polypeptide containing a single variable immunoglobulin domain that targets IL-6 and TNF-α

Bispecific polypeptides targeting IL-6 and TNF-α address the limitations of current RA treatments by enhancing therapeutic efficacy and convenience, offering improved symptom modulation and reduced treatment frequency.

JP7842101B2Active Publication Date: 2026-04-07ABLYNX NV +1
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-17
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Current treatments for rheumatoid arthritis, such as anti-TNF-α biological agents, fail to achieve disease remission in a significant proportion of patients, and co-administration of separate biologics complicates treatment regimens and increases costs.

Method used

Development of bispecific or multispecific polypeptides, such as immunoglobulin monovariable domain (ISVD) constructs, that simultaneously target IL-6 and TNF-α, offering improved therapeutic efficacy and convenience by reducing the need for multiple injections.

Benefits of technology

The dual-targeting polypeptides effectively modulate rheumatoid arthritis symptoms, providing efficient treatment options with a longer half-life and reduced reactivity to existing antibodies, thus improving patient compliance and reducing treatment frequency.

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Abstract

The present disclosure provides a novel type of drug for treating subjects suffering from inflammatory and / or autoimmune diseases, particularly rheumatoid arthritis. Specifically, the present disclosure provides a polypeptide comprising at least three immunoglobulin single variable domains (ISVDs), wherein at least one ISVD binds to TNF-α and at least two ISVDs bind to IL-6. The present disclosure also provides nucleic acids, vectors, and compositions.
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Description

[Technical Field]

[0001] 1 field This disclosure relates to polypeptides that target interleukin-6 (IL-6) and TNF-α. This disclosure also relates to nucleic acid molecules encoding such polypeptides and vectors containing such nucleic acids, as well as compositions containing such polypeptides, nucleic acids, or vectors. This disclosure further relates to these products for use in methods of treating subjects suffering from inflammatory diseases and / or autoimmune diseases. Furthermore, this disclosure relates to methods for producing these products. [Background technology]

[0002] 2 Technical background Rheumatoid arthritis is a severe autoimmune disease affecting approximately 25 million people worldwide (Non-Patent Literature 1). The main symptoms of rheumatoid arthritis are joint pain and joint swelling. This is due to arthritis, which involves inflammation of the synovial fluid spaces of the joints. This inflamed synovial fluid space in rheumatoid arthritis is characterized by the infiltration of immune cells and activation of stromal cells (Non-Patent Literature 2; Non-Patent Literature 3). Specialized cells called fibroblast-like synovial cells (FLS) are considered key players in this process (Non-Patent Literature 4). FLS work together with macrophage-like synovial cells to form the inner lining of the synovial membrane. In rheumatoid arthritis, FLS proliferation and accumulation of immune cells trigger inflammation, leading to thickening of the membrane known as synovial hyperplasia, one of the main symptoms of rheumatoid arthritis. As an important mediator of arthritis in rheumatoid arthritis, FLS are an attractive target cell type for rheumatoid arthritis treatment.

[0003] IL-6 is a pleomorphic cytokine secreted by numerous cell types, including T cells, B cells, monocytes, fibroblasts, and synovial cells.

[0004] The interaction between IL-6 (Non-Patent Document 5; Patent Document 1), a protein originally identified as a B cell differentiation factor, and IL-6R (Non-Patent Document 6; Patent Document 2) leads to the formation of an IL-6 / IL-6R complex. This complex binds to gp130 (Non-Patent Document 7; Patent Document 3), a receptor protein that transmits various physiological effects of IL-6. IL-6 is currently known to be involved in the regulation of immune responses, hematopoiesis, acute phase reactions, bone metabolism, angiogenesis, and inflammation. Deregulation of IL-6 production is involved in the pathogenesis of several autoimmune and chronic inflammatory proliferative disease processes (Non-Patent Document 8). Polypeptides that specifically bind to IL-6 (Non-Patent Document 9; Patent Document 4), IL-6R (Patent Document 5), or gp130 (Non-Patent Document 10; Patent Document 6) have been found to exhibit efficient inhibitory effects on IL-6 function.

[0005] Prior art describes antibodies and antibody fragments against human IL-6, human IL-6R, and human gp130 proteins for the prevention and treatment of IL-6-related disorders. Examples include tocilizumab (see Non-Patent Documents 11; 12; 13; and 14), BE8 (see Non-Patent Documents 15; 16; 17; and 18), and CNTO-328 of Centocor (see Non-Patent Documents 19; 20; and 21). Another active ingredient known in the art for the prevention and treatment of IL-6-related disorders is an Fc fusion of soluble gp130 (see Non-Patent Documents 22; 23; 24; and 25). Amino acid sequences and nanobodies for IL-6R, as well as polypeptides containing them, are described in Patent Document 7.

[0006] Tumor necrosis factor alpha (TNF-α) is a homomonomer cytokine primarily produced by monocytes and macrophages, but is also known to be secreted by CD4+ and CD8+ peripheral blood T lymphocytes. TNF-α can exist as a soluble or transmembrane protein. The main role of TNF-α is in regulating immune cells. TNF-α acts as an endogenous pyrogen, and dysregulation of its production is involved in various human diseases, including inflammatory bowel disease and other inflammatory diseases such as rheumatoid arthritis (RA). Treatments for rheumatoid arthritis currently approved by the FDA include anti-TNF-α biological agents (e.g., Simponi® [golimumab], Enbrel® [etanercept], Remicade® [infliximab], and Humira® [adalimumab]). However, these anti-TNF-α treatments result in complete disease remission in only a small number of patients, with the majority remaining unresponsive. Therefore, to date, no biological agent has demonstrated sufficient efficacy for disease remission in a significant proportion of rheumatoid arthritis patients, and the lack or loss of response remains a problem.

[0007] Targeting multiple disease factors can be achieved, for example, through the co-administration or combinatorial use of two separate biological agents, such as antibodies, that bind to different therapeutic targets. However, the co-administration or combinatorial use of separate biological agents can present problems from both practical and commercial perspectives. For example, two injections of separate products result in a more inconvenient and painful treatment regimen for the patient, which can negatively impact compliance. Regarding single injections of two separate products, providing a formulation that allows for acceptable viscosity and suitable stability at the required concentrations of both products can be difficult or impossible. In addition, co-administration and co-combinations can increase overall costs because they require the production of two separate drugs.

[0008] One strategy to address such limitations associated with the co-administration or combinatorial use of separate biologics, such as antibodies, has been suggested: bispecific antibodies capable of binding to two different antigens.

[0009] Bispecific antibody constructs have been proposed in several forms. For example, a bispecific antibody construct may include a chemical conjugation of two antibodies or fragments thereof (Non-Patent Literature 26; Non-Patent Literature 27).

[0010] However, a disadvantage of this bispecific antibody configuration is its high viscosity at high concentrations. This makes subcutaneous administration difficult, for example, and has implications for polypeptide stability and production efficiency, as each binding unit requires the interaction of two variable domains for specific and high-affinity binding. This bispecific antibody configuration also potentially leads to CMC (chemical, manufacturing, and quality control) problems related to mispairing of the light or heavy chain.

[0011] To date, there are no multispecific, such as bispecific, antibody constructs targeting TNF-α and IL-6 that have reached clinical trials. [Prior art documents] [Patent Documents]

[0012] [Patent Document 1] EP 0257406 [Patent Document 2] EP 0325474 [Patent Document 3] EP 0411946 [Patent Document 4] EP 0312996 [Patent Document 5] EP 0409607 [Patent Document 6] EP 0572118 [Patent Document 7] WO 08 / 020079 [Non-licensed literature]

[0013] [Non-licensed Document 1] GBD 2015, Lancet. October 8, 2016; 388(10053): 1545-1602. [Non-licensed Document 2] Klareskog, Catrina, Lancet. February 21, 2009; 373(9664): 659-72. [Non-licensed Document 3] Smolen, Aletaha, Nat Rev Dis Primers. February 8, 2018; 4:18001 pages. [Non-licensed Document 4] Bartok Firestein, Immunol Rev. January 2010; 233(1): 233~55 pages [Non-licensed Document 5] Hirano, 1985, Proc. Natl. Acad. Sci. USA, 82:5490~4 pages [Non-licensed Document 6] Yamasaki, 1988, Science, 241: 825-8 pages [Non-licensed Document 7] Tagaら, 1989, Cell, 58: pages 573~81 [Non-licensed Document 8] Ishihara Hirano, 2002, Biochim. Biophys. Acta, 1592: 281~96 pages [Non-licensed Document 9] Kleinら, 1991, Blood, 78:1198~204 pages [Non-licensed Document 10] Saito, 1993, J. Immunol. Methods, 163: 217~223 pages [Non-licensed Document 11] Wooら, 2005, Arthritis Res. Ther. 7:1281~8 pages [Non-licensed Document 12] Nishimotoら, 2005, Blood 106:2627~32 pages [Non-licensed Document 13] Ito, 2004, Gastroenterology, 126:989~96 pages [Non-licensed Document 14] Choy, 2002, Arthritis Rheum. 46:3143~50 pages [Non-licensed Document 15] Batailleら, 1995, Blood 86: 685~91 pages [Non-licensed Document 16] Emilieら, 1994, Blood 84:2472~9 pages [Non-licensed Document 17] Beck, 1994, N. Engl. J. Med. 330:602~5 pages [Non-licensed Document 18] Wendling, 1993, J. Rheumatol. 20:259~62 pages [Non-licensed Document 19] Journal of Clinical Oncology, 2004, 22 / 14S: 2560 pages [Non-licensed Document 20] Journal of Clinical Oncology, 2004, 22 / 14S: 2608 pages [Non-licensed Document 21] Int. J. Cancer, 2004, 111: 592-5 pages. [Non-licensed Document 22] Beckerら2004, Immunity, 21:491~501 pages [Non-licensed Document 23] Doganciら, 2005, J. Clin. Invest. 115:313~25 pages [Non-licensed Document 24] Nowell, 2003, J. Immunol. 171:3202~9 pages [Non-licensed Document 25] Atreya, 2000, Nat. Med. 6:583~8 pages [Non-licensed Document 26] Brennan, M et al., Science, 1985. 229(4708): pp. 81-83. [Non-Patent Document 27] Glennie, MJ et al., J Immunol, 1987. 139(7): pp. 2367-2375. [Overview of the Initiative] [Problems that the invention aims to solve]

[0014] Currently, rheumatoid arthritis patients still do not respond adequately to available standard treatments, leaving an unmet medical need for improved medications to treat RA. [Means for solving the problem]

[0015] The inventors have developed novel and improved drugs for treating inflammatory diseases and / or autoimmune diseases, particularly rheumatoid arthritis (RA). These drugs target two or more disease factors, including IL-6 and TNF-α. These factors mediate biological mechanisms associated with inflammatory diseases, and especially RA.

[0016] The inventors were surprised to find that dual targeting of IL-6 and TNF-α with a single drug has the potential to provide effective treatment in rheumatoid arthritis patients for whom monospecific drug therapy for the same indication may not be sufficiently effective.

[0017] The inventors found that bispecific or multispecific polypeptides (e.g., immunoglobulin monovariable domain (ISVD) constructs) that simultaneously and specifically target IL-6 and TNF-α improve the efficiency of modulating rheumatoid arthritis symptoms compared to monospecific anti-TNF-α or monospecific anti-IL-6 polypeptides. Such polypeptides (e.g., ISVD constructs) could be efficiently produced (e.g., in a microbial host) and conveniently administered. Furthermore, such polypeptides (e.g., ISVD constructs) could be shown to have limited reactivity to existing antibodies in the target to be treated (i.e., antibodies present in the target before the initial treatment with the antibody construct). In some embodiments, such polypeptides (e.g., ISVD constructs) exhibit a sufficiently long half-life in the target to be treated, thus limiting the number of consecutive treatments and allowing for sufficient timing intervals.

[0018] The polypeptides of this disclosure (e.g., immunoglobulin monovariate domain (ISVD) constructs) comprise or consist of at least three immunoglobulin monovariate domains (ISVDs), wherein at least one ISVD specifically binds to TNF-α and at least two ISVDs specifically bind to IL-6. According to some embodiments, at least one ISVD that binds to TNF-α specifically binds to human TNF-α (hTNF-α), and at least two ISVDs that bind to IL-6 specifically bind to human IL-6 (hIL-6).

[0019] According to some preferred embodiments, the polypeptides of the Disclosure further comprise one or more other groups, residues, moieties or binding units, optionally linked via one or more peptidolytic linkers, wherein the one or more other groups, residues, moieties or binding units provide a polypeptide having an increased half-life compared to the corresponding polypeptide without the one or more other groups, residues, moieties or binding units. For example, the binding unit may be an ISVD that binds to a serum protein, such as a human serum protein, such as human serum albumin.

[0020] Also provided are nucleic acid molecules capable of expressing the polypeptides of this disclosure, nucleic acids or vectors comprising nucleic acid molecules, and compositions comprising polypeptides, nucleic acids or vectors. In some embodiments, the compositions are pharmaceutical compositions.

[0021] Also provided are (non-human) hosts or host cells containing nucleic acids or vectors encoding polypeptides according to this disclosure.

[0022] Furthermore, a method for producing polypeptides according to this disclosure, comprising at least: a. The process of expressing nucleic acids in a suitable host cell or (non-human) host organism, or in another suitable (e.g., cell-free) expression system; optionally followed by: b. Steps for isolating and / or purifying polypeptides according to the present disclosure. The method including the above is provided.

[0023] Furthermore, this disclosure provides polypeptides, compositions comprising polypeptides, or compositions comprising nucleic acids or vectors comprising nucleotide sequences encoding polypeptides, for use as pharmaceuticals. In some embodiments, the polypeptides or compositions are for use in the treatment of inflammatory diseases and / or autoimmune diseases such as rheumatoid arthritis (RA).

[0024] In addition, there are methods for treating inflammatory diseases such as rheumatoid arthritis, comprising administering a pharmaceutically active amount of a polypeptide or composition according to the present disclosure to a subject in need thereof. In some embodiments, the method further comprises administering one or more additional therapeutic agents.

[0025] Furthermore, the use of polypeptides or compositions of this disclosure is provided in the preparation of pharmaceuticals (such as pharmaceutical compositions) for treating inflammatory diseases and / or autoimmune diseases such as rheumatoid arthritis (RA).

[0026] In particular, this disclosure provides the following embodiments: Embodiment 1. A polypeptide, a composition comprising the polypeptide, or a nucleic acid comprising a nucleotide sequence encoding the polypeptide, for use as a pharmaceutical, wherein the polypeptide comprises or comprises at least three immunoglobulin single variable domains (ISVDs), each of which comprises three complementarity-determining regions (CDR1 to CDR3, respectively) optionally linked via one or more peptide linkers; a) The first ISVD is, i. CDR1 having the amino acid sequence of SEQ ID NO: 6 or having a difference of 2 or 1 amino acid from SEQ ID NO: 6; ii. CDR2 having the amino acid sequence of SEQ ID NO: 10 or having a difference of 2 or 1 amino acid from SEQ ID NO: 10; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 14 or having a difference of 2 or 1 amino acid from SEQ ID NO: 14; b) The second ISVD is, iv. CDR1 having the amino acid sequence of SEQ ID NO: 8 or having a difference of 2 or 1 amino acid from SEQ ID NO: 8; v. CDRs having the amino acid sequence of SEQ ID NO: 12 or having a difference of 2 or 1 amino acid from SEQ ID NO: 12; and vi. A CDR3 having the amino acid sequence of SEQ ID NO: 16 or having a difference of 2 or 1 amino acid from SEQ ID NO: 16; c) The third ISVD is, vii. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having a difference of 2 or 1 amino acid from SEQ ID NO: 9; viii. CDR2 having the amino acid sequence of SEQ ID NO: 13 or having a difference of 2 or 1 amino acid from SEQ ID NO: 13; and ix. A CDR3 having the amino acid sequence of SEQ ID NO: 17 or having a difference of 2 or 1 amino acid from SEQ ID NO: 17, A polypeptide or composition comprising the first, second, and third ISVDs, optionally in an order starting from the N-terminus.

[0027] Embodiment 2. The composition for use according to Embodiment 1, which is a pharmaceutical composition further comprising at least one pharmaceutically acceptable carrier, diluent or excipient and / or adjuvant, and optionally one or more further pharmaceutically active polypeptides and / or compounds.

[0028] Embodiment 3.a) The first ISVD comprises CDR1 having the amino acid sequence of SEQ ID NO: 6, CDR2 having the amino acid sequence of SEQ ID NO: 10, and CDR3 having the amino acid sequence of SEQ ID NO: 14; b) The second ISVD comprises CDR1 having the amino acid sequence of SEQ ID NO: 8, CDR2 having the amino acid sequence of SEQ ID NO: 12, and CDR3 having the amino acid sequence of SEQ ID NO: 16; c) The third ISVD includes CDR1 having the amino acid sequence of SEQ ID NO: 9, CDR2 having the amino acid sequence of SEQ ID NO: 13, and CDR3 having the amino acid sequence of SEQ ID NO: 17. A polypeptide or composition for use as described in Embodiment 1 or 2.

[0029] Embodiment 4.a) The amino acid sequence of the first ISVD has more than 90% sequence identity with SEQ ID NO: 2; b) The amino acid sequence of the second ISVD has more than 90% sequence identity with SEQ ID NO: 4; c) A polypeptide or composition for use according to any of Embodiments 1 to 3, wherein the amino acid sequence of the third ISVD has more than 90% sequence identity with SEQ ID NO: 5.

[0030] Embodiment 5.a) The first ISVD has the amino acid sequence of SEQ ID NO: 2; b) The second ISVD has the amino acid sequence of SEQ ID NO: 4; c) The third ISVD is a polypeptide or composition for use according to any of Embodiments 1 to 4, having the amino acid sequence of SEQ ID NO: 5.

[0031] Embodiment 6. A polypeptide or composition for use according to any one of Embodiments 1 to 5, wherein the polypeptide further comprises one or more other groups, residues, parts or binding units optionally linked via one or more peptide linkers, the one or more other groups, residues, parts or binding units providing a polypeptide having an increased half-life compared to a corresponding polypeptide without the one or more other groups, residues, parts or binding units.

[0032] Embodiment 7. The polypeptide or composition for use according to Embodiment 6, wherein the one or more other groups, residues, moieties or binding units that provide a polypeptide having an increased half-life are selected from the group consisting of polyethylene glycol molecules, serum proteins or fragments thereof, binding units that can bind to serum proteins, Fc moieties, and small proteins or peptides that can bind to serum proteins.

[0033] Embodiment 8. A polypeptide or composition for use according to any one of Embodiments 6-7, wherein the one or more other groups, residues, parts or binding units that provide a polypeptide having an increased half-life are selected from the group consisting of binding units that can bind to serum albumin (such as human serum albumin) or serum immunoglobulin (such as IgG).

[0034] Embodiment 9. The polypeptide or composition for use according to Embodiment 8, wherein the binding unit providing the polypeptide having an increased half-life is an ISVD capable of binding to human serum albumin.

[0035] Embodiment 10. ISVD that binds to human serum albumin is i. CDR1 having the amino acid sequence of SEQ ID NO: 7 or having a difference of 2 or 1 amino acid from SEQ ID NO: 7; ii. CDR2 having the amino acid sequence of SEQ ID NO: 11 or having a difference of 2 or 1 amino acid from SEQ ID NO: 11; and iii. CDR3 having the amino acid sequence of SEQ ID NO: 15 or having a difference of 2 or 1 amino acid from SEQ ID NO: 15 A polypeptide or composition for use as described in Embodiment 9, comprising:

[0036] Embodiment 11. A polypeptide or composition for use according to any one of Embodiments 9 to 10, wherein the ISVD that binds to human serum albumin comprises CDR1 having the amino acid sequence of SEQ ID NO: 7, CDR2 having the amino acid sequence of SEQ ID NO: 11, and CDR3 having the amino acid sequence of SEQ ID NO: 15.

[0037] Embodiment 12. A polypeptide or composition for use according to any one of Embodiments 9 to 11, wherein the amino acid sequence of ISVD that binds to human serum albumin has more than 90% sequence identity with SEQ ID NO: 3.

[0038] Embodiment 13. The ISVD that binds to human serum albumin is a polypeptide or composition for use according to any one of Embodiments 9 to 12, having the amino acid sequence of SEQ ID NO: 3.

[0039] Embodiment 14. A polypeptide or composition for use according to any of Embodiments 1 to 13, wherein the polypeptide has an extension of 1 to 5 amino acid residues at its C-terminus, preferably an extension of a single amino acid residue, the amino acid residue being independently selected from naturally occurring amino acids, preferably independently selected from glycine or alanine, leucine, isoleucine and valine, more preferably alanine and glycine, most preferably independently selected from alanine.

[0040] Embodiment 15. A polypeptide or composition for use according to any one of Embodiments 1 to 14, wherein the amino acid sequence of the polypeptide comprises or consists of an amino acid sequence having more than 90% sequence identity with SEQ ID NO: 1.

[0041] Embodiment 16. A polypeptide or composition for use according to any of Embodiments 1 to 15, wherein the polypeptide comprises or consists of the amino acid sequence of SEQ ID NO: 1.

[0042] Embodiment 17. A polypeptide or composition for use according to any of Embodiments 1 to 16, for use in the treatment of inflammatory diseases and / or autoimmune diseases such as rheumatoid arthritis.

[0043] Embodiment 18. A polypeptide comprising or comprising at least three immunoglobulin single variable domains (ISVDs), each of which comprises three complementarity-determining regions (CDR1 to CDR3, respectively) optionally linked via one or more peptide linkers; a) The first ISVD is coupled to IL-6, i. CDR1 having the amino acid sequence of SEQ ID NO: 6 or having a difference of 2 or 1 amino acid from SEQ ID NO: 6; ii. CDR2 having the amino acid sequence of SEQ ID NO: 10 or having a difference of 2 or 1 amino acid from SEQ ID NO: 10; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 14 or having a difference of 2 or 1 amino acid from SEQ ID NO: 14; b) The second ISVD is coupled to IL-6, iv. CDR1 having the amino acid sequence of SEQ ID NO: 8 or having a difference of 2 or 1 amino acid from SEQ ID NO: 8; v. CDR2 having the amino acid sequence of SEQ ID NO: 12 or having a difference of 2 or 1 amino acid from SEQ ID NO: 12; and vi. A CDR3 having the amino acid sequence of SEQ ID NO: 16 or having a difference of 2 or 1 amino acid from SEQ ID NO: 16; c) The third ISVD binds to TNF-α, vii. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having a difference of 2 or 1 amino acid from SEQ ID NO: 9; viii. CDR2 having the amino acid sequence of SEQ ID NO: 13 or having a difference of 2 or 1 amino acid from SEQ ID NO: 13; and ix. A CDR3 having the amino acid sequence of SEQ ID NO: 17 or having a difference of 2 or 1 amino acid from SEQ ID NO: 17, The ISVD is a polypeptide, which may be included in an order starting from the N-terminus.

[0044] Embodiment 19.a) The first ISVD comprises CDR1 having the amino acid sequence of SEQ ID NO: 6, CDR2 having the amino acid sequence of SEQ ID NO: 10, and CDR3 having the amino acid sequence of SEQ ID NO: 14; b) The second ISVD comprises CDR1 having the amino acid sequence of SEQ ID NO: 8, CDR2 having the amino acid sequence of SEQ ID NO: 12, and CDR3 having the amino acid sequence of SEQ ID NO: 16; c) The third ISVD includes CDR1 having the amino acid sequence of SEQ ID NO: 9, CDR2 having the amino acid sequence of SEQ ID NO: 13, and CDR3 having the amino acid sequence of SEQ ID NO: 17. The polypeptide described in Embodiment 18.

[0045] Embodiment 20.a) The amino acid sequence of the first ISVD has more than 90% sequence identity with SEQ ID NO: 2; b) The amino acid sequence of the second ISVD has more than 90% sequence identity with SEQ ID NO: 4; c) The polypeptide according to either Embodiment 18 or 19, wherein the amino acid sequence of the third ISVD has more than 90% sequence identity with SEQ ID NO: 5.

[0046] Embodiment 21.a) The first ISVD has the amino acid sequence of SEQ ID NO: 2; b) The second ISVD has the amino acid sequence of SEQ ID NO: 4; c) The third ISVD is a polypeptide according to any one of embodiments 18 to 20, having the amino acid sequence of SEQ ID NO: 5.

[0047] Embodiment 22. The polypeptide according to any one of Embodiments 18 to 21, wherein the polypeptide further comprises one or more other groups, residues, parts or binding units optionally linked via one or more peptide linkers, the one or more other groups, residues, parts or binding units providing a polypeptide having an increased half-life compared to a corresponding polypeptide without the one or more other groups, residues, parts or binding units.

[0048] Embodiment 23. The polypeptide according to Embodiment 22, wherein the one or more other groups, residues, moieties or binding units that provide a polypeptide having an increased half-life are selected from the group consisting of polyethylene glycol molecules, serum proteins or fragments thereof, binding units that can bind to serum proteins, Fc moieties, and small proteins or peptides that can bind to serum proteins.

[0049] Embodiment 24. The polypeptide according to any one of Embodiments 22 to 23, wherein the one or more other groups, residues, parts or binding units that provide a polypeptide having an increased half-life are selected from the group consisting of binding units that can bind to serum albumin (such as human serum albumin) or serum immunoglobulin (such as IgG).

[0050] Embodiment 25. The polypeptide according to Embodiment 24, wherein the binding unit providing the polypeptide having an increased half-life is an ISVD capable of binding to human serum albumin.

[0051] Embodiment 26. ISVD that binds to human serum albumin is i. CDR1 having the amino acid sequence of SEQ ID NO: 7 or having a difference of 2 or 1 amino acid from SEQ ID NO: 7; ii. CDR2 having the amino acid sequence of SEQ ID NO: 11 or having a difference of 2 or 1 amino acid from SEQ ID NO: 11; and iii. CDR3 having the amino acid sequence of SEQ ID NO: 15 or having a difference of 2 or 1 amino acid from SEQ ID NO: 15 The polypeptide according to Embodiment 25, including the following:

[0052] Embodiment 27. The polypeptide according to any one of Embodiments 25 to 26, wherein the ISVD that binds to human serum albumin comprises CDR1 having the amino acid sequence of SEQ ID NO: 7, CDR2 having the amino acid sequence of SEQ ID NO: 11, and CDR3 having the amino acid sequence of SEQ ID NO: 15.

[0053] Embodiment 28. The polypeptide according to any one of Embodiments 25 to 27, wherein the amino acid sequence of ISVD that binds to human serum albumin has more than 90% sequence identity with SEQ ID NO: 3.

[0054] Embodiment 29. The ISVD that binds to human serum albumin is a polypeptide according to any one of Embodiments 25 to 28, having the amino acid sequence of SEQ ID NO: 3.

[0055] Embodiment 30. The polypeptide according to any one of Embodiments 18 to 29, wherein the polypeptide has an extension of 1 to 5 amino acid residues at its C-terminus, preferably an extension of a single amino acid residue, the amino acid residue being independently selected from naturally occurring amino acids, preferably independently selected from glycine or alanine, leucine, isoleucine and valine, more preferably alanine and glycine, and most preferably alanine.

[0056] Embodiment 31. The polypeptide according to any one of Embodiments 18 to 30, wherein the amino acid sequence of the polypeptide includes or consists of an amino acid sequence having more than 90% sequence identity with SEQ ID NO: 1.

[0057] Embodiment 32. A polypeptide according to any one of Embodiments 18 to 31, comprising or consisting of the amino acid sequence of SEQ ID NO: 1.

[0058] Embodiment 33. A nucleic acid comprising a nucleotide sequence encoding a polypeptide according to Embodiments 18-32.

[0059] Embodiment 34. A host or host cell containing nucleic acid according to Embodiment 33.

[0060] Embodiment 35. A method for producing polypeptides according to Embodiments 18-32, wherein at least: a) Expressing the nucleic acid according to Embodiment 33 in a suitable host cell or host organism, or in another suitable expression system; optionally followed by: b) Steps to isolate and / or purify polypeptides according to embodiments 18-32. The method, including the method described above.

[0061] Embodiment 36. A composition comprising a polypeptide according to at least one of Embodiments 18 to 32, or a nucleic acid according to Embodiment 33.

[0062] Embodiment 37. The composition according to Embodiment 36, further comprising at least one pharmaceutically acceptable carrier, diluent or excipient and / or adjuvant, and optionally one or more further pharmaceutically active polypeptides and / or compounds.

[0063] Embodiment 38. A method for treating an inflammatory disease and / or autoimmune disease such as rheumatoid arthritis, comprising administering a pharmaceutically active amount of a polypeptide according to any of Embodiments 18 to 32, or a composition according to any of Embodiments 36 to 37, to a subject in need thereof.

[0064] Embodiment 39. The method according to Embodiment 37, wherein the inflammatory disease and / or autoimmune disease is rheumatoid arthritis.

[0065] Embodiment 40. Use of a polypeptide according to any of Embodiments 18-32 or a composition according to any of Embodiments 36-37 in the preparation of a pharmaceutical composition for treating inflammatory diseases and / or autoimmune diseases such as rheumatoid arthritis.

[0066] Embodiment 41. Use of the polypeptide or composition described in Embodiment 40, wherein the inflammatory disease and / or autoimmune disease is rheumatoid arthritis.

[0067] Embodiment 42. A polypeptide comprising or comprising at least three immunoglobulin single variable domains (ISVDs), each of which comprises three complementarity-determining regions (CDR1 to CDR3, respectively) optionally linked via one or more peptide linkers; a) The first ISVD is, i. CDR1 having the amino acid sequence of SEQ ID NO: 6 or having a difference of 2 or 1 amino acid from SEQ ID NO: 6; ii. CDR2 having the amino acid sequence of SEQ ID NO: 10 or having a difference of 2 or 1 amino acid from SEQ ID NO: 10; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 14 or having a difference of 2 or 1 amino acid from SEQ ID NO: 14; b) The second ISVD is, iv. CDR1 having the amino acid sequence of SEQ ID NO: 8 or having a difference of 2 or 1 amino acid from SEQ ID NO: 8; v. CDR2 having the amino acid sequence of SEQ ID NO: 12 or having a difference of 2 or 1 amino acid from SEQ ID NO: 12; and vi. A CDR3 having the amino acid sequence of SEQ ID NO: 16 or having a difference of 2 or 1 amino acid from SEQ ID NO: 16; c) The third ISVD is, vii. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having a difference of 2 or 1 amino acid from SEQ ID NO: 9; viii. CDR2 having the amino acid sequence of SEQ ID NO: 13 or having a difference of 2 or 1 amino acid from SEQ ID NO: 13; and ix. A CDR3 having the amino acid sequence of SEQ ID NO: 17 or having a difference of 2 or 1 amino acid from SEQ ID NO: 17, ISVDs are polypeptides, sometimes listed in an order starting from the N-terminus.

[0068] Embodiment 43. A polypeptide, a composition comprising the polypeptide, or a nucleic acid comprising a nucleotide sequence encoding the polypeptide, for use as a pharmaceutical, wherein the polypeptide comprises or comprises at least three immunoglobulin single variable domains (ISVDs), each of which comprises three complementarity-determining regions (CDR1 to CDR3, respectively) optionally linked via one or more peptide linkers; a) The first ISVD is, i. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having a difference of 2 or 1 amino acid from SEQ ID NO: 9; ii. CDR2 having the amino acid sequence of SEQ ID NO: 13 or having a difference of 2 or 1 amino acid from SEQ ID NO: 13; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 17 or having a difference of 2 or 1 amino acid from SEQ ID NO: 17; b) The second ISVD is, iv. CDR1 having the amino acid sequence of SEQ ID NO: 150 or having a difference of 2 or 1 amino acid from SEQ ID NO: 150; v. CDR2 having the amino acid sequence of SEQ ID NO: 151 or having a difference of 2 or 1 amino acid from SEQ ID NO: 151; and vi. A CDR3 having the amino acid sequence of SEQ ID NO: 152 or having a difference of 2 or 1 amino acid from SEQ ID NO: 152; c) The third ISVD is, vii. CDR1 having the amino acid sequence of SEQ ID NO: 153 or having a difference of 2 or 1 amino acid from SEQ ID NO: 153; viii. CDR2 having the amino acid sequence of SEQ ID NO: 154 or having a difference of 2 or 1 amino acid from SEQ ID NO: 154; and ix. A CDR3 having the amino acid sequence of SEQ ID NO: 155 or having a difference of 2 or 1 amino acid from SEQ ID NO: 155, A polypeptide or composition comprising the first, second, and third ISVDs, optionally in an order starting from the N-terminus.

[0069] Embodiment 44.a) The first ISVD comprises CDR1 having the amino acid sequence of SEQ ID NO: 9, CDR2 having the amino acid sequence of SEQ ID NO: 13, and CDR3 having the amino acid sequence of SEQ ID NO: 17; b) The second ISVD comprises CDR1 having the amino acid sequence of SEQ ID NO: 150, CDR2 having the amino acid sequence of SEQ ID NO: 151, and CDR3 having the amino acid sequence of SEQ ID NO: 152; c) The third ISVD includes CDR1 having the amino acid sequence of SEQ ID NO: 153, CDR2 having the amino acid sequence of SEQ ID NO: 154, and CDR3 having the amino acid sequence of SEQ ID NO: 155. A polypeptide or composition for use as described in Embodiment 43.

[0070] Embodiment 45.a) The amino acid sequence of the first ISVD has more than 90% sequence identity with SEQ ID NO: 5; b) The amino acid sequence of the second ISVD has more than 90% sequence identity with SEQ ID NO: 148; c) The amino acid sequence of the third ISVD has more than 90% sequence identity with sequence number 149. A polypeptide or composition for use as described in either Embodiment 43 or 44.

[0071] Embodiment 46.a) The first ISVD has the amino acid sequence of SEQ ID NO: 5; b) The second ISVD has the amino acid sequence of SEQ ID NO: 148; c) The third ISVD has the amino acid sequence of SEQ ID NO: 149, A polypeptide or composition for use as described in any of Embodiments 43 to 45.

[0072] Embodiment 47. A polypeptide, a composition comprising the polypeptide, or a nucleic acid comprising a nucleotide sequence encoding the polypeptide, for use as a pharmaceutical, wherein the polypeptide comprises or comprises at least three immunoglobulin single variable domains (ISVDs), each of which comprises three complementarity-determining regions (CDR1 to CDR3, respectively) optionally linked via one or more peptide linkers; a) The first ISVD is, i. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having a difference of 2 or 1 amino acid from SEQ ID NO: 9; ii. CDR2 having the amino acid sequence of SEQ ID NO: 13 or having a difference of 2 or 1 amino acid from SEQ ID NO: 13; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 17 or having a difference of 2 or 1 amino acid from SEQ ID NO: 17; b) The second ISVD is, i. CDR1 having the amino acid sequence of SEQ ID NO: 160 or having a difference of 2 or 1 amino acid from SEQ ID NO: 160; ii. CDR2 having the amino acid sequence of SEQ ID NO: 161 or having a difference of 2 or 1 amino acid from SEQ ID NO: 161; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 162 or having a difference of 2 or 1 amino acid from SEQ ID NO: 162; c) The third ISVD is, i. CDR1 having the amino acid sequence of SEQ ID NO: 150 or having a difference of 2 or 1 amino acid from SEQ ID NO: 150; ii. CDR2 having the amino acid sequence of SEQ ID NO: 151 or having a difference of 2 or 1 amino acid from SEQ ID NO: 151; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 152 or having a difference of 2 or 1 amino acid from SEQ ID NO: 152, A polypeptide or composition comprising the first, second, and third ISVDs, optionally in an order starting from the N-terminus.

[0073] Embodiment 48.a) The first ISVD comprises CDR1 having the amino acid sequence of SEQ ID NO: 9, CDR2 having the amino acid sequence of SEQ ID NO: 13, and CDR3 having the amino acid sequence of SEQ ID NO: 17; b) The second ISVD comprises CDR1 having the amino acid sequence of SEQ ID NO: 160, CDR2 having the amino acid sequence of SEQ ID NO: 161, and CDR3 having the amino acid sequence of SEQ ID NO: 162; c) The third ISVD includes CDR1 having the amino acid sequence of SEQ ID NO: 150, CDR2 having the amino acid sequence of SEQ ID NO: 151, and CDR3 having the amino acid sequence of SEQ ID NO: 152. A polypeptide or composition for use as described in Embodiment 47.

[0074] Embodiment 49.a) The amino acid sequence of the first ISVD has more than 90% sequence identity with SEQ ID NO: 5; b) The amino acid sequence of the second ISVD has more than 90% sequence identity with SEQ ID NO: 159; c) The amino acid sequence of the third ISVD has more than 90% sequence identity with sequence number 148. A polypeptide or composition for use as described in either Embodiment 47 or 48.

[0075] Embodiment 50.a) The first ISVD has the amino acid sequence of SEQ ID NO: 5; b) The second ISVD has the amino acid sequence of SEQ ID NO: 159; c) The third ISVD has the amino acid sequence of SEQ ID NO: 148, A polypeptide or composition for use as described in any of Embodiments 47 to 49.

[0076] Embodiment 51. A polypeptide or composition for use according to any of Embodiments 43 to 50, wherein the polypeptide further comprises one or more other groups, residues, parts or binding units optionally linked via one or more peptide linkers, the one or more other groups, residues, parts or binding units providing a polypeptide having an increased half-life compared to a corresponding polypeptide without the one or more other groups, residues, parts or binding units.

[0077] Embodiment 52. The polypeptide or composition for use according to Embodiment 51, wherein the one or more other groups, residues, parts or binding units that provide a polypeptide having an increased half-life are selected from the group consisting of binding units that can bind to serum albumin (such as human serum albumin) or serum immunoglobulin (such as IgG).

[0078] Embodiment 53. The polypeptide or composition for use according to Embodiment 52, wherein the binding unit providing the polypeptide having an increased half-life is an ISVD capable of binding to human serum albumin.

[0079] Embodiment 54. ISVD that binds to human serum albumin is i. CDR1 having the amino acid sequence of SEQ ID NO: 7 or having a difference of 2 or 1 amino acid from SEQ ID NO: 7; ii. CDR2 having the amino acid sequence of SEQ ID NO: 11 or having a difference of 2 or 1 amino acid from SEQ ID NO: 11; and iii. A polypeptide or composition for use according to Embodiment 53, comprising CDR3 having the amino acid sequence of SEQ ID NO: 15 or having a difference of two or one amino acid from SEQ ID NO: 15.

[0080] Embodiment 55. A polypeptide or composition for use according to either Embodiment 53 or 54, wherein the ISVD that binds to human serum albumin comprises CDR1 having the amino acid sequence of SEQ ID NO: 7, CDR2 having the amino acid sequence of SEQ ID NO: 11, and CDR3 having the amino acid sequence of SEQ ID NO: 15.

[0081] Embodiment 56. A polypeptide or composition for use according to any one of Embodiments 53 to 55, wherein the amino acid sequence of the ISVD that binds to human serum albumin has more than 90% sequence identity with SEQ ID NO: 3.

[0082] Embodiment 57. The ISVD that binds to human serum albumin is a polypeptide or composition for use according to any one of Embodiments 53 to 56, having the amino acid sequence of SEQ ID NO: 3.

[0083] Embodiment 58. A polypeptide or composition for use according to any of Embodiments 43 to 57, wherein the polypeptide has an extension of 1 to 5 amino acid residues at its C-terminus, preferably an extension of a single amino acid residue, the amino acid residue being independently selected from naturally occurring amino acids, preferably independently selected from glycine or alanine, leucine, isoleucine and valine, more preferably alanine and glycine, most preferably independently selected from alanine.

[0084] Embodiment 59. A polypeptide or composition for use according to any of Embodiments 43 to 46, wherein the amino acid sequence of the polypeptide comprises or consists of an amino acid sequence having more than 90% sequence identity with SEQ ID NO: 147.

[0085] Embodiment 60. A polypeptide or composition for use according to any of Embodiments 43 to 46, wherein the polypeptide comprises or consists of the amino acid sequence of SEQ ID NO: 147.

[0086] Embodiment 61. A polypeptide or composition for use according to any of Embodiments 47 to 50, wherein the amino acid sequence of the polypeptide comprises or consists of an amino acid sequence having more than 90% sequence identity with SEQ ID NO: 158.

[0087] Embodiment 62. A polypeptide or composition for use according to any of Embodiments 47 to 50, wherein the polypeptide comprises or consists of the amino acid sequence of SEQ ID NO: 158.

[0088] Embodiment 63. A polypeptide or composition for use according to any of Embodiments 43 to 62, for use in the treatment of inflammatory diseases and / or autoimmune diseases such as rheumatoid arthritis.

[0089] Embodiment 64. A nucleic acid comprising a nucleotide sequence encoding a polypeptide described in any of Embodiments 43 to 63.

[0090] Embodiment 65. A host or host cell containing the nucleic acid described in Embodiment 64.

[0091] Embodiment 66. A method for producing a polypeptide according to any of Embodiments 43 to 63, wherein at least: a) Expressing the nucleic acid described in Embodiment 64 in a suitable host cell or host organism, or in another suitable expression system; optionally thereafter: b) A step of isolating and / or purifying the polypeptide described in any of embodiments 43 to 63. The method, including the method described above.

[0092] Embodiment 67. A composition comprising a polypeptide according to at least one of Embodiments 43 to 63, or a nucleic acid according to Embodiment 64.

[0093] Embodiment 68. The composition according to Embodiment 67, further comprising at least one pharmaceutically acceptable carrier, diluent or excipient and / or adjuvant, and optionally one or more further pharmaceutically active polypeptides and / or compounds.

[0094] Embodiment 69. A method for treating an inflammatory disease and / or autoimmune disease such as rheumatoid arthritis, comprising administering a pharmaceutically active amount of a polypeptide according to any of Embodiments 43 to 63, or a composition according to any of Embodiments 67 or 68, to a subject in need thereof.

[0095] Embodiment 70. The method according to Embodiment 69, wherein the inflammatory disease and / or autoimmune disease is rheumatoid arthritis.

[0096] Embodiment 71. Use of a polypeptide according to any of Embodiments 43 to 63 or a composition according to any of Embodiments 67 or 68 in the preparation of a pharmaceutical composition for treating inflammatory diseases and / or autoimmune diseases such as rheumatoid arthritis.

[0097] Embodiment 72. Use of the polypeptide or composition described in Embodiment 71, wherein the inflammatory disease and / or autoimmune disease is rheumatoid arthritis. [Brief explanation of the drawing]

[0098] [Figure 1] This sensorgram shows the simultaneous binding of recombinant soluble hTNF-α and hIL-6 to F027201062 captured by HSA. [Figure 2] This is a representative graph (experiment n3 in Table 11) showing the inhibition of soluble human and cynomolgus monkey TNF-α by ISVD F027201062 in the Glo Response (trademark) HEK293_NFκB-NLucP reporter assay, with the reference anti-TNF-α mAb, IRR00096, being the negative control ISVD. [Figure 3]This is a representative graph (experiment n3 in Table 12) showing the inhibition of soluble human and cynomolgus monkey IL-6 by ISVD F027201062 in an IL-6-induced TF-1 proliferation assay. Reference anti-IL-6 mAb1 and mAb2, and IRR00096 are negative control ISVDs. LCI = lower confidence interval, UCI = upper confidence interval. [Figure 4] This is a box plot showing the binding of existing antibodies present in 96 human serum samples to the anti-IL-6 / anti-TNF-α bispecific ISVD F027201062 and the control ISVD F027301186. [Figure 5] This figure shows progressive arthritis in a collagen-induced arthritis model. Thirteen male DBA / 1 mice were immunosensitized twice with 100 μg adjuvant type II collagen on days 0 and 21. Mice were treated with the compound indicated by intraperitoneal injection twice weekly, starting on day 22. Treatment was discontinued after day 56. The mice were scored for clinical signs and symptoms of arthritis. Mean ± SEM is shown. Statistical analysis was performed using two-way ANOVA comparing treatment versus negative controls on selected days throughout the disease course. [Figure 6] This figure shows the area under the curve over time for arthritis scores in a collagen-induced arthritis model. AUC was calculated separately for the treatment period (days 21-56), the off-treatment period (days 57-91), and the entire study period. Individual values ​​and mean ± SEM are shown. Statistical analysis is a one-way ANOVA comparing treatment versus negative controls. [Figure 7] This figure shows plasma anti-type II collagen antibodies at 91 days in a collagen-induced arthritis model. Type II collagen-specific titers were determined by ELISA on type II collagen-coated plates. Individual values ​​and mean ± SEM are shown. Statistical analysis was performed using a one-way ANOVA comparing treated versus negative controls. [Figure 8]This figure shows the histological scores of the hindlimb metatarsal joints at 91 days in a collagen-induced arthritis model. The hindlimbs were prepared for histological examination, and sections were stained with hematoxylin, eosin, and safranin O for visualization of cartilage proteoglycans. Blinded evaluation of the scores was performed separately by two individuals. Mean ± SEM is shown. Statistical analysis was performed using a two-way ANOVA comparing treatment versus negative control for all four aspects of histological evaluation. [Figure 9-1] This figure shows RNA sequencing from the limbs of collagen-induced arthritis mice treated with anti-IL-6, anti-TNF, and a combination of both. A) Venn diagram of significant disregulated transcripts (FC>1.2) at day 91 compared to isotype-treated control mice. B) Major superior and inferior regulatory pathways in the CIA (left) and after treatment with anti-TNF and anti-IL-6 combination (right). [Figure 9-2] Continuation of Figure 9-1. [Figure 10] This figure shows a quantitative systems pharmacology model for rheumatoid arthritis (RA). The model simulates the rheumatoid arthritis disease score DAS28-CRP after treatment with anti-TNF-alpha comparators and anti-IL-6 comparators, and shows improved clinical efficacy (based on DAS28-CRP) even with low doses of F027201062. [Figure 11] This figure shows a co-culture of fibroblast-like synovial cells (FLS) derived from rheumatoid arthritis (RA) patients and T cells derived from a healthy donor. Co-culture, as well as stimulation with IL-17A, sIL-6R, and anti-CD3, induces levels of TNF-α and IL-6 similar to those published in human joints derived from RA patients. [Figure 12]This figure shows additive inhibition of MMP1 secretion in RA-FLS / T cell co-culture with F027201062. The IgG1 isotype control serves as a negative control for the comparator antibody. The ISVD isotype control is a negative control for multispecific ISVD. Comparator antibodies and their combinations are used as positive controls. Only donors responsive to anti-TNF-α treatment are selected. The combinations reflect total dose combinations (e.g., 200 nM anti-human TNF-α + 200 nM anti-human IL-6). F027201062 and F027200926 are anti-TNF-α / IL-6 ISVD constructs. Mean ± SEM, 8 different T cell donors, and 3 technical replicates are shown. [Figure 13] This figure shows additive inhibition of G-CSF secretion in RA-FLS / T cell co-culture with F027201062. The IgG1 isotype control serves as a negative control for the comparator antibody. The ISVD isotype control is a negative control for multispecific ISVD. Comparator antibodies and their combinations are used as positive controls. The combinations reflect the total dose combination (e.g., 200 nM anti-human TNF-α + 200 nM anti-human IL-6). F027201062 and F027200926 are anti-TNF-α / IL-6 ISVD constructs. Only donors responsive to anti-TNF-α treatment were selected. Mean ± SEM, 8 different T cell donors, and 3 technical replicates are shown. [Figure 14] This figure shows additive inhibition of CXCL13 in human adenoid culture with F027201062. The IgG1 isotype control serves as a negative control for the comparator antibody. The ISVD isotype control is a negative control for F027201062 (anti-TNF-α / IL-6 ISVD construct). Comparator antibodies and their combinations are used as positive controls. The combinations reflect the total dose combination (e.g., 200 nM anti-human TNF-α + 200 nM anti-human IL-6). Mean ± SEM, 4–7 different donors, and 2 technical replicates are shown. [Figure 15]This figure shows additive inhibition of CXCL13 in human adenoid culture with 200 nM F027201062. The IgG1 isotype control serves as a negative control for the comparator antibody. The ISVD isotype control is a negative control for F027201062 (anti-TNF-α / IL-6 ISVD construct). Comparator antibodies and their combinations are used as positive controls. The combinations reflect the total dose combination (200 nM anti-human TNF-α + 200 nM anti-human IL-6). Mean ± SEM, 7 different donors, and 2 technical replicates are shown. Statistics are one-way ANOVA and Tukey's multiple comparison test. **p<0.01. **p<0.001. [Figure 16] This figure shows the TNF-α-dependent efficacy of the anti-TNF-α / IL-6 ISVD construct in human whole blood assays. The IC50 of MCP-1 inhibition in SEB-stimulated whole blood is shown. The IgG1 isotype control serves as a negative control for the comparator antibody. The ISVD isotype control is a negative control for the anti-TNF-α / IL-6 ISVD construct. The anti-hTNF-α comparator antibody is used as a positive control. The following anti-TNF-α / IL-6 ISVDs were evaluated: F027200926, F027201029, F027201060, F027201061, F027201062. Mean ± SEM, seven different donors are shown. [Figure 17] This figure shows the TNF-α-dependent efficacy of the TNF-α / IL-6 ISVD construct in a human whole blood assay. Dose-dependent inhibition of CCL4 in SEB-stimulated whole blood is shown. The IgG1 isotype control serves as a negative control for the comparator antibody. The ISVD isotype control is a negative control for the anti-TNF-α / IL-6 ISVD construct. The anti-hTNF-α comparator antibody is used as a positive control. F027201062 is a multispecific anti-TNF-α / IL-6 ISVD. Mean ± SEM, seven different donors are shown. [Figure 18]This figure shows the TNF-dependent efficacy of the anti-TNF-α / IL-6 ISVD construct in human whole blood assays. The IC50 for CCL4 inhibition in SEB-stimulated whole blood is shown. The IgG1 isotype control serves as a negative control for the comparator antibody. The ISVD isotype control is a negative control for the anti-TNF-α / IL-6 ISVD construct. The anti-hTNF-α comparator antibody is used as a positive control. F027201062 is a multispecific anti-TNF-α / IL-6 ISVD. Mean ± SEM, seven different donors are shown. [Figure 19] This figure shows the IL-6-dependent efficacy of the anti-TNF-α / IL-6 ISVD construct in human RA-FLS (fibroblast-like synovial cells derived from rheumatoid arthritis patients). The percentage of inhibition of VEGF-A secretion, normalized to the isotype control, is shown. The IgG1 isotype control serves as a negative control for the comparator antibody. The ISVD isotype control is a negative control for the anti-TNF-α / IL-6 ISVD construct. Dose-dependent inhibition by anti-hIL-6 comparator antibody (positive control) and the following anti-TNF-α / IL-6 ISVDs: F027200926, F027201029, F027201060, F027201061, F027201062 is shown. Mean ± SEM tested at two different passages, from three different rheumatoid arthritis donors is shown. [Figure 20] This figure shows the IL-6-dependent efficacy of the anti-TNF-α / IL-6 ISVD construct in human RA-FLS (fibroblast-like synovial cells derived from rheumatoid arthritis patients). The IgG1 isotype control serves as a negative control for the comparator antibody. The ISVD isotype control is a negative control for the anti-TNF-α / IL-6 ISVD construct. The anti-hIL-6 comparator antibody is used as a positive control. The IC50 of VEGF-A for the anti-hIL-6 comparator antibody (positive control) and the following anti-TNF-α / IL-6 ISVDs: F027200926, F027201029, F027201060, F027201061, F027201062 is shown. Mean ± SEM tested at two different passages, from three different rheumatoid arthritis donors is shown. [Figure 21] This figure shows the efficacy of F027201062 in a Tg197 hTNF-α-induced arthritis model. Arthritis scores are shown over time. Eight Tg197 mice (four males and four females) were treated twice weekly for five weeks with intraperitoneal injections of the compound shown. Arthritis scores were monitored weekly. Mean ± SEM is shown. Statistical analysis was performed using a two-way ANOVA comparing treatment versus negative control weekly. [Figure 22] This figure shows the efficacy of F027201062 in a Tg197 hTNF-α-induced arthritis model. The area under the curve of arthritis score over time is shown. Individual values ​​and mean ± SEM are shown. Statistical analysis is a one-way ANOVA comparing treatment versus negative control. [Figure 23] This figure shows the efficacy of F027201062 in a Tg197 hTNF-α induced arthritis model in terms of histological examination scores of ankle joints (n=2 per animal). At the end of the study, both hind limbs were prepared for histological examination, and ankle joint sections were stained with hematoxylin and eosin. Section slides were interpreted and scored in a blinded manner. Individual values ​​and mean ± SEM are shown. Statistical analysis was performed using a one-way ANOVA comparing treatment versus negative controls. [Figure 24] This figure shows IL-6-induced haptoglobin secretion. Eight female BALB / C mice were injected with the indicated compound. Eight hours later, the mice were intraperitoneally injected with the indicated 25 μg / kg recombinant human IL-6. Sixteen hours later, blood was collected from the mice, and the plasma was analyzed for haptoglobin using a fluorescence bead assay. Individual values ​​and mean ± SEM are shown. Statistical analysis was performed using one-way ANOVA comparing treatment versus negative control. [Figure 25]This figure shows splenomegaly in hIL-6 transgenic mice. N=6–7 male and female hemizygous C.B6-Tg(H2-L-IL6)1Kish / J mice, 57–71 days old, were treated twice weekly for two weeks with the indicated compound via intraperitoneal injection. At sacrifice, the spleen was removed and its weight recorded. Wild-type littermates served as controls. Individual values ​​and mean ± SEM are shown. Statistical analysis was performed using one-way ANOVA comparing treated versus negative controls. [Figure 26] This figure shows hypergammaglobulinemia in hIL-6 transgenic mice. N=6–7 male and female hemizygous C.B6-Tg(H2-L-IL6)1Kish / J mice, 57–71 days old, were treated twice weekly for two weeks with the indicated compound via intraperitoneal injection. Blood was collected from the mice at sacrifice, and both IgG1 and IgG2a isotype immunoglobulins were measured by chemiluminescent bead assay. Plasma from wt littermates served as a control. Individual values ​​and mean ± SEM are shown. Statistical analysis was performed as a one-way ANOVA comparing treatment versus negative control. [Figure 27] This figure shows the single-dose pharmacokinetics of F027201062 in non-human primates. The serum concentration profiles of F027201062 after single-dose administration in non-human primates (n=3 male naive cynomolgus monkeys (Macaca fascicularis) per group) at the indicated concentrations and routes of administration. The red dashed line indicates the confirmed presence of ADA in all three groups. [Figure 28] This is a diagram showing the amino acid sequence (SEQ ID NO: 1) of F027201062. [Modes for carrying out the invention]

[0099] This disclosure provides a novel type of drug for treating inflammatory diseases and / or autoimmune diseases such as rheumatoid arthritis (RA).

[0100] The inventors have found that polypeptides that simultaneously target TNF-α and IL-6 result in improved efficiency in modulating rheumatoid arthritis symptoms in vitro and / or in vivo compared to monospecific anti-TNF-α or anti-IL-6 polypeptides. These polypeptides can be efficiently produced (e.g., in a microbial host). Furthermore, such polypeptides have been shown to exhibit limited reactivity to existing antibodies in the target to be treated (i.e., antibodies present in the target before the initial treatment with the antibody construct). In some embodiments, such polypeptides can exhibit a sufficiently long half-life in the target to be treated, allowing for convenient administration and thus conveniently spaced intervals between these treatments.

[0101] The polypeptide is at least bispecific, but may be, for example, triplicate, quadruplicate, or quintic. Furthermore, the polypeptide is at least trivalent, but may be, for example, tetravalent, pentavalent, or hexavalent, and is preferably tetravalent.

[0102] The terms "bispecificity," "triple specificity," "quadrispecificity," or "quintuple specificity" all fall under the category of "multispecificity," referring to binding to two, three, four, or five different target molecules, respectively. The terms "divalent," "trivalent," "quadrivalent," "pentavalent," or "hexavalent" all fall under the category of "polyvalent," indicating the presence of two, three, four, or five binding units (such as ISVDs), respectively. For example, a polypeptide may be trispecific and quadrivalent, for example, containing or consisting of four ISVDs, in which case one ISVD binds to human TNF-α, two ISVDs bind to human IL-6, and one ISVD binds to human serum albumin (e.g., ISVD construct F027201062). Such a polypeptide may simultaneously be biparatopic, for example, if two ISVDs bind to two different epitopes on human IL-6. The term "biparatopic" refers to the binding of a molecule to two different parts (e.g., epitopes) of the same target molecule.

[0103] The terms “first ISVD,” “second ISVD,” “third ISVD,” etc., as used herein, indicate only the presence of one, two, three, etc. ISVDs, but preferably also indicate the relative positions of the ISVDs to each other, and the numbering begins from the N-terminus of the polypeptide of this disclosure. Thus, the “first ISVD” is preferably closer to the N-terminus than the “second ISVD,” and the “second ISVD” is closer to the N-terminus than the “third ISVD,” etc. Thus, when considered from the C-terminus, the arrangement of the ISVDs is reversed. Since the numbering is not absolute and may only indicate the relative positions of at least three ISVDs, it is not ruled out that other binding units / building blocks that bind to TNF-α or IL-6, e.g., additional ISVDs, or ISVDs that bind to different targets may be present in the polypeptide. Furthermore, the numbering does not rule out the possibility that other binding units / building blocks, e.g., ISVDs, may be positioned between them. For example, as further described below (see in particular Section 5.3 “Extended Half-Life (In Vivo)”), the polypeptide may further contain another ISVD that binds to human serum albumin, which may also be positioned, for example, between the “first ISVD” and the “second ISVD”.

[0104] From the above perspective, the present disclosure provides a polypeptide comprising or comprising at least three ISVDs, wherein at least one ISVD specifically binds to TNF-α and at least two ISVDs specifically bind to IL-6.

[0105] The components of the polypeptide, for example ISVD, may be linked to one or more suitable linkers, such as peptide linkers.

[0106] The use of linkers to connect two or more (poly)peptides is well known in the art. Exemplary peptidolinkers are shown in Table A-5. One class of peptidolinkers that is frequently used is known as the "Gly-Ser" or "GS" linker. These are linkers that essentially consist of glycine (G) and serine (S) residues, and are usually the GGGGS (SEQ ID NO: 65) motif (e.g., formula (Gly-Gly-Gly-Gly-Ser)). n It has one or more repeats of a peptide motif (where n can be 1, 2, 3, 4, 5, 6, 7 or more). Commonly used examples of some of these GS linkers are the 9GS linker (GGGGSGGGS, SEQ ID NO: 68), the 15GS linker (n=3), and the 35GS linker (n=7). See Chen et al., Adv. Drug Deliv. Rev. 2013 Oct. 15; 65(10):1357~1369; and Klein et al., Protein Eng. Des. Sel. (2014) 27(10):325~330.

[0107] In some embodiments of the polypeptides of this disclosure, the use of a 9GS linker is selected to link the polypeptide components together.

[0108] In one embodiment, ISVD, which specifically binds to TNF-α, is located at the C-terminus of the polypeptide. The inventors have surprisingly found that such a stereochemistry can significantly increase the potency of the compound and improve several characteristics important for the optimal production of the compound, such as solubility and expression levels.

[0109] In one embodiment, one of the ISVDs that specifically binds to IL-6 is located at the C-terminus or N-terminus of the polypeptide, preferably at the N-terminus.

[0110] Therefore, in some embodiments, the polypeptide comprises or consists of, in order starting from the N-terminus of the polypeptide: a first ISVD that specifically binds to IL-6, an optional binding unit that provides a polypeptide having an increased half-life as defined herein, a second ISVD that specifically binds to IL-6, and a third ISVD that specifically binds to TNF-α. In preferred embodiments, the binding unit that provides a polypeptide having an increased half-life is an ISVD.

[0111] In some embodiments, the polypeptide is provided to comprise, in order starting from the N-terminus of the polypeptide, a first ISVD, a linker, an ISVD, a linker, an ISVD, a linker, an ISVD, a linker, an ISVD, a linker, an ISVD, a linker, an ISVD, a linker, an ISVD, a linker, and

[0112] Such stereochemistry of polypeptides can result in increased production yield, superior CMC properties, and stronger efficacy in optimizing functionality and modulation of immune responses.

[0113] Therefore, in some embodiments, the polypeptide exhibits solubility of at least 120 mg / ml, for example, at least 130 mg / ml, for example, at least 140 mg / ml, preferably at least 145 mg / ml.

[0114] In some embodiments, the polypeptides of this disclosure exhibit reduced binding by existing antibodies in human serum. To achieve this objective, in one embodiment, the polypeptide has valine (V) at amino acid position 11 and leucine (L) at amino acid position 89 (as numbered by Kabat) in at least one ISVD (preferably at least one ISVD located at the C-terminus of the polypeptide), or in each ISVD. In another embodiment, the polypeptide has an elongation of 1 to 5 amino acids that are either naturally occurring, not naturally occurring, or a mixture thereof, for example, a single alanine (A) elongation at the C-terminus of the ISVD. The C-terminus of the ISVD may be VTVSS (SEQ ID NO: 81). In yet another embodiment, the polypeptide has lysine (K) or glutamine (Q) (as numbered by Kabat) at position 110 in at least one ISVD (preferably at least one ISVD located at the C-terminus of the polypeptide), or in each ISVD. In another embodiment, the ISVD contains at least one ISVD (preferably at least one ISVD located at the C-terminus of the polypeptide), or each ISVD contains lysine (K) or glutamine (Q) (according to Kabat numbering) at position 112. In some embodiments, after the addition of a single alanine, the C-terminus of the polypeptide is VKVSS (SEQ ID NO: 82), VQVSS (SEQ ID NO: 83), VTVKS (SEQ ID NO: 84), VTVQS (SEQ ID NO: 85), VKVKS (SEQ ID NO: 86), VKVQS (SEQ ID NO: 87), VQVKS (SEQ ID NO: 88), or VQVQS (SEQ ID NO: 89), for example, VKVSS (SEQ ID NO: 82), VQVSS (SEQ ID NO: 83), VTVKS (SEQ ID NO: 84), VTVQS (SEQ ID NO: 85), VKVKS (SEQ ID NO: 86), VKVQS (SEQ ID NO: 87), VQVKS (SEQ ID NO: 88), or VQVQS (SEQ ID NO: 89). In one embodiment, the sequence is VKVSSA (SEQ ID NO: 91).In another embodiment, the polypeptide has, in each ISVD, valine (V) at amino acid position 11 and leucine (L) at amino acid position 89 (as numbered by Kabat), and optionally, in at least one ISVD (preferably in at least one ISVD located at the C-terminus of the polypeptide), lysine (K) or glutamine (Q), preferably K (as numbered by Kabat), at position 110, and an elongation of 1 to 5 amino acids that are either naturally occurring, not naturally occurring, or a mixture thereof, for example, a single alanine (A) elongation at the C-terminus of the ISVD (so that the C-terminus of the polypeptide has, for example, the sequence VTVSSA (SEQ ID NO: 90), VKVSSA (SEQ ID NO: 91), or VQVSSA (SEQ ID NO: 92). For further information relating thereto, see, for example, WO2012 / 175741 and WO2015 / 173325, each incorporated herein in whole by reference. The amino acid residue used for elongation is preferably independently selected from glycine, alanine, valine, leucine, or isoleucine, more preferably glycine and alanine, and most preferably alanine. Preferably, the elongation consists of a single amino acid residue.

[0115] In one embodiment, the polypeptide of the present disclosure comprises or comprises SEQ ID NO: 1 and an amino acid sequence having more than 90%, for example more than 95%, or more than 99% sequence identity, and the CDRs of the four ISVDs are as defined in items A-D (or A'-D', if using Kabat's definition) below in sections “5.1 Immunoglobulin Monovariable Domains” and “5.3 (In Vivo) Half-Life Extension” respectively, in particular: The first ISVD that specifically binds to IL-6 has CDR1 having the amino acid sequence of SEQ ID NO: 6, CDR2 having the amino acid sequence of SEQ ID NO: 10, and CDR3 having the amino acid sequence of SEQ ID NO: 14; The second ISVD that specifically binds to IL-6 has CDR1 having the amino acid sequence of SEQ ID NO: 8, CDR2 having the amino acid sequence of SEQ ID NO: 12, and CDR3 having the amino acid sequence of SEQ ID NO: 16; ISVD, which specifically binds to TNF-α, has CDR1 with the amino acid sequence of SEQ ID NO: 9, CDR2 with the amino acid sequence of SEQ ID NO: 13, and CDR3 with the amino acid sequence of SEQ ID NO: 17; and ISVD that binds to human serum albumin has CDR1 having the amino acid sequence of SEQ ID NO: 7, CDR2 having the amino acid sequence of SEQ ID NO: 11, and CDR3 having the amino acid sequence of SEQ ID NO: 15. Alternatively, if you want to use Kabat's definition: The first ISVD that specifically binds to IL-6 has CDR1 having the amino acid sequence of SEQ ID NO: 33, CDR2 having the amino acid sequence of SEQ ID NO: 37, and CDR3 having the amino acid sequence of SEQ ID NO: 14; The second ISVD that specifically binds to IL-6 has CDR1 having the amino acid sequence of SEQ ID NO: 35, CDR2 having the amino acid sequence of SEQ ID NO: 39, and CDR3 having the amino acid sequence of SEQ ID NO: 16; ISVD, which specifically binds to TNF-α, has CDR1 with the amino acid sequence of SEQ ID NO: 36, CDR2 with the amino acid sequence of SEQ ID NO: 40, and CDR3 with the amino acid sequence of SEQ ID NO: 17; and The ISVD that binds to human serum albumin has CDR1 with the amino acid sequence of SEQ ID NO: 34, CDR2 with the amino acid sequence of SEQ ID NO: 38, and CDR3 with the amino acid sequence of SEQ ID NO: 15.

[0116] In some embodiments, the polypeptide contains or consists of the amino acid sequence of SEQ ID NO: 1. In one embodiment, the polypeptide consists of the amino acid sequence of SEQ ID NO: 1.

[0117] In some embodiments, the polypeptides of this disclosure have at least half, at least the same, or even greater binding affinity to human TNF-α and human IL-6 compared to the polypeptide consisting of the amino acids of SEQ ID NO: 1, where binding affinity is measured using the same method as SPR.

[0118] 5.1 Immunoglobulin monovariable domains The term “Immunoglobulin Single Variable Domain” (ISVD) is used synonymously with “single variable domain,” and it defines an immunoglobulin molecule in which the antigen-binding site resides on a single immunoglobulin domain, thereby forming the site. This distinguishes an immunoglobulin single variable domain from two immunoglobulin domains, particularly “conventional” immunoglobulins (e.g., monoclonal antibodies) or their fragments (e.g., Fab, Fab', F(ab')2, scFv, di-scFv) in which two variable domains interact to form the antigen-binding site. Typically, in conventional immunoglobulins, the heavy chain variable domain (V H ) and light chain variable domain (V L ) interacts with each other to form an antigen-binding site. In this case, V H and V L Both complementarity-determining regions (CDRs) contribute to the antigen-binding site, meaning a total of six CDRs are involved in antigen-binding site formation.

[0119] Considering the above definition, the antigen-binding domain of conventional four-chain antibodies (e.g., IgG, IgM, IgA, IgD, or IgE molecules; known in the art), or Fab fragments, F(ab')2 fragments, Fv fragments, e.g., disulfide-linked Fv or scFv fragments, or diabodies derived from such conventional four-chain antibodies (all known in the art), is not usually considered a single immunoglobulin variable domain. This is because, in these cases, binding to each epitope of the antigen usually occurs not by one (single) immunoglobulin domain, but by a pair (associating) immunoglobulin domains, e.g., light chain and heavy chain variable domains, i.e., the immunoglobulin domains that bind together to each antigen's epitope. H -V L This is because it occurs through pairs.

[0120] In contrast, an immunoglobulin single variable domain can specifically bind to an epitope of an antigen without pairing with an additional immunoglobulin variable domain. The binding site of an immunoglobulin single variable domain is a single V H , a single V HH or a single V L domain.

[0121] Thus, as long as it is possible to form a single antigen-binding unit (i.e., a functional antigen-binding unit consisting essentially of a single variable domain such that a single antigen-binding domain does not need to interact with another variable domain to form a functional antigen-binding unit), the single variable domain can be a light chain variable domain sequence (e.g., a V L -sequence) or a suitable fragment thereof; or a heavy chain variable domain sequence (e.g., a V H -sequence or a V HH sequence) or a suitable fragment thereof.

[0122] The immunoglobulin single variable domain (ISVD) may be, for example, a heavy chain ISVD, such as V H , V HH , such as camelized V H or humanized V HH , etc. According to some embodiments, the immunoglobulin single variable domain (ISVD) is a V H or humanized V HH containing V HH . The heavy chain ISVD may be derived from a conventional 4-chain antibody or a heavy chain antibody.

[0123] For example, the immunoglobulin single variable domain can be a single domain antibody (or an amino acid sequence suitable for use as a single domain antibody), "dAb" or dAb (or an amino acid sequence suitable for use as a dAb), or Nanobody® (as defined herein, examples of which include, but are not limited to, V HH ); other single variable domains, or any suitable fragment of any of them.

[0124] In particular, the immunoglobulin single variable domain is Nanobody® (e.g., V HH For example, humanized V HH Or Camelization V H (and other similar materials) or suitable fragments thereof. Nanobody®, Nanobodies®, and Nanoclone® are registered trademarks of Ablynx NV.

[0125] "V HH "Domain" is V HH , V HH Antibody fragment, and V HH It is also known as an antibody, and was originally described as an antigen that binds to the variable domain of "heavy chain antibodies" (i.e., "antibodies lacking the light chain"; Hamers-Casterman et al., Nature 363:446~448, 1993) immunoglobulins. HH The "domain" refers to these variable domains in conventional 4-chain antibodies (referred to as "V" in this specification). H The heavy chain variable domain present in the domain (referred to as "V") and conventional four-chain antibodies (referred to as "V" in this specification). L This was chosen to distinguish it from the light chain variable domains (referred to as "domains"). HHFor further explanation, see the general overview by Muyldermans (Reviews in Molecular Biotechnology 74: pp. 277-302, 2001), and the following patent applications mentioned as general background technology: WO94 / 04678, WO95 / 04079 and WO96 / 34103 from Vrije Universiteit Brussel; WO94 / 25591, WO99 / 37681, WO00 / 40968, WO00 / 43507, WO00 / 65057, WO01 / 40310, WO01 / 44301, EP1134231 and WO02 / 48193 from Unilever; Vlaams Instituut voor WO97 / 49805, WO01 / 21817, WO03 / 035694, WO03 / 054016 and WO03 / 055527 from Biotechnologie (VIB); WO03 / 050531 from Algonomics NV and Ablynx NV; WO01 / 90190 from the National Research Council of Canada; WO03 / 025020 (=EP1433793) from the Institute of Antibodies; and Ablynx WO04 / 041867, WO04 / 041862, WO04 / 041865, WO04 / 041863, WO04 / 062551, WO05 / 044858, WO06 / 40153, WO06 / 079372, WO06 / 122786, WO06 / 122787 and WO06 / 122825 by NV are referenced, each of which is incorporated herein by reference in its entirety.

[0126] Typically, immunoglobulin production involves immunizing experimental animals, fusing immunoglobulin-producing cells to create hybridomas, and screening them for desired specificity. Alternatively, immunoglobulins may be produced by screening naive or synthetic libraries, for example, by phage display.

[0127] The generation of immunoglobulin sequences, such as Nanobodies®, has been extensively described in various publications, including WO94 / 04678, Hamers-Casterman et al. 1993, and Muyldermans et al. 2001 (Reviews in Molecular Biotechnology 74: pp. 277-302, 2001), each of which is incorporated herein by reference in its entirety. In these methods, camelid animals are immunized with the target antigen to induce an immune response to it. The repertoire of Nanobodies obtained from this immunization is further screened for Nanobodies that bind to the target antigen.

[0128] In these examples, antibody production requires purified antigens for immunization and / or screening. Antigens may be purified from natural sources or during the recombinant production process.

[0129] Immunoglobulin sequences can be immunized and / or screened using peptide fragments of such antigens.

[0130] Immunoglobulin sequences of different origins are used, including mouse, rat, rabbit, donkey, human, and camelid immunoglobulin sequences. This disclosure also includes fully human, humanized, or chimeric sequences. For example, this disclosure includes camelid immunoglobulin sequences and humanized camelid immunoglobulin sequences, or camelid domain antibodies, e.g., camelid dAbs as described by Ward et al. (see, e.g., WO94 / 04678 and Riechmann, Febs Lett., 339:285-290, 1994 and Prot. Eng., 9:531-537, 1996, each of which is incorporated herein by reference in its entirety). Furthermore, this disclosure also includes fused immunoglobulin sequences (one or more V) that form, for example, polyvalent and / or multispecific constructs. HHFor multivalent and multispecific polypeptides containing domains and their preparations, see Conrath et al., J. Biol. Chem., Vol. 276, pp. 7346-7350, 2001, and also see, for example, WO96 / 34103 and WO99 / 23221 (each of which is incorporated herein by reference in its entirety), as well as immunoglobulin sequences containing tags or other functional parts, such as toxins, labels, radiochemicals, etc., which are derivable from the immunoglobulin sequences of this disclosure.

[0131] "Humanization V HH " is a naturally occurring V HH It corresponds to the amino acid sequence of the domain, but is "humanized," that is, the naturally occurring V HH One or more amino acid residues in the amino acid sequence of the sequence (particularly in the framework sequence) are extracted from a conventional 4-chain antibody from a human (e.g., shown above). H This includes an amino acid sequence that has been humanized by replacing one or more amino acid residues located at corresponding positions in the domain. This can be done in ways known to those skilled in the art, as will be apparent to those skilled in the art, based on further descriptions in this specification and the literature (e.g., WO2008 / 020079, which is incorporated in its entirety by reference). It should also be noted here that such humanized V HH These can be obtained by any suitable method known in itself, and are therefore not strictly limited to polypeptides obtained using polypeptides containing naturally occurring VHH domains as starting materials.

[0132] "Camelization V" H " is a naturally occurring V H The amino acid sequence corresponds to the domain, but it is "camelized," meaning it is derived from naturally occurring V from conventional 4-chain antibodies. H One or more amino acid residues in the amino acid sequence of the domain are used in the V of the heavy chain antibody. HHThe amino acid sequence is camelized by replacing one or more amino acid residues located at corresponding positions in the domain. This can be carried out in ways known to those skilled in the art, as will be apparent to those skilled in the art, based on further descriptions provided herein and in the literature (e.g., WO2008 / 020079). Such “camelized” substitutions are V H -V L It can be inserted into amino acid positions that form and / or are present therein, and / or into so-called camel-specific residues as defined herein (see, e.g., WO94 / 04678 and Davies and Riechmann (1994 and 1996), above). In some embodiments, camelization V H V is used as a starting material or starting point for generating or designing. H The sequence is from mammals. H Sequence, or human V H Arrays, for example V H It is a 3-sequence. However, it is noteworthy that such camelid V H V can be obtained in any suitable manner known by itself, and therefore strictly speaking, naturally occurring V can be obtained as a starting material. H This is not limited to polypeptides obtained using polypeptides that contain a domain.

[0133] It should be noted that one or more immunoglobulin sequences can be linked to each other and / or to other amino acid sequences (e.g., via disulfide crosslinks) to provide equally useful peptide constructs (e.g., Fab' fragments, F(ab')2 fragments, scFv constructs, "diabody" and other multispecific constructs). See, for example, the general overview by Holliger and Hudson, Nat Biotechnol. 2005 Sep;23(9):1126-36. Generally, when a polypeptide is intended for administration to a subject (e.g., for prophylactic, therapeutic and / or diagnostic purposes), the polypeptide may contain immunoglobulin sequences that are not naturally present in the subject.

[0134] A non-restrictive example of the structure of an immunoglobulin monovariable domain sequence can be considered to consist of four framework regions ("FRs"), which are referred to in the art and herein as "framework region 1" ("FR1"), "framework region 2" ("FR2"), "framework region 3" ("FR3"), and "framework region 4" ("FR4"), respectively; these framework regions are intercepted by three complementarity-determining regions ("CDRs"), which are referred to in the art and herein as "complementarity-determining region 1" ("CDR1"), "complementarity-determining region 2" ("CDR2"), and "complementarity-determining region 3" ("CDR3"), respectively.

[0135] As further described in paragraph q) on pages 58 and 59 of WO08 / 020079 (incorporated herein by reference), the amino acid residues of the immunoglobulin monovariate domain are derived from camelid animals in the paper by Riechmann and Muyldermans, 2000 (J. Immunol. Methods 240(1~2): pp. 185~195; see, for example, Figure 2 of this publication). HH As applied to the domain, the V was granted by Kabat et al. ("Sequence of proteins of immunological interest," US Public Health Services, NIH Bethesda, MD, Publication No. 91) H It can be numbered according to the common numbering of domains. Notably, V H Domain and V HHAs is well known in the industry regarding domains, the total number of amino acid residues in each CDR can vary and may not correspond to the total number of amino acid residues indicated by Kabat numbering (i.e., one or more positions indicated by Kabat numbering may not be occupied in the actual sequence, or the actual sequence may contain more amino acid residues than allowed by Kabat numbering). This generally means that Kabat numbering may or may not correspond to the actual numbering of amino acid residues in the actual sequence. H Domain and V HH The total number of amino acid residues in a domain is typically in the range of 110–120, often between 112 and 115. However, it should be noted that shorter and longer sequences may also be suitable for the purposes described herein.

[0136] In this application, unless otherwise specified, the CDR sequences were determined according to the AbM numbering as described in Kontermann and Dubel (2010 edition, Antibody Engineering, Vol. 2, Springer Verlag Heidelberg Berlin, Martin, Chapter 3, pp. 33-51). According to this method, FR1 contains amino acid residues at positions 1-25, CDR1 contains amino acid residues at positions 26-35, FR2 contains amino acid residues at positions 36-49, CDR2 contains amino acid residues at positions 50-58, FR3 contains amino acid residues at positions 59-94, CDR3 contains amino acid residues at positions 95-102, and FR4 contains amino acid residues at positions 103-113.

[0137] The determination of the CDR region may be performed according to different methods. In Kabat-based CDR determination, FR1 of the immunoglobulin monovariable domain contains amino acid residues at positions 1-30, CDR1 of the immunoglobulin monovariable domain contains amino acid residues at positions 31-35, FR2 of the immunoglobulin monovariable domain contains amino acid residues at positions 36-49, CDR2 of the immunoglobulin monovariable domain contains amino acid residues at positions 50-65, FR3 of the immunoglobulin monovariable domain contains amino acid residues at positions 66-94, CDR3 of the immunoglobulin monovariable domain contains amino acid residues at positions 95-102, and FR4 of the immunoglobulin monovariable domain contains amino acid residues at positions 103-113.

[0138] In such immunoglobulin sequences, the framework sequence may be any suitable framework sequence, and examples of suitable framework sequences will be apparent to those skilled in the art based, for example, on standard textbooks and further disclosures and prior art described herein.

[0139] The framework sequence may be an immunoglobulin framework sequence or a framework sequence (or a preferred combination thereof) derived from an immunoglobulin framework sequence (e.g., by humanization or camelization). For example, the framework sequence may be a light chain variable domain (e.g., V L Sequence) and / or heavy chain variable domain (e.g., V H Array or V HH It may be a framework array obtained from the array. In one embodiment, the framework array is V HH A framework sequence obtained from a sequence (in which the framework sequence may, in some cases, be partially or completely humanized), or a conventional camelized V H It is either an array (as defined herein).

[0140] In particular, the framework sequences present in the ISVD sequence as disclosed herein are those of Nanobody®, for example, humanized VHH Or Camelization V H V including HH The framework sequence may contain one or more characteristic residues (as defined herein) to achieve this. Some non-exclusive examples (and preferred combinations thereof) of such framework sequences will become clear from further disclosures described herein.

[0141] Here again, as is generally described herein with respect to immunoglobulin sequences, it is also conceivable to use any preferred fragment (or combination of fragments) of any of the aforementioned, for example, a fragment containing one or more CDR sequences adjacent to and / or linked thereto by one or more framework sequences (for example, these CDRs and framework sequences in the same order in which they may occur in the full-size immunoglobulin sequence from which the fragment is derived).

[0142] However, it should be noted that the disclosure is not limited to the origin of the ISVD sequence (or the nucleotide sequence used to express it) or to the method by which the ISVD sequence or nucleotide sequence is produced (or produced) or obtained. Thus, the ISVD sequence may be a naturally occurring sequence (from any suitable species) or a synthetic or semi-synthetic sequence. In specific, but non-limiting embodiments, the ISVD sequence may be a naturally occurring sequence (from any suitable species) or a synthetic or semi-synthetic sequence, and examples therein, but not limited to, “humanized” (as defined herein) immunoglobulin sequences (e.g., partially or fully humanized mouse or rabbit immunoglobulin sequences, in particular partially or fully humanized V) HHImmunoglobulin sequences include, “camelized” (as defined herein) immunoglobulin sequences, in addition to immunoglobulin sequences obtained by techniques such as affinity maturation (e.g., starting from synthetic, random or naturally occurring immunoglobulin sequences), CDR grafting, veneering, combining fragments obtained from different immunoglobulin sequences, PCR assembly using overlapping primers, and similar techniques for manipulating immunoglobulin sequences that are well known to those skilled in the art; or any suitable combination of any of the foregoing.

[0143] Similarly, the nucleotide sequence may be a naturally occurring nucleotide sequence or a synthetic or semi-synthetic sequence, and may be, for example, a sequence isolated by PCR from a suitable naturally occurring template (e.g., DNA or RNA isolated from cells), a nucleotide sequence isolated from a library (in particular, an expression library), a nucleotide sequence prepared by introducing mutations into a naturally occurring nucleotide sequence (using any suitable technique known in itself, e.g., mismatch PCR), a nucleotide sequence prepared by PCR using overlapping primers, or a nucleotide sequence prepared using a technique for DNA synthesis known in itself.

[0144] As stated above, ISVD may be Nanobody® or a preferred fragment thereof. For a general description of Nanobodies® (Nanobody® and Nanobodies® are registered trademarks of Ablynx NV, Sanofi Company), see the further description below and the prior art cited herein. However, in this regard, this description and the prior art mainly refer to the so-called "V H Nanobodies (registered trademark) of Class 3 (i.e., V-type such as DP-47, DP-51 or DP-29) HIt should be noted that this disclosure describes Nanobodies® that have a high degree of sequence homology to three classes of human germline sequences. However, in its broadest sense, this disclosure can generally be used for any type of Nanobody®, for example, as described in WO2007 / 118670, which incorporates the whole by reference, for example, the so-called "V H Nanobodies (registered trademark) belonging to the "Class 4" (i.e., V such as DP-78) H It should also be noted that Nanobodies®, which exhibit high sequence homology to four classes of human germline sequences, should also be used.

[0145] Generally, Nanobodies (registered trademark) (especially V HH Sequences, for example, (partially) humanized V HH Sequence and camelization V H A sequence (such as a frame sequence) can be characterized by the presence of one or more "characteristic residues" (as described herein) in one or more of the framework sequences (as described herein). Thus, generally speaking, Nanobody® is a (general) structure. FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4 It can be defined as an immunoglobulin sequence having the following characteristics, where FR1 to FR4 refer to framework regions 1 to 4, respectively, CDR1 to CDR3 refer to complementarity-determining regions 1 to 3, respectively, and one or more characteristic residues are as further defined herein.

[0146] In detail, Nanobody® is a (general) structure. FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4 The immunoglobulin sequence may also have the following characteristics: where FR1 to FR4 refer to framework regions 1 to 4, respectively, and CDR1 to CDR3 refer to complementarity-determining regions 1 to 3, respectively, and the framework sequence is as further defined herein.

[0147] More specifically, Nanobody® is a (general) structure. FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4 It may also be an immunoglobulin sequence having the following characteristics, where FR1 to FR4 refer to framework regions 1 to 4, respectively, and CDR1 to CDR3 refer to complementarity-determining regions 1 to 3, respectively: According to Kabat's numbering system, one or more amino acid residues at positions 11, 37, 44, 45, 47, 83, 84, 103, 104, and 108 are selected from the characteristic residues listed in Table X below.

[0148] The FRs shown herein may optionally be selected from the FRs shown in Table A-2 (or Table A-2.1 in Kabat numbering) that have amino acids at the specific positions described herein, preferably from the same clone (i.e., FRs shown in the same row).

[0149] [Table 1-1] [Table 1-2]

[0150] In some embodiments, the characteristic residue at position 11 is L. In some embodiments, the characteristic residue at position 37 is F. (1) or Y. In some embodiments, the characteristic residue at position 44 is G (2) or Q (3) In some embodiments, the characteristic residue at position 45 is L (2) or R (3) In some embodiments, the characteristic residue at position 47 is F (1) , L (1) or W (2)In some embodiments, the characteristic residue at position 83 is K. In some embodiments, the characteristic residue at position 84 is P. In some embodiments, the characteristic residue at position 103 is W. In some embodiments, the characteristic residue at position 104 is G. In some embodiments, the characteristic residue at position 108 is Q or L.

[0151] Furthermore, if ISVD, which has an N-terminal glutamic acid (E) at position 1, is located at the N-terminus of a polypeptide, the glutamic acid is preferably substituted with aspartic acid (D). Therefore, for example, if SEQ ID NOs. 3, 4, or 5 is at the N-terminus of a polypeptide, the E at position 1 is changed to D. Conversely, for example, if SEQ ID NOs. 2 is not at the N-terminus of a polypeptide, the D at position 1 is changed to E.

[0152] This disclosure, in particular, utilizes ISVDs that can specifically bind to TNF-α or IL-6. In relation to this disclosure, "binding to a specific target molecule" has the common sense in the art as understood with respect to antibodies and their respective antigens.

[0153] The polypeptides of this disclosure may comprise one or more ISVDs bound to TNF-α and two or more ISVDs bound to IL-6. For example, the polypeptide may comprise one ISVD bound to TNF-α and two ISVDs bound to IL-6.

[0154] In some embodiments, at least one ISVD can functionally block its target molecule. For example, the targeting moiety can block the interaction between TNF-α and TNFR (TNF receptor), or the interaction between IL-6 and IL-6R (interleukin-6 receptor). Thus, in one embodiment, the polypeptide of the Disclosure comprises at least one ISVD that specifically binds to TNF-α and inhibits its interaction with TNFR, and two ISVDs that specifically bind to IL-6 and functionally block its interaction with IL-6R. Thus, in a preferred embodiment, the polypeptide of the Disclosure comprises two ISVDs that specifically bind to IL-6, one of which functionally blocks the interaction between IL-6 and IL-6R.

[0155] The ISVDs used in this disclosure form part of the polypeptide of this disclosure, comprising or consisting of at least three ISVDs, such that the polypeptide can specifically bind to TNF-α and IL-6.

[0156] Therefore, at least three ISVD target molecules used in the polypeptides of this disclosure are TNF-α and IL-6. Examples include mammalian TNF-α and IL-6. Human TNF-α (Uniprot accession number P01375) and human IL-6 (Uniprot accession number P05231) are used, but versions from other species, such as mice, rats, rabbits, cats, dogs, goats, sheep, horses, pigs, non-human primates, such as cynomolgus macaques (also referred to herein as "cynomolgus macaques"), or camelids, such as llamas or alpacas, are also suitable for this disclosure.

[0157] Specific examples of ISVDs that specifically bind to TNF-α or IL-6 and can be used in this disclosure are described in sections A to C below: A. Specifically binds to human IL-6, i. A CDR1 having the amino acid sequence of SEQ ID NO: 6 or having a difference of 2 or 1 amino acid from SEQ ID NO: 6; ii. A CDR2 having the amino acid sequence of SEQ ID NO: 10 or having a difference of 2 or 1 amino acid from SEQ ID NO: 10; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 14 or having a difference of 2 or 1 amino acid from SEQ ID NO: 14 An ISVD comprising the above.

[0158] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO: 6, CDR2 has the amino acid sequence of SEQ ID NO: 10, and CDR3 has the amino acid sequence of SEQ ID NO: 14.

[0159] Non-limiting examples of such ISVDs that specifically bind to human IL-6 are one or more, or all, of the frameworks shown for construct 17C04 in Table A-2 (in addition to the CDRs defined in item A above), e.g., the ISVD has the full-length amino acid sequence of construct 17C04 (see SEQ ID NO: 2, Tables A-1 and A-2).

[0160] Also, in one embodiment, the amino acid sequence of an ISVD that specifically binds to human IL-6 may have a sequence identity of more than 90%, e.g., more than 95%, or more than 99% with SEQ ID NO: 2, and optionally, the CDRs are as defined in item A above. In some embodiments, the ISVD that specifically binds to IL-6 has the amino acid sequence of SEQ ID NO: 2.

[0161] If such an ISVD that specifically binds to IL-6 has a difference of 2 or 1 amino acid in at least one CDR compared to the corresponding reference CDR sequence (item A above), in some embodiments, the ISVD has at least half the binding affinity of construct 17C04 for human IL-6, preferably at least the same binding affinity, or even higher binding affinity, where the binding affinity is measured using the same method such as SPR.

[0162] B. Specifically binds to human IL-6, i. having the amino acid sequence of SEQ ID NO: 8 or having a difference of 2 or 1 amino acid from SEQ ID NO: 8 in CDR1; ii. having the amino acid sequence of SEQ ID NO: 12 or having a difference of 2 or 1 amino acid from SEQ ID NO: 12 in CDR2; and iii. having the amino acid sequence of SEQ ID NO: 16 or having a difference of 2 or 1 amino acid from SEQ ID NO: 16 in CDR3 An ISVD comprising the above.

[0163] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO: 8, CDR2 has the amino acid sequence of SEQ ID NO: 12, and CDR3 has the amino acid sequence of SEQ ID NO: 16.

[0164] Non-limiting examples of such ISVDs that specifically bind to human IL-6 are one or more, or all, of the framework regions shown for the 6B12 construct in Table A-2 (in addition to the CDRs defined in item B above), for example, the ISVD has the full-length amino acid sequence of construct 6B12 (see SEQ ID NO: 4, Tables A-1 and A-2).

[0165] Also, in one embodiment, the amino acid sequence of the ISVD that specifically binds to human IL-6 may have a sequence identity of more than 90%, for example more than 95%, or more than 99% with SEQ ID NO: 4, and optionally, the CDRs are as defined in item B above. In some embodiments, the ISVD that binds to IL-6 has the amino acid sequence of SEQ ID NO: 4.

[0166] If such an ISVD that binds to IL-6 has a difference of 2 or 1 amino acid in at least one CDR compared to the corresponding reference CDR sequence (item B above), in some embodiments, the ISVD has at least half the binding affinity, at least the same binding affinity, or even a higher binding affinity for human IL-6 than construct 6B12, where the binding affinity is measured using the same method such as SPR.

[0167] C. Specifically binds to human TNF-α, i. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having a difference of 2 or 1 amino acid from SEQ ID NO: 9; ii. CDR2 having the amino acid sequence of SEQ ID NO: 13 or having a difference of 2 or 1 amino acid from SEQ ID NO: 13; and iii. CDR3 having the amino acid sequence of SEQ ID NO: 17 or having a difference of 2 or 1 amino acid from SEQ ID NO: 17. ISVD including.

[0168] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO: 9, CDR2 has the amino acid sequence of SEQ ID NO: 13, and CDR3 has the amino acid sequence of SEQ ID NO: 17.

[0169] Non-limiting examples of such ISVDs that specifically bind to human TNF-α include having one or more, or all, of the framework regions shown in Table A-2 for construct 6C11 (in addition to the CDR defined in item C above), for example, an ISVD having the full amino acid sequence of construct 6C11 (see Sequence ID No. 5, Tables A-1 and A-2).

[0170] Furthermore, in one embodiment, the amino acid sequence of ISVD that specifically binds to human TNF-α may have more than 90%, for example more than 95%, or more than 99% sequence identity with SEQ ID NO: 5, and in some cases, the CDR is as defined in item C above. In some embodiments, the ISVD that binds to TNF-α has the amino acid sequence of SEQ ID NO: 5.

[0171] If such an ISVD that specifically binds to TNF-α has a difference of 2 or 1 amino acid in at least one CDR compared to the corresponding reference CDR sequence (item C above), then the ISVD has a binding affinity to TNF-α of at least half, at least the same, or even higher than that of construct 6C11, where the binding affinity is measured using the same method as SPR.

[0172] In some embodiments, each of the ISVDs defined in items A to C above is included in the polypeptide of the present disclosure. In some embodiments, such polypeptides of the present disclosure, including each of the ISVDs defined in items A to C above, have a binding affinity to human TNF-α and human IL-6 of at least half, at least the same, or even greater than, that of the polypeptide consisting of the amino acids of SEQ ID NO: 1, where the binding affinity is measured using the same method as SPR.

[0173] The sequence numbers mentioned in items A to C above are based on the definition of CDR according to AbM (see Table A-2). Note that sequence numbers that define the same CDR according to Kabat definition (see Table A-2.1) can similarly be used in items A to C above.

[0174] Therefore, specific ISVDs that specifically bind to TNF-α or IL-6 and can be used in this disclosure as described above using the definition of AbM can also be described using the Kabat definition as described in sections A' to C' below: A'. Specifically binds to human IL-6, i. CDR1 having the amino acid sequence of SEQ ID NO: 33 or having a difference of 2 or 1 amino acid from SEQ ID NO: 33; ii. CDR2 having the amino acid sequence of SEQ ID NO: 37 or having a difference of 2 or 1 amino acid from SEQ ID NO: 37; and iii. CDR3 having the amino acid sequence of SEQ ID NO: 14 or having a difference of 2 or 1 amino acid from SEQ ID NO: 14. An ISVD comprising

[0175] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO: 33, CDR2 has the amino acid sequence of SEQ ID NO: 37, and CDR3 has the amino acid sequence of SEQ ID NO: 14.

[0176] Non-limiting examples of such ISVDs that specifically bind to human IL-6 are one or more, or all, of the framework regions shown for construct 17C04 in Table A-2.1 (in addition to the CDRs defined in item A' above), e.g., the ISVD has the full-length amino acid sequence of construct 17C04 (see SEQ ID NO: 2, Tables A-1 and A-2.1).

[0177] B’. Specifically binds to human IL-6 i. CDR1 having the amino acid sequence of SEQ ID NO: 35 or having a difference of 2 or 1 amino acid from SEQ ID NO: 35; ii. CDR2 having the amino acid sequence of SEQ ID NO: 39 or having a difference of 2 or 1 amino acid from SEQ ID NO: 39; and iii. CDR3 having the amino acid sequence of SEQ ID NO: 16 or having a difference of 2 or 1 amino acid from SEQ ID NO: 16 An ISVD comprising

[0178] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO: 35, CDR2 has the amino acid sequence of SEQ ID NO: 39, and CDR3 has the amino acid sequence of SEQ ID NO: 16.

[0179] Non-limiting examples of such ISVDs that specifically bind to human IL-6 are one or more, or all, of the framework regions shown for construct 6B12 in Table A-2.1 (in addition to the CDRs defined in item B' above), e.g., the ISVD has the full-length amino acid sequence of construct 6B12 (see SEQ ID NO: 4, Tables A-1 and A-2.1).

[0180] C’. Specifically binds to human TNF-α i. CDR1 having the amino acid sequence of SEQ ID NO: 36 or having a difference of 2 or 1 amino acid from SEQ ID NO: 36; ii. CDR2 having the amino acid sequence of SEQ ID NO: 40 or having a difference of 2 or 1 amino acid from SEQ ID NO: 40; and iii. ISVD containing a CDR3 having the amino acid sequence of SEQ ID NO: 17 or having a difference of 2 or 1 amino acid from SEQ ID NO: 17.

[0181] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO: 36, CDR2 has the amino acid sequence of SEQ ID NO: 40, and CDR3 has the amino acid sequence of SEQ ID NO: 17.

[0182] Non-limiting examples of such ISVDs that specifically bind to human TNF-α include having one or more, or all, of the framework regions shown in Table A-2.1 for construct 6C11 (in addition to the CDR defined in item C' above), for example, an ISVD having the full amino acid sequence of construct 6C11 (see SEQ ID NO: 5, Tables A-1 and A-2.1).

[0183] The percentage of "sequence identity" between the first amino acid sequence and the second amino acid sequence can be calculated by dividing [the number of amino acid residues in the first amino acid sequence that are identical to the amino acid residue at the corresponding position in the second amino acid sequence] by [the total number of amino acid residues in the first amino acid sequence] and multiplying by [100%]. In this case, each deletion, insertion, substitution, or addition of an amino acid residue in the second amino acid sequence compared to the first amino acid sequence is considered as a difference at a single amino acid residue (i.e., a single position).

[0184] Typically, in order to determine the percentage of "sequence identity" between two amino acid sequences according to the calculation method outlined above, the amino acid sequence with the largest number of amino acid residues is treated as the "first" amino acid sequence, and the other amino acid sequences are treated as the "second" amino acid sequences.

[0185] As used herein, "amino acid difference" refers to the deletion, insertion, or substitution of a single amino acid residue relative to the reference sequence. In some embodiments, the amino acid difference is a substitution. Fewer amino acid differences from a given reference sequence are generally preferred. For example, if a CDR has two or one amino acid differences from a given sequence number, one amino acid difference is preferred.

[0186] In some embodiments, amino acid substitutions are conserved substitutions. In some embodiments, such conserved substitutions are those in which one amino acid from the following groups (a) to (e) is replaced by another amino acid residue from the same group: (a) small aliphatic, nonpolar, or slightly polar residues: Ala, Ser, Thr, Pro, and Gly; (b) polar negatively charged residues and their (uncharged) amides: Asp, Asn, Glu, and Gln; (c) polar positively charged residues: His, Arg, and Lys; (d) large aliphatic, nonpolar residues: Met, Leu, Ile, Val, and Cys; and (e) aromatic residues: Phe, Tyr, and Trp.

[0187] In some embodiments, the conservative substitutions are as follows: from Ala to Gly or to Ser; from Arg to Lys; from Asn to Gln or to His; from Asp to Glu; from Cys to Ser; from Gln to Asn; from Glu to Asp; from Gly to Ala or to Pro; from His to Asn or to Gln; from Ile to Leu or to Val; from Leu to Ile or to Val; from Lys to Arg, Gln or to Glu; from Met to Leu, Tyr or to Ile; from Phe to Met, Leu or to Tyr; from Ser to Thr; from Thr to Ser; from Trp to Tyr; from Tyr to Trp; and / or from Phe to Val, Ile or to Leu.

[0188] 5.2 Specificity The terms "specificity", "specifically binds", or "specific binding" refer to the number of different target molecules, such as antigens from the same organism, to which a particular binding unit, e.g., an ISVD, can bind with a sufficiently high affinity (see below). "Specificity", "specifically binds", or "specific binding" is used herein synonymously with "selectivity", "selectively binds", or "selective binding". According to an embodiment, a binding unit, e.g., an ISVD, specifically binds to its designated target.

[0189] The specificity / selectivity of a binding unit can be determined based on affinity. Affinity represents the strength or stability of a molecular interaction. Affinity is generally indicated by KD, or dissociation constant, which has units of moles / liter (or M). Affinity is also equal to 1 / KD and can be expressed as the association constant, KA, which has units of (moles / liter) -1 (or M -1 ).

[0190] Affinity is a measure of the binding strength between a moiety and a binding site on a target molecule: the lower the KD value, the stronger the binding strength between the target molecule and the targeting moiety.

[0191] Typically, a binding unit (e.g., an ISVD) used in the present disclosure binds to its target (at room temperature) with a dissociation constant (KD) of 10 -5 ~10 -12 moles / liter or less, e.g., 10 -7 ~10 -12 moles / liter or less, more specifically e.g., 10 -8 ~10 -12 moles / liter (i.e., 10 5 ~10 12 liters / mole or more, e.g., 10 7 ~10 12 liters / mole or more, more specifically e.g., 10 8 ~10 12 liters / mole association constant (KA)).

[0192] Generally, 10-4 Any KD value greater than molar / liter (or any KA value lower than liter / mol) is considered to indicate non-specific binding. 4 The KD of a biological interaction, e.g., the KD of the binding of an immunoglobulin sequence considered specific to an antigen, typically ranges from 10

[0193] molar / liter (10000 nM or 10 μM) to 10 -5 molar / liter (0.001 nM or 1 pM) or less. -12 Thus, for specific / selective binding, when using the same measurement method, e.g., SPR, the binding unit (or the polypeptide containing it) binds to TNF-α and / or IL-6 with a KD value of 10

[0194] ~10 -5 ~10 -12 molar / liter or less and binds to the related cytokines with a KD value greater than 10 -4 molar / liter. Examples of cytokines related to TNF-α are TNF superfamily members FASL, TNFβ, LIGHT, TL-1A, RANKL. Examples of cytokines related to IL-6 are IL-6 family members IL-11, ciliary neurotrophic factor (CNTF), leukemia inhibitory factor (LIF), oncostatin M (OSM), cardiotrophin 1 (CT-1), cardiotrophin-like cytokine (CLC), and IL-27. Thus, in one embodiment, at least one ISVD contained in the polypeptide binds to TNF-α with a KD value of 10 -5 ~10 -12 molar / liter or less and binds to FASL, TNFβ, LIGHT, TL-1A, RANKL of the same species with a KD value greater than 10 -4 molar / liter, and at least two ISVDs contained in the polypeptide bind to IL-6 with a KD value of 10 -5 ~10 -12It binds to the same species of IL-11, ciliary neurotrophic factor (CNTF), leukemia suppressor factor (LIF), oncostatin M (OSM), cardiotrophin 1 (CT-1), cardiotrophin-like cytokine (CLC), and IL-27 at a KD value of 10. -4 They bind with a KD value greater than moles / liter.

[0195] Therefore, in some embodiments, the polypeptides of the present disclosure have at least half the binding affinity, at least the same binding affinity, or even higher binding affinity to human TNF-α and human IL-6 compared to the polypeptide consisting of the amino acids of SEQ ID NO: 1, where the binding affinity is measured using the same method as SPR.

[0196] Specific binding from a particular species to a particular target does not preclude the possibility that the binding unit may also specifically bind to similar targets from different species. For example, specific binding to human TNF-α does not preclude the possibility that the binding unit (or polypeptide containing it) may also specifically bind to TNF-α from cynomolgus monkeys. Similarly, for example, specific binding to human IL-6 does not preclude the possibility that the binding unit (or polypeptide containing it) may also specifically bind to IL-6 from cynomolgus monkeys ("cyno").

[0197] The specific binding of the binding unit to its designated target can be determined by any suitable method known in itself, but not limited to, scatchard analysis and / or competitive binding assays, such as radioimmunoassays (RIAs), enzyme immunoassays (EIAs), and sandwich competitive assays, as well as various modifications thereof known in the art; in addition, other techniques described herein.

[0198] The dissociation constant may be the actual dissociation constant or an apparent dissociation constant, as will be obvious to those skilled in the art. Methods for determining the dissociation constant will be obvious to those skilled in the art, and examples of such methods include the techniques described below. In this regard, 10 -4 moles / liter or 10 -3 Larger than moles / liter (e.g., 10 -2 It will also be apparent that the dissociation constant (in moles / liter) may not be measurable. In some cases, as will be apparent to those skilled in the art, the (actual or apparent) dissociation constant can be calculated based on the (actual or apparent) association constant (KA) by the relationship [KD = 1 / KA].

[0199] The affinity of molecular interactions between two molecules can be measured through various techniques known in themselves, such as the well-known surface plasmon resonance (SPR) biosensor techniques (see, e.g., Ober et al., 2001, Intern. Immunology 13:1551-1559). The term "surface plasmon resonance," as used herein, refers to an optical phenomenon that enables real-time analysis of biospecific interactions by detecting changes in protein concentration within a biosensor matrix, in which case one molecule is immobilized on a biosensor chip and the other molecule passes over the immobilized molecule under flow conditions, k on , k off Measured value, therefore K D (or K AThe value obtained is obtained. This can be done, for example, using the well-known BIAcore® system (BIAcore International AB, GE Healthcare, Uppsala, Sweden and Piscataway, NJ). For further explanation, see Jonsson et al. (1993, Ann. Biol. Clin. 51:19~26), Jonsson et al. (1991 Biotechniques 11:620~627), Johnsson et al. (1995, J. Mol. Recognit. 8:125~131), and Johnsson et al. (1991, Anal. Biochem. 198:268~277).

[0200] Another well-known biosensor technique for determining the affinity of biomolecular interactions is biolayer interferometry (BLI) (see, e.g., Abdiche et al., 2008, Anal. Biochem. 377:209-217). The term “biolayer interferometry” or “BLI,” as used herein, refers to an unlabeled optical technique that analyzes interference fringes of light reflected from two surfaces: an internal reference layer (reference beam) and a layer of immobilized proteins on a biosensor chip (signal beam). Changes in the number of molecules bound to the biosensor chip cause a shift in the interference fringes, reported as a wavelength shift (nm), the magnitude of which is a direct measure of the number of molecules bound to the biosensor chip surface. Because interactions can be measured in real time, association and dissociation rates, as well as affinity, can be determined. BLI can be performed, for example, using the well-known Octet® system (a division of ForteBio, Pall Life Sciences, Menlo Park, USA).

[0201] Alternatively, affinity can be measured using a Kinetic Exclusion Assay (KinExA) with the KinExA® platform (Sapidyne Instruments Inc, Boise, USA) (see, e.g., Drake et al., 2004, Anal. Biochem., 328:35-43). The term “KinExA,” as used herein, refers to a solution-based method for measuring the true equilibrium binding affinity and kinetics of an unmodified molecule. Free antibodies (or antigens) can be bound to coated molecules by passing an equilibrium solution of an antibody / antigen complex over a column having beads pre-coated with the antigen (or antibody). Detection of the thus captured antibody (or antigen) is achieved using a fluorescently labeled protein that binds to the antibody (or antigen).

[0202] The GYROLAB® immunoassay system provides a platform for automated biological analysis and rapid sample turnover (Fraley et al., 2013, Bioanalysis 5:1765~74).

[0203] 5.3 Extension of half-life (in vivo) The polypeptide may further contain one or more other groups, residues, parts, or binding units linked, optionally via one or more peptidic linkers, the one or more other groups, residues, parts, or binding units providing a polypeptide having an extended (in vivo) half-life compared to a corresponding polypeptide without the one or more other groups, residues, parts, or binding units. An extended in vivo half-life means, for example, that the polypeptide has an extended half-life in mammalian subjects, such as humans, after administration. The half-life can be expressed, for example, as t1 / 2 beta.

[0204] The type of group, residue, part, or binding unit is not generally limited and can be selected from the group consisting of, for example, polyethylene glycol molecules, serum proteins or fragments thereof, binding units that can bind to serum proteins, Fc parts, and small proteins or peptides that can bind to serum proteins.

[0205] More specifically, the one or more other groups, residues, parts, or binding units that provide a polypeptide with an extended half-life can be selected from the group consisting of binding units that can bind to serum albumin, e.g., human serum albumin, or serum immunoglobulin, e.g., IgG. In some embodiments, the binding unit can bind to human serum albumin. In some embodiments, the binding unit is ISVD.

[0206] For example, WO04 / 041865 (incorporated in its entirety by reference) describes Nanobodies® that bind to serum albumin (and especially to human serum albumin) and can be ligated to other proteins (e.g., one or more other Nanobodies® that bind to a desired target) in order to increase the half-life of the said protein.

[0207] International application WO06 / 122787 (which is incorporated herein by reference in its entirety) describes a number of Nanobodies® for (human) serum albumin. These Nanobodies® include Alb-1 (SEQ ID NO: 52 in WO06 / 122787, which is incorporated herein by reference) and its humanized variants, such as Nanobody® referred to as Alb-8 (SEQ ID NO: 62 in WO06 / 122787, which is incorporated herein by reference). These can also be used to extend the half-lives of therapeutic proteins and polypeptides, as well as other therapeutic entities or parts.

[0208] Furthermore, WO2012 / 175400 (which is incorporated in its entirety by reference) describes a further improved version of Alb-1, referred to as Alb-23.

[0209] In one embodiment, the polypeptide comprises a serum albumin-binding moiety selected from Alb-1, Alb-3, Alb-4, Alb-5, Alb-6, Alb-7, Alb-8, Alb-9, Alb-10, and Alb-23. In some embodiments, the polypeptide comprises Alb-8 or Alb-23, or a variant thereof, as shown on pages 7-9 of WO2012 / 175400, and an albumin binder as described in WO2012 / 175741, WO2015 / 173325, WO2017 / 080850, WO2017 / 085172, WO2018 / 104444, WO2018 / 134235, and WO2018 / 134234 (each of which is incorporated herein by reference in its entirety). Some non-limiting examples of serum albumin binders are also shown in Table A-4. In some embodiments, the polypeptides of this disclosure include further components as described in item D: D. Binds to human serum albumin, i. CDR1 having the amino acid sequence of SEQ ID NO: 7 or having a difference of 2 or 1 amino acid from SEQ ID NO: 7; ii. CDR2 having the amino acid sequence of SEQ ID NO: 11 or having a difference of 2 or 1 amino acid from SEQ ID NO: 11; and iii. CDR3 having the amino acid sequence of SEQ ID NO: 15 or having a difference of 2 or 1 amino acid from SEQ ID NO: 15; ISVD including.

[0210] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO: 7, CDR2 has the amino acid sequence of SEQ ID NO: 11, and CDR3 has the amino acid sequence of SEQ ID NO: 15.

[0211] Non-limiting examples of such ISVDs that bind to human serum albumin include having one or more, or all, of the framework regions shown in Table A-2 for construct ALB23002 (in addition to the CDR defined in item D above), for example, an ISVD having the full amino acid sequence of construct ALB23002 (see Sequence ID No. 3, Tables A-1 and A-2).

[0212] Item D can also be written using a Kabat definition as follows: D'. Binds to human serum albumin, i. CDR1 having the amino acid sequence of SEQ ID NO: 34 or having a difference of 2 or 1 amino acid from SEQ ID NO: 34; ii. CDR2 having the amino acid sequence of SEQ ID NO: 38 or having a difference of 2 or 1 amino acid from SEQ ID NO: 38; and iii. CDR3 having the amino acid sequence of SEQ ID NO: 15 or having a difference of 2 or 1 amino acid from SEQ ID NO: 15; ISVD including.

[0213] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO: 34, CDR2 has the amino acid sequence of SEQ ID NO: 38, and CDR3 has the amino acid sequence of SEQ ID NO: 15.

[0214] Non-limiting examples of such ISVDs that bind to human serum albumin include those having one or more, or all, of the framework regions (in addition to the CDR defined in item D' above), as shown in Table A-2.1 for construct ALB23002. For example, an ISVD having the full amino acid sequence of construct ALB23002 (see Sequence ID No. 3, Tables A-1 and A-2.1).

[0215] Furthermore, in one embodiment, the amino acid sequence of the ISVD that binds to human serum albumin may have more than 90%, for example more than 95%, or more than 99% sequence identity with SEQ ID NO: 3, and in some cases the CDR is as defined in item D above. In some embodiments, the ISVD that binds to human serum albumin has the amino acid sequence of SEQ ID NO: 3.

[0216] If such an ISVD that binds to human serum albumin has a difference of 2 or 1 amino acid in at least one CDR compared to the corresponding reference CDR sequence (item D above), then the ISVD has at least half the binding affinity of construct ALB23002, at least the same binding affinity, or even higher binding affinity to human serum albumin, where the binding affinity is measured using the same method as SPR.

[0217] When such an ISVD that binds to human serum albumin has a C-terminal position, the ISVD exhibits a C-terminal alanine (A) or glycine (G) elongation and is selected from SEQ ID NOs. 52, 53, 55, 57, 58, 59, 60, 61, 62, and 63 (see Table A-4 below). In one embodiment, the ISVD that binds to human serum albumin has a position other than the C-terminal position (i.e., not the C-terminal ISVD of the polypeptide of this disclosure) and is selected from SEQ ID NOs. 3, 50, 51, 54, and 56 (see Table A-4 below).

[0218] 5.4 Nucleic acid molecules Nucleic acid molecules encoding the polypeptides of this disclosure are also provided.

[0219] A “nucleic acid molecule” (used synonymously with “nucleic acid”) is a chain of nucleotide monomers linked to one another via a phosphate backbone to form a nucleotide sequence. Nucleic acids can be used to transform / transfect host cells or host organisms, for example, for polypeptide expression and / or production. Suitable hosts or host cells for production purposes will be obvious to those skilled in the art and may be, for example, any suitable fungal, prokaryotic or eukaryotic cell or cell line, or any suitable fungal, prokaryotic or eukaryotic organism. Hosts or host cells containing nucleic acids encoding the polypeptides of this disclosure are also included in this disclosure.

[0220] Nucleic acids may be, for example, DNA, RNA, or hybrids thereof, or may contain (e.g., chemically) modified nucleotides such as PNA. Nucleic acids may be single-stranded or double-stranded DNA. For example, the nucleotide sequences of this disclosure may be genomic DNA or cDNA.

[0221] The nucleic acids of this disclosure may be prepared or obtained by means of known methods and / or isolated from suitable natural sources. Nucleotide sequences encoding naturally occurring (poly)peptides may be subjected to site-directed mutagenesis, for example, so that nucleic acid molecules encoding polypeptides having sequence changes are provided. Also, as will be apparent to those skilled in the art, several nucleotide sequences, such as at least one nucleotide sequence encoding a targeting moiety, and nucleic acids encoding one or more linkers, may be linked together in a suitable manner to prepare nucleic acids.

[0222] Techniques for generating nucleic acids are obvious to those skilled in the art, and examples therein, but are not limited to, automated DNA synthesis; site-directed mutagenesis; combining two or more naturally occurring sequences and / or synthetic sequences (or parts of two or more thereof); introducing mutations resulting in the expression of shortened expression products; introducing one or more restriction sites (e.g., to create cassettes and / or regions that can be readily digested and / or ligated using a suitable restriction enzyme); and introducing mutations by PCR reactions using one or more "mismatch" primers.

[0223] 5.5 Vector Vectors comprising nucleic acid molecules encoding the polypeptides of this disclosure are also provided. The vectors used herein are suitable media for delivering genetic material to cells. Examples of vectors include naked nucleic acids, such as plasmids or mRNA, or nucleic acids embedded in larger structures, such as liposomes or viral vectors.

[0224] A vector generally contains, and sometimes may contain, one or more regulatory elements, such as at least one nucleic acid linked to one or more suitable promoters, enhancers, terminators, etc. A vector can be an expression vector, that is, a vector suitable for expressing an encoded polypeptide or construct when, under suitable conditions, for example, the vector is introduced into (e.g., human) cells. In the case of a DNA-based vector, this usually involves the presence of elements for transcription (e.g., promoters and polyA signals) and elements for translation (e.g., Kozak sequences).

[0225] In some embodiments, within a vector, the at least one nucleic acid and the regulatory element are “operably linked” to one another, which generally means they have a functional relationship with one another. For example, a promoter is considered “operably linked” to a coding sequence if the promoter can initiate the transcription and / or expression of the coding sequence or otherwise control / regulate them (where the coding sequence should be understood as being “under the control” of the promoter). Generally, when two nucleotide sequences are operably linked, they are oriented in the same direction and usually within the same reading frame. They are also usually contiguous in nature, but this is also not always necessary.

[0226] In some embodiments, each of the regulatory elements of the vector is capable of providing their intended biological function in the host cell or host organism in which they are intended.

[0227] For example, a promoter, enhancer, or terminator should be "operatable" in the intended host cell or host organism, meaning, for example, that the promoter should be able to initiate the transcription and / or expression of nucleotide sequences, for example, coding sequences operatably linked to them, or otherwise control / regulate them.

[0228] 5.6 Composition The Disclosure also provides a composition comprising at least one polypeptide of the Disclosure, at least one nucleic acid molecule encoding the polypeptide of the Disclosure, or at least one vector comprising such nucleic acid molecule. The composition may be a pharmaceutical composition. The composition may further comprise at least one pharmaceutically acceptable carrier, diluent or excipient and / or adjuvant, and optionally comprise one or more further pharmaceutically active polypeptides and / or compounds.

[0229] 5.7 Host organisms The disclosure also relates to a host cell or host organism comprising the polypeptide of the disclosure, a nucleic acid encoding the polypeptide of the disclosure, and / or a vector comprising a nucleic acid molecule encoding the polypeptide of the disclosure.

[0230] Suitable host cells or host organisms will be apparent to those skilled in the art, and include, for example, any suitable fungal, prokaryotic or eukaryotic cell or cell line, or any suitable fungal, prokaryotic or eukaryotic organism. Specifically, examples include HEK293 cells, CHO cells, Escherichia coli, or Pichia pastoris. In some embodiments, the host is Pichia pastoris.

[0231] 5.8 Methods and Uses of Polypeptides This disclosure also provides a method for producing the polypeptides of this disclosure. The method may include transforming / transfecting a host cell or host organism with a nucleic acid encoding the polypeptide, expressing the polypeptide in the host, and optionally following one or more isolation and / or purification steps. Specifically, this method is: a) Expressing a nucleic acid sequence encoding a polypeptide in a suitable expression system (in a suitable host cell or host organism, or in another expression system); optionally followed by: b) Isolating and / or purifying polypeptides. It may include.

[0232] Suitable host cells or host organisms for production purposes will be obvious to those skilled in the art and may be, for example, any suitable fungal, prokaryotic or eukaryotic cell or cell line, or any suitable fungal, prokaryotic or eukaryotic organism. Specific examples include HEK293 cells, CHO cells, Escherichia coli, or Pichia pastris. In some embodiments, the host is Pichia pastris.

[0233] The polypeptides, nucleic acid molecules, or vectors described herein, or compositions comprising such polypeptides, nucleic acid molecules, or vectors—for example, such polypeptides or compositions comprising such polypeptides—are useful as pharmaceuticals.

[0234] Accordingly, this disclosure provides the polypeptides, nucleic acid molecules, or vectors described herein, or compositions comprising the polypeptides, nucleic acid molecules, or vectors described herein, for use as pharmaceuticals.

[0235] Also provided are polypeptides, nucleic acid molecules, or vectors of the disclosed herein, or compositions comprising such polypeptides, nucleic acid molecules, or vectors, for use in the (prophylactic or therapeutic) treatment of inflammatory diseases and / or autoimmune diseases.

[0236] Furthermore, there is a method for treating (preventively and / or therapeutically) inflammatory diseases and / or autoimmune diseases, comprising administering a pharmaceutically active amount of a polypeptide, nucleic acid molecule or vector of the disclosed herein, or a composition comprising a polypeptide, nucleic acid molecule or vector of the disclosed herein, to a subject in need thereof.

[0237] Furthermore, the use of the polypeptides, nucleic acid molecules, or vectors of the disclosed herein, or compositions comprising the polypeptides, nucleic acid molecules, or vectors of the disclosed herein, is provided in the preparation of pharmaceutical compositions, for example, pharmaceutical compositions for treating inflammatory diseases and / or autoimmune diseases.

[0238] The inflammatory disease and / or autoimmune disease may be, for example, rheumatoid arthritis, hidradenitis suppurativa, and sarcoidosis. Preferably, the inflammatory disease and / or autoimmune disease is rheumatoid arthritis.

[0239] "Subjects" as referred to in this disclosure may be any animal, for example, a mammal. Among mammals, there may be distinctions between humans and non-human animals. Non-human animals may be, for example, companion animals (e.g., dogs, cats), livestock (e.g., cattle, horses, sheep, goats, or pigs), or animals commonly used for research purposes and / or antibody production (e.g., mice, rats, rabbits, cats, dogs, goats, sheep, horses, pigs, non-human primates, for example, crab-eating macaques, or camelids, for example, llamas or alpacas).

[0240] With regard to preventive and / or therapeutic purposes, the target may be any animal, and more specifically, any mammal, such as humans.

[0241] Substances (e.g., polypeptides, nucleic acid molecules, and vectors) or compositions can be administered to a subject by any suitable route of administration, for example, enterally (e.g., orally or rectally) or parenterally (e.g., intracutaneously, sublingually, buccally, transnasally, intra-articularly, intradermally, intramuscularly, intraperitoneally, intravenously, subcutaneously, subdermally, or transmucosally). Parenteral administration, such as intramuscularly, subcutaneously, or intradermally, may be used. In some embodiments, subcutaneous administration is used.

[0242] A polypeptide, nucleic acid molecule, or vector, or a composition containing a polypeptide, nucleic acid molecule, or vector, in an effective amount, may be administered to a subject to provide the intended therapeutic effect.

[0243] One or more doses may be administered. If more than one dose is administered, the doses may be administered at suitable intervals to maximize the effect of the polypeptide, composition, nucleic acid molecule, or vector.

[0244] [Table 2]

[0245] [Table 3]

[0246] [Table 4]

[0247] [Table 5]

[0248] [Table 6]

[0249] [Table 7-1] [Table 7-2]

[0250] [Table 8] [Examples]

[0251] 6.1 Example 1: Production and in vitro characterization of wild-type anti-IL-6 divalent or biparatopic ISVD constructs Monovalent anti-IL-6 ISVDs IL6006B06, IL006B12, IL6007G04, IL6007G05, IL6007G09, IL6010A06, IL6013F12, and IL6017C04 (described in WO2007104529) did not show significant IL-6 blocking ability compared to anti-IL-6 reference mAb 1 (benchmark monoclonal antibody against IL-6) when examined by TF-1 proliferation assay. To improve potency, anti-IL-6 ISVDs were formatted into biparatopic ISVD constructs. The building blocks of the constructs were genetically linked by flexible 35GS or 9GS (GlySer) linkers. ISVDs were expressed in E. coli as FLAG3-HIS6 tagged proteins. Expression was autoinducible and kept on at 30°C. After rotating the cell cultures, the pellets were freeze-thawed to prepare periplasmic extracts, which were then resuspended in dPBS. These extracts were used as starting materials for immobilized metal affinity chromatography (IMAC) using a Nickel IDA / NTA column (Genscript - Atoll). ISVD was eluted from the column with 200 mM sodium acetate pH 4, neutralized with TrisHCl pH 8, and then desalted in dPBS.

[0252] The inhibitory efficacy of anti-IL-6 ISVD was determined by a cell-based assay monitoring IL-6-mediated proliferation of TF-1 cells. To achieve this objective, TF-1 cells were cultured in RPMI 1640, glutamax, HEPES medium (Gibco) supplemented with 10% FBS and 1% sodium pyruvate. TF-1 cells were inoculated into growth medium at a rate of 12,500 cells per well. Purified anti-IL-6 ISVD or a dilution series of a reference compound was added. After incubation at 37°C for 30 minutes, 75 pM human IL-6 (R&D systems catalog no. 200-IL-200|206-IL) was added. After 72 hours, TF-1 cell proliferation was determined using CellTiter-Glo (Promega #G7571) on an EnVision Multilabel Reader (Perkin Elmer).

[0253] Several biparatopic constructs showed improved efficacy against human IL-6, reaching similar efficacy to that of anti-hIL-6 reference mAb 1 (Table 1).

[0254] In addition, we generated bivalent anti-IL-6 ISVDs genetically linked by a flexible 35GS(GlySer) linker and evaluated their efficacy in a second cell-based assay to monitor IL-6-induced pSTAT3 production in THP-1 cells. To achieve this objective, THP-1 cells were cultured in RPMI1640 medium supplemented with Glutamax+ and 10% thermally inactivated FBS. Before inoculation into white 96-well plates, the medium was replaced with HBSS and cells were inoculated at a density of 100,000 cells / well. A diluted series of purified anti-IL-6 ISVDs or a reference anti-IL-6 mAb1 was added along with 300 pM hIL-6 (R&D systems catalog no. 200-IL-200|206-IL) and incubated at 37°C for 20 minutes. Cells were then spun down and lysed. 16 μl of lysed cell supernatant was mixed with an HTRF detection antibody mix for pSTAT3 and total STAT3 (PHOSPHO-STAT3(TYR705)KIT, Cisbio #62AT3PE). Using this kit, pSTAT3(Tyr705) was detected in a sandwich assay format using two different specific antibodies: one labeled with Eu3+ cryptotate (donor) and the other labeled with d2 (acceptor). When the dyes are in close proximity, excitation of the donor by the light source causes fluorescence resonance energy transfer (FRET) to the acceptor, which then fluoresces at a specific wavelength (665 nm). The specific signal modulates in direct proportion to pSTAT3. pSTAT was quantified by measuring its absorbance at 665 nm and total STAT3 by measuring its absorbance at 620 nm using an EnVision Multilabel Reader (Perkin Elmer).

[0255] The bivalent construct did not show a significant increase in potency compared to the monovalent anti-IL-6 ISDV, but the biparatopic anti-IL-6 ISVD showed a significant increase in potency compared to the monovalent or bivalent constructs (Table 2).

[0256] From this operation, 11 types of biparatopic anti-IL-6 ISVDs were selected and coupled to anti-TNF-α ISVDs: IL6013F12-IL6006B06, IL6006B06-IL6017C04, IL6013F12-IL6007G09, IL6006B06-IL6006B12, IL6006B06-IL6010A06, IL6017C04-IL6007G09, IL6006B12-IL6013F12, IL6010A06-IL6007G09, IL6006B12-IL007G09, IL6007G09-IL6006B12, or IL6017C04-IL6006B12.

[0257] [Table 9]

[0258] [Table 10]

[0259] 6.2 Example 2: Sequence optimization of anti-IL-6 monovalent ISVD The anti-IL-6 ISVDs IL6006B12 and IL6017C04 were further sequence-optimized. Sequence optimization involves replacing one or more specific amino acid residues in the sequence to improve one or more (desired) properties of the ISVD. Some examples of such sequence optimizations are described further herein and include, for example, the following:

[0260] This process, known as humanization, involves substitutions in the parental wild-type Nanobody® sequence to obtain a Nanobody® sequence more identical to the human VH3-JH germline consensus sequence. To achieve this, specific amino acids in the FR that differ between Nanobody® and the human VH3-JH germline consensus sequence, excluding so-called hallmark residues, were replaced with human counterparts in a manner that preserves the intact protein structure, activity, and stability.

[0261] Camelization is defined as substitution of the llama germline to increase the stability of ISVD. To achieve this objective, the parental wild-type Nanobody® amino acid sequence was aligned with the Nanobody® llama IGHV germline amino acid sequence (identified as the top hit from BlastP analysis of Nanobody® against the llama IGHV germline).

[0262] Substitutions include those that improve long-term stability or properties under storage, those that increase expression levels in desirable host cells or host organisms, and / or those that remove or reduce (undesirable) post-translational modifications (such as glycosylation or phosphorylation) depending on the host cell or host organism. To avoid N-terminal pyroglutamate formation, E1D mutations are typically introduced into the N-terminal building block of multivalent nanobody without affecting potency or stability. Therefore, E1D mutations are not consistently introduced during building block sequence optimization.

[0263] Mutations to Val at position 11 and Leu at position 89 to minimize binding of any naturally occurring existing antibody activity.

[0264] Sequence optimization of anti-IL-6 ISVD IL6006B12 resulted in the final sequence-optimized variant F027201040, which includes five amino acid substitutions (i.e., L11V, S52aG, S60A, K83R, V89L) compared to the parent ISVD IL6006B12. Sequence optimization of anti-IL-6 ISVD IL6017C04 resulted in the final sequence-optimized variant F027200921, which includes six amino acid substitutions (i.e., E1D, L11V, A14P, D16G, K83R, V89L) compared to the parent ISVD IL6017C04.

[0265] Sequence-optimized variants were assembled from oligonucleotides using PCR overlap extension. The variants were expressed in E. coli and purified by IMAC and desalting. F027201040 was evaluated for its hIL-6 binding ability by surface plasmon resonance, and F027200921 was evaluated for its neutralizing activity by TF1 growth assay. The monomeric behavior of both variants was monitored by size exclusion HPLC (SE-HPLC). The thermal stability of the variants was tested by a thermal shift assay (TSA) using a Lightcycler (Roche). In this assay, parental ISVDs and their variants were incubated at different pH levels in the presence of sypro orange, and a temperature gradient was applied. As the ISVDs began to denature, sypro orange bound, and the measured fluorescence suddenly increased, allowing for the determination of the melting temperature for a given pH. The results are summarized in Tables 3 and 4.

[0266] [Table 11]

[0267] F027201040 showed similar dissociation rates of binding to IL-6 in SPR compared to its parent ISVD IL006B12. The Tm of F027201040 was 7°C higher than that of its parent ISVD IL006B12. The framework identity % of F027201040 in the framework region was 88% based on the AbM definition (see Antibody Engineering, Vol. 2 by Kontermann & Dubel (eds.), Springer Verlag Heidelberg Berlin, 2010) and 86% based on the Kabat definition.

[0268] [Table 12]

[0269] The potency of F027200921 in the TF1 proliferation assay was similar to that of the WT sequence. The Tm of F027200921 was 1°C lower than that of the parent ISVD F027200921. The framework identity % in the framework region of F027200921 was 88% based on the AbM definition and 86% based on the Kabat definition.

[0270] [Table 13]

[0271] 6.3 Example 3: Generation of a multi-specific ISVD construct The identification of ISVD-containing polypeptide F027201062 (SEQ ID NO: 1), which binds to TNFα and IL-6, was obtained through a data-driven multispecificity manipulation and formatting strategy, including three anti-TNFα VHH building blocks (TNF06C11 (WO2017081320), TNF01C02 (WO2015173325, SEQ ID NO: 327), and VHH#3 (WO2004041862)), and six anti-IL-6 VHH building blocks (IL6006B06, IL006B12, IL6007G04, IL6007G05, IL6007G09, IL6010A06, IL6013F12, and IL6017C04, WO2007104529) and anti-HSA The VHH building block ALB23002 (see WO2017134234, SEQ ID NO: 10 / WO2018131234) was included. Different positions / orientations of the building block were applied and demonstrated to be important for different parameters (potency, cross-reactivity, expression, etc.). Linkers between building blocks were kept at 9GS in all constructs to minimize binding of existing antibodies as much as possible.

[0272] A panel containing 87 constructs (Table 6) was transformed with Pichia pastrix for small-scale production. ISVD expression induction was achieved by stepwise addition of methanol. Clarification medium containing secreted ISVD was used as a starting material for purification via protein A affinity chromatography and subsequent desalting. The purified samples were used for expression evaluation and functional characterization. Regarding the latter, potency was determined by assaying the inhibition of TNFα-induced NFκB activation and IL-6-induced proliferation in TF-1 cells in vitro (as described in Examples 8 and 9).

[0273] In addition, ISVD expression levels were monitored in clarified medium. Constructs were classified according to the following expression level criteria: low = <50 μg / ml, moderate = 51-100 μg / ml, high = >101 μg / ml (Table 6).

[0274] [Table 14-1] [Table 14-2] [Table 14-3]

[0275] Some constructs showed impaired potency and expression depending on valence, the ISVD building block used, and the relative position of the ISVD building block. Bispecific ISVDs containing anti-TNFα TNF006C11, bivalent TNF001C02, and bivalent VHH#3E showed potency similar to the reference anti-TNFα mAb (benchmark monoclonal antibody against TNF-alpha), while ISVDs containing monovalent TNF001C02 were 5 to 25 times less potent than the reference anti-TNFα mAb. All ISVDs containing bivalent VHH#3E showed low expression levels and were therefore excluded.

[0276] All bispecific ISVDs, including anti-IL-6 ISVD IL6006B06, showed impaired potency, with the 6B06-6B12 combination exhibiting the lowest performance. All bispecific ISVDs, including anti-IL-6 ISVD IL6013F12, showed degradation when expressed in Pichia pastoris and therefore could not be manufactured. The remaining bispecific ISVDs, including the biparatopic anti-IL-6 ISVDs 10A06-7G09, 17C04-7G09, 17C04-6B12, 6B12-7G09, and 7G09-6B12, generally showed similar potency to anti-IL-6 reference mAb 1, although the cross-reactivity to cynomolgus monkey IL-6 was significantly impaired for 7G09-6B12.

[0277] Subsequently, the large panel was reduced to a smaller panel of multispecific constructs consisting of seven ISVD constructs that demonstrated efficacy against both targets (human and cynomolgus monkeys) and had the potential for high expression levels based on preliminary yield estimates: F027200809, F027200812, F027200817, F027200927, F027201060, F027201061, and F027201062. Three additional ISVD constructs, F027200925, F027200926, and F027201029, were selected primarily based on their potential for high expression levels. However, the latter three constructs showed high efficacy against one target but only intermediate efficacy against the others (Table 7a).

[0278] Table 7b shows the three-dimensional arrangement of ISVD structures F027200927 and F027200925.

[0279] Tables 7c and 7d show the arrangement of each individual building block in ISVD structures F027200927 and F027200925, respectively.

[0280] Tables 7e, 7f, 7g, and 7h show the sequences of the three CDR regions and four framework regions present in each individual building block ISVD construct F027200927 and F027200925 (both numbered according to AbM and Kabat). Finally, Table 7i shows the complete amino acid sequences of ISVD constructs F027200927 and F027200925.

[0281] [Table 15]

[0282] [Table 16]

[0283] [Table 17]

[0284] [Table 18]

[0285] [Table 19]

[0286] [Table 20]

[0287] [Table 21]

[0288] [Table 22]

[0289] [Table 23]

[0290] Larger 2L and 5L productions of panels containing 11 ISVD constructs were performed in Pichia pastrix to determine expression yield and evaluate biophysical properties. It was demonstrated that specific combinations of anti-IL-6 and anti-TNF-α building blocks are necessary to obtain high expression yields as well as sufficient solubility and biophysical stability. These are illustrated in Table 8. For example, constructs F027201062 and F027200812, which were extremely similar in composition except for one building block at position 3, exhibited significantly different expression and solubility profiles.

[0291] [Table 24]

[0292] Ultimately, ISVD construct F027201062 was selected for further characterization due to its favorable combination of potency and CMC properties (e.g., solubility and expression).

[0293] Example 4: Multispecific ISVD construct: Binding affinity to TNF-α, IL-6, and serum albumin The affinity of F027201062 to human and cynomolgus monkey TNF-α and IL-6, as well as to human, cynomolgus monkey, and mouse serum albumin (SA), expressed as the equilibrium dissociation constant (KD), was quantified by solution affinity measurement using a Gyrolab xP Workstation (Gyros).

[0294] In KD-controlled measurements, serial dilutions of TNF-α or IL-6 (ranging from 1.3 μM to 0.1 pM), or human or cynomolgus monkey SA (ranging from 13 μM to 1 pM), or mouse SA (ranging from 133 μM to 30 pM), were mixed with a fixed amount of F027201062 (80 pM for TNF-α, 20 pM for IL-6, 300 pM for human and cynomolgus monkey SA, and 600 pM for mouse SA) and interacted. The mixtures were incubated for either 48 hours or 72 hours (for IL-6 and TNF-α) or 2 hours (for SA) until equilibrium was reached.

[0295] In receptor-controlled measurements, serial dilutions of TNF-α or IL-6 (ranging from 1.3 μM to 0.1 pM), or human and cynomolgus monkey SA (ranging from 13 μM to 1 pM), or mouse SA (ranging from 133 μM to 30 pM), were mixed with a fixed amount of F027201062 (30 nM for TNF-α, 5 nM for IL-6, 1 μM for human and cynomolgus monkey SA, and 2 μmM for mouse SA) and interacted. The mixtures were incubated for either 48 or 72 hours (for IL-6 and TNFα) or 2 hours (for SA) until equilibrium was reached.

[0296] Biotinylated human TNF-α / IL-6 / serum albumin was captured on the microstructure of a Gyrolab Bioaffy 1000CD, which contained a bead column and was used as a molecular probe to capture free F027201062 from an equilibrated solution. A mixture of TNF-α / IL-6 / serum albumin and F027201062 (containing free TNF-α / IL-6 / serum albumin, free F027201062, and the TNF-α / IL-6 / serum albumin-F027201062 complex) was flowed through the beads, capturing a small percentage of free F027201062 proportional to the concentration of the free ISVD construct. Next, the fluorescently labeled anti-VHH antibody, ABH0086-Alexa647, was injected to label all captured F027201062, and after rinsing off excess fluorescent probe, the change in fluorescence was determined. A series of dilutions were fitted using Gyrolab Analysis software, and K D And by analyzing the curve controlled by the receptor, K D The values ​​were determined. The results (Table 9) demonstrate that the multispecific ISVD construct binds with high affinity to human / cynomolgus monkey IL-6 and human / cynomolgus monkey TNF-α.

[0297] [Table 25]

[0298] 6.4 Example 5: Binding of multispecific ISVD constructs to membrane-bound TNFα The binding of F027201062 to membrane-bound TNFα was demonstrated using flow cytometry on HEK293H cells expressing human membrane-bound TNFα. Briefly, cells were fixed in PBS with 4% paraformaldehyde and 0.1% glutaraldehyde (to enhance detection of membrane-bound TNFα). Subsequently, cells were measured at 1 × 10⁶. 4Cells were planted at a cell / well density and incubated for 24 hours at room temperature in or without 30 μM HSA with F027201062 or an anti-TNFα reference mAb in a dilution series starting from 100 nM to 0.5 pM. Cells were washed three times, then incubated with an anti-VHH mAb (ABH00119) at 4°C for 30 minutes, washed again, and incubated with a goat anti-mouse or anti-human PE-labeled antibody at 4°C for 30 minutes. Samples were washed and resuspended in FACS buffer (D-PBS containing 10% FBS supplemented with 5 nM TOPRO3 and 0.05% sodium azide). Cell suspensions were then analyzed with iQuescreener. EC50 values ​​were calculated using GraphPad Prism. The EC50 values ​​for F027201062 and the anti-TNFα reference mAb were equivalent (Table 10).

[0299] [Table 26]

[0300] 6.5 Example 6: Multispecific ISVD construct selectively binds to TNF-α and IL-6 Absence of binding to TNF-α and IL-6-related human targets was assessed using SPR (Proteon XPR36). Human IL23, IL27, CNTF, oncostatin M (OSM), and IL11 were evaluated as IL-6-related cytokines or cytokines sharing the gp130 receptor. TNF superfamily members, human FASL, TNFβ, LIGHT, TL-1A, and RANKL were tested as TNFα-related cytokines.

[0301] To achieve this objective, the target was immobilized on a GLC sensor tip with 25 μg / mL of ligand for 200 seconds using an amine coupling (ProteOn Amine Coupling Kit, catalog no. 176-2410), with EDC / NHS injected for 80 seconds for activation and 1 M ethanolamine HCl injected for 150 seconds for deactivation. The flow rate during activation, deactivation, and ligand injection was set to 30 μl / min. The pH of the 10 mM acetate fixation buffer was selected by subtracting approximately 1.5 from the pI of each ligand. Next, 300 nM F027201062 was injected for 2 minutes and dissociated for 600 seconds at a flow rate of 45 μL / min. PBS (pH 7.4) + 0.005% Tween20 was used as the running buffer. As positive controls, 0.3 μM α-IL11 Ab, α-OSM Ab, α-CNTF Ab, α-IL27 Ab, α-IL27A Ab, α-IL23 p19 Ab, α-hFASL Ab, 0.3 μM α-hTNFβ Ab, 0.5 μM α-hLIGHT Ab, 0.3 μM α-hTL-1A Ab, and 0.5 μM α-hRANKL VHH were injected.

[0302] The interaction between F027201062 and the immobilized target in relation to the positive control was measured by detecting the increase in refractive index resulting from the mass change on the chip during binding.

[0303] None of the positive controls bound to their respective targets. No binding of ISVD construct F027201062 to human TRAIL, CD30L, CD40L, FASL, TNF, LIGHT, TL-1A, RANKL, IL23, IL27, CNTF, oncostatin M, or IL11 was detected.

[0304] 6.6 Example 7: Simultaneous binding of multispecific ISVD constructs to hIL-6, hTNFa, and HSA Using a Biacore 8K+ instrument, we determined whether the ISVD construct F027201062 could simultaneously bind to recombinant soluble hTNF-α and hIL-6. To achieve this objective, HSA was immobilized to a CM5 sensor tip at a level of approximately 1600 RU by amine coupling. To capture the ISVD construct with the ALB23002 building block, 100 nM F027201062 was injected onto the HSA surface at a flow rate of 10 μL / min for 2 minutes. Subsequently, either 100 nM hIL-6, hTNF-α, or hOX40L, or a mixture of 100 nM IL-6 + 100 nM TNFα, 100 nM IL-6 + 100 nM OX40L, or 100 nM TNF-α + 100 nM OX40L, was injected at a flow rate of 45 μL / min for 2 minutes, followed by a 600-second dissociation step. The HSA surface was regenerated by injecting HCl (100 mM) at 45 μl / min for 2 minutes. The sensorgram (Figure 1) demonstrates that the ISVD construct F027201062 can simultaneously bind to hIL-6 and hTNF-α, as indicated by the increase in response units after capture in the HSA: an increase of approximately 150 RU from hTNF-α alone, an increase of approximately 120 RU from hIL-6 alone, and an increase of approximately 340 RU for the IL-6 and TNF-α mixture.

[0305] 6.7 Example 8: In vitro inhibition of TNF-α-induced NFκB activation by a multispecific ISVD construct. HEK293_NFκB-NLucP cells are TNF receptor-expressing cells stably transfected with a reporter construct encoding nanoluciferase under the control of an NFκB-dependent promoter. Incubation of cells with lysic human and cynomolgus monkey TNF-α resulted in NFκB-mediated nanoluciferase gene expression. Nanoluciferase luminescence was measured using a Nano-Glo luciferase substrate mixed with lysis buffer in a 1:50 ratio and added to the cells. Samples were shaken for 5 minutes to achieve complete lysis. Glo response® HEK293_NFκB-NLucP cells were inoculated at 20,000 cells / well in standard growth medium in 96-well plates treated with white tissue culture (TC) with a clear bottom. Dilution series of F027201062 or anti-TNF-α reference mAbs were added to 25 pM human or 70 pM cynomolgus monkey TNF-α and incubated with cells at 37°C for 5 hours in the presence of 30 μM HSA.

[0306] F027201062 inhibited human and cynomolgus monkey TNF-α-induced NFκB activation in a concentration-dependent manner, with mean IC50s of 53 pM (for human TNF-α) and 158 pM (for cynomolgus monkey TNF-α) comparable to the reference compound anti-hTNF-α mAb (Table 11, Figure 2). Negative controls ISVD and IRR00096 did not show inhibition.

[0307] [Table 27]

[0308] 6.8 Example 9: Multispecific ISVD construct inhibition of IL-6-induced proliferation of TF-1 cells The inhibitory efficacy of F027201062 was determined by a cell-based assay monitoring IL-6-mediated proliferation of TF-1 cells. To achieve this objective, TF-1 cells were cultured in RPMI 1640, glutamax, and HEPES medium (Gibco) supplemented with 10% FBS and 1% sodium pyruvate. TF-1 cells were inoculated into growth medium at a rate of 12,500 cells per well. Purified anti-IL-6 ISVD or a dilution series of a reference compound was added. After incubation at 37°C for 30 minutes, 75 pM human IL-6 (R&D Systems catalog no. 200-IL-200|206-IL) or cynomolgus monkey IL-6 (Evotek, catalog no. APP-7634) was added. After 72 hours, the proliferation of TF-1 cells was determined using CellTiter-Glo (Promega #G7571) with an EnVision Multilabel Reader (Perkin Elmer).

[0309] F027201062 inhibited human and cynomolgus monkey IL-6-induced proliferation of TF-1 cells in a concentration-dependent manner, with mean IC50s of 34 pM (for human IL-6) and 56 pM (for cynomolgus monkey IL-6) that were equivalent to and better than anti-IL-6 reference mAb 1 and anti-IL-6 reference mAb 2 (Table 12, Figure 3).

[0310] [Table 28]

[0311] 6.9 Example 10: Binding of a multispecific ISVD construct to an existing antibody The reactivity of existing antibodies to the ISVD construct F027201062 was evaluated using normal human serum (n=96) with ProteOn XPR36 (Bio-Rad Laboratories, Inc.). PBS / Tween (phosphate-buffered saline, pH 7.4, 0.005% Tween 20) was used as the running buffer, and the experiment was conducted at 25°C.

[0312] ISVDs were captured on the chip via the binding of ALB23002 building blocks to HSAs immobilized on the chip. To immobilize the HSAs, the ligand lane of the ProteOn GLC sensor chip was activated with EDC / NHS (flow rate 30 μI / min), and the HSAs were injected at a rate of 100 μl / ml in ProteOn acetate buffer at pH 4.5 to an immobilization level of approximately 2500 RU. After immobilization, the surface was inactivated with ethanolamine HCl (flow rate 30 μI / min).

[0313] Subsequently, the ISVD construct was injected onto the HSA surface at 45 μl / min for 2 minutes to achieve an ISVD capture level of approximately 800 RU. Samples containing existing antibodies were centrifuged at 14,000 rpm for 2 minutes, the supernatant was diluted 1:10 with PBS-Tween20 (0.005%), and then injected at 45 μl / min for 2 minutes, followed by a subsequent 400-second dissociation step. After each cycle (i.e., before the new ISVD capture and blood sample injection step), the HSA surface was regenerated by injecting HCl (100 mM) at 45 μl / min for 2 minutes. After dual reference by 1) ISVD-HSA dissociation and 2) nonspecific binding to the reference ligand lane, a sensorogram showing existing antibody binding was obtained. The binding level of existing antibodies was determined by setting a reporting point at 125 seconds (5 seconds after the end of association). We calculated the percentage reduction in binding in existing antibodies compared to the binding level at 125 seconds in the reference ISVD.

[0314] The quadrivalent ISVD construct F027201062 was optimized to reduce binding to existing antibodies by introducing mutations L11V and V89L and C-terminal alanine in each building block, resulting in substantially less binding to existing antibodies compared to the unoptimized pentavalent ISVD construct F027301186 (Figure 4).

[0315] 6.10 Example 11: Sustained long-term remission of mouse collagen-induced arthritis by a combination of mouse anti-TNF-α and anti-IL-6 surrogate antibodies. Rheumatoid arthritis is a destructive autoimmune disease that attacks peripheral joints. A collagen-induced arthritis (CIA) mouse model replicates the erosive disease. To induce an immune response against joint components, susceptible DBA / 1 mice were immunized twice with 100 μg adjuvant chicken type II collagen. The immune response initiated against type II collagen spreads to the intrinsic articular cartilage, resulting in clinically evident arthritis. After the second immunization on day 21, progressive arthritis became evident with swelling, erythema, and sometimes joint ankylosis of the ankles and limbs. The severity of arthritis was clinically assessed for each limb using a scoring system detailed in Table 13 below.

[0316] [Table 29]

[0317] To evaluate the combined effects of TNF and IL-6 blockade on disease severity and progression, N=13 immunized male DBA / 1 mice were treated with blocking antibodies against mouse TNF, mouse IL-6, or a combination of both. Mice were treated by twice-weekly intraperitoneal injections, starting at 22 days post-initial immunization and continuing until day 55. As shown in Figure 5, clinical arthritis gradually developed from day 21 onward. Mice treated with either anti-muTNF or a combination of anti-muTNF and anti-muIL-6 showed slower progression and lower severity of arthritis than mice treated with isotype control antibodies or anti-muIL-6 alone. Upon discontinuation of treatment at day 55, disease rebound was observed in mice treated with anti-muTNF alone, quickly reaching a severity level comparable to that of isotype control or anti-muIL-6. However, mice treated with a combination of both anti-muTNF and anti-muIL-6 did not relapse into arthritis progression and maintained their response despite discontinuation of treatment. Figure 6 shows an analysis of the area under the curve of arthritis scores over time for the entire study period, the treatment period, and the off-treatment period. The latter was significantly suppressed by concomitant treatment, indicating a sustained effect on disease progression.

[0318] In this model, arthritis was initiated by an antibody response to type II collagen vaccination. Plasma levels of anti-type II collagen antibodies were determined by ELISA at day 91. As shown in Figure 7, all treatments reduced anti-type II collagen antibody titers, with the greatest reduction observed in mice treated with both anti-muTNF and anti-muIL-6.

[0319] After sacrifice of mice on day 91, the hind limbs were collected, and the metatarsal joints were prepared for histological evaluation of arthritis. Hematoxylin, eosin, and safranin-O stained sections were scored in a blinded manner on a scale of 0–5 across four sides (Table 14).

[0320] [Table 30] As shown in Figure 8, statistically significant improvements in histological scores for pannus formation and bone destruction were achieved in mice treated with a combination of anti-muTNF and anti-muIL-6 compared to isotype control antibodies.

[0321] In summary, these data suggest that combination therapy blocking both the TNF and IL-6 inflammatory pathways yielded the highest therapeutic efficacy. Importantly, the combination therapy resulted in sustained responses even in the absence of aggressive treatment.

[0322] 6.11 Example 12: RNA-seq data analysis from CIA (collagen-induced arthritis) models treated with anti-TNF-alpha, anti-IL6, and anti-TNF-alpha / IL6 combination. Total RNA from mouse forelimb tissue samples from CIA was purified using the RNAeasy kit (Qiagen), and paired-end sequencing of 2 × 51 million–66 million reads was performed on the NovaSeq platform (Illumina) at ATLAS Biolabs GmbH, Berlin. Bioinformatics analysis of the RNA-seq raw data was performed using OmicSoft Studio software package version 10.01.118 (Qiagen). Mapping of RNA-seq reads (fastq files) to the mouse genome was performed using OmicSoftGenCode.V19 as a gene model with mouse B.38 as the reference genome and OSA4 as the aligner.

[0323] Venn diagram analysis of differentially expressed genes (DEGs) The Venn diagram in Figure 9(A) shows the overlap of DEGs identified from anti-TNF-alpha, anti-IL6, and anti-TNF-alpha / IL6 combined treatments in the CIA model. DEGs were determined using the DESeq2 statistical test (Love, MI, Huber, W., Anders, S. Moderated estimation of fold change and dispersion for RNA-seq data with DESeq2. Genome Biol 2014;15(12):550) by comparing RNA-seq samples from standard conventional anti-TNF-alpha antibody treatment (n=13 samples), standard conventional anti-IL6 antibody treatment (MP5-20F3; n=13), and anti-TNF-alpha / anti-IL-6 combined treatment (n=13) with samples from isotyped treatment (IgG control; n=13). DEGs with log2x change > 1,2 and Benjamini-Hochberg (BH-FDR) corrected p-value < 0,05 were considered significant. Based on the number of DEGs, Venn diagram analysis shows an additive effect of anti-TNF-alpha / IL-6 combination therapy compared to monotherapy with anti-TNF-alpha or anti-IL-6.

[0324] Pathway mapping of differentially expressed genes (DEGs) The pathway map in Figure 9(B) shows the top 20 canonical pathways from gene set enrichment analysis of DEG using supervised integrated biological knowledge bases from Ingenuity (Qiagen) and MetaCore (Clarivate). DEG from collagen-induced arthritis (CIA) was determined using DESeq2, comparing samples from isotyped treatment (IgG control group, n=13) with untreated samples without collagen-induced arthritis (none group, n=4). DEG from anti-TNF-alpha / IL-6 combination treatment was determined using DESeq2, comparing samples from anti-TNF-alpha / IL-6 (XT.3+MP5-20F3; n=13) with samples from isotyped treatment (IgG control group, n=13). The metabolic and immune signaling pathways in both maps show inverse scores from collagen-induced arthritis and anti-TNF-alpha / IL-6 combination treatment at various false detection rates (FDRs).

[0325] 6.12 Example 13: A quantitative systems pharmacology (QSP) model for rheumatoid arthritis predicts increased remission at lower doses of F027201062 (compared to anti-hTNF-α and anti-hIL-6 reference mAbs). The applicant developed a dedicated quantitative systems pharmacological model for rheumatoid arthritis (RA) that examines relevant tissues, cells, and mediators in the blood and synovial membrane. Mechanistic details, including biological interactions, were parameterized using extensive in vitro data from both internal and publicly available external sources. The model was then tested and validated with clinical data from various studies using methotrexate, JAK inhibitors, anti-IL-6R, anti-IL-6, and anti-TNF treatments.

[0326] Based on this model, the reduction in DAS28-CRP as a result of reduced disease activity in the synovial membrane was simulated for the average patient with moderate to severe rheumatoid arthritis over a 52-week treatment period. The nanobody F027201062 was able to simultaneously bind to TNF-α and IL-6, achieving a greater reduction in DAS28-CRP compared to monotherapy with a dose of 20 mg every two weeks, and it was predicted that the reference patient would achieve DAS28-CRP remission after 24 weeks. The nanobody simulation examined the human pharmacokinetics predicted from animal and in vitro data. For target binding, the target binding parameter of the nanobody was calculated using in vitro IC50 data from cell assays, along with published target binding parameters for anti-hTNF and anti-hIL-6 comparator mAbs (Figure 10).

[0327] 6.13 Example 14: Additive efficacy of anti-TNF-α and anti-IL-6 against MMP-1 and G-CSF in a human RA-FLS / T cell co-culture model We developed an in vitro model of rheumatoid arthritis that mimics the concentrations of TNF-α and IL-6 in the joints of patients. Simply put, fibroblast-like synovial cells (RA-FLS) derived from rheumatoid arthritis patients were co-cultured with CD4+ T cells derived from healthy human donors. Additional stimulation induced endogenous secretion of TNF-α and IL-6. Treatment with anti-hTNF-α and anti-hIL-6 reference mAbs partially reduced MMP-1 and G-CSF secretion, but combination therapy and F027201062 achieved stronger and greater inhibition.

[0328] The detailed protocol for the assay reflecting IL-6 transsignaling is described below: RA-FLS cells were inoculated at a density of 10,000 cells / well in a 96-well format of synovial cell basal medium (Pelobiotech) containing growth supplements. The following day, PBMCs were isolated from the blood of healthy human donors using Ficol gradient centrifugation. CD4+ T cells were isolated from PBMCs using magnetic separation (negative selection).

[0329] RA-FLS medium was replaced with medium containing isotype controls, comparator antibodies, and ISVD at their respective concentrations (1:10 dilutions from 200 nM, 6 different concentrations, in a triple denomination). IgG1 isotype control was used as a negative control for comparator antibodies, while VHH IRR00119 was used as an ISVD isotype negative control. Anti-human TNF-α and anti-human IL-6 reference antibodies were used as comparators. Furthermore, combinations of both comparators at total doses were used as additional positive controls to demonstrate additive efficacy. The following ISVD constructs: F027200926 and F027201062 were evaluated in this model. Plate effect was avoided by varying the position of all constructs within the triple denomination.

[0330] Subsequently, 100,000 CD4+ T cells (in synovial cell basal medium containing proliferation supplements) were added to FLS. Finally, this co-culture was stimulated for 48 hours with 100 ng / ml human recombinant IL-17A, 100 ng / ml sIL-6R, and 100 ng / ml soluble anti-CD3. After 48 hours, the cells were centrifuged, the supernatant was collected, and stored at -20°C. MMP-1 and G-CSF levels were measured using Luminex technology. Donors that did not respond to anti-hTNF-α comparator mAbs were excluded (as they did not have the potential to demonstrate additive efficacy and dual targeting of the ISVD construct).

[0331] Endogenous secretion of TNF-α and IL-6 was measured after 48 hours of stimulation with IL-17A, sIL-6R, and anti-CD3. Stimulated co-cultures induced increased secretion of TNF-α (below detection limit in unstimulated cells) and IL-6. Stimulated co-cultures secreted 4.4 pg / ml IL-6 and 7977 pg / ml TNF-α (mean values ​​from 8 donors, Figure 11). These values ​​were comparable to median values ​​of 24 ± 21 pg / ml TNF-α and 13400 ± 12700 pg / ml IL-6 collected from human rheumatoid arthritis joints in various publications.

[0332] To evaluate the efficacy of ISVD against MMP-1 and G-CSF, RA-FLS cells from one donor were incubated with T cells from eight different human donors. The inventors did not observe any dose-dependent effect of either isotype control on MMP-1 secretion. Anti-hTNF-α reference mAbs partially reduced MMP-1 secretion. Anti-hIL-6 reference mAbs were more effective than anti-hTNF-α comparator mAbs, but the combination of both antibodies showed the highest efficacy. Both ISVD constructs were as effective as the comparator antibody combination (administered 200nM Ab1 + 200nM Ab2) and showed a dose-dependent effect (Figure 12, 8 donors). Similar results were obtained for G-CSF (Figure 13, 8 donors).

[0333] 6.14 Example 15: Additive efficacy of anti-TNF-α and anti-IL-6 against CXCL13 in a human adenoid model The inventors evaluated the additive efficacy of F027201062 in a human pharyngeal tonsil (adenoid) model consisting of follicular helper T cells (Tfh) and germinal center B cells. In short, the inventors performed high-density lymphoid agglutination culture with cryopreserved lymphocytes. This culture was stimulated with mutant pertussis toxin to induce an AIM (activation-inducing marker) response (Schmidt, A. et al. 2020 Complex human adenoid tissue-based ex vivo culture systems reveal anti-inflammatory drug effects on germinal center T and B cells. EBioMedicine 53, 102684, doi:10.1016 / j.ebiom.2020.102684). Treatment with anti-hTNF-α and anti-hIL-6 reference mAbs partially reduced CXCL13 secretion, but the combination and F027201062 achieved stronger and greater inhibition.

[0334] The detailed protocol is described below: Adenoid tissue from surgery was collected in RPMI medium (without supplements) at 4°C. The tissue was further processed postoperatively as follows: Adenoid-derived tissue and cells were cultured in RPMI medium (containing l-glutamine) containing 15% (v / v) FBS (Gibco fetal bovine serum, qualified, heat-inactivated) and supplements (0.1 mM MEM non-essential amino acids, 1 mM MEM sodium pyruvate, 50 μg / ml gentamicin, 2.5 μg / ml amphotericin B, 0.3 μg / ml ticarcillin, 0.01 μg / ml clavulanic acid). The tissue was washed twice with PBS and dissected in CMT medium containing 15% (v / v) FBS (Gibco fetal bovine serum, qualified, heat-inactivated) and supplements (0.1 mM MEM non-essential amino acids, 1 mM MEM sodium pyruvate, 50 μg / ml gentamicin, 2.5 μg / ml amphotericin B, 0.3 μg / ml ticarcillin, 0.01 μg / ml clavulanic acid) in a dish containing RPMI medium (containing l-glutamine). Bloody cauterized tissue was discarded. The remaining tissue and dissection medium were constantly filtered through a 40 μm cell strainer submerged in CMT medium, mechanically disrupted with a syringe plunger. The suspended cells were then washed in CMT medium (500 × g, 5 min), counted, and aspirated into 10% DMSO / 90% FCS at 12.5–100 Mio cells / ml for cryopreservation.

[0335] On the day of the experiment, the cryopreserved adenoid suspension cells were thawed and then placed in a 96U well plate in a 1x10⁶ arrangement. 6Cells were cultured in cells / well. Cells were left unstimulated or stimulated with pertussis toxin mutants (PT; enzymatically inactive point mutants, highly purified and low endotoxin tested, List Biological Laboratories via Biotrend) at a final concentration of 1 μg / ml. Where indicated, cultures were treated with the following compounds: isotype controls, comparator antibodies, and ISVD at their respective concentrations (1:10 dilutions from 200 nM, 4-5 different concentrations, 2 sets). IgG1 isotype controls were used as negative controls against comparator antibodies, while VHH IRR00119 was used as an ISVD isotype negative control. Anti-human TNF-α and anti-human IL-6 reference antibodies were used as comparators. In addition, combinations of both comparators at total doses were used as additional positive controls to demonstrate additive efficacy. The following ISVD construct: F027201062 was evaluated in this model. Eighteen hours after stimulation, the cells were centrifuged, the supernatant was collected, and stored at -20°C. CXCL13 levels were determined and then analyzed by ELISA.

[0336] To evaluate the efficacy of ISVD against MMP-1 and G-CSF, up to seven adenoid donors were assessed (depending on the test concentration). Anti-hTNF-α and anti-hIL-6 reference mAbs partially reduced CXCL13 secretion. Combinations of both anti-hTNF-α and anti-hIL-6 completely inhibited pertussis toxin-induced CXCL13 increase in a dose-dependent manner. F027201062 was as effective as combinations of both comparator antibodies (Figure 14, 4-7 donors).

[0337] To focus on the maximum efficacy at high concentrations (data from all seven donors available for 200 nM), the inventors then evaluated the additive effects of F027201062 compared to monospecific anti-hTNF-α and anti-hIL-6 comparator antibodies, using one-way ANOVA and Tukey correction. F027201062 was significantly more effective than equimolar doses (200 nM) of anti-hTNF-α comparator antibody (p-value: 0.0002) and anti-hIL-6 comparator antibody (p-value: 0.0077). There were no significant or slight differences between F027201062 and the combinations of 200 nM anti-hTNF-α and 200 nM anti-hIL-6 reference antibodies (Figure 15, 7 donors).

[0338] 6.15 Example 16: Anti-TNF-α efficacy of various ISVD constructs in human whole blood assays The inventors analyzed the efficacy of blocking TNF-α in human whole blood, which is in a more physiological state. Human whole blood was stimulated with SEB to secrete endogenous TNF-α and treated with various concentrations of anti-hTNF-α reference antibodies, various ISVDs, and corresponding isotype controls.

[0339] In detail: Blood from a healthy human donor was aspirated into a Vacutainer blood collection tube (BD #368480) in the presence of heparin sodium [17 IU / ml] as an anticoagulant. SEB was reconstituted with sterile water as a stock solution [1 mg / ml] to prepare a working solution containing SEB. Working solutions were prepared for negative IgG1 control antibody, anti-hTNF-α comparator antibody (positive control), negative control VHH IRR00119, and multispecific anti-TNF-α / anti-IL-6 ISVD constructs F027200926, F027201029, F027201060, F027201061, and F027201062.

[0340] Serial dilutions of antibodies and ISVD constructs at final concentrations of 13 pM to 200 nM were added in 10 μL each to a 96-well V-bottom microplate in medium [RPMI-1640 (Gibco) + 10% human AB serum (Sigma; order number H3667) + 1% PenStrep]. 10 μL of SEB from the medium was added to each well of the 96-well plate to create a pre-incubation mixture of human blood and antibody or ISVD construct. Finally, 80 μL of human blood was added to each well. The samples were gently mixed, the plate was sealed with a sterile lid, and the plate was incubated at 37°C, 5% CO2, and 95% rH for 6 hours. After incubation, 200 μL of PBS was added, and the blood samples were centrifuged at 200 × g for 15 minutes. Plasma supernatant was collected and stored at -80°C in a new 96-well microplate for further analysis by ELISA. MCP-1 levels were determined using ELISA (Invitrogen) according to the manufacturer's protocol. CCL4 levels were determined using Luminex technology (R&D). Speed's XLfit program was used for fitting dose-response curves and calculating IC50 values ​​for each donor, as shown in Figures 16 and 18. Geometric mean values ​​for all seven donors are reported. The data presented are based on seven human blood donors.

[0341] Incubation of human whole blood with a negative control IgG1 isotype antibody or negative control VHH IRR00119 did not result in any inhibition of SEB-induced MCP-1 release (data not shown). In contrast, incubation of human whole blood with a monospecific anti-TNF-α monoclonal reference antibody induced strong inhibition of SEB-induced MCP-1 release, with an IC50 of 2.8 nM (Figure 15). Incubation of human whole blood with the multispecific anti-TNF-α / anti-IL-6 ISVD construct F027201062 inhibited MCP-1 secretion to a similar degree, with an IC50 of 3.2 nM. The multispecific anti-TNF-α / anti-IL-6 ISVD constructs F027200926, F027201029, F027201060, and F027201061 inhibited MCP-1 release with IC50 values ​​of 8.9 nM, 1 nM, 3.8 nM, 4.1 nM, and 3.5 nM, respectively (Figure 16). The IC50 values ​​reported herein are based on geometric means, but Figure 16 shows the average for all seven donors.

[0342] The anti-hIL-6 comparator antibody did not induce any inhibition of MCP-1, demonstrating that the assay is solely dependent on TNF-α. This is further reinforced by the lack of additive efficacy of anti-hTNF-α and anti-hIL-6 comparator antibodies in comparison to anti-hTNF-α alone (Figure 16).

[0343] The efficacy against TNF-α was further evaluated using a second chemokine readout, CCL4 (Figures 17 and 18). The analysis focused on F027201062 as a comparator antibody and ISVD construct. Incubation of human whole blood with a monospecific anti-TNF-α monoclonal reference antibody induced strong dose-dependent inhibition of SEB-induced CCL4 release, with an IC50 of 0.96 nM (Figures 17 and 18). Incubation of human whole blood with the multispecific anti-TNF-α / anti-IL-6 ISVD construct F027201062 inhibited CCL4 secretion to a similar degree, with an IC50 of 0.92 nM (Figures 17 and 18). The IC50 values ​​reported herein are based on geometric means, although Figure 18 shows the average for all seven donors.

[0344] The anti-hIL-6 comparator antibody did not induce any inhibition of CCL4, demonstrating that the assay was solely dependent on TNF-α (Figure 17). This is further reinforced by the lack of additive efficacy of the anti-hTNF-α and anti-hIL-6 comparator antibody in comparison to anti-hTNF-α alone (Figures 17 and 18).

[0345] 6.16 Example 17: IL-6 efficacy of various ISVD constructs in human fibroblast-like synovial cells derived from rheumatoid arthritis patients The inventors analyzed the efficacy of blocking IL-6 in primary fibroblast-like synovial cells (RA-FLS) derived from rheumatoid arthritis patients. RA-FLS were stimulated with IL-17A and soluble IL-6R (due to the lack of membrane-bound IL-6R). In contrast to the TF-1 proliferation assay, this FLS assay reflects IL-6 transsignaling. RA-FLS do not secrete human TNF-α, and thus the system is solely dependent on IL-6. Stimulated RA-FLS were then treated with various concentrations of anti-hIL-6 reference antibodies, various ISVDs, and corresponding isotype controls.

[0346] More detailed protocol: RA-FLS cells were inoculated in synovial cell basal medium (Pelobiotech) containing growth supplements in a 96-well format at a density of 10,000 cells / well. The following day, the RA-FLS medium was replaced with medium containing concentrations of isotype control, comparator antibody, and ISVD in (1:10 dilutions from 200 nM, 6 different concentrations, 2 sets). The IgG1 isotype control was used as a negative control for the comparator antibody, while VHH IRR00119 was used as the ISVD isotype negative control. The anti-human IL-6 reference antibody was used as the comparator. The following ISVD constructs: F027200926, F027201029, F027201060, F027201061, and F027201062 were evaluated in this model.

[0347] Plate effect was avoided by altering the position of all constructs within the plate between the two sets. Finally, RA-FLS cells were stimulated with 100 ng / ml human recombinant IL-17A and 100 ng / ml sIL-6R for 24 hours. After 24 hours, cells were centrifuged, the supernatant was collected, and stored at -80°C. VEGF-A levels were measured using Luminex technology. Measurements were performed in three different rheumatoid arthritis donors, with each donor undergoing two different passages.

[0348] Incubation of RA-FLS with a negative control IgG1 isotype antibody or negative control VHH IRR00119 did not block IL-17A / sIL-6R-induced VEGF-A secretion (data not shown). In contrast, incubation of RA-FLS with a monospecific anti-IL-6 reference antibody induced strong dose-dependent inhibition of IL-17A / sIL-6R-induced VEGF-A release, with an IC50 of 0.67 nM (Figures 19 and 20). Incubation of RA-FLS with the multispecific anti-TNF-α / anti-IL-6 ISVD construct F027201062 inhibited VEGF-A secretion to a slightly lower degree, with an IC50 of 2 nM. The multispecific anti-TNF-α / anti-IL-6 ISVD constructs F027200926, F027201029, F027201060, and F027201061 inhibited VEGF-A release with IC50 values ​​of 2 nM, 1 nM, 1.4 nM, 2.9 nM, and 2.7 nM, respectively (Figure 20). The IC50 values ​​reported herein are based on geometric means, but Figure 20 shows the average for all donors and passages.

[0349] The anti-hTNF-α comparator antibody did not induce any inhibition of VEGF-A, demonstrating that the assay was solely dependent on IL-6 (Figure 19). This is further reinforced by the lack of additive efficacy of anti-hTNF-α and anti-hIL-6 comparator antibodies in relation to anti-IL-6 alone (Figure 19).

[0350] 6.17 Example 18: Evaluation of F027201062 in a human TNF-α transgenic Tg197 polyarthritis model. F027201062 was profiled using the Tg197 mouse model of TNF-induced progressive polyarthritis (Keffer, J. et al. Transgenic mice expressing human tumor necrosis factor: a predictive genetic model of arthritis. EMBO J (1991) 10, pp. 4025-4031). In these mice, a modified human TNF-α gene was inserted as an exogenous gene. The human gene was modified to make the transcribed mRNA more stable, thus resulting in 100% penetrant overexpression of TNF-α and spontaneous progressive arthritis in all four limbs. Signs and symptoms became apparent at approximately 6 weeks of age and, in untreated mice, steadily increased from approximately 10 weeks of age until significant morbidity and death. Arthritis severity was clinically assessed using a scoring system detailed in Table 15 below.

[0351] [Table 31]

[0352] Arthritis was sensitive to treatment with agents targeting human TNFα inhibition (Shealy, DJ et al. Anti-TNF-alpha antibody allows healing of joint damage in polyarthritic transgenic mice. Arthritis Res 4 (2002), R7, doi:10.1186 / ar430).

[0353] To establish dose-dependent efficacy, various doses of F027201062 were therapeutically administered twice weekly by intraperitoneal injection to 6-week-old animals (n=8 per group) exhibiting clear signs and symptoms of arthritis. Human IgG1 purified from human myeloma serum (BioXcell #BE0297) was used as a negative control, and an anti-human TNF reference mAb was used as a positive control to suppress arthritis. In addition, the anti-hTNF monospecific nanobody RA15627569 was used as a second positive control. F027201062 was administered at four different dose intensities: 3 mg / kg, 10 mg / kg, 30 mg / kg, and 100 mg / kg body weight, respectively. Treatment was continued until 11 weeks of age. Clinical arthritis scores were determined weekly. As shown in Figure 21, treatment with F027201062 resulted in dose-dependent suppression of clinical arthritis scores over time. Animals treated with a human IgG1-negative control antibody developed a mean arthritis score of 1.571 ± 0.1086 up to week 11. Anti-hTNFα reference mAb and anti-hTNF nanobody RA15627569 suppressed arthritis progression, with mean scores of 0.5156 ± 0.0898 and 0.2344 ± 0.0156, respectively, at week 11. Dose-escalating F027201062 reduced arthritis progression, with mean scores of 1.203 ± 0.0943 (3 mg / kg), 0.8214 ± 0.161 (10 mg / kg), 0.3393 ± 0.0592 (30 mg / kg), and 0.25 ± 0.0579 (100 mg / kg) at week 11. Statistical analysis was performed using a two-way ANOVA for time and treatment, and Bonferroni-adjusted group comparisons were conducted (Figure 21).

[0354] Overall suppression of arthritis in the Tg197 arthritis model was analyzed by area under the curve (AUC, Figure 22). Doses of F027201062 greater than 3 mg / kg significantly suppressed arthritis progression to a similar extent as anti-hTNF reference mAbs and anti-hTNF nanobody RA15627569, as analyzed by one-way ANOVA followed by Bonferroni-adjusted intergroup comparisons.

[0355] At the end of treatment, the hind limb ankle joints were prepared for histological examination, and sections were evaluated for structural signs of arthritis using the scoring system outlined in Table 16.

[0356] [Table 32]

[0357] The results of the histological scoring are shown in Figure 23. Structural arthritis and joint destruction were significantly suppressed by higher doses of F027201062.

[0358] In conclusion, the results demonstrate dose-dependent suppression of signs and symptoms of arthritis and inhibition of structural progression by F027201062, comparable to that of anti-hTNF reference mAbs and anti-hTNF nanobody RA15627569.

[0359] 6.18 Example 19: Evaluation of F027201062 in hIL-6-induced haptoglobin in an in vivo model In vivo inhibition of IL-6 was investigated using a pharmacodynamic mouse mechanism model. Female BALB / c mice were injected intraperitoneally with either F027201062, a reference anti-hIL-6 mAb, or a vehicle. Eight hours later, the mice were injected with either PBS or recombinant human IL-6 25 μg. Sixteen hours later, blood was collected from the mice and plasma was prepared. Haptoglobin, an IL-6-induced acute-phase reactant, was measured in the plasma samples by a fluorescent bead-binding assay. As shown in Figure 24, both 1 mg / kg and 3 mg / kg doses of F027201062 sufficiently suppressed IL-6-induced plasma haptoglobin, similar to the reference anti-hIL-6 mAb.

[0360] 6.19 Example 20: Evaluation of F027201062 in an hIL-6 transgenic splenomegaly model In vivo inhibition of IL-6 was further investigated in a transgenic mouse model overexpressing hIL-6. C.B6-Tg(H2-L-IL6)1 Kish / JThe strain (Suematsu S et al., 1992: Generation of plasmacytomas with the chromosomal translocation t (12;15) in interleukin 6 transgenic mice. Proc Natl Acad Sci USA 89(1):232-235) overexpresses human IL-6 under the control of the H-2Ld major histocompatibility promoter. Lymphoproliferative changes resembling plasmacytosis, followed by hyperglobulinemia, become apparent around 7-10 weeks of age (Suematsu S et al., 1989: lgGl plasmacytosis in interleukin 6 transgenic mice. Proc Natl Acad Sci USA 86(19):7547-7551).

[0361] Hemizygous C.B6-Tg(H2-L-IL6)1 in males and females approximately 2-2.5 months old. Kish / J Mice were treated three times a week by intraperitoneal injection with F027201062, a reference anti-hIL-6 mAb, or a nonspecific control nanobody. After two weeks, the mice were sacrificed and splenomegaly and hypergammaglobulinemia were assessed. Non-transgenic wild-type littermates served as controls.

[0362] Both F027201062 and anti-hIL-6 reference mAbs significantly reduced splenomegaly in this model (Figure 25). Consistent with the suppression of plasmacytosis, plasma levels of IgG1 and IgG2a were also suppressed by F027201062 and anti-hIL-6 mAb treatment (Figure 26).

[0363] 6.20 Example 21: Single-dose pharmacokinetics of F027201062 in non-human primates The objective of the study was to investigate the pharmacokinetics of F027201062 after single-dose administration in non-human primates. A total of nine male naive cynomolgus monkeys (Macaca fascicularis) were used for this non-GLP study. The animals were administered according to the scheme in Table 17.

[0364] [Table 33]

[0365] Before centrifugation (approximately 1500g, 4°C for 10 minutes), the blood was allowed to coagulate at room temperature (up to 90 minutes). The resulting serum was transferred to labeled polypropylene tubes and stored in a freezer set to ≤-65°C. The samples were measured using a developed, unvalidated, general ELISA method.

[0366] The pharmacokinetic profile is shown in Figure 27. After IV administration, the clearance was 0.273 L / hour / kg and the volume of distribution (Vss) was 0.0464 L / kg. Pharmacokinetics were affected by ADA. All pre-administration naive ADA-negative animals were positive for the test at 360 and 672 hours. [Industrial applicability]

[0367] 7. Industrial applicability Polypeptides described herein, nucleic acid molecules encoding them, vectors and compositions comprising nucleic acids can be used, for example, in the treatment of subjects suffering from inflammatory diseases and / or autoimmune diseases.

[0368] The publications discussed herein are provided solely for their disclosure prior to the filing date of this application. This specification should not be construed as an acknowledgment that the invention is not entitled to precede such disclosure by prior art. While the invention is described in relation to its particular embodiments, further modifications are possible, and this application is understood to be intended to include any modifications, uses, or applications of the invention, generally in accordance with the principles of the invention, that fall within the scope of known or common practice in the art to which the invention belongs, and that include deviations from this disclosure, such as those applicable to the essential features as described above and in the appended claims below.

Claims

1. A polypeptide, a composition comprising the polypeptide, or a nucleic acid comprising a nucleotide sequence encoding the polypeptide, wherein the polypeptide comprises or comprises at least three immunoglobulin single variable domains (ISVDs), each of which is a VHH, and each of which comprises three complementarity-determining regions (CDR1 to CDR3, respectively); a) The first ISVD is coupled to IL-6, i. CDR1 having the amino acid sequence of SEQ ID NO: 6; ii. CDR2 having the amino acid sequence of SEQ ID NO: 10; and iii. Containing CDR3 having the amino acid sequence of SEQ ID NO: 14; b) The second ISVD is coupled to IL-6, iv. CDR1 having the amino acid sequence of SEQ ID NO: 8; v. CDR2 having the amino acid sequence of SEQ ID NO: 12; and vi. Containing CDR3 having the amino acid sequence of SEQ ID NO: 16; c) The third ISVD binds to TNF-α, vii. CDR1 having the amino acid sequence of SEQ ID NO: 9; viiii. CDR2 having the amino acid sequence of SEQ ID NO: 13; and ix. The polypeptide or composition comprising CDR3 having the amino acid sequence of SEQ ID NO:

17.

2. The polypeptide or composition according to claim 1, further comprising at least one pharmaceutically acceptable carrier, diluent or excipient, and / or adjuvant.

3. The polypeptide or composition according to claim 2, further comprising one or more pharmacologically active polypeptides and / or compounds.

4. a) The amino acid sequence of the first ISVD has more than 90% sequence identity with SEQ ID NO: 2; b) The amino acid sequence of the second ISVD has more than 90% sequence identity with SEQ ID NO: 4; and c) The amino acid sequence of the third ISVD has more than 90% sequence identity with SEQ ID NO:

5. A polypeptide or composition according to any one of claims 1 to 3.

5. a) The first ISVD has the amino acid sequence of SEQ ID NO: 2; b) The second ISVD has the amino acid sequence of SEQ ID NO: 4; and c) The polypeptide or composition according to any one of claims 1 to 4, wherein the third ISVD has the amino acid sequence of SEQ ID NO:

5.

6. The polypeptide or composition according to any one of claims 1 to 5, wherein the ISVD is linked via one or more peptide linkers.

7. A polypeptide or composition according to any one of claims 1 to 6, wherein the polypeptide further comprises one or more other groups, residues, substructures or binding units, and the one or more other groups, residues, substructures or binding units provide a polypeptide having an increased half-life compared to a corresponding polypeptide that does not have the one or more other groups, residues, substructures or binding units.

8. The polypeptide or composition according to claim 7, wherein one or more other groups, residues, substructures or binding units are linked via one or more peptide linkers.

9. The polypeptide or composition according to claim 7 or 8, wherein the one or more other groups, residues, substructures or binding units that provide a polypeptide having an increased half-life are selected from the group consisting of binding units that can bind to serum albumin or serum immunoglobulin.

10. The polypeptide or composition according to claim 9, wherein the serum albumin is human serum albumin, or the serum immunoglobulin is IgG.

11. The polypeptide or composition according to claim 10, wherein the binding unit that provides a polypeptide having an increased half-life is an ISVD that can bind to human serum albumin.

12. ISVD, which binds to human serum albumin, i. CDR1 having the amino acid sequence of SEQ ID NO: 7; ii. CDR2 having the amino acid sequence of SEQ ID NO: 11; and iii. CDR3 having the amino acid sequence of SEQ ID NO: 15, A polypeptide or composition according to claim 11, comprising:

13. The polypeptide or composition according to claim 11 or 12, wherein the amino acid sequence of ISVD that binds to human serum albumin has more than 90% sequence identity with SEQ ID NO:

3.

14. The polypeptide contains an amino acid sequence that has more than 90% sequence identity with SEQ ID NO:

1. A polypeptide or composition according to any one of claims 1 to 13, comprising or the same.

15. A polypeptide or composition according to any one of claims 1 to 14, for use as a pharmaceutical.

16. A polypeptide or composition according to any one of claims 1 to 14 for use in the treatment of inflammatory diseases and / or autoimmune diseases.

17. The polypeptide or composition for use according to claim 16, wherein the inflammatory disease and / or autoimmune disease is rheumatoid arthritis.

18. A nucleic acid comprising a nucleotide sequence encoding the polypeptide according to any one of claims 1 to 17.

19. A host or host cell comprising the nucleic acid described in claim 18.

20. A method for producing a polypeptide according to any one of claims 1 to 17, comprising at least: a) The method comprising the step of expressing the nucleic acid described in claim 18.

21. The method according to claim 20, the method comprising the step of (b) isolating and / or purifying a polypeptide.

22. A composition comprising at least one polypeptide according to any one of claims 1 to 17, or a nucleic acid according to claim 18.

23. The composition according to claim 22, further comprising at least one pharmaceutically acceptable carrier, diluent or excipient and / or adjuvant.

24. The composition according to claim 23, wherein the composition further comprises one or more pharmaceutically active polypeptides and / or compounds.

25. Use of a polypeptide according to any one of claims 1 to 17 or a composition according to any one of claims 22 to 24 in the preparation of a pharmaceutical composition for treating inflammatory diseases and / or autoimmune diseases.

26. The use of the polypeptide or composition according to claim 25, wherein the inflammatory disease and / or autoimmune disease is rheumatoid arthritis.

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