Polypeptides containing immunoglobulin single variable domains that target IL-13 and OX40L

Bispecific polypeptides targeting OX40L and IL-13 address the limitations of current treatments by enhancing efficacy in autoimmune and inflammatory diseases with improved stability and convenience, offering a single treatment option for both targets.

JP7817994B2Active Publication Date: 2026-02-19ABLYNX NV +1
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Patent Information

Application Number
JP2023518970
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-10-20
Filing Date
2021-09-24
Publication Date
2026-02-19
Estimated Expiration
2041-09-24

AI Technical Summary

Technical Problem

Current treatments for autoimmune and inflammatory diseases, such as asthma and atopic dermatitis, are inadequate for certain patient subpopulations, and existing bispecific antibody formats face challenges like high viscosity, production issues, and reactivity with pre-existing antibodies.

Method used

Development of bispecific or multispecific polypeptides, known as immunoglobulin single variable domain (ISVD) constructs, that target both OX40L and IL-13 with improved affinity and stability, allowing for convenient administration and extended half-life, reducing the need for multiple treatments.

Benefits of technology

The ISVD constructs effectively modulate type 2 inflammatory responses, providing sufficient efficacy in both low and high type 2 asthma and atopic dermatitis, with reduced reactivity to pre-existing antibodies and improved production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure provides a novel type of drug for treating subjects suffering from inflammatory diseases. Specifically, the present disclosure provides a polypeptide comprising at least three immunoglobulin single variable domains (ISVDs), characterized in that at least one ISVD binds to OX40L and at least two ISVDs bind to IL-13. The present disclosure also provides nucleic acids, vectors and compositions.
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Description

[Technical Field]

[0001] 1. Field The present disclosure relates to polypeptides that target interleukin-13 (IL-13) and OX40L. The present disclosure also relates to nucleic acid molecules encoding the polypeptides and vectors containing the nucleic acids, as well as compositions containing the polypeptides, nucleic acids, or vectors. The present disclosure further relates to these products for use in methods of treating subjects suffering from autoimmune and / or inflammatory and / or fibrotic diseases. Furthermore, the present disclosure relates to methods of producing these products. [Background technology]

[0002] 2 Technical background While necessary for host defense, uncontrolled immune responses can lead to various autoimmune and / or inflammatory diseases, such as asthma and atopic dermatitis. The immune response cascade (e.g., antigen recognition, antigen processing, antigen presentation, cytokine production, antibody production, and target cell killing) mediated by the innate and adaptive arms of the immune system promotes the initiation and spread of various immune disorders. Autoimmune and inflammatory diseases are often chronic and can even be life-threatening. Allergic and atopic diseases, such as asthma and atopic dermatitis, are predominantly driven by type 2 immune responses and are characterized by hallmarks of type 2 immunity, such as high IgE production and eosinophilia.

[0003] Currently, patients with moderate to severe asthma respond inadequately to currently available standard therapeutic treatments.

[0004] In particular, in asthma patients with a low eosinophilic phenotype, current standard therapies include treatment with biologics such as the anti-IL4Rα monoclonal antibody dupilumab (marketed under the name Dupixent®, a registered trademark of Sanofi Biotechnology), the monoclonal anti-IL5 antibodies mepolizumab (marketed under the name Nucala®, a registered trademark of the GSK Group) or reslizumab (marketed under the name Cinqair®, a registered trademark of Teva Pharmaceutical Industries Ltd), or the anti-IgE monoclonal antibody omalizumab (marketed under the name Xolair®, a registered trademark of Novartis AG).

[0005] Although treatment of patients with conventional monoclonal antibodies such as those described above has shown efficacy in blocking the type 2 pathway and significantly reducing symptoms and / or treating asthma, there remains a subpopulation of patients who do not respond adequately and optimally to these treatments.

[0006] With respect to atopic dermatitis, a number of antagonist antibodies have shown early clinical efficacy.

[0007] KY1005 (Kymab) is a fully human monoclonal antibody that binds to OX40L and blocks OX40L from activating OX40, thereby potentially addressing underlying immune system imbalances in patients with inflammatory and / or autoimmune conditions.

[0008] ISB 830 (formerly GBR 830, Glenmark Pharmaceuticals) is a humanized monoclonal antibody against OX40. OX40 inhibition may have a therapeutic role in T cell-mediated diseases, including atopic dermatitis.

[0009] KHK 4083 is an immunomodulatory anti-OX40 monoclonal antibody (Kyowa Kirin) for the treatment of atopic dermatitis and ulcerative colitis. Early-stage clinical development of subcutaneous and intravenous formulations is underway in several countries.

[0010] Tralokinumab is an IL-13-neutralizing human IgG4 monoclonal antibody being developed by Leo Pharma for the treatment of atopic dermatitis (AD) and alopecia areata. Tralokinumab binds to IL-13 helices A and D, thus preventing IL-13 from interacting with IL-13Rα1 and IL-13Rα2. Tralokinumab is under regulatory review for atopic dermatitis in Europe and the United States. Clinical development is ongoing in multiple countries for atopic dermatitis and in the United States for alopecia areata.

[0011] Although some of the above-mentioned antagonist antibodies against OX40, OX40L or IL-13 have shown initial clinical efficacy in atopic dermatitis, there is an unmet medical need for improved agents to treat this type 2 inflammatory disease. Summary of the Invention [Problem to be solved by the invention]

[0012] The inventors have developed new and improved agents for treating autoimmune and / or inflammatory diseases, such as asthma and atopic dermatitis, and / or fibrotic diseases in particular. These agents target two or more disease factors, including IL-13 and OX40L, which mediate biological mechanisms associated with autoimmune, inflammatory, or fibrotic diseases. [Means for solving the problem]

[0013] Interleukin-13 (IL-13) is a cytokine secreted by type 2 helper T (Th2) cells, CD4 cells, natural killer T cells, mast cells, basophils, eosinophils, and neuocytes. IL-13 is a central regulator of IgE synthesis, goblet cell hyperplasia, mucosal hypersecretion, airway hyperresponsiveness, and fibrosis. IL-13 is a major mediator of various diseases, including allergic inflammation and asthma. IL-13 signaling is mediated through a shared multisubunit receptor with IL-4. This receptor is a heterodimeric receptor complex consisting of IL-4 receptor alpha (IL-4Rα) and IL-13 receptor alpha1 (IL-13Rα1). IL-13's high affinity for IL-13Rα1 leads to their binding, which further increases the likelihood of heterodimerization to IL-4Rα and the production of type 2 IL-4 receptors. Data from human and mouse studies indicate a critical role for IL-13 in type 2 immune diseases, including asthma and atopic dermatitis.

[0014] OX40L (also known as CD252 or TNFSF4) is a member of the TNF superfamily and an inducible costimulatory ligand for the OX40 receptor (also known as CD134 or TNFRSF4). OX40L is primarily expressed on activated antigen-presenting cells (APCs), including dendritic cells, macrophages, and B cells. OX40, on the other hand, is primarily expressed on activated T cells and natural killer T cells. OX40L is primarily expressed as a membrane-bound molecule, but can also be detected in a cleaved, soluble form. OX40L / OX40 has been recognized as an immune costimulatory regulator in numerous diseases characterized by activated T cells that orchestrate immune responses. OX40L / OX40 initiates signaling through OX40, resulting in various activities, including the production and release of inflammatory cytokines and the proliferation and accumulation of effector T cells (e.g., TH1, TH2, TH17) and cytotoxic T cells. Data from human and mouse studies suggest that the OX40 / OX40L axis plays an important role in multiple type 2 immune disorders, including asthma and atopic dermatitis. Blockade of OX40L or OX40 has been shown to reduce disease in mouse models of asthma, and skin samples from patients with atopic dermatitis can be shown to contain T cells with elevated OX40 expression.

[0015] Without wishing to be bound by any particular theory, the biological mechanisms described above play a central role in the initiation and spread of type 2 inflammatory responses and underlie various immunopathological pathways that lead to diseases such as atopic dermatitis and asthma.

[0016] To date, there are no active clinical development programs targeting both IL-13 and OX40L.

[0017] Now, the inventors have surprisingly found that dual targeting of OX40L and IL-13 with a single agent has the potential to confer sufficient efficacy in both low and high type 2 asthma, and in atopic dermatitis, in subpopulations where monospecific drug therapy for the same indications may not be fully effective.

[0018] Targeting multiple disease factors has been described, for example, by co-administration or combinatorial use of two separate biological agents, such as antibodies, that bind to different therapeutic targets. However, co-administration or combinatorial use of separate biological agents can be problematic from both practical and commercial perspectives. For example, two separate injections of separate products can result in a more inconvenient and painful treatment regimen for patients, which can negatively impact compliance. For a single injection of two separate products, it can be difficult or impossible to provide a formulation that allows acceptable viscosity, suitable stability, and non-interference at the required concentrations of both products. In addition, co-administration and co-formulation can increase overall costs because they require the production of two separate drugs.

[0019] Thus, there is also a need for improved anti-autoimmune and / or anti-inflammatory and / or anti-fibrotic disease agents that can be conveniently administered to patients.

[0020] Bispecific antibodies, capable of binding to two different antigens, have been suggested as one strategy to address the above limitations associated with the co-administration or combinatorial use of separate biologics, such as antibodies.

[0021] Bispecific antibody constructs have been proposed in several formats, for example, they may involve chemical conjugation of two antibodies or their fragments (Non-Patent Document 1; Non-Patent Document 2). [Prior art documents] [Non-patent literature]

[0022] [Non-Patent Document 1] Brennan, M. et al., Science, 1985. 229(4708):81-83 [Non-patent document 2] Glennie, MJ et al., J Immunol, 1987. 139(7):2367-2375

[0023] However, disadvantages of such bispecific antibody formats include high viscosity at high concentrations, which makes subcutaneous administration difficult. Furthermore, each binding unit must interact with a different target with specificity and high affinity, which has implications for polypeptide stability and production efficiency. For example, the production of bispecific antibody formats can potentially lead to CMC (chemistry, manufacturing, and quality control) problems related to light chain mismatching or heavy chain mismatching.

[0024] Thus, there is a need for improved bi- or multispecific antibody constructs that bind to both OX40L and IL-13 with sufficient affinity for two or more targets to modulate autoimmune and / or inflammatory responses. At the same time, it is desirable that such constructs can be efficiently produced, for example, in a microbial host, and conveniently administered to patients. Ideally, such constructs should also have a sufficiently long half-life in the subject to be treated so that the number of successive treatments is limited and thus the timing can be sufficiently spaced. Furthermore, it is desirable to limit the reactivity of such constructs to pre-existing antibodies in the subject to be treated (i.e., antibodies present in the subject prior to the initial treatment with the antibody construct).

[0025] The inventors have discovered that bispecific or multispecific polypeptides (also referred to in the context of the present disclosure as immunoglobulin single variable domain (ISVD) constructs) that specifically target OX40L and IL-13 simultaneously have improved efficiency in modulating type 2 inflammatory responses compared to monospecific anti-OX40L and / or monospecific anti-IL-13 polypeptides. The polypeptides or ISVD constructs could be efficiently produced (e.g., in microbial hosts) and conveniently administered. Furthermore, such polypeptides or ISVD constructs could be shown to have limited reactivity to pre-existing antibodies in the subject to be treated (i.e., antibodies present in the subject prior to initial treatment with the antibody construct). In some embodiments, such polypeptides or ISVD constructs exhibit a sufficiently long half-life in the subject to be treated so that the number of successive treatments is limited and thus can be adequately spaced apart.

[0026] The polypeptides of the present disclosure (also referred to in the context of the present disclosure as immunoglobulin single variable domain (ISVD) constructs) comprise or consist of at least three immunoglobulin single variable domains (ISVDs), wherein at least one ISVD specifically binds OX40L and at least two ISVDs specifically bind IL-13. According to some embodiments, at least one ISVD that binds OX40L specifically binds human OX40L, and at least two ISVDs that bind IL-13 specifically bind human IL-13.

[0027] According to some embodiments, the polypeptides of the present disclosure further comprise one or more other groups, residues, moieties, or binding units, optionally linked via one or more peptidic linkers, which provide the polypeptide with an increased half-life compared to a corresponding polypeptide without said one or more other groups, residues, moieties, or binding units. For example, the binding unit can be an ISVD that binds to a serum protein, such as a human serum protein, for example, human serum albumin.

[0028] Also provided are nucleic acid molecules capable of expressing a polypeptide of the present disclosure, vectors comprising the nucleic acid or nucleic acid molecule, and compositions comprising the polypeptide, nucleic acid, or vector. In some embodiments, the composition is a pharmaceutical composition.

[0029] Also provided is a host or host cell comprising a nucleic acid or vector encoding a polypeptide according to the present disclosure.

[0030] Additionally, there is provided a method of producing a polypeptide according to the present disclosure, comprising at least: a. expressing the nucleic acid sequence in a suitable host cell or host organism, or in another suitable expression system; optionally followed by: b. Isolating and / or purifying a polypeptide according to the present disclosure The method includes:

[0031] Furthermore, the present disclosure provides a polypeptide, a composition comprising the polypeptide, or a composition comprising a nucleic acid or vector comprising a nucleotide sequence encoding the polypeptide for use as a pharmaceutical. In some embodiments, the polypeptide or composition is for use in the treatment of inflammatory diseases such as autoimmune diseases and / or type 2 inflammatory diseases. In some embodiments, the type 2 inflammatory disease is selected from the group consisting of atopic dermatitis and asthma. In some embodiments, the polypeptide or composition is for use in the treatment of fibrotic diseases.

[0032] Additionally provided are methods for treating inflammatory diseases, such as autoimmune diseases and / or type 2 inflammatory diseases, 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 type 2 inflammatory disease is atopic dermatitis and / or asthma. Additionally provided are methods for treating fibrotic diseases, 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.

[0033] Further provided is the use of the polypeptide or composition of the present disclosure in the preparation of a pharmaceutical composition for treating inflammatory diseases, such as autoimmune diseases and / or type 2 inflammatory diseases.In some embodiments, the type 2 inflammatory disease is atopic dermatitis and / or asthma.Also provided is the use of the polypeptide or composition of the present disclosure in the preparation of a pharmaceutical composition for treating fibrotic diseases.

[0034] In particular, the present disclosure provides the following embodiments:

[0035] Embodiment 1. A polypeptide, a composition comprising said polypeptide, or a composition comprising a nucleic acid comprising a nucleotide sequence encoding said polypeptide, for use as a medicament, wherein said polypeptide comprises or consists of at least three immunoglobulin single variable domains (ISVDs), each of said ISVDs comprising three complementarity determining regions (CDR1 to CDR3, respectively), optionally linked via one or more peptidic linkers; a) The first ISVD is: i. CDR1 having the amino acid sequence of SEQ ID NO: 6 or having 2 or 1 amino acid difference from SEQ ID NO: 6; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 10 or having two or one amino acid difference from SEQ ID NO: 10; and iii. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 14 or having two or one amino acid difference from SEQ ID NO: 14; b) The second ISVD is: iv. CDR1 having the amino acid sequence of SEQ ID NO: 7 or having two or one amino acid difference from SEQ ID NO: 7; v. a CDR2 having the amino acid sequence of SEQ ID NO: 11 or having two or one amino acid difference from SEQ ID NO: 11; and vi. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 15 or having two or one amino acid difference from SEQ ID NO: 15; c) The third ISVD is: vii. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having two or one amino acid difference from SEQ ID NO: 9; viii. CDR2 having the amino acid sequence of SEQ ID NO: 13 or having two or one amino acid difference from SEQ ID NO: 13; and ix. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 17 or having two or one amino acid difference from SEQ ID NO: 17; The ISVDs are in order starting from the N-terminus of the polypeptide or composition.

[0036] 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 additional pharmaceutically active polypeptides and / or compounds.

[0037] Embodiment 3.a) The first ISVD comprises a CDR1 having the amino acid sequence of SEQ ID NO: 6, a CDR2 having the amino acid sequence of SEQ ID NO: 10, and a CDR3 having the amino acid sequence of SEQ ID NO: 14; b) the second ISVD comprises a CDR1 having the amino acid sequence of SEQ ID NO: 7, a CDR2 having the amino acid sequence of SEQ ID NO: 11, and a CDR3 having the amino acid sequence of SEQ ID NO: 15; c) the third ISVD comprises a CDR1 having the amino acid sequence of SEQ ID NO: 9, a CDR2 having the amino acid sequence of SEQ ID NO: 13, and a CDR3 having the amino acid sequence of SEQ ID NO: 17; 3. A polypeptide or composition for use according to embodiment 1 or 2.

[0038] Embodiment 4.a) The amino acid sequence of the first ISVD has greater than 90% sequence identity with SEQ ID NO:2; b) the amino acid sequence of the second ISVD has greater than 90% sequence identity with SEQ ID NO:3; c) A polypeptide or composition for use according to any one 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.

[0039] 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:3; c) A polypeptide or composition for use according to any one of embodiments 1 to 4, wherein the third ISVD has the amino acid sequence of SEQ ID NO: 5.

[0040] Embodiment 6. A polypeptide or composition for use according to any of embodiments 1 to 5, wherein the polypeptide further comprises one or more other groups, residues, moieties or binding units, optionally linked via one or more peptidic linkers, which one or more other groups, residues, moieties or binding units provide the polypeptide with an increased half-life compared to a corresponding polypeptide without said one or more other groups, residues, moieties or binding units.

[0041] Embodiment 7. The polypeptide or composition for use according to embodiment 6, wherein said one or more other groups, residues, moieties or binding units that provide the polypeptide with increased half-life are selected from the group consisting of polyethylene glycol molecules, serum proteins or fragments thereof, binding units capable of binding to serum proteins, Fc moieties, and small proteins or peptides capable of binding to serum proteins.

[0042] Embodiment 8. Polypeptide or composition for use according to any one of embodiments 6 to 7, wherein said one or more other groups, residues, moieties or binding units providing the polypeptide with increased half-life are selected from the group consisting of binding units capable of binding to serum albumin (such as human serum albumin) or serum immunoglobulin (such as IgG).

[0043] Embodiment 9. The polypeptide or composition for use according to embodiment 8, wherein said binding unit providing the polypeptide with increased half-life is an ISVD capable of binding to human serum albumin.

[0044] Embodiment 10. An ISVD that binds to human serum albumin is i. CDR1 having the amino acid sequence of SEQ ID NO: 8 or having 2 or 1 amino acid difference from SEQ ID NO: 8; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 12 or having two or one amino acid difference from SEQ ID NO: 12; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 16 or having two or one amino acid difference from SEQ ID NO: 16. 10. The polypeptide or composition for use according to embodiment 9, comprising:

[0045] Embodiment 11. A polypeptide or composition for use according to any of embodiments 9 to 10, wherein the ISVD that binds to human serum albumin comprises a CDR1 having the amino acid sequence of SEQ ID NO: 8, a CDR2 having the amino acid sequence of SEQ ID NO: 12, and a CDR3 having the amino acid sequence of SEQ ID NO: 16.

[0046] Embodiment 12. A polypeptide or composition for use according to any one of embodiments 9 to 11, wherein the amino acid sequence of the ISVD that binds to human serum albumin has greater than 90% sequence identity with SEQ ID NO:4.

[0047] Embodiment 13. A polypeptide or composition for use according to any one of embodiments 9 to 12, wherein the ISVD that binds to human serum albumin has the amino acid sequence of SEQ ID NO: 4.

[0048] Embodiment 14. A polypeptide or composition for use according to any one of embodiments 1 to 13, wherein the amino acid sequence of the polypeptide has greater than 90% sequence identity with SEQ ID NO: 1.

[0049] Embodiment 15. A polypeptide or composition for use according to any of embodiments 1 to 14, wherein the polypeptide comprises or consists of the amino acid sequence of SEQ ID NO: 1.

[0050] Embodiment 16. A polypeptide or composition for use according to any one of embodiments 1 to 15 for use in the treatment of an inflammatory disease, such as a type 2 inflammatory disease.

[0051] Embodiment 17. The polypeptide or composition for use according to embodiment 16, wherein the type 2 inflammatory disease is selected from the group consisting of asthma and atopic dermatitis.

[0052] Embodiment 18. A polypeptide comprising or consisting of at least three immunoglobulin single variable domains (ISVDs), each of said ISVDs comprising three complementarity determining regions (CDR1 to CDR3, respectively), optionally linked via one or more peptidic linkers; a) the first ISVD binds to OX40L; i. CDR1 having the amino acid sequence of SEQ ID NO: 6 or having 2 or 1 amino acid difference from SEQ ID NO: 6; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 10 or having two or one amino acid difference from SEQ ID NO: 10; and iii. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 14 or having two or one amino acid difference from SEQ ID NO: 14; b) the second ISVD binds to IL-13; iv. CDR1 having the amino acid sequence of SEQ ID NO: 7 or having two or one amino acid difference from SEQ ID NO: 7; v. CDR2 having the amino acid sequence of SEQ ID NO: 11 or having two or one amino acid difference from SEQ ID NO: 11; and vi. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 15 or having two or one amino acid difference from SEQ ID NO: 15; c) the third ISVD binds to IL-13; vii. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having two or one amino acid difference from SEQ ID NO: 9; viii. CDR2 having the amino acid sequence of SEQ ID NO: 13 or having two or one amino acid difference from SEQ ID NO: 13; and ix. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 17 or having two or one amino acid difference from SEQ ID NO: 17; The ISVDs are in order starting from the N-terminus of the polypeptide.

[0053] Embodiment 19.a) The first ISVD comprises a CDR1 having the amino acid sequence of SEQ ID NO: 6, a CDR2 having the amino acid sequence of SEQ ID NO: 10, and a CDR3 having the amino acid sequence of SEQ ID NO: 14; b) the second ISVD comprises a CDR1 having the amino acid sequence of SEQ ID NO: 7, a CDR2 having the amino acid sequence of SEQ ID NO: 11, and a CDR3 having the amino acid sequence of SEQ ID NO: 15; c) the third ISVD comprises a CDR1 having the amino acid sequence of SEQ ID NO: 9, a CDR2 having the amino acid sequence of SEQ ID NO: 13, and a CDR3 having the amino acid sequence of SEQ ID NO: 17; 19. The polypeptide of embodiment 18.

[0054] Embodiment 20.a) The amino acid sequence of the first ISVD has greater than 90% sequence identity with SEQ ID NO:2; b) the amino acid sequence of the second ISVD has greater than 90% sequence identity with SEQ ID NO:3; c) The polypeptide of any of embodiments 18 or 19, wherein the amino acid sequence of the third ISVD has more than 90% sequence identity with SEQ ID NO: 5.

[0055] 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:3; c) The polypeptide according to any one of embodiments 18 to 20, wherein the third ISVD has the amino acid sequence of SEQ ID NO: 5.

[0056] Embodiment 22. The polypeptide of any one of embodiments 18 to 21, wherein the polypeptide further comprises one or more other groups, residues, moieties or binding units, optionally linked via one or more peptidic linkers, which one or more other groups, residues, moieties or binding units provide the polypeptide with an increased half-life compared to a corresponding polypeptide without said one or more other groups, residues, moieties or binding units.

[0057] Embodiment 23. The polypeptide of embodiment 22, wherein the one or more other groups, residues, moieties or binding units that provide the polypeptide with increased half-life are selected from the group consisting of polyethylene glycol molecules, serum proteins or fragments thereof, binding units capable of binding to serum proteins, Fc moieties, and small proteins or peptides capable of binding to serum proteins.

[0058] Embodiment 24. The polypeptide of any one of embodiments 22 to 23, wherein the one or more other groups, residues, moieties or binding units that provide the polypeptide with increased half-life are selected from the group consisting of binding units capable of binding to serum albumin (such as human serum albumin) or serum immunoglobulin (such as IgG).

[0059] Embodiment 25. The polypeptide of embodiment 24, wherein the binding unit that provides the polypeptide with increased half-life is an ISVD capable of binding to human serum albumin.

[0060] Embodiment 26. The ISVD that binds to human serum albumin is i. CDR1 having the amino acid sequence of SEQ ID NO: 8 or having 2 or 1 amino acid difference from SEQ ID NO: 8; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 12 or having two or one amino acid difference from SEQ ID NO: 12; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 16 or having two or one amino acid difference from SEQ ID NO: 16. 26. The polypeptide of embodiment 25, comprising:

[0061] Embodiment 27. A polypeptide according to any one of embodiments 25 to 26, wherein the ISVD that binds to human serum albumin comprises a CDR1 having the amino acid sequence of SEQ ID NO: 8, a CDR2 having the amino acid sequence of SEQ ID NO: 12, and a CDR3 having the amino acid sequence of SEQ ID NO: 16.

[0062] Embodiment 28. A polypeptide described in any one of embodiments 25 to 27, wherein the amino acid sequence of the ISVD that binds to human serum albumin has greater than 90% sequence identity with SEQ ID NO:4.

[0063] Embodiment 29. The polypeptide of any one of embodiments 25 to 28, wherein the ISVD that binds to human serum albumin has the amino acid sequence of SEQ ID NO: 4.

[0064] Embodiment 30. A polypeptide according to any one of embodiments 18 to 29, wherein the amino acid sequence of the polypeptide has greater than 90% sequence identity with SEQ ID NO:1.

[0065] Embodiment 31. A polypeptide according to any one of embodiments 18 to 29, comprising or consisting of the amino acid sequence of SEQ ID NO: 1.

[0066] Embodiment 32. A nucleic acid comprising a nucleotide sequence encoding a polypeptide according to any one of embodiments 18 to 31.

[0067] Embodiment 33. A host or host cell comprising a nucleic acid according to embodiment 32.

[0068] Embodiment 34. A method for producing a polypeptide according to any one of embodiments 18 to 31, comprising at least: a) expressing a nucleic acid according to embodiment 32 in a suitable host cell or host organism or in another suitable expression system; optionally followed by: b) isolating and / or purifying the polypeptide according to embodiments 18 to 31 The method comprising:

[0069] Embodiment 35. A composition comprising at least one polypeptide according to any of embodiments 18 to 31, or a nucleic acid according to embodiment 32.

[0070] Embodiment 36. The composition of embodiment 35, which is a pharmaceutical composition, further comprising at least one pharmaceutically acceptable carrier, diluent or excipient and / or adjuvant, and optionally one or more additional pharmaceutically active polypeptides and / or compounds.

[0071] Embodiment 37. A method for treating an inflammatory disease, such as a type 2 inflammatory disease, comprising administering to a subject in need thereof a pharmaceutically active amount of a polypeptide according to any of embodiments 18-31 or a composition according to any of embodiments 35-36.

[0072] Embodiment 38. The method of embodiment 37, wherein the type 2 inflammatory disease is selected from the group consisting of asthma and atopic dermatitis.

[0073] Embodiment 39. Use of a polypeptide according to any of embodiments 18 to 31 or a composition according to any of embodiments 35 to 36 in the preparation of a pharmaceutical composition for treating an inflammatory disease, such as a type 2 inflammatory disease.

[0074] Embodiment 40. The use of a polypeptide or composition according to embodiment 39, wherein the type 2 inflammatory disease is selected from asthma and atopic dermatitis.

[0075] Embodiment 41. A polypeptide comprising or consisting of at least three immunoglobulin single variable domains (ISVDs), each of said ISVDs comprising three complementarity determining regions (CDR1 to CDR3, respectively), optionally linked via one or more peptidic linkers; a) The first ISVD is: i. CDR1 having the amino acid sequence of SEQ ID NO: 6 or having 2 or 1 amino acid difference from SEQ ID NO: 6; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 10 or having two or one amino acid difference from SEQ ID NO: 10; and iii. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 14 or having two or one amino acid difference from SEQ ID NO: 14; b) The second ISVD is: iv. CDR1 having the amino acid sequence of SEQ ID NO: 7 or having two or one amino acid difference from SEQ ID NO: 7; v. CDR2 having the amino acid sequence of SEQ ID NO: 11 or having two or one amino acid difference from SEQ ID NO: 11; and vi. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 15 or having two or one amino acid difference from SEQ ID NO: 15; c) The third ISVD is: vii. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having two or one amino acid difference from SEQ ID NO: 9; viii. CDR2 having the amino acid sequence of SEQ ID NO: 13 or having two or one amino acid difference from SEQ ID NO: 13; and ix. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 17 or having two or one amino acid difference from SEQ ID NO: 17; The ISVDs are in order starting from the N-terminus of the polypeptide. [Brief explanation of the drawings]

[0076] [Figure 1] Figure 1 shows the simultaneous binding of soluble IL-13 and membrane-bound hOX40L to ISVD construct F027100187 as shown by flow cytometry in CHO-Ki cells expressing human OX40L. IRR00096 is a negative control VHH. [Figure 2] Figure 1 shows inhibition of human, cynomolgus, and rhesus IL-13 in an eotaxin release assay by ISVD F027100187 and reference anti-hIL-13 mAbs designated Comparator 1 and Comparator 2. Both Comparator 1 and Comparator 2 are standard conventional monoclonal antibodies against human IL-13. Data points are overall means (n=2) and error bars represent + / -SD. [Figure 3] Figure 1 shows the inhibition of membrane-bound OX40L by ISVD construct F027100187 and a reference compound anti-hOX40L mAb designated Comparator 3, as determined in a PBMC activity assay. Comparator 3 is a standard conventional monoclonal antibody against human OX40L. Data points are overall means (n=2) and error bars represent + / -SD. [Figure 4] 1 is a box plot (with median and interquartile range) showing binding of pre-existing antibodies present in 96 human serum samples to ISVD construct F027100187 compared to control ISVD construct F027301186. [Figure 5]Figure 1 shows the inhibitory profiles of ISVD construct F027100187 and reference antibodies anti-hIL-13 mAb (designated comparator 1) and anti-hOX40L mAb (designated comparator 3) on allergen Der P-induced IL-5 and CCL26 production by human PBMCs in a triple coculture assay. Normal donor PBMCs cultured with MRC5 fibroblasts and A549 epithelial cells were stimulated with 3 mg / mL Der P in a 37°C cell culture incubator and incubated with 11.1 nM ISVD, anti-hIL-13 reference mAb designated comparator 1, or anti-hOX40L reference mAb, comparator 3, in 24-well plates for 6 days. IL-5 and CCL26 concentrations in freshly collected supernatants were measured by human magnetic luminex assay. Percentages of inhibition were calculated relative to unstimulated (min) and stimulated (max) control samples that received neither ISVD polypeptide nor antibody. All calculations were performed using GraphPad Prism 8.0. Data are presented as the mean ± standard error of the mean (SEM) for all donors combined from three independent experiments set up as described above. Figure 5: IL-5 inhibition in triple co-culture assays at 7 days. Results from four PBMC donors. Figure 6: CCL26 inhibition in triple co-culture assays at 7 days. Results from four PBMC donors. [Figure 6]Figure 1 shows the inhibitory profiles of ISVD construct F027100187 and reference antibodies anti-hIL-13 mAb (designated comparator 1) and anti-hOX40L mAb (designated comparator 3) on allergen Der P-induced IL-5 and CCL26 production by human PBMCs in a triple coculture assay. Normal donor PBMCs cultured with MRC5 fibroblasts and A549 epithelial cells were stimulated with 3 mg / mL Der P in a 37°C cell culture incubator and incubated with 11.1 nM ISVD, anti-hIL-13 reference mAb designated comparator 1, or anti-hOX40L reference mAb, comparator 3, in 24-well plates for 6 days. IL-5 and CCL26 concentrations in freshly collected supernatants were measured by human magnetic luminex assay. Percentages of inhibition were calculated relative to unstimulated (min) and stimulated (max) control samples that received neither ISVD polypeptide nor antibody. All calculations were performed using GraphPad Prism 8.0. Data are presented as the mean ± standard error of the mean (SEM) for all donors combined from three independent experiments set up as described above. Figure 5: IL-5 inhibition in triple co-culture assays at 7 days. Results from four PBMC donors. Figure 6: CCL26 inhibition in triple co-culture assays at 7 days. Results from four PBMC donors. [Figure 7]Figure 1 shows that F27100187 significantly reduced human activated effector and central memory T cell cellularity in the lungs of NSG mice. A) Compared to vehicle-treated mice, activated cells (CD4+CD45RA- cells) were not significantly reduced by F27100187 at any of the doses of 11.1 mg / kg, 3.72 mg / kg, 1.11 mg / kg, or 0.37 mg / kg. B) Compared to vehicle-treated mice (132,035 cells), activated cells (CD4+HLA-DR+CD38+ cells) were reduced at the 11.1 mg / kg F27100187 dose (16,609 cells), 3.72 mg / kg F27100187 dose (17,779 cells), 1.11 mg / kg F27100187 dose (14,808 cells), and 0.37 mg / kg F27100187 dose (23,568 cells). C) Compared to vehicle-treated mice (685,726 cells), effector memory cells were reduced at the 11.1 mg / kg F27100187 dose (151,974 cells), 3.72 mg / kg F27100187 dose (164,639 cells), 1.11 mg / kg F27100187 dose (156,677 cells), and 0.37 mg / kg F27100187 dose (176,243 cells). D) Compared to vehicle-treated mice (681,508 cells), central memory cells were reduced at the 11.1 mg / kg F27100187 dose (106,497 cells), 3.72 mg / kg F27100187 dose (97,465 cells), 1.11 mg / kg F27100187 dose (95,135 cells), and 0.37 mg / kg F27100187 dose (135,098 cells). [Figure 8]Figure 1 shows that F27100187 significantly reduced human activated cells (CD19+), memory B cells, and plasmablast cellularity in the lungs of NSG mice. A) Compared to vehicle-treated mice (60,393 cells), activated cells (CD19+) were reduced at the 11.1 mg / kg F27100187 dose (11,581 cells), 3.72 mg / kg F27100187 dose (8,236 cells), 1.11 mg / kg F27100187 dose (9,948 cells), and 0.37 mg / kg F27100187 dose (10,248 cells). B) Compared to vehicle-treated mice (6,467 cells), memory B cells were reduced at the 11.1 mg / kg F27100187 dose (1,636 cells), 3.72 mg / kg F27100187 dose (914 cells), 1.11 mg / kg F27100187 dose (1,243 cells), and 0.37 mg / kg F27100187 dose (11,268 cells). C) Compared to vehicle-treated mice (26,148 cells), plasmablasts were reduced at the 11.1 mg / kg F27100187 dose (3,270 cells), 3.72 mg / kg F27100187 dose (2,216 cells), 1.11 mg / kg F27100187 dose (3,314 cells), and 0.37 mg / kg F27100187 dose (2,559 cells). [Figure 9]

[0023] Figure 1 shows that F27100187 significantly reduced detectable levels of the human type 2 major cytokines IL-2, IL-4, IL-5, and IL-10 in the plasma of NSG mice at all doses. Compared to vehicle-treated mice (2.203 pg / ml), human IL-2 was reduced at the 11.1 mg / kg F27100187 dose (0.7115 pg / ml), 3.72 mg / kg F27100187 dose (0.689 pg / ml), 1.11 mg / kg F27100187 dose (0.8593 pg / ml), and 0.37 mg / kg F27100187 dose (1.659 pg / ml). Compared to vehicle-treated mice (44.42 pg / ml), human IL-4 was reduced at the 11.1 mg / kg F27100187 dose (1.074 pg / ml), 3.72 mg / kg F27100187 dose (7.859 pg / ml), 1.11 mg / kg F27100187 dose (3.920 pg / ml), and 0.37 mg / kg F27100187 dose (7.415 pg / ml). Compared to vehicle-treated mice (14.74 pg / ml), human IL-5 was reduced at the 11.1 mg / kg F27100187 dose (0 pg / ml), 3.72 mg / kg F27100187 dose (1.388 pg / ml), 1.11 mg / kg F27100187 dose (0.6192 pg / ml), and 0.37 mg / kg F27100187 dose (0.6517 pg / ml). Compared to vehicle-treated mice (58.74 pg / ml), human IL-10 was reduced at the 11.1 mg / kg F27100187 dose (9.324 pg / ml), 3.72 mg / kg F27100187 dose (10.51 pg / ml), 1.11 mg / kg F27100187 dose (12.94 pg / ml), and 0.37 mg / kg F27100187 dose (13.47 pg / ml). [Figure 10]

[0023] Figure 1 shows that F27100187 significantly reduced detectable levels of human IgE in the plasma of NSG mice at all doses. Compared to vehicle-treated mice (383.2 pg / ml), human IgE was reduced at the 11.1 mg / kg F27100187 dose (0 pg / ml), 3.72 mg / kg F27100187 dose (42.95 pg / ml), 1.11 mg / kg F27100187 dose (11.55 pg / ml), and 0.37 mg / kg F27100187 dose (11.91 pg / ml). [Figure 11] This figure shows that F27100187 significantly reduced detectable levels of human IL-13, IL-5, TARC, and mouse eotaxin in the plasma of NSG-SGM3 mice. Compared to vehicle-treated mice (981.7 pg / ml), human IL-13 was reduced at 3.72 mg / kg F27100187 doses (28.94 pg / ml) and 1.11 mg / kg F27100187 doses (25.89 pg / ml). Compared to vehicle-treated mice (1121 pg / ml), human IL-5 was reduced at 3.72 mg / kg F27100187 doses (1.158 pg / ml) and 1.11 mg / kg F27100187 doses (1.079 pg / ml). Human TARC was reduced at the 3.72 mg / kg F27100187 dose (259.7 pg / ml) and 1.11 mg / kg F27100187 dose (368.5 pg / ml) compared to vehicle-treated mice (623.9 pg / ml). Mouse eotaxin was reduced at the 3.72 mg / kg F27100187 dose (803.2 pg / ml) and 1.11 mg / kg F27100187 dose (984.4 pg / ml) compared to vehicle-treated mice (1107 pg / ml). [Figure 12] Schematic representation of ISVD construct F027100187, in which from N- to C-terminus monovalent building blocks / ISVDs 15B07AM, 4B02 / 1, ALB23002, and 4B06 / 1 are connected via a 9GS linker. [Figure 13]Figure 1 shows that F27100187 significantly reduced lung eosinophils, BAL IL-5, and percent eosinophils after HDM challenge. A) Compared to vehicle-treated mice (2.37 score), lung eosinophils were reduced at the 5.2 mg / kg F27100187 dose (0.529 score) and 1.0 mg / kg F27100187 dose (0.585 score). B) Compared to vehicle-treated mice (1.798 pg / ml), BAL IL-5 was reduced at the 5.2 mg / kg F27100187 dose (0.4178 pg / ml) and 1.0 mg / kg F27100187 dose (0.6825 pg / ml). C) BAL eosinophil percentage was reduced at the 5.2 mg / kg F27100187 dose (2.897 percent) and the 1.0 mg / kg F27100187 dose (2.836 percent) compared to vehicle-treated mice (14.27 percent). [Figure 14] Figure 1 shows that F27100187 significantly reduced skin inflammation after HDM challenge. Compared to vehicle-treated mice (score 3.25), skin inflammation was reduced at the 5.2 mg / kg F27100187 dose (score 2.018) and 1.0 mg / kg F27100187 dose (score 2.475). [Figure 15] Figure 1 shows that F27100187 significantly reduced serum IgE levels. Compared to vehicle-treated mice (548.7 pg / ml), serum IgE levels were reduced at the 5.2 mg / kg F27100187 dose (-1291 pg / ml) and 1.0 mg / kg F27100187 dose (-180.2 pg / ml). DETAILED DESCRIPTION OF THE INVENTION

[0077] The present disclosure provides a new type of drug for treating autoimmune and / or inflammatory diseases, such as atopic dermatitis and asthma, and / or fibrotic diseases.

[0078] The inventors have found that polypeptides that simultaneously target OX40L and IL-13 provide improved efficiency in modulating type 2 inflammatory responses in vitro and / or in vivo compared to monospecific anti-OX40L or anti-IL-13 polypeptides. The polypeptides can be efficiently produced (e.g., in microbial hosts). Furthermore, such polypeptides have been shown to have limited reactivity to pre-existing antibodies in the subject to be treated (i.e., antibodies present in the subject prior to initial treatment with the antibody construct). In some embodiments, such polypeptides can be conveniently administered and exhibit a sufficiently long half-life in the subject to be treated so that the number of successive treatments remains limited and thus the timing of these treatments can be conveniently spaced.

[0079] The polypeptides are at least bispecific, but may be, for example, trispecific, tetraspecific, or pentaspecific. Additionally, the polypeptides are at least tetravalent, but may be, for example, pentavalent or hexavalent.

[0080] The terms "bispecific," "trispecific," "tetraspecific," and "pentaspecific" all refer to the term "multispecific" and refer to binding to two, three, four, or five different target molecules, respectively. The terms "bivalent," "trivalent," "tetravalent," "pentavalent," and "hexavalent" all refer to the term "multivalent" and refer to the presence of two, three, four, or five binding units (such as ISVDs), respectively. For example, a polypeptide may be trispecific-tetravalent, e.g., a polypeptide comprising or consisting of four ISVDs, where one ISVD binds to human OX40L, two ISVDs bind to human IL-13, and one ISVD binds to human serum albumin (e.g., ISVD construct F027100187). Such a polypeptide may also be simultaneously biparatopic, e.g., when two ISVDs bind to two different epitopes on human OX40L or human IL-13. The term "biparatopic" refers to binding to two different parts (eg, epitopes) of the same target molecule.

[0081] The terms "first ISVD," "second ISVD," "third ISVD," etc., as used herein, only indicate the relative positions of the ISVDs relative to one another, and numbering begins from the N-terminus of the polypeptide of the present disclosure. Thus, the "first ISVD" is closer to the N-terminus than the "second ISVD," which in turn is closer to the N-terminus than the "third ISVD," etc. Thus, when considered from the C-terminus, the ISVDs are positioned in the opposite direction. Because the numbering is not absolute and only indicates the relative positions of at least three ISVDs, it does not exclude that other binding units / building blocks that bind to OX40L or IL-13, such as additional ISVDs, or ISVDs that bind to other targets, may be present in the polypeptide. Furthermore, the numbering does not exclude the possibility that other binding units / building blocks, such as ISVDs, may be positioned therebetween. For example, as described further below (see in particular Section 5.3 "Extending (In Vivo) Half-Life"), the polypeptide may further comprise another ISVD that binds to human serum albumin, which may also be located, for example, between the "second ISVD" and the "third ISVD."

[0082] In view of the above, the present disclosure provides a polypeptide comprising or consisting of at least three ISVDs, wherein at least one ISVD specifically binds to OX40L and at least two ISVDs specifically bind to IL-13.

[0083] The components of the polypeptide, eg, ISVDs, may be linked to each other by one or more suitable linkers, eg, peptidic linkers.

[0084] The use of linkers to connect two or more (poly)peptides is well known in the art. Exemplary peptidic linkers are shown in Table A-5. One class of peptidic linkers that is often used is known as a "Gly-Ser" or "GS" linker. These are linkers consisting essentially of glycine (G) and serine (S) residues, and usually contain a GGGGS (SEQ ID NO: 65) motif (e.g., a linker of the formula (Gly-Gly-Gly-Gly-Ser) n (where n can be 1, 2, 3, 4, 5, 6, 7, or more). Some frequently used examples of such 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.

[0085] In the polypeptides of the present disclosure, in some embodiments, the use of a 9GS linker is chosen to link components of the polypeptide together.

[0086] In one embodiment, the ISVD that specifically binds to OX40L is located at the N-terminus of the polypeptide. The inventors surprisingly found that such a configuration can increase the production yield of the polypeptide.

[0087] Also, in one embodiment, one of the ISVDs that specifically binds to IL-13 is located at the C-terminus of the polypeptide.

[0088] Thus, 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 OX40L, a first ISVD that specifically binds IL-13, an optional binding unit that provides a polypeptide with increased half-life as defined herein, and a second ISVD that specifically binds IL-13. In some embodiments, the binding unit that provides a polypeptide with increased half-life is an ISVD.

[0089] In some embodiments, a polypeptide is provided that comprises or consists of, in order starting from the N-terminus of the polypeptide: an ISVD that specifically binds OX40L, a linker, a first ISVD that specifically binds IL-13, a linker, an ISVD that specifically binds human serum albumin, a linker, and a second ISVD that specifically binds IL-13. In some embodiments, the linker is a 9GS linker.

[0090] Such configuration of the polypeptide can result in increased production yields, superior CMC properties, and optimized functionality and greater potency in modulating the immune response.

[0091] In some embodiments, polypeptides of the present disclosure exhibit reduced binding by pre-existing antibodies in human serum. To this end, in one embodiment, the polypeptide has a valine (V) at amino acid position 11 and a leucine (L) at amino acid position 89 (according to Kabat numbering) in at least one, or each, ISVD. In another embodiment, the polypeptide has an extension of 1 to 5 amino acids, either naturally occurring, non-naturally occurring, or a mixture thereof, such as a single alanine (A) extension at the C-terminus of the ISVD. The C-terminus of the ISVD may be VTVSS (SEQ ID NO: 81). In another embodiment, the polypeptide has a lysine (K) or glutamine (Q) at position 110 (according to Kabat numbering) in at least one, or each, ISVD. In another embodiment, the ISVD has a lysine (K) or glutamine (Q) at position 112 (according to Kabat numbering) in at least one, or each, ISVD. In some embodiments, the C-terminus of the ISVD 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), such that after the addition of a single alanine, the C-terminus of the polypeptide has, for example, the sequence VTVSSA (SEQ ID NO:90), VKVSSA (SEQ ID NO:91), VQVSSA (SEQ ID NO:92), VTVKSA (SEQ ID NO:93), VTVQSA (SEQ ID NO:94), VKVKSA (SEQ ID NO:95), VKVQSA (SEQ ID NO:96), VQVKSA (SEQ ID NO:97), or VQVQSA (SEQ ID NO:98). In one embodiment, the sequence is VKVSSA (SEQ ID NO:91).In another embodiment, the polypeptide has a valine (V) at amino acid position 11 and a leucine (L) at amino acid position 89 (according to Kabat numbering) in each ISVD, and optionally a lysine (K) or glutamine (Q) at position 110 (according to Kabat numbering) in at least one ISVD, and a stretch of 1 to 5 amino acids, either naturally occurring, non-naturally occurring, or a mixture thereof, such as a single alanine (A) stretch at the C-terminus of the ISVD (such 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 in this regard, see, e.g., WO2012 / 175741 and WO2015 / 173325, each of which is incorporated by reference in its entirety.

[0092] In one embodiment, a polypeptide of the disclosure comprises or consists of an amino acid sequence having greater than 90%, such as greater than 95%, or greater than 99% sequence identity to SEQ ID NO: 1, and the CDRs of the four ISVDs are as defined in items A to D (or A' to D', if using Kabat's definitions) in sections "5.1 Immunoglobulin Single Variable Domains" and "5.3 Extension of (In Vivo) Half-Life", respectively, below, in particular: an ISVD that specifically binds to OX40L, having a CDR1 having the amino acid sequence of SEQ ID NO: 6, a CDR2 having the amino acid sequence of SEQ ID NO: 10, and a CDR3 having the amino acid sequence of SEQ ID NO: 14; a first ISVD that specifically binds to IL-13, having a CDR1 having the amino acid sequence of SEQ ID NO: 7, a CDR2 having the amino acid sequence of SEQ ID NO: 11, and a CDR3 having the amino acid sequence of SEQ ID NO: 15; a second ISVD that specifically binds to IL-13, having a CDR1 having the amino acid sequence of SEQ ID NO: 9, a CDR2 having the amino acid sequence of SEQ ID NO: 13, and a CDR3 having the amino acid sequence of SEQ ID NO: 17; and the ISVD that binds to human serum albumin has a CDR1 having the amino acid sequence of SEQ ID NO: 8, a CDR2 having the amino acid sequence of SEQ ID NO: 12, and a CDR3 having the amino acid sequence of SEQ ID NO: 16, or Or alternatively, to use Kabat's definition: an ISVD that specifically binds to OX40L, having a CDR1 having the amino acid sequence of SEQ ID NO: 31, a CDR2 having the amino acid sequence of SEQ ID NO: 35, and a CDR3 having the amino acid sequence of SEQ ID NO: 14; a first ISVD that specifically binds to IL-13, having a CDR1 having the amino acid sequence of SEQ ID NO: 32, a CDR2 having the amino acid sequence of SEQ ID NO: 36, and a CDR3 having the amino acid sequence of SEQ ID NO: 15; a second ISVD that specifically binds to IL-13, having a CDR1 having the amino acid sequence of SEQ ID NO: 34, a CDR2 having the amino acid sequence of SEQ ID NO: 38, and a CDR3 having the amino acid sequence of SEQ ID NO: 17; and The ISVD that binds to human serum albumin has a CDR1 having the amino acid sequence of SEQ ID NO: 33, a CDR2 having the amino acid sequence of SEQ ID NO: 37, and a CDR3 having the amino acid sequence of SEQ ID NO: 16.

[0093] In some embodiments, the polypeptide comprises 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.

[0094] In some embodiments, the polypeptides of the present disclosure have at least half the binding affinity, at least the same binding affinity, or even greater binding affinity for human OX40L and human IL-13 compared to a polypeptide consisting of the amino acids of SEQ ID NO:1, where the binding affinity is measured using the same method, such as SPR.

[0095] 5.1 Immunoglobulin Single Variable Domains The term "immunoglobulin single variable domain" (ISVD) is used synonymously with "single variable domain" and defines an immunoglobulin molecule in which the antigen-binding site is present on, and formed by, a single immunoglobulin domain. This sets immunoglobulin single variable domains apart from "conventional" immunoglobulins (e.g., monoclonal antibodies) or fragments thereof (e.g., Fab, Fab', F(ab')2, scFv, dis-scFv), in which two immunoglobulin domains, particularly two variable domains, interact to form the antigen-binding site. Typically, in conventional immunoglobulins, the heavy chain variable domain (V H ) and the light chain variable domain (V L ) interact with each other to form the antigen-binding site. H and V L Both complementarity-determining regions (CDRs) of the nucleotides contribute to the antigen-binding site, i.e., a total of six CDRs are involved in forming the antigen-binding site.

[0096] In view of the above definition, the antigen-binding domain of a traditional four-chain antibody (e.g., an IgG, IgM, IgA, IgD or IgE molecule; known in the art), or of a Fab fragment, a F(ab')2 fragment, an Fv fragment, such as a disulfide-linked Fv or scFv fragment, or a diabody derived from such a traditional four-chain antibody (all known in the art), is not typically considered an immunoglobulin single variable domain, because in these cases, binding to each epitope of an antigen typically occurs not by one (single) immunoglobulin domain, but by a pair of (associated) immunoglobulin domains, e.g., a light and heavy chain variable domain, i.e., the V domains of immunoglobulin domains that jointly bind to the respective epitopes of the antigen. H -V L This is because they occur in pairs.

[0097] In contrast, an immunoglobulin single variable domain is capable of specifically binding to an epitope of an antigen without pairing with an additional immunoglobulin variable domain. The binding site of an immunoglobulin single variable domain consists of a single VH , a single V HH or a single V L Formed by domains.

[0098] Thus, a single variable domain may be selected from a light chain variable domain sequence (e.g., V), 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 the single antigen-binding domain does not need to interact with another variable domain to form a functional antigen-binding unit). L -sequence) or a suitable fragment thereof; or a heavy chain variable domain sequence (e.g., V H -Array or V HH sequence) or a suitable fragment thereof.

[0099] The immunoglobulin single variable domain (ISVD) may be, for example, a heavy chain ISVD, such as a V H , V HH , e.g., camelized V H Or a humanized V HH According to some embodiments, the immunoglobulin single variable domain (ISVD) may be a camelized V H or humanized V HH Contains V HH The heavy chain ISVD may be derived from a conventional four-chain antibody or a heavy chain antibody.

[0100] For example, an immunoglobulin single variable domain may be a single domain antibody (or a suitable amino acid sequence for use as a single domain antibody), a "dAb" or dAb (or a suitable amino acid sequence for use as a dAb), or a 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 one of them.

[0101] In particular, immunoglobulin single variable domains are used in the manufacture of Nanobodies® (e.g., V HH , e.g., humanized VHH or Camelization V H etc.) or a suitable fragment thereof. Nanobody®, Nanobodies® and Nanoclone® are registered trademarks of Ablynx NV.

[0102] "V HH Domain" is V HH , V HH antibody fragments, and V HH Also known as antibodies, they were originally described as "heavy chain antibodies" (i.e., "light chain-deleted antibodies"; Hamers-Casterman et al., Nature 363:446-448, 1993) that bind antigen with the variable domain of immunoglobulins. HH The "V domains" refer to these variable domains as those found in conventional four-chain antibodies (referred to herein as "V H heavy chain variable domains present in conventional four-chain antibodies (referred to herein as "V domains") and L The V HHFor further explanation, see the review by Muyldermans (Reviews in Molecular Biotechnology 74:277-302, 2001), and the following patent applications, which are mentioned as general background art: WO94 / 04678, WO95 / 04079 and WO96 / 34103 to Vrije Universiteit Brussel; WO94 / 25591, WO99 / 37681, WO00 / 40968, WO00 / 43507, WO00 / 65057, WO01 / 40310, WO01 / 44301, EP1134231 and WO02 / 48193 to Unilever; WO97 / 49805, WO01 / 21817, WO03 / 035694, WO03 / 054016 and WO03 / 055527 from the 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 Reference is made to 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, each of which is incorporated herein by reference in its entirety.

[0103] Typically, the production of immunoglobulins involves immunizing laboratory animals, fusing immunoglobulin-producing cells to create hybridomas, and screening for the desired specificity. Alternatively, immunoglobulins may be produced by screening naive or synthetic libraries, for example, by phage display.

[0104] The generation of immunoglobulin sequences, such as Nanobodies®, has been extensively described in various publications, including WO 94 / 04678, Hamers-Casterman et al. 1993, and Muyldermans et al. 2001 (Reviews in Molecular Biotechnology 74:277-302, 2001), each of which is incorporated herein by reference in its entirety. In these methods, a camelid is immunized with a target antigen to induce an immune response against said target antigen. The repertoire of Nanobodies obtained from said immunization is further screened for Nanobodies that bind to the target antigen.

[0105] In these instances, the generation of antibodies requires purified antigen for immunization and / or screening. The antigen may be purified from a natural source or may be purified during recombinant production.

[0106] Immunization and / or screening for immunoglobulin sequences can be carried out using peptide fragments of such antigens.

[0107] Immunoglobulin sequences of different origins may be used, including mouse, rat, rabbit, donkey, human, and camelid immunoglobulin sequences. The present disclosure also encompasses fully human, humanized, or chimeric sequences. For example, the present disclosure encompasses camelid immunoglobulin sequences and humanized camelid immunoglobulin sequences, or camelized domain antibodies, e.g., camelized dAbs, as described by Ward et al. (see, e.g., WO 94 / 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, the present disclosure also encompasses fused immunoglobulin sequences (one or more V HHFor multivalent and multispecific polypeptides containing domains and their preparation, see Conrath et al., J. Biol. Chem., Vol. 276, 10, pp. 7346-7350, 2001, and also, e.g., WO 96 / 34103 and WO 99 / 23221, each of which is incorporated herein by reference in its entirety), as well as immunoglobulin sequences containing tags or other functional moieties, such as toxins, labels, radiochemicals, etc., which can be derived from the immunoglobulin sequences of the present disclosure.

[0108] "Humanized V HH " is a naturally occurring V HH domain, but is "humanized," i.e., HH One or more amino acid residues in the amino acid sequence of the sequence (particularly in the framework sequences) can be replaced with a V from a conventional four-chain antibody from a human (e.g., as shown above). H The humanized V domains include amino acid sequences that have been humanized by replacing one or more amino acid residues present at the corresponding positions in the V domain. This can be carried out in a manner known per se, which will be apparent to those skilled in the art, for example, based on the further explanations herein and in the literature (e.g., WO2008 / 020079, which is incorporated by reference in its entirety). It should also be noted that such humanized V domains can be humanized in a manner known per se, which will be apparent to those skilled in the art, for example, based on the further explanations herein and in the literature (e.g., WO2008 / 020079, which is incorporated by reference in its entirety). HH can be obtained in any suitable manner known per se and is therefore not strictly limited to polypeptides obtained using naturally occurring VHH domain-containing polypeptides as starting material.

[0109] "Camelization V H " is a naturally occurring V H The amino acid sequence of the V domain corresponds to that of the naturally occurring V from a conventional four-chain antibody, but is "camelized", i.e. H One or more amino acid residues in the amino acid sequence of the domain are HHThis includes amino acid sequences that have been camelized by replacing one or more amino acid residues present at the corresponding positions in the V domain. This can be done in a manner known per se that will be clear to the skilled artisan, for example based on the further explanations provided herein and in the literature (e.g. WO2008 / 020079). Such "camelizing" substitutions can be made in the V domain. H -V L In some embodiments, the amino acid residues may be inserted at amino acid positions forming and / or present at the boundaries of the camel V and / or at so-called camel hallmark residues as defined herein (see, e.g., WO 94 / 04678 and Davies and Riechmann (1994 and 1996), supra). H V, which is used as a starting material or starting point for generating or designing H The sequences are V from mammals H sequence, or human V H Array, e.g. V H 3 sequence. However, it is noteworthy that such camelized V H can be obtained in any suitable manner known per se and therefore does not involve the use of naturally occurring V as starting material. H The present invention is not limited to polypeptides obtained using a polypeptide containing a domain.

[0110] 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 bridges) to provide peptide constructs (e.g., Fab' fragments, F(ab')2 fragments, scFv constructs, "diabodies" and other multispecific constructs), which may also be useful. See, for example, the review 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 include immunoglobulin sequences that do not naturally occur in said subject.

[0111] A non-limiting example of the structure of an immunoglobulin single variable 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"); these framework regions are interrupted 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");

[0112] As further described in paragraph q) of pages 58 and 59 of WO 08 / 020079 (incorporated herein by reference), the amino acid residues of immunoglobulin single variable domains are selected from V from camelids in the article by Riechmann and Muyldermans, 2000 (J. Immunol. Methods 240(1-2):185-195; see e.g., Figure 2 of this publication). HH As applied to the domain, V 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. H Domains and V HHAs is well known in the art for domains, the total number of amino acid residues in each of the CDRs may vary and may not correspond to the total number of amino acid residues indicated by the Kabat numbering (i.e., one or more positions according to the Kabat numbering may not be occupied in the actual sequence, or the actual sequence may contain more amino acid residues than allowed by the Kabat numbering). This generally means that the Kabat numbering may or may not correspond to the actual numbering of amino acid residues in the actual sequence. H Domains and V HH The total number of amino acid residues in a domain will typically be in the range of 110 to 120, often 112 to 115. However, it should be noted that shorter and longer sequences may also be suitable for the purposes described herein.

[0113] In the present application, unless otherwise specified, CDR sequences are determined according to the AbM numbering as described in Kontermann and Dubel (2010, eds., Antibody Engineering, Vol. 2, Springer Verlag Heidelberg Berlin, Martin, Chapter 3, pp. 33-51). According to this method, FR1 comprises amino acid residues at positions 1-25, CDR1 comprises amino acid residues at positions 26-35, FR2 comprises amino acid residues at positions 36-49, CDR2 comprises amino acid residues at positions 50-58, FR3 comprises amino acid residues at positions 59-94, CDR3 comprises amino acid residues at positions 95-102, and FR4 comprises amino acid residues at positions 103-113.

[0114] The determination of the CDR regions may be performed according to different methods: In the CDR determination according to Kabat, FR1 of an immunoglobulin single variable domain comprises the amino acid residues at positions 1 to 30, CDR1 of an immunoglobulin single variable domain comprises the amino acid residues at positions 31 to 35, FR2 of an immunoglobulin single variable domain comprises the amino acid residues at positions 36 to 49, CDR2 of an immunoglobulin single variable domain comprises the amino acid residues at positions 50 to 65, FR3 of an immunoglobulin single variable domain comprises the amino acid residues at positions 66 to 94, CDR3 of an immunoglobulin single variable domain comprises the amino acid residues at positions 95 to 102, and FR4 of an immunoglobulin single variable domain comprises the amino acid residues at positions 103 to 113.

[0115] In such immunoglobulin sequences, the framework sequences may be any suitable framework sequences, and examples of suitable framework sequences will be clear to those skilled in the art, e.g., from standard textbooks and based on the further disclosure and prior art set forth herein.

[0116] The framework sequences may be immunoglobulin framework sequences or (suitable combinations of) framework sequences derived from immunoglobulin framework sequences (e.g., by humanization or camelization). For example, the framework sequences may be those of a light chain variable domain (e.g., V L sequence) and / or heavy chain variable domains (e.g., V H Array or V HH In one embodiment, the framework sequences are derived from V HH the framework sequences are derived from the camel V sequences (wherein said framework sequences may optionally be partially or fully humanized), or are derived from conventional camel V sequences. H A sequence (as defined herein) is either:

[0117] In particular, the framework sequences present in the ISVD sequence as disclosed herein are those that are essential for the synthesis of Nanobodies®, e.g., humanized VHH or Camelization V H Contains V HH Some non-limiting examples of such framework sequences (suitable combinations thereof) will become clear from the further disclosure provided herein.

[0118] Again, as generally described herein with respect to immunoglobulin sequences, it is also contemplated to use suitable fragments (or combinations of fragments) of any of the foregoing, for example fragments containing one or more CDR sequences preferably flanked by and / or linked via one or more framework sequences (e.g., these CDR and framework sequences in the same order as they may occur in the full-sized immunoglobulin sequence from which the fragment is derived).

[0119] It should be noted, however, that the disclosure is not limited to the origin of the ISVD sequence (or the nucleotide sequence used to express it), nor to the manner in which the ISVD sequence or nucleotide sequence is generated (or generated) 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 is a naturally occurring sequence (from any suitable species) or a synthetic or semi-synthetic sequence, examples of which include, but are not limited to, "humanized" (as defined herein) immunoglobulin sequences (e.g., partially or fully humanized mouse or rabbit immunoglobulin sequences, particularly partially or fully humanized VHV sequences). HHsequences), "camelized" (as defined herein) immunoglobulin sequences, as well as 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 engineering immunoglobulin sequences well known to those skilled in the art; or any suitable combination of any of the foregoing.

[0120] Likewise, the nucleotide sequence may be a naturally occurring nucleotide sequence or a synthetic or semi-synthetic sequence, for example a sequence isolated by PCR from a suitable naturally occurring template (e.g. DNA or RNA isolated from a cell), 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 per se, for example mismatch PCR), a nucleotide sequence prepared by PCR using overlapping primers, or a nucleotide sequence prepared using techniques for DNA synthesis known per se.

[0121] As mentioned above, the ISVD may be a Nanobody® or a suitable fragment thereof. For a general description of Nanobodies® (Nanobody® and Nanobodies® are registered trademarks of Ablynx NV, a Sanofi Company), reference is made to the further description below and to the prior art cited therein. However, in this respect, the description and prior art are primarily directed to the so-called "V H 3 Class" Nanobodies® (i.e., V such as DP-47, DP-51, or DP-29) HIt should be noted that the present disclosure describes three classes of Nanobodies® that have a high degree of sequence homology to human germline sequences. However, in its broadest sense, the present disclosure can generally be used with any type of Nanobody®, including, for example, the so-called "V" Nanobodies, as described in WO 2007 / 118670, which is incorporated by reference in its entirety. H Nanobodies® (i.e., V4 class) such as DP-78 H It should be noted that we also use Nanobodies®, which have a high degree of sequence homology to four classes of human germline sequences.

[0122] Generally, Nanobodies® (especially V HH Sequences such as (partially) humanized V HH Sequence and camelization V H A Nanobody® may be characterized by the presence of one or more "hallmark residues" (as described herein) in one or more of the framework sequences (again as further described herein). Thus, in general, a Nanobody® may have the (generic) structure FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4 wherein FR1-FR4 refer to Framework Regions 1-4, respectively, and CDR1-CDR3 refer to Complementarity Determining Regions 1-3, respectively, and one or more of the Hallmark Residues are as further defined herein.

[0123] In particular, Nanobodies® have the (general) structure FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4 where FR1-FR4 refer to framework regions 1-4, respectively, and CDR1-CDR3 refer to complementarity determining regions 1-3, respectively, and the framework sequences are as further defined herein.

[0124] More specifically, Nanobodies® have the (general) structure FR1-CDR1-FR2-CDR2-FR3-CDR3-FR4 wherein FR1 to FR4 refer to framework regions 1 to 4, respectively, and CDR1 to CDR3 refer to complementarity determining regions 1 to 3, respectively: One or more of the amino acid residues at positions 11, 37, 44, 45, 47, 83, 84, 103, 104 and 108 according to the Kabat numbering are selected from the Hallmark Residues set forth in Table A-0 below.

[0125] [Table 1-1] [Table 1-2]

[0126] In some embodiments, the hallmark residue at position 11 is L. In some embodiments, the hallmark residue at position 37 is F. (1) or Y. In some embodiments, the hallmark residue at position 44 is G. (2) or Q (3) In some embodiments, the Hallmark residue at position 45 is L (2) or R (3) In some embodiments, the Hallmark residue at position 47 is F (1) , L (1) or W (2) In some embodiments, the hallmark residue at position 83 is K. In some embodiments, the hallmark residue at position 84 is P. In some embodiments, the hallmark residue at position 103 is W. In some embodiments, the hallmark residue at position 104 is G. In some embodiments, the hallmark residue at position 108 is Q or L.

[0127] The present disclosure makes use of, inter alia, ISVDs capable of specifically binding to OX40L or IL-13. For purposes of this disclosure, "binding to" a particular target molecule has the ordinary meaning in the art as understood in relation to an antibody and its respective antigen.

[0128] Polypeptides of the disclosure may comprise one or more ISVDs that bind OX40L and two or more ISVDs that bind IL-13. For example, a polypeptide may comprise one ISVD that binds OX40L and two ISVDs that bind IL-13.

[0129] In some embodiments, at least one ISVD is capable of functionally blocking its target molecule. For example, a targeting moiety can block the interaction of OX40L with OX40 (receptor), and in some embodiments, can inhibit OX40L-induced release of IL2 from T cells, or can block the interaction of IL-13 with IL-13Rα1 (interleukin-13 receptor, alpha 1) and / or the interaction of the IL-13 / IL-13Rα1 complex with IL-4Rα (alpha interleukin-4 receptor). Thus, in one embodiment, a polypeptide of the present disclosure includes at least one ISVD that specifically binds to OX40L and inhibits its interaction with OX40, and two ISVDs that specifically bind to IL-13 and functionally block its interaction with IL-13Rα1 and / or the interaction of the IL-13 / IL-13Rα1 complex with IL-4Rα.

[0130] As used in this disclosure, an ISVD forms part of a polypeptide of the disclosure that comprises or consists of at least three ISVDs such that the polypeptide is capable of specifically binding to OX40L and IL-13.

[0131] Therefore, the target molecules of at least three ISVDs used in the polypeptide of the present disclosure are OX40L and IL-13. Examples thereof are mammalian OX40L and IL-13. Human OX40L (Uniprot accession number P23510) and human IL-13 (Uniprot accession number P35225) are used, but versions from other species, such as mouse, rat, rabbit, cat, dog, goat, sheep, horse, pig, non-human primate, such as cynomolgus monkey (also referred to herein as "cynomolgus monkey"), or camelid, such as llama or alpaca, are also suitable for the present disclosure.

[0132] Specific examples of ISVDs that specifically bind to OX40L or IL-13 that can be used in the present disclosure are as described in Sections A-C below: A. Specific binding to human OX40L. i. CDR1 having the amino acid sequence of SEQ ID NO: 6 or having 2 or 1 amino acid difference from SEQ ID NO: 6; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 10 or having two or one amino acid difference from SEQ ID NO: 10; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 14 or having two or one amino acid difference from SEQ ID NO: 14. Including ISVD.

[0133] 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.

[0134] A non-limiting example of such an ISVD that specifically binds to human OX40L has one or more or all of the framework regions shown for construct 15B07AM in Table A-2 (in addition to the CDRs defined in section A above), e.g., the ISVD has the full-length amino acid sequence of construct 15B07AM (SEQ ID NO: 2, see Tables A-1 and A-2).

[0135] Also, in one embodiment, the amino acid sequence of an ISVD that specifically binds to human OX40L may have greater than 90%, e.g., greater than 95%, or greater than 99% sequence identity to SEQ ID NO:2, and optionally the CDRs are as defined above in section A. In some embodiments, an ISVD that specifically binds to OX40L has the amino acid sequence of SEQ ID NO:2.

[0136] When such an ISVD that specifically binds to OX40L has two or one amino acid difference 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 15B07AM for human OX40L, at least the same binding affinity, or even higher binding affinity, where the binding affinity is measured using the same method, such as SPR.

[0137] B. Specific binding to human IL-13 i. a CDR1 having the amino acid sequence of SEQ ID NO: 7 or having two or one amino acid difference from SEQ ID NO: 7; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 11 or having two or one amino acid difference from SEQ ID NO: 11; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 15 or having two or one amino acid difference from SEQ ID NO: 15. Including ISVD.

[0138] 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.

[0139] A non-limiting example of such an ISVD that specifically binds to human IL-13 has one or more or all of the framework regions shown for the 4B02 / 1 construct in Table A-2 (in addition to the CDRs defined above in section B), e.g., the ISVD has the full-length amino acid sequence of construct 4B02 / 1 (SEQ ID NO: 3, see Tables A-1 and A-2).

[0140] Also, in one embodiment, the amino acid sequence of an ISVD that specifically binds human IL-13 may have greater than 90%, e.g., greater than 95%, or greater than 99% sequence identity to SEQ ID NO:3, and optionally the CDRs are as defined above in section B. In some embodiments, the ISVD that binds IL-13 has the amino acid sequence of SEQ ID NO:3.

[0141] When such an ISVD that binds to IL-13 has two or one amino acid difference 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 of construct 4B02 / 1 for human IL-13, at least the same binding affinity, or even higher binding affinity, where the binding affinity is measured using the same method, such as SPR.

[0142] C. specifically binds to human IL-13; i. CDR1 having the amino acid sequence of SEQ ID NO: 9 or having 2 or 1 amino acid difference from SEQ ID NO: 9; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 13 or having two or one amino acid difference from SEQ ID NO: 13; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 17 or having two or one amino acid difference from SEQ ID NO: 17. Including ISVD.

[0143] 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.

[0144] A non-limiting example of such an ISVD that specifically binds to human IL-13 has one or more or all of the framework regions shown for construct 4B06 / 1 in Table A-2 (in addition to the CDRs defined above in section C), e.g., the ISVD has the full-length amino acid sequence of construct 4B06 / 1 (see SEQ ID NO: 5, Tables A-1 and A-2).

[0145] Also, in one embodiment, the amino acid sequence of an ISVD that specifically binds human IL-13 may have greater than 90%, e.g., greater than 95%, or greater than 99% sequence identity to SEQ ID NO: 5, and optionally the CDRs are as defined above in section C. In some embodiments, the ISVD that binds IL-13 has the amino acid sequence of SEQ ID NO: 5.

[0146] If such an ISVD that specifically binds to IL-13 has two or one amino acid difference in at least one CDR compared to the corresponding reference CDR sequence (item C above), the ISVD will have at least half the binding affinity of construct 4B06 / 1 for human IL-13, at least the same binding affinity, or even higher binding affinity, where the binding affinity is measured using the same method, such as SPR.

[0147] In some embodiments, each of the ISVDs defined above in sections A-C is included in a polypeptide of the present disclosure. In some embodiments, such polypeptides of the present disclosure that include each of the ISVDs defined above in sections A-C have at least half the binding affinity, at least the same binding affinity, or even greater binding affinity for human OX40L and human IL-13 as a polypeptide consisting of the amino acids of SEQ ID NO: 1, where the binding affinity is measured using the same method, such as SPR.

[0148] The SEQ ID NOs referred to in sections A-C above are based on the AbM definition of CDRs (see Table A-2). Note that SEQ ID NOs defining the same CDRs according to the Kabat definition (see Table A-2.1) can also be used in sections A-C above.

[0149] Thus, specific ISVDs that specifically bind OX40L or IL-13 that can be used in the present disclosure as described above using the AbM definition can also be described using the Kabat definition as described in sections A'-C' below: A'. Specific binding to human OX40L. i. a CDR1 having the amino acid sequence of SEQ ID NO: 31 or having two or one amino acid difference from SEQ ID NO: 31; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 35 or having two or one amino acid difference from SEQ ID NO: 35; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 14 or having two or one amino acid difference from SEQ ID NO: 14. Including ISVD.

[0150] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO:31, CDR2 has the amino acid sequence of SEQ ID NO:35, and CDR3 has the amino acid sequence of SEQ ID NO:14.

[0151] A non-limiting example of such an ISVD that specifically binds to human OX40L has one or more or all of the framework regions shown for construct 15B07AM in Table A-2.1 (in addition to the CDRs defined above in section A'), for example, the ISVD has the full-length amino acid sequence of construct 15B07AM (SEQ ID NO: 2, see Tables A-1 and A-2.1).

[0152] B'. Binds specifically to human IL-13 i. a CDR1 having the amino acid sequence of SEQ ID NO: 32 or having two or one amino acid difference from SEQ ID NO: 32; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 36 or having two or one amino acid difference from SEQ ID NO: 36; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 15 or having two or one amino acid difference from SEQ ID NO: 15. Including ISVD.

[0153] In some embodiments, CDR1 has the amino acid sequence of SEQ ID NO:32, CDR2 has the amino acid sequence of SEQ ID NO:36, and CDR3 has the amino acid sequence of SEQ ID NO:15.

[0154] A non-limiting example of such an ISVD that specifically binds to human IL-13 has one or more or all of the framework regions shown for construct 4B02 / 1 in Table A-2.1 (in addition to the CDRs defined above in section B'), for example, the ISVD has the full-length amino acid sequence of construct 4B02 / 1 (SEQ ID NO: 3, see Tables A-1 and A-2.1).

[0155] C'. Specific binding to human IL-13 i. a CDR1 having the amino acid sequence of SEQ ID NO: 34 or having two or one amino acid difference from SEQ ID NO: 34; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 38 or having two or one amino acid difference from SEQ ID NO: 38; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 17 or having two or one amino acid difference from SEQ ID NO: 17. Including ISVD.

[0156] 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:17.

[0157] A non-limiting example of such an ISVD that specifically binds to human IL-13 has one or more or all of the framework regions shown for construct 4B06 / 1 in Table A-2.1 (in addition to the CDRs defined above in section C'), for example, the ISVD has the full-length amino acid sequence of construct 4B06 / 1 (SEQ ID NO: 5, see Tables A-1 and A-2.1).

[0158] The percentage of "sequence identity" between a first amino acid sequence and a 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 amino acid residues at corresponding positions in the second amino acid sequence by the total number of amino acid residues in the first amino acid sequence and multiplying by 100%, where 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 to be a difference at a single amino acid residue (i.e., a single position).

[0159] Generally, for purposes of determining the percentage of "sequence identity" between two amino acid sequences according to the calculation method outlined above, the amino acid sequence having the greatest number of amino acid residues will be treated as the "first" amino acid sequence, and the other amino acid sequence will be treated as the "second" amino acid sequence.

[0160] "Amino acid difference," as used herein, refers to a deletion, insertion, or substitution of a single amino acid residue relative to a reference sequence. In some embodiments, the amino acid difference is a substitution.

[0161] In some embodiments, the amino acid substitutions are conservative substitutions. In some embodiments, such conservative substitutions are those in which one amino acid residue within the following groups (a) to (e) is replaced with another amino acid residue within the same group: (a) small aliphatic, non-polar 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, non-polar residues: Met, Leu, Ile, Val, and Cys; and (e) aromatic residues: Phe, Tyr, and Trp.

[0162] In some embodiments, conservative substitutions are as follows: Ala to Gly or Ser; Arg to Lys; Asn to Gln or His; Asp to Glu; Cys to Ser; Gln to Asn; Glu to Asp; Gly to Ala or Pro; His to Asn or Gln; Ile to Leu or Val; Leu to Ile or Val; Lys to Arg, Gln, or Glu; Met to Leu, Tyr, or Ile; Phe to Met, Leu, or Tyr; Ser to Thr; Thr to Ser; Trp to Tyr; Tyr to Trp; and / or Phe to Val, Ile, or Leu.

[0163] 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 sufficiently high affinity (see below). "Specificity," "specifically binds," or "specific binding" are used herein synonymously with "selectivity," "selectively binds," or "selective binding." According to embodiments, a binding unit, e.g., an ISVD, specifically binds to its designated target.

[0164] 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 expressed by KD, or dissociation constant, which has units of moles / liter (or M). Affinity is also equal to 1 / KD, (moles / liter) -1 (or M -1 The association constant, KA, can also be expressed as the association constant, KA, which has units of .

[0165] Affinity is a measure of the strength of binding 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.

[0166] Typically, the linking units (e.g., ISVDs) used in this disclosure are 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 Dissociation constant (KD) in 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 It binds to its target (at room temperature) with an association constant (KA) in liters / mol.

[0167] Generally, 10 -4 Any KD value greater than 10 moles / liter (or 4 Any K A value lower than 1 / mol / L is considered to indicate nonspecific binding.

[0168] The KD of a biological interaction, for example, the KD of binding of an immunoglobulin sequence to an antigen that is considered specific, is typically greater than 10 -5 moles / liter (10,000 nM or 10 μM) to 10 -12in the range of moles per liter (0.001 nM or 1 pM) or less.

[0169] Therefore, specific / selective binding can be measured using the same method, e.g., SPR, with a binding unit (or a polypeptide containing it) of 10 -5 ~10 -12 Binds to OX40L and / or IL13 with K values ​​of 1000 mol / liter or less and inhibits related cytokines -4 "KD" may refer to binding with a KD value greater than 100 moles per liter. Examples of targets related to OX40L include human TRAIL, CD30L, CD40L, and RANKL. An example of a target related to IL-13 is human IL-4. Thus, in one embodiment, at least one ISVD contained in the polypeptide binds to OX40L with a KD value greater than 100 moles per liter. -5 ~10 -12 It binds to TRAIL, CD30L, CD40L, and RANKL with K values ​​of 10 mol / L or less and is -4 The polypeptide binds to IL-13 with a KD value of greater than 10 mol / L, and at least two ISVDs contained in the polypeptide bind to IL-13. -5 ~10 -12 IL-4 of the same species binds with a KD value of 10 mol / L or less. -4 Binds with a KD value greater than moles / liter.

[0170] Thus, 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 for human OX40L and human IL-13 compared to a polypeptide consisting of the amino acids of SEQ ID NO:1, where the binding affinity is measured using the same method, such as SPR.

[0171] Specific binding to a particular target from a particular species does not exclude that the binding unit may also specifically bind to a similar target from a different species. For example, specific binding to human OX40L does not exclude that the binding unit (or a polypeptide comprising it) may also specifically bind to OX40L from cynomolgus monkeys. Similarly, specific binding to human IL-13, for example, does not exclude that the binding unit (or a polypeptide comprising it) may also specifically bind to IL-13 from cynomolgus monkeys ("cyno").

[0172] Specific binding of a binding unit to its designated target can be determined in any suitable manner known per se, including but not limited to Scatchard analysis and / or competitive binding assays, such as radioimmunoassays (RIA), enzyme immunoassays (EIA) and sandwich competition assays, and their various modifications known per se in the art; as well as other techniques described herein.

[0173] The dissociation constant may be an actual dissociation constant or an apparent dissociation constant, as will be apparent to those skilled in the art. Methods for determining dissociation constants will be apparent to those skilled in the art, and examples include the techniques described below. In this regard, -4 moles / liter or 10 -3 greater 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 one skilled in the art, the dissociation constant (actual or apparent) can be calculated based on the association constant (KA) (actual or apparent) according to the relationship [KD=1 / KA].

[0174] The affinity of a molecular interaction between two molecules can be measured via various techniques known per se, such as the well-known surface plasmon resonance (SPR) biosensor technology (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 allows for the analysis of real-time biospecific interactions by detecting changes in protein concentration within a biosensor matrix, where one molecule is immobilized on a biosensor chip and the other molecule passes over the immobilized molecule under flow conditions, resulting in k on , k off measurements, hence K D (or K A ) values ​​are obtained. This can be performed, for example, using the well-known BIAcore® system (BIAcore International AB, GE Healthcare, Uppsala, Sweden and Piscataway, NJ). For further description, 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).

[0175] 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 a label-free optical technique that analyzes interference patterns 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 pattern, 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. Interactions can be measured in real time, allowing association and dissociation rates and affinities to be determined. BLI can be performed, for example, using the well-known Octet® system (ForteBio, a division of Pall Life Sciences, Menlo Park, USA).

[0176] Alternatively, affinity can be measured by Kinetic Exclusion Assay (KinExA) (see, e.g., Drake et al., 2004, Anal. Biochem., 328:35-43) using the KinExA® platform (Sapidyne Instruments Inc, Boise, USA). The term "KinExA" as used herein refers to a solution-based method for measuring the true equilibrium binding affinity and kinetics of unmodified molecules. An equilibrated solution of antibody / antigen complexes is passed over a column with beads pre-coated with the antigen (or antibody), allowing free antibody (or antigen) to bind to the coated molecule. Detection of the antibody (or antigen) captured in this manner is achieved using a fluorescently labeled protein that binds to the antibody (or antigen).

[0177] The GYROLAB® Immunoassay System provides a platform for automated biological analysis and rapid sample turnover (Fraley et al., 2013, Bioanalysis 5:1765-74).

[0178] 5.3 Half-life extension (in vivo) The polypeptide may further comprise one or more other groups, residues, moieties, or binding units, optionally linked via one or more peptidic linkers, which provide the polypeptide with an increased half-life (in vivo) compared to a corresponding polypeptide that does not have the one or more other groups, residues, moieties, or binding units. An increased half-life in vivo means, for example, that the polypeptide has an increased half-life in a mammal, e.g., a human subject, after administration. Half-life can be expressed, for example, as t1 / 2 beta.

[0179] The type of group, residue, moiety or binding unit is generally not limited and can be selected from the group consisting of, for example, polyethylene glycol molecules, serum proteins or fragments thereof, binding units capable of binding to serum proteins, Fc portions, and small proteins or peptides capable of binding to serum proteins.

[0180] More specifically, the one or more other groups, residues, moieties or binding units that provide a polypeptide with an increased half-life can be 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. In some embodiments, the binding unit can bind to human serum albumin. In some embodiments, the binding unit is an ISVD.

[0181] For example, WO04 / 041865 (incorporated by reference in its entirety) describes Nanobodies® that bind to serum albumin (and in particular to human serum albumin) and that can be linked to other proteins (e.g., one or more other Nanobodies® that bind to a desired target) to increase the half-life of the protein.

[0182] International application WO06 / 122787 (herein incorporated by reference in its entirety) describes a number of Nanobodies® directed against (human) serum albumin. These Nanobodies® include Alb-1 (SEQ ID NO: 52 in WO06 / 122787, incorporated by reference in its entirety) and their humanized variants, such as the Nanobody® designated Alb-8 (SEQ ID NO: 62 in WO06 / 122787, incorporated by reference in its entirety). These can also be used to extend the half-life of therapeutic proteins and polypeptides and other therapeutic entities or moieties.

[0183] Furthermore, WO2012 / 175400 (incorporated by reference in its entirety) describes a further improved version of Alb-1, called Alb-23.

[0184] 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 variants thereof, as shown on pages 7-9 of WO2012 / 175400, and albumin binders described in WO2012 / 175741, WO2015 / 173325, WO2017 / 080850, WO2017 / 085172, WO2018 / 104444, WO2018 / 134235, and WO2018 / 134234 (each of which is incorporated 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 the present disclosure comprise additional components described in Section D: D. binds to human serum albumin i. CDR1 having the amino acid sequence of SEQ ID NO: 8 or having 2 or 1 amino acid difference from SEQ ID NO: 8; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 12 or having two or one amino acid difference from SEQ ID NO: 12; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 16 or having two or one amino acid difference from SEQ ID NO: 16; Including ISVD.

[0185] 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.

[0186] A non-limiting example of such an ISVD that binds to human serum albumin has one or more or all of the framework regions shown for construct ALB23002 in Table A-2 (in addition to the CDRs defined in section D above), e.g., the ISVD has the full-length amino acid sequence of construct ALB23002 (SEQ ID NO: 4, see Tables A-1 and A-2).

[0187] Item D can also be written using the Kabat definition as follows: D'. binds to human serum albumin i. a CDR1 having the amino acid sequence of SEQ ID NO: 33 or having two or one amino acid difference from SEQ ID NO: 33; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 37 or having two or one amino acid difference from SEQ ID NO: 37; and iii. A CDR3 having the amino acid sequence of SEQ ID NO: 16 or having two or one amino acid difference from SEQ ID NO: 16; Including ISVD.

[0188] 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:16.

[0189] A non-limiting example of such an ISVD that binds to human serum albumin has one or more or all of the framework regions shown for construct ALB23002 in Table A-2.1 (in addition to the CDRs defined above in section D'), for example, the ISVD has the full-length amino acid sequence of construct ALB23002 (SEQ ID NO: 4, see Tables A-1 and A-2.1).

[0190] Also, in one embodiment, the amino acid sequence of the ISVD that binds human serum albumin may have greater than 90%, e.g., greater than 95%, or greater than 99% sequence identity to SEQ ID NO:4, and optionally the CDRs are as defined above in section D. In some embodiments, the ISVD that binds human serum albumin has the amino acid sequence of SEQ ID NO:4.

[0191] If such an ISVD that binds to human serum albumin has two or one amino acid difference in at least one CDR compared to the corresponding reference CDR sequence (item D above), the ISVD will have at least half the binding affinity of construct ALB23002 for human serum albumin, at least the same binding affinity, or even higher binding affinity, where the binding affinity is measured using the same method, such as SPR.

[0192] When such an ISVD that binds human serum albumin has a C-terminal position, the ISVD exhibits a C-terminal alanine (A) or glycine (G) stretch 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 human serum albumin has a position other than the C-terminal position (i.e., is not an ISVD at the C-terminus of a polypeptide of the present disclosure) and is selected from SEQ ID NOs: 4, 50, 51, 54, and 56 (see Table A-4 below).

[0193] 5.4 Nucleic acid molecules Nucleic acid molecules encoding the polypeptides of the disclosure are also provided.

[0194] A "nucleic acid molecule" (used interchangeably with "nucleic acid") is a chain of nucleotide monomers linked together through a phosphate backbone to form a nucleotide sequence. Nucleic acids can be used to transform / transfect host cells or host organisms, e.g., for expression and / or production of polypeptides. Suitable hosts or host cells for production purposes will be apparent to those skilled in the art and can 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 comprising nucleic acids encoding polypeptides of the present disclosure are also encompassed by the present disclosure.

[0195] The nucleic acid may be, for example, DNA, RNA, or a hybrid thereof, or may contain (e.g., chemically) modified nucleotides such as PNA. The nucleic acid may be single-stranded or double-stranded DNA. For example, the nucleotide sequence of the present disclosure may be genomic DNA or cDNA.

[0196] The nucleic acids of the present disclosure may be prepared or obtained in a manner known per se and / or isolated from a suitable natural source.Nucleotide sequences encoding naturally occurring (poly)peptides may, for example, be subjected to site-directed mutagenesis to provide nucleic acid molecules encoding polypeptides with sequence changes.It will also be clear to those skilled in the art that, to prepare nucleic acids, several nucleotide sequences, such as at least one nucleotide sequence encoding a targeting moiety, and nucleic acids encoding one or more linkers, may also be linked together in a suitable manner.

[0197] Techniques for generating nucleic acids will be apparent to those of skill in the art and may include, but are not limited to, automated DNA synthesis; site-directed mutagenesis; combining two or more naturally occurring and / or synthetic sequences (or two or more portions thereof), introducing mutations that result in expression of a truncated expression product; introducing one or more restriction sites (e.g., to create cassettes and / or regions that can be easily digested and / or ligated using suitable restriction enzymes), and / or introducing mutations by PCR reactions using one or more "mismatched" primers.

[0198] 5.5 Vectors Also provided is a vector comprising the nucleic acid molecule encoding the polypeptide of the present disclosure.Vector as used herein is a suitable vehicle for carrying genetic material into cells.Vector includes naked nucleic acid, such as plasmid or mRNA, or nucleic acid embedded in larger structure, such as liposome or virus vector.

[0199] A vector generally comprises at least one nucleic acid, optionally linked to one or more regulatory elements, such as one or more suitable promoters, enhancers, terminators, etc. The vector may be an expression vector, i.e., a vector suitable for expressing an encoded polypeptide or construct under appropriate conditions, for example, when the vector is introduced into a (e.g., human) cell. In the case of a DNA-based vector, this usually includes the presence of elements for transcription (e.g., a promoter and polyA signal) and translation (e.g., a Kozak sequence).

[0200] In some embodiments, in a vector, the at least one nucleic acid and the regulatory element are "operably linked" to each other, which generally means that they are in a functional relationship with each other. For example, a promoter is considered to be "operably linked" to a coding sequence if the promoter is capable of initiating or otherwise controlling / regulating the transcription and / or expression of the coding sequence (wherein the coding sequence should be understood to be "under the control" of the promoter). Generally, when two nucleotide sequences are operably linked, they are in the same orientation and usually in the same reading frame. They are also usually essentially contiguous, although this need not be the case.

[0201] In some embodiments, any regulatory elements of the vector are such that they are capable of providing their intended biological function in the intended host cell or host organism.

[0202] For example, a promoter, enhancer or terminator should be "operable" in the intended host cell or host organism, meaning, for example, that the promoter should be capable of initiating or otherwise controlling / regulating the transcription and / or expression of a nucleotide sequence, e.g., a coding sequence, operably linked to it.

[0203] 5.6 Composition The present disclosure also provides a composition comprising at least one polypeptide of the present disclosure, at least one nucleic acid molecule encoding the polypeptide of the present disclosure, or at least one vector comprising such a nucleic acid molecule.The composition can be a pharmaceutical composition.The composition can further comprise at least one pharmaceutically acceptable carrier, diluent or excipient and / or adjuvant, and optionally one or more additional pharmaceutically active polypeptides and / or compounds.

[0204] 5.7 Host organisms The present disclosure also relates to host cells or host organisms comprising a polypeptide of the present disclosure, a nucleic acid encoding a polypeptide of the present disclosure, and / or a vector comprising a nucleic acid molecule encoding a polypeptide of the present disclosure.

[0205] Suitable host cells or host organisms are readily 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. Specific examples include HEK293 cells, CHO cells, Escherichia coli, or Pichia pastoris. In some embodiments, the host is Pichia pastoris.

[0206] 5.8 Polypeptide Methods and Uses The present disclosure also provides methods for producing the polypeptides of the present disclosure, which may include transforming / transfecting a host cell or host organism with a nucleic acid encoding the polypeptide, expressing the polypeptide in the host, optionally followed by one or more isolation and / or purification steps. Specifically, the method comprises: a) expressing a nucleic acid sequence encoding the 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 the polypeptide may also include:

[0207] Suitable host cells or host organisms for production purposes will be apparent 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 pastoris. In some embodiments, the host is Pichia pastoris.

[0208] The described polypeptides, nucleic acid molecules or vectors of the present disclosure, or compositions comprising the polypeptides, nucleic acid molecules or vectors of the present disclosure, such as the polypeptides or compositions comprising them, are useful as pharmaceuticals.

[0209] Thus, the present disclosure provides a polypeptide, nucleic acid molecule, or vector of the present disclosure described, or a composition comprising a polypeptide, nucleic acid molecule, or vector of the present disclosure, for use as a pharmaceutical.

[0210] Also provided are the described polypeptides, nucleic acid molecules or vectors of the present disclosure, or compositions comprising the polypeptides, nucleic acid molecules or vectors of the present disclosure, for use in the treatment (prophylactic or therapeutic) of autoimmune and / or inflammatory and / or fibrotic diseases.

[0211] Further provided are methods of treating (prophylactic and / or therapeutic) autoimmune and / or inflammatory and / or fibrotic diseases, comprising administering to a subject in need thereof a pharmaceutically active amount of the described polypeptide, nucleic acid molecule or vector of the present disclosure, or a composition comprising the polypeptide, nucleic acid molecule or vector of the present disclosure.

[0212] Further provided is the use of a polypeptide, nucleic acid molecule or vector of the present disclosure described, or a composition comprising a polypeptide, nucleic acid molecule or vector of the present disclosure, in the preparation of a pharmaceutical composition, for example, a pharmaceutical composition for treating an autoimmune disease or an inflammatory disease or a fibrotic disease.

[0213] A "subject," as referred to in the context of the present disclosure, may be any animal, for example, a mammal. Among mammals, a distinction may be made between humans and non-human mammals. Non-human animals may be, for example, companion animals (e.g., dogs, cats), livestock (e.g., bovine, equine, ovine, caprine, or porcine animals), or animals commonly used for research purposes and / or antibody production (e.g., mice, rats, rabbits, cats, dogs, caprines, ovine, equine, porcine, non-human primates, such as cynomolgus monkeys, or camelids, such as llamas or alpacas).

[0214] For prophylactic and / or therapeutic purposes, the subject may be any animal, more particularly any mammal, such as a human subject.

[0215] The substance (e.g., polypeptide, nucleic acid molecule, vector, etc.) or composition can be administered to a subject by any suitable administration route, for example, enteral (e.g., oral or rectal) or parenteral (e.g., epicutaneous, sublingual, buccal, nasal, intraarticular, intradermal, intramuscular, intraperitoneal, intravenous, subcutaneous, subdermal, or transmucosal) administration. Parenteral administration, for example, intramuscular, subcutaneous, or intradermal administration, can also be used. In some embodiments, subcutaneous administration is used.

[0216] An effective amount of the described polypeptide, nucleic acid molecule or vector, or a composition comprising the polypeptide, nucleic acid molecule or vector, can be administered to a subject to provide the intended therapeutic result.

[0217] 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.

[0218] [Table 2]

[0219] [Table 3]

[0220] [Table 4]

[0221] [Table 5-1] [Table 5-2]

[0222] [Table 6-1] [Table 6-2]

[0223] [Table 7] [Example]

[0224] 6.1 Example 1: Generation of multispecific ISVD constructs The identification of the ISVD-containing polypeptide F027100187 (SEQ ID NO: 1) resulted from a data-driven bispecific engineering and formatting strategy, which included anti-OX40L building blocks (OX40L01E07, OX40L01B11 and OX40L15B07, described in WO2011073180 as SEQ ID NOs: 181, 180 and 179, respectively), anti-IL-13 building blocks (F0107003D12, F0107009F07, F0107009G09, F0107004B02, F0107004B06 and F0107007C10) and anti-HSA V HH The building block ALB23002 (described in WO2017085172 as SEQ ID NO: 10) was included. Different positions / orientations / valencies of the building blocks and different linker lengths (9GS vs. 20GS vs. 35GS) were applied and proved to be important for different parameters (potency, cross-reactivity, expression, etc.). Potency in this example refers to inhibition of an in vitro IL-13-induced eotaxin release assay as assayed in Examples 6 and 7, respectively, and inhibition of T cell costimulation induced by OX40L in vitro.

[0225] A panel of 123 constructs was transformed into Pichia pastoris for small-scale production. Induction of ISVD construct expression occurred by the stepwise addition of methanol. Clarified medium containing the secreted ISVD constructs was used as the starting material for purification via protein A affinity chromatography and subsequent desalting. The purified sample was used for functional characterization and expression evaluation.

[0226] Some constructs exhibited impaired potency and expression levels depending on the valency, linker length, ISVD building block used, and the relative position of the ISVD building block. In general, pentavalent ISVD constructs exhibited low expression levels, except for some ISVDs with the bivalent anti-OX40L building block OX40L01E07 (hereinafter "1E07") located at the C-terminus. However, 1E07 located at the C-terminus exhibited insufficient potency against OX40L. Reducing valency by using a monovalent OX40L arm improved expression levels, but potency against OX40L was still insufficient. Thus, it was found that the specific composition (valency, building block orientation, and linker length utilized) is important for potency and sufficient expression levels.

[0227] The OX40L building blocks OX40L015B07 (hereafter "15B07") and OX40L001B11 (hereafter "1B11") were affinity matured to generate potent monovalent OX40L targeting arms for incorporation into tetravalent multispecific ISVD constructs.

[0228] (V HH For each building block, a pool of single-site saturation libraries of all CDR positions was constructed for each CDR. Each single-site saturation library was constructed using primers designed according to the 22c-trick approach (Kille et al., ACS Synth. Biol., 2013, 2(2), pp. 83-92). Surface plasmon resonance spectroscopy (SPR)-based off-rate screening was performed on immobilized human and cynomolgus monkey OX40L to identify individual mutations that confer improved binding.

[0229] In the second step, a combinatorial library containing the beneficial mutations identified in the first step was constructed. Off-rate screening was again performed with human and cynomolgus OX40L to identify V mutations with further improved binding. HHVariants were identified and then purified for biophysical characterization affinity determination by SPR and functional characterization in PBMC activity assays (as described in Example 7) to select the final affinity matured variants. The characteristics of the affinity matured variants of ISVD OX40L015B07 and OX40L001B11 are listed in Table 1.

[0230] [Table 8]

[0231] Affinity matured versions of the monovalent OX40L building blocks 15B07 and 1B11 could be utilized to obtain potent and well-expressed tetravalent multispecific ISVD constructs.

[0232] The presence of the affinity-matured monovalent 15B07 building block (15B07AM) in the tetravalent multispecific ISVD construct resulted in 20-fold greater potency in an OX40L-driven PBMC activity assay (as described in Example 7) compared to its non-affinity-matured counterpart (15B07) (Table 3).

[0233] Furthermore, the N-terminal position of the 15B07AM building block in the tetravalent multispecific ISVD construct was important. Comparison of constructs F-027100172 and F-027100179 in Table 4 shows 10-fold greater potency when the 15B07AM building block is in the N-terminal position versus the C-terminal position.

[0234] The presence of the N-terminal 15B07AM building block in the F-027100187 (SEQ ID NO: 1) tetravalent multispecific ISVD was beneficial to CMC properties (i.e., expression and solubility) compared to the pentavalent construct, which simply suffered from low expression yields. As illustrated in Table 2, the three multispecific ISVD constructs F027100186 (SEQ ID NO: 99) (pentavalent), F027100187 (SEQ ID NO: 1) (tetravalent), and F027100188 (SEQ ID NO: 100) (pentavalent) exhibited significantly different initial CMC (chemistry, manufacturing, and quality control) profiles. During 5 L fermentation, ISVD construct F027100187 (SEQ ID NO: 1) reached a titer of 4 g / L, more than two-fold higher than pentavalent ISVD constructs F027100186 (SEQ ID NO: 99) and F027100188 (SEQ ID NO: 100), and also exhibited superior solubility.

[0235] For optimal potency against IL-13, both IL13 building blocks were linked via a 9GS-ALB-9GS entity to allow sufficient space between the two IL13 building blocks and to avoid the presence of a long 35GS linker in the F027100187 tetravalent multispecific ISVD construct.

[0236] Finally, ISVD construct F027100187 was selected based on its overall good potency against IL-13 and OX40L as well as its excellent expression levels and CMC characteristics.

[0237] [Table 9]

[0238] [Table 10]

[0239] [Table 11]

[0240] 6.2 Example 2: Multispecific ISVD Construct Binding Affinities for OX40L, IL-13, and Serum Albumin The equilibrium dissociation constants (K ) of F027100187 for human, cynomolgus (cyno) and rhesus IL-13, human and cynomolgus OX40L, and human, cynomolgus and mouse serum albumin were D The affinity, expressed as ) was quantified by in-solution affinity measurements on a Gyrolab xP Workstation (Gyros).

[0241] K D In control measurements, serial dilutions of OX40L (ranging from 1.3 μM to 0.008 pM), IL-13 (ranging from 0.1 μM to 0.25 fM), or serum albumin (ranging from 100 μM to 3.2 pM) were mixed with a fixed amount of ISVD construct F027100187 (10 pM for OX40L, 5 pM for IL-13, 100 pM for HSA and cynomolgus SA, and 30 nM for mouse SA) and incubated for either 24 or 48 hours (for OX40L and IL-13) or 2 hours (for serum albumin) to reach equilibrium.

[0242] In receptor-controlled assays, serial dilutions of OX40L (ranging from 1.3 μM to 0.031 pM), IL-13 (ranging from 0.1 μM to 0.25 fM), or serum albumin (ranging from 100 μM to 3.2 pM) were mixed with a fixed amount of ISVD construct F027100187 (5 nM for OX40L, 250 pM for IL-13, and 30 nM for HSA and cynomolgus SA) and allowed to interact and incubated for either 24 or 48 hours (for OX40L and IL-13) or 2 hours (for serum albumin) to reach equilibrium.

[0243] Biotinylated human OX40L / IL-13 / serum albumin was captured on a Gyrolab Bioaffy 1000CD microstructure containing a column of beads, which was used as a molecular probe to capture free F027100187 from equilibrated solution. A mixture of OX40L / IL-13 / serum albumin and F027100187 (containing free OX40L / IL-13 / serum albumin, free F027100187, and OX40L / IL13 / serum albumin-F027100187 complex) was flowed through the beads, capturing a small percentage of free F027100187 proportional to the free ISVD construct concentration. A fluorescently labeled anti-ISVD antibody, ABH0086-Alexa647, was then injected to label all captured F027100187, and the change in fluorescence was determined after rinsing off excess fluorescent probe. Fitting of the dilution series was performed using Gyrolab Analysis software to determine the K D and receptor-controlled curves were analyzed to determine K D value was determined.

[0244] The results (Table 5) demonstrate that the multispecific ISVD construct binds human / cynomolgus OX40L and human / cynomolgus / rhesus IL-13 with high affinity.

[0245] [Table 12]

[0246] 6.3 Example 3: Binding of multispecific ISVD constructs to membrane-bound OX40L Binding of F027100187 to membrane-bound human and cynomolgus OX40L was demonstrated using flow cytometry in CHO-KI cells expressing human or cynomolgus OX40L. Briefly, cells were fixed with 4% paraformaldehyde and 0.1% glutaraldehyde in PBS and 1 × 10 4Cells were seeded at a density of 1000 cells / well and incubated for 48 hours at room temperature with a dilution series starting at 100 nM and ending at 0.5 pM of ISVD F027100187 or a reference compound anti-hOX40L mAb designated Comparator 3. Comparator 3 is a standard conventional monoclonal antibody against human OX40L and was used as a reference throughout Examples 1-12 described herein. Cells were washed three times and then incubated with anti-V HH Cells were incubated with mAb (ABH00119) for 30 minutes at 4°C, washed again, and incubated with goat anti-mouse PE- or FITC-labeled antibodies for 30 minutes at 4°C. Samples were washed and resuspended in FACS buffer (D-PBS containing 10% FBS and 0.05% sodium azide supplemented with 5 nM TOPRO3). Cell suspensions were then analyzed using iQuescreener. EC50 values ​​were calculated using GraphPad Prism. The binding affinities of F027100187 and the anti-hOX40L reference mAb comparator 3 are shown in Table 6.

[0247] [Table 13]

[0248] 6.4 Example 4: Multispecific ISVD constructs selectively bind OX40L and IL-13 The absence of binding to OX40L and IL-13-related human cytokines was assessed by SPR (Proteon XPR36). IL-4 was assessed as an IL-13-related cytokine. Human TRAIL, CD30L, CD40L, and RANKL were assessed as OX40L-related targets.

[0249] To this end, cytokines were immobilized on a ProteOn GLC sensor chip at 25 μg / mL for 600 seconds using amine coupling (ProteOn Amine Coupling Kit, Catalog No. 176-2410) with an 80-second injection of EDC / NHS for activation and a 150-second injection of 1 M ethanolamine HCl for deactivation. The flow rate was set at 30 μl / min during activation and deactivation, and 25 μl / min during ligand injection. The pH of the 10 mM acetate immobilization buffer was 6.0 for all cytokines except RANKL, for which the pH was 5.0.

[0250] Next, 1 μM F027100187 was injected for 2 min and allowed to dissociate for 600 s at a flow rate of 45 μL / min. PBS (pH 7.4) + 0.005% Tween 20 was used as the running buffer. As positive controls, 100 nM α-hIL-4, α-hTRAIL, α-hCD30L, α-hCD40L Ab, and α-hRANKL V were used. HH (Nanobody®, Nb) was injected. Interaction of F027100187 and the positive control with the immobilized target was measured by detecting an increase in the refractoriness index resulting from a mass change on the chip upon binding.

[0251] All positive controls bound to their respective targets. No binding of ISVD construct F027100187 to human IL-4, TRAIL, CD30L, CD40L, or RANKL was detected.

[0252] 6.5 Example 5: Simultaneous binding of multispecific ISVDs to IL-13, OX40L, and HSA Flow cytometry was used to determine whether the ISVD construct F27100187 could simultaneously bind recombinant soluble hIL-13 and cell membrane-bound hOX40L. To this end, CHO-KI cells expressing human OX40L were cultured at 5 × 10 4Cells were seeded at a density of 100 cells / well and incubated with 100 nM ISVD construct F027100187 for 90 min at 4°C. The mixture was then incubated with a dilution series of biotinylated IL-13 starting at 500 nM and down to 7.6 pM in the presence of 30 μM HSA for 30 min at 4°C. Cells were washed three times, then incubated with PE-labeled anti-streptavidin for 30 min at 4°C and washed again. Samples were washed and resuspended in FACS buffer (D-PBS containing 10% FBS and 0.05% sodium azide supplemented with 5 nM TOPRO3). The cell suspension was then analyzed using an iQuescreener. A dose-response curve (Figure 1) showed that ISVD construct F027100187 was able to simultaneously bind membrane-bound hOX40L and soluble hIL-13 in the presence of HSA, whereas the negative control V HH , demonstrating that IRR0096 is unable to bind.

[0253] 6.6 Example 6: In vitro inhibition of IL-13-induced eotaxin release by polyspecific ISVDs The functional activities of soluble IL-13 from different species of interest (human, rhesus, and cynomolgus monkeys) and their inhibition by F027100187 were studied using a cell-based assay investigating eotaxin release by A549 human lung carcinoma cells.

[0254] To achieve this goal, A549 suspension cells were cultured in Ham's F12K supplemented with 10% FCS and seeded at 400,000 cells / well in 96-well plates. After 24 hours of incubation, serial dilutions of F027100187 or reference compounds (anti-hIL-13 reference mAb Comparator 1 and Comparator 2) were added. Comparators 1 and 2 are both standard conventional monoclonal antibodies against human IL-13 and were used as references throughout Examples 1-12 described herein. After 20 minutes of incubation, IL-13 (human IL-13 (Sino Biological, Catalog No. 10369-HNAC), cynomolgus IL-13 (Sino Biological, Catalog No. 11057-CNAH), or rhesus IL-13 (R&D Systems, Catalog No. 2674-RM-025)) was added to a final concentration of 160 pM. After a further 24 h of incubation in the presence of 30 μM HSA, heparin was added to a final concentration of 50 μg / ml to enhance eotaxin expression. After an additional 4 h of incubation, secreted eotaxin 3 in the cell supernatant was quantified using the human CCL26 / eotaxin 3 DuoSet ELISA (R&D systems, DY346).

[0255] F027100187 concentration-dependently inhibited eotaxin 3 release induced by human, cynomolgus, and rhesus IL-13 with IC50s of 259 pM (human IL-13), 1940 pM (cynomolgus IL-13), and 858 pM (rhesus IL-13) (Table 7, Figure 2).

[0256] [Table 14]

[0257] 6.7 Example 7: In vitro inhibition of OX40L-induced T cell costimulation by multispecific ISVD constructs The functional activities of human and cynomolgus monkey OX40L and their inhibition by the ISVD construct F027100187 were studied using a cell-based assay (PBMC activity assay) investigating T cell costimulation induced by OX40L. The assay was performed using buffy coat-derived PBMCs (1 x 10 ) in the presence of a suboptimal concentration of PHA-L (to induce OX40 expression). 5 OX40L-overexpressing CHO-KI cells (1 × 10 cells / well) 4 Cells were co-cultured with 1000 cells / well in clear 96-well plates. A dilution series of the ISVD construct F027100187 or a reference compound anti-hOX40L mAb, designated Comparator 3, was added to the co-cultures and incubated for 22 hours at 37°C in the presence of 30 μM HSA in a humidified incubator. IL-2 levels were assessed in the supernatants of these cells using an ELISA.

[0258] ISVD construct F027100187 concentration-dependently inhibited T cell activation induced by human and cynomolgus OX40L with IC50s of 1.9 nM (human OX40L) and 1.4 nM (cynomolgus OX40L), comparable to the reference compound anti-hOX40L mAb Comparator 3 (Table 8, Figure 3).

[0259] [Table 15]

[0260] 6.8 Example 8: Multispecific ISVD Construct Binding to Existing Antibodies Binding of pre-existing antibodies present in 96 serum samples from healthy volunteers to ISVD construct F027100187 was determined using a 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 experiments were performed at 25°C.

[0261] ISVD constructs were captured on the chip via binding of the ALB23002 building block to HSA immobilized on the chip. To immobilize HSA, the ligand lane of a ProteOn GLC sensor chip was activated with EDC / NHS (flow rate 30 μΙ / min), and HSA was injected at 100 μl / ml in ProteOn acetate buffer, pH 4.5, to an immobilization level of approximately 2600 RU. After immobilization, the surface was inactivated with ethanolamine HCl (flow rate 30 μΙ / min).

[0262] The ISVD construct was then injected over the HSA surface at 45 μl / min for 2 min, resulting in an ISVD capture level of approximately 800 RU. Samples containing pre-existing antibodies were centrifuged at 14,000 rpm for 2 min, and the supernatant was diluted 1:10 with PBS-Tween 20 (0.005%) and then injected at 45 μl / min for 2 min, followed by a subsequent 400 s dissociation step. After each cycle (i.e., before a new ISVD capture and blood sample injection step), the HSA surface was regenerated with a 2 min injection of HCl (100 mM) at 45 μl / min. After double referencing by 1) ISVD-HSA dissociation and 2) subtracting nonspecific binding to the reference ligand lane, a sensorgram showing pre-existing antibody binding was obtained. The level of pre-existing antibody binding was determined by setting the reporting point at 125 s (5 s after the end of association). The percentage reduction in pre-existing antibody binding relative to the binding level of the reference ISVD construct at 125 seconds was calculated.

[0263] The tetravalent ISVD construct F027100187 was optimized for reduced pre-existing antibody binding by introducing the mutations L11V and V89L in each building block and a C-terminal alanine, and shows substantially less binding to pre-existing antibodies compared to the control non-optimized pentavalent ISVDF027301186 (Figure 4).

[0264] 6.9 Example 9: Inhibition of OX40L and IL-13 by multispecific ISVD construct F027100187 reduces IL-5 and CCL26 levels in a triple co-culture system: To test the physiological effects of OX40L blockade on T cell activation, PBMCs from healthy blood donors that were reactive to Der P were cocultured with MRC5 (fibroblast) and A549 (epithelial) cells. Mixing these cells resulted in further activation, driving type 2 immune responses by inducing IL-5 and IL-13 production. IL-13 triggered CCL26 production by local epithelial cells, leading to inflammatory disease and further complications mediated by type 2 immune responses. Additionally, reappearance of these cell types was found in the tissues of interest (skin and lung). T cell responses were monitored by measuring cytokines in the supernatants 7 days after cell mixing.

[0265] method: 7.5 × 10 in 500 μl AIM V CTS medium combined with Serum Replacement CTS (assay medium) 4 MRC5 and 7.5 x 10 4 A549 cells were added to each well of a 24-well plate and incubated overnight. 100 μl of ISVD construct F027100187, anti-OX40L reference mAb comparator 3, or anti-hIL-13 reference mAb comparator 1 was then added in assay medium for 15 minutes. 1.2 × 10 6 Thawed, rested allergic PBMCs were added to 200 μl assay medium, followed by 200 μl of low-endotoxin Der P from spent cultures. Cultures were incubated for 7 days, after which IL-5 and CCL26 in the culture supernatants were analyzed by Luminex and assayed in duplicate. A summary of four donors is shown.

[0266] result: The collective results of the inhibitory responses of F027100187 and the reference antibodies, as well as the anti-hOX40L mAb Comparator 3 and the reference anti-hIL-13 mAb Comparator 1, are shown in Tables 9 and 10 and Figures 5 and 6.

[0267] In conclusion, these results demonstrate that ISVD F027100187 is comparable to the anti-hOX40L reference mAb, Comparator 3, and broadly comparable to the anti-hIL-13 reference mAb, Comparator 1, in its ability to block two cytokines / chemokines (IL-5 and CCL26) in a complex assay system involving human PBMCs co-cultured with histological cells, highlighting its therapeutic potential for the treatment of type 2 inflammatory diseases, such as asthma and atopic dermatitis, as well as a wide range of immune disease indications.

[0268] [Table 16]

[0269] [Table 17]

[0270] 6.10 Example 10: NSG Humanized Mouse Model to Assess Target Occupancy and Pharmacodynamics Mediated by F027100187 In Vivo F027100187 targets both human OX40L and IL-13 without cross-reacting with the mouse orthologs. Therefore, to evaluate the biological activity of F027100187, a xenografted humanized model system was used. Female NSG mice (NOD.Cg-Prkdcscid Il2rgtm1Wjl / SzJ) were obtained from Jackson Labs, Bar Harbor, ME, USA. These mice express human hematopoietic cytokines: stem cell factor (SCF), granulocyte / macrophage stimulating factor (GM-CSF), and interleukin-3 (IL-3), all driven by the human cytomegalovirus promoter / enhancer sequence. Triple transgenic mice constitutively produce the above cytokines, provide cell proliferation and survival signals, and support stable engraftment of CD33+ myeloid lineages and several types of lymphoid cells. Briefly, the protocol followed for engraftment was as follows:

[0271] On day 0 of the study, mice were administered 5 × 10 immunizations by the intravenous (IV) route in 200 μl of Dulbecco's phosphate-buffered saline (DPBS). 6 Der P-sensitive peripheral blood mononuclear cells (PBMCs) were engrafted. On days 1, 2, 3, 6, 7, 8, 9, and 10 of the study, mice were challenged intranasally with 25 μg of HDM extract (Greer Lab catalog no. XPB70-X29) in 40 μl. On days 1, 3, 6, 8, 10, and 13, HDM-challenged mice received subcutaneous administration of either vehicle or F27100187 (11.1, 3.72, 1.11, or 0.37 mg / kg). On day 20, mice were anesthetized with isoflurane. While under isoflurane anesthesia, blood was collected by retroorbital bleeding. After blood collection and while still under isoflurane anesthesia, mice were sacrificed by cervical dislocation. Portions of the lungs were harvested and placed in culture for human cell phenotyping (flow cytometry). Plasma concentrations of human cytokines and chemokines from plasma samples on day 20 were determined by Lumenix assay (catalog number HSTCMAG28SPMX13, Milliplex). Plasma concentrations of human IgE from plasma samples on day 20 were determined by ELISA (catalog number BMS2097, Invitrogen).

[0272] The results of these experiments, shown in Figures 7 and 8, demonstrate that F027100187 was able to significantly inhibit human T cell and B cell proliferation in NSG mice. Figures 9 and 10 demonstrate that F027100187 was able to significantly inhibit major types of cytokines (IL-2, IL-4, IL-5, and IL-10) and IgE production. Together, these results demonstrate the in vivo efficacy of F027100187.

[0273] Several key markers of type 2 allergic disease are increased in the NSG-PBMC mouse model. The collective results of these experiments, shown in Figures 7-10, demonstrate that F27100187 was able to significantly inhibit key markers of type 2 allergic disease, demonstrating the in vivo pharmacodynamic effects of F27100187 on human type 2 markers.

[0274] 6.11 Example 11: NSG-SGM3 Humanized Mouse Model to Assess Target Occupancy and Pharmacodynamics Mediated by F027100187 In Vivo F027100187 targets both human OX40L and IL-13 and does not cross-react with the mouse orthologs. Therefore, to evaluate the biological activity of F027100187, a xenografted humanized model system was used. Female NSG-SGM3 mice (NOD / SCID-IL2Rγ- / -, NOD.Cg-PrkdcscidIl2rγtm1Wjl / SzJ) engrafted with human CD34+ cells were obtained from Jackson Labs, Bar Harbor, ME, USA. These mice express human hematopoietic cytokines: stem cell factor (SCF), granulocyte / macrophage-stimulating factor (GM-CSF), and interleukin-3 (IL-3), all driven by the human cytomegalovirus promoter / enhancer sequence. The triple transgenic mice constitutively produce the above cytokines, providing cell proliferation and survival signals and maintaining stable engraftment of CD33+ myeloid lineage and several types of lymphoid cells. Animals were 80-100 days post-engraftment. Briefly, the protocol followed for engraftment was as follows: Data from the engraftment check performed by flow cytometry was provided by Jackson Labs. Information from the engraftment check was used to assign mice to groups. On days 0 and 2, mice received subcutaneous administration of either vehicle or ISVD construct F27100187. On days 1, 2, and 3 of the study, mice were challenged intranasally with 7.5 μmg of human IL-33 (catalog no. 200-33-500UG, Pepro Tech) in 20 μl. On day 4, blood was collected by retroorbital bleeding while under isoflurane anesthesia. After blood collection and while still under isoflurane anesthesia, mice were sacrificed by cervical dislocation. Portions of lungs were collected and placed in culture for human cell phenotyping (flow cytometry). Plasma concentrations of human cytokines and chemokines were determined by Lumenix assay (catalog no. HSTCMAG28SPMX13, Milliplex). Plasma concentrations of human IL-13 from plasma samples on day 20 were determined by ELISA (catalog no. 88-7439-88, Invitrogen).

[0275] The collective results of these experiments, shown in Figure 11, demonstrate that F027100187 was able to significantly inhibit detectable levels of human IL-13 in the plasma of humanized NSG-SGM3 mice, demonstrating target occupancy for human IL-13. Furthermore, F027100187 was able to significantly inhibit the key type 2 cytokines IL-5, TARC, and mouse eotaxin. Thus, these results indicate the suitability of F027100187 for treating atopic dermatitis and / or asthma.

[0276] Example 12 Model of allergic asthma in young adult rhesus monkeys Thirty 2-4 year old male rhesus monkeys from the California National Primate Research Center (CNPRC) were selected based on the following: behavioral inhibition tests, pulmonary function tests (PFTs) for methacholine responsiveness, 150 percent effective concentration (EC150) (<3 mg / ml methacholine) and 200 percent effective concentration (EC200) (<8 ​​mg / ml methacholine) values. Physical examination, complete blood count (CBC), and serum chemistry panel were completed on all animals enrolled in this study.

[0277] All animals selected for this study proceeded to house dust mite (HDM) sensitization. Once every two weeks, animals received a single subcutaneous injection of approximately 60 μg HDM extract (D. pteronyssinus, Greer B58A52) in 1 mg alum (1 ml total volume per injection, Thermo 77161) for 28 weeks.

[0278] Aerosolized HDM (8.5 μg Derp 1 / ml, prepared from lyophilized Dermatophagoides pteronyssinus, Greer) was administered via nebulizer every two weeks, beginning at week 12 of the study. Study animals were sedated with ketamine and dexmedetomidine and then placed in a semi-upright position in a child car seat. The sedated animals were then fitted with a face mask covering both the nose and mouth. A mouth block was placed to ensure maximum aerosol passage into the trachea and lungs. Atropine was administered to minimize saliva production, which typically results from ketamine sedation. Excessive saliva can lead to premature termination of the procedure due to airway obstruction. Mask fit and head position were carefully adjusted to prevent aerosol leakage without obstructing the airway. HDM aerosol was administered via the face mask for approximately 5–15 minutes. Heart rate and oxygen saturation were continuously monitored throughout the procedure. After the procedure, sedation was reversed with an equivalent dose of atipamezole.

[0279] Blood samples were collected at week 0, then weekly from week 18 onward. Serum samples were collected at weeks 20 and 29 for pharmacokinetic analysis of the test article. HDM intradermal injections and skin biopsies were performed on the shaved back of each study animal. Eight sites per time point were intradermally injected with either 100 μl saline or HDM (1:1000 w / v in 100 μl saline). HDM skin reactivity and skin biopsies were performed at weeks 19, 25, and 29. Biopsies were taken from the interscapular region using a 4 mm punch, and biopsy sites were closed with skin glue or sutures at the veterinarian's discretion. Animals received ketoprofen (2–5 mg / kg, IM, SID × 1–2 days after biopsy) after each biopsy.

[0280] Bronchoalveolar lavage (BAL): Under sedation, the animals were placed in a supine position. The larynx was visualized using a laryngoscope, and the larynx was anesthetized with lidocaine. A bronchoscope was inserted into the subsegmental bronchus. 2 mg / kg of phosphate-buffered saline (PBS) was instilled manually and aspirated. This procedure was repeated twice.

[0281] Cohort Allocation: Groups of six animals were placed into one of three cohorts in a rolling fashion based on PFT criteria (defined in the previous section). Eosinophil frequency / counts obtained from the BAL procedure during week 18 were used to assign animals to treatment or control (vehicle) groups.

[0282] Test Article Administration: Animals received subcutaneous administration of vehicle or test article beginning at week 20. The test article consisted of F027100187 and was administered once weekly. Vehicle was also administered once weekly.

[0283] Necropsy: Animals undergo necropsy immediately after the final PFT and BAL procedures, either at the end of 30 or 31 weeks. Euthanasia is performed by an overdose of sodium pentobarbital. Blood is collected and prepared for serum, plasma, and PBMCs. Lungs are removed en bloc and sectioned from each lobe to be prepared for RNA, flow cytometry, and histology.

[0284] Plasma concentrations of IL-5 were determined by Simoa (Cat. No. 102860, Quanterix). Serum concentrations of IgE were determined by ELISA (Cat. No. KA2450, Abnova).

[0285] The results of these experiments, shown in Figure 13, demonstrate that F027100187 was able to significantly inhibit lung inflammation (eosinophil density (histology), Bal IL-5, and percent eosinophils). Figure 14 demonstrates that F027100187 was able to significantly inhibit skin inflammation (histology). Figure 15 demonstrates that F027100187 was able to significantly inhibit systemic IgE production. Taken together, these results demonstrate the in vivo efficacy of F027100187. These results further support that F27100187 is suitable for the treatment of asthma. [Industrial Applicability]

[0286] 7 Industrial Applicability The polypeptides described herein, nucleic acid molecules encoding them, vectors and compositions comprising the nucleic acids, can be used, for example, in the treatment of subjects suffering from inflammatory diseases.

[0287] The publications discussed herein are provided solely for their disclosure prior to the filing date of the present application, and nothing herein should be construed as an admission that the present invention is not entitled to antedate such publication by virtue of prior invention.

[0288] While the invention has been described in relation to particular embodiments thereof, it will be understood that further modifications are possible, and this application is generally intended to cover any variation, use, or application of the invention in accordance with the principles of the invention that comes within known or customary practice in the art to which this invention pertains, including departures from the present disclosure as applied to the essential features as set forth above and as set forth in the following appended claims.

Claims

1. A polypeptide, a composition comprising said polypeptide, or a composition comprising a nucleic acid comprising a nucleotide sequence encoding said polypeptide, wherein said polypeptide comprises or consists of at least three immunoglobulin single variable domains (ISVDs) linked via one or more peptidic linkers, each of said ISVDs comprising three complementarity determining regions (CDR1 to CDR3, respectively); a) the first ISVD binds to OX40L; i. CDR1 having the amino acid sequence of SEQ ID NO:6; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 10; and iii. comprises a CDR3 having the amino acid sequence of SEQ ID NO: 14; b) the second ISVD binds to IL-13; iv. CDR1 having the amino acid sequence of SEQ ID NO: 7; v. a CDR2 having the amino acid sequence of SEQ ID NO: 11; and vi. comprising a CDR3 having the amino acid sequence of SEQ ID NO: 15; c) the third ISVD binds to IL-13; vii. CDR1 having the amino acid sequence of SEQ ID NO: 9; viii. CDR2 having the amino acid sequence of SEQ ID NO: 13; and ix. comprising a CDR3 having the amino acid sequence of SEQ ID NO: 17; The polypeptide or composition, wherein the polypeptide comprises, in order starting from the N-terminus of the polypeptide, the first ISVD that binds to OX40L, the second ISVD that binds to IL-13, and the third ISVD that binds to IL-13.

2. 10. The composition of claim 1, which is a pharmaceutical composition further comprising at least one pharmaceutically acceptable carrier, diluent or excipient and / or adjuvant.

3. 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:3; c) The polypeptide or composition of claim 1 or 2, wherein the third ISVD has the amino acid sequence of SEQ ID NO:

5.

4. 4. The polypeptide or composition of any one of claims 1 to 3, wherein the polypeptide further comprises one or more other groups, residues, moieties or binding units, which provide the polypeptide with an increased half-life compared to a corresponding polypeptide without said one or more other groups, residues, moieties or binding units.

5. 5. The polypeptide or composition of claim 4, wherein the one or more other groups, residues, moieties or binding units that provide the polypeptide with an increased half-life are selected from the group consisting of polyethylene glycol molecules, serum proteins or fragments thereof, binding units capable of binding to serum proteins, Fc moieties, and small proteins or peptides capable of binding to serum proteins.

6. 6. A polypeptide or composition according to claim 4 or 5, wherein the one or more other groups, residues, moieties or binding units that provide the polypeptide with an increased half-life are selected from the group consisting of binding units capable of binding to serum albumin (such as human serum albumin) or serum immunoglobulin (such as IgG).

7. 7. The polypeptide or composition of claim 6, wherein the binding unit that provides the polypeptide with an increased half-life is an ISVD capable of binding to human serum albumin.

8. The ISVD that binds to human serum albumin is i. CDR1 having the amino acid sequence of SEQ ID NO: 8; ii. a CDR2 having the amino acid sequence of SEQ ID NO: 12; and iii. CDR3 having the amino acid sequence of SEQ ID NO: 16 8. The polypeptide or composition of claim 7, comprising:

9. 9. The polypeptide or composition of claim 7 or 8, wherein the ISVD that binds to human serum albumin has the amino acid sequence of SEQ ID NO:

4.

10. The polypeptide or composition according to any one of claims 1 to 9, wherein the amino acid sequence of the polypeptide has the amino acid sequence of SEQ ID NO:

1.

11. A polypeptide or composition according to any one of claims 1 to 10 for use as a medicament.

12. A polypeptide or composition according to any one of claims 1 to 11 for use in the treatment of an inflammatory disease, such as a type 2 inflammatory disease.

13. 13. The polypeptide or composition for use according to claim 12, wherein the type 2 inflammatory disease is selected from the group consisting of asthma and / or atopic dermatitis.

14. A nucleic acid comprising a nucleotide sequence encoding the polypeptide of any one of claims 1 to 13.

15. A host or host cell comprising the nucleic acid of claim 14.

16. A method for producing a polypeptide according to any one of claims 1 to 13, comprising: at least: a) expressing the nucleic acid of claim 14; or b) expressing the nucleic acid of claim 14 and subsequently isolating and / or purifying the polypeptide. The method comprising:

17. A composition comprising at least one polypeptide according to any one of claims 1 to 13.

18. A composition comprising the nucleic acid of claim 14.

19. Use of a polypeptide according to any one of claims 1 to 13 or a composition according to claim 17 in the preparation of a pharmaceutical composition for treating an inflammatory disease, such as an autoimmune disease and / or a type 2 inflammatory disease.

20. 20. The use of a polypeptide or composition according to claim 19, wherein the type 2 inflammatory disease is selected from the group consisting of asthma and atopic dermatitis.

Citation Information

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