Anti-MUC1-SEA antibody

Monoclonal antibodies targeting the MUC1 SEA domain address the limitations of VNTR antibodies by effectively binding to MUC1-expressing tumors, offering therapeutic benefits for various cancers and autoimmune diseases.

JP7828286B2Active Publication Date: 2026-03-11BIOMODIFYING LLC +1
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-03-11
Publication Date
2026-03-11

AI Technical Summary

Technical Problem

Existing anti-MUC1 antibodies targeting the variable number tandem repeat (VNTR) domain of the MUC1 glycoprotein are ineffective due to shedding from the cell surface and neutralization in the peripheral circulation, limiting their therapeutic impact on MUC1-expressing tumors.

Method used

Development of monoclonal antibodies that specifically bind to the stable MUC1 SEA domain, which is a membrane-anchored portion of the MUC1 molecule, formed by the interaction of the α and β subunits, with defined complementarity determining regions (CDRs) and variable regions.

Benefits of technology

The antibodies effectively target MUC1-expressing tumors, reducing tumor volume and providing a therapeutic option for cancers such as lung, prostate, breast, ovarian, colon, pancreatic, multiple myeloma, and acute myeloid leukemia, as well as autoimmune and inflammatory diseases.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides isolated monoclonal antibodies that bind to the MUC1 SEA domain. The present invention also relates to the use of these antibodies in therapeutic and diagnostic methods.
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Description

[Technical Field]

[0001] The present invention relates to antibodies specific for the junction of the alpha and beta chains (including the SEA domain) of MUC1, a glycoprotein present on the cell surface of human cells, and methods and uses thereof in the detection and treatment of cancer, as well as various non-malignant diseases and disorders. [Background technology]

[0002] The following references are considered relevant as background to the subject matter of this disclosure. [1] G. Rivalland, B. Loveland, P. Mitchell, Update on Mucin-1 immunotherapy in cancer: a clinical perspective, Expert Opin Biol Ther, 15 (2015) 1773-1787. [2] J. Taylor-Papadimitriou, JMBurchell, R. Graham, R. Beatson, Latest developments in MUC1 immunotherapy, Biochem Soc Trans, 46 (2018) 659-668. [3] JMBurchell, A. Mungul, J. Taylor-Papadimitriou, O-linked glycosylation in the mammary gland: changes that occur during malignancy, J Mammary Gland Biol Neoplasia, 6 (2001) 355-364. [4] W.Fiedler,S.DeDosso,S.Cresta,J.Weidmann,A.Tessari,M.Salzberg,B.Dietrich,H.Baumeister,S.Goletz,L.Gianni,C.Sessa,A phase I study of PankoMab-GEX,a humanised glyco-optimised monoclonal antibody to a novel tumour-specific MUC1 glycopeptide epitope in patients with advanced carcinomas,Eur J Cancer,63(2016)55-63. [5] K.Ryuko,D.J.Schol,F.G.Snijdewint,S.von Mensdorff-Pouilly,R.J.Poort-Keesom,Y.A.Karuntu-Wanamarta,R.A.Verstraeten,K.Miyazaki,P.Kenemans,J.Hilgers,Characterization of a new MUC1 monoclonal antibody(VU-2-G7)directed to the glycosylated PDTR sequence of MUC1,Tumour Biol,21(2000)197-210. [6] M.A.Tarp,A.L.Sorensen,U.Mandel,H.Paulsen,J.Burchell,J.Taylor-Papadimitriou,H.Clausen,Identification of a novel cancer-specific immunodominant glycopeptide epitope in the MUC1 tandem repeat,Glycobiology,17(2007)197-209. [7] D.Zhou,L.Xu,W.Huang,T.Tonn,Epitopes of MUC1 Tandem Repeats in Cancer as Revealed by Antibody Crystallography:Toward Glycopeptide Signature-Guided Therapy,Molecules,23(6)(2018)1326. [8] T.Kimura,O.J.Finn,MUC1 immunotherapy is here to stay,Expert Opin Biol Ther,13(2013)35-49. [9] N.K.Ibrahim,K.O.Yariz,I.Bondarenko,A.Manikhas,V.Semiglazov,A.Alyasova,V.Komisarenko,Y.Shparyk,J.L.Murray,D.Jones,S.Senderovich,A.Chau,F.Erlandsson,G.Acton,M.Pegram,Randomized phase II trial of letrozole plus anti-MUC1 antibody AS1402 in hormone receptor-positive locally advanced or metastatic breast cancer,Clin Cancer Res,17(2011)6822-6830.

[10] D.B.Rubinstein,M.Karmely,R.Ziv,I.Benhar,O.Leitner,S.Baron,B.Z.Katz,D.H.Wreschner,MUC1 / X protein immunization enhances cDNA immunization in generating anti-MUC1 alpha / beta junction antibodies that target malignant cells,Cancer Res,66(2006)11247-11253.

[11] E. Pichinuk, I. Benhar, O. Jacobi, M. Chalik, L. Weiss, R. Ziv, C. Sympson, A. Karwa, NISmorodinsky, DB Rubinstein, DHWreschner, Antibody targeting of cell-bound MUC1 SEA domain kills tumor cells, Cancer Res, 72 (2012) 3324-3336.

[12] DBRubinstein, M. Karmely, E. Pichinuk, R. Ziv, I. Benhar, N. Feng, NISmorodinsky, DHWreschner, The MUC1 oncoprotein as a functional target: immunotoxin binding to alpha / beta junction mediates cell killing, Int J Cancer, 124 (2009) 46-54.

[13] DVGold, Z. Karanjawala, DEModrak, DMGoldenberg, RHHruban, PAM4-reactive MUC1 is a biomarker for early pancreatic adenocarcinoma, Clin Cancer Res, 13 (2007) 7380-7387.

[0003] The acknowledgment of the above references herein is not to be inferred as meaning that they are in any way relevant to the patentability of the subject matter of the present disclosure.

[0004] background The MUC1 glycoprotein is overexpressed by a variety of high-incidence, high-mortality human epithelial malignancies, including breast, prostate, pancreatic, ovarian, lung, and colon cancers, as well as by malignant plasma cells in multiple myeloma and myeloid cells in acute myeloid leukemia. Because of its preferential expression by malignant cells and because it is expressed and therefore exposed on the cell surface, MUC1 has been investigated as both a target for targeted cancer therapy and a marker of disease progression [1, 2].

[0005] Structurally, the MUC1 molecule is a transmembrane glycoprotein (termed MUC-TM). MUC-TM is a heterodimer consisting of an extracellular domain containing 20–125 repeats of 20-amino acid sequences (termed variable number tandem repeats, or VNTRs), a transmembrane domain, and a short cytoplasmic tail that mediates intracellular signaling (see Figure 1A). The MUC1 molecule undergoes autoproteolytic cleavage within a highly conserved 120-amino acid domain, the SEA module. This results in a large extracellular α subunit containing a tandem repeat array bound by strong noncovalent interactions with the transmembrane β subunit, which contains the transmembrane and cytoplasmic domains of the molecule. Binding of the α chain to the β chain is intermittent: the α chain binds to the β chain in an intermittent manner. While the β chain remains constantly on the cell surface, the α chain, with its VNTR, remains cell-associated only intermittently.

[0006] Numerous anti-MUC1 antibodies have been reported in the literature, most of which are directed against the highly immunogenic VNTR of the α chain. Although anti-VNTR antibodies can successfully bind to MUC1+ cells in vitro, shedding of the VNTR-containing MUC1 α chain into the peripheral circulation in vivo significantly impairs the ability of anti-VNTR antibodies to have a clinical impact on MUC1-expressing tumors. Shedding of the α chain from the tumor cell surface not only significantly reduces the number of MUC1 targets for anti-α chain antibodies, but also, the freely circulating MUC1 α chain in the periphery in vivo may bind and neutralize anti-VNTR or anti-glycosylated VNTR antibodies, thereby limiting their ability to reach MUC1-expressing tumors.

[0007] Antibodies that recognize cancer-specific truncated O-glycoforms of the VNTR, such as the antibodies PankoMab-Gex, 5E5, SM3, and VU-2-G7, have been proposed as a possible way to overcome the potential toxicity of targeting MUC1 expressed by normal tissues. However, limitations of targeting the α-chain VNTR (Figure 1A), primarily its shedding from the cell surface and its ability to bind therapeutically administered anti-MUC1 antibodies, remain [3-7].

[0008] As mentioned above, anti-MUC1 VNTR antibodies have not yet proven clinically effective due to the instability of their target, which binds tumor cells only intermittently and via an intermittent mechanism [4, 8, 9]. Notably, Fiedler et al. reported 16 cases of stable disease in a clinical trial of the anti-VNTR cancer-specific glycosylated antibody PankoMab-Gex [4]. However, that study was a phase I trial of an anti-VNTR antibody, and the primary objective of the study was antibody safety rather than antitumor efficacy. As a result, the observed cases of stable disease cannot be truly interpreted. To date, neither antibodies against the MUC1 VNTR nor the α chain of MUC1 have been shown to be effective against tumors in humans.

[0009] In contrast to the α chain and its VNTR, the MUC1 SEA domain, formed by the interaction of the α subunit with the extracellular portion of the β subunit, is a stable membrane-anchored portion of the molecule. Anti-MUC1 alpha / beta junction antibodies have been described in Rubinstein et al. and Pichinuk et al. [10-12]. Summary of the Invention

[0010] In a first aspect, the present invention provides an isolated monoclonal antibody or antigen-binding fragment thereof that binds to the MUC1 SEA domain, said antibody comprising: a. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 25, a CDRH2 represented by SEQ ID NO: 26, a CDRH3 represented by SEQ ID NO: 27, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 28, a CDRL2 represented by SEQ ID NO: 29, and a CDRL3 represented by SEQ ID NO: 30; or b. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 31, a CDRH2 represented by SEQ ID NO: 32, a CDRH3 represented by SEQ ID NO: 33, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 34, a CDRL2 represented by SEQ ID NO: 35, and a CDRL3 represented by SEQ ID NO: 36; or c. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 37, a CDRH2 represented by SEQ ID NO: 38, a CDRH3 represented by SEQ ID NO: 39, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 40, a CDRL2 represented by SEQ ID NO: 41, and a CDRL3 represented by SEQ ID NO: 42; or d. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 43, a CDRH2 represented by SEQ ID NO: 44, a CDRH3 represented by SEQ ID NO: 45, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 46, a CDRL2 represented by SEQ ID NO: 47, and a CDRL3 represented by SEQ ID NO: 48; or e. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 49, a CDRH2 represented by SEQ ID NO: 50, a CDRH3 represented by SEQ ID NO: 51, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 52, a CDRL2 represented by SEQ ID NO: 53, and a CDRL3 represented by SEQ ID NO: 54; or f. Heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 55, CDRH2 represented by SEQ ID NO: 56, CDRH3 represented by SEQ ID NO: 57, and light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 58, CDRL2 represented by SEQ ID NO: 59, and CDRL3 represented by SEQ ID NO: 60.

[0011] In some embodiments, the aforementioned antibody comprises a heavy chain variable region and a light chain variable region, a. the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to the nucleic acid sequence set forth in SEQ ID NO:1, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to SEQ ID NO:2; or b. the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to the nucleic acid sequence set forth in SEQ ID NO:3, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to SEQ ID NO:4; or c. the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to the nucleic acid sequence set forth in SEQ ID NO:5, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to SEQ ID NO:6; or d. the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to the nucleic acid sequence set forth in SEQ ID NO:7, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to SEQ ID NO:8; or e. the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to the nucleic acid sequence set forth in SEQ ID NO:9, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to SEQ ID NO:10; or f. The heavy chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to the nucleic acid sequence set forth in SEQ ID NO:11, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to SEQ ID NO:12.

[0012] In some embodiments, the antibody comprises: a. a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 13 or a variant thereof, and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 14 or a variant thereof; or b. a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 15 or a variant thereof, and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 16 or a variant thereof; or c. a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 17 or a variant thereof, and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 18 or a variant thereof; or d. a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 19 or a variant thereof, and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 20 or a variant thereof; or e. a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 21 or a variant thereof, and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 22 or a variant thereof; or f. A heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 23 or a variant thereof, and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 24 or a variant thereof.

[0013] In some embodiments, the antibody is a fully murine antibody, a fully chimeric antibody, a fully humanized antibody (eg, some of the antibody sequences are murine and some are human), or a fully human antibody.

[0014] In some embodiments, the antigen-binding fragment is an Fv, a single-chain Fv (scFv), a single-chain Fv-Fc (scFv-Fc), a Fab', a Fab, a F(ab')2, or a F(ab)2.

[0015] In some embodiments, the aforementioned antibodies or antigen-binding fragments thereof identify MUC1 SEA in immunohistochemistry performed on formaldehyde-fixed sections from fresh-frozen (FF) tissue, and / or on paraffin-embedded, formaldehyde-fixed (PEFF) tissue, and / or by fluorescence-activated cell sorting (FACS) analysis of MUC1-expressing human cells.

[0016] In another embodiment, the invention provides an isolated nucleic acid molecule comprising a nucleotide sequence encoding an antibody of the invention or any antigen-binding fragment thereof described herein.

[0017] In another embodiment, the invention provides an expression vector comprising the isolated nucleic acid molecule of the invention.

[0018] In another embodiment, the present invention provides a host cell transfected with an expression vector of the present invention.

[0019] In another embodiment, the invention provides an immunoconjugate comprising an antibody or antigen-binding fragment thereof of the invention and an additional cytotoxic or therapeutic agent.

[0020] In certain embodiments, the cytotoxic agent is selected from the group consisting of alkylating agents, anthracyclines, pyrimidine derivatives, vinca alkaloids, photodynamic agents, platinum-containing compounds, taxanes, topoisomerase inhibitors, ribosome-inactivating agents, agents that induce DNA damage, tubulin inhibitors, antimitotic agents, radioisotopes, cytotoxic antibodies, and bacterial toxins.

[0021] In one embodiment, the cytotoxic agent is a Pseudomonas exotoxin.

[0022] In one embodiment, the immunoconjugate reduces tumor volume upon administration to a subject with cancer.

[0023] In another embodiment, the invention provides a bispecific antibody comprising an antibody of the invention or an antigen-binding fragment thereof that binds to a second antibody that binds to a different antigen target.

[0024] In another embodiment, the present invention provides a pharmaceutical composition comprising as an active ingredient the isolated monoclonal antibody or antigen-binding fragment thereof, or the immunoconjugate of the invention, or the bispecific antibody of the invention, and a pharmaceutically acceptable carrier, excipient, or diluent.

[0025] In embodiments, the aforementioned pharmaceutical compositions are for use in the treatment of a disease or disorder, for example, cancer.

[0026] In embodiments, the aforementioned pharmaceutical compositions further comprise an additional therapeutic agent.

[0027] In some embodiments, the present invention provides methods for treating or ameliorating a disease or disorder, comprising administering to a subject in need thereof a therapeutically effective amount of at least one isolated monoclonal antibody or antigen-binding fragment thereof, or immunoconjugate, or bispecific antibody, or pharmaceutical composition of the present invention.

[0028] In embodiments, the aforementioned methods further comprise administering an additional therapeutic agent to a subject in need thereof.

[0029] In one embodiment, the aforementioned disease or disorder is cancer.

[0030] In one embodiment, the cancer is a MUC1-expressing cancer.

[0031] In some embodiments, the cancer is selected from the group consisting of lung cancer, prostate cancer, breast cancer, ovarian cancer, colon cancer, pancreatic cancer, multiple myeloma, and acute myeloid leukemia.

[0032] All of the cancer types listed are known to express MUC1 on their malignant cells.

[0033] In one embodiment, the aforementioned disease or disorder is an autoimmune or inflammatory disease.

[0034] In some embodiments, the autoimmune or inflammatory disease is selected from the group consisting of, but not limited to, rheumatoid arthritis, psoriatic arthritis, systemic lupus erythematosus, amyloidosis, and autoimmune pancreatitis.

[0035] In one embodiment, the aforementioned disease or disorder is a non-malignant, but abnormal and clinically significant growth condition, such as a cyst, for example, a kidney cyst, a thyroid cyst and thyroid mass, or a liver cyst.

[0036] In some embodiments, the present invention provides an isolated monoclonal antibody or antigen-binding fragment thereof, or immunoconjugate, or bispecific antibody, or pharmaceutical composition of the present invention for use in a method for treating or ameliorating a disease or disorder, said method comprising administering to a subject in need thereof a therapeutically effective amount of said isolated monoclonal antibody or antigen-binding fragment thereof, said immunoconjugate, said bispecific antibody, or said pharmaceutical composition.

[0037] In one embodiment, the aforementioned method further comprises administering an additional therapeutic agent to a subject in need thereof.

[0038] In one embodiment, the aforementioned disease or disorder is cancer.

[0039] In one embodiment, the cancer is a MUC1-expressing cancer.

[0040] In one embodiment, the aforementioned disease or disorder is an autoimmune or inflammatory disease.

[0041] In one embodiment, the aforementioned disease or disorder is a non-malignant abnormal growth condition, for example, a cyst, such as a kidney cyst, a thyroid cyst and thyroid mass, or a liver cyst.

[0042] In another aspect, the present invention provides a method of diagnosing a disease or disorder in a subject, wherein said disease or disorder is associated with MUC-1 expression, said method comprising:

[0043] a. contacting a biopsy obtained from said patient with at least one isolated monoclonal antibody or antigen-binding fragment thereof of the present invention; and

[0044] b. detecting the isolated monoclonal antibody or any antigen-binding fragment thereof;

[0045] Detection of cells that overexpress MUC1 SEA in the biopsy indicates that the subject is diagnosed with the disease or disorder.

[0046] In one embodiment, the aforementioned disease or disorder is cancer.

[0047] In one embodiment, the aforementioned disease or disorder is an autoimmune or inflammatory disease.

[0048] In one embodiment, the aforementioned disease or disorder is a non-malignant, clinically significant abnormal growth condition, such as a cyst, eg, a kidney cyst, a thyroid cyst and thyroid mass, or a liver cyst.

[0049] In one embodiment, the aforementioned isolated monoclonal antibody or antigen-binding fragment thereof is detectably labeled.

[0050] In another aspect, the present invention provides a method of imaging a disease or disorder, said method comprising: a. introducing into a subject at least one isolated anti-MUC1 SEA monoclonal antibody or antigen-binding fragment thereof of the present invention, wherein said antibody or antigen-binding fragment thereof is detectably labeled with a radioisotope or a visualizeable agent (i.e., an agent that can be visualized, for example, by scanning); and b. visualizing said detectably labeled isolated anti-MUC1 SEA monoclonal antibody or any antigen-binding fragment thereof; Detection of cells and / or tissues labeled with said isotope or said visualizeable agent indicates the presence, and / or localization and / or extent and / or presence of metastasis of said disease or disorder in said subject.

[0051] In one embodiment, the aforementioned disease or disorder is cancer.

[0052] In one embodiment, the aforementioned disease or disorder is an autoimmune or inflammatory disease.

[0053] In one embodiment, the aforementioned disease or disorder is a non-malignant abnormal growth condition, for example, a cyst, such as a kidney cyst, a thyroid cyst and thyroid mass, or a liver cyst. [Brief explanation of the drawings]

[0054] For a better understanding of the subject matter disclosed herein, and to show how it may be carried out in practice, embodiments will now be described, by way of non-limiting example only, with reference to the accompanying drawings, in which:

[0055] [Figure 1-1]Figures 1A–1C are schematic diagrams of MUC1-TM, MUC1-X isoforms, and recombinant MUC1-X molecules. (1A) Proceeding from N (N) to C-terminus (C), MUC1-TM consists of an N-terminal signal peptide followed by a 30-amino acid segment (N30) that is flanked at the N- and C-termini by variable-number tandem repeat arrays (VNTRs). This is followed by a region common to both MUC1-X isoforms (1B) and the soluble extracellular domain of MUC1 X, MUC1-Xex (1C). The β-subunit extracellular domain consists of 58 amino acids immediately N-terminal to the transmembrane (TM) and cytoplasmic (CT) domains. The SEA module contains 120 amino acids, which are contributed by both the α- and β-subunits. The recombinant soluble MUC1-Xex protein (1C) contains a signal peptide, an N-terminal 30-amino acid sequence, and the SEA module region. Figures 1D–1K show flow cytometry analysis of the anti-MUC1 SEA antibody DMB5F3. DA3 cells stably transfected with MUC1-TM (1D) or untransfected DA3 cells (1E) were reacted with the anti-MUC1 SEA mAb DMB5F3, followed by FITC-conjugate (tracing marked by arrows). The MUC1+ human pancreatic cancer cell line Colo357 (1F) and MUC1+ breast cancer cells T47D and ZR75 (1H, 1J) were reacted with DMB5F3 (tracing marked by arrows). In all four panels, tracings without arrows represent cells bound to the secondary antibody alone, while tracings with arrows represent cells reacted with both DMB5F3 and the secondary antibody. Anti-MUC1 SEA binding to MUC1+ cells was completely competed by the presence of soluble MUC1-Xex protein (MUC1-Xex-mediated inhibitory binding is indicated by open arrows in panels 1G, 1I, and 1K). [Figure 1-2]Figures 1A–1C are schematic diagrams of MUC1-TM, MUC1-X isoforms, and recombinant MUC1-X molecules. (1A) Proceeding from N (N) to C-terminus (C), MUC1-TM consists of an N-terminal signal peptide followed by a 30-amino acid segment (N30) that is flanked at the N- and C-termini by variable-number tandem repeat arrays (VNTRs). This is followed by a region common to both MUC1-X isoforms (1B) and the soluble extracellular domain of MUC1 X, MUC1-Xex (1C). The β-subunit extracellular domain consists of 58 amino acids immediately N-terminal to the transmembrane (TM) and cytoplasmic (CT) domains. The SEA module contains 120 amino acids, which are contributed by both the α- and β-subunits. The recombinant soluble MUC1-Xex protein (1C) contains a signal peptide, an N-terminal 30-amino acid sequence, and the SEA module region. Figures 1D–1K show flow cytometry analysis of the anti-MUC1 SEA antibody DMB5F3. DA3 cells stably transfected with MUC1-TM (1D) or untransfected DA3 cells (1E) were reacted with the anti-MUC1 SEA mAb DMB5F3, followed by FITC-conjugate (tracing marked by arrows). The MUC1+ human pancreatic cancer cell line Colo357 (1F) and MUC1+ breast cancer cells T47D and ZR75 (1H, 1J) were reacted with DMB5F3 (tracing marked by arrows). In all four panels, tracings without arrows represent cells bound to the secondary antibody alone, while tracings with arrows represent cells reacted with both DMB5F3 and the secondary antibody. Anti-MUC1 SEA binding to MUC1+ cells was completely competed by the presence of soluble MUC1-Xex protein (MUC1-Xex-mediated inhibitory binding is indicated by open arrows in panels 1G, 1I, and 1K). [Figure 1-3]Figures 1A–1C are schematic diagrams of MUC1-TM, MUC1-X isoforms, and recombinant MUC1-X molecules. (1A) Proceeding from N (N) to C-terminus (C), MUC1-TM consists of an N-terminal signal peptide followed by a 30-amino acid segment (N30) that is flanked at the N- and C-termini by variable-number tandem repeat arrays (VNTRs). This is followed by a region common to both MUC1-X isoforms (1B) and the soluble extracellular domain of MUC1 X, MUC1-Xex (1C). The β-subunit extracellular domain consists of 58 amino acids immediately N-terminal to the transmembrane (TM) and cytoplasmic (CT) domains. The SEA module contains 120 amino acids, which are contributed by both the α- and β-subunits. The recombinant soluble MUC1-Xex protein (1C) contains a signal peptide, an N-terminal 30-amino acid sequence, and the SEA module region. Figures 1D–1K show flow cytometry analysis of the anti-MUC1 SEA antibody DMB5F3. DA3 cells stably transfected with MUC1-TM (1D) or untransfected DA3 cells (1E) were reacted with the anti-MUC1 SEA mAb DMB5F3, followed by FITC-conjugate (tracing marked by arrows). The MUC1+ human pancreatic cancer cell line Colo357 (1F) and MUC1+ breast cancer cells T47D and ZR75 (1H, 1J) were reacted with DMB5F3 (tracing marked by arrows). In all four panels, tracings without arrows represent cells bound to the secondary antibody alone, while tracings with arrows represent cells reacted with both DMB5F3 and the secondary antibody. Anti-MUC1 SEA binding to MUC1+ cells was completely competed by the presence of soluble MUC1-Xex protein (MUC1-Xex-mediated inhibitory binding is indicated by open arrows in panels 1G, 1I, and 1K). [Figure 2-1] Figure 2 shows the amino acid sequences of the variable regions of anti-MUC1 SEA α-β junction monoclonal antibodies. For all sequences, the following general structure is presented: leader sequence-FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4. [Figure 2-2] Figure 2 shows the amino acid sequences of the variable regions of anti-MUC1 SEA α-β junction monoclonal antibodies. For all sequences, the following general structure is presented: leader sequence-FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4. [Figure 3-1] Figures 3A-3N show the structure of MUC1 expression delineated by the anti-MUC1 SEA α-β junction antibody DMB5F3. Figures 3A-3D: Paraffin-embedded microarrays of normal (3A and 3B) and malignant pancreatic tissues (3C and 3D) were stained with DMB5F3. DMB5F3 strongly stained malignant cells in a roughly circular pattern (3C and 3D), whereas only weak apical positivity was observed in normal pancreatic acinar cells (3A(i), black arrow). Addition of MUC1-Xex protein together with DMB5F3 competitively inhibited staining (3B), demonstrating the specificity of DMB5F3 binding. Figures 3E-3H: Paraffin-embedded normal breast tissues (3E and 3F) and malignant invasive ductal carcinomas (3G and 3H) from four patients were stained with the DMB5F3 antibody. Figures 3I–3N show breast cancer biopsy specimens from six patients, each consisting of adjacent nonmalignant tissue stained with DMB5F3. In each specimen, DMB5F3 strongly stained the invasive cancer epithelial cells in a roughly circular pattern (dark staining). In contrast, the adjacent normal glandular epithelial cells showed only weak apical positivity (black arrows). [Figure 3-2]Figures 3A-3N show the structure of MUC1 expression delineated by the anti-MUC1 SEA α-β junction antibody DMB5F3. Figures 3A-3D: Paraffin-embedded microarrays of normal (3A and 3B) and malignant pancreatic tissues (3C and 3D) were stained with DMB5F3. DMB5F3 strongly stained malignant cells in a roughly circular pattern (3C and 3D), whereas only weak apical positivity was observed in normal pancreatic acinar cells (3A(i), black arrow). Addition of MUC1-Xex protein together with DMB5F3 competitively inhibited staining (3B), demonstrating the specificity of DMB5F3 binding. Figures 3E-3H: Paraffin-embedded normal breast tissues (3E and 3F) and malignant invasive ductal carcinomas (3G and 3H) from four patients were stained with the DMB5F3 antibody. Figures 3I–3N show breast cancer biopsy specimens from six patients, each consisting of adjacent nonmalignant tissue stained with DMB5F3. In each specimen, DMB5F3 strongly stained the invasive cancer epithelial cells in a roughly circular pattern (dark staining). In contrast, the adjacent normal glandular epithelial cells showed only weak apical positivity (black arrows). [Figure 3-3] Figures 3A-3N show the structure of MUC1 expression delineated by the anti-MUC1 SEA α-β junction antibody DMB5F3. Figures 3A-3D: Paraffin-embedded microarrays of normal (3A and 3B) and malignant pancreatic tissues (3C and 3D) were stained with DMB5F3. DMB5F3 strongly stained malignant cells in a roughly circular pattern (3C and 3D), whereas only weak apical positivity was observed in normal pancreatic acinar cells (3A(i), black arrow). Addition of MUC1-Xex protein together with DMB5F3 competitively inhibited staining (3B), demonstrating the specificity of DMB5F3 binding. Figures 3E-3H: Paraffin-embedded normal breast tissues (3E and 3F) and malignant invasive ductal carcinomas (3G and 3H) from four patients were stained with the DMB5F3 antibody. Figures 3I–3N show breast cancer biopsy specimens from six patients, each consisting of adjacent nonmalignant tissue stained with DMB5F3. In each specimen, DMB5F3 strongly stained the invasive cancer epithelial cells in a roughly circular pattern (dark staining). In contrast, the adjacent normal glandular epithelial cells showed only weak apical positivity (black arrows). [Figure 4-1] Figures 4A-4O show IHC staining of tissue microarrays using anti-MUC1 SEA α-β junction antibodies. Figures 4A-4L show IHC staining of lung, prostate, colon, and breast cancer using anti-MUC1 SEA α-β junction antibodies. Paraffin-embedded lung, prostate, colon, and breast cancer microarrays were stained with antibody DMB5F3, and representative sections are shown in Figures 4A, 4D, 4G, and 4J, respectively. Higher magnifications are shown in Figures 4B, 4E, 4H, and 4K; triangles in Figures 4A, 4D, 4G, and 4J and 4B, 4E, 4H, and 4K define the magnified areas. Staining with antibody DMB5F3 was again abolished in the presence of 100 μg / mL of competing soluble MUC1-Xex protein, demonstrating the specificity of antibody DMB5F3 (not shown). Control staining using nonspecific mouse immunoglobulin is shown in Figures 4C, 4F, 4I, and 4L. Antibody DMB5F3 strongly stained malignant cells in a roughly circular pattern. The bottom lines in Figures 4A, 4D, 4G, and 4J (with arrows at either end) and the bottom lines in Figures 4B, 4E, 4H, and 4K (with filled circles at either end) indicate 200 and 100 microns, respectively. The darkly stained precipitate represents MUC1 protein (compare Figures 4A, 4B, 4D, 4E, 4G, 4H, 4J, and 4K with Figures 4C, 4F, 4I, and 4L). The tissues in Figures 4A, 4D, 4G, and 4J were derived from pathological grade 2 lung adenocarcinoma, pathological grade 5 prostate carcinoma, pathological grade 3 colon adenocarcinoma, and invasive ductal carcinoma of the breast, respectively. Figures 4M–4O show confirmatory IHC staining of normal and malignant pancreatic tissues using an anti-MUC1 SEA α-β junction antibody. To confirm the high expression and altered molecular structure of MUC1 in pancreatic cancer, additional pancreatic malignancies were stained with anti-MUC1 SEA and compared with normal tissue. Paraffin-embedded microarrays of normal (Figure 4M) and malignant pancreatic tissues (Figures 4N and 4O) were stained with antibody DMB5F3. Staining confirmed weak apical positivity in normal pancreatic acinar cells (Figure 4M), while malignant cells were consistently stained in an approximately circular pattern (Figures 4N and 4O). [Figure 4-2]Figures 4A-4O show IHC staining of tissue microarrays using anti-MUC1 SEA α-β junction antibodies. Figures 4A-4L show IHC staining of lung, prostate, colon, and breast cancer using anti-MUC1 SEA α-β junction antibodies. Paraffin-embedded lung, prostate, colon, and breast cancer microarrays were stained with antibody DMB5F3, and representative sections are shown in Figures 4A, 4D, 4G, and 4J, respectively. Higher magnifications are shown in Figures 4B, 4E, 4H, and 4K; triangles in Figures 4A, 4D, 4G, and 4J and 4B, 4E, 4H, and 4K define the magnified areas. Staining with antibody DMB5F3 was again abolished in the presence of 100 μg / mL of competing soluble MUC1-Xex protein, demonstrating the specificity of antibody DMB5F3 (not shown). Control staining using nonspecific mouse immunoglobulin is shown in Figures 4C, 4F, 4I, and 4L. Antibody DMB5F3 strongly stained malignant cells in a roughly circular pattern. The bottom lines in Figures 4A, 4D, 4G, and 4J (with arrows at either end) and the bottom lines in Figures 4B, 4E, 4H, and 4K (with filled circles at either end) indicate 200 and 100 microns, respectively. The darkly stained precipitate represents MUC1 protein (compare Figures 4A, 4B, 4D, 4E, 4G, 4H, 4J, and 4K with Figures 4C, 4F, 4I, and 4L). The tissues in Figures 4A, 4D, 4G, and 4J were derived from pathological grade 2 lung adenocarcinoma, pathological grade 5 prostate carcinoma, pathological grade 3 colon adenocarcinoma, and invasive ductal carcinoma of the breast, respectively. Figures 4M–4O show confirmatory IHC staining of normal and malignant pancreatic tissues using an anti-MUC1 SEA α-β junction antibody. To confirm the high expression and altered molecular structure of MUC1 in pancreatic cancer, additional pancreatic malignancies were stained with anti-MUC1 SEA and compared with normal tissue. Paraffin-embedded microarrays of normal (Figure 4M) and malignant pancreatic tissues (Figures 4N and 4O) were stained with antibody DMB5F3. Staining confirmed weak apical positivity in normal pancreatic acinar cells (Figure 4M), while malignant cells were consistently stained in an approximately circular pattern (Figures 4N and 4O). [Figure 4-3]Figures 4A-4O show IHC staining of tissue microarrays using anti-MUC1 SEA α-β junction antibodies. Figures 4A-4L show IHC staining of lung, prostate, colon, and breast cancer using anti-MUC1 SEA α-β junction antibodies. Paraffin-embedded lung, prostate, colon, and breast cancer microarrays were stained with antibody DMB5F3, and representative sections are shown in Figures 4A, 4D, 4G, and 4J, respectively. Higher magnifications are shown in Figures 4B, 4E, 4H, and 4K; triangles in Figures 4A, 4D, 4G, and 4J and 4B, 4E, 4H, and 4K define the magnified areas. Staining with antibody DMB5F3 was again abolished in the presence of 100 μg / mL of competing soluble MUC1-Xex protein, demonstrating the specificity of antibody DMB5F3 (not shown). Control staining using nonspecific mouse immunoglobulin is shown in Figures 4C, 4F, 4I, and 4L. Antibody DMB5F3 strongly stained malignant cells in a roughly circular pattern. The bottom lines in Figures 4A, 4D, 4G, and 4J (with arrows at either end) and the bottom lines in Figures 4B, 4E, 4H, and 4K (with filled circles at either end) indicate 200 and 100 microns, respectively. The darkly stained precipitate represents MUC1 protein (compare Figures 4A, 4B, 4D, 4E, 4G, 4H, 4J, and 4K with Figures 4C, 4F, 4I, and 4L). The tissues in Figures 4A, 4D, 4G, and 4J were derived from pathological grade 2 lung adenocarcinoma, pathological grade 5 prostate carcinoma, pathological grade 3 colon adenocarcinoma, and invasive ductal carcinoma of the breast, respectively. Figures 4M–4O show confirmatory IHC staining of normal and malignant pancreatic tissues using an anti-MUC1 SEA α-β junction antibody. To confirm the high expression and altered molecular structure of MUC1 in pancreatic cancer, additional pancreatic malignancies were stained with anti-MUC1 SEA and compared with normal tissue. Paraffin-embedded microarrays of normal (Figure 4M) and malignant pancreatic tissues (Figures 4N and 4O) were stained with antibody DMB5F3. Staining confirmed weak apical positivity in normal pancreatic acinar cells (Figure 4M), while malignant cells were consistently stained in an approximately circular pattern (Figures 4N and 4O). [Figure 5-1]Figures 5A-5D are graphs showing the comparative cytocidal activity of chDMB5F3, Erbitux, and Herceptin, each of which was linked to the Pseudomonas exotoxin PE38 via the protein ZZ. The three resulting ZZ-PE38 immunotoxins were reacted with the human tumor cell lines T47D, KB, A431, and N87 (Figures 5A-5D, respectively). The immunotoxins chDMB5F3:ZZ-PE38 (oval tracing), Erbitux:ZZ-PE38 (diamond tracing), and Herceptin:ZZ-PE38 (rectangular tracing) were reacted with the cells at various antibody concentrations (x-axis). Cell viability was assessed by alkaline phosphatase assay (y-axis). Total (100%) viability was determined in control wells to which only the ZZ-PE38 toxin (5 nM) was added. [Figure 5-2] Figures 5A-5D are graphs showing the comparative cytocidal activity of chDMB5F3, Erbitux, and Herceptin, each of which was linked to the Pseudomonas exotoxin PE38 via the protein ZZ. The three resulting ZZ-PE38 immunotoxins were reacted with the human tumor cell lines T47D, KB, A431, and N87 (Figures 5A-5D, respectively). The immunotoxins chDMB5F3:ZZ-PE38 (oval tracing), Erbitux:ZZ-PE38 (diamond tracing), and Herceptin:ZZ-PE38 (rectangular tracing) were reacted with the cells at various antibody concentrations (x-axis). Cell viability was assessed by alkaline phosphatase assay (y-axis). Total (100%) viability was determined in control wells to which only the ZZ-PE38 toxin (5 nM) was added. [Figure 6-1]Figures 6A-6D show the in vivo cytotoxicity of chDMB5F3:ZZ-PE38 in human pancreatic tumor xenografts in nude mice. Figure 6A: Nude mice were inoculated with the MUC1+ pancreatic tumor Colo357 (day 0). Xenografted mice were then divided into three groups: Group A received chDMB5F3:ZZ-PE38, Group B received nonspecific isotype-matched IgG-ZZ:PE38 (5 μg per injection), and Group C received Hepes buffer only on days 1, 6, 9, 14, 22, and 29, all administered i.v. (time points indicated by arrows). Tumor volumes were measured weekly throughout the injection period, up to day 38, in the three groups: mice receiving the chDMB5F3:ZZ-PE38 immunotoxin, mice receiving nonspecific isotype-matched hIgG-ZZ:PE38, and mice receiving Hepes buffer. Tumor volume (mm) is displayed on the y-axis, and photographic images show tumors in Hepes control mice (Figure 6B) and mice receiving chDMB5F3:ZZ-PE38 immunotoxin (Figure 6C). Figure 6D: To quantify the serum half-life of the anti-MUC SEA DMB5F3-ZZ-P38 immunotoxin, a single 5 microgram dose was administered to mice, and serum levels were measured by serial dilution ELISA. Compared to day 7 (7d), serum levels of chDMB5F3 were reduced two-fold and four-fold on days 14 (14d) and 28 (28d), respectively. [Figure 6-2]Figures 6A-6D show the in vivo cytotoxicity of chDMB5F3:ZZ-PE38 in human pancreatic tumor xenografts in nude mice. Figure 6A: Nude mice were inoculated with the MUC1+ pancreatic tumor Colo357 (day 0). Xenografted mice were then divided into three groups: Group A received chDMB5F3:ZZ-PE38, Group B received nonspecific isotype-matched IgG-ZZ:PE38 (5 μg per injection), and Group C received Hepes buffer only on days 1, 6, 9, 14, 22, and 29, all administered i.v. (time points indicated by arrows). Tumor volumes were measured weekly throughout the injection period, up to day 38, in the three groups: mice receiving the chDMB5F3:ZZ-PE38 immunotoxin, mice receiving nonspecific isotype-matched hIgG-ZZ:PE38, and mice receiving Hepes buffer. Tumor volume (mm) is displayed on the y-axis, and photographic images show tumors in Hepes control mice (Figure 6B) and mice receiving chDMB5F3:ZZ-PE38 immunotoxin (Figure 6C). Figure 6D: To quantify the serum half-life of the anti-MUC SEA DMB5F3-ZZ-P38 immunotoxin, a single 5 microgram dose was administered to mice, and serum levels were measured by serial dilution ELISA. Compared to day 7 (7d), serum levels of chDMB5F3 were reduced two-fold and four-fold on days 14 (14d) and 28 (28d), respectively. [Figure 7-1]Figures 7A-7D show the in vivo cytotoxicity of chDMB5F3:ZZ-PE38 immunotoxin, demonstrating the excision of MUC1+ pancreatic cancer xenografts in SCID mice. Figure 7A: On day 0, SCID mice were subcutaneously inoculated with human Colo357 pancreatic cancer cells and divided into three groups: group 1, which received 5 μg of chDMB5F3:ZZ-PE38 immunotoxin; group 2, which received 5 μg of a nonspecific isotype-matched human Ig:ZZ-PE38 conjugate; and group 3, which received Hepes buffer. All three groups of xenografted mice were injected on days 1, 4, 8, 11, 16, 24, 31, and 38. Tumor volumes were compared up to 49 days after cell inoculation. Histograms represent the mean tumor volume for each group, and each asterisk represents the value for an individual mouse. The left y-axis represents tumor volume (mm) for Groups 1 and 2, while the right y-axis represents tumor volume for Group 3 (Hepes buffer group), expanded to 500 mm to include the larger tumor volume of the Hepes control group. The two points in Group 3 with values ​​above 500 mm represent tumor volumes of 705 mm and 1008 mm. Figures 7B-7D show representative mice from each group along with their tumor volumes at the end of the 49-day tumor measurement period. Figure 7B: Mouse receiving chDMB5F3:ZZ-PE38 immunotoxin, Figure 7C: Mouse receiving nonspecific human Ig:ZZ-PE38 conjugate, and Figure 7D: Mouse receiving Hepes buffer only. [Figure 7-2]Figures 7A-7D show the in vivo cytotoxicity of chDMB5F3:ZZ-PE38 immunotoxin, demonstrating the excision of MUC1+ pancreatic cancer xenografts in SCID mice. Figure 7A: On day 0, SCID mice were subcutaneously inoculated with human Colo357 pancreatic cancer cells and divided into three groups: group 1, which received 5 μg of chDMB5F3:ZZ-PE38 immunotoxin; group 2, which received 5 μg of a nonspecific isotype-matched human Ig:ZZ-PE38 conjugate; and group 3, which received Hepes buffer. All three groups of xenografted mice were injected on days 1, 4, 8, 11, 16, 24, 31, and 38. Tumor volumes were compared up to 49 days after cell inoculation. Histograms represent the mean tumor volume for each group, and each asterisk represents the value for an individual mouse. The left y-axis represents tumor volume (mm) for Groups 1 and 2, while the right y-axis represents tumor volume for Group 3 (Hepes buffer group), expanded to 500 mm to include the larger tumor volume of the Hepes control group. The two points in Group 3 with values ​​above 500 mm represent tumor volumes of 705 mm and 1008 mm. Figures 7B-7D show representative mice from each group along with their tumor volumes at the end of the 49-day tumor measurement period. Figure 7B: Mouse receiving chDMB5F3:ZZ-PE38 immunotoxin, Figure 7C: Mouse receiving nonspecific human Ig:ZZ-PE38 conjugate, and Figure 7D: Mouse receiving Hepes buffer only. DETAILED DESCRIPTION OF THE INVENTION

[0056] The present invention provides monoclonal antibody (mAb) sequences against the MUC1 SEA α-β junction (referred to as the SEA domain) that have potent anti-cancer activity in vivo.

[0057] The present invention provides the sequences of antibodies against the MUC1 SEA domain, designated herein as DMB5F3, DMB7F3, DMB4B4, DMB10F10, DMB4F4, DMB10B7, DMB13D11 and DMC209.

[0058] As shown in the following examples, immunohistochemical staining of cells from a range of malignant tumors, including lung, prostate, breast, colon, and pancreatic cancers, using a mAb designated DMB5F3 revealed quantitative and qualitative differences between MUC1 expression in normal versus malignant cells: DMB5F3 strongly stained malignant cells in a roughly circular pattern, whereas MUC1 in normal pancreatic and breast tissues showed only a weak, apical pattern of positivity in ductal / acinar cells. Chimeric (mouse-human) DMB5F3 linked to ZZ-PE38 (ZZ is an IgG-binding protein fused to the Pseudomonas exotoxin PE38) induced vigorous cytotoxicity of MUC1+ malignant cells in vitro. The potency of cell killing by the anti-MUC1 DMB5F3:ZZ-PE38 protein-exotoxin construct correlated with the level of MUC1 expressed by the target cells, suggesting that a threshold level of MUC1 expression is required for cell killing. To demonstrate the effect of antibody DMB5F3 on tumor killing in vivo, MUC1+Colo357 human pancreatic cancer cells were xenografted into nude and SCID mice and then treated with the chDMB5F3:ZZ-PE38 immunoconjugate. In both xenograft models (nude and SCID mice), chDMB5F3:ZZ-PE38 demonstrated significant in vivo antitumor activity, suppressing tumor volume by up to 90% in SCID mice compared with concurrent controls.

[0059] Thus, the present invention provides antibodies for use in the treatment of MUC1-expressing malignancies.

[0060] Accordingly, in a first of its aspects, the present invention provides an isolated monoclonal antibody or antigen-binding fragment thereof that binds to the MUC1 SEA domain.

[0061] The term "MUC1 SEA domain" (also referred to herein as "MUC1 SEA module") refers to a highly conserved 120 amino acid domain formed by the interaction of the MUC1 α-subunit with the extracellular portion of the MUC1 β-subunit. Thus, it is located at the MUC1 α-β junction, is a stable membrane-anchored portion, and is never shed from the cell surface (see Figures 1A, 1B, and 1C, regions indicated by ellipses).

[0062] The SEA domain, as known in the art, is defined as the region located between amino acids 264 and 384 of the human MUC1 protein (UniProtKB - A0A087X2A4(A0A087X2A4_HUMAN)).

[0063] The MUC1 transmembrane glycoprotein (MUC-TM) is a heterodimer consisting of an extracellular domain containing 20–125 repeats of 20-amino acid sequences (termed VNTR, for variable number tandem repeats), a transmembrane domain, and a short cytoplasmic tail that mediates intracellular signaling. MUC1 undergoes autoproteolytic cleavage within the SEA module, resulting in a large extracellular α subunit containing the tandem repeat array bound by strong noncovalent interactions to a transmembrane β subunit containing the transmembrane and cytoplasmic domains of the molecule.

[0064] Specifically, the present invention provides isolated monoclonal antibodies or antigen-binding fragments thereof that bind to the MUC1 SEA domain, including: a. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 25, a CDRH2 represented by SEQ ID NO: 26, a CDRH3 represented by SEQ ID NO: 27, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 28, a CDRL2 represented by SEQ ID NO: 29, and a CDRL3 represented by SEQ ID NO: 30; or b. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 31, a CDRH2 represented by SEQ ID NO: 32, a CDRH3 represented by SEQ ID NO: 33, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 34, a CDRL2 represented by SEQ ID NO: 35, and a CDRL3 represented by SEQ ID NO: 36; or c. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 37, a CDRH2 represented by SEQ ID NO: 38, a CDRH3 represented by SEQ ID NO: 39, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 40, a CDRL2 represented by SEQ ID NO: 41, and a CDRL3 represented by SEQ ID NO: 42; or d. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 43, a CDRH2 represented by SEQ ID NO: 44, a CDRH3 represented by SEQ ID NO: 45, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 46, a CDRL2 represented by SEQ ID NO: 47, and a CDRL3 represented by SEQ ID NO: 48; or e. a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 49, a CDRH2 represented by SEQ ID NO: 50, a CDRH3 represented by SEQ ID NO: 51, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 52, a CDRL2 represented by SEQ ID NO: 53, and a CDRL3 represented by SEQ ID NO: 54; or f. Heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 55, CDRH2 represented by SEQ ID NO: 56, CDRH3 represented by SEQ ID NO: 57, and light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 58, CDRL2 represented by SEQ ID NO: 59, and CDRL3 represented by SEQ ID NO: 60.

[0065] As noted above, the present invention provides isolated monoclonal antibodies that bind to the MUC1 SEA domain. The term "antibody" refers to a polypeptide encoded by an immunoglobulin gene that specifically binds to and recognizes an antigen, in this case the MUC1 SEA domain.

[0066] "Monoclonal antibody," "monoclonal antibodies," or "mAb," as defined herein, refers to a population of homogeneous antibodies, i.e., the individual antibodies comprising the population are identical except for possible rare naturally occurring mutations. A monoclonal antibody is directed against a single antigenic site (epitope).

[0067] Monoclonal antibodies may be prepared and purified by any method known in the art. For example, monoclonal antibodies may be prepared from B cells harvested from the spleen or lymph nodes of an immunized animal (e.g., rabbit, rat, mouse, or monkey).

[0068] Purification of monoclonal antibodies can be carried out by any method known in the art, for example, by using affinity chromatography, i.e., an affinity column to which a specific epitope (or antigen) is conjugated. Alternatively, antibody purification can be based on the use of protein A and protein G column chromatography.

[0069] A typical antibody structural unit comprises a tetramer, as known in the art. Each tetramer consists of two identical pairs of polypeptide chains, each pair having one "light" and one "heavy" chain. The N-terminus of each chain defines a variable region of about 100-110 or more amino acids primarily responsible for antigen (epitope) recognition.

[0070] Therefore, the "heavy chain variable region" (V H ) and the "light chain variable region" (V LThe terms "heavy chain" and "light chain" refer to these heavy and light chains, respectively. More specifically, the variable regions are subdivided into hypervariable regions and framework (FR) regions. Hypervariable regions have a higher proportion of different amino acids at a particular position compared to the most common amino acid at that position. Four FR regions, which have more stable amino acid sequences, separate the hypervariable regions. Hypervariable regions directly contact a portion of the surface of the antigen. For this reason, hypervariable regions are referred to herein as "complementarity-determining regions," or "CDRs," and CDRs are located in both the heavy chain ("heavy chain complementarity-determining region") and the light chain ("light chain complementarity-determining region") of an antibody.

[0071] From the N-terminus to the C-terminus, both light chains and heavy chains comprise the domains FR1, CDR1, FR2, CDR2, FR3, CDR3 and FR4. CDRs are primarily responsible for binding to an epitope of an antigen. The CDRs of each chain are typically referred to as CDR1, CDR2 and CDR3, and are numbered sequentially from the N-terminus and are typically identified by the chain in which the CDR is located.

[0072] Thus, the complementarity determining regions CDRH1, CDRH2 and CDRH3 refer to the three complementarity determining regions beginning at the N-terminus of the heavy chain of an antibody (referred to herein as heavy chain complementarity determining regions), and the complementarity determining regions CDRL1, CDRL2 and CDRL3 refer to the three complementarity determining regions beginning at the N-terminus of the light chain of an antibody (referred to herein as light chain complementarity determining regions).

[0073] The present invention includes antigen-binding fragments of the isolated anti-MUC1 SEA domain monoclonal antibodies of the invention.

[0074] As used herein, the term "antigen-binding fragment" refers to a fragment of a full-length antibody that retains the antibody's specificity for binding to the MUC1 SEA domain. Antigen-binding fragments include, but are not limited to, Fv, single-chain Fv (scFv), single-chain Fv-Fc (scFv-Fc), Fab', Fab, F(ab')2, and F(ab)2.

[0075] Such fragments can be produced by any method known in the art, for example, by proteolytic cleavage using enzymes such as papain (to produce Fab fragments) or pepsin (to produce F(ab')2 fragments).

[0076] Thus, in some embodiments, an antibody according to the invention is an antibody fragment selected from the group consisting of a single chain Fv-Fc (scFv-Fc) molecule, a single chain Fv (scFv), Fv, Fab', Fab, F(ab')2, and F(ab)2.

[0077] In certain embodiments, the isolated monoclonal antibody or antigen-binding fragment thereof of the invention binds to the MUC1 SEA domain.

[0078] As shown below in Example 5, administration of an immunoconjugate comprising the antibody DMB5F3 and a cytotoxic moiety significantly reduced tumor volume in an in vivo cancer model in mice. Thus, in certain embodiments, the isolated monoclonal antibody or antigen-binding fragment thereof of the invention is effective in reducing tumor volume in a subject.

[0079] The term "reducing" tumor volume in the context of the present invention means that an isolated monoclonal antibody or antigen-binding fragment thereof of the present invention reduces the size of a tumor by at least about 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, 25%, 26%, 27%, 28%, 29%, 30%, 31%, 32%, 33%, 34%, 35%, 36%, or 37% compared to the size of a tumor in the absence of the antibody or antigen-binding fragment thereof, as measured by any means known in the art. ,37%,38%,39%,40%,41%,42%,43%,44%,45%,46%,47%,48%,49%,50%,51%,52%,53%,54%,55%,56%,57%,58%,59%,60%,61%,62%,63%,64%,65%,66%,67%,68%,69%,70% , 71%, 72%, 73%, 74%, 75%, 76%, 77%, 78%, 79%, 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or about 100% reduction. In certain embodiments, the term "reduce" is meant to refer to a reduction of at least about 50%, 60%, 70%, 80%, or 90%.

[0080] In some embodiments, the isolated anti-MUC1 SEA domain monoclonal antibody is a murine antibody, a chimeric antibody, a humanized antibody, or a human antibody.

[0081] As used herein, the term "chimeric antibody" refers to an antibody that has an antigen-binding variable domain derived from one species (e.g., the variable domain of a murine antibody) and a constant domain from a different species (e.g., human).

[0082] As used herein, the term "humanized antibody" refers to an antibody based on the structure of a non-human species (e.g., mouse) whose amino acid sequence has been altered to increase its similarity to antibody variants that naturally occur in humans.

[0083] As used herein, the term "human antibody" refers to an antibody having an amino acid sequence that corresponds to that of an antibody produced by a human and / or made using any of the techniques for making human antibodies known in the art. This definition specifically excludes humanized antibodies, which comprise non-human antigen-binding residues.

[0084] Methods for preparing chimeric, humanized, and human antibodies are well known in the art.

[0085] To prepare large quantities of antibody (either chimeric, humanized, or human), stable cell lines expressing the antibody can be prepared by transfecting cells (e.g., CHO cells) with an Ig expression vector containing both the antibody heavy and light chains. The antibody can then be manufactured, for example, in a bioreactor system. The antibody can be purified to clinical grade using well-established monoclonal antibody purification methods. Clones producing high levels of anti-MUC1 SEA domain antibodies can then be selected and expanded based on antibody levels in the supernatant, as tested by any method known in the art, for example, a MUC1 SEA domain-specific ELISA assay. A master cell bank developed for a particular clone can serve as the starting material for all clinical-grade batches.

[0086] In some embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:1, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:2.

[0087] In other embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:3, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:4.

[0088] In some further embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:5, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:6.

[0089] In some embodiments, the present invention provides an anti-MUC1-SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:7, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:8.

[0090] In some embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:9, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:10.

[0091] In some embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region and a light chain variable region, wherein the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:11, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70%, or 75%, or 80%, or 85%, or 90% or more identical to the nucleic acid sequence set forth in SEQ ID NO:12.

[0092] In some embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 13 or a variant thereof and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 14 or a variant thereof.

[0093] In other embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 15 or a variant thereof and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 16 or a variant thereof.

[0094] In some further embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 17, or a variant thereof, and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 18, or a variant thereof.

[0095] In some embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 19 or a variant thereof and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO: 20 or a variant thereof.

[0096] In certain embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO:21 or a variant thereof and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO:22 or a variant thereof.

[0097] In some embodiments, the present invention provides an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, wherein the antibody or antigen-binding fragment thereof comprises a heavy chain variable region comprising the amino acid sequence set forth in SEQ ID NO:23 or a variant thereof and a light chain variable region comprising the amino acid sequence set forth in SEQ ID NO:24 or a variant thereof.

[0098] In another embodiment, the isolated antibody according to the invention is an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, and comprises the six CDR sequences set forth in SEQ ID NOs:25-30, as well as a heavy chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO:13, and a light chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO:14.

[0099] In another embodiment, the isolated antibody according to the invention is an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, and comprises the six CDR sequences set forth in SEQ ID NOs: 31-36, as well as a heavy chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO: 15, and a light chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO: 16.

[0100] In a further embodiment, the isolated antibody according to the invention is an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, comprising the six CDR sequences set forth by SEQ ID NOs: 37-42, as well as a heavy chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO: 17 and a light chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO: 18.

[0101] In various embodiments, the isolated antibody according to the invention is an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, and comprises the six CDR sequences set forth by SEQ ID NOs:43-48, as well as a heavy chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO:19 and a light chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO:20.

[0102] In another embodiment, the isolated antibody according to the invention is an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, comprising the six CDR sequences set forth in SEQ ID NOs:49-54, as well as a heavy chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO:21 and a light chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO:22.

[0103] In a further embodiment, the isolated antibody according to the invention is an anti-MUC1 SEA domain isolated monoclonal antibody or antigen-binding fragment thereof, comprising the six CDR sequences set forth in SEQ ID NOs:55-60, as well as a heavy chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO:23 and a light chain variable region comprising an amino acid sequence having at least 90% sequence identity to SEQ ID NO:24.

[0104] In another embodiment, the present invention provides an isolated monoclonal antibody that competes with an antibody comprising: (a) a heavy chain CDR1 comprising SEQ ID NO: 25, a heavy chain CDR2 comprising SEQ ID NO: 26, and a heavy chain CDR3 comprising SEQ ID NO: 27; and a light chain CDR1 comprising SEQ ID NO:28, a light chain CDR2 comprising SEQ ID NO:29, and a light chain CDR3 comprising SEQ ID NO:30; or (b) a heavy chain CDR1 comprising SEQ ID NO: 31, a heavy chain CDR2 comprising SEQ ID NO: 32, and a heavy chain CDR3 comprising SEQ ID NO: 33; and a light chain CDR1 comprising SEQ ID NO: 34, a light chain CDR2 comprising SEQ ID NO: 35, and a light chain CDR3 comprising SEQ ID NO: 36; or (c) a heavy chain CDR1 comprising SEQ ID NO: 37, a heavy chain CDR2 comprising SEQ ID NO: 38, and a heavy chain CDR3 comprising SEQ ID NO: 39; and a light chain CDR1 comprising SEQ ID NO: 40, a light chain CDR2 comprising SEQ ID NO: 41, and a light chain CDR3 comprising SEQ ID NO: 42; or (d) a heavy chain CDR1 comprising SEQ ID NO: 43, a heavy chain CDR2 comprising SEQ ID NO: 44, and a heavy chain CDR3 comprising SEQ ID NO: 45; and a light chain CDR1 comprising SEQ ID NO: 46, a light chain CDR2 comprising SEQ ID NO: 47, and a light chain CDR3 comprising SEQ ID NO: 48; or (e) a heavy chain CDR1 comprising SEQ ID NO: 49, a heavy chain CDR2 comprising SEQ ID NO: 50, and a heavy chain CDR3 comprising SEQ ID NO: 51; and a light chain CDR1 comprising SEQ ID NO: 52, a light chain CDR2 comprising SEQ ID NO: 53, and a light chain CDR3 comprising SEQ ID NO: 54; or (f) a heavy chain CDR1 comprising SEQ ID NO: 55, a heavy chain CDR2 comprising SEQ ID NO: 56, and a heavy chain CDR3 comprising SEQ ID NO: 57; and Light chain CDR1 comprising SEQ ID NO:58, light chain CDR2 comprising SEQ ID NO:59, and light chain CDR3 comprising SEQ ID NO:60.

[0105] The nucleic acid sequences encoding the heavy and light chains of the antibodies designated herein as DMB5F3, DMB7F3, DMB4B4, DMB4F4, DMB10B7, and DMC209 are detailed below in Table 1. Additionally, the amino acid sequences of the heavy and light chains of the antibodies described herein are detailed below in Table 2. Additionally, the sequences of the CDRs of the above antibodies are shown below in Table 3.

[0106] DMB4B4 and DMB10F10 have the same amino acid sequence.

[0107] DMB4F4 is an mIg-gamma 1. DMB10B7 and DMB13D11 are mIgA. However, the variable regions of all three antibodies: DMB4F4, DMB10B7, and DMB13D11, are identical. [Table 1] TIFF0007828286000002.tif254155TIFF0007828286000003.tif51159 [Table 2]

[0108] The CDR sequences are highlighted within the heavy and light chain amino acid sequences and are listed in Table 3. [Table 3]

[0109] The genomic derivation of the antibodies is shown in the table below. [Table 4] [Table 5] [Table 6] [Table 7] [Table 8]

[0110] The present invention also encompasses variants of the heavy and light chain variable regions, which may contain mutations in the complementarity determining regions or framework regions of the heavy and light chains that do not alter the activity of the antibodies described herein.

[0111] The term "variant" means an amino acid or nucleotide sequence that differs from a sequence specifically identified herein, in which one or more amino acid residues or nucleotides have been deleted, substituted, or added.

[0112] As used herein, the term "added" should be understood to mean any addition of an amino acid residue to a sequence described herein.

[0113] Variants encompass various amino acid substitutions. An amino acid "substitution" is the result of replacing one amino acid with another amino acid having similar or different structural and / or chemical properties. Amino acid substitutions may be made on the basis of similarity in polarity, charge, solubility, hydrophobicity, hydrophilicity, and / or the amphipathic nature of the residues involved.

[0114] Typically, variants include conservative amino acid substitutions. Conservative substitution tables providing functionally similar amino acids are well known in the art. For example, non-polar (hydrophobic) amino acids include alanine, leucine, isoleucine, valine, proline, phenylalanine, tryptophan, and methionine; polar neutral amino acids include glycine, serine, threonine, cysteine, tyrosine, asparagine, and glutamine; positively charged (basic) amino acids include arginine, lysine, and histidine; and negatively charged (acidic) amino acids include aspartic acid and glutamic acid.

[0115] Each of the following eight groups contains other exemplary amino acids that are conservative substitutions for one another: 1) Alanine (A), Glycine (G); 2) aspartic acid (D), glutamic acid (E); 3) asparagine (N), glutamine (Q); 4) arginine (R), lysine (K); 5) isoleucine (I), leucine (L), methionine (M), valine (V); 6) phenylalanine (F), tyrosine (Y), tryptophan (W); 7) serine (S), threonine (T); and 8) Cysteine ​​(C), methionine (M).

[0116] Conservative nucleic acid substitutions are nucleic acid substitutions that result in conservative amino acid substitutions as defined above.

[0117] Variants according to the present invention also include non-polar to polar amino acid substitutions, and vice versa.

[0118] As used herein, the term "amino acid" or "amino acid residue" refers to naturally occurring and synthetic amino acids, as well as amino acid analogs and amino acid mimetics that function in a manner similar to the naturally occurring amino acids.

[0119] A variant sequence refers to an amino acid sequence or nucleic acid sequence that can be characterized by the percent identity of its amino acid or nucleotide sequence with the amino acid or nucleotide sequences described herein (e.g., the amino acid or nucleotide sequences of the heavy and light chains of the antibodies described herein).

[0120] In some embodiments, variant sequences as defined herein refer to nucleic acid sequences encoding heavy and light chain variable regions, each having a sequence of nucleotides with at least 70% or 75% sequence identity, approximately 80% or 85% sequence identity, approximately 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity when compared to the sequences of the heavy and light chain variable regions described herein.

[0121] In some other embodiments, variant sequences as defined herein refer to amino acid sequences of heavy and light chain variable regions, each having an amino acid sequence that has at least 70% or 75% sequence identity, approximately 80% or 85% sequence identity, approximately 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity when compared to the heavy and light chain variable region sequences described herein.

[0122] The term "antibody activity" refers to the ability of an antibody to bind to the MUC1 SEA domain, preferably to mediate cytotoxicity, either alone or as part of an immunoconjugate with a cytotoxic moiety. Antibody activity can be measured in vivo or in vitro using methods well known in the art, for example, as described in the Examples below.

[0123] Binding of an antibody of the invention to its target protein may be measured using, for example, ELISA, biolayer interferometry (BLI), Western blot or immunofluorescence assay (IFA).

[0124] The biological activity of the antibodies can be measured in an in vivo cancer model, for example, as detailed in the Examples below.

[0125] In another of its aspects, the present invention provides an isolated nucleic acid molecule comprising a nucleotide sequence encoding an antibody or antigen-binding fragment thereof according to the invention.

[0126] The term "nucleic acid" or "nucleic acid molecule" as defined herein refers to a polymer of nucleotides that may be either single-stranded or double-stranded, which is a polynucleotide such as deoxyribonucleic acid (DNA), and optionally ribonucleic acid (RNA).The term should also be understood to include, as equivalents, any analog of RNA or DNA made from nucleotide analogs, and, where applicable to the described embodiment, single-stranded (such as sense or antisense) and double-stranded polynucleotides.As used herein, the term DNA also encompasses cDNA, i.e., complementary or copy DNA produced from an RNA template by the action of reverse transcriptase (RNA-dependent DNA polymerase).

[0127] The present invention further provides an expression vector comprising an isolated nucleic acid molecule as defined herein.

[0128] As used herein, "expression vector," sometimes referred to as "expression vehicle" or "expression construct," encompasses vectors such as plasmids, viruses, bacteriophage, integrative DNA fragments, and other vehicles that allow integration of a DNA fragment into the genome of a host. Expression vectors are typically self-replicating DNA or RNA constructs that contain a desired gene or fragment thereof and operably linked genetic control elements that are recognized in a suitable host cell and affect expression of the desired gene. These control elements can affect expression in a suitable host. Expression vectors according to the present invention are capable of expression in bacterial, yeast, or mammalian host cells, but only in a limited number of cases.

[0129] In yet another of its aspects, the present invention provides a host cell transfected with an isolated nucleic acid molecule according to the invention or an expression vector according to the invention.

[0130] As used herein, the term "host cell" refers to a cell that is susceptible to introduction of the isolated nucleic acid molecule according to the present invention or by introduction by the expression vector according to the present invention. Preferably, said cell is a mammalian cell, such as a CHO cell or an NSO cell. Transfection of the isolated nucleic acid molecule or expression vector according to the present invention into a host cell may be carried out by any method known in the art.

[0131] In yet another of its aspects, the present invention provides an immunoconjugate comprising an antibody or antigen-binding fragment thereof according to the invention and an additional cytotoxic or therapeutic agent as defined herein below.

[0132] The terms "immunoconjugate" and "immunocomplex" are used interchangeably herein and refer to an antibody or antigen-binding fragment thereof according to the present invention that is conjugated (linked or bound) to an additional agent. The immunoconjugate can be prepared by any method known to those skilled in the art, for example, by crosslinking an additional agent to an antibody according to the present invention or by recombinant DNA methods.

[0133] In certain embodiments, the immunoconjugate is an immunotoxin, whereby the antibody or antigen-binding fragment thereof according to the present invention is conjugated to a cytotoxic agent. As used herein, the term "cytotoxic agent" refers to any agent that exerts a cytotoxic effect on cells upon contact. Such cytotoxic agents are well known to those skilled in the art. Examples of cytotoxic agents that can be used in the immunoconjugates of the present invention include, but are not limited to, alkylating agents, anthracyclines, pyrimidine derivatives, vinca alkaloids, photodynamic agents, platinum-containing compounds, taxanes, topoisomerase inhibitors, ribosome-inactivating agents (e.g., gelonin), agents that induce DNA damage (e.g., calicheamicin), tubulin inhibitors (e.g., emtansine), antimitotic agents (e.g., monomethylauristatin), or bacterial toxins. The cytotoxic agent may also be a radioisotope or a cytotoxic antibody. In one embodiment, the toxic agent is a Pseudomonas exotoxin, e.g., ZZ-PE38 (ZZ IgG-binding protein fused to a Pseudomonas exotoxin).

[0134] The present invention also encompasses bispecific antibodies capable of binding to two distinct targets or epitopes, said bispecific antibodies comprising an antibody or antigen-binding fragment thereof according to the invention and an additional antibody or antigen-binding fragment thereof.

[0135] Thus, in certain embodiments, the present invention provides an immunoconjugate comprising an isolated monoclonal antibody or antigen-binding fragment thereof that binds to the MUC1 SEA domain, wherein said antibody is

[0136] The immunoconjugate comprises a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 25, a CDRH2 represented by SEQ ID NO: 26, a CDRH3 represented by SEQ ID NO: 27, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 28, a CDRL2 represented by SEQ ID NO: 29, and a CDRL3 represented by SEQ ID NO: 30, wherein the cytotoxic agent is Pseudomonas exotoxin, and the immunoconjugate reduces tumor volume when administered to a subject with cancer.

[0137] The anti-MUC1 SEA domain antibodies of the invention may be administered in combination with at least one additional therapeutic agent.

[0138] As used herein, the term "additional therapeutic agent" refers to any agent that can be used to treat a disease or disorder, for example, cancer.

[0139] In certain embodiments, the additional therapeutic agent is an additional antibody. As defined herein, the term "additional antibody" refers to an antibody of the present invention (i.e., the combined use of at least two antibodies of the present invention) as well as an antibody other than an antibody according to the present invention, which may be used in combination with an antibody of the present invention to treat a disease or disorder, such as cancer. Such other antibodies include, but are not limited to, anti-CD22 antibodies, anti-CD30 antibodies, anti-HER2 receptor antibodies, anti-VEGF antibodies, anti-EGFR antibodies, anti-tumor-associated antigen (TAA) antibodies, and anti-checkpoint inhibitors.

[0140] The additional therapeutic agent may also be a chemotherapeutic agent or an anti-inflammatory agent.

[0141] The present invention further provides pharmaceutical compositions comprising, as an active ingredient, at least one isolated anti-MUC1 SEA antibody of the invention, or antigen-binding fragment thereof, or immunoconjugate as defined herein, and a pharmaceutically acceptable carrier, excipient, or diluent.

[0142] In certain embodiments, the aforementioned pharmaceutical compositions are for use in treating a disease or disorder associated with overexpression of MUC1.

[0143] The term "disease or disorder associated with overexpression of MUC1" is used herein in its broadest sense and refers to any disease characterized by abnormal expression of MUC1. In certain embodiments, the disease or disorder associated with overexpression of MUC1 is cancer. Examples include, but are not limited to, lung cancer, prostate cancer, breast cancer, ovarian cancer, colon cancer, small intestine cancer, pancreatic cancer, gastric cancer, liver cancer, multiple myeloma, or acute myeloid leukemia.

[0144] In other embodiments, the disease or disorder associated with overexpression of MUC1 is an autoimmune or inflammatory disease, examples of which include rheumatoid arthritis, psoriatic arthritis, systemic lupus erythematosus, amyloidosis, and autoimmune pancreatitis.

[0145] In other embodiments, the disease or disorder is a non-malignant abnormal growth condition, such as a cyst, e.g., clinically significant kidney cysts, large non-functioning thyroid cysts and thyroid masses, liver cysts, and the like.

[0146] A "pharmaceutical composition" of the present invention generally comprises an antibody or any antigen-binding fragment thereof as defined herein, as well as a buffer, an agent to adjust the osmolarity of the composition, and optionally one or more pharmaceutically acceptable carriers, excipients and / or diluents known in the art.

[0147] As used herein, the term "pharmaceutically acceptable carrier, excipient, or diluent" includes any solvent, dispersion medium, coating, antibacterial and antifungal agent, etc. known in the art. Carriers can be solvents or dispersion media containing, for example, water, ethanol, polyol (e.g., glycerol, propylene glycol, liquid polyethylene glycol, etc.), suitable mixtures thereof, and vegetable oils. Each carrier should be pharmaceutically and physiologically acceptable in the sense of being compatible with the other ingredients and not harmful to the subject. Any conventional media or agent incompatible with the active ingredient is contemplated for use in the therapeutic compositions.

[0148] In other embodiments, a pharmaceutical composition according to the invention further comprises an additional therapeutic agent, non-limiting examples of which include an anti-MUC1 antibody, an anti-CD22 antibody, an anti-CD30 antibody, an anti-HER2 receptor antibody, an anti-VEGF antibody, an anti-EGFR antibody, an anti-TAA antibody, and a checkpoint inhibitor.

[0149] The present invention also provides methods for treating or ameliorating a disease or disorder associated with overexpression of MUC1 (e.g., cancer), comprising administering to a subject in need thereof a therapeutically effective amount of an isolated monoclonal antibody or antigen-binding fragment thereof of the present invention, or an immunoconjugate comprising the antibody or antigen-binding fragment thereof of the present invention, or a pharmaceutical composition comprising the isolated monoclonal antibody or antigen-binding fragment thereof or immunoconjugate of the present invention.

[0150] The terms "subject" or "patient" are used interchangeably and refer to a subject that can benefit from the present invention, such as a mammal (e.g., a dog, cat, cow, pig, horse, bovine, or human). In one specific embodiment, the patient is a human. Diagnosis of a disease or disorder associated with overexpression of MMUC1 may be performed by one of skill in the art by methods known in the art.

[0151] In the context of the present invention, in particular, the term "subject in need thereof" refers to a mammal, in particular a human subject, suffering from a disease or disorder associated with overexpression of MUC1 as defined herein.

[0152] As used herein, it should be understood that "treat," "treating," "treatment," or forms thereof, means reducing, preventing, curing, reversing, ameliorating, attenuating, mitigating, minimizing, suppressing, or halting the adverse effects of a disease or condition, or delaying the onset of one or more clinical symptoms of a disease or disorder associated with overexpression of MUC1 (e.g., cancer), as defined herein. In some embodiments, the methods according to the invention further comprise administering to a subject in need thereof an additional therapeutic agent, as defined herein.

[0153] Administration according to the present invention may be by any of the following routes: oral administration, intravenous injection, intramuscular injection, intraperitoneal injection, intrathecal injection, or subcutaneous injection, rectal administration, intranasal administration, ocular administration, or topical administration.

[0154] In a particular embodiment, administration according to the present invention is performed intravenously.

[0155] The antibody or antibody fragment defined herein, any pharmaceutical composition comprising it or any conjugate comprising it may be administered to a subject in one dose or in multiple doses.

[0156] A "therapeutically effective amount" of an isolated monoclonal antibody or any antigen-binding fragment thereof according to the invention, or a pharmaceutical composition according to the invention, for purposes defined herein, is determined by considerations known in the art to cure, arrest, or at least alleviate or ameliorate a condition. For any preparation used in the methods of the invention, the dosage or therapeutically effective amount can be estimated initially from in vitro cell culture assays or based on appropriate animal models.

[0157] In some embodiments, a therapeutically effective amount according to the present invention ranges from 10 μg / kg to about 50 mg / kg.

[0158] In other embodiments, a therapeutically effective amount according to the present invention is in the range of 0.1 mg / kg to 40 mg / kg, 1 mg / kg to 10 mg / kg, or 5 mg / kg to 10 mg / kg.

[0159] Specific exemplary doses include, but are not limited to, 0.25 mg / kg, or 0.75 mg / kg, or 2.5 mg / kg, or 5 mg / kg, or 10 mg / kg administered as a daily dose, or once every three days, or once a week, at the discretion of the physician. In one embodiment, the dose is administered intravenously.

[0160] The present invention further provides an isolated anti-MUC1 SEA antibody or any antigen-binding fragment thereof according to the invention, or an immunoconjugate according to the invention, or a pharmaceutical composition according to the invention, for use in a method of treating or ameliorating a disease or disorder associated with overexpression of MUC1 (e.g., cancer) as defined herein.

[0161] Still further, the present invention provides the use of an isolated monoclonal antibody or antigen-binding fragment thereof, immunoconjugate, or pharmaceutical composition of the invention in the preparation of a medicament for the treatment or amelioration of a disease or disorder associated with overexpression of MUC1 (e.g., cancer) as defined herein.

[0162] It is understood that the terms "purified" or "isolated" refer to a molecule, such as an amino acid or nucleic acid sequence, peptide, polypeptide, or antibody, that has been isolated or separated from its natural environment. Thus, an "isolated antibody" is a purified antibody. As used herein, the terms "purified" or "to purify" also refer to the removal of contaminants from a sample.

[0163] In another aspect, the present invention provides a method of diagnosing a disease or disorder (e.g., cancer) in a biopsy obtained from a subject, the method comprising: a. contacting the biopsy with at least one isolated monoclonal antibody or antigen-binding fragment thereof of the present invention; and b. detecting the isolated monoclonal antibody or any antigen-binding fragment thereof; Detection of cells that overexpress MUC1 SEA in a biopsy serves as an indicator of the aforementioned disease or disorder (eg, cancer).

[0164] The ability of the isolated antibodies of the present invention to detect MMUC1-SEA expression can be evaluated by any method known in the art, such as immunohistochemistry or flow cytometry. Immunohistochemistry can be performed on formaldehyde-fixed sections from fresh-frozen (FF) tissues and paraffin-embedded and formaldehyde-fixed (PEFF) tissues. For example, as shown in Example 2 below, antibody DMB5F3 stained MUC1-expressing cells present in both FF and PEFF sections. The antibody also had the ability to recognize MUC1-expressing cells using flow cytometry. In various embodiments, the isolated antibodies of the present invention can be labeled according to any method known in the art. In other embodiments, detection can be based on identifying the aforementioned antibody using a secondary antibody.

[0165] The term "biopsy" is used herein in its broadest sense and refers to any biopsy taken from a subject as defined herein in which cells overexpressing MUC1 SEA can be detected. Biopsies are taken from mammals (including humans) and can include both body fluid samples and tissue samples containing cells. In some embodiments, the body fluid sample is blood, plasma, serum, lymph, or urine. In some embodiments, the biopsy is a tissue sample suspected of containing cancer cells.

[0166] In another aspect, the present invention provides a method of imaging a disease or disorder, said method comprising: a. introducing into a subject at least one isolated anti-MUC1 SEA monoclonal antibody or antigen-binding fragment thereof of the present invention, wherein said antibody or antigen-binding fragment thereof is detectably labeled with a radioisotope or a visualizeable agent (i.e., an agent that can be visualized, for example, by scanning); and b. visualizing said detectably labeled isolated anti-MUC1 SEA monoclonal antibody or any antigen-binding fragment thereof; Detection of cells and / or tissues labeled with said isotope or said visualizeable agent indicates the presence, and / or localization and / or extent and / or presence of metastasis of said disease or disorder in said subject.

[0167] As used herein, the term "about" refers to a value that may deviate by up to 1%, more specifically 5%, more specifically 10%, more specifically 15%, and in some cases, 20% or more or less from the referenced value for a deviating range, including integer values ​​and, where appropriate, non-integer values ​​that make up a continuous range. It is to be understood that the present invention, as disclosed and described, is not limited to the specific examples, method steps, and compositions disclosed herein, since method steps and compositions may vary somewhat. It is also to be understood that the terminology used herein is used only for the purpose of describing particular embodiments and is not intended to be limiting, since the scope of the present invention is limited by the appended claims and equivalents thereof.

[0168] It should be noted that as used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise.

[0169] Throughout this specification and the examples and appended claims, unless the context requires otherwise, the term "comprise" and variations such as "comprises" and "comprising" are understood to include the specified integer or step or group of integers or steps but not to exclude any other integer or step or group of integers or steps. [Example]

[0170] material and method Reagents and antibodies Unless otherwise specified, all reagents and chemicals were obtained from Sigma (St. Louis, MO). Secondary antibodies used for cell counter staining or immunohistochemical development were obtained from Jackson ImmunoResearch Laboratories (Bar Harbor, ME).

[0171] Immunization of mice and generation of hybridomas Mice were initially immunized with five consecutive intradermal DNA immunizations at 21-day intervals. The immunizing DNA consisted of the pCL-MUC1-TM expression vector plasmid encoding the MUC1-TM protein. The mice were then boosted with the extracellular domain of the MUC1-X protein (recombinant bacterial MUC1-X) in Freund's incomplete adjuvant. The recombinant MUC1-X protein synthesized in the bacteria used for these immunizations spontaneously self-cleaves to generate MUC1-X a and b subunits, which tightly and noncovalently interact with each other to form a highly stable heterodimeric cleaved MUC1-X protein. Hybridomas were prepared by fusion of nonsecreting myeloma cells with immune spleen cells and screened by ELISA assay.

[0172] ELISA to determine binding of anti-MUC1 polyclonal and monoclonal antibodies to the extracellular domain of MUC1-X protein Elisa immunoassay plates (CoStar) were coated with recombinant MUC1 protein and subsequently blocked. Spent culture medium from primary hybridomas was then added to the wells. After incubation, the samples were removed and the wells were washed with PBS / Tween. Bound antibody was detected using a horseradish peroxidase (HRP)-conjugated anti-mouse antibody.

[0173] Two-stage screening for selection of anti-MUC1 monoclonal antibodies Primary screening of hybridomas was performed by assessing antibody binding to the extracellular domain of MUC1-X (MUC1-Xex), as described in the ELISA assay above. To select hybridomas secreting antibodies that recognize not only MUC1-Xex but also the entire cell-surface MUC1-TM protein, those hybridomas showing positive signals in the first screen were subjected to a second-stage screen. This consisted of flow cytometry analysis using mouse cell transfectants expressing human MUC1-TM (termed DA3-TM cells) and, in parallel, the same parental cells that do not express human MUC1 (termed DA3-PAR cells). This procedure ensured the selection of antibodies that not only bind to the portion of MUC1 common to both MUC1-X and MUC1-TM, but also recognize the cell-surface human MUC1-TM molecule expressed by mammalian cells.

[0174] Cell lines and cell culture DA3-PAR parental mouse mammary cells (which do not express human MUC1), DA3-TM mouse mammary cells stably transfected with cDNA (encoding full-length human MUC1-TM), cell lines T47D and ZR75 (human breast carcinoma), cell lines KB (human epidermoid carcinoma), Colo357 (human pancreatic carcinoma), N87 (human gastric carcinoma), and CHO-K1 (Chinese hamster ovary cells) were all grown in Dulbecco's modified Eagle's medium (DMEM), RPMI, and DMEM:F12 (1:1) culture media

[12] .

[0175] animal Seven-week-old athymic (nude) and SCID mice (Harlan Laboratories, Madison, WI) were maintained until sacrifice in a facility approved by the Tel Aviv University (TAU) Institutional Review Board for Accreditation of Laboratory Animal Care, in accordance with Israeli Ministry of Health regulations and standards.

[0176] Flow cytometry analysis After trypsinization, MUC1-expressing tumor cells were washed and incubated with DMB5F3 (0.5 μg / ml) with or without MUC1-Xex competitor (100 μg / ml) for 1 h at 4°C. After washing with FACS buffer, fluorescein-labeled goat anti-mouse IgG was added for 45 min at 4°C. Bound IgG was detected by flow cytometry on a FACSCalibur™ (Becton Dickinson).

[0177] Immunohistochemistry (IHC) staining Microarrays of normal and malignant pancreatic and breast tissues were purchased from US Biomax (Derwood, MD). Automated immunostaining was performed using a Dako Autostainer Link 48 (Dako, Santa Clara, CA) according to the manufacturer's instructions. Antigen retrieval was performed using citrate buffer at room temperature for 30 minutes. Endogenous peroxidase activity was blocked by adding Envision Flex peroxidase inhibitor reagent (Dako) for 30 minutes, followed by incubation with DMB5F3 (5 μg / ml) for 2 hours. Immunohistochemical reactions were detected by adding polymeric dextran conjugated with peroxidase and secondary antibody for 15 minutes (EnVision-Flex / HRP, Dako) and diaminobenzidine for 10 minutes (DakoCytomation). This was followed by counterstaining with hematoxylin for 10 minutes.

[0178] Sequencing of anti-MUC1-SEA module monoclonal antibodies RNA was isolated from a series of DMB hybridomas using TRIzol® Reagent 1 according to the technical manual for the reagent (Ambion Inc., Foster City, CA). RNA sequences were determined as follows: cDNA was generated by reverse transcription of total RNA using universal or isotype-specific antisense primers according to the technical manual for the PrimeScript™ First-Strand cDNA Synthesis Kit (Takara Bio Inc., Mountain View, CA). Amplification of VH and VL antibody fragments was performed according to standard operating procedures, including rapid amplification of cDNA ends (GenScript, NJ, USA), followed by separate cloning into standard cloning vectors. Clones with inserts of the correct size were sequenced by colony PCR; at least five colonies with such inserts were sequenced for each fragment, and a consensus sequence was derived by alignment of different clones.

[0179] Construction of chimeric chDMB5F3 for mammalian expression in Chinese hamster ovary cells Human chimeric DMB5F3 (chDMB5F3) was generated from mouse DMB5F3. The mammalian vectors pMAZ-IgH and pMAZ-IgL were used as backbones for the expression of cDNAs encoding the VH and VL regions of DMB5F3 fused to the human γ1 heavy chain and human κ light chain, respectively [Mazor et al., J Immunol Methods, 321 (2007) 41-59; Mazor et al., Cancer Lett, 257 (2007) 124-135]. The resulting pMAZ IgH-chDMB5F3 and pMAZ IgL-chDMB5F3 vectors were used for transfection, and the resulting chimeric antibody chDMB5F3 was expressed in CHO cells. Stably transfected CHO cells secreted chDMB5F3, which was purified by protein A affinity chromatography.

[0180] Preparation of chDMB5F3:ZZ-PE38 immune complex Generation of chDMB5F3:ZZ-PE38 immune complexes was performed as described by Pichinuk et al.

[11] . Briefly, chDMB5F3 was mixed with purified recombinant ZZ-PE38 protein in 20 mM Hepes buffer at a two-fold molar excess of ZZ-PE38 and incubated for 2 hours at 4°C. Excess ZZ-PE38 and unconjugated chDMB5F3 antibody were removed by filtration using Sephadex G. The particles were removed by passing through a 200 sizing column.

[0181] In vitro cell viability assay T47D, KB, A431, and N87 cancer cells (20,000 cells / well) were seeded into 96-well cell culture plates and grown at 37°C in 5% CO2. After seeding, the chDMB5F3:ZZ-PE38 immunoconjugate was applied directly to the cells at a concentration of 100 ng / ml. Negative controls consisted of target cells reacted with ZZ-PE38 toxin alone, ZZ-PE38 not conjugated to the chDMB5F3 antibody, or the chDMB5F3 monoclonal antibody alone lacking the ZZ-PE38 toxin. Cell viability was assessed by alkaline phosphatase activity / well. Results were calculated as the average of two to three experiments, performed in triplicate.

[0182] ELISA for determining binding of chDMB5F3:ZZ-PE38 immune complexes to MUC1-Xex protein To quantify chDMB5F3 levels in mouse serum, ELISA immunoassay plates were coated with recombinant MUC1-Xex protein (see Figure 1C for a schematic structure) followed by blocking. At 1, 7, 15, and 28 days after a single administration of 5 μg of chDMB5F3:ZZ-PE38 immunoconjugate, mouse serum was applied to ELISA wells at 2:1 dilutions, and bound antibodies were detected using horseradish peroxidase-conjugated goat anti-human Fc antibody. Results were calculated as the average of two to three experiments, performed in triplicate.

[0183] In vivo cytotoxicity assay Two quantitatively measurable human tumor xenograft models, one in 7-week-old female athymic nude mice and one in 7-week-old SCID mice, were transfected with MUC1 + The cells were established by using the human pancreatic cancer cell line, Colo357. A total of 3 × 10 cells were suspended in a small volume (100 μl) of Hepes buffer. 6 Colo357 cells were injected subcutaneously into the right flank of mice. In both nude and SCID mouse studies, mice were divided into three groups (5 mice / group): Group 1 received 5 μg of chDMB5F3:ZZ-PE38 (0.25 mg / kg), Group 2 received 5 μg of nonspecific human Ig:ZZ-PE38 (0.25 mg / kg), and Group 3 received an equal volume of Hepes buffer alone. Administration of anti-MUC1 immunotoxin, nonspecific immunotoxin, or Hepes in the three experimental groups began 24 hours after injection of Colo357 cells in athymic nude mice (7-week-old female mice). The injection protocol consisted of six intravenous (iv) administrations in each experimental group on days 1, 6, 9, 15, 22, and 29 (black arrows along the x-axis, see Figure 6). In SCID mice (7-week-old female mice), administration of chDMB5F3:ZZ-PE38, nonspecific human Ig:ZZ-PE38, and Hepes was initiated in each of the three groups 24 hours after the injection of pancreatic tumor cells. The overall administration protocol consisted of eight IV injections on days 1, 4, 8, 11, 16, 24, 31, and 38 in each of the three groups. Tumor growth was continuously assessed in each experimental group using digital calipers. Tumor volume was calculated using the formula 0.5×L×W as described by Tomayko and Reynolds (Cancer Chemother Pharmacol, 24 (1989) 148-154). 2 The tumor length was calculated according to the formula: (where L is the tumor length and W is the tumor width). All animal experiments were approved by the Institutional Review Board of TAU.

[0184] statistics Statistical analysis of in vivo tumor growth was performed according to a simple paired one-tailed t-test. A p-value of less than 0.05 was considered statistically significant.

[0185] result Example 1: Generation and sequencing of DMB mAbs that bind to cell-associated MUC1α-β junctions and characterization of DMB5F3 mAb Anti-MUC1 monoclonal IgG was generated using spleen cells isolated from inoculated mice, which had high titers of polyclonal anti-MUC1-Xex antibodies. The MUC1-Xex recombinant protein used for immunization and its relationship to the transmembrane MUC1-TM and MUC1-Xex proteins are shown in Figure 1 (compare 1C with 1B and 1A). A total of seven DMB mAbs were thus generated.

[0186] The nucleotide sequences of the variable regions of all anti-MUC1 SEA α-β junction monoclonal antibodies were determined as described above in Materials and Methods, and the deduced amino acid sequences of the mAbs are shown in Figure 2. Sequencing of the resulting mAbs showed that they clustered into four groups: [I]DMB5F3 [I] , [II]DMB7F3 [II] , [III]DMB4B4 [III-a] and DMB10F10 [III-b] and [IV]DMB4F4 [IV-a] , DMB10B7 [IV-b] and DMB13D11 [IV-c] (See Figure 2 and Tables 1 and 2 for the complete nucleotide and amino acid sequences.) Sequencing within each group identified DMB5F3 [I] and DMB7F3 [II] Unique mAb sequences for groups [III] and [IV], or identical V H Array and V L Any mAb with the sequence was revealed.

[0187] The variable domains of all antibodies are representative of affinity maturation, as expected from antibodies generated by prime-boost. Group [IV] mAb DMB10B7[IV-b] and DMB13D11 [IV-c] All mAbs except for IV were Ig-gamma 1. Group [IV] was the same as V H Array and V L It contains three mAbs with the sequence: one (DMB4F4 [IV-a] ) are Ig-gamma 1 subtypes, and the remaining two (DMB10B7 [IV-b] and DMB13D11 [IV-c] ) was IgA.

[0188] All seven anti-MUC1 α-β junction mAbs strongly bound to cells expressing the transmembrane MUC1-TM protein, as assessed by flow cytometry (Figures 1D-1K). Representative mAbs from each of the four mAb groups were also evaluated for their ability to detect MUC1-TM expression by immunohistochemistry performed on formaldehyde-fixed sections from fresh-frozen (FF) and embedded and formaldehyde-fixed (PEFF) tissues. Antibody DMB5F3 [I] stained MUC1-expressing cells present in both FF and PEFF sections (see below), whereas DMB7F3 [II] In contrast, mAbs from group [IV] stained only on FF sections and bound well to MUC1-expressing cells as assessed by flow cytometry, while group [III] mAbs were unreactive with both FF and PEFF sections (data not shown).

[0189] The VH domain is derived from the mouse germline V gene IGHV3-1, which has nine somatic mutations. * It is derived from IGKV5-48, which is 105 / 122 (86%) identical to the highest scoring sequence in an NCBI BlastP search. The VL domain (V-kappa) is derived from the mouse germline V gene IGKV5-48, which has three somatic mutations. * 01, which is 101 / 107 (94%) identical to the highest scoring identical sequence in an NCBI BlastP search.

[0190] Flow cytometry analysis showed that DMB5F3 strongly bound to DA3 cells stably transfected with full-length MUC1 (DA3-TM) (Figure 1D), whereas untransfected DA3-PAR cells, which do not express MUC1, were consistently negative (Figure 1E). The MUC1-positive human pancreatic cancer cell line, Colo357, and the MUC1-positive breast cancer cell lines, T47D and ZR75, showed strong reactivity with DMB5F3 (Figures 1D, 1F, 1H, and 1J). Addition of a competing soluble recombinant MUC1-Xex protein (see Figure 1C for the structure of recombinant MUC1-Xex) abolished all DMB5F3 cell binding (Figures 1G, 1I, and 1K), confirming antibody specificity.

[0191] Example 2: IHC staining of human pancreatic and breast tissue sections with DMB5F3 To determine the extent to which monoclonal DMB5F3 binds to malignant and normal tissues, we performed immunohistochemical staining of various malignancies in tissue microarrays, including breast, pancreatic, lung, prostate, and colon cancers (representative results are shown in Figures 3 and 4). Despite previous reports demonstrating MUC1 overexpression in malignant tumors, the rationale for extensive analysis of MUC1 expression lies in the important fact that the anti-MUC1 mAb described herein recognizes the MUC1 SEA module and was generated by immunization with recombinant MUC1-Xex protein (see Figure 1C), but not by immunization with MUC1-TM protein (see Figure 1A). Previous analyses of MUC1 expression have been performed almost exclusively with antibodies recognizing epitopes within the α-chain VNTR portion. Therefore, it was of interest to analyze for the first time the cellular recognition pattern of anti-MUC1-SEA domain antibodies. The tissue microarrays used in these analyses included (Biomax microarray designations in parentheses): six pancreatic tumors (PA241) with adjacent nontumor tissue, in addition to two sections from each corresponding normal tissue (TP481); 40 different pancreatic tumors and eight normal pancreatic tissues (PA483); three samples each of breast plasma cell mastitis, adenomatous disease, and fibroadenoma, as well as 36 invasive ductal carcinomas, plus two invasive lobular carcinomas (BR963a), and 10 cases each of colon, breast, prostate, lung, and colon cancer. Representative composite arrays of normal and malignant tissues immunohistochemically stained with DMB5F3 are shown in Figure 3. Of the 46 pancreatic tumors (in microarrays PA241 and PA483), 44 showed strong reactivity with DMB5F3, with tumor cells staining in an approximately circular pattern (see, e.g., Figures 3C and 3D). In contrast, normal pancreatic tissue DMB5F3 reactivity was restricted to the luminal surface of pancreatic ductal epithelial cells (Fig. 3A).

[0192] Among the breast tissue samples analyzed with the BR963a microarray, minimal or no staining was observed in non-malignant tissues, including normal breast tissue, plasma cell mastitis, adenomatous disease, and fibroadenoma. In contrast, 21 of 36 invasive ductal carcinomas showed very high DMB5F3 reactivity, 4 showed low levels of expression, and 11 samples showed little or no expression. The pancreatic tissues examined included both acinar (Figure 3D) and ductal adenocarcinomas (Figure 3C and Figures 4N and 4O), while the malignant breast tissues in the microarray consisted of invasive ductal carcinomas (Figures 3G and 3H). Malignant cells from pancreatic cancer (Figures 3C and 3D and 4N and 4O), breast cancer (Figures 3G and 3H and 3I–3N, patients 1–6), and lung, prostate, and colon cancer (Figures 4A, 4D, and 4G, respectively, and Figures 4B, 4E, and 4H at higher magnification) reacted strongly with DMB5F3, with approximately circular cellular staining. In contrast, normal pancreatic acinar cells showed only weak apical positivity (indicated by the black arrow in Figure 3A(i); higher magnifications are shown in Figures 3B and 4M), consistent with previous descriptions

[13] . Normal breast ductal epithelial cells (Figures 3E and 3F) and normal glandular structures formed by nonmalignant epithelial cells adjacent to malignant tumors also showed weak apical positivity on the microarray (Figures 3I–3N show biopsy sections from six patients, with normal glandular structures indicated by black arrows). This contrasted sharply with malignant cells in the same sections, which stained strongly with the DMB5F3 anti-MUC1-SEA antibody (Figures 3I-3N). Because malignant and nonmalignant material were in the same microarray sample and therefore stained simultaneously and uniformly, simple technical differences in handling and staining could explain the findings. Furthermore, the fact that soluble MUC1-Xex competed with cell staining by DMB5F3 confirmed the anti-MUC1 specificity of DMB5F3 (compare Figures 3A and 3B, respectively).

[0193] To extend these findings to other tumor types, lung, prostate, and colon cancers were immunohistochemically examined with DMB5F3 (Figures 4A, 4D, and 4G). Results showed a similar MUC1 distribution pattern to that observed in breast and pancreatic cancers (Figure 3). In addition to increased density of MUC1 expression at the cellular level, we also observed differences in MUC1 structure; anti-MUC1-SEA DMB5F3 bound to malignant cells in a roughly circular pattern. Again, staining with DMB5F3 was abolished in the presence of competing soluble MUC1-Xex protein, demonstrating the specificity of DMB5F3 (data not shown), and no staining was observed with non-immune mouse immunoglobulin (compare Figures 4A, 4D, 4G, and 4J with 4C, 4F, 4I, and 4L). The majority of the nearly 50 lung, prostate, colon, breast, and pancreatic adenocarcinoma tissues examined by microarray showed similar IHC staining patterns, with a minority expressing lower amounts of MUC1 and a few with negligible MUC1 expression. This heterogeneity is consistent with general tumor phenotypes, specifically MUC1 heterogeneity. Because pancreatic cancer, a MUC1-expressing malignancy with a high mortality rate, was selected for in vivo studies (see below), we examined pancreatic tumor tissues from an additional series of patients to confirm tumor-associated structural changes in MUC1 expression (see representative staining in Figures 4N and 4O). These analyses reveal increased cyclic DMB5F3 immunoreactivity throughout the cell surface of adenocarcinoma cells; however, two caveats are relevant: (a) immunohistological analysis is semiquantitative, and (b) in some cases, MUC1 is strongly expressed intracellularly, making comparison of surface expression difficult. Despite these two caveats, cancer cells derived from adenocarcinoma clearly show high cell surface immunoreactivity with DMB5F3.

[0194] Example 3: In vitro cytotoxicity of chDMB5F3:ZZ-PE38 immunoconjugates After demonstrating the reactivity of DMB5F3 with cancer cells expressing cell surface MUC1 in both cell lines (Figures 1D-1K) and tissue biopsy microarrays (Figures 3 and 4), we investigated the antibody's ability to deliver a cytotoxic moiety to malignant cells. The ZZ-PE38 fusion protein consists of the Pseudomonas exotoxin PE38 and the IgG-binding ZZ domain from protein A. Because the ZZ domain exhibits strong binding to human Fc and weak binding to mouse IgG1 Fc, we generated a chimeric DMB5F3 antibody by replacing the mouse IgG1 Fc with human Fc and then appending ZZ-PE38 to chimeric (ch)DM5F3 to form an immunotoxin conjugate, as described in Materials and Methods.

[0195] Because ZZ-PE38 toxin alone cannot bind or internalize cells, all tumor cytotoxicity induced by the DMB5F3-ZZ-P38 immunoconjugate is solely due to cell binding and internalization by the anti-MUC1 DMB5F3 immunoconjugate [Mazor et al., J Immunol Methods, 321 (2007) 41-59; Mazor et al., Cancer Lett, 257 (2007) 124-135]. Cell lines T47D, KB, A431, and N87 were cytologically analyzed using chDMB5F3, Erbitux, and Herceptin at a concentration of 300 ng / ml. MUC1 +We found that T47D cells (breast cancer) and KB cells (epidermoid tumor) were sensitive to chDMB5F3:ZZ-PE38 immune complex-mediated inhibition of cell growth, with tumor cytotoxicity observed at antibody concentrations equivalent to 200 pM (Figures 5A and 5B). In contrast, T47D breast cancer cells, which express low but still clearly detectable levels of EGFR1, were insensitive to Erbitux®:ZZ-PE38 (Figure 5A, diamond tracing) and were only partially sensitive to Herceptin®:ZZ-PE38 (Figure 5A, rectangular tracing). KB cells, which expressed low but still clearly detectable levels of erbB2-EGFR2, were insensitive to Herceptin®:ZZ-PE38 (Figure 5B, rectangular tracing). Cells expressing significantly lower levels of MUC1, such as N87, exhibited approximately 40% cytotoxicity, in contrast to the high MUC1 expression and high cytotoxicity seen in T47D and KB cells (compare Figure 5D with Figures 5A and 5B). A431, the lowest MUC1 expresser of all cell lines examined, contained a major population of cells that showed no MUC1 expression, with only a much smaller subpopulation expressing low levels of MUC1. Consistent with this low level of MUC1 expression, chDMB5F3:ZZ-PE38 immunoconjugates resulted in very limited cytotoxicity of A431. These results indicate that a threshold level of cell surface MUC1 expression and density is a necessary requirement for eliciting cytotoxicity. A similar phenomenon was observed in the absence of Herceptin-immunotoxin conjugates when applied to KB cells (Fig. 5B), despite the low, but still detectable, levels of erbB2-EGFR2 expression by these cells, and in the absence of Erbitux-immunotoxin conjugates when applied to T47D cells, which also express low, but still detectable, levels of EGFR1 (Fig. 5A).

[0196] Example 4: Pharmacokinetics of chDMB5F3 in nude mice The in vivo stability of chDMB5F3 was evaluated by assessing serum levels 1, 7, 14, and 28 days after iv administration. Results showed that serum levels of antibody chDMB5F3 were reduced 2-fold and 4-fold, respectively, on days 14 and 28 compared to day 7 (Figure 6D), consistent with previously reported half-lives in mice of in vitro generated chimeric IgG and antibodies in clinical use. For the toxin conjugate, the half-life of Pseudomonas exotoxin was shown to be extended by binding to IgG.

[0197] Example 5: In vivo cytotoxicity of chDMB5F3:ZZ-PE38 immunoconjugates in xenografted human tumors MMUC1 + Administration of chDMB5F3:ZZPE38 immunoconjugates to nude mice xenografted with human pancreatic Colo357 cells resulted in a significant cytocidal effect, with tumor volume reduction compared to control groups receiving Hepes buffer or nonspecific isotype-matched IgG-ZZ:PE38 on days 21, 28, and 35 (Figure 6A). Upon completion of chDMB5F3:ZZPE38 immunoconjugate administration, tumor volumes in the treated groups increased progressively, as expected, in parallel with those in the control group, and by day 40 (when the animals were sacrificed), tumor volumes in all three groups were between 200 and 400 mm. 3 The tumor suppression effect of the administered chDMB5F3:ZZPE38 was again confirmed (Figure 6A).

[0198] A factor potentially limiting the cytotoxic efficacy of chDMB5F3:ZZPE38 immunoconjugates in xenografted nude mice is endogenous circulating antibodies, which may at least partially displace the ZZ-PE38 toxin from chDMB5F3 by interacting with the ZZ linker. ZZ does not bind to mouse IgG1 but can bind to mouse IgG2. The limited efficacy of the immunotoxin due to displacement does not reflect a lack of binding of the antibody chDMB5F3 to tumor cell surface MUC1, but results from toxin loss due to reduced ZZ-mediated binding of ZZ-PE38 to the chDMB5F3 antibody. To circumvent this complicating factor, we then performed a nearly identical study in SCID mice, which lack detectable endogenous antibodies. Similar to the nude mouse protocol, implanted SCID mice were divided into three groups: one receiving the chDMB5F3:ZZPE38 immunoconjugate, one receiving the isotype-matched IgG-ZZ:PE38, and one receiving Hepes buffer alone, each starting 24 hours after injection of the pancreatic tumor. As described in the Materials and Methods section, the protocol consisted of sequential administrations in each group on days 1, 4, 8, 11, 16, 24, 31, and 38. The chDMB5F3:ZZ-PE38 immunoconjugate demonstrated a significant antitumor effect in chDMB5F3:ZZ-PE38-treated SCID mice: the volume of xenografted Colo357 human tumors was reduced by 90% compared to that in the control group (Figure 7). Tumor volume (mm) after treatment was 0.01%. 3 ) are as follows: Group 1: 2, 14, 16, 25 and 36 mm 3 Group 2 of mice treated with nonspecific isotype-matched IgG-ZZ:PE38: 180, 225, 258, and 270 mm 3 and Group 3 of mice treated with Hepes buffer alone: ​​180, 245, 304, 705, and 1008 mm3. Extended schedules of chDMB5F3:ZZ-PE38 administration to days 31 and 38 confirmed antitumor efficacy through day 49.

[0199] Example 6: Sequencing of DMC209 Total RNA was isolated from hybridoma cells according to the technical manual of the RNeasy Plus Micro Kit (QIAGEN, Cat. No. 74034). Total RNA was then reverse transcribed into cDNA using either an isotype-specific antisense primer or a universal primer according to the technical manual of the SMARTScribe Reverse Transcriptase (TaKaRa, Cat. No. 639536). Heavy and light chain antibody fragments were amplified according to the standard operating procedure (SOP) for rapid amplification of cDNA ends (RACE) in GenScript. The amplified antibody fragments were separately cloned into standard cloning vectors. Colony PCR was performed to screen for colonies with the correct insert size. The consensus sequences are provided in Table 1 (SEQ ID NO: 11 for the heavy chain variable region and SEQ ID NO: 12 for the light chain variable region).

Claims

1. 1. An isolated monoclonal antibody or antigen-binding fragment thereof that binds to the MUC1 SEA domain, comprising: An isolated monoclonal antibody or antigen-binding fragment thereof, comprising a heavy chain complementarity determining region (CDRH) 1 represented by SEQ ID NO: 25, a CDRH2 represented by SEQ ID NO: 26, a CDRH3 represented by SEQ ID NO: 27, and a light chain complementarity determining region (CDRL) 1 represented by SEQ ID NO: 28, a CDRL2 represented by SEQ ID NO: 29, and a CDRL3 represented by SEQ ID NO:

30.

2. the antibody comprises a heavy chain variable region and a light chain variable region; 2. The isolated monoclonal antibody of claim 1, wherein the heavy chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to the nucleic acid sequence shown by SEQ ID NO: 1, and the light chain variable region is encoded by a nucleic acid sequence that is at least 70% identical to SEQ ID NO:

2.

3. 2. The isolated monoclonal antibody of claim 1, wherein the antibody comprises a heavy chain variable region comprising the amino acid sequence shown by SEQ ID NO: 13 and a light chain variable region comprising the amino acid sequence shown by SEQ ID NO:

14.

4. The isolated monoclonal antibody or antigen-binding fragment thereof according to any one of claims 1 to 3, wherein the antibody is a murine antibody, a chimeric antibody, or a humanized antibody.

5. The antigen-binding fragment thereof may be Fv, single chain Fv (scFv), single chain Fv-Fc (scFv-Fc), Fab', Fab, F(ab') 2 or F(ab) 2 The isolated monoclonal antibody or antigen-binding fragment thereof according to any one of claims 1 to 3,

6. 6. The isolated monoclonal antibody or antigen-binding fragment thereof according to any one of claims 1 to 5, wherein the antibody or antigen-binding fragment thereof identifies MUC1 SEA in immunohistochemistry performed on formaldehyde-fixed sections from fresh-frozen (FF) tissue, and / or on paraffin-embedded, formaldehyde-fixed (PEFF) tissue, and / or by fluorescence-activated cell sorting (FACS) analysis of MUC1-expressing human cells.

7. An isolated nucleic acid molecule comprising a nucleotide sequence encoding the antibody or any antigen-binding fragment thereof of any one of claims 1 to 5.

8. An expression vector comprising the isolated nucleic acid molecule of claim 7.

9. An isolated host cell transfected with the expression vector of claim 8.

10. An immunoconjugate comprising the antibody or antigen-binding fragment thereof of any one of claims 1 to 6 and an additional cytotoxic or therapeutic agent.

11. The immunoconjugate of claim 10, wherein the cytotoxic agent is selected from the group consisting of alkylating agents, anthracyclines, pyrimidine derivatives, vinca alkaloids, photodynamic agents, platinum-containing compounds, taxanes, topoisomerase inhibitors, ribosome inactivating agents, agents that induce DNA damage, tubulin inhibitors, antimitotic agents, radioisotopes, cytotoxic antibodies, and bacterial toxins.

12. The immunoconjugate of claim 10, wherein the cytotoxic agent is a Pseudomonas exotoxin.

13. The immunoconjugate of any one of claims 10 to 12, wherein the immunoconjugate reduces tumor volume upon administration to a subject with cancer.

14. A bispecific antibody comprising the antibody or antigen-binding fragment thereof of any one of claims 1 to 6 and a second antibody that binds to a different antigen target.

15. A pharmaceutical composition comprising, as an active ingredient, the isolated monoclonal antibody or antigen-binding fragment thereof according to any one of claims 1 to 6; and further comprising a pharmaceutically acceptable carrier, excipient, or diluent.

16. A pharmaceutical composition comprising, as an active ingredient, the immune complex described in any one of claims 10 to 13; and further comprising a pharmaceutically acceptable carrier, excipient, or diluent.

17. A pharmaceutical composition comprising, as an active ingredient, the bispecific antibody of claim 14; and further comprising a pharmaceutically acceptable carrier, excipient, or diluent.

18. The pharmaceutical composition of any one of claims 15 to 17, wherein the pharmaceutical composition further comprises an additional therapeutic agent.

19. 18. The isolated monoclonal antibody or antigen-binding fragment thereof according to any one of claims 1 to 6, the immunoconjugate of any one of claims 10 to 13, the bispecific antibody of claim 14, or the pharmaceutical composition of any one of claims 15 to 17, for use in a method for treating or ameliorating a disease or disorder, comprising administering to a subject in need thereof a therapeutically effective amount of said isolated monoclonal antibody or antigen-binding fragment thereof, said immunoconjugate, or said pharmaceutical composition.

20. 20. The isolated monoclonal antibody or antigen-binding fragment thereof, or immunoconjugate, or bispecific antibody, or pharmaceutical composition for use according to claim 19, wherein the disease or disorder is cancer.

21. 20. The isolated monoclonal antibody or antigen-binding fragment thereof, or immunoconjugate, or bispecific antibody, or pharmaceutical composition for use according to claim 19, wherein the disease or disorder is an autoimmune or inflammatory disease, or the disease or disorder is a non-malignant abnormal growth condition, such as a cyst, e.g., a kidney cyst, a thyroid cyst and thyroid mass, or a liver cyst.

22. 22. The isolated monoclonal antibody or antigen-binding fragment thereof, or immunoconjugate, or bispecific antibody or pharmaceutical composition for use according to any one of claims 19 to 21, wherein the method further comprises administering an additional therapeutic agent to a subject in need thereof.

Citation Information

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