Antagonist anti-CD7 antibodies

Antibodies targeting CD7 with specific VH and VL domains enhance treatment efficacy for T-ALL by inducing cell death and phagocytosis, addressing the low survival rates in current therapies.

JP7730764B2Active Publication Date: 2025-08-28KYMBA LIMITED
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Patent Information

Application Number
JP2021561787
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-04-18
Filing Date
2020-04-17
Publication Date
2025-08-28
Estimated Expiration
2040-04-17

AI Technical Summary

Technical Problem

Current treatments for T-ALL, particularly in relapsed and refractory cases, have low survival rates, necessitating the development of targeted therapies that can effectively eliminate CD7-expressing tumor cells.

Method used

Development of antibodies and fragments that specifically bind to CD7, utilizing VH and VL domains derived from human gene segments, with specific CDR sequences and amino acid substitutions, for use in combination with chemotherapeutic agents to target and deplete CD7-positive cells.

Benefits of technology

The antibodies demonstrate potent complement-dependent cytotoxicity and antibody-dependent cellular phagocytosis, effectively killing CD7-positive tumor cells and improving survival outcomes in T-ALL models.

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Abstract

The present invention relates to cluster of differentiation 7 (CD7) antagonists, such as antibodies and fragments, as well as methods, uses and combinations.
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Description

[Technical Field]

[0001] The present invention relates to cluster of differentiation 7 (CD7)-expressing cell depletion or CD7 antagonism, including antibodies and fragments, as well as methods, uses and combinations. [Background technology]

[0002] CD7 is a type I transmembrane protein expressed on the surface of T- and NK-lineage cells. It is highly expressed on T-ALL cells. CD7 has been shown to be an effective biomarker for the diagnosis of T-ALL. Furthermore, it is expressed in all CEBPA double-mutated AML cases, including 5–14% of AML patients. It is also expressed on a subset of MDS (myelodysplastic syndrome) blasts. Based on these observations, targeting CD7 with ligands, such as antibodies, would be desirable to kill tumor cells and treat these malignancies.

[0003] T-ALL is a rare, aggressive leukemia resulting from malignant transformation of T-cell precursors. Under current standard of care in multicenter clinical trials, the rate of relapsed and refractory T-ALL is 20% in children and 40% in adults. Among relapsed patients, only 5% of patients survive beyond 5 years. There is a clear high medical need for patients with treatment-resistant T-ALL or T-ALL that relapses after initial treatment. Summary of the Invention

[0004] In a first configuration, the present invention provides: An antibody or fragment comprising a binding site that specifically binds to CD7 (cluster of differentiation 7), wherein the binding site comprises a VH domain encoded by a nucleotide sequence derived from the recombination of a human VH gene segment, a D gene segment, and a JH gene segment, wherein the VH gene segment is selected from IGHV3-15 and IGHV3-23.

[0005] In a second configuration, the present invention provides: An antibody or fragment thereof comprising a VH domain that specifically binds to CD7 and comprises the CDRH3 sequence of an antibody selected from G09, F05, C02, and E04, or such a sequence containing three, two, or one amino acid substitutions.

[0006] In a third configuration, the present invention provides: An antibody or fragment (optionally described in any one of the preceding claims) that specifically binds to CD7 and comprises a VL domain comprising a CDRL3 sequence selected from SEQ ID NOs: 13, 16, 33, 36, 53, 56, 73 and 76, or said selected CDRL3 sequence comprising three, two or one amino acid substitutions.

[0007] In a fourth configuration, the present invention provides: An antibody or fragment comprising a binding site that specifically binds to CD7, wherein the binding site comprises a VL domain comprising the amino acid sequence of the VL domain of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70% identical thereto.

[0008] In a fifth configuration, the present invention provides: An antibody or fragment thereof that specifically binds to CD7 and comprises the heavy chain amino acid sequence of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70% identical thereto.

[0009] In a sixth configuration, the present invention provides: An antibody or fragment thereof that specifically binds to CD7 and comprises the light chain amino acid sequence of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70% identical thereto.

[0010] In a seventh configuration, the present invention provides: An antibody or fragment that specifically binds to a human CD7 epitope that is identical to the epitope bound by an antibody according to any one of the preceding claims.

[0011] In an eighth configuration, the present invention provides: An antibody or fragment that competes with an antibody according to any one of the preceding claims for binding to human CD7.

[0012] In a ninth configuration, the present invention provides: A combination of an amount of an anti-CD7 antibody or fragment of the invention with an amount of a chemotherapeutic agent.

[0013] In a tenth configuration, the present invention provides: Use of an antibody, fragment, or combination of the invention in the manufacture of a medicament for administration to a subject for treating or preventing a CD7-mediated disease or condition, optionally cancer.

[0014] In an eleventh configuration, the present invention provides: A method for treating or preventing a CD7-mediated disease or condition (optionally, cancer) in a subject, the method comprising administering to the subject a therapeutically effective amount of an antibody, fragment, or combination of the invention, thereby treating or preventing the CD7-mediated disease or condition.

[0015] In a twelfth configuration, the present invention provides: A pharmaceutical composition comprising the antibody, fragment, or combination.

[0016] In a thirteenth configuration, the present invention provides: A nucleic acid encoding the VH domain and / or VL domain of an antibody or fragment of the invention.

[0017] In a fourteenth configuration, the present invention provides: A nucleic acid encoding a VH domain comprising the amino acid sequence of the VH domain of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70% identical thereto.

[0018] In a fifteenth configuration, the present invention provides: A nucleic acid encoding a VL domain comprising the amino acid sequence of the VL domain of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70% identical thereto.

[0019] In a sixteenth configuration, the present invention provides: (a) a nucleotide sequence that is at least 70% identical to the sequence of SEQ ID NO: 10, and / or (b) a nucleic acid comprising a nucleotide sequence that is at least 70% identical to the sequence of SEQ ID NO: 20.

[0020] In a seventeenth configuration, the present invention provides: Nucleic acid encoding the heavy and / or light chains of the antibody or fragment of the invention.

[0021] In an eighteenth configuration, the present invention provides: A nucleic acid encoding a heavy chain comprising an amino acid sequence that is at least 70% identical to SEQ ID NO:8 is provided.

[0022] In a nineteenth configuration, the present invention provides: A nucleic acid encoding a light chain comprising an amino acid sequence that is at least 70% identical to SEQ ID NO:18 is provided.

[0023] In a twentieth configuration, the present invention provides: (a) a nucleotide sequence that is at least 70% identical to a heavy chain sequence selected from an antibody selected from G09, F05, C02, and E04; and / or (b) a nucleic acid (e.g., in a host cell, e.g., a CHO or HEK293 or Cos cell) comprising a nucleotide sequence that is at least 70% identical to a sequence selected from an antibody selected from G09, F05, C02, and E04.

[0024] In a twenty-first configuration, the present invention provides: A vector comprising the nucleic acid, optionally a CHO or HEK293 vector.

[0025] In a twenty-second configuration, the present invention provides: A host cell comprising a nucleic acid or vector of the invention.

[0026] In a twenty-third configuration, the present invention provides: The antibodies, fragments, combinations, vectors, host cells, uses or methods described herein.

[0027] In a twenty-fourth configuration, the present invention provides: A method for diagnosing a CD7-mediated disease or condition (optionally cancer) in a subject, the method comprising combining an antibody or fragment of the invention with an isolated cell sample (e.g., a blood or serum sample) and determining that cells contained in the sample specifically bind to the antibody or fragment.

[0028] Therefore, we provide the following: An in vitro assay for detecting CD7-positive cells in a sample, the assay comprising combining an antibody or fragment of the invention with an isolated cell sample (e.g., a blood or serum sample) and determining that cells contained in the sample specifically bind to the antibody or fragment. [Brief explanation of the drawings]

[0029] [Figure 1]The effect of IgG1 Fc variants on the CDC activity of the anti-CD7 benchmark monoclonal antibody RFT2. CEM cells were plated at 1,750 cells / well in a 384-well plate, and human complement serum was added at a final concentration of 1 / 16. Titrated amounts of each RFT2 IgG1 variant and isotype control were added and incubated at 37°C for 2 hours. CellTiter-Glo® was added, and luminescence was read using an Envision plate reader. Percent killing was calculated for each antibody based on the signal from wells without antibody and wells with and without cells. Error bars represent the standard deviation of three replicates for each point. RFT2 E345R was significantly more potent than the other variants, eliciting the greatest killing. Data were analyzed using GraphPad Prism v7.02. Log antibody concentration (M) was plotted against % killing (mean ± standard deviation), and a four-parameter logistic curve fit was applied to the data, allowing for the calculation of EC50 values. Statistical comparisons of the antibodies are shown in Table 6. RFT is discussed in J Immunol. 1989 Dec 1;143(11):3589-97, "Characterization of a human T cell-specific chimeric antibody (CD7) with human constant and mouse variable regions", Heinrich G et al. [Figure 2] Antibody discovery flowchart [Figure 3] Secondary screening of antibodies binding to CEM cells and recombinant cynomolgus CD7 CHO cells. Supernatants from hybridoma clones were collected and screened using flow cytometry to detect binding to CD7 expressed on CEM cells or recombinant CHO cells. Binding was expressed as the geometric mean. [Figure 4] Characterization of mAb binding to human and cynomolgus CD7 proteins. Binding was measured by SPR. Single concentration sensorgrams of captured mAbs interacting with human (h) or cynomolgus (c) CD7 proteins, as indicated. [Figure 5] Tertiary screening of mAbs in the CDC assay. Antibodies were run in three independent assays, with each concentration point run in duplicate. Antibody potency was compared using area under the curve. 1741E04 E345R and 1741G09 E345R demonstrated the highest potency for CEM cell killing, followed by RFT2 E345R, TH69 E345R, 1730C02 E345R, 1896A03 E345R, 1734F05 E345R, and 1738B07 E345R. The isotype control (IgG1 E345R) and 1734E10 E345R did not demonstrate significant potency in this assay. Data were analyzed using GraphPad Prism v7.02, with log antibody concentration (M) plotted against % killing (mean ± standard deviation) and a four-parameter logistic curve fit applied to the data, allowing for calculation of EC50 values. Statistical comparisons of antibodies are shown in Table 6. TH69 is discussed in Br J Haematol. 1996 Nov;95(2):327-38, "Therapy with CD7 monoclonal antibody TH-69 is highly effective for xenografted human T-cell ALL", Baum W et al. [Figure 6] Tertiary screening of mAbs in the ADCP assay. ADCP of CFSE-labeled CEM cells preopsonized with different concentrations of E345R lead antibodies (1730C02, 1734F05, 1741G09) or benchmark anti-CD7 antibody (RFT2) on ice with CellTrace™ Violet (CTV)-labeled monocyte-derived macrophages compared to an IgG1 isotype control. CTV-labeled macrophages were cocultured with CFSE-labeled CEM cells for 2.5 hours. Cells were harvested, assessed for viability using fixable amine-reactive near-infrared light, and analyzed by flow cytometry. Tumor cell phagocytosis was detected by flow cytometry and expressed as % phagocytosis (% CFSE+ / CTV+) / (% CFSE+)). Data shown are the mean ± SD of duplicate samples from a representative experiment of two independent repeats. [Figure 7] CDC activity and in vivo pharmacokinetics of 1741G09 E345R and 1741G09 E430G. (A) Two antibodies, 1741G09 E345R and 1741G09 E430G, as well as their isotype controls, were tested in the CDC assay described in Figure 6. Both molecules exhibited similar potent depletion activity (maximum killing and EC50) for CEM cell depletion. Error bars represent the standard deviation of three replicates for each point. (B) Both antibodies were administered as a single intravenous dose at 10 mg / kg to NOD SCID gamma (NSG) mice. Serum samples were collected at eight time points, with three mice per time point and two time points per mouse. The method used to quantify antibody concentrations was antigen capture ELISA. Each experimental run consisted of an antibody standard curve, and two sets of QC samples were run in duplicate and placed on the front and back of the plate. Antibody concentrations were calculated using SoftMax Pro7 with a standard curve using a four-parameter logistic and 1 / Y weighting. Pharmacokinetic parameters were calculated using the PKSolver Excel add-in. The P value for differences in half-life is equal to 0.0118 based on an unpaired t-test. Data shown are triplicate time points (from three separate mice). Data are presented as mean concentrations with standard deviation. The t of 1741 G09 430G is approximately 7-fold longer than that of 1741 G09 345R (20.9 hours vs. 136.7 hours), and the C is approximately 3-fold higher for G09 430G than for G09 345R (216,811 ng / mL vs. 75,001 ng / mL). [Figure 8]Potent CDC activity of 1741G09 E430G against non-relapsed and relapsed T-ALL cell lines. T-ALL cells, including cell lines (Figure 8A), patient-derived non-relapsed (Figure 8B), and patient-derived relapsed (Figure 8C), were used as target cells, and human serum was used as a complement source. Titrated amounts of 1741G09 E430G and isotype controls were added and incubated for 2 hours at 37°C. CellTiter-Glo® was added, and luminescence was read on an Envision plate reader. Percent killing was calculated for each antibody based on the signal from wells with antibody and wells with and without cells. Error bars represent the standard deviation of four replicates for each point. Data were analyzed using GraphPad Prism v7.02, plotting log antibody concentration (M) versus % killing (mean ± standard deviation), and a four-parameter logistic curve fit was applied to the data, allowing for calculation of EC50 values. [Figure 9] Potent ADCP activity of 1741G09 against relapsed T-ALL cell lines. Phagocytosis of CellTrace® CFSE-labeled CEM by CellTrace® Violet (CTV)-labeled monocyte-derived macrophages or patient T-ALL cells preopsonized with anti-CD7 antibody 1741G09 E430G or appropriate IgG1 isotype control antibodies. The 1741G09 E430G anti-CD7 antibody induced concentration-dependent enhancement of CEM and pediatric patient T-ALL (PDTALL-39, -46, -47) and, to a lesser extent, adult relapsed T-ALL (PDTALL-Ad2R) phagocytosis. Cell phagocytosis in pediatric T-ALL patients using the 1714G09 E340G antibody was statistically significant compared to the isotype control (p=0.015 using a paired t-test), achieving 90-95% maximal phagocytosis compared to approximately 70% for PDTALL-Ad2R. Data shown are the mean ± SD of samples analyzed in duplicate. [Figure 10]Cytokine release profile. The 1741G09 E430G antibody was evaluated for its ability to stimulate human PBMCs from five individual donors, as measured by the release of specific cytokines and chemokines. A corresponding isotype control (IgG1 E430G) (A) was used to monitor nonspecific activation of PBMC cultures. After fixation by air-drying on tissue culture plates, superagonist anti-CD28 and anti-CD3 (clone OKT3) antibodies were used as positive controls. Human PBMCs were seeded into the immobilized test agent in pre-prepared plates and incubated at 37°C for 48 hours. After incubation, cytokine levels from the cultures were measured by Luminex. Induction levels of each cytokine were interpolated from the standard curve using five-point nonlinear regression analysis. The interpolated data were then normalized to the unstimulated control. [Figure 11] PBMC T and NK cell depletion profile by 1741G09 E430G in a CDC assay. Human T (A) or NK (B) cells from two healthy donors were isolated from cryopreserved PBMCs using the Pan Human T or NK Cell Isolation Kit (Miltenyi Biotech) and plated at 1,750 cells / well. A titration of 1741G09 E430G and the corresponding isotype control were added and incubated at 4°C for 30 minutes to allow antibody opsonization. Human complement serum was added at a final concentration of 1 / 16, and the plate was incubated at 37°C for 2 hours. After incubation, CellTiter-Glo® was added to all wells, and luminescence output was read using an Envision plate reader. Luminescence signal correlated with the number of viable cells per well, and % killing was calculated for each antibody concentration based on the luminescence signal from wells without antibody (0% killing) and without cells (100% killing). Data were analyzed using GraphPad Prism v7.02, and log antibody concentration (M) was plotted against % killing (mean ± standard deviation). A four-parameter logistic curve fit was applied to the data to allow calculation of EC50 values. [Figure 12]Survival of B cells, monocytes, NK cells, and T cells in a human whole blood assay. Whole blood from three healthy donors (A, B, C) collected in S-Monovette® hirudin tubes was treated with different antibodies in three independent experiments and then incubated at 37°C for 20 hours. Hirudin was used as an anticoagulant to maintain complement activity. After incubation, immunophenotypes were analyzed by flow cytometry based on cell surface markers (T: CD45+CD3+CD19-, B: CD45+CD3-CD19+, NK: CD45+CD3-CD16+CD56+, monocytes: CD14+). Data sets for each donor with mean (-) are shown: NC': negative control, IC': isotype control, OFA: ofatumumab, RTX: rituximab. Mean values ​​were compared by paired t-test. * indicates p-value less than 0.05. ** indicates p-value less than 0.01. [Figure 13] Survival of CEM cells in healthy donor blood. Whole blood from three healthy donors (D0457, D0462, D0463) collected in S-Monovette® hirudin tubes was spiked with CellTrace® Violet (CTV)-labeled CEM cells and treated with 10 μg / mL of the indicated antibodies in three independent experiments. Hirudin was used as an anticoagulant to maintain complement activity. After 20 hours of incubation at 37°C, immunophenotypes were analyzed by flow cytometry based on cell surface markers (T: CD45+CD3+CD19-, B: CD45+CD3-CD19+, NK: CD45+CD3-CD16+CD56+, monocytes: CD14+). Data sets for each donor with mean (-) are shown. IC: isotype control; OFA: ofatumumab. Changes in cell counts compared to the isotype control were also determined and plotted in the right panel. Each dot represents a single donor, and the mean of three donors is shown as a solid line for each condition. The 50% and 90% thresholds are indicated by dotted lines. Means were compared by paired t-test. * indicates a p-value less than 0.05. ** indicates a p-value less than 0.01. *** indicates a p-value less than 0.001. **** indicates a p-value less than 0.0001. [Figure 14]1741G09 Effect of anti-C5a Ab on E430G-induced cell death (n=1). CTV-labeled CEM cells were added to blood from healthy donors along with 10 μg / mL of E430G KY1007, E430G IgG1, WT KY1007, or ofatumumab ± 10 μg / mL of anti-C5a Ab and incubated at 37°C for 20 hours. This assay used the same method as the previous section. [Figure 15] 1741G09 E430G prolonged survival of xenografted mice. NSG mice were injected with 5x106 T-ALL cells, PDTALL46, on day 0, then administered at 10mg / kg three times a week from day 3 until the end of the study. Two groups (10 mice / group) were treated with infusion 1741G09 E430G and the corresponding isotype control, respectively. (A) Kaplan-Meier plot showing the animals that remained in the study in these two groups. ***: p<0.0001 Log-Rank (Mantel-Cox) test compared to the isotype control. (B) Individual animal flow cytometry data showing the percentage of cells expressing human CD5 on their surface present in the blood of mice during the study. [Figure 16] Complement activation during chemotherapy (see reference 15). [Figure 17] CD7 and CRP expression profiles of relapsed T-ALL cell lines, CEM, and peripheral T and NK cells [Figure 18] Complement activation pathway DETAILED DESCRIPTION OF THE INVENTION

[0030] definition Unless otherwise defined herein, scientific and technical terms have the meanings commonly understood by those of ordinary skill in the art. Further, unless otherwise required by context, singular terms shall include plural terms and plural terms shall include the singular.

[0031] The singular forms "a," "an," and "the" include plural referents unless the context clearly indicates otherwise. Similarly, the word "or" is intended to include "and" unless the context clearly indicates otherwise. Although methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present disclosure, suitable methods and materials are described below. The abbreviation "eg" is derived from the Latin "exempli gratia" and is used herein to indicate a non-limiting example. Thus, the abbreviation "eg" is synonymous with the term "for example."

[0032] In the specification and claims, the term "about" is used to modify values ​​and ranges thereof, such as the amount, concentration, volume, process temperature, process time, yield, flow rate, and pressure of a component in a composition used to describe an embodiment of the present disclosure. The term "about" refers to variations in numerical values ​​that may occur, for example, due to typical measuring and handling procedures used to manufacture a compound, composition, concentrate, or use a formulation, due to inadvertent errors in these procedures, due to differences in the manufacture, source, or purity of starting materials or components used to carry out the method, and similar close considerations. The term "about" also includes amounts that differ due to aging a formulation at a particular initial concentration or mixture, and amounts that differ due to mixing or processing a formulation with a particular initial concentration or mixture. When modified by the term "about," the claims appended hereto include equivalents of these quantities.

[0033] As used herein, "administering" or "administration" refers to the act of physically delivering an exogenous substance (e.g., an anti-hCD7 antibody provided herein), such as by mucosal, intradermal, intravenous, intramuscular delivery, and / or any other physical delivery method described herein or known in the art. When treating a disease or a symptom thereof, administration of the substance typically occurs after the onset of the disease or a symptom thereof. When preventing a disease or a symptom thereof, administration of the substance typically occurs before the onset of the disease or a symptom thereof.

[0034] The terms "antibody," "immunoglobulin," or "Ig" are used interchangeably herein and refer to an immunoglobulin molecule that recognizes and specifically binds to a target, such as a protein, polypeptide, peptide, carbohydrate, polynucleotide, lipid, or a combination of the foregoing, via at least one antigen recognition site within the variable region of the immunoglobulin molecule. As used herein, the term "antibody" encompasses intact polyclonal antibodies, intact monoclonal antibodies, antibody fragments (such as Fab, Fab', F(ab')2, and Fv fragments), single-chain Fv (scFv) variants, multispecific antibodies such as bispecific antibodies (including biconjugated antibodies), chimeric antibodies, humanized antibodies, human antibodies, fusion proteins containing an antigenic portion of an antibody, and any other modified immunoglobulin molecule containing an antigen recognition site, so long as the antibody exhibits the desired biological activity. The term "antibody" also refers to a Y-shaped glycoprotein having a molecular weight of approximately 150 kDa and composed of four polypeptide chains (two light (L) chains and two heavy (H) chains). There are five mammalian Ig heavy chain isotypes, designated by the Greek letters alpha (α), delta (δ), epsilon (ε), gamma (γ), and mu (μ). The type of heavy chain defines the class of antibody, i.e., IgA, IgD, IgE, IgG, and IgM, respectively. The gamma and alpha classes are further divided into subclasses, e.g., IgG1, hIgG2, mIgG2A, mIgG2B, IgG3, IgG4, IgA1, and IgA2, based on differences in constant domain sequence and function. In mammals, there are two types of immunoglobulin light chains: lambda and kappa. The "variable region" or "variable domain" of an antibody refers to the amino-terminal domain of the antibody heavy or light chain. The variable domains of the heavy and light chains are called "V" and "V" respectively. H " and "V L ". These domains are generally the most variable parts of an antibody (compared to other antibodies of the same class) and contain the antigen-binding sites. An example of an antibody is a heavy-chain-only (i.e., H2) antibody, which comprises a heavy chain dimer (5'-VH-(optional hinge)-CH2-CH3-3') and lacks light chains.

[0035] The antibodies described herein may be oligoclonal, polyclonal, monoclonal (including full-length monoclonal antibodies), camelized, chimeric, CDR-grafted, multispecific, bispecific (including bispecific antibodies), catalytic, chimeric, humanized, fully human, anti-idiotypic, and include antibodies and fragments, variants, or derivatives thereof that can be labeled, in soluble or conjugated form, alone or in combination with other amino acid sequences provided by known techniques. Antibodies may be derived from any species. The antibodies described herein may be naked or conjugated to other molecules, such as toxins, radioisotopes, etc.

[0036] The terms "antigen-binding site," "antigen-binding domain," "antigen-binding region," "antigen-binding fragment," and similar terms refer to the portion of an antibody (e.g., the complementarity-determining region (CDR)) that comprises the amino acid residues that interact with an antigen and confer specificity and affinity to the binder for the antigen. The antigen-binding region can be derived from any animal species, including rodents (e.g., rabbits, rats, or hamsters) and humans. Preferably, the antigen-binding region is of human origin.

[0037] Antigen-binding fragments described herein can include single-chain Fvs (scFvs), single-chain antibodies, single-domain antibodies, domain antibodies, Fv fragments, Fab fragments, F(ab') fragments, F(ab') fragments, antibody fragments exhibiting the desired biological activity, disulfide-stabilized variable regions (dsFvs), dimeric variable regions (diabodies), anti-idiotypic (anti-Id) antibodies (including, for example, anti-Id antibodies against antibodies), intrabodies, linear antibodies, single-chain antibody molecules and multispecific antibodies formed from any of the above antibody fragments and epitope-binding fragments. In particular, antibodies and antibody fragments described herein can include immunoglobulin molecules and immunologically active fragments of immunoglobulin molecules, i.e., molecules containing an antigen-binding site. Digestion of antibodies with the enzyme papain produces two identical antigen-binding fragments, also known as "Fab" fragments, and an "Fc" fragment, which lacks antigen-binding activity but has the ability to crystallize. As used herein, "Fab" refers to an antibody fragment containing one constant domain and one variable domain of each of the heavy and light chains. The term "Fc region" is used herein to define the C-terminal region of an immunoglobulin heavy chain, including native-sequence Fc regions and variant Fc regions. "Fc fragment" refers to the carboxy-terminal portions of both H chains held together by disulfides. The effector functions of an antibody are determined by the sequence of the Fc region, and this region is also recognized by Fc receptors (FcRs) found on certain cell types. Digestion of an antibody with the enzyme pepsin produces an F(ab')2 fragment, in which the two arms of the antibody molecule remain linked and contain two antigen-binding sites. The F(ab')2 fragment retains the ability to cross-link antigens.

[0038] The term "derived from the recombination of" in reference to gene segments will be readily apparent to those skilled in the art, who will understand that B cells recombine their variable region gene segments to generate a variable domain coding sequence. For example, "derived from the recombination of a human VH gene segment, a D gene segment, and a JH gene segment" refers to the recombination of one human VH gene segment with one D gene segment and one JH gene segment to form a rearranged VDJ sequence encoding a heavy chain antibody variable domain. Junctional and somatic hypermutation are also features of the process, whereby the resulting rearranged VDJ sequence contains one or more nucleotide additions, substitutions, or deletions (e.g., p-additions and / or n-additions) not contained in the germline V, D, and J sequences. The same is true for Vκ and Jκ gene segments for kappa light chain variable domains and Vλ and Jλ for lambda light chain variable domains. It is intended that any post-translational modifications may also be incorporated into the variable domain.

[0039] As used herein, "Fv" refers to the minimum antibody fragment that retains both the antigen recognition and binding sites. This region consists of a dimer of one heavy and one light chain variable domain in tight, non-covalent or covalent association. In this configuration, the three CDRs of each variable domain are represented by V H -V L They interact to define an antigen-binding site on the surface of the dimer. Collectively, the six CDRs confer antigen-binding specificity to the antibody. However, even a single variable domain (or half of an Fv containing only three CDRs specific for an antigen) is capable of recognizing and binding antigen, although with lower affinity than the entire binding site.

[0040] As used herein, the term "monoclonal antibody" refers to an antibody obtained from a population of substantially homogeneous antibodies, i.e., the individual antibodies comprising the population are identical except for possible naturally occurring mutations and / or post-translational modifications (e.g., isomerization, amidation) that may be present in minor amounts. Monoclonal antibodies are highly specific and are directed against a single antigenic determinant or epitope. In contrast, polyclonal antibody preparations typically contain different antibodies directed against different antigenic determinants (or epitopes). As used herein, the term "monoclonal antibody" encompasses both intact, full-length monoclonal antibodies as well as antibody fragments (e.g., Fab, Fab', F(ab')2, Fv), single-chain (scFv) variants, fusion proteins containing antibody portions, and any other modified immunoglobulin molecule containing an antigen recognition site. Furthermore, "monoclonal antibody" refers to such antibodies produced by any number of methods, including, but not limited to, hybridoma, phage selection, recombinant expression, and transgenic animals.

[0041] Monoclonal antibodies herein may include "chimeric" antibodies (immunoglobulins) in which a portion of the heavy and / or light chain is identical to or homologous to corresponding sequences in antibodies derived from a particular species or belonging to a particular antibody class or subclass, while the remainder of the chain is identical to or homologous to corresponding sequences in antibodies derived from another species or belonging to another antibody class or subclass, as well as fragments of such antibodies that exhibit the desired biological activity.

[0042] The term "humanized antibody" refers to a subset of chimeric antibodies in which residues from a "hypervariable region" from a non-human immunoglobulin (donor antibody) are replaced by residues from a hypervariable region of a human immunoglobulin (recipient antibody). Generally, a humanized antibody will contain substantially all of at least one, and typically two, variable domains, with all or substantially all of the hypervariable loops corresponding to those of a non-human immunogenic sequence, and all or substantially all of the framework regions being those of a human immunoglobulin sequence, although the framework regions may contain one or more substitutions that improve antibody performance, such as binding affinity, isomerization, immunogenicity, etc.

[0043] The term "bispecific antibody" includes specificity for two target molecules and includes DVD-Ig (see DiGiammarino et al., "Design and generation of DVD-Ig™ molecules for dual-specific targeting", Meth. Mo. Biol., 2012, 889, 145-156), mAb 2 (See WO2008 / 003103, mAb 2a description of the format is incorporated herein by reference), FIT-Ig (see WO2015 / 103072, a description of the FIT-Ig scaffold is incorporated herein by reference), mAb-dAb, dock-and-lock, Fab-arm exchange, SEEDbody, Triomab, LUZ-Y, Fcab, κλ-body, orthogonal Fab, sc diabody-Fc, diabody-Fc, tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, intrabody, BiTE, diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, triplebody, minibody, minibody, TriBi minibody, scFv-CH3 This refers to antibodies including, but not limited to, formats such as KIH, scFv-CH-CL-scFv, F(ab')2-scFv, scFv-KIH, Fab-scFv-Fc, tetravalent HCab, ImmTAC, knobs-in-hole, knobs-in-hole with a common light chain, knobs-in-hole with a common light chain and charge pair, charge pair, charge pair with a common light chain, DT-IgG, DutaMab, IgG(H)-scFv, scFv-(H)IgG, IgG(L)-scFv, scFv-(L)IgG, IgG(L,H)-Fv, IgG(H)-V, V(H)-IgG, IgG(L)-V, V(L)-IgG, KIH IgG-scFab, 2scFv-IgG, IgG-2scFv, scFv4-Ig, and zybody. For a review of bispecific formats, see Spiess, C., et al., Mol. Immunol. (2015). In another embodiment, the bispecific molecule is constructed using another non-Ig format, such as a T-cell receptor binding domain, an immunoglobulin superfamily domain, an agnathan variable lymphocyte receptor, or a fibronectin. domains (e.g., Adnectins™), antibody constant domains where the constant domain is not a functional CH1 domain (e.g., a CH3 domain, e.g., CH2 and / or CH3 of an Fcab™), epitope binding domains derived from a scaffold selected from scFv, (scFv)2, sc-diabody, scFab, centilin, and CTLA-4 (Evibody™), lipocalin domains, protein A, e.g., the Z domain of protein A (e.g., Affibody™ or SpA), A domains (e.g., , Avimer™ or Maxibody™), heat shock proteins (such as epitope binding domains derived from GroEI and GroES), transferrin domains (e.g., Transbodies), ankyrin repeat proteins (e.g., DARPins™), peptide aptamers, C-type lectin domains (e.g., Tetranectin™), human gamma-crystallin or human ubiquitin (affilin), PDZ domains, scorpion toxins, and antibodies fused to Kunitz-type domains of human protease inhibitors.

[0044] In one embodiment, the bispecific antibody is a mAb 2 mAb 2 is a V from an intact antibody fused to a modified constant region engineered to form an antigen binding site, known as an "Fcab" H and V L Contains domains. Fcab / mAb 2 The technology behind the format is described in more detail in WO2008 / 003103 and is incorporated herein by reference. 2 The format description is incorporated herein by reference.

[0045] In another embodiment, the bispecific antibody is a "dual binding antibody." As used herein, the term "dual binding antibody" refers to an antibody in which both antigen-binding domains are V H / V Land bispecific antibodies formed by pairs such as FIT-Ig (see WO2015 / 103072, incorporated herein by reference), mAb-dAb, dock-and-lock, Fab arm exchange, SEEDbody, Triomab, LUZ-Y, Fcab, κλ-body, orthogonal Fab, sc diabody-Fc, diabody-Fc, tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, intrabody, BiTE, diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, triple body, minibody, minibody, scFv-CH3KIH, scFv-CH-CL-scFv, F(ab') 2- These include scFv, scFv-KIH, Fab-scFv-Fc, tetravalent HCab, ImmTAC, knobs-in-hole, knobs-in-hole with a common light chain, knobs-in-hole with a common light chain and charge pair, charge pair, charge pair with a common light chain, DT-IgG, DutaMab, IgG(H)-scFv, scFv-(H)IgG, IgG(L)-scFv, scFv-(L)IgG, IgG(L,H)-Fv, IgG(H)-V, V(H)-IgG, IgG(L)-V, V(L)-IgG, KIH IgG-scFab, 2scFv-IgG, IgG-2scFv, and scFv4-Ig.

[0046] The terms "hypervariable region," "CDR region," or "CDR" refer to the regions of an antibody variable domain that are hypervariable in sequence and / or form structurally defined loops. Generally, the antigen-binding site of an antibody is composed of six hypervariable regions: V H Three in (CDRH1, CDRH2, CDRH3), and V LThese regions of the heavy and light chains of an antibody confer antigen-binding specificity to the antibody. CDRs can be defined according to the Kabat system (see Kabat, E.A. et al., 1991, "Sequences of Proteins of Immunological Interest," 5th ed., NIH Publication no. 91-3242, USDapartment of Health and Human Services). Other systems, such as the system devised by Chothia et al. (see Chothia, C. & Lesk, A.M., 1987, "Canonical structures for the hypervariable regions of immunoglobulins," J. Mol. Biol., 196, 901-917) and IMGT (see Lefranc, M.P., 1997, "Unique database numbering system for immunogenetic analysis," Immunol. Today, 18, 50), may also be used to define CDRs. An antibody typically contains three heavy chain CDRs and three light chain CDRs. The term CDR or CDRs is used herein to refer to one or more of these regions. Those skilled in the art can easily compare different nomenclature systems and determine whether a particular sequence can be defined as a CDR.

[0047] A "human antibody" is an antibody having an amino acid sequence corresponding to that of an antibody produced by a human and / or produced using any of the techniques for producing human antibodies, and specifically excludes humanized antibodies containing non-human antigen-binding residues. The term "specifically binds" refers to a measurable and reproducible interaction, such as binding between a target and an antibody, that determines the presence of the target in the presence of a heterogeneous population of molecules, including biological molecules. For example, an antibody that specifically binds to a target (which may be an epitope) is an antibody that binds to this target with higher affinity, avidity, more readily, and / or with a longer duration than it binds to other targets. In one embodiment, the extent of binding of the antibody to an unrelated target is less than about 10% of the binding of the antibody to the target, as measured, for example, by radioimmunoassay (RIA).

[0048] An antibody or fragment thereof that specifically binds to the human CD7 (hCD7) antigen may cross-react with related antigens. Preferably, an antibody or fragment thereof that specifically binds to the hCD7 antigen does not cross-react with other antigens (although, optionally, it may cross-react with CD7 from a different species, e.g., rhesus monkey or mouse). An antibody or fragment thereof that specifically binds to the hCD7 antigen can be identified, for example, by immunoassay, BIAcore™, or other techniques known to those skilled in the art. An antibody or fragment thereof specifically binds to the CD7 antigen if it binds to the hCD7 antigen with higher affinity than any cross-reactive antigen, as determined using experimental techniques such as radioimmunoassay (RIA) and enzyme-linked immunosorbent assay (ELISA). Typically, a specific or selective response is at least twice the background signal or noise, more typically more than 10 times (e.g., more than 15 times, more than 20 times, more than 50 times, or more than 100 times) background. See pages 332-336 of Paul, ed., 1989, Fundamental Immunology, 2nd ed., Raven Press, New York, for a discussion of antibody specificity.

[0049] The term "aliphatic amino acid" means that the amino acid R group is nonpolar and hydrophobic. Hydrophobicity increases with the number of carbon atoms in the hydrocarbon chain. Glycine, alanine, valine, leucine, and isoleucine are aliphatic amino acids.

[0050] The term "aromatic amino acid" means that the amino acid R group contains an aromatic ring system. Phenylalanine, tyrosine, and tryptophan are aromatic amino acids.

[0051] The term "hydroxyl-containing amino acid" means that the amino acid R group contains a hydroxyl group and is hydrophilic. Serine, cysteine, threonine, and methionine are hydroxyl-containing amino acids.

[0052] The term "basic amino acid" means that the amino acid R group contains nitrogen and is basic at neutral pH. Histidine, lysine, and arginine are basic amino acids.

[0053] The term "cyclic amino acid" means that the amino acid R group has an aliphatic ring structure. Proline is the only cyclic aliphatic amino acid.

[0054] The term "acidic amino acid" means that the amino acid R group is polar and negatively charged at physiological pH. Aspartic acid and glutamic acid are acidic amino acids.

[0055] The term "amide amino acid" means that the amino acid R group contains an amide group. Asparagine and glutamine are amide amino acids.

[0056] As used herein, "approval number" or "marketing authorization number" refers to a number issued by a regulatory authority when it determines that a particular medical product and / or composition may be sold and / or offered for sale in the jurisdiction of that regulatory authority. As used herein, "regulatory authority" refers to, for example, one of the authorities responsible for evaluating the safety and effectiveness of medical products and / or compositions and controlling the sale / marketing of such products and / or compositions in a given territory. The Food and Drug Administration (FDA) in the United States and the European Medicines Agency (EPA) in Europe are just two examples of such regulatory authorities. Other non-limiting examples include the SDA, MPA, MHPRA, IMA, ANMAT, the Hong Kong Department of Health-Drug Office, CDSCO, Medsafe, and KFDA. As used herein, a "buffer" refers to a chemical that can absorb a certain amount of acid or base without undergoing strong fluctuations in pH.

[0057] As used herein, the term "carrier" refers to a diluent, adjuvant (e.g., Freund's adjuvant (complete and incomplete)), excipient, or vehicle with which a therapeutic is administered. Such pharmaceutical carriers can be sterile liquids, such as water and oils, including those of petroleum, animal, vegetable, or synthetic origin, such as peanut oil, soybean oil, mineral oil, sesame oil, and the like. Water is a preferred carrier when the pharmaceutical composition is administered intravenously. Saline solutions and aqueous dextrose and glycerol solutions can also be used as liquid carriers, particularly for injectable solutions.

[0058] The terms "chemotherapeutic agent" or "chemotherapeutic" typically refer to therapeutic agents whose primary purpose is to destroy cancer cells by interfering with their ability to grow or proliferate. There are many different types of chemotherapeutic agents, with over 50 approved chemotherapeutic agents available. Chemotherapeutic agents can be classified based on their action. Alkylating agents kill cancer cells by directly attacking DNA, the genetic material of genes. Cyclophosphamide is an alkylating agent. Antimetabolites interfere with the production of DNA, preventing cell growth and proliferation. An example of an antimetabolite is 5-fluorouracil (5-FU). Antitumor antibiotics are produced from natural substances, such as fungi in the soil. They interfere with important cellular functions, including the production of DNA and cellular proteins. Doxorubicin and bleomycin belong to this group of chemotherapeutic agents. Plant alkaloids prevent cells from dividing normally. Vinblastine and vincristine are plant alkaloids obtained from the periwinkle plant. Steroid hormones slow the growth of some hormone-dependent cancers. For example, tamoxifen is used to treat breast cancer, which depends on the hormone estrogen for growth. DNA damage response (DDR) inhibitors, such as PARP inhibitors, block DNA repair mechanisms after single- or double-strand breaks.

[0059] Examples of chemotherapeutic agents include adriamycin, doxorubicin, 5-fluorouracil, cytosine arabinoside (Ara-C), cyclophosphamide, thiotepa, taxotere (docetaxel), busulfan, cytoxin, taxol, methotrexate, cisplatin, melphalan, vinblastine, bleomycin, etoposide, mitomycin C, mitoxantrone, vincristine, vinorelbine, carboplatin, teniposide, daunomycin, carminomycin, aminopterin, dactinomycin, mitomycin, esperamicin (see U.S. Pat. No. 4,675,187), melphalan, and other related nitrogen mustards. Suitable toxins and chemotherapeutic agents are described in Remington's Pharmaceutical Sciences, 19th Edition (Mack Publishing Co. 1995), and Goodman and Gilman's The Pharmacological Basis of Therapeutics, 7th Edition (MacMillan Publishing Co. 1985). Another example of a chemotherapeutic agent is the class of antibody-conjugated toxins, including, but not limited to, pyrrolobenzodiazepines, maytansanoids, calicheamicins, and the like. Other suitable toxins and / or chemotherapeutic agents will be known to those skilled in the art.

[0060] As used herein, the term "composition" is intended to encompass a product comprising specified ingredients (e.g., an antibody of the invention), optionally in specified amounts, as well as any product that results directly or indirectly from the combination of specified ingredients, optionally in specified amounts.

[0061] As used herein, the terms "comprising" or "comprises" are used in reference to antibodies, fragments, uses, compositions, methods, and their respective components that are essential to the method or composition, but also include the inclusion of non-specified elements, whether essential or not.

[0062] The term "consisting of" refers to the antibodies, fragments, uses, compositions, methods, and their respective components described herein, excluding any element not recited in that description of the embodiment.

[0063] As used herein, the term "consisting essentially of" refers to elements required for a given embodiment. The term allows for the presence of elements that do not materially affect the basic and novel or functional characteristics of that embodiment.

[0064] As used herein, the term "derivative" in the context of a polypeptide includes polypeptides comprising the amino acid sequence of an hCD7 polypeptide, a fragment of an hCD7 polypeptide, or an antibody or fragment that specifically binds to an hCD7 polypeptide that has been modified by the introduction of amino acid substitutions, deletions, or additions. The term "derivative" as used herein also includes hCD7 polypeptides, fragments of hCD7 polypeptides, or antibodies that specifically bind to hCD7 polypeptides that have been chemically modified, for example, by the covalent attachment of any type of molecule to the polypeptide. For example, but not limited to, hCD7 polypeptides, fragments of hCD7 polypeptides, or hCD7 antibodies can be chemically modified, for example, by glycosylation, acetylation, pegylation, phosphorylation, amidation, derivatization with known protecting / blocking groups, proteolytic cleavage, attachment to cellular ligands or other proteins, and the like. Derivatives are modified in a manner that differs from naturally occurring peptides or polypeptides or starting peptides or polypeptides, either in the type or location of the attached molecule. Derivatives further include deletion of one or more chemical groups naturally present in the peptide or polypeptide. Derivatives of hCD7 polypeptides, fragments of hCD7 polypeptides, or hCD7 antibodies may be chemically modified using techniques known to those of skill in the art, including, but not limited to, specific chemical cleavage, acetylation, formulation, metabolic synthesis of tunicamycin, etc. Additionally, derivatives of hCD7 polypeptides, fragments of hCD7 polypeptides, or hCD7 antibodies may contain one or more non-classical amino acids. Polypeptide derivatives have similar or identical functions as hCD7 polypeptides, fragments of hCD7 polypeptides, or hCD7 antibodies described herein.

[0065] As used herein, the term "effector function" (or "effector function effective") refers to one or more of antibody-dependent cell-mediated cytotoxicity (ADCC), complement-dependent cytotoxicity (CDC)-mediated responses, Fc-mediated phagocytosis, antibody-dependent cellular phagocytosis (ADCP) or antibody-dependent trogocytosis, and antibody recycling via the FcRn receptor.

[0066] An "effective amount" refers to an amount effective, at dosages and for periods of time necessary, to achieve a desired effect, including therapeutic or prophylactic results. A "therapeutically effective amount" refers to the minimum concentration necessary to bring about a measurable improvement or prevention of a particular disorder. The therapeutically effective amount herein may vary depending on factors such as the patient's condition, age, sex, and weight, as well as the ability of the antibody to elicit a desired response in an individual. A therapeutically effective amount is also an amount in which any toxic or detrimental effects of the antibody are outweighed by the therapeutically beneficial effects. A "prophylactically effective amount" refers to an amount effective, at dosages and for periods of time necessary, to achieve a desired prophylactic result. In some embodiments, an effective amount of an antibody of the present invention is from about 0.1 mg / kg (mg of antibody per kg of subject weight) to about 100 mg / kg. In certain embodiments, an effective amount of an antibody provided herein is about 0.1 mg / kg, about 0.5 mg / kg, about 1 mg / kg, 3 mg / kg, 5 mg / kg, about 10 mg / kg, about 15 mg / kg, about 20 mg / kg, about 25 mg / kg, about 30 mg / kg, about 35 mg / kg, about 40 mg / kg, about 45 mg / kg, about 50 mg / kg, about 60 mg / kg, about 70 mg / kg, about 80 mg / kg, about 90 mg / kg, or about 100 mg / kg (or a range therein). In some embodiments, "effective amount," as used herein, also refers to the amount of an antibody of the invention to achieve a particular result (e.g., inhibition of hCD7 biological activity of a cell).

[0067] As used herein, the term "epitope" refers to a localized region on the surface of an antigen, such as an hCD7 polypeptide or hCD7 polypeptide fragment, that has antigenic or immunogenic activity capable of binding to one or more antigen-binding regions of an antibody and eliciting an immune response in an animal, preferably a mammal, and most preferably a human. An epitope with immunogenic activity is a portion of a polypeptide that elicits an antibody response in an animal. An epitope with antigenic activity is a portion of a polypeptide to which an antibody specifically binds, as determined, for example, by any method known in the art, such as the immunoassays described herein. An antigenic epitope need not necessarily be immunogenic. Epitopes are usually composed of chemically active surface groupings of molecules, such as amino acids or sugar side chains, and have specific three-dimensional structural characteristics and specific charge characteristics. The region of a polypeptide that contributes to an epitope can be contiguous amino acids of the polypeptide, or an epitope can consist of two or more noncontiguous regions of the polypeptide. An epitope may or may not be a three-dimensional surface feature of an antigen. In certain embodiments, an hCD7 epitope is a three-dimensional surface feature of an hCD7 polypeptide (e.g., a trimeric form of an hCD7 polypeptide). In other embodiments, an hCD7 epitope is a linear feature of an hCD7 polypeptide (e.g., a trimeric or monomeric form of an hCD7 polypeptide). The antibodies provided herein can specifically bind to an epitope in the monomeric (denatured) form of hCD7, the trimeric (native) form of hCD7, or both the monomeric (denatured) and trimeric (native) forms of hCD7. In certain embodiments, the antibodies provided herein specifically bind to an epitope in the trimeric form of hCD7, but do not specifically bind to the monomeric form of hCD7.

[0068] The term "excipient" as used herein refers to an inert substance commonly used as a diluent, vehicle, preservative, binder, or stabilizer for a drug, and includes, but is not limited to, proteins (e.g., serum albumin, etc.), amino acids (e.g., aspartic acid, glutamic acid, lysine, arginine, glycine, histidine, etc.), fatty acids and phospholipids (e.g., alkyl sulfonates, caprylates, etc.), surfactants (e.g., SDS, polysorbates, nonionic surfactants, etc.), and sugars (e.g., sucrose, maltose, trehalose, etc.), and polyols (e.g., mannitol, sorbitol, etc.). See also Remington's Pharmaceutical Sciences (1990) Mack Publishing Co., Easton, Pa., incorporated herein by reference in its entirety.

[0069] The term "fragment" as used herein in the context of a peptide or polypeptide refers to a peptide or polypeptide that contains less than the full-length amino acid sequence. Such fragments may result, for example, from truncation at the amino terminus, truncation at the carboxy terminus, and / or internal deletion of residues from the amino acid sequence. Fragments may result, for example, from alternative RNA splicing or in vivo protease activity. In certain embodiments, a CD7 fragment comprises a polypeptide comprising at least 5 contiguous amino acid residues, at least 10 contiguous amino acid residues, at least 15 contiguous amino acid residues, at least 20 contiguous amino acid residues, at least 25 contiguous amino acid residues, at least 40 contiguous amino acid residues, at least 50 contiguous amino acid residues, at least 60 contiguous amino acid residues, at least 70 contiguous amino acid residues, at least 80 contiguous amino acid residues, at least 90 contiguous amino acid residues, at least 100 contiguous amino acid residues, at least 125 contiguous amino acid residues, at least 150 contiguous amino acid residues, at least 175 contiguous amino acid residues, at least 200 contiguous amino acid residues, or at least 250 contiguous amino acid residues of an hCD7 polypeptide or an antibody that specifically binds to an hCD7 antigen. In certain embodiments, a fragment of an hCD7 polypeptide or an antibody that specifically binds to an hCD7 antigen retains at least one, at least two, or at least three functions of the polypeptide or antibody.

[0070] The term "free" can refer to a polypeptide, such as CD7 or a fragment or variant thereof, combined with a buffer, but not bound to a cell surface or cell membrane. Thus, the term "free" can refer to a polypeptide capable of surface expression (i.e., containing one or more transmembrane or membrane-binding domains) but not currently expressed on the surface of a cell or bound to a protein expressed on the surface of a cell. A free polypeptide can also refer to a free recombinant or natural or unbound polypeptide. In the context of phage display, the free antigen can be selected in solution (referred to herein as "soluble selection") or adsorbed to a surface, for example, the surface of a 96-well plate (referred to herein as "biopanning selection").

[0071] The term "fusion protein," as used herein, refers to a polypeptide comprising the amino acid sequence of an antibody and the amino acid sequence of a heterologous polypeptide or protein (i.e., a polypeptide or protein that is not normally part of an antibody (e.g., a non-anti-CD7 antigen antibody)). The term "fusion," when used in reference to CD7 or an anti-CD7 antibody, refers to the association of a peptide or polypeptide, or fragments, variants, and / or derivatives thereof, with a heterologous peptide or polypeptide. Preferably, the fusion protein retains the biological activity of the CD7 or anti-CD7 antibody. In certain embodiments, the fusion protein comprises a CD7 antibody VH domain, a VL domain, a VH CDR (one, two, or three VH CDRs), and / or a VL CDR (one, two, or three VL CDRs), and the fusion protein specifically binds to a CD7 epitope.

[0072] The term "heavy chain" when used in reference to antibodies refers to five different types, designated alpha (α), delta (δ), epsilon (ε), gamma (γ), and mu (μ), based on the amino acid sequence of the heavy chain constant domain. These different types of heavy chains are well known and give rise to five classes of antibodies, IgA, IgD, IgE, IgG, and IgM, respectively, including four subclasses of IgG: IgG1, IgG2, IgG3, and IgG4. Preferably, the heavy chain is a human heavy chain. In the human population, multiple heavy chain constant region alleles exist for each immunoglobulin or immunoglobulin subclass. The nucleotide and amino acid sequences of these allelic variants are accessible in publicly available databases, such as IMGT, ENSEMBL Swiss-Prot, and Uniprot. Allelic variants can also be identified in various genome sequencing projects. In one embodiment, the antibodies and antibody fragments disclosed herein comprise a heavy chain encoded by an IgG1 constant region allele, including but not limited to, human IGHG1*01, IGHG1*02, IGHG1*03, IGHG1*04, and IGHG1*05. In one embodiment, the antibodies and antibody fragments disclosed herein comprise a protein encoded by an IgG2 constant region allele, including but not limited to, human IGHG2*01, IGHG2*02, IGHG2*03, IGHG2*04, IGHG2*05, and IGHG2*06. In one embodiment, the antibody or antibody fragment disclosed herein comprises a protein encoded by an IgG3 constant region allele, including, but not limited to, human IGHG3*01, IGHG3*02, IGHG3*03, IGHG3*04, IGHG3*05, IGHG3*06, IGHG3*07, IGHG3*08, IGHG3*09, IGHG3*10, IGHG3*11, IGHG3*12, IGHG3*13, IGHG3*14, IGHG3*15, IGHG3*16, IGHG3*17, IGHG3*18, and IGHG3*19. In one embodiment, the antibody or antibody fragment disclosed herein comprises a protein encoded by an IgG3 constant region allele, including, but not limited to, human IGHG4*01 (see, e.g., the sequence listing herein), IGHG4*02 (see, e.g., the sequence listing herein), or IGHG4*03 (see, e.g., the sequence listing herein). In another example, the heavy chain is a disabled IgG isotype, e.g., a disabled IgG4. In a specific embodiment, the antibody of the present invention comprises a human gamma 4 constant region. In another embodiment, the heavy chain constant region does not bind to an Fc-γ receptor and comprises, for example, a Leu235Glu mutation. In another embodiment, the heavy chain constant region comprises a Ser228Pro mutation for increased stability. In another embodiment, the heavy chain constant region is IgG4-PE (see, e.g., the sequence listing herein). In another embodiment, the antibodies and antibody fragments disclosed herein comprise a heavy chain constant region encoded by a mouse IgG1 constant region allele, including, but not limited to, mouse IGHG1*01 or IGHG1*02. In one embodiment, the antibodies and antibody fragments disclosed herein comprise a heavy chain constant region encoded by a mouse IgG2 constant region allele, including but not limited to, mouse IGHG2A*01, IGHG2A*02, IGHG2B*01, IGHG2B*02, IGHG2C*01, IGHG2C*02, or IGHG2C*03. In one embodiment, the antibodies or antibody fragments disclosed herein comprise a protein encoded by a mouse IgG3 constant region allele, including but not limited to, mouse IGHG3*01.

[0073] The term "host", as used herein, refers to an animal, preferably a mammal, and most preferably a human.

[0074] As used herein, the term "host cell" refers to a particular subject cell transfected with a nucleic acid molecule, and to the progeny or potential progeny of such a cell. The progeny of such a cell may not be identical to the parent cell transfected with the nucleic acid molecule due to mutations or environmental influences that may occur in succeeding generations, or introduction of the nucleic acid molecule into the host cell genome.

[0075] The term "in combination" in the context of the administration of other therapies refers to the use of more than one therapies. The use of the term "in combination" does not restrict the order in which therapies are administered to a subject with a disease. The first treatment can be administered prior to (e.g., 1 minute, 45 minutes, 30 minutes, 45 minutes, 1 hour, 2 hours, 4 hours, 6 hours, 12 hours, 24 hours, 48 ​​hours, 72 hours, 96 hours, 1 week, 2 weeks, 3 weeks, 4 weeks, 5 weeks, 6 weeks, 8 weeks, or 12 weeks before), simultaneously with, or subsequent to (e.g., 1 minute, 45 minutes, 30 minutes, 45 minutes, 1 hour, 2 hours, 4 hours, 6 hours, 12 hours, 24 hours, 48 ​​hours, 72 hours, 96 hours, 1 week, 2 weeks, 3 weeks, 4 weeks, 5 weeks, 6 weeks, 8 weeks, or 12 weeks after) administration of the second treatment to a subject who had, has, or is susceptible to a CD7-mediated disease. Any additional treatments can be administered in any order with the other additional treatments. In certain embodiments, an antibody of the invention can be administered in combination with one or more therapies (e.g., a therapy other than an antibody of the invention that is currently being administered to prevent, treat, manage, and / or ameliorate a CD7-mediated disease). Non-limiting examples of therapies that can be administered in combination with an antibody of the invention include an analgesic, an anesthetic, an antibiotic, or an immunomodulatory agent, or any other agent listed in the United States Pharmacopeia and / or Physician's Guide.

[0076] As used herein, "infusion device" refers to a device designed to perform infusions, which includes temporarily fluidly connecting the infusion device to human tissue, typically subcutaneous tissue. Infusion further includes administering a quantity of liquid drug to the tissue and disconnecting or removing the infusion device from the tissue. In some embodiments, the infusion device may be an intravenous or IV device, which is a type of infusion device used when the target tissue is blood in the circulatory system, e.g., blood in a vein. A typical, but non-limiting, example of an infusion device is a needle and syringe.

[0077] As used herein, "instructions" refers to written, printed, or graphic material on the immediate container of an item, e.g., written material displayed on a vial containing a pharmaceutically active agent, or a label detailing the composition and use of a product of interest included in a kit containing the composition of interest. The instructions describe the method of treatment intended to be administered or performed.

[0078] An "isolated" or "purified" antibody or protein is one that has been identified, separated, and / or recovered from components of its production environment (e.g., natural or recombinant). For example, the antibody or protein is substantially free of cellular material, other contaminating proteins from the cell or tissue source from which the antibody is derived, or, if chemically synthesized, substantially free of chemical precursors or other chemicals. The phrase "substantially free of cellular material" includes preparations of antibodies in which the antibody is isolated from cells or separated from cellular components of the cells from which it is recombinantly produced. Thus, an antibody that is substantially free of cellular material includes preparations of antibodies having less than about 30%, 20%, 10%, or 5% (by dry weight) of heterologous proteins (also referred to herein as "contaminating proteins"). If the antibody is recombinantly produced, it is also preferably substantially free of culture medium, i.e., culture medium represents less than about 20%, 10%, or 5% of the volume of the protein preparation. When an antibody is produced by chemical synthesis, it is preferably substantially free of chemical precursors or other chemicals, i.e., separated from chemical precursors or other chemicals involved in protein synthesis. Thus, such preparations of antibodies have less than about 30%, 20%, 10%, or 5% (by dry weight) of chemical precursors or compounds other than the antibody of interest. In a preferred embodiment, the antibodies of the present invention are isolated or purified.

[0079] The term "Kabat numbering" and similar terms are recognized in the art and refer to a system for numbering amino acid residues that are more variable (i.e., hypervariable) than other amino acid residues in the heavy chain variable region of an antibody, or its antigen-binding portion. (Kabat et al., (1971) Ann. NY Acad. Sci., 190:382-391 and Kabat et al. (1991) Sequences of Proteins of Immunological Interest, 5th ed., USDapartment of Health and Human Services, NIH Publication No. 91-3242). For the heavy chain variable region, the hypervariable regions typically range from amino acid positions 31 to 35 for CDR1, from amino acid positions 50 to 65 for CDR2, and from amino acid positions 95 to 102 for CDR3.

[0080] As used herein, "label" or "labeled" refers to the addition of a detectable moiety, such as a radioactive label, a fluorescent label, an enzyme label, a chemiluminescent label, or a biotinyl group or gold, to a polypeptide. Radioisotopes or radionuclides include: 3 H, 14 C. 15 N, 35 S, 90 Y, 99 Tc, 115 In, 125 I, 131Fluorescent labels may include rhodamine, lanthanide phosphor, or FITC; enzyme labels may include horseradish peroxidase, β-galactosidase, luciferase, alkaline phosphatase. Additional labels may include, by way of example and without limitation, enzymes such as glucose-6-phosphate dehydrogenase ("G6PDH"), alpha-D-galactosidase, glucose oxidase, glucose amylase, carbonic anhydrase, acetylcholinesterase, lysozyme, malate dehydrogenase, and peroxidase; dyes (e.g., cyanine dyes, e.g., Cy5™, Cy5.5™, or Cy7™); additional fluorescent labels or fluorophores include fluorescein and its derivatives, fluorescent dyes, GFP ("green fluorescent protein"), other fluorescent proteins (e.g., mCherry, mTomato), dansyl, umbelliferone, phycoerythrin, phycocyanin, allophycocyanin, o-phthalaldehyde, and fluorescamine; fluorophores such as lanthanide cryptes and chelates such as europium (Perkin Elmer and Cisbio). Assays); chemiluminescent labels or agents, e.g., isoluminol, luminol, and dioxetanes; sensitizers; coenzymes; enzyme substrates; particles, such as latex or carbon particles; metal sols; microcrystals; liposomes; cells, etc., which may include dyes, catalysts, or other detectable groups; molecules such as biotin, digoxigenin, 5-bromodeoxyuridine, etc.; toxin moieties, e.g., Pseudomonas exotoxin (PE or a cytotoxic fragment or variant thereof), diphtheria toxin or a cytotoxic fragment or variant thereof, botulinum toxin A, B, C, D, E, or F, ricin or a cytotoxic fragment thereof, e.g., ricin A, abrin or a cytotoxic fragment thereof, saporin or can be further labeled with its cytotoxic fragment, pokeweed antiviral toxin or a cytotoxic fragment thereof, and bryodin 1 or a cytotoxic fragment thereof.

[0081] The term "light chain" when used with respect to an antibody refers to an immunoglobulin light chain, of which there are two types in mammals: lambda (λ) and kappa (κ). Preferably, the light chain is a human light chain. Preferably, the light chain constant region is a human constant region. Multiple light chain constant region alleles exist in the human population. The nucleotide and amino acid sequences of these allelic variants are accessible in publicly available databases such as IMGT, ENSEMBL, Swiss-Prot, and Uniprot. In one embodiment, the antibody or antibody fragment disclosed herein comprises a protein encoded by a human κ constant region allele, including, but not limited to, IGKC*01 (see, e.g., the Sequence Listing herein), IGKC*02 (see, e.g., the Sequence Listing herein), IGKC*03 (see, e.g., the Sequence Listing herein), IGKC*04 (see, e.g., the Sequence Listing herein), and IGKC*05 (see, e.g., the Sequence Listing herein). In one embodiment, the antibody or antibody fragment disclosed herein is selected from the group consisting of IGLC1*01 (see, e.g., the sequence listing herein), IGLC1*02 (see, e.g., the sequence listing herein), IGLC2*01 (see, e.g., the sequence listing herein), IGLC2*02 (see, e.g., the sequence listing herein), IGLC2*03 (see, e.g., the sequence listing herein), IGLC3*01 (see, e.g., the sequence listing herein), IGLC3*02 (see, e.g., the sequence listing herein), In another embodiment, the antibodies and antibody fragments disclosed herein comprise proteins encoded by human lambda constant region alleles, including but not limited to, IGLC3*01, IGLC3*03 (see, e.g., the sequence listing herein), IGLC3*04 (see, e.g., the sequence listing herein), IGLC6*01 (see, e.g., the sequence listing herein), IGLC7*01 (see, e.g., the sequence listing herein), IGLC7*02 (see, e.g., the sequence listing herein), IGLC7*03 (see, e.g., the sequence listing herein). In another embodiment, the antibodies and antibody fragments disclosed herein comprise proteins encoded by mouse kappa constant region alleles, including but not limited to, IGKC*01, IGKC*03, or IGKC*03. In another embodiment, the antibodies and antibody fragments disclosed herein comprise a light chain constant region encoded by a mouse lambda constant region allele, including but not limited to IGLC1*01, IGLC2*01, or IGLC3*01.

[0082] "Percent (%) amino acid sequence identity" and "homology" with respect to peptide, polypeptide, or antibody sequences are defined as the percentage of amino acid residues in a candidate sequence that are identical to the amino acid residues in a particular peptide or polypeptide sequence, after aligning the sequences and introducing gaps, if necessary, without considering conservative substitutions as part of the sequence identity, to achieve the maximum percent sequence identity. Alignment for purposes of determining percent amino acid sequence identity can be accomplished in a variety of ways within the skill of the art, for example, using publicly available computer software such as BLAST, BLAST-2, ALIGN, or MEG ALIGN™ (DNASTAR) software. In one embodiment, the % homology is about 70%. In one embodiment, the % homology is about 75%. In one embodiment, the % homology is about 80%. In one embodiment, the % homology is about 85%. In one embodiment, the % homology is about 90%. In one embodiment, the % homology is about 92%. In one embodiment, the % homology is about 95%. In one embodiment, the % homology is about 97%. In one embodiment, the % homology is about 98%. In one embodiment, the % homology is about 99%. In one embodiment, the % homology is 100%.

[0083] The terms "naturally occurring" or "native" when used in reference to biological material, such as a nucleic acid molecule, polypeptide, or host cell, refer to something that is found in nature and has not been manipulated by man.

[0084] As used herein, "packaging" refers to organizing and / or confining components into a unit suitable for distribution and / or use. Packaging can include, for example, boxes, bags, syringes, ampoules, vials, tubes, clamshell packaging, barriers, and / or containers for maintaining sterility, labeling, etc.

[0085] As used herein, the term "pharmaceutically acceptable" means approved by a regulatory agency of a federal or state government or listed in the United States Pharmacopoeia, the European Pharmacopoeia, or other generally recognized pharmacopoeias for use in animals, and more particularly, in humans.

[0086] As used herein, the terms "polynucleotide," "nucleotide," "nucleic acid," "nucleic acid molecule," and other similar terms are used interchangeably and include DNA, RNA, mRNA, and the like.

[0087] As used herein, the terms "prevent," "preventing," and "prevention" refer to the complete or partial inhibition of the onset, recurrence, development, or spread of an hCD7-mediated disease and / or symptoms associated therewith resulting from the administration of a treatment or combination of treatments provided herein (e.g., a combination of prophylactic or therapeutic agents, such as an antibody of the invention).

[0088] The term "soluble" refers to polypeptides such as CD7 and variants or fragments thereof that lack one or more transmembrane or cytoplasmic domains found in their native or membrane-bound forms. In one embodiment, a "soluble" form of CD7 lacks both the transmembrane and cytoplasmic domains.

[0089] The term "subject" or "patient" refers to any animal, including, but not limited to, mammals. As used herein, the term "mammal" refers to a vertebrate that can nurse and give birth to live young (eutherian or placental mammals) or lay eggs (metatherian or non-placental mammals). Examples of mammalian species include, but are not limited to, humans and other primates, including non-human primates such as chimpanzees and other ape and monkey species; livestock such as cows, sheep, pigs, goats, and horses; domestic mammals such as dogs and cats; laboratory animals including rodents such as mice, rats (including cotton rats), and guinea pigs; and birds, including turkeys and other galliformes, poultry such as ducks and geese, and wild and game birds.

[0090] As used herein, "substantially all" refers to at least about 60%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, at least about 99%, or about 100%.

[0091] As used herein, the term "therapeutic agent" refers to any agent that can be used in the treatment, management, or amelioration of a CD7-mediated disease and / or symptoms associated therewith. In certain embodiments, the term "therapeutic agent" refers to an antibody of the present invention. In certain other embodiments, the term "therapeutic agent" refers to an agent other than an antibody of the present invention. Preferably, a therapeutic agent is an agent that is known to be, has been used, or is currently being used to be useful in the treatment, management, or amelioration of a CD7-mediated disease or one or more symptoms associated therewith. In certain embodiments, a therapeutic agent is a fully human anti-CD7 antibody, such as a fully human anti-CD7 monoclonal antibody.

[0092] As used herein, the term "therapy" refers to any protocol, method, and / or agent that can be used in the prevention, management, treatment, and / or amelioration of a CD7-mediated disease (e.g., cancer). "Therapies" and "therapy" refer to biological therapy, supportive therapy, and / or other therapies useful in the prevention, management, treatment, and / or amelioration of a CD7-mediated disease known to those of skill in the art, such as medical practitioners.

[0093] The terms "treat," "treatment," and "treating" refer to the reduction or amelioration of the progression, severity, and / or duration of an hCD7-mediated disease (e.g., cancer) resulting from one or more therapies (including, but not limited to, the administration of one or more prophylactic or therapeutic agents, such as an antibody of the invention).

[0094] The terms "variable region" or "variable domain" refer to portions of the light and heavy chains, typically approximately 120-130 amino acids at the amino terminus of the heavy chain and approximately 100-110 amino acids in the light chain, which vary significantly in sequence among antibodies and are responsible for the binding and specificity of each particular antibody to a particular antigen. Sequence variation is concentrated in regions called complementarity-determining regions (CDRs), while more highly conserved regions within the variable domain are called framework regions (FRs). The CDRs of CD7 and the heavy chain are primarily responsible for antibody-antigen interactions. The numbering of amino acid positions used herein conforms to the EU index as per Kabat et al. (1991) Sequences of proteins of immunological interest. (USDepartment of Health and Human Services, Washington, DC), 5th ed. ("Kabat et al."). In a preferred embodiment, the variable regions are human variable regions.

[0095] Definitions of common terms in cell biology and molecular biology can be found in "The Merck Manual of Diagnosis and Therapy", 19th Edition, Merck Research Laboratories, 2006 (ISBN 0-911910-19-0); Robert S. Porter et al. (eds.), The Encyclopedia of Molecular Biology, Blackwell Science Ltd., 1994 (ISBN 0-632-02182-9); Benjamin Lewin, Genes X, Jones & Bartlett Publishing, 2009 (ISBN-10:0763766321); Kendrew et al. (eds.), Molecular Biology and Biotechnology: a Comprehensive Desk Reference, VCH Publishers, Inc., 1995 (ISBN 1-56081-569-8) and Current Protocols in Protein Sciences 2009, Wiley Intersciences, Coligan et al., eds.

[0096] Unless otherwise indicated, the present invention is not limited to the methods described herein, for example, in Sambrook et al., Molecular Cloning: A Laboratory Manual (4 ed.), Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, USA (2012); Davis et al., Basic Methods in Molecular Biology, Elsevier Science Publishing, Inc., New York, USA (1995); or Methods in Enzymology: Guide to Molecular Cloning Techniques Vol. 152, S.L. Berger and A.R. Kimmel Eds., Academic Press Inc., San Diego, USA (1987); Current Protocols in Protein Science (CPPS) (John E. Coligan, et al., ed., John Wiley and Sons, Inc.), Current Protocols in Cell Biology (CPCB) (Juan S. Bonifacino et al. ed., John Wiley and Sons, Inc.), and Culture of Animal Cells: A Manual of Basic Technique by R. Ian Freshney, Publisher: Wiley-Liss; 5th edition (2005), Animal Cell Culture Methods (Methods in Cell Biology, Vol. 57, Jennie P. Mather and David Barnes editors, Academic Press, 1st edition, 1998) were used.

[0097] Other terms are defined herein within the description of various aspects of the invention.

[0098] Target Rationale CD7 is a 40-kDa transmembrane glycoprotein of the Ig superfamily (1). It is expressed early during T-cell ontogeny on peripheral blood T cells, NK cells, thymocytes, and bone marrow CD34 + CD38 - CD7 is expressed on the surface of late memory T cells and effector CD8. + It is expressed on most T cells except for T cells. CD7 expression has been reported during early T cell development. However, it is not expressed on hematopoietic stem cells (HSCs) (2, 3), suggesting that HSCs are not affected by anti-CD7 antibodies. Although most peripheral T cells are typically CD7 positive, circulating CD4 + A small subset of memory cells (CD4 + CD45RA - CD45R0 + ) has been reported to lack CD7 ( 4 ).

[0099] The natural ligand for CD7 has not yet been identified. CD7 has been shown to act as a costimulatory molecule, and anti-CD7 monoclonal antibodies (mAbs) have been reported to be mitogenic, increase calcium flux, and enhance IL-2 production (5). CD7 binds to phosphatidylinositol 3-kinase (PI3-kinase) via a cytoplasmic tyrosine-based YEDM motif and to type II PI4-kinase (6). However, the precise signaling mechanism remains unclear. Although no major phenotypic abnormalities have been identified in CD7-deficient mice, some laboratories have reported relatively minor immune system defects, such as reduced antigen-specific T cell triggering, defective generation of antigen-specific cytotoxic T cells, and protection from lipopolysaccharide-induced shock syndrome (7, 8).

[0100] As shown in CEM cells, a human T-ALL cell line, CD7 can be rapidly internalized after antibody binding; more than 50% of cell surface CD7 was internalized within 30 minutes of antibody binding (9). Studies using the mouse-human chimeric antibody RFT2 have reported that the half-life of the antibody in humans is approximately 12 hours (10). The intracellular pathway of internalized CD7 after internalization is not well described, as it can be recycled into the plasma membrane or directly sent to lysosomes for degradation. This rapid internalization may affect the pharmacokinetic and pharmacodynamic profiles of monoclonal antibodies in patients after treatment.

[0101] CD7 in T-ALL and AML CD7 is highly expressed on malignant immature T cells, and CD4 + Sézary leukemia and HTLV-1 + It is generally absent from malignant mature T cells, such as adult T-cell leukemia cells (11). In diagnostic bone marrow samples obtained from patients with T-ALL, the median percentage of CD7 expression was greater than 99% (12). High CD7 expression levels have also been observed in samples collected from patients with relapsed T-ALL. CD7 expression levels on leukemic cells at diagnosis or relapse consistently exceed those measured on residual normal T cells in the same samples, and standard of care (SoC) chemotherapy does not affect CD7 expression on leukemic cells. In bone marrow samples collected during chemotherapy, including minimal residual disease (MRD), greater than 99% of residual leukemic cells express CD7. + Because CD7 expression levels remain high during treatment (12), CD7 is an excellent flow cytometry biomarker for the diagnosis of T-ALL (Table 5).

[0102] In addition to T-ALL, CD7 is expressed on leukemic cells in 15% of acute myeloid leukemia (AML) cases (13). CD7 expression in this subset of AML cases correlates with loss of wild-type CCAAT / enhancer-binding protein alpha (CEBPA) gene due to mutation or silencing by epigenetic mechanisms (14). Screening for this mutation or epigenetic expression in AML has potential clinical significance and could stratify subsets of AML for CD7-targeted therapy.

[0103] In summary, cell depletion strategies using anti-CD7 monoclonal antibodies are effective in treating adult T-ALL and CD7 + AML status, as well as other CD7 + It holds promise for addressing unmet medical needs in cancer.

[0104] Normal T cell development is a tightly regulated process in which T precursor cells migrate from the bone marrow to the thymus and differentiate into mature, functional T cells. During this differentiation process, dysregulation of oncogenes and tumor suppressor genes directs immature thymocytes toward uncontrolled clonal proliferation, resulting in T-ALL (22). T-ALL accounts for approximately 20% of all ALL cases and is more common in adults than children, although the incidence decreases with age. Patients typically present with high white blood cell counts and may present with organomegaly, particularly mediastinal enlargement. Despite improved knowledge of T-ALL disease biology, the standard of care (SoC) has remained largely unchanged over the past decade and still consists of intensive multiagent chemotherapy followed by autologous hematopoietic stem cell transplantation. Under this SoC, 20% of children and 40% of adults relapse after treatment (23, 24). Long-term survival in the relapsed and refractory setting is extremely low, with less than 5% of patients achieving a subsequent secondary response. Many patients with refractory or relapsed B-cell lymphoblastic leukemia have achieved complete remission with prolonged survival after receiving new generation targeted therapies. (25) However, due to the relatively small patient population size, there is no new drug development activity for the treatment of T-ALL.

[0105] T-ALL malignancies represent a group of hematologic cancers with high relapse and mortality rates in patients for which no effective targeted therapy exists. There remains a high unmet medical need to improve clinical outcomes for patients with relapsed and refractory T-ALL.

[0106] Thus, in one aspect, the present invention is useful for treating T-ALL, such as refractory T-ALL.

[0107] Accordingly, the present invention provides a variety of anti-CD7 antibodies and fragments (such as Fab or scFv fragments), uses, and methods, examples of which are provided in the numbered items below.

[0108] 1. An antibody or fragment comprising a binding site that specifically binds to CD7 (cluster of differentiation 7), wherein the binding site comprises a VH domain encoded by a nucleotide sequence derived from the recombination of a human VH gene segment, a D gene segment, and a JH gene segment, wherein the VH gene segment is selected from IGHV3-15 and IGHV3-23.

[0109] For example, the VH gene segment is IGHV3-15*01 or IGHV3-23*04. For example, the DH gene segment and the JH gene segment are human gene segments.

[0110] In one example, specific binding is defined as KD, K off , and / or K on In one example, specific binding is a KD of 1 pM to 5 nM.

[0111] Those skilled in the art are familiar with databases and other sources of information about antibody gene segments from humans and other species. For example, the IMGT database (www.IMGT.org), e.g., the version current as of September 1, 2018, is a suitable source.

[0112] See the examples showing antibodies based on IGHV3-15 or IGHV3-23. Surprisingly, these human VH gene segments produce anti-CD7 antibodies with desirable anti-CD7 properties, as described in the examples.

[0113] 2. The antibody or fragment according to item 1, wherein the DH gene segment is a human gene segment selected from IGHD3-9, IGHD3-10 and IGH6-19.

[0114] In one example, the DH gene segment is a human gene segment selected from IGHD3-9*01, IGHD3-10*01, and IGH6-19*01.

[0115] 3. The antibody or fragment according to item 1 or 2, wherein the JH gene segment is a human gene segment selected from IGHJ6, IGHJ4 and IGHJ5.

[0116] In one example, the JH gene segment is a human gene segment selected from IGHJ6*02, IGHJ4*02, and IGHJ5*02.

[0117] 4. The antibody or fragment of any one of the preceding items, wherein the binding site comprises a CDRH3 sequence selected from SEQ ID NOs: 3, 6, 23, 26, 43, 46, 63, and 66.

[0118] 5. The antibody or fragment of any one of the preceding items, wherein the binding site comprises (i) a VH domain comprising SEQ ID NO:7 paired with a VL domain comprising SEQ ID NO:17, (ii) a VH domain comprising SEQ ID NO:27 paired with a VL domain comprising SEQ ID NO:37, (iii) a VH domain comprising SEQ ID NO:47 paired with a VL domain comprising SEQ ID NO:57, or (iv) a VH domain comprising SEQ ID NO:67 paired with a VL domain comprising SEQ ID NO:77.

[0119] 6. The antibody or fragment of any one of the preceding items, wherein the binding site comprises a VH domain comprising SEQ ID NO:7.

[0120] 7. The antibody or fragment of any one of the preceding items, wherein the binding site comprises a VH domain comprising SEQ ID NO: 7 paired with a VL domain comprising SEQ ID NO: 17.

[0121] 8. An antibody or fragment which specifically binds to CD7 and which comprises the CDRH3 sequence of an anti-CD7 antibody according to any one of the preceding paragraphs, or said CDRH3 sequence comprising 3, 2, or 1 amino acid substitutions.

[0122] 9. An antibody or fragment (optionally according to any one of the preceding items) that specifically binds to CD7, and comprises a VH domain comprising the CDRH3 sequence of an antibody selected from G09, F05, C02, and E04, or such sequence comprising three, two, or one amino acid substitution.

[0123] 10. The antibody or fragment of item 9, wherein the VH domain comprises (i) the CDRH3 sequence of an antibody selected from G09, F05, C02, and E04, or said CDRH3 sequence comprising three, two, or one amino acid substitutions, and (ii) the CDRH1 sequence of said selected antibody, or said CDRH1 sequence comprising three, two, or one amino acid substitutions.

[0124] 11. The antibody or fragment of item 9 or 10, wherein the VH domain comprises (iii) the CDRH3 sequence of an antibody selected from G09, F05, C02, and E04, or said CDRH3 sequence comprising three, two, or one amino acid substitutions, and (iv) the CDRH2 sequence of said selected antibody, or said CDRH2 sequence comprising three, two, or one amino acid substitutions.

[0125] 12. An antibody or fragment (optionally according to any one of the preceding paragraphs) comprising a binding site that specifically binds to CD7, wherein the binding site comprises a VH domain comprising the amino acid sequence of the VH domain of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70% identical thereto.

[0126] For example, the identity is at least 85%. For example, the identity is at least 90%. For example, the identity is at least 95%.

[0127] 13. The antibody or fragment according to items 9, 10, 11, or 12, wherein the selected antibody is G09.

[0128] 14. The antibody or fragment of any one of the preceding items, comprising a first and a second copy of said VH domain.

[0129] In one example, the antibody or fragment comprises a binding site comprising a VH domain of the invention paired with a VL domain of the invention, wherein the binding site is capable of specifically binding to CD7 (e.g., mature CD7, e.g., human and / or cynomolgus CD7). For example, the antibody or fragment comprises two of such binding sites.

[0130] 15. An antibody or fragment (optionally according to any one of the preceding items) comprising a binding site that specifically binds to CD7, wherein the binding site comprises a VL domain encoded by a nucleotide sequence derived from the recombination of human VL and JL gene segments, wherein the VL gene segment is selected from IGKV1D-39, IGKV1-39, IGKV3-11, IGKV1-16, and IGKV1-5.

[0131] In one example, the VL gene segment is selected from IGKV1D-39*01, IGKV1-39*01, IGKV3-11*01, IGKV1-16*02 and IGKV1-5*03; or IGKV1D-39*01, IGKV3-11*01, IGKV1-16*02 and IGKV1-5*03.

[0132] 16. The antibody or fragment according to item 15, wherein the VL is a Vκ and the JL gene segment is a human gene segment selected from IGKJ1 and IGKJ4.

[0133] In one example, the VL is a Vκ and the JL gene segment is a human gene segment selected from IGKJ1*01 and IGKJ4*01.

[0134] 17. An antibody or fragment which specifically binds to CD7 and which comprises the CDRL3 sequence of an anti-CD7 antibody according to any one of the preceding paragraphs, or said CDRL3 sequence comprising 3, 2 or 1 amino acid substitutions.

[0135] 18. An antibody or fragment (optionally according to any one of the preceding items) which specifically binds to CD7 and comprises a VL domain comprising a CDRL3 sequence selected from SEQ ID NOs: 13, 16, 33, 36, 53, 56, 73 and 76, or said selected CDRL3 sequence comprising 3, 2 or 1 amino acid substitutions.

[0136] 19. An antibody or fragment (optionally according to any one of the preceding items) that specifically binds to Cluster of Differentiation 7 (CD7) and comprises a VL domain comprising the CDRL3 (and optionally CDRH3) sequence of an antibody selected from G09, F05, C02, and E04, or such a sequence containing 3, 2, or 1 amino acid substitution, respectively.

[0137] 20. The antibody or fragment of item 19, wherein the VL domain comprises (i) the CDRL3 sequence (and optionally the CDRH3) of an antibody selected from G09, F05, C02, and E04, or said CDR3 sequence comprising 3, 2, or 1 amino acid substitutions, respectively, and (ii) the CDRL1 (and optionally the CDRH1) sequence of said selected antibody, or said CDR1 sequence comprising 3, 2, or 1 amino acid substitutions, respectively.

[0138] Preferably, the antibody selected herein is G09 or comprises the variable domain of G09.

[0139] 21. The antibody or fragment of item 19 or 20, wherein the VL domain comprises (iii) the CDRL3 (and optionally CDRH3) sequence of an antibody selected from G09, F05, C02, and E04, or said CDR3 sequence comprising 3, 2, or 1 amino acid substitutions, respectively, and (iv) the CDRL2 (and optionally CDRH2) sequence of said selected antibody, or said CDR2 sequence comprising 3, 2, or 1 amino acid substitutions, respectively.

[0140] 22. An antibody or fragment (optionally according to any one of the preceding items) comprising a binding site that specifically binds to CD7, wherein the binding site comprises a VL domain comprising the amino acid sequence of the VL domain of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70% identical thereto.

[0141] Optionally, an antibody or fragment (optionally according to any one of the preceding paragraphs) is provided that comprises a binding site that specifically binds to Cluster of Differentiation 7 (CD7), wherein the binding site comprises a VL domain comprising the amino acid sequence of the VL domain of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70, 80, 85, 90, 95, 96, 97, 98, or 99% identical thereto.

[0142] For example, the identity is at least 85%. For example, the identity is at least 90%. For example, the identity is at least 95%.

[0143] Optionally, the antibody or fragment comprises a first and a second copy of said VL domain.

[0144] In one example, the antibody or fragment comprises a binding site comprising a VL domain of the invention paired with a VH domain, wherein the binding site is capable of specifically binding to CD7 (e.g., mature CD7, e.g., human and / or cynomolgus CD7). For example, the antibody or fragment comprises two of such binding sites.

[0145] 23. An antibody or fragment (optionally described in any one of the preceding items) that specifically binds to Cluster of Differentiation 7 (CD7) and comprises the heavy chain amino acid sequence of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70, 80, 85, 90, 95, 96, 97, 98, or 99% identical thereto.

[0146] For example, the identity is at least 85%. For example, the identity is at least 90%. For example, the identity is at least 95%.

[0147] 24. An antibody or fragment (optionally described in any one of the preceding items) that specifically binds to Cluster of Differentiation 7 (CD7) and comprises the light chain amino acid sequence of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70, 80, 85, 90, 95, 96, 97, 98, or 99% identical thereto.

[0148] For example, the identity is at least 85%. For example, the identity is at least 90%. For example, the identity is at least 95%.

[0149] 25. The antibody or fragment according to item 23, comprising the light chain amino acid sequence of the selected antibody, or amino acids at least 70, 80, 85, 90, 95, 96, 97, 98, or 99% identical thereto. For example, the identity is at least 85%. For example, the identity is at least 90%. For example, the identity is at least 95%.

[0150] 26. An antibody or fragment (optionally according to any one of the preceding paragraphs) that specifically binds to a human CD7 epitope that is identical to the epitope bound by an antibody according to any of the preceding paragraphs.

[0151] 27. The antibody or fragment according to item 26, wherein the epitope is identified by independent amino acid scanning or by X-ray crystallography.

[0152] Contact amino acid residues involved in the interaction of antibody and antigen can be determined by various methods known to those skilled in the art.

[0153] In one embodiment, serial substitution of amino acids in the antigen sequence (using standard molecular biology techniques to mutate the DNA of the coding sequence for the antigen, in this case, mutating CD7 with alanine (also known as alanine scanning) or serial substitution of another unrelated amino acid may provide residues with mutations that reduce or eliminate the ability of the antibody to recognize the antigen in question. Binding can be assessed using standard techniques such as SPR, HTRF, or ELISA (described elsewhere herein). Other substitutions to enhance disruption of binding may be made, such as altering the charge of the side chains of antigen sequence amino acids (e.g., changing lysine to glutamic acid), switching between polar and non-polar residues (e.g., changing serine to leucine), etc. Alanine scanning or other amino acid substitution methods can be performed directly on cells using recombinant soluble antigen, or, if the target is a cell membrane target, using transient or stable expression of the mutated version.

[0154] In one embodiment, protein crystallography can be used to determine contact residues between an antibody and an antigen (i.e., to determine the epitope to which the antibody binds). Crystallography allows direct visualization of contact residues involved in antibody-antigen interactions. Similar to standard X-ray crystallography, cryoelectron microscopy has been used to determine contact residues between antibodies and HIV capsid proteins (see Lee, Jeong Hyun, et al., "Antibodies to a conformational epitope on gp41 neutralize HIV-1 by destabilizing the Env spike," Nature Communications, 6, (2015)).

[0155] In one embodiment, if the antibody recognizes a linear epitope, short peptides based on the antigen sequence can be generated, and antibody binding to these peptides can be assessed using standard techniques, including, but not limited to, SPR, HTRF, and ELISA (described elsewhere herein). Further investigation of the epitope can be provided by performing an alanine scan on any peptides that show binding. Instead of linear peptides, conformational scanning can be performed using Pepscan technology (http: / / www.pepscan.com / ), which uses chemical conjugation of peptides to scaffolds that have been used to determine discontinuous epitopes on CD20-targeting antibodies (Niederfellner, Gerhard, et al., "Epitope characterization and crystal structure of GA101 provide insights into the molecular basis for type I / II distinction of CD20 antibodies," Blood, 118.2, (2011), 358-367).

[0156] In one embodiment, limited proteolytic digestion and mass spectrometry can be used to identify the binding epitope. The antibody-antigen complex is digested with a protease, such as, but not limited to, trypsin. The digested complex peptides are compared with mass spectrometry analysis of the digestion of the antibody alone and the antigen alone to determine whether a specific epitope is protected by the complex. Further studies, including amino acid substitution and competitive binding, can then be used to narrow down the individual amino acid residues involved in the interaction (see, for example, Suckau, Detlev, et al., "Molecular epitope identification by limited proteolysis of an immobilized antigen-antibody complex and mass spectrometric peptide mapping," Proceedings of the National Academy of Sciences, 87.24, (1990), 9848-9852).

[0157] Thus, in one embodiment, contact residues of the epitope are identified by an unrelated amino acid scan (e.g., an alanine scan). In another embodiment, the unrelated amino acid scan (e.g., an alanine scan) is performed using a technique selected from SPR, HTRF, ELISA, X-ray crystallography, cryo-electron microscopy, and limited proteolytic digestion in combination with mass spectrometry. In one embodiment, the unrelated amino acid scan (e.g., an alanine scan) is performed using HTRF. In one embodiment, the unrelated amino acid scan (e.g., an alanine scan) is performed using ELISA.

[0158] An amino acid residue is identified as contributing to the epitope if there is at least a 25% reduction in signal when an alanine scan is performed using either ELISA or HTRF. In one embodiment, the signal reduction is at least 30%. In one embodiment, the signal reduction is at least 35%. In one embodiment, the signal reduction is at least 40%. In one embodiment, the signal reduction is at least 45%. In one embodiment, the signal reduction is at least 50%. In one embodiment, the signal reduction is at least 55%. In one embodiment, the signal reduction is at least 60%. In one embodiment, the signal reduction is at least 70%. In one embodiment, the signal reduction is at least 75%. In one embodiment, the signal reduction is at least 80%. In one embodiment, the signal reduction is at least 85%. In one embodiment, the signal reduction is at least 90%.

[0159] An amino acid residue is identified as contributing to the epitope if there is at least a 10-fold reduction in affinity when an alanine scan is performed using SPR. In one embodiment, the affinity reduction is at least 15-fold. In one embodiment, the affinity reduction is at least 20-fold. In one embodiment, the affinity reduction is at least 30-fold. In one embodiment, the affinity reduction is at least 40-fold. In one embodiment, the affinity reduction is at least 50-fold. In one embodiment, the affinity reduction is at least 100-fold.

[0160] In one embodiment, contact residues of the epitope are identified by X-ray crystallography. In one embodiment, contact residues of the epitope are identified by cryo-electron microscopy. In one embodiment, contact residues of the epitope are identified by limited proteolytic digestion in combination with mass spectrometry.

[0161] 28. The antibody or fragment according to item 27, wherein the contact residues of the epitope are defined by at least a 10-fold reduction in affinity in an unrelated amino acid scan, e.g., an alanine scan, as determined by SPR.

[0162] In one embodiment, the affinity reduction is at least 15-fold. In one embodiment, the affinity reduction is at least 20-fold. In one embodiment, the affinity reduction is at least 30-fold. In one embodiment, the affinity reduction is at least 40-fold. In one embodiment, the affinity reduction is at least 50-fold. In one embodiment, the affinity reduction is at least 100-fold.

[0163] SPR can be performed as described herein.

[0164] 29. An antibody or fragment (optionally described in any one of the preceding paragraphs) that competes with an antibody of any one of the preceding paragraphs for binding to human CD7.

[0165] Optionally, the competition is determined by surface plasmon resonance (SPR) or ELISA. Those skilled in the art are familiar with, for example, these techniques and standard conditions.

[0166] In one embodiment, the antibody or fragment competes (e.g., dose-dependently) with hCD7 (or a fusion protein thereof) for binding to cell surface-expressed hCD7. In one embodiment, the antibody or fragment competes (e.g., dose-dependently) with hCD7 (or a fusion protein thereof) for binding to soluble hCD7.

[0167] Optionally, the competition for binding to hCD7 is carried out using SPR, which can be carried out as described herein.

[0168] 30. The antibody or fragment of any one of the preceding items, which specifically binds to human CD7 comprising SEQ ID NO: 82, and / or cynomolgus monkey CD7 comprising SEQ ID NO: 85, and / or rat CD7 comprising SEQ ID NO: 86.

[0169] In one example, the CD7 herein is human, mouse, or cynomolgus monkey CD7.

[0170] In one embodiment, the antibody or fragment binds to cynomolgus monkey CD7 with an affinity of less than 1 nM (e.g., 1 nM to 0.01 pM, or 1 nM to 0.1 pM, or 1 nM to 1 pM). In one embodiment, the antibody or fragment binds to cynomolgus monkey CD7 with an affinity of less than 10 nM (e.g., 10 nM to 0.01 pM, or 10 nM to 0.1 pM, or 10 nM to 1 pM). In one embodiment, the antibody or fragment binds to cynomolgus monkey CD7 with an affinity of less than 0.1 nM (e.g., 0.1 nM to 0.01 pM, or 0.1 nM to 0.1 pM, or 0.1 nM to 1 pM). In one embodiment, the antibody or fragment binds to cynomolgus monkey CD7 with an affinity of less than 0.01 nM (e.g., 0.011 nM to 0.01 pM, or 0.01 nM to 0.1 pM).

[0171] In one embodiment, the antibody or fragment binds to cynomolgus CD7 with an affinity within 2-fold of its affinity to hCD7. In one embodiment, the antibody or fragment binds to cynomolgus CD7 with an affinity within 4-fold of its affinity to hCD7. In one embodiment, the antibody or fragment binds to cynomolgus CD7 with an affinity within 5-fold of its affinity to hCD7. In one embodiment, the antibody or fragment binds to cynomolgus CD7 with an affinity within 6-fold of its affinity to hCD7. In one embodiment, the antibody or fragment binds to cynomolgus CD7 with an affinity within 8-fold of its affinity to hCD7. In one embodiment, the antibody or fragment binds to cynomolgus CD7 with an affinity within 10-fold of its affinity to hCD7. As used herein, "hCD7" refers to human CD7, eg, the human CD7 disclosed herein.

[0172] In one embodiment, the antibody or fragment does not detectably bind to cynomolgus monkey CD7. In one embodiment, the antibody or fragment does not detectably bind to mouse (e.g., mouse and / or rat) CD7.

[0173] In one embodiment, the antibody or fragment binds to mouse (e.g., mouse and / or rat) CD7 with an affinity of less than 1 nM (e.g., 1 nM to 0.01 pM, or 1 nM to 0.1 pM, or 1 nM to 1 pM). In one embodiment, the antibody or fragment binds to mouse CD7 with an affinity of less than 10 nM (e.g., 10 nM to 0.01 pM, or 10 nM to 0.1 pM, or 10 nM to 1 pM). In one embodiment, the antibody or fragment binds to mouse CD7 with an affinity of less than 0.1 nM (e.g., 0.1 nM to 0.01 pM, or 0.1 nM to 0.1 pM, or 0.1 nM to 1 pM). In one embodiment, the antibody or fragment binds to mouse CD7 with an affinity of less than 0.01 nM (e.g., 0.011 nM to 0.01 pM, or 0.01 nM to 0.1 pM).

[0174] Optionally, the antibody or fragment comprises an effector function-effective constant region, such as a human constant region, e.g., an IgG1 constant region. Optionally, the antibody or fragment comprises a murine (e.g., mouse and / or rat) constant region. Optionally, the antibody or fragment comprises any of the heavy chain constant region sequences described herein.

[0175] 31. The antibody or fragment of any one of the preceding items, wherein the antibody or fragment comprises a human constant region, e.g., an IgG1 constant region.

[0176] Optionally, the constant region is an IgG1 constant region, optionally comprising any IgG1 constant region amino acid sequence disclosed herein. Optionally, the constant region is an IgG2 constant region, optionally comprising any IgG1 constant region amino acid sequence disclosed herein. Optionally, the constant region is an IgG1 constant region, optionally comprising any IgG3 constant region amino acid sequence disclosed herein. Optionally, the constant region is an IgG1 constant region, optionally comprising any IgG4 constant region amino acid sequence disclosed herein.

[0177] In one example (optionally in addition to a heavy chain region in accordance with the immediately above paragraph), the constant region comprises a light chain constant region, which comprises any light chain constant region amino acid sequence disclosed herein.

[0178] 32. The antibody or fragment of item 31, wherein the constant region is an IgG1 constant region, and optionally the constant region comprises the amino acid sequence of SEQ ID NO: 88, 90, 92, 94, or 96 (e.g., SEQ ID NO: 88).

[0179] In other embodiments, the antibody or fragment is any of the isotypes or constant regions defined herein. In one embodiment, the constant region is wild-type human IgG1. For example, the constant region is an effector function-effective IgG1 constant region, optionally with ADCC and / or CDC activity. In one embodiment, the constant region is engineered for enhanced ADCC and / or CDC and / or ADCP. In another embodiment, the constant region is engineered for enhanced effector function.

[0180] The potency of Fc-mediated effects can be enhanced by engineering the Fc domain by any technique apparent to one of skill in the art. In another embodiment, the antibodies and fragments disclosed herein can contain a triple mutation (M252Y / S254T / T256E) that enhances binding to FcRn.

[0181] 33. The antibody or fragment (e.g., a bispecific antibody) of any one of the preceding items, further comprising an antigen-binding site that specifically binds to another target antigen (optionally, for example, human CD5, CD14, or CD19 for treating leukemia such as AML).

[0182] For example, another target antigen is human CD5.

[0183] In one example, the further binding site is an agonist binding site of said further antigen. In one example, the further binding site is an antagonist binding site of said further antigen.

[0184] In one example, the additional binding site is an antibody binding site comprising a VH and a VL, a binding site contained in the constant domain of an antibody (e.g., an Fcab binding site), or a non-immunoglobulin binding site (e.g., a fibronectin domain). Optionally, the antigen binding site is any antigen binding site disclosed herein.

[0185] For example, the antibody or fragment is a bispecific antibody or fragment. For example, the antibody or fragment is a bispecific antibody or fragment, or a fusion protein comprising an antibody or fragment thereof according to any one of the preceding paragraphs. A bispecific antibody has the meaning given above.

[0186] In one example, the antibody or fragment is a DVD-Ig, a mAb 2 , FIT-Ig, mAb-dAb, Dock and Lock, SEEDbody, sc diabody-Fc, diabody-Fc, tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, intrabody, BiTE, diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, minibody, knob-in-hole, knob-in-hole with common light chain, knob-in-hole with common light chain and charge pair, charge pair, charge pair with common light chain, especially mAb 2 , knobs-in-hole, knobs-in-hole with a common light chain, knobs-in-hole chain with a common light chain and charge pair and FIT-Ig, e.g., mAb 2 and FIT-Ig.

[0187] In one embodiment, the bispecific format is DVD-Ig, mAb 2, FIT-Ig, mAb-dAb, Dock and Lock, Fab arm exchange, SEEDbody, Triomab, LUZ-Y, Fcab, κλ-body, Orthogonal Fab, sc diabody-Fc, diabody-Fc, tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, intrabody, BiTE, diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, triple body, miniantibody, minibody, TriBi minibody, scFv-CH3KIH, sc The antibody is selected from Fv-CH-CL-scFv, F(ab')2-scFv, scFv-KIH, Fab-scFv-Fc, tetravalent HCab, ImmTAC, knobs-in-hole, knobs-in-hole with a common light chain, knobs-in-hole with a common light chain and charge pair, charge pair, charge pair with a common light chain, DT-IgG, DutaMab, IgG(H)-scFv, scFv-(H)IgG, IgG(L)-scFv, scFv-(L)IgG, IgG(L,H)-Fv, IgG(H)-V, V(H)-IgG, IgG(L)-V, V(L)-IgG, KIH IgG-scFab, 2scFv-IgG, IgG-2scFv, scFv4-Ig, and zybody.

[0188] In one embodiment, the bispecific format is selected from the group consisting of DVD-Ig, FIT-Ig, mAb-dAb, Dock and Lock, Fab-arm exchange, SEEDbody, Triomab, LUZ-Y, Fcab, κλ-body, orthogonal Fab, sc diabody-Fc, diabody-Fc, tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, intrabody, BiTE, diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, triplebody, miniantibody, minibody, TriBi minibody, scFv-CH3KIH, scFv-CH-CL-scFv, F(ab')2-scFv, scFv-KIH, Fab-scFv-Fc, tetravalent HCab, ImmTAC, knob-in-hole, knob-in-hole with common light chain, knob-in-hole with common light chain and charge pair, charge pair, charge pair with common light chain, DT-IgG, DutaMab, IgG(H)-scFv, scFv-(H)IgG, IgG(L)-scFv, scFv-(L)IgG, IgG(L,H)-Fv, IgG(H)-V, V(H)-IgG, IgG(L)-V, V(L)-IgG, KIH Selected from IgG-scFab, 2scFv-IgG, IgG-2scFv, scFv4-Ig and zybodies such as DVD-Ig, FIT-Ig, mAb-dAb, dock and lock, SEEDbody, sc diabody-Fc, diabody-Fc, tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, intrabody, BiTE, diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, minibody, knob-in-hole, knob-in-hole with common light chain, knob-in-hole with common light chain and charge pair, charge pair, charge pair with common light chain, in particular knob-in-hole, knob-in-hole with common light chain, knob-in-hole with common light chain and charge pair, and FIT-Ig, such as FIT-Ig.

[0189] In one embodiment, the bispecific format is DVD-Ig, mAb 2, mAb-dAb, Dock and Lock, Fab-Arm Exchange, SEEDbody, Triomab, LUZ-Y, Fcab, κλ-body, Orthogonal Fab, sc diabody-Fc, diabody-Fc, Tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, Intrabody, BiTE, Diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, Triple body, Miniantibody, Minibody, TriBi minibody, scFv-CH3KIH, scFv- CH-CL-scFv, F(ab')2-scFv, scFv-KIH, Fab-scFv-Fc, tetravalent HCab, ImmTAC, knob-in-hole, knob-in-hole with a common light chain, knob-in-hole with a common light chain and charge pair, charge pair, charge pair with a common light chain, DT-IgG, DutaMab, IgG(H)-scFv, scFv-(H)IgG, IgG(L)-scFv, scFv-(L)IgG, IgG(L,H)-Fv, IgG(H)-V, V(H)-IgG, IgG(L)-V, V(L)-IgG, KIH IgG-scFab, 2scFv-IgG, IgG-2scFv, scFv4-Ig and zybodies, e.g., DVD-Ig, mAbs 2 , mAb-dAb, Dock and Lock, SEEDbody, sc diabody-Fc, diabody-Fc, tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, intrabody, BiTE, diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, minibody, knob-in-hole, knob-in-hole with common light chain, knob-in-hole with common light chain and charge pair, charge pair, charge pair with common light chain, especially mAb 2 , knobs-in-holes, knobs-in-holes with a common light chain and charge pair, and knobs-in-holes with a common light chain, e.g., mAbs 2 is selected from.

[0190] In one embodiment, the bispecific format is selected from the group consisting of DVD-Ig, mAb-dAb, Dock and Lock, Fab-arm exchange, SEEDbody, Triomab, LUZ-Y, Fcab, κλ-body, orthogonal Fab, sc diabody-Fc, diabody-Fc, tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, intrabody, BiTE, diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, triplebody, miniantibody, minibody, TriBi minibody, scFv -CH3KIH, scFv-CH-CL-scFv, F(ab')2-scFv, scFv-KIH, Fab-scFv-Fc, tetravalent HCab, ImmTAC, knob-in-hole, knob-in-hole with common light chain, knob-in-hole with common light chain and charge pair, charge pair, charge pair with common light chain, DT-IgG, DutaMab, IgG(H)-scFv, scFv-(H)IgG, IgG(L)-scFv, scFv-(L)IgG, IgG(L,H)-Fv, IgG(H)-V, V(H)-IgG, IgG(L)-V, V(L)-IgG, KIH Selected from IgG-scFab, 2scFv-IgG, IgG-2scFv, scFv4-Ig and zybodies, such as DVD-Ig, mAb-dAb, dock and lock, SEEDbody, sc diabody-Fc, diabody-Fc, tandem scFv-Fc, Fab-scFv-Fc, Fab-scFv, intrabody, BiTE, diabody, DART, TandAb, sc diabody, sc diabody-CH3, diabody-CH3, minibody, knobs-in-hole, knobs-in-hole with common light chain, knobs-in-hole with common light chain and charge pair, charge pair, charge pair with common light chain, particularly knobs-in-hole, knobs-in-hole with common light chain and charge pair, and knobs-in-hole with common light chain.

[0191] 34. The anti-CD7 antibody or fragment of any one of the preceding items for treating or preventing a CD7-mediated disease or condition (optionally, cancer, such as leukemia or lymphoma) in a subject.

[0192] 35. The anti-CD7 antibody or fragment according to item 34, wherein the disease or condition is selected from leukemia, lymphoma, blood cancer, and myelodysplastic syndrome (MDS).

[0193] In one example, the subject is a human; in another example, the subject is a non-human animal; in one example, the subject is an adult; in one example, the subject is a pediatric human.

[0194] In one example, the antibody or fragment herein is for treating or preventing a disease or condition in a subject (e.g., a human) selected from the following: T-cell acute lymphoblastic leukemia; Acute myeloid leukemia with CD7 expression; · Precursor T-cell lymphoblastic lymphoma; ·T-cell prolymphocytic leukemia; ·T-cell large granular lymphocytic leukemia; Peripheral T-cell lymphoma; ·Angioimmunoblastic T-cell lymphoma; ·Extranodal NK / T cell lymphoma, nasal type; Enteropathic intestinal T-cell lymphoma; and ·Hepatosplenic T-cell lymphoma.

[0195] In one example, the disease or condition is in a human. In one example, the disease or condition is in an animal.

[0196] In one example, the antibody or fragment of the invention is for the treatment or prevention of a CD7-mediated disease or condition in humans, such as, for example, neoplastic or non-neoplastic diseases, chronic viral infections, and malignancies, e.g., melanoma, Merkel cell carcinoma, non-small cell lung cancer (squamous cell carcinoma and non-squamous cell carcinoma), renal cell carcinoma, bladder cancer, head and neck squamous cell carcinoma, mesothelioma, virally induced cancers (such as cervical cancer and nasopharyngeal carcinoma), soft tissue sarcoma, hematological malignancies such as Hodgkin's disease and non-Hodgkin's disease, and diffuse large B-cell lymphoma.

[0197] In one example, the CD7-mediated disease or condition is a retinal degenerative disorder selected from, e.g., Alzheimer's disease, amyotrophic lateral sclerosis, Parkinson's disease, Huntington's disease, primary progressive multiple sclerosis, secondary progressive multiple sclerosis, corticobasal degeneration, Rett's syndrome, age-related macular degeneration, and retinitis pigmentosa; a neurodegenerative disease, disorder, or condition selected from, anterior ischemic optic neuropathy, glaucoma, uveitis, depression, trauma-related or post-traumatic stress disorder, frontotemporal dementia, Lewy body dementia, mild cognitive impairment, posterior cortical atrophy, primary progressive aphasia, and progressive supranuclear palsy or age-related dementia; in particular, the neurodegenerative disease, disorder, or condition is selected from Alzheimer's disease, amyotrophic lateral sclerosis, Parkinson's disease, and Huntington's disease, e.g., Alzheimer's disease.

[0198] In one example, the antibodies, fragments, and combinations of the invention are administered or are intended for intravenous administration to a subject. In one example, the antibodies, fragments, and combinations of the invention are administered or are intended for subcutaneous administration to a subject.

[0199] 36. The antibody or fragment according to item 33, wherein the antibody or fragment is administered to the subject simultaneously or sequentially with chemotherapy, radiation therapy, or an immune checkpoint inhibitor.

[0200] Optionally, chemotherapy is selected from nelarabine cyclophosphamide, vincristine, adriamycin, dexamethasone, substituted with methotrexate and cytarabine.

[0201] 37. A combination of an amount of an anti-CD7 antibody or fragment and an amount of a chemotherapeutic agent (optionally comprising multiple doses of the antibody and / or agent), wherein the antibody or fragment is according to any one of items 1 to 36.

[0202] Also provided is a medical kit comprising the combination, a first sterile container containing the amount of the antibody or fragment, and a second sterile container containing the amount of the chemotherapeutic agent, and optionally instructions for using the combination to treat cancer in a subject.

[0203] 38. The antibody, fragment, or combination according to any one of items 1 to 37 for use in a method for treating leukemia in a human, wherein the antibody, fragment, or combination is administered to the human, optionally together with an antagonist of human CD5, CD14, or CD19.

[0204] 39. The antibody, fragment, or combination of item 38, wherein the leukemia is acute myeloid leukemia or T-ALL, or is relapsed leukemia (e.g., relapsed AML or T-ALL).

[0205] 40.CD7 + 38. The antibody, fragment, or combination of any one of items 1 to 37 for use in a method for treating a cell-mediated disease or condition in a human or animal subject, the method comprising administering the antibody, fragment, or combination to a subject, wherein CD7 cells are targeted and killed, optionally by ADCP and / or CDC.

[0206] 41. Use of an antibody, fragment, or combination according to any one of the preceding items in the manufacture of a medicament for administration to a subject for treating or preventing a CD7-mediated disease or condition, optionally cancer.

[0207] 42. A method for treating or preventing a CD7-mediated disease or condition (optionally hypercholesterolemia) in a subject, the method comprising administering to said subject a therapeutically effective amount of the antibody, fragment, or combination according to any one of items 1 to 40, thereby treating or preventing the CD7-mediated disease or condition.

[0208] 43. The use according to item 41 or the method according to item 42, wherein the CD7-mediated disease or condition is leukemia (optionally T-ALL).

[0209] 44. Further comprising administering to the subject an additional treatment, e.g., an additional therapeutic agent, optionally wherein the additional therapeutic agent is: Cyclophosphamide, b. Vincristine C. Adriamycin d. dexamethasone, e. methotrexate, f. Cytarabine, and g. The antibody, fragment, combination, use, or method of any one of paragraphs 34 to 43, wherein the antibody, fragment, combination, use, or method is selected from the group consisting of nelarabine.

[0210] 45. A pharmaceutical composition comprising an antibody, fragment or combination according to any one of items 1 to 40 and 44 and a pharmaceutically acceptable excipient, diluent or carrier, optionally in combination with a further therapeutic agent selected from the agents according to item 44.

[0211] 46. ​​The pharmaceutical composition according to item 45 for treating and / or preventing a CD7-mediated condition or disease, optionally cancer.

[0212] 47. The pharmaceutical composition according to item 45 or 46, in combination with a label or instructions for use in treating and / or preventing said disease or condition in a human, optionally wherein the label or instructions includes a marketing authorization number (optionally an FDA or EMA approval number), and optionally wherein the kit includes an intravenous or infusion device comprising the antibody or fragment.

[0213] 48. A nucleic acid encoding the VH domain and / or the VL domain of the antibody or fragment according to any one of items 1 to 33.

[0214] 49. A nucleic acid encoding a VH domain comprising the amino acid sequence of, or at least 70, 80, 85, 90, 95, 96, 97, 98, or 99% identical to, the VH domain of an antibody selected from G09, F05, C02, and E04.

[0215] For example, the identity is at least 85%. For example, the identity is at least 90%. For example, the identity is at least 95%.

[0216] 50. A nucleic acid encoding a VL domain comprising the amino acid sequence of a VL domain of an antibody selected from G09, F05, C02, and E04, or amino acids at least 70, 80, 85, 90, 95, 96, 97, 98, or 99% identical thereto.

[0217] Optionally, the nucleic acid also encodes a VH domain that includes the amino acid sequence of the VH domain of the selected antibody, or amino acids that are at least 70, 80, 85, 90, 95, 96, 97, 98, or 99% identical thereto. For example, the identity is at least 85%. For example, the identity is at least 90%. For example, the identity is at least 95%.

[0218] 51. (a) a nucleotide sequence that is at least 70% identical to the sequence of SEQ ID NO: 10, and / or (b) a nucleic acid comprising a nucleotide sequence that is at least 70% identical to the sequence of SEQ ID NO: 20.

[0219] 52. A nucleic acid encoding the heavy and / or light chain of the antibody or fragment according to any one of items 1 to 33.

[0220] 53. A nucleic acid encoding a heavy chain comprising an amino acid sequence that is at least 70% identical to SEQ ID NO:8.

[0221] 54. A nucleic acid encoding a light chain comprising an amino acid sequence that is at least 70% identical to SEQ ID NO: 18.

[0222] 55. (a) a nucleotide sequence that is at least 70% identical to a heavy chain sequence selected from an antibody selected from G09, F05, C02, and E04; and / or (b) a nucleic acid (e.g., in a host cell, e.g., a CHO or HEK293 or Cos cell) comprising a nucleotide sequence that is at least 70% identical to a sequence selected from an antibody selected from G09, F05, C02, and E04.

[0223] Wherever percent identity is referred to herein, an example is 100% identity.

[0224] 56. A nucleic acid encoding the heavy and / or light chain of the antibody or fragment according to any one of items 1 to 32.

[0225] All of the nucleic acids of the invention herein can be expressed in host cells, such as CHO or HEK293 or Cos cells, such as to express the variable domains or chains of the antibodies or fragments of the invention.

[0226] 57. A vector comprising a nucleic acid (e.g., a nucleic acid according to any one of items 48 to 55), optionally wherein the vector is a CHO or HEK293 vector.

[0227] 58. A host cell comprising a nucleic acid (e.g. a nucleic acid according to any one of items 48 to 55) or a vector according to item 57.

[0228] 59. The antibody, fragment, combination, vector, host cell, composition, use, or method of any one of the preceding items, wherein the antibody or fragment comprises an IgG1 (e.g., human IgG1 or IgG1*01) constant region.

[0229] 60. The antibody, fragment, combination, vector, host cell, composition, use, or method according to item 59, wherein the constant region comprises glycine at position 430, arginine at position 356, and / or arginine at position 357 (according to EU numbering) in the IgG1 CH3 region.

[0230] 61. The antibody, fragment, combination, vector, host cell, composition, use, or method according to item 59, wherein the constant region comprises a glycine at position 430.

[0231] 62. An antibody, fragment, combination, vector, host cell, use or method described herein.

[0232] The present invention provides: A method for diagnosing a CD7-mediated disease or condition (optionally cancer) in a subject, the method comprising combining an antibody or fragment of the invention with an isolated cell sample (e.g., a blood or serum sample) and determining that cells contained in the sample specifically bind to the antibody or fragment.

[0233] The following is also provided: An in vitro assay for detecting CD7-positive cells in a sample, the assay comprising combining an antibody or fragment of the invention with an isolated cell sample (e.g., a blood or serum sample) and determining that cells contained in the sample specifically bind to the antibody or fragment.

[0234] The disease or condition can be any disease or condition disclosed herein. Detection can be by any conventional means, for example, using a label, such as a fluorescent label, ELISA, or RIA.

[0235] In one example, the antibody or fragment comprises an HCDR3 length of 9, 10, 11, or 12 residues, e.g., 10, e.g., 11. In one example, the antibody or fragment comprises an LCDR3 length of 7, 8, or 9 residues, e.g., 8, e.g., 9. In one example, each VH domain of the antibody or fragment comprises 1 to 11 non-germline residues, e.g., 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, or 11 non-germline residues. In one example, each VL domain of the antibody or fragment comprises 3 to 8 non-germline residues, e.g., 3, 4, 5, 6, 7, or 8 non-germline residues.

[0236] In one embodiment, the CDR sequences herein are determined according to Kabat. In an alternative, the CDR sequences are determined according to IMGT.

[0237] In one example, the antibody of choice is G09.

[0238] In one example, the selected antibody comprises a heavy chain of G09, F05, C02 or E04, and in one example, the selected antibody comprises a heavy chain of G09.

[0239] In one example, the heavy chain of an antibody or fragment of the invention is a human gamma-1, gamma-2, gamma-3, gamma-4, mu, delta, epsilon, or alpha isotype, preferably a gamma isotype (e.g., an IgG4 isotype). In one example, the light chain of an antibody or fragment of the invention comprises a human kappa constant region. Alternatively, in one example, the light chain of an antibody or fragment of the invention comprises a human lambda constant region.

[0240] Optionally, the antibody is a four-chain antibody comprising a heavy chain dimer associated with a light chain dimer. In one example, the heavy chain comprises one or a combination of heavy chain CDRs disclosed herein, and / or the light chain comprises one or a combination of heavy chain CDRs disclosed herein, such as from the same selected antibody. In one example, the heavy chain comprises a VH domain disclosed herein, and / or the light chain comprises a VL domain disclosed herein, such as from the same selected antibody. In one example, the heavy and light chains are derived from the same selected antibody, such as any antibody disclosed in the Sequence Listing herein or in the Table of Examples herein.

[0241] In one example, the selected antibody comprises a light chain of G09, F05, C02, or E04. In one example, the selected antibody comprises a light chain of G09.

[0242] In one example, the selected antibody comprises the variable domain of G09, F05, C02, or E04. In one example, the selected antibody comprises the variable domain of G09.

[0243] In one example, the selected antibody comprises a VH domain of G09, F05, C02, or E04. In one example, the selected antibody comprises a VH domain of G09.

[0244] In one example, the selected antibody comprises the VH and VL domains of G09, F05, C02, or E04. In one example, the selected antibody comprises the VH and VL domains of G09.

[0245] In one example, the binding site of the antibody or fragment comprises a VH / VL pair that specifically binds to human CD7.

[0246] Optionally, the antibody or fragment competes with G09 (eg, G09 in an IgG format, eg, human IgG1) for binding to CD7 as determined by SPR.

[0247] Optionally, the amino acid substitutions are conservative amino acid substitutions, and optionally each conservative substitution is from group (1) to (6) below: 1) alanine (A), serine (S), threonine (T); 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); and 6) Phenylalanine (F), tyrosine (Y), tryptophan (W).

[0248] Any SPR herein is, for example, surface plasmon resonance (SPR) at 37° C. and pH 7.6.

[0249] Optionally, any CD7 described herein is a human CD7 (eg, in an in vitro test), eg, comprises the amino acid sequence of a human CD7 disclosed herein.

[0250] In one example, the antibody or fragment of the invention may be administered in a concentration of, for example, 5x10 6 M -1 xs -1 or 5x10 6 M -1 xs -1 In one example, the antibody or fragment of the invention binds to human CD7 with a Ka of, for example, 4 or 5s -1 or about 4 or 5 seconds -1 In one example, the antibody or fragment of the invention binds to human CD7 with a KD of, for example, 0.07 or 0.14 nM, or about 0.07 or 0.14 nM. In one embodiment, the fragment is a Fab fragment. In one embodiment, the fragment is an scFv.

[0251] Optionally, an antibody of the invention has an affinity (KD) for binding to CD7 of 1 pM to 5 nM, and optionally binding is determined by SPR at 37°C, pH 7.6 using a Fab of the antibody.

[0252] Optionally, the antibody is at a concentration of 1×10 -5 ~1×10 -3 S -1 Off-rate (K) for binding to CD7 of off ), and optionally binding is determined by SPR at 37°C, pH 7.6 using the Fab of the antibody.

[0253] Optionally, the antibody is present at a concentration of 1×10 to 1×10 7 M -1 S -1 On-rate (K) for binding to CD7 of on ), and optionally binding is determined by SPR at 37°C, pH 7.6 using the Fab of the antibody.

[0254] In one example, the antibody (eg, as a Fab) or fragment has the following affinity (KD) for binding to CD7 (eg, human CD7): (a) 2, 3, 4, 5, or 10 pM to 3, 4, or 5 nM; (b) 1–10 pM–5 nM; (c) 10 pM to 3, 4, or 5 nM; (d) 50 or 80 pM to 200 nM; (e) 50 or 80 pM to 150 nM; or (f) 50 or 80 pM to 100 nM.

[0255] In one example, the KD is 5-15 pM (or about 5-15 pM) (e.g., 10 pM). In one example, the KD is 2-5 nM (or about 2-5 nM) (e.g., 3 nM). In one example, the KD is 100-400 pM (or about 100-400 pM) (e.g., 140 or 390 pM).

[0256] In one example, the antibody (e.g., as a Fab) or fragment has the following K off ) (a) 1×10 -5 ~5×10 -4 S-1 ; (b) 1×10 -5 ~6×10 -4 S -1 ; (c) 1×10 -5 ~7×10 -4 S -1 ; (d) 1 × 10 -5 ~8×10 -4 S -1 ; (e) 2 × 10 -5 ~1×10 -3 S -1 ; (f) 2 × 10 -5 ~5×10 -4 S -1 ; (g)2×10 -5 ~6×10 -4 S -1 ; (h)2×10 -5 ~7×10 -4 S -1 ;or (i) 2 × 10 -5 ~8×10 -4 S -1 .

[0257] In one example, K off is 5 x 10 -4 S -1 (or about 5×10 -4 S -1 ) (e.g., when the KD is 2 nM to 400 pM (or about 2 nM to 400 pM), when the KD is 2 to 5 nM (or about 2 to 5 nM) (e.g., 3 nM), or when the KD is 100 to 400 pM (or about 100 to 400 pM) (e.g., 140 or 390 pM)). In one example, K off is 3x10 -5 S -1 ((or about 3x10 -5 S -1 ) (e.g., when the KD is 5 to 15 pM (or about 5 to 15 pM) (e.g., 10 pM)).

[0258] In one example, the antibody (e.g., as a Fab) or fragment has an on rate (K) for binding to CD7 (e.g., human CD7) of: on ) (a) 1×10 5 ~1×10 6 M -1 S -1 ; (b) 1×10 5 ~2×10 6 M -1 S -1 ; (c) 1×10 5 ~3×10 6 M -1 S -1 ; (d) 1 × 10 5 ~4×10 6 M -1 S -1 ; (e) 1×10 5 ~5×10 6 M -1 S -1 ; (f) 2 × 10 5 ~5×10 6 M -1 S -1 ; (g)3×10 5 ~5×10 6 M -1 S -1 ; (h)4×10 5 ~5×10 6 M -1 S -1 ; (i) 5 × 10 5 ~5×10 6 M -1 S -1 ;or (j)6×10 5 ~5×10 6 M -1 S -1 .

[0259] In one example, K on is 1 or 2x10 -5 M -1 S -1 (or about 1 or 2 x 10-5 M -1 S -1 ) (e.g., when KD is 2-5 nM (e.g., 3 nM)). In one example, K on is 1-4, 1, 2, 3 or 4x10 -6 M -1 S -1 (or approximately 1-4, 1, 2, 3 or 4x10 -6 M -1 S -1 ) (e.g., when the KD is 5 to 400 pM (or about 5 to 400 pM) (e.g., 140 or 390 pM) or 5 to 15 pM (e.g., 10 pM)).

[0260] As provided herein or in other embodiments, the anti-CD7 antibody or fragment may have a K of less than 50 nM, less than 40 nM, or less than 30 nM as determined by surface plasmon resonance. D In another embodiment, the anti-CD7 antibody or fragment may bind to CD7, e.g., human CD7, with a K of less than 20 nM, less than 15 nM, or less than 10 nM, as determined by surface plasmon resonance. D The anti-CD7 antibody or fragment may bind to CD7, e.g., human CD7, with a K of less than 8 nM, less than 5 nM, less than 4 nM, less than 3 nM, less than 2 nM, or less than 1 nM, as determined by surface plasmon resonance. D It can bind to CD7, for example, human CD7, at K D can be 0.9 nM or less, 0.8 nM or less, 0.7 nM or less, 0.6 nM or less, 0.5 nM or less, 0.4 nM or less, 0.3 nM or less, 0.2 nM or less, or 0.1 nM or less.

[0261] In another embodiment, K D is in the range of 0.01 to 1 nM, or in the range of 0.05 to 2 nM, or in the range of 0.05 to 1 nM. D may be for hCD7, cynomolgus monkey (i.e., "cyno") CD7, and / or mouse CD7. In another embodiment, the anti-CD7 antibodies described herein have a K of about 0.5-10 μM, e.g., about 1-8 μM or about 1-7 μM. ONIn another embodiment, the K ON The rate is about 1 to 5 μM, for example, about 1 μM, about 1.5 μM, about 2 μ In another embodiment, the K ON The rate is about 3.5 μM, about 4 μM, about 4.5 μM, about 5 μM, or about 5.5 μM.

[0262] In another embodiment, the anti-CD7 antibodies described herein have a K of about 0.01 to 100 mM, e.g., about 0.1 to 50 mM or about 0.5 to 50 mM. OFF In another embodiment, the K OFF In another embodiment, the K concentration is about 0.5 to 10 mM, or about 0.5 to 10 mM, e.g., about 1 mM, about 2 mM, about 3 mM, about 4 mM, or about 5 mM. OFF The rate is about 0.6 mM, about 0.7 mM, about 0.8 mM, or about 0.9 mM.

[0263] In one example, an antibody or fragment of the invention comprises the VH and VL domains of G09, F05, C02, and E04.

[0264] In one example, an antibody or fragment of the present invention comprises the VH and VL domains of G09. In one example, an antibody or fragment of the present invention comprises the VH and VL domains of F05. In one example, an antibody or fragment of the present invention comprises the VH and VL domains of G09. In one example, an antibody or fragment of the present invention comprises the VH and VL domains of C02. In one example, an antibody or fragment of the present invention comprises the VH and VL domains of E04.

[0265] In one example, the antibody of choice is G09.

[0266] In one example, the antibody selected comprises a variable domain of an antibody selected from G09, F05, C02, and E04.

[0267] In one example, the selected antibody comprises the VH domain of an antibody selected from G09, F05, C02, and E04. In one example, the selected antibody comprises the VH domain of G09.

[0268] In one example, the selected antibody comprises the VH and VL domains of an antibody selected from G09, F05, C02, and E04. In one example, the selected antibody comprises the VH and VL domains of G09.

[0269] Optionally, the antibody or fragment of the invention comprises the HCDR3 of an antibody selected from G09, F05, C02, and E04. Optionally, the antibody or fragment of the invention comprises the HCDR1 and / or HCDR2 of said selected antibody.

[0270] Optionally, the antibody or fragment of the invention comprises HCDR1 of an antibody selected from G09, F05, C02, and E04. Optionally, the antibody or fragment of the invention comprises HCDR2 and / or HCDR3 of said selected antibody.

[0271] Optionally, the antibody or fragment of the invention comprises HCDR2 of an antibody selected from G09, F05, C02, and E04. Optionally, the antibody or fragment of the invention comprises HCDR1 and / or HCDR3 of said selected antibody.

[0272] Optionally, the antibody or fragment of the invention comprises a VH of an antibody selected from G09, F05, C02, and E04. Optionally, the antibody or fragment of the invention comprises a VL of the selected antibody.

[0273] Optionally, the antibody or fragment of the invention comprises the VL of an antibody selected from G09, F05, C02, and E04. Optionally, the antibody or fragment of the invention comprises the VH of the selected antibody.

[0274] Optionally, the antibody or fragment of the invention comprises the heavy chain of an antibody selected from G09, F05, C02, and E04. Optionally, the antibody or fragment of the invention comprises the light chain of said selected antibody.

[0275] Optionally, the antibody or fragment of the present invention comprises a light chain of an antibody selected from G09, F05, C02, and E04. Optionally, the antibody or fragment of the present invention comprises a heavy chain of the selected antibody. In one example, the selected antibody is G09.

[0276] Optionally, an antibody of the invention comprises a human IgG1*01 constant region. Optionally, an antibody of the invention comprises a human IgG1 E430G constant region, for example, an IgG1*01 E430G constant region. Optionally, an antibody of the invention comprises a human IgG1 E345R constant region, for example, an IgG1*01 E345R constant region.

[0277] Preferably, an antibody or fragment thereof that specifically binds to hCD7 does not cross-react with other antigens (but may optionally cross-react with different CD7 species, e.g., rhesus, cynomolgus, or murine). Antibodies or fragments thereof that specifically bind to the CD7 antigen can be identified, for example, by immunoassay, BIAcore®, or other techniques known to those skilled in the art. An antibody or fragment thereof specifically binds to the hCD7 antigen when it binds to hCD7 with higher affinity than any cross-reacting antigen, as determined using experimental techniques such as radioimmunoassay (RIA) and enzyme-linked immunosorbent assay (ELISA). Typically, a specific or selective response is at least two times the background signal or noise, and more typically 10 times or more the background. See pages 332-336 of Paul, ed., 1989, Fundamental Immunology, 2nd ed., Raven Press, New York, for a discussion of antibody specificity.

[0278] Contact amino acid residues involved in the interaction between an antibody such as CD7 and an antigen can be determined by various methods known to those skilled in the art.

[0279] In one embodiment, if the antibody recognizes a linear epitope, short peptides based on the antigen sequence can be generated and binding of the antibody to these peptides can be assessed using standard techniques.

[0280] In one embodiment, limited proteolytic digestion and mass spectrometry can be used to identify binding epitopes.

[0281] In one embodiment, contact residues of the epitope are identified by X-ray crystallography. In one embodiment, contact residues of the epitope are identified by cryo-electron microscopy. In one embodiment, contact residues of the epitope are identified by limited proteolytic digestion in combination with mass spectrometry.

[0282] In another embodiment, the anti-CD7 antibodies (and fragments) described herein provide improved transient expression levels relative to other anti-CD7 antibodies and fragments. Thus, in one embodiment, the anti-CD7 antibodies (or fragments) are expressed in HEK293 cells, e.g., HEK293T cells, at an expression level of about 100 μg / mL or in the range of about 100-350 μg / mL. In another embodiment, the expression level is greater than about 350 μg / mL.

[0283] In another embodiment, the anti-CD7 antibody (or fragment) is expressed in CHO cells, e.g., Expi-CHO cells, at an expression level of about 100 μg / mL, or in the range of about 100-350 μg / mL, hi another embodiment, the expression level is greater than about 350 μg / mL.

[0284] In another embodiment, the anti-CD7 antibody (or fragment) is expressed in CHO cells, e.g., Expi-CHO cells or CHO-E7 EBNA cells, at an expression level of about 100 μg / mL or in the range of about 100-350 μg / mL. In another embodiment, the expression level is greater than about 350 μg / mL. For example, the antibody comprises the VH and VL domains of any one of G09 formatted as human IgG1 or human IgG4 (e.g., IgG4-PE).

[0285] In any of these expression systems, expression is carried out at a scale of between about 0.5 mL and 3 mL, e.g., between about 0.5 mL and 2 mL. In any of these expression systems, the anti-CD7 antibody (or fragment) can be expressed from a pTT5 vector. In any of these expression systems, the anti-CD7 antibody (or fragment) can be expressed in combination with a lipid transfection reagent and, optionally, in CHO cells, e.g., Expi-CHO cells. In any of these expression systems, the anti-CD7 antibody (or fragment) can be expressed in combination with a PEI transfection reagent and, optionally, in CHO cells, e.g., CHO-E7 EBNA cells. In the system, the anti-CD7 antibody (or fragment) can be expressed in combination with a helper plasmid (e.g., an AKT helper plasmid) and, optionally, in CHO cells, e.g., CHO-E7 EBNA cells.

[0286] In any of these expression systems, the expression level is about 100 μg / mL to about 1500 μg / mL, for example, about 100 μg / mL to about 1000 μg / mL, or about 200 μg / mL to about 1000 μg / mL, or about 350 μg / mL to about 1000 μg / mL. In any of these expression systems, the lower limit of expression can be about 100 μg / mL, about 200 μg / mL, about 300 μg / mL, or about 400 μg / mL. In another embodiment, the lower limit of expression can be about 500 μg / mL, about 600 μg / mL, about 700 μg / mL, or about 800 μg / mL. In any of these expression systems, the upper limit of expression can be about 2000 μg / mL, about 1800 μg / mL, about 1600 μg / mL, or about 1500 μg / mL. In another embodiment, the upper limit of expression can be about 1250 μg / mL, about 1000 μg / mL, about 900 μg / mL, or about 800 μg / mL.

[0287] In another embodiment, the expression system is a Lonza expression system, e.g., the Lonza X-Ceed® system. In the Lonza expression system, expression can be performed at a scale of about 30 mL to 2 L, e.g., 50 mL to 1 L, or 1 L to 2 L. In the Lonza expression system, the anti-CD7 antibody (or fragment) can be expressed in combination with electroporation, optionally without any helper plasmid. In the Lonza expression system, the anti-CD7 antibody (or fragment) can be expressed at a level of about 1 g / L, or about 900 mg / L, or about 800 mg / L, or about 700 mg / L. In another embodiment, in the Lonza expression system, the anti-CD7 antibody (or fragment) can be expressed at a level of about 600 mg / L, or about 500 mg / L, or about 400 mg / L. In the Lonza expression system, the anti-CD7 antibody (or fragment) may be expressed at a level of about 400 mg / L to about 2 g / L, e.g., about 500 mg / L to about 1.5 g / L or about 500 mg / L to about 1 g / L. In another embodiment, the expression level is greater than 1 g / L. In another embodiment, the anti-CD7 antibody provides an improved half-life over other anti-CD7 antibodies.

[0288] In one embodiment, the antibody or fragment is a human antibody or fragment. In one embodiment, the antibody or fragment is a fully human antibody or fragment. In one embodiment, the antibody or fragment is a fully human monoclonal antibody or fragment.

[0289] In one embodiment, the antibody or fragment is a humanized antibody or fragment. In one embodiment, the antibody or fragment is a humanized monoclonal antibody or fragment.

[0290] Contact amino acid residues involved in antibody and antigen interaction can be determined by various methods known to those skilled in the art, such as alanine scanning, protein crystallography, mass spectrometry, or any other technique apparent to those skilled in the art.

[0291] In one embodiment, the described CDRs contain one amino acid substitution, which may be a conservative amino acid substitution. In one embodiment, the described CDRs contain two amino acid substitutions, which may be conservative amino acid substitutions. In one embodiment, the described CDRs contain three amino acid substitutions, which may be conservative amino acid substitutions. In one embodiment, the described CDRs contain four amino acid substitutions, which may be conservative amino acid substitutions. In one embodiment, the described CDRs contain five amino acid substitutions, which may be conservative amino acid substitutions. In one embodiment, the described CDRs contain six amino acid substitutions, which may be conservative amino acid substitutions.

[0292] Amino acid substitutions include modifications in which amino acids are replaced with different naturally occurring amino acid residues. Such substitutions can be classified as "conservative", in which the amino acid residue contained in a polypeptide is replaced with another naturally occurring amino acid with similar properties in terms of polarity, side chain functional group, or size. Such conservative substitutions are well known in the art. The substitutions included in the present invention can also be "non-conservative", in which the amino acid residue present in a peptide is replaced with an amino acid with different properties, such as a naturally occurring amino acid from a different group (for example, a charged or hydrophobic amino acid is replaced with alanine), or a naturally occurring amino acid is replaced with a non-conventional amino acid.

[0293] In one embodiment, conservative amino acid substitutions are as described herein. For example, the substitutions can be F for Y, S or K for T, A for P, D or Q for E, D or G for N, K for R, N or A for G, S or K for T, N or E for D, L or V for I, Y for F, T or A for S, K for R, N or A for G, R for K, or S, K, or P for A. In another embodiment, conservative amino acid substitutions can be those in which Y is replaced by F, T is replaced by A or S, I is replaced by L or V, W is replaced by Y, M is replaced by L, N is replaced by D, G is replaced by A, T is replaced by A or S, D is replaced by N, I is replaced by L or V, F is replaced by Y or L, S is replaced by A or T, and A is replaced by S, G, T, or V.

[0294] Aspects Any of the following aspects may be combined with any of the features disclosed herein (e.g., with any of the claimed embodiments described herein or any of the items described herein). For example, the ligand in any of these aspects may be an antibody or fragment of the invention.

[0295] 1. CD7 in patients + An anti-CD7 ligand for administration to a human patient for the treatment of cancer by complement-dependent cytotoxicity (CDC) of cells (e.g., cancer cells), wherein the ligand comprises an antibody Fc region and a binding site for specifically binding to human CD7.

[0296] In one example, the CD7 is human CD7 and the patient is human.

[0297] Alternatively, in any embodiment, instead of cancer, the ligand herein is for treating a disease or condition mediated by CD7+ cells, for example, CD7+ T cells or NK cells.For example, the disease or condition is an autoimmune disease or condition.For example, the disease is graft-versus-host disease (GvHD).For example, the disease or condition is an inflammatory disease or condition. Optionally, in any embodiment alternatively, the ligand is administered to the subject prophylactically to reduce the risk of cancer or a disease or condition.

[0298] Optionally, in any embodiment, the cell is a cell of the patient's immune system. Optionally, in any embodiment, the cell is a T cell and / or a NK cell. Optionally, the cell is a cell of a tissue, cell, or organ graft contained in a human.

[0299] 2. CD7 in patients + An anti-CD7 ligand for administration to a human patient for the treatment of cancer through ligand-dependent phagocytosis of cells (e.g., cancer cells), wherein the ligand comprises an antibody Fc region and a binding site for specifically binding to human CD7.

[0300] 3. The phagocytosis is antibody-dependent cellular phagocytosis (ADCP), and the antibody is the ligand.

[0301] In vivo, ADCP can be mediated by monocytes, macrophages, neutrophils, and dendritic cells via FcγRIIa, FcγRI, and FcγRIIIa. All three receptors can be involved in ADCP, and FcγRIIa is thought to be the primary Fcγ receptor involved in this process. ADCP is mediated by CD7 receptors in macrophages and / or monocytes contained in the patient. + Includes phagocytosis of cancer cells.

[0302] 4. CD7 in patients + An anti-CD7 ligand for administration to a human patient for the treatment of cancer by ligand-dependent cell-mediated cytotoxicity of cancer cells, wherein the ligand comprises an antibody Fc region and a binding site for specifically binding to human CD7.

[0303] In ADCC, cytotoxicity can be mediated by natural killer (NK) cells, but macrophages, neutrophils, and eosinophils can also mediate it. In one embodiment of the present invention, ADCC can include ADCC by a patient's CD16+ immune cells. In one embodiment of the present invention, ADCC can include ADCC by natural killer (NK) cells, but cells selected from macrophages, neutrophils, and eosinophils.

[0304] 5. The ligand of any one of the preceding aspects, wherein the cytotoxicity is antibody-dependent cell-mediated cytotoxicity (ADCC) and an antibody is the ligand.

[0305] 6. The ligand of any one of the preceding aspects, wherein the ligand comprises an anti-CD7 antibody, antibody fragment, or trap.

[0306] In one example, the ligand comprises paired VH / VL anti-CD7 binding sites, where VH and VL are human antibody variable domains. Additionally or alternatively, the antibody or fragment comprises a human Fc.

[0307] In one example, the ligand is a human ligand, such as a human antibody or fragment.

[0308] In one example, the ligand can be internalized by CD7+ cells. In one example, the ligand can be internalized by cancer cells. In one example, the ligand can be internalized by CEM cells in vitro.

[0309] 7. The ligand of any one of the preceding aspects, wherein the patient has previously been administered a cancer chemotherapy agent.

[0310] In one example, the patient has previously received an immune checkpoint inhibitor, e.g., an antibody to an immune checkpoint inhibitor, hi one example, the inhibitor is ipilimumab, nivolumab, pembrolizumab, or tremelimumab.

[0311] In one example, the patient has previously received anti-cancer radiation therapy.

[0312] 8. The ligand of any one of the preceding aspects, wherein the patient has previously received GCSF.

[0313] Chemotherapy can cause bone marrow suppression and unacceptably low levels of white blood cells (neutropenia), making patients susceptible to infection and sepsis. GCSF stimulates the production of granulocytes, a type of white blood cell. Recombinant forms of GCSF are used in oncology and hematology to accelerate recovery from neutropenia after chemotherapy in certain cancer patients, allowing for more intensive treatment regimens. It can be administered to oncology patients via subcutaneous or intravenous routes. In the context of the present invention, administering GCSF simultaneously with or sequentially (e.g., prior to) administration of an anti-CD7 ligand to a patient can enhance the CDC, ADCC, and ADCP-mediated CD7 activation of the present invention. + It may be beneficial to upregulate cell types involved in cell killing.

[0314] 9. The ligand of any one of the preceding aspects, wherein the patient has previously undergone chemotherapy, and wherein immediately prior to administering the ligand to the patient, the patient has undergone treatment to enhance complement (e.g., C1q) activity.

[0315] 10. The ligand of any one of the preceding aspects, wherein the patient is receiving administration of one or more complement components (e.g., a composition comprising C1q).

[0316] For example, the component is contained in blood or plasma that is administered to a patient.

[0317] 11. Determining the level or activity of complement (e.g., C1q) in the patient prior to administration of the ligand. For example, the C1q level is a serum concentration in a patient in the range of 70 to 160 micrograms / ml, as determined by a quantitative ELISA, e.g., a sandwich ELISA. Examples of suitable techniques for determination are described in Biotechnol J. 2009 Aug;4(8):1210-4. doi:10.1002 / biot.200800273, "Systemic lupus erythematosus and C1q: A quantitative ELISA for determining C1q levels in serum," Dillon SP et al. In one embodiment, the range is 100 to 160 micrograms / ml.

[0318] Complement levels in normal healthy people range from: 1. Total complement level: 41-90 hemolytic units 2. C1 level: 16-33 mg / dL 3. C3 level: 88-252 mg / dL for men; 88-206 mg / dL for women 4. C4 level: 12-72 mg / dL for men; 13-75 mg / dL for women In one example, the invention involves administering to a patient an anti-CD7 ligand in conjunction with anti-CD46, anti-CD55, or anti-CD59 therapy to neutralize complement regulatory protein (CRP) function.

[0319] 12. Administering the ligand to a patient, thereby inhibiting the CD7 +The cancer cells are killed and then the patient is given chemotherapy.

[0320] 13. The ligand of any one of the preceding aspects, wherein the cancer cells are immune cells of the patient.

[0321] 14. Cancer cells express T cells, NK cells, thymocytes, or bone marrow CD34 + CD38 - The ligand of any one of the preceding aspects, wherein the ligand is a cell.

[0322] Cancer cells, for example, express CD7 + CD34 + CD2 T cells. Cancer cells, for example, + CD38 + Immune cells (e.g., T cells). Cancer cells, for example, CD34 + CD38 + An immune cell (e.g., a T cell).

[0323] 15. The ligand of any one of the preceding aspects, wherein the T cell is an immature T cell.

[0324] Optionally, the immature T cells comprise one, two, or more of the following types: DN1, DN2, DN3, DN4, and DP. DN1 cells are positive for the following markers: CD34, CD44, CD117, TdT, HLA-DR. DN2 cells are positive for the following markers: CD2, CD5, CD7, CD25, CD38, CD44, CD117, CD127, TdT, HLA-DR. DN3 cells are positive for the following markers: CD2, CD5, CD7, CD25, CD38, CD44, CD71, CD117, TdT. DN4 cells are positive for the following markers: CD1, CD2, CD5, CD7, CD38, TdT. DP cells are positive for the following markers: CD2, CD3, CD4, or CD8, CD7.

[0325] In one embodiment, the cancer cells comprise early thymic progenitor (ETP) cells. The presence of such cells is associated with a high risk of leukemia and a low or no response to nelarabine. Thus, in one embodiment, the patient is nelarabine-refractory, for example, the cancer cells comprise ETP cells.

[0326] In one example, the cancer cells are CD52+.

[0327] Optionally, the immature T cells are CD2 + , CD5 + , CD7 + is.

[0328] 16. T cells are CD7 + CD34 + CD38 - The ligand of any one of the preceding aspects, wherein the ligand is a T cell.

[0329] Optionally, the cells are CD7 + CD34 + CD38 - Lin - T cells, where, for example, the cancer is AML.

[0330] Optionally, the T cells are CD8+ T cells, wherein the T cells are CD4+ T cells.

[0331] Optionally, the cell comprises a plurality of cells, each of which comprises at least 100, 500, or 1000 copies of cell-surface CD7 (see, e.g., Figure 1a of Aandahl, EM et al. J Immunol. 2003. 170:2349-2355 for guidance regarding such determinations).

[0332] 17. The ligand of any one of the preceding aspects, wherein the cell is a leukemia-initiating cell (LIC).

[0333] 18. The ligand of any one of the preceding aspects, wherein the cell is a leukemic cell, e.g., an AML or T-ALL cell.

[0334] 19. The ligand of any one of the preceding aspects, wherein the cancer cells are T cells and NK cells are spared from killing in the patient.

[0335] 20. The ligand of any one of the preceding aspects, wherein the ligand kills no more than 70% (e.g., no more than 80, 90, or 95%) of NK cells in a standard in vitro cell killing assay.

[0336] 21. The ligand of any one of the preceding aspects, wherein the Fc region is human Fc.

[0337] 22. The ligand of any one of the preceding aspects, wherein the Fc region is wild-type Fc.

[0338] 23. The ligand of any one of the preceding aspects, wherein the Fc region is a human IGHG1*01 or IGHG1*02 nucleotide sequence.

[0339] 24. The ligand of any one of the preceding aspects, wherein the cancer is acute myeloid leukemia (AML), T-ALL (e.g., patient-derived T-ALL), peripheral T-cell lymphoma (PTCL), or T-cell prolymphocytic leukemia (TPLL).

[0340] Optionally, the AML is M1 / M2 AML. Optionally, the cancer is mixed lineage leukemia (MLL)-rearranged human acute lymphoblastic leukemia.

[0341] Optionally, the cancer is CD7 + It is a cancer mediated by immune cells (e.g., T cells).

[0342] Optionally, the cancer is lymphoblastic leukemia (LL) (e.g., ALL or acute lymphoblastic leukemia), cutaneous T-cell lymphoma (CTCL), or melanoma. Optionally, the cancer is relapsed T-ALL or AML.

[0343] Optionally, the cancer is liver cancer. Optionally, the cancer is selected from melanoma, Merkel cell carcinoma, non-small cell lung cancer (squamous and non-squamous), renal cell carcinoma, bladder cancer, head and neck squamous cell carcinoma, mesothelioma, virus-induced cancers (such as cervical cancer and nasopharyngeal carcinoma), soft tissue sarcoma, hematological malignancies such as Hodgkin's disease and non-Hodgkin's disease, and diffuse large B-cell lymphoma.

[0344] 25. The ligand of any one of the preceding aspects, wherein the AML is CCAAT / enhancer binding protein alpha (CEBPA) mutated AML.

[0345] Optionally, the patient is homozygous for the CEBPA mutation.

[0346] 26. The patient has HLA-DR + CD7 + CD13 + CD14 - CD15 + CD33 + CD34 + and wherein the cancer is AML, e.g., CEBPA AML.

[0347] 27. The ligand of any one of the preceding aspects, wherein the human is an adult.

[0348] For example, an adult is at least 18, 20, 30, 40, 50, 60, 70, 80, or 90 years of age.

[0349] 28. The ligand of any one of the preceding aspects, wherein the human is an infant.

[0350] For example, the human is a child, e.g., a human under the age of 18, e.g., under the age of 17, 16, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, or 1 year.

[0351] 29. The ligand of any one of the preceding aspects, wherein the patient is suffering from a first or second recurrence of the cancer, for example after previous treatment with a chemotherapeutic agent.

[0352] In one example, the agent comprises an immune checkpoint inhibitor, such as an inhibitor described herein.

[0353] 30. The ligand of any one of the preceding aspects, wherein the patient has previously received nelarabine.

[0354] 31. The ligand of any one of the preceding aspects, wherein the ligand and nelarabine are administered to the patient simultaneously or sequentially.

[0355] The present invention may allow for the administration of lower doses than standard treatment with, for example, nelarabine.

[0356] 32. The ligand of any one of the preceding aspects, wherein the ligand is administered to the patient simultaneously or sequentially with hematopoietic stem cell transplantation.

[0357] In one example, the transplant is an allogeneic transplant.

[0358] In one example, the ligand is administered no more frequently than once every two or four weeks. In one example, the ligand is administered every other week, every month, or every week.

[0359] 33. The ligand of any one of the preceding aspects, wherein treating reduces progression of cancer in the patient.

[0360] 34. The ligand of any one of the preceding aspects, wherein treating enhances cancer survival in a human patient.

[0361] 35. The ligand of any one of the preceding aspects, wherein treating causes cancer remission in the patient.

[0362] 36. The ligand of any one of the preceding aspects, wherein the ligand mediates ADCP in a standard ADCP test.

[0363] 37. The ligand has an EC in the range of 10-500 pM (e.g., 10-500 or 100 pM). 50 The ligand of any one of the preceding aspects, wherein the ligand mediates CDC killing of CEM cells in an in vitro CEM cell killing assay.

[0364] CEM cells are well-known human T-ALL cell lines. In one example, the CEM cells in the assay are in the presence of human complement (for example, CEM cells are mixed with human serum containing complement proteins). When evaluated against a control that uses non-cancerous human cells ("normal cells") instead of CEM cells, in one example, the ligand preferentially mediates the killing of cancer cells over normal cells. The normal cells can be cells of cancer patients.

[0365] Optionally, in the assay, the ligand is 50 It mediates killing of CEM cells by 90-100%.

[0366] 38. The ligand has an EC in the range of 10-500 pM (e.g., 10-500 or 100 pM). 50 The ligand of any one of the preceding aspects, wherein the ligand mediates ADCP killing of CEM cells in an in vitro CEM cell killing assay.

[0367] CEM cells are well-known human T-ALL cell lines. In one example, the CEM cells in the assay are in the presence of human complement (for example, CEM cells are mixed with human serum containing complement proteins). When evaluated against a control that uses non-cancerous human cells ("normal cells") instead of CEM cells, in one example, the ligand preferentially mediates the killing of cancer cells over normal cells. The normal cells can be cells of cancer patients.

[0368] Optionally, in the assay, the ligand is 50 It mediates killing of CEM cells by 90-100%.

[0369] In one embodiment, the ligand has an EC 50 and mediates ADCC killing of CEM cells in an in vitro CEM cell killing assay.

[0370] CEM cells are well-known human T-ALL cell lines. In one example, the CEM cells in the assay are in the presence of human complement (for example, CEM cells are mixed with human serum containing complement proteins). When evaluated against a control that uses non-cancerous human cells ("normal cells") instead of CEM cells, in one example, the ligand preferentially mediates the killing of cancer cells over normal cells. The normal cells can be cells of cancer patients.

[0371] Optionally, in the assay, the ligand is 50 It mediates killing of CEM cells by 90-100%.

[0372] In one embodiment, the ligand has an EC 50 and mediates trogocytic killing of CEM cells in an in vitro CEM cell killing assay.

[0373] CEM cells are well-known human T-ALL cell lines. In one example, the CEM cells in the assay are in the presence of human complement (for example, CEM cells are mixed with human serum containing complement proteins). When evaluated against a control that uses non-cancerous human cells ("normal cells") instead of CEM cells, in one example, the ligand preferentially mediates the killing of cancer cells over normal cells. The normal cells can be cells of cancer patients.

[0374] Optionally, in the assay, the ligand is 50 It mediates killing of CEM cells by 90-100%.

[0375] 39. The ligand of any one of the preceding aspects, wherein the ligand specifically binds to human CD7 and cynomolgus monkey CD7.

[0376] 40. The ligand of any one of the preceding aspects, wherein said treatment does not cause cytokine storm syndrome in the patient.

[0377] 41.Cancer cells express CD7 高 The ligand of any one of the preceding aspects, wherein the ligand is a cell.

[0378] 42. A regimen for treating or preventing cancer in a human patient, the regimen comprising administering a treatment according to any preceding aspect, wherein the ligand is an antibody, and wherein first, second, and third doses of the antibody are administered to the patient, administered 1 to 7 days apart, the total doses being 0.1 to 100 mg / Kg of antibody.

[0379] The invention also provides a method of treating or preventing cancer in a human patient comprising administering to the patient a ligand of any one of the preceding aspects.

[0380] The present invention also provides methods for detecting CD7 in a cell sample (e.g., in a blood or serum sample). + A method for detecting cells, the method comprising mixing the sample with a ligand of the present invention, whereby the ligand detects CD7 in the cell sample. + and detecting or quantifying the ligand-bound cells.

[0381] Instead of, or as an example of, a "standard test," the test may be the method used in the examples herein. [Example]

[0382] We have identified antibodies that effectively target human CD7 and may be useful in treating cancers such as T-ALL.

[0383] A particularly desirable antibody, G09, when formatted as an IgG1 containing the E430G mutation (also referred to as "G09 E430G"), exhibited human / cynomolgus CD7 cross-reactivity and provided highly potent complement-dependent cytotoxicity (CDC)-dependent killing and potent macrophage-dependent phagocytic activity in vitro, as well as potent tumor cell depletion in whole blood assays. This dataset demonstrated the following for antibodies containing the G09 variable domain: Potent CDC activity (EC) against most non-relapsed or relapsed T-ALL cells tested in vitro 50 = 50-500 pM; approximately 100% killing) -Demonstrated potent ADCP activity against relapsed T-ALL cells in vitro Killed approximately 100% of T-ALL cells in a human whole blood assay Killed tumors in the most severely immune-compromised mice (NSG) Reduced potency in killing human peripheral T cells (50-75%) and NK cells (70-90%) in ex vivo assays

[0384] Example 1 CD7 is expressed during T cell lineage development and is therefore expected to be expressed on all T-ALL blasts. We recognized that binding of an immunocompetent CD7-IgG1 mAb would be expected to result in the depletion of these cells based on CDC, antibody-dependent cellular cytotoxicity (ADCC), and antibody-dependent cellular cytotoxicity (ADCP). Given the importance of blast killing, we sought to ensure a potent depletion effect. A complicating factor was that CD7 is expressed not only on T cells but also on NK cells, potentially depleting effector cells in the ADCC response. Furthermore, patients with T-ALL malignancies undergoing intensive chemotherapy may have low levels of effector cells mediating cytotoxicity. Therefore, we recognized that efficient depletion of T-ALL cells cannot be achieved solely through ADCC during anti-CD7 therapy. Although the reduction in complement activity after chemotherapy is essentially transient, complement activation appears to be effective in ALL patients for a certain period of treatment (15) (Figure 16).

[0385] We hypothesized that strategies to increase CDC activity could be utilized to enhance the efficacy of CD7-targeted therapy in patients with T-ALL malignancies by enhancing the potency of cytotoxicity against CD7.

[0386] The classical pathway of CDC relies on the binding of C1q to cell surface antigen-bound antibodies. The ability of human antibodies to induce CDC depends on their isotype, with potency ranking as follows: IgM >> IgG3 ≥ IgG1 >> IgG2 = IgG4. Because IgM and IgG3 are difficult to manufacture, IgG1 is the optimal Fc isotype for therapeutic antibody-mediated CDC. Recently, several point mutations in the IgG1 CH3 domain, including E345R, E430G, and other variants, have been identified, which cause the immunoglobulin to form hexameric structures upon antigen binding (16). These hexameric structures potently enhance CDC activity by 2–3 orders of magnitude and can induce CDC at levels comparable to those of native IgM.

[0387] To evaluate these IgG1 variants, we introduced mutations into the CD7-specific benchmark antibody RFT2 (10, 17) and evaluated them in a CDC assay against CCRF-CEM cells (referred to herein as CEM cells, available from the American College of Cancer Research (ATCC) as ATCC® CCL-119™), a CD7-expressing T-ALL cell line, using human serum as a complement source. While the wild-type IgG1 version of the RFT2 antibody had very limited or no killing activity against CEM cells, the three tested IgG1 variants of the RFT2 antibody were found to mediate potent killing of CEM cells (Figure 1). Among them, the RFT2 E345R antibody exhibited the most potent killing activity, with a maximum killing rate of nearly 100% and an EC 50 was less than 1 nM.

[0388] The classical pathway of CDC is predicted to be the primary mechanism of action (MOA) of our lead antibody. Furthermore, we evaluated macrophage-mediated ADCP and neutrophil-mediated trogocytosis. We determined that an anti-CD7 antibody binds to CD7 and initiates cell depletion but does not activate cells. Cytokine release using human whole blood was also evaluated for the lead antibody.

[0389] Methods and Materials a) CDC assay CCRF-CEM cells (also referred to as CEM cells, ATCC® CCL-119) or other T-ALL cells were suspended in assay medium (RPMI1640, 10% hiFBS) and diluted to 8.75 × 10 4 The cell suspension was plated at 20 μl per well according to the plate map. Serial dilutions of antibodies were added at 10 μl per well according to the plate map. Human complement serum (Sigma, S1764) was reconstituted with 1 ml of ice-cold water. The reconstituted serum medium was diluted 1 to 3 with medium, and 10 μl of diluted serum was added to each well of the plate. The plate was incubated at 37°C and 5% CO2 for 2 hours, equilibrated to room temperature for 15 minutes, and then 40 μl of reconstituted CellTiter-Glo® (Promega) was added per well. The plate was covered with an optical plate seal and agitated on a plate shaker at 300 rpm for 2 minutes to ensure all cells were lysed. It was then read on the Envision plate reader using the CellTiter-Glo® 384 protocol. The luminescent signal generated from the mixture is proportional to the amount of ATP present. The maximum kill rate was calculated from four triplicate samples using the following formula:

number

[0390] b) ADCP assay Culture the cells in RPMI + 10% FBS supplemented with 100 ng / mL M-CSF (Peprotech) for 710 days to obtain 2 x 10 cells in a 12-well plate.5 Monocyte-derived macrophages (MDMs) were generated by differentiation of primary human macrophages from monocytes seeded at 100 cells / well. Macrophages were labeled with 2 μM CellTrace™ Violet (CTV; ThermoFisher Scientific) the day before the assay and placed overnight in RPMI supplemented with 10% ultra-low IgG FBS (Life Technologies) and 50 ng / mL M-CSF. CEM cell lines were maintained in culture in RPMI + 10% FBS. For experiments using patient-derived T-ALL xenograft cells (PDTALL-39, -46, -47, and -Ad2R), stocks were retrieved from the freezer on the day of the assay. Normal primary T cells were freshly isolated from peripheral blood mononuclear cells (PBMCs) matched to the macrophage donor by negative selection (using the Stemcell Technologies Human T cell Isolation Kit) immediately prior to the assay. Target cells (CEM, T-ALL, or normal T cells) were labeled with 2 μM CellTrace™ CFSE (ThermoFisher Scientific) and resuspended in PBS.

[0391] Serial dilutions of anti-CD7 or control antibodies were prepared in 25 μL of PBS at 2x final concentration: 4x10 6 cells / mL (i.e., 1x10 5 25 μL of CFSE-labeled target cells (5 x 10 cells) were pre-opsonized by incubating with different dilutions of anti-CD7 antibody in PBS for 0.5–1 h on ice. As controls, cells were mock-opsonized (no antibody) or opsonized with dilutions of the appropriate human IgG1 isotype control antibody. Cells were then washed once with excess assay medium containing RPMI + 10% Ultra-Low IgG FBS (to remove unbound antibody), resuspended in assay medium, and diluted to 5 x 10 cells. 4 The medium was aspirated from the 12-well plate of CTV-labeled macrophages, and 800 μL of the target cell suspension was added to replicate wells (4 x 10 4(to obtain 10 target cells / well and an effector:target ratio of 5:1) and incubate at 37 °C, 5% CO for 2.5 h to allow for phagocytosis of target cells.

[0392] Nonadherent cells were collected and combined with adherent macrophages, which were detached using Accutase (Life Technologies) and gentle cell scraping. Cells were then washed with PBS and stained with LIVE / DEAD fixable near-infrared (IR) dead cell stain (30 min at 4°C; ThermoFisher Scientific), then washed again with PBS and fixed with 4% paraformaldehyde (PFA; Affymetrix) for 20 min at room temperature. For analysis, cells were resuspended in PBS containing 2 mM EDTA. Compensation was performed using single-labeled cells and live / dead near-infrared-labeled ArC™ amine-reactive beads (Molecular Probes). Flow cytometry acquisition was performed on an Attune NXT flow cytometer using 405, 488, and 637 lasers (ThermoFisher Scientific), and data were analyzed using FlowJo v10.0.8r1 (FlowJo LLC). Phagocytosis was calculated from duplicate samples using the following formula:

number

[0393] c) Human Whole Blood Assay Regarding the use of anticoagulants, we decided to use low concentrations of hirudin instead of standard heparin, which led to successful results in cynomolgus monkey studies. Plasma extracted from hirudin-treated blood mediated CDC of CEM cells in vitro, whereas plasma from heparinized blood did not (data not shown). Final concentrations of 1741G09 E430G, isotype control, rituximab, and ofatumumab were used as in the study.

[0394] Whole blood cultures of three donors were performed in TruCulture® tubes (Myriad RBM, USA). TruCulture® (TC) tubes were filled with freshly prepared medium ± antibodies / controls. Tubes were stored at -20°C (<7 days) and used after thawing and thorough mixing (adjusted to room temperature). Within 60 minutes after phlebotomy, freshly drawn blood containing hirudin as an anticoagulant was transferred to TruCulture® tubes and incubated at 37°C in a block thermostat for 20 hours.

[0395] At the end of the culture period, immune cells were analyzed by flow cytometry. To accurately count the number of cells, a defined amount of cultured whole blood was added to a BD TruCount® tube (CE, IDV). To confirm the immune status, a 7-color immunophenotyping panel was used (T cell CD45 + CD3 + , NK cell CD45 + CD3 - CD16 + CD56 + , B cell CD45 + CD3 - CD19 + , monocyte CD14 +)). Cells were stained using the no-wash protocol provided by the antibody manufacturer (Miltenyi Biotec; 7-Color Immunophenotyping Kit; #130-098-456). Briefly, at the end of the incubation period, the TruCulture® tubes were centrifuged, 2 ml of supernatant consisting of TruCulture® medium and plasma was removed, and the blood cells were thoroughly resuspended. 50 μl of resuspended immune cells were transferred to a TruCount® tube (containing the specified number of beads), and detection antibody was added and incubated for 10 minutes at 2-8°C. Hemolysis solution was added to remove red blood cells (20 minutes at room temperature). Cells were stored at 2-8°C until analysis by flow cytometry. Samples were acquired on a FACSMelody™ flow cytometer (BD Bioscience).

[0396] Data were analyzed by FlowJo (version 10.4.1; FlowJo, LLC). The number of cells per volume was calculated according to the following formula:

number

[0397] d) Antigen capture ELISA for quantification of serum 1741G09 A 96-well high-binding plate was coated overnight at 4°C with 50 μl of 2 μg / ml recombinant soluble human CD7 protein (Sino Biologicals, 11028-H08H) diluted in PBS. Using a plate (wash buffer) washer, the plate was washed 3 times with 300 μl / well of PBS + 0.1% Tween, blocked with 200 μl per well of PBS + 1% BSA at room temperature for at least 1 hour, and then washed again. Serially diluted standards, samples, and controls were added to the plate at 50 μl / well. After incubation at room temperature with shaking at 300 rpm for 1 hour, the plate was washed 5 times with 300 μl / well of wash buffer. HRP-conjugated anti-human IgG diluted 1:30,000 in PBS + 1% BSA was added at 50 μl / well. After incubation at room temperature with shaking at 300 rpm for 1 hour, the plate was washed 5 times with 300 μl / well of wash buffer. 50 μl / well of TMB substrate was added to the plate and incubated for 30 minutes at room temperature. Optical density was determined within 5 minutes using a microplate reader set at 450 nm and corrected at 640 nm. Data was imported into Softmax Pro and regressed using 4PL curve fitting with a weighting factor of 1 / y.

[0398] e) Cytokine release assay High-binding plates were coated with serial concentrations of 1741G09 E430G and other control antibodies, incubated overnight at room temperature, and air-dried with the lid removed. Plates were washed with PBS and blocked with cell culture medium by allowing them to sit for 30 minutes, then aspirated immediately before adding cells.

[0399] Add the warm medium dropwise to the vial containing cryopreserved human PBMCs, then culture the cells at a high density (0.5–1 x 10 7The PBMCs were pre-incubated at 37°C, 5% CO2 for 24 hours at 200 μl / well of PBMC cell culture medium (RPMI 1640, 10% FBS, 1% penicillin / streptomycin, 2 mM L-glutamine) and then incubated at 37°C, 5% CO2 for 1 hour. The PBMC cell culture medium (200 μl / well, 2 x 10 5 Transfer the cells (number of cells / well) to the immobilization test agent in the pre-prepared plate and incubate at 37°C with 5% CO. 2 The plates were centrifuged at 200 g for 10 minutes, after which the cell culture supernatants were collected and stored at −80°C until required for analysis.

[0400] Luminex assessment of cytokine levels in cell culture supernatants was performed according to the manufacturer's protocol. Five-point nonlinear regression analysis was used to interpolate the induction level of each cytokine from the standard curve. The interpolated data were then normalized to the unstimulated control.

[0401] f) Transient protein expression Transient protein expression was performed: 12 days after transfection, the cultures were harvested and the clarified harvest was transferred to the purification team.

[0402] g) Stable pooled protein expression Stable pooled protein expression was performed.

[0403] discovery a) Lead generation The discovery efforts of the anti-CD7 program consisted of immunization, hybridoma generation, antibody screening, biological evaluation of antibody potency, and biophysical characterization, as shown in Figure 2 .

[0404] For the evaluation of drug toxicity, antibodies with cross-reactivity with human and cynomolgus CD7 antigens were required. Human and cynomolgus CD7 proteins share only 86% identity. To ensure this cross-reactivity, Kymice (26) were co-immunized with human and hybridoma antigens. Titers were determined by flow cytometry analysis to quantify the degree of polyclonal sera binding to human and cynomolgus CD7-expressing CHO cells. Sera were collected at 10 4 Mice with detectable binding titers at dilutions above 100 were used for hybridoma generation.

[0405] Hits from the primary, secondary, and tertiary in vitro screening had four selection criteria: (i) high-level binding to human CD7, (ii) specificity for both human CD7 and cynomolgus CD7, (iii) potent T-ALL cell depletion, and (iv) inability to induce cytokine release from T cells.

[0406] Hybridoma supernatants were used for primary and secondary screening to identify binders. The primary screening consisted of a high-throughput LiCOR-based cell binding assay to include all potential cross-reactive binders. Secondary screening using flow cytometry was used to confirm cross-reactivity, as shown in Figure 3. Human and cynomolgus CD7 binding to CEM cells and recombinant cynomolgus CD7 CHO cells was quantified by geometric mean fluorescence intensity (geometric mean) using flow cytometry. CEM cells are a human T-ALL cell line that expresses endogenous CD7.

[0407] Seven hits that showed strong, cross-reactive binding to human and cynomolgus CD7 were further investigated for relative binding to both antigens by SPR measurements. Five leads (1730C2, 1734F05, 1738B07, 1741G09, and 1896A03) were confirmed to exhibit similar binding to CD7 from both species, as shown in Figure 4 and Table 1. Data were compared to the benchmark RFT2 IgG1, a chimeric antibody with murine variable and human constant regions.

[0408] The DNA sequences of the hits were obtained from hybridoma clones, and the constant regions were reformatted into human IgG1 with the E345R mutation. The E345R mutation in the IgG1 CH3 region has been shown to enhance complement-dependent cytotoxicity (CDC) activity. As shown in Figure 1, RFT2 IgG1 E345R, but not RFT2 IgG1, was able to potently kill CEM cells in a CDC assay (Figure 1). The IgG1 E345R reformatted antibodies were expressed and tested in a CDC assay using human serum as a complement source and CEM cells as target cells. Figure 5 and Table 2 show that the two leads, 1741E04 E345R and 1741G09 E345R, have 100% maximum killing and a potency of less than 200 pM. The former binds only to human antigens, while the latter binds to both human and cynomolgus monkey antigens. These leads were also generated as wild-type IgG1 and tested in a CDC assay. No significant killing was observed at concentrations above 10 nM (data not shown).

[0409] To assess whether the three leads could mediate phagocytosis by macrophages, they were tested in an ADCP assay using peripheral blood monocyte-derived macrophages as the source of phagocytes and CEM cells as target cells. As shown in Figure 6, lead 1741G09 E345R, which showed the highest activity in CDC, also showed the highest activity among these three leads in this assay.

[0410] Double staining is generally considered to correlate with the internalization (or at least placement inside the phagocytic cup) of target cells into effector cells. Experiments used an Amnis Imagestream (Merck Millipore) to capture images of cells at the endpoint of the phagocytic assay, allowing for differentiation of internalized from extracellularly bound particles, and analyzed using software tools to demonstrate phagocytosis of target cells. Similar techniques have been described elsewhere for this purpose (27). Furthermore, the use of Accutase for cell harvesting by enzymatic detachment at the endpoint of the assay may prevent cell-cell contact, which could be misinterpreted as a phagocytic (internalization) event.

[0411] During the screening process, another variant, IgG1 E430G, was identified, which has been reported to enhance CDC activity (28). The 1741G09 E430G variant had a similar killing activity to the 1741G09 E345R variant in the test (Figure 7A). 1741G09 E430 had a half-life of 136.7 hours in NSG mice (Figure 7B), which is within the normal range for human IgG1 in such mice. However, 1741G09 E345R had a very short half-life of only 20.9 hours, likely due to its greater tendency to aggregate. Based on this observation, 1741G09 E345R was replaced with 1741G09 E430G as the lead molecule, and the CDC and ADCP activities of this molecule were further evaluated.

[0412] b) Lead in vitro profile Antibody discovery efforts identified the lead antibody, 1741G09 E430G, based on binding, cell depletion assays, and molecular half-life. To evaluate its killing activity against different T-ALL cell lines, the lead was tested in a CDC assay against 14 different T-ALL cell lines, including two commercially available in vitro-passaged cell lines (CEM and HSB2), six in vivo-passaged non-relapsed cell lines (PDTALL8, PDTALL11, PDTALL12, PDTALL13, PDTALL16, and PDTALL18), and six in vivo-passaged relapsed cell lines (PDTALL39, PDTALL46, PDTALL47, PDTALL51R, PDTALLAd2R, and PDTALLAd4) (29). The clinical and genetic profiles of these cell lines are shown in Table 7. 1741G09 E430G was shown to effectively kill the majority of cell lines (11 of 14 cell lines) (Figure 8), with potencies ranging from approximately 50 to 500 pM (Table 3).

[0413] In the assays performed, efficacy and maximum killing correlated with cell surface CD7 expression (Tables 8 and 9). Cell lines could be ranked based on cell surface CD7 expression levels, as shown in Table 3. Reflecting the expression levels, PDTALL47, HSB, PDTALLAd4, PDTALL51R, PDTALL39, PDTALL8, CEM, and PDTALL16, which have high or moderate CD7 expression levels (relative to CEM cells), had the highest maximum killing of approximately 100% and an EC of 50 pM to 200 pM at 200 pM. 50 PDATLAd2R, PDATALL12, and PDTALL11, which have low to moderate expression levels, had maximal killing of approximately 90% and EC values ​​of less than 400 pM. 50 PDTALL13 and PDTALL18, which have very low expression levels, had maximal killing of less than 70% and EC values ​​of less than 600 pM. 50 Considering the CD7 expression level, PDTALL46 had a higher level than PDTALLAd2R. Both cell lines had a similar EC value of approximately 350 pM. 50Although PDTALL46 had a lower maximum killing rate than PDTALLAd2R (78% vs. 93%), this is likely due to the higher expression levels of complement regulatory proteins (CRP: CD46, CD52, and CD59) in the former than in the latter (Table 9). CRP has been reported to function as an antagonist of complement activity on the cell surface. In summary, these results suggest that antibody efficacy in CDC activity is primarily dependent on target antigen expression on the cell surface and may be regulated by CRP.

[0414] As shown in Figure 9, the lead was also tested in an ADCP assay using different T-ALL cell lines. Human peripheral monocyte-derived macrophages were differentiated and used to evaluate the ADCP activity of the 1741G09 E430G molecule against T-ALL cell lines. Of the five cell lines tested, four showed approximately 100% phagocytosis by macrophages. 1741G09 E430G only depleted 80% of the relapsed cell line PDTALL46 cells in the CDC assay. However, in the ADCP assay, it mediated nearly 100% phagocytosis of the same cells. On the other hand, 1741G09 E430G only mediated 75% phagocytosis of another relapsed cell line, PDTALLAd2R cells, in the ADCP assay. However, in the CDC assay, 1741G09 E430G depleted approximately 95% of the same cells. These data support the theory that multiple mechanisms of action can complement each other and mediate effective killing of T-ALL cells.

[0415] c) Cytokine release profile Because CD7 is expressed on peripheral T and NK cells, antibody binding can activate these cells. Anti-CD7 mAbs have been reported to be mitogenic, increase calcium flux, and increase IL-2 production (30). However, the anti-CD7 mAb RFT-2 did not pose significant concerns about cytokine storm in a previous clinical trial for the treatment of renal transplantation (10). To evaluate the ability of the 1741G09 E430G antibody to stimulate human peripheral blood mononuclear cells (PBMCs), we tested the effect of the molecule on cytokine release from PBMCs after fixation by air drying.

[0416] 1741G09 E430G was evaluated in PBMCs from five individual donors, as measured by the release of specific cytokines and chemokines. Matched isotype controls were used to monitor nonspecific activation of PBMC cultures. Superagonist anti-CD28 and anti-CD3 (OKT3) antibodies were used as positive controls.

[0417] Among the cytokine panel, six cytokines were slightly increased in 1741G09 E430G-treated samples compared to samples treated with IgG1 at the highest test concentration (60 μg / ml) (IL8, 2.8x; MIP-1α, 2.9x; TNFα, 4.2x; IL1β, 4.6x; IL6, 1.7x). The IgG1 E430G isotype control also slightly increased these cytokine release, suggesting that the increase may not be CD7-specific. The positive controls, anti-CD3 (clone OKT3), and the superagonist anti-CD28 induced distinctive cytokine profiles from all donors, confirming that the assay performed as expected and that there was much higher systemic induction than any of the test articles or isotype controls (Figure 10 and Table 4).

[0418] Overview of discovery activities Seven leads were selected from the primary and secondary cell-binding screens. Five were confirmed to have cross-reactivity with human and cytokine CD7 proteins by measuring binding to soluble CD7 by SPR. These five leads were reformatted to human IgG1 E345R Fc and tested in CDC and ADCP assays on CEM cells. The 1741G09 E345R antibody was selected as the lead molecule because it had the most potent CDC and ADCP activity. The lead antibody was further reformatted to IgG1 E430G Fc, taking into account the better half-life of this variant. The potent CDC activity of the 1741G9 E430G antibody was also demonstrated in different T-ALL cell lines, with up to 100% killing and potent efficacy (EC ) in most cell lines. 50 = 50-500 pM). 1741G09 E430G mAb did not significantly increase cytokine release from PBMCs when compared with the superagonists anti-CD3 or anti-CD28.

[0419] c) Biological evaluation In vitro CDC assay for PBMC T cells and NK cells Peripheral T cells and NK cells express CD7 and are therefore highly susceptible to depletion mediated by lead molecules. Peripheral T cells and NK cells, respectively, were isolated from two different donors and used to evaluate the CDC activity of 1741G09 E430G. While no significant T cell depletion was detected (Figure 11A), up to 65% of NK cells were depleted, compared with the EC observed for T-ALL cell depletion (Table 2). 50 EC value of approximately 300 pM 50 In particular, NK cells expressed higher levels of CD7 and lower levels of CRP than T cells (Fig. 17).

[0420] Ex vivo human whole blood assay To assess whether 1741G09 can deplete normal peripheral T cells and NK cells in a more physiological context, we evaluated the antibody's effect on human whole blood using a TruCulture®-based assay. The 1741G09 E430G antibody was used at concentrations ranging from 0.01 to 100 μg / ml and compared with an isotype control (100 μg / ml). Two positive controls, rituximab and ofatumumab (100 μg / ml), were also included. Whole blood and antibody were incubated for 20 hours before cell depletion assessment. Three human donors, designated A, B, and C, were used in the assay. The number of cell subsets per μl of sample was determined by flow cytometry. The results are shown in Figure 12. The assay was performed using Hotscreen.

[0421] Cultures treated with the isotype control showed very similar cell counts compared to the negative control across the four cell types measured: B cells, T cells, NK cells, and monocytes. Ofatumumab and rituximab are therapeutic antibodies targeting B cells and were included as positive controls for specific cell depletion. Indeed, B cells were almost completely eliminated throughout the culture. Concentration-dependent depletion of T cells and NK cells by 1741G09 E430G was observed in all three donors. T cell and NK cell numbers were reduced compared to the negative (no antibody) or isotype control. The 1741G09 E430G antibody depleted NK cells by up to 90% and T cells by up to 75%. The antibody was more potent for NK depletion than for T cell depletion. 1741G09 E430G

number

[0422] The decrease in T cells is due to CD4 + , and CD8 + The ratio of T cells to B cells did not appear to be affected (data not shown). There were no significant changes in the numbers of B cells and monocytes, indicating the specificity of the cell depletion activity of 1741G09 E430G.

[0423] In CDC assays using human serum and isolated NK or T cells, we observed up to 65% depletion of NK cells, but no significant T cell depletion (Figure 11). The higher maximum depletion rates obtained from the human whole blood assay (90% of NK cells and 75% of T cells) (Figure 12) suggest that there are other effector cell components involved in cell depletion in this assay.

[0424] Ex vivo human whole blood assay spiked with T-ALL cells Tumor cell depletion should ideally be assessed in blood samples from T-ALL patients. However, obtaining such samples is difficult due to the rarity of patients and the difficulty of maintaining primary T-ALL cells in culture. To circumvent this problem, we spiked blood samples from healthy donors with CEM cells, a T-ALL cell line. We then assessed the viability of CEM cells as well as NK cells, T cells, and B cells from healthy donors.

number

[0425] 1741G09 E430G significantly reduced CEM cell counts in spiked whole blood samples. The 1741G09 wild-type antibody was included as a comparison with the CDC-enhanced version. Unlike the 1741G09 E430G antibody, the wild-type Fc version of 1741G09 was shown not to significantly deplete CEM cells in CDC assays (data not shown). In whole blood assays, both the wild-type and E430G versions of 1741G09 significantly reduced CEM cell counts, but the E430G version was much more potent (average depletion rate 96.2% vs. 66.8%). The depletion of CEM cells by the 1741G09 wild-type antibody suggests that other effector components besides CDC are involved in the process. As expected, ofatumumab significantly reduced B cell counts without affecting CEM, NK, or T cell counts.

[0426] The numbers of NK cells and T cells were also significantly reduced by 1741G09 E430G, but not by 1741G09 wild-type. The depletion of NK cells (75%) and T cells (52%) was not as high as that of CEM cells (96%). This data confirmed that the effect of the 1741G09 E430G antibody was related to the CD7 expression level of target cells (CEM cells > NK cells > T cells, Figure 21), and that its effect on cell depletion was greater than that of the wild-type Fc version.

[0427] Effect of anti-C5a antibody on lead-induced cell depletion To better understand the mechanism of action of the lead, we evaluated the effect of an anti-complement 5a (C5a) antibody on cell depletion induced by 1741G09 E430G, 1741G09 wild-type, and ofatumumab. The complement pathway can be divided into the activation pathway and the lytic pathway (Figure 18) (31). C5 can be divided, via C3, into C5a (activation pathway) and C5b (lytic pathway). C5a has chemotactic and anaphylactic properties and plays an important role in the innate immune response (smooth muscle contraction, vascular permeability, degranulation of mast cells and basophils, and directed migration of neutrophils, eosinophils, basophils, and monocytes). The antibody used in this assay can inhibit C5a binding to the C5a receptor without interfering with C5 cleavage (32).

[0428] Both wild-type and E430G forms of 1741G09 reduced the number of CEM cells (49% and 90%, respectively) (Figure 14). Addition of anti-C5a antibody did not affect the depletion of CEM cells induced by either form. Because CEM cell depletion was not blocked by anti-C5a, the mechanisms of action underlying these two forms of 1741G09 are expected to be quite different. The lack of inhibition of CEM depletion by 1741G09 E430G supports the hypothesis that this antibody acts via a lytic pathway. Because NK cells were rapidly depleted by CDC upon addition of 1741G09 E430G, E430G-driven depletion is likely due to NK cell-mediated ADCC. In contrast, the wild-type form does not deplete NK or CEM cells by CDC (data not shown). Thus, depletion of CEM cells by wild-type is likely via NK cell-mediated ADCC, macrophage-mediated phagocytosis, or neutrophil-mediated trogocytosis, none of which appear to be inhibited by anti-C5a antibodies in this experimental setting.

[0429] The 1741G09 E430G antibody reduced the numbers of NK cells and T cells (70% and 49%, respectively). In contrast to CEM cells, the addition of anti-C5a reversed the 1741G09 E430G-induced T cell depletion to cell numbers similar to those of the isotype control (Figure 14), suggesting that T cell depletion by 1741G09 E430G is due to the inflammatory pathway of complement activation, rather than the classical or lytic pathway. This is consistent with the finding that 1741G09 E430G did not significantly deplete PBMC T cells in the CDC assay. The addition of anti-C5a also partially reversed the 1741G09 E430G-induced NK cell depletion, suggesting that this molecule depletes NK cells via both the activation and lytic pathways. The effect of ofatumumab can be partially reversed by anti-C5a. However, it should be noted that this experiment was performed in only one donor. Incubating whole blood with 1741G09 in the presence of a lytic pathway inhibitor such as eculizumab will confirm the requirement for this pathway.

[0430] In vivo xenograft studies Anti-CD7 antibodies have previously shown efficacy in xenograft models. (33) To evaluate the efficacy of the 1741G09 E430G antibody, we tested the antibody in a pediatric relapsed PDX T-ALL xenograft model.

[0431] NSG mice were given 10mg / Kg 3 times a week starting on day 3, followed by 5x10 6PDT ALL46 cells were administered until the end of the study. Because no antibodies against anti-CD7 that did not compete with 1741G09 were identified, blood samples were taken at serial time points and human CD5 expression levels in the blood were assessed by flow cytometry. Kaplan-Meier plots showed a significant increase in survival in the 1741G09 E345R-treated group compared with the isotype control-treated group (Figure 15). NSG mice are severely immunocompromised, lacking T cells, B cells, and NK cells, as well as complement activity and macrophage deficiencies. Neutrophil-mediated trogocytosis in the presence of 1741G09 E430G (34) likely mediated the observed depletion in this mouse model.

[0432] Development Potential As part of the development feasibility evaluation of candidate 1741G09 E430G, three pre-CMC studies were performed: an initial formulation screen, an accelerated / real-time study, and a forced degradation study.

[0433] In the initial formulation screen, candidates were dissolved in over 12 different platform formulation buffers and subsequently assessed for colloidal and conformational stability (by intrinsic fluorescence and SLS, respectively). m and T agg (Determination of ). Two platform buffers demonstrated favorable stability and were retained for accelerated and real-time studies. Candidates were prepared at 1 mg / ml in each of the two formulation buffers or in PBS as an additional control and incubated for 2 weeks at 5°C, 25°C, and 37°C. Triplicate experiments were performed for each condition. The following quality attributes were measured: aggregates by SEC-HPLC and DLS, fragmentation by SDS-PAGE, and activity by CDC functional assay. No significant changes in any of the quality attributes or activity were observed after 2 weeks of incubation at any of the test conditions. Furthermore, no changes in the same quality attributes were observed after candidates were subjected to freeze / thaw stress and stored at -70°C for at least 18 hours, followed by thawing at room temperature for 3 hours.

[0434] Finally, forced degradation studies were performed on the candidate at 1 mg / ml in PBS: forced deamidation (72 h incubation at 37°C in 1% ammonium bicarbonate), forced oxidation (24 h incubation at 25°C in 0.03%, 0.003%, and 0.0003% H2O2), and acidic holding (3 h incubation at 25°C and pH 2.8). Activity by CDC functional assay was tested in duplicate before and after stress conditions. No significant changes were observed after forced deamidation, acid holding, and forced oxidation at low and moderate levels of H2O2, whereas oxidation at high H2O2 concentrations resulted in an 87% loss of activity and an EC 50 showed a four-fold increase.

[0435] In line with in silico predictions, experimental data indicated low risk from a developability perspective. The candidate could be purified by the platform Protein A process with suitable product quality (less than 1% aggregates, nominal concentration of 10 mg / ml in PBS (pH 7.4) as the platform buffer). Initial formulation screening showed that the platform formulation buffer could further improve colloidal and conformational stability, while accelerated and real-time conditions did not affect product quality or activity after 2 weeks. Forced degradation studies revealed no effect from freeze / thaw, acidic storage, or deamidation, resulting in an overall low risk. Risk was considered low / moderate for oxidation, which could be managed by formulation with the addition of sacrificial antioxidant excipients.

[0436] Overall, the candidates demonstrate low risk from a pre-CMC perspective based on the computational and experimental datasets presented here.

[0437] Lead molecule expression The lead molecule of the CD7 project, 1741G09 HuIgG1 E430G, a C-terminal lysine-clipped light chain Phe variant (1741G09 E430G), was expressed in both transient and stable pool expression systems.

[0438] 1741G09 E430G was expressed in a transient system at three different scales: 30 ml, 200 ml, and 2 L. There were no significant differences in cell growth or viability compared to cultures expressing a control antibody. Expression levels were similar at all scales 5 days after transfection, but expression differed at day 12, with expression levels exceeding 600 mg / L at the 30 ml and 2 L scales. Expression plateaued at the 200 ml scale. This difference in expression yield at different scales is not uncommon.

[0439] The expression yield of 1741G09 E430G at the 30 ml and 2 L scale is higher than that of a standard high-expression control antibody co-expressed with all molecules (Figure 18). This is a good early indication that 1741G09 E430G can be expressed at adequate levels. However, anecdotal evidence suggests that molecules highly expressed in transient systems are more likely to generate high-expressing stable cell lines, and it is important to note that the predictability of stable results from transient systems has not been fully evaluated.

[0440] Three cell pools stably expressing 1741G09 E430G were generated. On day 13 of fed-batch culture, the average expression of these pools was 385 mg / L. Stable pool expression of 1741G09 E430G was 43% of that observed in a control antibody pool generated in parallel. Pools likely contained a mixture of high- and low-expressing clones, and therefore, by selecting appropriate clones, good yields could likely be obtained. In fact, for an unrelated molecule, minipools were generated from pools expressing approximately 50% of the control, achieving a greater than 5-fold improvement in expression.

[0441] References 1.Ware RE,Haynes BF.T cell CD7 mRNA expression is regulated by both transcriptional and post-transcriptional mechanisms.Int Immunol.1993 Feb;5(2):179-87. 2.Barcena A,Muench MO,Galy AH,Cupp J,Roncarolo MG,Phillips JH,et al.Phenotypic and functional analysis of T-cell precursors in the human fetal liver and thymus:CD7 expression in the early stages of T-and myeloid-cell development.Blood.1993 Dec 1;82(11):3401-14. 3.Hao Q-L,George AA,Zhu J,Barsky L,Zielinska E,Wang X,et al.Human intrathymic lineage commitment is marked by differential CD7 expression:identification of CD7-lympho-myeloid thymic progenitors.Blood.2008 Feb 1;111(3):1318-26. 4.Reinhold U,Abken H.CD4+CD7-T cells:a separate subpopulation of memory T cells?J Clin Immunol.1997 Jul;17(4):265-71. 5.Ware RE,Hart MK,Haynes BF.Induction of T cell CD7 gene transcription by nonmitogenic ionomycin-induced transmembrane calcium flux.J Immunol Baltim Md 1950.1991 Oct 15;147(8):2787-94. 6.Rabinowich H,Lin WC,Herberman RB,Whiteside TL.Signaling via CD7 molecules on human NK cells.Induction of tyrosine phosphorylation and beta 1 integrin-mediated adhesion to fibronectin.J Immunol Baltim Md 1950.1994 Oct 15;153(8):3504-13. 7.Lee DM,Staats HF,Sundy JS,Patel DD,Sempowski GD,Scearce RM,et al.Immunologic characterization of CD7-deficient mice.J Immunol Baltim Md 1950.1998 Jun 15;160(12):5749-56. 8.Sempowski GD,Lee DM,Scearce RM,Patel DD,Haynes BF.Resistance of CD7-deficient mice to lipopolysaccharide-induced shock syndromes.J Exp Med.1999 Mar 15;189(6):1011-6. 9.Carriere D,Arcier JM,Derocq JM,Fontaine C,Richer G.Antigenic modulation induced by four monoclonal antibodies adsorbed on gold particles(specificity anti-CD4,anti-CD5,anti-CD7,and anti-150-kDa antigen):Relationship between modulation and cytotoxic activity of immunotoxins.Exp Cell Res.1989 May;182(1):114-28. 10.Sharma LC,Muirhead N,Lazarovits AI.Human mouse chimeric CD7 monoclonal antibody(SDZCHH380)for the prophylaxis of kidney transplant rejection:analysis beyond 4 years.Transplant Proc.1997 Mar;29(1-2):323-4. 11.Rappl G,Abken H,Muche JM,Sterry W,Tilgen W,Andre S,et al.CD4+CD7-leukemic T cells from patients with Sezary syndrome are protected from galectin-1-triggered T cell death.Leukemia.2002 May;16(5):840-5. 12.Png YT,Vinanica N,Kamiya T,Shimasaki N,Coustan-Smith E,Campana D.Blockade of CD7 expression in T cells for effective chimeric antigen receptor targeting of T-cell malignancies.Blood Adv.2017 Nov 28;1(25):2348-60. 13.Kita K,Miwa H,Nakase K,Kawakami K,Kobayashi T,Shirakawa S,et al.Clinical importance of CD7 expression in acute myelocytic leukemia.The Japan Cooperative Group of Leukemia / Lymphoma.Blood.1993 May 1;81(9):2399-405. 14.Rohrs S,Scherr M,Romani J,Zaborski M,Drexler HG,Quentmeier H.CD7 in acute myeloid leukemia:correlation with loss of wild-type CEBPA,consequence of epigenetic regulation.J Hematol OncolJ Hematol Oncol.2010 Apr 14;3:15. 15.Keizer MP,Kamp AM,Aarts C,Geisler J,Caron HN,van de Wetering MD,et al.The High Prevalence of Functional Complement Defects Induced by Chemotherapy.Front Immunol.2016;7:420. 16.Diebolder CA,Beurskens FJ,de Jong RN,Koning RI,Strumane K,Lindorfer MA,et al.Complement is activated by IgG hexamers assembled at the cell surface.Science.2014 Mar 14;343(6176):1260-3. 17.Heinrich G,Gram H,Kocher HP,Schreier MH,Ryffel B,Akbar A,et al.Characterization of a human T cell-specific chimeric antibody(CD7)with human constant and mouse variable regions.J Immunol Baltim Md 1950.1989 Dec 1;143(11):3589-97. 18.Ravandi F,Aribi A,O’Brien S,Faderl S,Jones D,Ferrajoli A,et al.Phase II study of alemtuzumab in combination with pentostatin in patients with.J Clin Oncol Off J Am Soc Clin Oncol.2009 Nov 10;27(32):5425-30. 19.Cooper ML,Choi J,Staser K,Ritchey JK,Devenport JM,Eckardt K,et al.An“off-the-shelf” fratricide-resistant CAR-T for the treatment of T cell hematologic malignancies.Leukemia.2018 Feb 20; 20.Haapaniemi E,Botla S,Persson J,Schmierer B,Taipale J.CRISPR-Cas9 genome editing induces a p53-mediated DNA damage response.Nat Med.2018 Jul;24(7):927-30. 21.Kosicki M,Tomberg K,Bradley A.Repair of double-strand breaks induced by CRISPR-Cas9 leads to large deletions and complex rearrangements.Nat Biotechnol.2018 Sep;36(8):765-71. 22.Van Vlierberghe P,Ferrando A.The molecular basis of T cell acute lymphoblastic leukemia.J Clin Invest.2012 Oct;122(10):3398-406. 23.Coustan-Smith E,Mullighan CG,Onciu M,Behm FG,Raimondi SC,Pei D,et al.Early T-cell precursor leukaemia:a subtype of very high-risk acute lymphoblastic leukaemia.Lancet Oncol.2009 Feb;10(2):147-56. 24.Marks DI,Paietta EM,Moorman AV,Richards SM,Buck G,DeWald G,et al.T-cell acute lymphoblastic leukemia in adults:clinical features,immunophenotype,cytogenetics,and outcome from the large randomized prospective trial(UKALL XII / ECOG 2993).Blood.2009 Dec 10;114(25):5136-45. 25.Aldoss I,Bargou RC,Nagorsen D,Friberg GR,Baeuerle PA,Forman SJ.Redirecting T cells to eradicate B-cell acute lymphoblastic leukemia:bispecific.Leukemia.2017 Apr;31(4):777-87. 26.Lee E-C,Liang Q,Ali H,Bayliss L,Beasley A,Bloomfield-Gerdes T,et al.Complete humanization of the mouse immunoglobulin loci enables efficient therapeutic antibody discovery.Nat Biotechnol.2014 Apr;32(4):356-63. 27.Phanse Y,Ramer-Tait AE,Friend SL,Carrillo-Conde B,Lueth P,Oster CJ,et al.Analyzing cellular internalization of nanoparticles and bacteria by multi-spectral imaging flow cytometry.United States;2012. 28.de Jong RN,Beurskens FJ,Verploegen S,Strumane K,van Kampen MD,Voorhorst M,et al.A Novel Platform for the Potentiation of Therapeutic Antibodies Based on Antigen-Dependent Formation of IgG Hexamers at the Cell Surface.PLoS Biol.2016 Jan;14(1):e1002344. 29.Agnusdei V,Minuzzo S,Frasson C,Grassi A,Axelrod F,Satyal S,et al.Therapeutic antibody targeting of Notch1 in T-acute lymphoblastic leukemia xenografts.Leukemia.2014 Feb;28(2):278-88. 30.Jung LK,Roy AK,Chakkalath HR.CD7 augments T cell proliferation via the interleukin-2 autocrine pathway.Cell Immunol.1992 Apr 15;141(1):189-99. 31.Markiewski MM,Lambris JD.The role of complement in inflammatory diseases from behind the scenes into the spotlight.Am J Pathol.2007 Sep;171(3):715-27. 32.Kola A,Baensch M,Bautsch W,Hennecke M,Klos A,Casaretto M,et al.Epitope mapping of a C5a neutralizing mAb using a combined approach of phage display,synthetic peptides and site-directed mutagenesis.Immunotechnology Int J Immunol Eng.1996 Jun;2(2):115-26. 33.Baum W,Steininger H,Bair HJ,Becker W,Hansen-Hagge TE,Kressel M,et al.Therapy with CD7 monoclonal antibody TH-69 is highly effective for xenografted human T-cell ALL.Br J Haematol.1996 Nov;95(2):327-38. 34.Matlung HL,Babes L,Zhao XW,van Houdt M,Treffers LW,van Rees DJ,et al.Neutrophils Kill Antibody-Opsonized Cancer Cells by Trogoptosis.Cell Rep.2018 Jun 26;23(13):3946-3959.e6. 35.Frankel AE,Laver JH,Willingham MC,Burns LJ,Kersey JH,Vallera DA.Therapy of patients with T-cell lymphomas and leukemias using an anti-CD7 monoclonal antibody-ricin A chain immunotoxin.Leuk Lymphoma.1997 Jul;26(3-4):287-98. 36. DeAngelo DJ, Yu D, Johnson JL, Coutre SE, Stone RM, Stopeck AT, et al. Nelarabine induces complete remissions in adults with relapsed or refractory. Blood. 2007 Jun 15;109(12):5136-42. 37. Jain N, Lamb AV, O’Brien S, Ravandi F, Konopleva M, Jabbour E, et al. Early T-cell precursor acute lymphoblastic leukemia / lymphoma (ETP-ALL / LBL) in adolescents and adults: a high-risk subtype. Blood. 2016 Apr 14;127(15):1863-9.

[0442] Terms AML Acute myeloid leukemia ADCC Antibody-dependent cell-mediated cytotoxicity ADCP Antibody-dependent cell-mediated phagocytosis CAR-T Chimeric antigen receptor T cell CDC Complement-dependent cytotoxicity CEBPA CCAAT / enhancer-binding protein alpha gene CRP Complement regulatory protein DC Development candidate HSC Hematopoietic stem cell mAb Polyclonal antibody MOA Mechanism of action MRD Minimal residual disease PBMC Peripheral blood mononuclear cell SoC Standard of care Tagg Aggregation temperature T-ALL T-cell acute lymphoblastic leukemia Tm Melting temperature T-PLL T-cell prolymphocytic leukemia Terms AML Acute myeloid leukemia ADCC Antibody-dependent cell-mediated cytotoxicity ADCP antibody-dependent cell-mediated phagocytosis CAR-T chimeric antigen receptor T cell CDC complement-dependent cytotoxicity CEBPA CCAAT / enhancer-binding protein alpha gene CRP complement regulatory protein DC development candidate HSC hematopoietic stem cell mAb polyclonal antibody MOA mechanism of action MRD minimal residual disease PBMC peripheral blood mononuclear cell SoC standard of care Tagg agglutination temperature T-ALL T cell acute lymphoblastic leukemia Tm melting temperature T-PLL T cell prolymphocytic leukemia [Table 1] [Table 2] [Table 3] [Table 4-1] [Table 4-2] [Table 5] [Table 6-1] [Table 6-2] [Table 7-1] [Table 7-2]

Table 8-1

Table 8-2

Table 9-1

Table 9-2

Table 10

Table 11-1

Table 11-2

Table 11-3

Table 11-4

Table 11-5

Table 11-6

Table 11-7

Table 11-8

Table 11-9

Table 11-10

Table 11-11

Table 11-12

Table 11-13

Table 11-14

Table 11-15

Table 11-16

Table 11-17

Table 11-18

Table 11-19

Table 11-20

Table 11-21

Table 11-22

Table 11-23

Table 11-24

Table 11-25

Table 11-26

Table 11-27

Table 11-28

Table 11-29

Table 11-30

Table 11-31

Table 11-32

Table 11-33

Table 11-34

Table 11-35

Table 11-36

Table 12

Claims

1. (a) a VH domain comprising a CDRH1 sequence selected from SEQ ID NOs: 1 and 4, a CDRH2 sequence selected from SEQ ID NOs: 2 and 5, and a CDRH3 sequence selected from SEQ ID NOs: 3 and 6, and a VL domain comprising a CDRL1 sequence selected from SEQ ID NOs: 11 and 14, a CDRL2 sequence selected from SEQ ID NOs: 12 and 15, and a CDRL3 sequence selected from SEQ ID NOs: 13 and 16; or (b) a VH domain comprising a CDRH1 sequence selected from SEQ ID NOs: 61 and 64, a CDRH2 sequence selected from SEQ ID NOs: 62 and 65, and a CDRH3 sequence selected from SEQ ID NOs: 63 and 66; and a VL domain comprising a CDRL1 sequence selected from SEQ ID NOs: 71 and 74, a CDRL2 sequence selected from SEQ ID NOs: 72 and 75, and a CDRL3 sequence selected from SEQ ID NOs: 73 and 76. an antibody or fragment comprising a binding site that specifically binds to CD7 (cluster of differentiation 7), comprising: An antibody or fragment comprising an effector function-effective constant region.

2. the binding site is (a) a VH domain comprising an amino acid sequence selected from SEQ ID NOs: 7 and 67, or an amino acid sequence at least 90% identical thereto; (b) a VL domain comprising an amino acid sequence selected from SEQ ID NOs: 17 and 77, or an amino acid sequence at least 90% identical thereto; and / or (c) a VH domain comprising SEQ ID NO: 7 paired with a VL domain comprising SEQ ID NO: 17; or (d) a VH domain comprising SEQ ID NO: 67 paired with a VL domain comprising SEQ ID NO: 77 The antibody or fragment of claim 1, comprising:

3. (a) a heavy chain amino acid sequence selected from SEQ ID NOs: 9 and 69, or an amino acid sequence at least 90% identical thereto; and / or (b) the antibody or fragment of claim 1 or 2, comprising a light chain amino acid sequence selected from SEQ ID NOs: 19 and 79, or an amino acid sequence at least 90% identical thereto.

4. The antibody or fragment of any one of claims 1 to 3, which specifically binds to human CD7 comprising SEQ ID NO: 82, and / or cynomolgus monkey CD7 comprising SEQ ID NO: 85, and / or rat CD7 comprising SEQ ID NO:

86.

5. The antibody or fragment of any one of claims 1 to 4, wherein the antibody or fragment comprises a human constant region comprising the amino acid sequence of SEQ ID NO: 88, 90, 92, 94, or 96.

6. The antibody or fragment of any one of claims 1 to 5, further comprising an antigen-binding site that specifically binds to another target antigen.

7. The antibody or fragment of claim 6, wherein the target antigen is human CD5, CD14, or CD19.

8. The antibody or fragment of any one of claims 1 to 7 for treating or preventing a CD7-mediated disease or condition in a subject.

9. The antibody or fragment of claim 8, wherein the CD7-mediated disease or condition is cancer.

10. 10. The antibody or fragment of claim 8 or 9, wherein the disease or condition is selected from leukemia, lymphoma, blood cancer, and myelodysplastic syndrome (MDS).

11. The antibody or fragment of any one of claims 8 to 10, wherein the antibody or fragment is administered to the subject simultaneously or sequentially with chemotherapy or an immune checkpoint inhibitor.

12. A combination of an amount of an anti-CD7 antibody or fragment with an amount of a chemotherapeutic agent, wherein said antibody or fragment is one according to any one of claims 1 to 7.

13. The combination of claim 12, comprising multiple doses of the antibody and / or chemotherapeutic agent.

14. 14. The antibody or fragment of any one of claims 1 to 7, or the combination of claim 12 or 13, for treating leukemia in a human, wherein the antibody, fragment, or combination is administered to a human.

15. The antibody, fragment, or combination of claim 14, wherein the antibody, fragment, or combination is administered to the human together with an antagonist of human CD5, CD14, or CD19.

16. The antibody, fragment, or combination of claim 14, wherein the leukemia is acute myeloid leukemia or T-ALL, or is relapsed leukemia.

17. The antibody, fragment, or combination of claim 16, wherein the relapsed leukemia is relapsed AML or T-ALL.

18. CD7 + 14. The antibody or fragment of any one of claims 1 to 7, or the combination of claim 12 or 13, for treating a disease or condition in a human or animal subject that is mediated by cells, said treatment comprising administering to said subject said antibody, fragment or combination, wherein said antibody or fragment is a CD7 + The antibody, fragment, or combination by which cells are targeted and killed.

19. CD7 + 19. The antibody, fragment, or combination of claim 18, wherein the cells are targeted and killed by ADCP and / or CDC.

20. 14. Use of an antibody or fragment according to any one of claims 1 to 7, or a combination according to claim 12 or 13, in the manufacture of a medicament for administration to a subject for treating or preventing a CD7-mediated disease or condition.

21. 21. The use of claim 20, wherein the CD7-mediated disease or condition is cancer.

22. 22. The use of claim 21, wherein the cancer is leukemia.

23. The use according to claim 22, wherein the leukemia is T-ALL.

24. A pharmaceutical composition comprising an antibody or fragment according to any one of claims 1 to 7, or a combination according to claim 12 or 13, and a pharmaceutically acceptable excipient, diluent or carrier.

25. (a) encoding the VH and VL domains of the antibody or fragment of any one of claims 1 to 7; (b) encoding a VH domain comprising the amino acid sequence of SEQ ID NO: 7 and a VL domain comprising the amino acid sequence of SEQ ID NO: 17; (c) encoding a VH domain comprising the amino acid sequence of SEQ ID NO: 67 and a VL domain comprising the amino acid sequence of SEQ ID NO: 77; (d) comprising the nucleotide sequence of SEQ ID NO: 10 and the nucleotide sequence of SEQ ID NO: 20; (e) comprising the nucleotide sequence of SEQ ID NO: 70 and the nucleotide sequence of SEQ ID NO: 80; (f) encoding the heavy and light chains of the antibody or fragment thereof according to any one of claims 1 to 7; (g) encoding a heavy chain comprising the amino acid sequence of SEQ ID NO: 7 and a light chain comprising the amino acid sequence of SEQ ID NO: 17; or (h) a nucleic acid encoding a heavy chain comprising the amino acid sequence of SEQ ID NO: 67, and a light chain comprising the amino acid sequence of SEQ ID NO:

77.

26. A vector comprising the nucleic acid of claim 25.

27. 27. The vector of claim 26, which is a CHO or HEK293 vector.

28. 28. A host cell comprising the nucleic acid of claim 25 or the vector of claim 26 or 27.

29. 10. An in vitro assay for detecting CD7 positive cells in a sample, the assay comprising combining an antibody or fragment of any one of claims 1 to 7 with an isolated blood or serum sample and determining that cells contained in the sample specifically bind to the antibody or fragment.

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