Antibodies that bind to human and monkey CD3 and uses thereof

Anti-CD3 antibodies with optimized CDR sequences and modified Fc regions for reduced cytokine release enhance therapeutic efficacy and safety in bispecific molecules targeting CD3 and CD20, addressing severe CRS and enhancing treatment of autoimmune and cancerous conditions.

JP7753601B2Active Publication Date: 2025-10-15BEIJING MABWORKS BIOTECH CO LTD
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Patent Information

Application Number
JP2023537378
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-23
Filing Date
2021-08-30
Publication Date
2025-10-15
Estimated Expiration
2041-08-30

AI Technical Summary

Technical Problem

Existing bispecific anti-CD3 and CD20 antibodies cause severe cytokine release syndrome (CRS) due to high CD3-binding affinity and antibody cross-linking, limiting their therapeutic efficacy and safety in treating inflammatory diseases and cancers.

Method used

Development of anti-CD3 antibodies or antigen-binding portions with high CD3ε binding affinity and reduced cytokine release, optimized for use in bispecific molecules targeting CD3 and CD20, featuring specific CDR sequences and modified Fc regions to minimize FcR binding.

Benefits of technology

The antibodies induce potent target cell killing with reduced toxicity, providing a better therapeutic window for treating autoimmune diseases, transplant rejection, and cancers like B-cell lymphomas and leukemias.

✦ Generated by Eureka AI based on patent content.

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Abstract

Disclosed are monoclonal antibodies or antigen-binding portions thereof that bind to human and monkey CD3, and the use of the antibodies or antigen-binding portions thereof in the treatment of inflammatory diseases and in the preparation of bispecific antibodies. Bispecific antibodies, e.g., against CD3 and CD20, comprising the antibodies or antigen-binding portions thereof, and the use of the bispecific antibodies in the treatment of diseases, such as cancer, are also provided.
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Description

[Technical Field]

[0001] Related Applications and Incorporation by Reference This application claims priority from Chinese Patent Application No. 202011540874.8, filed on December 23, 2020.

[0002] The above-referenced applications, and all documents cited therein or cited during prosecution thereof ("Application Citations"), and all documents cited or referenced herein (including, but not limited to, all literature sources, patents, and published patent applications cited herein) ("Citations Therein"), and all documents cited or referenced in the Citations Therein, together with any manufacturer's instructions, descriptions, product specifications, and product sheets for any products mentioned herein or in any documents incorporated by reference herein, are hereby incorporated by reference herein and may be used in the practice of this invention. More specifically, all referenced documents are incorporated by reference to the same extent as if each individual document was specifically and individually indicated to be incorporated by reference. Any Genbank sequences referred to in this disclosure are incorporated by reference by making them the Genbank sequences as of the earliest effective filing date of this disclosure.

[0003] The present disclosure relates to isolated monoclonal antibodies, or antigen-binding portions thereof, that bind to human and monkey CD3ε, and uses of the antibodies or antigen-binding portions thereof in treating or alleviating inflammatory diseases, such as autoimmune diseases, or suppressing or eliminating transplant rejection. The present disclosure also provides bispecific antibodies comprising antibodies or antigen-binding portions thereof, e.g., directed against CD3 and CD20, and uses of such bispecific antibodies in treating diseases, such as cancer. [Background technology]

[0004] (T cells and CD3) The adaptive immune system has two major immune mechanisms: cellular and humoral. Cellular immunity is mediated by T cells, which are generated from hematopoietic stem cells present in the bone marrow (and occasionally the extraembryonic yolk sac and fetal liver). Hematopoietic stem cells differentiate into multipotent progenitor cells and then common lymphoid progenitor cells, which migrate to the thymus and mature. Common lymphoid progenitor cells that survive and leave the thymus become immunocompetent T cells.

[0005] Multiple studies have shown that T cell activation, proliferation, and differentiation (into effector cells) occur through the simultaneous engagement of the T cell receptor (TCR) and costimulatory molecules on T cells, such as CD28, with MHC / peptide complexes and costimulatory molecules, respectively, on antigen-presenting cells.

[0006] The T cell receptor complex contains a TCR molecule and a CD3 molecule. The TCR molecule consists of an alpha (α) chain and a beta (β) chain, or a gamma (γ) chain and a delta (δ) chain. Each chain contains an extracellular variable region responsible for binding to antigenic peptides, an extracellular constant region proximal to the cell membrane, and a short cytoplasmic tail. Due to the short cytoplasmic tail, the TCR requires CD3 to mediate signal transduction. The CD3 molecule is composed of a gamma (γ) chain, a delta (δ) chain, two epsilon (ε) chains, and two zeta (ζ) chains, and forms three dimers, εγ, εδ, and ζζ, in the TCR / CD3 complex. The CD3γ, CD3δ, and CD3ε chains are all type I transmembrane proteins of the immunoglobulin superfamily that contain immunoglobulin domains. The intracellular tails of the CD3γ, CD3δ, CD3ε, and CD3ζ chains contain a total of 10 immunoreceptor tyrosine-based activation motifs (ITAMs), the phosphorylation of which allows the CD3 chains to bind to ZAP70, a key kinase in the T cell signaling cascade. The CD3ε chain contains an epitope conserved across species that is bound by most anti-CD3 antibodies, including the first human anti-CD3 antibody, muromonab-CD3 (or OKT3) (Jones M et al., (1993) Journal of Immunology 150(12):5429-5435). (CD3 target antibody)

[0007] Because the CD3 molecule functions to stabilize the TCR structure and execute signal transduction, many antibodies against CD3, which regulates T cell activation signaling, have been developed with the aim of preventing or at least suppressing unwanted immune responses, thereby alleviating inflammatory and / or autoimmune diseases. For example, OKT3 has been approved to prevent / eliminate graft rejection and treat / alleviate autoimmune diseases.

[0008] Anti-CD3 antibodies can be combined with functional moieties that target disease-associated antigens, such as tumor-associated antigens, to form bispecific molecules. The bispecific molecules physically link T cells to the disease-associated antigens, resulting in activation of T cells surrounding the disease-associated cells and, therefore, T cell-mediated killing of these cells. For example, bispecific molecules specific for both CD3 molecules and tumor-associated antigens can draw T cells closer to tumor cells, activating them to release supramolecular attack particles (SMAPs), which contain more than 280 proteins. SMAPs exocytose granzymes and perforin, which form pores in the plasma membrane of target cells and mediate the entry of granzymes into the cytoplasm of the target cells (S. Balint et al., (2020) Science 368(6493):897-901). (Adverse reactions induced by anti-CD3 antibodies)

[0009] Anti-CD3-activated T cells secrete cytokines such as IL-2, IFN-γ, and TNF-α, which kill tumor cells while promoting cell proliferation and differentiation. T cell proliferation and differentiation, on the one hand, generate more T cells that kill tumor cells, but on the other hand, cause severe toxicity, i.e., cytokine release syndrome (CRS), in subjects receiving anti-CD3 therapy. Clinical signs and symptoms of CRS include mild or life-threatening fever, nausea, headache, rash, tachycardia, hypotension, and dyspnea. Severe CRS and neurotoxicity were observed in clinical trials of Blincyto® blinatumomab, a bispecific T cell-inducing antibody against CD19 and CD3. Specifically, neurotoxicity occurred in approximately 50% of subjects receiving therapy.

[0010] Such CRS observed in bispecific therapy also occurred in therapy using monospecific anti-CD3 antibodies such as OKT3, and CRS was thought to be related to antibody cross-linking via binding to Fc receptors (FcRs) (Herold KC et al., (2003) J Clin Invest. 111(3):409-418). Therefore, in subsequent antibody development, the Fc regions of anti-CD3 antibodies such as teplizumab were engineered to have weak FcR binding ability.

[0011] However, modifications to the Fc region of monospecific anti-CD3 antibodies are not applicable to bispecific anti-CD3 antibodies because binding of functional moieties targeting disease-associated antigens to target cells causes antibody cross-linking and induces massive cytokine release by T cells. Therefore, finding an anti-CD3 antibody or its antigen-binding portion that has high CD3-binding affinity but induces less cytokine release is crucial for the development and clinical use of bispecific anti-CD3 antibodies. (Bispecific anti-CD3 antibody targeting CD3 and CD20)

[0012] CD20 is a B cell marker that is expressed on the surface of malignant and non-malignant immature and mature B cells, but not on hematopoietic stem cells, pro-B cells, or normal plasma cells. CD20 shedding or internalization is not observed upon binding of anti-CD20 antibodies. In this regard, CD20 is a promising antigen for the diagnosis and / or treatment of B cell lymphoma and B cell leukemia.

[0013] Bispecific antibodies targeting both CD3 and CD20 can physically link T cells and CD20-positive tumor cells, such as malignant B cells, and induce T cell activation and T cell-mediated attack on CD20-positive B malignancies.

[0014] However, as mentioned above, administration of such antibodies can inevitably cause severe toxicity. In a multicenter, open-label, phase I / Ib study (NCT02500407) evaluating the safety and pharmacokinetics of the CD3 and CD20-binding antibody mosunetuzumab, CRS was observed in 28.9% of patients receiving such therapy. In another multicenter, open-label, phase I / Ib study to evaluate the efficacy, safety, tolerability, and pharmacokinetics of the T cell-engaging bispecific antibody CD20-TCB in the treatment of relapsed or refractory (R / R) B-cell non-Hodgkin lymphoma (NHL), CRS occurred in 67.9% of patients.

[0015] Therefore, there is an urgent need for bispecific CD3 and CD20 binding antibodies that have potent antitumor effects and cause moderate adverse drug reactions. To construct such bispecific antibodies, CD3 antibodies or their antigen-binding portions that have high CD3 affinity and induce less cytokine release are required, and methods for combining CD3 and CD20 antibodies should be optimized. Such antibodies are expected to provide a better therapeutic window for CD3-CD20 targeted therapy.

[0016] Citation or identification of any document in this application is not an admission that such document is available as prior art to the present invention. Summary of the Invention

[0017] The inventors of the present disclosure have discovered an anti-CD3 antibody, or antigen-binding portion thereof, that specifically binds to human and monkey CD3ε. Compared to prior art anti-CD3 antibodies, the antibodies, or antigen-binding portions thereof, of the present disclosure have similar, if not higher, human / monkey CD3ε binding affinity and therefore provide similar, if not better, efficacy in treating inflammatory and / or autoimmune diseases. More importantly, the antibodies, or antigen-binding portions thereof, of the present disclosure provide similar or higher CD3 binding affinity while inducing suppression of T cell activation and resulting in less severe side effects. Bispecific antibodies using the antibodies, or antigen-binding portions thereof, of the present disclosure also result in less toxicity to the body.

[0018] Without wishing to be bound by any theory, the inventors of the present disclosure believe that the CD3ε epitope to which the antibodies, or antigen-binding portions thereof, of the present disclosure bind, and / or the configuration of the antibody-antigen-cell complex contribute to the high CD3ε binding affinity of the antibodies or antigen-binding portions thereof and reduced cytokine release by T cells. When the antibodies, or antigen-binding portions thereof, of the present disclosure are part of a bispecific antibody against CD3ε and a disease-associated antigen, such as CD20, they retain these characteristics, i.e., the bispecific antibody exhibits high killing potency against target cells and causes less cytokine release.

[0019] Thus, in a first aspect, the present disclosure provides an antibody that binds to CD3ε and can have (i) a VH CDR1 region, a VH CDR2 region, and a VH CDR3 region, wherein the VH CDR1 region, the VH CDR2 region, and the VH CDR3 region are a heavy chain variable region, the CDR3 region of which may comprise an amino acid sequence having at least 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% identity to (1) SEQ ID NOs: 1 (X1=S), 2 (X1=D), and 3 (X1=L, X2=Y), respectively; (2) SEQ ID NOs: 1 (X1=T), 2 (X1=I), and 3 (X1=L, X2=Y), respectively; (3) SEQ ID NOs: 1 (X1=T), 2 (X1=D), and 3 (X1=I, X2=W), respectively; or (4) SEQ ID NOs: 1 (X1=T), 2 (X1=I), and 3 (X1=I, X2=Y), respectively; and / or (ii) a VL CDR1 region, a VL The VL CDR1 region, the VL CDR2 region, and the VL CDR3 region may have: (1) SEQ ID NO: 4 (X1=D, X2=S), 5 (X1=Q, X2=R, X3=S), and 6 (X1=V), respectively; (2) SEQ ID NO: 4 (X1=Q, X2=N), 5 (X1=K, X2=Q, X3=R), and 6 (X1=V), respectively; (3) SEQ ID NO: 4 (X1=K, X2=S), 5 (X1=N, X2=L, X3=H), and 6 (X1=A), respectively; or (4) SEQ ID NO: 4 (X1=R,

[0013] Provided is an isolated monoclonal antibody, e.g., a murine, chimeric, or humanized antibody, or an antigen-binding portion thereof, that can comprise a light chain variable region that can comprise an amino acid sequence having at least 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% identity to X1 (X2=N), 5 (X1=R, X2=L, X3=S), and 6 (X1=V).

[0020] An antibody or antigen-binding portion thereof of the disclosure can comprise a heavy chain variable region having a VH CDR1 region, a VH CDR2 region, and a VH CDR3 region, and a light chain variable region having a VL CDR1 region, a VL CDR2 region, and a VL CDR3 region, wherein VH CDR1, VH CDR2, VH CDR3, VL CDR1, VL CDR2, and VL CDR3 is (1) SEQ ID NO: 1 (X1=S), 2 (X1=D), 3 (X1=L, X2=Y), 4 (X1=D, X2=S), 5 (X1=Q, X2=R, X3=S), and 6 (X1=V), respectively; (2) SEQ ID NO: 1 (X1=T), 2 (X1=I), 3 (X1=L, X2=Y), 4 (X1=Q, X2=N), 5 (X1=K, X2=Q, X3=R), and 6 (X1=V), respectively; (3) SEQ ID NO: 1 (X1=T), 2 (X1=D), 3 (X1=I, X2=W), 4 (X1=Q, X2=N), 5 (X1=K, X2=Q, X3=R), and 6 (X1=V), respectively. X1=K, X2=S), 5 (X1=N, X2=L, X3=H), and 6 (X1=A); or (4) may comprise an amino acid sequence having at least 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% identity to SEQ ID NOs: 1 (X1=T), 2 (X1=I), 3 (X1=I, X2=Y), 4 (X1=R, X2=N), 5 (X1=R, X2=L, X3=S), and 6 (X1=V), respectively.

[0021] The heavy chain variable region may have an amino acid sequence that is at least 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% identical to any one of SEQ ID NOs: 7 to 14.

[0022] The light chain variable region may have an amino acid sequence that is at least 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% identical to any one of SEQ ID NOs: 15 to 21.

[0023] An antibody or antigen-binding portion thereof of the present disclosure can comprise a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region and the light chain variable region can have an amino acid sequence having at least 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% identity to (1) SEQ ID NOs: 7 and 15, respectively; (2) SEQ ID NOs: 8 and 16, respectively; (3) SEQ ID NOs: 9 and 17, respectively; (4) SEQ ID NOs: 9 and 18, respectively; (5) SEQ ID NOs: 10 and 17, respectively; (6) SEQ ID NOs: 10 and 18, respectively; (7) SEQ ID NOs: 11 and 19, respectively; (8) SEQ ID NOs: 12 and 20, respectively; (9) SEQ ID NOs: 13 and 20, respectively; or (10) SEQ ID NOs: 14 and 21, respectively.

[0024] The antibodies or antigen-binding portions thereof of the present disclosure can comprise a heavy chain constant region and / or a light chain constant region. In certain embodiments, the antibodies or antigen-binding portions thereof contain a heavy chain constant region and / or a light chain constant region with reduced / weak FcR binding affinity. In certain embodiments, the antibodies or antigen-binding portions thereof contain a heavy chain constant region and / or a light chain constant region with no FcR binding affinity. The heavy chain constant region with weak or no FcR binding affinity is human IgG1(N297A), for example, human IgG1(L234A+L235A) having the amino acid sequence of SEQ ID NO: 22 (X1=A, X2=A, X3=N, X4=P), or human IgG1(L234A+L235A+P329G) having the amino acid sequence of SEQ ID NO: 22 (X1=A, X2=A, X3=N, X4=G), for example, human IgG1(N297A), for example, human IgG1(L234A+L235A) having the amino acid sequence of SEQ ID NO: 22 (X1=A, X2=A, X3=N, X4=G). The heavy chain constant region may be a human IgG1 (L234A+L235A+N297A) having the amino acid sequence of SEQ ID NO: 22 (X1=A, X2=A, X3=A, X4=P), for example, a human IgG1 (L234A+L235A+N297A+P329G) having the amino acid sequence of SEQ ID NO: 22 (X1=A, X2=A, X3=A, X4=G), a human IgG2 (V234A+V237A), or a human IgG1 (L234A+V235E) heavy chain constant region, or a functional fragment thereof. The light chain constant region may be a κ or λ light chain constant region, for example, a human κ or λ light chain constant region having the amino acid sequence of SEQ ID NO: 23 or 32, or a functional fragment thereof.

[0025] The antibodies, or antigen-binding portions thereof, of the present disclosure may be single chain variable fragment (scFv) antibodies, or antibody fragments such as Fab or F(ab')2 fragments.

[0026] The present disclosure also provides bispecific molecules that can comprise an antibody of the present disclosure, or an antigen-binding portion thereof, linked to a second functional moiety (e.g., a second antibody) that has a different binding specificity than the antibody of the present disclosure, or an antigen-binding portion thereof, e.g., a second functional moiety against a disease-associated antigen.

[0027] The bispecific molecule can target CD3ε and a disease-associated antigen. In certain embodiments, the disease-associated antigen is a tumor-associated antigen such as CD20, CD19, CD22, CD4, CD24, CD38, CD123, CD228, CD138, BCMA, GPC3, CEA, CD276, gp100, 5T4, GD2, EGFR, MUC-1, PSMA, EpCAM, MCSP, SM5-1, MICA, MICB, ULBP, and HER-2. In certain embodiments, the disease-associated antigen is an infectious disease-associated antigen such as CD4, BHsAg, LMP-1, and LMP2. In certain embodiments, the disease-associated antigen is an inflammatory disease-associated antigen such as IL17R and CD6. In certain embodiments, the disease-associated antigen is CD20.

[0028] A bispecific molecule may be a recombinant protein containing two antigen-binding domains linked via a linker. In certain embodiments, the two binding domains may be linked with or without a linker, for example in an scFv-scFv, Fab-Fab, or scFv-Fab format.

[0029] A bispecific molecule of the present disclosure may be a bispecific antibody that targets CD3 and CD20, containing a CD3ε-binding domain and a CD20-binding domain.

[0030] A bispecific antibody may contain one CD3ε-binding domain and one to five CD20-binding domains. In one embodiment, a bispecific antibody may contain one CD3ε-binding domain and two CD20-binding domains. In one embodiment, the CD20-binding domain is an antibody specific for CD20 or an antigen-binding portion thereof, such as an Fv and / or scFv. In one embodiment, the CD3-binding domain may be an anti-CD3 antibody of the present disclosure or an antigen-binding portion thereof, such as an Fv. The two CD20-binding domains may bind to the same or different antigen epitopes, may contain the same or different domain sequences, and / or may have the same or different antigen-binding domain formats.

[0031] In one embodiment, the CD3 binding domain may contain the CDR regions, heavy chain variable region, and light chain variable region of the present disclosure. In one embodiment, the CD20 binding domain contains 1) a heavy chain variable region having the amino acid sequence of SEQ ID NO:26, and 2) a light chain variable region having the amino acid sequence of SEQ ID NO:27.

[0032] The bispecific antibodies of the present disclosure that target CD3 and CD20 can be IgG-like antibodies.

[0033] In one embodiment, the bispecific antibody i) a first polypeptide comprising an anti-CD20 heavy chain variable region and a heavy chain constant region; ii) a second polypeptide comprising an anti-CD20 light chain variable region; iii) a third polypeptide comprising an anti-CD20 heavy chain variable region, an anti-CD20 light chain variable region, an anti-CD3ε heavy chain variable region, and a heavy chain constant region; and iv) a fourth polypeptide comprising an anti-CD3ε light chain variable region. and The anti-CD20 heavy chain variable region in the first polypeptide and the anti-CD20 light chain variable region in the second polypeptide associate to form an antigen-binding fragment for CD20, the anti-CD20 heavy chain variable region and the anti-CD20 light chain variable region in the third polypeptide associate to form an antigen-binding fragment for CD20, the anti-CD3ε heavy chain variable region in the third polypeptide and the anti-CD3ε light chain variable region in the fourth polypeptide associate to form an antigen-binding fragment for CD3ε, and the heavy chain constant region in the first polypeptide and the heavy chain constant region in the third polypeptide associate together, for example, via knob-into-hole, covalent bond, or disulfide bond.

[0034] The heavy chain constant region in the first polypeptide can be a heavy chain constant region with a knob, such as a human IgG1 heavy chain constant region with a T366W mutation or a functional fragment thereof. The heavy chain constant region in the first polypeptide can be a heavy chain constant region with a knob and weak or no FcR binding affinity, such as a human IgG1 heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 34. The heavy chain constant region in the third polypeptide can be a heavy chain constant region with a hole, such as a human IgG1 heavy chain constant region with T366S / L368A / Y407V mutations or a functional fragment thereof. The heavy chain constant region in the third polypeptide can be a heavy chain constant region with a hole and weak or no FcR binding affinity, such as a human IgG1 heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 33.

[0035] Alternatively, the heavy chain constant region in the first polypeptide may be a heavy chain constant region with a hole, such as a human IgG1 heavy chain constant region with T366S / L368A / Y407V mutations or a functional fragment thereof. The heavy chain constant region in the first polypeptide may be a heavy chain constant region with a hole and weak or no FcR binding affinity, such as a human IgG1 heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 33. The heavy chain constant region in the third polypeptide may be a heavy chain constant region with a knob, such as a human IgG1 heavy chain constant region with T366W mutation or a functional fragment thereof. The heavy chain constant region in the third polypeptide may be a heavy chain constant region with a knob and weak or no FcR binding affinity, such as a human IgG1 heavy chain constant region comprising the amino acid sequence of SEQ ID NO: 34.

[0036] The anti-CD20 heavy chain variable region and the anti-CD20 light chain variable region in the third polypeptide may be linked by a linker. In one embodiment, the linker may be a peptide of about 5 to 30 amino acid residues. In one embodiment, the linker may be a peptide of about 10 to 30 amino acid residues. In one embodiment, the linker may be a peptide of about 10 to 15 amino acid residues. In one embodiment, the linker may be, for example, a GS linker having the amino acid sequence of SEQ ID NO: 28.

[0037] The anti-CD20 heavy chain variable region or the anti-CD20 light chain variable region in the third polypeptide may be linked to the anti-CD3ε heavy chain variable region via a linker. In one embodiment, the linker may be a peptide of about 5 to 30 amino acid residues. In one embodiment, the linker may be a peptide of about 10 to 30 amino acid residues. In one embodiment, the linker may be a peptide of about 10 to 15 amino acid residues. In one embodiment, the linker may be, for example, a GS linker having the amino acid sequence of SEQ ID NO: 28.

[0038] In one embodiment, the first polypeptide comprises, from N-terminus to C-terminus, the anti-CD20 heavy chain variable region and the heavy chain constant region. In one embodiment, the third polypeptide comprises, from N-terminus to C-terminus, the anti-CD20 heavy chain variable region, the anti-CD20 light chain variable region, the anti-CD3ε heavy chain variable region, and the heavy chain constant region; or alternatively, the anti-CD20 light chain variable region, the anti-CD20 heavy chain variable region, the anti-CD3ε heavy chain variable region, and the heavy chain constant region. The heavy chain constant region in the first polypeptide may have a knob, and the heavy chain constant region in the third polypeptide may have a hole.

[0039] In one embodiment, the third polypeptide comprises, from N-terminus to C-terminus, an anti-CD20 heavy chain variable region, a linker, an anti-CD20 light chain variable region, a linker, an anti-CD3ε heavy chain variable region, and a heavy chain constant region. The third polypeptide may comprise the amino acid sequence of SEQ ID NO: 29 or 30.

[0040] The bispecific antibody may comprise a light chain constant region C-terminal to the anti-CD20 light chain variable region in the fourth polypeptide. The light chain constant region may comprise a human lambda light chain constant region, for example, the amino acid sequence of SEQ ID NO: 31.

[0041] In another embodiment, the bispecific antibody comprises: i) a first polypeptide comprising an anti-CD20 heavy chain variable region and a heavy chain constant region; ii) a second polypeptide comprising an anti-CD20 light chain variable region; iii) a third polypeptide comprising an anti-CD3ε heavy chain variable region and a heavy chain constant region; and iv) a fourth polypeptide comprising an anti-CD20 heavy chain variable region, an anti-CD20 light chain variable region, and an anti-CD3ε light chain variable region. may contain The anti-CD20 heavy chain variable region in the first polypeptide and the anti-CD20 light chain variable region in the second polypeptide associate to form an antigen-binding fragment for CD20, the anti-CD3ε heavy chain variable region in the third polypeptide and the anti-CD3ε light chain variable region in the fourth polypeptide associate to form an antigen-binding fragment for CD3ε, the anti-CD20 heavy chain variable region and the anti-CD20 light chain variable region in the fourth polypeptide associate to form an antigen-binding fragment for CD20, and the heavy chain constant region in the first polypeptide and the heavy chain constant region in the third polypeptide associate together, for example, via knob-into-hole, covalent bond, or disulfide bond.

[0042] In one embodiment, the first polypeptide comprises, from N-terminus to C-terminus, an anti-CD20 heavy chain variable region and a heavy chain constant region. In one embodiment, the third polypeptide comprises, from N-terminus to C-terminus, an anti-CD3ε heavy chain variable region and a heavy chain constant region. In one embodiment, the fourth polypeptide comprises, from N-terminus to C-terminus, an anti-CD20 heavy chain variable region, an anti-CD20 light chain variable region, and an anti-CD3ε light chain variable region; an anti-CD20 light chain variable region, an anti-CD20 heavy chain variable region, and an anti-CD3ε light chain variable region; an anti-CD3ε light chain variable region, an anti-CD20 light chain variable region, and an anti-CD20 heavy chain variable region; or alternatively, an anti-CD3ε light chain variable region, an anti-CD20 heavy chain variable region, and an anti-CD20 light chain variable region.

[0043] With regard to the heavy chain constant regions in the first and third polypeptides, one is a heavy chain constant region with a knob, such as a human IgG1 heavy chain constant region with a T366W mutation or a functional fragment thereof, for example, a human IgG1 heavy chain constant region having a knob and weak or non-existent FcR binding affinity, comprising the amino acid sequence of SEQ ID NO: 34, and the other is a heavy chain constant region with a hole, such as a human IgG1 heavy chain constant region with a T366S / L368A / Y407V mutation or a functional fragment thereof, for example, a human IgG1 heavy chain constant region with a hole and weak or non-existent FcR binding affinity, comprising the amino acid sequence of SEQ ID NO: 33.

[0044] The anti-CD20 heavy chain variable region and the anti-CD20 light chain variable region in the fourth polypeptide may be linked via a linker. The anti-CD20 heavy chain variable region or the anti-CD20 light chain variable region in the fourth polypeptide may be linked to the anti-CD3ε light chain variable region via a linker. In one embodiment, the linker may be a peptide of about 5 to 30 amino acid residues. In one embodiment, the linker may be a peptide of about 10 to 30 amino acid residues. In one embodiment, the linker may be a peptide of about 10 to 15 amino acid residues. In one embodiment, the linker may be, for example, a GS linker having the amino acid sequence of SEQ ID NO: 28.

[0045] The bispecific antibody may contain a light chain constant region at the C-terminus of the fourth polypeptide. For example, the bispecific antibody may contain a light chain constant region C-terminal to the anti-CD3ε light chain variable region, the anti-CD20 heavy chain variable region, or the anti-CD20 light chain variable region. In one embodiment, the bispecific antibody contains a light chain constant region C-terminal to the anti-CD3ε light chain variable region, which may comprise a human λ light chain constant region, for example, the amino acid sequence of SEQ ID NO: 32 or 23.

[0046] The bispecific antibodies of the present disclosure targeting CD3 and CD20 have higher CD3 binding activity and comparable target cell killing activity compared to prior art antibodies such as CD20-TCB, but cause lower levels of cytokine release.

[0047] Nucleic acid molecules encoding the antibodies or antigen-binding portions thereof, or bispecific molecules of this disclosure, as well as expression vectors that may carry such nucleic acids and host cells that may comprise such expression vectors, are also encompassed by this disclosure. Methods for preparing anti-CD3 antibodies (including bispecific antibodies) or antigen-binding portions thereof of this disclosure using host cells are also provided, which may comprise (i) expressing the antibody or antigen-binding portion thereof in the host cell, and (ii) isolating the antibody or antigen-binding portion thereof from the host cell or cell culture thereof.

[0048] Also provided are pharmaceutical compositions that can comprise an antibody or antigen-binding portion thereof, bispecific molecule, nucleic acid molecule, expression vector, or host cell of this disclosure and a pharmaceutically acceptable carrier.

[0049] In a second aspect, the present disclosure provides the use of an anti-CD3 antibody, or an antigen-binding portion thereof, in the preparation of a bispecific molecule that targets both CD3 and a disease-associated antigen.

[0050] The disease-associated antigen may be a tumor-associated antigen such as CD20, CD19, CD22, CD4, CD24, CD38, CD123, CD228, CD138, BCMA, GPC3, CEA, CD276, gp100, 5T4, GD2, EGFR, MUC-1, PSMA, EpCAM, MCSP, SM5-1, MICA, MICB, ULBP, and HER-2. The disease-associated antigen may be an infectious disease-associated antigen such as CD4, BHsAg, LMP-1, and LMP2. The disease-associated antigen may be an inflammatory disease-associated antigen such as IL17R and CD6. In a specific embodiment, the disease-associated antigen is CD20.

[0051] A bispecific molecule may be a recombinant protein containing two antigen-binding domains linked via a linker. In certain embodiments, the two binding domains may be linked with or without a linker, for example, in an scFv-scFv, Fab-Fab, or scFv-Fab format. In certain embodiments, the bispecific molecule is an IgG-like antibody. In one embodiment, the bispecific antibody contains one CD3ε-binding domain and two CD20-binding domains. In one embodiment, the CD20-binding domain is an antibody specific for CD20 or an antigen-binding portion thereof, such as an Fv and / or scFv. In one embodiment, the CD3-binding domain may be an anti-CD3 antibody of the present disclosure or an antigen-binding portion thereof, such as an Fv.

[0052] Accordingly, the present disclosure provides methods for preparing a bispecific molecule of the disclosure, comprising: (i) expressing the bispecific molecule in a host cell containing nucleic acid encoding the bispecific molecule or a functional portion thereof; and (ii) isolating the bispecific molecule or a functional portion thereof from the host cell or a cell culture thereof.

[0053] In a third aspect, the present disclosure provides a method for treating or alleviating an inflammatory disease or suppressing or eliminating transplant rejection in a subject in need thereof, comprising administering to the subject a pharmaceutically effective amount of an anti-CD3 antibody, or antigen-binding portion thereof, of the present disclosure. In certain embodiments, the inflammatory disease is multiple sclerosis (MS) or inflammatory bowel disease (IBD, e.g., Crohn's disease). In certain embodiments, the autoimmune disease is type 1 diabetes. In certain embodiments, the anti-CD3 antibody, or antigen-binding portion thereof, of the present disclosure is administered orally.

[0054] In a fourth aspect, the present disclosure provides a method for treating or ameliorating a disease in a subject in need thereof, comprising administering to the subject a pharmaceutically effective amount of a bispecific molecule of the present disclosure. In certain embodiments, the disease is a tumor. In certain embodiments, the disease is an infectious disease. In certain embodiments, the disease is an inflammatory disease or an autoimmune disease.

[0055] The present disclosure provides a method for treating or ameliorating a B-cell-related disease in a subject in need thereof, comprising administering to the subject a pharmaceutically effective amount of a bispecific antibody of the present disclosure directed against CD3 or CD20. The B-cell-related disease can be a B-cell lymphoma, a B-cell leukemia, or a B-cell-mediated autoimmune disease. B-cell lymphomas and leukemias include, but are not limited to, non-Hodgkin's lymphoma (NHL), chronic lymphocytic leukemia (CLL), and diffuse large B-cell lymphoma (DLBCL). In certain embodiments, the subject is administered an anti-CD20 antibody prior to the bispecific antibody treatment.

[0056] Other features and advantages of the present disclosure will become apparent from the following detailed description and examples, which should not be construed as limiting. The contents of all references, Genbank entries, patents and published patent applications cited throughout this application are expressly incorporated herein by reference.

[0057] Accordingly, it is the object of the present invention not to encompass within the scope of any previously known product, process for making a product, or method for using a product, to which the applicants reserve their rights, and hereby discloses a disclaimer of any previously known product, process, or method. It is further noted that the present invention is not intended to encompass within its scope any product, process, or method for making a product or using a product that does not meet the description and enablement requirements of the USPTO (35 U.S.C. §112, first paragraph) or the EPO (Article 83 EPC), to which the applicants reserve their rights, and hereby discloses a disclaimer of any previously described product, process for making a product, or method for using a product. Compliance with Article 53(c) of the EPC and Rules 28(b) and (c) of the EPC may be advantageous in the practice of the present invention. All rights to expressly disclaim any embodiment that is the subject of any licensed patent of the applicant in this line, or in any other line, or in any prior application of any third party, are expressly reserved. Nothing herein should be construed as a commitment.

[0058] It should be noted that in this disclosure, and particularly in the claims and / or paragraphs, terms such as "comprises," "comprised," "comprising," and the like can have the meaning ascribed to them in U.S. patent law; for example, they can mean "includes," "included," "including," and the like; and terms such as "consisting essentially of," "consists essentially of," and the like have the meaning ascribed to them in U.S. patent law, for example, they permit elements not expressly recited, but exclude elements found in the prior art or that affect a basic or novel characteristic of the invention. [Brief explanation of the drawings]

[0059] The following detailed description, given by way of example and not intended to limit the invention to only the specific embodiments described, can be best understood in conjunction with the accompanying drawings, in which:

[0060] [Figure 1] 1 shows the binding activity of the chimeric anti-CD3 antibody CD3-19 to human CD3ε (A) and monkey CD3ε (B).

[0061] [Figure 2] 1 shows the binding activity of CD3-19 to human CD3+ T cells.

[0062] [Figure 3] The binding activity of affinity matured antibodies to human CD3ε (A) and monkey CD3ε (B) is shown.

[0063] [Figure 4] 1 shows the binding activity of affinity matured antibodies to human CD3+ T cells.

[0064] [Figure 5] The effect of CD3-19 and affinity matured antibodies on T cell proliferation when (A) or not (B) conjugated to a secondary antibody (allowing antibody cross-linking) is shown.

[0065] [Figure 6] The binding activity of the humanized 19-26 antibody to human CD3ε (A) and monkey CD3ε (B), and the binding activity of the humanized 19-15 antibody to human CD3ε (C) and monkey CD3ε (D) are shown.

[0066] [Figure 7] 1 shows the binding activity of humanized 19-26 antibody (A) and humanized 19-15 antibody (B) to human CD3+ T cells.

[0067] [Figure 8]1 shows the ability of humanized antibodies to activate T cells when bound to a secondary antibody (allowing for antibody cross-linking), as measured by interferon-γ (IFN-γ) release (A) and CD69 expression (B).

[0068] [Figure 9] Shown is the ability of humanized antibodies to activate T cells when not bound to a secondary antibody, as measured by IFN-γ release (A) and CD69 expression (B).

[0069] [Figure 10] The binding activity of humanized antibodies with mutated Fc regions to HEK293A / human CD16A (A), HEK293A / human CD64 (B), HEK293A / human CD32A (C), and HEK293A / human CD32B (D) is shown.

[0070] [Figure 11] 1 shows the binding activity of humanized antibodies having mutated Fc regions to Jurkat cells.

[0071] [Figure 12] Shown are the abilities of humanized antibodies with mutated Fc regions to induce IFN-γ release (A), CD25 expression (B), CD69 expression (C), and CD69+CD25 co-expression (D) by human PBMCs when not bound to a secondary antibody.

[0072] [Figure 13] Shown is the ability of humanized antibodies with mutated Fc regions to induce IFN-γ release (A), CD25 expression (B), CD69 expression (C), and CD69+CD25 co-expression (D) by human PBMCs when bound to a secondary antibody (allowing antibody cross-linking).

[0073] [Figure 14] FIG. 1 is a schematic diagram showing the structure of a bispecific antibody of the present disclosure directed against CD3 and CD20.

[0074] [Figure 15] The binding activity of the bispecific antibody to human CD3ε (A) and monkey CD3ε (B) is shown.

[0075] [Figure 16] The binding activity of the bispecific antibody to HEK293A / human CD20 (A), HEK293A / monkey CD20 (B), Jurkat cells (C), and monkey PBMCs (D) is shown.

[0076] [Figure 17] Figure 1 shows the ability of bispecific antibodies, when not conjugated to a secondary antibody, to induce IFN-γ release (A), tumor necrosis factor-α (TNF-α) release (B), CD69 expression (C), CD25 expression (D), and CD69+CD25 co-expression (E) by human PBMCs.

[0077] [Figure 18] Figure 1 shows bispecific antibody-mediated killing of CD20+ Raji cells by human PBMCs.

[0078] [Figure 19] The ability of bispecific antibodies to induce TNF-α release (A), IFN-γ release (B), and interleukin-2 (IL-2) release (C) by PMBCs when incubated with CD20+ Raji cells is shown.

[0079] [Figure 20] Bispecific antibody-mediated killing of HEK293A / human CD20 cells (A) and CD20-HEK293A cells (B) by human T cells.

[0080] [Figure 21]Figure 1 shows the ability of bispecific antibodies to induce IFN-γ (A) and TNF-α (C) release by T cells when incubated with HEK293A / human CD20 cells, and to induce IFN-γ (B) and TNF-α (D) release by T cells when incubated with CD20-HEK293A cells.

[0081] [Figure 22] Figure 1 shows the effect of bispecific antibodies administered with or without 1 μg / ml MIL62 on IL-2 release (A), TNF-α release (B), CD25 expression (C), CD69 expression (D), and CD69+CD25 co-expression (E) by human PBMCs pretreated or not with 1 μg / ml MIL62.

[0082] [Figure 23] T cell killing of HEK293A / human CD20 cells mediated by MBS303-1 (A) and MBS303-2 (B) with or without co-administration with 1 μg / ml MIL62 is shown.

[0083] [Figure 24A] 1 shows the in vivo antitumor effect of bispecific antibodies in tumor-bearing mice with humanized PBMCs (A) Mean fluorescence intensity of tumor cells 3, 10, and 17 days after administration of MBS303-2 or vehicle. [Figure 24B] (B) Tumor images taken 10 and 17 days after drug administration. [Figure 24C] (C) Survival curve of tumor-bearing mice. DETAILED DESCRIPTION OF THE INVENTION

[0084] In order to ensure that this disclosure may be more readily understood, certain terms are first defined. Additional definitions are set forth throughout the detailed description.

[0085] The term "CD3" refers to cluster of differentiation 3, which includes the gamma, delta, epsilon, and zeta chains. The term "CD3ε" refers to the epsilon chain. The term "CD3" can include variants, isoforms, homologs, orthologs, and paralogs. For example, an antibody specific for human CD3 protein (e.g., CD3ε) may, in some cases, cross-react with CD3 protein from species other than humans, such as monkeys. In other embodiments, an antibody specific for human CD3 protein may be completely specific for human CD3 protein and may not exhibit cross-reactivity to other species or types, or may cross-react with CD3 from certain, but not all, other species.

[0086] The term "human CD3ε" refers to a CD3ε protein having an amino acid sequence of human origin, such as the amino acid sequence having NCBI accession number NP_000724.1 (Wipa P et al., (2020) Immunology 159(3):298-308) or the amino acid sequence encoded by the nucleotide sequence set forth in SEQ ID NO: 24. The term "monkey CD3ε" refers to a CD3ε protein having an amino acid sequence of monkey origin, such as the amino acid sequence having NCBI accession number NP_001244149.1 (Maudhoo MD et al., (2014) Gigascience 3:14).

[0087] The term "CD20" refers to a marker molecule that is expressed on the surface of all B cells, starting from the pro-B stage and gradually increasing in concentration until the mature stage, but is not expressed on hematopoietic stem cells, pro-B cells, or normal plasma cells. The term "human CD20" refers to a CD20 protein having an amino acid sequence of human origin, such as the amino acid sequence of SEQ ID NO: 35. The term "monkey CD20" or "cynomolgus monkey CD20" refers to a CD20 protein having an amino acid sequence of monkey origin, such as the amino acid sequence of SEQ ID NO: 36.

[0088] The term "antibody" as referred to herein includes IgG, IgA, IgD, IgE, and IgM whole antibodies, and any antigen-binding fragment (i.e., "antigen-binding portion") or single chain thereof. A whole antibody is a glycoprotein comprising at least two heavy (H) chains and two light (L) chains interconnected by disulfide bonds. Each heavy chain contains a heavy chain variable region (referred to herein as V H The heavy chain constant region is composed of three domains: C H1 , C H2 , and C H3 Each light chain is composed of a light chain variable region (referred to herein as V L The light chain constant region consists of one domain, C L It consists of V H and V L The regions can be further subdivided into regions of hypervariability, called complementarity-determining regions (CDRs), which are interspersed with more conserved regions, called framework regions (FRs). H and V L is composed of three CDRs and four FRs arranged in the following order from the amino terminus to the carboxy terminus: FR1, CDR1, FR2, CDR2, FR3, CDR3, FR4. The variable regions of the heavy and light chains contain binding domains that interact with antigens. The constant region of the antibody can mediate the binding of the immunoglobulin to host tissues or factors, including various cells of the immune system (e.g., effector cells) and the first component (C1q) of the classical complement system.

[0089] As used herein, the term "antigen-binding portion" of an antibody (or simply "antibody portion") refers to one or more fragments of an antibody that retain the ability to specifically bind to an antigen (e.g., CD3 protein). It has been shown that the antigen-binding function of an antibody can be performed by fragments of a full-length antibody. Examples of binding fragments encompassed by the term "antigen-binding portion" of an antibody include: (i) V L , V H , C L and C H1(ii) a Fab fragment, which is a monovalent fragment consisting of two Fab fragments linked by a disulfide bridge at the hinge region; (iii) a V fragment, which is a bivalent fragment consisting of two Fab fragments linked by a disulfide bridge at the hinge region; H and C H1 (iv) a single-arm V fragment of an antibody; L and V H Fv fragment consisting of domains, (v) V H (vi) isolated complementarity-determining regions (CDRs); and (viii) nanobodies, which are heavy chain variable regions containing a single variable domain and two constant domains. In addition, the two domains of the Fv fragment, V, are also included. L and V H are encoded by separate genes, which can be synthesized using recombinant methods. L and V H The regions can be joined by synthetic linkers that allow them to be produced as a single protein chain (known as a single-chain Fv (scFv)) that pairs to form a monovalent molecule (see, e.g., Bird et al., (1988) Science 242:423-426; and Huston et al., (1988) Proc. Natl. Acad. Sci. USA 85:5879-5883). Such single-chain antibodies are also intended to be encompassed by the term "antigen-binding portion" of an antibody. These antibody fragments are obtained using conventional techniques known to those of skill in the art, and the fragments are screened for utility in the same manner as intact antibodies.

[0090] The term "FcR" or "Fc receptor" refers to a protein expressed on the surface of certain immune cells, such as B lymphocytes, natural killer cells, and macrophages, that recognizes the Fc fragment of an antibody bound to a cell or pathogen and stimulates phagocytic or cytotoxic cells to destroy the pathogen or target cell, for example, by antibody-mediated phagocytosis or antibody-dependent cellular cytotoxicity. FcRs include FcαR, FcεR, and FcγR, which belong to the immunoglobulin superfamily and are the Fc receptors most important for inducing phagocytosis of microorganisms, including FcγRI (CD64), FcγRIIA (CD32A), FcγRIIB (CD32B), and FcγRIIIA (CD16A).

[0091] As used herein, an "isolated antibody" is intended to refer to an antibody that is substantially free of other antibodies having different antigen specificities (e.g., an isolated antibody that specifically binds to CD3 protein is substantially free of antibodies that specifically bind to antigens other than CD3 protein). However, an isolated antibody that specifically binds to human CD3 protein may have cross-reactivity to other antigens, such as CD3 proteins from other species. Furthermore, an isolated antibody may be substantially free of other cellular material and / or chemicals.

[0092] As used herein, the term "monoclonal antibody" refers to a population of substantially homogeneous antibodies, i.e., the individual antibodies comprising the population are identical except for minor, naturally occurring mutations and / or post-translational modifications (e.g., isomerization, amidation). Monoclonal antibodies are highly specific, being directed against a single antigenic site. In contrast to polyclonal antibody preparations, which typically include different antibodies directed against different determinants (epitopes), a monoclonal antibody is directed against a single determinant on an antigen.

[0093] As used herein, a "bispecific" molecule specifically binds to two target molecules or two different epitopes on the same target molecule. The bispecific antibody of the present disclosure specifically binds to CD3 and a disease-associated antigen and is a type of bispecific molecule. In contrast, a "monospecific" molecule specifically binds to a particular target molecule, particularly a particular epitope on the target molecule.

[0094] As used herein, the term "murine antibody" is intended to include antibodies having variable regions in which both the framework and CDR regions are derived from murine germline immunoglobulin sequences. Furthermore, if the antibody contains a constant region, the constant region also is derived from murine germline immunoglobulin sequences. The murine antibodies of the present disclosure may include amino acid residues not encoded by murine germline immunoglobulin sequences (e.g., mutations introduced by random or site-specific mutagenesis in vitro or by somatic mutation in vivo). However, as used herein, the term "murine antibody" is not intended to include antibodies in which CDR sequences derived from the germline of another mammalian species have been grafted onto murine framework sequences.

[0095] The term "chimeric antibody" refers to an antibody made by combining genetic material from a non-human source with genetic material from a human, or more generally, a chimeric antibody is an antibody that has genetic material from one species along with genetic material from another species.

[0096] As used herein, the term "humanized antibody" refers to antibodies from non-human species in which the protein sequence has been altered to increase their similarity to antibody variants that naturally occur in humans.

[0097] The phrases "antibody that recognizes an antigen" and "antibody that is specific for an antigen" are used interchangeably herein with the term "antibody that specifically binds to an antigen."

[0098] As used herein, an antibody that "specifically binds to human CD3" is intended to refer to an antibody that binds to human CD3 protein (and, optionally, CD3 proteins from one or more non-human species), but does not substantially bind to non-CD3 proteins. Preferably, the antibody has a "high affinity," i.e., a specific binding affinity of 1.0 x 10 -8 M or less, more preferably 5.0×10 -9 M or less, more preferably 1.0×10 -9 M or less K D It binds to human CD3 protein.

[0099] As used herein, the term "does not substantially bind" to a protein or cell means that it does not bind to a protein or cell or does not bind with high affinity, i.e., less than 1.0 x 10 -6 M or greater, more preferably 1.0 x 10 -5 M or greater, more preferably 1.0 x 10 -4 M or greater, more preferably 1.0 x 10 -3 M or greater, even more preferably 1.0×10 -2 M or K greater than D This means that the molecule binds to a protein or cell.

[0100] The term "high affinity" for an IgG antibody refers to an affinity of 1.0 × 10 for the target antigen. -6 M or less, more preferably 5.0×10 -8 M or less, even more preferably 1.0×10 -8 M or less, even more preferably 1.0×10 -9 M or less, even more preferably 5.0×10 -10 M or less K D However, "high affinity" binding can vary for other antibody isotypes. For example, "high affinity" binding for an IgM isotype refers to an antibody having a 10 -6 M or less, more preferably 10 -7M or less, even more preferably 10 -8 M or less K D It refers to having.

[0101] As used herein, "K assoc " or "K a The term "K" is intended to refer to the association rate of a particular antibody-antigen interaction, and as used herein, dis " or "K d The term "K" is intended to refer to the off-rate of a particular antibody-antigen interaction. D The term "K d K a to (i.e., K d / K a ) and expressed as a molar concentration (M). D The K value can be determined using methods well established in the art. D A preferred method for determining is by using surface plasmon resonance, preferably using a biosensor system such as a Biacore® system.

[0102] The EC, also known as the half-maximal effective concentration, 50 The term "antibody concentration" refers to the concentration of antibody that induces a response midway between baseline and maximum after a specified exposure time.

[0103] The half-maximal inhibitory concentration (IC 50 The term "antibody concentration" refers to the concentration of an antibody that inhibits a specific biological or biochemical function by 50% compared to the absence of the antibody.

[0104] The term "crosslinking" or "crosslinking" refers to the aggregation of antibodies through binding of the Fc region of the antibody to the FcR of an immune cell or through binding of the antibody to a disease-associated antigen on a target cell (e.g., by a moiety in a bispecific molecule that targets the antigen). In in vitro studies, antibody crosslinking occurs when an antibody binds to a secondary antibody bound to, for example, an ELISA plate. The anti-CD3 antibodies, or antigen-binding portions thereof, of the present disclosure are capable of activating T cells when antibody crosslinking occurs. In contrast, "free" antibodies, or antigen-binding portions thereof, of the present disclosure that do not interact with each other or other molecules to form antibody dimers or polymers are unable to activate T cells.

[0105] The term "subject" includes any human or non-human animal. The term "non-human animal" includes all vertebrates, e.g., mammals and non-mammals, such as non-human primates, sheep, dogs, cats, cows, horses, chickens, amphibians, and reptiles, although mammals such as non-human primates, sheep, dogs, cats, cows, and horses are preferred.

[0106] The term "therapeutically effective amount" refers to an amount of an antibody or antigen-binding portion of the disclosure sufficient to prevent or ameliorate symptoms associated with a disease or condition (e.g., chronic inflammation) and / or reduce the severity of the disease or condition. A therapeutically effective amount will be understood in the context of the condition being treated, and the actual effective amount will be readily recognized by one of ordinary skill in the art.

[0107] Various aspects of the disclosure are described in further detail in the following subsections.

[0108] The antibodies, or antigen-binding portions thereof, of the present disclosure specifically bind to human and monkey CD3 with binding avidity comparable to, if not higher than, prior art anti-CD3 antibodies.

[0109] A "free" antibody or antigen-binding portion thereof of the present disclosure can bind to CD3 but not activate T cells; when antibody cross-linking occurs, an antibody or antigen-binding portion thereof of the present disclosure can bind to CD3 and activate T cells.

[0110] Thus, antibodies of the present disclosure, or antigen-binding portions thereof, prepared with weak or no FcR binding affinity may be "free" or substantially "free" in the body and can be used to treat inflammatory and autoimmune diseases by inducing tolerance.

[0111] In another embodiment, an antibody or antigen-binding portion thereof of the present disclosure may be prepared as part of a non-FcR-binding bispecific antibody against CD3 and another target, such as a tumor-associated antigen, or an antigen associated with an infectious or inflammatory disease, which, when crosslinked via binding to a target other than CD3, activates T cells and kills the target cells, e.g., by releasing SMAPs. For example, an antibody or antigen-binding portion thereof may be prepared as part of a bispecific non-FcR-binding antibody against CD3 and a tumor-associated antigen, which crosslinks only when it binds to the tumor-associated antigen at the lesion site. The bispecific antibody activates T cells and kills tumor cells when antibody crosslinking occurs. More importantly, compared to prior art anti-CD3 antibodies, the bispecific antibody of the present disclosure, when crosslinked, causes less cytokine release, resulting in reduced toxicity.

[0112] Exemplary anti-CD3 antibodies, or antigen-binding portions thereof, of the present disclosure are structurally and chemically characterized as described below and in the Examples below. The heavy chain variable region CDRs and light chain variable region CDRs are defined by the Kabat numbering system, whose SEQ ID NOs are set forth in Table 1 below. However, as is well known in the art, CDRs based on heavy / light chain variable region sequences can also be determined by other systems, such as Chothia, and the IMGT, AbM, or Contact numbering systems / methods. The SEQ ID NOs for the heavy / light chain variable regions are also set forth in Table 1, and some antibodies share the same VH and / or VL.

[0113] The antibodies or antigen-binding portions thereof of the present disclosure may comprise, for example, a heavy chain constant region having weak or no FcR binding affinity, such as human IgG1(N297A), human IgG1(L234A+L235A) having the amino acid sequence of SEQ ID NO: 22 (X1=A, X2=A, X3=N, X4=P), or human IgG1(L234A+L235A+P329G) having the amino acid sequence of SEQ ID NO: 22 (X1=A, X2=A, X3=N, X4=G). For example, the heavy chain constant region may comprise a human IgG1 (L234A+L235A+N297A) having the amino acid sequence of SEQ ID NO: 22 (X1=A, X2=A, X3=A, X4=P), a human IgG1 (L234A+L235A+N297A+P329G) having the amino acid sequence of SEQ ID NO: 22 (X1=A, X2=A, X3=A, X4=G), a human IgG2 (V234A+V237A), a human IgG1 (L234A+V235E) heavy chain constant region, or a functional fragment thereof. The light chain constant region may be a κ or λ light chain constant region, for example, a human κ or λ light chain constant region having the amino acid sequence of SEQ ID NO: 23 or 32. [Table 1]

[0114] The present disclosure relates to bispecific molecules comprising one or more anti-CD3 antibodies or antigen-binding portions thereof of the present disclosure linked to at least one other functional molecule, such as another peptide or protein (e.g., another antibody or a ligand for a receptor), to generate a bispecific molecule that binds to at least two different binding sites or target molecules. Thus, as used herein, "bispecific molecule" includes molecules with three or more binding specificities.

[0115] The bispecific molecule, in addition to its CD3 binding specificity, has a second specificity for a disease-associated antigen, preferably a disease-associated antigen that is uniquely expressed on diseased cells or, alternatively, is expressed at high levels on diseased cells but at lower levels on their normal counterparts.

[0116] In certain embodiments, the disease-associated antigen is a tumor-associated antigen such as CD20, CD19, CD22, CD4, CD24, CD38, CD123, CD228, CD138, BCMA, GPC3, CEA, CD276, gp100, 5T4, GD2, EGFR, MUC-1, PSMA, EpCAM, MCSP, SM5-1, MICA, MICB, ULBP, and HER-2.

[0117] In certain embodiments, the disease-associated antigen is an infectious disease-associated antigen, such as a marker protein of a pathogen or infected cell. The infectious disease-associated antigen may be CD4, BHsAg, LMP-1, and LMP2, with CD4 being a target for targeted AIDS treatment.

[0118] In certain embodiments, the disease-associated antigen is an inflammatory disease-associated antigen, such as a marker protein expressed on activated immune cells that cause inflammation, including, but not limited to, IL17R and CD6.

[0119] Bispecific molecules can come in many different formats and sizes. At one end of the size spectrum, bispecific molecules retain the traditional antibody format, except that instead of having two binding arms of the same specificity, they have two binding arms, each with a different specificity. At the other end are bispecific molecules composed of two single-chain antibody fragments (scFv) linked by a peptide chain, the so-called Bs(scFv)2 construct. Intermediate-sized bispecific molecules contain two different F(ab) fragments linked by a peptidyl linker. These and other formats of bispecific molecules can be prepared by genetic engineering, somatic cell hybridization, or chemical methods. See, for example, Kufer et al., supra; Cao and Suresh, Bioconjugate Chemistry, 9(6), 635-644 (1998); and van Spriel et al., Immunology Today, 21(8), 391-397 (2000), and the references cited therein.

[0120] The bispecific molecules of the present disclosure draw T cells closer to target cells, and when the bispecific molecule binds to a disease-associated antigen, cross-linking of the bispecific molecule occurs, and the T cell is activated and can accordingly kill the target cell.

[0121] In certain embodiments, the disease-associated antigen is CD20, a marker present on immature and mature B cells but not on hematopoietic stem cells, pro-B cells, or normal plasma cells, which is a promising antigen in the diagnosis and / or treatment of B-cell lymphomas and B-cell leukemias.

[0122] A bispecific antibody of the present disclosure may contain one CD3ε-binding domain and one to five CD20-binding domains. In one embodiment, a bispecific antibody may contain one CD3ε-binding domain and two CD20-binding domains. In one embodiment, the CD20-binding domain is an antibody specific for CD20 or an antigen-binding portion thereof, such as an Fv and / or scFv. In one embodiment, the CD3-binding domain may be an anti-CD3 antibody of the present disclosure or an antigen-binding portion thereof, such as an Fv. The two CD20-binding domains may bind to the same or different antigen epitopes, may contain the same or different antigen-binding domain sequences, and / or have the same or different antigen-binding domain formats.

[0123] In one embodiment, the bispecific antibody contains one Fv that specifically binds CD3, one Fv that specifically binds CD20, and one scFv that specifically binds CD20. In one embodiment, the Fv that binds CD20 and the scFv have the same heavy and light chain variable regions.

[0124] The bispecific antibody against CD3 and CD20 may be an IgG-like antibody. In one embodiment, the bispecific antibody contains a half IgG specific for CD3, a half IgG specific for CD20, and an scFv against CD20 linked to the N-terminus of the heavy or light chain variable region of the anti-CD3 half IgG.

[0125] In one embodiment, the bispecific antibody i) a first polypeptide comprising an anti-CD20 heavy chain variable region and a heavy chain constant region; ii) a second polypeptide comprising an anti-CD20 light chain variable region; iii) a third polypeptide comprising an anti-CD20 heavy chain variable region, an anti-CD20 light chain variable region, an anti-CD3ε heavy chain variable region, and a heavy chain constant region; and iv) a fourth polypeptide comprising an anti-CD3ε light chain variable region. may contain The anti-CD20 heavy chain variable region in the first polypeptide and the anti-CD20 light chain variable region in the second polypeptide associate to form an antigen-binding fragment for CD20, the anti-CD20 heavy chain variable region and the anti-CD20 light chain variable region in the third polypeptide associate to form an antigen-binding fragment for CD20, the anti-CD3ε heavy chain variable region in the third polypeptide and the anti-CD3ε light chain variable region in the fourth polypeptide associate to form an antigen-binding fragment for CD3ε, and the heavy chain constant region in the first polypeptide and the heavy chain constant region in the third polypeptide associate together, for example, via knob-into-hole, covalent bond, or disulfide bond.

[0126] In one embodiment, the first polypeptide comprises, from N-terminus to C-terminus, the anti-CD20 heavy chain variable region and the heavy chain constant region. In one embodiment, the third polypeptide comprises, from N-terminus to C-terminus, the anti-CD20 heavy chain variable region, the anti-CD20 light chain variable region, the anti-CD3ε heavy chain variable region, and the heavy chain constant region; or alternatively, the anti-CD20 light chain variable region, the anti-CD20 heavy chain variable region, the anti-CD3ε heavy chain variable region, and the heavy chain constant region. In one embodiment, the heavy chain constant region in the first polypeptide has a knob and the heavy chain constant region in the third polypeptide has a hole.

[0127] In another embodiment, the bispecific antibody comprises: i) a first polypeptide comprising an anti-CD20 heavy chain variable region and a heavy chain constant region; ii) a second polypeptide comprising an anti-CD20 light chain variable region; iii) a third polypeptide comprising an anti-CD3ε heavy chain variable region and a heavy chain constant region; and iv) a fourth polypeptide comprising an anti-CD20 heavy chain variable region, an anti-CD20 light chain variable region, and an anti-CD3ε light chain variable region. may contain The anti-CD20 heavy chain variable region in the first polypeptide and the anti-CD20 light chain variable region in the second polypeptide associate to form an antigen-binding fragment for CD20, the anti-CD3ε heavy chain variable region in the third polypeptide and the anti-CD3ε light chain variable region in the fourth polypeptide associate to form an antigen-binding fragment for CD3ε, the anti-CD20 heavy chain variable region and the anti-CD20 light chain variable region in the fourth polypeptide associate to form an antigen-binding fragment for CD20, and the heavy chain constant region in the first polypeptide and the heavy chain constant region in the third polypeptide associate together, for example, via knob-into-hole, covalent bond, or disulfide bond.

[0128] In one embodiment, the first polypeptide comprises, from N-terminus to C-terminus, an anti-CD20 heavy chain variable region and a heavy chain constant region. In one embodiment, the third polypeptide comprises, from N-terminus to C-terminus, an anti-CD3ε heavy chain variable region and a heavy chain constant region. In one embodiment, the fourth polypeptide comprises, from N-terminus to C-terminus, an anti-CD20 heavy chain variable region, an anti-CD20 light chain variable region, and an anti-CD3ε light chain variable region; an anti-CD20 light chain variable region, an anti-CD20 heavy chain variable region, and an anti-CD3ε light chain variable region; an anti-CD3ε light chain variable region, an anti-CD20 light chain variable region, and an anti-CD20 heavy chain variable region; or alternatively, an anti-CD3ε light chain variable region, an anti-CD20 heavy chain variable region, and an anti-CD20 light chain variable region.

[0129] In bispecific antibodies, the anti-CD20 heavy chain variable region can be linked to the anti-CD20 light chain variable region via a linker to form an scFv. The anti-CD20 heavy chain variable region or the anti-CD20 light chain variable region can be linked to an anti-CD3 antibody or antigen-binding portion thereof via a linker.

[0130] The linker can be made of amino acids linked together by peptide bonds, preferably 5 to 30 amino acids linked together by peptide bonds, selected from the 20 naturally occurring amino acids. As will be appreciated by those skilled in the art, one or more of these amino acids may be glycosylated. In one embodiment, the 5 to 30 amino acids may be selected from glycine, alanine, proline, asparagine, glutamine, serine, and lysine. In one embodiment, the majority of the linker is made up of sterically unhindered amino acids, such as glycine and alanine. Exemplary linkers are polyglycines, particularly poly(Gly-Ala), and polyalanines. One exemplary linker in the present disclosure has the amino acid sequence of SEQ ID NO: 28.

[0131] The linker may also be a non-peptide linker. For example, alkyl linkers (s=2 to 20) such as -NH-, -(CH2)sC(O)-, etc. may be used. These alkyl linkers may further include, for example, lower alkyl (e.g., C 1-4 ), lower acyl, halogen (e.g., Cl, Br), CN, NH2, phenyl, or any other non-sterically hindering group.

[0132] In another embodiment, antibodies of the disclosure, including anti-CD3 antibodies and bispecific antibodies, e.g., against CD3 and CD20, may comprise heavy and / or light chain variable region sequences or CDR1, CDR2, and CDR3 sequences with one or more conservative modifications. It is understood in the art that certain conservative sequence modifications can be made that do not eliminate antigen binding. See, for example, Brummell et al., (1993) Biochem 32:1180-8; de Wildt et al., (1997) Prot. Eng. 10:835-41; Komissarov et al., (1997) J. Biol. Chem. 272:26864-26870; Hall et al., (1992) J. Immunol. 149:1605-12; Kelley and O'Connell (1993) Biochem. 32:6862-35; Adib-Conquy et al., (1998) Int. Immunol. 10:341-6, and Beers et al., (2000) Clin. Can. Res. 6:2835-43.

[0133] As used herein, the term "conservative sequence modifications" is intended to refer to amino acid modifications that do not significantly affect or alter the binding characteristics of the antibody containing the amino acid sequence. Such conservative modifications include amino acid substitutions, additions, and deletions. Modifications can be introduced into the antibodies of the present disclosure by standard techniques known in the art, such as site-directed mutagenesis and PCR-mediated mutagenesis. A conservative amino acid substitution is one in which an amino acid residue is replaced with an amino acid residue having a similar side chain. Families of amino acid residues having similar side chains have been defined in the art. These families include amino acids with basic side chains (e.g., lysine, arginine, histidine), acidic side chains (e.g., aspartic acid, glutamic acid), polar uncharged side chains (e.g., glycine, asparagine, glutamine, serine, threonine, tyrosine, cysteine, tryptophan), nonpolar side chains (e.g., alanine, valine, leucine, isoleucine, proline, phenylalanine, methionine), beta-branched side chains (e.g., threonine, valine, isoleucine), and aromatic side chains (e.g., tyrosine, phenylalanine, tryptophan, histidine). Thus, one or more amino acid residues in the CDR regions of an antibody of the disclosure can be replaced with another amino acid residue from the same side chain family, and the altered antibody can be tested for retained function (i.e., the functions described above) using the functional assays described herein.

[0134] The antibodies of the disclosure, including anti-CD3 antibodies and bispecific antibodies, for example, against CD3 and CD20, have the V H / V L Antibodies having one or more of the sequences can be prepared using the starting material for engineering modified antibodies. H and / or V L), for example, by modifying one or more residues in one or more CDR regions and / or one or more framework regions. Additionally or alternatively, antibodies can be engineered by modifying residues in the constant region(s), for example, to alter the effector functions of the antibody.

[0135] In certain embodiments, CDR grafting can be used to engineer the variable region of an antibody. Antibodies interact with target antigens primarily through amino acid residues located in the six heavy and light chain complementarity-determining regions (CDRs). For this reason, amino acid sequences within the CDRs are more diverse between individual antibodies than sequences outside the CDRs. Because CDR sequences are responsible for most antibody-antigen interactions, it is possible to express recombinant antibodies that mimic the properties of particular naturally occurring antibodies by constructing expression vectors containing CDR sequences from a particular naturally occurring antibody grafted onto framework sequences from a different antibody with different properties. (See, e.g., Riechmann et al., (1998) Nature 332:323-327; Jones et al., (1986) Nature 321:522-525; Queen et al., (1989) Proc. Natl. Acad. USA 86:10029-10033; U.S. Pat. Nos. 5,225,539; 5,530,101; 5,585,089; 5,693,762; and 6,180,370.)

[0136] Accordingly, another embodiment of the present disclosure relates to isolated monoclonal antibodies or antigen-binding portions thereof, and / or bispecific antibodies, which may comprise a heavy chain variable region that may have CDR1, CDR2, and CDR3 sequences that may comprise the sequences of the present disclosure as described above, and / or a light chain variable region that may have CDR1, CDR2, and CDR3 sequences that may comprise the sequences of the present disclosure as described above. These antibodies may comprise the V of the monoclonal antibodies of the present disclosure. H and V L It contains the CDR sequences but may contain different framework sequences.

[0137] Such framework sequences can be obtained from public DNA databases or published references containing germline antibody gene sequences. For example, germline DNA sequences of human heavy and light chain variable region genes can be found in the "VBase" human germline sequence database (available on the Internet at www.mrc-cpe.cam.ac.uk / vbase), as well as Kabat et al., (1991); Tomlinson et al., (1992) J. Mol. Biol. 227:776-798; and Cox et al., (1994) Eur. J. Immunol. 24:827-836, supra, the contents of each of which are expressly incorporated herein by reference. As another example, germline DNA sequences of human heavy and light chain variable region genes can be found in the Genbank database. For example, the following heavy chain germline sequences found in the HCo7 HuMAb mouse are available at the attached Genbank accession numbers: 1-69 (NG--0010109, NT--024637&BC070333), 3-33 (NG--0010109&NT--024637) and 3-7 (NG--0010109&NT--024637). As another example, the following heavy chain germline sequences found in the HCo12 HuMAb mouse are available under the attached Genbank accession numbers: 1-69 (NG--0010109, NT--024637 & BC070333), 5-51 (NG--0010109 & NT--024637), 4-34 (NG--0010109 & NT--024637), 3-30.3 (CAJ556644) & 3-23 (AJ406678).

[0138] The antibody protein sequence is compared to compiled protein sequence databases using one of the sequence similarity search methods known to those skilled in the art, called Gapped BLAST (Altschul et al., (1997) supra).

[0139] Preferred framework sequences used in the antibodies of this disclosure are similar in structure to the framework sequences used by the antibodies of this disclosure. HThe CDR1, CDR2, and CDR3 sequences can be grafted into framework regions having sequences identical to those found in a germline immunoglobulin gene (the framework sequences are derived from a germline immunoglobulin gene), or the CDR sequences can be grafted into framework regions containing one or more mutations compared to the germline sequence. For example, in certain cases, it has been found beneficial to mutate residues within the framework regions to maintain or enhance the antigen-binding ability of the antibody (see, e.g., U.S. Patent Nos. 5,530,101; 5,585,089; 5,693,762; and 6,180,370).

[0140] Another type of variable region modification is the V H and / or V L The amino acid residues in the CDR1, CDR2, and / or CDR3 regions are mutated to improve one or more binding characteristics (e.g., affinity) of the antibody of interest. Site-directed mutagenesis or PCR-mediated mutagenesis can be performed to introduce the mutations, and the effect on antibody binding or other functional properties of interest can be assessed in in vitro or in vivo assays, as known in the art. Preferably, conservative modifications (known in the art) are introduced. The mutations can be amino acid substitutions, additions, or deletions, but are preferably substitutions. Furthermore, typically, no more than one, two, three, four, or five residues in the CDR regions are altered.

[0141] The engineered antibodies of the present disclosure may be modified, for example, by modifying V H and / or V LThese framework modifications include those in which modifications have been made to framework residues within the framework region. Typically, such framework modifications are made to reduce the immunogenicity of the antibody. For example, one approach is to "backmutate" one or more framework residues to the corresponding germline sequence. More specifically, antibodies that have undergone somatic mutation may contain framework residues that differ from the germline sequence from which the antibody is derived. Such residues can be identified by comparing the antibody framework sequence to the germline sequence from which the antibody is derived.

[0142] Another type of framework modification involves mutating one or more residues within the framework regions, or even within one or more CDR regions, to remove T-cell epitopes, thereby reducing the potential immunogenicity of the antibody. This approach, also known as "deimmunization," is described in further detail in U.S. Patent Application Publication No. 20030153043.

[0143] In addition to, or instead of, modifications made in the framework or CDR regions, antibodies of the disclosure may be engineered to contain modifications in the Fc region, typically to alter one or more functional properties of the antibody, such as serum half-life, complement fixation, Fc receptor binding, and / or antigen-dependent cellular cytotoxicity. Furthermore, antibodies of the disclosure may be chemically modified (e.g., one or more chemical moieties may be attached to the antibody) or modified to alter its glycosylation, which also alter one or more functional properties of the antibody.

[0144] In one embodiment, C H1 The hinge region of is modified such that the number of cysteine ​​residues in the hinge region is altered, e.g., increased or decreased. This approach is further described in U.S. Pat. No. 5,677,425. H1 The number of cysteine ​​residues in the hinge region of the antibody is altered to, for example, facilitate assembly of the light and heavy chains or to increase or decrease the stability of the antibody.

[0145] In another embodiment, the Fc hinge region of the antibody is mutated to decrease the biological half-life of the antibody. More specifically, one or more amino acid mutations are made in the C of the Fc hinge fragment such that the antibody has weaker Staphylococcus protein A (SpA) binding compared to the SpA binding of the native Fc hinge domain. H2 -C H3 This approach is described in more detail in U.S. Patent No. 6,165,745.

[0146] In certain embodiments, the heavy chain constant region is mutated to have reduced FcR or complement system protein binding affinity. The amino acid residue mutations can be, for example, N297A, L234A+L235A, L234A+V235E, L234A+L235A+P329G, L234A+L235A+N297A, and L234A+L235A+N297A+P329G in the human IgG1 heavy chain constant region, and V234A+V237A in the human IgG2 heavy chain constant region.

[0147] In yet another embodiment, the glycosylation of an antibody is modified. For example, a glycosylated antibody can be generated (i.e., the antibody has no glycosylation). Glycosylation can be altered, for example, to increase the affinity of the antibody for an antigen. Such carbohydrate modifications can be accomplished, for example, by altering one or more sites of glycosylation within the antibody sequence. For example, one or more amino acid substitutions can be made that result in the elimination of one or more variable region framework glycosylation sites, thereby eliminating glycosylation at those sites. Such aglycosylation can increase the affinity of the antibody for an antigen. See, e.g., U.S. Patent Nos. 5,714,350 and 6,350,861.

[0148] Additionally or alternatively, antibodies can be made with altered glycosylation, such as hypofucosylated antibodies with reduced amounts of fucosyl residues or antibodies with increased bisecting GlcNac structures. Such altered glycosylation patterns have been demonstrated to increase or decrease the ADCC ability of antibodies. Such carbohydrate modifications can be achieved, for example, by expressing the antibody in a host cell with altered glycosylation machinery. Cells with altered glycosylation machinery have been described in the art and can be used as host cells to express the recombinant antibodies of the present disclosure, thereby producing antibodies with altered glycosylation. For example, cell lines Ms704, Ms705, and Ms709 lack the fucosyltransferase gene FUT8 (α(1,6)-fucosyltransferase), and as a result, antibodies expressed in the Ms704, Ms705, and Ms709 cell lines do not have fucose in their carbohydrates. The Ms704, Ms705, and Ms709 FUT8- / - cell lines were generated by targeted disruption of the FUT8 gene in CHO / DG44 cells using two replacement vectors (see U.S. Patent Application Publication No. 20040110704 and Yamane-Ohnuki et al., (2004) Biotechnol Bioeng 87:614-22). As another example, EP 1,176,195 describes cell lines in which the FUT8 gene, encoding fucosyltransferase, is functionally disrupted, such that antibodies expressed in such cell lines exhibit hypofucosylation due to the reduction or elimination of α-1,6 bond-related enzymes. EP 1,176,195 also describes cell lines, such as the rat myeloma cell line YB2 / 0 (ATCC CRL 1662), that have low or no enzymatic activity for adding fucose to N-acetylglucosamine attached to the Fc region of an antibody.PCT Publication No. WO03 / 035835 describes a variant CHO cell line, Lec13 cells, that has a reduced ability to attach fucose to Asn(297)-linked carbohydrates, which also results in hypofucosylation of antibodies expressed in the host cells (see also Shields et al., (2002) J. Biol. Chem. 277:26733-26740). Antibodies with modified glycosylation profiles can also be produced in chicken eggs, as described in PCT Publication No. WO06 / 089231. Alternatively, antibodies with modified glycosylation profiles can be produced in plant cells, such as duckweed. The fucose residues of the antibody can be cleaved off using a fucosidase enzyme; for example, the fucosidase α-L-fucosidase removes fucosyl residues from antibodies (Tarentino et al., (1975) Biochem. 14:5516-23).

[0149] Another modification of the antibodies herein contemplated by the present disclosure is PEGylation. Antibodies can be PEGylated, for example, to increase the biological (e.g., serum) half-life of the antibody. To PEGylate an antibody, the antibody or fragment thereof is typically reacted with polyethylene glycol (PEG), such as a reactive ester or aldehyde derivative of PEG, under conditions such that one or more PEG groups are attached to the antibody or antibody fragment. Preferably, PEGylation is carried out via an acylation reaction or an alkylation reaction with a reactive PEG molecule (or an analogous reactive water-soluble polymer). As used herein, the term "polyethylene glycol" refers to a mono(C1-C 10 PEG is intended to encompass any form of PEG used to derivatize other proteins, such as alkoxy or aryloxy-polyethylene glycol or polyethylene glycol-maleimide. In certain embodiments, the antibody to be PEGylated is an aglycosylated antibody. Methods for PEGylating proteins are known in the art and can be applied to the antibodies of the present disclosure. See, e.g., EP0154316 and EP0401384.

[0150] The antibodies of the present disclosure, including anti-CD3 antibodies and bispecific antibodies, eg, directed against CD3 and CD20, can be characterized by various physical properties to detect and / or distinguish between their different classes.

[0151] For example, an antibody may contain one or more glycosylation sites in either the light or heavy chain variable region. Such glycosylation sites may result in increased immunogenicity or altered pK of the antibody due to altered antigen binding (Marshall et al. (1972) Annu Rev Biochem 41:673-702; Gala and Morrison (2004) J Immunol 172:5489-94; Wallick et al. (1988) J Exp Med 168:1099-109; Spiro (2002) Glycobiology 12:43R-56R; Parekh et al. (1985) Nature 316:452-7; Mimura et al., (2000) Mol Immunol 37:697-706). Glycosylation is known to occur at motifs containing NXS / T sequences. In some cases, it is preferable to have an anti-CD3 antibody that does not contain variable region glycosylation. This can be achieved either by selecting an antibody that does not contain glycosylation motifs in the variable region or by mutating residues within the glycosylated region.

[0152] In a preferred embodiment, the antibody does not contain asparagine isomerism sites. Deamidation of asparagine can occur at NG or DG sequences, resulting in the generation of isoaspartic acid residues that introduce linkages into the polypeptide chain and decrease its stability (the isoaspartic acid effect).

[0153] Each antibody has a unique isoelectric point (pI) that generally falls within the pH range of 6 to 9.5. The pI of IgG1 antibodies typically falls within the pH range of 7 to 9.5, and the pI of IgG4 antibodies typically falls within the pH range of 6 to 8. Antibodies with pIs outside the normal range are thought to be susceptible to some unfolding and instability under in vivo conditions. Therefore, it is preferable to have an anti-CD3 antibody that contains a pI value that falls within the normal range. This can be achieved either by selecting an antibody with a pI in the normal range or by mutating charged surface residues.

[0154] In another aspect, the present disclosure provides nucleic acid molecules encoding the heavy and / or light chain variable regions or CDRs of an anti-CD3 antibody or antigen-binding portion thereof or bispecific antibody, e.g., anti-CD20 heavy chain variable region-linker-anti-CD20 light chain variable region-linker-anti-CD3 heavy chain variable region, or anti-CD20 light chain variable region-linker-anti-CD20 heavy chain variable region-linker-anti-CD3 heavy chain variable region. The nucleic acid may be present in whole cells, in a cell lysate, or in a partially purified or substantially pure form. A nucleic acid is "isolated" or "substantially pure" if it has been purified from other cellular components or other contaminants, such as other cellular nucleic acids or proteins, by standard techniques. The nucleic acids of the present disclosure can be, for example, DNA or RNA and may or may not contain intronic sequences. In a preferred embodiment, the nucleic acid is a cDNA molecule.

[0155] Nucleic acids of the present disclosure can be obtained using standard molecular biology techniques. For antibodies expressed by hybridomas (e.g., hybridomas prepared from transgenic mice carrying human immunoglobulin genes, as described further below), cDNAs encoding the light and heavy chains of the antibodies made by the hybridomas can be obtained by standard PCR amplification or cDNA cloning techniques. For antibodies obtained from an immunoglobulin gene library (e.g., using phage display techniques), nucleic acids encoding such antibodies can be recovered from the gene library.

[0156] Preferred nucleic acid molecules of the present disclosure include the V H and / or V L These include those encoding sequences or CDRs. H and / or V L Once DNA fragments encoding the segments are obtained, these DNA fragments can be further manipulated by standard recombinant DNA techniques, for example, to convert the variable region genes into full-length antibody chain genes, Fab fragment genes, or scFv genes. L or V H A DNA fragment encoding a protein is operably linked to another DNA fragment encoding another protein, such as an antibody constant region or a flexible linker. As used in this context, the term "operably linked" is intended to mean that the two DNA fragments are joined such that the amino acid sequences encoded by the two DNA fragments remain in frame.

[0157] V H The isolated DNA encoding the region V H The DNA encoding the heavy chain constant region (C H1 , C H2 , and C H3The heavy chain constant region may be converted to a full-length heavy chain gene by operably linking it to another DNA molecule encoding a V (V ). The sequences of human heavy chain constant region genes are known in the art, and DNA fragments encompassing these regions can be obtained by standard PCR amplification. The heavy chain constant region may be an IgG1, IgG2, IgG3, IgG4, IgA, IgE, IgM, or IgD constant region, but is most preferably an IgG1 or IgG4 constant region. For a Fab fragment heavy chain gene, the V (V ) is used. H The DNA encoding the heavy chain C H1 It may be operably linked to another DNA molecule encoding only the constant region.

[0158] V L The isolated DNA encoding the region V L The DNA encoding the light chain constant region C L The light chain constant region can be converted to a full-length light chain gene (as well as a Fab light chain gene) by operably linking it to another DNA molecule encoding the same. The sequences of human light chain constant region genes are known in the art, and DNA fragments encompassing these regions can be obtained by standard PCR amplification. In a preferred embodiment, the light chain constant region can be a kappa or lambda constant region.

[0159] To generate the scFv gene, H and V L The DNA fragment encoding V is operably linked to another fragment encoding a flexible linker, e.g., encoding the amino acid sequence (Gly-Ser), such that V H and V L The sequence is V L and V H The regions can be expressed as a contiguous single-chain protein joined by flexible linkers (see, e.g., Bird et al., (1988) Science 242:423-426; Huston et al., (1988) Proc. Natl. Acad. Sci. USA 85:5879-5883; McCafferty et al., (1990) Nature 348:552-554).

[0160] For the bispecific antibodies of the present disclosure, nucleotide sequences encoding the CDRs, VH and VL of an anti-CD3 antibody, the VH and VL of an anti-CD20 antibody, and a linker are first synthesized and then combined according to the desired structure of the bispecific antibody. For example, nucleotide sequences encoding an anti-CD20 heavy chain variable region, a linker, an anti-CD20 light chain variable region, a linker, and an anti-CD3 heavy chain variable region can be operably linked as needed.

[0161] The anti-CD3 antibodies of the present disclosure can be produced using the well-known somatic cell hybridization (hybridoma) technique of Kohler and Milstein (1975) Nature 256:495. Other embodiments for producing monoclonal antibodies include viral or oncogenic transformation of B lymphocytes and phage display techniques. Chimeric or humanized antibodies are also well known in the art. See, e.g., U.S. Patent Nos. 4,816,567; 5,225,539; 5,530,101; 5,585,089; 5,693,762; and 6,180,370, the contents of which are specifically incorporated herein by reference in their entireties. Antibodies of the present disclosure can also be produced in host cell transfectomas, for example, using a combination of recombinant DNA technology and gene transfection methods, as is well known in the art (e.g., Morrison, S. (1985) Science 229:1202). In one embodiment, DNA encoding partial or full-length light and heavy chains, obtained by standard molecular biology techniques, is inserted into one or more expression vectors. The genes are then operably linked to transcriptional and translational control sequences. In this context, the term "operably linked" is intended to mean that the antibody gene is ligated into a vector such that transcriptional and translational control sequences within the vector perform their intended function of regulating the transcription and translation of the antibody gene.

[0162] Bispecific antibodies of the disclosure, particularly those directed against CD3 and CD20, can be produced by i) inserting nucleotide sequences encoding the polypeptide chains of the bispecific antibody into one or more expression vectors operably linked to transcriptional and translational regulatory sequences that control transcription or translation; ii) transducing or transfecting the expression vectors into a host cell; and iii) expressing the polypeptide chains to form a bispecific antibody of the disclosure.

[0163] The term "regulatory sequence" is intended to include promoters, enhancers, and other expression control elements (e.g., polyadenylation signals) that control the transcription or translation of antibody genes. Such regulatory sequences are described, for example, in Goeddel (Gene Expression Technology. Methods in Enzymology 185, Academic Press, San Diego, Calif. (1990)). Preferred regulatory sequences for mammalian host cell expression include viral elements that direct high levels of protein expression in mammalian cells, such as promoters and / or enhancers derived from cytomegalovirus (CMV), Simian Virus 40 (SV40), or adenovirus, e.g., the adenovirus major late promoter (AdMLP) and the polyoma virus enhancer. Alternatively, non-viral regulatory sequences, such as the ubiquitin promoter or β-globin promoter, may be used. Furthermore, regulatory elements are composed of sequences from different sources, such as the SRα promoter system (Takebe et al., (1988) Mol. Cell. Biol. 8:466-472), which contains sequences derived from the SV40 early promoter and the long terminal repeat of human T-cell leukemia virus type 1. Expression vectors and expression control sequences are selected to be compatible with the expression host cell used.

[0164] The expression vector can encode a signal peptide that facilitates secretion of the polypeptide chain from a host cell. The antibody chain gene can be cloned into the vector such that the signal peptide is linked in-frame to the amino terminus of the antibody chain gene. The signal peptide can be an immunoglobulin signal peptide or a heterologous signal peptide (i.e., a signal peptide from a non-immunoglobulin protein).

[0165] In addition to the polypeptide chain genes and regulatory sequences, the recombinant expression vectors of the present disclosure can carry additional sequences, such as sequences that regulate replication of the vector in host cells (e.g., origins of replication) and selectable marker genes. The selectable marker gene facilitates selection of host cells into which the vector has been introduced (see, e.g., U.S. Pat. Nos. 4,399,216, 4,634,665, and 5,179,017). For example, the selectable marker gene typically confers resistance to drugs, such as G418, hygromycin, or methotrexate, on the host cells into which the vector has been introduced. Preferred selectable marker genes include the dihydrofolate reductase (DHFR) gene (for use in dhfr host cells with methotrexate selection / amplification) and the neo gene (for G418 selection).

[0166] For expression of the heavy and / or light chains of anti-CD3 antibodies or polypeptide chains of bispecific antibodies of the present disclosure, expression vectors are transfected into host cells by standard techniques. The various forms of the term "transfection" are intended to encompass a wide variety of techniques commonly used to introduce foreign DNA into prokaryotic or eukaryotic host cells, such as electroporation, calcium phosphate precipitation, DEAE-dextran transfection, etc. Although it is theoretically possible to express antibodies of the present disclosure in either prokaryotic or eukaryotic host cells, expression of antibodies in eukaryotic cells, with mammalian host cells being most preferred, because such eukaryotic cells, particularly mammalian cells, are more likely than prokaryotic cells to assemble and secrete properly folded, immunoreactive antibodies.

[0167] Expression vectors that can be used in the present application include, but are not limited to, plasmids, viral vectors, yeast artificial chromosomes (YACs), bacterial artificial chromosomes (BACs), transformation-competent artificial chromosomes (TACs), mammalian artificial chromosomes (MACs), and human artificial episomal chromosomes (HAECs).

[0168] Preferred mammalian host cells for expressing the recombinant antibodies of the present disclosure include Chinese Hamster Ovary (CHO) cells (including, for example, the dhfr-CHO cells described in Urlaub and Chasin (1980) Proc. Natl. Acad. Sci. USA 77:4216-4220, used with a DHFR selection marker as described in R. J. Kaufman and P. A. Sharp (1982) J. Mol. Biol. 159:601-621), NSO myeloma cells, COS cells, and SP2 cells. Another preferred expression system, particularly for use with NSO myeloma cells, is the GS gene expression system disclosed in WO 87 / 04462, WO 89 / 01036, and EP 338,841. When a recombinant expression vector encoding an antibody gene is introduced into a mammalian host cell, the antibody is produced by culturing the host cell for a period of time sufficient to allow for expression of the antibody in the host cell, or more preferably, secretion of the antibody into the culture medium that the host cell is grown in. The antibody can be recovered from the culture medium using standard protein purification methods.

[0169] In another aspect, the present disclosure provides pharmaceutical compositions that may comprise one or more antibodies or antigen-binding portions thereof, bispecific antibodies, or alternatively, nucleic acid molecules of the present disclosure capable of expressing the same, formulated together with a pharmaceutically acceptable carrier. The pharmaceutical composition may optionally contain one or more additional active pharmaceutical ingredients, such as an anti-tumor antibody, an infection-blocking antibody, an antibody for immune enhancement, or an antibody for autoimmune disease, or alternatively, a non-antibody anti-tumor agent, a non-antibody anti-infective agent, a non-antibody immune-enhancing agent, or a non-antibody anti-inflammatory agent. The pharmaceutical compositions of the present disclosure may be used in combination with an additional anti-tumor agent, an additional anti-infective agent, an additional immune-enhancing agent, or an additional agent for treating autoimmune disease.

[0170] Pharmaceutical compositions may contain any number of excipients. Excipients that can be used include carriers, surfactants, thickening or emulsifying agents, solid binders, dispersing or suspending aids, solubilizers, colorants, flavoring agents, coating agents, disintegrants, lubricants, sweeteners, preservatives, isotonicity agents, and combinations thereof. The selection and use of suitable excipients is taught in Gennaro, ed., Remington: The Science and Practice of Pharmacy, 20th Ed. (Lippincott Williams & Wilkins 2003), the disclosure of which is incorporated herein by reference.

[0171] Preferably, the pharmaceutical compositions are suitable for intravenous, intramuscular, subcutaneous, parenteral, spinal, or epidermal administration (e.g., by injection or infusion). Depending on the route of administration, the active ingredient may be coated with a material to protect it from the action of acids and other natural conditions that may inactivate it. As used herein, the phrase "parenteral administration" refers to modes of administration other than enteral and topical administration, usually by injection, and includes, but is not limited to, intravenous, intramuscular, intraarterial, intrathecal, intracapsular, intraorbital, intracardiac, intradermal, intraperitoneal, transtracheal, subcutaneous, subcuticular, intraarticular, subcapsular, subarachnoid, intraspinal, epidural, and intrasternal injection and infusion. Alternatively, antibodies of the present disclosure can be administered via non-parenteral routes, such as topical, epidermal, or mucosal routes of administration, for example, intranasally, orally, vaginally, rectally, sublingually, or topically.

[0172] The pharmaceutical compositions can be in the form of sterile aqueous solutions or dispersions. They can also be formulated as microemulsions, liposomes, or other ordered structures suitable to high drug concentration.

[0173] The amount of active ingredient that can be combined with a carrier material to produce a single dosage form varies depending on the subject being treated and the particular mode of administration, but will generally be that amount of the composition that produces a therapeutic effect. Generally, this amount can range from about 0.01% to about 99% of the active ingredient, preferably from about 0.1% to about 70%, and most preferably from about 1% to about 30%, of one hundred percent of the active ingredient combined with a pharmaceutically acceptable carrier.

[0174] The dosage regimen is adjusted to provide the optimum desired response (e.g., therapeutic response). For example, a single bolus may be administered, several divided doses may be administered over time, or the dose may be proportionally reduced or increased as indicated by the exigencies of the therapeutic situation. It is particularly advantageous to formulate parenteral compositions in unit dosage form for ease of administration and uniformity of dosage. As used herein, unit dosage form refers to a physically discrete unit suitable as a unitary dosage for the subject to be treated; each unit contains a predetermined amount of active ingredient calculated to produce the desired therapeutic effect, together with the necessary pharmaceutical carrier. Alternatively, the antibody can be administered as a sustained-release formulation, in which case less frequent administration is required.

[0175] The anti-CD3 antibody of the present disclosure may be administered with reference to the OKT3 dose approved by the FDA, but should ultimately be determined by a physician depending on the subject's, for example, gender, age, medical history, etc. The dose of the bispecific antibody of the present disclosure against CD20 and CD3 can be determined by a physician depending on the subject's, for example, gender, age, medical history, etc.

[0176] A "therapeutically effective dose" of an anti-CD3 antibody or antigen-binding portion thereof, or a bispecific antibody against CD3 and CD20 of the present disclosure may result in a reduction in the severity of disease symptoms, an increase in the frequency and length of disease symptom-free periods, or prevention of functional impairment or disability resulting from disease affliction. For example, for treating a subject with a tumor, a "therapeutically effective dose" preferably reduces tumor size by at least about 20%, more preferably at least about 40%, even more preferably at least about 60%, and even more preferably at least about 80%, or even eliminates the tumor, compared to an untreated subject. For a subject receiving an allogeneic transplant, a "therapeutically effective dose" preferably inhibits graft rejection by at least about 20%, more preferably at least about 40%, even more preferably at least about 60%, and even more preferably at least about 80%, or even eliminates graft rejection, compared to an untreated subject. For subjects with an inflammatory or autoimmune disease, a "therapeutically effective dose" preferably reduces inappropriate inflammation by at least about 20%, more preferably by at least about 40%, even more preferably by at least about 60%, and even more preferably by at least about 80%, or even eliminates inflammation, relative to untreated subjects.

[0177] The pharmaceutical composition can be a controlled release formulation, including implants, transdermal patches, and microencapsulated delivery systems.Biodegradable and biocompatible polymers such as ethylene vinyl acetate, polyanhydrides, polyglycolic acid, collagen, polyorthoesters, and polylactic acid can be used.See, for example, "Sustained and Controlled Release Drug Delivery Systems," JR Robinson, ed., Marcel Dekker, Inc., New York, 1978.

[0178] Pharmaceutical compositions can be administered via medical devices such as: (1) needleless hypodermic injection devices (e.g., U.S. Pat. Nos. 5,399,163; 5,383,851; 5,312,335; 5,064,413; 4,941,880; 4,790,824; and 4,596,556); (2) microinfusion pumps (U.S. Pat. No. 4,487,603); (3) transdermal devices (U.S. Pat. No. 4,486,194); (4) infusion devices (U.S. Pat. Nos. 4,447,233 and 4,447,224); and (5) osmotic devices (U.S. Pat. Nos. 4,439,196 and 4,475,196), the disclosures of which are incorporated herein by reference.

[0179] In certain embodiments, antibodies of the present disclosure can be formulated to ensure proper distribution in vivo. For example, to ensure that therapeutic antibodies of the present disclosure, or antigen-binding portions thereof, cross the blood-brain barrier, they can be formulated into liposomes that may further include a targeting moiety to enhance selective delivery to specific cells or organs. For example, U.S. Patent Nos. 4,522,811; 5,374,548; 5,416,016; and 5,399,331; al.,(1988)Biochem.Biophys.Res.Commun.153:1038;Bloeman et al.,(1995)FEBS Lett.357:140;M.Owais et al.,(1995)Antimicrob.Agents Chemother.39:180;Briscoe et al. al.,(1995)Am.J.Physiol.1233:134;Schreier et al.,(1994)J.Biol.Chem.269:9090;Keinanen and See Laukkanen (1994) FEBS Lett. 346:123; and Killion and Fidler (1994) Immunomethods 4:273.

[0180] The pharmaceutical compositions of the present disclosure have multiple in vitro and in vivo uses. For example, the compositions can be used to treat and alleviate inflammatory diseases or to prevent or eliminate transplant rejection.

[0181] In one aspect, a pharmaceutical composition comprising a therapeutically effective amount of an anti-CD3 antibody or antigen-binding portion thereof of the present disclosure can be used to treat and / or alleviate inflammatory and autoimmune diseases, or to suppress or eliminate transplant rejection. In one embodiment, an antibody or antigen-binding portion thereof of the present disclosure can contain a heavy chain constant region with weak or no FcR binding affinity. In a specific embodiment, the inflammatory disease is multiple sclerosis (MS) or inflammatory bowel disease (IBD, e.g., Crohn's disease). In a specific embodiment, the autoimmune disease is type 1 diabetes.

[0182] In another embodiment, a pharmaceutical composition comprising a therapeutically effective amount of a bispecific antibody of the present disclosure can be used to treat a specific disease, where the bispecific antibody is specific for CD3 and a disease-associated antigen and does not contain an Fc region, or contains an Fc region with weak or no FcR binding affinity. Depending on the disease-associated antigen, the pharmaceutical composition can be used to treat various tumors such as primary or metastatic colon adenocarcinoma, breast cancer, renal cell carcinoma, melanoma, pancreatic cancer, non-small cell lung cancer, glioblastoma, and gastric cancer; infectious diseases such as AIDS; and inflammatory or autoimmune diseases.

[0183] In certain embodiments, pharmaceutical compositions comprising the disclosed bispecific antibodies against CD20 and CD3 and / or nucleotide molecules encoding same may be used to treat or alleviate B-cell-related diseases, such as B-cell lymphomas, B-cell leukemias, or B-cell-mediated autoimmune diseases, including, but not limited to, non-Hodgkin's lymphoma (NHL), chronic lymphocytic leukemia (CLL), and diffuse large B-cell lymphoma (DLBCL).

[0184] In another aspect, the present disclosure provides a method of combination therapy in which the pharmaceutical composition of the present disclosure is co-administered with one or more additional antibodies or non-antibody agents. In one embodiment, an additional anti-CD20 antibody can be administered to a subject in need thereof prior to or simultaneously with administration of a pharmaceutical composition comprising a bispecific antibody of the present disclosure against CD20 and CD3 and / or a nucleotide molecule encoding the same. The anti-CD20 antibody can bind to most CD20 + By killing B cells, the amount of bispecific antibody against CD20 and CD3 that is administered can be reduced, which may further reduce adverse effects caused by the bispecific antibody.

[0185] The combinations of therapeutic agents discussed herein can be administered simultaneously in a single composition in a pharmaceutically acceptable carrier, or simultaneously in separate compositions with each agent in a pharmaceutically acceptable carrier. In another embodiment, the combination of therapeutic agents can be administered sequentially.

[0186] Furthermore, when more than one dose of the combination therapy is administered sequentially, the order of sequential administration may be reversed or maintained in the same order at each time of administration, and sequential administration may be combined with simultaneous administration, or any combination thereof.

[0187] Although the present invention and its advantages have been described in detail, it should be understood that various modifications, substitutions, and alterations can be made therein without departing from the spirit and scope of the invention as defined in the appended claims.

[0188] The present disclosure is further illustrated in the following examples, which should not be construed as further limiting. The contents of all figures and all references, Genbank sequences, patents and published patent applications cited throughout this application are hereby expressly incorporated by reference. (Example) Example 1: Generation of Mouse Anti-CD3 Monoclonal Antibodies

[0189] cDNA (SEQ ID NO: 24) encoding CD3ε (NCBI reference number: NP_000724.1) was synthesized and cloned between the EcoRI and BamHI sites of the pcDNA3.1 plasmid to obtain hCD3ε-pcDNA3.1. Similarly, an expression vector, hCD3δ-pcDNA3.1, carrying cDNA encoding hCD3δ (NCBI reference number: NP_000723.1) as set forth in SEQ ID NO: 25 was constructed. To obtain these vectors in large quantities, plasmids were extracted using the Endofree Plasmid Giga Kit (QIAGEN) according to the manufacturer's instructions.

[0190] To generate monoclonal antibodies that bind to human CD3, 6-week-old BALB / c mice were inoculated with the above-prepared plasmids. Briefly, mice were intramuscularly injected with 25 μl of 1 mg / ml hCD3ε-pcDNA3.1 and 25 μl of 1 mg / ml hCD3δ-pcDNA3.1. A BTX ECM830 pulse generator equipped with two electrodes was used to apply current to the injection site. Three boosts by injection and electroporation were performed at 3-week intervals. Four days after the final boost, spleens were harvested for phage display library construction.

[0191] To construct the scFv phage display library, total spleen RNA was extracted using a Trizol kit (Invitrogen), and cDNA was synthesized using a Reverse Transcriptase Kit (Invitrogen) according to the manufacturer's instructions. Gene amplification was performed by PCR using the cDNA synthesized above as a template, and the scFv phage library was constructed using the proprietary phagemid pTGS. Briefly, the light chain variable region was amplified by PCR, purified using a Qiagen PCR / purification kit, digested with the restriction enzymes NheI and NotI (NEB), and then ligated to the phagemid pTGS (digested with the same restriction enzymes and purified by agarose gel) at 16°C. After ligation, the recombinant DNA was precipitated, washed, and dissolved in distilled water. The recombinant DNA was then transformed into E. coli TG1 cells by electroporation. The cells were then suspended in 10 ml of SOC medium and cultured at 37°C for 1 hour with gentle shaking. The cell culture was plated on 2YT agar / ampicillin, and ampicillin-resistant colonies were counted. For cloning of the heavy chain variable fragment, the PCR product was digested with NcoI and XhoI, ligated to the light chain variable region library, and transformed into E. coli TG1. The library was scraped from the large plate and inoculated into 2YTAG liquid culture medium. Approximately 10 12 pfu of helper phage were added to the TG1 sample containing the scFv gene library and incubated at 37°C for 1 hour with shaking. 70 μg / ml kanamycin was added, and the culture was shaken overnight at 30°C. The cells were centrifuged at 4000 rpm for 15 minutes at 4°C. The resulting supernatant was mixed with 5 ml of 20% PEG8000 / 2.5M NaCl and incubated on ice for 30 minutes, after which the phage were precipitated by centrifugation at 8000 rpm for 20 minutes at 4°C. The phage were resuspended in 1.5 ml of PBS containing 1% BSA, vortexed, and centrifuged at 13000 rpm for 5 minutes to remove residual bacteria. The supernatant was stored at 4°C or used directly for biopanning (see below).

[0192] Human CD3ε-his (Cat. No. 10977-H08s, SinoBiological, China) and monkey CD3ε-his (Cat. No. 90047-C08H, SinoBiological, China) were used to screen for antibodies against both human and monkey CD3 proteins. Briefly, phage were incubated with beads bound to human CD3ε-his protein on a shaker at room temperature for 2 hours. Unbound phage were washed away using PBS, and then antigen-bound phage were eluted using 0.1 M glycine-HCl (pH 2.2). The eluted phage were neutralized to pH 7.0 using 1.5 M Tris-HCl (pH 8.8). The neutralized phage was used to infect 10 ml of TG1 bacteria, which were then incubated at OD . 600 The bacterial culture was cultured at 37°C until the OD reached 0.6. The bacterial culture was pelleted by centrifugation, and the pellet was resuspended in culture medium and then plated on 2YTAG plates for the next round of screening. Selected phages positive for human CD3 binding were incubated with beads coupled to monkey CD3ε-his protein on a shaker at room temperature for 2 hours. Unbound phages were washed away using PBS, and then antigen-binding phages were eluted using 0.1 M glycine-HCl (pH 2.2). The eluted phages were neutralized to pH 7.0 using 1.5 M Tris-HCl (pH 8.8). The neutralized phages were used to infect 10 ml of TG1 bacteria, which were then cultured at OD 600 The bacterial culture was incubated at 37°C until the β-glucan content reached 0.6. The bacterial culture was pelleted by centrifugation, and the pellet was resuspended in culture medium and then plated onto 2YTAG plates for the next round of screening. Such enrichment and screening were performed a total of three times.

[0193] After three rounds of biopanning, phages with high binding ability were collected and used to infect bacterial cells. Single bacterial colonies were picked and grown in 96-well plates. Phage-based ELISA was then used to identify high-binding clones for both human CD3ε-his (catalog number: 10977-H08s, SinoBiological, China) and monkey CD3ε-his (catalog number: 90047-C08H, SinoBiological, China), which were then subjected to DNA sequencing. One readable scFv sequence was identified from the high-binding clone and named CD3-19. The heavy and light chain variable region sequence numbers are listed in Table 1. Example 2 Expression and Purification of Full-Length Anti-CD3 Antibody

[0194] The screened CD3-19 scFv antibody was expressed as a full-length antibody in HEK293F (Cobioer, China) cells for further characterization. Briefly, the heavy chain / light chain variable region and human IgG1 / kappa constant region (amino acid sequences set forth in SEQ ID NOs: 22 (X1=L, X2=L, X3=N, X4=P) and 23, respectively) were cloned into the EcoRI and BamHI sites of pcDNA3.1 (Invitrogen, Carlsbad, USA) to construct an expression vector.

[0195] Anti-CD3 antibodies were transiently expressed in HEK-293F cells using PEI transfection according to the manufacturer's instructions. Briefly, HEK-293F cells were transfected with vectors using polyethyleneimine (PEI) at a DNA:PEI ratio of 1:3. The plasmid concentration used for transfection was 1.5 μg / ml. Transfected HEK-293F cells were cultured in a 5% CO2, 37°C incubator with shaking at 120 RPM. After 10–12 days, the cell culture supernatant was collected, centrifuged at 3500 rpm for 5 minutes, and then filtered using a 0.22 μm filter to remove cell debris. The antibody was then purified using a pre-equilibrated Protein A affinity column (catalog number: 17040501, lot number: 10252250, GE, USA) and eluted with elution buffer (20 mM citric acid, pH 3.0-3.5). After buffer exchange, the antibody was retained in PBS buffer (pH 7.0) and the concentration was determined using a NanoDrop device. The purified monoclonal antibody was then subjected to further characterization. Example 3: Binding ability of chimeric antibodies

[0196] The purified chimeric CD3-19 antibody was tested by ELISA for its ability to bind to recombinant human and monkey CD3ε proteins.

[0197] Briefly, ELISA plates were coated with 100 μl of 500 ng / ml human CD3ε-his (catalog number: 10977-H08s, SinoBiological, China) per well overnight at 4°C. Each well was then blocked with 200 μl of blocking buffer (PBS + 1% BSA + 1% goat serum + 0.05% Tween® 20) for 2 hours at room temperature, followed by the addition of 100 μl of serially diluted anti-CD3 antibodies (starting at 40 μg / ml) and incubation for 1 hour at room temperature. After rinsing three times with PBST (PBS + 0.05% Tween 20), HRP-conjugated goat anti-human IgG (1:5000, catalog number: A0170-1ML, Sigma, USA) was added to the ELISA plate and incubated for 1 hour at room temperature. Freshly prepared Ultra-TMB (Cat. No.: 555214, BD, USA) was added to the ELISA plate for 5 minutes of color development, and the absorbance of each well at 450 nm was read in a microplate reader (SpectraMax® i3X, Molecular Devices, USA).

[0198] The cross-reactivity of the chimeric CD3-19 antibody with monkey CD3ε was tested by direct ELISA. Briefly, a 96-well ELISA plate was coated overnight at 4°C with 100 μl of 500 ng / ml monkey CD3ε-his (catalog number: 90047-C08H, SinoBiological, China) per well. Each well was then blocked with 200 μl of blocking buffer (PBS + 1% BSA + 1% goat serum + 0.05% Tween 20) at room temperature for 2 hours, after which 100 μl of serially diluted anti-CD3 antibodies (starting at 40 μg / ml) were added and incubated at room temperature for 1 hour. HRP-conjugated goat anti-human IgG (1:5000, catalog number: A0170-1ML, Sigma, USA) was then added to the ELISA plate and incubated at room temperature for 1 hour. Freshly prepared Ultra-TMB (Cat. No.: 555214, BD, USA) was added to the ELISA plate for 5 minutes of color development, and the absorbance of each well at 450 nm was read using a microplate reader (SpectraMax® i3X, Molecular Devices, USA). An anti-HEL isotype control antibody (Cat. No.: LT12031, LifeTein, USA) was used as a negative control. The results are shown in Figure 1.

[0199] The binding ability of the chimeric CD3-19 antibody to the TCR / CD3 complex on the surface of T cells was assessed by CD4 + T cells were tested by FACS. Briefly, PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and then resuspended in RPMI 1640 medium. CD4 + T cells were isolated using Invitrogen Dynabeads Untouched Human CD4 + T cells were isolated from PBMCs using a T cell isolation kit (Cat. No. 11346D, Thermal Fisher Scientific, USA). T cells were then plated at 1 × 10 in a 96-well plate. 5Cells were seeded at 100 μl / well, and then 100 μl of serially diluted anti-CD3 antibody was added. After 1 hour of incubation at 4°C, the 96-well plate was rinsed three times with PBS, and PE goat anti-human IgG (H+L) (1:500, catalog number: PA1-86078, Thermo, USA) was added. After 1 hour of incubation at 4°C, the 96-well plate was rinsed three times with PBS, and then cell fluorescence was measured using a FACS machine (BD). An anti-HEL isotype control antibody (catalog number: LT12031, LifeTein, USA) was used as a negative control. The results are shown in Figure 2.

[0200] As shown in Figure 1, the chimeric CD3-19 antibody was able to specifically bind to human and monkey CD3ε proteins.

[0201] As shown in Figure 2, antibody CD3-19 binds to human CD4 with high binding specificity and activity. + It was able to bind to T cells. Example 4: Affinity maturation of CD3-19 by phage display

[0202] To further improve binding affinity, CD3-19 was subjected to affinity maturation using phage display technology. Briefly, three-dimensional structural modeling simulations were performed to identify amino acid residues in the heavy and light chain CDRs of CD3-19 that may be important for binding affinity. The identified CDR residues were subjected to PCR-mediated mutagenesis using specially designed primers and standard site-directed mutagenesis protocols. A phage display library was then constructed and subjected to biopanning using beads coupled with human CD3ε-his protein, according to the protocol in Example 1.

[0203] After three rounds of biopanning, high binders were selected, harvested, and then used to infect bacterial cells. Bacterial colonies were picked and grown in 96-well plates, and high binders were identified using ELISA and then sequenced. Beneficial mutations in the heavy and light chain CDRs were identified and then combined into a new phage display library, which was subjected to three more rounds of biopanning and enrichment, followed by sequence confirmation, as described above.

[0204] Three scFv antibodies with higher binding ability than the parent antibody CD3-19 were identified and designated 19-15, 19-26, and 19-37, and their variable region sequence numbers are listed in Table 1. Example 5 Expression, purification, and binding characterization of antibodies obtained during affinity maturation

[0205] The three scFv antibodies screened above were expressed as full-length human IgG1 / kappa antibodies in HEK293F cells, with the IgG1 constant region and kappa constant region sequences set forth in SEQ ID NOs: 22 (X1=L, X2=L, X3=N, X4=P) and 23, respectively. Expression and purification were carried out using the protocol in Example 2.

[0206] The binding abilities of CD3-19, 19-15, 19-26, and 19-37 to human CD3ε-his and monkey CD3ε-his were tested by ELISA according to the protocol in Example 3. The results are shown in Figure 3. The binding abilities of these antibodies to human TCR / CD3 complexes on the surface of primary T cells were tested by FACS according to the protocol in Example 3. The results are shown in Figure 4.

[0207] As shown in Figure 3, all three antibodies obtained by affinity maturation exhibited higher binding affinity to human and monkey CD3 than the parent antibody CD3-19.

[0208] Furthermore, as shown in Figure 4, affinity matured antibodies 19-15, 19-26, and 19-37 exhibited higher binding affinity to primary T cells than the parental antibodies. Example 6: Determination of binding affinity of anti-CD3 antibodies by SPR

[0209] The binding affinities of the chimeric anti-CD3 antibodies to human and monkey CD3ε were measured by BIAcore® 8K (GE Life Sciences, USA).

[0210] Briefly, 100–200 response units (RU) of human CD3ε-his (catalog number: 10977-H08s, Sino Biological, China) or monkey CD3ε-his (catalog number: 90047-C08H, Sino Biological, China) were coupled to a CM5 biosensor chip (catalog number: BR-1005-30, GE Life Sciences), followed by blocking of unreacted groups with 1 M ethanolamine. Serially diluted antibodies ranging from 0.3 μM to 10 μM were injected at 30 μL / min in SPR buffer (HBS-EP buffer, pH 7.4, catalog number: BR-1006-69, GE Life Sciences, USA). Binding affinities were calculated by subtracting the RU of the blank control. Association rates (k) were calculated using a one-to-one Langmuir binding model (BIA Evaluation Software, GE Life Sciences). a ) and dissociation rate (k d The equilibrium dissociation constant K D k d / k a The antibody mAB2 from Macrogenics, used as a positive control, was prepared using the variable region disclosed in CN107827985A and a human IgG1 / kappa constant region (SEQ ID NO: 22 (X1=L, X2=L, X3=N, X4=P) and SEQ ID NO: 23).

[0211] The binding affinities of the anti-CD3 antibodies to human CD3ε and monkey CD3ε were determined and are summarized in Tables 2 and 3.

[0212] As shown in Tables 2 and 3, the antibodies obtained by affinity maturation had higher binding affinities than the parent antibodies, and were comparable to or higher than that of mAB2. Of the above antibodies, 19-37 showed the highest binding affinity. [Table 2] [Table 3] Example 7: Regulatory effect of anti-CD3 antibody on T cell activity

[0213] Chimeric anti-CD3 antibodies of the present disclosure were tested using primary human T cells for their effect on CD3 / TCR signaling when antibody cross-linking occurred.

[0214] Briefly, 96-well cell culture plates were coated with 100 μl per well of 5 μg / ml F(ab')2 goat anti-human IgG Fc gamma secondary antibody (Cat. No.: 31163, Invitrogen, USA) overnight at 4°C. Each well was rinsed twice with PBS, and 100 μl of anti-CD3 antibody at different concentrations was added and incubated for 2 hours at 37°C. Meanwhile, PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and CD4 + T cells were isolated using Invitrogen Dynabeads Untouched Human CD4 + CD4 T cells were isolated from PBMCs using a T cell isolation kit (Cat. No. 11346D, Thermal Fisher Scientific, USA) according to the manufacturer's instructions. + T cells were cultured in RPMI complete medium at 1.0 x 10 6 The cells were resuspended at a cell density of 2.5 × 10 cells / ml and labeled with 2.5 μM carboxyfluorescein succinimidyl ester (CFSE, Catalog No. C34554I, Invitrogen, USA) by incubation at 37°C for 10 minutes. The cells were then resuspended at a cell density of 2.5 × 10 cells / ml in RPMI complete medium (RPMI + 10% FBS). 5The cells were resuspended at a viable cell density of 100 μl / ml. 200 μl of the T cell suspension was then added to the anti-CD3-coated plate and incubated at 37°C, 5% CO2 for 72 hours. CSFE staining was measured by FACS to determine the cell proliferation rate. Antibody mAB2 was used as a positive control. The results are shown in Figure 5 (A).

[0215] In addition, free chimeric anti-CD3 antibodies were tested for their effect on T cell activation in the absence of antibody cross-linking. Briefly, PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and CD4 + T cells were isolated using Invitrogen Dynabeads Untouched Human CD4 + CD4 T cells were isolated from PBMCs using a T cell isolation kit (Cat. No. 11346D, Thermal Fisher Scientific, USA) according to the manufacturer's instructions. + T cells were cultured in RPMI complete medium at 1.0 x 10 6 The cells were resuspended at a cell density of 100 / ml and labeled with 2.5 μM carboxyfluorescein succinimidyl ester (CFSE, Catalog No.: C34554I, Invitrogen, USA) by incubation at 37°C for 10 minutes. The labeled cells were then resuspended at a cell density of 100 / ml and labeled with 5 × 10 cells in RPMI complete medium (RPMI + 10% FBS) for 10 minutes. 5 The T cells were resuspended at a viable cell density of 100 μl / ml. Then, 100 μl of the T cell suspension was added to a 96-well cell culture plate along with 100 μl of anti-CD3 antibody at different concentrations, and the plate was incubated at 37°C, 5% CO2 for 72 hours. CSFE staining was measured by FACS to determine the cell proliferation rate. Antibody mAB2 was used as a positive control. The results are shown in Figure 5 (B).

[0216] As shown in Figure 5 (A), anti-CD3 antibodies can increase T cell proliferation rates in a dose-dependent manner when bound to a secondary antibody coated on a plate to cause antibody cross-linking, and antibodies obtained by affinity maturation showed such effects to a greater extent than the parent antibody. However, the effects of the anti-CD3 antibodies of the present disclosure on T cell activation were all lower than that of mAB2, meaning that the anti-CD3 antibodies of the present disclosure had the same or higher binding capacity / affinity as the positive antibody mAB2, but lower activity on T signaling activation. In other words, despite their high binding capacity to T cells, the anti-CD3 antibodies of the present disclosure did not induce excessive CD3 signaling, thereby reducing potential toxicity, such as excessive cytokine release, induced by T cell activation.

[0217] Furthermore, as shown in FIG. 5(B), free anti-CD3 antibody without antibody cross-linking had no effect on T cell proliferation. Example 8 Humanization of Exemplary Anti-CD3 Antibodies

[0218] Based on the above functional assays, 19-15 and 19-26 were selected for humanization and further characterization using well-established CDR-grafting methods, e.g., as described in U.S. Patent No. 5,225,539 and detailed below.

[0219] To screen acceptor frameworks for humanization of 19-15, the light and heavy variable chain sequences of this antibody were BLAST searched against the human immunoglobulin gene database on the NCBI website (http: / / www.ncbi.nlm.nih.gov / igblast / ) to identify the most homologous human germline IGVH and IGVλ, respectively, as acceptors for humanization. The selected human heavy chain acceptor was IGHV3-23*05, and the selected human light chain acceptor was IGLV7-43*01.

[0220] To screen acceptor frameworks for humanization of 19-26, the light and heavy variable chain sequences of this antibody were BLAST searched against the human immunoglobulin gene database on the NCBI website (http: / / www.ncbi.nlm.nih.gov / igblast / ) to identify the most homologous human germline IGVH and IGVλ, respectively, as acceptors for humanization. The selected human heavy chain acceptor was IGHV3-23*05, and the selected human light chain acceptor was IGLV7-43*01.

[0221] To identify key framework residues that may play an important role in supporting CDR loop structure and thus in designing back mutations in humanized antibodies, the three-dimensional structures of the variable domains of the two antibodies were modeled. The selected structural templates had the same class of canonical loop structures in L-CDR1, L-CDR2, L-CDR3, H-CDR1, H-CDR2, and H-CDR3 for 19-15 and 19-26, respectively. Using the selected structural templates, structural models were constructed for the heavy and light chains by replacing the mouse framework with the human acceptor framework. Three-dimensional structural modeling simulations were then performed to identify key framework residues that may be important for supporting CDR loop structure or the heavy and light chain interface. If both the mouse antibody framework and the human acceptor framework shared the same residue at a particular site, the human germline residue was retained. On the other hand, if the mouse antibody framework and the human germline acceptor framework had different residues at a particular site, the importance of this residue was evaluated by structural modeling. If a residue in the framework of the murine antibody was found to interact with and affect the CDR residues, this residue was backmutated to the murine residue. Table 4 below lists the structural templates used in the antibody structure simulations. [Table 4]

[0222] Based on structural modeling as described above, five potential back mutations (S49A, A99V, N76D, V95M, and K100R) were identified for the heavy chain of 19-15 and seven potential back mutations (F38V, Y51G, T2A, Q44H, P46F, A48G, and T60V) were identified for the light chain; five potential back mutations (S49A, A99V, N76D, V95M, and K100R) were identified for the heavy chain of 19-26 and seven potential back mutations (F38V, Y51G, T2A, Q44H, P46F, A48G, and T60V) were identified for the light chain.

[0223] As summarized in Table 1, for 19-15, two humanized heavy chain variable regions and two humanized light chain variable regions were designed, resulting in a total of four exemplary humanized antibodies. For 19-26, two humanized heavy chain variable regions and one humanized light chain variable region were designed, resulting in a total of two exemplary humanized antibodies.

[0224] Sequences encoding the humanized heavy and light chain variable regions and human IgG1 / kappa constant regions (SEQ ID NOs: 22 (X1=L, X2=L, X3=N, X4=P) and 23) were synthesized and then subcloned into the expression vector pcDNA3.1(+) (Invitrogen, USA) using the BamHI and XhoI restriction sites, respectively. All expression constructs were verified by sequencing. Six humanized anti-CD3 antibodies were transiently expressed according to the protocol described in Example 2. The humanized antibodies were then purified according to Example 2. Example 9 Binding Ability / Affinity of Exemplary Humanized Anti-CD3 Antibodies to Human and Monkey CD3

[0225] The binding ability of the humanized anti-CD3 antibodies to human and monkey CD3ε proteins was measured by ELISA according to the protocol in Example 3. The results are shown in FIG.

[0226] The humanized antibodies were further tested for their ability to bind to human T cells by FACS using the protocol in Example 3. The results are shown in Figure 7.

[0227] The binding affinities of the humanized anti-CD3 antibodies to human and monkey CD3ε proteins were measured by SPR according to the protocol in Example 6. The results are summarized in Tables 5 and 6.

[0228] As shown in Figure 6, all exemplary humanized antibodies retained their binding ability to human CD3ε protein (Figures 6A and 6C) and monkey CD3ε protein (Figures 6B and 6D).

[0229] As shown in Figure 7, all exemplary humanized antibodies retained the ability to bind to human T cells. [Table 5] [Table 6]

[0230] Table 5 shows that all exemplary humanized antibodies retained high binding affinity to human CD3 protein. Table 6 shows that all exemplary humanized antibodies retained cross-reactivity to monkey CD3 protein. Example 10: Exemplary humanized anti-CD3 antibodies induced T cell activity

[0231] The effect of exemplary humanized antibodies on CD3 / TCR signaling when antibody cross-linking occurred was tested using primary human T cells according to the protocol in Example 7 with minor modifications. Briefly, 96-well cell culture plates were coated with 100 μl per well of 5 μg / ml F(ab')2 goat anti-human IgG Fc gamma secondary antibody (Cat. No.: 31163, Invitrogen, USA) overnight at 4°C. Each well was rinsed twice with PBS, and 100 μl of anti-CD3 antibodies at different concentrations were added and incubated at 37°C for 2 hours. Meanwhile, PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and CD4 +T cells were isolated using Invitrogen Dynabeads Untouched Human CD4 + CD4 T cells were isolated from PBMCs using a T cell isolation kit (Cat. No. 11346D, Thermal Fisher Scientific, USA) according to the manufacturer's instructions. + 2.5 × 10 T cells 5 The T cells were resuspended at a viable cell density of 100 μl / ml. 200 μl of the T cell suspension was added to anti-CD3-coated plates and incubated at 37°C, 5% CO2 for 24 hours. 50 μl of cell culture supernatant was used for measuring IFN-γ levels using an ELISA kit (Cat. No.: SIF50, R&D, USA) according to the manufacturer's instructions. The cells were cultured for an additional 48 hours, harvested, rinsed three times with PBS, and incubated with 2 μl of PE mouse anti-human CD69 antibody (Cat. No.: 555531, BD, USA) and 2 μl of FITC mouse anti-human CD4 antibody (Cat. No.: 561842, BD, USA) at room temperature for 30 minutes. The cells were harvested by centrifugation, rinsed three times with PBS, and analyzed for CD69 by FACS. + CD4 + CD4 on T cells + The ratio of antibody to T cells was measured by flow cytometry to determine the effect of antibodies on T cell activation when antibody cross-linking occurred. Assays were performed in triplicate, and mAB2 was used as a positive control. The results are shown in Figure 8.

[0232] The effect of free antibody on T cell activation was also assayed. Briefly, PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and CD4 + T cells were isolated using Invitrogen Dynabeads Untouched Human CD4 + CD4 T cells were isolated from PBMCs using a T cell isolation kit (Cat. No. 11346D, Thermal Fisher Scientific, USA) according to the manufacturer's instructions. + T cells were cultured in RPMI complete medium at 5 × 10 5The T cells were resuspended at a cell density of 100 μl / ml. 100 μl of the T cell suspension was added to a cell culture plate, to which 100 μl of anti-CD3 antibody at different concentrations was added. After 24 hours of incubation at 37°C and 5% CO2, 50 μl of the cell culture supernatant was used for measuring IFN-γ levels using an ELISA kit (Cat. No.: SIF50, R&D, USA) according to the manufacturer's instructions. The cells were further cultured for 48 hours, harvested, rinsed three times with PBS, and incubated with 2 μl of PE mouse anti-human CD69 antibody (Cat. No.: 555531, BD, USA) and 2 μl of FITC mouse anti-human CD4 antibody (Cat. No.: 561842, BD, USA) at room temperature for 30 minutes. The cells were harvested by centrifugation, rinsed three times with PBS, and analyzed by FACS for CD69. + CD4 + CD4 on T cells + The ratio to T cells was measured to determine the effect of free antibody on T cell activation. Assays were performed in triplicate, and mAB2 was used as a positive control. The results are shown in Figure 9.

[0233] As shown in Figure 8, when antibody cross-linking occurred, all exemplary humanized antibodies were able to activate T cells, induce interferon-γ release, and up-regulate CD69 expression on the T cell surface. On the other hand, as shown in Figure 9, free antibodies had no effect on T cell activity, i.e., they did not affect interferon-γ release or CD69 expression. These results suggested that the effect of humanized antibodies on T cell activation was dependent on antibody cross-linking, and that all exemplary humanized antibodies induced significantly less T cell activation and cytokine release than the positive control. Example 11: Construction of HEK293A cell lines stably expressing human or monkey proteins

[0234] HEK293A cells were used to construct cell lines stably expressing human CD20, monkey CD20, human CD16A, human CD32A, human CD32B, or human CD64. Briefly, sequences encoding human CD20, monkey CD20, human CD16A, human CD32A, human CD32B, and human CD64 (SEQ ID NOs: 35, 36, 37, 38, 39, and 40, respectively) were synthesized and then subcloned between the EcoRI and BamHI restriction sites of the pLV-EGFP(2A)-Puro vector (Beijing Inovogen, China). Lentivirus was generated in HEK293T cells (Cobioer, NJ, China) by cotransfection of the resulting expression vector, psPAX, and pMD2.G plasmid in a Lipofectamine 3000 kit (Thermo Fisher Scientific, USA) according to the manufacturer's instructions. Three days after cotransfection, lentiviruses were harvested from the HEK293T cell culture supernatant and then used to infect HEK293A cells to generate HEK293A cell lines stably expressing human CD20, monkey CD20, human CD16A, human CD32A, human CD32B, or human CD64, i.e., HEK293A / human CD20, HEK293A / monkey CD20, HEK293A / human CD16A, HEK293A / human CD32A, HEK293A / human CD32B, and HEK293A / human CD64, respectively. The transfected HEK293A cells were cultured for 7 days in DMEM (catalog number: SH30022.01, Gibco, USA) containing 10% FBS (catalog number: FND500, Excell, China) and 0.2 μg / ml puromycin (catalog number: A11138-03, Gibco).The expression of human CD20, monkey CD20, human CD16A, human CD32A, human CD32B, and human CD64 was confirmed by FACS using commercially available anti-human / monkey CD20 antibodies (PE anti-human CD20, catalog number: E-AB-F1045D, Elabscience, China), anti-human CD16A antibodies (PE anti-human CD16, catalog number: E-AB-F1005D, Elabscience, China), anti-human CD32A antibodies (PE anti-CD32B + CD32A, catalog number: ab30357, Abcam, USA), anti-human CD32B antibodies (PE anti-CD32B + CD32A, catalog number: ab30357, Abcam, USA), and anti-human CD64 antibodies (PE / Cy5 anti-CD64, catalog number: ab192338, Abcam, USA). Example 12: Functional modification of the Fc region of an anti-CD3 antibody

[0235] To suppress CD3 signaling activation and T cell activation induced by anti-CD3 antibodies when they bind to FcRs via the Fc region, the Fc region was modified to reduce the binding affinity for each FcR isotype.

[0236] The anti-CD3 antibody 15H3L3 was analyzed using a wild-type heavy chain IgG1 constant region (SEQ ID NO: 22, X1=L, X2=L, X3=N, X4=P), an IgG1 constant region with L234A / L235A mutations (SEQ ID NO: 22, X1=A, X2=A, X3=N, X4=P), an IgG1 constant region with L234A / L235A / P329G ... Each antibody was engineered to have an IgG1 constant region with L234A / L235A / N297A mutations (SEQ ID NO: 22, X1=A, X2=A, X3=A, X4=G), an IgG1 constant region with L234A / L235A / N297A / P329G mutations (SEQ ID NO: 22, X1=A, X2=A, X3=A, X4=G), or an IgG1 constant region with L234A / L235A / N297A / P329G mutations (SEQ ID NO: 22, X1=A, X2=A, X3=A, X4=G), and a human lambda light chain constant region of SEQ ID NO: 32. The resulting full-length antibodies were designated 15H3L3-WT, 15H3L3-LL, 15H3L3-LLP, 15H3L3-LLN, and 15H3L3-LLNP, respectively.

[0237] The sequences encoding the variable and constant regions were inserted between the XhoI and BamHI sites of the pcDNA3.1 plasmid (Invitrogen, USA) to construct an expression vector. The resulting vector was transfected into HEK-293F cells using PEI. Briefly, HEK-293F cells were cultured in FreeStyle® 293 Expression Medium (Cat. No.: 12338-018, Gibco) and transfected with the expression vector using polyethyleneimine (PEI) at a DNA:PEI ratio of 1:3. The concentration of DNA used for transfection was 1.5 μg per milliliter of cell culture. The transfected HEK-293F cells were cultured in a 5% CO2, 37°C incubator with shaking at 120 RPM. After 10–12 days, the cell culture supernatant was collected and centrifuged at 3500 rpm for 5 min, then filtered using a 0.22 μm membrane to remove cell debris. The monoclonal antibody was then purified and concentrated using a pre-equilibrated Protein A affinity column (catalog number: 17040501, GE, USA) and eluted with elution buffer (20 mM citric acid, pH 3.0–3.5). The purified antibody was retained in PBS buffer (pH 7.0), and the concentration was determined using a NanoDrop device.

[0238] The binding ability of the purified monoclonal antibodies to CD16A, CD32A, CD32B, and CD64 was tested by FACS using HEK293 cells constructed in Example 11 that stably express human CD16A, CD32A, CD32B, and CD64, respectively. 5HEK293A cells were seeded into a 96-well plate and 50 μl of serially diluted 15H3L3 antibody was added. After 1 hour of incubation at 4°C, the 96-well plate was rinsed three times with PBST, and PE-F(ab')2 goat anti-human IgG Fc secondary antibody (1:500, catalog number: H10104, Life Technologies, USA) was added. After 1 hour of incubation at 4°C, the 96-well plate was rinsed three times with PBS, and cell fluorescence was measured using a FACS instrument (BD). The results are shown in Figure 10.

[0239] The purified monoclonal antibodies were tested for their binding ability to the CD3 complex by FACS using Jurkat cells (Cat. No.: CBP60520, Nanjing Co-Bioer, China). Briefly, 10 5 Jurkat cells were seeded into a 96-well plate, and then 50 μl of serially diluted 15H3L3 antibody was added thereto. After 1 hour of incubation at 4°C, the 96-well plate was rinsed three times with PBS, and PE goat anti-human IgG (H+L) (1:500, catalog number: PA1-86078, Thermo, USA) was added. After 1 hour of incubation at 4°C, the 96-well plate was rinsed three times with PBS, and cell fluorescence was measured using a FACS machine (BD). The results are shown in Figure 11.

[0240] The effect of free 15H3L3 antibody on T cell activation was examined by measuring cytokine release and activation marker expression by T cells. PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and then cultured at 2.5 × 10 cells / ml in RPMI complete medium (RPMI1640 + 10% FBS). 5The cells were resuspended at a cell density of 1 / ml. The cell suspension was plated onto a 96-well plate at 200 μl per well, and 50 μl of 15H3L3 antibody at different concentrations was added. After 48 hours of incubation at 37°C and 5% CO2, the cell culture supernatant was collected and the IFN-γ level was measured using an ELISA kit (catalog number: SIF50, R&D, USA). PBMCs were collected, rinsed three times with PBS, and then 2 μl of PE mouse anti-human CD69 antibody (catalog number: 555531, BD, USA), 2 μl of BV605 mouse anti-human CD25 antibody (catalog number: 562660, BD, USA), and 2 μl of FITC mouse anti-human CD4 antibody (catalog number: 561842, BD, USA) were added. The cells were incubated at room temperature for 30 minutes, centrifuged, rinsed three times with PBS, and CD69 antibody was measured by FACS. + CD4 + T cells, CD25 + CD4 + T cells, or CD69 + CD25 + CD4 + CD4 on T cells + The ratio to T cells was measured, and the results are shown in Figure 12.

[0241] Cross-linking of 15H3L3 antibody with CD4 + The effect on T cell activation was also examined by measuring cytokine release and activation marker expression by T cells. Briefly, 96-well cell culture plates were coated with 100 μl per well of 5 μg / ml F(ab')2 goat anti-human IgG Fc gamma secondary antibody (Cat. No.: 31163, Invitrogen, USA) overnight at 4°C. Each well was rinsed twice with PBS, and 100 μl of 15H3L3 antibody at different concentrations was added and incubated at 37°C for 2 hours. Meanwhile, PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and CD4 + T cells were isolated using Invitrogen Dynabeads Untouched Human CD4 +CD4 T cells were isolated from PBMCs using a T cell isolation kit (Cat. No. 11346D, Thermal Fisher Scientific, USA) according to the manufacturer's instructions. + T cells were cultured in RPMI complete medium (RPMI1640 + 10% FBS) at 2.5 × 10 5 The cells were resuspended at a viable cell density of 1 / ml. 200 μl of the cell suspension was added to anti-CD3-coated plates at 37°C, 5% CO2 for 48 hours. 50 μl of cell culture supernatant was collected per well and IFN-γ levels were measured using an ELISA kit (Cat. No.: SIF50, R&D, USA). The cells were harvested, rinsed three times with PBS, and 2 μl of PE mouse anti-human CD69 antibody (Cat. No.: 555531, BD, USA), 2 μl of BV605 mouse anti-human CD25 antibody (Cat. No.: 562660, BD, USA), and 2 μl of FITC mouse anti-human CD4 antibody (Cat. No.: 561842, BD, USA) were added. The cells were incubated at room temperature for 30 minutes, centrifuged, rinsed three times with PBS, and CD69 levels were measured by FACS. + CD4 + T cells, CD25 + CD4 + T cells, or CD69 + CD25 + CD4 + CD4 on T cells + The ratio to T cells was measured. Assays were performed in triplicate and the results are shown in Figure 13.

[0242] As shown in Figure 10, all antibodies with mutations in the Fc region exhibited significantly lower binding affinity to the four FcRs than those with the wild-type Fc region. Of these, the binding affinity of 15H3L3-LLPN and 15H3L3-LLN to CD16A, CD32A, CD32B, and CD64 was almost below the detection limit, 15H3L3-LLP retained weak binding affinity to CD32A and CD32B, and 15H3L3-LL exhibited relatively high binding affinity to CD64, CD32A, and CD32B compared to the other variants.

[0243] FIG. 11 shows that mutations in the Fc region had no effect on the binding ability of the anti-CD3 antibody to CD3.

[0244] 12 shows that all antibodies with mutations in the Fc region significantly reduced IFN-γ release and the expression of T cell maturation markers, such as CD69 and CD25, compared to those with the wild-type Fc region. Specifically, cytokine (e.g., IFN-γ) release and T cell maturation marker (e.g., CD69 and CD25) expression were nearly undetectable in PBMCs treated with 15H3L3-LLP, 15H3L3-LLPN, or 15H3L3-LLN, whereas 15H3L3-LL was able to induce cytokine (e.g., IFN-γ) release and T cell maturation marker (e.g., CD69 and CD25) expression to some extent.

[0245] Furthermore, as shown in Figure 13, the Fc region mutations did not alter the effect of anti-CD3 antibodies on T cell activation when antibody cross-linking occurred. In other words, when antibody cross-linking occurred via the Fc region bound to an anti-Fc secondary antibody, anti-CD3 antibodies with mutant Fc regions were able to induce cytokine (e.g., IFN-γ) release and T cell maturation marker (e.g., CD69 and CD25) expression at levels comparable to those of wild-type Fc regions. Example 13 Construction and Expression of Bispecific Antibodies Against CD3 and CD20

[0246] The bispecific antibodies were constructed in an asymmetric format (CD20:CD3 = 2:1), and the structures are shown in Figure 14. The CD20-binding portion utilized heavy and light chain variable regions having the amino acid sequences of SEQ ID NOs: 26 and 27, respectively (see details in anti-CD20 antibody MIL62, CN108138186B), and the CD3-binding portion utilized the heavy and light chain variable regions of 15H2L3 or 15H3L3. Three half antibody fragments were prepared: MIL220 (containing an anti-CD20 heavy chain variable region of SEQ ID NO: 26, a heavy chain constant region with a hole of SEQ ID NO: 33, an anti-CD20 light chain variable region of SEQ ID NO: 27, and a light chain constant region of SEQ ID NO: 31), MIL221-1 (containing an anti-CD20 VH-linker-anti-CD20 VL-linker-15H2L3 VH having the amino acid sequence of SEQ ID NO: 29, a heavy chain constant region with a knob of SEQ ID NO: 34, a light chain variable region of 15H2L3 of SEQ ID NO: 18, and a light chain constant region of SEQ ID NO: 32), and MIL221-2 (containing an anti-CD20 VH-linker-anti-CD20 VL-linker-15H3L3 VH having the amino acid sequence of SEQ ID NO: 30). VH, containing a heavy chain constant region with a knob of SEQ ID NO: 34, a light chain variable region of 15H3L3 of SEQ ID NO: 18, and a light chain constant region of SEQ ID NO: 32) was produced using the GS vector described in ZL200510064335.0.

[0247] Sequences encoding the VH of MIL220 and the anti-CD20 scFv-linker-anti-CD3 VH of MIL221-1 and MIL221-2 were synthesized. The DNA fragments were digested with EcoRI and NheI and then cloned into vectors containing the heavy chain constant regions, respectively. DNA sequences encoding the VL of MIL220, MIL221-1, and MIL221-2 were synthesized, digested with ClaI and BsiWI, and ligated into vectors containing the light chain constant regions. The DNA sequence encoding the light chain region was digested with ClaI and HindIII, and the sequence encoding the heavy chain region was digested with EcoRI and XhoI. The pCMV-cofragment plasmid was digested with HindIII and EcoRI, and the GS vector was digested with ClaI and XhoI. The four DNA fragments were purified, ligated, and transformed into bacteria. Single bacterial colonies were picked and sequenced to obtain expression vectors containing the correct sequences encoding half-antibody fragments. These vectors were designated GS-MIL220, GS-MIL221-1, and GS-MIL221-2. The expression vectors obtained above were transfected into HEK-293F cells (Cobioer, China) using PEI according to the protocol in Example 12. The transfected HEK-293F cells were cultured in a 5% CO2, 37°C incubator with shaking at 120 RPM. After 10–12 days, the cell culture supernatant was collected and centrifuged at 3500 rpm for 5 minutes, then filtered using a 0.22 μm film filter to remove cell debris. The half-antibody fragments were then purified using a pre-equilibrated Protein A affinity column (catalog number: 17040501, GE, USA) and eluted with elution buffer (20 mM citric acid, pH 3.0-3.5). After buffer exchange, the fragments were retained in PBS buffer (pH 7.0) and the concentration was determined using a NanoDrop device. Example 14 Preparation of bispecific antibodies against CD3 and CD20

[0248] Purified half-antibody fragments were assembled in vitro. Briefly, MIL220 and MIL221-1 were mixed at a 1:1 molar ratio, and MIL220 and MIL221-2 were also mixed. Tris-based buffer was added to the mixture until the pH reached 8.0, followed by the reducing agent glutathione (GSH), and the mixture was allowed to react overnight at 25°C with slow stirring. Next, 2M acetic acid solution was added to the mixture to adjust the pH to 5.5. The reducing agent was removed by ultrafiltration to terminate the reaction. The assembled antibody was purified using anion exchange and cation exchange chromatography. An anion exchange column was equilibrated with low-salt Tris buffer (pH 8.0) and loaded with the antibody sample. The components that passed through the column were collected and rinsed with low-salt Tris buffer (pH 8.0) until the UV280 returned to baseline. The collected sample was adjusted to pH 5.5 using acetic acid solution, concentrated to 1 ml using a 30 kDa ultrafiltration tube, and filtered using a 0.2 μm membrane. The cation exchange column was equilibrated with low-concentration acetate buffer (pH 5.5) and loaded with the antibody sample. The column was re-equilibrated using low-concentration acetate buffer (pH 5.5), and eluted using 20 CV of acetic acid solution (0-100% concentration, pH 5.5).

[0249] The bispecific antibody composed of MIL220 and MIL221-1 was designated MBS303-1, and the bispecific antibody composed of MIL220 and MIL221-2 was designated MBS303-2. The purified antibodies, which had a purity of more than 90% as determined by mass spectrometry, were further characterized as follows. Example 15: Bispecific antibodies bound to human CD3, monkey CD3, and CD20

[0250] The purified bispecific antibodies were tested for their binding ability to recombinant human and monkey CD3ε proteins by ELISA according to the protocol in Example 3. REGN1979 (prepared using the amino acids disclosed in U.S. Patent Application Publication No. 2014 / 0088295A1, or alternatively INN11035_H, INN11035_L, and INN11035_M, as published at http: / / www.imgt.org / 3Dstructure-DB / cgi / details.cgi?pdbcode=11035) against CD3 and CD20, and CD20-TCB (WO2018220099A1) or alternatively, INN11145_H, INN11145_L, INN11145_M, and INN11145_N, which are available at http: / / www.imgt.org / 3Dstructure-DB / cgi / details.cgi?pdbcode=11145, were used as reference antibodies, and anti-HEL antibody (catalog number: LT12031, LifeTein, USA) was used as a negative control. The results are shown in Figure 15 (Figure 15A and B).

[0251] The binding ability of the bispecific antibodies to human and monkey CD20 proteins expressed in HEK293A cells was further tested by FACS using the HEK293 cells constructed in Example 11 stably expressing human or monkey CD20, according to the protocol in Example 12. The results are shown in Figure 16 (Figures 16A and 16B).

[0252] The binding ability of the bispecific antibodies to human and monkey CD3 was further tested by FACS using Jurkat cells and monkey PBMCs according to the protocol in Example 12, except that the PBMCs were collected from healthy monkey blood samples by density gradient centrifugation. The results are shown in Figure 16 (Figure 16C and D).

[0253] As shown in Figure 15, MBS303-1, MBS303-2, and CD20-TCB specifically bound to human and monkey CD3ε, but REGN1979 did not bind to human or monkey CD3ε.

[0254] According to Figure 16 (Figure 16A and B), all tested bispecific antibodies bound to human and monkey CD20 expressed on the cell surface, and the binding affinity of MBS303-1, MBS303-2, and CD20-TCB to human CD20 was significantly higher than that of REGN1979. As shown in Figure 16 (Figure 16C and D), all tested bispecific antibodies bound to human and monkey CD3 complexes on the cell surface, and the binding affinity of MBS303-1, MBS303-2, and REGN1979 to human CD3 complexes was significantly higher than that of CD20-TCB. Example 16: Determining the binding affinity of bispecific antibodies by SPR

[0255] The binding affinities of the bispecific antibodies of the present disclosure to human and monkey CD3ε were tested according to the protocol in Example 6 using a BIAcore® 8K (GE Life Sciences, USA).

[0256] The binding affinities measured by BIAcore® are summarized in Table 7. The binding affinity of REGN1979 to human or monkey CD3ε was undetectable, while the binding affinities of the other bispecific antibodies were on the order of nM. Consistent with the FACS results, MBS303-1 and MBS303-2 showed higher binding affinity to human and monkey CD3ε subunits than CD20-TCB. [Table 7] Example 17 Effect of bispecific antibodies on T cell activation

[0257] The effect of free bispecific antibodies on the activation of CD3 / TCR signaling was tested using primary human PBMCs according to the protocol of Example 12 with the following modifications: Specifically, cell culture supernatants were collected after 48 hours of incubation, and the levels of both IFN-γ and TNF-α were measured by ELISA kits (Cat. No.: 430107, Biolegend, USA; Cat. No.: 430207, Biolegend, USA) according to the manufacturer's instructions.

[0258] The results are shown in Figure 17 (A and B). The IFN-γ and TNF-α levels induced by REGN1979 were significantly lower than those induced by CD20-TCB, MBS303-1, or MBS303-2, with CD20-TCB inducing the highest cytokine release. Figure 17 also shows the expression levels of T cell activation markers (C, D, and E), which were consistent with the cytokine level test results. Specifically, REGN1979 induced T cell activation with significantly lower activity than CD20-TCB, MBS303-1, and MBS303-2, with CD20-TCB inducing the highest activity. Example 18 Bispecific antibodies inhibit T cell activation and CD20 expression by PBMCs + induced tumor cell death)

[0259] The bispecific antibody was used to detect CD20 + The ability to induce death of Raji cells was further tested. Raji cells were labeled with carboxyfluorescein succinimidyl ester, which has green fluorescence. Specifically, Raji cells were cultured in RPMI complete medium at 1.0 × 10 6 The cells were resuspended at a cell density of 1000 / ml and labeled with carboxyfluorescein succinimidyl ester (CFSE, Cat. No.: C34554I, Invitrogen, USA) according to the manufacturer's instructions, except that the cells were incubated with 2.5 μM CFSE for 10 min at 37°C. The labeled cells were then resuspended at a cell density of 1000 / ml and labeled with carboxyfluorescein succinimidyl ester (CFSE, Cat. No.: C34554I, Invitrogen, USA) according to the manufacturer's instructions, except that the cells were incubated with 2.5 μM CFSE for 10 min at 37°C. The labeled cells were resuspended at a cell density of 1000 / ml in RPMI complete medium (RPMI + 10% FBS) at 2.5 × 10 5PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and resuspended in RPMI complete medium (RPMI1640 + 10% FBS) at a viable cell density of 5 × 10 5 The cells were resuspended at a viable cell density of 100 μl / ml. Raji cells (100 μl) and PBMCs (100 μl) were seeded into a 96-well plate at a 2:1 effector-target ratio, followed by the addition of 100 μl of bispecific antibodies at different concentrations. The cell / antibody mixture was incubated for 48 hours in an incubator at 37°C and 5% CO2.

[0260] 50 μl of cell culture supernatant was collected from each well, and the IFN-γ, IL-2, and TNF-α levels were measured using three kits (Cat. No.: 430107, Biolegend, USA; Cat. No.: S2050, R&D, USA; Cat. No.: 430207, Biolegend, USA). The results are shown in Figure 19.

[0261] The viability of Raji cells was measured using the LIVE / DEAD™ Fixable Violet Dead Cell Stain Kit (Cat. No. L34964, Thermo Fisher Scientific, USA). The above cell / antibody mixture was rinsed three times with PBS and incubated with the dye at 37°C for 30 minutes. The cells were rinsed three more times with PBS and subjected to FACS measurement. The mortality rate of green fluorescent cells (Raji cells) was determined, and the results are shown in Figure 18.

[0262] According to Figure 18, all bispecific antibodies were able to induce T cell-mediated Raji cell death. Among the antibodies, REGN1979 had the weakest activity in inducing Raji cell death, and the activities of MBS303-1 and MBS303-2 were higher than that of REGN1979 and were comparable to or slightly weaker than that of CD20-TCB.

[0263] As shown in Figure 19, all bispecific antibodies induced IFN-γ, IL-2, and TNF-α release by T cells. Among the antibodies, CD20-TCB induced the most cytokine release, and the cytokine levels induced by MBS303-1 and MBS303-2 were much lower than those induced by CD20-TCB and were similar to or slightly higher than those induced by REGN1979. Example 19: Bispecific antibodies against CD3 + T cell activation and CD3 + CD20 by T cells + specifically induced tumor cell death)

[0264] The bispecific antibody inhibits CD20 activation by T cells. + The ability to induce targeted killing of tumor cells was further tested. The HEK293A / hCD20 cells constructed in Example 11 were transfected with CD20 + The parental HEK293A cells were used as tumor cells, and CD20 - HEK293A / hCD20 cells were prepared using the pLV-EGFP(2A)-Puro plasmid to overexpress green fluorescent GFP, while HEK293A cells were labeled with green fluorescent CFSE according to the protocol in Example 18.

[0265] Briefly, PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and CD4 + T cells were isolated using Invitrogen Dynabeads Untouched Human CD4 + T cells were isolated from PBMCs using a T cell isolation kit (Cat. No. 11346D, Thermal Fisher Scientific, USA) according to the manufacturer's instructions. Target cells (HEK293A / hCD20 cells / HEK293A cells) and effector cells (T cells) were centrifuged at 1200 rpm for 5 minutes and then resuspended in RIPM1640 complete medium (RIPM1640 + 10% FBS), where viable cells accounted for approximately 95%. 2.5 × 10 target cells and 2.5 × 10 T cells were isolated.5 / ml and 5 × 10 5 The cells were adjusted to a cell density of 100 μl / ml, and 100 μl of target cells and 100 μl of T cells were added to each well of a 96-well plate at a 2:1 effector-target ratio. Then, 50 μl of diluted antibody (1:10 dilution, starting from 10 μg / ml) was added to each well. The cell / antibody mixture was incubated for 48 hours in an incubator at 37°C and 5% CO2. The nonfucosylated anti-CD20 monospecific antibody MIL62 (prepared using the amino acid sequence and preparation method disclosed in CN108138186B), REGN1979, and CD20-TCB, which have enhanced ADCC activity, were used as positive controls.

[0266] After 48 hours of incubation, 50 μl of cell culture supernatant was collected from each well, and the IFN-γ and TNF-α levels were measured using two kits (Cat. No.: SIF50, R&D, USA; Cat. No.: 430207, Biolegend, USA). The results are shown in Figure 21.

[0267] The viability of tumor cells was measured using the LIVE / DEAD® Fixable Violet Dead Cell Stain Kit (Cat. No. L34964, Thermo Fisher Scientific, USA). Specifically, the cell / antibody mixture was rinsed three times with PBS and incubated with the dye at 37°C for 30 minutes. The cells were rinsed three more times with PBS and subjected to FACS analysis. The mortality of green-fluorescent cells (HEK293 / hCD20 cells or HEK293 cells) was determined, and the results are shown in Figure 20.

[0268] According to Figure 20, all bispecific antibodies inhibited CD20 T cell mediated cytotoxicity. + It was able to induce targeted killing of tumor cells, but CD20 - The bispecific antibody had no such effect on CD20 cells, and the bispecific antibody induced significantly more CD20 than the monospecific anti-CD20 antibody MIL62. +Among the bispecific antibodies, REGN1979 had the weakest activity in inducing targeted killing, while the activities of MBS303-1 and MBS303-2 were greater than that of REGN1979 and comparable to or slightly weaker than that of CD20-TCB.

[0269] As shown in Figure 21, IFN-γ and TNF-α release by T cells induced by bispecific antibodies was suppressed by CD20 + It is mediated by cells and specific antibodies against CD20 - Regarding the cells, they were unable to induce cytokine release by T cells. Among the bispecific antibodies, CD20-TCB induced the most cytokine release, and the cytokine levels induced by MBS303-1 and MBS303-2 were much lower than those induced by CD20-TCB. Example 20 MIL62 pretreatment reduced bispecific antibody-induced cytokine release by PBMCs

[0270] The effect of the bispecific antibody of the present disclosure on cytokine release by PBMCs when used in combination with MIL62 was tested. Briefly, PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation, resuspended in RPMI complete medium (RPMI1640 + 10% FBS), and divided into two aliquots. One aliquot was supplemented with MIL62 at a final concentration of 1 μg / ml and incubated in an incubator at 37°C and 5% CO2 for 48 hours, while the other was incubated as is in an incubator at 37°C and 5% CO2 for 48 hours. PBMCs were rinsed three times with PBS and resuspended in RPMI complete medium (RPMI1640 + 10% FBS) at 5x10 5The PBMCs were resuspended at a cell density of 1 μg / ml. 200 μl of the PBMC suspension was added to each well. For PBMCs pretreated with MIL62, MIL62 was added to a final concentration of 1 μg / ml, and different concentrations of MBS303-2 or MBS303-1 were added to each well. For PBMCs not pretreated with MIL62, different concentrations of MBS303-2 were added to each well. The PBMC / antibody mixture was incubated in an incubator at 37°C and 5% CO for 48 hours, and 50 μl of the cell culture supernatant was collected for measurement of IFN-γ and TNF-α levels using two ELISA kits (catalog number: SIF50, R&D, USA; catalog number: 430207, Biolegend, USA) according to the manufacturer's instructions. Cells were harvested, rinsed three times with PBS, and incubated with 2 μl of PE mouse anti-human CD69 antibody (Cat. No.: 555531, BD, USA), 2 μl of BV605 mouse anti-human CD25 antibody (Cat. No.: 562660, BD, USA), and 2 μl of FITC mouse anti-human CD4 antibody (Cat. No.: 561842, BD, USA) for 30 minutes at room temperature. Cells were harvested by centrifugation, rinsed three times with PBS, and analyzed for CD69 by FACS. + CD4 + T cells, CD25 + CD4 + T cells, or CD69 + CD25 + CD4 + CD4 on T cells + The ratio to T cells was measured.

[0271] As shown in Figure 22, when treated with the bispecific antibody alone, PBMCs released relatively high levels of cytokines such as IFN-γ and TNF-α and expressed relatively high levels of T cell activation markers such as CD69 and CD25. However, when PBMCs were pretreated with MIL62 and then treated with a combination of MIL62 and a bispecific antibody of the present disclosure, almost no cytokine release or T cell activation marker expression was observed. Example 21 Anti-tumor Efficacy of Exemplary Bispecific Antibodies in Combination with MIL62

[0272] The antitumor effect of MIL62 in combination with the bispecific antibody of the present disclosure was evaluated by T cell-mediated CD20 + Briefly, PBMCs from blood samples of healthy human donors were collected by density gradient centrifugation and CD4 + T cells were isolated using Invitrogen Dynabeads Untouched Human CD4 + T cells were isolated from PBMCs using a T cell isolation kit (catalog number: 11346D, Thermal Fisher Scientific, USA) according to the manufacturer's instructions. HEK293A / hCD20 cells were prepared by using the pLV-EGFP(2A)-Puro plasmid, which overexpressed GFP with green fluorescence. Target and effector cells (i.e., T cells) were centrifuged at 1200 rpm for 5 minutes and then resuspended in RIPM1640 complete medium (RIPM1640 + 10% FBS), where approximately 95% were viable cells. 2.5 × 10 target and T cells were each collected. 5 / ml and 5 × 10 5The cell density was adjusted to 100 μl / ml, and 100 μl of target cells and 100 μl of T cells were added to each well of a 96-well plate at a 2:1 effector-target ratio. The resulting mixed suspension was divided into two aliquots: one was added with 50 μl of diluted bispecific antibody (10-fold dilution, starting from 10 μg / ml), and the other was added with MIL62 at a final concentration of 1 μg / ml and 50 μl of diluted bispecific antibody (10-fold dilution, starting from 10 μg / ml). The cell / antibody mixture was incubated for 48 hours in an incubator at 37°C and 5% CO2. The viability of HEK293A / hCD20 cells was measured using the LIVE / DEAD® Fixable Violet Dead Cell Stain Kit (Cat. No. L34964, Thermo Fisher Scientific, USA). Specifically, the above cell / antibody mixture was rinsed three times with PBS and incubated with the dye for 30 minutes at 37°C. The cells were rinsed three times with PBS and subjected to FACS measurement to determine the mortality of green fluorescent cells (HEK293A / hCD20 cells).

[0273] The results are shown in Figure 23, and demonstrate that MIL62 and the bispecific antibody exerted a synergistic antitumor effect. 50 The EC value was 7.6 ng / ml with MBS303-1 treatment alone and decreased to 3.2 ng / ml when MBS303-1 was used in combination with MIL62. MBS303-2 had an EC value of 9.8 ng / ml when used alone. 50 and when used with MIL62, had an EC 50 had. Example 22: In vivo antitumor effect of bispecific antibodies

[0274] The in vivo antitumor effect of MBS303-2 was investigated using an animal model established by transplanting luciferase-expressing Raji cells (named Raji-luc cells, Yicon (Beijing) Medical Science and Technology Co., Ltd.) into PBMC-humanized immunodeficient mice (GemPharmatech Co., Ltd., China). Some mice were injected with 100 μl of PBMCs (5 × 10 cells / mL) collected from healthy human donors. 7 Three days later, Raji-luc cells were injected via tail vein injection at a cell density of 5 × 10 / ml in PBS. 6 The cells were resuspended at a density of 100 μl / ml, and 100 μl of the Raji-luc cell suspension was injected via tail vein into animals that had received or had not received PBMCs, which was designated as day 0. The animals were randomly assigned to five groups with eight animals per group, and received PBS or MBS303-2 at 0.05 mg / kg, 0.15 mg / kg, and 0.5 mg / kg on days 3, 10, and 17, respectively.

[0275] Tumor size, mouse condition, and mouse weight were monitored over time. Mice were observed daily for health status, and survival time from Raji-luc injection to death or euthanasia was recorded. Euthanasia was determined when: 1) the mouse lost more than 20% of its body weight; 2) the mouse was no longer actively drinking water; or 3) the tumor burden in the mouse exceeded the mean irradiation (p / sec / cm). 2 / sr) based on 5 × 10 74) if the tumor-bearing mice reached a certain level of survival, and / or 5) if any abnormal events occurred that adversely affected the animal's welfare and / or the experiment, as determined by a veterinarian. The median survival time (MST) of tumor-bearing mice in each group and the increase in life span (ILS%) in the treatment group were determined. ILS% was calculated as (median survival days in the treatment group / median survival days in the control group - 1) × 100%. Treatment was considered effective if statistical significance was found compared with the control group. After allocation to different groups, mice were intraperitoneally injected with luciferase substrate (15 mg / ml, 10 μl / g body weight) once a week and anesthetized with isoflurane. Fluorescence signals were then collected using a small animal imaging system (IVIS Lumina Series III, PerkinElmer) to characterize tumor growth in the mice. One-way ANOVA was used to analyze signal differences between groups, and Kaplan-Meier and log-rank analyses were used to analyze group differences in survival time of tumor-bearing mice. Statistical significance was found when P<0.05.

[0276] As shown in Figures 24A and 24B (A and B), both imaging and fluorescence intensity analysis demonstrated that MBS303-2 significantly inhibited tumor growth in a dose-dependent manner. As shown in Figure 24C (C), MBS303-2 significantly extended the survival time of tumor-bearing mice, suggesting its pronounced antitumor activity in vivo.

[0277] The sequences in this application are summarized below. [Table 8-1] [Table 8-2] [Table 8-3] [Table 8-4] [Table 8-5] [Table 8-6] [Table 8-7] [Table 8-8]

[0278] Thus, while preferred embodiments of the invention have been described in detail, it should be understood that the invention defined by the above paragraphs is not limited to the specific details set forth in the above description, as many obvious variations thereof are possible without departing from the spirit or scope of the invention.

Claims

1. and a light chain variable region having a VL CDR1 region, a VL CDR2 region, and a VL CDR3 region, wherein the VL CDR1 region, the VL CDR2 region, the VL CDR3 region, the VL CDR1 region, the VL CDR2 region, and the VL CDR3 region are (1) SEQ ID NOs: 1, 2, 3, 4, 5, and 6, respectively, in which the first amino acid residue of SEQ ID NO: 1 is S, the 15th amino acid residue of SEQ ID NO: 2 is D, the 9th and 11th amino acid residues of SEQ ID NO: 3 are L and Y, respectively, the first and 10th amino acid residues of SEQ ID NO: 4 are D and S, respectively, the 3rd, 4th, and 5th amino acid residues of SEQ ID NO: 5 are Q, R, and S, respectively, and the first amino acid residue of SEQ ID NO: 6 is V; (2) SEQ ID NOs: 1, 2, 3, 4, 5, and 6, respectively, in which the first amino acid residue of SEQ ID NO: 1 is T, the 15th amino acid residue of SEQ ID NO: 2 is I, the 9th and 11th amino acid residues of SEQ ID NO: 3 are L and Y, respectively, the first and 10th amino acid residues of SEQ ID NO: 4 are Q and N, respectively, the 3rd, 4th, and 5th amino acid residues of SEQ ID NO: 5 are K, Q, and R, respectively, and the first amino acid residue of SEQ ID NO: 6 is V; (3) SEQ ID NOs: 1, 2, 3, 4, 5, and 6, respectively, wherein the first amino acid residue of SEQ ID NO: 1 is T, the 15th amino acid residue of SEQ ID NO: 2 is D, the 9th and 11th amino acid residues of SEQ ID NO: 3 are I and W, respectively, the first and 10th amino acid residues of SEQ ID NO: 4 are K and S, respectively, the 3rd, 4th, and 5th amino acid residues of SEQ ID NO: 5 are N, L, and H, respectively, and the first amino acid residue of SEQ ID NO: 6 is A; or (4) SEQ ID NOs: 1, 2, 3, 4, 5, and 6, respectively, where the first amino acid residue of SEQ ID NO: 1 is T, the 15th amino acid residue of SEQ ID NO: 2 is I, the 9th and 11th amino acid residues of SEQ ID NO: 3 are I and Y, respectively, the first and 10th amino acid residues of SEQ ID NO: 4 are R and N, respectively, the 3rd, 4th, and 5th amino acid residues of SEQ ID NO: 5 are R, L, and S, respectively, and the first amino acid residue of SEQ ID NO: 6 is V; An isolated monoclonal antibody or antigen-binding portion thereof comprising the amino acid sequence of:

2. 2. The isolated monoclonal antibody or antigen-binding portion thereof of claim 1, wherein the heavy chain variable region has an amino acid sequence having at least 90% identity to any one of SEQ ID NOs: 7 to 14.

3. 3. The isolated monoclonal antibody or antigen-binding portion thereof of claim 1 or 2, wherein the light chain variable region has an amino acid sequence having at least 90% identity to any one of SEQ ID NOs: 15 to 21.

4. An isolated monoclonal antibody or antigen-binding portion thereof according to any one of claims 1 to 3, wherein the heavy chain variable region and the light chain variable region have amino acid sequences having at least 90% identity to: (1) SEQ ID NOs: 7 and 15, respectively; (2) SEQ ID NOs: 8 and 16, respectively; (3) SEQ ID NOs: 9 and 17, respectively; (4) SEQ ID NOs: 9 and 18, respectively; (5) SEQ ID NOs: 10 and 17, respectively; (6) SEQ ID NOs: 10 and 18, respectively; (7) SEQ ID NOs: 11 and 19, respectively; (8) SEQ ID NOs: 12 and 20, respectively; (9) SEQ ID NOs: 13 and 20, respectively; or (10) SEQ ID NOs: 14 and 21, respectively.

5. 5. The isolated monoclonal antibody or antigen-binding portion thereof of claim 1, wherein the antibody comprises a heavy chain constant region linked to the heavy chain variable region and comprising the amino acid sequence of SEQ ID NO: 22, and a light chain constant region linked to the light chain variable region and comprising the amino acid sequence of SEQ ID NO: 23 or 32, and the amino acid residues at positions 117, 118, 180, and 212 of SEQ ID NO: 22 are A, A, N, and P, respectively; A, A, N, and G, respectively; A, A, A, and P, respectively; or A, A, A, and G, respectively.

6. i) an antigen-binding domain against CD3ε, comprising the isolated monoclonal antibody or antigen-binding portion thereof according to any one of claims 1 to 5; and ii) an antigen-binding domain against a disease-associated antigen, wherein the disease-associated antigen is a tumor-associated antigen, an infectious disease-associated antigen, or an inflammatory disease-associated antigen; A bispecific antibody comprising:

7. 7. The bispecific antibody of claim 6, wherein the disease-associated antigen is CD20 and the antigen-binding domain for CD20 comprises an antibody or antigen-binding portion thereof capable of specifically binding to CD20.

8. i) a first polypeptide having an anti-CD20 heavy chain variable region and a heavy chain constant region; ii) a second polypeptide comprising an anti-CD20 light chain variable region; iii) a third polypeptide having an anti-CD20 heavy chain variable region, an anti-CD20 light chain variable region, an anti-CD3ε heavy chain variable region, and a heavy chain constant region; and iv) a fourth polypeptide comprising an anti-CD3 epsilon light chain variable region. Equipped with the anti-CD20 heavy chain variable region of the first polypeptide and the anti-CD20 light chain variable region of the second polypeptide associate to form the antigen-binding domain for CD20; the anti-CD20 heavy chain variable region and the anti-CD20 light chain variable region of the third polypeptide associate to form the antigen-binding domain for CD20; the anti-CD3ε heavy chain variable region of the third polypeptide and the anti-CD3ε light chain variable region of the fourth polypeptide associate to form the antigen-binding domain for CD3ε; the heavy chain constant region in the first polypeptide and the heavy chain constant region in the third polypeptide associate together; The bispecific antibody of claim 7.

9. 9. The bispecific antibody of claim 8, wherein the anti-CD20 heavy chain variable regions contained in the first and third polypeptides comprise the amino acid sequence of SEQ ID NO: 26, and the anti-CD20 light chain variable regions contained in the second and third polypeptides comprise the amino acid sequence of SEQ ID NO:

27.

10. 10. The bispecific antibody of claim 8 or 9, wherein the heavy chain constant region in the first polypeptide comprises the amino acid sequence of SEQ ID NO: 33 and the heavy chain constant region in the third polypeptide comprises the amino acid sequence of SEQ ID NO:

34.

11. the first polypeptide comprises, from N-terminus to C-terminus, the anti-CD20 heavy chain variable region and the heavy chain constant region, and the third polypeptide comprises, from N-terminus to C-terminus, the anti-CD20 heavy chain variable region, the anti-CD20 light chain variable region, the anti-CD3ε heavy chain variable region, and the heavy chain constant region; or 11. The bispecific antibody of claim 8 , wherein the first polypeptide comprises, from N-terminus to C-terminus, the anti-CD20 heavy chain variable region and the heavy chain constant region, and the third polypeptide comprises, from N-terminus to C-terminus, the anti-CD20 light chain variable region, the anti-CD20 heavy chain variable region, the anti-CD3ε heavy chain variable region, and the heavy chain constant region.

12. 12. The bispecific antibody of claim 8 , wherein the anti-CD20 heavy chain variable region is linked to the anti-CD20 light chain variable region via a linker comprising the amino acid sequence of SEQ ID NO: 28, and the anti-CD20 heavy chain variable region or the anti-CD20 light chain variable region is linked to the anti-CD3ε heavy chain variable region via a linker comprising the amino acid sequence of SEQ ID NO:

28.

13. 13. The bispecific antibody of claim 8 , wherein the third polypeptide has the amino acid sequence of SEQ ID NO: 29 or 30.

14. 14. The bispecific antibody of claim 8 , wherein the second polypeptide further comprises, at its C-terminus, a light chain constant region comprising the amino acid sequence of SEQ ID NO: 31, and the fourth polypeptide further comprises, at its C-terminus, a light chain constant region comprising the amino acid sequence of SEQ ID NO:

32.

15. A pharmaceutically effective amount of the isolated monoclonal antibody or antigen-binding portion thereof of any one of claims 1 to 5 and a pharmaceutically acceptable carrier; or A pharmaceutical composition comprising a pharmaceutically effective amount of the bispecific antibody of any one of claims 6 to 14 and a pharmaceutically acceptable carrier.

16. 6. An isolated monoclonal antibody or antigen-binding portion thereof according to any one of claims 1 to 5 for use in treating or alleviating a CD3-associated inflammatory disease in a subject in need thereof.

17. 15. The bispecific antibody of any one of claims 7 to 14, for use in treating or ameliorating a CD20-associated B cell related disorder in a subject in need thereof, wherein the B cell related disorder is a B cell lymphoma, a B cell leukemia, or a B cell mediated autoimmune disorder.

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