the CACNA1S gene in humans. It is also known as CACNL1A3 and dihydropyridine receptor (DHPR, so named because of its blocking activity relative to DHP). This gene encodes one of the five subunits of the slow-inactivating L-type voltage-gated calcium channel in skeletal muscle cells. Mutations in this gene are associated with susceptibility to hypokalemic periodic paralysis, thyrotoxic periodic paralysis, and malignant hyperthermia. Cav1.1 is a voltage-gated calcium channel found in muscle transverse tubules. In skeletal muscle, it associates with the ryanodine receptor RyR1 of the sarcoplasmic reticulum via mechanical coupling. It senses changes in electrical potential caused by nerve end-plate potentials and propagated by sodium channels as action potentials to T-tubules.

[0086] FAP (fibroblast activation protein, alpha) Fibroblast activation protein alpha (FAP-α), also known as prolyl endopeptidase FAP, is an enzyme encoded by the FAP gene in humans. Prolyl endopeptidase FAP is a 170 kDa membrane-bound gelatinase. FAP is a 760 amino acid type II transmembrane glycoprotein. It contains a very short cytoplasmic N-terminal portion (6 amino acids), a transmembrane region (7–26 amino acids), and a large extracellular portion with an α / β hydrolase domain and an eight-bladed β propeller domain. A soluble form of FAP, lacking the intracellular and transmembrane portions, is present in plasma. FAP is a nonclassical serine protease belonging to the S9B prolyl oligopeptidase subfamily.

[0087] GPC3 The nucleotide sequence of the GPC3 gene is disclosed in RefSeq accession number NM_001164617.1, and the GPC3 protein is shown in RefSeq accession number NP_001158089.1. Methods for producing antibodies with desired binding activity are known to those skilled in the art. The following is an example describing a method for producing an antibody (anti-GPC3 antibody) that binds to glypican-3 (hereinafter also referred to as GPC3), a member of the GPI-anchored receptor family (Int J Cancer. (2003) 103(4), 455-65). In particular, a monoclonal antibody is prepared as described below. Anti-GPC3 antibodies can be obtained as polyclonal or monoclonal antibodies using known methods. The preferred anti-GPC3 antibody is a mammalian monoclonal antibody. Such mammalian monoclonal antibodies include antibodies produced by hybridomas or host cells transformed with an expression vector carrying an antibody gene by genetic engineering techniques.

[0088] Monoclonal antibody-producing hybridomas can be produced using known techniques, such as those described below. Specifically, a mammal is immunized using a conventional immunization method with a GPC3 protein as a sensitizing antigen. The resulting immune cells are fused with known parent cells using a conventional cell fusion method. Hybridomas producing anti-GPC3 antibodies can then be selected by screening for monoclonal antibody-producing cells using conventional screening methods.

[0089] Anchor antigen on the third target cell The multispecific antigen-binding molecules of the present invention may further comprise a third antigen-binding moiety that binds to an anchor antigen on a third target cell. As described herein, tissue / site specificity of Notch signaling pathway activation is achieved by selectively binding a specific binding domain to an anchor antigen that has specific, exclusive, or restricted expression in a tissue or cell population of interest. The purpose of the third antigen-binding moiety is to further increase the specificity of Notch signaling pathway activation in an anchorage-dependent manner. The third target cell and the anchor antigen on the third target cell can be appropriately selected by those skilled in the art to achieve the above purpose. In some embodiments, the second target cell and the third target cell are different cells, and the anchor antigen on the second target cell is different from the anchor antigen on the third target cell. In some embodiments, the second target cell and the third target cell are the same cell, and the anchor antigen on the second target cell is different from the anchor antigen on the third target cell. In some embodiments, the first target cell expressing a Notch receptor and the third target cell expressing an anchor antigen are different cells.

[0090] Transactivation Terms such as "transactivation," "transactivate," and "transactivating" (and other grammatical variations) refer to a feature of the multispecific antigen-binding molecule of the present invention that the multispecific antigen-binding molecule can cause Notch signal activation in a first target cell when (or only when) the multispecific antigen-binding molecule is bound to an anchor antigen expressed on the second target cell. Notch signaling is achieved when two types of cells, i.e., the first and second target cells, are spatially "coupled" or "connected" to the multispecific antigen-binding molecule (i.e., the term "trans" implies this spatial "coupled" or "connected"). Preferably, the anchor antigen expressed on the second target cell is not expressed (or is not significantly / substantially / specifically expressed) on the first target cell. In some embodiments, the multispecific antigen-binding molecule transactivates the Notch signaling pathway in a first target cell when (or only when) the multispecific antigen-binding molecule is bound to an anchor antigen on a second target cell, preferably an anchor antigen that is not expressed (or not significantly / substantially / specifically expressed) on the first target cell. Although the above description focuses on Notch signaling activation that relies on an anchor antigen on a second target cell (i.e., "anchor-dependent" transactivation of the Notch signaling pathway), the same can be applied to other anchor antigens on target cells for anchorage, such as anchor antigens on third target cells.

[0091] In some aspects, the multispecific antigen-binding molecules of the present disclosure function as agonists and activate a signal transduction pathway of interest (or a target signal transduction pathway). In certain embodiments, a multispecific antigen-binding molecule that functions as an agonist of a target signal transduction pathway upregulates (e.g., stimulates, enhances, promotes, or increases) the activity of the target signal transduction pathway by at least 2.5-fold, 5-fold, 10-fold, 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, 90-fold, 100-fold, 150-fold, 200-fold, 250-fold, 300-fold, 400-fold, 500-fold, 600-fold, 700-fold, 800-fold, 900-fold, 1,000-fold, or more, or any value therebetween, compared to the use of antigen-binding moieties specific for either the first or second antigen. Target signaling activity can, in some embodiments, be measured via a reporter assay that is responsive to activation of a signaling pathway.

[0092] In some embodiments, the appropriate threshold level of expression of the second antigen (or third antigen) on the surface of the second target cell (or third target cell) that can exhibit agonistic activity for the multispecific antigen-binding molecule activity of the present disclosure can be determined based on the disclosure provided herein and knowledge available in the art. Thus, although not explicitly stated herein, any level of expression of the second antigen (or third antigen) on the second target cell (or third target cell) should still be considered within the scope of the present disclosure, as long as such threshold can result in an improvement (e.g., at least 2.5-fold or more) in the activity of the multispecific antigen-binding molecule in regulating the target signaling pathway compared to that of the antigen-binding moiety specific for either the first antigen or the second antigen (or the third antigen). Some examples of threshold expression levels of the second antigen (or third antigen) on the surface of the second target cell (or third target cell) include about 100, 500, 1,000, 1,500, 2,000, 2,500, 3,000, 3,500, 4,000, 4,500, 5,000, 5,500, 6,000, 6,500, 7,000, 7,500, 8,000, 8,500, 9,000, 10,000, 11,000, 12,000, 13,000, 14,000, 15,000, 16,000, 17,000, 18,000, 19,000, 21,000, 22,000, 23,000, 24,000, 25,000, 26,000, 27,000, 28,000, 29,000, 30,000, 31,000, 32,000, 33,000, 34,000, 35,000, 36,000, 37,000, 38,000, 39,000, 40,000, 41,000, 42,000, 43,000, 44,000, 45,000, 46,000, 47,000, 48,000, 49,000, 50,000, 51,000, 52,000, 53,000, 54,000 000, 9,500, 10,000, 11,000, 12,000, 13,000, 14,000, 15,000, 16,000, 17,000, 18,000, 19,000, 20,000, 25,000, 30,000, 40,000, 50,000, 100,000, 200,000, 500,000 or more copies, or any copy number therebetween.

[0093] Target Cells and Anchor Antigens Tissue or site specificity of Notch signaling pathway activation can be achieved by the specific binding of a multispecific antigen-binding molecule to a molecule of interest (e.g., a Notch receptor) on a first target cell (via a first antigen-binding moiety), an anchor antigen on a second target cell (via a second antigen-binding moiety), and optionally an anchor antigen on a third target cell (via a third antigen-binding moiety), etc. Preferably, the expression of the anchor antigen is specific, exclusive, or limited to the second (or third) target cell. Tissue / site-specific transactivation of the signaling pathway can be achieved by appropriately selecting the combination of target cells and anchor antigens as described herein. In some embodiments, neither the first target cell nor the second target cell is in a tumor microenvironment, i.e., both the first target cell and the second target cell are in a non-tumor microenvironment. In some embodiments, neither the first target cell nor the second target cell is a tumor cell, i.e., both the first target cell and the second target cell are non-tumor cells. In some embodiments, neither the first nor the second target cells are non-tumor cells in a tumor microenvironment, i.e., both the first and second target cells are non-tumor cells in a non-tumor environment. In some embodiments, the Notch signaling pathway is not anti-oncogenic, i.e., the Notch signaling pathway is non-tumor suppressive. In some embodiments, the Notch signaling pathway is anti-inflammatory, i.e., the Notch signaling pathway is not pro-inflammatory, i.e., the Notch signaling pathway is non-inflammatory. The term "tumor microenvironment" refers to the small environment containing normal cells, molecules, and blood vessels surrounding tumor cells, which can affect the growth, proliferation, and / or migration of tumor cells. In some embodiments, the anchor antigen bound by the second antigen-binding moiety of the present invention is not a tumor cell-specific antigen, e.g., CD33, CD326, CD133, or mesothelin. In some embodiments, the anchor antigen bound by the second antigen-binding moiety of the present invention is not an extracellular antigen or a matrix, e.g., collagen, present in the tumor microenvironment.

[0094] In one aspect, the multispecific antigen-binding molecule comprises: (i) a first antigen-binding moiety that specifically binds to a Notch receptor on a first target cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. wherein the first target cell and the second target cell are different cells, and the multispecific antigen-binding molecule transactivates the Notch signaling pathway in the first target cell.

[0095] In one aspect, the characteristic that "a multispecific antigen-binding molecule transactivates the Notch signaling pathway in a first target cell" is alternatively referred to as "a multispecific antigen-binding molecule activates the Notch signaling pathway in a first target cell when (or only when) the multispecific antigen-binding molecule is bound to an anchor antigen on a second target cell." Preferably, the anchor antigen on the second target cell is not expressed (or is not significantly / substantially / specifically expressed) in the first target cell.

[0096] In one embodiment, the first target cell expressing a Notch receptor may be any relevant cell, as long as the multispecific antigen-binding molecule is capable of transactivating the Notch signaling pathway in the first target cell.

[0097] In some embodiments, the first target cells expressing Notch receptors are tissue stem cells (also known as "tissue-specific stem cells" or "adult stem cells"), activated CD4 T lymphocytes, profibrotic factor-secreting cells, or pro-tumorigenic cells in the tumor microenvironment. In one such embodiment, the tissue stem cells are satellite cells, adult intestinal stem cells, or crypt basal columnar (CBC) cells.

[0098] In one aspect, the second antigen-binding moiety specifically binds to an anchor antigen on a second target cell.

[0099] In one embodiment, the second target cell expressing the anchor antigen may be any related cell, as long as the multispecific antigen-binding molecule is capable of transactivating the Notch signaling pathway in the first target cell in an anchor antigen-dependent manner. In one embodiment, the second target cell is selected from the group consisting of a non-satellite muscle cell, an activated fibroblast, an immune cell expressing FcgRIIB, a GPC3-expressing cancer cell, and a cell in the intestinal crypt. In some embodiments, the FcgRIIB-expressing immune cells are selected from the group consisting of circulating B lymphocytes, monocytes, neutrophils, lymphoid dendritic cells, and myeloid dendritic cells.

[0100] Those skilled in the art can easily select any suitable anchor antigen and second target cell for designing and implementing the second antigen-binding moiety according to their common general knowledge. Those skilled in the art can easily select any suitable anchor antigen and third (or further) target cell for designing and implementing the third (or further) antigen-binding moiety according to their common general knowledge.

[0101] In some embodiments, examples of combinations of first and second target cells in which the multispecific antigen binding molecule transactivates the Notch signaling pathway in the first target cell are as follows: (1) Satellite cells (primary targets for Notch activation) and differentiating myoblasts and differentiated myotube cells (secondary target cells that express anchor antigens, e.g., CACNA1S). (2) Profibrotic factor-secreting cells (first target cells) and any fibroblasts (second target cells) that express FAP (fibroblast activation protein), for example, in areas of active tissue remodeling, such as tumor stroma or healing wounds, such as rheumatoid myofibroblast-like synoviocytes and myofibroblasts. (3) Activated CD4+ T cells (first target cells) and immune cells (e.g., B cells, plasma cells, macrophages, monocytes, eosinophils, neutrophils, dendritic cells, mast cells) that express FcgRIIB, for example, at the site of inflammation (second target cells). (4) Pro-tumorigenic cells (first target cells) and GPC3-expressing cancer cells (second target cells) in the tumor microenvironment, where Notch activation can induce anti-cancer effects (e.g., growth suppression or apoptosis induction). (5) Adult intestinal stem cells or crypt basal columnar (CBC) cells (first target cells) and adjacent cells in the intestinal crypt (second target cells) (e.g., Paneth cells, +4 cells, transiently proliferating cells). Potential anchor antigens (second target cells) associated with adult intestinal stem cells or crypt basal columnar (CBC) cells can be appropriately selected by those skilled in the art to achieve the above objectives.

[0102] In one such embodiment, any suitable anchor antigen for the design and implementation of the second (and further) antigen-binding moiety can be selected by at least one criterion selected from (1) to (5). 1) To limit systemic exposure and minimize the risk of toxicity due to Notch activation, spatial expression of the anchor antigen should be restricted to or exclusively expressed by the cell type or tissue of interest. 2) The temporal expression of anchor antigens should be carefully considered. For example, some anchor antigens are expressed only in stem cells and are lost after commitment to differentiation. Notch activation at different developmental stages also leads to different phenotypes in transgenic mice. Early Notch activation causes embryonic lethality and impaired muscle development. On the other hand, postnatal Notch activation in transgenic mice helps improve aging muscle and enhances muscle regeneration. 3) The anchor antigen should have stable expression on the cell or be tethered to the cell surface by slow internalization. 4) The anchor antigen should be expressed uniformly in the majority of cells or tissues of interest, with low heterogeneity to minimize uneven activation of Notch signaling. 5) The anchor antigen should be expressed at sufficient levels to ensure adequate retention of the bispecific Notch agonist antibody even in pathological conditions.

[0103] In some embodiments, the present disclosure provides a method of screening for an anchor antigen for a second antigen-binding portion of a multispecific antigen-binding molecule of the disclosure, comprising: (i) assessing whether the candidate anchor antigen satisfies at least one criterion selected from 1) to 5) described above; and (ii) selecting an anchor antigen for the second antigen-binding moiety if at least one criterion is met. The present invention provides a method comprising:

[0104] In some embodiments, the present disclosure provides a method of producing a multispecific antigen-binding molecule comprising a first antigen-binding portion and a second antigen-binding portion, the method comprising: (i) assessing whether the candidate anchor antigen satisfies at least one criterion selected from 1) to 5) described above; and (ii) selecting an anchor antigen for the second antigen-binding moiety if at least one criterion is met; (iii) preparing a nucleic acid encoding a multispecific antigen-binding molecule comprising a first antigen-binding portion that specifically binds to a Notch receptor on a first target cell and a second antigen-binding portion that specifically binds to an anchor antigen on a second target cell; and (iv) expressing the nucleic acid to produce the multispecific antigen-binding molecule. wherein the multispecific antigen-binding molecule activates the Notch signaling pathway in a first target cell when the multispecific antigen-binding molecule is bound to an anchor antigen on a second target cell.

[0105] In some embodiments, the present disclosure provides a method of producing a multispecific antigen-binding molecule comprising a first antigen-binding portion and a second antigen-binding portion, the method comprising: (i) assessing whether the candidate anchor antigen satisfies at least one criterion selected from 1) to 5) described above; and (ii) selecting an anchor antigen for the second antigen-binding moiety if at least one criterion is met; (iii) preparing a nucleic acid encoding a multispecific antigen-binding molecule comprising a first antigen-binding portion that specifically binds to a Notch receptor on a first target cell and a second antigen-binding portion that specifically binds to an anchor antigen on a second target cell; and (iv) expressing the nucleic acid to produce the multispecific antigen-binding molecule. The present invention provides a method comprising:

[0106] The list below shows candidate anchor antigens or modified Fcs that preferentially bind to anchor antigens (eg, FcγRIIB selective binding technology and FcγRIIB). TIFF2026010057000001.tif55169TIFF2026010057000002.tif212170TIFF2026010057000003.tif226170TIFF2026010057000004.tif120170

[0107] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) a first antigen-binding moiety that specifically binds to an antigen on a tissue stem cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. wherein the tissue stem cell and the second target cell are different cells, and the multispecific antigen-binding molecule transactivates the Notch signaling pathway in the tissue stem cell. In one aspect, the characteristic that "the multispecific antigen-binding molecule transactivates the Notch signaling pathway in tissue stem cells" is alternatively referred to as "the multispecific antigen-binding molecule activates the Notch signaling pathway in tissue stem cells when (or only when) the multispecific antigen-binding molecule binds to an anchor antigen on a second target cell." Preferably, the anchor antigen on the second target cell is not expressed (or is not significantly / substantially / specifically expressed) in tissue stem cells.

[0108] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) a first antigen-binding moiety that specifically binds to an antigen on a satellite cell; and (ii) a second antigen-binding moiety that specifically binds to an anchor antigen on a second target cell. wherein satellite cells and second target cells are different cells, and the multispecific antigen-binding molecule transactivates the Notch signaling pathway in satellite cells. In one aspect, the characteristic that "the multispecific antigen-binding molecule transactivates the Notch signaling pathway in satellite cells" is alternatively referred to as "the multispecific antigen-binding molecule activates the Notch signaling pathway in satellite cells when (or only when) the multispecific antigen-binding molecule is bound to an anchor antigen on a second target cell." Preferably, the anchor antigen on the second target cell is not expressed (or is not significantly / substantially / specifically expressed) in satellite cells.

[0109] antigen-binding domain The term "antigen-binding domain" refers to a portion of an antibody comprising the area that specifically binds to and is complementary to part or all of an antigen. An antigen-binding domain may be provided, for example, by one or more antibody variable domains (also called antibody variable regions). Preferably, the antigen-binding domain comprises both an antibody light chain variable region (VL) and an antibody heavy chain variable region (VH). Such preferred antigen-binding domains include, for example, "single-chain Fv (scFv)," "single-chain antibody," "Fv," "single-chain Fv2 (scFv2)," "Fab," and "F(ab')2." An antigen-binding domain may also be provided by a single-domain antibody.

[0110] Single Domain Antibodies As used herein, the term "single-domain antibody" is not limited by its structure, as long as the domain can exhibit antigen-binding activity by itself. While typical antibodies, such as IgG antibodies, exhibit antigen-binding activity when their variable regions are formed by pairing VH and VL, it is known that the domain structure of a single-domain antibody can exhibit antigen-binding activity by itself, without pairing with another domain. Single-domain antibodies typically have a relatively low molecular weight and exist in the form of a monomer.

[0111] Examples of single domain antibodies include, but are not limited to, antigen-binding molecules such as camelid VHH and shark VNAR, which naturally lack light chains, and antibody fragments containing the entire or a portion of an antibody VH domain or the entire or a portion of an antibody VL domain. Examples of single domain antibodies, which are antibody fragments containing the entire or a portion of an antibody VH domain or an antibody VL domain, include, but are not limited to, artificially prepared single domain antibodies derived from human antibody VH or human antibody VL, such as those described in U.S. Patent No. 6,248,516 B1. In some embodiments of the present invention, a single domain antibody has three CDRs (CDR1, CDR2, and CDR3).

[0112] Single-domain antibodies can be obtained from animals capable of producing single-domain antibodies or by immunization of animals capable of producing single-domain antibodies. Examples of animals capable of producing single-domain antibodies include, but are not limited to, camelids and transgenic animals carrying genes capable of producing single-domain antibodies. Camelids include camels, llamas, alpacas, dromedaries, and guanacos. Examples of transgenic animals carrying genes capable of producing single-domain antibodies include, but are not limited to, the transgenic animals described in International Publication No. WO2015 / 143414 and U.S. Patent Publication No. US2011 / 0123527 A1. The framework sequences of single-domain antibodies obtained from such animals may be converted to human germline sequences or sequences similar thereto to obtain humanized single-domain antibodies. Humanized single-domain antibodies (e.g., humanized VHHs) are also an embodiment of the single-domain antibodies of the present invention.

[0113] Alternatively, single domain antibodies can be obtained by ELISA, panning, or the like from a polypeptide library containing single domain antibodies. Examples of polypeptide libraries containing single domain antibodies include, but are not limited to, naive antibody libraries obtained from various animals or humans (e.g., Methods in Molecular Biology 2012 911 (65-78); and Biochimica et Biophysica Acta - Proteins and Proteomics 2006 1764: 8 (1307-1319)), antibody libraries obtained by immunization of various animals (e.g., Journal of Applied Microbiology 2014 117: 2 (528-536)), and synthetic antibody libraries prepared from antibody genes of various animals or humans (e.g., Journal of Biomolecular Screening 2016 21: 1 (35-43); Journal of Biological Chemistry 2016 291:24 (12641-12657); and AIDS 2016 30: 11 (1691-1701)).

[0114] Variable region 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 heavy and light chain variable domains (VH and VL, respectively) of natural antibodies typically have similar structures, with each domain containing four conserved framework regions (FR) and three hypervariable regions (HVR). (See, for example, Kindt et al., Kuby Immunology, 6th ed., W.H. Freeman and Co., page 91 (2007)). A single VH or VL domain may be sufficient to confer antigen-binding specificity. Furthermore, antibodies that bind to a specific antigen may be isolated by screening a complementary library of VL or VH domains, respectively, using a VH or VL domain from an antibody that binds to that antigen. See, e.g., Portolano et al., J. Immunol. 150:880-887 (1993); Clarkson et al., Nature 352:624-628 (1991).

[0115] HVR or CDR As used herein, the term "hypervariable region" or "HVR" refers to each region of an antibody variable domain that is hypervariable in sequence ("complementarity determining region" or "CDR") and / or forms structurally defined loops ("hypervariable loops") and / or contains antigen contact residues ("antigen contacts"). Hypervariable regions (HVRs) are also referred to as "complementarity determining regions" (CDRs), and these terms are used interchangeably herein with respect to the portions of the variable domain that form the antigen binding region. Typically, antibodies contain six HVRs: three in the VH (H1, H2, H3) and three in the VL (L1, L2, L3). Exemplary HVRs herein include the following: (a) hypervariable loops occurring at amino acid residues 26-32 (L1), 50-52 (L2), 91-96 (L3), 26-32 (H1), 53-55 (H2), and 96-101 (H3) (Chothia and Lesk, J. Mol. Biol. 196:901-917 (1987)); (b) CDRs occurring at amino acid residues 24-34 (L1), 50-56 (L2), 89-97 (L3), 31-35b (H1), 50-65 (H2), and 95-102 (H3) (Kabat et al., Sequences of Proteins of Immunological Interest, 5th Ed. Public Health Service, National Institutes of Health, Bethesda, MD (1991)); (c) antigenic contacts occurring at amino acid residues 27c-36 (L1), 46-55 (L2), 89-96 (L3), 30-35b (H1), 47-58 (H2), and 93-101 (H3) (MacCallum et al. J. Mol. Biol. 262: 732-745 (1996)); and (d) A combination of (a), (b), and / or (c), comprising HVR amino acid residues 46-56 (L2), 47-56 (L2), 48-56 (L2), 49-56 (L2), 26-35 (H1), 26-35b (H1), 49-65 (H2), 93-102 (H3), and 94-102 (H3).

[0116] Unless otherwise indicated, HVR residues and other residues in the variable domain (e.g., FR residues) are numbered herein according to Kabat et al., supra.

[0117] HVR-H1, HVR-H2, HVR-H3, HVR-L1, HVR-L2, and HVR-L3 are also referred to as "H-CDR1," "H-CDR2," "H-CDR3," "L-CDR1," "L-CDR2," and "L-CDR3," respectively.

[0118] Fab molecules A "Fab molecule" refers to a protein consisting of the VH and CH1 domains of an immunoglobulin heavy chain (a "Fab heavy chain") and the VL and CL domains of a light chain (a "Fab light chain").

[0119] to be fused "Fused" means that the components (eg, a Fab molecule and an Fc domain subunit) are linked by peptide bonds, either directly or via one or more peptide linkers.

[0120] "Crossover" Fab A "crossover" Fab molecule (also referred to as "Crossfab") refers to a Fab molecule in which either the variable or constant regions of the Fab heavy and Fab light chains have been exchanged; i.e., the crossover Fab molecule comprises a peptide chain composed of a light chain variable region and a heavy chain constant region, and a peptide chain composed of a heavy chain variable region and a light chain constant region. For clarity, in a crossover Fab molecule in which the variable regions of the Fab light and Fab heavy chains have been exchanged, the peptide chain comprising the heavy chain constant region is referred to herein as the "heavy chain" of the crossover Fab molecule. Conversely, in a crossover Fab molecule in which the constant regions of the Fab light and Fab heavy chains have been exchanged, the peptide chain comprising the heavy chain variable region is referred to herein as the "heavy chain" of the crossover Fab molecule.

[0121] "Traditional" Fab In contrast, a "conventional" Fab molecule refers to a Fab molecule in its native form, i.e., a Fab molecule comprising a heavy chain (VH-CH1) composed of the variable and constant regions of the heavy chain, and a light chain (VL-CL) composed of the variable and constant regions of the light chain. The term "immunoglobulin molecule" refers to a protein having the structure of a naturally occurring antibody. For example, immunoglobulins of the IgG class are heterotetrameric glycoproteins of approximately 150,000 daltons composed of two light chains and two heavy chains linked by disulfide bonds. Each heavy chain has, from N- to C-terminus, a variable region (VH), also known as the variable heavy domain or heavy chain variable domain, followed by three constant domains (CH1, CH2, and CH3), also known as the heavy chain constant region. Similarly, each light chain has, from N- to C-terminus, a variable region (VL), also known as the variable light domain or light chain variable domain, followed by a constant light (CL) domain, also known as the light chain constant region. Immunoglobulin heavy chains may be assigned to one of five types, called α (IgA), δ (IgD), ε (IgE), γ (IgG), or μ (IgM), some of which may be further classified into subtypes, e.g., γ1 (IgG1), γ2 (IgG2), γ3 (IgG3), γ4 (IgG4), α1 (IgA1), and α2 (IgA2). Immunoglobulin light chains may be assigned to one of two types, called κ and λ, based on the amino acid sequence of their constant domains. Immunoglobulins essentially consist of two Fab molecules and an Fc domain linked via an immunoglobulin hinge region.

[0122] Affinity / Avidity "Affinity" refers to the strength of the total non-covalent interactions between one binding site of a molecule (e.g., an antigen-binding molecule or antibody) and the molecule's binding partner (e.g., an antigen). Unless otherwise specified, "binding affinity" as used herein refers to the intrinsic binding affinity that reflects a 1:1 interaction between members of a binding pair (e.g., an antigen-binding molecule and an antigen, or an antibody and an antigen). The affinity of a molecule X for its partner Y can generally be expressed by the dissociation constant (KD), which is the ratio of the dissociation rate constant to the association rate constant (koff and kon, respectively). Thus, equivalent affinities may involve different rate constants as long as the ratio of the rate constants remains the same. Affinity can be measured by established methods known in the art, including those described herein. A specific method for measuring affinity is surface plasmon resonance (SPR). The structure of an antibody's antigen-binding domain that binds to an epitope is called a paratope. The paratope stably binds to the epitope through hydrogen bonds, electrostatic forces, van der Waals forces, hydrophobic bonds, or the like that act between the epitope and the paratope. The binding strength between the epitope and the paratope is called "affinity" (see also above). When multiple antigen-binding domains bind to multiple antigens, the total binding strength is called "avidity." Affinity acts synergistically, for example, when an antibody containing multiple antigen-binding domains (i.e., a multivalent antibody) binds to multiple epitopes, and avidity can be higher than affinity.

[0123] How affinity is determined In certain embodiments, the antigen-binding molecules or antibodies provided herein have a binding affinity to their antigen of ≦1 μM, ≦120 nM, ≦100 nM, ≦80 nM, ≦70 nM, ≦50 nM, ≦40 nM, ≦30 nM, ≦20 nM, ≦10 nM, ≦2 nM, ≦1 nM, ≦0.1 nM, ≦0.01 nM, or ≦0.001 nM (e.g., 10 -8 M or less, 10 -8 M~10 -13 M, 10 -9 M~10 -13In certain embodiments, the KD value of the antibody / antigen-binding molecule for a Notch receptor or anchor antigen is within the range of 1 to 40, 1 to 50, 1 to 70, 1 to 80, 30 to 50, 30 to 70, 30 to 80, 40 to 70, 40 to 80, or 60 to 80 nM.

[0124] In one embodiment, KD is measured by radiolabeled antigen binding assay (RIA). In one embodiment, the RIA is performed using a Fab version of the antibody of interest and its antigen. For example, the solution binding affinity of the Fab for the antigen is measured at the lowest concentration ( 125 I) Measurement is performed by equilibrating Fab with labeled antigen and then capturing the bound antigen using a plate coated with anti-Fab antibody. (See, e.g., Chen et al., J. Mol. Biol. 293:865-881 (1999)). To establish measurement conditions, MICROTITER® multiwell plates (Thermo Scientific) are coated overnight with 5 μg / ml of capture anti-Fab antibody (Cappel Labs) in 50 mM sodium carbonate (pH 9.6), followed by blocking with 2% (w / v) bovine serum albumin in PBS for 2-5 hours at room temperature (approximately 23°C). In non-adsorbent plates (Nunc #269620), 100 pM or 26 pM [ 125[I]-antigen is mixed with serial dilutions of the Fab of interest (e.g., as in the evaluation of the anti-VEGF antibody, Fab-12, in Presta et al., Cancer Res. 57:4593-4599 (1997)). The Fab of interest is then incubated overnight, although this incubation can be continued for longer periods (e.g., approximately 65 hours) to ensure equilibrium is reached. The mixture is then transferred to a capture plate for incubation at room temperature (e.g., 1 hour). The solution is then removed, and the plate is washed eight times with 0.1% polysorbate 20 (TWEEN-20®) in PBS. Once the plate has dried, 150 μl / well of scintillant (MICROSCINT-20™, Packard) is added, and the plate is counted for 10 minutes in a TOPCOUNT™ gamma counter (Packard). The concentration of each Fab that gives 20% or less of maximum binding is selected for use in the competitive binding assay.

[0125] In another embodiment, Kd is measured using a BIACORE® surface plasmon resonance assay. For example, measurements using a BIACORE®-2000 or BIACORE®-3000 (BIAcore, Inc., Piscataway, NJ) are performed at 25°C using a CM5 chip with approximately 10 response units (RU) of antigen immobilized. In one embodiment, a carboxymethylated dextran biosensor chip (CM5, BIACORE, Inc.) is activated with N-ethyl-N'-(3-dimethylaminopropyl)-carbodiimide hydrochloride (EDC) and N-hydroxysuccinimide (NHS) according to the supplier's instructions. The antigen is diluted to 5 μg / ml (approximately 0.2 μM) with 10 mM sodium acetate, pH 4.8, before injection at a flow rate of 5 μl / min to achieve approximately 10 response units (RU) of protein binding. After injection of the antigen, 1 M ethanolamine is injected to block unreacted groups. For kinetic measurements, two-fold serial dilutions of Fab (0.78 nM to 500 nM) are injected in PBS containing 0.05% polysorbate 20 (TWEEN-20™) surfactant (PBST) at 25°C and a flow rate of approximately 25 μl / min. The association rate (k on ) and dissociation rate (k off ) is calculated by simultaneously fitting the association and dissociation sensorgrams using a simple one-to-one Langmuir binding model (BIACORE® Evaluation Software Version 3.2). The equilibrium dissociation constant (Kd) is given by k off / k on The on-rate is calculated as a ratio of 10 to 10. See, e.g., Chen et al., J. Mol. Biol. 293:865-881 (1999). 6 M -1 s -1If the on-rate exceeds , the on-rate can be determined by using a fluorescence quenching technique to measure the increase or decrease in fluorescence emission intensity (excitation = 295 nm; emission = 340 nm, bandpass 16 nm) at 25°C of 20 nM anti-antigen antibody (Fab form) in PBS, pH 7.2 in the presence of increasing concentrations of antigen, as measured in a spectrometer (e.g., a stopped-flow spectrophotometer (Aviv Instruments) or an 8000 series SLM-AMINCO™ spectrophotometer (ThermoSpectronic) using a stirred cuvette).

[0126] Following the above-described methods for measuring the affinity of an antigen-binding molecule or antibody, those skilled in the art can measure the affinity of other antigen-binding molecules or antibodies for various antigens.

[0127] antibody The term "antibody" is used herein in the broadest sense and encompasses a variety of antibody structures, including, but not limited to, monoclonal antibodies, polyclonal antibodies, multispecific antibodies (e.g., bispecific antibodies), and antibody fragments, so long as they exhibit the desired antigen-binding activity.

[0128] Antibody classes The "class" of an antibody refers to the type of constant domain or constant region present in the antibody's heavy chain. There are five major classes of antibodies: IgA, IgD, IgE, IgG, and IgM. Some of these may be further divided into subclasses (isotypes), such as IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2. The heavy-chain constant domains corresponding to the different classes of immunoglobulins are called α, δ, ε, γ, and μ, respectively.

[0129] Unless otherwise indicated, amino acid residues in the light chain constant region are numbered herein according to Kabat et al., and numbering of amino acid residues in the heavy chain constant region is according to 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.

[0130] Framework "Framework" or "FR" refers to variable domain residues other than hypervariable region (HVR) residues. The FR of a variable domain typically consists of four FR domains: FR1, FR2, FR3, and FR4. Accordingly, the HVR and FR sequences typically appear in VH (or VL) in the following order: FR1-H1(L1)-FR2-H2(L2)-FR3-H3(L3)-FR4.

[0131] Human Consensus Framework A "human consensus framework" is a framework that represents the most commonly occurring amino acid residues in a selection of human immunoglobulin VL or VH framework sequences. Typically, the selection of human immunoglobulin VL or VH sequences is from a subgroup of variable domain sequences. Typically, the subgroup of sequences is a subgroup in Kabat et al., Sequences of Proteins of Immunological Interest, Fifth Edition, NIH Publication 91-3242, Bethesda, MD (1991), vols. 1-3. In one embodiment, for VL, the subgroup is subgroup κI according to Kabat et al., supra. In one embodiment, for VH, the subgroup is subgroup III according to Kabat et al., supra.

[0132] Chimeric antibodies The term "chimeric" antibody refers to an antibody in which a portion of the heavy and / or light chain is derived from a particular source or species, while the remainder of the heavy and / or light chain is derived from a different source or species. Similarly, the term "chimeric antibody variable domain" refers to an antibody variable region in which a portion of the heavy and / or light chain variable region is derived from a particular source or species, while the remainder of the heavy and / or light chain variable region is derived from a different source or species.

[0133] humanized antibodies A "humanized" antibody refers to a chimeric antibody comprising amino acid residues from non-human HVRs and human FRs. In certain embodiments, a humanized antibody comprises substantially all of at least one, and typically two, variable domains, in which all or substantially all HVRs (e.g., CDRs) 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 comprise at least a portion of an antibody constant region derived from a human antibody. A "humanized form" of an antibody (e.g., a non-human antibody) refers to an antibody that has undergone humanization. A "humanized antibody variable region" refers to the variable region of a humanized antibody.

[0134] Human antibodies A "human antibody" is an antibody with an amino acid sequence that corresponds to that of an antibody produced by a human or human cell, or an antibody derived from a human antibody repertoire or other non-human source that uses human antibody coding sequences. This definition of human antibody specifically excludes humanized antibodies, which contain non-human antigen-binding residues. A "human antibody variable region" refers to the variable region of a human antibody.

[0135] Polynucleotides (nucleic acids) "Polynucleotide" or "nucleic acid," used interchangeably herein, refers to a polymer of nucleotides of any length, including DNA and RNA. Nucleotides can be deoxyribonucleotides, ribonucleotides, modified nucleotides or bases, and / or their analogs, or any substance that can be incorporated into a polymer by DNA or RNA polymerase or by a synthetic reaction. Polynucleotides can include modified nucleotides, such as methylated nucleotides and their analogs. The sequence of nucleotides can be interrupted by non-nucleotide components. Polynucleotides can include modifications made after synthesis, such as conjugation to a label. Other types of modifications include, for example, "caps," substitutions of one or more naturally occurring nucleotides with analogs, internucleotide modifications, such as those with uncharged linkages (e.g., methylphosphonates, phosphotriesters, phosphoramidates, carbamates, etc.) and charged linkages (e.g., phosphorothioates, phosphorodithioates, etc.), those containing pendant moieties such as proteins (e.g., nucleases, toxins, antibodies, signal peptides, poly-L-lysine, etc.), those with intercalating agents (e.g., acridine, psoralens, etc.), those containing chelating agents (e.g., metals, radioactive metals, boron, metal oxides, etc.), those containing alkylating agents, modified linkages (e.g., alpha-anomeric nucleic acids, etc.), and unmodified forms of polynucleotides. Additionally, any hydroxyl groups normally present on the sugar can be replaced, for example, by phosphonate groups, phosphate groups, protected by standard protecting groups, or activated to prepare further linkages to additional nucleotides, or conjugated to solid or semi-solid supports. The 5' and 3' terminal OH can be phosphorylated or substituted with amines or organic capping group moieties of 1 to 20 carbon atoms. Other hydroxyls can also be derivatized to standard protecting groups.Polynucleotides can also contain analogous forms of ribose or deoxyribose sugars commonly known in the art, including, for example, 2'-O-methyl-, 2'-O-allyl-, 2'-fluoro-, or 2'-azido-ribose, carbocyclic sugar analogs, α-anomeric sugars, epimeric sugars such as arabinose or xylose or lyxose, pyranose sugars, furanose sugars, sedoheptuloses, acyclic analogs, and basic nucleoside analogs such as methyl riboside. One or more phosphodiester linkages can be replaced by alternative linking groups. These alternative linking groups include, but are not limited to, embodiments in which phosphate is replaced by: P(O)S ("thioate"), P(S)S ("dithioate"), (O)NR2 ("amidate"), P(O)R, P(O)OR', CO, or CH2 ("formacetal"), where each R or R' is independently H or substituted or unsubstituted alkyl (1-20C), optionally including an ether (-O-) linkage, aryl, alkenyl, cycloalkyl, cycloalkenyl, or araldyl. Not all linkages in a polynucleotide need be identical. The above description applies to all polynucleotides referred to herein, including RNA and DNA.

[0136] Isolated (nucleic acid) An "isolated" nucleic acid molecule is one that is separated from a component of its original environment. Isolated nucleic acid molecules further include nucleic acid molecules contained in cells that normally contain the nucleic acid molecule, but where the nucleic acid molecule is present extrachromosomally or in a chromosomal location that is different from its natural chromosomal location.

[0137] vector As used herein, the term "vector" refers to a nucleic acid molecule capable of propagating another nucleic acid to which it is linked. This term includes vectors as self-replicating nucleic acid structures and vectors that are integrated into the genome of a host cell into which it is introduced. Some vectors are capable of conferring expression of a nucleic acid to which they are operatively linked. Such vectors are also referred to herein as "expression vectors." Vectors can be introduced into host cells using viruses or electroporation. However, vector introduction is not limited to in vitro methods. For example, vectors can also be introduced directly into a subject using in vivo methods.

[0138] host cell The terms "host cell," "host cell line," and "host cell culture" are used interchangeably and refer to cells into which exogenous nucleic acid has been introduced, including the progeny of such cells. Host cells include "transformants" and "transformed cells," which include the originally transformed cell and progeny derived from that cell regardless of the number of passages. The progeny may not be completely identical in nucleic acid content to the parent cell and may contain mutations. Mutant progeny that have the same function or biological activity as that for which the original transformed cell was screened or selected are also included herein.

[0139] specificity "Specific" means that a molecule that specifically binds to one or more binding partners does not exhibit any significant binding to molecules other than the partners. Furthermore, "specific" is also used when an antigen-binding site is specific to a particular epitope among multiple epitopes contained in an antigen. When an antigen-binding molecule specifically binds to an antigen, it is also described as "the antigen-binding molecule has / exhibits specificity for / for the antigen." When the epitope to which the antigen-binding site binds is contained in multiple different antigens, the antigen-binding molecule containing the antigen-binding site can bind to various antigens that have the epitope.

[0140] antibody fragment An "antibody fragment" refers to a molecule other than a complete antibody that contains a portion of the complete antibody that binds to the antigen to which the complete antibody binds. Examples of antibody fragments include, but are not limited to, Fv, Fab, Fab', Fab'-SH, F(ab')2, diabodies, linear antibodies, single-chain antibody molecules (e.g., scFv), and single-domain antibodies. For a review of specific antibody fragments, see Hudson et al., Nat Med 9, 129-134 (2003). For a review of scFv fragments, see, for example, Pluckthun, in The Pharmacology of Monoclonal Antibodies, vol. 113, Rosenburg and Moore eds., Springer-Verlag, New York, pp. 269-315 (1994); in addition, WO 93 / 16185; and U.S. Patent Nos. 5,571,894 and 5,587,458. See U.S. Patent No. 5,869,046 for a discussion of Fab and F(ab')2 fragments containing salvage receptor-binding epitope residues and exhibiting increased in vivo half-lives. Diabodies are antibody fragments with two antigen-binding sites that may be bivalent or bispecific. See, e.g., EP 404,097; WO 1993 / 01161; Hudson et al., Nat Med 9, 129-134 (2003); Hollinger et al., Proc Natl Acad Sci USA 90, 6444-6448 (1993). Triabodies and tetrabodies are also described in Hudson et al., Nat Med 9, 129-134 (2003). A single-domain antibody is an antibody fragment that contains all or a portion of the heavy chain variable domain or all or a portion of the light chain variable domain of an antibody. In certain embodiments, a single-domain antibody is a human single-domain antibody (Domantis, Inc., Waltham, MA; see, e.g., U.S. Patent No. 6,248,516 B1).Antibody fragments can be produced by a variety of techniques, including, but not limited to, proteolytic digestion of whole antibodies and production by recombinant host cells (e.g., E. coli or phage), as described herein.

[0141] Variable fragment (Fv) As used herein, the term "variable fragment (Fv)" refers to the smallest unit of an antibody-derived antigen-binding site consisting of a pair of an antibody light chain variable region (VL) and an antibody heavy chain variable region (VH). In 1988, Skerra and Pluckthun discovered that homogeneous and active antibodies could be prepared from the periplasmic fraction of E. coli by inserting an antibody gene downstream of a bacterial signal sequence and inducing expression of the gene in E. coli (Science (1988) 240 (4855), 1038-1041). In the Fv prepared from the periplasmic fraction, the VH and VL are associated in such a manner that they bind to antigens.

[0142] scFv, single chain antibodies, and sc(Fv) 2 As used herein, the terms "scFv," "single-chain antibody," and "sc(Fv)2" all refer to a single polypeptide chain antibody fragment that contains variable regions derived from heavy and light chains but no constant region. Generally, single-chain antibodies further contain a polypeptide linker between the VH and VL domains that allows the formation of the desired structure that will enable antigen binding. Single-chain antibodies are discussed in detail by Pluckthun in "The Pharmacology of Monoclonal Antibodies, Vol. 113, Rosenburg and Moore, eds., Springer-Verlag, New York, pp. 269-315 (1994)." See also International Publication WO 1988 / 001649, U.S. Patent Nos. 4,946,778 and 5,260,203. In certain embodiments, single-chain antibodies can be bispecific and / or humanized.

[0143] scFv is a single-chain low molecular weight antibody in which the VH and VL that form the Fv are linked together by a peptide linker (Proc. Natl. Acad. Sci. USA (1988) 85 (16), 5879-5883). The peptide linker can hold the VH and VL in close proximity. sc(Fv)2 is a single-chain antibody in which four variable regions, two VLs and two VHs, are linked by a linker such as a peptide linker to form a single chain (J Immunol. Methods (1999) 231 (1-2), 177-189). The two VHs and two VLs may be derived from different monoclonal antibodies. Suitable examples of such sc(Fv)2 include bispecific sc(Fv)2s that recognize two epitopes present in a single antigen, as disclosed in Journal of Immunology (1994) 152 (11), 5368-5374. sc(Fv)2s can be produced by methods known to those skilled in the art. For example, sc(Fv)2s can be produced by linking scFvs with a linker such as a peptide linker.

[0144] As used herein, sc(Fv)2 comprises two VH units and two VL units arranged in the following order, starting from the N-terminus of the single-chain polypeptide: VH, VL, VH, VL ([VH]-linker-[VL]-linker-[VH]-linker-[VL]). The order of the two VH units and two VL units is not limited to the above configuration and may be arranged in any order. Examples of configurations are listed below. [VL]-linker-[VH]-linker-[VH]-linker-[VL] [VH]-linker-[VL]-linker-[VL]-linker-[VH] [VH]-linker-[VH]-linker-[VL]-linker-[VL] [VL]-linker-[VL]-linker-[VH]-linker-[VH] [VL]-linker-[VH]-linker-[VL]-linker-[VH]

[0145] The molecular form of sc(Fv)2 is also described in detail in WO2006 / 132352. Those skilled in the art can follow these descriptions to appropriately prepare the desired sc(Fv)2 for producing the polypeptide complexes disclosed herein. Furthermore, the antigen-binding molecules or antibodies of the present disclosure may be conjugated with carrier polymers such as PEG or organic compounds such as anticancer drugs. Alternatively, a glycosylation sequence is suitably inserted into the antigen-binding molecules or antibodies so that the sugar chains exert the desired effect.

[0146] Linkers used to link antibody variable regions include any peptide linker that can be introduced by genetic engineering, synthetic linkers, and linkers such as those disclosed in Protein Engineering, 9 (3), 299-305, 1996. However, in the present disclosure, peptide linkers are preferred. The length of the peptide linker is not particularly limited and can be appropriately selected by those skilled in the art depending on the purpose. The length is preferably 5 amino acids or more (although not particularly limited, the upper limit is usually 30 amino acids or less, preferably 20 amino acids or less), and particularly preferably 15 amino acids. When sc(Fv)2 contains three peptide linkers, the lengths of these linkers may all be the same or different.

[0147] For example, such peptide linkers include: Ser, Gly-Ser, Gly-Gly-Ser, Ser-Gly-Gly, Gly-Gly-Gly-Ser (SEQ ID NO: 9), Ser-Gly-Gly-Gly (SEQ ID NO: 10), Gly-Gly-Gly-Gly-Ser (SEQ ID NO: 11), Ser-Gly-Gly-Gly-Gly (SEQ ID NO: 12), Gly-Gly-Gly-Gly-Gly-Ser (SEQ ID NO: 13), Ser-Gly-Gly-Gly-Gly-Gly (SEQ ID NO: 14), Gly-Gly-Gly-Gly-Gly-Gly-Gly-Ser (SEQ ID NO: 15), Ser-Gly-Gly-Gly-Gly-Gly-Gly-Gly (SEQ ID NO: 16), (Gly-Gly-Gly-Gly-Ser (SEQ ID NO: 11)), and (Ser-Gly-Gly-Gly-Gly (SEQ ID NO: 12))n. Here, n is an integer equal to or greater than 1. The length and sequence of the peptide linker can be appropriately selected by those skilled in the art depending on the purpose.

[0148] Synthetic linkers (chemical cross-linkers) are commonly used to cross-link peptides, including N-hydroxysuccinimide (NHS), disuccinimidyl suberate (DSS), bis(sulfosuccinimidyl)suberate (BS3), dithiobis(succinimidyl propionate) (DSP), dithiobis(sulfosuccinimidyl propionate) (DTSSP), ethylene glycol bis(succinimidyl succinate) (EGS), ethylene glycol bis(sulfosuccinimidyl succinate) (sulfo-EGS), disuccinimidyl tartrate (DST), disulfosuccinimidyl tartrate (sulfo-DST), bis[2-(succinimidooxycarbonyloxy)ethyl]sulfone (BSOCOES), and bis[2-(sulfosuccinimidooxycarbonyloxy)ethyl]sulfone (sulfo-BSOCOES). These cross-linkers are commercially available.

[0149] Three linkers are usually required to link four antibody variable regions, and the linkers used may be of the same type or different types.

[0150] Fab, F(ab') 2 , and Fab' "Fab" consists of one light chain and the CH1 domain and variable region of one heavy chain. The heavy chain of a Fab molecule cannot form disulfide bonds with another heavy chain molecule.

[0151] "F(ab')2" or "Fab" refers to an antibody fragment produced by treating an immunoglobulin (monoclonal antibody) with a protease such as pepsin or papain, digesting the immunoglobulin (monoclonal antibody) near the disulfide bond between the hinge regions of the two heavy chains. For example, papain cleaves IgG upstream of the disulfide bond between the hinge regions of the two heavy chains, producing two homologous antibody fragments in which an L chain containing a VL (light chain variable region) and a CL (light chain constant region) is linked by a disulfide bond at their C-terminal regions to an H chain fragment containing a VH (heavy chain variable region) and a CHγ1 (γ1 region of the heavy chain constant region). Each of these two homologous antibody fragments is called Fab'.

[0152] "F(ab')2" consists of two light chains and two heavy chains containing constant regions, such as the CH1 domain and a portion of the CH2 domain, such that disulfide bonds are formed between the two heavy chains. The F(ab')2 disclosed herein can be suitably produced as follows: a monoclonal whole antibody or the like containing the desired antigen-binding site is partially digested with a protease such as pepsin, and the Fc fragment is removed by adsorption onto a protein A column. The protease used is not particularly limited, as long as it can selectively cleave the whole antibody to yield F(ab')2 under appropriately set enzymatic reaction conditions, such as pH. Examples of such proteases include pepsin and ficin.

[0153] Fc area As used herein, the term "Fc region" or "Fc domain" refers to a region of an antibody molecule comprising a hinge or a portion thereof, and a fragment consisting of the CH2 and CH3 domains. The Fc region of an IgG class refers, for example, but is not limited to, the region from cysteine ​​226 (EU numbering, also referred to herein as the EU index) to the C-terminus, or from proline 230 (EU numbering) to the C-terminus. The Fc region can be obtained, for example, by partially digesting an IgG1, IgG2, IgG3, or IgG4 monoclonal antibody with a protease such as pepsin, followed by re-elution of the fraction adsorbed to a protein A or protein G column. The protease is not particularly limited, as long as it can digest a full-length antibody to form Fab or F(ab')2 under appropriately selected enzyme reaction conditions (e.g., pH). Examples include pepsin and papain.

[0154] In the present invention, for example, an Fc region derived from a native IgG can be used as the "Fc region" of the present disclosure. Here, native IgG refers to a polypeptide that contains the same amino acid sequence as an IgG found in nature and belongs to the class of antibodies substantially encoded by the immunoglobulin γ gene. Native human IgG refers to, for example, native human IgG1, native human IgG2, native human IgG3, or native human IgG4. Native IgG also includes naturally occurring variants thereof. Multiple allotype sequences based on genetic polymorphisms are described in "Sequences of proteins of immunological interest," NIH Publication No. 91-3242, for the constant regions of human IgG1, human IgG2, human IgG3, and human IgG4 antibodies, and any of these sequences can be used in the present disclosure. In particular, the sequence of human IgG1 may have DEL or EEM as the amino acid sequence at positions 356 to 358 (EU numbering).

[0155] In certain embodiments, one or more amino acid substitutions may be introduced into the Fc region of an antibody provided herein, thereby generating an Fc region variant. The Fc region variant may comprise a human Fc region sequence (e.g., a human IgG1, IgG2, IgG3, or IgG4 Fc region) containing an amino acid substitution at one or more amino acid positions. For example, the heavy chain constant regions of human IgG1, human IgG2, human IgG3, and human IgG4 are respectively shown in SEQ ID NOs: 18 to 21. For example, the Fc regions of human IgG1, human IgG2, human IgG3, and human IgG4 are shown as partial sequences of SEQ ID NOs: 18 to 21.

[0156] In some embodiments, the Fc domain of a multispecific antigen-binding molecule is composed of a pair of polypeptide chains comprising the heavy chain domain of an immunoglobulin molecule.For example, the Fc domain of an immunoglobulin G (IgG) molecule is a dimer, each subunit of which comprises CH2 and CH3 IgG heavy chain constant domains.The two subunits of an Fc domain can stably associate with each other.In one embodiment, the multispecific antigen-binding molecule described herein comprises no more than one Fc domain.

[0157] In one embodiment described herein, the Fc domain of the multispecific antigen-binding molecule is an IgG Fc domain. In a specific embodiment, the Fc domain is an IgG1 Fc domain. In another embodiment, the Fc domain is an IgG1 Fc domain. In a further specific embodiment, the Fc domain is a human IgG1 Fc region.

[0158] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) an Fc domain that exhibits reduced binding affinity to human Fcγ receptors compared to a native human IgG1 Fc domain; wherein the Fc domain is composed of a first Fc region subunit and a second Fc region subunit that can stably associate.

[0159] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) an Fc domain that exhibits reduced binding affinity to human Fcγ receptors compared to a native human IgG1 Fc domain; wherein the Fc domain is selected from the group consisting of (e1) and (e2): (e1) a first Fc region subunit comprising Cys at position 349, Ser at position 366, Ala at position 368, and Val at position 407, and a second Fc region comprising Cys at position 354 and Trp at position 366; (e2) a first Fc region subunit containing Glu at position 439 and a second Fc region containing Lys at position 356 wherein the amino acid positions are numbered according to the EU index.

[0160] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) an Fc domain that exhibits reduced binding affinity to human Fcγ receptors compared to a native human IgG1 Fc domain; wherein the first and / or second Fc region subunits comprised in the Fc domain are (f1) or (f2) below: (f1) Ala at position 234 and Ala at position 235; (f2) Ala at 234th place, Ala at 235th place, and Ala at 297th place wherein the amino acid positions are numbered according to the EU index.

[0161] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) an Fc domain that exhibits reduced binding affinity to human Fcγ receptors compared to a native human IgG1 Fc domain; wherein the Fc domain further exhibits stronger FcRn-binding affinity for human FcRn compared to a native human IgG1 Fc domain.

[0162] In one aspect, the present disclosure provides a method for producing a cellular membrane comprising: (i) an Fc domain that exhibits reduced binding affinity to human Fcγ receptors compared to a native human IgG1 Fc domain; wherein the first and / or Fc region subunit comprised in the Fc domain comprises Leu at position 428, Ala at position 434, Arg at position 438, and Glu at position 440, and the amino acid positions are numbered according to the EU index.

[0163] Fc region with reduced Fc receptor (Fcγ receptor) binding activity In certain embodiments, the Fc domain of the multispecific antigen-binding molecule described herein exhibits reduced binding affinity to Fc receptors compared to a native IgG1 Fc domain. In one such embodiment, the Fc domain (or a multispecific antigen-binding molecule comprising the Fc domain) exhibits less than 50%, preferably less than 20%, more preferably less than 10%, and most preferably less than 5% of the binding affinity to Fc receptors compared to a native IgG1 Fc domain (or a multispecific antigen-binding molecule comprising a native IgG1 Fc domain). In one embodiment, the Fc domain (or a multispecific antigen-binding molecule comprising the Fc domain) does not substantially bind to Fc receptors. In a certain embodiment, the Fc receptor is an Fcγ receptor. In one embodiment, the Fc receptor is a human Fc receptor. In one embodiment, the Fc receptor is an activating Fc receptor. In a particular embodiment, the Fc receptor is an activating human Fcγ receptor, more particularly human Fcγ RIIIa, Fcγ RI, or Fcγ RIIa, most particularly human Fcγ RIIIa.

[0164] In certain embodiments, the Fc domain of the multispecific antigen-binding molecule contains one or more amino acid mutations that reduce the binding affinity of the Fc domain to an Fc receptor. Typically, the same one or more amino acid mutations are present in each of the two subunits of the Fc domain. In one embodiment, the amino acid mutations reduce the binding affinity of the Fc domain to an Fc receptor. In one embodiment, the amino acid mutations reduce the binding affinity of the Fc domain to an Fc receptor by at least 2-fold, at least 5-fold, or at least 10-fold. In embodiments where two or more amino acid mutations that reduce the binding affinity of the Fc domain to an Fc receptor are present, the combination of these amino acid mutations can reduce the binding affinity of the Fc domain to an Fc receptor by at least 10-fold, at least 20-fold, or even at least 50-fold. In one embodiment, a multispecific antigen-binding molecule comprising an altered Fc domain exhibits less than 20%, particularly less than 10%, and more particularly less than 5% of the binding affinity to an Fc receptor compared to a multispecific antigen-binding molecule comprising an unaltered Fc domain. In a specific embodiment, the Fc receptor is an Fcγ receptor. In some embodiments, the Fc receptor is a human Fc receptor. In some embodiments, the Fc receptor is an activating Fc receptor. In a specific embodiment, the Fc receptor is an activating human Fcγ receptor, more particularly human FcγRIIIa, FcγRI, or FcγRIIa, most particularly human FcγRIIIa. Preferably, binding to each of these receptors is reduced.

[0165] In one embodiment, the amino acid mutation that reduces the binding affinity of the Fc domain to an Fc receptor is an amino acid substitution. In one embodiment, the Fc domain comprises an amino acid substitution at a position selected from the group of E233, L234, L235, N297, P331, and P329. In a more specific embodiment, the Fc domain comprises an amino acid substitution at a position selected from the group of L234, L235, and P329. In some embodiments, the Fc domain comprises amino acid substitutions L234A and L235A. In one such embodiment, the Fc domain is an IgG1 Fc domain, particularly a human IgG1 Fc domain. In one embodiment, the Fc domain comprises an amino acid substitution at position P329. In a more specific embodiment, the amino acid substitution is P329A or P329G, particularly P329G. In one embodiment, the Fc domain comprises an amino acid substitution at position P329 and an additional amino acid substitution at a position selected from E233, L234, L235, N297, and P331. In a more particular embodiment, the additional amino acid substitution is E233P, L234A, L235A, L235E, N297A, N297D, or P331S. In a particular embodiment, the Fc domain comprises amino acid substitutions at positions P329, L234, and L235. In a more particular embodiment, the Fc domain comprises the amino acid mutations L234A, L235A, and P329G ("P329G LALA"). In one such embodiment, the Fc domain is an IgG1 Fc domain, particularly a human IgG1 Fc domain. The "P329G LALA" combination of amino acid substitutions almost completely abolishes Fcγ receptor (and complement) binding of human IgG1 Fc domains, as described in PCT Publication No. WO2012 / 130831. WO2012 / 130831 also describes methods for preparing such mutant Fc domains and determining their properties, such as Fc receptor binding or effector function.

[0166] IgG4 antibodies exhibit reduced binding affinity to Fc receptors and reduced effector function compared to IgG1 antibodies. Thus, in some embodiments, the Fc domain of the bispecific antigen-binding molecule that activates T cells described herein is an IgG4 Fc domain, particularly a human IgG4 Fc domain. In one embodiment, the IgG4 Fc domain comprises an amino acid substitution at position S228, particularly the amino acid substitution S228P. To further reduce its binding affinity to Fc receptors and / or its effector function, in one embodiment, the IgG4 Fc domain comprises an amino acid substitution at position L235, particularly the amino acid substitution L235E. In another embodiment, the IgG4 Fc domain comprises an amino acid substitution at position P329, particularly the amino acid substitution P329G. In a specific embodiment, the IgG4 Fc domain comprises amino acid substitutions at positions S228, L235, and P329, particularly the amino acid substitutions S228P, L235E, and P329G. Such IgG4 Fc domain variants and their Fcγ receptor binding properties are described in PCT Publication No. WO2012 / 130831.

[0167] In certain embodiments, the N-glycosylation of the Fc domain is ablated. In one such embodiment, the Fc domain comprises an amino acid mutation at position N297, in particular an amino acid substitution substituting asparagine with alanine (N297A) or aspartic acid (N297D).

[0168] In a particularly preferred embodiment, the Fc domain that exhibits reduced binding affinity to Fc receptors compared to a native IgG1 Fc domain is a human IgG1 Fc domain that comprises the amino acid substitutions L234A, L235A, and N297A.

[0169] Mutant Fc domains can be prepared by amino acid deletion, substitution, insertion, or modification using genetic or chemical methods well known in the art. Genetic methods can include site-directed mutagenesis of the coding DNA sequence, PCR, gene synthesis, etc. The exact nucleotide changes can be verified, for example, by sequencing.

[0170] Binding to Fc receptors can be easily determined, for example, by ELISA or surface plasmon resonance (SPR) using standard instrumentation such as a BIAcore instrument (GE Healthcare), and Fc receptors may also be obtained by recombinant expression. Suitable such binding assays are described herein. Alternatively, the binding affinity of an Fc domain or a cell-activating bispecific antigen-binding molecule containing an Fc domain to an Fc receptor can be assessed using a cell line known to express a particular Fc receptor, such as human NK cells expressing the FcγIIIa receptor.

[0171] Fc receptors The term "Fc receptor" or "FcR" refers to a receptor that binds to the Fc region of an antibody. In some embodiments, the FcR is a native human FcR. In some embodiments, the FcR is one that binds IgG antibodies (gamma receptors) and includes receptors of the FcγRI, FcγRII, and FcγRIII subclasses, including allelic variants and alternatively spliced ​​forms of these receptors. FcγRII receptors include FcγRIIA (an "activating receptor") and FcγRIIB (an "inhibiting receptor"), which have similar amino acid sequences that differ primarily in their cytoplasmic domains. Activating receptor FcγRIIA contains an immunoreceptor tyrosine-based activation motif (ITAM) in its cytoplasmic domain. Inhibiting receptor FcγRIIB contains an immunoreceptor tyrosine-based inhibition motif (ITIM) in its cytoplasmic domain. (See, e.g., Daeron, Annu. Rev. Immunol. 15:203-234 (1997).) FcRs are reviewed, e.g., in Ravetch and Kinet, Annu. Rev. Immunol 9:457-92 (1991); Capel et al., Immunomethods 4:25-34 (1994); and de Haas et al., J. Lab. Clin. Med 126:330-41 (1995). Other FcRs, including those identified in the future, are also encompassed by the term "FcR" herein.

[0172] The term "Fc receptor" or "FcR" also includes the neonatal receptor FcRn, which is responsible for regulating maternal IgG transfer to the fetus (Guyer et al., J. Immunol. 117:587 (1976) and Kim et al., J. Immunol. 24:249 (1994)) and immunoglobulin homeostasis. Methods for measuring binding to FcRn are known (see, e.g., Ghetie and Ward, Immunol. Today 18(12):592-598 (1997); Ghetie et al., Nature Biotechnology, 15(7):637-640 (1997); Hinton et al., J. Biol. Chem. 279(8):6213-6216 (2004); WO2004 / 92219 (Hinton et al.)).

[0173] In vivo binding to human FcRn and plasma half-life of human FcRn high-affinity binding polypeptides can be measured, for example, in transgenic mice or transfected human cell lines expressing human FcRn, or in primates to which polypeptides with variant Fc regions are administered. WO2000 / 42072 (Presta) describes antibody variants with increased or decreased binding to FcR. See, for example, Shields et al. J. Biol. Chem. 9(2):6591-6604 (2001).

[0174] Fcγ receptor Fcγ receptor refers to a receptor that can bind to the Fc domain of an IgG1, IgG2, IgG3, or IgG4 monoclonal antibody, and includes all members of a family of proteins substantially encoded by Fcγ receptor genes. In humans, this family includes FcγRI (CD64), which includes the isoforms FcγRIa, FcγRIb, and FcγRIc; FcγRII (CD32), which includes the isoforms FcγRIIa (including allotypes H131 and R131), FcγRIIb (including FcγRIIb-1 and FcγRIIb-2), and FcγRIIc; and FcγRIII (CD16), which includes the isoforms FcγRIIIa (including allotypes V158 and F158) and FcγRIIIb (including allotypes FcγRIIIb-NA1 and FcγRIIIb-NA2); as well as unidentified human Fcγ receptors, Fcγ receptor isoforms, and all their allotypes. However, Fcγ receptors are not limited to these examples. Fcγ receptors include, but are not limited to, those derived from humans, mice, rats, rabbits, and monkeys. Fcγ receptors may be derived from any organism. Mouse Fcγ receptors include, but are not limited to, FcγRI (CD64), FcγRII (CD32), FcγRIII (CD16), and FcγRIII-2 (CD16-2), as well as unidentified mouse Fcγ receptors, Fcγ receptor isoforms, and allotypes thereof. Preferred Fcγ receptors include, for example, human FcγRI (CD64), FcγRIIA (CD32), FcγRIIB (CD32), FcγRIIIA (CD16), and / or FcγRIIIB (CD16).The polynucleotide and amino acid sequences of FcγRI are set forth in RefSeq accession numbers NM_000566.3 and NP_000557.1, respectively; the polynucleotide and amino acid sequences of FcγRIIA are set forth in RefSeq accession numbers BC020823.1 and AAH20823.1, respectively; the polynucleotide and amino acid sequences of FcγRIIB are set forth in RefSeq accession numbers BC146678.1 and AAI46679.1, respectively; the polynucleotide and amino acid sequences of FcγRIIIA are set forth in RefSeq accession numbers BC033678.1 and AAH33678.1, respectively; and the polynucleotide and amino acid sequences of FcγRIIIB are set forth in RefSeq accession numbers BC128562.1 and AAI28563.1, respectively. In addition to the FACS and ELISA formats described above, whether an Fcγ receptor has binding activity to the Fc domain of an IgG1, IgG2, IgG3, or IgG4 monoclonal antibody can be assessed by ALPHA screens (amplified luminescence proximity homogeneous assays), surface plasmon resonance (SPR)-based BIACORE methods, and others (Proc. Natl. Acad. Sci. USA (2006) 103 (11), 4005-4010).

[0175] On the other hand, "Fc ligand" or "effector ligand" refers to a molecule, and preferably a polypeptide, that binds to an antibody Fc domain to form an Fc / Fc ligand complex. The molecule may be derived from any organism. Binding of an Fc ligand to Fc preferably induces one or more effector functions. Such Fc ligands include, but are not limited to, Fc receptors, Fcγ receptors, Fcα receptors, Fcβ receptors, FcRn, C1q, and C3, mannan-binding lectin, mannose receptor, Staphylococcus protein A, Staphylococcus protein G, and viral Fcγ receptors. Fc ligands also include Fc receptor homologs (FcRHs), a family of Fc receptors homologous to Fcγ receptors (Davis et al., (2002) Immunological Reviews 190, 123-136). Fc ligands also include unidentified molecules that bind to Fc.

[0176] Fcγ receptor binding activity Impaired binding activity of the Fc domain to any of the Fcγ receptors, FcγRI, FcγRIIA, FcγRIIB, FcγRIIIA, and / or FcγRIIIB, can be assessed using the FACS and ELISA formats described above, as well as ALPHA screens (amplified luminescence proximity homogeneous assays) and surface plasmon resonance (SPR)-based BIACORE methods (Proc. Natl. Acad. Sci. USA (2006) 103 (11), 4005-4010).

[0177] The ALPHA screen is performed by ALPHA technology, which uses two types of beads: donor beads and acceptor beads, and is based on the following principle: A luminescent signal is detected only if the molecule linked to the donor bead biologically interacts with the molecule linked to the acceptor bead and the two beads are located in close proximity. A photosensitizer in the donor bead is excited by laser light and converts oxygen around the bead into excited singlet oxygen. When the singlet oxygen diffuses around the donor bead and reaches the nearby acceptor bead, it induces a chemiluminescent reaction in the acceptor bead. This reaction ultimately produces light. If the molecule linked to the donor bead does not interact with the molecule linked to the acceptor bead, the singlet oxygen generated by the donor bead will not reach the acceptor bead, and the chemiluminescent reaction will not occur.

[0178] For example, a biotin-labeled antigen-binding molecule or antibody is immobilized on donor beads, and an Fcγ receptor tagged with glutathione S-transferase (GST) is immobilized on acceptor beads. In the absence of an antigen-binding molecule or antibody containing a competitive mutant Fc domain, the Fcγ receptor interacts with an antigen-binding molecule or antibody containing a wild-type Fc domain, resulting in a signal at 520–620 nm. The antigen-binding molecule or antibody containing an untagged mutant Fc domain competes with the antigen-binding molecule or antibody containing the wild-type Fc domain for interaction with the Fcγ receptor. Relative binding affinity can be determined by quantifying the decrease in fluorescence resulting from competition. Methods for biotinylating antigen-binding molecules or antibodies, such as antibodies, using sulfo-NHS-biotin are known. A suitable method for adding a GST tag to an Fcγ receptor involves fusing a polypeptide encoding an Fcγ receptor and a polypeptide encoding GST in frame, expressing the gene using cells transfected with a vector carrying the fusion gene, and then purifying the gene using a glutathione column. The induced signal can be preferably analyzed by fitting to a one-site competition model based on nonlinear regression analysis using software such as GRAPHPAD PRISM (GraphPad; San Diego).

[0179] One of the substances to be observed for interaction is immobilized on a thin gold film on a sensor chip as a ligand. When light is shone on the back of the sensor chip so that total reflection occurs at the interface between the thin gold film and the glass, the intensity of the reflected light is partially reduced at a specific site (SPR signal). The other substance to be observed for interaction is injected onto the surface of the sensor chip as an analyte. When the analyte binds to the ligand, the mass of the immobilized ligand molecule increases. This changes the refractive index of the solvent on the sensor chip surface. This change in refractive index causes a shift in the position of the SPR signal (conversely, upon dissociation, the signal shifts back to its original position). In the Biacore system, the amount of this shift (i.e., the change in mass on the sensor chip surface) is plotted on the vertical axis, and the change in mass over time is displayed as measurement data (sensorgram). Kinetic parameters (association rate constant (ka) and dissociation rate constant (kd)) are determined from the sensorgram curve, and affinity (KD) is determined from the ratio of these two constants. Inhibition assays are preferably used in the BIACORE method. An example of such an inhibition assay is described in Proc. Natl. Acad. Sci. USA (2006) 103(11), 4005-4010.

[0180] Altered Fc regions that specifically bind FcγRIIb ("Fc region variants") In one aspect, the multispecific antigen-binding molecule of the present disclosure comprises a second antigen-binding portion comprising an altered Fc region ("Fc region variant") that specifically binds to an anchor antigen on a second target cell. In one aspect, a multispecific antigen binding molecule of the present disclosure comprises a second antigen binding moiety comprising an altered Fc region (an "Fc region variant") that specifically binds to FcgRIIB. In one embodiment, the modified Fc region that specifically binds to FcgRIIB can reduce binding activity to all activating FcγRs, particularly FcγRIIa (R type), while maintaining FcγRIIb binding activity, compared to a polypeptide containing a native IgG antibody Fc region. More specifically, the present invention provides Fc region variants comprising an amino acid sequence in which an amino acid modification at position 238 according to EU numbering is combined with other specified amino acid modifications. Furthermore, the present invention provides methods for introducing amino acid modifications into an Fc region to reduce its binding activity to all activating FcγRs, particularly FcγRIIa (R type), while maintaining its FcγRIIb binding activity, compared to that of a polypeptide containing a native IgG antibody Fc region.

[0181] In some embodiments, modified Fc regions ("Fc region variants") that specifically bind to FcγRIIb of the present disclosure include Fc region variants comprising an amino acid modification that combines a modification of the amino acid at position 238 (EU numbering) to another amino acid in the Fc region of human IgG (IgG1, IgG2, IgG3, and IgG4) with a modification of any one of the following amino acids (a) to (k) to another amino acid. Introduction of modifications into the Fc region can provide polypeptides comprising the Fc region variants that have reduced binding activity to all activating FcγRs, particularly FcγRIIa (R type), while maintaining FcγRIIb-binding activity compared to that of a polypeptide comprising the Fc region of a native IgG: (a) Amino acid position 235 of the Fc region according to EU numbering; (b) amino acid position 237 of the Fc region according to EU numbering; (c) amino acid 241 of the Fc region according to EU numbering; (d) amino acid 268 of the Fc region according to EU numbering; (e) amino acid 295 of the Fc region according to EU numbering; (f) amino acid 296 of the Fc region according to EU numbering; (g) amino acid 298 of the Fc region according to EU numbering; (h) amino acid 323 of the Fc region according to EU numbering; (i) amino acid 324 of the Fc region according to EU numbering; (j) amino acid 330 of the Fc region according to EU numbering; and (k) At least two amino acids selected from (a) to (j).

[0182] Methods for producing antibodies with desired binding activity Methods for producing antibodies with the desired binding activity are known to those skilled in the art. The following is an example describing a method for producing an antibody that binds to a Notch receptor (anti-Notch receptor antibody). Antibodies that bind to anchor antigens on second or third target cells can also be produced according to the examples described below.

[0183] Anti-Notch receptor antibodies can be obtained as polyclonal or monoclonal antibodies using known methods. Preferably, the anti-Notch receptor antibodies produced are monoclonal antibodies derived from mammals. Such mammalian monoclonal antibodies include antibodies produced by hybridomas or host cells transformed by genetic engineering techniques with expression vectors carrying antibody genes.

[0184] Monoclonal antibody-producing hybridomas can be produced using known techniques, for example, as described below. Specifically, a mammal is immunized by a conventional immunization method using a Notch receptor protein as a sensitizing antigen. The resulting immune cells are fused with known parent cells by a conventional cell fusion method. Hybridomas that produce anti-Notch receptor antibodies can then be selected by screening for monoclonal antibody-producing cells using conventional screening methods.

[0185] Specifically, monoclonal antibodies are prepared as follows: First, Notch receptor genes whose nucleotide sequences are disclosed in the RefSeq accession numbers of Notch1 (NP_060087.3 or P46531), Notch2 (NP_077719.2 (isoform 1) or NP_001186930.1 (isoform 2)), Notch3 (NP_000426.2), or Notch4 (NP_004548.3 or Q99466) can be expressed to produce Notch receptor proteins shown as follows: (amino acid sequence of human Notch receptor 1: GenBank accession number P46531, human Notch receptor 2: GenBank accession number AAH71562.2, human Notch receptor 3: GenBank accession number AAB91371.1, human Notch receptor 4: GenBank accession number AAC63097.1). These proteins are used as sensitizing antigens for antibody preparation. Alternatively, nucleotides encoding the extracellular domain (ECD) of a Notch receptor can be expressed to produce a Notch receptor ECD-containing protein. That is, a gene sequence encoding a full-length Notch receptor or a Notch receptor ECD is inserted into a known expression vector, and an appropriate host cell is transformed with this vector. The extracellular domain of a Notch receptor can be used. The desired human full-length Notch receptor or Notch receptor ECD protein is purified from host cells or their culture supernatant by known methods. Alternatively, purified native Notch receptor protein can be used as a sensitizing antigen.

[0186] Purified full-length Notch receptor or Notch receptor ECD protein can be used as a sensitizing antigen for use in immunizing mammals. A full-length Notch receptor or a partial peptide of Notch receptor ECD can also be used as a sensitizing antigen. In this case, the partial peptide may be obtained by chemical synthesis from the human Notch receptor amino acid sequence. Furthermore, they may also be obtained by incorporating a portion of the Notch receptor gene into an expression vector and expressing it. Furthermore, they may also be obtained by degrading the Notch receptor protein using a protease, although the region and size of the Notch receptor peptide used as the partial peptide are not particularly limited in particular embodiments.

[0187] Alternatively, a fusion protein prepared by fusing a desired partial polypeptide or peptide of a full-length Notch receptor or Notch receptor ECD protein with a different polypeptide can be used as a sensitizing antigen. For example, an antibody Fc fragment and a peptide tag are preferably used to produce a fusion protein used as a sensitizing antigen. A vector for expressing such a fusion protein can be constructed by fusing genes encoding two or more desired polypeptide fragments in frame and inserting the fusion gene into an expression vector as described above. Methods for producing fusion proteins are described in Molecular Cloning 2nd ed. (Sambrook, J et al., Molecular Cloning 2nd ed., 9.47-9.58 (1989) Cold Spring Harbor Lab. Press). Methods for preparing Notch receptors used as sensitizing antigens and immunization methods using Notch receptors are also generally known.

[0188] There is no particular limitation on the mammal to be immunized with the sensitizing antigen. However, it is preferable to select a mammal in consideration of compatibility with the parent cells used in cell fusion. Generally, rodents such as mice, rats, hamsters, rabbits, and monkeys are preferably used.

[0189] The above-mentioned animal is immunized with the sensitizing antigen by known methods. For example, commonly performed immunization methods include intraperitoneal or subcutaneous injection of the sensitizing antigen into a mammal. Specifically, the sensitizing antigen is appropriately diluted with PBS (phosphate-buffered saline), physiological saline, or the like. If desired, a conventional adjuvant, such as Freund's complete adjuvant, is mixed with the antigen, and the mixture is emulsified. The sensitizing antigen is then administered to the mammal several times every 4 to 21 days. A suitable carrier can be used for immunization with the sensitizing antigen. In particular, when a low-molecular-weight partial peptide is used as the sensitizing antigen, it may be desirable to conjugate the sensitizing antigen peptide to a carrier protein such as albumin or keyhole limpet hemocyanin for immunization.

[0190] Alternatively, hybridomas producing the desired antibodies can be prepared using DNA immunization as follows. DNA immunization is an immunization method in which immune stimulation is achieved by expressing a sensitizing antigen in an immunized animal by administering vector DNA constructed so that a gene encoding the antigen protein can be expressed in the animal. Compared to conventional immunization methods in which a protein antigen is administered to an immunized animal, DNA immunization is expected to have the following advantages: - immune stimulation can be provided while maintaining the structure of membrane proteins such as the Notch receptor; and - There is no need to purify the antigen for immunization.

[0191] To prepare the monoclonal antibodies of the present invention using DNA immunization, first, DNA expressing a Notch receptor protein is administered to an immunized animal. DNA encoding a Notch receptor can be synthesized by known methods such as PCR. The resulting DNA is inserted into an appropriate expression vector, which is then administered to an immunized animal. Suitable expression vectors include commercially available expression vectors such as pcDNA3.1. The vector can be administered to an organism using conventional methods. For example, DNA immunization is performed by using a gene gun to introduce gold particles coated with the expression vector into the cells of the immunized animal. Antibodies that recognize Notch receptors can also be produced by the method described in WO2003 / 104453.

[0192] After immunization of a mammal as described above, an increase in the titer of a Notch receptor-binding antibody is confirmed in the serum. Thereafter, immune cells are collected from the mammal and then subjected to cell fusion. In particular, splenocytes are preferably used as immune cells.

[0193] Mammalian myeloma cells are used as the cells to be fused with the immune cells. The myeloma cells are preferably equipped with an appropriate selection marker for screening. The selection marker confers the cell the ability to survive (or die) under specific culture conditions. Known selection markers include hypoxanthine-guanine phosphoribosyltransferase deficiency (hereinafter abbreviated as HGPRT deficiency) and thymidine kinase deficiency (hereinafter abbreviated as TK deficiency). Cells deficient in HGPRT or TK are hypoxanthine-aminopterin-thymidine sensitive (hereinafter abbreviated as HAT sensitive). HAT-sensitive cells die because they are unable to synthesize DNA in HAT selective medium. However, when fused with normal cells, they can continue to synthesize DNA using the salvage pathway of normal cells, allowing them to grow even in HAT selective medium.

[0194] HGPRT-deficient and TK-deficient cells can be selected in media containing 6-thioguanine, 8-azaguanine (hereafter abbreviated as 8AG), or 5'-bromodeoxyuridine, respectively. Normal cells incorporate these pyrimidine analogs into their DNA and die. On the other hand, cells lacking these enzymes cannot incorporate these pyrimidine analogs and can therefore survive in selective media. Furthermore, a selectable marker called G418 resistance, conferred by the neomycin resistance gene, confers resistance to the antibiotic 2-deoxystreptamine (a gentamicin analog). Various myeloma cell lines suitable for cell fusion are known.

[0195] For example, myeloma cells including the following cells can be suitably used: P3 (P3x63Ag8.653) (J. Immunol. (1979) 123 (4), 1548-1550), P3x63Ag8U.1 (Current Topics in Microbiology and Immunology (1978) 81, 1-7), NS-1 (C. Eur. J. Immunol. (1976) 6 (7), 511-519), MPC-11 (Cell (1976) 8 (3), 405-415), SP2 / 0 (Nature (1978) 276 (5685), 269-270), FO (J. Immunol. Methods (1980) 35 (1-2), 1-21), S194 / 5.XX0.BU.1 (J. Exp. Med. (1978) 148 (1), 313-323), R210 (Nature (1979) 277 (5692), 131-133), etc.

[0196] Basically, cell fusion between immune cells and myeloma cells is carried out using known methods, for example, the method of Kohler and Milstein et al. (Methods Enzymol. (1981) 73: 3-46). More specifically, cell fusion can be carried out in a conventional medium in the presence of a cell fusion promoter. Fusion promoters include, for example, polyethylene glycol (PEG) and Sendai virus (HVJ). If necessary, auxiliary substances such as dimethyl sulfoxide can be added to enhance fusion efficiency.

[0197] The ratio of immune cells to myeloma cells can be set arbitrarily; for example, 1 to 10 immune cells to 1 myeloma cell is preferred. Media used for cell fusion include, for example, media suitable for growing myeloma cell lines, such as RPMI1640 medium and MEM medium, as well as other conventional media used for this type of cell culture. Furthermore, serum supplements such as fetal calf serum (FCS) can be suitably added to the medium.

[0198] For cell fusion, a predetermined amount of the immune cells and myeloma cells are thoroughly mixed in the medium. Next, a PEG solution (e.g., with an average molecular weight of approximately 1000 to 6000) preheated to approximately 37°C is added, typically at a concentration of 30% to 60% (w / v). Gentle mixing produces the desired fused cells (hybridomas). The appropriate medium is then added sequentially to the cells, and the mixture is repeatedly centrifuged to remove the supernatant. In this way, cell fusion agents and other substances undesirable for hybridoma growth can be removed.

[0199] The hybridomas thus obtained can be selected by culturing them in a conventional selective medium, such as HAT medium (a medium containing hypoxanthine, aminopterin, and thymidine). Cells other than the desired hybridoma (unfused cells) can be killed by continuing culture in the HAT medium for a sufficient period of time. This period usually lasts from several days to several weeks. Hybridomas producing the desired antibody are then screened and single-cloned by the conventional limiting dilution method.

[0200] The hybridomas thus obtained can be selected using a selective medium based on the selection marker possessed by the myeloma used in cell fusion. For example, HGPRT-deficient or TK-deficient cells can be selected by culturing them in HAT medium (a medium containing hypoxanthine, aminopterin, and thymidine). That is, when HAT-sensitive myeloma cells are used for cell fusion, cells that have successfully fused with normal cells can selectively grow in HAT medium. Cells other than the desired hybridoma (unfused cells) can be killed by continuing culture in the above-mentioned HAT medium for a sufficient period of time. Specifically, the desired hybridoma can be selected by culturing for several days to several weeks. Hybridomas producing the desired antibody are then screened and single-cloned by conventional limiting dilution methods.

[0201] Desired antibodies can be suitably selected and monocloned by screening methods based on known antigen / antibody reactions. For example, a monoclonal antibody that binds to a Notch receptor can bind to a Notch receptor expressed on the cell surface. Such monoclonal antibodies can be screened by fluorescence-activated cell sorting (FACS). FACS is a system that evaluates the binding of an antibody to a cell or cell surface by analyzing cells contacted with a fluorescent antibody with laser light and measuring the fluorescence emitted by individual cells.

[0202] To screen for hybridomas producing the monoclonal antibodies of the present invention by FACS, cells expressing a Notch receptor are first prepared. Cells suitable for screening are mammalian cells overexpressing a Notch receptor. As a control, non-transformed mammalian cells can be used as host cells to selectively detect the binding activity of antibodies to cell surface Notch receptors. That is, hybridomas producing anti-Notch receptor monoclonal antibodies can be isolated by selecting hybridomas producing antibodies that bind to cells overexpressing a Notch receptor but not to host cells.

[0203] Alternatively, the binding activity of an antibody to immobilized Notch receptor-expressing cells can be evaluated based on the principles of ELISA. For example, Notch receptor-expressing cells are immobilized in the wells of an ELISA plate. The hybridoma culture supernatant is contacted with the immobilized cells in the wells, and antibodies that bind to the immobilized cells are detected. If the monoclonal antibody is derived from a mouse, the antibody bound to the cells can be detected using an anti-mouse immunoglobulin antibody. Hybridomas that produce the desired antibody capable of binding to the antigen are selected by the above screening, and these can be cloned by limiting dilution or other methods.

[0204] The monoclonal antibody-producing hybridomas thus prepared can be subcultured in conventional media and stored for long periods in liquid nitrogen.

[0205] The hybridomas are cultured by conventional methods, and the desired monoclonal antibodies can be prepared from the culture supernatant. Alternatively, the hybridomas are administered to a compatible mammal for proliferation, and the monoclonal antibodies are prepared from the ascites fluid. The former method is suitable for preparing highly pure antibodies.

[0206] Antibodies encoded by antibody genes cloned from antibody-producing cells such as the above-mentioned hybridomas can also be suitably used. The cloned antibody gene is inserted into an appropriate vector, which is then introduced into a host to express the antibody encoded by the gene. Methods for isolating antibody genes, inserting the genes into vectors, and transforming host cells have already been established, for example, by Vandamme et al. (Eur. J. Biochem. (1990) 192(3), 767-775). Methods for producing recombinant antibodies are also known, as described below.

[0207] Preferably, the present invention provides nucleic acids encoding the multispecific antigen-binding molecules of the present invention. The present invention also provides vectors into which nucleic acids encoding the multispecific antigen-binding molecules have been introduced, i.e., vectors containing the nucleic acids. Furthermore, the present invention provides cells containing the nucleic acids or the vectors. The present invention also provides methods for producing the multispecific antigen-binding molecules by culturing the cells. The present invention further provides multispecific antigen-binding molecules produced by the methods.

[0208] For example, cDNA encoding the variable region (V region) of an anti-Notch receptor antibody is prepared from hybridoma cells expressing the anti-Notch receptor antibody. To do this, total RNA is first extracted from the hybridoma. Methods used to extract mRNA from cells include, for example, the following: -guanidine ultracentrifugation (Biochemistry (1979) 18(24), 5294-5299), and -AGPC method (Anal. Biochem. (1987) 162(1), 156-159).

[0209] The extracted mRNA can be purified using an mRNA Purification Kit (GE Healthcare Bioscience) or similar. Alternatively, kits for extracting total mRNA directly from cells, such as the QuickPrep mRNA Purification Kit (GE Healthcare Bioscience), are commercially available. Using such kits, mRNA can be prepared from hybridomas. cDNA encoding antibody V regions can be synthesized from the prepared mRNA using reverse transcriptase. cDNA can be synthesized using an AMV Reverse Transcriptase First-Strand cDNA Synthesis Kit (Seikagaku Corporation) or similar. Alternatively, the SMART RACE cDNA Amplification Kit (Clontech) and the PCR-based 5'-RACE method (Proc. Natl. Acad. Sci. USA (1988) 85(23), 8998-9002; Nucleic Acids Res. (1989) 17(8), 2919-2932) can be used appropriately for cDNA synthesis and amplification. During the process of synthesizing such cDNA, appropriate restriction enzyme sites, which will be described later, can be introduced into both ends of the cDNA.

[0210] The desired cDNA fragment is purified from the resulting PCR product and then ligated to vector DNA. A recombinant vector is thus constructed and introduced into E. coli or other bacteria. After colonies are selected, the desired recombinant vector can be prepared from the E. coli that formed the colonies. The recombinant vector is then tested for the presence of the desired cDNA nucleotide sequence by known methods, such as the dideoxynucleotide chain termination method.

[0211] To isolate genes encoding variable regions, the 5'-RACE method, which uses primers to amplify variable region genes, is conveniently used. First, a 5'-RACE cDNA library is constructed by cDNA synthesis using RNA extracted from hybridoma cells as a template. A commercially available kit, such as the SMART RACE cDNA Amplification Kit, can be used to synthesize the 5'-RACE cDNA library.

[0212] Antibody genes are amplified by PCR using the prepared 5'-RACE cDNA library as a template. Primers for amplifying mouse antibody genes can be designed based on known antibody gene sequences. The nucleotide sequences of these primers vary depending on the immunoglobulin subclass. Therefore, it is preferable to determine the subclass in advance using a commercially available kit such as the IsoStrip Mouse Monoclonal Antibody Isotyping Kit (Roche Diagnostics).

[0213] Specifically, for example, to isolate a gene encoding mouse IgG, primers capable of amplifying genes encoding γ1, γ2a, γ2b, and γ3 heavy chains and κ and λ light chains are used. To amplify IgG variable region genes, a primer that anneals to a constant region site close to the variable region is generally used as the 3' primer. Meanwhile, the primer included in the 5' RACE cDNA library construction kit is used as the 5' primer.

[0214] The PCR product thus amplified is used to reconstitute immunoglobulins consisting of a combination of heavy and light chains. The Notch receptor-binding activity of the reconstituted immunoglobulins can be used as an index to select desired antibodies. For example, when the aim is to isolate antibodies against a Notch receptor, it is more preferable that the antibody binds specifically to the Notch receptor. Antibodies that bind to a Notch receptor can be screened, for example, by the following steps: (1) contacting an antibody containing a V region encoded by a cDNA isolated from a hybridoma with a Notch receptor-expressing cell; (2) detecting the binding of the antibody to Notch receptor-expressing cells; and (3) A step of selecting an antibody that binds to Notch receptor-expressing cells.

[0215] Methods for detecting the binding of an antibody to Notch receptor-expressing cells are known. Specifically, the binding of an antibody to Notch receptor-expressing cells can be detected by techniques such as the above-mentioned FACS. Fixed samples of Notch receptor-expressing cells are appropriately used to evaluate the binding activity of an antibody.

[0216] A preferred antibody screening method using binding activity as an index is the panning method using a phage vector. When antibody genes are isolated from a library of heavy and light chain subclasses from a polyclonal antibody-expressing cell population, a screening method using a phage vector is advantageous. Genes encoding the heavy and light chain variable regions can be linked with an appropriate linker sequence to form a single-chain Fv (scFv). By inserting a gene encoding an scFv into a phage vector, a phage displaying the scFv on its surface can be produced. This phage is then contacted with the target antigen. The phage bound to the antigen can then be recovered, allowing DNA encoding the scFv with the desired binding activity to be isolated. By repeating this process as necessary, scFv with the desired binding activity can be enriched.

[0217] After isolating cDNA encoding the V region of the desired anti-Notch receptor antibody, the cDNA is digested with a restriction enzyme that recognizes restriction enzyme sites introduced into both ends of the cDNA. Preferred restriction enzymes recognize and cleave nucleotide sequences that occur rarely in the nucleotide sequence of an antibody gene. Furthermore, to insert a single copy of the digested fragment in the correct orientation, it is preferable to introduce a restriction enzyme site for an enzyme that generates sticky ends into the vector. An antibody expression vector is constructed by digesting cDNA encoding the V region of an anti-Notch receptor antibody as described above and inserting it into an appropriate expression vector. If a gene encoding the antibody constant region (C region) and a gene encoding the V region are fused in frame, a chimeric antibody is obtained. Here, the term "chimeric antibody" refers to an antibody whose constant region origin is different from that of its variable region. Therefore, in addition to mouse / human heterogeneous chimeric antibodies, human / human homogeneous chimeric antibodies are also included in the chimeric antibodies of the present invention. A chimeric antibody expression vector can be constructed by inserting the V region gene into an expression vector that already contains a constant region. Specifically, for example, a recognition sequence for a restriction enzyme that excises the V region gene of a desired antibody can be appropriately positioned at the 5' end of an expression vector carrying DNA encoding the constant region (C region). A chimeric antibody expression vector is constructed by fusion in frame of both genes digested with the same combination of restriction enzymes.

[0218] To produce an anti-Notch receptor monoclonal antibody, the antibody gene is inserted into an expression vector so that its expression is under the control of an expression control region. Expression control regions for antibody expression include, for example, enhancers and promoters. Furthermore, an appropriate signal sequence can be added to the amino terminus so that the expressed antibody is secreted extracellularly. In the examples described below, a peptide having the amino acid sequence MGWSCIILFLVATATGVHS (SEQ ID NO: 17) is used as the signal sequence. However, other appropriate signal sequences may also be added. The expressed polypeptide is cleaved at the carboxyl terminus of the above sequence, and the resulting polypeptide is secreted extracellularly as a mature polypeptide. Next, an appropriate host cell is transformed with this expression vector to obtain a recombinant cell expressing DNA encoding the anti-Notch receptor antibody.

[0219] For antibody gene expression, DNAs encoding the antibody heavy chain (H chain) and light chain (L chain) are inserted separately into different expression vectors. An antibody molecule comprising an H chain and an L chain can be expressed by co-transfecting the same host cell with vectors into which the H chain gene and the L chain gene have been inserted, respectively. Alternatively, a host cell can be transformed with a single expression vector into which DNAs encoding the H chain and the L chain have been inserted (see WO94 / 11523).

[0220] Various host cell / expression vector combinations are known for preparing antibodies by introducing isolated antibody genes into a suitable host. Any of these expression systems can be applied to isolating domains containing the antibody variable regions of the present invention. Suitable eukaryotic cells for use as host cells include animal cells, plant cells, and fungal cells. Specific examples of animal cells include the following: (1) Mammalian cells: CHO, COS, myeloma, baby hamster kidney (BHK), HeLa, Vero, etc.; (2) Amphibian cells, such as Xenopus oocytes; and (3) Insect cells: sf9, sf21, Tn5, etc.

[0221] Furthermore, antibody gene expression systems using plant cells derived from the genus Nicotiana, such as Nicotiana tabacum, are known. Callus cultured cells can be appropriately used for transformation of plant cells.

[0222] Furthermore, the following fungal cells can be used: Yeasts: Saccharomyces genus, such as Saccharomyces cerevisiae, and Pichia genus, such as Pichia pastoris; and Filamentous fungi: Aspergillus genus, such as Aspergillus niger.

[0223] Furthermore, antibody gene expression systems using prokaryotic cells are also known. For example, when bacterial cells are used, Escherichia coli cells, Bacillus subtilis cells, and the like can be appropriately used in the present invention. An expression vector carrying the antibody gene of interest is introduced into these cells by transfection. The transfected cells are cultured in vitro, and the desired antibody can be prepared from the culture of the transformed cells.

[0224] In addition to the host cells described above, transgenic animals can also be used to produce recombinant antibodies. That is, the antibody can be obtained from an animal into which a gene encoding the antibody of interest has been introduced. For example, an antibody gene can be constructed as a fusion gene by inserting it in-frame into a gene encoding a protein specifically produced in milk. Examples of proteins secreted into milk include goat beta-casein. A DNA fragment containing the fusion gene with the antibody gene inserted is injected into a goat embryo, and the embryo is then introduced into a female goat. The transgenic goat (or its offspring) born to the embryo recipient can produce the desired antibody as a fusion protein with a milk protein from the milk produced. Furthermore, hormones can be administered to the transgenic goat as needed to increase the amount of milk containing the desired antibody produced by the transgenic goat (Ebert, KM et al., Bio / Technology (1994) 12 (7), 699-702).

[0225] Methods for Producing Humanized Antibodies When the antigen-binding molecules described herein are administered to humans, the domains containing the antibody variable regions of the antigen-binding molecules may be appropriately derived from recombinant antibodies that have been artificially modified to reduce heterologous antigenicity to humans. Examples of such recombinant antibodies include humanized antibodies. These modified antibodies are appropriately produced by known methods. Furthermore, the binding specificity of one antibody can generally be transferred to another antibody by CDR grafting.

[0226] Specifically, humanized antibodies prepared by grafting CDRs of non-human animal antibodies, such as mouse antibodies, onto human antibodies are known. General genetic engineering techniques for obtaining humanized antibodies are also known. Specifically, overlap extension PCR, for example, is known as a method for grafting mouse antibody CDRs onto human FRs. In overlap extension PCR, a nucleotide sequence encoding the mouse antibody CDR to be grafted is added to a primer for synthesizing the human antibody FR. Primers are prepared for each of the four FRs. In general, when grafting mouse CDRs onto human FRs, selecting human FRs that are highly identical to the mouse FRs is considered advantageous in terms of maintaining CDR function. In other words, it is generally preferable to use human FRs that contain an amino acid sequence highly identical to the amino acid sequence of the FR adjacent to the mouse CDR to be grafted.

[0227] The nucleotide sequences to be linked are designed to be connected in frame with each other. Human FRs are synthesized individually using each primer. As a result, products are obtained in which DNA encoding mouse CDRs is added to each DNA encoding FRs. The nucleotide sequences encoding the mouse CDRs of each product are designed to overlap with each other. Subsequently, a complementary strand synthesis reaction is carried out to anneal the overlapping CDR regions of the products synthesized using the human antibody gene as a template. This reaction links the human FRs via the mouse CDR sequences.

[0228] The full-length V region gene, in which three CDRs and four FRs are ultimately linked, is amplified using a primer that anneals to its 5' or 3' end, and an appropriate restriction enzyme recognition sequence is added to the end. A humanized antibody expression vector can be produced by inserting the DNA obtained as described above and DNA encoding a human antibody C region into an expression vector so that they are linked in frame. After transfecting the recombinant vector into a host to establish recombinant cells, the recombinant cells are cultured to express the DNA encoding the humanized antibody, and the humanized antibody is produced in the cell culture (see European Patent Application Publication EP 239400 and International Publication WO 1996 / 002576).

[0229] By qualitatively or quantitatively measuring and evaluating the antigen-binding activity of the humanized antibody produced as described above, it is possible to suitably select human antibody FRs whose CDRs are capable of forming a favorable antigen-binding site when linked to the human antibody FRs via the CDRs. If necessary, amino acid residues in the FRs can be substituted so that the CDRs of the reshaped human antibody form a suitable antigen-binding site. For example, amino acid sequence mutations can be introduced into the FRs by applying the PCR method used to graft mouse CDRs onto human FRs. More specifically, partial nucleotide sequence mutations can be introduced into primers that anneal to the FRs. Nucleotide sequence mutations are introduced into the FRs synthesized using such primers. By measuring and evaluating the antigen-binding activity of mutant antibodies with amino acid substitutions using the above method, mutant FR sequences with desired properties can be selected (Sato, K. et al., Cancer Res. (1993) 53: 851-856).

[0230] Methods for producing human antibodies Alternatively, desired human antibodies can be obtained by DNA immunization using transgenic animals carrying a full repertoire of human antibody genes (see WO1993 / 012227, WO1992 / 003918, WO1994 / 002602, WO1994 / 025585, WO1996 / 034096, WO1996 / 033735).

[0231] Furthermore, techniques for preparing human antibodies by panning using a human antibody library are also known. For example, the V region of a human antibody is expressed on the surface of a phage as a single-chain antibody (scFv) by phage display. Phages expressing scFvs that bind to an antigen can be selected. The DNA sequence encoding the V region of a human antibody that binds to the antigen can be determined by analyzing the genes of the selected phage. The DNA sequence of the scFv that binds to the antigen is determined. The V region sequence is fused in frame with the C region sequence of a desired human antibody and inserted into an appropriate expression vector to prepare an expression vector. The expression vector is introduced into cells suitable for expression, such as the cells described above. The human antibody is produced by expressing the gene encoding the human antibody in the cells. These methods are already known (see WO1992 / 001047, WO1992 / 020791, WO1993 / 006213, WO1993 / 011236, WO1993 / 019172, WO1995 / 001438, WO1995 / 015388).

[0232] epitope "Epitope" refers to an antigenic determinant in an antigen, and refers to a site on an antigen to which the antigen-binding domain of an antigen-binding molecule or antibody disclosed herein binds. Thus, for example, an epitope can be defined by its structure. Alternatively, an epitope can be defined by the antigen-binding activity of an antigen-binding molecule or antibody that recognizes the epitope. When the antigen is a peptide or polypeptide, the epitope can also be identified by the amino acid residues that form the epitope. Alternatively, when the epitope is a glycan, the epitope can also be identified by a specific glycan structure.

[0233] A linear epitope is one whose primary amino acid sequence comprises the epitope recognized. Such linear epitopes typically contain at least three, and most usually at least five, e.g., about 8-10 or 6-20 amino acids in their unique sequence.

[0234] A "conformational epitope," in contrast to a linear epitope, is an epitope in which the primary amino acid sequence comprising the epitope is not the sole determinant of the recognized epitope (e.g., the primary amino acid sequence of a conformational epitope is not necessarily recognized by the antibody that defines the epitope). A conformational epitope may encompass an increased number of amino acids compared to a linear epitope. An antigen-binding domain that recognizes a conformational epitope recognizes the three-dimensional structure of a peptide or protein. For example, when a protein molecule folds to form a three-dimensional structure, the amino acids and / or polypeptide backbone that form the conformational epitope are juxtaposed, and the epitope can be recognized by the antigen-binding domain. Methods for determining the conformation of an epitope include, but are not limited to, X-ray crystallography, two-dimensional nuclear magnetic resonance, site-directed spin labeling, and electron paramagnetic resonance. See, for example, Epitope Mapping Protocols in Methods in Molecular Biology (1996), Vol. 66, Morris (ed.).

[0235] Exemplary methods for assessing epitope binding by test antigen-binding molecules or antibodies containing anti-Notch receptor antigen-binding domains are described below. Methods for assessing epitope binding by test antigen-binding molecules or antibodies containing antigen-binding domains against antigens other than Notch receptors can also be performed appropriately according to the following examples.

[0236] For example, whether a test antigen-binding molecule or antibody containing an anti-Notch receptor antigen-binding domain recognizes a linear epitope in a Notch receptor molecule can be confirmed, for example, as follows. For this purpose, a linear peptide containing the amino acid sequence forming the extracellular domain of a Notch receptor is synthesized. The peptide can be chemically synthesized or obtained by genetic engineering techniques using a region in Notch receptor cDNA encoding the amino acid sequence corresponding to the extracellular domain. The test antigen-binding molecule or antibody containing an anti-Notch receptor antigen-binding domain is then evaluated for its binding activity to a linear peptide containing the amino acid sequence forming the extracellular domain. For example, the binding activity of a polypeptide complex to the peptide can be evaluated by ELISA using an immobilized linear peptide as an antigen. Alternatively, the binding activity of a linear peptide to a linear peptide can be evaluated based on the level at which the linear peptide inhibits the binding of the antigen-binding molecule or antibody to Notch receptor-expressing cells. These tests can demonstrate the binding activity of an antigen-binding molecule or antibody to a linear peptide.

[0237] Whether a test antigen-binding molecule or antibody comprising an anti-Notch receptor antigen-binding domain recognizes a conformational epitope can be assessed as follows. For this purpose, Notch receptor-expressing cells are prepared. If a test antigen-binding molecule or antibody comprising an anti-Notch receptor antigen-binding domain binds strongly to Notch receptor-expressing cells upon contact but does not substantially bind to an immobilized linear peptide comprising an amino acid sequence forming the extracellular domain of the Notch receptor, it can be determined to recognize a conformational epitope. As used herein, "does not substantially bind" means that the binding activity is 80% or less, generally 50% or less, preferably 30% or less, and particularly preferably 15% or less, compared to the binding activity to cells expressing the Notch receptor.

[0238] Methods for assaying the binding activity of a test antigen-binding molecule or antibody containing an anti-Notch receptor antigen-binding domain to Notch receptor-expressing cells include, for example, the method described in Antibodies: A Laboratory Manual (Ed Harlow, David Lane, Cold Spring Harbor Laboratory (1988) 359-420). Specifically, evaluation can be performed based on the principles of ELISA or fluorescence-activated cell sorting (FACS) using Notch receptor-expressing cells as antigens.

[0239] In ELISA format, the binding activity of a test antigen-binding molecule or antibody containing an anti-Notch receptor antigen-binding domain to Notch receptor-expressing cells can be quantitatively evaluated by comparing the signal level generated by the enzyme reaction. Specifically, a test polypeptide complex is added to an ELISA plate on which Notch receptor-expressing cells are immobilized. The test antigen-binding molecule or antibody bound to the cells is then detected using an enzyme-labeled antibody that recognizes the test antigen-binding molecule or antibody. Alternatively, when FACS is used, a dilution series of the test antigen-binding molecule or antibody is prepared, and the antibody binding titer to Notch receptor-expressing cells is determined, and the binding activity of the test antigen-binding molecule or antibody to Notch receptor-expressing cells can be compared.

[0240] The binding of a test antigen-binding molecule or antibody to cells suspended in a buffer solution or to antigens expressed on the cell surface can be detected using a flow cytometer. Known flow cytometers include, for example, the following devices: FACSCanto(TM) II FACSAria(trademark) FACSArray™ FACSVantage(TM)SE FACSCalibur™ (both are trade names of BD Biosciences) EPICS ALTRA HyperSort Cytomics FC 500 EPICS XL-MCL ADC EPICS XL ADC Cell Lab Quanta / Cell Lab Quanta SC (both are trade names of Beckman Coulter).

[0241] Preferred methods for assaying the antigen-binding activity of a test antigen-binding molecule or antibody containing an anti-Notch receptor antigen-binding domain include, for example, the following method. First, Notch receptor-expressing cells are reacted with the test antigen-binding molecule or antibody, and then stained with an FITC-labeled secondary antibody that recognizes the antigen-binding molecule or antibody. The test antigen-binding molecule or antibody is diluted appropriately with an appropriate buffer to prepare the desired concentration. For example, the antigen-binding molecule or antibody can be used at a concentration ranging from 10 μg / ml to 10 ng / ml. Next, fluorescence intensity and cell count are determined using a FACSCalibur (BD). The fluorescence intensity, i.e., the geometric mean value, obtained by analysis using CELL QUEST Software (BD) reflects the amount of antibody bound to the cells. In other words, by measuring the geometric mean value, the binding activity of the test antigen-binding molecule or antibody, represented by the amount of bound test antigen-binding molecule or antibody, can be determined.

[0242] Whether a test antigen-binding molecule or antibody containing an anti-Notch receptor antigen-binding domain shares a common epitope with another antigen-binding molecule or antibody can be evaluated based on competition between the two antigen-binding molecules or antibodies for the same epitope. Competition between antigen-binding molecules or antibodies can be detected by cross-blocking assays, etc. For example, competitive ELISA assays are preferred cross-blocking assays.

[0243] Specifically, in a cross-blocking assay, a Notch receptor protein immobilized on a well of a microtiter plate is pre-incubated in the presence or absence of a candidate competitor antigen-binding molecule or antibody, and then a test antigen-binding molecule or antibody is added thereto. The amount of the test antigen-binding molecule or antibody bound to the Notch receptor protein in the well is indirectly correlated with the binding ability of the candidate competitor antigen-binding molecule or antibody that competes for binding to the same epitope. That is, the higher the affinity of the competitor antigen-binding molecule or antibody for the same epitope, the lower the binding activity of the test antigen-binding molecule or antibody to the Notch receptor protein-coated well.

[0244] The amount of test antigen-binding molecules or antibodies bound to wells via Notch receptor proteins can be easily determined by labeling the antigen-binding molecules or antibodies in advance. For example, biotin-labeled antigen-binding molecules or antibodies are measured using an avidin / peroxidase conjugate and an appropriate substrate. In particular, cross-blocking assays using enzyme labels such as peroxidase are called "competitive ELISA assays." Antigen-binding molecules or antibodies can also be labeled with other labeling substances that allow detection or measurement. Specifically, radiolabels, fluorescent labels, etc. are known.

[0245] When a candidate competitor antigen-binding molecule or antibody can block binding by a test antigen-binding molecule or antibody comprising an anti-Notch receptor antigen-binding domain by at least 20%, preferably at least 20-50%, and more preferably at least 50%, compared to the binding activity in a control experiment performed in the absence of the competitor antigen-binding molecule or antibody, the test antigen-binding molecule or antibody is determined to substantially bind to the same epitope as the competitor antigen-binding molecule or antibody, or to compete for binding to the same epitope.

[0246] When the structure of the epitope bound by a test antigen-binding molecule or antibody containing an anti-Notch receptor antigen-binding domain has already been identified, whether the test and control antigen-binding molecules or antibodies share a common epitope can be assessed by comparing the binding activity of both antigen-binding molecules or antibodies toward peptides prepared by introducing amino acid mutations into the peptide that forms the epitope.

[0247] To measure the binding activity, for example, the binding activity of a test antigen-binding molecule or antibody to a mutated linear peptide is compared with that of a control antigen-binding molecule or antibody in the ELISA format described above. In addition to ELISA, the binding activity of the test antigen-binding molecule or antibody and the control antigen-binding molecule or antibody can be determined by passing the test antigen-binding molecule or antibody and the control antigen-binding molecule or antibody through a column and then quantifying the antigen-binding molecule or antibody eluted in the eluate. Methods for adsorbing mutant peptides to a column, for example, in the form of GST-fusion peptides, are known.

[0248] Alternatively, if the identified epitope is a conformational epitope, whether the test and control antigen-binding molecules or antibodies share a common epitope can be assessed by the following method. First, Notch receptor-expressing cells and cells expressing a Notch receptor with a mutation introduced into the epitope are prepared. These cells are suspended in an appropriate buffer, such as PBS, to prepare a cell suspension. The test and control antigen-binding molecules or antibodies are then added to the cell suspension. The cell suspension is then washed appropriately with buffer, and FITC-labeled antibodies that recognize the test and control antigen-binding molecules or antibodies are added. The fluorescence intensity and number of cells stained with the labeled antibodies are determined using a FACSCalibur (BD). The test and control antigen-binding molecules or antibodies are diluted appropriately with an appropriate buffer and used at the desired concentration. For example, they can be used at a concentration ranging from 10 μg / ml to 10 ng / ml. The fluorescence intensity, i.e., the geometric mean value, determined by analysis using CELL QUEST Software (BD) reflects the amount of labeled antibody bound to the cells. That is, by measuring the geometric mean value, the binding activity of the test and control antigen-binding molecules or antibodies, represented by the amount of bound labeled antibody, can be determined.

[0249] In the above-mentioned method, whether an antigen-binding molecule or antibody "does not substantially bind to cells expressing a mutant Notch receptor" can be evaluated, for example, by the following method. First, test and control antigen-binding molecules or antibodies bound to cells expressing a mutant Notch receptor are stained with a labeled antibody. The fluorescence intensity of the cells is then determined. When a FACSCalibur is used for fluorescence detection by flow cytometry, the determined fluorescence intensity can be analyzed using CELL QUEST Software. A comparative value (ΔGeo-Mean) can be calculated from the geometric mean values ​​in the presence and absence of the antigen-binding molecule or antibody according to the following formula, and the rate of increase in fluorescence intensity as a result of binding by the antigen-binding molecule or antibody can be determined. ΔGeo-Mean = Geo-Mean (in the presence of antigen-binding molecules or antibodies) / Geo-Mean (in the absence of antigen-binding molecules or antibodies)

[0250] The geometric mean comparison value determined by the above analysis (ΔGeo-Mean value for mutant Notch receptor molecules), which reflects the amount of test antigen-binding molecule or antibody bound to cells expressing mutant Notch receptors, is compared with the ΔGeo-Mean comparison value, which reflects the amount of test antigen-binding molecule or antibody bound to Notch receptor-expressing cells. In this case, it is particularly preferable that the concentrations of the test antigen-binding molecule or antibody used to determine the ΔGeo-Mean comparison values ​​for Notch receptor-expressing cells and mutant Notch receptor-expressing cells are adjusted to be equal or substantially equal. An antigen-binding molecule or antibody confirmed to recognize an epitope in the Notch receptor is used as a control antigen-binding molecule or antibody.

[0251] If the ΔGeo-Mean comparison value of the test antigen-binding molecule or antibody for cells expressing a mutant Notch receptor is at least 80%, preferably 50%, more preferably 30%, and particularly preferably 15% smaller than the ΔGeo-Mean comparison value of the test antigen-binding molecule or antibody for cells expressing a Notch receptor, the test antigen-binding molecule or antibody "does not substantially bind to cells expressing a mutant Notch receptor." The formula for determining Geo-Mean (geometric mean) values ​​is described in the CELL QUEST Software User's Guide (BD biosciences). If the comparison shows that the comparison values ​​are substantially equal, it can be determined that the epitopes of the test antigen-binding molecule or antibody and the control antigen-binding molecule or antibody are the same.

[0252] Production and purification of multispecific antigen-binding molecules In some embodiments, the multispecific antigen-binding molecules of the present disclosure are isolated multispecific antigen-binding molecules. In one embodiment, the multispecific antigen-binding molecules described herein comprise two different antigen-binding moieties (e.g., a "first antigen-binding moiety" and a "second antigen-binding moiety") fused to one or the other of the two subunits of the Fc domain; thus, the two subunits of the Fc domain are typically contained in two non-identical polypeptide chains. Recombinant co-expression of these polypeptides and subsequent dimerization provides the possibility of multiple combinations of the two polypeptides. Therefore, to improve the yield and purity of multispecific antigen-binding molecules during recombinant production, it is advantageous to introduce modifications into the Fc domain of the multispecific antigen-binding molecule that promote the association of the desired polypeptides.

[0253] Therefore, in certain embodiments, the Fc domain of the multispecific antigen-binding molecule described herein comprises a modification that promotes the association of the first subunit and the second subunit of the Fc domain. The most extensive protein-protein interaction site between the two subunits of the human IgG Fc domain is in the CH3 domain of the Fc domain. Thus, in one embodiment, the modification is in the CH3 domain of the Fc domain.

[0254] In a particular embodiment, the modification is a so-called "knob-into-hole" modification, which comprises a "knob" modification in one of the two subunits of the Fc domain and a "hole" modification in the other of the two subunits of the Fc domain. Knob-into-hole technology is described, for example, in U.S. Patent No. 5,731,168; U.S. Patent No. 7,695,936; Ridgway et al., Prot Eng 9, 617-621 (1996); and Carter, J Immunol Meth 248, 7-15 (2001). Generally, the method involves introducing a protrusion ("knob") into the interface of a first polypeptide and a corresponding cavity ("hole") into the interface of a second polypeptide, so that the protrusion ("knob") can be positioned in the cavity ("hole"), promoting heterodimer formation and preventing homodimer formation. The protrusion is constructed by replacing small amino acid side chains in the interface of the first polypeptide with larger side chains (e.g., tyrosine or tryptophan). A compensatory cavity of the same or similar size as the protrusion is created in the interface of the second polypeptide by replacing the large amino acid side chain with a smaller one (e.g., alanine or threonine).

[0255] Thus, in a particular embodiment, in the CH3 domain of a first subunit of the Fc domain of a multispecific antigen-binding molecule, an amino acid residue is replaced with an amino acid residue having a larger side chain volume, thereby generating a protrusion in the CH3 domain of the first subunit that can be positioned in a cavity in the CH3 domain of a second subunit, and in the CH3 domain of a second subunit of the Fc domain, an amino acid residue is replaced with an amino acid residue having a smaller side chain volume, thereby generating a cavity in the CH3 domain of the second subunit into which the protrusion in the CH3 domain of the first subunit can be positioned.

[0256] The protrusions and cavities can be made by altering the nucleic acid encoding the polypeptide, for example, by site-directed mutagenesis, or by peptide synthesis.

[0257] In a specific embodiment, in the CH3 domain of the first subunit of the Fc domain, the threonine residue at position 366 is replaced with a tryptophan residue (T366W), and in the CH3 domain of the second subunit of the Fc domain, the tyrosine residue at position 407 is replaced with a valine residue (Y407V). In one embodiment, in the second subunit of the Fc domain, the threonine residue at position 366 is further replaced with a serine residue (T366S), and the leucine residue at position 368 is replaced with an alanine residue (L368A).

[0258] In yet a further embodiment, in the first subunit of the Fc domain, the serine residue at position 354 is further replaced with a cysteine ​​residue (S354C), and in the second subunit of the Fc domain, the tyrosine residue at position 349 is further replaced with a cysteine ​​residue (Y349C). The introduction of these two cysteine ​​residues results in the formation of disulfide bridges between the two subunits of the Fc domain, further stabilizing the dimer (Carter, J Immunol Methods 248, 7-15 (2001)).

[0259] In other embodiments, other techniques for promoting the association of desired combinations of H chains and L chains can be applied to the multispecific antigen-binding molecules of the present disclosure.

[0260] For example, in the association of multispecific antibodies, a technique can be applied that suppresses undesired association of antibody heavy chains by introducing electrostatic repulsion at the interface of the second or third constant region (CH2 or CH3) of the antibody heavy chain (WO2006 / 106905).

[0261] In the technique for suppressing unintended H chain association by introducing electrostatic repulsion at the CH2 or CH3 interface, examples of amino acid residues that contact the interface of the other H chain constant region include regions corresponding to residues at EU numbering positions 356, 439, 357, 370, 399, and 409 in the CH3 region.

[0262] More specifically, examples include antibodies comprising two types of H chain CH3 regions, in which one to three pairs of amino acid residues selected from the pairs of amino acid residues shown in (1) to (3) below in the first H chain CH3 region have the same electric charge: (1) the amino acid residues at EU numbering positions 356 and 439 in the H chain CH3 region, (2) the amino acid residues at EU numbering positions 357 and 370 in the H chain CH3 region, and (3) the amino acid residues at EU numbering positions 399 and 409 in the H chain CH3 region.

[0263] Furthermore, the antibody may be an antibody in which pairs of amino acid residues in a second H chain CH3 region different from the first H chain CH3 region are selected from the pairs of amino acid residues (1) to (3) above, and one to three pairs of amino acid residues corresponding to the pairs of amino acid residues (1) to (3) with the same charge in the first H chain CH3 region have charges opposite to those of the corresponding amino acid residues in the first H chain CH3 region.

[0264] The amino acid residues shown in (1) to (3) above are close to each other when associated. Those skilled in the art can find the positions corresponding to the amino acid residues shown in (1) to (3) above in the desired H chain CH3 region or H chain constant region by homology modeling using commercially available software, and can appropriately modify the amino acid residues at these positions.

[0265] In the above-described antibody, the "charged amino acid residue" is preferably selected from, for example, amino acid residues included in any one of the following groups: (a) glutamic acid (E) and aspartic acid (D), and (b) Lysine (K), arginine (R), and histidine (H).

[0266] In the above-mentioned antibodies, the phrase "having the same charge" means, for example, that two or more amino acid residues are all selected from amino acid residues included in either one of the above groups (a) and (b). The phrase "having opposite charges" means, for example, that when at least one amino acid residue among two or more amino acid residues is selected from amino acid residues included in either one of the above groups (a) and (b), the remaining amino acid residue is selected from amino acid residues included in the other group.

[0267] In a preferred embodiment, the above-mentioned antibody may have the first H chain CH3 region and the second H chain CH3 region cross-linked by a disulfide bond.

[0268] In the present disclosure, the amino acid residues to be modified are not limited to those in the antibody variable region or constant region described above. Those skilled in the art can identify amino acid residues that form an interface in a mutant polypeptide or heteromultimer by homology modeling using commercially available software, and then modify the amino acid residues at these positions to control association.

[0269] In addition, other known techniques can also be used to form the multispecific antigen-binding molecules of the present disclosure. A strand-exchange engineered domain CH3 can be produced by substituting a portion of one antibody H chain CH3 with a corresponding IgA-derived sequence and then introducing the corresponding IgA-derived sequence into the complementary portion of the other antibody H chain CH3. This allows efficient induction of association between polypeptides with different sequences through complementary association of CH3s (Protein Engineering Design & Selection, 23; 195-202, 2010). This known technique can also be used to efficiently form the desired multispecific antigen-binding molecules.

[0270] In addition, for the formation of multispecific antigen-binding molecules, various techniques can be used, including antibody production techniques utilizing the association of antibody CH1 and CL and VH and VL, such as those described in WO2011 / 028952, WO2014 / 018572, and Nat Biotechnol. 2014 Feb;32(2):191-8; techniques for producing bispecific antibodies by combining separately prepared monoclonal antibodies (Fab Arm Exchange), such as those described in WO2008 / 119353 and WO2011 / 131746; techniques for controlling the association between antibody heavy chain CH3s, such as those described in WO2012 / 058768 and WO2013 / 063702; techniques for producing multispecific antibodies composed of two types of light chains and one type of heavy chain, such as those described in WO2012 / 023053; Alternatively, a technique for producing multispecific antibodies using two bacterial cell lines each expressing one half of an antibody chain, including one H chain and one L chain, as described by [Schmidt et al. (2013)], may be used.

[0271] Alternatively, even if the desired multispecific antigen-binding molecule cannot be efficiently formed, it is possible to obtain the multispecific antigen-binding molecule of the present disclosure by separating and purifying the desired multispecific antigen-binding molecule from the produced molecules. For example, a method has been reported in which amino acid substitutions are introduced into the variable regions of two types of H chains to impart a difference in isoelectric point, thereby enabling the purification of two types of homoantibodies and the desired heteroantibody by ion exchange chromatography (WO2007114325). Previously reported methods for purifying heteroantibodies include using Protein A to purify a heterodimerized antibody comprising a mouse IgG2a H chain that binds to Protein A and a rat IgG2b H chain that does not bind to Protein A (WO98050431 and WO95033844). Furthermore, by using an H chain in which the amino acid residues at EU numbering positions 435 and 436, which are the binding sites between IgG and Protein A, are substituted with amino acids such as Tyr or His that confer different Protein A affinities, or by using H chains with different Protein A affinities, the interaction between each H chain and Protein A can be changed, and then using a Protein A column, it is possible to efficiently purify only the heterodimerized antibody.

[0272] Furthermore, Fc regions with reduced C-terminal heterogeneity can be used as appropriate as Fc regions of the present disclosure. More specifically, the present disclosure provides Fc regions produced by deleting glycine at position 446 and lysine at position 447 (EU numbering) in the amino acid sequences of two polypeptides that constitute the Fc region derived from IgG1, IgG2, IgG3, or IgG4.

[0273] Multispecific antigen-binding molecules prepared as described herein may be purified by techniques known in the art, such as high-performance liquid chromatography, ion exchange chromatography, gel electrophoresis, affinity chromatography, and size-exclusion chromatography. The actual conditions used to purify a particular protein will depend in part on factors such as net charge, hydrophobicity, and hydrophilicity, and will be apparent to those skilled in the art. Affinity chromatography purification can use an antibody, ligand, receptor, or antigen to which the multispecific antigen-binding molecule binds. For example, affinity chromatography purification of the multispecific antigen-binding molecules of the present invention can use a matrix with Protein A or Protein G. Sequential Protein A or G affinity chromatography and size-exclusion chromatography can be used to isolate the multispecific antigen-binding molecules. The purity of the multispecific antigen-binding molecules can be determined by any of a variety of well-known analytical methods, including gel electrophoresis and high-pressure liquid chromatography.

[0274] Pharmaceutical Composition In one aspect, the present disclosure provides a pharmaceutical composition comprising a multispecific antigen-binding molecule of the present disclosure. In certain embodiments, the pharmaceutical composition of the present disclosure induces transactivation of the Notch signaling pathway in target cells of interest. In other words, the pharmaceutical composition of the present disclosure is a therapeutic agent for use in treating or preventing Notch receptor-mediated diseases or disorders through (trans)activation of the Notch signaling pathway. In certain embodiments, the pharmaceutical composition of the present disclosure enhances muscle regeneration and / or maintains muscle function. In certain embodiments, the pharmaceutical composition of the present disclosure enhances the proliferation and differentiation of muscle satellite cells. In certain embodiments, the pharmaceutical composition of the present disclosure is a pharmaceutical composition used for the treatment and / or prevention of muscular dystrophy, tissue fibrosis, autoimmune diseases (e.g., SLE (systemic lupus erythematosus), RA (rheumatoid arthritis), MS (multiple sclerosis), etc.). In certain embodiments, the pharmaceutical composition of the present disclosure is a cytostatic agent. In certain embodiments, the pharmaceutical composition of the present disclosure is a pharmaceutical composition used for the treatment and / or prevention of any cancer and malignant tumor that can benefit from a Notch agonist (i.e., cancer with downregulation of Notch signaling). In certain embodiments, the pharmaceutical composition of the present disclosure is a pharmaceutical composition used for the treatment and / or prevention of gastrointestinal cancer and malignant tumor that can benefit from a Notch agonist (i.e., cancer with downregulation of Notch signaling). In certain embodiments, the pharmaceutical composition of the present disclosure is a pharmaceutical composition used for the treatment and / or prevention of DMD (Duchenne muscular dystrophy). In certain embodiments, the pharmaceutical composition of the present disclosure is a pharmaceutical composition used in preventing the progression of DMD (Duchenne muscular dystrophy). In certain embodiments, the pharmaceutical composition of the present disclosure is used to promote the self-renewal and / or proliferation of lgr5+ CBC.In certain embodiments, the pharmaceutical composition of the present disclosure is used to treat and / or prevent gastrointestinal (GI) tract diseases, such as Crohn's disease and ulcerative colitis, IBS, or any disease that causes intestinal damage.In certain embodiments, the pharmaceutical composition of the present disclosure is used to promote intestinal repair.

[0275] Pharmaceutical compositions containing the antigen-binding molecules or antibodies described herein are prepared in the form of lyophilized formulations or aqueous solutions by mixing the antigen-binding molecules or antibodies having the desired purity with one or more pharmaceutically acceptable carriers (Remington's Pharmaceutical Sciences 16th edition, Osol, A. Ed. (1980)). Pharmaceutically acceptable carriers are generally non-toxic to recipients at the dosages and concentrations used, and include, but are not limited to, the following: buffers such as phosphate, citrate, and other organic acids; antioxidants, including ascorbic acid and methionine; preservatives (octadecyldimethylbenzyl ammonium chloride; hexamethonium chloride; benzalkonium chloride; benzethonium chloride; phenol, butyl, or benzyl alcohol; alkyl parabens such as methyl or propyl paraben; catechol; resorcinol; cyclohexanol; 3-pentanol; and m-cresol, etc.; small (less than about 10 residues) polypeptides; proteins such as serum albumin, gelatin, or immunoglobulins; hydrophilic polymers such as polyvinylpyrrolidone; amino acids such as glycine, glutamine, asparagine, histidine, arginine, or lysine; monosaccharides, disaccharides, and other carbohydrates, including glucose, mannose, or dextrin; chelating agents such as EDTA; sugars such as sucrose, mannitol, trehalose, and sorbitol; salt-forming counterions such as sodium; metal complexes (e.g., Zn-protein complexes); and / or non-ionic surfactants such as polyethylene glycol (PEG). Exemplary pharmaceutically acceptable carriers herein further include interstitial drug dispersing agents, such as soluble neutral activated hyaluronidase glycoproteins (sHASEGPs) (e.g., human soluble PH-20 hyaluronidase glycoproteins, such as rHuPH20 (HYLENEX®, Baxter International, Inc.)). Certain exemplary sHASEGPs and methods of use thereof (including rHuPH20) are described in U.S. Patent Application Publication Nos. 2005 / 0260186 and 2006 / 0104968.In one aspect, the sHASEGP is combined with one or more additional glycosaminoglycanases, such as chondroitinases.

[0276] Exemplary lyophilized antibody formulations are described in U.S. Patent No. 6,267,958. Aqueous antibody formulations include those described in U.S. Patent No. 6,171,586 and WO2006 / 044908, the latter formulations including a histidine-acetate buffer.

[0277] The formulations herein may contain more than one active ingredient as necessary for the particular indication being treated, preferably with complementary activities that do not adversely affect each other. Such active ingredients are present in suitable combinations and in amounts that are effective for the purpose intended.

[0278] If desired, the antigen-binding molecules or antibodies of the present disclosure may be encapsulated in microcapsules (microcapsules made of hydroxymethylcellulose, gelatin, poly[methyl methacrylate], etc.) or may be components of colloid drug delivery systems (liposomes, albumin microspheres, microemulsions, nanoparticles, and nanocapsules) (see, for example, "Remington's Pharmaceutical Sciences 16 th edition, Oslo Ed. (1980)). Furthermore, methods for preparing drugs as sustained-release drugs are also known, and these can be applied to the antigen-binding molecules of the present disclosure (J. Biomed. Mater. Res. (1981) 15, 267-277; Chemtech. (1982) 12, 98-105; U.S. Pat. No. 3,773,719; European Patent Application (EP) Nos. EP58481 and EP133988; Biopolymers (1983) 22, 547-556).

[0279] If necessary, a vector containing a nucleic acid molecule encoding a multispecific antigen-binding molecule of the present disclosure may be introduced into a subject to directly express the antigen-binding molecule or antibody of the present disclosure in the subject. An example of a vector that can be used is, but is not limited to, an adenovirus. A nucleic acid molecule encoding an antigen-binding molecule or antibody of the present disclosure may be directly administered to a subject, or a nucleic acid molecule encoding an antigen-binding molecule or antibody of the present disclosure may be transferred to a subject via electroporation. Alternatively, cells containing a nucleic acid molecule encoding an antigen-binding molecule or antibody of the present disclosure to be expressed and secreted may be administered to a subject, thereby allowing the antigen-binding molecule or antibody of the present disclosure to be continuously expressed and secreted in the subject. The pharmaceutical composition of the present disclosure can be administered to a patient either orally or parenterally. Parenteral administration is preferred. Specifically, such administration methods include injection, intranasal administration, pulmonary administration, and transdermal administration. Injection includes, for example, intravenous injection, intramuscular injection, intraperitoneal injection, and subcutaneous injection. For example, the pharmaceutical composition of the present disclosure, a therapeutic agent for inducing cell damage, a cytostatic agent, or an anticancer agent can be administered locally or systemically by injection. Furthermore, an appropriate administration method can be selected depending on the patient's age and symptoms. The administration dose can be selected, for example, from the range of 0.0001 mg to 1,000 mg per kg of body weight per administration. Alternatively, the dose can be selected, for example, from the range of 0.001 mg to 100,000 mg per patient. However, the dose of the pharmaceutical composition of the present disclosure is not limited to these doses.

[0280] In the present disclosure, "contact" can be performed, for example, by adding an antigen-binding molecule of the present disclosure to the culture medium of cells expressing CLDN6 cultured in vitro. In this case, the antigen-binding molecule to be added can be used in an appropriate form, such as a solution or a solid prepared by lyophilization or the like. When the antigen-binding molecule of the present disclosure is added as an aqueous solution, the solution may be a pure aqueous solution containing the antigen-binding molecule alone, or a solution containing, for example, the above-mentioned surfactants, excipients, colorants, flavoring agents, preservatives, stabilizers, buffers, suspending agents, isotonicity agents, binders, disintegrants, lubricants, flow enhancers, and flavoring agents. The addition concentration is not particularly limited; however, the final concentration in the culture medium is preferably in the range of 1 pg / ml to 1 g / ml, more preferably 1 ng / ml to 1 mg / ml, and even more preferably 1 μg / ml to 1 mg / ml.

[0281] In one aspect, the present disclosure provides a method for activating the Notch signaling pathway in a first target cell, comprising contacting the first target cell with an effective amount of a multispecific antigen binding molecule of any aspect / embodiment of the present disclosure.In one embodiment, the first target cell is in vivo in a mammalian subject.In a further embodiment, the subject is a human.In some embodiments, the subject is a non-human mammal.In some embodiments, the method is for activating the Notch signaling pathway in vivo.In some embodiments, the method is for activating the Notch signaling pathway in vitro.

[0282] In one aspect, the present disclosure provides a multispecific antigen-binding molecule of any aspect / embodiment of the present disclosure for use in activating the Notch signaling pathway in a first target cell. In one aspect, the present disclosure provides a multispecific antigen-binding molecule of any aspect / embodiment of the present disclosure for use in a method for activating the Notch signaling pathway in a first target cell, comprising contacting the first target cell with an effective amount of the multispecific antigen-binding molecule. In one aspect, the present disclosure provides use of a multispecific antigen-binding molecule of any aspect / embodiment of the present disclosure in the manufacture of an agent or composition (including a therapeutic agent or pharmaceutical composition) for activating the Notch signaling pathway in a first target cell. In one aspect, the present disclosure provides a multispecific antigen-binding molecule of any aspect / embodiment of the disclosure in the manufacture of an agent or composition (including a therapeutic agent or pharmaceutical composition) for use in a method for activating the Notch signaling pathway in a first target cell, comprising contacting the first target cell with an effective amount of the multispecific antigen-binding molecule. In one aspect, the present disclosure provides a use of a multispecific antigen-binding molecule of any aspect / embodiment of the present disclosure for activating the Notch signaling pathway in a first target cell, comprising contacting the first target cell with an effective amount of the multispecific antigen-binding molecule.

[0283] In another embodiment of the present disclosure, "contacting" can also be performed by administering to a non-human animal transplanted with Notch receptor-expressing cells in vivo, administering to an animal having cells endogenously expressing Notch receptors, or administering under in vitro conditions using Notch receptor-expressing cells. The administration method can be oral or parenteral. Parenteral administration is particularly preferred. Specifically, parenteral administration methods include injection, intranasal administration, pulmonary administration, and transdermal administration. Injections include, for example, intravenous injection, intramuscular injection, intraperitoneal injection, and subcutaneous injection. For example, the pharmaceutical composition, therapeutic agent for inducing cell damage, cytostatic agent, or anticancer agent of the present disclosure can be administered locally or systemically by injection. Furthermore, the appropriate administration method can be selected depending on the age and symptoms of the animal subject. When an antigen-binding molecule is administered as an aqueous solution, the solution may be a pure aqueous solution containing the antigen-binding molecule alone, or a solution containing, for example, the above-mentioned surfactants, excipients, colorants, flavoring agents, preservatives, stabilizers, buffers, suspending agents, tonicity agents, binders, disintegrants, lubricants, flow enhancers, and flavoring agents. The administration dose can be selected, for example, from the range of 0.0001 to 1,000 mg per kg of body weight per administration. Alternatively, the dose can be selected, for example, from the range of 0.001 to 100,000 mg per patient. However, the dose of the antigen-binding molecule of the present disclosure is not limited to these examples.

[0284] The present disclosure also provides kits for use in the methods of the present disclosure, which contain the antigen-binding molecules of the present disclosure or antigen-binding molecules produced by the methods of the present disclosure. The kits may be packaged together with additional pharmaceutically acceptable carriers or vehicles, or instructions for use of the kit.

[0285] In another aspect of the present invention, an article of manufacture containing materials useful for activating the Notch signaling pathway or treating, preventing, and / or diagnosing the aforementioned disorders is provided. The article of manufacture includes a container and a label on the container or a package insert associated with the container. Preferred containers include, for example, bottles, vials, syringes, IV solution bags, etc. The containers may be formed from a variety of materials, such as glass or plastic. The container may hold the composition alone or in combination with another composition effective for treating, preventing, and / or diagnosing a condition, and may have a sterile access port (e.g., the container may be an intravenous solution bag or vial having a stopper pierceable by a hypodermic needle). At least one active ingredient in the composition is an antibody of the present invention. The label or package insert indicates that the composition is used for treating the condition of choice. The article of manufacture may further comprise (a) a first container with a composition comprising an antibody of the invention contained therein; and (b) a second container with a composition comprising an additional cytotoxic or otherwise therapeutic agent contained therein. The article of manufacture of this aspect of the invention may further comprise a package insert indicating that the composition can be used to treat a particular condition. Alternatively, or in addition, the article of manufacture may further comprise a second (or third) container containing a pharmaceutically acceptable buffer, such as bacteriostatic water for injection (BWFI), phosphate-buffered saline, Ringer's solution, and dextrose solution. It may further include other equipment desirable from a commercial or user standpoint, such as other buffers, diluents, filters, needles, and syringes.

[0286] Attached document The term "package insert" is used to refer to instructions typically included in commercial packaging for a therapeutic product, which contain information about the indications, usage, dosage, method of administration, concomitant therapy, contraindications, and / or warnings regarding the use of such therapeutic product.

[0287] Pharmaceutical preparations The term "pharmaceutical formulation" or "pharmaceutical composition" refers to a preparation in a form such that the biological activity of the active ingredients contained therein can be effective, and which does not contain additional components that are unacceptably toxic to the subject to which the formulation is administered.

[0288] Pharmaceutically acceptable carrier A "pharmaceutically acceptable carrier" refers to an ingredient in a pharmaceutical formulation, other than an active ingredient, that is non-toxic to a subject. Pharmaceutically acceptable carriers include, but are not limited to, buffers, excipients, stabilizers, or preservatives.

[0289] treatment As used herein, "treatment" (and its grammatical derivatives, such as "treat," "treating," etc.) refers to a clinical intervention intended to alter the natural course of the individual being treated and can be performed for prophylaxis or during the course of a clinical condition. Desirable effects of treatment include, but are not limited to, prevention of disease onset or recurrence, alleviation of symptoms, attenuation of any direct or indirect pathological effects of the disease, prevention of metastasis, reduction in the rate of disease progression, amelioration or palliation of the disease state, and remission or improved prognosis. In some embodiments, the antigen-binding molecules or antibodies of the present disclosure are used to delay the onset of disease or slow the progression of disease.

[0290] Other Agents and Treatments The multispecific antigen-binding molecules described herein may be administered in combination with one or more other therapeutic agents. For example, the multispecific antigen-binding molecules described herein may be co-administered with at least one additional therapeutic agent. The term "therapeutic agent" encompasses any agent administered to treat a condition or disease in an individual in need of such treatment. Such additional therapeutic agents may include any active ingredient suitable for the particular indication being treated, preferably those with complementary activities that do not adversely affect each other. In certain embodiments, the additional therapeutic agent is an immunomodulator, a cytostatic agent, a cell adhesion inhibitor, a cytotoxic agent, an activator of cell apoptosis, or an agent that increases the sensitivity of cells to apoptosis-inducing factors. In certain embodiments, the additional therapeutic agent is an anti-cancer agent, such as a microtubule-disrupting agent, an antimetabolite, a topoisomerase inhibitor, a DNA intercalator, an alkylating agent, hormone therapy, a kinase inhibitor, a receptor antagonist, an activator of tumor cell apoptosis, or an anti-angiogenic agent.

[0291] Such other agents are present in suitable combination in amounts that are effective for the intended purpose. The effective amount of such other agents depends on the amount of multispecific antigen-binding molecule used, the type of disorder or treatment, and other factors discussed above. The multispecific antigen-binding molecule is generally used in the same dosages and by the same routes of administration as described herein, or at about 1 to 99% of the dosages described herein, or at any dosage and by any route determined empirically / clinically appropriate.

[0292] Such combination therapy as described above encompasses combined administration (two or more therapeutic agents contained in the same or separate compositions) and separate administration, in which the administration of the multispecific antigen-binding molecules described herein can occur prior to, simultaneously with, and / or subsequent to the administration of the additional therapeutic agent and / or adjuvant. The multispecific antigen-binding molecules described herein can also be used in combination with radiation therapy.

[0293] All documents cited herein are hereby incorporated by reference.

[0294] The following are examples of the methods and compositions of the present disclosure. In light of the above general description, it will be understood that various other embodiments may be practiced. [Example]

[0295] The following are examples of the methods and compositions of the present invention. In light of the above general description, it will be understood that various other embodiments may be practiced.

[0296] Example 1 The Notch agonist domain can activate Notch signaling upon simultaneous binding to the Notch reporter via the site-specific binding domain and to the anchor antigen (Figures 1A-C). The Notch agonist domain includes any polypeptide that can bind in an anchorage-dependent manner (i.e., simultaneous binding of the site-specific binding domain to its anchor antigen) and activate Notch signaling. The Notch agonist domain includes the extracellular domain of a Notch ligand, such as Jagged1, Jagged2, DLL1, DLL3, and DLL4, or a Notch agonist antibody arm. Unlike conventional agonist antibodies or ligands that can activate receptors upon binding, the antigen-binding molecules of the present invention can only cause Notch activation when bound to an anchor antigen that is expressed on a cell or cell surface or is fixed to a scaffold. Tissue or site specificity is conferred by selective binding of the site-specific binding domain to a unique anchor antigen that is expressed exclusively or restrictedly in the tissue or cell population of interest. The concept of site-specific Notch transactivation can be achieved by employing various multispecific antibody formats and selecting anchor antigens, as illustrated in Figure 1. The majority of the Notch agonist antibodies described in the Examples employ an antibody format, as illustrated in Figure 1A, with antibody arms that have binding specificity for anchor antigens (e.g., GPC3, CACNA1S, and FAP). Apart from the site specificity conferred by the Fab arm, engineered Fc with enhanced binding affinity to the anchor antigen can also provide the scaffolding required for transactivation of Notch receptors (Figure 1B). For example, FcγRIIB selective binding technology can be applied to engineer Fc to enhance selective binding to FcγRIIB, a membrane protein expressed by lymphoid and myeloid cells (Figure 2; see, e.g., WO2012 / 115241, WO2014 / 030728, WO2014 / 163101, WO2013 / 002362, WO2014 / 030750, and WO2014 / 104165). FcγRIIB-expressing immune cells, such as dendritic cells (DCs), macrophages, activated neutrophils, mast cells, and basophils, are often recruited to inflammatory sites in response to chemokines. These immune cells continue to secrete pro-inflammatory cytokines, maintaining the inflammatory microenvironment through a positive feedback loop. It has been reported that Notch activation in activated CD4 T lymphocytes leads to the development of Treg cells, which regulate activated CD4 T lymphocytes and release anti-inflammatory cytokines (Brandstadter and Maillard (2019); Ferrandino et al. (2018); Tindemans et al. (2017)). By applying FcγRIIB-selective binding technology to Notch agonist antibodies, Notch activation in activated CD4 T lymphocytes can localize them to inflammatory sites enriched for FcγRIIB-expressing cells in close proximity to activated CD4 T lymphocytes and regulate the pro-inflammatory microenvironment (Figure 2). Furthermore, additional site specificity can be achieved by incorporating a second antibody Fab arm that binds to a second anchor antigen (Figure 1C). This can further enhance localized Notch transactivation to specific cell populations within the microenvironment if the second anchor antigen is exclusively expressed by the cell population of interest.

[0297] Table 1A. List of anchor antigen candidates that define tissue or site specificity TIFF2026010057000005.tif73170

[0298] (Table 1B) List of extracellular proteins with exclusive or restricted expression in specific tissues TIFF2026010057000006.tif206170TIFF2026010057000007.tif226170TIFF2026010057000008.tif120170

[0299] There are several criteria to consider in selecting an anchor antigen: see Table 1A (list of candidate anchor antigens), Table 1B (list of extracellular proteins whose expression is exclusive or restricted to specific tissues), or engineered Fc with preferential binding to the anchor antigen (e.g., FcγRIIB selective binding technology and FcγRIIB). 1) To limit systemic exposure and minimize the risk of toxicity due to Notch activation, spatial expression of the anchor antigen should be restricted to or exclusively expressed by the cell type or tissue of interest. 2) The temporal expression of anchor antigens should be carefully considered. For example, some anchor antigens are expressed only in stem cells and are lost after commitment to differentiation. Notch activation at different developmental stages also leads to different phenotypes in transgenic mice. Early Notch activation causes embryonic lethality and impaired muscle development. On the other hand, postnatal Notch activation in transgenic mice helps improve aging muscle and enhances muscle regeneration. 3) The anchor antigen should have stable expression on the cell or be tethered to the cell surface by slow internalization. 4) The anchor antigen should be expressed uniformly in the majority of cells or tissues of interest, with low heterogeneity to minimize uneven activation of Notch signaling. 5) The anchor antigen should be expressed at sufficient levels to ensure adequate retention of the bispecific Notch agonist antibody even in pathological conditions.

[0300] Example 2. Preparation of multispecific Notch agonist antibodies Figure 3A shows an example of a bispecific molecule: anti-AA / / Jag-Fc, consisting of an Fc lacking FcγR binding, the human Jag1 extracellular domain (ECD), and a Fab that binds to an anchor antigen such as GPC3, with one arm targeting the anchor antigen and the other arm targeting the Notch receptor. Heterodimerization and correct assembly are achieved by knob-into-hole (kih) mutations in the Fc. The molecular design and naming conventions are shown in Figure 3A, and the sequence IDs (SEQ ID NOs) are listed in Table 2A. Figure 3B shows another example, Jag1 / / Jag1-Fc, a molecule with bivalent binding to the Notch receptor, consisting of an Fc lacking FcγR binding and two human Jag1 extracellular domains (ECDs). The molecular design and naming conventions are shown in Figure 3B, and the sequence IDs (SEQ ID NOs) are shown in Table 2B. As shown in Figure 3A, "chain 1" comprises a variable heavy domain (VH) and constant heavy domain 1 (CH1) (site-specific binding domain), and an Fc region; "chain 2" comprises a variable light domain (VL) (site-specific binding domain) and a constant light domain (CL); and "chain 3" comprises a Notch agonist domain (in this example, the Jag1 ECD) and an Fc region.

[0301] Table 2: Table showing sequence IDs of molecules depicted in Figure 4 TIFF2026010057000009.tif46168

[0302] Table 3: Amino acid sequences of the molecules depicted in Figure 4 and Table 2 TIFF2026010057000010.tif217151

[0303] Example 3. Purification of multispecific Notch agonist antibodies Recombinant multispecific Notch agonist antibodies were transiently expressed using HEK293 cells. The conditioned medium expressing the antibodies was loaded onto a column packed with Protein A resin and eluted with an acidic solution. The antibody-containing fractions were collected and subsequently applied to a gel filtration column equilibrated with histidine buffer. The antibody-containing fractions were then pooled and stored at -80°C.

[0304] Example 4 To verify the hypothesis that Notch agonist antibodies require an anchorage to activate Notch receptors, Notch agonist antibodies were either directly immobilized on culture plates by adsorption or captured with anti-human κ light chain antibodies (Figure 4A). In the absence of an anchorage, non-immobilized Notch agonist antibodies did not activate Notch signaling in C2C12 reporter cells, even after 48 hours of treatment. Conversely, significant Notch activation was observed in C2C12 reporter cells when Notch agonist antibodies were immobilized on culture plates or captured with anti-human κ light chain antibodies. When Jag1 / / Jag1-Fc lacks the human κ light chain, immobilized anti-human κ light chain antibodies did not capture Jag1 / / Jag1-Fc, resulting in failure to activate Notch signaling in C2C12 reporter cells. This observation suggests that Notch agonist antibody-induced activation of Notch signaling is anchorage-dependent. To further elucidate the mechanism by which Notch agonist antibody-induced Notch activation depends on the anchorage rather than antibody clustering by immobilized anti-IgG antibody, anti-human IgG Fc-specific antibodies were immobilized on culture plates by adsorption or added to the culture medium together with Notch agonist antibodies (Figure 4B). Consistently, all Notch agonist antibodies, except for the isotype control, successfully induced Notch activation when adsorbed to culture plates or captured by immobilized anti-human IgG Fc antibody. Interestingly, when anti-human Fc antibody was added together with Notch agonist antibodies, Notch signaling was not activated. This observation suggests that clustering or oligomerization of Notch antibodies by anti-human IgG Fc antibody may contribute to the activation of Notch signaling induced by Notch agonist antibodies when the Notch agonist antibodies are tethered by immobilized anti-human IgG Fc antibody. Similarly, it is unlikely that Jag1 / / Jag1-Fc can simultaneously crosslink Notch receptors expressed on two different cells and induce transactivation (Fig. 4B).The results demonstrated that the scaffold is important for Notch agonist antibodies to induce transactivation of Notch signaling.

[0305] Methods for antibody immobilization assays For direct immobilization of Notch agonist antibodies via adsorption, 96-well plates were first coated with antibodies at a concentration of 10 mcg / mL for 16 hours at 4°C. For antibody capture conditions, 96-well plates were first coated with either an anti-human kappa light chain antibody (Figure 4A; 10 mcg / mL) or an anti-human IgG Fc-specific antibody (Figure 4B; 10 mcg / mL) under the same conditions as above. After antibody coating, the culture plates were washed with cell culture medium and then blocked with 5% FBS solution for 2 hours at room temperature. For antibody capture conditions, Notch agonist antibodies (10 mcg / mL) were added and incubated at 37°C for 1 hour. C2C12 Notch reporter cells were then plated at 3 × 10 per well. 4After seeding with cells and incubating at 37°C for 48 hours, dual-glo luciferase assays were performed according to the manufacturer's protocol (Promega). Luciferase signals were expressed as firefly / renilla signals, and the ratios were further normalized to those of the isotype control.

[0306] Example 5 Due to the availability of a well-characterized anti-glypican 3 (GPC3) antibody and a group of transfectant cell lines with various GPC3 expression levels, GPC3 was selected as a model anchor antigen to demonstrate the anchorage dependency of Notch signaling transactivation. First, anchor antigen-expressing SK-PCa60 cells were cocultured at various cell densities with C2C12 Notch reporter cells treated with either anti-GPC3 / / Jag1-Fc or an isotype control antibody (Figure 5A). The results show that the level of Notch activation, as indicated by luciferase activity, depended on the number of GPC3-expressing cells. Notably, when insufficient anchor antigen-expressing cells were present (i.e., 5E3 / well), anti-GPC3 / / Jag1-Fc did not induce transactivation of Notch signaling in C2C12 reporter cells. To further verify the importance of anchor antigen expression in the anchorage-dependent transactivation of Notch signaling, stably transfected SK-HEP1 cells with various levels of GPC3 expression were cocultured with C2C12 reporter cells treated with anti-GPC3 / / Jag1-Fc. Consistent with the observations in Figure 5A, only SK-PCa60 cells (with high GPC3 expression) successfully induced Notch activation in C2C12 reporter cells after anti-GPC3 / / Jag1-Fc treatment (Figure 5B).

[0307] Methods for co-culture Notch reporter assay Anchor antigen-expressing cells (i.e., GPC3-overexpressing cells) were added at 1 × 10 per well. 5Cells were seeded at a density of 3 × 10 cells per well and incubated for 16 hours at 37°C. Anti-GPC3 / / Jag1-Fc bispecific antibody or IgG1 isotype control antibody was added at 250 mcg / mL per well and incubated for 1 hour, followed by 3 × 10 cells per well. 4 C2C12 Notch reporter cells were seeded into wells. After 24 hours of incubation at 37°C, dual-glo luciferase assays were performed according to the manufacturer's protocol (Promega). Luciferase signals were expressed as firefly / renilla signals, and the ratio was further normalized to that of the isotype control.

[0308] Example 6 To verify the specificity of anti-GPC3 / / Jag1-Fc-induced Notch signaling activation, we first immobilized the antibody on culture plates by adsorption before seeding parental C2C12 cells (Figure 6). Cells were then treated with either DMSO as a control or DAPT (10 micromolar), a gamma-secretase inhibitor that inhibits the Notch signaling pathway. Consistently, C2C12 cells with immobilized anti-GPC3 / / Jag1-Fc showed a strong upregulation of the Notch target genes HEY1 and NRARP 24 hours after treatment. Thus, DAPT-treated C2C12 cells completely abrogated anti-GPC3 / / Jag1-Fc-induced Notch activation, demonstrating that the activation was specific to Notch signaling.

[0309] Example 7 In Example 4, a bispecific antibody bearing a Jag1 ECD and an anti-GPC3 binding arm demonstrated anchorage-dependent transactivation of Notch signaling. To demonstrate that anchorage-dependent transactivation of Notch signaling is applicable to other anchor antigens, we prepared bispecific antibodies that bind to the Jag1 ECD as well as other anchor antigens, such as fibroblast-associated protein (FAP) and Fcγ receptor IIB (FcγRIIB). We generated a bispecific antibody bearing a Jag1 ECD and an anti-FAP antibody arm ("anti-FAP / / Jag1-Fc") and demonstrated binding to NIH-3T3 cells overexpressing FAP (Figure 7A). Consistent with our observation in Example 4 that Notch signaling is anchorage-dependent, when NIH3T3-FAP cells were cocultured with Notch reporter cells, anti-FAP / / Jag1-Fc was able to induce Notch activation in C2C12 Notch reporter cells, but neither KLH / / Jag1-Fc nor KLH / / KLH-Fc, which cannot bind to NIH3T3-FAP cells, could do so (Figure 7B). In addition, we also prepared a bispecific antibody ("Jag1 / / Jag1-Fc*") consisting of the Jag1 ECD on both arms and a modified Fc that preferentially binds to Fcγ receptor IIB, as shown in Figure 3B. Using a stable cell line overexpressing Fcγ receptor IIB, Jag1 / / Jag1-Fc* treatment was able to induce Notch activation in Notch receptor cells (Figure 7C). The data indicated that the scaffold provided by the Fc, instead of the antibody Fab arm, was able to induce Notch activation. Collectively, our data suggested that the concept of anchorage-dependent Notch activation induced by bispecific antibodies can be applied across all anchor antigens and formats.

[0310] Example 8 The mammalian Notch receptor family consists of four heterodimeric paralogs (Notch 1-4), which interact with five Notch ligands in the Jagged (Jag1 and Jag2) and Delta-like (DLL1, DLL3, and DLL4) families. The majority of Notch ligands activate Notch signaling, except for DLL3, which is thought to function as a natural antagonist of the signaling pathway. Kopan and Ilagan, 2009 ). Bispecific antibodies consisting of Notch ligand ECDs were either immobilized to the culture plate before adding the Notch reporter cells or added directly to the culture medium (i.e., non-immobilized). Consistently, for all Notch ligand bispecific antibodies except DLL3, anchorage-dependent activation of the Notch reporter was observed only when immobilized (Figure 8A). To demonstrate the importance of the anchorage in antibody-induced Notch activation, we used SK-HEP1 cells expressing two different levels of the anchor antigen GPC3 (Figure 8B). A bispecific antibody consisting of an anti-GPC3 binding arm was able to activate Notch reporter cells, whereas an anti-KLH-containing bispecific antibody that does not bind to GPC3-expressing cells was unable to do so. In addition, Notch activation induced by the anti-GPC3 bispecific antibody was only observed in cells overexpressing GPC3 (SK-PCA31 and SK-PCA60). Notably, the level of Notch activation remained comparable between SK-PCA31 (low GPC3) and SK-PCA60 (high GPC3), suggesting that the threshold required for anchorage-dependent Notch activation is low when surface anchor antigen expression per cell is replaced (2,672 surface anchor antigens per cell in SK-PCA31 vs. 120,762 surface anchor antigens per cell in SK-PCA60) (Figure 6C). This suggests that trans-binding-mediated Notch activation can be achieved as long as sufficient numbers of anchor antigens are expressed on cells (Fig. 8C).

[0311] Methods for antibody immobilization assays For direct immobilization of Notch ligand bispecific antibodies via adsorption, 96-well plates were first coated with antibodies at a concentration of 10 μg / mL for 16 h at 4°C. After antibody coating, the culture plates were washed with cell culture medium and then blocked with 5% FBS solution for 2 h at room temperature. C2C12 Notch reporter cells were then cultured at 3 × 10 per well. 4 After seeding with cells and incubating at 37°C for 48 hours, dual-glo luciferase assays were performed according to the manufacturer's protocol (Promega). For non-fixed conditions, antibodies were added immediately before seeding C2C12 Notch reporter cells. Luciferase signals were expressed as relative luciferase units (RLU) and further normalized to the RLU of an anti-KLH isotype control.

[0312] Methods for co-culture Notch reporter assay Anchor antigen-expressing cells (i.e., GPC3 / FAP / CD32-overexpressing cells) were added at 1 × 10 per well. 5 Cells were seeded at a density of 3 × 10 and incubated for 16 hours at 37°C. Anti-GPC3 / / Notch ligand-Fc bispecific antibody or anti-KLH IgG1 isotype control antibody was added at 250 μg / mL per well and incubated for 1 hour, followed by addition of 3 × 10 cells. 4 C2C12 Notch reporter cells were seeded into wells. After 24 h of incubation at 37 °C, dual-glo luciferase assays were performed according to the manufacturer's protocol (Promega). Luciferase signals were expressed as relative luciferase units and further normalized to the RLU of an anti-KLH isotype control.

[0313] Methods for cell surface GPC3 quantification Cell surface expression of GPC3 was quantified using the Quantum Simply Cellular anti-human kit (Bangs Laboratories) according to the manufacturer's recommended protocol. Briefly, 10,000 cells were prepared and stained with anti-GPC3 antibody for 30 minutes on ice. The 96-well plate was washed twice with HEPES-BSA buffer, and goat anti-human kappa PE secondary antibody (Southern Biotech) was added and incubated for 30 minutes on ice. After washing the plate twice, samples were analyzed for PE signal using a flow cytometer (BD, Fortessa). A standard curve was generated using microspheres conjugated with various levels of anti-human IgG. Cell surface GPC3 was calculated using the QuickCal v2.3 tool provided by the manufacturer.

[0314] Table 4: Table showing sequence IDs of molecules depicted in Figures 7 and 8 TIFF2026010057000011.tif165168

[0315] Table 5: A table showing the amino acid sequences of the molecules depicted in Figures 7 and 8 and Table 4. TIFF2026010057000012.tif221166TIFF2026010057000013.tif231170TIFF2026010057000014.tif228170TIFF2026010057000015.tif134170

Claims

[Claim 1] The invention as described in the original specification.