Trispecific antibodies, methods for preparing same and uses
A hexavalent trispecific antibody targeting PD-1, HER-2, and LAG-3 addresses the challenges of overactivation in current cancer therapies by enhancing T cell activity and tumor targeting, offering safer and more precise immunotherapy options.
Patent Information
- Application Number
- JP2023579715
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-29
- Filing Date
- 2022-06-21
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2042-06-21
AI Technical Summary
Current cancer immunotherapies, such as bispecific and trispecific antibodies, face challenges in safely and effectively activating T cells due to potential cytokine release syndrome from overactivation, and there is a need for more precise and effective treatments for conditions like multiple myeloma and HIV infection.
Development of a hexavalent trispecific antibody that simultaneously binds to three targets (PD-1, HER-2, and LAG-3) through a dimeric structure composed of two monomers, each containing a heavy and light chain, with specific variable and constant regions, and optionally linked by flexible or rigid linkers, to enhance T cell activation and tumor targeting.
The hexavalent trispecific antibody enhances T cell activity and tumor targeting, potentially providing safer and more effective cancer treatments by delivering precise immunomodulatory signals within the tumor microenvironment.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to the field of antibodies, and in particular to trispecific antibodies, their preparation methods and uses. [Background technology]
[0002] Anti-PD-1 / PD-L1 monoclonal antibodies were the first widely used cancer immunotherapy. Subsequently, bispecific antibodies became known as cancer immunotherapies. One end of these antibodies binds to an antigen on the surface of cancer cells, while the other binds to CD3 on the surface of T cells, recruiting and activating T cells to kill cancer cells (e.g., Amgen's blinatumomab). Blinatumomab is a bispecific antibody that simultaneously targets the CD19 antigen on the surface of cancer cells and the CD3 receptor on the surface of T cells. When used to treat patients with advanced B-cell acute lymphoblastic leukemia (B-ALL), it can double the patient's remission rate and survival time. This type of bispecific antibody can effectively activate the anti-cancer activity of T cells.
[0003] However, when T cells are typically activated, not only the CD3-mediated signaling pathway but also the costimulatory receptor-mediated signaling pathway called CD28 is activated. This dual activation allows T cells to maintain their antitumor activity for a long period of time. In a study recently published in Nature Cancer (reference: Wu et al., (2019). Trispecific antibodies enhance the therapeutic efficacy of tumor-directed T cells through T cell receptor co-stimulation. Nature Cancer, https: / / doi.org / 10.1038 / s43018-019-0004-z), Sanofi's research and development team developed a trispecific antibody that not only binds to tumor-associated antigens and T cell CD3, but also to CD28 on the T cell surface, thereby enhancing the anticancer activity of T cells. Activation of the CD28 receptor stimulates the expression of the Bcl-xL protein, which prevents T cell apoptosis and thereby prolongs T cell activity. CD28 is used as a costimulatory receptor in CAR-T therapy. The receptor expressed by certain CAR-T cells contains the costimulatory protein domains of CD3 and CD28. In in vitro studies, the trispecific antibody lysed three to four times more cancer cells than the approved anti-CD38 monoclonal antibody daratumumab. In a murine multiple myeloma model, this trispecific antibody also dose-dependently reduced the size of tumors implanted in mice.
[0004] Researchers still need to verify the safety of this innovative antibody because a common side effect of cancer immunotherapy that stimulates T cell activity is cytokine release syndrome, which is caused by overactivation of T cells. Although this trispecific therapy has shown manageable safety in non-human primate models, its safety needs to be verified in humans and multiple myeloma (MM) patients.
[0005] According to a commentary published in Nature (reference: Garfall and June. (2019). Trispecific antibodies offer a third way forward for anticancer immunotherapy. Nature, doi:10.1038 / d41586-019-03495-3), multiple myeloma patients are constantly in need of new treatment options, as even effective treatments like CAR-T only provide temporary relief for most patients. Trispecific antibodies have the potential to provide a flexible platform for delivering precise combinations of immunomodulatory signals based on the tumor microenvironment, potentially making them safer and more effective than combination therapies consisting of three monospecific antibodies.
[0006] Furthermore, Numab discloses in US20180355024A1 a method for designing a triabody characterized by comprising multiple ScFv fragments and Fvs, and Xencor discloses in US20190352416A1 a method for designing a triabody characterized by using heavy chain heterodimerization technology and ScFv fragments.
[0007] In addition to the above products and related companies, there have also been several first studies published in internationally renowned journals. A 2017 study in Science (reference: Liang Xu et al. Trispecific broadly neutralizing HIV antibodies mediate potent SHIV protection in macaques. Science, Published online: 20 Sep 2017, doi:10.1126 / science.aan8630.) showed that scientists developed a trispecific antibody in the laboratory that protects monkeys from infection with two human-simian chimeric immunodeficiency virus (SHIV) strains. This trispecific antibody reportedly combines a unique structure that broadly neutralizes the HIV antibodies VRC01, PGDM1400, and 10E8v4. The three HIV-binding fragments are derived from three natural antibodies, each of which potently neutralizes many HIV strains. Using a trispecific antibody to treat cancer is a significant conceptual advance. Because trispecific antibodies are flexible vectors, they can specifically deliver combinations of immunomodulatory signals within the tumor microenvironment, potentially more safely and effectively than the combination of multiple specific immunomodulatory monoclonal antibodies. Therefore, such combination strategies are expected to improve the precision and therapeutic efficacy of current immunotherapies and further expand the scope of immunotherapy. Trispecific antibodies, which can simultaneously bind to three different targets, are expected to provide a powerful foundation for the development of treatments for HIV infection, other infectious diseases, autoimmune diseases, and cancer.
[0008] Therefore, there is a need in the art to develop new and effective trispecific antibodies. Summary of the Invention [Problem to be solved by the invention]
[0009] The goal of the present invention is to provide trispecific antibodies, methods for their preparation and uses. [Means for solving the problem]
[0010] A first aspect of the present invention provides a hexavalent trispecific antibody, said hexavalent trispecific antibody being a dimer formed from two monomers, wherein each monomer comprises a heavy chain, a first light chain and a second light chain; The heavy chain comprises, from N-terminus to C-terminus, an antibody heavy chain variable region element Z1 directed to a first target, an antibody heavy chain variable region element Z2 directed to a second target, an antibody heavy chain variable region element Z3 directed to a third target, and an antibody heavy chain constant region Z4, all linked in tandem; The first and second light chains cooperate with the heavy chains, respectively, to cause the hexavalent trispecific antibody to specifically bind to a first target, a second target, and a third target.
[0011] In another preferred example, the first light chain comprises an antibody light chain variable region element Z5 directed against a first target and an antibody light chain variable region element Z6 directed against a second target, linked in tandem from the N-terminus to the C-terminus.
[0012] In another preferred example, the second light chain comprises an antibody light chain variable region element Z7 and an antibody light chain constant region Z8 directed against a third target, linked in tandem from N- to C-terminus.
[0013] In another preferred example, the antibody heavy chain constant region Z4 comprises a CH1 region, a CH2 region, and a CH3 region.
[0014] In another preferred example, the first light chain cooperates with antibody heavy chain variable region element Z1 and antibody heavy chain variable region element Z2, and the second light chain cooperates with antibody heavy chain variable region element Z3.
[0015] In another preferred example, the second light chain further cooperates with a CH1 region in the antibody heavy chain constant region Z4.
[0016] In another preferred example, the antibody heavy chain constant region Z4 is derived from an antibody targeting a first target, an antibody targeting a second target, or an antibody targeting a third target.
[0017] In another preferred example, the antibody heavy chain variable region element Z1, the antibody heavy chain variable region element Z2, the antibody heavy chain variable region element Z3, and the antibody heavy chain constant region Z4 are each independently all human or humanized.
[0018] In another preferred example, the antibody light chain variable region element Z5, antibody light chain variable region element Z6, antibody light chain variable region element Z7 and antibody light chain constant region element Z8 are each independently all human or humanized.
[0019] In another preferred embodiment, two adjacent antibody heavy chain variable region elements Z1, Z2, Z3, and Z4 can be directly linked or linked via a linker.
[0020] In another preferred example, the antibody light chain variable region element Z5 and the antibody light chain variable region element Z6 can be directly linked or linked via a linker.
[0021] In another preferred example, the antibody light chain variable region element Z7 and the antibody light chain constant region Z8 can be directly linked or linked via a linker.
[0022] In another preferred embodiment, the linker comprises a flexible linker and a rigid linker.
[0023] In another preferred example, the linker is a peptide linker having a length of 1 to 35 amino acids, preferably 6 to 30 amino acids.
[0024] In another preferred example, the first target, the second target and the third target are PD-1, HER-2 and LAG-3.
[0025] In another preferred example, the first target is PD-1, the second target is HER-2, and the third target is LAG-3.
[0026] In another preferred example, the first target is HER-2, the second target is PD-1, and the third target is LAG-3.
[0027] In another preferred example, the first target is PD-1, the second target is LAG-3, and the third target is HER-2.
[0028] In another preferred example, the first target is LAG-3, the second target is PD-1, and the third target is HER-2.
[0029] In another preferred example, the first target is HER-2, the second target is LAG-3, and the third target is PD-1.
[0030] In another preferred example, the first target is LAG-3, the second target is HER-2, and the third target is PD-1.
[0031] In another preferred example, the hexavalent trispecific antibody comprises a heavy chain, a first light chain, and a second light chain, wherein each of the heavy chains has the structure of Formula I: Formula (I): Z1-Z2-Z3-Z4 Z1 is a heavy chain variable region element for a first target; Z2 is a heavy chain variable region element for a second target; Z3 is a heavy chain variable region element for a third target; Z4 is an antibody heavy chain constant region CH1, CH2 and CH3; each "-" is independently a bond or a linker; wherein the first light chain and second light chain cooperate with each heavy chain to cause the hexavalent trispecific antibody to specifically bind to a first target, a second target, and a third target.
[0032] In another preferred example, the first light chain cooperates with Z1 and Z2, and the second light chain cooperates with Z3.
[0033] In another preferred embodiment, the first light chain is linked to Z2 via a disulfide bond.
[0034] In another preferred example, the second light chain cooperates with Z3 and CH1, and the second light chain is further linked to CH1 via a disulfide bond.
[0035] In another preferred example, the first light chain has the structure of Formula II: Formula (II): Z5-Z6 where Z5 is a light chain variable region element for a first target and Z6 is a light chain variable region element for a second target.
[0036] In another preferred example, the second light chain has the structure of Formula III: Formula (III): Z7-Z8 Here, Z7 is the light chain variable region element for the third target and Z8 is the light chain constant region.
[0037] In another preferred example, the first target is PD-1, the second target is HER-2, and the third target is LAG-3.
[0038] In another preferred example, the first target is HER-2, the second target is PD-1, and the third target is LAG-3.
[0039] In another preferred example, the first target is PD-1, the second target is LAG-3, and the third target is HER-2.
[0040] In another preferred example, the first target is LAG-3, the second target is PD-1, and the third target is HER-2.
[0041] In another preferred example, the first target is HER-2, the second target is LAG-3, and the third target is PD-1.
[0042] In another preferred example, the first target is LAG-3, the second target is HER-2, and the third target is PD-1.
[0043] In another preferred embodiment, the first light chain has an amino acid sequence selected from the group consisting of SEQ ID NO: 15, 17 or 19.
[0044] In another preferred embodiment, the second light chain has the amino acid sequence as shown in SEQ ID NO:13.
[0045] In another preferred embodiment, the heavy chain has an amino acid sequence selected from the group consisting of SEQ ID NO: 14, 16, or 18.
[0046] In another preferred embodiment, the hexavalent trispecific antibody is a dimer.
[0047] In another preferred embodiment, the hexavalent trispecific antibody is a homodimer or a heterodimer.
[0048] In another preferred example, the hexavalent trispecific antibody comprises two monomers, each monomer comprising a heavy chain and a first light chain, and a second light chain, wherein each monomer has the structure of Formula IV: In the TIFF0007721698000001.tif23154 formula, VH A -L1-VH B -L2-VH C -CH1-CH2-CH3 is the heavy chain, VL A-L3-VL B is the first light chain, VL C -CL is the second light chain, VH A is a heavy chain variable region for a first target, VH B is a heavy chain variable region for a second target, VH C is a heavy chain variable region for a third target, CH1, CH2, and CH3 are antibody heavy chain constant regions CH1, CH2, and CH3, respectively; VL A is a light chain variable region for a first target, VL B is a light chain variable region against a second target, VL C is a light chain variable region against a third target, CL is the antibody light chain constant region, L1, L2, and L3 are each independently a linker; Each "-" is independently a bond; "~" represents a disulfide bond or a covalent bond; wherein the hexavalent trispecific antibody simultaneously binds to a first target, a second target, and a third target.
[0049] In another preferred example, the first target is HER-2, the second target is PD-1, and the third target is LAG-3.
[0050] In another preferred example, the first target is PD-1, the second target is LAG-3, and the third target is HER-2.
[0051] In another preferred example, the first target is LAG-3, the second target is PD-1, and the third target is HER-2.
[0052] In another preferred example, the first target is HER-2, the second target is LAG-3, and the third target is PD-1.
[0053] In another preferred example, the first target is LAG-3, the second target is HER-2, and the third target is PD-1.
[0054] In another preferred example, the hexavalent trispecific antibody comprises two monomers, each monomer comprising a heavy chain and a first light chain, and a second light chain, wherein each monomer has the structure of Formula IV: In the TIFF0007721698000002.tif24155 formula, VH A -L1-VH B -L2-VH C -CH1-CH2-CH3 is the heavy chain, VL A -L3-VL B is the first light chain, VL C -CL is the second light chain, VH A is the heavy chain variable region of an anti-PD-1 antibody, VH B is the heavy chain variable region of an anti-HER-2 antibody, VH C is the heavy chain variable region of an anti-LAG-3 antibody, CH1, CH2, and CH3 are antibody heavy chain constant regions CH1, CH2, and CH3, respectively; VL A is the light chain variable region of an anti-PD-1 antibody, VL B is the light chain variable region of an anti-HER-2 antibody, VL C is the light chain variable region of an anti-LAG-3 antibody, CL is the antibody light chain constant region, L1, L2, and L3 are each independently a linker; Each "-" is independently a bond; "~" represents a disulfide bond or a covalent bond; wherein the hexavalent trispecific antibody simultaneously binds to PD-1, HER-2 and LAG-3.
[0055] In another preferred embodiment, the linker is a flexible peptide linker.
[0056] In another preferred example, the flexible peptide linker contains 6 to 30 amino acids, preferably 10 to 25 amino acids.
[0057] In another preferred example, the flexible peptide linker contains 2 to 6 G4S.
[0058] In another preferred example, the L1, L2, and L3 each independently represent 2 to 4 G4S.
[0059] In another preferred embodiment, the heavy chain constant region is or is derived from a heavy chain constant region of an IgG1, IgG2, IgG3, or IgG4 antibody.
[0060] In another preferred example, the heavy chain constant region is selected from the heavy chain constant region of human IgG1 or human IgG4.
[0061] In another preferred example, the heavy chain constant region of the human IgG4 comprises a S228P mutation.
[0062] In another preferred embodiment, the light chain constant region is or is derived from the light chain constant region of an IgG1, IgG2, IgG3, or IgG4 antibody.
[0063] In another preferred example, the light chain constant region is selected from the light chain constant region of human IgG1 or human IgG4.
[0064] In another preferred embodiment, the hexavalent trispecific antibody comprises two heavy chains, two first light chains, and two second light chains; wherein the heavy chain is selected from the group consisting of the heavy chains set forth in amino acid sequence SEQ ID NO: 14, 16 or 18; the first light chain is selected from the group consisting of the first light chains as set forth in the amino acid sequences SEQ ID NO: 15, 17 or 19; and / or The second light chain is selected from the group consisting of second light chains as shown in the amino acid sequence SEQ ID NO:13.
[0065] In another preferred example, the amino acid sequences of the heavy chain, the first light chain and the second light chain in said hexavalent trispecific antibody are as set forth in SEQ ID Nos: 14, 15 and 13, respectively.
[0066] In another preferred example, the amino acid sequences of the heavy chain, the first light chain and the second light chain in said hexavalent trispecific antibody are as set forth in SEQ ID Nos: 16, 17 and 13, respectively.
[0067] In another preferred example, the amino acid sequences of the heavy chain, the first light chain and the second light chain in said hexavalent trispecific antibody are as set forth in SEQ ID Nos: 18, 19 and 13, respectively.
[0068] A second aspect of the invention provides an isolated nucleic acid molecule, said nucleic acid molecule encoding a hexavalent trispecific antibody according to the first aspect of the invention.
[0069] In another preferred example, the nucleic acid molecules encode the heavy chain, the first light chain, and the second light chain, respectively.
[0070] A third aspect of the present invention provides an expression vector, said expression vector comprising a nucleic acid molecule according to the second aspect of the invention.
[0071] A fourth aspect of the invention provides a host cell, said host cell comprising an expression vector according to the third aspect of the invention.
[0072] A fifth aspect of the present invention provides a method for preparing a hexavalent trispecific antibody according to the first aspect of the invention, said method comprising the steps of: (a) culturing a host cell according to the fourth aspect of the invention under expression conditions, thereby expressing said hexavalent trispecific antibody; (b) isolating and purifying the hexavalent trispecific antibody described in (a).
[0073] A sixth aspect of the present invention provides a pharmaceutical composition comprising the hexavalent trispecific antibody according to the first aspect of the invention and a pharmaceutically acceptable vector.
[0074] In another preferred embodiment, the pharmaceutical composition also contains an anti-tumor agent.
[0075] In another preferred embodiment, the pharmaceutical composition is in unit dosage form.
[0076] In another preferred example, the anti-tumor agent can be present alone in a package separate from the trispecific antibody, or the anti-tumor agent can be coupled to the trispecific antibody.
[0077] In another preferred embodiment, the dosage form of the pharmaceutical composition includes an oral dosage form or a parenteral dosage form.
[0078] In another preferred embodiment, the parenteral administration form comprises intravenous injection, intravenous infusion, subcutaneous injection, local injection, intramuscular injection, intratumoral injection, intraperitoneal injection, intracranial injection, or intracavity injection.
[0079] A seventh aspect of the present invention provides the use of a hexavalent trispecific antibody according to the first aspect of the invention or a pharmaceutical composition according to the sixth aspect of the invention in the preparation of a medicament for treating cancer.
[0080] In another preferred embodiment, the cancer is selected from the group consisting of melanoma, kidney cancer, prostate cancer, pancreatic cancer, breast cancer, colon cancer, lung cancer, esophageal cancer, head and neck squamous cell carcinoma, liver cancer, ovarian cancer, cervical cancer, thyroid cancer, glioblastoma, glioma, and other neoplastic malignancies.
[0081] An eighth aspect of the present invention provides a method of treating cancer comprising administering to a subject in need thereof a hexavalent trispecific antibody according to the first aspect of the invention, or an immunoconjugate thereof, or a pharmaceutical composition according to the sixth aspect of the invention.
[0082] In another preferred embodiment, the cancer is selected from the group consisting of melanoma, kidney cancer, prostate cancer, pancreatic cancer, breast cancer, colon cancer, lung cancer, esophageal cancer, head and neck squamous cell carcinoma, liver cancer, ovarian cancer, cervical cancer, thyroid cancer, glioblastoma, glioma, and other neoplastic malignancies.
[0083] A ninth aspect of the present invention provides an immunoconjugate, said immunoconjugate comprising: (a) a hexavalent trispecific antibody according to the first aspect of the invention, and (b) a coupling moiety selected from the group consisting of a detectable marker, a drug, a toxin, a cytokine, a radionuclide, or an enzyme.
[0084] In another preferred example, the conjugated moiety is selected from a fluorescent or luminescent marker, a radioactive marker, an MRI (magnetic resonance imaging) or CT (computerized tomography) contrast agent, or an enzyme, radionuclide, biotoxin, cytokine capable of producing a detectable product.
[0085] In another preferred example, the immunoconjugate comprises an antibody-drug conjugate (ADC).
[0086] In another preferred embodiment, the immunoconjugate is used in the preparation of a pharmaceutical composition for treating tumors. [Effects of the Invention]
[0087] It should be understood that within the scope of the present invention, the above-mentioned technical features of the present invention and the technical features specifically described below (e.g., in the Examples) can be combined with each other to form new or preferred technical solutions, which will not be repeated here due to space limitations. [Brief explanation of the drawings]
[0088] [Figure 1] 1 is a schematic diagram of the structure of a trispecific antibody of the present invention, in which VH-A represents the heavy chain variable region of a first antibody, VH-B represents the heavy chain variable region of a second antibody, and VH-C represents the heavy chain variable region of a third antibody. VL-A represents the light chain variable region of the first antibody, VL-B represents the light chain variable region of the second antibody, and VL-C represents the light chain variable region of the third antibody. CH1, CH2, and CH3 are the three domains of the heavy chain constant region, and CL is the light chain constant region. The line segment between the two heavy chains represents a disulfide bond, and the line segment between the heavy and light chains also represents a disulfide bond, and the line segment between VH-B and VL-B represents an artificially designed disulfide bond. The lines between VH-A and VH-B, VH-B and VH-C, and VL-A and VL-B represent artificially designed linkers, and the line between CH1 and CH2 represents the natural linker and hinge region of the antibody (when the heavy chain is of human IgG4 subtype, the hinge region contains the S228P point mutation). [Figure 2] 2A, 2B, and 2C show the ELISA results of the trispecific antibodies of the present invention, where the affinity of the trispecific antibodies of the present invention for PD-1, HER-2, and LAG-3, respectively, was measured by ELISA. [Figure 3]3 shows HPLC-SEC spectra of monoclonal antibody 609-IgG4 and the trispecific antibody of the present invention, where Figure 3A shows the HPLC-SEC spectrum of monoclonal antibody 609-IgG4, Figure 3B shows the HPLC-SEC spectrum of 609-302-134-IgG4, Figure 3C shows the HPLC-SEC spectrum of 609-302-(44CC)-134-IgG4, and Figure 3D shows the HPLC-SEC spectrum of 609-302-(105CC)-134-IgG4. [Figure 4] 4A shows the HPLC-IEC spectra of monoclonal antibody 609-IgG4 and the trispecific antibody of the present invention, where Figure 4A shows the HPLC-IEC spectrum of monoclonal antibody 609-IgG4, Figure 4B shows the HPLC-IEC spectrum of 609-302-(44CC)-134-IgG4, and Figure 4C shows the HPLC-IEC spectrum of 609-302-(105CC)-134-IgG4. [Figure 5] 5A and 5B show HPLC-IEC spectra of monoclonal antibody 609-IgG4 and a trispecific antibody of the present invention, where Figures 5A and 5B show the NR-CE-SDS and R-CE-SDS spectra of monoclonal antibody 609-IgG4, respectively, Figures 5C and 5D show the NR-CE-SDS and R-CE-SDS spectra of 609-302-134-IgG4, respectively, Figures 5E and 5F show the NR-CE-SDS and R-CE-SDS spectra of 609-302-(44CC)-134-IgG4, respectively, and Figures 5G and 5H show the NR-CE-SDS and R-CE-SDS spectra of 609-302-(105CC)-134-IgG4, respectively. [Figure 6] FIG. 1 shows the functional activity of trispecific antibodies of the invention in stimulating immune responses. DETAILED DESCRIPTION OF THE INVENTION
[0089] Through extensive and meticulous research and extensive screening, the present inventors have succeeded in obtaining, for the first time, a hexavalent trispecific antibody targeting anti-PD-1, HER-2, and LAG-3 with a novel structure. The hexavalent trispecific antibody of the present invention is a dimer formed from two monomers, each of which comprises a heavy chain, a first light chain, and a second light chain. Specifically, based on the structure of natural antibodies, the inventors designed and optimized the structures of the first light chain and heavy chain so that the trispecific antibody of the present invention retains the trispecificity of anti-PD-1, HER-2, and LAG-3 while possessing biological activity and physical and chemical properties similar to or even superior to those of monoclonal antibodies. Based on this, the inventors have completed their counterinvention.
[0090] term As used herein, the term "antibody (abbreviated as Ab)" or "immunoglobulin (abbreviated as IgG)" refers to a heterotetrameric glycoprotein composed of two identical light chains (L) and two identical heavy chains (H) with identical structural characteristics. Each light chain is linked to a heavy chain by one covalent disulfide bond, and the number of disulfide bonds between heavy chains of different immunoglobulin isotypes varies. Each heavy and light chain also contains regularly spaced intrachain disulfide bonds. One end of each heavy chain contains a variable region (VH) followed by a constant region, the heavy chain constant region consisting of three domains: CH1, CH2, and CH3. One end of each light chain contains a variable region (VL) and the other end contains a constant region, the light chain constant region containing one domain, CL, where the light chain constant region is paired with the CH1 domain of the heavy chain constant region, and the light chain variable region is paired with the heavy chain variable region. The constant region is not directly involved in the binding of an antibody to an antigen, but exhibits various effector functions, such as antibody-dependent cell-mediated cytotoxicity (ADCC). Heavy chain constant regions include IgG1, IgG2, IgG3, and IgG4 subtypes, while light chain constant regions include kappa (Kappa) or lambda (Lambda). The heavy and light chains of an antibody are covalently bound by a disulfide bond between the CH1 domain of the heavy chain and the CL domain of the light chain, and the two heavy chains of an antibody are covalently bound by an interpolypeptide disulfide bond formed between the hinge regions.
[0091] In the present invention, the term "trispecific antibody (or triabody)" refers to an antibody molecule that can specifically bind to three antigens (targets) or three epitopes simultaneously. Based on symmetry, trispecific antibodies can be structurally classified into symmetric and asymmetric molecules. Based on the number of binding sites, trispecific antibodies can be classified into trivalent, tetravalent, and multivalent molecules.
[0092] As used herein, the term "monoclonal antibody (mAb)" refers to an antibody obtained from a substantially homogeneous population, i.e., the individual antibodies within the population are identical except for some possible naturally occurring mutations. Monoclonal antibodies are highly specific for a single antigenic site. Also, unlike traditional polyclonal antibody preparations (which are usually mixtures of different antibodies directed against different antigenic determinants), each monoclonal antibody is directed against a single determinant on the antigen. In addition to their specificity, an advantage of monoclonal antibodies is that they can be synthesized by hybridoma culture and are uncontaminated by other immunoglobulins. The modifier "monoclonal" reflects the character of the antibody being obtained from a substantially homogeneous population of antibodies; this should not be construed as requiring any particular method of antibody purification.
[0093] In the present invention, the term "humanized" refers to an antibody whose CDRs are derived from an antibody of a non-human species (preferably a mouse), and the remainder of the antibody molecule (including the framework and constant regions) is derived from a human antibody. Furthermore, framework region residues can be altered to maintain binding affinity.
[0094] In the present invention, the terms "Fab" and "Fc" refer to the fact that papain can cleave an antibody into two identical Fab segments and one Fc segment. The Fab segment is composed of the VH and CH1 domains of the antibody heavy chain and the VL and CL domains of the antibody light chain. The Fc segment is a crystallizable fragment (Fc) composed of the CH2 and CH3 domains of the antibody. The Fc segment does not have antigen-binding activity and is the site where the antibody interacts with effector molecules or cells.
[0095] As used herein, the term "variable" refers to differences in the sequence of specific portions of antibody variable regions, which determine the binding and specificity of various specific antibodies for a particular antigen. However, variability is not evenly distributed throughout the antibody variable domain. It is concentrated in three segments called the complementarity-determining regions (CDRs) or hypervariable regions of the heavy and light chain variable regions. The more conserved portions of the variable regions are called the framework regions (FRs). Naturally occurring heavy and light chain variable regions each contain four FR regions, which are usually in a β-folded configuration connected by three CDRs that form a connecting loop, and can occasionally form a partial β-folded structure. The CDRs of each chain are closely juxtaposed by the FR regions and, together with the CDRs of the other chain, form the antigen-binding site of the antibody (see Kabat et al., NIH Publication No. 91-3242, Vol. I, pp. 647-669 (1991)).
[0096] As used herein, the term "framework region" (FR) refers to the amino acid sequences interposed between the CDRs, i.e., those portions of the light and heavy chain variable regions of an immunoglobulin that are relatively conserved among different immunoglobulins of a single species. The light and heavy chains of an immunoglobulin have four FRs, designated FR1-L, FR2-L, FR3-L, FR4-L and FR1-H, FR2-H, FR3-H, FR4-H, respectively. Correspondingly, the light chain variable domain can be designated (FR1-L)-(CDR1-L)-(FR2-L)-(CDR2-L)-(FR3-L)-(CDR3-L)-(FR4-L), and the heavy chain variable domain can be represented as (FR1-H)-(CDR1-H)-(FR2-H)-(CDR2-H)-(FR3-H)-(CDR3-H)-(FR4-H). Preferably, the FR of the present invention is a human antibody FR or a derivative thereof, and the derivative of the human antibody FR is substantially identical to a naturally occurring human antibody FR, i.e., the sequence identity reaches 85%, 90%, 95%, 96%, 97%, 98% or 99%.
[0097] Knowing the amino acid sequences of the CDRs, one skilled in the art can easily determine the framework regions FR1-L, FR2-L, FR3-L, FR4-L and / or FR1-H, FR2-H, FR3-H, FR4-H.
[0098] As used herein, the term "human framework region" refers to a framework region that is substantially identical (about 85% or more, particularly 90%, 95%, 97%, 99% or 100%) to the framework region of a naturally occurring human antibody.
[0099] As used herein, the term "linker" or "peptide linker" refers to one or more amino acid residues inserted into an immunoglobulin domain to provide sufficient flexibility for folding into a dual-variable region immunoglobulin in which the light and heavy chain domains have been swapped. In the present invention, preferred linkers refer to linkers L1, L2, and L3, where L1 connects the heavy chain variable region of a first antibody to the heavy chain variable region of a second antibody, L2 connects the heavy chain variable region of the second antibody to the heavy chain variable region of a third antibody, and L3 connects the light chain variable region of a first antibody to the light chain variable region of a second antibody.
[0100] Examples of suitable linkers include monoglycine (Gly) or serine (Ser) residues, with the marker and sequence of amino acid residues in the linker varying depending on the type of secondary structural element that needs to be achieved with the linker.
[0101] trispecific antibody The trispecific antibody of the present invention is a hexavalent anti-PD-1, HER-2 and LAG-3 trispecific antibody comprising an anti-PD-1 antibody portion, an anti-HER-2 antibody portion and an anti-LAG-3 antibody portion.
[0102] Preferably, the sequences of the anti-PD-1 antibodies of the present invention are as set forth in patent application WO2018 / 137576A1. Those skilled in the art can modify or alter the anti-PD-1 antibodies of the present invention using techniques well known in the art, such as adding, deleting, and / or substituting one or more amino acid residues, to further improve the affinity or structural stability of the anti-PD-1, and obtain the results after modification or alteration using conventional measurement methods.
[0103] In the present invention, the trispecific antibodies of the present invention further include conservative variants thereof, which refers to polypeptides in which up to 10, preferably up to 8, more preferably up to 5, and most preferably up to 3 amino acids are substituted with similar or similar amino acids compared to the amino acid sequence of the trispecific antibodies of the present invention. These conservative variant polypeptides are preferably generated by substituting amino acids according to Table A.
[0104] TIFF0007721698000003.tif226155 In a preferred embodiment of the present invention, the sequence information of the obtained antibody is as shown in Table 1 below.
[0105] TIFF0007721698000004.tif241155Here, any one of the above amino acid sequences also includes derivative sequences that have binding affinity to PD-1, HER-2, and LAG-3 by adding, deleting, modifying, and / or substituting at least one amino acid (for example, 1 to 5, 1 to 3, preferably 1 to 2, more preferably 1).
[0106] In another preferred embodiment, the sequence formed by the addition, deletion, modification and / or substitution of said at least one amino acid sequence is an amino acid sequence that preferably has at least 80%, preferably at least 85%, more preferably at least 90%, and most preferably at least 95% homology.
[0107] In the present invention, the number of amino acids to be added, deleted, modified and / or substituted is usually 1, 2, 3, 4 or 5, preferably 1 to 3, more preferably 1 to 2, and most preferably 1.
[0108] In the present invention, preferred substitutions include replacing G at position 44 in the 302 heavy chain variable region with C in the trispecific antibody 609VH-302VH-134-IgG4 of the present invention, mutating Q at position 100 in the 302 light chain variable region in 609VL-302VL to C, mutating Q at position 105 in the 302 heavy chain variable region in 609VH-302VH-134-IgG4 to C, and mutating Q at position 43 in the 302 light chain variable region in 609VL-302VL to C.
[0109] In the present invention, the terms "antibody," "binding," and "specific binding" refer to a non-random binding reaction between two molecules, such as the reaction between an antibody and its target antigen. Typically, an antibody binds to an antigen at a specific binding site within a range of about 10 -7 Less than M, e.g., about 10 -8 M, 10 -9 M, 10 -10 M, 10 -11 The antibody binds to the antigen with an equilibrium dissociation constant (KD) of less than M or less. In the present invention, the term "KD" refers to the equilibrium dissociation constant of a particular antibody-antigen interaction, and it is used to describe the binding affinity between an antibody and an antigen. The smaller the equilibrium dissociation constant, the stronger the binding between the antibody and the antigen, and the higher the affinity between the antibody and the antigen. For example, surface plasmon resonance (SPR) can be used to measure the binding affinity of an antibody to an antigen in a BIACORE instrument, or ELISA can be used to measure the relative binding affinity between an antibody and an antigen.
[0110] In the present invention, the term "valency" refers to the presence of a specified number of antigen-binding sites in an antibody molecule. Preferably, the trispecific antibody of the present invention has six antigen-binding sites and is hexavalent. In the present invention, the antigen-binding site comprises a heavy chain variable region (VH) and a light chain variable region (VL).
[0111] In the present invention, the term "epitope" refers to a polypeptide determinant that specifically binds to an antibody. An epitope of the present invention is the region of an antigen that is bound by an antibody.
[0112] As used herein, the term "first light chain" refers to a light chain comprising the light chain variable regions of antibodies against different targets. Specifically, the "first light chain" comprises the light chain variable region of an antibody against a first target and the light chain variable region of an antibody against a second target, which pairs with the heavy chain variable region of the antibody against the first target and the heavy chain variable region of the antibody against the second target to form a first binding site that specifically binds to the first target and a second binding site that specifically binds to the second target.
[0113] Preferably, the "first light chain" of the present invention comprises two antibody light chain variable regions directed against different targets, linked by a linker or directly. Furthermore, the "first light chain" of the present invention can be paired with a heavy chain at a different position via a flexible linker or bond. Specifically, the "first light chain" of the present invention can be paired with a heavy chain of a trispecific antibody via a non-covalent or covalent bond. Preferably, the "first light chain" of the present invention is paired with a heavy chain via a covalent bond (e.g., a disulfide bond).
[0114] The trispecific antibodies of the present invention may be used alone or may be conjugated or coupled to a detectable marker (which is a diagnostic target), a therapeutic agent, or a combination of any of these substances.
[0115] Encoding nucleic acids and expression vectors The present invention further provides a polynucleotide molecule encoding the antibody, or a fragment thereof, or a fusion protein thereof. The polynucleotide of the present invention may be in the form of DNA or RNA. The DNA form includes cDNA, genomic DNA, or synthetic DNA. The DNA may be single-stranded or double-stranded. The DNA may be the coding strand or the non-coding strand.
[0116] As used herein, the term "expression vector" refers to a vector, such as a plasmid, viral vector (e.g., adenovirus, retrovirus), phage, yeast plasmid, or other vector, that carries an expression cassette for expressing a specific target protein or other substance. Representative examples include, but are not limited to, pTT5, pSECtag series, pCGS3 series, pcDNA series vectors, and other vectors used in mammalian expression systems. An expression vector contains a fusion DNA sequence linked to appropriate transcriptional and translational regulatory sequences.
[0117] Once the relevant sequence is obtained, recombinant methods can be used to obtain large quantities of the relevant sequence, typically by cloning it into a carrier, then transforming it into cells, and then isolating the relevant sequence from the host cells grown by conventional methods.
[0118] The present invention further relates to vectors containing the appropriate DNA sequences and appropriate promoter or control sequences, which can be used to transform appropriate host cells so as to express the proteins.
[0119] In the present invention, the term "host cell" refers to a cell suitable for expressing the above-mentioned expression vector, which may be a eukaryotic cell. For example, mammalian or insect host cell culture systems can all be used to express the fusion protein of the present invention, and CHO (Chinese Hamster Ovary), HEK293, COS, BHK, and derivatives of the above cells can all be suitable for the present invention.
[0120] Pharmaceutical Compositions and Applications The present invention further provides a composition. Preferably, the composition is a pharmaceutical composition comprising the above-described antibody, or an active fragment thereof, or a fusion protein thereof, and a pharmaceutically acceptable carrier. Typically, these substances can be formulated in a nontoxic, inert, and pharmaceutically acceptable aqueous vector medium, where the pH is typically about 5 to 8, preferably about 6 to 8, depending on the nature of the formulated substance and the disease being treated. The formulated pharmaceutical composition can be administered by conventional routes, including, but not limited to, intravenous injection, intravenous infusion, subcutaneous injection, local injection, intramuscular injection, intratumoral injection, intraperitoneal injection (e.g., intraperitoneal), intracranial injection, or intracavity injection.
[0121] In the present invention, the term "pharmaceutical composition" refers to the formation of a pharmaceutical formulation composition in which the hexavalent trispecific antibody of the present invention is combined with a pharmaceutically acceptable vector to exert a more stable therapeutic effect. These formulations can ensure the conformational integrity of the amino acid core sequence of the human PD-1-binding antibody or antigen-binding fragment thereof, or hexavalent trispecific antibody disclosed in the present invention, while protecting the multiple functional groups of the protein from degradation (including, but not limited to, condensation, deamination, or oxidation).
[0122] Pharmaceutical compositions of the present invention contain a safe and effective amount (e.g., 0.001 to 99 wt%, preferably 0.01 to 90 wt%, more preferably 0.1 to 80 wt%) of the above-described hexavalent trispecific antibody of the present invention (or a conjugate thereof) and a pharmaceutically acceptable carrier or excipient. Such vectors include, but are not limited to, physiological saline, buffer solution, glucose, water, glycerol, ethanol, and combinations thereof. The drug formulation must be consistent with the method of administration. Pharmaceutical compositions of the present invention can be prepared in the form of injection by conventional methods, for example, using physiological saline or an aqueous solution containing glucose and other adjuvants. Pharmaceutical compositions such as injections and solutions must be prepared under sterile conditions. The dosage of the active ingredient is a therapeutically effective amount, for example, about 10 μg / kg body weight to about 50 mg / kg body weight daily. Furthermore, the hexavalent trispecific antibody of the present invention can also be used in combination with other therapeutic agents.
[0123] When using a pharmaceutical composition, a safe and effective amount of the hexavalent trispecific antibody or immunoconjugate thereof is administered to a mammal, wherein the safe and effective amount is typically at least about 10 μg / kg body weight and in most cases does not exceed about 50 mg / kg body weight, and preferably the dosage is about 10 μg / kg body weight to about 10 mg / kg body weight. Of course, the specific dosage must take into account factors such as the route of administration and the patient's health condition, all of which are within the skill of a skilled physician.
[0124] Immunoconjugates The present invention further provides immunoconjugates based on the trispecific antibodies of the invention.
[0125] Typically, the immunoconjugate comprises the antibody and an effector molecule, wherein the antibody is coupled to the effector molecule, preferably by chemical coupling. The effector molecule is preferably a drug having therapeutic activity. Furthermore, the effector molecule may be one or more of a toxic protein, a chemotherapeutic drug, a small molecule drug, or a radionuclide.
[0126] The trispecific antibody of the present invention can be coupled to the effector molecule via a coupling agent. Examples of the coupling agent include any one or more of a non-selective coupling agent, a carboxyl group-based coupling agent, a peptide chain-based coupling agent, and a disulfide bond-based coupling agent. The non-selective coupling agent refers to a compound that covalently bonds an effector molecule to an antibody, such as glutaraldehyde. The carboxyl group-based coupling agent can be any one or more of a cis-aconitic anhydride coupling agent (e.g., cis-aconitic anhydride) and an acylhydrazone coupling agent (the coupling site is an acylhydrazone).
[0127] Specific residues on antibodies (e.g., Cys or Lys) are used to bind various functional groups, including imaging reagents (e.g., chromophores and fluorophores), diagnostic reagents (e.g., MRI contrast agents and radioisotopes), stabilizers (e.g., glycol polymers), and therapeutic agents. Antibodies can be coupled to functional agents to form antibody-functional agent conjugates. Functional agents (e.g., drugs, detection agents, stabilizers) are coupled (covalently bound) to antibodies. Functional agents can be bound directly to antibodies or indirectly via linkers.
[0128] An antibody can be coupled to a drug to form an antibody-drug conjugate (ADC). Typically, an ADC includes a linker located between the drug and the antibody. The linker can be degradable or non-degradable. Degradable linkers are typically susceptible to degradation in the intracellular environment, e.g., at the target site where the linker is degraded, thereby releasing the drug from the antibody. Suitable degradable linkers include, for example, enzymatically degradable linkers, including peptidyl-containing linkers that can be degraded by intracellular proteases (e.g., lysosomal or endosomal proteases), or sugar linkers, such as glucuronide-containing linkers that can be degraded by glucuronidase. Peptidyl linkers can include, for example, dipeptides such as valine-citrulline, phenylalanine-lysine, or valine-alanine. Other suitable degradable linkers include, for example, pH-sensitive linkers (e.g., linkers that hydrolyze at a pH below 5.5, e.g., hydrazone linkers) and linkers that can be degraded under reducing conditions (e.g., disulfide bond linkers). Non-degradable linkers typically release the drug under conditions where the antibody is hydrolyzed by proteases.
[0129] Before being attached to an antibody, the linker has an activated reactive group that can react with a specific amino acid residue, and attachment is achieved via the activated reactive group. Sulfhydryl-specific activated reactive groups are preferred, including maleimide compounds, halogenated amides (e.g., iodo, brominated, or chlorinated), haloesters (e.g., iodo, brominated, or chlorinated), halomethyl ketones (e.g., iodo, brominated, or chlorinated), benzyl halides (e.g., iodo, brominated, or chlorinated), vinyl sulfones, pyridyl disulfides, mercury derivatives such as 3,6-bis-(mercurymethyl)dioxane with acetate, chloride, or nitrate counterions, and polymethylene dimethyl sulfide thiosulfonate. The linker can include, for example, a maleimide attached to the antibody via thiosuccinimide.
[0130] The drug can be any cytotoxic, cell growth inhibitory or immunosuppressive drug. In embodiments, a linker is attached to the antibody and the drug, and the drug has a functional group that can form a bond with the linker. For example, the drug can have an amino group, a carboxyl group, a sulfhydryl group, a hydroxyl group, or a keto group that can form a bond with the linker. When the drug is directly attached to the linker, the drug has a reactive active group before being attached to the antibody.
[0131] Useful drug classes include, for example, antitubulin agents, DNA minor groove binding agents, DNA replication inhibitors, alkylating agents, antibiotics, antifolates, antimetabolites, chemosensitizers, topoisomerase inhibitors, vinyl alkaloids, and the like. Examples of particularly useful cytotoxic agents include, for example, DNA minor groove binding agents, DNA alkylating agents, and tubulin inhibitors; typical cytotoxic agents include, for example, auristatins, camptothecins, duocarmycins, etoposides, maytansines and maytansinoids (e.g., DM1 and DM4), taxanes, benzodiazepines or benzodiazepine-containing drugs (e.g., pyrrolo[1,4]benzodiazepines (PBDs), indolinobenzodiazepines, and oxazolidinobenzodiazepines), and vinca alkaloids.
[0132] In the present invention, the drug-linker can form an ADC in one simple step. In other embodiments, bifunctional linker compounds can be used to form ADCs in a two-step or multi-step manner. For example, a cysteine residue can be reacted with a reactive moiety on the linker in a first step, and a functional group on the linker can be reacted with the drug in a subsequent step to form the ADC.
[0133] Typically, functional groups on the linker are selected to facilitate specific reactions with appropriate reactive groups on the drug moiety. As a non-limiting example, azide-based moieties can be used to specifically react with reactive alkynyl groups on the drug moiety. The drug is covalently attached to the linker via 1,3-dipolar cycloaddition between the azide and the alkynyl group. Other useful functional groups include, for example, ketones and aldehydes (suitable for reaction with hydrazides and alkoxyamines), phosphines (suitable for reaction with azides), isocyanates and isothiocyanates, and activated esters, such as N-hydroxysuccinimidyl esters (suitable for reaction with amines and alcohols). These and other conjugation strategies, such as those described in "Bioconjugation Techniques," Second Edition (Elsevier), are well known to those skilled in the art. Those skilled in the art will appreciate that for selective reaction of the drug moiety and the linker, if a complementary pair of reactive functional groups is selected, each member of the complementary pair can be used on both the linker and the drug.
[0134] The present invention provides methods for preparing antibody conjugates (ADCs), which can further include combining an antibody with a drug-linker compound under conditions sufficient to form an ADC.
[0135] In certain embodiments, the methods of the invention comprise conjugating an antibody with a bifunctional linker compound under conditions sufficient to form an antibody-linker conjugate. In these embodiments, the methods of the invention further comprise conjugating the antibody-linker conjugate to a drug moiety under conditions sufficient to attach the drug moiety to the antibody via the linker.
[0136] In some embodiments, the antibody drug conjugate ADC has the following molecular formula: TIFF0007721698000005.tif24143 where, Ab is an antibody, LU is a linker, D is a drug, The subscript p is a value selected from 1-8.
[0137] The main advantages of the present invention are:
[0138] (1) The present invention provides a hexavalent trispecific antibody having a novel structure.
[0139] (2) The trispecific antibody of the present invention does not require Fc modification, does not cause mismatch problems, and can be prepared simply.
[0140] (3) The trispecific antibodies of the present invention retain the trispecificity of anti-PD-1, HER-2, and LAG-3, while possessing biological activity and physical and chemical properties similar to or even superior to those of monoclonal antibodies.
[0141] The present invention will be further described below in conjunction with specific examples. It should be understood that these examples are used only to illustrate the present invention and do not limit the scope of the present invention. In the following examples, experimental methods without detailed conditions are generally in accordance with conventional conditions, such as those described in Sambrook et al., Molecular Cloning: A Laboratory Manual (New York: Cold Spring Harbor Laboratory Press, 1989), or conditions suggested by the manufacturer. Unless otherwise specified, percentages and parts are calculated by weight.
[0142] The protein expression and purification methods used in the examples are as follows: A target gene is constructed in the expression vector pcDNA3.4, and the constructed expression vector or a combination of expression vectors is transfected into FreeStyle® 293-F Cells (hereinafter referred to as HEK293F, purchased from Thermo Fisher Scientific) using PEI (Polyethylenimine) to express the antibody or recombinant protein. After culturing the HEK293F cells in FreeStyle 293 Expression Medium (purchased from Thermo Fisher Scientific) for 5 days, the cell supernatant is collected and the antibody is then purified by Protein A affinity chromatography.
[0143] The ELISA detection method used in the following examples is as follows: Microwell plates are coated with the corresponding recombinant proteins and blocked with 1% bovine serum albumin-containing PBST (PBST is a phosphate buffered saline solution containing 0.05% Tween-20). The antibody to be tested was diluted in a gradient and then transferred to the microwell plate coated with the recombinant protein. After incubation at room temperature for 30 minutes, the plate was washed. An appropriately diluted HRP (Horseradish Peroxidase)-labeled goat anti-human antibody (Fc specific, purchased from Sigma) was added and incubated at room temperature for 30 minutes, after which the plate was washed. 100 μl of a developing solution using TMB (3,3′,5,5′-tetramethylbenzidine) as a substrate was added to each well and incubated at room temperature for 1 to 5 minutes. 50 μl of a stop solution (2M H2SO4) was added to stop the reaction. OD450 was read using a microplate reader (SpectraMax 190). Graphing and data analysis were performed using GraphPad Prism7, and EC 50 Calculate.
[0144] The methods for detecting physical and chemical properties used in the following examples are as follows.
[0145] HPLC-SEC Antibodies are high-molecular-weight proteins with highly complex secondary and tertiary structures. Post-translational modifications, aggregation, degradation, and other changes result in heterogeneous biochemical and biophysical properties. When analyzing trispecific antibodies using separation techniques, variants, aggregates, and degradation fragments are commonly observed, and their presence may compromise safety and efficacy. Aggregates, degradation fragments, and incompletely assembled molecules tend to form during antibody production and storage. The present invention uses high-performance liquid chromatography-size exclusion chromatography (HPLC-SEC) to detect the content of the above impurities in a sample. Because the molecular weight of aggregates is larger than that of the monomer, the retention time of the corresponding peak is shorter. Because the molecular weight of degradation fragments or incompletely assembled molecules is smaller than that of the monomer, the retention time of the corresponding peak is longer. The chromatograph used in HPLC-SEC is a Dionex Ultimate 3000, and the mobile phase was prepared as follows: Take an appropriate amount of 20 mM sodium dihydrogen phosphate stock solution and adjust the pH to 6.8±0.1 with 20 mM sodium dihydrogen phosphate. Sample size: 20 μg. Chromatography column: TSK G3000SWXL, specifications: 7.8 × 300 mm, 5 μm, flow rate: 0.5 ml / min, elution time: 30 minutes, column temperature: 25°C, sample chamber temperature: 10°C, detection wavelength: 214 nm.
[0146] HPLC-IEC Many post-translational modifications (e.g., N-glycosylation, C-terminal lysine residue modification, N-terminal glutamine or glutamic acid cyclization, asparagine deamidation, aspartic acid isomerization, and amino acid residue oxidation) can directly or indirectly alter the surface charge of antibodies, potentially resulting in charge heterogeneity. Charge variants can be separated and analyzed based on their carried charge; commonly used analytical methods include cation exchange chromatography (CEX) and anion exchange chromatography (AEX). When analyzing using chromatography-based methods, acidic and basic species are defined based on their retention time relative to the main peak. Acidic species are variants that eluted earlier than the main peak in CEX or later than the main peak in AEX, while basic species are variants that eluted later than the main peak in CEX or earlier than the main peak in AEX. The peaks corresponding to acidic and basic species are called the acidic and basic peaks, respectively. Charge variants are easily generated during antibody production and storage. Here, we analyze the charge heterogeneity of samples using high-performance liquid chromatography-ion exchange chromatography (HPLC-IEC). The chromatograph used for HPLC-IEC was a Dionex Ultimate 3000. Mobile phase A was 20 mM PB pH 6.3, and mobile phase B was 20 mM PB + 200 mM NaCl pH 6.3. The mixing ratio of the two mobile phases varied over time according to a preprogrammed program. The flow rate was 1.0 ml / min. The chromatography column was a Thermo Propac™ WCX-10, with a column temperature of 30°C, a sample chamber temperature of 10°C, a sample size of 20 μg, and a detection wavelength of 214 nm.
[0147] CE-SDS This invention uses capillary electrophoresis with sodium dodecyl sulfate (CE-SDS) to analyze the content of degraded fragments or incompletely assembled molecules in samples. CE is classified into two types: non-reduced and reduced. Samples used in the former do not require the use of the reducing agent DTT to break intramolecular disulfide bonds during denaturation, while samples used in the latter require the use of the reducing agent DTT to break intramolecular disulfide bonds during denaturation. Non-reduced and reduced CE-SDS are designated NR-CE-SDS and R-CE-SDS, respectively. The Maurice CE-SDS analysis system used was purchased from ProteinSimple and equipped with a UV 214 nm detector.
[0148] Example 1. Construction of a trispecific antibody against PD-1, HER-2, and LAG-3 Example 1.1. Sequence mAb1-25-Hu (hereinafter referred to as 609-IgG4) is an anti-PD-1 humanized monoclonal antibody, the amino acid sequences of its heavy and light chains are derived from SEQ ID NO:8 and SEQ ID NO:10 of WO2018 / 137576A1 (i.e., SEQ ID NOs:5 and 6 in the present invention). The amino acid sequences of the heavy and light chain variable regions of 609-IgG4 are as set forth in SEQ ID NOs:1 and 2. The 609-IgG4 heavy chain constant region is human IgG4 (SEQ ID NO:3, hinge region contains S228P mutation), and the light chain constant region is human Kappa (SEQ ID NO:4). Herein, the genes encoding the 609-IgG4 heavy and light chains are designated 609-IgG4-HC and 609-IgG4-LC, respectively. The 609-IgG4-HC and 609-IgG4-LC genes were constructed in the pcDNA3.4 expression vector, respectively, and the two vectors were combined before expressing and purifying the antibody, which was designated as 609-IgG4.
[0149] 609—IgG4 heavy chain variable region amino acid sequence (SEQ ID NO:1): EVKLVESGGGLVQPGGSLRLSCAASGFAFSSYDMSWVRQAPGKRLEWVATISGGGRYTYYPDTVKGRFTISRDNAKNSHYLQMNSLRAEDTAVYFCASPYGGYFDVWGQGTLVTVSS 609—Amino acid sequence of IgG4 light chain variable region (SEQ ID NO:2): EIVLTQSPATLSLSPGERATLSCRASQSISNFLHWYQQKPGQAPRLLIKYASQSISGIPARFSGSGSGTDFTLTISSLEPEDFAVYFCQQSNSWPHTFGQGTKVEIK 609—Amino acid sequence of IgG4 heavy chain constant region ((SEQ ID NO:3): ASTKGPSVFPLAPCSRSTSESTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTKTYTCNVDHKPSNTKVDKRVESKYGPPCPPCPAPEFLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSQEDPEVQFNWYVDGVE VHNAKTKPREEQFNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKGLPSSIEKTISKAKGQPREPQVYTLPPSQEEMTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSRLTVDKSRWQEGNVFSCSVMHEALHNHYTQKSLSLSLGK 609—Amino acid sequence of IgG4 light chain constant region (SEQ ID NO:4): RTVAAPSVFIFPPSDEQLKSGTASVVCLLNNFYPREAKVQWKVDNALQSGNSQESVTEQDSKDSTYSLSSTLTLSKADYEKHKVYACEVTHQGLSSPVTKSFNRGEC 609-IgG4 heavy chain amino acid sequence (SEQ ID NO:5): EVKLVESGGGLVQPGGSLRLSCAASGFAFSSYDMSWVRQAPGKRLEWVATISGGGRYTYYPDTVKGRFTISRDNAKNSHYLQMNSLRAEDTAVYFCASPYGGYFDVWGQGTLVTVSSASTKGPSVFPLAPCSRSTSESTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTKTYTCNVDHKPSNTKVDKRVESKYGPPCPPCPAPEFLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSQEDPEVQFNWYVDGVEVHNAKTKPREEQFNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKGLPSSIEKTISKAKGQPREPQVYTLPPSQEEMTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSRLTVDKSRWQEGNVFSCSVMHEALHNHYTQKSLSLSLGK 609-IgG4 light chain amino acid sequence (SEQ ID NO:6): EIVLTQSPATLSLSPGERATLSCRASQSISNFLHWYQQKPGQAPRLLIKYASQSISGIPARFSGSGSGTDFTLTISSLEPEDFAVYFCQQSNSWPHTFGQGTKVEIKRTVAAPSVFIFPPSDEQLKSGTASVVCLLNNFYPREAKVQWKVDNALQSGNSQESVTEQDSKDSTYSLSSTLTLSKADYEKHKVYACEVTHQGLSSPVTKSFNRGEC The amino acid sequences of the heavy and light chain variable regions of trastuzumab (anti-HER-2 humanized monoclonal antibody) (SEQ ID NOs: 7 and 8) were obtained from published literature (Magdelaine-Beuzelin C, Kaas Q, Wehbi V, et al. Structure-function relationships of the variable domains of monoclonal antibodies approved for cancer treatment [J]. Critical reviews in oncology / hematology, 2007, 64(3):210-225). The heavy and light chain variable regions were linked to a human IgG1 heavy chain constant region (SEQ ID NO: 9) and a human Kappa light chain constant region (SEQ ID NO: 4), respectively, to obtain the full-length heavy and light chain amino acid sequences (SEQ ID NOs: 10 and 11). The full-length heavy and light chain encoding genes are designated 302-HC and 302-LC, respectively. The coding genes of 302-HC and 302-LC were constructed into pcDNA3.4 expression vectors, respectively, and the two vectors were combined to express and purify the antibody, which was named 302-IgG1.
[0150] 302—Amino acid sequence of IgG1 heavy chain variable region (SEQ ID NO:7): EVQLVESGGGLVQPGGSLRLSCAASGFNIKDTYIHWVRQAPGK G LEWVARIYPTNGYTRYADSVKGRFTISADTSKNTAYLQMNSLRAEDTAVYYCSRWGGDGFYAMDYWG Q GTLVTVSS 302—Amino acid sequence of IgG1 light chain variable region (SEQ ID NO:8): DIQMTQSPSSLSASVGDRVTITCRASQDVNTAVAWYQQKPGK A PKLLIYSASFLYSGVPSRFSGSRSGTDFTLTISSLQPEDFATYYCQQHYTTPPTFG QGTKVEIK Amino acid sequence of human IgG1 heavy chain constant region (SEQ ID NO:9): ASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDKTHTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGV EVHNAKTKPREEQYNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEKTISKAKGQPREPQVYTLPPSREEMTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK 302-IgG1 heavy chain amino acid sequence (SEQ ID NO:10): EVQLVESGGGLVQPGGSLRLSCAASGFNIKDTYIHWVRQAPGKGLEWVARIYPTNGYTRYADSVKGRFTISADTSKNTAYLQMNSLRAEDTAVYYCSRWGGDGFYAMDYWGQ GTLVTVSSASTKGPSVFPLAPSSKSTSGGTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTQTYICNVNHKPSNTKVDKKVEPKSCDK THTCPPCPAPELLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSHEDPEVKFNWYVDGVEVHNAKTKPREEQYNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKALPAPIEK TISKAKGQPREPQVYTLPSREEMTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSKLTVDKSRWQQGNVFSCSVMHEALHNHYTQKSLSLSPGK 302—IgG1 light chain amino acid sequence (SEQ ID NO:11): DIQMTQSPSSLSASVGDRVTITCRASQDVNTAVAWYQQKPGKAPKLLIYSASFLYSGVPSRFSGSRSGTDFTLTISSLQPEDFATYYCQQHYTTPPTFGQGTKVEIK RTVAAPSVFIFPPSDEQLKSGTASVVCLLNNFYPREAKVQWKVDNALQSGNSQESVTEQDSKDSTYSLSSTLTLSKADYEKHKVYACEVTHQGLSSPVTKSFNRGEC 134-Hu-IgG4-C91S (hereinafter abbreviated as 134-IgG4) is an anti-human LAG-3 humanized monoclonal antibody, and the amino acid sequences of its heavy and light chains are derived from SEQ ID NO:32 and SEQ ID NO:36 of WO2020 / 173378A1 (i.e., SEQ ID NOs:12 and 13 in the present invention). The heavy chain constant region of the 134-IgG4 monoclonal antibody is human IgG4 (the hinge region contains an S228P mutation), and the light chain constant region is human Kappa. Herein, the genes encoding the 134-IgG4 heavy and light chains are designated 134-IgG4-HC and 134-IgG4-LC, respectively. The genes for 134-IgG4-HC and 134-IgG4-LC were constructed in pcDNA3.4 expression vectors, respectively, and the two vectors were combined before expressing and purifying the antibody, which was designated 134-IgG4.
[0151] Amino acid sequence of 134 humanized heavy chain 134-IgG4-HC (SEQ ID NO:12): QVQLVQSGAEVKKPGASVKVSCKASGYTLT AYYMN WVRQAPGQSLEWIG VINPYNGDSSYNQKFKG RATLTVDKSTSTAYMELSSLRSEDTAVYYCAR DDGYYRWYFDVWGQGTLVTVSSASTKGPSVFPLAPCSRSTSESTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTKTYTCNVDHKPSNTKVDKRVESKYGPPCPPCPAPEFLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSQEDPEVQFNWYVDGVEVHNAKTKPREEQFNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKGLPSSIEKTISKAKGQPREPQVYTLPPSQEEMTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSRLTVDKSRWQEGNVFSCSVMHEALHNHYTQKSLSLSLGK (where the underlined parts are heavy chain complementarity determining regions) Amino acid sequence of 134 humanized light chain 134-IgG4-LC (SEQ ID NO:13): DIQMTQSPSSLSASVGDRVTITC RASQDIGSRLN WLQQKPGKSIKRLIY ATSSLES GVPSRFSGSRSGSDYTLTISSLQPEDFATYYC LQSGSSPPT FGQGTKVEIKRTVAAPSVFIFPPSDEQLKSGTASVVCLLNNFYPREAKVQWKVDNALQSGNSQESVTEQDSKDSTYSLSSTLTLSKADYEKHKVYACEVTHQGLSSPVTKSFNRGEC (where the underlined parts are the light chain complementarity determining regions).
[0152] Example 1.2. Construction of a trispecific antibody The heavy chain variable region of 609-IgG4 was linked to the heavy chain variable region of 302-IgG1 via an artificial linker (three GGGGS in tandem), and then linked to the heavy chain of human 134-IgG4 (the hinge region contains an S228P mutation) via an artificial linker (three GGGGS in tandem). The resulting long heavy chain gene containing the three heavy chain variable regions was designated 609VH-302VH-134-IgG4 (SEQ ID NO: 14). The light chain variable region of 609 was linked to the light chain variable region of 302-IgG1 via an artificial linker (three GGGGS in tandem). The resulting long light chain gene containing the two light chain variable regions was designated 609VL-302VL (SEQ ID NO: 15).
[0153] The coding genes for the above sequences were each constructed into a pcDNA3.4 expression vector, and the expression vectors 609VH-302VH-134-IgG4, 609VL-302VL, and 134-IgG4-LC were combined to express and purify the antibody, which was designated 609-302-134-IgG4.
[0154] 609VH-302VH-134-IgG4 amino acid sequence: EVKLVESGGGLVQPGGSLRLSCAASGFAFSSYDMSWVRQAPGKRLEWVATISGGGRYTYYPDTVKGRFTISRDNAKNSHYLQMNSLRAEDTAVYFCASPYGGYFDVWGQGTLVTVSS GGGGSGGGGSGGGGS EVQLVESGGGLVQPGGSLRLSCAASGFNIKDTYIHWVRQAPGKGLEWVARIYPTNGYTRYADSVKGRFTISADTSKNTAYLQMNSLRAEDTAVYYCSRWGGDGFYAMDYWGQGTLVTVSS GGGGSGGGGSGGGGSQVQLVQSGAEVKKPGASVKVSCKASGYTLTAYYMNWVRQAPGQSLEWIGVINPYNGDSSYNQKFKGRATLTVDKSTSTAYMELSSLRSEDTAVYYCARDDGYYRWYFDVWGQGTLVTSSASTKGPSVFPLAPCSRSTSESTAALGCLVKDYFPEPPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTKTYTCNVDHKPSNTKVDKRVESKYGPPCPPAPEFLGPSVFLFPPPKPKDTLMISRTPEVTCVVVDVSQEDPEVQFNWYVDGVEVHNAKTKPREEQFNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKGLPSSIEKTISKAKGPREPQVYTLPPSQEEMTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSRLTVDKSRWQEGNVFSCSVMHEALHNHYTQKSLSLSLGK(SEQ ID NO:14) 609VL-302VL amino acid sequence: EIVLTQSPATLSLSPGERATLSCRASQSISNFLHWYQQKPGQAPRLLIKYASQSISGIPARFSGSGSGTDFTLTISSLEPEDFAVYFCQQSNSWPHTFGQGTKVEIK GGGGSGGGGSGGGGS DIQMTQSPSSLSASVGDRVTITCRASQDVNTAVAWYQQKPGKAPKLLIYSASFLYSGVPSRFSGSRSGTDFTLTISSLQPEDFATYYCQQHYTTTPPTFGQGTKVEIK(SEQ ID NO:15) To enhance the stability of the triabody, an attempt is made here to introduce a pair of disulfide bonds between 609VH-302VH-134-IgG4 and 609VL-302VL. According to the crystal structure of trastuzumab reported in the literature (Cho, Hyun-Soo & Mason, Karen & Ramyar, Kasra & Stanley, Ann & Gabelli, Sandra & Denney, Dan & Leahy, Daniel. (2003). Structure of the extracellular region of HER2 alone and in complex with the Herceptin Fab. Nature. 421.756-60.10.1038 / nature01392.) (for related information, see https: / / www.rcsb.org / structure / 1N8Z), pairs of spatially close amino acid residues at the interface between VH and VL were selected and mutated to cysteine. These pairs of amino acid residues are the 44th amino acid of VH and the 100th amino acid of VL, and the 105th amino acid of VH and the 43rd amino acid of VL, respectively (the above amino acid residues are coded according to the Kabat rules).
[0155] Here, the 44th G in the 302 heavy chain variable region of 609VH-302VH-134-IgG4 was mutated to C, and the resulting sequence was designated 609VH-302VH(44C)-134-IgG4. At the same time, the 100th Q in the 302 light chain variable region of 609VL-302VL was mutated to C, and the resulting sequence was designated 609VL-302VL(100C). 609VH-302VH(44C)-134-IgG4 amino acid sequence: EVKLVESGGGLVQPGGSLRLSCAASGFAFSSYDMSWVRQAPGKRLEWVATISGGGRYTYYPDTVKGRFTISRDNAKNSHYLQMNSLRAEDTAVYFCASPYGGYFDVWGQGTLVTVSSGGGGSGGGGSGGGSEVQLVESGGGLVQPGGSLRLSCAASGFNIKDTYIHWVRQAPGKC (SEQ ID NO:16, where the underlined portion is the mutation site) 609VL-302VL(100C) amino acid sequence: EIVLTQSPATLSLSPGERATLSCRASQSISNFLHWYQQKPGQAPRLLIKYASQSISGIPARFSGSGSGTDFTLTISSLEPEDFAVYFCQQSNSWPHTFGQGTKVEIKGGG GSGGGGSGGGGSDIQMTQSPSSLSASVGDRVTITCRASQDVNTAVAWYQQKPGKAPKLLIYSASFLYSGVPSRFSGSRSGTDFTLTISSLQPEDFATYYCQQHYTTPPTFG C GTKVEIK (SEQ ID NO: 17, where the underlined site is the mutation site) Here, the 105th position of Q in the 302 heavy chain variable region of 609VH-302VH-134-IgG4 was mutated to C, and the resulting sequence was designated 609VH-302VH(105C)-134-IgG4. At the same time, the 43rd position of A in the 302 light chain variable region of 609VL-302VL was mutated to C, and the resulting sequence was designated 609VL-302VL(43C). 609VH-302VH(105C)-134-IgG4 amino acid sequence: EVKLVESGGGLVQPGGSLRLSCAASGFAFSSYDMSWVRQAPGKRLEWVATISGGGRYTYYPDTVKGRFTISRDNAKNSHYLQMNSLRAEDTAVYFCASPYGGYFDVWGQGTLVTVSSGGGG SGGGGSGGGGSEVQLVESGGGLVQPGGSLRLSCAASGFNIKDTYIHWVRQAPGKGLEWVARIYPTNGYTRYADSVKGRFTISADTSKNTAYLQMNSLRAEDTAVYYCSRWGGDGFYAMDYWG C GTLVTVSSGGGGSGGGGSGGGSQVQLVQSGAEVKKPGASVKVSCKASGYTLTAYYMNWVRQAPGQSLEWIGVINPYNGDSSYNQKFKGRATLTVDKSTSTAYMELSSLRSEDTAVYY CARDDGYYRWYFDVWGQGTLVTVSSASTKGPSVFPLAPCSRSTSESTAALGCLVKDYFPEPVTVSWNSGALTSGVHTFPAVLQSSGLYSLSSVVTVPSSSLGTKTYTCNVDHKPSNTKV DKRVESKYGPPCPPCPAPEFLGGPSVFLFPPKPKDTLMISRTPEVTCVVVDVSQEDPEVQFNWYVDGVEVHNAKTKPREEQFNSTYRVVSVLTVLHQDWLNGKEYKCKVSNKGLPSSIEKTISKAKGQPREPQVYTLPPSQEEMTKNQVSLTCLVKGFYPSDIAVEWESNGQPENNYKTTPPVLDSDGSFFLYSRLTVDKSRWQEGNVFSCSVMHEALHNHYTQKSLSLSLGK (SEQ ID NO: 18, where the underlined site is the mutation site) 609VL-302VL(43C) amino acid: EIVLTQSPATLSLSPGERATLSCRASQSISNFLHWYQQKPGQAPRLLIKYASQSISGIPARFSGSGSGTDFTLTISSLEPEDFAVYFCQQSNSWPHTFGQGTKVEIKGGGGSGGGGSGGGGSDIQMTQSPSSLSASVGDRVTITCRASQDVNTAVAWYQQKPGK C PKLLIYSASFLYSGVPSRFSGSRSGTDFTLTISSLQPEDFATYYCQQHYTTPPTFGQGTKVEIK (SEQ ID NO: 19, where the underlined site is the mutation site) The coding genes for the above sequences were each constructed into a pcDNA3.4 expression vector, and the corresponding vectors were combined (609VH-302VH-134-IgG4, the combination of 609VL-302VL and 134-IgG4-LC, the combination of 609VH-302VH(44C)-134-IgG4, the combination of 609VL-302VL(100C) and 134-IgG4-LC, the combination of 609VH-302VH(105C)-134-IgG4, the combination of 609VL-302VL(43C) and 134-IgG4-LC), and the antibodies were expressed and purified. The resulting antibodies are designated 609-302-134-IgG4, 609-302-(44CC)-134-IgG4, and 609-302-(105CC)-134-IgG4, respectively.
[0156] The names of the antibodies in the present invention are as shown in Table 2.
[0157] TIFF0007721698000006.tif150157 Example 1.3. ELISA measurement of relative affinity Here, HER2 extracellular segment recombinant protein with a polyhistidine tag (designated HER2-His, purchased from Sino Biological Inc.), PD-1 extracellular segment recombinant protein (designated PD1-His, purchased from Sino Biological Inc.), and LAG-3 extracellular segment recombinant protein (designated LAG3-His, purchased from ACROBiosystems) were used to coat microwell plates at coating concentrations of 20 ng / well, 20 ng / well, and 10 ng / well, respectively.
[0158] As shown in Figure 2A-C, 609-302-134-IgG4, 609-302-(44CC)-134-IgG4, and 609-302-(105CC)-134-IgG4 could all effectively bind to PD-1, HER-2, and LAG-3, indicating that they are trispecific antibodies and could effectively bind to EC 50 are summarized in Table 3.
[0159] Example 1.4. Characterization of physical and chemical properties HPLC-SEC Figure 3A shows the HPLC-SEC spectrum of monoclonal antibody 609-IgG4, with the main peak accounting for 99.87%.
[0160] Figure 3B shows the HPLC-SEC spectrum of 609-302-134-IgG4, with the main peak accounting for 98.24%.
[0161] Figure 3C shows the HPLC-SEC spectrum of 609-302-(44CC)-134-IgG4, with the main peak accounting for 98.4%.
[0162] Figure 3D shows the HPLC-SEC spectrum of 609-302-(105CC)-134-IgG4, with the main peak accounting for 98.06%.
[0163] The above results indicate that after one-step Protein A affinity chromatography purification, the SEC purity of the trispecific antibody can reach above 98%, and its size heterogeneity is close to that of a monoclonal antibody.
[0164] HPLC-IEC Figure 4A shows the HPLC-IEC spectrum of monoclonal antibody 609-IgG4, with the main peak accounting for 71.45%.
[0165] Figure 4B shows the HPLC-IEC spectrum of 609-302-(44CC)-134-IgG4, with the main peak accounting for 71.62%.
[0166] Figure 4C shows the HPLC-IEC spectrum of 609-302-(105CC)-134-IgG4, with the main peak accounting for 66.12%.
[0167] The above results indicate that after one-step Protein A affinity chromatography purification, the IEC main peak of the trispecific antibody can reach more than 66%, and the charge heterogeneity is comparable to that of a monoclonal antibody.
[0168] CE-SDS Figures 5A and 5B show the NR-CE-SDS and R-CE-SDS spectra of monoclonal antibody 609-IgG4, respectively. The main peak, Peak 2.672, in the NR-CE-SDS spectrum accounts for 98.9% of the total. The two main peaks, Peak 1.499 (corresponding to the light chain) and Peak 1.888 (corresponding to the heavy chain) in the R-CE-SDS spectrum account for 31.3% and 67.7%, respectively, for a total of 99.0%.
[0169] Figures 5C and 5D show the NR-CE-SDS and R-CE-SDS spectra of 609-302-134-IgG4, respectively. The two main peaks in the NR-CE-SDS spectrum, Peak 1.525 and Peak 2.893, accounted for 18.6% and 80.8%, respectively. In the 609-302-134-IgG4 molecule, 609VL-302VL does not form a covalent disulfide bond with 609VH-302VH-134-IgG4, and therefore the polypeptide corresponding to Peak 1.525 is thought to be 609VL-302VL. The two main peaks in the R-CE-SDS spectrum, Peak 1.518 (corresponding to the light chain) and Peak 2.158 (corresponding to the heavy chain), accounted for 34.8% and 62.5%, respectively, for a total of 97.3%.
[0170] Figures 5E and 5F show the NR-CE-SDS and R-CE-SDS spectra of 609-302-(44CC)-134-IgG4, respectively. The main peak, Peak 3.018, in the NR-CE-SDS spectrum accounts for 96.4% of the total spectrum, and the two main peaks, Peak 1.515 (corresponding to the light chain) and Peak 2.159 (corresponding to the heavy chain) in the R-CE-SDS spectrum account for 34.9% and 62.0%, respectively, for a total of 96.9%. Figures 5G and 5H show the NR-CE-SDS and R-CE-SDS spectra of 609-302-(105CC)-134-IgG4, respectively. The main peak, Peak 3.020, in the NR-CE-SDS spectrum accounts for 91.8% of the total spectrum, and the two main peaks, Peak 1.508 (corresponding to the light chain) and Peak 2.147 (corresponding to the heavy chain) in the R-CE-SDS spectrum account for 36.6% and 56.9%, respectively, for a total of 93.5%.
[0171] The above results indicate that after one-step Protein A affinity chromatography purification, the purity of the trispecific antibody 609-302-(44CC)-134-IgG4 NR-CE-SDS and R-CE-SDS can all reach 96% or higher, which is closest to that of the monoclonal antibody 609-IgG4.
[0172] Example 2. Determining the functional activity of trispecific antibodies of the invention in stimulating an immune response Freshly isolated human peripheral blood mononuclear cells (PBMCs, purchased from Allcells, product number PB005-C) were washed and resuspended in RPMI 1640 complete medium supplemented with 10% fetal bovine serum, 1% MEM non-essential amino acid solution, 1% sodium pyruvate, 1% HEPES, 1% 2-mercaptoethanol, 1% penicillin-streptomycin, and 1% GlutaMAX (the above medium and additives were purchased from Thermo Fisher Scientific). A fixed amount of the superantigen Staphylococcal enterotoxin B (SEB) was added. SEB was prepared in-house, and its sequence was derived from Uniprot (Entry: P01552). It was expressed in E. coli and purified by Ni-NTA affinity chromatography. The PBMC cell suspension was inoculated into a round-bottom 96-well cell culture plate, with 150 μl of suspension and 200,000 cells per well. 50 μl of gradient-diluted relevant antibodies were added to the 96-well plate, and the plate was placed in a cell incubator at 37°C for 4 days. An appropriate amount of cell culture supernatant was removed from the 96-well plate. IL-2 in the supernatant was detected using a double-antibody sandwich ELISA (the relevant detection paired antibodies were purchased from BD Biosciences). OD450 was measured using a microplate reader (SpectraMax190), and the data was analyzed and graphed using GraphPad Prism7. EC 50 Calculate.
[0173] As shown in Figure 6 and Table 4, 609-IgG4 has a smaller EC than 134-IgG4. 50and high Top (high platform), indicating that 609-IgG4 has higher functional activity than 134-IgG4. 609-302-(44CC)-134-IgG4 and 609-302-(105CC)-134-IgG4 have similar EC 50 and Top, indicating that the functional activities of the two trispecific antibodies are equivalent. Compared to 609-IgG4, 609-302-(44CC)-134-IgG4 and 609-302-(105CC)-134-IgG4 exhibited higher Top, indicating that the ability of the two trispecific antibodies to stimulate PBMCs to secrete IL-2 is significantly stronger than that of the monoclonal antibodies 609-IgG4 and 134-IgG4 when the antibody concentration is approximately greater than 1 nM (i.e., when the Log value is greater than 0).
[0174] All documents mentioned in this application are incorporated by reference in this application as if each document were incorporated by reference individually. Furthermore, after reading the above teachings of the present invention, those skilled in the art will be able to make various changes or modifications to the present invention, and these equivalents will also fall within the scope defined by the appended claims of this application.
Claims
1. 1. A hexavalent trispecific antibody, The hexavalent trispecific antibody is a dimer formed from two monomers, wherein each monomer comprises a heavy chain, a first light chain, and a second light chain; The heavy chain comprises, from N-terminus to C-terminus, an antibody heavy chain variable region element Z1 directed to a first target, an antibody heavy chain variable region element Z2 directed to a second target, an antibody heavy chain variable region element Z3 directed to a third target, and an antibody heavy chain constant region Z4, which are tandemly linked; the first light chain and the second light chain each cooperate with the heavy chain such that the hexavalent trispecific antibody specifically binds to a first target, a second target, and a third target; The hexavalent trispecific antibody, wherein the first target, the second target, and the third target are PD-1, HER-2, and LAG-3.
2. a heavy chain, a first light chain, and a second light chain, wherein each said heavy chain has the structure of Formula I: Formula (I): Z1-Z2-Z3-Z4 Z1 is a heavy chain variable region element for the first target; Z2 is a heavy chain variable region element for a second target; Z3 is a heavy chain variable region element for a third target; Z4 is an antibody heavy chain constant region CH1, CH2 and CH3; Each "-" is independently a bond or a linker; wherein the first and second light chains, in conjunction with a heavy chain, each cause the hexavalent trispecific antibody to specifically bind to a first target, a second target, and a third target, and the first light chain has the structure of Formula II: Formula (II): Z5-Z6 wherein Z5 is a light chain variable region element directed against a first target and Z6 is a light chain variable region element directed against a second target; The second light chain has the structure of Formula III: Formula (III): Z7-Z8 wherein Z7 is a light chain variable region element for a third target and Z8 is a light chain constant region element. The hexavalent trispecific antibody of claim 1.
3. The linker is a peptide linker having a length of 1 to 35 amino acids. The hexavalent trispecific antibody according to claim 1 or 2.
4. A hexavalent trispecific antibody described in any one of claims 1 to 3, wherein the linker is a peptide linker having a length of 6 to 30 amino acids.
5. The hexavalent trispecific antibody comprises two monomers, each monomer comprising a heavy chain and a first light chain, and a second light chain, wherein each monomer has the structure of Formula IV: In the formula: VH A -L1-VH B -L2-VH C -CH1-CH2-CH3 is the heavy chain, VL A -L3-VL B is the first light chain, VL C -CL is the second light chain, VH A is the heavy chain variable region of an anti-PD-1 antibody, VH B is the heavy chain variable region of an anti-HER-2 antibody, VH C is the heavy chain variable region of an anti-LAG-3 antibody, CH1, CH2, and CH3 are antibody heavy chain constant regions CH1, CH2, and CH3, respectively; VL A is the light chain variable region of an anti-PD-1 antibody, VL B is the light chain variable region of an anti-HER-2 antibody, VL C is the light chain variable region of an anti-LAG-3 antibody, CL is the antibody light chain constant region, L1, L2, and L3 each independently represent a linker; Each "-" is independently a bond; "~" represents a disulfide bond or a covalent bond; wherein the hexavalent trispecific antibody is characterized in that it simultaneously binds to PD-1, HER-2, and LAG-3. The hexavalent trispecific antibody according to any one of claims 1 to 4.
6. The linker is a flexible peptide linker, wherein the flexible peptide linker comprises 6 to 30 amino acids. The hexavalent trispecific antibody according to any one of claims 1 to 5.
7. the hexavalent trispecific antibody comprises two heavy chains, two first light chains, and two second light chains; wherein the amino acid sequences of the heavy chain, the first light chain and the second light chain in said hexavalent trispecific antibody are as set forth in SEQ ID No: 14, 15 and 13, respectively; or the amino acid sequences of the heavy chain, the first light chain and the second light chain in said hexavalent trispecific antibody are as set forth in SEQ ID No: 16, 17 and 13, respectively; or The amino acid sequences of the heavy chain, the first light chain, and the second light chain of the hexavalent trispecific antibody are as set forth in SEQ ID Nos. 18, 19, and 13, respectively. The hexavalent trispecific antibody according to any one of claims 1 to 6.
8. An isolated nucleic acid molecule, characterized in that it encodes the hexavalent trispecific antibody according to any one of claims 1 to 7.
9. An expression vector comprising the nucleic acid molecule of claim 8.
10. A host cell comprising the expression vector of claim 9.
11. A method for preparing the hexavalent trispecific antibody according to any one of claims 1 to 7, comprising: (a) culturing the host cell of claim 10 under expression conditions, thereby expressing the hexavalent trispecific antibody; (b) isolating and purifying the hexavalent trispecific antibody described in (a).
12. A pharmaceutical composition comprising the hexavalent trispecific antibody according to any one of claims 1 to 7 and a pharmaceutically acceptable vector.
13. A method of using the hexavalent trispecific antibody of any one of claims 1 to 7 or the pharmaceutical composition of claim 12 in the preparation of a medicament for treating cancer.
14. The cancer is selected from the group consisting of melanoma, kidney cancer, prostate cancer, pancreatic cancer, breast cancer, colon cancer, lung cancer, esophageal cancer, head and neck squamous cell carcinoma, liver cancer, ovarian cancer, cervical cancer, thyroid cancer, glioblastoma, glioma and other neoplastic malignancies. The method of claim 13.
15. (a) a hexavalent trispecific antibody according to any one of claims 1 to 7, and (b) a coupling moiety selected from the group consisting of a detectable marker, a drug, a toxin, a cytokine, a radionuclide, or an enzyme.
Citation Information
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