Antibodies specific to alpha toxin of Staphylococcus aureus and uses thereof

Antibodies targeting Staphylococcus aureus alpha-toxin neutralize its cytotoxic effects, providing effective treatment and prevention of S. aureus infections, including antibiotic-resistant strains, by inhibiting cell damage and improving survival in animal models.

JP7765191B2Active Publication Date: 2025-11-06SYNERMORE BIOLOGICS (SUZHOU) CO LTD
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Patent Information

Application Number
JP2021051904
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-03-25
Filing Date
2021-03-25
Publication Date
2025-11-06
Estimated Expiration
2041-03-25

AI Technical Summary

Technical Problem

There is a need for new approaches to treat or prevent Staphylococcus aureus infections, particularly those caused by antibiotic-resistant strains like MRSA, which produce potent virulence factors such as alpha-toxin that disrupt cell membrane integrity and cause diseases ranging from mild skin infections to life-threatening conditions.

Method used

Development of antibodies or antigen-binding fragments that specifically bind to Staphylococcus aureus alpha-toxin, neutralizing its cytolytic activity and preventing cell damage, and are used in pharmaceutical compositions for treatment and detection.

Benefits of technology

The antibodies effectively inhibit alpha-toxin-induced cytotoxicity, demonstrating significant prophylactic and therapeutic efficacy in animal models of S. aureus infections, reducing disease severity and mortality.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a novel approach to treating or preventing Staphylococcus aureus infection.SOLUTION: The present disclosure provides an antibody or antigen-binding fragment thereof that specifically binds to α-toxin of Staphylococcus aureus. The present disclosure also provides a pharmaceutical composition, a method for treating and / or preventing diseases and / or disorders caused by Staphylococcus aureus infection in a subject in need, and a method for detecting α-toxin of Staphylococcus aureus in a sample.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] The present disclosure relates to antibodies or antigen-binding fragments thereof specific for Staphylococcal aureus alpha toxin, and uses thereof. [Background technology]

[0002] Staphylococcus aureus is an opportunistic pathogen often carried asymptomatically in the human body. Pathogenic strains often promote infection by producing potent protein toxins and other virulence factors that evade the human immune system. S. aureus can cause a variety of illnesses, ranging from mild skin infections to life-threatening diseases such as pneumonia, meningitis, osteomyelitis, endocarditis, toxic shock syndrome, bacteremia, and sepsis. It remains one of the five most common causes of hospital-acquired infections and is a frequent cause of postoperative wound infections.

[0003] The emergence of antibiotic-resistant forms of Staphylococcus aureus, such as methicillin-resistant Staphylococcus aureus (MRSA), is a global problem in clinical medicine. Current concepts regarding the virulence mechanism of MRSA include a remarkable number of cell surface and secreted virulence factors. Cell surface virulence factors include microbial surface components recognizing adhesive matrix molecules (MSCRAMMs), iron regulatory proteins, polysaccharide intercellular adhesion proteins, and capsular polysaccharides. Secreted virulence factors are typically produced during the post-logarithmic stationary phase and include exoenzymes, exotoxins α, β, γ, and δ toxins, Panton-Valentine leukocidin (PVL), superantigens, and toxic shock syndrome toxin-1 (TSST-1), as well as exfoliative toxins A and B. U.S. Patent Application Publication No. 2021 / 0079071 provides monoclonal antibody inhibitors of the coagulase staphylocoagulase and vWbp for the treatment of S. aureus.

[0004] Alpha-toxin (AT) is a cytolytic, pore-forming toxin conserved among clinical isolates of Staphylococcus aureus and has been shown to be involved in pneumonia, skin necrosis, endocarditis, and sepsis. AT is secreted as a soluble, 33-kDa monomeric protein and can assemble at the surface of eukaryotic cells to form ring-shaped structures. The assembled toxin attaches to the cell membrane, disrupting membrane integrity and forming pores that contribute to cell injury and death. The toxin as a target for immunoprophylaxis has been successfully used for decades as part of vaccines or passive immunotherapy against bacterial diseases such as diphtheria, tetanus, and botulism. Unlike active immunization, which sometimes requires repeated booster immunizations and a long duration to generate a maximal immune response, passive immunization may provide immediate treatment to unvaccinated patients and help reduce the severity of acute S. aureus disease. Summary of the Invention [Problem to be solved by the invention]

[0005] Therefore, there is a need to develop new approaches to treat or prevent S. aureus infections. [Means for solving the problem]

[0006] The present disclosure provides antibodies or antigen-binding fragments thereof that specifically bind to an epitope or fragment thereof of Staphylococcus aureus alpha-toxin. The antibodies of the present disclosure neutralize Staphylococcus aureus alpha-toxin and are therefore useful for treating and / or preventing diseases and / or disorders caused by Staphylococcus aureus infection. The antibodies of the present disclosure are also useful for detecting Staphylococcus aureus alpha-toxin.

[0007] The present disclosure provides pharmaceutical compositions comprising the aforementioned antibodies or antigen-binding fragments thereof and a pharmaceutically acceptable carrier or excipient.

[0008] The present disclosure provides a method for treating and / or preventing diseases and / or disorders caused by Staphylococcus aureus infection in a subject in need thereof, the method comprising administering to the subject a pharmaceutical composition comprising the aforementioned antibody or antigen-binding fragment thereof.

[0009] The present disclosure provides a method for detecting Staphylococcus aureus alpha-toxin in a sample, the method comprising contacting the sample with the aforementioned antibody or antigen-binding fragment thereof.

[0010] The present disclosure also provides a kit for detecting S. aureus alpha-toxin in a sample, the kit comprising an antibody or antigen-binding fragment thereof described herein.

[0011] The present disclosure is described in detail in the following sections. Other features, objects, and advantages of the present disclosure can be found in the detailed description and claims. [Brief explanation of the drawings]

[0012] [Figure 1-1] This graph shows that anti-alpha toxin monoclonal antibodies increased cell viability of A549 cells in the presence of alpha toxin. In a cytolysis assay, purified antibodies were added at concentrations of 4 and 40 μg / ml in the presence of 8 μg / ml of alpha toxin, resulting in an alpha toxin to antibody ratio of 1:0.1 (4 μg / ml) or 1:1 (40 μg / ml). Cell viability was analyzed using a colorimetric MTT assay kit. "*" antibodies demonstrated the ability to prevent alpha toxin-induced cell lysis. [Figure 1-2] This is a continuation of Figure 1-1. [Figure 2] 1 is a graph showing the binding of murine 25A1 monoclonal antibody to alpha toxin. Antigen binding profile of 25A1 captured on an active flow cell on a Biacore T100. Different lines show the binding response of 25A1 to alpha toxin at various concentrations from 1.56 to 50 nM. [Figure 3A]Figure 3(A) shows the amino acid sequences of various anti-alpha toxin VH and VL domains. Human germline sequences IGHV1-2 and IGVK3-11 were used for transplantation. Amino acid differences between the mouse antibody and human germline sequences are shown in bold and underlined; CDR residues are boxed; and backmutations are labeled in gray. Figure 3(B) shows SPR sensorgrams of the binding kinetics of antibody binding to recombinant alpha toxin. Binding kinetics was measured by single-cycle kinetics on a BIAcore T200. Figure 3(C) shows the amino acid sequence of 25A1-B5B6AQT. The amino acid sequence of the signal peptide is shown in bold and underlined; variable regions are labeled in gray. [Figure 3B] This is a continuation of Figure 3A. [Figure 3C] This is a continuation of Figure 3B. [Figure 4] 25A1, 25A1-B2B4AQT, and 25A1-B5B6AQT inhibit recombinant alpha-toxin or native alpha-toxin-induced lysis of rabbit RBC cells. Serial dilutions of the antibodies (100, 50, 25, 12.5, 6.25, 3.125, 1.56, and 0.78 mg / mL) were incubated with rabbit RBCs plus recombinant alpha-toxin (400 ng / mL) or crude bacterial supernatant (diluted 1:8 to 1:16). Hemolysis was measured by the amount of hemoglobin released in the supernatant. Percent hemolysis inhibition was calculated as ((OD450 in 2% Triton X-100 - OD450 of test antibody) / (OD450 in 2% Triton X-100)) × 100%. [Figure 5]Figure 1 shows Kaplan-Meir survival curves for S. aureus BAA-1717-infected mice treated with SYN100. On day 0, mice were inoculated intravenously with USA300 MRSA, BAA-1717, at an inoculum size of 8 x 10 CFU / mouse. 25A1 was administered intraperitoneally (IP) at 50, 25, 10, and 5 mg / kg 24 hours prior to infection. Control antibody at 25 and 10 mg / kg was also administered intraperitoneally 24 hours prior to infection. Animal mortality was monitored for 10 days. Animal survival of 50 percent (50%) or greater compared to the vehicle control group indicated significant anti-infective activity. [Figure 6] Figure 1 shows Kaplan-Meir survival curves for mice infected with Staphylococcus aureus ATCC29213 treated with SYN100. CD-1 mice were inoculated intraperitoneally with ATCC29213 at an inoculum size of 2.0 x 10 CFU / mouse on day 0. Three groups of mice were administered SYN100 intraperitoneally (IP) at 100, 50, and 10 mg / kg 24 hours prior to infection. Survival of infected animals was monitored for 4 days. [Figure 7] Figure 1 shows Kaplan-Meir survival curves for mice infected with S. aureus BAA-1556, NRS261, and SF8300 treated with SYN100. SYN100 prophylaxis increases survival in a mouse pneumonia model. On day 0, C57BL / 6J mice were inoculated intranasally with BAA-1556 at an inoculum size of 1.62 x 10 CFU / mouse; NRS261 at an inoculum size of 3.3 x 10 CFU / mouse; or SF8300 at an inoculum size of 2.82 x 10 CFU / mouse. 24 hours prior to infection, SYN100 was administered intraperitoneally (IP) to BAA-1556-infected mice at 10, 5, and 1 mg / kg, or 100, 50, and 10 mg / kg. Survival of infected animals was monitored for 7 days. [Figure 8]Figure 1 shows Kaplan-Meir survival curves for S. aureus NRS261-infected mice treated with SYN100 and / or vancomycin. C57BL / 6J mice were inoculated intranasally with NRS261 at an inoculum size of 5.0 x 10 CFU / mouse on day 0. Four groups of mice received SYN100 intraperitoneally (IP) at 10 mg / kg 24 hours prior to infection. Vancomycin was administered at 30, 15, and 7.5 mg / kg 2 hours post-infection. Three groups of mice received both vancomycin and SYN100. Survival of infected animals was monitored for 5 days. [Figure 9] This graph shows Kaplan-Meir survival curves for rabbits infected with Staphylococcus aureus ST20120426 and treated with SYN100. New Zealand rabbits were inoculated intranasally with ST20120426 on day 0 at an inoculum size of 3.2-5.2 x 10 CFU / rabbit. SYN100 was administered intravenously at 125, 100, 75, 50, and 25 mg / kg 24 hours before infection. Survival of infected animals was monitored for 7 days. [Figure 10A] Figure 10(A) shows Kaplan-Meir survival curves for rabbits infected with S. aureus ST20120426 treated with SYN100 and / or linezolid. New Zealand rabbits were inoculated intranasally with ST20120426 on day 0 at an inoculum size of 2.9–4.1 × 10 CFU / rabbit. SYN100 was administered intravenously at 30 mg / kg 24 hours prior to infection. Linezolid was administered at 50 mg / kg / 8 hours 4 hours post-infection. Survival of infected animals was monitored for 48 hours. Figure 10(B) shows lung inflammation assessed in terms of macroscopic score for all treatment groups. Higher scores indicate more severe damage from bacterial infection. Open circles represent animals that died by 30 hours post-infection. Filled circles represent animals that survived until 30 hours post-infection. Figure 10(C) is a graph showing the ratio of lung weight (LW) to body weight (BW). Figure 10(D) is a graph showing the number of bacteria in lung tissue. A p-value of <0.0083 indicates significance. [Figure 10B] This is a continuation of Figure 10A. [Figure 10C] This is a continuation of Figure 10B. [Figure 10D] This is a continuation of Figure 10C. DETAILED DESCRIPTION OF THE INVENTION

[0013] The present disclosure provides antibodies or antigen-binding fragments thereof that specifically bind to an epitope of Staphylococcus aureus alpha-toxin or a fragment thereof.

[0014] In the description that follows, several terms will be used and the following definitions are provided to facilitate understanding of the claimed subject matter. Terms not expressly defined herein will be used in accordance with their plain and ordinary meaning.

[0015] Unless otherwise specified, "a" or "an" means "one or more."

[0016] As used herein, the term "epitope" refers to a site on an antigen to which an antibody binds.

[0017] The term "antibody," as used herein, refers to any antigen-binding molecule or molecular complex that contains at least one complementarity-determining region (CDR) that specifically binds to or interacts with a particular antigen (e.g., alpha-toxin). The term "antibody" includes immunoglobulin molecules that contain four polypeptide chains, i.e., two heavy (H) chains and two light (L) chains, interconnected by disulfide bonds, as well as multimers thereof (e.g., IgM). Each heavy chain contains a heavy chain variable region (herein referred to as HCVR or V H The heavy chain constant region comprises three domains: C H1 , C H2 and C H3 Each light chain comprises a light chain variable region (herein referred to as LCVR or V L The light chain constant region comprises one domain (C L1 ) included. V H and V LThe region can be further subdivided into regions of hypervariability called complementarity determining regions (CDRs) interspersed with more conserved regions called framework regions (FRs). H and V L is composed of three CDRs and four FRs, arranged from the amino terminus to the carboxy terminus in the following order: FR1, CDR1, FR2, CDR2, FR3, CDR3, FR4. In different embodiments of the present disclosure, the FRs of an anti-alpha toxin antibody (or antigen-binding portion thereof) may be identical to human germline sequences or may be naturally or artificially modified. An amino acid consensus sequence may be defined based on comparative analysis of two or more CDRs.

[0018] The term "monoclonal antibody," as used herein, is not limited to antibodies produced through hybridoma technology. Monoclonal antibodies are derived from a single clone, including any eukaryotic, prokaryotic, or phage clone, by any means available or known in the art.

[0019] As used herein, the term "chimeric" antibody refers to an antibody having variable sequences derived from a non-human immunoglobulin and a human immunoglobulin constant region, typically chosen from a human immunoglobulin template.

[0020] "Humanized" forms of non-human antibodies are chimeric immunoglobulins that contain minimal sequence derived from non-human immunoglobulin. In general, a humanized antibody will comprise substantially all of at least one, and typically two, variable domains, in which all or substantially all of the CDR regions correspond to those of a non-human immunoglobulin and all or substantially all of the FR regions are those of a human immunoglobulin sequence.

[0021] As used herein, the term "complementarity-determining region" (CDR) refers to the noncontiguous antigen-binding sites found within the variable regions of both heavy and light chain polypeptides. CDRs are described by Kabat et al., J. Biol. Chem. 252:6609-6616 (1977); Kabat et al., US Dept. of Health and Human Services, "Sequences of proteins of immunological interest" (1991); Chothia et al., J. Mol. Biol. 196:901-917 (1987); and MacCallum et al., J. Mol. Biol. 262:732-745 (1996), and the definition includes overlapping or subsets of amino acid residues when compared with each other.

[0022] The terms "antigen-binding portion" of an antibody, "antigen-binding fragment" of an antibody, and the like, as used herein, include any naturally occurring, enzymatically derived, synthetic, or genetically engineered polypeptide or glycoprotein that specifically binds to an antigen to form a complex.

[0023] As used herein, the terms "treatment," "treating," and the like encompass any treatment of disease in a mammal, particularly a human, and include (a) preventing the disease from occurring in a subject who may be susceptible to the disease but has not yet been diagnosed with the disease; (b) inhibiting the disease, i.e., preventing its development; and (c) relieving the disease, i.e., causing regression of the disease.

[0024] As used interchangeably herein, the terms "individual," "subject," "host," and "patient" refer to mammals, including but not limited to murines (rats, mice), non-human primates, humans, canines, felines, ungulates (e.g., horses, cattle, sheep, pigs, goats), and the like.

[0025] As used herein, the terms "therapeutically effective amount" or "effective amount" refer to the amount of an antibody that, when administered to a mammal or other subject for treating a disease, is sufficient to effect such treatment for the disease.

[0026] As used herein, the term "sample" encompasses various types of samples obtained from an individual, subject, or patient and can be used in diagnostic or monitoring assays. The definition includes blood and other liquid samples of biological origin, solid tissue samples, such as biopsy specimens or tissue cultures, or cells derived therefrom and their progeny.

[0027] The present disclosure develops monoclonal antibodies that specifically neutralize alpha-toxin, thus providing passive immunotherapy in the context of S. aureus infection. Passive immunization provides immediate treatment to unvaccinated patients and helps reduce the severity of acute S. aureus disease. Functionally, the antibodies of the present disclosure exhibit significant inhibitory activity against AT-induced cytotoxicity (cell damage). They have demonstrated potent in vivo efficacy in the prevention, prophylactic treatment, and / or treatment of S. aureus infection and / or pneumonia.

[0028] In particular, the antibody or antigen-binding fragment thereof comprises a complementarity determining region (CDR) of a heavy chain variable region and a complementarity determining region of a light chain variable region, the complementarity determining region of the heavy chain variable region comprising CDRH1, CDRH2, and CDRH3 regions, and the complementarity determining region of the light chain variable region comprising CDRL1, CDRL2, and CDRL3 regions; the CDRH1 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 1 to 2 or a sequence substantially similar thereto; the CDRH2 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 3 to 6 and 31 or a sequence substantially similar thereto; and the CDRH3 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 7 to 9 or a sequence substantially similar thereto; The CDRL1 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 10 to 13 or a sequence substantially similar thereto; the CDRL2 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 14 to 15 or a sequence substantially similar thereto; and the CDRL3 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 16 to 18 or a sequence substantially similar thereto.

[0029] The sequence listing is shown in Table 1.

[0030] [Table 1] TIFF0007765191000002.tif180158

[0031] Antibodies according to the present disclosure may be full-length (e.g., IgG1 or IgG4 antibodies) or may include only the antigen-binding portion (e.g., Fab, F(ab')2, or scFv fragments), and may be modified as needed to affect functionality.

[0032] The antibodies or antigen-binding fragments thereof of the present disclosure specifically bind to alpha-toxin of Staphylococcus aureus. As a cytolytic pore-forming toxin, alpha-toxin is conserved among clinical isolates of Staphylococcus aureus. Alpha-toxin is a soluble 33 kDa monomeric protein that can assemble on the surface of eukaryotic cells to form ring-shaped structures; the assembled toxin then attaches to the cell membrane, forming pores that disrupt membrane integrity and contribute to cell injury and death.

[0033] The present disclosure includes anti-alpha toxin antibodies and antigen-binding fragments thereof that bind with high affinity to the monomeric alpha toxin molecule or its cyclic structure.

[0034] Various techniques known to those skilled in the art can be used to determine whether an antibody "specifically binds to one or more amino acids" within a polypeptide or protein. Exemplary techniques include, for example, routine cross-blocking assays, such as those described in Antibodies, Harlow and Lane (Cold Spring Harbor Press, Cold Spring Harbor, NY), alanine scanning mutational analysis, peptide blot analysis (Reineke, 2004, Methods Mol Biol 248:443-463), and peptide truncation analysis. Additionally, methods such as epitope excision, epitope extraction, and chemical modification of antigens can also be used (Tomer, 2000, Protein Science 9:487-496). Another method that can be used to identify the amino acids within a polypeptide to which an antibody specifically binds is hydrogen / deuterium exchange as detected by mass spectrometry. Broadly speaking, the hydrogen / deuterium exchange method involves deuterium-labeling a protein of interest and then binding an antibody to the deuterium-labeled protein. The protein / antibody complex is then transferred to water, allowing hydrogen-deuterium exchange to occur at all residues except those protected by the antibody (which retain their deuterium labeling). After dissociation of the antibody, the target protein is subjected to protease cleavage and mass spectrometry, thereby revealing the deuterium-labeled residues corresponding to the specific amino acids with which the antibody interacts. See, e.g., Ehring (1999) Analytical Biochemistry 267(2):252-259; Engen and Smith (2001) Anal. Chem. 73:256A-265A.

[0035] The present disclosure further includes anti-alpha toxin antibodies that specifically bind to the same epitope.

[0036] Using routine methods known in the art, it is easy to determine whether an antibody specifically binds to the same epitope as a reference anti-alpha toxin antibody or competes for binding with the reference anti-alpha toxin antibody. For example, to determine whether a test antibody binds to the same epitope as a reference anti-alpha toxin antibody of the present disclosure, the reference antibody is bound to an alpha toxin protein (e.g., a monomeric alpha toxin or a cyclic structure of alpha toxin). The ability of the test antibody to bind to an alpha toxin molecule is then evaluated. If the test antibody can bind to an alpha toxin after saturation binding with the reference anti-alpha toxin antibody, it can be concluded that the test antibody binds to a different epitope than the reference anti-alpha toxin antibody. On the other hand, if the test antibody cannot bind to an alpha toxin molecule after saturation binding with the reference anti-alpha toxin antibody, the test antibody likely binds to the same epitope as the reference anti-alpha toxin antibody of the present disclosure. Additional routine experiments (e.g., peptide mutations and binding analysis) can then be performed to confirm whether the observed lack of binding of the test antibody is indeed due to binding to the same epitope as the reference antibody, or whether steric blocking (or another phenomenon) is responsible for the observed lack of binding. These types of experiments can be performed using ELISA, RIA, Biacore, flow cytometry, or other quantitative or qualitative antibody binding assays available in the art. According to certain embodiments of the present disclosure, two antibodies bind to the same (or overlapping) epitope if, for example, a 1-fold, 5-fold, 10-fold, 20-fold, or 100-fold excess of one antibody inhibits binding of the other antibody by at least 50%, preferably 75%, 90%, or even 99%, as measured in a competitive binding assay. Alternatively, two antibodies are considered to bind to the same epitope if essentially all amino acid mutations in the antigen that reduce or eliminate binding of one antibody reduce or eliminate binding of the other. Two antibodies are considered to have "overlapping epitopes" if only the subset of amino acid mutations that reduce or eliminate binding of one antibody also reduce or eliminate binding of the other.

[0037] The term "antibody," as used herein, also includes antigen-binding fragments of intact antibody molecules. Antigen-binding fragments of antibodies can be derived from intact antibody molecules using any suitable standard techniques, such as proteolytic digestion or recombinant genetic engineering techniques, including the manipulation and expression of DNA encoding the variable and, optionally, constant domains of the antibody. Such DNA is known and / or readily available, for example, from commercial sources, DNA libraries (including, for example, phage antibody libraries), or can be synthesized. DNA can be sequenced or manipulated chemically or using molecular biology techniques, for example, to arrange one or more variable and / or constant domains in a suitable configuration, or to introduce codons, create cysteine ​​residues, modify, add, or delete amino acids, etc.

[0038] Non-limiting examples of antigen-binding fragments include: (i) Fab fragments; (ii) F(ab')2 fragments; (iii) Fd fragments; (iv) Fv fragments; (v) single-chain Fv (scFv) molecules; (vi) dAb fragments; and (vii) minimal recognition units or constrained FR3-CDR3-FR4 peptides consisting of amino acid residues that mimic a hypervariable region of an antibody (e.g., an isolated complementarity-determining region (CDR), e.g., a CDR3 peptide). Other engineered molecules, such as domain-specific antibodies, single-domain antibodies, domain-deleted antibodies, chimeric antibodies, CDR-grafted antibodies, diabodies, triabodies, tetrabodies, minibodies, nanobodies (e.g., monovalent nanobodies, bivalent nanobodies, etc.), small modular immunopharmaceuticals (SMIPs), and shark variable IgNAR domains, are also encompassed by the term "antigen-binding fragment" as used herein.

[0039] Antigen-binding fragments of antibodies typically contain at least one variable domain, which may be of any size or amino acid composition and generally contains at least one CDR adjacent to or in-frame with one or more framework sequences. L V associated with domain HIn an antigen-binding fragment having a domain, V H and V L The domains can be positioned relative to each other in any suitable arrangement. For example, if the variable region is a dimer and the V H -V H , V H -V L or V L -V L Alternatively, the antigen-binding fragment of the antibody may comprise a monomeric V H or V L It may include a domain.

[0040] In certain embodiments, an antigen-binding fragment of an antibody may comprise at least one variable domain covalently linked to at least one constant domain. Exemplary configurations of variable and constant domains that may be found in an antigen-binding fragment of an antibody of the present disclosure include: (i) V H -C H1 ;(ii) V H -C H2 ;(iii) V H -C H3 ;(iv) V H -C H1 -C H2 ;(v) V H -C H1 -C H2 -C H3 ;(vi) V H -C H2 -C H3 ;(vii) V H -C L ;(viii) V L -C H1 ;(ix) V L -C H2 ;(x) V L -C H3 ;(xi) V L -C H1 -C H2 ;(xii) V L -C H1 -C H2 -C H3 ;(xiii) V L -C H2 -C H3 and (xiv) VL -C L In any configuration of variable and constant domains, including any of the exemplary configurations listed above, the variable and constant domains may be directly linked to each other or may be linked by a complete or partial hinge or linker region. The hinge region may consist of at least two (e.g., 5, 10, 15, 20, 40, 60, or more) amino acids that provide a flexible or semi-flexible connection between adjacent variable and / or constant domains in a single polypeptide molecule. Furthermore, antigen-binding fragments of antibodies of the present disclosure may be linked to each other and / or to one or more monomeric V H or V L It may comprise homodimers or heterodimers (or other multimers) of any of the variable and constant domain configurations listed above, in which the domains are non-covalently associated (e.g., by disulfide bonds).

[0041] Like intact antibody molecules, antigen-binding fragments can be monospecific or multispecific (bispecific). Multispecific antigen-binding fragments of antibodies typically contain at least two different variable domains, each capable of specifically binding to a separate antigen or to a different epitope on the same antigen. Any multispecific antibody format, including the exemplary bispecific antibody formats disclosed herein, can be adapted for use in connection with the antigen-binding fragments of antibodies of the present disclosure using routine techniques available in the art.

[0042] Preferably, the antibody or antigen-binding fragment thereof according to the present disclosure is a mammalian antibody.

[0043] The term "mammalian antibody," as used herein, is intended to include antibodies having variable and constant regions derived from mammalian germline immunoglobulin sequences. The mammalian antibodies of the disclosure may include, for example, in the CDRs, particularly CDR3, amino acid residues not encoded by mammalian germline immunoglobulin sequences (e.g., mutations introduced by random or site-specific mutagenesis in vitro or by somatic mutation in vivo).

[0044] The term "recombinant mammalian antibody," as used herein, is intended to include all mammalian antibodies prepared, expressed, produced, or isolated by recombinant means, e.g., antibodies expressed using a recombinant expression vector transfected into a host cell (described further below); antibodies isolated from a recombinant combinatorial mammalian antibody library (described further below); antibodies isolated from an animal (e.g., a mouse) transgenic with mammalian immunoglobulin genes; or antibodies prepared, expressed, produced, or isolated by any other means, including splicing of mammalian immunoglobulin gene sequences into other DNA sequences. Such recombinant mammalian antibodies have variable and constant regions derived from mammalian germline immunoglobulin sequences. However, in certain embodiments, such recombinant mammalian antibodies are subjected to in vitro mutagenesis (or, when using animals transgenic for human Ig sequences, in vivo somatic mutagenesis) to thereby modify the V and V regions of the recombinant antibody. H and V L The amino acid sequence of the region is human germline V H and V L These are sequences that, while derived from and related to a sequence, may not naturally occur in the mammalian antibody germline repertoire in vivo.

[0045] Mammalian antibodies, e.g., human antibodies, can exist in two forms related to hinge heterogeneity. In one form, the immunoglobulin molecule comprises a stable four-chain construct of approximately 150-160 kDa, in which dimers are held together by interchain heavy chain disulfide bonds. In the second form, the dimers are not linked via interchain disulfide bonds, forming approximately 75-80 kDa molecules composed of covalently linked light and heavy chains (half antibodies). These forms are extremely difficult to separate, even after affinity purification.

[0046] The anti-alpha toxin antibodies disclosed herein can contain one or more amino acid substitutions, insertions, and / or deletions in the framework and / or CDR regions of the heavy and light chain variable domains compared to the corresponding germline sequences from which the antibody is derived. Such mutations can be readily ascertained by comparing the amino acid sequences disclosed herein to germline sequences available, for example, from public antibody sequence databases. The present disclosure includes antibodies and antigen-binding fragments thereof derived from any of the amino acid sequences disclosed herein, in which one or more amino acids in one or more framework and / or CDR regions have been mutated to the corresponding residue in the germline sequence from which the antibody is derived, or to the corresponding residue in another mammalian germline sequence, or to a conservative amino acid substitution of the corresponding germline residue (such sequence changes are collectively referred to herein as "germline mutations"). Starting with the heavy and light chain variable region sequences disclosed herein, one of skill in the art can readily generate numerous antibodies and antigen-binding fragments containing one or more individual germline mutations or combinations thereof. In certain embodiments, V H and / or V LAll framework and / or CDR residues within a domain are backmutated to the residue found in the original germline sequence from which the antibody was derived. In other embodiments, only certain residues are backmutated to the original germline sequence, e.g., only mutated residues found in the first 8 amino acids of FR1 or the last 8 amino acids of FR4, or only mutated residues found in CDR1, CDR2, or CDR3. In other embodiments, one or more framework and / or CDR residues are mutated to the corresponding residue in a different germline sequence (i.e., a germline sequence that differs from the germline sequence from which the antibody was originally derived). Furthermore, antibodies of the present disclosure may contain any combination of two or more germline mutations within the framework and / or CDR regions, e.g., certain individual residues are mutated to the corresponding residue in a particular germline sequence, while certain other residues that differ from the original germline sequence are maintained or mutated to the corresponding residue in a different germline sequence. Once obtained, antibodies and antigen-binding fragments containing one or more germline mutations can be readily tested for one or more desirable properties, e.g., improved binding specificity, increased binding affinity, improved or enhanced antagonistic or agonistic biological properties (as the case may be), reduced immunogenicity, etc. Antibodies and antigen-binding fragments obtained by this general method are encompassed within the present disclosure.

[0047] The present disclosure also provides compounds comprising the V disclosed herein with one or more conservative substitutions. H Amino acid sequence, V L For example, the present disclosure includes anti-alpha toxin antibodies comprising any variant of the amino acid sequence and / or CDR amino acid sequence disclosed herein. H Amino acid sequence, V L V has, for example, 10 or less, 8 or less, 6 or less, 4 or less, etc., conservative amino acid substitutions relative to either the amino acid sequence and / or the CDR amino acid sequence. H Amino acid sequence, V L The present invention includes anti-alpha toxin antibodies having the amino acid sequence and / or CDR amino acid sequence.

[0048] The terms "substantial identity" or "substantially identical," when referring to a nucleic acid or a fragment thereof, indicate that when optimally aligned with another nucleic acid (or its complementary strand), with appropriate nucleotide insertions or deletions, there is nucleotide sequence identity over at least about 95%, more preferably at least about 96%, 97%, 98%, or 99%, of the nucleotide bases, as measured by any well-known sequence identity algorithm, e.g., FASTA, BLAST, or Gap, as described below. A nucleic acid molecule having substantial identity to a reference nucleic acid molecule can, in some cases, encode a polypeptide having the same or substantially similar amino acid sequence as the polypeptide encoded by the reference nucleic acid molecule.

[0049] The terms "substantial similarity" or "substantially similar," as applied to polypeptides, mean that two peptide sequences share at least 95% sequence identity, and even more preferably at least 98% or 99% sequence identity, when the two peptide sequences are optimally aligned, such as by the programs GAP or BESTFIT using default gap weighting. Preferably, non-identical residue positions differ by conservative amino acid substitutions. A "conservative amino acid substitution" is one in which an amino acid residue is replaced with another amino acid having a side chain (R group) with similar chemical properties (e.g., charge or hydrophobicity). Generally, conservative amino acid substitutions do not substantially alter the functional properties of a protein. When two or more amino acid sequences differ from each other by conservative substitutions, the percent sequence identity or similarity may be adjusted upward to correct for the conservative nature of the substitution. Means for making this adjustment are well known to those of skill in the art. Examples of groups of amino acids with side chains of similar chemical properties include: (1) aliphatic side chains: glycine, alanine, valine, leucine, and isoleucine; (2) aliphatic hydroxyl side chains: serine and threonine; (3) amide-containing side chains: asparagine and glutamine; (4) aromatic side chains: phenylalanine, tyrosine, and tryptophan; (5) basic side chains: lysine, arginine, and histidine; (6) acidic side chains: aspartic acid and glutamic acid; and (7) sulfur-containing side chains: cysteine ​​and methionine. Preferred conservative amino acid substitution groups are valine-leucine-isoleucine, phenylalanine-tyrosine, lysine-arginine, alanine-valine, glutamic acid-aspartic acid, and asparagine-glutamine. Alternatively, a conservative substitution is any change that has a positive value in the PAM250 log-likelihood matrix, as disclosed in Gonnet et al. (1992) Science 256: 1443-1445, incorporated herein by reference. A "moderately conservative" substitution is any change that has a non-negative value in the PAM250 log-likelihood matrix.

[0050] Sequence similarity of polypeptides, also referred to as sequence identity, is typically measured using sequence analysis software. Protein analysis software compares similar sequences using measures of similarity assigned to various substitutions, deletions, and other modifications, including conservative amino acid substitutions. For example, GCG software includes programs such as Gap and Bestfit, which can be used with default parameters to determine sequence homology or sequence identity between closely related polypeptides, for example, between homologous polypeptides from different species of organisms, or between a wild-type protein and its variants. Polypeptide sequences can also be compared using FASTA, a program in GCG version 6.1, using default or recommended parameters. FASTA (e.g., FASTA2 and FASTA3) provides alignments and percent sequence identity of the regions of best overlap between the query and search sequences (Pearson (2000) supra). Another preferred algorithm for comparing disclosed sequences to databases containing a large number of sequences from different organisms is the computer program BLAST, particularly BLASTP or TBLASTN, using default parameters. See, for example, Altschul et al. (1990) J. Mol. Biol. 215:403-410 and Altschul et al. (1997) Nucleic Acids Res. 25:3389-402, both of which are incorporated herein by reference.

[0051] In one preferred embodiment of the present disclosure, the antibody or antigen-binding fragment thereof comprises a complementarity determining region of a heavy chain variable region and a complementarity determining region of a light chain variable region, wherein the complementarity determining region of the heavy chain variable region comprises CDRH1, CDRH2, and CDRH3 regions, and the complementarity determining region of the light chain variable region comprises CDRL1, CDRL2, and CDRL3 regions; the CDRH1 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 1-2, or a substantially similar sequence thereof having at least 90%, at least 95%, at least 98%, or at least 99% sequence identity; the CDRH2 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 3-6 and 31, or a substantially similar sequence thereof having at least 90%, at least 95%, at least 98%, or at least 99% sequence identity; the CDRH3 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 7-9, or a substantially similar sequence thereof having at least 90%, at least 95%, at least 98%, or at least 99% sequence identity; the CDRL1 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 10-13, or a substantially similar sequence thereof having at least 90%, at least 95%, at least 98%, or at least 99% sequence identity; the CDRL2 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 14-15, or a substantially similar sequence thereof having at least 90%, at least 95%, at least 98%, or at least 99% sequence identity; The CDRL3 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 16 to 18, or a substantially similar sequence thereof having at least 90%, at least 95%, at least 98%, or at least 99% sequence identity.

[0052] In a preferred embodiment of the present disclosure, the antibody or antigen-binding fragment thereof comprises the complementarity determining regions of the heavy chain variable region and the complementarity determining regions of the light chain variable region shown in Table 2.

[0053] [Table 2]

[0054] In one preferred embodiment of the present disclosure, antibody 25A1 or an antigen-binding fragment thereof comprises a CDRH1 region comprising the amino acid sequence of SEQ ID NO: 1 or a sequence substantially similar thereto; a CDRH2 region comprising the amino acid sequence of SEQ ID NO: 3 or a sequence substantially similar thereto; a CDRH3 region comprising the amino acid sequence of SEQ ID NO: 7 or a sequence substantially similar thereto; a CDRL1 region comprising the amino acid sequence of SEQ ID NO: 10 or a sequence substantially similar thereto; a CDRL2 region comprising the amino acid sequence of SEQ ID NO: 14 or a sequence substantially similar thereto; and a CDRL3 region comprising the amino acid sequence of SEQ ID NO: 16 or a sequence substantially similar thereto. Preferably, antibody 25A1 comprises a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 19 or a substantially similar sequence thereto with at least 90%, at least 95%, at least 98%, or at least 99% sequence identity. Preferably, antibody 25A1 comprises a light chain variable region comprising the amino acid sequence of SEQ ID NO: 20 or a substantially similar sequence thereto with at least 90%, at least 95%, at least 98%, or at least 99% sequence identity thereto.

[0055] In another embodiment, the antibody according to the present disclosure is preferably a humanized antibody. A "humanized antibody" is a recombinant protein in which the CDRs from an antibody derived from one species, e.g., a rodent antibody, have been transferred from the variable heavy and light chains of the rodent antibody into human heavy and light chain variable domains containing human framework region (FR) sequences. The constant domains of the antibody molecule are derived from the constant domains of a human antibody.

[0056] To improve the binding affinity of humanized antibodies according to the present disclosure, some amino acid residues in the human framework regions are replaced by the corresponding amino acid residues in the species of the CDR, e.g., rodent.

[0057] Preferably, the humanized antibody or antigen-binding fragment thereof comprises a heavy chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 21 to 23, or a substantially similar sequence thereof with at least 90%, at least 95%, at least 98%, or at least 99% sequence identity. The humanized antibody or antigen-binding fragment thereof comprises a light chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 24 to 26, or a substantially similar sequence thereof with at least 90%, at least 95%, at least 98%, or at least 99% sequence identity.

[0058] In one preferred embodiment of the present disclosure, the humanized antibody 25A1-B2B4AQT or an antigen-binding fragment thereof comprises a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 27 or a sequence substantially similar thereto, and a light chain variable region comprising the amino acid sequence of SEQ ID NO: 28 or a sequence substantially similar thereto.

[0059] In one preferred embodiment of the present disclosure, the humanized antibody 25A1-B5B6AQT or an antigen-binding fragment thereof comprises a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 29 or a sequence substantially similar thereto, and a light chain variable region comprising the amino acid sequence of SEQ ID NO: 30 or a sequence substantially similar thereto.

[0060] Preferably, the antibodies according to the present disclosure are monoclonal antibodies.

[0061] Antibodies of the present disclosure can be monospecific, bispecific, or multispecific. Multispecific antibodies can be specific for different epitopes of a single target polypeptide or can contain antigen-binding domains specific for more than one target polypeptide. Anti-alpha toxin antibodies of the present disclosure can also be linked to or co-expressed with another functional molecule, such as another peptide or protein. For example, an antibody or fragment thereof can be operatively linked (e.g., by chemical coupling, genetic fusion, noncovalent association, or otherwise) to one or more other molecular entities, such as another antibody or antibody fragment, to produce a bispecific or multispecific antibody with a second binding specificity. For example, the present disclosure includes bispecific antibodies in which one arm of the immunoglobulin is specific for alpha toxin or a fragment thereof and the other arm of the immunoglobulin is specific for a second therapeutic target or is conjugated to a therapeutic moiety.

[0062] In a preferred embodiment of the present disclosure, the antibody or antigen-binding fragment thereof is conjugated to a therapeutic agent.

[0063] An example of a therapeutic agent is an antibiotic, including, but not limited to, dactinomycin, bleomycin, mithramycin, anthramycin, streptozotocin, gramicidin D, or mitomycin.

[0064] In a preferred embodiment of the present disclosure, the antibody or antigen-binding fragment thereof can be produced using any number of expression systems, including prokaryotic and eukaryotic expression systems. In some embodiments, the expression system is a mammalian cell expression system, such as a hybridoma or CHO cell expression system. Many such systems are widely available from commercial sources. H and V L In embodiments including both regions, V H and V L The regions can be expressed using a single vector, for example, as a dicistronic expression unit or under the control of different promoters. Hand V L The regions can be expressed using separate vectors. H or V L The region may optionally include an N-terminal methionine.

[0065] Genes encoding the heavy and light chains of an antibody of interest can be cloned from cells, e.g., genes encoding a monoclonal antibody can be cloned from a hybridoma and used to produce recombinant monoclonal antibodies. Gene libraries encoding the heavy and light chains of monoclonal antibodies can also be generated from hybridomas or plasma cells. Random combinations of heavy and light chain gene products generate a large pool of antibodies with different antigen specificities (see, e.g., Kuby, Immunology (3rd ed. 1997)).

[0066] Techniques for the production of single chain antibodies or recombinant antibodies (US Pat. No. 4,946,778; US Pat. No. 4,816,567) can be adapted to produce antibodies to polypeptides of the present disclosure. Also, transgenic mice or other organisms, e.g., other mammals, can be used to express humanized or human antibodies (see, e.g., U.S. Pat. Nos. 5,545,807; 5,545,806; 5,569,825; 5,625,126; 5,633,425; 5,661,016; Marks et al., Bio / Technology 10:779-783 (1992); Lonberg et al., Nature 368:856-859 (1994); Morrison, Nature 368:812-13 (1994); Fishwild et al., Nature Biotechnology 14:845-51 (1996); Neuberger, Nature Biotechnology 14:826 (1996); and Lonberg & Huszar, Intern. Rev. Immunol. 13:65-93 (1995).

[0067] In a preferred embodiment of the present disclosure, the antibody or antigen-binding fragment thereof is expressed on the surface of a cell. More preferably, the cell is a T cell.

[0068] The present disclosure provides pharmaceutical compositions comprising an antibody or antigen-binding fragment thereof of the present disclosure. The pharmaceutical compositions of the present disclosure are formulated using suitable diluents, carriers, excipients, and other agents that improve transport, delivery, tolerance, etc. The compositions can be formulated for a particular use, such as veterinary use or human pharmaceutical use. The form of the composition and the excipients, diluents, and / or carriers used will depend on the intended use of the antibody and, in the case of therapeutic uses, the method of administration. Many suitable formulations can be found in Remington's Pharmaceutical Sciences, Mack Publishing Company, Easton, Pa., a formulary known to all pharmacists. These formulations include, for example, powders, pastes, ointments, jellies, waxes, oils, lipids, lipid (cationic or anionic)-containing vesicles (e.g., LIPOFECTIN™, Life Technologies, Carlsbad, Calif.), DNA conjugates, anhydrous absorbent pastes, oil-in-water and water-in-oil emulsions, emulsions of carbowax (polyethylene glycols of various molecular weights), semi-solid gels, and semi-solid mixtures containing carbowax. See also Powell et al., "Compendium of Excipients for Parenteral Formulations," PDA (1998) J Pharm Sci Technol 52:238-311.

[0069] The dose of an antibody administered to a patient may vary depending on the patient's age and size, the target disease, condition, route of administration, etc. Preferred doses are typically calculated according to body weight or body surface area. When the antibody of the present disclosure is used to treat a condition or disease associated with Staphylococcus aureus infection in an adult patient, the antibody of the present disclosure may be advantageously administered intravenously. The frequency and duration of treatment can be adjusted depending on the severity of the condition. Effective dosages and schedules for administering antibodies can be determined empirically; for example, the patient's progress can be monitored by periodic evaluation, and the dosage adjusted accordingly. Furthermore, interspecies scaling of dosages can be performed using methods well known in the art (e.g., Mordenti et al., 1991, Pharmaceut. Res. 8:1351).

[0070] Various delivery systems, such as liposomes, microparticles, encapsulation in microcapsules, recombinant cells capable of expressing mutant viruses, and receptor-mediated endocytosis (see Wu et al., 1987, J. Biol. Chem. 262:4429-4432), are known and can be used to administer the pharmaceutical compositions of the present disclosure. Methods of introduction include, but are not limited to, intradermal, intramuscular, intraperitoneal, intravenous, subcutaneous, intranasal, epidural, and oral routes. The compositions may be administered by any convenient route, for example, by infusion or bolus injection, by absorption through epithelial or mucocutaneous linings (e.g., oral, rectal, and intestinal mucosa), or may be administered in conjunction with other bioactive agents. Administration may be systemic or local.

[0071] The pharmaceutical compositions of the present disclosure can be delivered subcutaneously or intravenously using a standard needle and syringe. In addition, for subcutaneous delivery, a pen delivery device can be easily adapted to deliver the pharmaceutical compositions of the present disclosure. Such pen delivery devices can be reusable or disposable. Reusable pen delivery devices generally utilize a replaceable cartridge containing the pharmaceutical composition. Once all of the pharmaceutical composition in the cartridge has been administered and the cartridge is empty, the empty cartridge can be immediately discarded and replaced with a new cartridge containing the pharmaceutical composition. This allows the pen delivery device to be reused. Disposable pen delivery devices do not have a replaceable cartridge. Rather, disposable pen delivery devices are pre-filled with the pharmaceutical composition contained in a reservoir within the device. Once the reservoir is emptied of the pharmaceutical composition, the entire device is discarded.

[0072] In some cases, the pharmaceutical composition can be delivered in a controlled-release system. In one embodiment, a pump can be used (see Langer, supra; Sefton, 1987, CRC Crit. Ref. Biomed. Eng. 14:201). In another embodiment, a polymeric material can be used; see Medical Applications of Controlled Release, Langer and Wise (eds.), 1974, CRC Press, Boca Raton, Fla. In yet another embodiment, a controlled-release system can be placed in proximity to the target of the composition, thereby requiring only a fraction of the systemic dose (see, e.g., Goodson, 1984, Medical Applications of Controlled Release, supra, Vol. 2, pp. 115-138). Other controlled-release systems are discussed in the review by Langer, 1990, Science 249:1527-1533.

[0073] Injectable preparations may include dosage forms for intravenous injection, subcutaneous injection, intradermal injection, intramuscular injection, drip infusion, etc. These injectable preparations can be prepared by known methods. For example, injectable preparations can be prepared by dissolving, suspending, or emulsifying the antibody or its salt in a sterile aqueous or oily medium commonly used for injections. Aqueous media for injections include, for example, saline, isotonic solutions containing glucose, and other adjuvants that can be used in combination with appropriate solubilizers, such as alcohols (e.g., ethanol), polyalcohols (e.g., propylene glycol, polyethylene glycol), nonionic surfactants (e.g., polysorbate 80, HCO-50 (polyoxyethylene (50 mol) adduct of hydrogenated castor oil)). Oily media include, for example, sesame oil, soybean oil, etc., used in combination with solubilizers, such as benzyl benzoate, benzyl alcohol, etc. The injections prepared in this manner are preferably filled into appropriate ampoules.

[0074] Advantageously, the pharmaceutical compositions for oral or parenteral use are prepared in unit dosage forms suitable for the dosage of the active ingredient, such as tablets, pills, capsules, injections (ampoules), suppositories, etc.

[0075] The present disclosure provides a method for neutralizing alpha-toxin of Staphylococcus aureus, the method comprising administering to a subject an antibody or antibody-binding fragment thereof of the present disclosure, or a pharmaceutical composition of the present disclosure. In one embodiment, the antibody neutralizes alpha-toxin at a concentration of 1×10 -7 ~1×10 -10 M; preferably, the KD is 1 x 10 -8 ~1×10 -10 M; more preferably, KD is in the range of 1 x 10 -9 ~1×10 -10 In one embodiment, the method provides passive immunotherapy in the context of a Staphylococcus aureus infection.

[0076] The present disclosure provides a method for treating and / or preventing a disease and / or disorder caused by a Staphylococcus aureus infection in a subject in need thereof, the method comprising administering to the subject a pharmaceutical composition comprising the antibody or antigen-binding fragment thereof described above. In one embodiment, the Staphylococcus aureus infection is pneumonia.

[0077] As used herein, the terms "treat" and "treatment" refer to the administration of an agent or formulation to a clinically symptomatic individual suffering from an adverse condition, disorder, or disease, thereby reducing the severity and / or frequency of the symptoms, eliminating the symptoms and / or their underlying disease, and / or promoting the amelioration or repair of damage. The term "prevent" or "prevention" refers to the administration of an agent or composition to a clinically asymptomatic individual who is predisposed to a particular adverse condition, disorder, or disease, and thus relates to the prevention of the onset of the symptoms and / or their underlying disease. As will be understood by those skilled in the art, prevention or prophylaxis need not achieve absolute (complete) prevention or avoidance of the condition. Rather, prevention need only achieve a substantial (e.g., greater than about 50%) reduction or avoidance of the disease or condition sought to be prevented. Unless otherwise indicated herein, whether expressly or implicitly, even if the term "treatment" (or "treating") is used without reference to possible prevention, it is intended that prevention be encompassed as well.

[0078] The present disclosure provides a method for detecting Staphylococcus aureus alpha-toxin in a sample, the method comprising contacting the sample with the aforementioned antibody or antigen-binding fragment thereof.

[0079] The present disclosure also provides a diagnostic agent or kit for detecting alpha-toxin of Staphylococcus aureus in a sample, the diagnostic agent or kit comprising the aforementioned antibody or antigen-binding fragment thereof.

[0080] The anti-alpha toxin antibodies of the present disclosure can be used to detect and / or measure alpha toxin or alpha toxin-expressing cells in a sample, e.g., for diagnostic purposes. For example, anti-alpha toxin antibodies or fragments thereof can be used to diagnose conditions or diseases characterized by abnormal expression (e.g., overexpression, underexpression, lack of expression, etc.) of alpha toxin. An exemplary diagnostic assay for alpha toxin can include, for example, contacting a sample obtained from a patient with an anti-alpha toxin antibody of the present disclosure, where the anti-alpha toxin antibody is labeled with a detectable label or reporter molecule. Alternatively, an unlabeled anti-alpha toxin antibody can be used in diagnostic applications in combination with a secondary antibody that is itself detectably labeled. The detectable label or reporter molecule can be a radioisotope, e.g., 3 H, 14 C. 32 P, 35 S or 125 I; a fluorescent or chemiluminescent moiety, such as fluorescein isothiocyanate or rhodamine; or an enzyme, such as alkaline phosphatase, beta-galactosidase, horseradish peroxidase, or luciferase. Specific exemplary assays that can be used to detect or measure alpha toxin in a sample include enzyme-linked immunosorbent assay (ELISA), radioimmunoassay (RIA), and fluorescence-activated cell sorting (FACS).

[0081] Hereinafter, an embodiment of the present invention will be described. [1] An antibody or antigen-binding fragment thereof that specifically binds to an epitope or a fragment thereof of Staphylococcal aureus alpha-toxin, wherein the antibody or antigen-binding fragment thereof comprises a complementarity-determining region (CDR) of a heavy chain variable region and a complementarity-determining region of a light chain variable region, the complementarity-determining region of the heavy chain variable region comprises CDRH1, CDRH2, and CDRH3 regions, and the complementarity-determining region of the light chain variable region comprises CDRL1, CDRL2, and CDRL3 regions, and the CDRH1 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 1 to 2 or a sequence substantially similar thereto; the CDRH2 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 3 to 6 and 31 or a sequence substantially similar thereto; the CDRH3 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 7 to 9 or a sequence substantially similar thereto; and the CDRL1 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 10 to 13 or a sequence substantially similar thereto; the CDRL2 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 14 to 15 or a sequence substantially similar thereto; and the CDRL3 region comprises an amino acid sequence selected from the group consisting of SEQ ID NOs: 16 to 18 or a sequence substantially similar thereto; The antibody or antigen-binding fragment thereof. [2] The CDRH1 region comprises the amino acid sequence of SEQ ID NO: 1 or a sequence substantially similar thereto; the CDRH2 region comprises the amino acid sequence of SEQ ID NO: 3 or a sequence substantially similar thereto; the CDRH3 region comprises the amino acid sequence of SEQ ID NO: 7 or a sequence substantially similar thereto; and the CDRL1 region comprises the amino acid sequence of SEQ ID NO: 10 or a sequence substantially similar thereto; the CDRL2 region comprises the amino acid sequence of SEQ ID NO: 14 or a sequence substantially similar thereto; and the CDRL3 region comprises the amino acid sequence of SEQ ID NO: 16 or a sequence substantially similar thereto; [1] The antibody or antigen-binding fragment thereof described in [1]. [3] The antibody or antigen-binding fragment thereof described in [1], comprising a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 19 or a sequence substantially similar thereto, and a light chain variable region comprising the amino acid sequence of SEQ ID NO: 20 or a sequence substantially similar thereto. [4] The antibody or antigen-binding fragment thereof according to [1], comprising a heavy chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 21 to 23 or a sequence substantially similar thereto, and a light chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 24 to 26 or a sequence substantially similar thereto. [5] The antibody or antigen-binding fragment thereof described in [1], comprising a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 27 or a sequence substantially similar thereto, and a light chain variable region comprising the amino acid sequence of SEQ ID NO: 28 or a sequence substantially similar thereto. [6] The antibody or antigen-binding fragment thereof described in [1], comprising a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 29 or a sequence substantially similar thereto, and a light chain variable region comprising the amino acid sequence of SEQ ID NO: 30 or a sequence substantially similar thereto. [7] The antibody or antigen-binding fragment thereof according to any one of [1] to [6], wherein the antibody is a mammalian antibody, a monoclonal antibody, a chimeric antibody, a humanized antibody, or a human antibody. [8] A pharmaceutical composition comprising the antibody or antigen-binding fragment thereof according to any one of [1] to [7] and a pharmaceutically acceptable carrier or excipient. [9] The antibody or antigen-binding fragment thereof according to any one of [1] to [7], for neutralizing alpha-toxin of Staphylococcus aureus in a subject in need thereof.

[10] The antibody reacts with alpha toxin at 1×10 -7 ~1×10 -10 The antibody or antigen-binding fragment thereof according to [9], which binds with a KD in the range of M.

[11] The antibody or antigen-binding fragment thereof according to [9] or

[10] , which provides passive immunotherapy in connection with Staphylococcus aureus (S. aureus) infection.

[12] The antibody or antigen-binding fragment thereof according to any one of [1] to [7], for treating, prophylactically treating and / or preventing a disease and / or disorder caused by Staphylococcus aureus infection in a subject in need thereof.

[13] The antibody or antigen-binding fragment thereof according to

[12] , wherein the disease and / or disorder caused by Staphylococcus aureus infection is pneumonia.

[14] A method for detecting alpha toxin of Staphylococcus aureus in a sample, the method comprising a step of contacting the sample with the antibody or antigen-binding fragment thereof described in any one of [1] to [7].

[15] A kit for detecting alpha-toxin of Staphylococcus aureus in a sample, the kit comprising the antibody or antigen-binding fragment thereof according to any one of [1] to [7]. The following examples are provided to aid those skilled in the art in practicing the present disclosure. [Example]

[0082] Materials and Methods Antigen preparation Non-toxic alpha-toxin mutant AT H35L The sequence was constructed in the pET27b vector in frame with a C-terminal 6X His tag (pET27b TAC1p α-hemolysin-6His). H35L was expressed and purified from E. coli BL21 strain. Briefly, 750 mL of fresh culture was grown to an OD of 0.67 at 37°C. 600 The cells were grown to 100°C for 5 h. IPTG (isopropyl-β-D-thiogalactopyranoside) was added to a final concentration of 0.25 mM to induce protein expression at 30°C for 5 h. The cells were then harvested, resuspended in 100 ml of lysis buffer, and subsequently homogenized using seven cycles of a French press. The cell lysate was clarified and mixed with 2 ml of Ni-NTA. After 2 h of binding, recombinant His-tagged alpha-toxin AT H35L The product was eluted with 20-150 mM imidazole solution and dialyzed into phosphate buffered saline.

[0083] Immunization and phage library generation Eight- to 10-week-old BALB / c mice were treated with alpha-toxin AT by intraperitoneal injection every 2 weeks for 10 weeks. H35LThe mice were immunized with incomplete Freund's adjuvant. Two weeks after the last injection, additional booster immunizations were given daily for three days before sacrifice. An anti-AT scFv (single-chain variable fragment) phage library was produced from mouse spleen cells. Briefly, mouse spleens were homogenized and lysed with TRIZOL® reagent for RNA isolation, and then cDNA was synthesized using SuperScript III™. The heavy chain variable region (V) of the DNA fragment was cloned into the phage library. H ) and the light chain variable region (V L ) was amplified with the scFV primer set. L -Linker-V H To generate V L , V H The mixture of V and flexible linker was amplified by PCR. L -Linker-V H The fragment was digested with Sfi and the cleaved insert was ligated with a phagemid vector. The ligation mix was electroporated into E. coli TG1 competent cells to generate a phage library. The diversity was 1.24 × 10 9 It was estimated that there were transformants.

[0084] Affinity selection of phage libraries Next, anti-AT antibodies were panned from the phage library using both solution-based and plate-based methods. For solution-based panning, biotinylated alpha-toxin was incubated with the phage library and streptavidin magnetic beads. After washing, bound phage antibodies were eluted. The eluted phage were amplified and used for the next round of panning selection. A total of three rounds of panning were performed. For plate-based panning, alpha-toxin was coated onto a microplate and incubated with the phage library, and a total of three rounds of plate-based panning were performed. Phage particles were first screened for their ability to bind alpha-toxin using phage ELISA, analyzed, and their DNA was sequenced.

[0085] Phage ELISA 10 μL of an overnight culture of each phage was grown in 150 μL of 2YT-A medium in a 96-well microplate for 2 hours at 37°C. The culture was then added with 50 μL of helper phage (2 × 10 10 The plates were infected with 100 μL of 2YT-A medium (PFU / ml) and incubated at 37°C for another 2 hours with shaking. 50 μL of 2YT-A medium supplemented with 125 μg / ml kanamycin was added to the culture plate and incubated at 30°C overnight with shaking. The culture supernatant containing the desired phages was obtained by centrifugation at 3,300 × g for 30 minutes and used for phage ELISA screening. 100 μL of the phage supernatant was added to an AT-coated ELISA plate. Positive binders were detected using mouse anti-M13-HRP and TMB substrate. The absorbance was measured at 450 nm using an ELISA plate reader.

[0086] Construction and expression of full-length antibodies The light and heavy chains were amplified and digested with DraIII / BsiWI and MluI / NheI, respectively. The inserts were ligated into vectors containing the light and heavy chain constant regions, and the constructs were transfected into F293 cells for expression. The purified full-length antibodies were tested in neutralizing AT-induced A549 cell lysis, and their IC 50 Ranked by.

[0087] SPR binding to recombinant alpha-toxin Surface plasmon resonance (SPR) was used to determine the binding kinetics of 25A1 to recombinant AT. Briefly, approximately 200 response units (RU) of 25A1 were immobilized on a CM5 chip using a standard amine coupling procedure. Subsequently, serially diluted AT at concentrations of 1.5625, 3.125, 6.25, 12.5, 25, and 50 nM was injected at 30 μL / min for 180 seconds and allowed to dissociate for 480 seconds. The kinetic parameters (K on and K. off ) and affinity (K D ) was calculated using the Biacore T100 evaluation software 2.0 with a 1:1 interaction binding model.

[0088] Humanization of the parent murine monoclonal antibody 25A1 Humanization was performed by complementarity-determining region (CDR) grafting. The mouse 25A1 protein sequence was aligned to human germline sequences to identify human sequences with high sequence identity, and sequences from the light chain family IGVK3-11 and heavy chain family IGHV1-2 were employed as framework sequences. In addition to CDR grafting, the sequences were further analyzed for potential free cysteines, deamination, lysine clipping, and protease cleavage site formation. Chimeric and humanized 25A1 antibodies were transiently expressed in F293 cells and purified.

[0089] Neutralization of alpha-toxin-induced A549 cell lysis A functional assay for anti-AT antibodies was established. A549 cells were cultured at 2 × 10 4 Cells / well were seeded into microplates and cultured overnight at 37°C with 5% CO2. The next day, the medium was removed and the cells were washed with medium. Purified antibodies were added to the cells at 0.4, 4, and 40 μg / mL and co-incubated with AT at 8 μg / mL. At the end of the incubation, cell viability was analyzed using a colorimetric MTT assay kit. OD 690 Results were calculated relative to background absorbance at OD 570 nm measurements were subtracted (Fig. 1).

[0090] Rabbit erythrocyte lysis assay Crude supernatants of S. aureus were collected from 3 ml of overnight tryptic soy broth (TSB) cultures by centrifugation at 6000 rpm for 10 minutes. The supernatants from the various strains were then filter sterilized and stored at -80°C until further use.

[0091] RBC cells were harvested using an iodixanol gradient solution, and the final cell pellet was resuspended in balanced salt medium (0.85% NaCl, 10 mM HEPES, pH 7.4) and kept at 4°C. The ability of antibodies to neutralize AT-induced rabbit RBC hemolysis was evaluated. Specifically, 25 μl of each antibody at concentrations of 100, 50, 25, 12.5, 6.25, 3.125, 1.56, and 0.78 was added to wells with 100 μl of 10% rabbit RBCs, followed by 25 μl of 1:8 to 1:16 diluted S. aureus culture supernatants from various strains. After incubation at 37°C for 45 to 60 minutes, the plate was centrifuged for 5 minutes, and 50 μl of the supernatant was gently transferred to a new microtiter plate. The absorbance was read at 450 nm. The antibody titer was defined as the antibody concentration at which 50% inhibition of alpha-toxin-induced hemolysis was achieved. 2% Triton X-100 served as a 100% hemolysis control. Inhibition of hemolysis was calculated as ((OD450 of 2% Triton X-100 - OD450 of test antibody) / (OD450 of 2% Triton X-100)) × 100%.

[0092] Mouse bacteremia model Groups of six female BALB / c or CD-1 mice were passively immunized by intraperitoneal injection of control antibody or 25A1, and then challenged 24 hours later with a 90% lethal intravenous (i.v.) injection of Staphylococcus aureus BAA-1717 or ATCC 29213 strain. Animal mortality was monitored for 10 consecutive days. Survival was recorded, and results were analyzed using GraphPad Prism. Statistical significance analysis was performed using the Log-rank (Mantel-Cox) and Gehan-Breslow-Wilcoxon tests in Kaplan-Meir survival analyses.

[0093] Mouse pneumonia model Groups of 10 7- to 9-week-old female C57BL / 6J mice (Jackson Labs, Bar Harbor, MI) were passively immunized by intraperitoneal injection of SYN100 (25A1-B5B6AQT) and then challenged 24 hours later with a lethal dose of each S. aureus clinical isolate intranasally (IN). Two hours after infection, vancomycin was administered subcutaneously. Animals were monitored for survival by census three times daily for 7 days postinfection. Survival was recorded, and results were analyzed using GraphPad Prism. Statistical significance was determined using Kaplan-Meir survival analysis with the Log-rank (Mantel-Cox) and Gehan-Breslow-Wilcoxon tests.

[0094] Rabbit pneumonia model Groups of 3-9 male New Zealand rabbits were treated with different doses of SYN100 24 hours before infection. Inoculum sizes ranged from 2.9 to 5.2 x 10 7 The number of CFU / rabbit was kept within 100. Linezolid, when used, was administered by subcutaneous injection at 50 mg / kg / 8 h 4 h after infection. Animals were monitored for survival by twice-daily censuses for 7 days after infection. Survival was recorded and results were analyzed using GraphPad Prism. Statistical significance analysis was performed using Kaplan-Meir survival analysis with Log-rank (Mantel-Cox) and Gehan-Breslow-Wilcoxon tests.

[0095] [Example 1] Isolation of anti-alpha toxin antibodies BABL / c mice were immunized with recombinant AT specifically inactivated by introducing the H35L mutation. A single-chain variable fragment (scFv) phage library was then constructed and panned with purified AT from S. aureus. After three rounds of panning, 29 unique binders were identified, produced, and tested for neutralizing activity against AT-induced A549 cell lysis. The results showed that only 10 of the 29 purified antibodies (25A1, 25A10, 25E4, 25E12, 25H3, 25B7, 25G1, 25G4, 5H9, and N2F6) inhibited A549 cell lysis when the antibodies were used at 40 μg / mL (Figure 1). The neutralizing activities of the 10 antibodies are summarized in Table 3. The antibodies were then converted to full-length antibodies and further characterized for binding and confirmed for neutralizing activity. The CDR sequences of the 10 clones are shown in Table 2 (as shown above). Comparison of the CDR sequences revealed that 9 of the 10 inhibitory antibodies had nearly identical amino acid sequences. Five of these (25A10, 25A1, 25E12, 25H3, and 25E4) had very similar functional activity in neutralizing AT-induced A549 cell lysis. Clone 25A1 was selected based on binding and functional activity.

[0096] [Table 3]

[0097] [Example 2] High-affinity binding of 25A1 to recombinant alpha-toxin The affinity of 25A1 to recombinant AT was evaluated by surface plasmon resonance. As shown in Figure 2, 25A1 binds α-toxin with 8.346 × 10 -10 It binds with a KD of M. The association and dissociation constants are 7.608 x 10, respectively. 5 M -1 s -1 and 6.349 x 10 -4 s -1 This data indicates that 25A1 has a high affinity for AT.

[0098] [Example 3] Engineering and characterization of humanized 25A1 To reduce the immunogenicity introduced by the murine antibody, we chose to graft the CDRs of the murine 25A1 antibody onto the human frameworks IGVK3-11*01F for the light chain and IGHV1-2*02F for the heavy chain due to their high sequence and conformational identity to murine 25A1. Various combinations of backmutations were generated and tested for antigen binding. Based on binding affinity and the number of backmutations, two heavy chain variants, 25A1-VHB2 and 25A1-VHB5, and two light chain variants, 25A1-VLB4 and 25A1-VLB6, were selected to construct variants 25A1-HuB2B4, 25A1-HuB5B4, 25A1-HuB2B6, and 25A1-HuB5B6. The sequence variations of the antibodies after CDR grafting and backmutation are shown in Figure 3(A). Binding kinetics (K D ) were calculated by forteBio as 1.1 × 10 -9 M, 1.5 x 10 -9 M, 1.1 x 10 -9 M and 1.1 x 10 -9 M. These were determined to be 1.5 × 10 -9 The K of the parent murine antibody 25A1 is M D and is highly similar (Fig. 3(B)).

[0099] We then selected 25A1-B2B4 and 25A1-B5B6 to examine sequence trends. A potential glycosylation site was identified at N61 in the heavy chain CDR2 region (Figure 3(C)). Therefore, N61 was mutated to alanine to avoid unnecessary complications due to excessive glycosylation. The N61A mutant clones were designated 25A1-B2B4AQT and 25A1-B5B6AQT.

[0100] [Example 4] Neutralization of alpha-toxin-induced hemolysis of rabbit erythrocytes. Humanized 25A1, 25A1-B2B4AQT, and 25A1-B5B6AQT were then produced and tested for inhibition of rabbit RBC hemolysis induced by native alpha-toxin. Briefly, bacterial supernatants from stationary phase (overnight cultures) were collected from five S. aureus clinical strains (BAA-1717, BAA-1756, ATCC33592, BAA-42, and Wood46) and added to rabbit RBCs along with various anti-AT antibodies at concentrations ranging from 0.195 to 25 μg / mL. The percentage inhibition of RBC hemolysis induced by recombinant and native alpha-toxin from the five test strains is shown in Figure 4. Antibodies 25A1, 25A1-B2B4AQT, and 25A1-B5B6AQT were able to bind to native alpha-toxin from the tested strains and showed approximately 50% to 90% inhibition of RBC lysis mediated by various native alpha-toxins. The IC values ​​of 25A1, 25A1-B2B4AQT, and 25A1-B5B6AQT for inhibition of hemolysis induced by recombinant alpha-toxin were 50 The values ​​were 462.3, 442.9, and 304.2 pg / mL; 1518, 1801, and 1830 ng / mL for ATCC33592; 6913, 7956, and 7322 ng / mL for BAA-1756; 1299, 1707, and 1537 ng / mL for Wood46; and 860.6, 910.8, and 996.3 ng / mL for BAA-42, suggesting that both 25A1-B2B4AQT and 25A1-B5B6AQT maintained inhibitory potency comparable to that of 25A1.

[0101] [Example 5] SYN100 increases survival in murine bacteremia and pneumonia models Staphylococcus aureus is a common cause of sepsis, a systemic inflammation accompanied by multiple organ failure. AT plays an important role in sepsis models, as S. aureus hla mutants exhibit delayed time to death and increased survival in the mouse sepsis model. Therefore, we tested 25A1 for its ability to protect mice from S. aureus infection. As shown in Figure 5, death in the vehicle control group was observed between days 2 and 5. In contrast, the 25A1-treated group exhibited increased survival; the overall survival rates for the 50, 25, 10, and 5 mg / kg dose groups were 83%, 67%, 33%, and 50%, respectively (Figure 5). This data indicated that prophylaxis with 25A1 provided protection against bacteremic infection. In another mouse sepsis model established with the methicillin-susceptible S. aureus strain ATCC29213, SYN100 also demonstrated protection as a prophylactic treatment at 100, 50, and 10 mg / kg (Figure 6). Although there is some variability among different strains, these observed efficacies support the prophylactic use of SYN100 in S. aureus sepsis and bacteremia.

[0102] Because Staphylococcus aureus is a frequent cause of ventilator-associated pneumonia in patients, the protective efficacy of SYN100 was evaluated in a S. aureus-induced murine pneumonia model. Twenty-four hours after SYN100 administration, infection was induced by intranasal challenge with three S. aureus clinical isolates: BAA1556 (USA300), SF8300 (USA300), or NRS261 (USA200). In the acute pneumonia model, death in the vehicle control group occurred between 18 and 20 hours postchallenge. In contrast, prophylactic administration of SYN100 significantly prolonged survivorship in all three models, demonstrating that SYN100 can provide protection against diverse S. aureus clinical isolates (Figure 7).

[0103] In subsequent experiments, we tested how SYN100 functions in conjunction with antibiotic treatment in the mouse NRS261 pneumonia model. Vancomycin is typically prescribed in the clinic to treat MRSA infections. Therefore, we tested the efficacy of SYN100 in combination with standard-of-care vancomycin treatment. As shown in Figure 8, neither 10 mg / kg SYN100 nor 30 mg / kg or less of vancomycin significantly extended mouse survival. However, three groups of mice receiving both SYN100 and vancomycin showed dose-dependent survival, highlighting the synergistic effect of SYN100 and vancomycin.

[0104] [Example 6] SYN100 increases survival in a rabbit pneumonia model In many respects, rabbits are a more suitable model organism for S. aureus infection than mice. Therefore, we tested the efficacy of SYN100 in an established rabbit pneumonia model with a nosocomial MRSA strain, ST20120426. ST20120406 is a highly virulent strain secreting relatively large amounts of alpha-toxin, causing death in control animals within 24 hours. As shown in Figure 9, all doses of SYN100 tested in this model, ranging from 25 to 125 mg / kg, significantly prolonged survivorship. This therefore provides further evidence of the utility of SYN100 in S. aureus pneumonia.

[0105] Combination treatment of SYN100 with antibiotics was further explored in the ST20120426 rabbit pneumonia model. Data in Figure 10A show that single treatments with 30 mg / kg SYN100 and 50 mg / kg / 8 hours of linezolid (LZD) resulted in overall survival rates of 56% and 33%, respectively, whereas the group receiving both SYN100 and LZD had an 89% survival rate. Further examination of lung tissue revealed that only the combination-treated group had significantly reduced lung swelling, bacterial burden, and appeared more normal in gross appearance. LZD inhibits the initiation of bacterial protein synthesis and has been shown to be as effective as vancomycin, a cell wall synthesis blocker. Taken together, these results suggest that SYN100 complements the actions of both antibiotics, providing additional protection against MRSA infection in an additive or synergistic manner.

Claims

1. An antibody or antigen-binding fragment thereof that specifically binds to an epitope or a fragment thereof of Staphylococcal aureus alpha-toxin, wherein the antibody or antigen-binding fragment thereof comprises a complementarity-determining region (CDR) of a heavy chain variable region and a complementarity-determining region of a light chain variable region, the complementarity-determining region of the heavy chain variable region comprising CDRH1, CDRH2, and CDRH3 regions, and the complementarity-determining region of the light chain variable region comprising CDRL1, CDRL2, and CDRL3 regions, and the CDRH1 region comprises the amino acid sequence consisting of SEQ ID NO:1; the CDRH2 region comprises the amino acid sequence consisting of SEQ ID NO:3; the CDRH3 region comprises the amino acid sequence consisting of SEQ ID NO:7; and the CDRL1 region comprises the amino acid sequence consisting of SEQ ID NO: 10; the CDRL2 region comprises the amino acid sequence consisting of SEQ ID NO: 14; and the CDRL3 region comprises the amino acid sequence consisting of SEQ ID NO:

16. The antibody or antigen-binding fragment thereof.

2. The antibody or antigen-binding fragment thereof according to claim 1 , wherein the antibody is a mouse antibody.

3. The antibody or antigen-binding fragment thereof according to claim 1, comprising a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 19 and a light chain variable region comprising the amino acid sequence of SEQ ID NO:

20.

4. The antibody or antigen-binding fragment thereof according to claim 1, comprising a heavy chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 21 to 23, and a light chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NOs: 24 to 26.

5. The antibody or antigen-binding fragment thereof according to claim 1, comprising a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 27 and a light chain variable region comprising the amino acid sequence of SEQ ID NO:

28.

6. The antibody or antigen-binding fragment thereof according to claim 1, comprising a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 29 and a light chain variable region comprising the amino acid sequence of SEQ ID NO:

30.

7. The antibody or antigen-binding fragment thereof according to any one of claims 1 to 6, wherein the antibody is a murine antibody, a monoclonal antibody, a chimeric antibody, or a humanized antibody.

8. A pharmaceutical composition comprising the antibody or antigen-binding fragment thereof according to any one of claims 1 to 7 and a pharmaceutically acceptable carrier or excipient.

9. The antibody or antigen-binding fragment thereof according to any one of claims 1 to 7, for neutralizing alpha-toxin of Staphylococcus aureus in a subject in need thereof.

10. The antibody was mixed with alpha toxin at 1 × 10 -7 ~1×10 -10 The antibody or antigen-binding fragment thereof of claim 9, which binds with a KD in the range of M.

11. 11. The antibody or antigen-binding fragment thereof of claim 9 or 10, which provides passive immunotherapy in the context of S. aureus infection.

12. The antibody or antigen-binding fragment thereof according to any one of claims 1 to 7, for the treatment, prophylactic treatment and / or prevention of a disease and / or disorder caused by Staphylococcus aureus infection in a subject in need thereof.

13. The antibody or antigen-binding fragment thereof according to claim 12, wherein the disease and / or disorder caused by Staphylococcus aureus infection is pneumonia.

14. A method for detecting alpha toxin of Staphylococcus aureus in a sample, the method comprising contacting the sample with the antibody or antigen-binding fragment thereof according to any one of claims 1 to 7.

15. A kit for detecting alpha toxin of Staphylococcus aureus in a sample, comprising an antibody or antigen-binding fragment thereof according to any one of claims 1 to 7.

Citation Information

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