WO2022100573A1 - Anti-tigit antibodies and uses thereof - Google Patents
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- WO2022100573A1 WO2022100573A1 PCT/CN2021/129562 CN2021129562W WO2022100573A1 WO 2022100573 A1 WO2022100573 A1 WO 2022100573A1 CN 2021129562 W CN2021129562 W CN 2021129562W WO 2022100573 A1 WO2022100573 A1 WO 2022100573A1
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- C07K16/28—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
- C07K16/2803—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the immunoglobulin superfamily
- C07K16/2809—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the immunoglobulin superfamily against the T-cell receptor (TcR)-CD3 complex
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- C07K16/28—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants
- C07K16/2803—Immunoglobulins [IG], e.g. monoclonal or polyclonal antibodies against material from animals or humans against receptors, cell surface antigens or cell surface determinants against the immunoglobulin superfamily
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- C07K2317/56—Immunoglobulins specific features characterized by immunoglobulin fragments variable (Fv) region, i.e. VH and/or VL
- C07K2317/565—Complementarity determining region [CDR]
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- C07K2317/70—Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
- C07K2317/73—Inducing cell death, e.g. apoptosis, necrosis or inhibition of cell proliferation
- C07K2317/732—Antibody-dependent cellular cytotoxicity [ADCC]
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- C07K2317/70—Immunoglobulins specific features characterized by effect upon binding to a cell or to an antigen
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- C07K2317/90—Immunoglobulins specific features characterized by (pharmaco)kinetic aspects or by stability of the immunoglobulin
- C07K2317/92—Affinity (KD), association rate (Ka), dissociation rate (Kd) or EC50 value
Definitions
- T cell immunoreceptor with Ig and ITIM domains (TIGIT) protein is a member of the PVR (poliovirus receptor) family of immunoglobin proteins. It is expressed on several classes of T cells including follicular B helper T cells (TFH) . TIGIT has been shown to bind PVR with high affinity and the binding is thought to assist interactions between TFH and dendritic cells to regulate T cell dependent B cell responses.
- PVR poliovirus receptor
- TIGIT is a member of the immunoglobulin superfamily with an immunoreceptor tyrosine-based inhibitory motif (ITIM) in the cytoplasmic tail, and is expressed on subsets of activated T cells and natural killer (NK) cells.
- ITIM immunoreceptor tyrosine-based inhibitory motif
- NK natural killer cells.
- TIGIT is known to interact with CD155 (also called PVR and necl-5) , CD112 (also called PVRL2 and nectin-2) , and possibly CD113 (also called PVRL3 and nectin-3) . Binding of TIGIT with a high affinity ligand CD155, which are expressed on antigen-presenting cells, has been reported to suppress the function of T cells and NK cells. TIGIT has also been reported to inhibit T cells indirectly by modulating cytokine production by dendritic cells.
- Tumors constitute highly suppressive microenvironments where infiltrating T cells are exhausted and NK cells are silenced by checkpoint molecules such as PD-1 and TIGIT to evade from the immune responses.
- a high-level expression of TIGIT on CD8+ T cells has been reported to correlate with poor clinical outcomes of AML subjects.
- the functional defects of exhausted TIGIT+CD8+ T cells from AML subjects were reported to be reversed by the siRNA-mediated knockdown of TIGIT expression. It has also been reported that effector CD8+ T cells during HIV infection in blood and SIV infection in lymphoid tissue exhibit higher levels of TIGIT.
- TIGIT is also involved in viral infections.
- HIV Human Immunodeficiency Virus
- TIGIT expressing CD8+ T cells has been shown to be expanded and associated with clinical markers of HIV disease progression in a diverse group of HIV infected individuals. Elevated TIGIT levels remained sustained even among those with undetectable viral loads and a large fraction of HIV-specific CD8+ T cells simultaneously express both TIGIT and another negative checkpoint receptor, Programmed Death Protein 1 (PD-1) and retained several features of exhausted T cells. Blocking these pathways with targeted monoclonal antibodies can rejuvenat HIV-specific CD8+ T cell responses. This pathway can potentially be targeted to enhance killing of HIV infected cells during “Shock and Kill” HIV curative approaches.
- PD-1 Programmed Death Protein 1
- the present disclosure provides antibodies and antigen-binding fragments specific to the human TIGIT protein which can be used for treating various cancers and other diseases, such as viral infections.
- One embodiment of the present disclosure provides an antibody or fragment thereof, wherein the antibody or fragment thereof has specificity to a T cell immunoreceptor with Ig and ITIM domains (TIGIT) protein and comprises a heavy chain variable region (VH) comprising a VH CDR1 comprising the amino acid sequence of SEQ ID NO: 1, a VH CDR2 comprising the amino acid sequence of SEQ ID NO: 2, and a VH CDR3 comprising the amino acid sequence of SEQ ID NO: 3, and a light chain variable region (VL) comprising a VL CDR1 comprising the amino acid sequence of SEQ ID NO: 4, a VL CDR2 comprising the amino acid sequence of SEQ ID NO: 5, and a VL CDR3 comprising the amino acid sequence of SEQ ID NO: 6.
- VH heavy chain variable region
- VL light chain variable region
- the VH comprises an amino acid sequence selected from the group consisting of SEQ ID NO: 9-14 and the VL comprises an amino acid sequence selected from the group consisting of SEQ ID NO: 15-18.
- the VH comprises the amino acid sequence of SEQ ID NO: 11 and the VL comprises the amino acid sequence of SEQ ID NO: 15.
- the VH comprises the amino acid sequence of SEQ ID NO: 10 and the VL comprises the amino acid sequence of SEQ ID NO: 16.
- the antibody or fragment thereof is antibody-dependent cellular cytotoxicity (ADCC) -competent.
- ADCC antibody-dependent cellular cytotoxicity
- a method of treating cancer in a patient in need thereof comprising administering to the patient the antibody or fragment thereof of the present disclosure.
- the cancer is selected from the group consisting of bladder cancer, breast cancer, colorectal cancer, endometrial cancer, esophageal cancer, head and neck cancer, kidney cancer, leukemia, liver cancer, lung cancer, lymphoma, melanoma, pancreatic cancer, prostate cancer, and thyroid cancer.
- the treatment method or use further includes a second agent, such as an immune checkpoint inhibitor (e.g., an antibody or antigen-binding fragment specific to PD-1, PD-L1, CTLA-4, LAG-3, CD28, CD122, 4-1BB, or BTLA) .
- an immune checkpoint inhibitor e.g., an antibody or antigen-binding fragment specific to PD-1, PD-L1, CTLA-4, LAG-3, CD28, CD122, 4-1BB, or BTLA.
- a method of treating or inhibiting infection in a patient in need thereof comprising administering to the patient the antibody or fragment thereof of the present disclosure.
- the infection is viral, bacterial, fungal, or parasite infection.
- the infection is HIV infection.
- one embodiment provides a method of treating cancer in a patient in need thereof, comprising: (a) treating a T cell, in vitro, with the antibody or fragment thereof of the present disclosure; and (b) administering the treated T cell to the patient.
- the method further comprises, prior to step (a) , isolating the T cell from an individual.
- the T cell is a tumor-infiltrating T lymphocyte, a CD4+ T cell, a CD8+ T cell, or the combination thereof.
- a method of identifying a patient suitable for treatment with an anti-TIGIT therapy comprising isolated a cell from the cancer patient and detecting the presence of a TIGIT protein with the antibody or fragment thereof of the present disclosure.
- FIG. 1 shows the Elisa EC 50 for binding to human TIGIT protein for antibodies 76D12B10.
- FIG. 2 shows that 76D12B10 antibodies can bind to cyno TIGIT with high affinity and cannot bind to rat or mouse TIGIT.
- FIG. 3 shows the binding kinetics of 76D12B10 to recombinant TIGIT.
- FIG. 4 shows that all tested humanized antibodies had comparable binding efficacy to human TIGIT in contrast to chimeric antibody.
- FIG. 5 shows that Hu02 and Hu06 antibodies had comparable binding efficacy to human TIGIT in contrast to chimeric antibody.
- FIG. 6 shows that the binding kinetics of Hu02 and Hu06 antibodies to recombinant TIGIT.
- FIG. 7 shows that Hu02 and Hu06 antibodies can dose-dependently block TIGIT and CD155 interaction.
- FIG. 8 shows that Hu02 and Hu06 antibodies dose-dependently inhibited the binding of CD155 to its receptor TIGIT by cell based functional assay.
- FIG. 9 shows that Hu02 antibodies had higher efficacy than Tiragolumab in an MC38 syngeneic mouse model in vivo.
- FIG. 10 shows that LP010-02 had comparable binding efficacy to human TIGIT protein in contrast to Tiragolumab.
- FIG. 11 shows that LP010-02 and Tiragolumab antibodies can efficiently inhibit the binding of human TIGIT protein to human CD155.
- FIG. 12 shows that LP010-02 had better binding efficacy to human TIGIT protein overexpressed cells in contrast to Tiragolumab.
- FIG. 13 shows that LP010-02 antibodies blocked TIGIT and CD155 interaction with higher activity than Tiragolumab and 22G2.
- FIG. 14 shows that the combination of LP010-02 and HX008 had increased efficacy as compared to each antibody alone, in an CT26 syngeneic mouse model in vivo.
- FIG. 15 shows that LP010-02 had higher ADCC activity than Tiragolumab in vitro.
- FIG. 16 shows that LP010-02 had higher CDC activity than Tiragolumab in vitro.
- a or “an” entity refers to one or more of that entity; for example, “an antibody, ” is understood to represent one or more antibodies.
- the terms “a” (or “an” ) , “one or more, ” and “at least one” can be used interchangeably herein.
- an “antibody” or “antigen-binding polypeptide” refers to a polypeptide or a polypeptide complex that specifically recognizes and binds to an antigen.
- An antibody can be a whole antibody and any antigen binding fragment or a single chain thereof.
- the term “antibody” includes any protein or peptide containing molecule that comprises at least a portion of an immunoglobulin molecule having biological activity of binding to the antigen.
- CDR complementarity determining region
- antibody fragment or “antigen-binding fragment” , as used herein, is a portion of an antibody such as F (ab') 2 , F (ab) 2 , Fab', Fab, Fv, scFv and the like. Regardless of structure, an antibody fragment binds with the same antigen that is recognized by the intact antibody.
- antibody fragment includes aptamers, spiegelmers, and diabodies.
- antibody fragment also includes any synthetic or genetically engineered protein that acts like an antibody by binding to a specific antigen to form a complex.
- the term “antibody” encompasses various broad classes of polypeptides that can be distinguished biochemically. Those of skill in the art will appreciate that heavy chains are classified as gamma, mu, alpha, delta, or epsilon ( ⁇ , ⁇ , ⁇ , ⁇ , or ⁇ ) with some subclasses among them (e.g., ⁇ l- ⁇ 4) . It is the nature of this chain that determines the “class” of the antibody as IgG, IgM, IgA IgG, or IgE, respectively.
- immunoglobulin subclasses e.g., IgG 1 , IgG 2 , IgG 3 , IgG 4 , IgG 5 , etc. are well characterized and are known to confer functional specialization. Modified versions of each of these classes and isotypes are readily discernable to the skilled artisan in view of the instant disclosure and, accordingly, are within the scope of the instant disclosure. All immunoglobulin classes are clearly within the scope of the present disclosure, the following discussion will generally be directed to the IgG class of immunoglobulin molecules.
- a standard immunoglobulin molecule comprises two identical light chain polypeptides of molecular weight approximately 23,000 Daltons, and two identical heavy chain polypeptides of molecular weight approximately 53,000-70,000 Daltons.
- the four chains are typically joined by disulfide bonds in a “Y” configuration wherein the light chains bracket the heavy chains starting at the mouth of the “Y” and continuing through the variable region.
- Antibodies, antigen-binding polypeptides, variants, or derivatives thereof of the disclosure include, but are not limited to, polyclonal, monoclonal, multispecific, human, humanized, primatized, or chimeric antibodies, single chain antibodies, epitope-binding fragments, e.g., Fab, Fab' and F (ab') 2 , Fd, Fvs, single-chain Fvs (scFv) , single-chain antibodies, disulfide-linked Fvs (sdFv) , fragments comprising either a VK or VH domain, fragments produced by a Fab expression library, and anti-idiotypic (anti-Id) antibodies (including, e.g., anti-Id antibodies to LIGHT antibodies disclosed herein) .
- anti-Id antigen-binding polypeptides, variants, or derivatives thereof of the disclosure
- Immunoglobulin or antibody molecules of the disclosure can be of any type (e.g., IgG, IgE, IgM, IgD, IgA, and IgY) , class (e.g., IgGl, IgG2, IgG3, IgG4, IgAl and IgA2) or subclass of immunoglobulin molecule.
- Light chains are classified as either kappa or lambda (K, ⁇ ) .
- Each heavy chain class may be bound with either a kappa or lambda light chain.
- the light and heavy chains are covalently bonded to each other, and the “tail” portions of the two heavy chains are bonded to each other by covalent disulfide linkages or non-covalent linkages when the immunoglobulins are generated either by hybridomas, B cells or genetically engineered host cells.
- the amino acid sequences run from an N-terminus at the forked ends of the Y configuration to the C-terminus at the bottom of each chain.
- variable domains of both the light (VK) and heavy (VH) chain portions determine antigen recognition and specificity.
- the constant domains of the light chain (CK) and the heavy chain (CH1, CH2 or CH3) confer important biological properties such as secretion, transplacental mobility, Fc receptor binding, complement binding, and the like.
- the N-terminal portion is a variable region and at the C-terminal portion is a constant region; the CH3 and CK domains actually comprise the carboxy-terminus of the heavy and light chain, respectively.
- variable region allows the antibody to selectively recognize and specifically bind epitopes on antigens. That is, the VK domain and VH domain, or subset of the complementarity determining regions (CDRs) , of an antibody combine to form the variable region that defines a three dimensional antigen-binding site.
- This quaternary antibody structure forms the antigen-binding site present at the end of each arm of the Y. More specifically, the antigen-binding site is defined by three CDRs on each of the VH and VK chains (i.e. CDR-H1, CDR-H2, CDR-H3, CDR-L1, CDR-L2 and CDR-L3) .
- a complete immunoglobulin molecule may consist of heavy chains only, with no light chains. See, e.g., Hamers-Casterman et al., Nature 363: 446-448 (1993) .
- each antigen-binding domain is short, non-contiguous sequences of amino acids that are specifically positioned to form the antigen-binding domain as the antibody assumes its three dimensional configuration in an aqueous environment.
- the remainder of the amino acids in the antigen-binding domains referred to as “framework” regions, show less inter-molecular variability.
- the framework regions largely adopt a ⁇ -sheet conformation and the CDRs form loops which connect, and in some cases form part of, the ⁇ -sheet structure.
- framework regions act to form a scaffold that provides for positioning the CDRs in correct orientation by inter-chain, non-covalent interactions.
- the antigen-binding domain formed by the positioned CDRs defines a surface complementary to the epitope on the immunoreactive antigen. This complementary surface promotes the non-covalent binding of the antibody to its cognate epitope.
- the amino acids comprising the CDRs and the framework regions, respectively can be readily identified for any given heavy or light chain variable region by one of ordinary skill in the art, since they have been precisely defined (see “Sequences of Proteins of Immunological Interest, ” Kabat, E., et al., U.S. Department of Health and Human Services, (1983) ; and Chothia and Lesk, J. MoI. Biol., 196: 901-917 (1987) ) .
- CDR complementarity determining region
- Kabat et al. also defined a numbering system for variable domain sequences that is applicable to any antibody.
- One of ordinary skill in the art can unambiguously assign this system of “Kabat numbering” to any variable domain sequence, without reliance on any experimental data beyond the sequence itself.
- “Kabat numbering” refers to the numbering system set forth by Kabat et al., U.S. Dept. of Health and Human Services, “Sequence of Proteins of Immunological Interest” (1983) .
- CDR-H1 begins at approximately amino acid 31 (i.e., approximately 9 residues after the first cysteine residue) , includes approximately 5-7 amino acids, and ends at the next tryptophan residue.
- CDR-H2 begins at the fifteenth residue after the end of CDR-H1, includes approximately 16-19 amino acids, and ends at the next arginine or lysine residue.
- CDR-H3 begins at approximately the thirty third amino acid residue after the end of CDR-H2; includes 3- 25 amino acids; and ends at the sequence W-G-X-G, where X is any amino acid.
- CDR-L1 begins at approximately residue 24 (i.e., following a cysteine residue) ; includes approximately 10-17 residues; and ends at the next tryptophan residue.
- CDR-L2 begins at approximately the sixteenth residue after the end of CDR-L1 and includes approximately 7 residues.
- CDR-L3 begins at approximately the thirty third residue after the end of CDR-L2 (i.e., following a cysteine residue) ; includes approximately 7-11 residues and ends at the sequence F or W-G-X-G, where X is any amino acid.
- Antibodies disclosed herein can be from any animal origin including birds and mammals.
- the antibodies are human, murine, donkey, rabbit, goat, guinea pig, camel, llama, horse, or chicken antibodies.
- the variable region may be condricthoid in origin (e.g., from sharks) .
- heavy chain constant region includes amino acid sequences derived from an immunoglobulin heavy chain.
- a polypeptide comprising a heavy chain constant region comprises at least one of: a CH1 domain, a hinge (e.g., upper, middle, and/or lower hinge region) domain, a CH2 domain, a CH3 domain, or a variant or fragment thereof.
- an antigen-binding polypeptide for use in the disclosure may comprise a polypeptide chain comprising a CH1 domain; a polypeptide chain comprising a CH1 domain, at least a portion of a hinge domain, and a CH2 domain; a polypeptide chain comprising a CH1 domain and a CH3 domain; a polypeptide chain comprising a CH1 domain, at least a portion of a hinge domain, and a CH3 domain, or a polypeptide chain comprising a CH1 domain, at least a portion of a hinge domain, a CH2 domain, and a CH3 domain.
- a polypeptide of the disclosure comprises a polypeptide chain comprising a CH3 domain.
- an antibody for use in the disclosure may lack at least a portion of a CH2 domain (e.g., all or part of a CH2 domain) .
- a CH2 domain e.g., all or part of a CH2 domain
- the heavy chain constant region may be modified such that they vary in amino acid sequence from the naturally occurring immunoglobulin molecule.
- the heavy chain constant region of an antibody disclosed herein may be derived from different immunoglobulin molecules.
- a heavy chain constant region of a polypeptide may comprise a CH1 domain derived from an IgG l molecule and a hinge region derived from an IgG 3 molecule.
- a heavy chain constant region can comprise a hinge region derived, in part, from an IgG l molecule and, in part, from an IgG 3 molecule.
- a heavy chain portion can comprise a chimeric hinge derived, in part, from an IgG l molecule and, in part, from an IgG 4 molecule.
- the term “light chain constant region” includes amino acid sequences derived from antibody light chain.
- the light chain constant region comprises at least one of a constant kappa domain or constant lambda domain.
- a “light chain-heavy chain pair” refers to the collection of a light chain and heavy chain that can form a dimer through a disulfide bond between the CL domain of the light chain and the CH1 domain of the heavy chain.
- VH domain includes the amino terminal variable domain of an immunoglobulin heavy chain and the term “CH1 domain” includes the first (most amino terminal) constant region domain of an immunoglobulin heavy chain.
- CH1 domain is adjacent to the VH domain and is amino terminal to the hinge region of an immunoglobulin heavy chain molecule.
- CH2 domain includes the portion of a heavy chain molecule that extends, e.g., from about residue 244 to residue 360 of an antibody using conventional numbering schemes (residues 244 to 360, Kabat numbering system; and residues 231-340, EU numbering system; see Kabat et al., U.S. Dept. of Health and Human Services, “Sequences of Proteins of Immunological Interest” (1983) .
- the CH2 domain is unique in that it is not closely paired with another domain. Rather, two N-linked branched carbohydrate chains are interposed between the two CH2 domains of an intact native IgG molecule. It is also well documented that the CH3 domain extends from the CH2 domain to the C-terminal of the IgG molecule and comprises approximately 108 residues.
- Hinge region includes the portion of a heavy chain molecule that joins the CH1 domain to the CH2 domain. This hinge region comprises approximately 25 residues and is flexible, thus allowing the two N-terminal antigen-binding regions to move independently. Hinge regions can be subdivided into three distinct domains: upper, middle, and lower hinge domains (Roux et al., J. Immunol 161: 4083 (1998) ) .
- disulfide bond includes the covalent bond formed between two sulfur atoms.
- the amino acid cysteine comprises a thiol group that can form a disulfide bond or bridge with a second thiol group.
- the CH1 and CK regions are linked by a disulfide bond and the two heavy chains are linked by two disulfide bonds at positions corresponding to 239 and 242 using the Kabat numbering system (position 226 or 229, EU numbering system) .
- chimeric antibody will be held to mean any antibody wherein the immunoreactive region or site is obtained or derived from a first species and the constant region (which may be intact, partial or modified in accordance with the instant disclosure) is obtained from a second species.
- the target binding region or site will be from a non-human source (e.g. mouse or primate) and the constant region is human.
- percent humanization is calculated by determining the number of framework amino acid differences (i.e., non-CDR difference) between the humanized domain and the germline domain, subtracting that number from the total number of amino acids, and then dividing that by the total number of amino acids and multiplying by 100.
- an antibody By “specifically binds” or “has specificity to, ” it is generally meant that an antibody binds to an epitope via its antigen-binding domain, and that the binding entails some complementarity between the antigen-binding domain and the epitope. According to this definition, an antibody is said to “specifically bind” to an epitope when it binds to that epitope, via its antigen-binding domain more readily than it would bind to a random, unrelated epitope.
- the term “specificity” is used herein to qualify the relative affinity by which a certain antibody binds to a certain epitope.
- antibody “A” may be deemed to have a higher specificity for a given epitope than antibody “B, ” or antibody “A” may be said to bind to epitope “C” with a higher specificity than it has for related epitope “D. ”
- the terms “treat” or “treatment” refer to both therapeutic treatment and prophylactic or preventative measures, wherein the object is to prevent or slow down (lessen) an undesired physiological change or disorder, such as the progression of cancer.
- Beneficial or desired clinical results include, but are not limited to, alleviation of symptoms, diminishment of extent of disease, stabilized (i.e., not worsening) state of disease, delay or slowing of disease progression, amelioration or palliation of the disease state, and remission (whether partial or total) , whether detectable or undetectable.
- “Treatment” can also mean prolonging survival as compared to expected survival if not receiving treatment.
- Those in need of treatment include those already with the condition or disorder as well as those prone to have the condition or disorder or those in which the condition or disorder is to be prevented.
- subject or “individual” or “animal” or “patient” or “mammal, ” is meant any subject, particularly a mammalian subject, for whom diagnosis, prognosis, or therapy is desired.
- Mammalian subjects include humans, domestic animals, farm animals, and zoo, sport, or pet animals such as dogs, cats, guinea pigs, rabbits, rats, mice, horses, cattle, cows, and so on.
- phrases such as “to a patient in need of treatment” or “asubject in need of treatment” includes subjects, such as mammalian subjects (including human subject) , that would benefit from administration of an antibody or composition of the present disclosure used, e.g., for detection, for a diagnostic procedure and/or for treatment.
- T cell immunoreceptor with Ig and ITIM domains is frequently over-expressed on immune cells of cancer patients.
- TIGIT is considered an immune checkpoint, and the blockade thereof can lead to increased cell proliferation, cytokine production, and degranulation of TA-specific CD8+ T cells and TIL CD8+ T cells.
- Targeting TIGIT is also believed to enhance killing of HIV-infected cells.
- Antibodies targeting TIGIT are being developed, showing certain clinical promises.
- the Bristol-Myers Squibb Company for instance, disclosed an anti-TIGIT antibody 22G2 (see, e.g., US Patent Application Pub No: US20160176963) which was used as a control in the experimental examples.
- Another reference antibody used for comparison is Tiragolumab (RG6058) , a fully human monoclonal antibody being developed by Roche for treating non-small cell lung cancer. There has been no approval of any molecules targeting TIGIT yet, however.
- the present disclosure provides anti-TIGIT antibodies with high affinity and inhibitory activity on the human TIGIT protein.
- the newly disclosed anti-TIGIT antibodies outperformed the control antibody Tiragolumab.
- the instant antibodies have potent binding affinity.
- the instant antibodies exhibited significantly greater activity in inhibiting the interaction between TIGIT and CD155 than both 22G2 and Tiragolumab (see, Example 8, FIG. 13) .
- the instant antibodies exhibited higher antibody-dependent cytotoxicity (ADCC) and complement-dependent cytotoxicity (CDC) than Tiragolumab (see, Examples 10-11, FIG. 15-16) . Therefore, the instant antibodies have superior properties than those already in development.
- the present disclosure provides an anti-TIGIT antibody or fragment thereof having binding specificity to the human TIGIT protein.
- the antibody or fragment thereof includes (a) a VH CDR1 comprising SEQ ID NO: 1; (b) a VH CDR2 comprising SEQ ID NO: 2; (c) a VH CDR3 comprising SEQ ID NO: 3; (d) a VL CDR1 comprising SEQ ID NO: 4; (e) a VL CDR2 comprising SEQ ID NO: 5; and (f) a VL CDR3 comprising SEQ ID NO: 6.
- the anti-TIGIT antibody or fragment thereof comprises: (a) a VH CDR1 of SEQ ID NO: 1, or a variant of SEQ ID NO: 1 having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to SEQ ID NO: 1; (b) a VH CDR2 of SEQ ID NO: 2, or a variant of SEQ ID NO: 2 having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to SEQ ID NO: 2; (c) a VH CDR3 of SEQ ID NO: 3, or a variant of SEQ ID NO: 3 having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to SEQ ID NO: 3; (d) a VL CDR1 of SEQ ID NO: 4, or a variant of SEQ ID NO: 4 having at least 75%, 80%, 85%, 90%, 95%, 95%, 9
- the anti-TIGIT antibody or fragment thereof comprises: (a) a VH CDR1 of SEQ ID NO: 1, or a variant of SEQ ID NO: 1 having a single substitution, deletion or insertion relative to SEQ ID NO: 1; (b) a VH CDR2 of SEQ ID NO: 2, or a variant of SEQ ID NO: 2 having a single substitution, deletion or insertion relative to SEQ ID NO: 2; (c) a VH CDR3 of SEQ ID NO: 3, or a variant of SEQ ID NO: 3 having a single substitution, deletion or insertion relative to SEQ ID NO: 3; (d) a VL CDR1 of SEQ ID NO: 4, or a variant of SEQ ID NO: 4 having a single substitution, deletion or insertion relative to SEQ ID NO: 4; (e) a VL CDR2 of SEQ ID NO: 5, or a variant of SEQ ID NO: 5 having a single substitution, deletion or insertion relative to SEQ ID NO: 5; and (f) a V
- substitutions disclosed herein, in some embodiments, are conservative substitutions.
- a “conservative amino acid substitution” is one in which the amino acid residue is replaced with an amino acid residue having a similar side chain.
- Families of amino acid residues having similar side chains have been defined in the art, including basic side chains (e.g., lysine, arginine, histidine) , acidic side chains (e.g., aspartic acid, glutamic acid) , uncharged polar side chains (e.g., glycine, asparagine, glutamine, serine, threonine, tyrosine, cysteine) , nonpolar side chains (e.g., alanine, valine, leucine, isoleucine, proline, phenylalanine, methionine, tryptophan) , beta-branched side chains (e.g., threonine, valine, isoleucine) and aromatic side chains (e.g., tyrosine, phenylalanine, tryptophan, histidine
- a nonessential amino acid residue in an immunoglobulin polypeptide is preferably replaced with another amino acid residue from the same side chain family.
- a string of amino acids can be replaced with a structurally similar string that differs in order and/or composition of side chain family members.
- Non-limiting examples of conservative amino acid substitutions are provided in Tables A-B, where a similarity score of 0 or higher (see Table A) indicates conservative substitution between the two amino acids.
- antibodies and fragments include those having a heavy chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 7 and 9-14, or a peptide having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to an amino acid sequence selected from the group consisting of SEQ ID NO: 7 and 9-14, while retaining the recited CDRs.
- antibodies and fragments include those having a light chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 8 and 15-18, or a peptide having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99% sequence identity to an amino acid sequence selected from the group consisting of SEQ ID NO: 8 and 15-18, while retaining the recited CDRs.
- antibodies and fragments include those having a heavy chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 9-14, or a peptide having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to an amino acid sequence selected from the group consisting of SEQ ID NO: 9-14, while retaining the recited CDRs.
- antibodies and fragments include those having a light chain variable region comprising an amino acid sequence selected from the group consisting of SEQ ID NO: 15-18, or a peptide having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to an amino acid sequence selected from the group consisting of SEQ ID NO: 15-18, while retaining the recited CDRs.
- antibodies and fragments include those having a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 11, or a peptide having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to the amino acid sequence of SEQ ID NO: 11, while retaining the recited CDRs.
- antibodies and fragments include those having a light chain variable region comprising the amino acid sequence of SEQ ID NO: 15, or a peptide having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to the amino acid sequence of SEQ ID NO: 15, while retaining the recited CDRs.
- An example antibody is Hu02.
- antibodies and fragments include those having a heavy chain variable region comprising the amino acid sequence of SEQ ID NO: 10, or a peptide having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to the amino acid sequence of SEQ ID NO: 10, while retaining the recited CDRs.
- antibodies and fragments include those having a light chain variable region comprising the amino acid sequence of SEQ ID NO: 16, or a peptide having at least 75%, 80%, 85%, 90%, 95%, 98%, or 99%sequence identity to the amino acid sequence of SEQ ID NO: 16, while retaining the recited CDRs.
- An example antibody is Hu06.
- an anti-TIGIT antibody or fragment that specifically binds to TIGIT competitively with any one of the anti-TIGIT antibodies or fragments described herein.
- competitive binding may be determined using an ELISA assay.
- the K d of the binding between the competing anti-TIGIT antibodies or fragments and TIGIT is about 10 -5 M to about 10 -12 M (such as about 10 -7 M to about 10 -12 M, or about 10 -8 M to about 10 -12 M) .
- the competing anti-TIGIT antibody or fragment is chimeric, human, partially humanized, or fully humanized.
- antibodies as disclosed herein may be modified such that they vary in amino acid sequence from the naturally occurring binding polypeptide from which they were derived.
- a polypeptide or amino acid sequence derived from a designated protein may be similar, e.g., have a certain percent identity to the starting sequence, e.g., it may be 60%, 70%, 75%, 80%, 85%, 90%, 95%, 98%, 99%, or a range between any two of these values, identical to the starting sequence.
- the antibody comprises an amino acid sequence or one or more moieties not normally associated with an antibody. Exemplary modifications are described in more detail herein.
- an antibody disclosed herein may comprise a flexible linker sequence, or may be modified to add a functional moiety (e.g., PEG, a drug, a toxin, or a label) .
- Antibodies, variants, or derivatives thereof of the disclosure include derivatives that are modified, i.e., by the covalent attachment of any type of molecule to the antibody such that covalent attachment does not prevent the antibody from binding to the epitope.
- the antibodies can be modified, e.g., by glycosylation, acetylation, pegylation, phosphorylation, amidation, derivatization by known protecting/blocking groups, proteolytic cleavage, linkage to a cellular ligand or other protein, etc. Any of numerous chemical modifications may be carried out by known techniques, including, but not limited to specific chemical cleavage, acetylation, formylation, metabolic synthesis of tunicamycin, etc. Additionally, the antibodies may contain one or more non-classical amino acids.
- the antibodies may be conjugated to therapeutic agents, prodrugs, peptides, proteins, enzymes, viruses, lipids, biological response modifiers, pharmaceutical agents, or PEG.
- the antibodies may be conjugated or fused to a therapeutic agent, which may include detectable labels such as radioactive labels, an immunomodulator, a hormone, an enzyme, an oligonucleotide, a photoactive therapeutic or diagnostic agent, a cytotoxic agent, which may be a drug or a toxin, an ultrasound enhancing agent, a non-radioactive label, a combination thereof and other such agents known in the art.
- a therapeutic agent which may include detectable labels such as radioactive labels, an immunomodulator, a hormone, an enzyme, an oligonucleotide, a photoactive therapeutic or diagnostic agent, a cytotoxic agent, which may be a drug or a toxin, an ultrasound enhancing agent, a non-radioactive label, a combination thereof and other such agents known in the art.
- the antibodies can be detectably labeled by coupling it to a chemiluminescent compound.
- the presence of the chemiluminescent-tagged antigen-binding polypeptide is then determined by detecting the presence of luminescence that arises during the course of a chemical reaction.
- particularly useful chemiluminescent labeling compounds are luminol, isoluminol, theromatic acridinium ester, imidazole, acridinium salt and oxalate ester.
- the antibodies can also be detectably labeled using fluorescence emitting metals such as 152 Eu, or others of the lanthanide series. These metals can be attached to the antibody using such metal chelating groups as diethylenetriaminepentacetic acid (DTPA) or ethylenediaminetetraacetic acid (EDTA) .
- DTPA diethylenetriaminepentacetic acid
- EDTA ethylenediaminetetraacetic acid
- TIGIT is an immune checkpoint.
- an antibody or antigen-binding fragment specific to TIGIT can be combined with a second antigen-binding fragment specific to a tumor cell or an immune cell to generate a bispecific antibody.
- an antibody or antigen-binding fragment disclosed herein can be used in combination with a second agent, such as a second antibody or antigen-binding fragment specific to a tumor cell or an immune cell.
- the immune cell is selected from the group consisting of a T cell, a B cell, a monocyte, a macrophage, a neutrophil, a dendritic cell, a phagocyte, a natural killer cell, an eosinophil, a basophil, and a mast cell.
- Molecules on the immune cell which can be targeted include, for example, CD33, CD47, CD73, Her2, EGFR, CEA VEGF, CD3, CD16, CD19, CD28, CD47, CD64, CD155, CD112, CD113, PVRL3, and PVRIG.
- PD-1 CTLA-4, LAG-3 (also known as CD223) , CD28, CD122, 4-1BB (also known as CD137) , TIM3, OX-40 or OX40L, CD40 or CD40L, LIGHT, ICOS/ICOSL, GITR/GITRL, CD27, VISTA, B7H3, B7H4, HEVM or BTLA (also known as CD272) , and killer-cell immunoglobulin-like receptors (KIRs) .
- LAG-3 also known as CD223)
- CD28 also known as CD122
- 4-1BB also known as CD137
- TIM3, OX-40 or OX40L CD40 or CD40L
- LIGHT ICOS/ICOSL
- GITR/GITRL CD27
- VISTA VISTA
- B7H3, B7H4, HEVM or BTLA also known as CD272
- killer-cell immunoglobulin-like receptors KIRs
- tumor antigen refers to an antigenic substance produced in tumor cells, i.e., it triggers an immune response in the host. Tumor antigens are useful in identifying tumor cells and are potential candidates for use in cancer therapy. Normal proteins in the body are not antigenic. Certain proteins, however, are produced or overexpressed during tumorigenesis and thus appear “foreign” to the body. This may include normal proteins that are well sequestered from the immune system, proteins that are normally produced in extremely small quantities, proteins that are normally produced only in certain stages of development, or proteins whose structure is modified due to mutation.
- tumor antigens include EGFR, Her2, EpCAM, CD20, CD30, CD33, CD47, CD52, CD133, CD73, CEA, gpA33, Mucins, TAG-72, CIX, PSMA, folate-binding protein, GD2, GD3, GM2, VEGF, VEGFR, Integrin, ⁇ V ⁇ 3, ⁇ 5 ⁇ 1, ERBB2, ERBB3, MET, IGF1R, EPHA3, TRAILR1, TRAILR2, RANKL, FAP and Tenascin.
- tumor antigens include EGFR, Her2, EpCAM, CD20, CD30, CD33, CD47, CD52, CD133, CD73, CEA, gpA33, Mucins, TAG-72, CIX, PSMA, folate-binding protein, GD2, GD3, GM2, VEGF, VEGFR, Integrin, ⁇ V ⁇ 3, ⁇ 5 ⁇ 1, ERBB2, ERBB3, MET, IGF
- bispecificity examples include, without limitation, TIGIT/LAG3, TIGIT/CD47, TIGIT/PD-1, TIGIT/PD-L1, TIGIT/CD155, TIGIT/CD112, TIGIT/CD113, TIGIT/PVRL3, TIGIT/PVRIG, and TIGIT/CD3.
- each of the anti-TIGIT fragment and the second fragment each is independently selected from a Fab fragment, a single-chain variable fragment (scFv) , or a single-domain antibody.
- the bispecific antibody further includes a Fc fragment.
- Bifunctional molecules that include not just antibody or antigen binding fragment are also provided.
- an antibody or antigen-binding fragment specific to TIGIT such as those described here, can be combined with an immune cytokine or ligand optionally through a peptide linker.
- the linked immune cytokines or ligands include, but not limited to, IL-2, IL-3, IL-4, IL-5, IL-6, IL-7, IL-10, IL-12, IL-13, IL-15, GM-CSF, TNF- ⁇ , CD40L, OX40L, CD27L, CD30L, 4-1BBL, LIGHT and GITRL.
- Such bi-functional molecules can combine the immune checkpoint blocking effect with tumor site local immune modulation.
- the present disclosure also provides isolated polynucleotides or nucleic acid molecules encoding the antibodies, variants or derivatives thereof of the disclosure.
- the polynucleotides of the present disclosure may encode the entire heavy and light chain variable regions of the antigen-binding polypeptides, variants or derivatives thereof on the same polynucleotide molecule or on separate polynucleotide molecules. Additionally, the polynucleotides of the present disclosure may encode portions of the heavy and light chain variable regions of the antigen-binding polypeptides, variants or derivatives thereof on the same polynucleotide molecule or on separate polynucleotide molecules.
- both the variable and constant regions of the antigen-binding polypeptides of the present disclosure are fully human.
- Fully human antibodies can be made using techniques described in the art and as described herein. For example, fully human antibodies against a specific antigen can be prepared by administering the antigen to a transgenic animal which has been modified to produce such antibodies in response to antigenic challenge, but whose endogenous loci have been disabled.
- the prepared antibodies will not elicit a deleterious immune response in the animal to be treated, e.g., in a human.
- antigen-binding polypeptides, variants, or derivatives thereof of the disclosure are modified to reduce their immunogenicity using art-recognized techniques.
- antibodies can be humanized, primatized, deimmunized, or chimeric antibodies can be made. These types of antibodies are derived from a non-human antibody, typically a murine or primate antibody, that retains or substantially retains the antigen-binding properties of the parent antibody, but which is less immunogenic in humans.
- CDRs complementarity determining regions
- De-immunization can also be used to decrease the immunogenicity of an antibody.
- the term “de-immunization” includes alteration of an antibody to modify T-cell epitopes (see, e.g., International Application Publication Nos.: WO/9852976 A1 and WO/0034317 A2) .
- variable heavy chain and variable light chain sequences from the starting antibody are analyzed and a human T-cell epitope “map” from each V region showing the location of epitopes in relation to complementarity-determining regions (CDRs) and other key residues within the sequence is created.
- CDRs complementarity-determining regions
- T-cell epitopes from the T-cell epitope map are analyzed in order to identify alternative amino acid substitutions with a low risk of altering activity of the final antibody.
- a range of alternative variable heavy and variable light sequences are designed comprising combinations of amino acid substitutions and these sequences are subsequently incorporated into a range of binding polypeptides.
- 12 and 24 variant antibodies are generated and tested for binding and/or function.
- Complete heavy and light chain genes comprising modified variable and human constant regions are then cloned into expression vectors and the subsequent plasmids introduced into cell lines for the production of whole antibody.
- the antibodies are then compared in appropriate biochemical and biological assays, and the optimal variant is identified.
- binding specificity of antigen-binding polypeptides of the present disclosure can be determined by in vitro assays such as immunoprecipitation, radioimmunoassay (RIA) or enzyme-linked immunoabsorbent assay (ELISA) .
- in vitro assays such as immunoprecipitation, radioimmunoassay (RIA) or enzyme-linked immunoabsorbent assay (ELISA) .
- scFvs single-chain Fvs
- scFvs single-chain Fvs
- scFvs single-chain Fvs
- examples of techniques which can be used to produce single-chain Fvs (scFvs) and antibodies include those described in U.S. Pat. Nos. 4,946,778 and 5,258,498; Huston et al., Methods in Enzymology 203: 46-88 (1991) ; Shu et al., Proc. Natl. Sci. USA 90: 1995-1999 (1993) ; and Skerra et al., Science 240: 1038-1040 (1988) .
- a chimeric antibody is a molecule in which different portions of the antibody are derived from different animal species, such as antibodies having a variable region derived from a murine monoclonal antibody and a human immunoglobulin constant region. Methods for producing chimeric antibodies are known in the art.
- Humanized antibodies are antibody molecules derived from a non-human species antibody that bind the desired antigen having one or more complementarity determining regions (CDRs) from the non-human species and framework regions from a human immunoglobulin molecule.
- CDRs complementarity determining regions
- framework residues in the human framework regions will be substituted with the corresponding residue from the CDR donor antibody to alter, preferably improve, antigen-binding.
- framework substitutions are identified by methods well known in the art, e.g., by modeling of the interactions of the CDR and framework residues to identify framework residues important for antigen-binding and sequence comparison to identify unusual framework residues at particular positions.
- DNA encoding desired monoclonal antibodies can be readily isolated and sequenced using conventional procedures (e.g., by using oligonucleotide probes that are capable of binding specifically to genes encoding the heavy and light chains of murine antibodies) .
- the isolated and subcloned hybridoma cells serve as a preferred source of such DNA.
- the DNA may be placed into expression vectors, which are then transfected into prokaryotic or eukaryotic host cells such as E. coli cells, simian COS cells, Chinese Hamster Ovary (CHO) cells or myeloma cells that do not otherwise produce immunoglobulins.
- one or more of the CDRs of the antigen-binding polypeptides of the present disclosure may be inserted within framework regions, e.g., into human framework regions to humanize a non-human antibody.
- the framework regions may be naturally occurring or consensus framework regions, and preferably human framework regions (see, e.g., Chothia et al., J. Mol. Biol. 278: 457-479 (1998) for a listing of human framework regions) .
- the polynucleotide generated by the combination of the framework regions and CDRs encodes an antibody that specifically binds to at least one epitope of a desired polypeptide, e.g., LIGHT.
- one or more amino acid substitutions may be made within the framework regions, and, preferably, the amino acid substitutions improve binding of the antibody to its antigen. Additionally, such methods may be used to make amino acid substitutions or deletions of one or more variable region cysteine residues participating in an intrachain disulfide bond to generate antibody molecules lacking one or more intrachain disulfide bonds. Other alterations to the polynucleotide are encompassed by the present disclosure and within the skill of the art.
- the antibodies, variants or derivatives of the present disclosure may be used in certain treatment and diagnostic methods.
- the present disclosure is further directed to antibody-based therapies which involve administering the antibodies of the disclosure to a patient such as an animal, a mammal, and a human for treating one or more of the disorders or conditions described herein.
- Therapeutic compounds of the disclosure include, but are not limited to, antibodies of the disclosure (including variants and derivatives thereof as described herein) and nucleic acids or polynucleotides encoding antibodies of the disclosure (including variants and derivatives thereof as described herein) .
- the method in one embodiment, entails administering to the patient an effective amount of an antibody of the present disclosure.
- at least one of the cancer cells (e.g., stromal cells) in the patient over-express TIGIT or is induced to express TIGIT.
- Non-limiting examples of cancers include bladder cancer, breast cancer, colorectal cancer, endometrial cancer, esophageal cancer, head and neck cancer, kidney cancer, leukemia, liver cancer, lung cancer, lymphoma, melanoma, pancreatic cancer, prostate cancer, and thyroid cancer.
- CAR-T chimeric antigen receptor
- CAR-NK NK cell
- a suitable T cell or NK cell can be used, that is put in contact with an anti-TIGIT antibody of the present disclosure (or alternatively engineered to express an anti-TIGIT antibody of the present disclosure) .
- the T cell or NK cell can then be introduced to a cancer patient in need of a treatment.
- the cancer patient may have a cancer of any of the types as disclosed herein.
- the T cell can be, for instance, a tumor-infiltrating T lymphocyte, a CD4+ T cell, a CD8+ T cell, or the combination thereof, without limitation.
- the T cell or NK cell was isolated from the cancer patient him-or her-self. In some embodiments, the T cell or NK cell was provided by a donor or from a cell bank. When the T cell or NK cell is isolated from the cancer patient, undesired immune reactions can be minimized.
- Additional diseases or conditions associated with increased cell survival include, but are not limited to, progression, and/or metastases of malignancies and related disorders such as leukemia (including acute leukemias (e.g., acute lymphocytic leukemia, acute myelocytic leukemia (including myeloblastic, promyelocytic, myelomonocytic, monocytic, and erythroleukemia) ) and chronic leukemias (e.g., chronic myelocytic (granulocytic) leukemia and chronic lymphocytic leukemia) ) , polycythemia vera, lymphomas (e.g., Hodgkin's disease and non-Hodgkin's disease) , multiple myeloma, Waldenstrom's macroglobulinemia, heavy chain disease, and solid tumors including, but not limited to, sar
- a specific dosage and treatment regimen for any particular patient will depend upon a variety of factors, including the particular antibodies, variant or derivative thereof used, the patient's age, body weight, general health, sex, and diet, and the time of administration, rate of excretion, drug combination, and the severity of the particular disease being treated. Judgment of such factors by medical caregivers is within the ordinary skill in the art.
- the amount will also depend on the individual patient to be treated, the route of administration, the type of formulation, the characteristics of the compound used, the severity of the disease, and the desired effect. The amount used can be determined by pharmacological and pharmacokinetic principles well known in the art.
- Methods of administration of the antibodies, variants or include but are not limited to intradermal, intramuscular, intraperitoneal, intravenous, subcutaneous, intranasal, epidural, and oral routes.
- the antigen-binding polypeptides or 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 mucosa, rectal and intestinal mucosa, etc. ) and may be administered together with other biologically active agents.
- compositions containing the antigen-binding polypeptides of the disclosure may be administered orally, rectally, parenterally, intracistemally, intravaginally, intraperitoneally, topically (as by powders, ointments, drops or transdermal patch) , bucally, or as an oral or nasal spray.
- parenteral refers to modes of administration which include intravenous, intramuscular, intraperitoneal, intrasternal, subcutaneous and intra-articular injection and infusion.
- Administration can be systemic or local.
- Pulmonary administration can also be employed, e.g., by use of an inhaler or nebulizer, and formulation with an aerosolizing agent.
- the antigen-binding polypeptides or compositions of the disclosure may be administered locally to the area in need of treatment; this may be achieved by, for example, and not by way of limitation, local infusion during surgery, topical application, e.g., in conjunction, with a wound dressing after surgery, by injection, by means of a catheter, by means of a suppository, or by means of an implant, said implant being of a porous, non-porous, or gelatinous material, including membranes, such as sialastic membranes, or fibers.
- care must be taken to use materials to which the protein does not absorb.
- compositions of the disclosure are administered in combination with an antineoplastic agent, an antiviral agent, antibacterial or antibiotic agent or antifungal agents. Any of these agents known in the art may be administered in the compositions of the current disclosure.
- compositions of the disclosure are administered in combination with a chemotherapeutic agent.
- Chemotherapeutic agents that may be administered with the compositions of the disclosure include, but are not limited to, antibiotic derivatives (e.g., doxorubicin, bleomycin, daunorubicin, and dactinomycin) ; antiestrogens (e.g., tamoxifen) ; antimetabolites (e.g., fluorouracil, 5-FU, methotrexate, floxuridine, interferon alpha-2b, glutamic acid, plicamycin, mercaptopurine, and 6-thioguanine) ; cytotoxic agents (e.g., carmustine, BCNU, lomustine, CCNU, cytosine arabinoside, cyclophosphamide, estramustine, hydroxyurea, procarbazine, mitomycin, busulfan, cis-platin, and vincristine sulfate)
- compositions of the disclosure are administered in combination with cytokines.
- Cytokines that may be administered with the compositions of the disclosure include, but are not limited to, IL-2, IL-3, IL-4, IL-5, IL-6, IL-7, IL-10, IL-12, IL-13, IL-15, anti-CD40, CD40L, and TNF- ⁇ .
- compositions of the disclosure are administered in combination with other therapeutic or prophylactic regimens, such as, for example, radiation therapy.
- the anti-TIGIT antibodies of the present disclosure can be used, in some embodiments, together with an immune checkpoint inhibitor.
- Immune checkpoints are molecules in the immune system that either turn up a signal (co-stimulatory molecules) or turn down a signal. Many cancers protect themselves from the immune system by inhibiting the T cell signal.
- An immune checkpoint inhibitor can help stop such a protective mechanism by the cell cells.
- An immune checkpoint inhibitor may target any one or more of the following checkpoint molecules, PD-1, PD-L1, CTLA-4, LAG-3 (also known as CD223) , CD28, CD122, 4-1BB (also known as CD137) , or BTLA (also known as CD272) .
- PD-1 Programmed T cell death 1
- PD-L1 programmed T cell death ligand 1
- Example PD-1 inhibitor include, without limitation, nivolumab, (Opdivo) (BMS-936558) , pembrolizumab (Keytruda) , pidilizumab, AMP-224, MEDI0680 (AMP-514) , PDR001, MPDL3280A, MEDI4736, BMS-936559 and MSB0010718C.
- PD-L1 Programmed death-ligand 1 also known as cluster of differentiation 274 (CD274) or B7 homolog 1 (B7-H1) is a protein that in humans is encoded by the CD274 gene.
- Non-limiting examples of PD-L1 inhibitor include Atezolizumab (Tecentriq) , Durvalumab (MEDI4736) , Avelumab (MSB0010718C) , MPDL3280A, BMS935559 (MDX-1105) and AMP-224.
- CTLA-4 is a protein receptor that downregulates the immune system.
- CTLA-4 inhibitors include ipilimumab (Yervoy) (also known as BMS-734016, MDX-010, MDX-101) and tremelimumab (formerly ticilimumab, CP-675, 206) .
- Lymphocyte-activation gene 3 (LAG-3) is an immune checkpoint receptor on the cell surface works to suppress an immune response by action to Tregs as well as direct effects on CD8+ T cells.
- LAG-3 inhibitors include, without limitation, LAG525 and BMS-986016.
- CD28 is constitutively expressed on almost all human CD4+ T cells and on around half of all CD8 T cells. prompts T cell expansion.
- CD28 inhibitors include TGN1412.
- CD122 increases the proliferation of CD8+ effector T cells.
- Non-limiting examples include NKTR-214.
- 4-1BB (also known as CD137) is involved in T-cell proliferation.
- CD137-mediated signaling is also known to protect T cells, and in particular, CD8+ T cells from activation-induced cell death.
- PF-05082566, Urelumab (BMS-663513) and lipocalin are example CD137 inhibitors.
- the anti-TIGIT antibody can be administered concurrently or separately from the other anticancer agent.
- the anti-TIGIT antibody can be administered before or after the other anticancer agent.
- a method of treating or inhibiting infection in a patient in need thereof comprising administering to the patient an effective amount of the antibody or fragment thereof of the present disclosure.
- the infection is viral infection (such as HIV infection) , bacterial infection, fungal infection or infection by a parasite.
- Infection is the invasion of an organism’s body tissues by disease-causing agents, their multiplication, and the reaction of host tissues to these organisms and the toxins they produce.
- An infection can be caused by infectious agents such as viruses, viroids, prions, bacteria, nematodes such as parasitic roundworms and pinworms, arthropods such as ticks, mites, fleas, and lice, fungi such as ringworm, and other macroparasites such as tapeworms and other helminths.
- infectious agent is a bacterium, such as Gram-negative bacterium.
- the infectious agent is virus, such as DNA viruses, RNA viruses, and reverse transcribing viruses.
- Non-limiting examples of viruses include Adenovirus, Coxsackievirus, Epstein–Barr virus, Hepatitis A virus, Hepatitis B virus, Hepatitis C virus, Herpes simplex virus, type 1, Herpes simplex virus, type 2, Cytomegalovirus, Human herpesvirus, type 8, HIV, Influenza virus, Measles virus, Mumps virus, Human papillomavirus, Parainfluenza virus, Poliovirus, Rabies virus, Respiratory syncytial virus, Rubella virus, Varicella-zoster virus.
- viruses include Adenovirus, Coxsackievirus, Epstein–Barr virus, Hepatitis A virus, Hepatitis B virus, Hepatitis C virus, Herpes simplex virus, type 1, Herpes simplex virus, type 2, Cytomegalovirus, Human herpesvirus, type 8, HIV, Influenza virus, Measles virus, Mumps virus, Human papillomavirus, Parainfluenza virus, Polio
- the antibodies of the present disclosure can also be used to treat an infectious disease caused by a microorganism, or kill a microorganism, by targeting the microorganism and an immune cell to effect elimination of the microorganism.
- the microorganism is a virus including RNA and DNA viruses, a Gram-positive bacterium, a Gram negative bacterium, a protozoa or a fungus.
- TIGIT Over-expression of TIGIT is observed in certain tumor samples, and patients having TIGIT-over-expressing cells are likely responsive to treatments with the anti-TIGIT antibodies of the present disclosure. Accordingly, the antibodies of the present disclosure can also be used for diagnostic and prognostic purposes.
- a sample that preferably includes a cell can be obtained from a patient, which can be a cancer patient or a patient desiring diagnosis.
- the cell can be a cell of a tumor tissue or a tumor block, a blood sample, a urine sample or any sample from the patient.
- the sample can be incubated with an antibody of the present disclosure under conditions allowing the antibody to interact with a TIGIT protein potentially present in the sample.
- Methods such as ELISA can be used, taking advantage of the anti-TIGIT antibody, to detect the presence of the TIGIT protein in the sample.
- Presence of the TIGIT protein in the sample can be used for diagnosis of cancer, as an indication that the patient is suitable for a treatment with the antibody, or as an indication that the patient has (or has not) responded to a cancer treatment.
- the detection can be done at once, twice or more, at certain stages, upon initiation of a cancer treatment to indicate the progress of the treatment.
- compositions comprise an effective amount of an anti-TIGIT antibody or a fragment thereof disclosed herein, and a pharmaceutically acceptable carrier.
- the composition further includes a second anticancer agent (e.g., an immune checkpoint inhibitor) .
- the term “pharmaceutically acceptable” means approved by a regulatory agency of the Federal or a state government or listed in the U.S. Pharmacopeia or other generally recognized pharmacopeia for use in animals, and more particularly in humans.
- a “pharmaceutically acceptable carrier” is generally a non-toxic solid, semisolid or liquid filler, diluent, encapsulating material or formulation auxiliary of any type.
- carrier refers to a diluent, adjuvant, excipient, or vehicle with which the 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 employed as liquid carriers, particularly for injectable solutions.
- Suitable pharmaceutical excipients include starch, glucose, lactose, sucrose, gelatin, malt, rice, flour, chalk, silica gel, sodium stearate, glycerol monostearate, talc, sodium chloride, dried skim milk, glycerol, propylene, glycol, water, ethanol and the like.
- the composition if desired, can also contain minor amounts of wetting or emulsifying agents, or pH buffering agents such as acetates, citrates or phosphates.
- Antibacterial agents such as benzyl alcohol or methyl parabens; antioxidants such as ascorbic acid or sodium bisulfite; chelating agents such as ethylenediaminetetraacetic acid; and agents for the adjustment of tonicity such as sodium chloride or dextrose are also envisioned.
- These compositions can take the form of solutions, suspensions, emulsion, tablets, pills, capsules, powders, sustained-release formulations and the like.
- the composition can be formulated as a suppository, with traditional binders and carriers such as triglycerides.
- Oral formulation can include standard carriers such as pharmaceutical grades of mannitol, lactose, starch, magnesium stearate, sodium saccharine, cellulose, magnesium carbonate, etc.
- compositions will contain a therapeutically effective amount of the antigen-binding polypeptide, preferably in purified form, together with a suitable amount of carrier so as to provide the form for proper administration to the patient.
- suitable amount of carrier so as to provide the form for proper administration to the patient.
- the formulation should suit the mode of administration.
- the parental preparation can be enclosed in ampoules, disposable syringes or multiple dose vials made of glass or plastic.
- the composition is formulated in accordance with routine procedures as a pharmaceutical composition adapted for intravenous administration to human beings.
- compositions for intravenous administration are solutions in sterile isotonic aqueous buffer.
- the composition may also include a solubilizing agent and a local anesthetic such as lignocaine to ease pain at the site of the injection.
- the ingredients are supplied either separately or mixed together in unit dosage form, for example, as a dry lyophilized powder or water free concentrate in a hermetically sealed container such as an ampoule or sachette indicating the quantity of active agent.
- composition is to be administered by infusion, it can be dispensed with an infusion bottle containing sterile pharmaceutical grade water or saline.
- an ampoule of sterile water for injection or saline can be provided so that the ingredients may be mixed prior to administration.
- the compounds of the disclosure can be formulated as neutral or salt forms.
- Pharmaceutically acceptable salts include those formed with anions such as those derived from hydrochloric, phosphoric, acetic, oxalic, tartaric acids, etc., and those formed with cations such as those derived from sodium, potassium, ammonium, calcium, ferric hydroxides, isopropylamine, triethylamine, 2-ethylamino ethanol, histidine, procaine, etc.
- This example describes preparation of anti-human-TIGIT mouse monoclonal antibodies using the hybridoma technology.
- Antigen human TIGIT-Fc protein and human TIGIT overexpressed CHOK1 cell line (TIGIT-CHOK1 cell line) .
- mice To generate mouse monoclonal antibodies to human TIGIT, Balb/c mice, SJL mice and Wistar Rat were first immunized with TIGIT-Fc protein. The immunized mice and Rat were respectively boosted with TIGIT-Fc fusion protein, CHO-K1/TIGIT stable cells and TIGIT-Fc protein. To select mice or rat producing antibodies that bound TIGIT protein, the serum of immunized mice was subjected to antibody titer evaluation by ELISA. Briefly, microtiter plates were coated with human TIGIT protein at 0.5 ⁇ g/ml in ELISA coating buffer, 100 ⁇ l/well at 4°C overnight, then blocked with 150 ⁇ l/well of 1%BSA.
- mice with sufficient titers of anti-TIGIT IgG were boosted with 25 ⁇ g human TIGIT-Fc protein after 3 rounds of immunization. The resulting mice were used for fusions. The hybridoma supernatants were tested for anti-TIGIT IgGs by ELISA.
- Subcloning and screening positive primary clones from each fusion were subcloned by limiting dilution to ensure that the subclones were derived from a single parental cell. Supernatants of subclones were screened by cell-based receptor blocking assay and affinity ranking.
- Hybridoma clone 76D12B10 was selected for further analysis.
- the amino acid sequences of the variable regions of 76D12B10 are provided in Table 1 below.
- This example tested the binding properties of the anti-TIGIT mouse antibodies to the TIGIT proteins.
- ELISA testing was carried out to evaluate the binding of chimeric antibodies to human, mouse, rat, and cyno TIGIT, respectively. Briefly, microtiter plates were coated with human, mouse, rat and cyno TIGIT proteins at 0.5 ⁇ g/ml in PBS, 100 ⁇ l/well at 4°C overnight, then blocked with 150 ⁇ l/well of 1%BSA. Three-fold dilutions of chimeric antibodies or biotinylated chimeric antibodies starting from 10 ⁇ g/ml were added to each well and incubated for 1 hour at 37 °C.
- HRP Horse Radish Peroxidase
- Streptavidin-HRP Streptavidin-HRP
- the binding of the 76D12B10 antibodies to recombinant TIGIT protein was tested with BIACORE TM using a capture method.
- the 76D12B10 mAbs were captured using CM5 chip.
- a serial dilution of human TIGIT-his tag protein was injected over captured antibody for 1 min at a flow rate of 30 ⁇ l/min.
- the antigen was allowed to dissociate for 300s. All the experiments were carried out on a Biacore T200. Data analysis was carried out using the Biacore T200 evaluation software. The results are shown in FIG. 3 and Table 3 below.
- the 76D12B10 variable region genes were employed to create a humanized mAb (with an IgG1 N297A Fc fragment) .
- the amino acid sequences of the VH and VL or VK of 76D12B10 were compared against the available database of human Ig gene sequences to find the overall best-matching human germline Ig gene sequences.
- the closest human match was the A20/JK2 gene, and for the heavy chain the closest human match was the VH4-B/JH6 gene.
- Humanized variable domain sequences of 76D12B10 were then designed where the CDRL1, L2 and L3 were grafted onto framework sequences of the A20/JK2 gene, and the CDRH1, H2, and H3 onto framework sequences of the VH4-B/JH6 gene.
- a 3D model was then generated to determine if there were any framework positions where replacing the mouse amino acid to the human amino acid could affect binding and/or CDR conformation.
- V24A, S30T, G45K, I49M, V68I, V72H, and Y95F in the framework was involved in back-mutations.
- V43S, I48V, and Y49H in the framework was involved in back-mutations (Tables 4 and 5) .
- the humanized antibodies were subjected to ELISA test. Briefly, microtiter plates were coated with human TIGIT-his protein at 0.5 ⁇ g/ml in PBS, 100 ⁇ l/well at 4°C overnight, then blocked with 150 ⁇ l/well of 1%BSA. Three-fold dilutions of humanized antibodies starting from 3 ⁇ g/ml were added to each well and incubated for 1 hour at 37°C. The plates were washed with PBS/Tween and then incubated with Goat-anti-human IgG antibody conjugated with Horse Radish Peroxidase (HRP) for 30mins at 37°C. After washing, the plates were developed with TMB substrate and analyzed by spectrophotometer at OD 450nm. As shown in FIG. 4, all the humanized antibodies showed comparable binding efficacy to human TIGIT to the chimeric antibody.
- HRP Horse Radish Peroxidase
- this example performed affinity ranking with Biacore. As shown in Table 6, all of humanized antibodies from Hu02 to Hu20 showed excellent affinity, comparable to the chimeric antibody.
- Hu02 and Hu06 were subjected to ELISA test. Briefly, microtiter plates were coated with human TIGIT-his protein at 0.5 ⁇ g/ml in PBS, 100 ⁇ l/well at 4°C overnight, then blocked with 150 ⁇ l/well of 1%BSA. Three-fold dilutions of humanized antibodies starting from 3 ⁇ g/ml were added to each well and incubated for 1 hour at 37°C. The plates were washed with PBS/Tween and then incubated with Goat-anti-human IgG antibody conjugated with Horse Radish Peroxidase (HRP) for 0.5 hour at 37°C. After washing, the plates were developed with TMB substrate and analyzed by spectrophotometer at OD 450nm. As shown in FIG. 5, Hu02 and Hu06 showed comparable binding efficacy to human TIGIT to the chimeric antibody.
- HRP Horse Radish Peroxidase
- microtiter plates were coated with human CD155-hFc protein at 5 ⁇ g/ml in PBS, 100 ⁇ l/well at 4°C overnight, then blocked with 150 ⁇ l/well of 1%BSA.
- 50 ⁇ l biotin-labeled human TIGIT protein and 3-fold dilutions of Hu02 and Hu06 antibodies starting from 10 ⁇ g/ml at 50 ⁇ l were added to each well and incubated for 1 hour at 37°C.
- the plates were washed with PBS/Tween and then incubated with Streptavidin-HRP for 10 mins at 37°C. After washing, the plates were developed with TMB substrate and analyzed by spectrophotometer at OD 450nm. As shown in FIG.
- Jurkat T NFAT cells are engineered to express human TIGIT and CD226, which can respond to both TCR activation and CD226 co-stimulation.
- Raji cells are engineered to express human CD155.
- Super antigen Staphylococcal Enterotoxin
- TIGIT T cell receptor
- Addition of an anti-TIGIT antibody blocks the interaction of TIGIT with CD155 or inhibits the ability of TIGIT to prevent CD226 homodimerization, resulting in luciferase production. As shown in FIG.
- This example used a tumor mouse model to test the in vivo efficacy of the functional molecules.
- MC38 cells resuspended in PBS were administered subcutaneously into the right skin of B-hTIGIT humanized mice at a concentration of 5 ⁇ 10 5 cells in a volume of 0.1 mL.
- the animals were randomly assigned to experimental groups according to the tumor volume, with 6 animals in each group.
- Total human IgG, Hu02-mIgG2a (Hu02-mouse IgG2a Fc) and Triagolumab-mIgG2a (Triagolumab-mouse IgG2a Fc) were administered twice every week by intraperitoneal injection. The dose was calculated based on the experimental animal’s body weight at 3 mg/kg. Mice weight and tumor size were tested twice a week.
- LP010-02 Human-human IgG1 Fc
- control antibody Tiragolumab RG6058, Roche
- ELISA testing were subjected to ELISA testing. Briefly, microtiter plates were coated with human TIGIT-his protein at 0.5 ⁇ g/ml in PBS, 100 ⁇ l/well at 4°C overnight, then blocked with 150 ⁇ l/well of 1%BSA. Three- fold dilutions of humanized antibodies starting from 3 ⁇ g/ml were added to each well and incubated for 1 hour at 37°C.
- the plates were washed with PBS/Tween and then incubated with Goat-anti-human IgG antibody conjugated with Horse Radish Peroxidase (HRP) for 0.5 hour at 37°C. After washing, the plates were developed with the TMB substrate and analyzed by spectrophotometer at OD 450nm. As shown in FIG. 10, LP010-02 and Tiragolumab showed comparable binding efficacy to human TIGIT.
- microtiter plates were coated with human CD155-hFc protein at 5 ⁇ g/ml in PBS, 100 ⁇ l/well at 4°C overnight, then blocked with 150 ⁇ l/well of 1%BSA. 50 ⁇ l biotin-labeled human TIGIT protein and 3-fold dilutions of LP010-02 and Tiragolumab antibodies starting from 10 ⁇ g/ml at 50 ⁇ l were added to each well. The plates were washed with PBS/Tween and then incubated with Streptavidin-HRP for 10 mins at 37°C. After washing, the plates were developed with the TMB substrate and analyzed by spectrophotometer at OD 450nm. As shown in FIG.
- humanized antibodies were analyzed for their binding to human TIGIT overexpressed mammalian cells by FACS. Briefly, human TIGIT cells were firstly incubated with 3-fold serially diluted humanized antibodies starting at 5 ⁇ g/ml at 4°C for 40 mins. After wash by PBS, the Alexa 647 AffiniPure Goat Anti-Human IgG (H+L) antibody was added to each well and incubated at 4°C for 30 mins. The MFI of Alexa 647 were evaluated by FACSCanto. As shown in FIG.
- TIGIT-CD226-NFAT effector cells and Raji-CD155 target cells are co-cultured, TIGIT can bind to CD155 with higher affinity or destroy CD226 homodimerization and inhibit CD226 signal transduction in the presence of super antigen, thereby inhibiting the NFAT reporter gene activated by super antigen.
- Addition of an anti-TIGIT antibody (LP010-02, Tiragolumab and 22G2, containing the same human IgG1 Fc. ) that blocks the TIGIT/CD155 interaction results in restoring of NFAT-mediated signal.
- 22G2 is an anti-TIGIT antibody (see, e.g., US Patent Application Pub No: US20160176963) being developed by The Bristol-Myers Squibb Company.
- LP010-02 blockaded TIGIT and CD155 interaction with higher activity than Tiragolumab and 22G2.
- This example used a tumor mouse model to test the in vivo efficacy of LP010-02 (Hu02-WT human IgG1 Fc) in combination with HX008, an anti-PD-1 antibody.
- CT26 cells were administered subcutaneously into the right skin of BALB/c-hPD1-hTIGIT humanized mice at a concentration of 5 ⁇ 10 5 cells in a volume of 0.1 mL.
- the animals were randomly assigned to experimental groups according to the tumor volume, with 8 animals in each group.
- HX008, LP010-02, and LP010-02 in combination with HX008 were administered once every week by intraperitoneal injection.
- the doses of HX008 and LP010-02 were respectively calculated based on the experimental animal’s body weight at 1 mg/kg and 2 mg/kg. Mice weight and tumor size were tested twice or three times a week.
- Example 10 Antibody-dependent cell-mediated cytotoxicity (ADCC) activity of LP010-02
- TIGIT-overexpressing Jurkat cells were used as the target cells
- PBMC was used as the effector cell
- Tiragolumab was used as the control
- the test product was LP010-02.
- the dose response experiment was carried out under the condition of an effect-to-target ratio of 50: 1 to evaluate the ADCC of LP010-02 in vitro.
- LP010-02 had higher ADCC activity than Tiragolumab.
- TIGIT-overexpressing Jurkat cells were used as the target cells, the complement protein NHSC was used as the effector molecule (NHSC concentration was set at 5%) , and Tiragolumab was used as the control.
- the dose response experiment was carried out to evaluate the in vitro CDC activity of the test product LP010-02.
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Abstract
Description
| Kabat | Chothia | |
| CDR-H1 | 31-35 | 26-32 |
| CDR-H2 | 50-65 | 52-58 |
| CDR-H3 | 95-102 | 95-102 |
| CDR-L1 | 24-34 | 26-32 |
| CDR-L2 | 50-56 | 50-52 |
| CDR-L3 | 89-97 | 91-96 |
| C | G | P | S | A | T | D | E | N | Q | H | K | R | V | M | I | L | F | Y | W | |
| W | -8 | -7 | -6 | -2 | -6 | -5 | -7 | -7 | -4 | -5 | -3 | -3 | 2 | -6 | -4 | -5 | -2 | 0 | 0 | 17 |
| Y | 0 | -5 | -5 | -3 | -3 | -3 | -4 | -4 | -2 | -4 | 0 | -4 | -5 | -2 | -2 | -1 | -1 | 7 | 10 | |
| F | -4 | -5 | -5 | -3 | -4 | -3 | -6 | -5 | -4 | -5 | -2 | -5 | -4 | -1 | 0 | 1 | 2 | 9 | ||
| L | -6 | -4 | -3 | -3 | -2 | -2 | -4 | -3 | -3 | -2 | -2 | -3 | -3 | 2 | 4 | 2 | 6 | |||
| I | -2 | -3 | -2 | -1 | -1 | 0 | -2 | -2 | -2 | -2 | -2 | -2 | -2 | 4 | 2 | 5 | ||||
| M | -5 | -3 | -2 | -2 | -1 | -1 | -3 | -2 | 0 | -1 | -2 | 0 | 0 | 2 | 6 | |||||
| V | -2 | -1 | -1 | -1 | 0 | 0 | -2 | -2 | -2 | -2 | -2 | -2 | -2 | 4 | ||||||
| R | -4 | -3 | 0 | 0 | -2 | -1 | -1 | -1 | 0 | 1 | 2 | 3 | 6 | |||||||
| K | -5 | -2 | -1 | 0 | -1 | 0 | 0 | 0 | 1 | 1 | 0 | 5 | ||||||||
| H | -3 | -2 | 0 | -1 | -1 | -1 | 1 | 1 | 2 | 3 | 6 | |||||||||
| Q | -5 | -1 | 0 | -1 | 0 | -1 | 2 | 2 | 1 | 4 | ||||||||||
| N | -4 | 0 | -1 | 1 | 0 | 0 | 2 | 1 | 2 | |||||||||||
| E | -5 | 0 | -1 | 0 | 0 | 0 | 3 | 4 | ||||||||||||
| D | -5 | 1 | -1 | 0 | 0 | 0 | 4 | |||||||||||||
| T | -2 | 0 | 0 | 1 | 1 | 3 | ||||||||||||||
| A | -2 | 1 | 1 | 1 | 2 | |||||||||||||||
| S | 0 | 1 | 1 | 1 | ||||||||||||||||
| P | -3 | -1 | 6 | |||||||||||||||||
| G | -3 | 5 | ||||||||||||||||||
| C | 12 |
| For Amino Acid | Substitution With |
| Alanine | D-Ala, Gly, Aib, β-Ala, L-Cys, D-Cys |
| Arginine | D-Arg, Lys, D-Lys, Orn D-Orn |
| Asparagine | D-Asn, Asp, D-Asp, Glu, D-Glu Gln, D-Gln |
| Aspartic Acid | D-Asp, D-Asn, Asn, Glu, D-Glu, Gln, D-Gln |
| Cysteine | D-Cys, S-Me-Cys, Met, D-Met, Thr, D-Thr, L-Ser, D-Ser |
| Glutamine | D-Gln, Asn, D-Asn, Glu, D-Glu, Asp, D-Asp |
| Glutamic Acid | D-Glu, D-Asp, Asp, Asn, D-Asn, Gln, D-Gln |
| Glycine | Ala, D-Ala, Pro, D-Pro, Aib, β-Ala |
| Isoleucine | D-Ile, Val, D-Val, Leu, D-Leu, Met, D-Met |
| Leucine | Val, D-Val, Met, D-Met, D-Ile, D-Leu, Ile |
| Lysine | D-Lys, Arg, D-Arg, Orn, D-Orn |
| Methionine | D-Met, S-Me-Cys, Ile, D-Ile, Leu, D-Leu, Val, D-Val |
| Phenylalanine | D-Phe, Tyr, D-Tyr, His, D-His, Trp, D-Trp |
| Proline | D-Pro |
| Serine | D-Ser, Thr, D-Thr, allo-Thr, L-Cys, D-Cys |
| Threonine | D-Thr, Ser, D-Ser, allo-Thr, Met, D-Met, Val, D-Val |
| Tyrosine | D-Tyr, Phe, D-Phe, His, D-His, Trp, D-Trp |
| Valine | D-Val, Leu, D-Leu, Ile, D-Ile, Met, D-Met |
| 76D12B10 | Sequence | SEQ ID NO: | |
| | SGYDWH | | |
| CDRH2 | FIRDSGSTVYNPSLKG | ||
| | |||
| CDRH3 | GLFWYFDV | ||
| | |||
| CDRL1 | RTSENIFSYLA | ||
| | |||
| CDRL2 | NTKTLAE | ||
| 5 | |||
| CDRL3 | QHHYGNPLT | 6 |
| Human | Cyno | Rat | Mouse | |
| EC50 of 76D12B10 | 8.566 ng/ml | 8.298 ng/ml | No binding | No binding |
Claims (29)
- An antibody or fragment thereof, wherein the antibody or fragment thereof has specificity to a T cell immunoreceptor with Ig and ITIM domains (TIGIT) protein and comprises a heavy chain variable region (VH) comprising a VH CDR1 comprising the amino acid sequence of SEQ ID NO: 1, a VH CDR2 comprising the amino acid sequence of SEQ ID NO: 2, and a VH CDR3 comprising the amino acid sequence of SEQ ID NO: 3, and a light chain variable region (VL) comprising a VL CDR1 comprising the amino acid sequence of SEQ ID NO: 4, a VL CDR2 comprising the amino acid sequence of SEQ ID NO: 5, and a VL CDR3 comprising the amino acid sequence of SEQ ID NO: 6.
- The antibody or fragment thereof of claim 1, further comprising a Fc fragment.
- The antibody or fragment thereof of claim 2, wherein the Fc fragment is a human IgG1 Fc fragment.
- The antibody or fragment thereof of any preceding claim, which is humanized.
- The antibody or fragment thereof of any preceding claim, wherein the VH comprises an amino acid sequence selected from the group consisting of SEQ ID NO: 9-14 and the VL comprises an amino acid sequence selected from the group consisting of SEQ ID NO: 15-18.
- The antibody or fragment thereof of claim 5, wherein the VH comprises the amino acid sequence of SEQ ID NO: 11 and the VL comprises the amino acid sequence of SEQ ID NO: 15.
- The antibody or fragment thereof of claim 5, wherein the VH comprises the amino acid sequence of SEQ ID NO: 10 and the VL comprises the amino acid sequence of SEQ ID NO: 16.
- The antibody or fragment thereof of any preceding claim, which is antibody-dependent cellular cytotoxicity (ADCC) -competent.
- A bispecific antibody comprising a fragment of any one of claims 1-8 and a second antigen-binding fragment having a second specificity.
- The bispecific antibody of claim 9, wherein the second specificity is to a molecule on an immune cell or a tumor antigen.
- The bispecific antibody of claim 9, wherein the second specificity is to a molecule selected from the group consisting of CD33, CD47 , CD73, Her2, EGFR, CEA VEGF, CD155, CD112, CD113, PVRL3, PVRIG, CD3, CTLA-4, GITR, 4-1BB, PD-L1, PD-1, LAG-3, CD28, CD122, TIM3, OX-40, OX40L, CD40, CD40L, LIGHT, ICOS, ICOSL, GITR, GITRL, CD27, VISTA, B7H3, B7H4, HEVM, BTLA, KIR, and combinations thereof.
- The bispecific antibody of any one of claims 9-11, wherein the fragment and the second antigen-binding fragment each is independently selected from a Fab fragment, a single-chain variable fragment (scFv) , or a single-domain antibody.
- A composition comprising the antibody or fragment thereof of any one of claims 1-12 and a pharmaceutically acceptable carrier.
- One or more polynucleotides encoding the antibody or fragment thereof of any one of claims 1-12.
- An isolated cell comprising one or more polynucleotide encoding the antibody or fragment thereof of any one of claims 1-12.
- A method of treating cancer in a patient in need thereof, comprising administering to the patient the antibody or fragment thereof of any one of claims 1-12.
- Use of the antibody or fragment thereof of any one of claims 1-12 for the manufacture of a medicament for treating cancer.
- The method of claim 16 or the use of claim 17, wherein the cancer is selected from the group consisting of bladder cancer, breast cancer, colorectal cancer, endometrial cancer, esophageal cancer, head and neck cancer, kidney cancer, leukemia, liver cancer, lung cancer, lymphoma, melanoma, pancreatic cancer, prostate cancer, and thyroid cancer.
- The method of claim 16 or 18, or the use of claim 17 or 18, wherein the patient is further treated with a second agent, preferably an immune checkpoint inhibitor.
- The method or use of claim 19, wherein the immune checkpoint inhibitor is an antibody or antigen-binding fragment specific to PD-1, PD-L1, CTLA-4, LAG-3, CD28, CD122, 4-1BB, or BTLA.
- A method of treating or inhibiting infection in a patient in need thereof, comprising administering to the patient the antibody or fragment thereof of any one of claims 1-12.
- Use of the antibody or fragment thereof of any one of claims 1-12 for the manufacture of a medicament for treating or inhibiting infection.
- The method of claim 21 or the use of claim 22, wherein the infection is viral, bacterial, fungal, or parasite infection.
- The method of claim 21 or 23 or the use of claim 22 or 23, wherein the infection is HIV infection.
- A method of treating cancer in a patient in need thereof, comprising (a) treating a T or NK cell, in vitro, with the antibody or fragment thereof of any one of claims 1-12; and (b) administering the treated T or NK cell to the patient.
- The method of claim 25, further comprising, prior to step (a) , isolating the T or NK cell from an individual.
- The method of claim 25 or 26, wherein the T cell is a tumor-infiltrating T lymphocyte, a CD4+ T cell, a CD8+ T cell, or the combination thereof.
- The method of claim 25 or 26, wherein an NK cell is treated.
- A method of detecting expression of TIGIT in a sample, comprising contacting the sample with the antibody or fragment thereof of any one of claims 1-12 under conditions for the antibody or fragment thereof to bind to the TIGIT, and detecting the binding which indicates expression of TIGIT in the sample.
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| JP2023526967A JP7565117B2 (en) | 2020-11-10 | 2021-11-09 | Anti-TIGIT antibodies and uses thereof |
| AU2021380601A AU2021380601A1 (en) | 2020-11-10 | 2021-11-09 | Anti-tigit antibodies and uses thereof |
| CN202180073787.2A CN116745317B (en) | 2020-11-10 | 2021-11-09 | Anti-TIGIT antibodies and uses thereof |
| IL302592A IL302592A (en) | 2020-11-10 | 2021-11-09 | Anti-TIGIT antibodies and their uses |
| EP21891093.3A EP4244255A4 (en) | 2020-11-10 | 2021-11-09 | ANTI-TIGIT ANTIBODIES AND USES THEREOF |
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| US11028172B1 (en) * | 2020-11-10 | 2021-06-08 | Lepu Biopharma Co., Ltd. | Anti-TIGIT antibodies and uses thereof |
| EP4378954A4 (en) * | 2021-07-30 | 2025-05-21 | Shandong Simcere Biopharmaceutical Co., Ltd. | BISPECIFIC ANTI-PVRIG/ANTI-TIGIT ANTIBODY AND USE |
| CN115838424A (en) * | 2021-09-22 | 2023-03-24 | 上海康岱生物医药技术股份有限公司 | Monoclonal antibody targeting TIGIT |
| CN114181310B (en) * | 2022-02-14 | 2022-07-05 | 中山康方生物医药有限公司 | Anti-TIGIT antibody, its pharmaceutical composition and use |
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| AU2021380601A9 (en) | 2024-06-06 |
| IL302592A (en) | 2023-07-01 |
| EP4244255A4 (en) | 2024-12-25 |
| CN116745317A (en) | 2023-09-12 |
| JP2023547530A (en) | 2023-11-10 |
| US11028172B1 (en) | 2021-06-08 |
| EP4244255A1 (en) | 2023-09-20 |
| AU2021380601A1 (en) | 2023-05-25 |
| JP7565117B2 (en) | 2024-10-10 |
| CN116745317B (en) | 2025-02-07 |
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