Heavy chain antibody that binds to CD19

Heavy chain-only antibodies, UniAbs™, with specific CDR sequences for CD19, address the limitations of existing CD19-targeting therapies by providing high affinity and specificity, effectively treating B cell disorders.

JP7737488B2Active Publication Date: 2025-09-10TENEOTWO INC
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Patent Information

Application Number
JP2024020312
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-07-20
Filing Date
2024-02-14
Publication Date
2025-09-10
Estimated Expiration
2039-07-19

AI Technical Summary

Technical Problem

Existing monoclonal antibodies and antibody-drug conjugates targeting CD19 have limitations in efficacy and specificity for treating B cell malignancies, and there is a need for more effective therapeutic options.

Method used

Development of heavy chain-only antibodies, known as UniAbs™, with specific CDR sequences that bind to CD19, which can be used in pharmaceutical compositions and administered to treat B cell disorders.

Benefits of technology

The UniAbs™ demonstrate high affinity and specificity for CD19, effectively targeting and treating B cell disorders such as diffuse large B-cell lymphoma, acute lymphoblastic leukemia, non-Hodgkin's lymphoma, systemic lupus erythematosus, and rheumatoid arthritis, with potential applications in CAR-T formats.

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Abstract

To provide methods for treating B cell disorders characterized by the expression of CD19.SOLUTION: The present invention provides anti-CD19 heavy chain antibodies (e.g., UniAbs (TM)), and methods of making such antibodies, compositions that include pharmaceutical compositions comprising such antibodies, and their use to treat B cell disorders characterized by the expression of CD19.SELECTED DRAWING: Figure 5B
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of priority to U.S. Provisional Patent Application No. 62 / 701,281, filed July 20, 2018, the disclosure of which is incorporated herein by reference in its entirety.

[0002] The present invention relates to human heavy chain antibodies (e.g., UniAbs™) that bind to CD19. The invention further relates to methods for making such antibodies, compositions, including pharmaceutical compositions, comprising such antibodies, and their use to treat B cell disorders characterized by expression of CD19. [Background technology]

[0003] CD19 CD19, also known as B lymphocyte surface antigen B4 (UniProt P15391), is a cell surface receptor expressed on all human B cells but not on plasma cells. CD19 is a transmembrane protein that recruits cytoplasmic signaling proteins to the membrane and, within the CD19 / CD21 complex, lowers the threshold for the B cell receptor signaling pathway. CD19 possesses a relatively large, 240-amino acid cytoplasmic tail. The extracellular Ig-like domain is separated by a potential disulfide-linked non-Ig-like domain and an N-linked carbohydrate attachment site. The cytoplasmic tail contains at least nine tyrosine residues near the C-terminus, some of which have been shown to be phosphorylated. Along with CD20 and CD22, the restricted expression of CD19 in the B cell lineage makes it an attractive target for the treatment of B cell malignancies. Many monoclonal antibodies and antibody-drug conjugates specific for CD19 have been reported (e.g., Naddafi et al. 2015, PMC4644525). Furthermore, anti-CD19 chimeric antigen receptor T cells have been approved for the treatment of leukemia (e.g., Sadelain et al. 2017, PMID:29245005). Heavy chain antibodies

[0004] In conventional IgG antibodies, the association of the heavy and light chains is due in part to hydrophobic interactions between the light chain constant region and the CH1 constant domain of the heavy chain. There are additional residues in the framework 2 (FR2) and framework 4 (FR4) regions of the heavy chain that also contribute to this hydrophobic interaction between the heavy and light chains.

[0005] However, camel sera (Camelidae, a suborder that includes camels, dromedaries, and llamas) are known to contain a major type of antibody composed of only a pair of heavy chains (heavy-chain-only antibodies, or UniAbs™). UniAbs™ from Camelidae (dromedary, Camelus dromedarius, Bactrianus, Lama glama, guanaco, alpaca, and vicuña) have a unique structure consisting of one variable domain (VHH), a hinge region, and two constant domains (CH2 and CH3), which are highly homologous to the CH2 and CH3 domains of classical antibodies. These UniAbs™ lack the first domain (CH1) of the constant region, which is present in the genome but is spliced ​​out during mRNA processing. The absence of a CH1 domain explains the absence of light chains in UniAbs™, since this domain is a fixed position of the constant domain of the light chain. These UniAbs™ have naturally evolved to confer antigen-binding specificity and high affinity through three CDRs derived from conventional antibodies, or their fragments (Muyldermans, 2001; J Biotechnol 74:277-302; Revets et al., 2005; Expert Opin Biol Ther 5:111-124). Cartilaginous fish, such as sharks, have also evolved a different type of immunoglobulin, called IgNAR, which lacks light polypeptide chains and is composed entirely of heavy chains. IgNAR molecules can be engineered to generate variable domains of a single heavy chain polypeptide (vNAR) (Nuttall et al. Eur. J. Biochem. 270, 3543-3554 (2003); Nuttall et al. Function and Bioinformatics 55, 187-197 (2004); Dooley et al., Molecular Immunology 40, 25-33 (2003)).

[0006] The ability of heavy-chain-only antibodies lacking light chains to bind to antigens was established in the 1960s (Jaton et al. (1968) Biochemistry, 7, 4185-4195). Heavy-chain immunoglobulins physically separated from light chains maintained 80% of their antigen-binding activity compared to tetrameric antibodies. Sitia et al. (1990) Cell, 60, 781-790 demonstrated that heavy-chain-only antibodies lacking light chains could be produced in mammalian cell culture by removing the CH1 domain from the rearranged mouse μ gene. The produced antibodies retained the binding specificity and effector functions of the VH.

[0007] Heavy-chain antibodies with high specificity and affinity for various antigens can be generated by immunization (van der Linden, RH, et al., Biochim. Biophys. Acta. 1431, 37-46 (1999)), and VHH moieties can be easily cloned and expressed in yeast (Frenken, LGJ, et al., J. Biotechnol. 78, 11-21 (2000)). Their expression, solubility, and stability levels are significantly higher than those of classical F(ab) or Fv fragments (Ghahroudi, MA, et al., FEBS Lett. 414, 521-526 (1997)).

[0008] Mice in which the λ (lambda) light (L) chain locus and / or the λ and κ (kappa) light chain loci are functionally silenced, and antibodies produced by such mice, are described in U.S. Patent Nos. 7,541,513 and 8,367,888. Recombinant production of heavy chain-only antibodies in mice and rats has been reported, for example, in WO2006008548, U.S. Patent Application Publication No. 20100122358; Nguyen et al., 2003, Immunology; 109(1), 93-101; Bruggemann et al., Crit. Rev. Immunol.; 2006, 26(5):377-90; and Zou et al., 2007, J Exp Med; 204(13):3271-3283. The generation of knockout rats by embryonic microinjection of zinc finger nucleases is described in Geurts et al., 2009, Science, 325(5939):433. Soluble single-heavy chain antibodies and transgenic rodents with heterologous heavy chain loci that produce such antibodies are described in U.S. Patent Nos. 8,883,150 and 9,365,655. CAR-T constructs containing single-domain antibodies as the binding (targeting) domain are described, for example, in Iri-Sofla et al., 2011, Experimental Cell Research 317:2630-2641 and Jamnani et al., 2014, Biochim Biophys Acta, 1840:378-386. Summary of the Invention

[0009] Aspects of the present invention relate to heavy chain antibodies, including but not limited to UniAbs™, that have binding affinity for CD 19. Further aspects of the present invention relate to methods for making such antibodies, compositions comprising such antibodies, and their use in treating B cell disorders characterized by expression of CD19.

[0010] In some embodiments, a heavy chain-only antibody that binds to CD19 comprises a heavy chain variable region comprising: (a) a CDR1 with no more than two substitutions in any of the amino acid sequences of SEQ ID NOs: 1-6, and / or (b) a CDR2 with no more than two substitutions in any of the amino acid sequences of SEQ ID NOs: 7-12, and / or (c) a CDR3 with no more than two substitutions in the amino acid sequence of SEQ ID NO: 13. In some embodiments, the CDR1, CDR2, and CDR3 sequences are present within a human framework. In some embodiments, the heavy chain-only antibody further comprises a heavy chain constant region sequence that is absent a CH1 sequence.

[0011] In some embodiments, the heavy chain-only antibody comprises (a) a CDR1 sequence selected from the group consisting of SEQ ID NOs: 1-6, and / or (b) a CDR2 sequence selected from the group consisting of SEQ ID NOs: 7-12, and / or (c) a CDR3 sequence of SEQ ID NO: 13. In some embodiments, the heavy chain-only antibody comprises (a) a CDR1 sequence selected from the group consisting of SEQ ID NOs: 1-6, and (b) a CDR2 sequence selected from the group consisting of SEQ ID NOs: 7-12, and (c) a CDR3 sequence of SEQ ID NO: 13.

[0012] In some embodiments, the heavy chain-only antibody comprises (a) a CDR1 sequence of SEQ ID NO: 4, a CDR2 sequence of SEQ ID NO: 10, and a CDR3 sequence of SEQ ID NO: 13. In some embodiments, the heavy chain-only antibody comprises a heavy chain variable region having at least 95% sequence identity to any of the sequences of SEQ ID NOs: 14-21. In some embodiments, the heavy chain-only antibody comprises a heavy chain variable region sequence selected from the group consisting of SEQ ID NOs: 14-21. In some embodiments, the heavy chain-only antibody comprises a heavy chain variable region sequence of SEQ ID NO: 17.

[0013] In some embodiments, a heavy chain-only antibody that binds to CD19 comprises (a) a CDR1 sequence of the following formula: GF X1F S X2X3W (SEQ ID NO: 22) wherein X1 is T or S, X2 is S or N, and X3 is Y or F; and (b) a CDR2 sequence of the formula: X4X5X6X7G S X8X9 (SEQ ID NO: 23) [wherein X4 is I or M, X5 is N, S, or K, X6 is Q or K, X7 is D or A, X8 is D or E, and X9 is K or E]; and (c) a heavy chain variable region comprising the CDR3 sequence of ASGVYSFDY (SEQ ID NO: 13).

[0014] In some embodiments, a heavy chain-only antibody that binds to CD19 comprises a heavy chain variable region comprising CDR1, CDR2, and CDR3 sequences within a human VH framework, wherein each CDR sequence has no more than two substitutions in a CDR sequence selected from the group consisting of SEQ ID NOs: 1-13.

[0015] In some embodiments, the heavy chain-only antibody comprises a heavy chain variable region comprising CDR1, CDR2 and CDR3 sequences within a human VH framework, wherein each CDR sequence is selected from the group consisting of SEQ ID NOs: 1-13.

[0016] In some embodiments, a heavy chain-only antibody that binds to CD19 comprises, within a human VH framework, a heavy chain variable region comprising: (a) the CDR1 sequence of SEQ ID NO: 4, the CDR2 sequence of SEQ ID NO: 10, and the CDR3 sequence of SEQ ID NO: 13.

[0017] In some embodiments, the heavy chain-only antibody is multispecific. In some embodiments, the heavy chain-only antibody is bispecific. In some embodiments, the heavy chain-only antibody has binding affinity to two different CD19 proteins. In some embodiments, the heavy chain-only antibody has binding affinity to two different epitopes on the same CD19 protein. In some embodiments, the heavy chain-only antibody has binding affinity to an effector cell. In some embodiments, the heavy chain-only antibody has binding affinity to a T cell antigen. In some embodiments, the heavy chain-only antibody has binding affinity to CD3. In some embodiments, the heavy chain-only antibody is in a CAR-T format.

[0018] Aspects of the invention relate to pharmaceutical compositions comprising the heavy chain-only antibodies described herein.

[0019] Aspects of the present invention relate to methods for treating a B-cell disorder characterized by expression of CD19, comprising administering to a subject having the disorder an antibody or pharmaceutical composition described herein. In some embodiments, the disorder is diffuse large B-cell lymphoma (DLBCL). In some embodiments, the disorder is acute lymphoblastic leukemia (ALL). In some embodiments, the disorder is non-Hodgkin's lymphoma (NHL). In some embodiments, the disorder is systemic lupus erythematosus (SLE). In some embodiments, the disorder is rheumatoid arthritis (RA). In some embodiments, the disorder is multiple myeloma (MS).

[0020] Aspects of the invention pertain to polynucleotides encoding the antibodies described herein, vectors comprising such polynucleotides, and cells comprising such vectors.

[0021] Aspects of the invention relate to methods of producing an antibody described herein, comprising growing a cell described herein under conditions permissive for expression of the antibody, and isolating the antibody from the cell and / or the cell culture medium in which the cell was grown.

[0022] An embodiment of the invention relates to a method of producing the antibodies described herein, comprising immunizing a UniRat animal with CD19 and identifying a CD19-binding heavy chain sequence.

[0023] Aspects of the invention relate to methods of treatment comprising administering to an individual in need thereof an effective amount of an antibody or pharmaceutical composition described herein.

[0024] Aspects of the invention relate to the use of an antibody or pharmaceutical composition described herein in the preparation of a medicament for the treatment of a disease or disorder in an individual in need thereof.

[0025] Aspects of the present invention relate to kits for treating a disease or disorder in an individual in need thereof, the kit comprising an antibody or pharmaceutical composition described herein and instructions for use. In some embodiments, the kit further comprises at least one additional reagent. In some embodiments, the at least one additional reagent comprises a chemotherapeutic agent.

[0026] These and further aspects are further described in the remainder of the disclosure, including the Examples. [Brief explanation of the drawings]

[0027] [Figure 1] 1 shows the unique CDR amino acid sequences of anti-CD19 heavy chain antibodies. [Figure 2] 1 shows the amino acid sequences of the variable domains of anti-CD19 heavy chain antibodies. [Figure 3] The amino acid sequences of CDR1, CDR2, and CDR3 of the anti-CD19 heavy chain antibody are shown. [Figure 4] 1 shows the biological activity of anti-CD19 heavy chain antibodies. [Figure 5A] 1 is a graph showing % specific solubility as a function of antibody concentration. [Figure 5B] FIG. 1 is a schematic diagram of a bispecific anti-CD19×anti-CD3 antibody according to one embodiment of the present invention. [Figure 6] 1 is a graph showing protein binding reactions as a function of time. [Figure 7] 1 is a graph showing tumor burden as a function of time (days post-implantation) in experimental tumor models. [Figure 8] 1 is a graph showing target cell lysis (cytotoxicity) as a function of antibody concentration. [Figure 9] 1 is a graph showing the concentration of released cytokines as a function of antibody concentration. DETAILED DESCRIPTION OF THE INVENTION

[0028] The practice of the present invention will employ, unless otherwise indicated, conventional techniques of molecular biology (including recombinant techniques), microbiology, cell biology, biochemistry, and immunology, which are within the skill of the art. Such techniques are described in “Molecular Cloning: A Laboratory Manual”, second edition (Sambrook et al., 1989), “Oligonucleotide Synthesis” (MJ Gait, ed., 1984), “Animal Cell Culture” (RIFreshney, ed., 1987), “Methods in Enzymology” (Academic Press, Inc.), “Current Protocols in Molecular Biology” (FM Ausubel et al., eds., 1987, and periodic updates), “PCR: The Polymerase Chain Reaction”, (Mullis et al., ed., 1994), “A Practical Guide to Molecular Cloning” (Perbal Bernard V., 1988), “Phage Display: A Laboratory Manual” (Barbas et al., 2001), Harlow, Lane and Harlow, Using Antibodies: A Laboratory Manual: Portable Protocol No.I,Cold Spring Harbor Laboratory (1998), and Harlow and Lane, Antibodies: A Laboratory Manual, Cold Spring Harbor Laboratory; (1988).

[0029] Where a range of values ​​is given, unless the context clearly indicates otherwise, it is understood that each value to the tenth of the unit of the lower limit, each intervening value between the upper and lower limits of that range, and every other stated or intervening value within that stated range are encompassed within the invention. The upper and lower limits of these narrower ranges may independently be included in the narrower ranges and are also encompassed within the invention, except for all specifically excluded ranges within the stated range. Where the stated range includes one or both limits, ranges excluding either or both of those included limits are also included in the invention.

[0030] Unless otherwise specified, antibody residues are numbered according to the Kabat numbering system (e.g., Kabat et al., Sequences of immunological interest, 5th Ed., Public Health Service, National Institutes of Health, Bethesda, MD (1991)).

[0031] In the following description, numerous specific details are set forth to provide a more thorough understanding of the present invention. However, it will be apparent to one skilled in the art that the present invention may be practiced without one or more of these specific details. In other instances, features and procedures well known to those skilled in the art are not described in order to avoid obscuring the present invention.

[0032] All references cited throughout this disclosure, including patent applications and publications, are hereby incorporated by reference in their entirety.

[0033] I. Definition "Comprising" means that the recited elements are required in the composition / method / kit, but that other elements may be included to form the composition / method / kit, etc., within the scope of the claim.

[0034] "Consisting essentially of" means limiting the scope of the described composition or process to specified materials or steps that do not materially affect the basic and novel characteristic(s) of the invention.

[0035] "Consisting of" refers to the exclusion from a composition, method, or kit of any element, step, or ingredient not specified in the claim.

[0036] Antibody residues herein are numbered according to the Kabat numbering system and the EU numbering system. The Kabat numbering system is generally used when referring to residues in the variable domain (approximately residues 1 to 113 of the heavy chain) (e.g., Kabat et al., Sequences of Immunological Interest. 5th Ed. Public Health Service, National Institutes of Health, Bethesda, Md. (1991)). The "EU numbering system" or "EU index" is generally used when referring to residues in the immunoglobulin heavy chain constant region (e.g., the EU index reported in Kabat et al., supra). The term "EU index as in Kabat" refers to the residue numbering of the human IgG1 EU antibody. Unless otherwise specified herein, designating a residue number in the variable domain of an antibody refers to the numbering of the residue according to the Kabat numbering system. Unless otherwise specified herein, designating a residue number in the constant domain of an antibody refers to the numbering of the residue according to the EU numbering system.

[0037] Antibodies, also known as immunoglobulins, typically comprise at least one heavy chain and one light chain, and because the amino-terminal domains of the heavy and light chains are variable in sequence, are commonly referred to as variable region domains, or variable heavy (VH) or variable light (VH) domains. The two domains typically associate to form a specific binding region, although, as described herein, specific binding can also be achieved with the variable sequence of the heavy chain alone, and various non-naturally occurring forms of antibodies are known and used in the art.

[0038] A "functional" or "biologically active" antibody or antigen-binding molecule (including the heavy-chain-only antibodies and multispecific (e.g., bispecific) three-chain antibody-like molecules (TCAs) described herein) is one that is capable of exerting one or more of its native activities in structural, regulatory, biochemical, or biophysical events. For example, a functional antibody or other binding molecule, e.g., a TCA, has the ability to specifically bind to an antigen, and that binding can trigger or alter a cellular or molecular event, such as signal transduction or enzymatic activity. A functional antibody or other binding molecule, e.g., a TCA, can also block ligand activation of a receptor or act as an agonist or antagonist. The ability of an antibody or other binding molecule, e.g., a TCA, to exert one or more of its native activities depends on several factors, including proper folding and assembly of the polypeptide chain.

[0039] The term "antibody" as used herein is used in a broad sense and specifically includes monoclonal antibodies, polyclonal antibodies, monomers, dimers, multimers, multispecific antibodies (e.g., bispecific antibodies), heavy-chain antibodies, triple-chain antibodies, single-chain Fvs (scFvs), nanobodies, and the like, as well as antibody fragments, so long as they exhibit the desired biological activity (Miller et al. (2003) Jour. of Immunology 170:4854-4861). Antibodies may be murine, human, humanized, chimeric, or derived from other species.

[0040] The term antibody refers to a full-length heavy chain, a full-length light chain, an intact immunoglobulin molecule, or an immunologically active portion of any of these polypeptides, i.e., a polypeptide comprising an antigen-binding site that immunospecifically binds to an antigen or portion thereof of a target of interest, including, but not limited to, cancer cells or cells that produce autoimmune antibodies associated with autoimmune disease. The immunoglobulins disclosed herein may be of any type (e.g., IgG, IgE, IgM, IgD, and IgA), class (e.g., IgG1, IgG2, IgG3, IgG4, IgA1, and IgA2) or subclass of immunoglobulin molecule, including engineered subclasses with modified Fc portions that confer reduced or increased effector cell activity. The immunoglobulin may be derived from any species. In one embodiment, the immunoglobulin is predominantly human.

[0041] As used herein, the term "monoclonal antibody" refers to an antibody obtained from a population of substantially homogeneous antibodies (i.e., the individual antibodies comprising the population are identical except for possible naturally occurring mutations that may be present in minor amounts). Monoclonal antibodies are highly specific, targeting a single antigenic site. Furthermore, unlike conventional polyclonal antibody preparations that typically include different antibodies directed against different determinants (epitopes), each monoclonal antibody targets a single determinant on the antigen. For example, monoclonal antibodies according to the present invention can be produced by the hybridoma method first described by Kohler et al., Nature 256:495 (1975), or can also be produced, for example, by recombinant protein production methods (see, e.g., U.S. Pat. No. 4,816,567).

[0042] The term "variable" in the context of antibodies refers to the fact that certain portions of antibody variable domains, whose sequences vary significantly among antibodies, are responsible for the binding and specificity of each particular antibody for its particular antigen. However, variability is not evenly distributed throughout the variable domains of antibodies. In both the light-chain and heavy-chain variable domains, variability is concentrated in three segments called hypervariable regions. The more highly conserved portions of the variable domains are called framework regions (FRs). Naturally occurring heavy-chain and light-chain variable domains each contain four FRs, largely in the form of a β-sheet, connected by three hypervariable regions that form loops that connect, and in some cases form part of, the β-sheet structure. The hypervariable regions of each chain are held in close proximity by the FRs and, together with the hypervariable regions of the other chain, contribute to the formation of the antigen-binding site of antibodies (see Kabat et al., Sequences of Proteins of Immunological Interest, 5th Ed. Public Health Service, National Institutes of Health, Bethesda, MD. (1991)). The constant domains are not involved directly in binding an antibody to an antigen, but exhibit various effector functions, such as participation of the antibody in antibody-dependent cellular cytotoxicity (ADCC).

[0043] As used herein, the term "hypervariable region" refers to the amino acid residues of an antibody that are responsible for antigen binding. A hypervariable region comprises amino acid residues from the "complementarity-determining regions" or "CDRs" (e.g., residues 31-35 (H1), 50-65 (H2), and 95-102 (H3) of the heavy-chain variable domain; Kabat et al., "Sequences of Proteins of Immunological Interest," 5th Ed., Public Health Service, National Institutes of Health, Bethesda, MD. (1991)) and / or residues 26-32 (H1), 53-55 (H2), and 96-101 (H3) of the "hypervariable loops" of the heavy-chain variable domain (Chothia and Lesk J. Mol. Biol. 196:901-917 (1987)). "Framework region" or "FR" residues are variable domain residues other than the hypervariable region residues as defined herein.

[0044] While exemplary CDR designations are provided herein, those skilled in the art will recognize that many definitions of CDRs are in widespread use, including the most widely used Kabat definition, which is based on sequence variability (see "Zhao et al. A germline knowledge based computational approach for determining antibody complementarity determining regions." Mol Immunol. 2010;47:694-700). The Chothia definition is based on the location of structural loop regions (Chothia et al. "Conformations of immunoglobulin hypervariable regions." Nature. 1989;342:877-883).Alternative CDR definitions of interest include, but are not limited to, Honegger, "Yet another numbering scheme for immunoglobulin variable domains: an automatic modeling and analysis tool," J Mol Biol. 2001;309:657-670; Ofran et al., "Automated identification of complementarity determining regions (CDRs) reveals peculiar characteristics of CDRs and B cell epitopes," J Immunol. 2008;181:6230-6235; Almagro, "Identification of differences in the specificity-determining residues of antibodies that recognize antigens of different size: implications for the rational design of antibody repertoires," J Mol Recognit. 2004;17:132-143; and Padlan et al., "Identification of specificity-determining residues in antibodies," Faseb, each of which is specifically incorporated herein by reference. J. 1995;9:133-139.

[0045] The terms "heavy chain-only antibody" and "heavy chain antibody" are used interchangeably herein and refer in the broadest sense to an antibody lacking the light chain of a conventional antibody. These terms specifically include, but are not limited to, homodimeric antibodies lacking a CH1 domain and comprising a VH antigen-binding domain and CH2 and CH3 constant domains; functional (antigen-binding) variants of such antibodies, soluble VH variants, Ig-NARs and functional fragments thereof comprising a homodimer of one variable domain (V-NAR) and five C-like constant domains (C-NAR); and soluble single-domain antibodies (sUniDabs™). In one embodiment, a heavy chain-only antibody comprises an antigen-binding domain of the variable region consisting of framework 1, CDR1, framework 2, CDR2, framework 3, CDR3, and framework 4. In another embodiment, a heavy chain-only antibody comprises an antigen-binding domain, at least a portion of the hinge region, and CH2 and CH3 domains. In another embodiment, the heavy chain-only antibody is composed of an antigen-binding domain, at least a portion of the hinge region, and a CH2 domain. In a further embodiment, the heavy chain-only antibody is composed of an antigen-binding domain, at least a portion of the hinge region, and a CH3 domain. Also included herein are heavy chain-only antibodies in which the CH2 and / or CH3 domains are truncated. In a further embodiment, the heavy chain is composed of an antigen-binding domain and at least one CH (CH1, CH2, CH3, or CH4) domain, but not the hinge region. In a further embodiment, the heavy chain is composed of an antigen-binding domain, at least one CH (CH1, CH2, CH3, or CH4) domain, and at least a portion of the hinge region. Heavy chain-only antibodies can be in the form of a dimer in which two heavy chains are disulfide-bonded or otherwise covalently or non-covalently linked to each other. Heavy chain-only antibodies may belong to the IgG subclass, but antibodies belonging to other subclasses, such as IgM, IgA, IgD, and IgE, are also included herein. In certain embodiments, the heavy chain antibody is of the IgG1, IgG2, IgG3, or IgG4 subtype, particularly the IgG1 subtype.In one embodiment, the heavy chain antibody is of the IgG4 subtype, and one or more CH domains have been modified to alter the antibody's effector function. In one embodiment, the heavy chain antibody is of the IgG1 subtype, and one or more CH domains have been modified to alter the antibody's effector function. Modifications of CH domains to alter effector function are further described herein. Non-limiting examples of heavy chain antibodies are described, for example, in WO2018 / 039180, the entire contents of which are incorporated herein by reference.

[0046] In one embodiment, the heavy chain-only antibodies herein are used as the binding (targeting) domain of a chimeric antigen receptor (CAR). This definition specifically includes human heavy chain-only antibodies produced by human immunoglobulin transgenic rats (UniRat™), referred to as UniAbs™. The variable regions (VH) of UniAbs™, referred to as UniDabs™, are versatile building blocks that can be conjugated to Fc regions or serum albumin to develop novel therapeutics with multispecificity, high potency, and long half-lives. Because homodimeric UniAbs™ lack a light chain and thus a VL domain, antigens are recognized by a single domain, namely the variable domain of the heavy chain (antigen-binding domain) of the heavy chain antibody (VH).

[0047] As used herein, an "intact antibody chain" comprises a full-length variable region and a full-length constant region (Fc). An intact, "traditional" antibody comprises an intact light chain and an intact heavy chain, as well as the light chain constant domain (CL) and heavy chain constant domains of secreted IgG, CH1, hinge, CH2, and CH3. Other isotypes, such as IgM or IgA, may have different CH domains (e.g., including a CH4 domain). The constant domains may be native-sequence constant domains (e.g., human native-sequence constant domains) or amino acid sequence variants thereof. An intact antibody can have one or more "effector functions," which refer to biological activities attributable to the Fc constant region of an antibody (a native-sequence Fc region or an amino acid sequence variant Fc region). Examples of antibody effector functions include C1q binding, complement-dependent cytotoxicity, Fc receptor binding, antibody-dependent cell-mediated cytotoxicity (ADCC), phagocytosis, and reduced expression of cell surface receptors. Constant region variants include those that alter the effector profile, Fc receptor binding, etc.

[0048] Antibodies and various antigen-binding proteins can be assigned to different classes depending on the amino acid sequence of the Fc (constant domain) of their heavy chains. There are five major antibody classes in the heavy chain Fc region: IgA, IgD, IgE, IgG, and IgM, some of which can be further classified into subclasses (isotypes), such as IgG1, IgG2, IgG3, IgG4, IgA, and IgA2. The Fc constant domains corresponding to the different classes of antibodies are sometimes called α, δ, ε, γ, and μ, respectively. The subunit structures and three-dimensional configurations of the different classes of immunoglobulins are well known. Forms of Ig include hinge-modified or hingeless forms (Roux et al (1998) J. Immunol. 161:4083-4090; Lund et al (2000) Eur. J. Biochem. 267:7246-7256; US2005 / 0048572; US2004 / 0229310). The light chains of antibodies from any vertebrate species can be assigned to one of two types, called kappa (κ) and lambda (λ), based on the amino acid sequences of their constant domains.

[0049] A "functional Fc region" possesses an "effector function" of a native sequence Fc region. Non-limiting examples of effector functions include C1q binding, CDC, Fc receptor binding, ADCC, ADCP, reduced expression of cell surface receptors (e.g., B cell receptors), and the like. Such effector functions generally require the Fc region to interact with receptors such as FcγRI, FcγRIIA, FcγRIIB1, FcγRIIB2, FcγRIIIA, and FcγRIIIB receptors, as well as the low-affinity FcRn receptor, and can be assessed using various assays well known in the art. A "dead" or "silenced" Fc is one that has been mutated to maintain activity, e.g., with respect to extended serum half-life, but does not activate high-affinity Fc receptors or has reduced affinity for Fc receptors.

[0050] A "native sequence Fc region" comprises an amino acid sequence identical to that of an Fc region found in nature. Native sequence human Fc regions include, for example, native sequence human IgG1 Fc regions (non-A and A allotypes), native sequence human IgG2 Fc regions, native sequence human IgG3 Fc regions, and native sequence human IgG4 Fc regions, as well as naturally occurring variants thereof.

[0051] A "variant Fc region" comprises an amino acid sequence that differs from the amino acid sequence of a native-sequence Fc region by at least one amino acid modification, preferably one or more amino acid substitution(s). Preferably, the variant Fc region has at least one amino acid substitution compared to the native-sequence Fc region or the Fc region of a parent polypeptide, e.g., about one to about ten amino acid substitutions, preferably about one to about five amino acid substitutions, in the native-sequence Fc region or the Fc region of the parent polypeptide. A variant Fc region herein preferably has at least about 80% homology with the native-sequence Fc region and / or the Fc region of the parent polypeptide, most preferably at least about 90% homology thereto, and more preferably at least about 95% homology thereto.

[0052] The variant Fc sequence can have three amino acid substitutions in the CH2 region at positions 234, 235, and 237 of the EU index that reduce FcγRI binding (see Duncan et al., (1988) Nature 332:563). Two amino acid substitutions in the complement C1q binding site at positions 330 and 331 of the EU index reduce complement binding (see Tao et al., J. Exp. Med. 178:661 (1993) and Canfield and Morrison, J. Exp. Med. 173:1483 (1991)). Substitutions at positions 233 to 236 with human IgG1 or IgG2 residues, and substitutions at positions 327, 330, and 331 with IgG4 residues, significantly reduce ADCC and CDC (e.g., Armour KL et al., 1999 Eur J Immunol. 29(8):2613-24; and Shields RL et al., 2001 J Biol Chem. 276(9):6591-604). The amino acid sequence of human IgG1 (UniProtKB number P01857) is presented herein as SEQ ID NO: 26. The amino acid sequence of human IgG4 (UniProtKB number P01861) is presented herein as SEQ ID NO: 27. Silenced IgG1 is described, for example, in Boesch, AW, et al., "Highly parallel characterization of IgG Fc binding interactions." MAbs, 2014.6(4):pp.915-27, the entire disclosure of which is incorporated herein by reference.

[0053] Other Fc variants are possible, including, but not limited to, variants in which regions capable of forming disulfide bonds have been deleted, or in which specific amino acid residues at the N-terminus of a native Fc have been removed, or in which a methionine residue has been added. Thus, in some embodiments, one or more Fc moieties of a binding compound can contain one or more mutations in the hinge region to eliminate disulfide bonds. In yet another embodiment, the hinge region of an Fc can be completely removed. In yet another embodiment, a binding compound can comprise an Fc variant.

[0054] Furthermore, Fc variants can be constructed to eliminate or significantly reduce effector functions by substituting (mutating), deleting, or adding amino acid residues responsible for complement binding or Fc receptor binding. For example, but not limited to, deletions can be made in complement binding sites, such as the C1q binding site. Techniques for preparing such sequence derivatives of immunoglobulin Fc fragments are disclosed in International Patent Publications WO97 / 34631 and WO96 / 32478. Furthermore, the Fc domain can be modified by phosphorylation, sulfation, acylation, glycosylation, methylation, farnesylation, acetylation, amidation, etc.

[0055] The term "Fc region-containing antibody" refers to an antibody that comprises an Fc region. The C-terminal lysine (residue 447 according to the EU numbering system) of the Fc region can be removed, for example, during antibody purification or by recombinant engineering of the nucleic acid encoding the antibody. Thus, antibodies with an Fc region according to the present invention can include antibodies with or without K447.

[0056] Aspects of the present invention include binding compounds with multispecific formats, including but not limited to bispecific, trispecific, etc. A wide variety of methods and protein formats are known and used for bispecific monoclonal antibodies (BsMABs), trispecific antibodies, etc.

[0057] Various methods for producing multivalent artificial antibodies have been developed by recombinantly fusing two or more antibody variable domains. In some embodiments, the first and second antigen-binding domains on a polypeptide are linked by a polypeptide linker. One non-limiting example of such a polypeptide linker is a GS linker, which has an amino acid sequence consisting of four glycine residues followed by one serine residue, repeated n times, where n is an integer ranging from 1 to about 10, e.g., 2, 3, 4, 5, 6, 7, 8, or 9. Non-limiting examples of such linkers include GGGGS (SEQ ID NO: 24) (n=1) and GGGGSGGGGS (SEQ ID NO: 25) (n=2). Other suitable linkers can also be used, e.g., as described in Chen et al., Adv Drug Deliv Rev. 2013 October 15;65(10):1357-69, the disclosure of which is incorporated herein by reference in its entirety.

[0058] The term "tri-chain antibody-like molecule" or "TCA" is used herein to refer to an antibody-like molecule comprising, consisting essentially of, or consisting of three polypeptide subunits, two of which comprise, consist essentially of, or consist of one heavy chain and one light chain of a monoclonal antibody, or a functional antigen-binding fragment of such an antibody chain comprising an antigen-binding region and at least one CH domain. This heavy / light chain pair has binding specificity for a first antigen. The third polypeptide subunit comprises, consists essentially of, or consists of a heavy chain-only antibody comprising an Fc portion that does not contain a CH1 domain but contains a CH2 and / or CH3 and / or CH4 domain, and one or more antigen binding domains that bind to an epitope of a second antigen or different epitopes of a first antigen (e.g., a single heavy chain variable region ("single configuration")) or two antigen binding domains in a "tandem configuration" in which the two antigen binding domains are linked to each other by a linker sequence as described above (e.g., two single heavy chain variable regions)), which antigen binding domains are derived from or have sequence identity with the variable regions of the antibody heavy or light chain. Such variable region portions are represented by the V H and / or V L Gene segments, D and J H gene segment, or J L The variable region may be encoded by a rearranged V H DJ H , V L DJ H , V H J L , or V L J L The TCA protein may be encoded by a gene segment. The TCA protein utilizes the heavy chain-only antibody defined above.

[0059] The TCA-binding compounds utilize "heavy chain-only antibodies" or "heavy chain antibodies" or "heavy chain polypeptides," which, as used herein, refers to single-chain antibodies that contain heavy chain constant regions CH2 and / or CH3 and / or CH4, but lack the CH1 domain. In one embodiment, a heavy chain antibody is composed of an antigen-binding domain (e.g., a single heavy chain variable region, either single or tandem), at least a portion of the hinge region, and the CH2 and CH3 domains.

[0060] In another embodiment, a heavy chain antibody is composed of an antigen-binding domain, at least a portion of a hinge region, and a CH2 domain. In a further embodiment, a heavy chain antibody is composed of an antigen-binding domain, at least a portion of a hinge region, and a CH3 domain. Heavy chain antibodies in which the CH2 and / or CH3 domains are truncated are also included herein. In a further embodiment, a heavy chain is composed of an antigen-binding domain and at least one CH (CH1, CH2, CH3, or CH4) domain, but does not include the hinge region. Single-heavy chain antibodies may be in the form of a dimer in which two heavy chains are disulfide-bonded or otherwise covalently or non-covalently linked to each other, and may optionally have an asymmetric interface between two or more CH domains that promotes proper pairing between the polypeptide chains. Heavy chain antibodies may belong to the IgG subclass, but antibodies belonging to other subclasses, such as IgM, IgA, IgD, and IgE subclasses, are also included herein. In certain embodiments, the heavy chain antibody is of the IgG1, IgG2, IgG3, or IgG4 subtype, particularly the IgG1 or IgG4 subtype. Non-limiting examples of TCA-binding compounds are described, for example, in WO2017 / 223111 and WO2018 / 052503, the disclosures of which are incorporated herein by reference in their entireties.

[0061] Heavy chain antibodies constitute approximately one-quarter of the IgG antibodies produced by camelids, such as camels and llamas (Hamers-Casterman C., et al. Nature. 363, 446-448 (1993)). These antibodies are formed by two heavy chains but do not contain light chains. As a result, the variable antigen-binding portion is called a VHH domain and represents the smallest naturally occurring intact antigen-binding site, only about 120 amino acids in length (Desmyter, A., et al. J. Biol. Chem. 276, 26285-26290 (2001)). Heavy-chain antibodies with high specificity and affinity for various antigens can be generated by immunization (van der Linden, RH, et al., Biochim. Biophys. Acta. 1431, 37-46 (1999)), and VHH moieties can be easily cloned and expressed in yeast (Frenken, LGJ, et al., J. Biotechnol. 78, 11-21 (2000)). Their expression, solubility, and stability levels are significantly higher than those of classical F(ab) or Fv fragments (Ghahroudi, MA, et al., FEBS Lett. 414, 521-526 (1997)). Sharks have also been shown to have a single VH-like domain in their antibodies, called a VNAR (Nuttall et al. Eur. J. Biochem. 270, 3543-3554 (2003); Nuttall et al. Function and Bioinformatics 55, 187-197 (2004); Dooley et al., Molecular Immunology 40, 25-33 (2003)).

[0062] As used herein, the terms "CD19" and "cluster of differentiation 19" refer to a molecule expressed at all stages of B cell development up to terminal differentiation into plasma cells. The term "CD19" includes the CD19 protein of all human and non-human animal species, and specifically includes human CD19 and CD19 of non-human mammals.

[0063] As used herein, the term "human CD19" includes any variant, isoform, and species homolog of human CD19 (UniProt P15391), regardless of its source or preparation. Thus, "human CD19" includes human CD19 naturally expressed by cells and CD19 expressed on cells transfected with the human CD19 gene.

[0064] The terms "anti-CD19 heavy chain-only antibody," "CD19 heavy chain-only antibody," "anti-CD19 heavy chain antibody," and "CD19 heavy chain antibody" are used interchangeably herein to refer to heavy chain-only antibodies, as defined above, that immunospecifically bind to CD19, including human CD19, as defined above. This definition includes, but is not limited to, human heavy chain antibodies produced by transgenic animals, such as transgenic rats or mice expressing human immunoglobulins, including UniRats™ that produce human anti-CD19 UniAb™ antibodies, as defined above.

[0065] "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 the amino acid residues in the reference polypeptide sequence after aligning the sequences to maximize percent sequence identity and introducing gaps as necessary, without considering conservative substitutions as part of sequence identity. Alignment for determining percent amino acid sequence identity can be achieved in a variety of ways within the skill of the art, for example, using publicly available computer software such as BLAST, BLAST-2, ALIGN, or Megalign (DNASTAR) software. Those skilled in the art can determine appropriate parameters for aligning sequences, including any algorithms required to maximize alignment across the full length of the sequences being compared. However, for purposes herein, percent amino acid sequence identity values ​​are generated using the sequence comparison computer program ALIGN-2.

[0066] An "isolated" antibody is one that has been identified and separated and / or recovered from components of its natural environment. Contaminant components of its natural environment are substances that would interfere with diagnostic or therapeutic uses for the antibody, and may include enzymes, hormones, and other proteinaceous or nonproteinaceous solutes. In preferred embodiments, the antibody is purified (1) to greater than 95% by weight of the antibody, and most preferably greater than 99% by weight, as determined by the Lowry method; (2) sufficiently to obtain at least 15 residues of N-terminal or internal amino acid sequence using a spinning cup sequenator; or (3) to homogeneity by SDS-PAGE under reducing or non-reducing conditions using Coomassie blue, or preferably silver stain. Isolated antibody includes the antibody in situ within recombinant cells, since at least one component of the antibody's natural environment will not be present. Ordinarily, however, isolated antibody will be prepared by at least one purification step.

[0067] The antibodies of the present invention include multispecific antibodies. Multispecific antibodies have multiple binding specificities. The term "multispecific" specifically includes "bispecific" and "trispecific," as well as higher-order independent specific binding affinities such as polyepitopic specificity, as well as tetravalent antibodies and antibody fragments. The terms "multispecific antibody," "multispecific heavy-chain single antibody," "multispecific heavy-chain antibody," "multispecific UniAb™," and "multispecific binding compound" are used in the broadest sense herein to encompass all antibodies with multiple binding specificities. Multispecific heavy-chain anti-CD19 antibodies of the present invention specifically include antibodies that immunospecifically bind to a single epitope on a CD19 protein, such as human CD19, and to an epitope on a different protein, e.g., CD3 protein (i.e., bivalent and monoparatopic). Multispecific heavy-chain anti-CD19 antibodies of the present invention specifically include antibodies that immunospecifically bind to two or more non-overlapping epitopes on a CD19 protein, such as human CD19 (i.e., bivalent and biparatopic). Multispecific heavy chain anti-CD19 antibodies of the invention also specifically include antibodies that immunospecifically bind to an epitope on a CD19 protein, such as human CD19, and to an epitope on a different protein, such as a CD3 protein, such as human CD3 protein (i.e., bivalent and biparatopic). Multispecific heavy chain anti-CD19 antibodies of the invention also specifically include antibodies that immunospecifically bind to two or more non-overlapping or partially overlapping epitopes on a CD19 protein, such as human CD19 protein, and to an epitope on a different protein, such as a CD3 protein, such as human CD3 protein (i.e., trivalent and biparatopic).

[0068] The antibodies of the present invention include monospecific antibodies having one binding specificity. Monospecific antibodies specifically include antibodies with a single binding specificity and antibodies containing multiple binding units with the same binding specificity. The terms "monospecific antibody," "monospecific heavy chain single antibody," "monospecific heavy chain antibody," and "monospecific UniAb™" are used in the broadest sense herein to encompass all antibodies with one binding specificity. The monospecific heavy chain anti-CD19 antibodies of the present invention specifically include antibodies that immunospecifically bind to one epitope on a CD19 protein, such as human CD19 (monovalent and monospecific). The monospecific heavy chain anti-CD19 antibodies of the present invention also specifically include antibodies with multiple binding units (e.g., multivalent antibodies) that immunospecifically bind to epitopes on a CD19 protein, such as human CD19. For example, a monospecific antibody according to embodiments of the present invention can include a heavy chain variable region comprising two antigen-binding domains that each bind to the same epitope on a CD19 protein (i.e., bivalent and monospecific).

[0069] An "epitope" is a site on the surface of an antigen molecule to which a single antibody molecule binds. Generally, an antigen has several or many different epitopes and reacts with many different antibodies. The term specifically includes linear and conformational epitopes.

[0070] "Epitope mapping" is the process of identifying the binding site, or epitope, of an antibody on a target antigen. Antibody epitopes can be linear or conformational. Linear epitopes are formed by a contiguous sequence of amino acids within a protein. Conformational epitopes are formed by amino acids that are discontinuous within the protein sequence but are brought together when the protein folds into its three-dimensional structure.

[0071] "Polyepitopic specificity" refers to the ability to specifically bind to two or more different epitopes on the same or different target(s). As described above, the present invention specifically includes anti-CD19 heavy chain antibodies with polyepitopic specificity, i.e., anti-CD19 heavy chain antibodies that bind to two or more non-overlapping epitopes on a CD19 protein, such as human CD19. The term "non-overlapping epitope(s)" or "non-competing epitope(s)" of an antigen is defined herein to mean epitope(s) that are recognized by one member of an antigen-specific antibody pair but not by the other member. A pair of antibodies that recognize non-overlapping epitopes, or antigen-binding regions that target the same antigen on a multispecific antibody, do not compete for binding to the antigen and can simultaneously bind to the antigen.

[0072] An antibody binds to "essentially the same epitope" as a reference antibody if the two antibodies recognize the same or sterically overlapping epitopes. The most widely used rapid method for determining whether two antibodies bind to the same or sterically overlapping epitopes is a competitive assay, which can be configured in any number of different formats using either labeled antigen or labeled antibody. Typically, the antigen is immobilized on a 96-well plate, and the ability of an unlabeled antibody to block binding of the labeled antibody is measured using a radioactive or enzyme label.

[0073] As used herein, the term "valency" refers to a specific number of binding sites within an antibody molecule.

[0074] A "monovalent" antibody has one binding site and is therefore also monospecific.

[0075] A "multivalent" antibody has two or more binding sites. Thus, the terms "bivalent," "trivalent," and "tetravalent" refer to the presence of two binding sites, three binding sites, and four binding sites, respectively. Thus, bispecific antibodies according to the invention are at least bivalent and may be trivalent, tetravalent, or otherwise multivalent. Bivalent antibodies according to embodiments of the invention may have two binding sites for the same epitope (i.e., bivalent, monoparatopic) or for two different epitopes (i.e., bivalent, biparatopic).

[0076] A wide variety of methods and protein forms are known and used to prepare bispecific monoclonal antibodies (BsMABs), trispecific antibodies, etc.

[0077] The term "bispecific three-chain antibody-like molecule" or "TCA" is used herein to refer to an antibody-like molecule comprising, consisting essentially of, or consisting of three polypeptide subunits, two of which comprise, consist essentially of, or consist of one heavy chain and one light chain of a monoclonal antibody, or a functional antigen-binding fragment of such an antibody chain comprising an antigen-binding region and at least one CH domain. This heavy / light chain pair has binding specificity for a first antigen. The third polypeptide subunit comprises, consists essentially of, or consists of a heavy-chain-only antibody comprising an Fc portion lacking a CH1 domain and comprising CH2 and / or CH3 and / or CH4 domains, and an antigen-binding domain that binds to an epitope of a second antigen or a different epitope of the first antigen, and that is derived from or has sequence identity with the variable region of the antibody heavy or light chain. Such variable region portions are represented by V H and / or V L Gene segments, D and J H gene segment, or J L The variable region may be encoded by a rearranged V H DJ H , V L DJ H , VH J L , or V L J L The TCA protein may be encoded by a gene segment. The TCA protein utilizes the heavy chain-only antibody defined above.

[0078] The term "chimeric antigen receptor" or "CAR" is used herein in the broadest sense to refer to an engineered receptor that combines a desired binding specificity (e.g., the antigen-binding region of a monoclonal antibody or other ligand) with transmembrane and intracellular signaling domains. Typically, receptors are used to couple the specificity of a monoclonal antibody to T cells to create chimeric antigen receptors (CARs). (Dai et al., J Natl Cancer Inst, 2016;108(7):djv439; and Jackson et al., Nature Reviews Clinical Oncology, 2016;13:370-383.)

[0079] The term "human antibody" is used to include antibodies having variable and constant regions derived from human germline immunoglobulin sequences. Human antibodies herein can contain mutations at amino acid residues not encoded by human germline immunoglobulin sequences, e.g., introduced by random or site-specific mutagenesis in vitro or by somatic mutation in vivo. The term "human antibody" specifically includes heavy chain-only antibodies having human heavy chain variable region sequences produced by transgenic animals such as transgenic rats or mice, specifically UniAbs™ produced by UniRats™ as defined above.

[0080] "Chimeric antibody" or "chimeric immunoglobulin" refers to an immunoglobulin molecule that contains amino acid sequences from at least two different Ig loci, e.g., a transgenic antibody that contains a portion encoded by a human Ig locus and a portion encoded by a rat Ig locus. Chimeric antibodies include transgenic antibodies with non-human or artificial Fc regions and human idiotypes. Such immunoglobulins can be isolated from animals of the invention that have been engineered to produce such chimeric antibodies.

[0081] As used herein, the term "effector cell" refers to an immune cell that is involved in the effector phase of an immune response, rather than the recognition and activation phase of the immune response. Some effector cells express specific Fc receptors and perform specific immune functions. In some embodiments, effector cells, such as natural killer cells, are capable of inducing antibody-dependent cellular cytotoxicity (ADCC). For example, monocytes and macrophages, which express FcRs, are involved in the specific killing of target cells and presenting antigens to other components of the immune system, or binding to cells that present antigens. In some embodiments, effector cells are capable of phagocytosing target antigens or target cells.

[0082] "Human effector cells" are leukocytes that express a receptor, such as a T cell receptor or FcR, and perform effector function. Preferably, these cells express at least FcγRIII and perform ADCC effector function. Examples of human leukocytes that mediate ADCC include natural killer (NK) cells, monocytes, cytotoxic T cells, and neutrophils, with NK cells being preferred. Effector cells can be isolated from their native source, for example, from blood or PBMCs as described herein.

[0083] The term "immune cell" is used herein in the broadest sense and includes, but is not limited to, cells derived from bone marrow or lymphoid tissue, such as lymphocytes (such as B cells and T cells, including cytolytic T cells (CTLs)), killer cells, natural killer (NK) cells, macrophages, monocytes, eosinophils, polymorphonuclear cells, such as neutrophils, granulocytes, mast cells, basophils, and the like.

[0084] Antibody "effector functions" refer to biological activities attributable to the Fc region of an antibody (a native-sequence Fc region or an amino acid sequence variant Fc region). Examples of antibody effector functions include C1q binding, complement-dependent cytotoxicity, Fc receptor binding, antibody-dependent cell-mediated cytotoxicity (ADCC), phagocytosis, and down-regulation of cell surface receptors (e.g., B cell receptor, BCR).

[0085] "Antibody-dependent cell-mediated cytotoxicity" and "ADCC" refer to a cell-mediated reaction in which nonspecific cytotoxic cells that express Fc receptors (FcR), such as natural killer (NK) cells, neutrophils, and macrophages, recognize antibodies bound to target cells and subsequently cause lysis of the target cells. NK cells, the primary cells for mediating ADCC, express FcγRIII only, whereas monocytes express FcγRI, FcγRII, and FcγRIII. FcR expression on hematopoietic cells is summarized in Table 3 on page 464 of Ravetch and Kinet, Annu. Rev. Immunol 9:457-92 (1991). To assess ADCC activity of a molecule of interest, an in vitro ADCC assay, e.g., such as that described in U.S. Pat. No. 5,500,362 or U.S. Pat. No. 5,821,337, can be performed. Useful effector cells for such assays include peripheral blood mononuclear cells (PBMC) and natural killer cells (NK). Alternatively, or additionally, ADCC activity of the molecule of interest can be assessed in vivo, e.g., in an animal model such as that disclosed in Clynes et al., PNAS (USA) 95:652-656 (1998).

[0086] "Complement-dependent cytotoxicity" or "CDC" refers to the ability of a molecule to lyse a target in the presence of complement. The complement activation pathway is initiated by the binding of the first component of the complement system (C1q) to a molecule (e.g., an antibody) complexed with a cognate antigen. To assess complement activation, a CDC assay can be performed, for example, as described in Gazzano-Santoro et al., J. Immunol. Methods 202:163 (1996).

[0087] "Binding affinity" refers to the strength of the sum of residue interactions between a single binding site of a molecule (e.g., an antibody) and its 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 antibody and an antigen). The affinity of a molecule X for its partner Y can generally be expressed by the dissociation constant (Kd). Affinity can be measured by common methods well known in the art. Low-affinity antibodies generally bind antigens slowly and tend to dissociate quickly, whereas high-affinity antibodies generally bind antigens more quickly and tend to remain bound to them.

[0088] As used herein, "Kd" or "Kd value" refers to the dissociation constant determined by biolayer interferometry using an Octet QK384 instrument (Fortebio Inc., Menlo Park, CA) in kinetic mode. For example, an anti-mouse Fc sensor is loaded with a mouse Fc fusion antigen and then immersed in a well containing an antibody, thereby measuring the concentration-dependent binding rate (k). The antibody dissociation rate (koff) is measured in the final step of immersing the sensor in a well containing buffer alone. Kd is the ratio of koff / koff. (For more details, see Concepcion, J, et al., Comb Chem High Throughput Screen, 12(8), 791-800, 2009.)

[0089] The terms "treatment," "treating," and similar terms are used herein generally to mean achieving a desired pharmacological and / or physiological effect. The effect may be prophylactic, in terms of completely or partially preventing a disease or its symptoms, and / or therapeutic, in terms of partially or completely curing a disease and / or its resulting side effects. As used herein, "treatment" encompasses any treatment of a disease in a mammal, including (a) preventing the onset of the disease in a subject who may be predisposed to the disease but has not yet been diagnosed with the disease; (b) arresting the disease, i.e., preventing its development; or (c) alleviating the disease, i.e., causing regression of the disease. Therapeutic agents can be administered before, during, or after the onset of disease or injury. Treatment of ongoing disease, where treatment stabilizes or alleviates undesirable clinical symptoms in the patient, may be of particular interest. Such treatment is desirably administered before complete loss of function in affected tissues. Therapeutic agents can be administered during, and optionally after, the symptomatic stage of the disease.

[0090] "Therapeutically effective amount" refers to the amount of an active agent required to provide a therapeutic effect in a subject, e.g., an amount that induces, ameliorates, or otherwise results in the improvement of pathological symptoms, disease progression, or physiological condition associated with a disease, or enhances resistance to a disease.

[0091] In the context of the present invention, the term "B cell neoplasm" or "mature B cell neoplasm" includes, but is not limited to, all lymphocytic leukemias and lymphomas, chronic lymphocytic leukemia, acute lymphoblastic leukemia, prolymphocytic leukemia, precursor B lymphoblastic leukemia, hairy cell leukemia, small lymphocytic lymphoma, B cell prolymphocytic lymphoma, B cell chronic lymphocytic leukemia, mantle cell lymphoma, Burkitt's lymphoma, follicular lymphoma, diffuse large B cell These include lymphoma (DLBCL), multiple myeloma, lymphoplasmacytic lymphoma, splenic marginal zone lymphoma, plasma cell neoplasms such as plasma cell myeloma, plasmacytoma, monoclonal immunoglobulin deposition disease, heavy chain disease, MALT lymphoma, nodal marginal zone B-cell lymphoma, intravascular large B-cell lymphoma, primary effusion lymphoma, lymphomatoid granulomatosis, non-Hodgkin's lymphoma, Hodgkin's lymphoma, hairy cell leukemia, primary effusion lymphoma, and AIDS-related non-Hodgkin's lymphoma.

[0092] The term "characterized by expression of CD19" refers broadly to any disease or disorder in which expression of CD19 is associated with or contributes to one or more pathological processes characteristic of the disease or disorder, including, but not limited to, B-cell neoplasms.

[0093] The terms "subject," "individual," and "patient" are used interchangeably herein to refer to a mammal being evaluated for treatment and / or treated. In one embodiment, the mammal is a human. The terms "subject," "individual," and "patient" include, but are not limited to, individuals with cancer, individuals with autoimmune diseases, individuals with pathogen infections, and the like. The subject may be a human, but also includes other mammals, e.g., mice, rats, and the like, particularly mammals useful as experimental models for human disease.

[0094] The term "pharmaceutical formulation" refers to a formulation in which the biological activity of the active ingredient is effective and which does not contain additional ingredients that are unacceptably toxic to the subject to which the formulation is administered. Such formulations are sterile. A "pharmaceutically acceptable" excipient (vehicle, additive) is one that can be competently administered to a mammalian subject to provide an effective dose of the active ingredient employed.

[0095] A "sterile" formulation is aseptic or free or essentially free of all microorganisms and their spores. A "frozen" formulation is one at a temperature below 0°C.

[0096] A "stable" formulation is one in which the protein contained therein essentially maintains its physical stability and / or chemical stability and / or biological activity upon storage. Preferably, the formulation essentially maintains its physical and chemical stability and its biological activity upon storage. The storage period is generally selected based on the expected shelf life of the formulation. Various analytical techniques for measuring protein stability are available in the art and are reviewed, for example, in Peptide and Protein Drug Delivery, 247-301. Vincent Lee Ed., Marcel Dekker, Inc., New York, NY, Pub. (1991) and Jones, A. Adv. Drug Delivery Rev. 10:29-90 (1993). Stability can be measured at a selected temperature over a selected period of time. Stability can be qualitatively and / or quantitatively assessed in a variety of different ways, including assessing aggregate formation (e.g., using size-exclusion chromatography by measuring turbidity and / or by visual inspection); assessing charge heterogeneity using cation exchange chromatography, image capillary isoelectric focusing (icIEF), or capillary zone electrophoresis; amino- or carboxy-terminal sequence analysis; mass spectrometry; SDS-PAGE analysis to compare reduced and intact antibodies; peptide mapping (e.g., trypsin or LYS-C) analysis; and assessing the antibody's biological activity or antigen-binding function. Instability can involve any one or more of the following: aggregation, deamidation (e.g., deamidation of Asn), oxidation (e.g., oxidation of Met), isomerization (e.g., isomerization of Asp), clipping / hydrolysis / fragmentation (e.g., hinge region fragmentation), succinimide formation, unpaired cysteine(s), N-terminal extension, C-terminal processing, differential glycosylation, etc.

[0097] II. Detailed Description anti-CD19 The present invention provides a family of closely related heavy chain-only antibodies that bind to human CD19. Antibodies in this family comprise a set of CDR sequences as defined herein and shown in Figure 1, and are exemplified by the provided heavy chain variable region (VH) sequences of SEQ ID NOS: 14-21 shown in Figure 2. This family of antibodies offers numerous advantages that contribute to their usefulness as clinical therapeutic(s). The antibodies include members with a wide range of binding affinities, allowing for the selection of specific sequences with desired binding affinities.

[0098] Suitable antibodies can be selected from those provided herein for development and therapeutic or other uses, including, but not limited to, bispecific antibodies, such as those shown in Figure 5B, or trispecific antibodies, or for use as part of a CAR-T structure.

[0099] Affinity determination for a candidate protein can be performed using methods well known in the art, such as Biacore measurements. Members of the antibody family include, but are not limited to, those with a Kd of about 10 -6 ~about 10 -10 , about 10 -6 ~about 10 -9 , about 10 -6 ~about 10 -8 , about 10 -8 ~about 10 -11 , about 10 -8 ~about 10 -10 , about 10 -8 ~about 10 -9 , about 10 -9 ~about 10 -11 , about 10 -9 ~about 10 -10 , or any value within these ranges, inclusive, approximately 10 -6 ~about 10 -11 The affinity selection can be confirmed by biological evaluation to modulate, e.g., block, the biological activity of CD19, including in vitro assays, preclinical models, and clinical trials, as well as evaluation of potential toxicity.

[0100] Members of the antibody family herein do not exhibit cross-reactivity with cynomolgus monkey CD19 protein, but can be engineered to confer cross-reactivity with cynomolgus monkey CD19 protein, or CD19 of any other animal species, if desired.

[0101] The family of CD19-specific antibodies herein comprises a VH domain comprising CDR1, CDR2, and CDR3 sequences within a human VH framework. The CDR sequences may, for example, be located in regions around amino acid residues 26-35, 53-59, and 98-117 for CDR1, CDR2, and CDR3, respectively, of the exemplary variable region sequences provided in SEQ ID NOS: 14-21. While the order of the sequences generally remains the same, one skilled in the art will recognize that each CDR sequence may be located in a different position if different framework sequences are selected.

[0102] The CDR1, CDR2, and CDR3 sequences of the anti-CD19 antibodies of the invention may be contained in the following structural formulas, where X represents a variable amino acid that may be any of the specific amino acids shown below: CDR1 GF X1F S X2X3W (SEQ ID NO: 22) wherein X1 is T or S; X2 is S or N; X3 is Y or F. CDR2 X4X5X6X7G S X8X9 (SEQ ID NO: 23) wherein X4 is I or M; X5 is N, S, or K; X6 is Q or K, X7 is D or A, X8 is D or E, X9 is K or E. CDR3 ASGVYSFDY (SEQ ID NO: 13)

[0103] Representative CDR1, CDR2 and CDR3 sequences are shown in FIGS.

[0104] In some embodiments, an anti-CD19 heavy chain-only antibody of the invention comprises the CDR1 sequence of any one of SEQ ID NOs: 1 to 6. In a specific embodiment, the CDR1 sequence is SEQ ID NO: 4.

[0105] In some embodiments, an anti-CD19 heavy chain-only antibody of the invention comprises the CDR2 sequence of any one of SEQ ID NOs: 7 to 12. In a specific embodiment, the CDR2 sequence is SEQ ID NO: 10.

[0106] The anti-CD19 heavy chain only antibody of the invention comprises the CDR3 sequence of SEQ ID NO:13.

[0107] In a further embodiment, an anti-CD19 heavy chain single antibody of the invention comprises the CDR1 sequence of SEQ ID NO:4, the CDR2 sequence of SEQ ID NO:10, and the CDR3 sequence of SEQ ID NO:13.

[0108] In further embodiments, the anti-CD19 heavy chain-only antibody of the invention comprises any of the heavy chain variable region amino acid sequences of SEQ ID NOs: 14 to 21 (FIG. 2).

[0109] In yet another embodiment, an anti-CD19 heavy chain-only antibody of the invention comprises the heavy chain variable region sequence of SEQ ID NO:17.

[0110] In some embodiments, the CDR sequences of the anti-CD19 heavy chain-only antibodies of the invention comprise one or two amino acid substitutions relative to the CDR1, CDR2, and / or CDR3 sequence, or set of CDR1, CDR2, and CDR3 sequences, of any one of SEQ ID NOS: 1-13 (Figure 1). In some embodiments, the heavy chain-only anti-CD19 antibodies herein comprise a heavy chain variable region sequence having at least about 85% identity, at least 90% identity, at least 95% identity, at least 98% identity, or at least 99% identity to any of the heavy chain variable region sequences of SEQ ID NOS: 14-21 (shown in Figure 2).

[0111] In some embodiments, bispecific or multispecific antibodies are provided, which can have any of the forms discussed herein, including, but not limited to, bispecific three-chain antibody-like molecules. In some embodiments, a bispecific antibody can comprise at least one heavy chain variable region that has binding specificity for CD19 and at least one heavy chain variable region that has binding specificity for a protein other than CD19. In some embodiments, a bispecific antibody can comprise a heavy / light chain pair that has binding specificity for a first antigen and a heavy chain derived from a heavy-chain-only antibody that comprises an Fc portion that does not contain a CH1 domain but includes a CH2 and / or CH3 and / or CH4 domain, and an antigen-binding domain that binds to an epitope of a second antigen or a different epitope of the first antigen. In one specific embodiment, a bispecific antibody comprises a heavy / light chain pair that has binding specificity for an antigen on an effector cell (e.g., CD3 protein on a T cell) and a heavy chain derived from a heavy-chain-only antibody that comprises an antigen-binding domain that has binding specificity for CD19.

[0112] In some embodiments in which the protein of the invention is a bispecific antibody, one arm (one binding moiety) of the antibody may be specific for human CD19, and the other arm may be specific for a target cell, a tumor-associated antigen, a targeting antigen (e.g., an integrin), a pathogen antigen, a checkpoint protein, etc. Target cells specifically include, but are not limited to, cancer cells, including cells from hematological tumors, e.g., B-cell tumors, as described below.

[0113] In some embodiments, the proteins of the invention comprise any one of the Fc region sequences shown below corresponding to native sequence human IgG1, native sequence human IgG4, variant sequence human IgG1 engineered to reduce one or more effector functions, and variant sequence human IgG4 engineered to reduce one or more effector functions.

[0114] TIFF0007737488000001.tif223166

[0115] The scope of the present invention encompasses bispecific antibodies in various formats, including, but not limited to, single-chain polypeptides, two-chain polypeptides, three-chain polypeptides, four-chain polypeptides, and multiples thereof. Bispecific antibodies herein specifically include T cell bispecific antibodies that bind to CD19, which is selectively expressed on mature B cells, and CD3 (anti-CD19 x anti-CD3 antibodies). Such antibodies induce potent T cell-mediated killing of cells expressing CD19.

[0116] Preparation of anti-CD19 heavy chain antibody Heavy chain antibodies of the present invention can be prepared by methods known in the art. In a preferred embodiment, the heavy chain antibodies of the present invention are produced by transgenic animals, including transgenic mice and rats, preferably rats, in which endogenous immunoglobulin genes have been knocked out or disabled. In a preferred embodiment, the heavy chain antibodies of the present invention are produced in UniRat™. UniRat™ silences endogenous immunoglobulin genes and expresses a diverse, naturally optimized repertoire of fully human HCAbs using a human immunoglobulin heavy chain transgene locus. While rat endogenous immunoglobulin loci can be knocked out or silenced using various techniques, in UniRat™, zinc finger (endo)nuclease (ZNF) technology is used to inactivate the endogenous rat heavy chain J locus, light chain Cκ locus, and light chain Cλ locus. IgH and IgL knockout (KO) strains can be generated by microinjecting ZNF constructs into oocytes. For details, see, e.g., Geurts et al., 2009, Science 325:433. Characterization of Ig heavy chain knockout rats has been reported by Menoret et al., 2010, Eur. J. Immunol. 40:2932-2941. An advantage of ZNF technology is that non-homologous end joining, which silences genes or loci by deletions of up to several kb, can also provide target sites for homologous integration (Cui et al., 2011, Nat Biotechnol 29:64-67). Human heavy chain antibodies produced in UniRat™ are called UniAbs™ and can bind to epitopes that cannot be targeted by conventional antibodies. Their high specificity, affinity, and small size make UniAbs™ ideal for mono- and multispecific applications.

[0117] In addition to UniAbs™, the present specification specifically includes heavy chain-only antibodies lacking camelid VHH frameworks and mutations, as well as their functional VH regions. Such heavy chain-only antibodies can be produced in transgenic rats or mice containing a fully human heavy chain-only locus, as described, for example, in WO 2006 / 008548, although other transgenic mammals, such as rabbits, guinea pigs, and rats, can also be used, with rats and mice being preferred. Heavy chain-only antibodies containing these VHH or VH functional fragments can be produced by recombinant DNA technology by expression of encoding nucleic acids in suitable eukaryotic or prokaryotic hosts, including, for example, mammalian cells (e.g., CHO cells), E. coli, or yeast.

[0118] Heavy-chain-only antibody domains combine the advantages of antibodies and small molecule drugs: they can be monovalent or multivalent, have low toxicity, and are inexpensive to manufacture. Their small size allows for easy administration, including oral or topical administration, and they are characterized by high stability, including gastrointestinal stability, and their half-lives can be tailored to the desired use or indication. Furthermore, VH and VHH domains of HCAbs can be produced cost-effectively.

[0119] In certain embodiments, heavy chain antibodies of the invention, including UniAbs™, have a substitution of the native amino acid residue at the first position of the FR4 region (amino acid position 101 according to the Kabat numbering system) with another amino acid residue that can disrupt the surface-exposed hydrophobic patch associated with the native amino acid residue at that position, either containing the native amino acid residue at that position or with another amino acid residue that can disrupt the surface-exposed hydrophobic patch associated with the native amino acid residue. While such a hydrophobic patch is normally buried at the interface with the antibody's light chain constant region, in HCAbs it is surface-exposed, at least in part favoring undesired aggregation of HCAbs and light chain association. The substituted amino acid residue is preferably charged, more preferably positively charged, such as lysine (Lys, K), arginine (Arg, R), or histidine (His, H), preferably arginine (R). In a preferred embodiment, heavy chain-only antibodies derived from transgenic animals contain a Trp to Arg mutation at position 101. The resulting HCAbs preferably have high antigen-binding affinity and solubility under physiological conditions without aggregation.

[0120] As part of this invention, human IgG anti-CD19 heavy chain antibodies with unique sequences derived from UniRat™ animals (UniAb™) were identified that bind to human CD19 in ELISA (recombinant CD19 extracellular domain) protein and cell binding assays. The identified heavy chain variable region (VH) sequences (see Figure 2) are positive for human CD19 protein binding and / or binding to CD19+ cells, but are all negative for binding to cells that do not express CD19.

[0121] The antibodies described herein bind to the CD19-positive Burkitt's lymphoma cell lines Daudi (ATCC® CCL-213™), Raji (ATCC® CCL-86™), and Ramos (ATCC® CRL-1596™), and some exhibit cross-reactivity with the CD19 protein of cynomolgus monkeys. Furthermore, the antibodies described herein can be engineered to confer cross-reactivity with the CD19 protein of any animal species, if desired.

[0122] Anti-CD19 heavy chain antibodies, such as the UniAbs™ herein, have a Kd of about 10 -6 ~about 10 -10、 about 10 -6 ~about 10 -9 , about 10 -6 ~about 10 -8 , about 10 -8 ~about 10 -11 , about 10 -8 ~about 10 -10 , about 10 -8 ~about 10 -9 , about 10 -9 ~about 10 -11 , about 10 -9 ~about 10 -10 , or any value within these ranges, inclusive, approximately 10 -6 ~about 10 -11 The affinity selection can be confirmed by biological evaluation to modulate, e.g., block, the biological activity of CD19, including in vitro assays, preclinical models, and clinical trials, as well as evaluation of potential toxicity.

[0123] Heavy chain antibodies that bind to non-overlapping epitopes on the CD19 protein, e.g., UniAbs™, can be identified by competitive binding assays such as enzyme-linked immunosorbent assays (ELISA assays) or flow cytometry competitive binding assays. For example, competition between a known antibody that binds to a target antigen and an antibody of interest can be utilized. Using this technique, a set of antibodies can be divided into those that compete with the reference antibody and those that do not. Non-competing antibodies are identified as those that bind to a different epitope that does not overlap with the epitope bound by the reference antibody. Often, one antibody is immobilized and allowed to bind to the antigen, and a second, labeled (e.g., biotinylated) antibody is tested for its ability to bind to the captured antigen in an ELISA assay. This can also be done using surface plasmon resonance (SPR) platforms such as the ProteOn XPR36 (BioRad, Inc), Biacore2000 and BiacoreT200 (GE Healthcare Life Sciences), and MX96 SPR Imager (Ibis Technologies BV), as well as biolayer interferometry platforms such as Octet Red384 and Octet HTX (ForteBio, Pall Inc). For further details, see the Examples herein.

[0124] Generally, an antibody "competes" with a reference antibody if it reduces binding of the reference antibody to a target antigen by about 15-100%, as measured by standard methods, such as the competitive binding assays described above. In various embodiments, the relative inhibition is at least about 15%, at least about 20%, at least about 25%, at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or more.

[0125] Pharmaceutical Compositions, Uses and Methods of Treatment Another aspect of the present invention is to provide pharmaceutical compositions comprising one or more antibodies of the present invention in admixture with a suitable pharmaceutically acceptable carrier. As used herein, a pharmaceutically acceptable carrier includes, but is not limited to, an adjuvant, a solid carrier, water, a buffer, or any other carrier used in the art for carrying therapeutic ingredients, or a combination thereof.

[0126] In one embodiment, the pharmaceutical composition comprises a heavy chain antibody (e.g., UniAb™) that binds to CD19. In another embodiment, the pharmaceutical composition comprises a multispecific (including bispecific) heavy chain antibody (e.g., UniAb™) that has binding specificities for two or more non-overlapping epitopes on the CD19 protein. In a preferred embodiment, the pharmaceutical composition comprises a multispecific (including bispecific) heavy chain antibody (e.g., UniAb™) that has binding specificity for CD19 and binding specificity for a binding target on an effector cell (e.g., a binding target on a T cell, e.g., the CD3 protein on a T cell).

[0127] Pharmaceutical compositions of antibodies used according to the present invention are prepared for storage by mixing the protein having the desired purity, for example, in the form of a lyophilized formulation or aqueous solution, with any pharmaceutically acceptable carrier, excipient, or stabilizer (see, for example, Remington's Pharmaceutical Sciences 16th edition, Osol, A. Ed. (1980)). Acceptable carriers, excipients, or stabilizers are non-toxic to the recipient at the dosages and concentrations used, and include buffers such as phosphate, citrate, and other organic acids; antioxidants including ascorbic acid and methionine; preservatives (such as 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); low molecular weight (less than about 10 residues) polypeptides; serum albumin, gelatin, etc. or proteins such as 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 dextrins; chelating agents such as EDTA; sugars such as sucrose, mannitol, trehalose, or sorbitol; salt-forming counterions such as sodium; metal complexes (e.g., Zn-protein complexes); and / or non-ionic surfactants such as TWEEN™, PLURONICS™, or polyethylene glycol (PEG).

[0128] Pharmaceutical compositions for parenteral administration are preferably sterile, substantially isotonic, and manufactured under Good Manufacturing Practice (GMP) conditions. Pharmaceutical compositions can be provided in unit dosage form (i.e., a single administration dose). The formulation will depend on the route of administration selected. The antibodies herein can be administered by intravenous injection or infusion or subcutaneous administration. For injection administration, the antibodies herein can be formulated as an aqueous solution, preferably in a physiologically compatible buffer to reduce discomfort at the injection site. The solution can include carriers, excipients, or stabilizers as described above. Alternatively, the antibodies can be in lyophilized form for reconstitution with a suitable vehicle, such as sterile pyrogen-free water, prior to use.

[0129] Antibody formulations are described, for example, in U.S. Patent No. 9,034,324. Similar formulations can be used for heavy chain antibodies, including the UniAbs™ of the present invention. Subcutaneous antibody formulations are described, for example, in U.S. Patent No. 20160355591 and U.S. Patent No. 20160166689.

[0130] How to use The heavy chain-only anti-CD19 antibodies, multispecific antibodies, and pharmaceutical compositions described herein can be used to treat diseases and conditions characterized by expression of CD19, including, but not limited to, the conditions and diseases further described herein.

[0131] CD19 is a cell surface receptor expressed on all human B cells but not on plasma cells. CD19 has a relatively large, 240-amino acid cytoplasmic tail. The extracellular Ig-like domain is separated by a potential disulfide-linked non-Ig-like domain and an N-linked carbohydrate attachment site. The cytoplasmic tail contains at least nine tyrosine residues near the C-terminus, some of which have been shown to be phosphorylated. Along with CD20 and CD22, CD19's restricted expression in the B-cell lineage makes it an attractive target for the treatment of B-cell malignancies. Its observed expression in many hematological malignancies makes it a promising target for antibody-based therapy.

[0132] In one aspect, the CD19 heavy chain antibodies (e.g., UniAbs™) and pharmaceutical compositions herein can be used to treat hematological malignancies characterized by expression of CD19, including, but not limited to, diffuse large B-cell lymphoma (DLBCL), non-Hodgkin's lymphoma, B-cell chronic lymphocytic leukemia (CLL), and B-cell acute lymphoblastic leukemia (ALL).

[0133] Diffuse large B-cell lymphoma (DLBCL or DLBL) is the most common form of non-Hodgkin's lymphoma in adults (Blood 1997 89(11):3909-18), with an estimated annual incidence of 7-8 cases per 100,000 people per year in the United States and the United Kingdom. The disease is characterized as an aggressive cancer that can arise in almost any part of the body. The cause of DLBCL is poorly understood; it can arise from malignant transformation of normal B cells as well as other types of lymphoma or leukemia cells. Treatment approaches typically involve chemotherapy and radiation, with an overall 5-year median survival rate of approximately 58% for adults. While some monoclonal antibodies have shown promise in the treatment of DLBCL, consistent clinical efficacy has yet to be conclusively demonstrated. Therefore, there is a strong need for new treatments, including immunotherapy, for DLBCL.

[0134] In another aspect, the CD19 heavy chain antibodies (e.g., UniAbs™) and pharmaceutical compositions herein can be used to treat autoimmune diseases characterized by pathogenic B cells that express CD19, including, but not limited to, systemic lupus erythematosus (SLE), rheumatoid arthritis (RA), and multiple sclerosis (MS).

[0135] The effective dose of the compositions of the present invention for treating a disease will vary depending on many different factors, including the means of administration, the target site, the physiological condition of the patient, whether the patient is human or animal, other drugs administered, and whether the treatment is prophylactic or therapeutic. Typically, the patient is a human, although non-human mammals, such as companion animals, e.g., dogs, cats, horses, and laboratory mammals, e.g., rabbits, mice, rats, and the like, can also be treated. Therapeutic doses may be titrated to optimize safety and efficacy.

[0136] The dosage can be easily determined by those skilled in the art and can be varied as needed, for example, to accommodate changes in the subject's response to treatment. The amount of active ingredient that can be combined with the carrier material to produce a single dosage form will vary depending on the host treated and the particular mode of administration. Unit dosage forms generally contain about 1 mg to about 500 mg of active ingredient.

[0137] In some embodiments, the therapeutic dosage of the agent can range from about 0.0001 to 100 mg / kg of host body weight, more typically 0.01 to 5 mg / kg. For example, the dosage can be 1 mg / kg or 10 mg / kg of body weight, or within the range of 1 to 10 mg / kg. Exemplary treatment regimens include administration once every two weeks, once a month, or once every three to six months. Therapeutics of the present invention are typically administered on multiple occasions. The interval between single doses can be weekly, monthly, or yearly. Alternatively, the intervals can be irregular, as indicated by measuring the patient's blood levels of the therapeutic. Alternatively, the therapeutics of the present invention can be administered as sustained-release formulations, allowing for less frequent administration. The dosage and frequency depend on the half-life of the polypeptide in the patient.

[0138] Generally, compositions are prepared as injectables, either as liquid solutions or suspensions; solid forms suitable for dissolution or suspension in liquid vehicles prior to injection can also be prepared. The pharmaceutical compositions herein are suitable for intravenous or subcutaneous administration, either directly or after reconstitution of a solid (e.g., lyophilized) composition. The formulations can also be emulsified or encapsulated in liposomes or microparticles, such as polylactide, polyglycolide, or copolymers, to enhance adjuvant effect, as discussed above. See Langer, Science 249:1527, 1990 and Hanes, Advanced Drug Delivery Reviews 28:97-119, 1997. The agents of the present invention can also be administered in the form of depot injections or implants, which can be formulated to provide sustained or pulsatile release of the active ingredient. Pharmaceutical compositions are generally formulated as sterile, substantially isotonic, and in full compliance with all U.S. Food and Drug Administration Good Manufacturing Practice (GMP) regulations.

[0139] The toxicity of the antibodies and antibody constructs described herein can be determined by standard pharmaceutical procedures in cell cultures or experimental animals, for example, by determining the LD50 (the dose lethal to 50% of the population) or the LD100 (the dose lethal to 100% of the population). The dose ratio between toxic and therapeutic effects is the therapeutic index. Data obtained from these cell culture assays and animal studies can be used to determine a non-toxic dosage range for use in humans. The dosage of the antibodies described herein lies preferably within a range of circulating concentrations that include the effective dose with little or no toxicity. Dosage can vary within this range depending on the dosage form employed and the route of administration utilized. The exact formulation, route of administration, and dosage can be chosen by the individual physician in view of the patient's condition.

[0140] Compositions for administration generally contain the antibody or other clearing agent dissolved in a pharmaceutically acceptable carrier, preferably an aqueous carrier. A variety of aqueous carriers can be used, such as buffered saline. These solutions are sterile and generally free of undesirable material. These compositions can be sterilized by conventional, well-known sterilization techniques. The compositions can contain pharmaceutically acceptable auxiliary substances required to approximate physiological conditions, such as pH adjusting and buffering agents, toxicity adjusting agents, e.g., sodium acetate, sodium chloride, potassium chloride, calcium chloride, and sodium lactate. The concentration of the active agent in these formulations can vary widely and is selected primarily based on fluid volume, viscosity, weight, etc., depending on the particular mode of administration selected and the patient's needs (see, e.g., Remington's Pharmaceutical Science (15th ed., 1980) and Goodman & Gillman, The Pharmacological Basis of Therapeutics (Hardman et al., eds., 1996)).

[0141] Also included within the scope of the present invention are kits containing the active agents of the present invention and their formulations, as well as instructions for their use. The kits may further include at least one additional reagent, such as a chemotherapeutic agent. The kits typically include a label indicating the intended use of the contents of the kit. As used herein, the term "label" includes any writing or recorded material provided on or with the kit, or otherwise associated with the kit.

[0142] Now that the present invention has been fully described, it will be apparent to those skilled in the art that various changes and modifications can be made without departing from the spirit or scope of the invention. [Example]

[0143] Materials and Methods CD19 cell binding Binding to CD19-positive cells was assessed by flow cytometry (Guava easyCyte 8HT, EMD Millipore) using the Daudi cell line (ATCC). Briefly, 100,000 target cells were stained with a dilution series of purified UniAbs™ for 30 minutes at 4°C. After incubation, cells were washed twice with flow cytometry buffer (1X PBS, 1% BSA, 0.1% NaN3) and stained with goat F(ab')2 anti-human IgG conjugated to R-phycoerythrin (PE) (Southern Biotech, catalog no. 2042-09) to detect cell-bound antibodies. After 20 minutes of incubation at 4°C, cells were washed twice with flow cytometry buffer, and mean fluorescence intensity (MFI) was then measured by flow cytometry. EC50 values ​​were calculated using GraphPad Prism 7. Binding to cynomolgus monkey CD19-positive cells was measured using the same protocol with the following modifications. Specifically, the target cells were derived from CHO cells stably transfected to express the extracellular domain of cynomolgus monkey CD19, and each antibody was tested at a single concentration (approximately 1.7 μg / mL), so EC50 values ​​were not calculated.

[0144] Example 1: Genetically engineered rats expressing heavy chain-only antibodies A "human-rat" IgH locus was constructed and assembled in several parts, where modifications of the rat C region genes and the human J H downstream binding of V and subsequent human V H The 6-D segment region was then added upstream of the human V H Two BACs [BAC6 and BAC3] containing separate clusters of genes were cloned into human V H 6, all D, all J H , and a BAC designated Georg, encoding the assembled and modified region containing the modified rat Cγ2a / 1 / 2b (ΔC H 1).

[0145] Transgenic rats were generated that contained an artificial heavy chain immunoglobulin locus in an unrearranged form. H 1), IgG1(ΔC H 1), IgG2b (ΔC H 1) The gene is C H The transgenic rats lacked one segment of the IgE gene. The constant region genes IgE, IgA, and the 3' enhancer were contained in GeorgBAC. RT-PCR and serum analysis (ELISA) of the transgenic rats revealed productive rearrangement of the transgenic immunoglobulin loci and expression of heavy-chain antibodies of various isotypes in the serum. The transgenic rats were crossed with rats carrying mutated endogenous heavy and light chain loci previously described in U.S. Patent Publication No. 2009 / 0098134A1. Analysis of these animals demonstrated inactivation of rat immunoglobulin heavy and light chain expression and high-level expression of heavy-chain antibodies with variable regions encoded by human V, D, and J genes. Immunization of the transgenic rats resulted in high-titer serum responses of antigen-specific heavy-chain antibodies. These transgenic rats expressing heavy-chain antibodies containing human V, D, and J regions were designated UniRats™.

[0146] Example 2: Immunization CD19-mediated DNA immunization An expression vector containing the CD19 sequence was used to immunize six UniRat animals using a standard DNA-based immunization protocol. After 45 days of immunization, serum was collected from the rats and serum titers were measured.

[0147] Example 3: Binding to CD19-expressing cell lines Figure 4 summarizes the target binding activity of the described anti-CD19 heavy chain antibodies (HCAbs). Column 1 shows the clone ID of the HCAb. Column 2 shows binding to Raji cells, measured as fold over background MFI signal. Column 3 shows binding to Ramos cells, measured as fold over background MFI signal. Column 4 shows binding to CHO cells stably expressing human CD19, measured as fold over background MFI signal. Column 5 shows binding to CHO cells not expressing CD19 protein, measured as fold over background MFI signal.

[0148] Example 4: Bispecific antibody-mediated killing of Daudi human tumor cells by redirecting activated T cells CD19-positive tumor cell lines were dye-labeled and incubated with increasing amounts of bispecific antibodies in the presence of preactivated human T cells. The bispecific antibody consisted of an anti-CD3 binding arm paired with an anti-CD19 VH binding domain (clone ID: 334354), as shown in Figure 5B. Two CD22xCD3 bispecific antibodies of the same format were included as positive controls. The negative control antibody contained a VH binding domain that did not bind to CD19. CD22-negative K562 cells did not show specific lysis (data not shown).

[0149] Example 5: CD19 protein binding Kinetic experiments to determine antigen and antibody affinity were performed on a Biacore T100 instrument. Penta Anti-His mAb was coupled to a CM7 biosensor chip using standard amine coupling. Acro CD19(20-291) His-tagged (lot C52P2-7C1F1-GJ) was dissolved in 200 μl of water, diluted 1 / 100, and captured on the anti-His mAb chip. Clone ID number 334354 was tested at the highest concentration of 3.6 μM in a 3-fold dilution series. Data were fitted to a 1:1 interaction model, as shown in Figure 6.

[0150] Example 6: Tumor model Description of procedure: NOG mice were implanted intravenously with luciferase-labeled human tumor cells. Human PBMCs were injected 5 days after tumor implantation, and antibodies were administered on day 6. Mice were treated with anti-CD19xCD3 antibodies and negative control (NC) by intravenous injection of 10 μg per dose, 4 times per week. Tumor burden was assessed every 2-4 days for up to 1 month.

[0151] Animal and species selection: Experiments were performed in NOG mice engrafted with 15 million human PBMCs.

[0152] Sample size: At least five animals per group were exposed to tumors and treated with anti-CD19xCD3 or control antibodies. Previous biochemical and physiological studies have generally shown that a sample size of n = 4–6 animals provides adequate statistical power (i.e., 80% power) to detect a significant difference of 1.6 SD units between treatment conditions using a two-sample t-test with a two-sided significance level of 0.05. As shown in the data in Figure 7, anti-CD19xCD3 antibodies statistically significantly reduced tumor growth in animal models.

[0153] Example 7: In vitro cytotoxicity model CD19-positive (CD19+) tumor cell lines were labeled with a dye and incubated with increasing amounts of a bispecific antibody (CD19xCD3) in the presence of preactivated T cells. After 6 hours of incubation, fluorescence due to dye release was analyzed. As shown schematically in Figure 5B, the bispecific antibody consisted of an anti-CD3 binding arm (family F2B) paired with an anti-CD19 VH binding domain (334354). Two other bispecific antibodies were included: a) an anti-CD3 binding arm (family F1F) paired with an anti-CD19 VH binding domain (334354), and b) Blinsite. The results, shown in Figure 8, demonstrate a concentration-dependent increase in the percentage of target cell lysis for all bispecific antibodies tested. The percentage of target cell lysis increased at a faster rate as a function of antibody concentration for CD19(Id334354)xCD3F2B and CD19(Id334354)xCD3F1F compared with Blincytokines. Maximum lysis was similar for CD19(Id334354)xCD3F2B, CD19(Id334354)xCD3F1F, and B. truncatula.

[0154] Example 8: In vitro cytokine model CD19-positive (CD19+) tumor cell lines were incubated with increasing amounts of a bispecific antibody (CD19xCD3) in the presence of resting T cells for 24 hours. Post-incubation supernatants were collected and cytokines were measured. As shown schematically in Figure 5B, the bispecific antibody consisted of an anti-CD3 binding arm (family F2B) paired with an anti-CD19 VH binding domain (334354). Two other bispecific antibodies were included: a) an anti-CD3 binding arm (family F1F) paired with an anti-CD19 VH binding domain (334354), and b) Blinsite. The results, shown in Figure 9, demonstrate that the amount of cytokine release varied with each antibody and increased in a concentration-dependent manner. Specifically, the CD19(Id334354)xCD3F2B bispecific antibody exhibited the lowest level of cytokine release. Blincytes showed higher cytokine release as a function of antibody concentration, with the CD19(Id334354)xCD3F1F bispecific antibody showing the highest levels of cytokine release. Maximum cytokine production was highest with CD19(Id334354)xCD3F1F, followed by Blincytes, and lowest with CD19(Id334354)xCD3F2B.

[0155] While preferred embodiments of the present invention have been shown and described herein, it will be apparent to those skilled in the art that such embodiments are provided by way of example only. Numerous variations, changes, and substitutions will now occur to those skilled in the art without departing from the invention. It will be understood that various alternatives to the embodiments of the invention described herein may be employed in practicing the present disclosure. It is intended that the following claims define the scope of the invention, and that methods and structures within the scope of these claims and their equivalents be covered thereby.

Claims

1. 1. A multispecific antibody comprising an antigen-binding domain that binds to CD19, wherein the antigen-binding domain comprises a heavy chain variable region comprising the CDR1 sequence of SEQ ID NO: 4, the CDR2 sequence of SEQ ID NO: 10, and the CDR3 sequence of SEQ ID NO:

13.

2. 2. The multispecific antibody of claim 1 , wherein the heavy chain variable region comprises SEQ ID NO:

17.

3. The multispecific antibody of claim 1 or 2, which is bispecific.

4. The multispecific antibody of any one of claims 1 to 3, which has binding affinity to CD3.

5. A pharmaceutical composition comprising the multispecific antibody of any one of claims 1 to 4.

6. A pharmaceutical composition for treating a B cell disorder characterized by expression of CD19, comprising the multispecific antibody of any one of claims 1 to 4.

7. The pharmaceutical composition of claim 6, wherein the disease is diffuse large B-cell lymphoma (DLBCL).

8. The pharmaceutical composition of claim 6, wherein the disease is acute lymphoblastic leukemia (ALL).

9. The pharmaceutical composition of claim 6, wherein the disease is non-Hodgkin's lymphoma (NHL).

10. A polynucleotide encoding the multispecific antibody of any one of claims 1 to 4.

11. A vector comprising the polynucleotide of claim 10.

12. A cell comprising the vector of claim 11.

13. 1. A bispecific antibody comprising: a) a heavy chain / light chain pair that has binding specificity for CD3; and b) a heavy chain that comprises an antigen-binding domain that has binding specificity for CD19, wherein the antigen-binding domain comprises a heavy chain variable region that comprises the CDR1 sequence of SEQ ID NO: 4, the CDR2 sequence of SEQ ID NO: 10, and the CDR3 sequence of SEQ ID NO:

13.

14. 14. The bispecific antibody of claim 13, wherein the heavy chain variable region comprises SEQ ID NO:

17.

15. A pharmaceutical composition comprising the bispecific antibody of claim 13 or 14.

16. A pharmaceutical composition for the treatment of a B cell disorder characterized by expression of CD19, comprising the bispecific antibody of claim 13 or 14.

17. 17. The pharmaceutical composition of claim 16, wherein the disease is diffuse large B-cell lymphoma (DLBCL).

18. 17. The pharmaceutical composition of claim 16, wherein the disease is acute lymphoblastic leukemia (ALL).

19. 17. The pharmaceutical composition of claim 16, wherein the disease is non-Hodgkin's lymphoma (NHL).

20. A polynucleotide encoding the bispecific antibody of claim 13 or 14.

21. A vector comprising the polynucleotide of claim 20.

22. A cell comprising the vector of claim 21.

23. An antibody that specifically binds to CD19, comprising a heavy chain variable domain comprising the CDR1 sequence of SEQ ID NO: 4, the CDR2 sequence of SEQ ID NO: 10, and the CDR3 sequence of SEQ ID NO: 13, within a human VH framework.

24. 24. The antibody of claim 23, wherein the heavy chain variable region comprises SEQ ID NO:

17.

25. A pharmaceutical composition comprising the antibody of claim 23 or 24.

26. A pharmaceutical composition for treating a B cell disorder characterized by expression of CD19, comprising an antibody according to claim 23 or 24.

27. 27. The pharmaceutical composition of claim 26, wherein the disease is diffuse large B-cell lymphoma (DLBCL).

28. 27. The pharmaceutical composition of claim 26, wherein the disease is acute lymphoblastic leukemia (ALL).

29. 27. The pharmaceutical composition of claim 26, wherein the disease is non-Hodgkin's lymphoma (NHL).

30. A polynucleotide encoding the antibody of claim 23 or 24.

31. A vector comprising the polynucleotide of claim 30.

32. A cell comprising the vector of claim 31.

33. 25. Use of a multispecific antibody according to any one of claims 1 to 4, a bispecific antibody according to claim 13 or 14, or an antibody according to claim 23 or 24 in the preparation of a medicament for the treatment of a B-cell disorder characterized by expression of CD19.

34. A kit for treating a B-cell disorder characterized by expression of CD19, comprising the multispecific antibody of any one of claims 1 to 4, the bispecific antibody of claim 13 or 14, the antibody of claim 23 or 24, or the pharmaceutical composition of claim 5, 15 or 25, and instructions for use.

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