Cytokine-based bioactivatable drugs and methods of use thereof

Through the design of D1, D2 and D3 domains of the VitoKine platform, the protease-cleavable polypeptide linker sequence linking is used to solve the systemic toxicity and efficacy limitation of cytokines in the treatment of diseases, and achieve selective activation and efficient treatment at the disease site.

CN112654633BActive Publication Date: 2025-05-09CUGENE INC
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Patent Information

Application Number
CN201980055435.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Priority Date
2018-06-22
Filing Date
2019-06-20
Publication Date
2025-05-09
Estimated Expiration
2039-06-20

AI Technical Summary

Technical Problem

Existing cytokines such as IL-2 and IL-15 are prone to limited toxicity and efficacy due to systemic hyperstimulation or inhibition when treating diseases, and it is difficult to achieve specific activation of target cells.

Method used

A cytokine-based bioactivated drug platform "VitoKine" was developed to limit the activity of the D2 domain through the D1, D2 and D3 domains in the construct by ligating with protease-cleavable polypeptide linker sequences until it is activated in the lesion tissue, thereby reducing systemic toxicity and improving the therapeutic index.

Benefits of technology

Through the VitoKine platform, cytokines can be selectively activated at disease sites, reducing systemic toxicity, improving treatment efficiency, and prolonging in vivo half-life, enhancing biodistribution and bioavailability.

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Abstract

The present disclosure provides a cytokine-based bioactivatable drug construct ("VitoKine") platform that is designed to reduce toxicity based on systemic mechanisms and enable broader therapeutic use of proteins and cytokines such as IL-15 and IL-2 in the treatment of cancer, autoimmune diseases, inflammatory diseases, viral infections, transplantation, and various other disorders. The novel VitoKine constructs of the present invention comprise: 1) a tissue or disease site targeting portion D1 domain ("D1"), 2) a bioactivatable portion D2 domain ("D2"), and a shielding portion D3 domain ("D3"). Importantly, because the "active portion" of the VitoKine construct will remain inert until locally activated by proteases that are upregulated in diseased tissues, this will limit binding of the active portion to receptors or targets in the periphery or on the cell surface of non-diseased cells and tissues to prevent overactivation of the pathway and reduce undesirable "off-tissue" "on-target" toxicity. Furthermore, the inertness of the active moiety of VitoKine prior to protease activation will significantly reduce potential antigenic or target silencing and thereby extend the in vivo half-life and lead to improved biodistribution, bioavailability and therapeutic efficacy.
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Description

[0001] Related patent applications

[0002] This application claims the benefit of U.S. Provisional Application No. 62 / 689,053, filed on June 22, 2018, which is incorporated herein by reference in its entirety.

[0003] background

[0004] Many cytokines have been evaluated as potential therapeutic agents for the treatment of diseases. However, their systemic overstimulation or oversuppression of the body's immune system has severely hampered their development and clinical use.

[0005] Interleukin-2 (IL-2) and interleukin-15 (IL-15) share common receptor components (γc and IL-2Rβ) and signaling pathways and have several similar functions. Both cytokines stimulate the proliferation of T cells; induce the production of cytotoxic T lymphocytes (CTLs); promote the proliferation of B cells and the synthesis of immunoglobulins; and induce the production and persistence of natural killer (NK) cells. Based on a large number of preclinical studies as well as multiple clinical evaluations, these two cytokines are considered to be potentially valuable therapeutic agents for cancer, autoimmune disorders, inflammatory disorders, transplantation, and various other disorders. Recombinant IL-2 has been approved for use in patients with metastatic renal cell carcinoma and malignant melanoma. For IL-15, there are several ongoing clinical trials in oncology, but it has not yet been approved for use. In addition, both IL-2 and IL-15 have a third unique non-signaling receptor α-subunit: IL-2Rα (also known as CD25) or IL-15Rα, respectively, which may contribute to their different receptor specificities and biological functions.

[0006] Recombinant human IL-2 is an effective immunotherapy being used for metastatic melanoma and renal cancer, with approximately 10% of patients having durable responses. However, short half-life and severe toxicity limit the optimal dosing of IL-2. In addition, IL-2 also binds to its heterotrimeric receptor IL-2Rαβγ with high affinity, preferentially amplifying immunosuppressive regulatory T cells (Treg) that express high constitutive IL-2Rα levels. The expansion of Tregs may represent an undesirable effect of IL-2 on cancer immunotherapy. However, the ability of IL-2 to stimulate Treg cells even at low doses can be used to treat autoimmune disorders and chronic inflammatory disorders. Recently, it has been discovered that IL-2 can be modified to selectively stimulate cytotoxic effector T cells or Treg cells. Various methods have led to the production of IL-2 variants with improved and selective immunomodulatory activity.

[0007] Both IL-2 and IL-15 are effective immune effector cell agonists, and it is critical that cytotoxic immune cells are fully activated only when at or very close to a disease site (e.g., a cancer site) to specifically destroy only tumor cells; or cytotoxic immune cells are fully activated only when at or very close to an inflammatory problem site to only play an anti-autoimmune and anti-chronic inflammatory disorder role. For all cytokines, chemokines, and growth factors, it is very important to improve the specificity and selectivity of the target and keep healthy cells and tissues intact and intact.

[0008] Disclosure of the Invention

[0009] In one aspect, the present invention provides a cytokine-based bioactivatable drug ("VitoKine") platform that is designed to reduce systemic mechanism-based toxicity and enable broader therapeutic use of cytokines, chemokines, hormones, and growth factors such as IL-15 and IL-2 in the treatment of cancer, autoimmune disorders, inflammatory disorders, and various other disorders. The VitoKine platform consists of Figure 1 The constructs depicted in Figure 2 The proposed activation method is defined as depicted in . Figure 1 , the novel VitoKine constructs of the present invention comprise 3 domains: 1) a D1 domain ("D1") selected from the group consisting of a tissue targeting domain, a half-life extension domain, or a dual-function moiety domain, 2) a D2 domain ("D2"), which is an "active moiety domain", and 3) a D3 domain ("D3"), which is a "shielding moiety domain". Importantly, the D2 domain of the VitoKine construct remains nearly inert or minimally active until locally activated by upregulated proteases in diseased tissue or hydrolysis at disease sites, which will limit the binding of the active moiety to receptors in the periphery or on the cell surface of non-diseased cells or normal tissues to prevent overactivation of the pathway and reduce undesirable "on-target" "off tissue" toxicity and undesirable target sink.

[0010] In various embodiments, the VitoKine construct of the present invention comprises D1, which is a targeting moiety, such as an antibody or antibody fragment that binds to a tumor-associated antigen (TAA) or a tissue-specific antigen, a cell surface molecule or an extracellular matrix protein or a protease or any post-translationally modified residue. In various embodiments, the VitoKine construct of the present invention comprises D1, which is a targeting moiety, such as a protein or peptide that exhibits binding affinity to diseased cells or tissues. In various embodiments, the VitoKine construct of the present invention comprises D1, which is a modified protein or peptide, such as a glycan-modified one, which exhibits binding affinity to specific receptors such as c-type lectin receptors expressed on diseased cells or tissues. In various embodiments, the VitoKine construct of the present invention comprises a D1 domain, which is an antibody against an immune checkpoint regulator. In various embodiments, the VitoKine construct of the present invention comprises D1, which acts to keep cytokines at tissue sites. In various embodiments, the VitoKine construct of the present invention comprises D1, which is dual-functional, such as tissue targeting and retention. In various embodiments, the VitoKine constructs of the present invention comprise a D1 domain that is a polymer. In various embodiments, the VitoKine constructs of the present invention comprise a D1 domain that is a half-life extending moiety. In various embodiments, the VitoKine constructs of the present invention comprise a D1 domain that is an Fc domain (or a functional fragment thereof).

[0011] "Fc domain" refers to a dimer of two Fc domain monomers, typically comprising all or part of the hinge region. In various embodiments, the Fc domain is selected from the group consisting of: human IgG1 Fc domain, human IgG2 Fc domain, human IgG3 Fc domain, human IgG4 Fc domain, IgA Fc domain, IgD Fc domain, IgE Fc domain, IgG Fc domain and IgM Fc domain, or any combination thereof. In various embodiments, the Fc domain comprises amino acid changes that cause the Fc domain to have altered complement binding properties or Fc receptor binding properties. Amino acid changes that are known to produce Fc domains with altered complement binding properties or Fc receptor binding properties are known in the art. In various embodiments, the Fc domain sequence used to prepare the VitoKine construct is the human IgG1-Fc domain sequence listed in SEQ ID NO: 13. In various embodiments, the Fc domain sequence used to prepare the VitoKine construct is the sequence set forth in SEQ ID NO: 14, which contains amino acid substitutions that ablate FcγR and C1q binding. In various embodiments, the Fc domain includes amino acid changes that result in further extended half-life in vivo. Amino acid changes known to produce Fc domains with further extended half-life are known in the art. In various embodiments, the Fc domain sequence used to prepare the VitoKine construct is the sequence set forth in SEQ ID NO: 156 or 166, both of which contain amino acid substitutions that ablate FcγR and C1q binding and extend half-life in vivo. In various embodiments, the heterodimeric Fc domain sequence used to prepare the VitoKine construct is derived from the Knob-Fc domain sequence set forth in SEQ ID NO: 15. In various embodiments, the heterodimeric Fc domain sequence used to prepare the VitoKine construct is derived from the Hole-Fc domain sequence set forth in SEQ ID NO: 16. In various embodiments, the heterodimeric Fc domain sequence used to prepare the VitoKine construct is derived from the Knob-Fc domain with an extended in vivo half-life sequence set forth in SEQ ID NO: 167. In various embodiments, the heterodimeric Fc domain sequence used to prepare the VitoKine construct is derived from the Hole-Fc domain with an extended in vivo half-life sequence set forth in SEQ ID NO: 168.

[0012] In various embodiments, the VitoKine constructs of the present invention comprise a D2 domain, which is a protein. In various embodiments, the VitoKine constructs of the present invention comprise a D2 domain, which is a cytokine (selected from the group including but not limited to IL-1, IL-2, IL-4, IL-5, IL-6, IL-7, IL-9, IL-10, IL-12, IL-15, IL-23) and a ligand of the transforming growth factor beta (TGFβ) superfamily, such as TGFβ (SEQ ID NO: 24). In various embodiments, the VitoKine constructs of the present invention comprise a D2 domain, which is IL-15. In various embodiments, the VitoKine constructs of the present invention comprise a D2 domain, which is an IL-15 variant (or mutant), comprising one or more amino acid substitutions, deletions or insertions to an IL-15 polypeptide. In various embodiments, the VitoKine constructs of the present invention comprise a D2 domain, which is IL-2. In various embodiments, the VitoKine constructs of the invention comprise a D2 domain that is an IL-2 variant (or mutant) comprising one or more amino acid substitutions, deletions, or insertions to an IL-2 polypeptide.

[0013] In various embodiments, the D2 domain of the VitoKine construct is an IL-15 domain comprising the sequence of a mature human IL-15 polypeptide as set forth in SEQ ID NO:2 (also referred to herein as huIL-15 or IL-15 wild type (wt)). In various embodiments, the IL-15 domain is an IL-15 variant (or mutant) comprising a sequence derived from a mature human IL-15 polypeptide sequence as set forth in SEQ ID NO:2. In various embodiments, the IL-15 domain is an IL-15 variant (or mutant) comprising a sequence having at least 80%, at least 85%, at least 90%, or at least 95% sequence homology to SEQ ID NO:2. Natural amino acids, positions of natural amino acids in mature sequences, and variant amino acids are used herein to refer to variants (or mutants) of IL-15. For example, huIL-15 "S58D" refers to a human IL-15 comprising a S to D substitution at position 58 of SEQ ID NO:2. In various embodiments, the IL-15 variant acts as an IL-15 agonist, as shown by, for example, an increase in binding activity to the IL-15Rβγc receptor compared to the native IL-15 polypeptide. In various embodiments, the IL-15 variant acts as an IL-15 antagonist, as shown by, for example, a decrease in binding activity to the IL-15Rβγc receptor compared to the native IL-15 polypeptide, or a similar or increased binding activity to the IL-15Rβγc receptor, but a decrease or elimination of signaling activity. In various embodiments, the IL-15 variant has an increased binding affinity or decreased binding activity to the IL-15Rβγc receptor compared to the native IL-15 polypeptide. In various embodiments, the sequence of the IL-15 variant has at least one (i.e., 1, 2, 3, 4, 5, 6, 7, 8, 9, 10 or more) amino acid change compared to the native IL-15 sequence. The amino acid changes may include one or more amino acid substitutions, deletions or insertions in the IL-15 polypeptide, such as in the domain of IL-15 that interacts with IL-15Rβ and / or IL-15Rβγc. In various embodiments, the amino acid changes are one or more amino acid substitutions or deletions at positions 30, 31, 32, 58, 62, 63, 67, 68 or 108 of SEQ ID NO: 2. In various embodiments, the amino acid changes are D to T substitutions at position 30, V to Y substitutions at position 31, H to E substitutions at position 32, S to D substitutions at position 58, T to D substitutions at position 61, V to F substitutions at position 63, I to V substitutions at position 67, I to F or H or D or K substitutions at position 68, or Q to A or M or S substitutions at position 108 of the mature human IL-15 sequence, or any combination of these substitutions.In various embodiments, the amino acid change is an S to D substitution at position 58 of the mature human IL-15 sequence. In various embodiments, the IL-15 polypeptide comprises the IL-15 variant SEQ ID NO: 3. In various embodiments, the IL-15 domain has any combination of amino acid substitutions, deletions, and insertions.

[0014] In various embodiments, the D2 domain of the VitoKine construct of the present invention comprises an IL-2 polypeptide. In various embodiments, the VitoKine construct of the present invention comprises a D2 domain, which is an IL-2 variant (or mutant) comprising one or more amino acid substitutions, deletions or insertions. In various embodiments, the VitoKine construct comprises a D2 domain, wherein the IL-2 domain comprises the sequence of a mature human IL-2 polypeptide as set forth in SEQ ID NO: 8 (also referred to herein as huIL-2 or IL-2 wild type (wt)). In various embodiments, the IL-2 domain is an IL-2 variant (or mutant) comprising a sequence derived from a mature human IL-2 polypeptide sequence as set forth in SEQ ID NO: 8. In various embodiments, the IL-2 domain is an IL-2 variant (or mutant) comprising a sequence having at least 80%, at least 85%, at least 90%, or at least 95% sequence homology to SEQ ID NO: 8. In various embodiments, the IL-2 variant acts as an IL-2 agonist. In various embodiments, the IL-2 variant acts as an IL-2 antagonist. In various embodiments, the amino acid change is one or more amino acid substitutions at positions 19, 20, 38, 41, 42, 44, 88, 107, 125 or 126 of SEQ ID NO:8. In various embodiments, the amino acid change is an L to D or H or N or P or Q or R or S or Y substitution at position 19 of the mature human IL-2 sequence, a D to E or I or N or Q or S or T or Y substitution at position 20, an R to E or A substitution at position 38, a T to A or G or V substitution at position 41, an F to A substitution at position 42, an F to G or V substitution at position 44, an N to D, E or G or I or M or Q or T or R substitution at position 88, a Y to G or H or L or V substitution at position 107, an S to E, H, K, I or W substitution at position 125, a Q to D or E or K or L or M or N substitution at position 126, or any combination of these substitutions.

[0015] In various embodiments, the VitoKine constructs of the present invention comprise a "shielding portion domain" (D3), which is a cognate receptor / binding partner or any binding partner identified for a D2 protein or cytokine. In various embodiments, the D3 domain is a variant of a cognate receptor / binding partner of the D2 domain. In various embodiments, the D3 domain has enhanced binding to the D2 domain compared to the wild-type cognate receptor / binding partner. In various embodiments, the D3 domain has reduced or eliminated binding to the D2 domain compared to the wild-type cognate receptor / binding partner. In various embodiments, the D3 domain is a protein, or peptide, or antibody, or antibody fragment that is capable of shielding the activity of D2. In various embodiments, the D3 domain is a DNA, RNA fragment, or a polymer, such as PEG. In various embodiments, the VitoKine constructs of the present invention comprise a D3 domain, which is an IL-15Rα extracellular domain or a functional fragment thereof. In various embodiments, the VitoKine construct of the present invention comprises a D3 domain, which is an IL-15RαSushi domain. In various embodiments, the VitoKine construct of the present invention comprises a D3 domain, which is an IL-2Rα extracellular domain or a functional fragment thereof. In various embodiments, the VitoKine construct of the present invention comprises a D3 domain, which is an IL-2RαSushi domain. In various embodiments, the D3 domain is capable of shielding the functional activity of D2 until activated at the intended treatment site.

[0016] In various embodiments, the D1 domain, D2 domain, and D3 domain of the VitoKine construct are connected by a protease-cleavable polypeptide linker sequence. In various embodiments, the D1 domain, D2 domain, and D3 domain of the VitoKine construct are connected by a non-cleavable polypeptide linker sequence. In various embodiments, L1 and L2 of the VitoKine construct of the present invention are both protease-cleavable peptide linkers. In various embodiments, L1 of the VitoKine construct of the present invention is a protease-cleavable peptide linker, and L2 is a non-cleavable peptide linker. In various embodiments, L1 of the VitoKine construct of the present invention is a non-cleavable peptide linker, and L2 is a protease-cleavable peptide linker. In various embodiments, L1 and L2 of the VitoKine construct of the present invention are both non-cleavable linkers. In various embodiments, the linker is rich in G / S content (e.g., at least about 60%, 70%, 80%, 90% or more of the amino acids in the linker are G or S). Each peptide linker sequence can be selected independently. In various embodiments, the protease cleavable linker is selected from the group of sequences listed in SEQ ID NO: 71-96 and 157-161. In various embodiments, the protease cleavable linker can have additional peptide spacers of variable length at the N-terminus of the cleavable linker or at the C-terminus of the cleavable linker or at both ends of the cleavable linker. In various embodiments, the non-cleavable linker is selected from the group of sequences listed in SEQ ID NO: 107-127. In various embodiments, the linker is flexible or rigid and has various lengths.

[0017] In various embodiments, the D2 and D3 domains of the VitoKine construct are placed N-terminally to the D1 domain, such as Figure 1 In various embodiments, the D2 domain and the D3 domain of the VitoKine construct are placed at the C-terminus of the D1 domain, such as Figure 1 Depicted in.

[0018] In various embodiments, the D1 domain, D2 domain, and D3 domain of the VitoKine construct may be a monomer or a dimer or a combination of dimers and monomers, such as D1 is a dimer, and D2 and D3 are monomers.

[0019] In another aspect, the disclosure provides a method for treating cancer or cancer metastasis in a subject, the method comprising administering a therapeutically effective amount of a pharmaceutical composition of the present invention to a subject in need thereof. In one embodiment, the subject is a human subject. In various embodiments, the cancer is selected from pancreatic cancer, gastric cancer, liver cancer, breast cancer, ovarian cancer, colorectal cancer, melanoma, leukemia, myelodysplastic syndrome, lung cancer, prostate cancer, brain cancer, bladder cancer, head and neck cancer, or rhabdomyosarcoma, or any cancer.

[0020] In another aspect, the present disclosure provides a method for treating cancer or cancer metastasis in a subject, the method comprising administering a therapeutically effective amount of a pharmaceutical composition of the present invention in combination with a second therapy selected from the group consisting of cytotoxic chemotherapy, immunotherapy, small molecule kinase inhibitor targeted therapy, surgery, radiotherapy, stem cell transplantation, cell therapy including CAR-T, CAR-NK, iPS-induced CAR-T or iPS-induced CAR-NK, and vaccines such as Bacille Calmette-Guerine (BCG). In various embodiments, the combination therapy may include administering to the subject a therapeutically effective amount of an immunotherapy, including, but not limited to, treatment with depleting antibodies directed against specific tumor antigens; treatment with antibody-drug conjugates; treatment with agonistic antibodies, antagonistic antibodies, or blocking antibodies directed against co-stimulatory or co-inhibitory molecules (immune checkpoints) such as CTLA-4, PD-1, PD-L1, CD40, OX-40, CD137, GITR, LAG3, TIM-3, Siglec 7, Siglec 8, Siglec 9, Siglec 15, and VISTA; treatment with bispecific T cell-binding antibodies; treatments such as blinatumomab; treatments involving administration of biological response modifiers (such as IL-12, IL-21, GM-CSF, IFN-α, IFN-β and IFN-γ); treatments using therapeutic vaccines such as sipuleucel-T; treatments using dendritic cell vaccines or tumor antigen peptide vaccines; treatments using chimeric antigen receptor (CAR)-T cells; treatments using CAR-NK cells; treatments using tumor infiltrating lymphocytes (TIL); treatments using adoptively transferred anti-tumor T cells (ex vivo expanded T cells and / or TCR transgenic T cells); treatments using TALL-104 cells; and treatments using immunostimulants such as Toll-like receptor (TLR) agonists CpG and imiquimod; and treatments using vaccines such as BCG; wherein the combination therapy provides increased effector cell killing of tumor cells, i.e., there is a synergistic effect between the VitoKine construct and the immunotherapy when co-administered.

[0021] In another aspect, the disclosure provides a method for treating a viral infection in a subject, the method comprising administering a therapeutically effective amount of a pharmaceutical composition of the present invention to a subject in need thereof. In one embodiment, the subject is a human subject. In various embodiments, the virus is HIV.

[0022] In another aspect, the present disclosure provides a method for treating a viral infection in a subject, the method comprising administering a therapeutically effective amount of a pharmaceutical composition of the present invention in combination with a second therapy including, but not limited to, acyclovir, Epclusa, Mavyret, zidovudine, and enfovirtide.

[0023] On the other hand, the disclosure provides a method for treating an autoimmune disease in a subject, the method comprising administering a therapeutically effective amount of a pharmaceutical composition of the present invention to a subject in need thereof. In one embodiment, the subject is a human subject. In various embodiments, the autoimmune disease is selected from the group consisting of systemic lupus erythematosus (SLE), pemphigus vulgaris, myasthenia gravis, hemolytic anemia, thrombocytopenic purpura, Graves' disease, Sjögren's syndrome, dermatomyositis, Hashimoto's disease, polymyositis, inflammatory bowel disease, multiple sclerosis (MS), diabetes, rheumatoid arthritis, and scleroderma.

[0024] In another aspect, the disclosure provides a method for treating an inflammatory disease in a subject, the method comprising administering a therapeutically effective amount of a pharmaceutical composition of the present invention to a subject in need thereof. In one embodiment, the subject is a human subject. In various embodiments, the inflammatory disease is selected from the group consisting of Crohn's disease, ulcerative colitis, collagenous colitis, lymphocytic colitis, ischemic colitis, metastatic colitis, Behcet's syndrome, and indeterminate colitis.

[0025] In various embodiments, the inflammatory disease is selected from the group consisting of other autoimmune diseases and inflammatory diseases such as achalasia, adult-onset Still's disease, agammaglobulinemia, amyloidosis, anti-GBM / anti-TBM nephritis, antiphospholipid syndrome, autoimmune angioedema, autoimmune dysautonomia, autoimmune encephalomyelitis, autoimmune inner ear disease, autoimmune oophoritis, autoimmune orchitis, autoimmune pancreatitis, autoimmune retinopathy, autoimmune urticaria, axonal and neuronal neuropathy, Barlow's disease, Behcet's disease, benign mucous membrane pemphigoid, Castleman's disease, Chagas disease, chronic inflammatory demyelinating polyneuropathy, chronic relapsing multifocal osteomyelitis, allergic granulomatous vasculitis, cicatricial pemphigoid, Cochrane syndrome Syndrome, Coxsackievirus myocarditis, CREST syndrome, dermatitis herpetiformis, Devic disease / neuromyelitis optica, discoid lupus, Dressler syndrome, eosinophilic esophagitis, eosinophilic fasciitis, erythema nodosum, mixed cryoglobulinemia, fibrosing alveolitis, giant cell arteritis, giant cell myocarditis, Henoch-Schönlein purpura, herpes gestationis or pemphigoid gestationis, IgA nephropathy, IgG4-related sclerosing disease, immune-related adverse events, inclusion body myositis, interstitial cystitis, juvenile arthritis, juvenile myositis, Lambert-Eaton syndrome, leukocytoclastic vasculitis, lichen planus, lichen sclerosis, woody conjunctivitis, linear IgA disease, chronic Lyme disease, Meniere's disease, microscopic polyangiitis, mixed connective tissue disease, Mooren's corneal ulcer Ulcer), Mucha-Habermann disease, multifocal motor neuropathy, optic neuritis, relapsing rheumatic disease, PANDAS, paraneoplastic cerebellar degeneration, Parry-Romberg syndrome, pars planitis, Parsonage-Turner syndrome, perivenous encephalomyelitis, POEMS syndrome, polyarteritis nodosa, polyglandular syndrome, polymyalgia rheumatica, post-myocardial infarction syndrome, postpericardiotomy syndrome, primary sclerosing cholecystitis, Tubular inflammation, progesterone dermatitis, psoriatic arthritis, pure red cell aplasia, pyoderma gangrenosum, Raynaud's phenomenon, reflex sympathetic dystrophy, relapsing polychondritis, retroperitoneal fibrosis, scleritis, sperm and testicular autoimmunity, stiff-man syndrome, subacute bacterial endocarditis, Susac syndrome, sympathetic ophthalmia, Takayasu arteritis, thrombocytopenic purpura, painful ophthalmoplegia syndrome, transverse myelitis, undifferentiated connective tissue disease, Vogt-Koyonagi-Harada disease.

[0026] In another aspect, the present disclosure provides the use of a VitoKine construct for the preparation of a medicament for the treatment of cancer.

[0027] In another aspect, the present disclosure provides the use of a VitoKine construct for the preparation of a medicament for treating a viral infection.

[0028] In another aspect, the present disclosure provides the use of a VitoKine construct for the preparation of a medicament for the treatment of an autoimmune disease.

[0029] In another aspect, the present disclosure provides the use of a VitoKine construct for the preparation of a medicament for the treatment of inflammation.

[0030] In another aspect, the disclosure provides for the use of a VitoKine construct of the invention in combination with a second therapeutic agent or cell therapy capable of treating cancer, viral infection, or autoimmune disease or inflammation.

[0031] In another aspect, the present disclosure provides an isolated nucleic acid molecule comprising a polynucleotide encoding a VitoKine construct of the present disclosure. In another aspect, the present disclosure provides a vector comprising a nucleic acid described herein. In various embodiments, the vector is an expression vector. In another aspect, the present disclosure provides an isolated cell comprising a nucleic acid of the present disclosure. In various embodiments, the cell is a host cell comprising an expression vector of the present disclosure. In another aspect, a method of preparing a VitoKine construct is provided by culturing a host cell under conditions that promote expression of a protein or polypeptide.

[0032] In another aspect, the present disclosure provides pharmaceutical compositions comprising an isolated VitoKine construct admixed with a pharmaceutically acceptable carrier. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 Representative VitoKine construct formats of the invention are depicted.

[0035] Figure 2 The proposed activation mechanism of the VitoKine construct is depicted. An exemplary VitoKine comprises two protease-cleavable linkers; activation of protease 1 resulting from cleavage of the L1 linker produces active form 1; activation of protease 2 resulting from cleavage of the L2 linker produces active form 2; activation of both proteases resulting from cleavage of the L1 linker and the L2 linker produces active form 3.

[0036] FIG3 depicts the protein profile of an exemplary IL-15 VitoKine P-0315 after Protein A purification, A) SDS-PAGE in the absence and presence of a reducing agent, B) size exclusion chromatogram.

[0037] Figure 4 depicts the binding and functional activity of IL-15 VitoKine P-0172 compared to the highly active IL-15 fusion protein P-0198. (A) Binding activity to IL-2Rβ measured by ELISA assay; (BC) Induction of CD69 expression on CD8+ T cells (B) and NK cells (C) of fresh human PBMCs analyzed by FACS.

[0038] Figure 5 The functional activity of monomeric Fc IL-15 VitoKine P-0170 compared to the highly active IL-15 fusion protein P-0166 is depicted. Induction of CD69 expression on human CD8+ T cells of fresh human PBMCs was measured and analyzed by FACS.

[0039] FIG6 depicts the expression of illustrative VitoKine constructs with different linker lengths (P-0204, P-0205, and P-0206) on human PBMCs in comparison to the highly active IL-15 / IL-15RαFc fusion protein P-0165. A) CD8 + Induction of CD69 expression on T cells and B) NK (CD56+) cells.

[0040] Figure 7 Depicted are the proliferation of NK (CD56+) cells in human PBMCs induced by illustrative VitoKine constructs with different L1 and L2 linkers (P-0202, P-0203, and P-0204) compared to the fully active IL-15 / IL-15RαFc fusion proteins P-0207 and P-0217.

[0041] FIG8 depicts A) NK (CD56+) cells and B) CD8+ cells in human PBMCs elicited by illustrative Fc IL-15 VitoKine constructs (P-0351, P-0488, and P-0489) with varying L2 linker sequence compositions compared to the IL-15 / IL-15Rα Fc fusion protein P-0156 as measured by FACS. + Proliferation of T cells.

[0042] Fig. 9 Depicted is SDS-PAGE analysis of Fc IL-15 VitoKine P-0315 proteolysis using varying amounts of MMP-2.

[0043] Figure 10 depicts SDS-PAGE analysis of Fc IL-15 VitoKine P-0203 proteolysis using uPA under different conditions to determine the appropriate reaction conditions for complete cleavage.

[0044] Figure 11 depicts A) SDS-PAGE analysis of Fc IL-15 VitoKine P-0203 before and after proteolysis by uPA. b) Protein profile of activated VitoKine P-0203 after uPA digestion and protein A purification to remove the cleaved Fc fragment.

[0045] Figure 12 depicts A) SDS-PAGE analysis of Fc IL-15 VitoKine P-0315 before and after proteolysis by MMP-2. The gel also shows the profile of P-0315 digested with MMP-2 and purified by Protein A; B) The protein profile of the active form 2 of VitoKine P-0315 produced by digestion with MMP-2 followed by purification by Protein A; C) The protein profile of the active form 3 of VitoKine P-0315 produced by dual proteolysis of MMP-2 and uPA followed by purification by Protein A in flow-through mode.

[0046] Figure 13 depicts the activity assessment of the protease (uPA) activated Fc IL-15 VitoKine P-0203 by analyzing the induction of the activation marker CD69 on A) CD56+ NK cells and B) CD8+ T cells. The highly active IL-15 fusion protein P-0165 was included as a positive control.

[0047] Figure 14 depicts the activity evaluation of two forms of protease activated Fc IL-15 VitoKine P-0315 by analyzing the induction of activation marker CD69 on A) CD56+ NK cells and B) CD8+ T cells. P-0315 active form 2 was generated by MMP-2 digestion, and P-0315 active form 3 was generated by dual proteolysis of both MMP-2 and uPA. The highly active IL-15 fusion protein P-0313, which is structurally similar to active form 2 of P-0315, was included as a positive control.

[0048] Figure 15 depicts the activity evaluation of IL-15 VitoKine P-0315 (active form 2) on MMP-2 activation by analyzing the induction of the proliferation marker Ki67 on A) CD56+ NK cells and B) CD8+ T cells. P-0351, which contains non-cleavable L1 and L2 linkers and shares the same L2 linker length as P-0315, was included for comparison.

[0049] Figure 16 depicts the dose-dependent effect and time-dependent effect of the amplification of CD8+T (A), NK cells (B) and leukocytes (C) in peripheral blood of cleavable Fc IL-15 VitoKine P-0315 and non-cleavable Fc IL-15 VitoKine P-0351 after a single injection in Balb / C mice. Fully active IL-15 Fc fusion protein P-0313 is included for comparison. Blood was collected on the -1 day, the 3rd day, the 5th day and the 7th day to perform lymphocyte phenotyping by FACS analysis. Data are expressed as mean ± SEM. Statistical analysis was performed by two-factor ANOVA test and then Tukey post hoc test. At each time point, compared with the PBS group, ****p<0.0001, ***p<0.001, *p<0.05.

[0050] Fig.17 Depicted is the inhibition of lung metastatic nodules in the mouse CT26 lung metastasis model one day after 4×Q5D doses of P-0315, P-0351, P-0313 or PBS control. The first dose was initiated one day after injection of CT26 cells. Unless otherwise stated, all comparisons are compared to the PBS group; ****p<0.0001; **p<0.01; *p<0.05.

[0051] Figure 18 depicts A) CD8+T cell% and B) NK cell% in total blood lymphocytes of CT26 transferred mice. Cell number was determined by flow cytometry 4 days after three Q5D ip injections of P-0315, P-0351, P-0313 or PBS control. All comparisons were compared with the PBS group; ****p<0.0001; **p<0.01; *p<0.05.

[0052] FIG. 19 depicts the anti-tumor efficacy of Fc IL-15 VitoKine P-0315 compared to the fully active IL-15 Fc fusion P-0313 in an established CT26 murine colorectal cancer tumor model. Growth curves of CT26 sc tumors in individual mice in the following groups after two Q5D treatments are shown: A) vehicle PBS group, B) 0.1 mg / kg P-0315 group, or C) 0.1 mg / kg P-0313 group. (D) Mean tumor volume ± SEM for each treatment group over time. All comparisons are compared to vehicle treatment; n=11 / group; ****P<0.0001.

[0053] Figure 20 depicts immuno-pharmacodynamic profiling of peripheral blood of mice treated with VitoKine P-0315 or the highly active IL-15Fc fusion protein P-0313 in the CT26 murine colorectal cancer tumor model. After two Q5D treatments starting 11 days after tumor implantation, the percentage increase in proliferation marker Ki67 in A) NK cells and B) CD8+ T cells was determined by flow cytometry on day 19. ****P<0.0001, compared to PBS.

[0054] Figure 21 depicts immunopharmacodynamic profiling of peripheral blood of mice after treatment with P-0315 or P-0313 in the CT26 murine colorectal cancer tumor model. After two Q5D treatments starting 11 days after tumor implantation, increases in the number of circulating (per μl whole blood) A) total leukocytes, B) NK cells, and C) CD8+ T cells were determined by flow cytometry on day 19. ****P<0.0001, compared to PBS.

[0055] Figure 22 depicts immunopharmacodynamic profiling of spleens after treatment with P-0315 or P-0313 in the CT26 murine colorectal cancer tumor model. Increases in the number of A) total leukocytes, B) NK cells, and C) CD8+ T cells in the spleen were determined by flow cytometry on day 19 following two Q5D treatments starting 11 days after tumor implantation. ****P<0.0001, *P<0.05, compared to PBS.

[0056] Figure 23 depicts the comparison of the activity of uncleavable Fc IL-15 VitoKine P-0351 and benchmark by analyzing the induction of the proliferation marker Ki67 on A) CD56+ NK cells and B) CD8+ T cells.

[0057] 24 depicts the protein profile of an exemplary IL-2 VitoKine P-0320 after Protein A purification, A) SDS-PAGE in the absence and presence of a reducing agent, and B) size exclusion chromatogram.

[0058] FIG. 25 depicts the expression of A) CD4+Foxp3+ / CD25 in fresh human PBMCs by analyzing 高 Treg and B) CD4+Foxp3- / CD25 低 pStat5 levels in CD4 conventional T cell subsets were evaluated for the activity of two Fc IL-2 VitoKine P-0320 (IL-2 fused to the C-terminus of Fc) and P-0329 (IL-2 fused to the N-terminus of Fc). The highly active IL-2 Fc fusion protein P-0250 was included as a positive control.

[0059] Fig.26 Depicting the mechanism of VitoKine activation from when D3 is expected to be released from D2 and diffuse away after protease cleavage Figure 2 Changes in the icons in the .

[0060] Figure 27 depicts A) SDS-PAGE analysis of IL-2 VitoKine P-0382 and its activation by MMP-2 digestion followed by purification by Ni-Excel. B) Protein profile of MMP-2 activated P-0382 purified by Protein A in bind and elute mode.

[0061] FIG28 depicts the expression of A) CD4+Foxp3+ / CD25 in fresh human PBMCs by analyzing 高 Treg and B) CD4+Foxp3- / CD25 低 pStat5 levels in CD4 conventional T (Tconv) cell subsets were evaluated for the activity of protease-activated IL-2 VitoKine P-0382. Both activated samples were purified by Ni-Excel resin to remove proteases (active form 1) or by protein A to remove proteases and the IL-2Rα Sushi domain produced by proteolysis (active form 2). The highly active IL-2 Fc fusion protein P-0250 was included as a positive control.

[0062] FIG29 depicts the expression of A) CD4+Foxp3+ / CD25 in fresh human PBMCs by analyzing 高 Treg and B) CD4+Foxp3- / CD25 低 pStat5 levels in CD4 Tconv cell subsets, assessed for activity of Fc IL-2 VitoKine P-0398 before and after MMP-2 proteolysis. P-0382 differs from P-0398 only in the L2 linker length, and the highly active IL-2 Fc fusion protein P-0250 was included for comparison.

[0063] Figure 30 depicts the evaluation of the activity of Fc IL-15 VitoKine P-0315 versus antibody IL-15 VitoKine P-0485 by determining the induction of the proliferation marker Ki67 on A) CD56+ NK cells and B) CD8+ T cells by flow cytometry.

[0064] Fig.31 The binding of blocking peptides (L01, L02, L03, L04 and L05) to IL-15 was profiled in an ELISA format.

[0065] Fig.32 Depicted are the binding of IL-15 fusion proteins (P-0153, P-0159, P-0160, and P-0161) containing IL-2Rβ-based blocking peptides to IL-2Rβ coated on the plate.

[0066] Figure 33 depicts size exclusion chromatograms of four IL-2 VitoKine (P-0320, P-0382, P-0362 and P-0379) (BE) and one P-0250 counterpart Fc fusion protein containing a single amino acid substitution S125I in IL-2 versus IL-2 Fc fusion protein P-0250 (A).

[0067] Figure 34 depicts an SDS-PAGE gel of Fc IL-15 Vitokine P-0389 (A) compared to an SDS-PAGE gel of P-0315 (B).

[0068] Methods for carrying out the present disclosure

[0069] The present disclosure provides novel "VitoKine" constructs as a platform technology to reduce systemic on-target toxicity and improve the therapeutic index of cytokines intended for the treatment of cancer, viral infection, autoimmune disease or inflammatory disease. Figure 1 The VitoKine platform consists of Figure 1 The constructs depicted in Figure 2 The proposed activation method is defined as depicted in . Figure 1 , the novel VitoKine constructs of the present invention comprise three domains: 1) a D1 domain ("D1") selected from the group consisting of a tissue targeting domain, a half-life extension domain, or a dual-function moiety domain, 2) a D2 domain ("D2"), which is an "active moiety domain," and 3) a D3 domain ("D3"), which is a "shielding moiety domain." Importantly, the D3 domain is capable of shielding or attenuating the functional activity of D2 until D2 is activated at the intended treatment site.

[0070] The three domains are connected using a linker of variable length and rigidity, coupled with a protease cleavable sequence that is a peptide substrate for a specific protease subtype that has elevated or dysregulated expression in the disease site, thus allowing the functional D2 domain to be exposed or released at the disease site. The linker length and composition are optimized to drive optimal shielding of the D2 domain from its receptor accessibility to reduce its systemic involvement while maintaining the stability of VitoKine in the blood circulation and allowing efficient cleavage upon encountering the specific protease at the intended disease site. The design of "VitoKine" is also based on the rational manipulation of the knowledge of the molecular interactions of cytokines with their cognate receptors. Cytokine receptors generally function as oligomeric complexes composed of two to four receptor subunits. Different subunits perform specialized functions, such as ligand binding or signal transduction. The alpha subunit of the cytokine receptor is a binding receptor that confers ligand specificity, enhances the interaction of ligands with signaling receptors, and converts signaling receptors from low affinity to high affinity. Therefore, the D3 domain of VitoKine is preferably a cognate binding receptor of the D2 domain. After cleavage, the D3 domain can dissociate or reassociate with the D2 domain and completely restore the binding and signaling activity of the D2 domain locally. Therefore, the D3 domain can have a dual role in regulating the function of the D2 domain. When VitoKine is not activated, the D3 domain keeps the D2 domain inert, and when VitoKine is cleaved and activated, the D3 domain can participate in the D2 function. However, the D3 domain can be any protein, peptide, antibody, antibody fragment or polymer or nucleotide that can mask the activity of D2.

[0071] On the other hand, the addition of the D3 domain may also lead to significantly improved developability profiles of VitoKine constructs, increased expression yields, and reduced aggregation propensity.

[0072] The D1 domain can be a half-life extension domain to extend the circulating half-life of VitoKine, and can also serve as an additional domain to mask the functional activity of the D2 domain. The D1 domain can also be a disease or tissue targeting motif that specifically guides VitoKine to the site of interest and limits the activation of VitoKine locally to further improve the therapeutic index. Therefore, the "VitoKine" platform allows cytokines to be selectively activated at the intended site and has the benefit of reducing systemic toxicity while increasing the therapeutic effect at the disease site, thereby improving its therapeutic index.

[0073] The D2 domain of the VitoKine construct is the active portion, but remains inert until locally activated by proteases upregulated in diseased tissues, which will limit binding of the active portion to receptors in the periphery or on the cell surface of non-diseased cells or tissues to prevent over-activation of the pathway and reduce undesirable "out of tissue" "on-target" toxicity. In addition, the inertness of the VitoKine active portion prior to protease activation will significantly reduce potential antigen sinks and thereby extend the in vivo half-life, as well as lead to improvements in biodistribution, bioavailability and efficacy at the intended treatment site. Furthermore, based on the present invention, the VitoKine platform can enhance the developability spectrum of proteins, including but not limited to, such as, when using the cognate receptor alpha as the D3 domain, increased expression levels and reduced aggregation propensity.

[0074] Although cleavable linkers are preferred for most VitoKines to limit systemic activation and release the active domain at the intended site following administration, non-cleavable linkers may also be desirable to provide sustained systemic exposure of the pharmacologically active VitoKine and enhance therapeutic efficacy.

[0075] In an exemplary embodiment, the VitoKine construct comprises an IL-15-based, IL-15-variant-based, IL-2-based, or IL-2-variant-based active portion (D2). For these IL-15 and / or IL-2-based VitoKine constructs, the unique and non-signaling α-subunit of each cytokine receptor is used as one of the shielding portion domains (D3) via a protease-cleavable linker to reversibly shield the cytokine activity. Depending on the different characteristics of each receptor complex and the different needs of the different disease indications intended to be treated with the VitoKine molecules, after the linker is cleaved by the protease, the shielding α-subunit can preferably complex with the activated cytokine by non-covalent association (e.g., for IL-15) or preferably dissociate (e.g., for IL-2 in selectively expanding Treg cells). Therefore, it may be necessary to make amino acid modifications to the α-receptors to adjust the binding affinity to their cognate cytokines.

[0076] This concept of coupling a homologous receptor, protein, antibody, antibody fragment, binding peptide to a cytokine via an activatable linker to mask its functional activity until activated at the intended treatment site can be tailored for a variety of cytokines, including but not limited to IL-4, IL-7, IL-9, IL-10, IL-12, IL-22, IL-23 and TGFβ, chemokines such as CXCR3, or various growth factors such as the TNF family, TGFα and TGFβ, and hormones. The same concept can also be applied to other proteins to generate proproteins to achieve enhanced targeting to disease sites and expand therapeutic utility.

[0077] definition

[0078] The terms "polypeptide", "peptide" and "protein" are used interchangeably herein to refer to polymers of amino acid residues. In various embodiments, "peptide", "polypeptide" and "protein" are amino acid chains whose α carbons are connected by peptide bonds. Therefore, the terminal amino acid at one end (amino terminal) of the chain has a free amino group, and the terminal amino acid at the other end (carboxyl terminal) of the chain has a free carboxyl group. As used herein, the term "amino terminal" (abbreviated as N-terminal) refers to the free α-amino group on the amino acid at the amino terminal of the peptide, or refers to the α-amino group (amino group when participating in a peptide bond) of the amino acid at any other position in the peptide. Similarly, the term "carboxyl terminal" (abbreviated as C-terminal) refers to the free carboxyl group on the carboxyl terminal of the peptide, or the carboxyl group of the amino acid at any other position in the peptide. Peptide also includes substantially any polyamino acid, including but not limited to peptide mimetics (peptide mimetic), such as amino acids connected by ether bonds rather than amide bonds.

[0079] The polypeptides of the present disclosure include polypeptides that have been modified in any manner and for any reason, for example, to: (1) reduce susceptibility to proteolysis, (2) reduce susceptibility to oxidation, (3) alter binding affinity for forming protein complexes, (4) alter binding affinity, and (5) impart or alter other physicochemical or functional properties.

[0080] As used herein, an amino acid "substitution" refers to the replacement of an amino acid at a specific position in a parent polypeptide sequence in a polypeptide with a different amino acid. Amino acid substitutions can be produced using genetic or chemical methods well known in the art. For example, single amino acid substitutions or multiple amino acid substitutions (e.g., conservative amino acid substitutions) can be made in naturally occurring sequences (e.g., in portions of a polypeptide outside of domains that form intermolecular contacts). A "conservative amino acid substitution" refers to the replacement of an amino acid in a polypeptide with a functionally similar amino acid. The following six groups each contain amino acids that are conservative substitutions for each other:

[0081] 1) Alanine (A), serine (S) and threonine (T)

[0082] 2) Aspartic acid (D) and glutamic acid (E)

[0083] 3) Asparagine (N) and Glutamine (Q)

[0084] 4) Arginine (R) and Lysine (K)

[0085] 5) Isoleucine (I), Leucine (L), Methionine (M) and Valine (V)

[0086] 6) Phenylalanine (F), tyrosine (Y) and tryptophan (W)

[0087] "Non-conservative amino acid substitutions" refer to substitutions of a member of one of these classes for a member from another class. In making such changes, according to various embodiments, the hydropathic index of the amino acid may be considered. Each amino acid has been assigned a hydropathic index based on its hydrophobicity and charge characteristics. They are: isoleucine (+4.5); valine (+4.2); leucine (+3.8); phenylalanine (+2.8); cysteine / cystine (+2.5); methionine (+1.9); alanine (+1.8); glycine (-0.4); threonine (-0.7); serine (-0.8); tryptophan (-0.9); tyrosine (-1.3); proline (-1.6); histidine (-3.2); glutamate (-3.5); glutamine (-3.5); aspartic acid (-3.5); asparagine (-3.5); lysine (-3.9) and arginine (-4.5).

[0088] The importance of the hydropathic amino acid index in conferring interactive biological functions on proteins is understood in the art (see, e.g., Kyte et al., 1982, J. Mol. Biol. 157: 105-131). It is known that certain amino acids can be substituted with other amino acids having similar hydropathic indexes or scores and still retain similar biological activity. When making changes based on the hydropathic index, in various embodiments, substitutions of amino acids whose hydropathic index is within ± 2 are included. In various embodiments, those within ± 1 are included, and in various embodiments, those within ± 0.5 are included.

[0089] It is also understood in the art that substitution of similar amino acids can be effectively made based on hydrophilicity, particularly when the resulting biologically functional protein or peptide is intended for use in immunological embodiments, as disclosed herein. In various embodiments, the greatest local average hydrophilicity of a protein (as determined by the hydrophilicity of its adjacent amino acids) is correlated with its immunogenicity and antigenicity, i.e., with the biological properties of the protein.

[0090] The following hydrophilicity values ​​are assigned to these amino acid residues: arginine (+3.0); lysine (+3.0); aspartic acid (+3.0.+-.1); glutamic acid (+3.0.+-.1); serine (+0.3); asparagine (+0.2); glutamine (+0.2); glycine (0); threonine (-0.4); proline (-0.5.+-.1); alanine (-0.5); histidine (-0.5); cysteine ​​(-1.0); methionine (-1.3); valine (-1.5); leucine (-1.8); isoleucine (-1.8); tyrosine (-2.3); phenylalanine (-2.5) and tryptophan (-3.4). When making changes based on similar hydrophilicity values, in various embodiments, substitution of amino acids whose hydrophilicity values ​​are within ±2 is included, in various embodiments, those within ±1, and in various embodiments, those within ±0.5 are included.

[0091] Exemplary amino acid substitutions are listed in Table 1.

[0092] Table 1

[0093]

[0094] The skilled person will be able to use known techniques to determine suitable polypeptide variants as listed herein. In various embodiments, those skilled in the art can identify suitable regions in the molecule that can be altered without destroying activity by targeting regions that are considered unimportant for activity. In other embodiments, the skilled person can identify residues and portions of the molecule that are conserved between similar polypeptides. In additional embodiments, even regions that may be important for biological activity or structure can undergo conservative amino acid substitutions without destroying biological activity or adversely affecting polypeptide structure.

[0095] In addition, one skilled in the art can review structure-function studies that identify residues in similar polypeptides that are important for activity or structure. In view of such comparisons, one skilled in the art can predict the importance of amino acid residues in polypeptides that correspond to amino acid residues in similar polypeptides that are important for activity or structure. One skilled in the art can choose to substitute such predicted important amino acid residues with chemically similar amino acids.

[0096] Those skilled in the art can also analyze the three-dimensional structure and amino acid sequence related to the structure in similar polypeptides. In view of such information, those skilled in the art can predict the arrangement of the amino acid residues of the polypeptide in terms of its three-dimensional structure. In various embodiments, those skilled in the art can choose not to make radical changes (radical changes) to the amino acid residues predicted on the polypeptide surface, because such residues may participate in important interactions with other molecules. In addition, those skilled in the art can produce test variants comprising single amino acid substitutions at each desired amino acid residue. Variants can then be screened using activity assays known to those skilled in the art. These variants can be used to collect information about suitable variants. For example, if people find that the change of a specific amino acid residue leads to destruction, undesirably reduced or inappropriate activity, variants with such changes can be avoided. In other words, based on the information collected from such routine experiments, those skilled in the art can easily determine that further substituted amino acids that should be avoided at this place alone or in combination with other mutations.

[0097] As used herein, the terms "polypeptide fragment" and "truncated polypeptide" refer to polypeptides having an amino-terminal deletion and / or a carboxyl-terminal deletion compared to the corresponding full-length protein. In various embodiments, the length of the fragment can be, for example, at least 5, at least 10, at least 25, at least 50, at least 100, at least 150, at least 200, at least 250, at least 300, at least 350, at least 400, at least 450, at least 500, at least 600, at least 700, at least 800, at least 900 or at least 1000 amino acids. In various embodiments, the length of the fragment can also be, for example, up to 1000, up to 900, up to 800, up to 700, up to 600, up to 500, up to 450, up to 400, up to 350, up to 300, up to 250, up to 200, up to 150, up to 100, up to 50, up to 25, up to 10, or up to 5 amino acids. The fragment can also comprise one or more additional amino acids at either or both ends, for example, a sequence of amino acids from a different naturally occurring protein (e.g., an Fc or leucine zipper domain) or an artificial amino acid sequence (e.g., an artificial linker sequence).

[0098] As used herein, the terms "polypeptide variant," "hybrid polypeptide," and "polypeptide mutant" refer to a polypeptide comprising an amino acid sequence in which one or more amino acid residues are inserted into, deleted from, and / or substituted into an amino acid sequence relative to another polypeptide sequence. In various embodiments, the number of amino acid residues to be inserted, deleted, or substituted can be, for example, at least 1, at least 2, at least 3, at least 4, at least 5, at least 10, at least 25, at least 50, at least 75, at least 100, at least 125, at least 150, at least 175, at least 200, at least 225, at least 250, at least 275, at least 300, at least 350, at least 400, at least 450, or at least 500 amino acids in length. Hybrids of the present disclosure include fusion proteins.

[0099] A "derivative" of a polypeptide is a polypeptide that has been chemically modified, for example, by conjugation to another chemical moiety such as, for example, polyethylene glycol, albumin (eg, human serum albumin), phosphorylation, and glycosylation.

[0100] The term "% sequence identity" is used interchangeably with the term "% identity" herein and refers to the level of amino acid sequence identity between two or more peptide sequences or the level of nucleotide sequence identity between two or more nucleotide sequences when using a sequence alignment program. For example, as used herein, 80% identity determined by a defined algorithm means the same as 80% sequence identity, and means that a given sequence is at least 80% identical to another sequence of another length. In various embodiments, % identity is selected from, for example, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95% or at least 99% or greater sequence identity with a given sequence. In various embodiments, % identity is, for example, in the range of about 60% to about 70%, about 70% to about 80%, about 80% to about 85%, about 85% to about 90%, about 90% to about 95%, or about 95% to about 99%.

[0101] The term "% sequence homology" is used interchangeably with the term "% homology" herein and refers to the level of amino acid sequence homology between two or more peptide sequences or the level of nucleotide sequence homology between two or more nucleotide sequences when using a sequence alignment program. For example, as used herein, 80% homology determined by a defined algorithm means the same as 80% sequence homology, and thus the homologue of a given sequence has a sequence homology greater than 80% relative to the length of the given sequence. In various embodiments, % homology is selected from, for example, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95% or at least 99% or greater sequence homology with a given sequence. In various embodiments, % homology is in the range of, for example, about 60% to about 70%, about 70% to about 80%, about 80% to about 85%, about 85% to about 90%, about 90% to about 95%, or about 95% to about 99%.

[0102] Exemplary computer programs that can be used to determine the identity between two sequences include, but are not limited to, a set of BLAST programs publicly available on the Internet at the NCBI website, such as BLASTN, BLASTX and TBLASTX, BLASTP and TBLASTN. See also Altschul et al., J. Mol. Biol. 215: 403-10, 1990 (with particular reference to the published default settings, i.e., parameters w = 4, t = 17) and Altschul et al., Nucleic Acids Res., 25: 3389-3402, 1997. When evaluating a given amino acid sequence relative to the amino acid sequences in GenBank protein sequences and other public databases, the BLASTP program is generally used for sequence searches. The BLASTX program is preferably used to search for nucleic acid sequences that have been translated in all reading frames for amino acid sequences in GenBank protein sequences and other public databases. Both BLASTP and BLASTX are run using the default parameters of an open gap penalty of 11.0 and an extended gap penalty of 1.0 and using the BLOSUM-62 matrix.

[0103] In addition to calculating the percentage of sequence identity, the BLAST algorithm also performs a statistical analysis of the similarity between two sequences (see, e.g., Karlin & Altschul, Proc. Nat'l. Acad. Sci. USA, 90:5873-5787, 1993). One measure of similarity provided by the BLAST algorithm is the minimum total probability (P(N)), which provides an indication of the probability that a match between two nucleotide sequences or amino acid sequences occurs by chance. For example, if in a comparison of a test nucleic acid to a reference nucleic acid, the minimum total probability is, e.g., less than about 0.1, less than about 0.01, or less than about 0.001, then the nucleic acid is considered similar to the reference sequence.

[0104] As used herein, the term "modification" refers to any manipulation of the peptide backbone (eg, amino acid sequence) or post-translational modifications of the polypeptide (eg, glycosylation).

[0105] As used herein, the term "knob-into-hole modification" refers to a modification within the interface between the CH3 domains of two immunoglobulin heavy chains. In one embodiment, the "knob-into-hole modification" comprises an amino acid substitution T366W and an optional amino acid substitution S354C in one antibody heavy chain, and an amino acid substitution T366S, L368A, Y407V, and an optional Y349C in the other antibody heavy chain. The knob-into-hole technology is described in, for example, U.S. Pat. No. 5,731,168; U.S. Pat. No. 7,695,936; Ridgway et al., Prot Eng 9, 617-621 (1996) and Carter, J Immunol Meth 248, 7-15 (2001).

[0106] As used herein, the term "bioactivatable drug" or "VitoKine" means a compound that is a prodrug that, after being administered to a subject, releases the drug in vivo via some chemical or physiological processing that converts the bioactivatable drug into a product that is active on the target tissue. A bioactivatable drug is any compound that undergoes bioactivation and then exhibits its pharmacological effect. Thus, a bioactivatable drug can be considered a drug that contains a specialized non-toxic protective group that is used in a transient manner to alter or eliminate the undesirable properties of the parent molecule.

[0107] As used herein, the term "fusion protein" refers to a fusion polypeptide molecule comprising two or more genes that originally encode different proteins, wherein the components of the fusion protein are directly connected to each other by peptide bonds or connected to each other by peptide linkers. As used herein, the term "fusion" refers to components directly connected by peptide bonds or components connected via one or more peptide linkers.

[0108] "Joint" refers to a molecule that connects two other molecules covalently or by ionic bonds, van der Waals forces or hydrogen bonds, such as a nucleic acid molecule that hybridizes with a complementary sequence at the 5' end and hybridizes with another complementary sequence at the 3' end to connect two non-complementary sequences. "Cleavable joint" refers to a joint that can be degraded, digested or otherwise cut off to separate the two components connected by the cleavable joint. Cleavable joints are usually cleaved by enzymes, usually peptidases, proteases, nucleases, lipases, etc. Cleavable joints can also be cleaved by environmental factors, such as changes in temperature, pH, salt concentration, etc.

[0109] As used herein, the term "peptide linker" refers to a peptide comprising one or more amino acids, typically about 1-30 amino acids. Peptide linkers are known in the art or described herein. Suitable non-immunogenic linker peptides include, for example, (G4S) n 、(SG4) n or G4(SG4) n Peptide linker. "n" is generally a number between 1 and 10, usually between 2 and 4.

[0110] "Pharmaceutical composition" refers to a composition suitable for pharmaceutical use in animals. A pharmaceutical composition comprises a pharmacologically effective amount of an active agent and a pharmaceutically acceptable carrier. "Pharmacologically effective amount" refers to the amount of an agent that effectively produces the expected pharmacological result. "Pharmaceutically acceptable carrier" refers to any standard pharmaceutical carrier, vehicle, buffer and excipient, such as phosphate buffered saline solution, 5% dextrose aqueous solution, and emulsion, such as oil / water emulsion or water / oil emulsion, and various types of wetting agents and / or adjuvants. Suitable pharmaceutical carriers and formulations are described in Remington's Pharmaceutical Sciences, 21st edition 2005, Mack Publishing Co, Easton. "Pharmaceutically acceptable salts" are salts of compounds that can be formulated for pharmaceutical use, including, for example, metal salts (sodium, potassium, magnesium, calcium, etc.) and salts of ammonia or salts of organic amines.

[0111] As used herein, "treatment" (and grammatical variations such as "treat" or "treating") refers to clinical intervention that attempts to alter the natural course of a disease in the individual being treated, and the clinical intervention may be performed for prevention or during the course of clinical pathology. Desired therapeutic effects include, but are not limited to, preventing the occurrence or recurrence of the disease, alleviating symptoms, alleviating any direct or indirect pathological consequences of the disease, preventing metastasis, reducing the rate of disease progression, ameliorating or mitigating the disease state, and alleviating or improving prognosis. As used herein, "alleviating" a disease, disorder, or condition means reducing the severity and / or frequency of the symptoms of the disease, disorder, or condition. In addition, references to "treatment" herein include references to curative, palliative, and preventive treatments.

[0112] As used herein, the term "effective amount" or "therapeutically effective amount" refers to an amount of a compound or composition sufficient to treat a particular disorder, condition or disease, such as to improve, alleviate, mitigate and / or delay one or more symptoms thereof. With respect to cancer or other unwanted cell proliferation, an effective amount includes an amount sufficient to achieve the following: (i) reduce the number of cancer cells; (ii) reduce tumor size; (iii) inhibit, delay, slow down and preferably stop cancer cell infiltration into peripheral organs to a certain extent; (iv) inhibit (i.e., slow down and preferably stop to a certain extent) tumor metastasis; (v) inhibit tumor growth; (vi) prevent or delay the occurrence and / or recurrence of tumors; and / or (vii) alleviate to a certain extent one or more symptoms associated with cancer. An effective amount can be administered in one or more administrations.

[0113] The phrases "administer" or "cause to be administered" refer to actions taken by a medical professional (e.g., a physician) or a person controlling the medical care of a patient to control and / or allow the administration of the agent / compound in question to a patient. Causing administration can include diagnosing and / or determining an appropriate treatment regimen, and / or prescribing a particular agent / compound to a patient. Such prescribing can include, for example, drafting a prescription form, annotating a medical record, etc. "Cause to be administered" is also contemplated when describing administration herein.

[0114] The terms "patient", "individual" and "subject" are used interchangeably and refer to mammals, preferably humans or non-human primates, but also domestic mammals (e.g., canines or felines), laboratory mammals (e.g., mice, rats, rabbits, hamsters, guinea pigs), and agricultural mammals (e.g., equines, bovines, pigs, ovines). In various embodiments, the patient can be a human (e.g., adult males, adult females, adolescent males, adolescent females, male children, female children) under the care of a physician or other health worker in a hospital, psychiatric care facility such as an outpatient clinic, or other clinical setting. In various embodiments, the patient can be an immunocompromised patient or a patient with a weakened immune system, including but not limited to patients with primary immunodeficiency, AIDS; cancer patients and transplant patients taking certain immunosuppressive drugs; and patients with genetic diseases that affect the immune system (e.g., congenital agammaglobulinemia, congenital IgA deficiency). In various embodiments, the patient has an immunogenic cancer, including but not limited to bladder cancer, lung cancer, melanoma, and other cancers reported to have high mutation rates (Lawrence et al., Nature, 499(7457):214-218, 2013).

[0115] The term "immunotherapy" refers to cancer treatments including, but not limited to, treatment with depleting antibodies directed against specific tumor antigens; treatment with antibody-drug conjugates; treatment with agonistic, antagonistic, or blocking antibodies directed against co-stimulatory or co-inhibitory molecules (immune checkpoints) such as CTLA-4, PD-1, PDL-1, CD40, OX-40, CD137, GITR, LAG3, TIM-3, SIRPa, CD47, GITR, ICOS, CD27, Siglec 7, Siglec 8, Siglec 9, Siglec 15, and VISTA, CD276, CD272, TIM-3, B7-H4; treatment with bispecific T cell-engaging antibodies treatment involving administration of biological response modifiers (such as IL-2, IL-4, IL-7, IL-10, IL-12, IL-15, IL-21, IL-22, GM-CSF, IFN-α, IFN-β, and IFN-γ, TGF-β antagonists, or TGF-β traps); treatment using therapeutic vaccines such as sipuleucel-T; treatment using therapeutic viruses (including but not limited to oncolytic viruses such as T-vec); treatment using dendritic cell vaccines or tumor antigen peptide vaccines or neoantigen vaccines; treatment using NK cells; treatment using chimeric antigen receptors; Treatment with somatic (CAR)-T cells; treatment with CAR-NK cells; treatment with DCs or T cells; treatment with iPS-induced NK cells; treatment with iPS-induced T cells and treatment with vaccines such as bacillus Calmette-Guérin (BCG); treatment with tumor infiltrating lymphocytes (TIL); treatment with adoptively transferred anti-tumor T cells (ex vivo expanded T cells and / or TCR-T cells); treatment with TALL-104 cells; and treatment with immunostimulants such as Toll-like receptor (TLR) agonists CpG, TLR7, TLR8, TLR9 and imiquimod.

[0116] "Resistant or refractory cancer" refers to tumor cells or cancers that do not respond to previous anticancer therapies, including, for example, chemotherapy, surgery, radiotherapy, stem cell transplantation, and immunotherapy. Tumor cells may be resistant or refractory at the beginning of treatment, or they may become resistant or refractory during treatment. Refractory tumor cells include tumors that do not respond at the beginning of treatment, or tumors that initially respond for a short period of time but ultimately fail to respond to treatment. Refractory tumor cells also include tumors that respond to treatment with anticancer therapy but fail to respond to subsequent rounds of therapy. For the purposes of the present invention, refractory tumor cells also include tumors that appear to be suppressed by treatment with anticancer therapy but recur up to 5 years, sometimes up to 10 years or more after treatment has stopped. Anticancer therapy may use a single chemotherapeutic agent, radiation alone, targeted therapy alone, surgery alone, or a combination thereof. For ease of description and not limitation, it should be understood that refractory tumor cells are interchangeable with resistant tumors.

[0117] The term "tumor-associated antigen" (TAA) refers to, for example, a cell surface antigen that is selectively expressed by cancer cells or overexpressed in cancer cells relative to most normal cells. The terms "TAA variant" and "TAA mutant" as used herein refer to a TAA comprising an amino acid sequence in which one or more amino acid residues are inserted into, deleted from, and / or substituted into the amino acid sequence relative to another TAA sequence. In various embodiments, the number of amino acid residues to be inserted, deleted, or substituted can be, for example, at least 1, at least 2, at least 3, at least 4, at least 5, at least 10, at least 25, at least 50, at least 75, at least 100, at least 125, at least 150, at least 175, at least 200, at least 225, at least 250, at least 275, at least 300, at least 350, at least 400, at least 450, or at least 500 amino acids in length.

[0118] The term "neoantigen" refers to a cell surface antigen to which the immune system has not been previously exposed, for example, especially a cell surface antigen generated by alteration of host antigens by radiation, chemotherapy, viral infection, neoplastic transformation / mutation, drug metabolism, etc., which is selectively expressed by or overexpressed in cancer cells relative to most normal cells.

[0119] As used herein, the term "antibody" is used in the broadest sense and covers various antibody structures (IgG1, 2, 3 or 4, IgM, IgA, IgE), including but not limited to monoclonal antibodies, polyclonal antibodies, multispecific antibodies (e.g., bispecific antibodies or bifunctional antibodies), and antibody fragments, provided that they exhibit the desired antigen-binding activity.

[0120] As used herein, the term "antibody fragment" refers to a molecule other than an intact antibody that contains a portion of an intact antibody and binds to the antigen to which the intact antibody binds. Examples of antibody fragments include, but are not limited to, Fv, Fab, Fab', Fab'-SH, F(ab')2, diabodies, linear antibodies, single-chain antibody molecules (e.g., scFv), and single domain antibodies.

[0121] The term "Fab fragment" as used herein refers to an immunoglobulin fragment comprising the VL domain and the constant domain (CL) of the light chain and the VH domain and the first constant domain (CH1) of the heavy chain.

[0122] As used herein, the term "variable region" or "variable domain" refers to the domain of an immunoglobulin or antibody heavy or light chain that is typically involved in binding the immunoglobulin or antibody to an antigen. The variable domains of the heavy and light chains of an immunoglobulin or antibody (VH and VL, respectively) typically have a similar structure, with each domain comprising four conserved framework regions (FRs) and three complementarity determining regions (CDRs).

[0123] As used herein, a "human immunoglobulin" is an immunoglobulin having an amino acid sequence that corresponds to the amino acid sequence of an immunoglobulin produced by a human or human cell or derived from a non-human source using a human immunoglobulin repertoire or other human immunoglobulin encoding sequence. This definition of a human immunoglobulin specifically excludes humanized immunoglobulins that contain non-human antigen-binding residues.

[0124] As used herein, the term "Fc domain" or "Fc region" is used to define the C-terminal region of an immunoglobulin heavy chain, which includes at least a portion of a constant region. The term includes a native sequence Fc region and a variant Fc region. The IgG Fc region includes IgG CH2 and IgG CH3 domains. The CH3 region herein can be a native sequence CH3 domain or a variant CH3 domain (e.g., a CH3 domain with an introduced "protuberance" ("knob") in one of its chains and a corresponding introduced "cavity" ("hole") in another of its chains; see U.S. Patent No. 5,821,333, expressly incorporated herein by reference). Such a variant CH3 domain can be used to promote the heterodimerization of two different immunoglobulin heavy chains as described herein. Unless otherwise specified herein, the numbering of amino acid residues in the Fc region or constant region is according to the EU numbering system.

[0125] As used herein, the term "effector function" refers to those biological activities attributable to the Fc region of an immunoglobulin, which differs with the immunoglobulin subtype. Examples of immunoglobulin effector functions include: C1q binding and complement dependent cytotoxicity (CDC), Fc receptor binding, antibody-dependent cell-mediated cytotoxicity (ADCC), antibody-dependent cellular phagocytosis (ADCP), cytokine secretion, immune complex-mediated antigen uptake by antigen-presenting cells, downregulation of cell surface receptors (e.g., B cell receptors), and B cell activation.

[0126] As used herein, the term "regulatory T cells" or "Treg cells" means a specialized type of CD4+T cells that can suppress the response of other T cells (effector T cells). Treg cells are characterized by the expression of CD4, the α subunit of the IL-2 receptor (CD25), and the transcription factor forkhead box P3 (FOXP3) (Sakaguchi, Annu Rev Immunol 22, 531-62 (2004)), and play a key role in inducing and maintaining peripheral self-tolerance to antigens, including antigens expressed by tumors.

[0127] As used herein, the term "conventional CD4+ T cells" means CD4+ T cells other than regulatory T cells.

[0128] As used herein, the term "selective activation of Treg cells" means activation of Treg cells that are substantially not accompanied by activation of other T cell subsets (such as CD4+ helper T cells, CD8+ cytotoxic T cells, NK T cells) or natural killer (NK) cells. Methods for identifying and distinguishing these cell types are described in the embodiments. Activation can include inducing IL-2 receptor signaling (such as, for example, measured by detecting phosphorylated STAT5a), inducing proliferation (such as, for example, measured by detecting Ki-67) and / or upregulating the expression of activation markers (such as, for example, CD25).

[0129] As used herein, "specific binding" means that the binding to an antigen is selective and can be distinguished from unwanted or non-specific interactions. The ability of an immunoglobulin to bind to a specific antigen can be measured by enzyme-linked immunosorbent assay (ELISA) or other techniques familiar to those skilled in the art, such as surface plasmon resonance (SPR) technology.

[0130] As used herein, the term "affinity" or "binding affinity" refers to the strength of the sum of non-covalent interactions between a single binding site of a molecule (e.g., an antibody) and its binding partner (e.g., an antigen). The affinity of a molecule X for its partner Y can generally be represented by the dissociation constant (KD), which is the ratio of the dissociation rate constant and the association rate constant (koff and kon, respectively). A particular method for measuring affinity is surface plasmon resonance (SPR).

[0131] As used herein, the term "reduced binding" refers to a decrease in the affinity of the respective interaction, as measured, for example, by SPR. In contrast, "increased binding" refers to an increase in the binding affinity of the respective interaction.

[0132] The term "polymer" as used herein generally includes, but is not limited to, homopolymers; copolymers, such as, for example, block, graft, random, and alternating copolymers; and terpolymers; and mixtures and modifications thereof. Furthermore, unless expressly limited otherwise, the term "polymer" shall include all possible geometric configurations of the material. These configurations include, but are not limited to, isotactic, syndiotactic, and random symmetries.

[0133] "Polynucleotide" refers to a polymer comprising nucleotide units. Polynucleotides include naturally occurring nucleic acids, such as deoxyribonucleic acid ("DNA") and ribonucleic acid ("RNA") and nucleic acid analogs. Nucleic acid analogs include those comprising the following: non-naturally occurring bases, nucleotides that are connected (engage) with other nucleotides by connections other than naturally occurring phosphodiester bonds, or nucleotides comprising bases attached by connections other than phosphodiester bonds. Therefore, nucleotide analogs include, for example and without limitation, phosphorothioates, phosphorodithioates, phosphotriesters, phosphoramidates, boranophosphates, methylphosphonates, chiral methylphosphonates, 2-O-methyl ribonucleotides, peptide nucleic acids (PNA), etc. Such polynucleotides can be synthesized, for example, using an automated DNA synthesizer. The term "nucleic acid" generally refers to large polynucleotides. The term "oligonucleotide" generally refers to short polynucleotides, generally not more than about 50 nucleotides. It will be understood that when a nucleotide sequence is represented by a DNA sequence (ie, A, T, G, C), this also includes RNA sequences (ie, A, U, G, C) in which "U" replaces "T".

[0134] Conventional symbols are used herein to describe polynucleotide sequences: the left-hand end of a single-stranded polynucleotide sequence is the 5'-end; the left-hand direction of a double-stranded polynucleotide sequence is referred to as the 5'-direction. The direction in which nucleotides are added from 5' to 3' of a nascent RNA transcript is referred to as the transcription direction. A DNA strand having the same sequence as an mRNA is referred to as the "coding strand"; a sequence on a DNA strand having the same sequence as an mRNA transcribed from the DNA and located 5' to the 5' end of the RNA transcript is referred to as an "upstream sequence"; a sequence on a DNA strand having the same sequence as an RNA and 3' to the 3' end of a coding RNA transcript is referred to as a "downstream sequence".

[0135] "Complementary" refers to the topological compatibility or matching of the interaction surfaces of two polynucleotides. Therefore, the two molecules can be described as complementary, and further, the contact surface features are complementary to each other. A first polynucleotide is complementary to a second polynucleotide if the nucleotide sequence of the first polynucleotide is substantially identical to the nucleotide sequence of the polynucleotide binding partner of the second polynucleotide, or if the first polynucleotide can hybridize with the second polynucleotide under stringent hybridization conditions.

[0136] "Specifically hybridizes to" or "specifically hybridizes" or "selectively hybridizes to" refers to the preferential binding, duplexing or hybridization of a nucleic acid molecule to a particular nucleotide sequence under stringent conditions when the sequence is present in a complex mixture (e.g., total cellular) DNA or RNA. The term "stringent conditions" refers to conditions under which a probe will preferentially hybridize to its target subsequence, and to other sequences to a lesser extent or not at all. In the context of nucleic acid hybridization experiments such as Southern hybridization and Northern hybridization, "stringent hybridization" and "stringent hybridization wash conditions" are sequence-dependent and are different under different environmental parameters. An extensive guide to the hybridization of nucleic acids can be found in: Tijssen, 1993, Laboratory Techniques in Biochemistry and Molecular Biology--Hybridization with Nucleic Acid Probes, Part I, Chapter 2, "Overview of principles of hybridization and the strategy of nucleic acid probe assays", Elsevier, NY; Sambrook et al., 2001, Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory, 3rd Supplement, NY; and Ausubel et al., eds., Current Protocols in Molecular Biology, Greene Publishing Associates and Wiley Interscience, NY.

[0137] Typically, highly stringent hybridization and washing conditions are selected to be about 5°C lower than the thermal melting point (Tm) of the specific sequence at a defined ionic strength and pH. The Tm is the temperature at which 50% of the target sequence hybridizes to a perfectly matched probe (under defined ionic strength and pH conditions). Very stringent conditions are selected to be equal to the Tm of a specific probe. An example of stringent hybridization conditions for hybridization of complementary nucleic acids having more than about 100 complementary residues on filters in Southern or Northern blotting is hybridization at 42°C, 50% formalin with 1 mg heparin overnight. An example of highly stringent washing conditions is 0.15 M NaCl at 72°C for about 15 minutes. An example of stringent washing conditions is 0.2x SSC washing at 65°C for 15 minutes. See Sambrook et al. for a description of SSC buffer. A low stringency wash may be performed to remove background probe signals, followed by a high stringency wash. An exemplary moderate stringency wash for a duplex of, for example, more than about 100 nucleotides is 1 x SSC at 45°C for 15 minutes. An exemplary low stringency wash for a duplex of, for example, more than about 100 nucleotides is 4-6 x SSC at 40°C for 15 minutes. Typically, in a particular hybridization assay, a signal-to-noise ratio of 2x (or higher) compared to the signal-to-noise ratio observed for an unrelated probe indicates that a specific hybridization has been detected.

[0138] "Primer" refers to a polynucleotide that can hybridize with the polynucleotide template of designation and provide a starting point for the synthesis of complementary polynucleotides. When a polynucleotide primer is placed under the conditions of induction synthesis (i.e., in the presence of nucleotides, complementary polynucleotide templates and agents such as DNA polymerase for polymerization), such synthesis occurs. Primers are generally single-stranded, but can be double-stranded. Primers are generally deoxyribonucleic acids, but many synthetic and naturally occurring primers can be used for many applications. Primers are complementary to templates, and primers are designed to hybridize with templates to serve as the site of synthesis initiation, but do not need to reflect the precise sequence of templates. In such cases, the specific hybridization of primers and templates depends on the stringency of hybridization conditions. Primers can be labeled with, for example, chromogenic, radioactive or fluorescent parts and used as detectable parts.

[0139] When used in reference to polynucleotides, "probe" refers to a polynucleotide that can specifically hybridize with a specified sequence of another polynucleotide. The probe specifically hybridizes with a target complementary polynucleotide, but does not need to reflect the exact complementary sequence of the template. In such a case, the specific hybridization of the probe with the target depends on the stringency of the hybridization conditions. The probe can be labeled with, for example, a chromogenic, radioactive or fluorescent portion and used as a detectable portion. In the case where the probe provides a starting point for synthesizing a complementary polynucleotide, the probe can also be a primer.

[0140] "Vector" is a polynucleotide that can be used to introduce another nucleic acid connected thereto into a cell. One type of vector is a "plasmid", which refers to a linear or circular double-stranded DNA molecule to which other nucleic acid segments can be connected. Another type of vector is a viral vector (for example, a replication-defective retrovirus, adenovirus and adeno-associated virus), in which other DNA segments can be introduced into the viral genome. Some vectors can replicate autonomously in the host cell into which they are introduced (for example, a bacterial vector and an episomal mammalian vector comprising a bacterial origin of replication). Other vectors (for example, non-episomal mammalian vectors) are integrated into the genome of the host cell after being introduced into the host cell, and thus replicate together with the host genome." expression vector" is a type of vector that can guide the expression of the polynucleotide selected.

[0141] A "regulatory sequence" is a nucleic acid that affects the expression (e.g., the level, timing, or location of expression) of a nucleic acid to which it is operably linked. A regulatory sequence may, for example, exert its effect directly on the regulated nucleic acid, or exert its effect through the action of one or more other molecules (e.g., a polypeptide that binds to the regulatory sequence and / or nucleic acid). Examples of regulatory sequences include promoters, enhancers, and other expression control elements (e.g., polyadenylation signals). Additional examples of regulatory sequences are described, for example, in Goeddel, 1990, Gene Expression Technology: Methods in Enzymology 185, Academic Press, San Diego; Calif. and Baron et al., 1995, Nucleic Acids Res. 23: 3605-06. A nucleotide sequence is "operably linked" to a regulatory sequence if the regulatory sequence affects the expression (e.g., the level, timing, or location of expression) of a nucleotide sequence.

[0142] "Host cell" is a cell that can be used to express the polynucleotides of the present disclosure.Host cell can be a prokaryote, such as Escherichia coli (E.coli), or host cell can be a eukaryote, such as a unicellular eukaryote (e.g., yeast or other fungi), a plant cell (e.g., tobacco or tomato plant cell), an animal cell (e.g., a human cell, a monkey cell, a hamster cell, a rat cell, a mouse cell or an insect cell) or a hybridoma.Usually, a host cell is a cultured cell that can be transformed or transfected with a nucleic acid encoding a polypeptide, and the nucleic acid can then be expressed in the host cell.The wording "recombinant host cell" can be used to represent a host cell that has been transformed or transfected with a nucleic acid to be expressed.Host cell can also be a cell that contains nucleic acid but does not express the nucleic acid at a desired level, unless a regulatory sequence is introduced into the host cell so that the regulatory sequence becomes operably connected to the nucleic acid.It should be understood that the term host cell refers not only to a specific subject cell, but also to the offspring or potential offspring of such a cell. Because certain modifications may occur in succeeding generations due to, for example, mutation or environmental influences, such progeny may not, in fact, be identical to the parent cell, but are still included within the scope of the term as used herein.

[0143] The term "isolated molecule" (wherein the molecule is, for example, a polypeptide or polynucleotide) is a molecule that, by virtue of its origin or source of derivation, (1) is not associated with naturally associated components that accompany it in its natural state, (2) is substantially free of other molecules from the same species, (3) is expressed by a cell from a different species, or (4) does not occur in nature. Thus, a molecule that is chemically synthesized or expressed in a cell system different from the cell from which it originates in nature would be "isolated" from its naturally associated components. A molecule may also be rendered substantially free of naturally associated components by separation using purification techniques well known in the art. Molecular purity or homogeneity can be determined by a number of means well known in the art. For example, the purity of a polypeptide sample can be determined using techniques well known in the art using polyacrylamide gel electrophoresis and staining the gel to visualize the polypeptide. For some purposes, higher resolution may be provided by using HPLC or other means well known in the art for purification.

[0144] A protein or polypeptide is "substantially pure," "substantially homogeneous," or "substantially purified" when at least about 60% to 75% of the sample represents a single species of polypeptide. A polypeptide or protein can be monomeric or polymeric. A substantially pure polypeptide or protein will typically contain about 50%, 60%, 70%, 80%, or 90% W / W of the protein sample, more typically about 95% and preferably will be greater than 99% pure. Protein purity or homogeneity can be indicated by a number of means well known in the art, such as polyacrylamide gel electrophoresis of a protein sample followed by visualization of individual polypeptide bands by staining the gel with stains well known in the art. For some purposes, higher resolution can be provided by using HPLC or other means well known in the art for purification.

[0145] As used herein, the term "label" or "labeled" refers to the incorporation of another molecule into an antibody. In one embodiment, the label is a detectable marker, such as a polypeptide incorporating a radiolabeled amino acid or attached to a biotinyl moiety that can be detected by labeled avidin (e.g., streptavidin containing a fluorescent marker or an enzyme activity that can be detected by optical methods or calorimetry). In another embodiment, the label or marker can be therapeutic, such as a drug conjugate or a toxin. Various methods of labeling polypeptides and glycoproteins are known in the art and can be used. Examples of labels for polypeptides include, but are not limited to, the following: radioisotopes or radionuclides (e.g. 3 H. 14 C. 15 N. 35 S. 90 Y. 99 Tc, 111 In, 125 I. 131I); fluorescent labels (e.g., FITC, rhodamine, lanthanide fluorophores); enzyme labels (e.g., horseradish peroxidase, β-galactosidase, luciferase, alkaline phosphatase); chemiluminescent markers; biotinyl groups; a predetermined polypeptide epitope recognized by a second reporter (e.g., a leucine zipper pairing sequence, a binding site for a second antibody, a metal binding domain, an epitope tag); magnetic agents, such as gadolinium chelates; toxins such as pertussis toxin, paclitaxel, cytochalasin B, gramicidin D, ethidium bromide, emetine, mitomycin, etoposide, teniposide, vincristine, vinblastine, colchicine, doxorubicin, daunorubicin, dihydroxyanthracin dione), mitoxantrone, mithramycin, actinomycin D, 1-dehydrotestosterone, glucocorticoids, procaine, tetracaine, lidocaine, propranolol and puromycin and analogs or homologues thereof. In various embodiments, the label is attached by spacer arms of various lengths to reduce potential steric hindrance.

[0146] As used herein, the term "heterologous" refers to a non-native or non-natural combination or state, which may be achieved, for example, by replacing an existing native component or state with a component or state derived from another source. Similarly, protein expression in an organism other than the organism in which the protein is naturally expressed constitutes a heterologous expression system and a heterologous protein.

[0147] It should be understood that the aspects and embodiments of the present disclosure described herein include "consisting of" and / or "consisting essentially of" these aspects and embodiments.

[0148] Reference herein to "about" a value or parameter includes (and describes) variations with respect to that value or parameter itself. For example, reference to "about X" includes description of "X".

[0149] As used herein and in the appended claims, the singular forms "a," "an," "or," and "the" include plural referents unless the context clearly dictates otherwise. It should be understood that the aspects and variations of the disclosure described herein include "consisting of" and / or "consisting essentially of" these aspects and variations.

[0150] Description of the VitoKine platform

[0151] The present invention provides a cytokine-based bioactivatable drug ("VitoKine") platform that is designed to reduce toxicity based on systemic mechanisms and lead to broader therapeutic utility of proteins such as cytokines. Figure 1The novel VitoKine construct of the present invention comprises a D1 domain, an "active part domain" (D2), and a "shielding part domain" (D3), wherein the D1 domain is a targeting domain, a half-life extension domain, or a dual or multifunctional part domain. The proposed method for activating the VitoKine D2 domain is Figure 2 Importantly, because D2 of the VitoKine construct will remain inert or attenuated until locally activated by proteases upregulated in diseased tissues, this will limit binding of the active moiety to receptors in the periphery or on the cell surface of non-diseased cells to prevent overactivation of the pathway and reduce undesirable "out of tissue" "on-target" toxicity. Furthermore, the inertness of the VitoKine active moiety prior to protease activation will significantly reduce potential antigen or target sinks and thereby extend the in vivo half-life and result in improved biodistribution and bioavailability at the intended treatment site.

[0152] D1 domain ("targeting domain, half-life extension domain or dual or multifunctional part domain")

[0153] In various embodiments, the VitoKine construct of the present invention comprises a D1 domain, which is a targeting moiety in the form of an antibody or antibody fragment or protein or peptide for a tumor-associated antigen. In various embodiments, the VitoKine construct of the present invention comprises a D1 domain, which is an antibody, antibody fragment, protein or peptide for an immune checkpoint regulator. In various embodiments, the VitoKine construct of the present invention comprises a D1 domain, which is an antibody or antibody fragment or protein or peptide as an autoimmune regulator. In various embodiments, the VitoKine construct of the present invention comprises D1, which acts to keep the D2 domain at a tissue site, such as a tumor microenvironment (TME) or an inflammatory tissue site. In various embodiments, the VitoKine construct of the present invention comprises D1, which is dual-functional, such as tissue targeting and retention. In various embodiments, the VitoKine construct of the present invention comprises a D1 domain, which is a polymer. In various embodiments, the VitoKine construct of the present invention comprises a D1 domain, which is a half-life extension moiety. In various embodiments, the VitoKine constructs of the invention comprise a D1 domain that is an Fc domain.

[0154] Fc domain

[0155] IgG class immunoglobulins are one of the most abundant proteins in human blood. Their circulation half-life can be up to 21 days. It has been reported that the fusion protein of the Fc region of IgG is combined with the domain of another protein (such as various cytokines and receptors) (see, for example, Capon et al., Nature, 337: 525-531, 1989; Chamow et al., Trends Biotechnol., 14: 52-60, 1996); U.S. Patent Nos. 5,116,964 and 5,541,087). The prototype fusion protein is a homodimeric protein connected by cysteine ​​residues in the hinge region of IgG Fc, producing a molecule similar to an IgG molecule, without a heavy chain variable region and CH1 domain and a light chain. The dimer nature of the fusion protein comprising the Fc domain may be advantageous in providing a higher level interaction (i.e., bivalent or bispecific binding) with other molecules. Due to structural homology, Fc fusion proteins exhibit in vivo pharmacokinetic profiles comparable to human IgG of similar isotype.

[0156] The term "Fc" refers to a molecule or sequence comprising a sequence of a non-antigen binding fragment of a complete antibody, whether in monomeric or multimeric form. The original immunoglobulin source of native Fc is preferably human, and may be any immunoglobulin, although IgG1 and IgG2 are preferred. Native Fc consists of monomeric polypeptides, which may be connected to dimer or multimeric forms by covalent (i.e., disulfide bonds) and non-covalent association. The number of intermolecular disulfide bonds between monomeric subunits of native Fc molecules varies from 1 to 4 depending on the class (e.g., IgG, IgM, IgA, IgE) or subclass (e.g., IgG1, IgG2, IgG3, IgG4, IgA1, IgGA2). An example of native Fc is a disulfide-bonded dimer produced by papain digestion of IgG (see Ellison et al. (1982), Nucleic Acids Res. 10: 4071-9). The term "native Fc" as used herein is a general term for monomeric, dimer, and multimeric forms. The Fc domain contains binding sites for protein A, protein G, various Fc receptors, and complement proteins.

[0157] In various embodiments, the term "Fc variant" refers to a molecule or sequence that is modified from a native Fc but still contains a binding site for the salvage receptor FcRn. International applications WO 97 / 34631 (published September 25, 1997) and WO 96 / 32478 describe exemplary Fc variants and interactions with salvage receptors and are hereby incorporated by reference. In addition, native Fc contains sites that can be removed because they provide structural features or biological activities that are not required by the fusion molecules of the present invention. Therefore, in various embodiments, the term "Fc variant" includes molecules or sequences that lack one or more native Fc sites or residues that affect or participate in (1) disulfide bond formation, (2) incompatibility with a selected host cell, (3) N-terminal heterogeneity when expressed in a selected host cell, (4) glycosylation, (5) interaction with complement, such as CDC, (6) binding to Fc receptors other than salvage receptors, or (7) antibody-dependent cellular cytotoxicity (ADCC).

[0158] The term "Fc domain" includes natural Fc and Fc variant molecules and sequences as defined above. Like Fc variants and natural Fc, the term "Fc domain" includes molecules in monomeric or multimeric form, whether digested from a complete antibody or expressed by a recombinant gene or produced by other means. In various embodiments, "Fc domain" refers to a dimer of two Fc domain monomers (SEQ ID NO: 13), which generally include all or part of the hinge region. In various embodiments, the Fc domain can be mutated to lack effector functions. In various embodiments, each Fc domain monomer in the Fc domain includes an amino acid substitution in a CH2 antibody constant domain to reduce the interaction or binding between the Fc domain and the Fcγ receptor. In various embodiments, each subunit of the Fc domain includes two amino acid substitutions, which reduce the binding and / or effector functions with activating Fc receptors, wherein the amino acid substitutions are L234A and L235A. In various embodiments, each subunit of the Fc domain comprises three amino acid substitutions that reduce binding to an activating Fc receptor and / or effector function, wherein the amino acid substitutions are L234A, L235A, and G237A (SEQ ID NO: 14).

[0159] In various embodiments, the Fc domain can be mutated to further extend the in vivo half-life. In various embodiments, each subunit of the Fc domain comprises three amino acid substitutions that enhance the binding to human FcRn, wherein the amino acid substitutions are M252Y, S254T and T256E (SEQ ID NO: 156), disclosed in U.S. Patent Publication No. 7,658,921. In various embodiments, each subunit of the Fc domain comprises an amino acid substitution that enhances the binding to human FcRn, wherein the amino acid substitution is N434A (SEQ ID NO: 166), disclosed in U.S. Patent Publication No. 7,371,826. In various embodiments, each subunit of the Fc domain comprises an amino acid substitution that enhances the binding to human FcRn, wherein the amino acid substitutions are M428L and N434S, disclosed in U.S. Patent Publication No. 8,546,543. In various embodiments, the half-life extension mutation can be combined with an amino acid substitution that reduces the binding to activating Fc receptors and / or effector functions.

[0160] In various embodiments, each of the two Fc domain monomers in the Fc domain comprises an amino acid substitution that promotes heterodimerization of the two monomers. In various other embodiments, the heterodimerization of the Fc domain monomers can be promoted by introducing different but compatible substitutions such as "knob-into-hole" residue pairs in the two Fc domain monomers. The "knob-into-hole" technology is also disclosed in U.S. Patent Publication No. 8,216,805. In yet another embodiment, an Fc domain monomer comprises a knob mutation T366W, and another Fc domain monomer comprises a hole mutation T366S, L358A and Y407V. In various embodiments, two Cys residues (S354C on the "knob" side and Y349C on the "hole" side) (SEQ ID NO: 15 and 16) that form a stabilized disulfide bridge are introduced. The use of heterodimer Fc can produce a monovalent VitoKine construct.

[0161] In various embodiments, the Fc domain sequence used to prepare the VitoKine construct is the human IgG1-Fc domain sequence set forth in SEQ ID NO: 14:

[0162]

[0163] Wherein SEQ ID NO: 14 contains amino acid substitutions (underlined) that eliminate FcγR and C1q binding.

[0164] In various embodiments, the heterodimeric Fc domain sequence used to prepare the VitoKine construct is the Knob-Fc domain sequence set forth in SEQ ID NO: 15:

[0165]

[0166] Wherein SEQ ID NO: 15 contains amino acid substitutions (underlined) that eliminate FcγR and C1q binding.

[0167] In various embodiments, the heterodimeric Fc domain sequence used to prepare the VitoKine construct is the Hole-Fc domain sequence set forth in SEQ ID NO: 16:

[0168]

[0169] Wherein SEQ ID NO: 16 contains amino acid substitutions (underlined) that eliminate FcγR and C1q binding.

[0170] In various embodiments, the Fc domain sequence used to prepare the VitoKine construct is an IgG1-Fc domain with reduced / eliminated effector function and extended half-life and having the amino acid sequence set forth in SEQ ID NO: 156

[0171]

[0172] Wherein SEQ ID NO: 156 contains amino acid substitutions that abolish FcγR and C1q binding (underlined) and amino acid substitutions that extend half-life (bold).

[0173] In various embodiments, the Fc domain sequence used to prepare the VitoKine construct is the human IgG1-Fc domain sequence set forth in SEQ ID NO: 166:

[0174]

[0175] Wherein SEQ ID NO: 166 contains amino acid substitutions that abolish FcγR and C1q binding (underlined) and amino acid substitutions that extend half-life (bold).

[0176] In various embodiments, the heterodimeric Fc domain sequence used to prepare the VitoKine construct is the Knob-Fc domain sequence with extended in vivo half-life set forth in SEQ ID NO: 167:

[0177]

[0178] Wherein SEQ ID NO: 167 contains amino acid substitutions that abolish FcγR and C1q binding (underlined) and amino acid substitutions that extend half-life (bold).

[0179] In various embodiments, the heterodimeric Fc domain sequence used to prepare the VitoKine construct is the Hole-Fc domain sequence with extended in vivo half-life set forth in SEQ ID NO: 168:

[0180]

[0181] Wherein SEQ ID NO: 168 contains amino acid substitutions that abolish FcγR and C1q binding (underlined) and amino acid substitutions that extend half-life (bold).

[0182] Antibodies and protein / peptide conjugates for disease-related targets or tumor-related antigens

[0183] In various embodiments, D1 can be a targeting moiety in the form of an antibody to a tumor-associated antigen (TAA) or another protein or peptide that exhibits binding affinity to diseased cells or diseased tissue. TAA can be any molecule, macromolecule, combination of molecules, etc. for which an immune response is desired. TAA can be a protein comprising more than one polypeptide subunit. For example, the protein can be a dimer, trimer, or higher polymer. In various embodiments, two or more subunits of the protein can be connected with a covalent bond such as, for example, a disulfide bond. In various embodiments, the subunits of the protein can be held together with non-covalent interactions. Therefore, TAA can be any peptide, polypeptide, protein, nucleic acid, lipid, carbohydrate, or organic small molecule or any combination thereof to which a technician wishes to induce an immune response. In various embodiments, a TAA is a peptide comprising about 5, about 6, about 7, about 8, about 9, about 10, about 11, about 12, about 13, about 14, about 15, about 16, about 17, about 18, about 19, about 20, about 25, about 30, about 35, about 40, about 45, about 50, about 55, about 60, about 65, about 70, about 75, about 80, about 85, about 90, about 95, about 100, about 150, about 200, about 250, about 300, about 400, about 500, about 600, about 700, about 800, about 900, or about 1000 amino acids. In various embodiments, the peptide, polypeptide or protein is a molecule that is typically administered to a subject by injection. In various embodiments, after administration, a tumor-specific antibody or binding protein is used as a targeting moiety to direct VitoKine to a diseased site, such as a cancer site, where the active domain can be released and interact with its cognate receptor on the diseased cell or diseased tissue.

[0184] Any of the foregoing markers may be used as disease-associated targets or TAA targets for the VitoKine constructs of the present invention. In various embodiments, one or more disease-associated targets or variants thereof or TAAs, TAA variants or TAA mutants contemplated for use in the VitoKine constructs and methods of the present disclosure are selected from or derived from the list provided in Table 2.

[0185] Table 2

[0186]

[0187]

[0188]

[0189]

[0190] Additional examples of tumor-associated antigens include TRP-1, TRP-2, MAG-1, MAGE-3, BAGE, GAGE-1, GAGE-2, p15(58), CEA, RAGE, NY-BSO (LAGE), SCP-1, Hom / Mel-40, H-Ras, BCR-ABL, E2A-PRL, H4-RET, IGH-IGK, MYL-RAR, human papillomavirus (HPV) antigens E6 and E7, TSP-180, MAGE-4, MAGE-5, MAGE-6, p185erbB2, p180erbB-3, c-met nm-23H1, PSA, TAG-72-4, CA 19-9, CA 72-4, CAM17.1, Numa, K-ras, β-catenin, CDK4, Muni-1, p16, TAGE, PSCA, CT7, telomerase, 43-9F, 5T4, 791Tgp72, β-HCG, BCA225, BTAA, CA 15-3 (CA 27.29\BCAA), CA 195, CA 242, CA-50, CAM43, CD68\KF1, CO-029, FGF-5, G250, Ga733 (EpCAM), HTgp-175, M344, MA-50, MG7-Ag, MOV18, NB / 70K, NY-CO-1, RCAS1, SDCCAG16, TA-90 (Mac-2 binding protein\cyclophilin C-associated protein), TAAL6, TAG72, TLP and TPS.

[0191] Immune checkpoint modulators

[0192] Many immune checkpoint protein antigens expressed on various immune cells have been reported, including, for example, CD152 (expressed by activated CD8+T cells, CD4+T cells and regulatory T cells), CD279 (expressed on tumor infiltrating lymphocytes, expressed by activated T cells (both CD4 and CD8), regulatory T cells, activated B cells, activated NK cells, anergic T cells, monocytes, dendritic cells), CD274 (expressed on T cells, B cells, dendritic cells, macrophages, vascular endothelial cells, islet cells) and CD223 (expressed by activated T cells, regulatory T cells, anergic T cells, NK cells, NKT cells and plasmacytoid dendritic cells) (see, e.g., Pardoll, D., Nature Reviews Cancer, 12: 252-264, 2012). Antibodies that bind to antigens identified as immune checkpoint proteins are known to those skilled in the art. For example, various anti-CD276 antibodies have been described in the art (see, e.g., U.S. Patent Publication No. 20120294796 (Johnson et al.) and references cited therein); various anti-CD272 antibodies have been described in the art (see, e.g., U.S. Patent Publication No. 20140017255 (Mataraza et al.) and references cited therein); various anti-CD152 / CTLA-4 antibodies have been described in the art (see, e.g., U.S. Patent Publication No. 20130136749 (Korman et al.) and references cited therein); various anti-LAG-3 / CD223 antibodies have been described in the art (see, e.g., U.S. Patent Publication No. 20110150892 (Thudium et al.) and references cited therein); References cited therein); various anti-CD279 / PD-1 antibodies have been described in the art (see, e.g., U.S. Pat. No. 7,488,802 (Collins et al.) and references cited therein); various anti-PD-L1 antibodies have been described in the art (see, e.g., U.S. Pat. Publication No. 20130122014 (Korman et al.) and references cited therein); various anti-TIM-3 antibodies have been described in the art (see, e.g., U.S. Pat. Publication No. 20140044728 (Takayanagi et al.) and references cited therein); and various anti-B7-H4 antibodies have been described in the art (see, e.g., U.S. Pat. Publication No. 20110085970 (Terrett et al.) and references cited therein). Each of these references is hereby incorporated by reference in its entirety with respect to the specific antibodies and sequences taught therein.

[0193] In various embodiments, D1 may include antibodies, antibody fragments, proteins or peptides that exhibit binding to immune checkpoint protein antigens present on the surface of immune cells. In various embodiments, immune checkpoint protein antigens are selected from the group consisting of but not limited to the following: CD276, CD272, CD152, CD223, CD279, CD274, CD40, SIRPa, CD47, OX-40, GITR, ICOS, CD27, 4-1BB, TIM-3, B7-H4, Siglec 7, Siglec 8, Siglec 9, Siglec15 and VISTA.

[0194] In various embodiments, D1 may comprise antibodies against immune checkpoint protein antigens present on the surface of tumor cells, the immune checkpoint protein antigens selected from the group consisting of but not limited to: PD-L1, B7-H3 and B7-H4.

[0195] Modulators of autoimmune and inflammatory disorders

[0196] Any of the foregoing proteins that are highly expressed on various inflammatory tissues or immune cells can be used as autoimmune / inflammatory disease targets of the VitoKine constructs of the present invention. In various embodiments, one or more autoimmune / inflammatory disease targets, variants thereof, or mutants / isoforms thereof contemplated for use in the VitoKine constructs and methods of the present disclosure are selected from or derived from the list provided in Table 3. These targets can also be used as cancer targeting applications.

[0197] Table 3 Targets for autoimmune and inflammatory disorders or cancer

[0198]

[0199]

[0200] In various embodiments, the D1 targeting moiety can be an inflammatory tissue specific antibody, antibody fragment, another protein or peptide that exhibits binding to diseased cells or disease microenvironment, such as TNF, TNFR, integrin A4β7, IL-6Rα, BLYS, TSLP.

[0201] polymer

[0202] In various embodiments, D1 can be a polymer, such as polyethylene glycol (PEG). In various embodiments, a polymer such as PEG can be covalently attached at the N-terminus or C-terminus or at an internal position using conventional chemical methods, such as chemical conjugation. In various embodiments, a polymer such as PEG can be covalently attached at the N-terminus of the D2 domain via site-specific conjugation or other amino acids of the cytokine or engineered specific amino acid substitutions.

[0203] Half-life extension

[0204] In various embodiments, other half-life extension moieties can be used as the D1 domain in the present invention to increase the serum half-life of VitoKine. Half-life extension moieties include, but are not limited to, Fc domains, Fc variants, antibodies, antibody fragments (Fab, ScFv) and EXTEN (Schellenberger et al., Nat. Biotechnol. 27: 1 186-1 192, 2009) and human serum albumin proteins.

[0205] D2 domain ("active portion domain")

[0206] D2 is the active portion of the VitoKine construct, the activity of D2 being reversibly shielded in the construct and restored upon protease cleavage at the disease site. The active portion can be any protein, including but not limited to any native or variant interleukin or cytokine polypeptide. Importantly, because the "active portion" of the VitoKine construct will remain inert or attenuated in activity until locally activated by upregulated proteases in diseased tissue, this will limit binding of the active portion to receptors in the periphery or on the cell surface of non-diseased cells to prevent overactivation of the pathway and reduce undesirable "out of tissue" "on-target" toxicity. Furthermore, the inertness of the VitoKine active portion prior to protease activation will significantly reduce potential antigenic or target silencing and thereby extend the in vivo half-life and result in improved biodistribution and exposure at the intended treatment site.

[0207] IL-15

[0208] Interleukin-15 (IL-15) is a cytokine that was identified by two independent research groups based on its ability to stimulate the proliferation of IL-2-dependent CTLL-2 T cell lines in the presence of neutralizing anti-IL-2 antibodies (Steel et al., Trends in Pharmacological Sciences, 33(1):35-41, 2012). IL-15 and interleukin-2 (IL-2) have similar biological properties in vitro and share a common receptor (R) signaling component (IL-2 / 15Rβγc ) is consistent. However, the specificity of IL-15 and IL-2 is provided by unique private α chain receptors, which complete the IL-15Rαβγ and IL-2Rαβγ heterotrimeric high-affinity receptor complexes and thereby allow different responsiveness depending on the expressed ligand and high-affinity receptor. Interestingly, both IL-15 transcripts and IL-15Rα transcripts have a much wider tissue distribution than IL-2 / IL-2Rα. In addition, various complex post-transcriptional regulatory mechanisms strictly control IL-15 expression. Therefore, based on complex regulation and different modes of IL-15 and IL-15Rα expression, the key in vivo functions of this receptor / ligand pair may be different from those of IL-2 and IL-2Rα. So far, studies examining the biology of IL-15 have identified several key non-redundant roles, such as the importance and function of IL-15 in the development of natural killer (NK) cells, NK-T cells, and intestinal intraepithelial lymphocytes. The role of IL-15 during autoimmune processes, such as rheumatoid arthritis, and malignancies, such as adult T-cell leukemia, suggests that dysregulation of IL-15 may lead to deleterious effects on the host (Fehniger et al., Blood, 97:14-32, 2001).

[0209] As used herein, the terms "native IL-15" and "native interleukin-15" in the context of a protein or polypeptide refer to any naturally occurring mammalian interleukin-15 amino acid sequence, including immature or precursor forms and mature forms. Non-limiting examples of GenBank accession numbers for amino acid sequences of native mammalian interleukin-15 of various species include NP_032383 (Mus musculus, immature form), AAB60398 (macaca mulatta, immature form), NP_000576 (human, immature form), CAA62616 (human, immature form), AAI00964 (human, immature form) and AAH18149 (human). In various embodiments of the present invention, the native IL-15 is an immature or precursor form of a naturally occurring mammalian IL-15. In other embodiments, the native IL-15 is a mature form of a naturally occurring mammalian IL-15. In various embodiments, natural IL-15 is a precursor form of naturally occurring human IL-15. In various embodiments, natural IL-15 is a mature form of naturally occurring human IL-15. In various embodiments, the natural IL-15 protein / polypeptide is isolated or purified. In various embodiments, the domain D2 based on IL-15 is derived from the amino acid sequence of the human IL-15 precursor sequence listed in SEQ ID NO: 1:

[0210]

[0211] In various embodiments, the IL-15-based domain D2 comprises the amino acid sequence of the mature form of human IL-15 set forth in SEQ ID NO: 2:

[0212]

[0213] In various embodiments, the IL-15-based domain D2 is an IL-15 variant (or mutant) comprising a sequence derived from a mature human IL-15 polypeptide sequence as listed in SEQ ID NO: 2. Natural amino acids, positions of natural amino acids in mature sequences, and variant amino acids are used herein to refer to variants (or mutants) of IL-15. For example, "huIL-15S58D" refers to a human IL-15 substituted with S to D at position 58 of SEQ ID NO: 2. In various embodiments, the D2 domain of the present invention comprises an IL-15 domain that is an IL-15 variant (also referred to herein as an IL-15 mutant domain). In various embodiments, the IL-15 variant comprises an amino acid sequence different from a natural (or wild-type) IL-15 protein. In various embodiments, the IL-15 variant binds to an IL-15Rα polypeptide and acts as an IL-15 agonist or antagonist. In various embodiments, an IL-15 variant with agonist activity has super agonist activity. In various embodiments, IL-15 variants can act as IL-15 agonists or antagonists, regardless of their association with IL-15Rα. IL-15 agonists are exemplified by comparable or increased biological activity compared to wild-type IL-15. IL-15 antagonists are exemplified by reduced biological activity compared to wild-type IL-15 or by the ability to inhibit IL-15-mediated responses. In various embodiments, IL-15 variants bind to the IL-15Rβγc receptor with increased or decreased activity. In various embodiments, the sequence of the IL-15 variant has at least one amino acid change, such as a substitution or deletion, compared to the native IL-15 sequence, such a change resulting in IL-15 agonist or antagonist activity. In various embodiments, the amino acid substitution / deletion is located at a position associated with IL-15Rβ and / or γ CIn the domain of IL-15 that interacts. In various embodiments, the amino acid substitution / deletion does not affect the binding to the IL-15Rα polypeptide or the ability to produce IL-15 variants. Based on the known IL-15 structure, IL-15 and a comparison of homologous molecules such as IL-2 with a known structure, by rational or random mutagenesis and functional assays or other empirical methods provided herein, suitable amino acid substitutions / deletions for producing IL-15 variants can be identified. In addition, suitable amino acid substitutions can be conservative or non-conservative changes and insertions of additional amino acids. In various embodiments, the IL-15 variants of the present invention include one or more than one amino acid substitution or deletion at positions 30, 31, 32, 58, 62, 63, 67, 68 or 108 of the mature human IL-15 sequence listed in SEQ ID NO:2. In various embodiments, D30T ("D30" refers to the amino acid and residue position in the native mature human IL-15 sequence, and "T" refers to the amino acid residue substituted at that position in the IL-15 variant), V31Y, H32E, T62D, I68F or Q108M ​​substitutions result in IL-15 variants with antagonist activity, and S58D substitutions result in IL-15 variants with agonist activity. In various embodiments, the IL-15 variant comprises the amino acid sequence set forth in SEQ ID NO: 3:

[0214]

[0215] Exemplary Fc IL-15 VitoKine constructs are provided in Table 4:

[0216] Table 4

[0217]

[0218]

[0219] In various embodiments, the antibody IL-15 VitoKine or IL-15 Fc fusion molecule comprises two or more heterodimeric chains, as listed in Table 5:

[0220] Table 5

[0221]

[0222] In various embodiments, the IL-15 based D2 domain comprises an IL-15 construct comprising an IL-2Rβ based blocking peptide selected from the constructs having the amino acid sequence set forth in SEQ ID NOs: 66-70.

[0223] In various embodiments, the IL-15 based D2 domain comprises an IL-15 construct comprising an IL-2Rβ based blocking peptide and having two or more heterodimeric chains as listed in Table 6:

[0224] Table 6

[0225]

[0226] IL-2

[0227] Interleukin-2 (IL-2) is a classical Th1 cytokine produced by T cells following activation via the T cell antigen receptor and the co-stimulatory molecule CD28. Regulation of IL-2 occurs through the activation of signaling pathways and transcription factors that act on the IL-2 promoter to produce new gene transcription, but also involves regulation of the stability of IL-2 mRNA. IL-2 binds to multi-chain receptors, including a highly regulated α chain and β and γ chains that mediate signaling via the Jak-STAT pathway. IL-2 delivers activation, growth, and differentiation signals to T cells, B cells, and NK cells. IL-2 is also important in mediating activation-induced cell death of T cells, a function that provides a key mechanism for terminating immune responses. A commercially available unglycosylated human recombinant IL-2 product, aldesleukin (available from Prometheus Laboratories Inc., San Diego Calif. under the trademark Des-alanyl-1, Serine-125 human interleukin-2) has been approved for administration to patients suffering from metastatic renal cell carcinoma and metastatic melanoma. IL-2 has also been suggested for administration in patients suffering from or infected with hepatitis C virus (HCV), human immunodeficiency virus (HIV), acute myeloid leukemia, non-Hodgkin's lymphoma, cutaneous T-cell lymphoma, juvenile rheumatoid arthritis, atopic dermatitis, breast cancer and bladder cancer. Unfortunately, the short half-life and severe toxicity limit the optimal administration of IL-2.

[0228] As used herein, the terms "natural IL-2" and "natural interleukin-2" in the context of a protein or polypeptide refer to any naturally occurring mammalian interleukin-2 amino acid sequence, including immature forms or precursor forms and mature forms. Non-limiting examples of GenBank accession numbers for amino acid sequences of natural mammalian interleukin-2 of various species include NP_032392.1 (Mus musculus, immature form), NP_001040595.1 (Macaque, immature form), NP_000577.2 (Human, precursor form), CAA01199,1 (Human, immature form), AAD48509.1 (Human, immature form) and AAB20900.1 (Human). In various embodiments of the present invention, natural IL-2 is an immature or precursor form of naturally occurring mammalian IL-2. In other embodiments, natural IL-2 is a mature form of naturally occurring mammalian IL-2. In various embodiments, natural IL-2 is a precursor form of naturally occurring human IL-2. In various embodiments, natural IL-2 is a mature form of naturally occurring human IL-2. In various embodiments, the IL-2-based domain D2 is derived from the amino acid sequence of the human IL-2 precursor sequence listed in SEQ ID NO: 6:

[0229]

[0230] In various embodiments, the IL-2 based domain D2 comprises the amino acid sequence of the wild-type sequence of the mature form of human IL-2 set forth in SEQ ID NO:8 comprising a substitution of cysteine ​​to serine at position 125, but does not alter IL-2 receptor binding compared to naturally occurring IL-2:

[0231]

[0232] In various embodiments, the IL-2-based domain D2 is an IL-2 variant (or mutant) comprising a sequence derived from a mature human IL-2 polypeptide sequence as listed in SEQ ID NO: 8. In various embodiments, the IL-2 variant comprises an amino acid sequence different from a natural (or wild-type) IL-2 protein. In various embodiments, the IL-2 variant binds to the IL-2Rα polypeptide and acts as an IL-2 agonist or antagonist. In various embodiments, the IL-2 variant with agonist activity has super agonist activity. In various embodiments, the IL-2 variant can act as an IL-2 agonist or antagonist, regardless of its association with IL-2Rα. IL-2 agonists are exemplified by comparable or increased biological activity compared to wild-type IL-2. IL-2 antagonists are exemplified by reduced biological activity compared to wild-type IL-2 or by the ability to inhibit IL-2-mediated responses. In various embodiments, the sequence of the IL-2 variant has at least one amino acid change, such as a substitution or deletion, compared to the native IL-2 sequence, such a change results in IL-2 agonist or antagonist activity. In various embodiments, the IL-2 variant has an amino acid sequence derived from SEQ ID NO: 8, with reduced / eliminated binding to IL-2Rα, so as to selectively activate and proliferate effector T cells (Teff) for treating cancer; exemplary amino acid substitutions are listed in Table 7. In various embodiments, the IL-2 variant has an amino acid sequence derived from SEQ ID NO: 8, with reduced binding to IL-2Rβ and / or γc, and has enhanced selectivity in activating and proliferating regulatory T cells (Treg) for treating autoimmune diseases; exemplary amino acid substitutions are listed in Table 7. As will be appreciated by those skilled in the art, all mutations can be optionally and independently combined in any manner to achieve optimal affinity and activity modulation.

[0233] Table 7

[0234]

[0235] Exemplary IL-2 based VitoKine constructs are provided in Table 8:

[0236] Table 8

[0237]

[0238] In various embodiments, the active portion is selected from the amino acid sequence of the group consisting of, but not limited to, interleukin-4 (IL-4) (SEQ ID NO: 17), interleukin-7 (IL-7) (SEQ ID NO: 18), interleukin-9 (IL-9) (SEQ ID NO: 19), interleukin-10 (IL-10) (SEQ ID NO: 20), interleukin-12α (IL-12α) (SEQ ID NO: 21), interleukin-12β (IL-12β) (SEQ ID NO: 22), interleukin-23α (IL-23α) (SEQ ID NO: 23) and TGFβ (SEQ ID NO: 24). In various embodiments, the active portion is a heterodimeric human IL-12 cytokine comprising SEQ ID NO: 21 as chain 1 and SEQ ID NO: 22 as chain 2. In various embodiments, the active portion is a heterodimeric human IL-23 cytokine comprising as chain 1 SEQ ID NO: 23 and as chain 2 SEQ ID NO: 22.

[0239] D3 domain ("masked part domain")

[0240] The D3 domain is a "shielding domain" and is primarily used to reversibly shield the activity of the D2 domain in a particular VitoKine construct. The D3 domain is capable of shielding the functional activity of D2 until activated at the intended treatment site. In various embodiments, the VitoKine constructs of the present invention comprise a "shielding domain" (D3) that is a cognate receptor / binding partner of the D2 protein or cytokine. In various embodiments, the D3 domain is a variant or specific binder of a cognate receptor / binding partner of the D2 domain, such as a peptide or antibody fragment. In various embodiments, the D3 domain has enhanced binding to the D2 domain compared to the wild-type cognate receptor / binding partner. In various embodiments, the D3 domain has reduced or eliminated binding to the D2 domain compared to the wild-type cognate receptor / binding partner. In various embodiments, the D3 domain is a protein, or peptide, or antibody, or antibody fragment that is capable of shielding the activity of D2. In various embodiments, the D3 domain is a DNA, RNA fragment or a polymer such as PEG connected by a cleavable linker. In various embodiments, the VitoKine construct of the present invention comprises a D3 domain, which is an IL-15Rα extracellular domain or a functional fragment or variant thereof. In various embodiments, the VitoKine construct of the present invention comprises a D3 domain, which is an IL-15RαSushi domain (amino acids 1-65 of SEQ ID NO: 5). In various preferred embodiments, the VitoKine construct of the present invention comprises a D3 domain, which is an IL-15RαSushi+ domain containing 1-30 additional IL-15Rα residues at the C-terminus of the Sushi domain (e.g., SEQ ID NO: 5). In various embodiments, the VitoKine construct of the present invention comprises a D3 domain, which is an IL-2Rα extracellular domain or a functional fragment thereof. In various preferred embodiments, the VitoKine construct of the present invention comprises a D3 domain, which is an IL-2RαSushi domain. In various embodiments, the D3 domain is capable of masking the functional activity of D2 until D2 is activated at the intended treatment site.

[0241] IL-15 receptor alpha

[0242] IL-15 receptor is a type I cytokine receptor, composed of beta (β) and gamma (γ) subunits shared with IL-2 receptors and alpha (α) subunits that bind IL-15 with high affinity. Full-length human IL-15Rα is a type 1 transmembrane protein with a signal peptide of 32 AA, an extracellular domain of 173 AA, a transmembrane domain of 21 AA, a cytoplasmic tail of 37 AA, and multiple N-connections or O-connected glycosylation sites (Anderson et al., J.Biol Chem, 270: 29862-29869, 1995). It has been previously shown that the natural soluble form of the IL-15Rα chain corresponding to the complete extracellular domain of IL-15Rα acts as a high-affinity IL-15 antagonist. However, in stark contrast to this finding, it has been shown that a recombinant soluble sushi domain of IL-15Rα, which has the majority of the binding affinity for IL-15, acts as a potent IL-15 agonist by enhancing its binding and biological effects (proliferation and prevention of apoptosis) through the IL-15Rβ / γ heterodimer, while the sushi domain does not affect IL-15 binding and the function of the IL-15Rα / β / γ tripartite membrane receptor. These results suggest that such a soluble sushi domain, if produced naturally, may be involved in the trans-presentation mechanism of IL-15 (Mortier et al., J. Biol Chem, 281(3):1612-1619, 2006).

[0243] As used herein, the terms "native IL-15Rα" and "native interleukin-15 receptor α" in the context of a protein or polypeptide refer to any naturally occurring mammalian interleukin-15 receptor α ("IL-15Rα") amino acid sequence, including immature or precursor forms and mature forms and naturally occurring isoforms. Non-limiting examples of GenBank accession numbers for amino acid sequences of various natural mammalian IL-15Rα include NP_002180 (human), ABK41438 (cynomolgus), NP_032384 (Mus musculus), Q60819 (Mus musculus), CA141082 (human). In various embodiments, natural IL-15Rα is an immature form of a naturally occurring mammalian IL-15Rα polypeptide. In various embodiments, natural IL-15Rα is a mature form of a naturally occurring mammalian IL-15Rα polypeptide. In various embodiments, natural IL-15Rα is a form of a naturally occurring mammalian IL-15Rα polypeptide. In various embodiments, the natural IL-15Rα is a full-length form of a naturally occurring mammalian IL-15Rα polypeptide. In various embodiments, the natural IL-15Rα is an immature form of a naturally occurring human IL-15Rα polypeptide. In various embodiments, the natural IL-15Rα is a mature form of a naturally occurring human IL-15Rα polypeptide. In various embodiments, the natural IL-15Rα is a full-length form of a naturally occurring human IL-15Rα polypeptide. In various embodiments, the natural IL-15Rα protein or polypeptide is isolated or purified. In various embodiments, the IL-15Rα domain is derived from the amino acid sequence of the human IL-15Rα sequence listed in SEQ ID NO:4:

[0244]

[0245] In various embodiments, the VitoKine constructs of the invention comprise a D3 domain, which is an IL-15Rα Sushi+ domain comprising the amino acid sequence of a mature human IL-15Rα polypeptide, as set forth in SEQ ID NO:5:

[0246]

[0247] In various embodiments, a truncated homologous co-receptor IL-15RαSushi+ (SEQ ID NO: 5) of IL-15 that reproduces most of the binding affinity of the full-length IL-15Rα (SEQ ID NO: 4) is used as the D3 domain to mask the activity of IL-15 by adjusting the cleavable or non-cleavable linker connecting IL-15 and IL-15RαSushi+ to prepare IL-15VitoKine. As can be appreciated by a skilled person, the length of the D3 domain can be different from the sequence listed in SEQ ID NO: 5, provided that the D3 domain can reproduce most of the binding activity of the full-length IL-15α (SEQ ID NO: 4), that is, the D3 domain is a functional fragment. The uniqueness of the IL-15 VitoKine design is that it fully utilizes the unique characteristics of the IL-15 pathway, including the abnormally high affinity (30pM) between IL-15 and IL-15α, and the complexing of IL-15α enhances the activity of IL-15 in vivo. After cleavage of the linker connecting IL-15 and IL-15αSushi+ by upregulated proteases at disease sites, IL-15αShushi+ or any functional fragment derived from IL-15α ECD is expected to remain non-covalently associated with IL-15 and enhance IL-15 activity.

[0248] IL-2 receptor

[0249] The IL-2 receptor (IL-2R) is a heterotrimeric protein expressed on the surface of certain immune cells such as lymphocytes that binds and responds to a cytokine called IL-2. IL-2R has three subunits: α (CD25), β (CD122), and γ c (CD132, which is a chain shared by five other cytokine receptors: IL-4R, IL-7R, IL-9R, IL-15R, and IL-21R). The alpha chain of the human receptor (alias: Tac antigen or p55) is encoded by the gene IL-2RA on chromosome 10p14-15. The gene for the beta chain of the human receptor (IL-2RB, CD122) is located on chromosome 22q11.2-12, while the shared IL-2Rγ CThe gene for the IL-2 chain (IL-2RG) is located on chromosome Xq13. The assembly of all three subunits of the receptor is important for signal transduction into B cells and T cells. IL-2R is present (temporarily or permanently) on the cell surface of almost all hematopoietic cells, including lymphoid lineage T, B and NK cells, and myeloid cells such as macrophages, monocytes and neutrophils. The signal is transmitted to the cell through Janus kinases—Jak1 and Jak3. Phosphorylation of the cytoplasmic part of the beta chain of the receptor enables STAT-3 and STAT-5 factors to form homodimers. Homodimers of STAT-3 and STAT-5 show increased affinity for the cell nucleus, where they bind to specific DNA elements and enhance the transcription of IL-2-dependent genes.

[0250] As used herein, the terms "native IL-2Rα" and "native interleukin-2 receptor α" in the context of a protein or polypeptide refer to any naturally occurring mammalian interleukin-2 receptor α ("IL-2Rα") amino acid sequence, including immature or precursor forms and mature forms and naturally occurring isoforms. Non-limiting examples of GenBank accession numbers for amino acid sequences of various natural mammalian IL-2Rα include NP_032393.3 (Mus musculus), CAK26553.1 (human), and NP_000408.1 (human). In various embodiments, the natural IL-2Rα is an immature form of a naturally occurring mammalian IL-2Rα polypeptide. In various embodiments, the natural IL-2Rα is a mature form of a naturally occurring mammalian IL-2Rα polypeptide. In various embodiments, the natural IL-2Rα is a form of a naturally occurring mammalian IL-2Rα polypeptide. In various embodiments, the natural IL-2Rα is a full-length form of a naturally occurring mammalian IL-2Rα polypeptide. In various embodiments, the native IL-2Rα is an immature form of a naturally occurring human IL-2Rα polypeptide. In various embodiments, the native IL-2Rα is a mature form of a naturally occurring human IL-2Rα polypeptide. In various embodiments, the native IL-2Rα is a full-length form of a naturally occurring human IL-2Rα polypeptide. In various embodiments, the native IL-2Rα protein or polypeptide is isolated or purified. In various embodiments, the IL-2Rα domain is derived from the amino acid sequence of the human IL-2Rα sequence listed in SEQ ID NO:9:

[0251]

[0252] In various embodiments, the VitoKine constructs of the invention comprise a D3 domain that is an IL-2Rα Sushi domain comprising the amino acid sequence of a mature human IL-2Rα polypeptide, as set forth in SEQ ID NO: 10:

[0253]

[0254] In various embodiments, IL-2RαSushi (SEQ ID NO: 10) is used to mask IL-2 activity to prepare IL-2VitoKine. Unlike IL-15Rα, which contains a single sushi domain, IL-2Rα contains two sushi domains separated by a linker. In various embodiments, IL-2 VitoKine comprises an IL-2RαSushi variant, which comprises amino acid substitutions to disrupt the specific non-covalent interaction between IL-2Rα and IL-2, thereby reducing the binding affinity of IL-2Rα to IL-2. Although native IL-2Rα binds to IL-2 with a moderate affinity of 30nM, IL-2Rα may still not dissociate after cleaving the linker. The association of IL-2Rα with IL-2 can reduce the activity of IL-2 and / or tilt the balance of T cell subsets in an undesirable direction. As affinity-reducing mutations (such as K38E or Y43A or a combination of these two substitutions) are introduced into IL-2RαSushi, the IL-2RαSushi domain may dissociate from IL-2 after protease cleavage of the linker.

[0255] L1 connector and L2 connector

[0256] Cleavable linker

[0257] Cleavable joints or joints sensitive to disease-related enzymes can include parts, such as protein substrates, which can be specifically cleaved by proteases present at elevated levels at the disease site compared to non-disease tissues. It has been reported in the literature that in various types of cancers such as solid tumors, the level of enzymes with known substrates increases. See, for example, La Rocca et al., Brit. J. Cancer 90: 1414-1421 and Ducry et al., Bioconjug. Chem. 21: 5-13, 2010, each of which is incorporated herein by reference in its entirety. In various embodiments, the protease capable of cleaving the protease cleavable joint is selected from the group consisting of: metalloproteinases such as matrix metalloproteinases (MMP) 1-28, and serine proteases such as urokinase-type plasminogen activator (uPA) and protein cleavage enzymes (Matriptase), cysteine ​​proteases such as legumin, aspartic proteases, and cathepsin proteases. Exemplary protease substrate peptide sequences are provided in Table 9:

[0258] Table 9

[0259]

[0260] Exemplary protease substrate peptide sequences that can be used as protease cleavable linkers with or without peptide spacers of varying lengths at the C-terminus or N-terminus or both ends of the D2 domain are provided in Table 10:

[0261] Table 10

[0262] Protease Substrate peptide SEQ ID NO: MMP-2, 7, 9, 14 SPLGLAGS 71 MMP-2, 7, 9, 14, proteinase EPLELRAG 72 Proteinase, uPA, legumin LSGRSDNH 73 MMP-2 GPLGIAGQ 74 MMP-2, 14 GTAHLMGG 75 MMP-14 RIGSLRTA 76 MMP-14 SGRSENIRTA 157 MMP-2, 9 GPLGMLSQ 77 MMP-9, uPA RPSASRSA 78 MMP PLGLAG 79 uPA LGGSGRSANAILE 80 uPA GGSGRSANAI 81 uPA SGRSA 82 Pea Protein AANL 83 Pea Protein GPTNKVR 158 Cathepsin C GFFY 84 Cathepsin D GPICFRLG 85 Cathepsin E RQAGFSL 86 Proteinase RQARAVGG 159 Prostate-specific antigen HSSKLQ 87

[0263] In various embodiments, the protease is MMP-9 or MMP-2. In other specific embodiments, the protease is uPA. In other specific embodiments, the protease is MMP-14. In other specific embodiments, the protease is legumin. In various embodiments, one VitoKine molecule comprises two different protease-cleavable linkers. In various embodiments, the protease-cleavable linker comprises the protease recognition sequence 'GPLGMLSQ' (SEQ ID NO: 77). In various embodiments, the protease-cleavable linker comprises the protease recognition sequence 'LGGSGRSANAILE' (SEQ ID NO: 80). In various embodiments, the protease-cleavable linker comprises the protease recognition sequence 'SGRSENIRTA' (SEQ ID NO: 157). In various embodiments, the protease-cleavable linker comprises the protease recognition sequence 'GPTNKVR' (SEQ ID NO: 158). In various embodiments, the linker (e.g., a cleavable linker) can be cleaved by a tumor-associated protease. In various embodiments, in diseases other than cancer, such as inflammatory diseases, the cleavable linker can be cleaved by other disease-specific proteases.

[0264] In various embodiments, peptide spacers can be incorporated into either side of the protease cleavable sequence or both sides of the protease cleavable sequence, or as a non-cleavable linker without a protease substrate site. The peptide spacer is used to position the cleavable linker to be more accessible to the enzyme responsible for cleavage. The length of the spacer can be changed or optimized to balance the accessibility of enzymatic cleavage and reversibly shield the D2 domain from the spatial constraints required to exert its biological activity. The spacer can contain 1-100 amino acids. Suitable peptide spacers are known in the art and include, but are not limited to, peptide linkers containing flexible amino acid residues such as glycine and serine. In various embodiments, the spacer can contain the motif GS, GGS, GGGGS, GGSG or SGGG. In various embodiments, the spacer may comprise 1 to 12 amino acids, including the motif G, S, GS (SEQ ID NO: 116), GGS (SEQ ID NO: 117), GSGS (SEQ ID NO: 121), GSGSGS (SEQ ID NO: 122), GSGSGSGS (SEQ ID NO: 123), GSGSGSGSGS (SEQ ID NO: 124), or GSGSGSGSGSGS (SEQ ID NO: 125). In other embodiments, the spacer may comprise the motif (GGGGS) n , wherein n is an integer from 1 to 10. In other embodiments, the spacer may further comprise amino acids other than glycine and serine.

[0265] Exemplary protease cleavable linkers having spacer peptides flanking the protease substrate peptide (underlined) are provided in Table 11:

[0266] Table 11

[0267]

[0268] In various embodiments, the cleavable linker can be activated by mechanisms other than proteolysis, including but not limited to hydrolysis, such as a releasable PEGylated polymer that can be shed via a controlled release mechanism under varying pH conditions.

[0269] Non-cleavable linker

[0270] Non-cleavable joints provide covalent attachment and additional structural and / or spatial flexibility between protein domains. As known in the art, peptide joints containing flexible amino acid residues such as glycine and serine can be used as non-cleavable joints. In various embodiments, non-cleavable joints can include 1-100 amino acids. In various embodiments, the spacer can include the motif GS (SEQ ID NO: 116), GGS (SEQ ID NO: 117), GGGGS (SEQ ID NO: 118), GGSG (SEQ ID NO: 119) or SGGG (SEQ ID NO: 120). In other embodiments, the joint can include the motif (GGGGS) n, wherein n is an integer from 1 to 10. In other embodiments, the joint can also include amino acids other than glycine and serine. In another embodiment, non-cleavable joints can be simple chemical bonds, such as amide bonds (e.g., chemical conjugation by PEG). Non-cleavable joints are stable under physiological conditions and at lesion sites such as cancer sites or inflammatory disease sites.

[0271] Exemplary non-cleavable linkers are provided in Table 12:

[0272] Table 12

[0273]

[0274]

[0275] Combinations of cleavable and non-cleavable linkers

[0276] In various embodiments, the L1 linker and the L2 linker can both be cleavable linkers or both be non-cleavable linkers or a combination of cleavable and non-cleavable linkers to produce different forms of the active portion of the D2 domain to achieve different therapeutic intent or balance risk / benefit ratios or comply with different properties of cytokines. Exemplary active forms released by linker cleavage are Figure 2 Depicted in FIG. Active forms 1 and 3, derived from cleavage of L1 and cleavage of both L1 and L2, respectively, are short-acting cytokines with varying degrees of functional activity depending on the D3 conformation. Cleavage and release of D1 from the half-life extension or disease tissue targeting moiety increases the local concentration of the activated D2 domain. After local action, the short-acting active form can be rapidly eliminated from the systemic circulation to reduce toxicity. In contrast, active form 2, derived from L2 cleavage, is a fully functional, long-acting and tissue-targeted conserved cytokine that persists at the disease site for a longer period of time and with enhanced efficacy.

[0277] Polynucleotide

[0278] In another aspect, the present disclosure provides an isolated nucleic acid molecule comprising a polynucleotide encoding: IL-15, IL-15 variant, IL-15Rα, IL-15Rα variant, Fc, Fc variant, IL-15-Fc fusion protein, IL-15RαSushi-Fc fusion protein or VitoKine construct of the present disclosure. The subject nucleic acid may be single-stranded or double-stranded. Such a nucleic acid may be a DNA or RNA molecule. DNA includes, for example, cDNA, genomic DNA, synthetic DNA, DNA amplified by PCR, and combinations thereof. Genomic DNA encoding the VitoKine construct is obtained from a genomic library, which is available for many species. Synthetic DNA is obtained from chemically synthesizing overlapping oligonucleotide fragments and then assembling the fragments to reconstruct part or all of the coding region and flanking sequences. RNA may be obtained from a prokaryotic expression vector that directs high-level synthesis of mRNA, such as a vector using a T7 promoter and RNA polymerase. DNA molecules of the present disclosure include full-length genes as well as polynucleotides and fragments thereof. The full-length gene may also comprise a sequence encoding an N-terminal signal sequence. Such nucleic acids may be used, for example, in methods for preparing new VitoKine constructs.

[0279] In various embodiments, the isolated nucleic acid molecule comprises a polynucleotide described herein and further comprises a polynucleotide encoding at least one heterologous protein described herein. In various embodiments, the nucleic acid molecule further comprises a polynucleotide encoding a linker or hinge joint described herein.

[0280] In various embodiments, the recombinant nucleic acid of the present disclosure can be operably linked to one or more regulatory nucleotide sequences in the expression construct. Regulatory sequences are known in the art and are selected to direct the expression of the VitoKine construct. Accordingly, the term regulatory sequence includes promoters, enhancers and other expression control elements. Exemplary regulatory sequences are described in Goeddel; Gene Expression Technology: Methods in Enzymology, Academic Press, San Diego, Calif. (1990). Typically, the one or more regulatory nucleotide sequences may include, but are not limited to, promoter sequences, leader or signal sequences, ribosome binding sites, transcription start and stop sequences, translation start and stop sequences, and enhancers or activation sequences. The present disclosure contemplates constitutive or inducible promoters known in the art. The promoter may be a naturally occurring promoter or a hybrid promoter combining elements of more than one promoter. The expression construct may be present in an episome such as a plasmid in the cell, or the expression construct may be inserted into a chromosome. In various embodiments, the expression vector comprises a selective marker gene to allow selection of transformed host cells. Selectable marker genes are well known in the art and will vary with the host cell used.

[0281] In another aspect of the disclosure, the subject nucleic acid is provided in an expression vector comprising a nucleotide sequence encoding a VitoKine construct and operably linked to at least one regulatory sequence. The term "expression vector" refers to a plasmid, phage, virus or vector used to express a polypeptide from a polynucleotide sequence. Vectors suitable for expression in host cells are readily available and utilize standard recombinant DNA techniques to insert nucleic acid molecules into the vector. Such vectors can include a variety of expression control sequences that, when operably linked to a DNA sequence, control the expression of the DNA sequence and can be used in these vectors to express a DNA sequence encoding a VitoKine construct. Such useful expression control sequences include, for example, early and late promoters of SV40, tet promoters, adenovirus or cytomegalovirus-mediated early promoters, RSV promoters, lac systems, trp systems, TAC or TRC systems, T7 promoters whose expression is directed by T7 RNA polymerase, major operator and promoter regions of lambda phage, control regions of fd coat protein, promoters of 3-phosphoglycerate kinase or other glycolytic enzymes, promoters of acid phosphatases such as PhoS, promoters of yeast α-mating factors, polyhedral promoters of baculovirus systems, and other sequences and various combinations thereof that are known to control gene expression of prokaryotic or eukaryotic cells or their viruses. It should be understood that the design of the expression vector may depend on factors such as the selection of the host cell to be transformed and / or the type of protein desired to be expressed. In addition, the copy number of the vector, the ability to control the copy number, and the expression of any other proteins encoded by the vector, such as antibiotic markers, should also be considered. Exemplary expression vectors suitable for expression of VitoKine are pDSRa and its derivatives comprising the VitoKine polynucleotide, as well as any additional suitable vectors known in the art or described below.

[0282] The recombinant nucleic acids of the present disclosure can be produced by ligating the cloned gene or a portion thereof into a vector suitable for expression in prokaryotes, eukaryotic cells (yeast, birds, insects or mammals), or both. Expression vehicles for producing recombinant VitoKine constructs include plasmids and other vectors. For example, suitable vectors include the following types of plasmids: pBR322-derived plasmids, pEMBL-derived plasmids, pEX-derived plasmids, pBTac-derived plasmids, and pUC-derived plasmids for expression in prokaryotes such as E. coli.

[0283] Some mammalian expression vectors include prokaryotic sequences that are beneficial to the proliferation of vectors in bacteria and one or more eukaryotic transcription units expressed in eukaryotic cells. The vectors derived from pcDNAI / amp, pcDNAI / neo, pRc / CMV, pSV2gpt, pSV2neo, pSV2-dhfr, pTk2, pRSVneo, pMSG, pSVT7, pko-neo and pHyg are examples of mammalian expression vectors suitable for transfecting eukaryotic cells. Some of these vectors are modified by sequences from bacterial plasmids such as pBR322 to facilitate replication and drug resistance selection in both prokaryotic cells and eukaryotic cells. Alternatively, derivatives of viruses such as bovine papillomavirus (BPV-1) or derivatives of Epstein-Barr virus (pHEBo, pREP derived and p205) can be used for transient expression of proteins in eukaryotic cells. Examples of other viral (including retrovirus) expression systems can be found in the description of gene therapy delivery systems below. The various methods adopted in the preparation of plasmids and the transformation of host organisms are well known in the art. For other expression systems suitable for both prokaryotic cells and eukaryotic cells and general recombination procedures, see Sambrook, Fritsch and Maniatis's Molecular Cloning A Laboratory Manual, 2nd edition (Cold Spring Harbor Laboratory Press, 1989) Chapters 16 and 17. In some cases, it may be desirable to express recombinant polypeptides using a baculovirus expression system. Examples of such baculovirus expression systems include pVL derived vectors (such as pVL1392, pVL1393 and pVL941), pAcUW derived vectors (such as pAcUW1) and pBlueBac derived vectors (such as pBlueBac III containing B-gal).

[0284] In various embodiments, vectors will be designed for producing the subject VitoKine constructs in CHO cells, such as Pcmv-Script vectors (Stratagene, La Jolla, Calif.), pcDNA4 vectors (Invitrogen, Carlsbad, Calif.), and pCI-neo vectors (Promega, Madison, Wis.). It will be apparent that the subject gene constructs can be used to cause expression of the subject VitoKine constructs in cells proliferating in culture, e.g., to produce proteins, including fusion proteins or variant proteins, for purification.

[0285] The present disclosure also relates to host cells transfected with recombinant genes comprising nucleotide sequences encoding the amino acid sequences of one or more subject VitoKine constructs. The host cell can be a prokaryotic cell or a eukaryotic cell. For example, the VitoKine constructs of the present disclosure can be expressed in bacterial cells such as Escherichia coli, insect cells (e.g., using a baculovirus expression system), yeast, or mammalian cells. Other suitable host cells are known to those skilled in the art, such as Chinese hamster ovary (CHO) cells or human embryonic kidney 293 (HEK293) cells.

[0286] Accordingly, the present disclosure also relates to methods for producing the subject VitoKine constructs. For example, host cells transfected with an expression vector encoding a VitoKine construct can be cultured under appropriate conditions that allow expression of the VitoKine construct to occur. The VitoKine construct can be secreted from cells containing the VitoKine construct and separated from a mixture of cells and culture medium containing the VitoKine construct. Alternatively, the VitoKine construct can be retained in the cytoplasm or retained in a membrane fraction, and harvested, cells lysed and proteins isolated. The cell culture includes host cells, culture medium and other byproducts. Suitable culture media for cell culture are well known in the art.

[0287] The polypeptides and proteins of the present disclosure can be purified according to protein purification techniques well known to those skilled in the art. These techniques relate to the coarse fractionation of protein fractions and non-protein fractions at one level. After the peptide or polypeptide is separated from other proteins, the peptide or polypeptide of interest can be further purified using chromatography and electrophoresis techniques to achieve partial or complete purification (or purification to uniformity). As used herein, the term "isolated polypeptide" or "purified polypeptide" is intended to refer to a composition that can be separated from other components, wherein the polypeptide is purified to any degree relative to its naturally available state. Therefore, a purified polypeptide also refers to a polypeptide that is separated from the environment in which it may naturally exist. Generally, "purified" will refer to a polypeptide composition that has been subjected to classification to remove various other components, and the polypeptide composition substantially retains the biological activity of its expression. When the term "substantially purified" is used, the designation will refer to such a peptide or polypeptide composition, wherein the polypeptide or peptide forms a majority of the components of the composition, such as about 50%, about 60%, about 70%, about 80%, about 85% or about 90% or more of the protein in the composition.

[0288] Various techniques suitable for purification will be well known to those skilled in the art. These techniques include, for example, precipitation with ammonium sulfate, PEG, antibodies (immunoprecipitation), etc. or by heat denaturation followed by centrifugation; chromatography, such as affinity chromatography (Protein A column), ion exchange chromatography, gel filtration chromatography, reverse phase chromatography, hydroxyapatite chromatography, hydrophobic interaction chromatography; isoelectric focusing; gel electrophoresis; and combinations of these techniques. As is generally known in the art, it is believed that the order in which the various purification steps are performed can be changed, or certain steps can be omitted, and still result in a suitable method for preparing a substantially purified polypeptide.

[0289] Pharmaceutical composition

[0290] In another aspect, the disclosure provides a pharmaceutical composition comprising a VitoKine construct mixed with a pharmaceutically acceptable carrier. Such pharmaceutically acceptable carriers are well known and understood by those of ordinary skill in the art and have been extensively described (see, e.g., Remington's Pharmaceutical Sciences, 18th edition, A.R. Gennaro, Mack Publishing Company, 1990). A pharmaceutically acceptable carrier may be included for purposes of changing, maintaining or maintaining, e.g., pH, osmotic pressure concentration, viscosity, clarity, color, isotonicity, odor, sterility, stability, dissolution or release rate, absorption or penetration of the composition. Such a pharmaceutical composition may affect the physical state, stability, in vivo release rate, and in vivo clearance rate of the polypeptide. Suitable pharmaceutically acceptable carriers include, but are not limited to, amino acids (such as glycine, glutamine, asparagine, arginine or lysine); antimicrobial agents; antioxidants (such as ascorbic acid, sodium sulfite or sodium bisulfite); buffers (such as borates, bicarbonates, Tris-HCl, citrates, phosphates, other organic acids); bulking agents (such as mannitol or glycine); chelating agents (such as ethylenediaminetetraacetic acid (EDTA)); complexing agents (such as chelating agents). agents) (such as caffeine, polyvinyl pyrrolidone, β-cyclodextrin or hydroxypropyl-β-cyclodextrin); fillers; monosaccharides; disaccharides and other carbohydrates (such as glucose, mannose or dextrin); proteins (such as serum albumin, gelatin or immunoglobulins); colorants; flavorings and diluents; emulsifiers; hydrophilic polymers (such as polyvinyl pyrrolidone); low molecular weight polypeptides; salt-forming counterions (such as sodium); preservatives (such as benzalkonium chloride, benzoic acid, salicylic acid, thimerosal, phenylethyl alcohol, methylparaben, propylparaben, chlorhexidine, sorbic acid or hydrogen peroxide); solvents (such as glycerol, propylene glycol or polyethylene glycol); sugar alcohols (such as mannitol or sorbitol); suspending agents; surfactants or wetting agents (such as pluronic, PEG, sorbitan esters (sorbitan esters), polysorbates such as polysorbate 20, polysorbate 80, triton, tromethamine, lecithin, cholesterol, tyloxapal); stability enhancers (sucrose or sorbitol); tonicity enhancers (such as alkali metal halides (preferably sodium chloride or potassium chloride), mannitol and sorbitol); delivery vehicles; diluents; excipients and / or pharmaceutical adjuvants.

[0291] The main vehicle or carrier in the pharmaceutical composition can be aqueous or non-aqueous in nature. For example, suitable vehicles or carriers can be water for injection, physiological saline solution or artificial cerebrospinal fluid that may be supplemented with other materials common in the composition for parenteral administration. Neutral buffered saline or saline mixed with serum albumin are other exemplary vehicles. Other exemplary pharmaceutical compositions include Tris buffer of about pH 7.0-8.5 or acetate buffer of about pH 4.0-5.5, which can also include sorbitol or a suitable substitute for sorbitol. In one embodiment of the present disclosure, the composition can be prepared by mixing the composition with the desired degree of purity with an optional formulation agent (formulationagent) (Remington's Pharmaceutical Sciences, the same) to store in the form of freeze-dried bulk or aqueous solution. In addition, suitable excipients such as sucrose can be used to prepare the therapeutic composition as a lyophilized product. The best pharmaceutical composition will be determined by a person of ordinary skill in the art depending on, for example, the intended route of administration, the delivery form and the desired dosage.

[0292] When parenteral administration is envisioned, the therapeutic pharmaceutical composition may be in the form of a pyrogen-free, parenterally acceptable aqueous solution comprising the desired VitoKine construct in a pharmaceutically acceptable vehicle. A particularly suitable vehicle for parenteral injection is sterile distilled water, wherein the polypeptide is formulated as a sterile, isotonic solution suitable for storage. In various embodiments, pharmaceutical preparations suitable for injectable administration may be formulated in aqueous solutions, preferably in physiologically compatible buffers such as Hanks solution, Ringer solution, or physiologically buffered saline. Aqueous injection suspensions may contain substances that increase the viscosity of the suspension, such as sodium carboxymethylcellulose, sorbitol, or dextran. In addition, suspensions of the active compound may be prepared as suitable oily injection suspensions. Optionally, the suspension may also contain a suitable stabilizer or an agent that increases the solubility of the compound and allows the preparation of a highly concentrated solution.

[0293] In various embodiments, the therapeutic pharmaceutical composition can be formulated for targeted delivery using a colloidal dispersion system. Colloidal dispersion systems include macromolecular complexes, nanocapsules, microspheres, beads, and lipid-based systems, and lipid-based systems include oil-in-water emulsions, micelles, mixed micelles, and liposomes. Examples of lipids useful in liposome production include phosphatidyl compounds, such as phosphatidylglycerol, phosphatidylcholine, phosphatidylserine, phosphatidylethanolamine, sphingolipids, cerebrosides, and gangliosides. Exemplary phospholipids include lecithin, dipalmitoylphosphatidylcholine, and distearoylphosphatidylcholine. The targeting of liposomes can also be based on, for example, organ-specific, cell-specific, and organelle-specific and is known in the art.

[0294] In various embodiments, oral administration of the pharmaceutical composition is contemplated. Pharmaceutical compositions administered in this form may be formulated with or without those carriers commonly used in the compounding of solid dosage forms such as tablets and capsules. In solid dosage forms for oral administration (capsules, tablets, pills, dragees, powders, granules, etc.), one or more therapeutic compounds of the present disclosure may be combined with one or more pharmaceutically acceptable carriers such as sodium citrate or dibasic calcium phosphate. phosphate) and / or any of the following: (1) fillers or extenders, such as starch, lactose, sucrose, glucose, mannitol and / or silicic acid; (2) binders, such as, for example, carboxymethylcellulose, alginates, gelatin, polyvinyl pyrrolidone, sucrose and / or gum arabic; (3) humectants, such as glycerol; (4) disintegrants, such as agar-agar, calcium carbonate, potato or tapioca starch, alginic acid, certain silicates and sodium carbonate; (5) solution retardants, such as paraffin; (6) absorption accelerators, such as quaternary ammonium compounds; (7) wetting agents, such as, for example, cetyl alcohol and glyceryl monostearate; (8) absorbents, such as kaolin and bentonite; (9) lubricants, such as talc, calcium stearate, magnesium stearate, solid polyethylene glycol, sodium lauryl sulfate and mixtures thereof; and (10) coloring agents. In the case of capsules, tablets and pills, the pharmaceutical composition may also contain a buffer. Solid compositions of similar types can also be used as fillers in soft-filled and hard-filled gelatin capsules using excipients such as lactose or milk sugar and high molecular weight polyethylene glycol. Liquid dosage forms for oral administration include pharmaceutically acceptable emulsions, microemulsions, solutions, suspensions, syrups and elixirs. In addition to active ingredients, liquid dosage forms can include inert diluents commonly used in the art, such as water or other solvents, solubilizers and emulsifiers such as ethanol, isopropanol, ethyl carbonate, ethyl acetate, benzyl alcohol, benzyl benzoate, propylene glycol, 1,3-butylene glycol, oil (especially, cottonseed oil, peanut oil, corn oil, germ oil, olive oil, castor oil and sesame oil), glycerol, tetrahydrofurfuryl alcohol, polyethylene glycol and fatty acid esters of sorbitan and mixtures thereof. Besides inert diluents, the oral compositions can also include adjuvants such as wetting agents, emulsifying and suspending agents, sweetening, flavoring, coloring, perfuming and preservative agents.

[0295] In various embodiments, it is envisioned that the pharmaceutical composition is topically applied to the skin or to a mucous membrane. Topical preparations may also include one or more of a variety of agents known to be effective as skin or stratum corneum penetration enhancers. Examples of these agents are 2-pyrrolidone, N-methyl-2-pyrrolidone, dimethylacetamide, dimethylformamide, propylene glycol, methanol or isopropanol, dimethyl sulfoxide and azone. Additional agents may also be included to make the preparation cosmetically acceptable. Examples of these agents are fats, waxes, oils, dyes, fragrances, preservatives, stabilizers and surfactants. Keratin softeners may also be included, such as those known in the art. Examples are salicylic acid and sulphur. Formulations for topical or transdermal administration include powders, sprays, ointments, pastes, creams, lotions, gels, solutions, patches and inhalants. The active compound may be mixed under sterile conditions with a pharmaceutically acceptable carrier, and with any preservatives, buffers, or propellants that may be required. In addition to the subject compounds of the present disclosure (e.g., VitoKine constructs), ointments, pastes, creams, and gels may contain excipients such as animal and vegetable fats, oils, waxes, paraffins, starches, tragacanth, cellulose derivatives, polyethylene glycols, silicones, bentonites, silicic acid, talc, and zinc oxide, or mixtures thereof.

[0296] Other pharmaceutical compositions contemplated for use herein include formulations comprising polypeptides in sustained delivery or controlled delivery formulations. The techniques for preparing various other sustained delivery or controlled delivery vehicles such as liposome carriers, bioerodible microparticles or porous beads and reservoir injections are also known to those skilled in the art.

[0297] The effective amount of the pharmaceutical composition to be used for treatment will depend on, for example, the treatment background and the treatment goal. It will be appreciated by those skilled in the art that the appropriate dosage level for treatment will therefore depend in part on the delivered molecule, the indications used for the polypeptide, the route of administration, and the size (body weight, body surface or organ size) and condition (age and overall health) of the patient. Accordingly, clinicians can adjust the dosage and change the route of administration to obtain the best therapeutic effect. Typical dosages can be within the range of from about 0.0001 mg / kg to about 100 mg / kg or more depending on the factors mentioned above. The polypeptide composition can preferably be injected or administered intravenously. Long-acting pharmaceutical compositions can be administered once every three to four days, once a week, or once every two weeks, depending on the half-life and clearance rate of a particular formulation. The frequency of administration will depend on the pharmacokinetic parameters of the polypeptide in the formulation used. Typically, the composition is administered until the dosage for achieving the desired effect is reached. Therefore, the composition can be administered as a single dose or as multiple doses over time (with the same or different concentrations / dosages) or as a continuous infusion. Further improvements in appropriate dosages are routinely performed. Appropriate dosages can be determined through use of appropriate dose-response data.

[0298] The route of administration of the pharmaceutical composition is according to known methods, such as oral; by intravenous, intraperitoneal, intratumoral, intracerebral (intraparenchymal), intraventricular, intramuscular, intraocular, intraarterial, intraportal, intralesional approach, intramedullary, intrathecal, intraventricular, intravesicular, percutaneous, subcutaneous or intraperitoneal injection; and intranasal, enteral, topical, sublingual, urethral, ​​vaginal or rectal means; by sustained release system or by implant device. When desired, the composition can be administered by bolus injection, or continuously administered by infusion, or administered by implant device. Alternatively or additionally, the composition can be locally administered via the implantation of a film, sponge or another suitable material to which the desired molecule has been adsorbed or encapsulated. When using an implant device, the device can be implanted in any suitable tissue or organ, and the delivery of the desired molecule can be administered via diffusion, sustained release bolus or continuously administered.

[0299] Therapeutic Uses

[0300] The present disclosure provides methods of treating cancer cells in a subject, comprising administering to the subject a therapeutically effective amount (as a monotherapy or in a combination therapy regimen) of a VitoKine construct of the present disclosure in a pharmaceutically acceptable carrier, wherein such administration inhibits the growth and / or proliferation of cancer cells. In particular, the VitoKine constructs of the present disclosure are useful in treating disorders characterized by cancer. Such disorders include, but are not limited to, solid tumors such as breast cancer, respiratory tract cancer, brain cancer, cancer of the reproductive organs, cancer of the digestive tract, cancer of the urethra, eye cancer, liver cancer, skin cancer, head and neck cancer, thyroid cancer, parathyroid cancer and their distant metastases, lymphomas, sarcomas, multiple myeloma, and leukemias. Examples of breast cancer include, but are not limited to, invasive ductal carcinoma, invasive lobular carcinoma, ductal carcinoma in situ, and lobular carcinoma in situ. Examples of cancers of the respiratory tract include, but are not limited to, small cell lung cancer and non-small cell lung cancer, as well as bronchial adenomas and pleuropulmonary blastomas. Examples of brain cancer include, but are not limited to, brainstem and hypothalamic gliomas, cerebellar and cerebral astrocytomas, neuroblastomas, medulloblastomas, ependymomas, and neuroectodermal and pineal tumors. Tumors of male / male reproductive organs include, but are not limited to, prostate cancer and testicular cancer. Tumors of female / female reproductive organs include, but are not limited to, endometrial cancer, cervical cancer, ovarian cancer, vaginal cancer, vulvar cancer, and uterine sarcomas. Tumors of the digestive tract include, but are not limited to, anal cancer, colon cancer, colorectal cancer, esophageal cancer, gallbladder cancer, gastric cancer, liver cancer, breast cancer, pancreatic cancer, rectal cancer, small intestine cancer, and salivary gland cancer. Tumors of the urethra include, but are not limited to, bladder cancer, penile cancer, kidney cancer, renal pelvis cancer, ureteral cancer, and urethral cancer. Eye cancer includes, but is not limited to, intraocular melanoma and retinoblastoma. Examples of liver cancer include, but are not limited to, hepatocellular carcinoma (hepatocellular carcinoma with or without fibrolamellar variants), cholangiocarcinoma (intrahepatic cholangiocarcinoma), and mixed hepatocellular cholangiocarcinoma. Skin cancers include, but are not limited to, squamous cell carcinoma, Kaposi's sarcoma, malignant melanoma, Merkel cell skin cancer, and non-melanoma skin cancers. Head and neck cancers include, but are not limited to, nasopharyngeal carcinoma and lip and oral cancers. Lymphomas include, but are not limited to, AIDS-related lymphoma, non-Hodgkin's lymphoma, cutaneous T-cell lymphoma, Hodgkin's disease, and central nervous system lymphomas. Sarcomas include, but are not limited to, soft tissue sarcomas, osteosarcomas, malignant fibrous histiocytomas, lymphosarcoma, and rhabdomyosarcomas. Leukemias include, but are not limited to, acute myeloid leukemia, acute lymphoblastic leukemia, chronic lymphocytic leukemia, chronic myeloid leukemia, and hairy cell leukemia.In various embodiments, the cancer will be a cancer with high expression of TGF-β family members (such as activin A, myostatin, TGF-β and GDF15), for example, pancreatic cancer, gastric cancer, liver cancer, breast cancer, ovarian cancer, colorectal cancer, melanoma leukemia, lung cancer, prostate cancer, brain cancer, bladder cancer and head and neck cancer.

[0301] In various embodiments, the VitoKine constructs can be used as a single agent to treat all types of cancer, including but not limited to non-small cell lung cancer, small cell lung cancer, melanoma, renal cell carcinoma, urothelial carcinoma, liver cancer, breast cancer, pancreatic cancer, colorectal cancer, gastric cancer, prostate cancer, and sarcomas.

[0302] In another aspect, the present disclosure provides a method for treating an autoimmune disease in a subject, the method comprising administering to the subject a therapeutically effective amount (as a monotherapy or in a combination therapy regimen) of a VitoKine construct of the present disclosure in a pharmaceutically acceptable carrier. "Autoimmune disease" refers to a non-malignant disease or disorder that arises from and is directed against an individual's own tissues. Examples of autoimmune diseases or disorders include, but are not limited to, inflammatory reactions, such as inflammatory skin diseases, including psoriasis and dermatitis (e.g., atopic dermatitis); reactions associated with inflammatory bowel disease (such as Crohn's disease and ulcerative colitis); dermatitis; allergic conditions, such as eczema and asthma; rheumatoid arthritis; systemic lupus erythematosus (SLE) (including but not limited to lupus nephritis, cutaneous lupus); diabetes (e.g., type 1 diabetes or insulin-dependent diabetes); multiple sclerosis and juvenile onset diabetes.

[0303] In another aspect, the present disclosure provides a method for treating an inflammatory disease in a subject, the method comprising administering to the subject a therapeutically effective amount of a VitoKine construct of the present disclosure in a pharmaceutically acceptable carrier (as a monotherapy or in a combination therapy regimen). "Inflammatory diseases" include all diseases associated with acute or chronic inflammation. Acute inflammation is the body's initial response to harmful stimuli and is caused by increased movement of plasma and leukocytes (such as, for example, granulocytes) from the blood to damaged tissues. Many biochemical events propagate and mature the inflammatory response, which involves the local vascular system, the immune system, and various cells within the damaged tissue. Long-term inflammation is referred to as chronic inflammation, which results in progressive changes in the cell types present at the site of inflammation and is characterized by simultaneous destruction and healing of tissues from the inflammatory process. Examples of inflammatory diseases are well known in the art. In various embodiments, the inflammatory disease is selected from the group consisting of: inflammatory bowel disease, psoriasis, and bacterial sepsis. As used herein, the term "inflammatory bowel disease" refers to a group of inflammatory conditions of the colon and small intestine, including, for example, Crohn's disease, ulcerative colitis, collagenous colitis, lymphocytic colitis, ischemic colitis, diversion colitis, Behcet's syndrome, and indeterminate colitis.

[0304] In another aspect, the present disclosure provides a method for treating a viral infection in a subject, the method comprising administering to the subject a therapeutically effective amount (as a monotherapy or in a combination therapy regimen) of a VitoKine construct of the present disclosure in a pharmaceutically acceptable carrier. In various embodiments, the viral infection to be treated may be caused by an infectious agent including, but not limited to, bacteria, fungi, protozoa, and viruses. Viral diseases that can be prevented, treated and / or managed according to the methods described herein include, but are not limited to, those caused by hepatitis A virus, hepatitis B virus, hepatitis C virus, influenza virus, varicella virus, adenovirus, herpes simplex type I (HSY-I) virus, herpes simplex type II (HSY-II) virus, rinderpest virus, rhinovirus, echovirus, rotavirus, respiratory syncytial virus, papillomavirus, papovavirus, cytomegalovirus, echinovirus, arbovirus, hantavirus, coxsackievirus, mumps virus, measles virus, rubella virus, poliovirus, smallpox virus, Epstein Barr virus, human immunodeficiency virus type I (HIV-I), human immunodeficiency virus type II (HIV-II), and the causative agent of viral diseases such as viral meningitis, encephalitis, dengue fever, or smallpox.

[0305] Bacterial diseases caused by bacteria (e.g., Escherichia coli, Klebsiella pneumoniae, Staphylococcus aureus, Enterococcus faecalis, Candida albicans, Proteus vulgaris, Staphylococcus viridans, and Pseudomonas aeruginosa) that can be prevented, treated, and / or controlled according to the methods described herein include, but are not limited to, mycobacteria, rickettsiae, mycoplasmas, Neisseria, S. pneumoniae, Borrelia burgdorferi (Lyme disease), Bacillus anthracis, and Bacillus cereus. anthracis), tetanus, streptococcus, staphylococcus, mycobacterium, pertussis, cholera, plague, diphtheria, chlamydia, Staphylococcus aureus, and Legionella.

[0306] Protozoan diseases caused by protozoa that can be prevented, treated and / or controlled according to the methods described herein include, but are not limited to, leishmania, kokzidioa, trypanosoma, or malaria.

[0307] Parasitic diseases caused by parasites that can be prevented, treated, and / or managed according to the methods described herein include, but are not limited to, Chlamydia and Rickettsia.

[0308] A "therapeutically effective amount" or "therapeutically effective dose" refers to that amount of the administered therapeutic agent that will relieve to some extent one or more symptoms of the disorder being treated.

[0309] The therapeutically effective dose can be determined by determining the IC 50 Initially estimated from cell culture assays. A dose can then be formulated in animal models to achieve an IC that includes the IC as determined in cell culture. 50 The present invention provides a range of circulating plasma concentrations of the drug. Such information can be used to more accurately determine useful dosages in humans. Levels in plasma can be measured, for example, by HPLC. The exact composition, route of administration, and dosage can be selected by an individual physician in view of the subject's condition.

[0310] The dosage regimen can be adjusted to provide the best desired response (e.g., a therapeutic response or a preventive response). For example, a single bolus can be administered, several divided doses (multiple or repeated or maintained) can be administered over time and the dose can be proportionally reduced or increased as indicated by the exigencies of the therapeutic scenario. For ease of administration and consistency of dosage, it is particularly beneficial to formulate parenteral compositions in dosage unit form. As used herein, dosage unit form refers to physically dispersed units suitable as a single dose for a mammalian subject to be treated; each unit contains a predetermined amount of active compound calculated to produce the desired therapeutic effect together with the required pharmaceutical carrier. The specifications of the dosage unit form of the present disclosure will be primarily determined by the unique characteristics of the antibody and the specific therapeutic or preventive effect to be achieved.

[0311] Therefore, it will be appreciated by the skilled artisan that based on the disclosure provided herein, dosage and administration regimens are adjusted according to methods well known in the therapeutic field. That is, the maximum tolerable dose can be easily determined, and the effective amount that provides a detectable therapeutic benefit to the subject can also be determined, and the time requirement for applying each agent to provide a detectable therapeutic benefit to the subject can also be determined. Therefore, although certain dosages and administration regimens are exemplified herein, these examples are by no means limited to the dosages and administration regimens that can be provided to the subject when practicing the present disclosure.

[0312] It should be noted that dosage values ​​may vary with the type and severity of the condition to be alleviated, and may include a single dose or more than one dose. It should also be understood that for any particular subject, the specific dosage regimen should be adjusted over time according to individual needs and the professional judgment of the person administering the composition or supervising the administration of the composition, and the dosage ranges listed herein are exemplary only and are not intended to limit the scope or practice of the claimed composition. In addition, the dosage regimen of the composition of the present disclosure may be based on a number of factors, including the type of disease, the age, weight, sex, medical condition, severity of the condition, route of administration, and specific antibodies used. Therefore, the dosage regimen may vary widely, but can be routinely determined using standard methods. For example, the dosage may be adjusted based on pharmacokinetic or pharmacodynamic parameters, which may include clinical effects such as toxic effects and / or experimental values. Therefore, the present disclosure includes intra-subject dose-escalation as determined by a technician. Determining appropriate dosages and regimens is well known in the relevant art and will be understood to be mastered by a technician once the teachings disclosed herein are provided.

[0313] Exemplary, non-limiting daily dosing ranges for a therapeutically or prophylactically effective amount of VitoKine or a VitoKine variant of the present disclosure can be 0.0001 to 100 mg / kg body weight, 0.0001 to 90 mg / kg body weight, 0.0001 to 80 mg / kg body weight, 0.0001 to 70 mg / kg body weight, 0.0001 to 60 mg / kg body weight, 0.0001 to 50 mg / kg body weight, 0.0001 to 40 mg / kg body weight, 0.0001 to 30 mg / kg body weight, 0.0001 to 20 mg / kg body weight, 0.0001 to 35 mg / kg body weight, 0.0001 to 40 mg / kg body weight, 0.0001 to 50 mg / kg body weight, 0.0001 to 60 mg / kg body weight, 0.0001 to 70 mg / kg body weight, 0.0001 to 80 mg / kg body weight, 0.0001 to 90 mg / kg body weight, 0.0001 to 100 mg / kg body weight, 0.0001 to 150 mg / kg body weight, 0.0001 to 160 mg / kg body weight, 0.0001 to 170 mg / kg body weight, 0.0001 to 180 mg / kg body weight, 0.0001 to 190 mg / kg body weight, 0.01 to 10 mg / kg body weight, 0.0001 to 5 mg / kg body weight, 0.0001 to 4 mg / kg body weight, 0.0001 to 3 mg / kg body weight, 0.0001 to 2 mg / kg body weight, 0.0001 to 1 mg / kg body weight, 0.001 to 50 mg / kg body weight, 0.001 to 40 mg / kg body weight, 0.001 to 30 mg / kg body weight, 0.001 to 20 mg / kg body weight, 0.001 to 10 mg / kg body weight, 0.001 to 5 mg / kg body weight, 0.001 to 4 mg / kg body weight, 0.001 to 3 mg / kg body weight, 0.001 to 2 mg / kg body weight, 0.001 to 1 mg / kg body weight, 0.010 to 50 mg / kg body weight, 0.010 to 40 mg / kg body weight, 0.010 to 30 mg / kg body weight, 0.010 to 20 mg / kg body weight, 0.010 to 10 mg / kg body weight, 0.010 to 5 mg / kg body weight, 0.010 to 4 mg / kg body weight, 0.010 to 3 mg / kg body weight, 0.010 to 2 mg / kg body weight, 0.010 to 1 mg / kg body weight, 0.1 to 50 mg / kg body weight, 0.1 to 40 mg / kg body weight, 0.1 to 30mg / kg body weight, 0.1 to 20mg / kg body weight, 0.1 to 10mg / kg body weight, 0.1 to 5mg / kg body weight, 0.1 to 4mg / kg body weight, 0.1 to 3mg / kg body weight, 0.1 to 2mg / kg body weight, 0.1 to 1mg / kg body weight, 1 to 50mg / kg body weight, 1 to 40mg / kg body weight, 1 to 30mg / kg body weight, 1 to 20mg / kg body weight, 1 to 10mg / kg body weight, 1 to 5mg / kg body weight, 1 to 4mg / kg body weight, 1 to 3mg / kg body weight, 1 to 2mg / kg body weight or 1 to 1mg / kg body weight. It should be noted that dosage values ​​can vary with the type and severity of the condition to be alleviated. It should also be understood that for any particular subject, specific dosage regimens should be adjusted over time according to individual needs and the professional judgment of the person administering the composition or supervising the administration of the composition, and the dosage ranges listed herein are exemplary only and are not intended to limit the scope or practice of the claimed composition.

[0314] Toxicity and therapeutic index of the pharmaceutical compositions of the present disclosure can be determined by standard pharmaceutical procedures in cell cultures or experimental animals, for example, by determining the LD 50 (a dose lethal to 50% of the population) and ED 50 (the dose that is therapeutically effective for 50% of the population). The dose ratio between the toxic dose and the therapeutically effective dose is the therapeutic index, and the therapeutic index can be expressed as the ratio LD 50 / ED 50 Compositions that exhibit large therapeutic indices are generally preferred.

[0315] The dosing frequency of the administration of the VitoKine construct pharmaceutical composition depends on the nature of the therapy and the specific disease being treated. Subjects can be treated at regular intervals, such as once a week or once a month, until the desired therapeutic outcome is achieved. Exemplary dosing frequencies include, but are not limited to: once a week without interruption; once a week every other week; once every 2 weeks; once every 3 weeks; once a week without interruption for 2 weeks, then once a month; once a week without interruption for 3 weeks, then once a month; once a month; once every two months; once every 3 months; once every 4 months; once every 5 months; or once every 6 months, or once a year.

[0316] Combination therapy

[0317] As used herein, the terms "co-administration," "co-administered," and "incombination with," in reference to a VitoKine Construct of the present disclosure and one or more other therapeutic agents, are intended to mean, and do mean and include, the following: simultaneous administration of such combination of a VitoKine Construct of the present disclosure and one or more therapeutic agents to a subject in need of treatment, wherein such components are formulated together into a single dosage form that releases said components to said subject at substantially the same time; substantially simultaneous administration of such combination of a VitoKine Construct of the present disclosure and one or more therapeutic agents to a subject in need of treatment, wherein such components are formulated separately from one another into separate dosage forms that are taken by said subject at substantially the same time, whereupon said components are released to said subject at substantially the same time; and one or more therapeutic agents are administered sequentially to a subject in need of treatment, wherein such components are formulated separately from one another into separate dosage forms that are taken by the subject at consecutive times with significant time intervals between each administration, whereby the components are released to the subject at substantially different times; and, such combinations of a VitoKine construct of the present disclosure and one or more therapeutic agents are administered sequentially to a subject in need of treatment, wherein such components are formulated together into a single dosage form that releases the components in a controlled manner, whereby the components are released to the subject simultaneously, sequentially and / or overlappingly at the same and / or different times, wherein each portion may be administered by the same or different routes.

[0318] On the other hand, the disclosure provides a method for treating a subject's cancer or cancer metastasis, the method comprising administering a therapeutically effective amount of a pharmaceutical composition of the present invention in combination with a second therapy, wherein the second therapy includes but is not limited to immunotherapy, cytotoxic chemotherapy, small molecule kinase inhibitor targeted therapy, surgery, radiotherapy, and stem cell transplantation. For example, such a method can be used for preventive cancer prevention, prevention of postoperative cancer recurrence and metastasis, and as an adjunct to other conventional cancer therapies. The disclosure recognizes that the effectiveness of conventional cancer therapies (e.g., chemotherapy, radiotherapy, phototherapy, immunotherapy, and surgery) can be enhanced by the use of the combined methods described herein.

[0319] A large amount of conventional compounds have been shown to have anti-neoplastic activity. These compounds have been used as medicaments in chemotherapy to reduce solid tumors, prevent metastasis and further growth or reduce the number of malignant T cells in leukemia or myeloid malignancies. Although chemotherapy is effective in treating various types of malignant tumors, many anti-neoplastic compounds induce undesirable side effects. It has been shown that when two or more different treatment combinations are combined, treatment can work synergistically, and allows to reduce the dosage of every kind of treatment, thereby reducing the harmful side effects of every kind of compound produced at higher dosage. In other cases, it is that the malignant tumor of refractory nature can be responded to the combination therapy of two or more different treatments for treatment.

[0320] In various embodiments, a second anticancer agent, such as a chemotherapeutic agent, will be administered to the patient. A list of exemplary chemotherapeutic agents includes, but is not limited to, daunorubicin, dactinomycin, doxorubicin, bleomycin, mitomycin, mechlorethamine, chlorambucil, melphalan, cyclophosphamide, 6-mercaptopurine, 6-thioguanine, bendamustine, cytarabine (CA), 5-fluorouracil (5-FU), floxuridine (5-FUdR), methotrexate (MTX), colchicine, vincristine, vinblastine, etoposide, teniposide, cisplatin, carboplatin, Platinum, oxaliplatin, pentostatin, cladribine, cytarabine, gemcitabine, pralatrexate, mitoxantrone, diethylstilbestrol (DES), fludarabine, ifosfamide, hydroxyureataxanes (such as paclitaxel and docetaxel) and / or anthracycline antibiotics, and combinations of agents such as but not limited to DA-EPOCH, CHOP, CVP or FOLFOX. In various embodiments, the dose of such chemotherapeutic agents includes but is not limited to about 10 mg / m 2 , 20mg / m 2 , 30mg / m 2 , 40mg / m 2 , 50mg / m 2 , 60mg / m 2 , 75mg / m 2 , 80mg / m 2 , 90mg / m 2 , 100mg / m 2 , 120mg / m 2 , 150mg / m 2 , 175mg / m 2 , 200mg / m 2 , 210mg / m 2 , 220mg / m 2 , 230mg / m 2, 240mg / m 2 , 250mg / m 2 , 260mg / m 2 and 300 mg / m 2 Any of .

[0321] In various embodiments, the combined treatment methods of the present disclosure may also include administering to the subject a therapeutically effective amount of immunotherapy, including, but not limited to, treatment with depleting antibodies directed against specific tumor antigens; treatment with antibody-drug conjugates; treatment with agonistic antibodies, antagonistic antibodies, or blocking antibodies directed against co-stimulatory or co-inhibitory molecules (immune checkpoints), such as, but not limited to, antibodies directed against CTLA-4, PD-1, PDL-1, CD40, OX-40, CD137, GITR, LAG3, TIM-3, SIRPa, CD47, GITR, ICOS, CD27, Siglec 7, Siglec 8, Siglec 9, Siglec 15, and VISTA, CD276, CD272, TIM-3, B7-H4; treatment with bispecific T cell-binding antibodies Treatments such as blinatumomab; treatments involving administration of biological response modifiers (such as IL-2, IL-7, IL-10, IL-12, IL-15, IL-21, IL-22, GM-CSF, IFN-α, IFN-β, IFN-γ, TGF-β antagonists or TGF-β traps); treatments using therapeutic vaccines (including but not limited to oncolytic viruses such as T-vec) or using therapeutic vaccines such as sipuleucel-T; treatments using dendritic cell vaccines or tumor antigen peptides or neoantigen vaccines; treatments using chimeric antigen receptor (CAR)-T cells; treatments using CAR-NK cells; treatments using NK cells; treatments using iPS-induced NK cells treatment with iPS-induced T cells; treatment with iPS-induced CAR-T cells or iPS-induced CAR-NK cells; treatment with tumor infiltrating lymphocytes (TILs); treatment with adoptively transferred anti-tumor T cells (ex vivo expanded T cells and / or TCR-T cells); treatment with TALL-104 cells; and treatment with immunostimulants such as Toll-like receptor (TLR) agonists CpG, TLR7, TLR8, TLR9 and vaccines such as Bacillus Calmette-Guérin (BCG) and Imiquimod; wherein the combination therapy provides increased effector cell killing of tumor cells, i.e., there is a synergistic effect between the VitoKine construct and the immunotherapy when co-administered.

[0322] In various embodiments, the combined treatment methods of the present disclosure may also include administering to the subject a therapeutically effective amount of an anti-inflammatory agent for autoimmune diseases, inflammatory diseases and other immune disorders, including but not limited to treatment using depleting antibodies against specific immune cells; treatment using regulatory antibodies (agonistic, antagonistic or blocking) as target modulators of immune responses against targets (ligands or their receptors), including but not limited to IL-1α, IL-1β or IL-1R, IL-4 or IL-4R, IL-5 or IL-5R, IL-6 or IL-6R, IL-8 or IL-8R, IL-7 or IL-7R, IL-10 or IL-10R, IL-11 or IL-11R, IL-12 or IL-12R, IL-17 or IL-17R, IL-18 or IL-18R, IL-21 or IL-21R, IL-22 or IL-22R, IL-23 or IL-23R, MCSF or MCSF-R, GM- CSF or GM-CSFR, IFN-α, IFN-β, IFN-γ, TGF-α, TGF-β or TGF-β, TNF family or its related receptors, integrin family (e.g., α4β7), TSLP, complement 5 (C5) or C5a, IgE, APRIL, TACI, BCMA, CD20, CD22, CD40 / CD40L, B7H1, B7H2, ICOS, BAFF, BCR, BLys, B7RP1, T LR7, TLR8, TLR8, TLR9; treatment using regulatory small molecules (agonistic or antagonistic) as target modulators of immune responses against targets including but not limited to NFkB, Jak1, Jak2, Jak3, Tyk2, Syk, BTK, PIK3, cyclooxygenase 2 and NMDA receptors; wherein the combination treatment provides increased efficacy in modulating the immune response, i.e., there is a synergistic effect between the VitoKine construct and the anti-inflammatory therapy when co-administered.

[0323] In various embodiments, the combination therapy includes the simultaneous administration of a VitoKine construct and a second composition in the same pharmaceutical composition or in a separate pharmaceutical composition. In various embodiments, the VitoKine construct composition and the second composition are administered sequentially, i.e., the VitoKine construct composition is administered before or after the second composition is administered. In various embodiments, the administration of the VitoKine construct composition and the second composition is simultaneous, i.e., the administration time periods of the VitoKine construct composition and the second composition overlap each other. In various embodiments, the administration of the VitoKine construct composition and the second composition is non-simultaneous. For example, in various embodiments, the administration of the VitoKine construct composition is terminated and then the second composition is administered. In various embodiments, the administration of the second composition is terminated and then the VitoKine construct composition is administered.

[0324] The following examples are provided to more fully illustrate the present disclosure but should not be construed as limiting the scope of the present disclosure.

[0325] Example 1

[0326] Construction and production of IL-15 VitoKine constructs

[0327] The goal is to design an IL-15 VitoKine construct that will remain inert until locally activated by a protease that is upregulated in cancer or diseased tissue. Described herein are VitoKines having as active portions wild-type IL-15 (SEQ ID NO:2) or IL-15 muteins (e.g., SEQ ID NO:3) that are reversibly shielded between the Fc domain and IL-15RαSushi+ (SEQ ID NO:5). These constructs include one or two cleavable linkers that are recognized by tumor-specific proteases. In the presence of tumor cells expressing proteases, the linker connecting the Fc and IL-15 muteins and / or the linker connecting IL-15 and IL-15αSushi+ will be cleaved, thereby restoring IL-15 activity. Notably, due to the unusually high affinity (30 pM) between IL-15 and IL-15α, IL-15αSushi+ released after proteolysis is expected to remain non-covalently associated with IL-15. Produced and in Figure 1 Fc IL-15 VitoKine constructs with various linker and peptide spacer compositions are schematically depicted in , and their respective sequences are listed as SEQ ID NOs: 25-43, 162-165, and 169-174.

[0328] All genes were codon optimized for expression in mammalian cells, synthesized and subcloned into a recipient mammalian expression vector (GenScript). Protein expression was driven by a CMV promoter, and a synthetic SV40 polyadenylic acid (polyA) signal sequence was present at the 3' end of the CDS. A leader sequence was engineered at the N-terminus of the construct to ensure appropriate signal transduction and processing for secretion.

[0329] The constructs were generated by co-transfecting HEK293-F cells grown in suspension with mammalian expression vectors using polyethyleneimine (PEI, 25,000 MW linear, Polysciences). If there were two or more expression vectors, the vectors were transfected at a 1:1 ratio. For transfection, HEK293 cells were grown in serum-free FreeStyle TM HEK293 cells were cultured in 1000 ml shake flasks (working volume 330 mL) at 0.8 × 10 6 The density of individual cells / ml was inoculated, and transfection was performed after 24 hours. The expression vector that is 330 μg DNA in total was mixed with 16.7ml Opti-mem culture medium (ThermoFisher). After adding 0.33mg PEI diluted in 16.7ml Opti-mem culture medium, the mixture was vortexed for 15sec, and then incubated at room temperature for 10min. Then the DNA / PEI solution was added to the cells, and incubated at 37°C in an incubator with 8% CO2 atmosphere. On the 4th day, sodium butyrate (Millipore Sigma) was added to the cell culture at a final concentration of 2mg / L to help maintain protein expression. After 6 days of cultivation, supernatant was collected for purification by centrifugation at 2200rpm for 20min. The solution was sterile filtered (0.22 μm filter, Corning). Protein A affinity chromatography was used to purify the secreted protein from the cell culture supernatant.

[0330] For affinity chromatography, the supernatant was loaded onto a HiTrap MabSelectSure Protein A FF column (CV=5 mL, GE Healthcare) equilibrated with 25 ml of phosphate buffered saline pH 7.2 (ThermoFisher). Unbound protein was removed by washing with 5 column volumes of PBS pH 7.2 and the target protein was eluted with 25 mM sodium citrate, 25 mM sodium chloride, pH 3.2. The protein solution was neutralized by adding 3% 1 M Tris pH 10.2. The target protein was washed with The samples were concentrated using Ultra-15 concentrator 10 KDa NMWC (Merck Millipore Ltd.).

[0331] The results were analyzed by SDS-PAGE and staining with Coomassie (Imperial R The purity and molecular weight of the purified constructs were analyzed by staining with ELISA kit according to the manufacturer's instructions. Precast gel system (4-12% or 8-16% Bis-Tris, ThermoFisher). The protein concentration of the purified protein samples was determined by measuring the UV absorbance at 280 nm (Nanodrop spectrophotometer, ThermoFisher) divided by the molar extinction coefficient calculated based on the amino acid sequence. The aggregate content of the constructs was analyzed on an Agilent 1200 high performance liquid chromatography (HPLC) system. The samples were injected onto an AdvanceBio size exclusion column ( 4.6 x 150 mm, 2.7 μm, LC column, Agilent).

[0332] P-0315 is a dimeric C-terminal Fc fused IL-15 VitoKine containing uPA and MMP cleavage sequences in the L1 and L2 linkers, respectively. IL-15 is a S58D variant protein. As an example of a protein spectrum showing Fc IL-15 VitoKine, SDS-PAGE analysis of P-0315 (SEQ ID NO: 33) is shown in FIG3A . The size exclusion chromatogram is in FIG3B .

[0333] Example 2

[0334] The in vitro activity of IL-15 is effectively masked in the VitoKine format

[0335] IL-15 VitoKine P-0172 (SEQ ID NO: 27) comprises an IL-15 / IL-15RαSushi+ fusion polypeptide connected by a short GS (SEQ ID NO: 116) peptide linker, which is connected to the C-terminus of the homodimeric Fc domain via a uPA cleavable linker in the homodimeric fusion format. P-0198 is a dimeric C-terminal Fc-IL-15 fusion protein with non-covalently complexed IL-15αSushi. These two molecules have similar configurations between Fc and IL-15 fusions, with major differences in IL-15αSushi incorporation. One is fused by a short GS linker (P-0172), while the other is free by non-covalency (P-0198). The binding activity of P-0172 to IL-2Rβ was determined by enzyme-linked immunosorbent assay (ELISA) and compared with P-0198 (comprising SEQ ID NOs: 45, 44 and 5), a highly active IL-15 / IL-15Rα-Fc fusion protein.

[0336] Briefly, IL-2Rβ-ECD (SEQ ID NO: 12) was coated onto the wells of a Nunc Maxisorp 96-well microplate at 1 μg / well. After incubation overnight at 4°C and blocking with superblock (ThermoFisher), 3-fold serial dilutions of IL-15 compounds starting from 100 nM were added to each well at 100 μl / well. After incubation at room temperature for 1 hour, 100 μl / well of goat anti-human IgG Fc-HRP (1:5000 dilution in diluent) was added to each well and incubated at room temperature for 1 hour. After each step, the wells were thoroughly aspirated and washed three times with PBS / 0.05% Tween-20. Finally, 100 μl of TMB substrate was added to each well, the plate was developed in the dark at room temperature for 10 minutes, and 100 μl / well of stop solution (2N sulfuric acid, Ricca Chemical) was added. The absorbance at 450 nm was determined and the curves were fitted using Prism software (GraphPad). As illustrated in FIG. 4A , VitoKine P-0172 binds to IL-2Rβ with significantly reduced potency compared to P-0198 (12.2 nM vs. 0.21 nM), which may be due to the steric restriction caused by the short covalent linkage between IL-15 and IL-15αSushi, indicating that the IL-15αSushi in the VitoKine platform effectively shields the IL-15 domain from binding to its receptor.

[0337] The functional activity of IL-15 VitoKine P-0172 compared to P-0198 was further evaluated by examining IL-15-mediated induction of CD69 expression on human NK cells and CD8+ T cells from fresh human peripheral blood mononuclear cells (PBMCs) by FACS analysis. CD69 is a cell surface glycoprotein that is induced early during lymphoid activation involving NK cells and T cells.

[0338] In brief, human PBMCs were isolated from buffy coats purchased from Oklahoma Blood Institute by Ficoll-Hypaque centrifugation. Purified human PBMCs were treated with serial dilutions of each IL-15 test compound and incubated at 37°C for 48 hours. Cells were collected by centrifugation at 300 x g and resuspended in FACS buffer. After blocking Fc receptors by adding human TruStain FcX (1:50 dilution), cells were stained with anti-human CD56-FITC antibodies, anti-human CD69-PE antibodies, and anti-human CD8-APC antibodies (1:50 dilution). After incubation with antibodies at room temperature for 30 minutes, cells were collected and washed, resuspended in FACS buffer, and analyzed by flow cytometry. CD69 expression was determined by gating CD56+NK and CD8+T cells, and data were expressed as the % of CD69 positive cells in the gated population.

[0339] As shown in Figures 4B and 4C, VitoKine P-0172 significantly reduced CD69 activation of CD8+ T cells and NK cells, and was only measurable at the highest concentration tested, with potency at least 2-3 logs lower than that of P-0198. This suggests that IL-15 activity is effectively masked in the VitoKine format. The masking effect was more pronounced in the PBMC CD69 activation assay than in the IL-2Rβ ELISA binding assay, indicating that the severe impairment of IL-15 activity under physiological conditions is more pronounced than under in vitro reconstitution conditions of the ELISA. Due to the presence of spatial restrictions, VitoKine severely disrupts the binding of IL-15 to IL-2Rβ and γ expressed on lymphocytes. C complex, and thus leads to inefficient pathway activation and severely impaired activity.

[0340] The biological activity of monomeric IL-15 VitoKine was also examined. P-0170 (SEQ ID NO: 26 and 15) is the monomeric counterpart of P-0172, with the same linker and fusion configuration. Compared with the highly active IL-15 Fc fusion protein P-0166, P-0170 showed a significantly reduced ability to activate CD69 on CD8+ T cells ( Figure 5), indicating that the monomeric VitoKine platform effectively masks the biological activity of IL-15 in the D2 domain.

[0341] Example 3

[0342] Comparison of FcIL-15VitoKine shielding efficiency of different linker lengths and compositions between IL-15 and IL-15αSushi+ and between Fc and IL15

[0343] like Figure 1 As depicted in , IL-15 VitoKine was constructed by fusing human IL-15 between two different domains such as a half-life extending Fc domain and a cognate high affinity co-receptor α domain of IL-15 via peptide linkers L1 and L2. The two linkers connecting Fc and IL-15 vs. connecting IL-15 and IL-15αSushi domain as well as the differential effects of the linker length and composition on the bioactivity of IL-15 were examined to obtain the desired activity impairment.

[0344] FACS analysis of the activation marker CD69 of immune cell subsets of fresh human PBMCs was performed to evaluate IL-15 and IL-15αSushi+IL-15 VitoKine with different lengths of non-cleavable linker (L2) between IL-15 and IL-15αSushi. The same protocol as in Example 2 was followed.

[0345] P-0204 (SEQ ID NO:30), P-0205 (SEQ ID NO:31) and P-0206 (SEQ ID NO:32) are Fc IL-15 vitokines that share the same uPA cleavable linker sequence (L1) between Fc and IL-15, but the linker (L2) connecting IL-15 and IL-15α Sushi+ domains has different lengths in the three Vitokines and is (GGGGS)3 (SEQ ID NO:127), (GGGGS)2 (SEQ ID NO:126) and GGGGS (SEQ ID NO:118), respectively.

[0346] As shown in Figure 6, Fc IL-15 VitoKine with different linker lengths from 5 to 15 amino acids between IL-15 and IL-15αSushi+ all resulted in a significant reduction in the potency of activating CD8+T cells (Figure 6A) or NK cells (Figure 6B). Comparing the potency of P-0206, P-0205, and P-0204, it is obvious that the shorter the linker length connecting IL-15 and IL-15αSushi+ domains, the less active VitoKine becomes; indicating that the extent of reduced activity can be further regulated by the length of the L2 linker; in summary, we shielded IL-15 between the Fc domain and the cognate high affinity co-receptor α of IL-15 by adjusting the length of the linker (L2) between IL-15 and IL-15α to produce an appropriate level of spatial restriction, thereby almost completely losing the activity of IL-15.

[0347] exist Figure 7 The effect of the linker (L1) connecting Fc and IL-15 on the bioactivity of VitoKine was also examined. P-0204 and P-0203 (SEQ ID NO: 29) share the same 15-amino acid flexible (G4S)3 linker (L2) between IL-15 and IL-15Rα, but the length of the L1 linker is different, and P-0203 contains a peptide spacer that is 7 GS residues longer than P-0204 on the flank of the uPA substrate peptide connecting Fc and IL-15. Despite the different lengths of the L1 linker connecting Fc and IL-15, the bioactivity of P-0204 and P-0203 is similar ( Figure 7 ), indicating that the L1 linker connecting Fc and IL-15 has the least detrimental effect on IL-15 activity when spanning 13 to 35 amino acid residues. However, L1 linker lengths less or more than 13 to 35 amino acid residues or in the context of different cytokines may affect the masking activity of the D2 domain. In the same study, P-0202 was included, which shared the same L1 linker connecting Fc and IL-15 with P-0203, but the L2 linker connecting IL-15 and IL-15αSushi domain of P-0202 was 13 amino acids shorter than that of P-0203. P-0202 showed lower biological activity than P-0203, confirming that linker L2 is more important than linker L1 in terms of VitoKine's masking activity.

[0348] The effect of linker composition or linker peptide sequence on VitoKine activity was investigated by measuring Ki67 expression in the nuclei of NK cells and CD8 T cells after IL-15 VitoKine treatment. Ki67 is a marker for cell proliferation, and an ex vivo human PBMC assay was established. Briefly, purified human PBMCs were treated with serial dilutions of IL-15 VitoKine compounds and incubated at 37°C for 5 days. On day 5, cells were washed once with FACS buffer (1% FBS / PBS) and first stained with Fc blocking agent and surface marker antibodies, including anti-human CD56-FITC and anti-human CD8-APC (1:50 dilution). After 30 minutes of incubation and washing, the cell pellet was fully resuspended with 200 μl / well of 1X Foxp3 fixation and permeabilization working solution and incubated in the dark at room temperature for 30 minutes. After centrifugation, 200 μl of 1X permeabilization buffer was added to each well for another wash. The cell pellet was resuspended in permeabilization buffer with anti-human Ki67-PE (1:25 dilution). After incubation at room temperature for 30 minutes, the cells were collected and washed, resuspended in FACS buffer, and analyzed by flow cytometry. Data are expressed as the % of Ki67-positive cells in the gated population.

[0349] Since the L2 linker exerts a significant effect on IL-15 VitoKine activity compared to the L1 linker, we examined the effect of different sequence compositions of the L2 linker on the biological activity of IL-15 VitoKine. P-0351 (SEQ ID NO: 25), P-0488 (SEQ ID NO: 163) and P-0489 (SEQ ID NO: 164) all share the same (G4S) 3 linker (L1) connecting Fc and IL-15. The linkers connecting IL-15 and IL-15Rα are both 10 amino acids in length, but have different sequences. The linker is (G4S) 2 in P-0351, an MMP-14 substrate peptide (SEQ ID NO: 157) in P-0488 or a legumin substrate peptide (SEQ ID NO: 160) in P-0489.

[0350] As shown in Figure 8, all three IL-15 VitoKines had severely impaired efficacy in proliferating NK cells (Figure 8A) or CD8+T cells (Figure 8B) compared to the highly active IL-15 / IL-15RαFc fusion protein P-0156 (SEQ ID NO: 175+176). Different peptide linker sequences had subtle effects on the biological activity of each VitoKine (Figures 8A and 8B), which may be due to the structural flexibility of each linker peptide. The more rigid the L2 linker peptide, the more structural constraints it imposes on the VitoKine molecule, which can lead to more severe activity impairment. However, the L2 linker sequence composition has little effect on the activity of VitoKine, and the data supports that different cleavable linkers can be incorporated as L2 linkers to effectively shield the activity of the D2 domain, thereby expanding the design and application range of VitoKine.

[0351] Taken together, these data demonstrate that the L2 linker connecting the IL-15 (D2) and IL-15RαSushi+ (D3) domains plays an important role in masking D2 activity to produce an inert VitoKine. The level of active inertness can be further tuned by adjusting the L2 linker length and varying the linker sequence / flexibility. The choice of cleavable L2 linker length and sequence should balance the presence of a specific protease at the intended disease indication site, accessibility of the substrate peptide to the protease, and the desired rate of proteolysis.

[0352] Example 4

[0353] Determine appropriate reaction conditions for complete protease cleavage

[0354] Initial in vitro protease cleavage experiments were performed using the IL-15 VitoKine constructs P-0315 and P-0203 to determine the protease cleavability and optimal cleavage conditions of MMP-2 and uPA, respectively. P-0315 (SEQ ID NO: 33) contains a uPA cleavable linker connecting the Fc and IL-15 domains and a MMP-2 / 9 cleavable linker connecting the IL-15 and IL-15RαSushi+ domains. P-0203 (SEQ ID NO: 29) contains a single protease cleavable linker (uPA) connecting the Fc and IL-15 domains. The linker between the IL-15 and IL-15RαSushi+ domains in P-0203 is a flexible (G4S)3 linker. Recombinant human uPA and MMP-2 were purchased from BioLegend. MMP-2 was provided in latent form and activated by p-aminophenylmercuric acetate (APMA, Millipore Sigma) according to the manufacturer's instructions.

[0355] For proteolytic cleavage by MMP-2, 4 μg of P-0315 was incubated with 30 ng, 100 ng, or 300 ng of APMA-activated MMP-2 at 37°C in the manufacturer's recommended assay buffer (100 mM Tris, 20 mM CaCl2, 300 mM NaCl, 0.1% (w / v) Brij 35, pH 7.5) for 3 hours. To stop the reaction, SDS-PAGE loading dye was added to the reaction and the mixture was heated at 95°C for 5 minutes. To assess cleavage, digested samples were separated on 4%-12% Tris-Bis SDS-PAGE gels. Comparison of untreated and treated samples showed that IL-15 VitoKine was completely cleaved after treatment with all tested concentrations of MMP-2. This was indicated by a size change and the appearance of a clear band of ~9 KDa in the SDS page gel ( Fig. 9 ), the ~9KDa sharp band is the IL-15RαSushi+ domain cleaved from P-0315.

[0356] The cleavability of uPA was evaluated by using P-0203. First, different amounts of uPA were added to 2 μg of P-0203 in 20 μl PBS pH 7.2 buffer, and the reaction mixture was incubated at 37°C for 2 hours. The cleavage with 0, 25 ng, 50 ng, 100 ng and 300 ng of uPA is illustrated in Figure 10A. The three arrows in Figure 10A represent non-reduced (NR) samples and indicate the changes in the Fc chain as uPA proteolysis occurs. In the "Partial cut", the IL-15 / IL-15RαSushi+ fusion polypeptide is cleaved from only one of the two Fc chains, while in the "Full cut", the IL-15 / IL-15RαSushi+ fusion polypeptide is cleaved from both Fc chains. The fuzzy bands circled in Figure 10A are IL-15 / IL-15RαSushi+ fusion polypeptides cleaved from the Fc, and the fuzzy appearance is likely due to glycosylation. In the reduced (R) sample, the upper band is the Fc chain attached to the IL-15 / IL-15RαSushi+ fusion polypeptide, and the lower clear band is the Fc chain from which the IL-15 / IL-15RαSushi+ fusion polypeptide has been cleaved.

[0357] The SDS-PAGE gel clearly shows that along with the increase of uPA amount, the amount of the protein of complete cutting in non-reduced sample increases gradually.Equally, the amount of the Fc chain of cracking in the reduced sample increases, indicating that the level of cracking increases.However, there is no condition to cause complete cracking.In order to achieve complete digestion, similar uPA digestion reaction is hatched for a longer time.Figure 10 B shows 2 μ g P-0203 with 50ng, 100ng and 300ng uPA cracking 24 hours at 37 ℃.Data show, 100ng uPA and 24 hours hatching cause almost complete cracking.

[0358] Example 5

[0359] Protease cleavage of Fc IL-15 VitoKine P-0203 to obtain activated IL-15 product

[0360] VitoKine P-0203 (SEQ ID NO: 29) contains a uPA substrate peptide linker (SEQ ID NO: 90) with a spacer peptide flanking both ends that connects Fc and IL-15, and a second 15-amino acid flexible linker (GGGGS) 3 (SEQ ID NO: 127) connects IL-15 and IL-15RαSushi+ domains. In vitro protease cleavage was achieved by incubating 100 μg of VitoKine P-0203 with 5 μg of recombinant human uPA (BioLegend) in 500 μl PBS pH 7.2 buffer for 24 hours at 37°C. To stop the reaction, 25 μl of Ni-Excel resin (50% slurry balanced in PBS, GE Healthcare) was added to remove 6-His-tagged uPA from the solution. At the same time, 50 μl of MabSelectSure protein A resin (50% slurry balanced in PBS, GE Healthcare) was also added to the reaction to remove the cleaved Fc fraction and uncut or incompletely digested P-0203. After incubation with the two affinity resins at room temperature for 15 min, the resin was removed by centrifugation, and the protease-activated P-0203, i.e., IL-15 / IL-15RαSushi+ fusion polypeptide (in Figure 2 11A and 11B , the activated P-0203 fragment migrates with a fuzzy band that is most likely due to glycosylation.

[0361] Example 6

[0362] Protease cleavage of Fc IL-15 VitoKine P-0315 to obtain activated IL-15 product

[0363] VitoKine P-0315 (SEQ ID NO: 33) contains a uPA substrate peptide linker (SEQ ID NO: 92) connecting Fc and IL-15, and a second 10-amino acid MMP-2 / 9 cleavable linker (SEQ ID NO: 95) between the IL-15 and IL-15RαSushi+ domains. The IL-15 domain in P-0315 contains an S58D substitution to enhance binding to the receptor β subunit. Two activated forms of P-0315 are generated by protease digestion.

[0364] An activated form of P-0315 was obtained by in vitro protease cleavage using MMP-2 ( Figure 2 In brief, 660ng of latent MMP-2 (BioLegend) was activated with APMA (Millipore Sigma) according to the manufacturer's instructions, the buffer was changed, and added to P-0315 (80μg) in 0.4ml of the manufacturer's recommended assay buffer (100mM Tris, 20mM CaCl2, 300mM NaCl, 0.1% (w / v) Brij 35, pH 7.5). After incubation at 37°C for 3 hours, 50μl of MabSelectSure protein A resin (50% slurry balanced in PBS, GE Healthcare) was added to the reaction. The desired activated form 1 was eluted with 25mM sodium citrate, 25mM sodium chloride pH 3.2. The protein was neutralized by adding 3% of 1M Tris pH 10.2. To assess cleavage, samples were separated on 4%-12% Tris-Bis SDS-PAGE gels (Figure 12A). P-0315 before MMP-2 digestion in the presence of a reducing agent is shown in lane 1, and lanes 2 and 3 are non-reduced and reduced P-0315 after MMP-2 proteolysis but before protein A purification. The IL-15Rα-sushi+ domain appears as a sharp band at 9 KDa on the gel, confirming efficient cleavage of MMP-2 at the MMP-2 / 9 substrate peptide linker. After protein A purification, samples (lanes 4 and 5) showed the same migration pattern. This data indicates that the IL-15RαSushi+ domain released from the covalent linkage remains non-covalently associated with IL-15, which is fused to Fc, as shown in Figure 12A. Figure 2 This association is strong enough to withstand the low pH conditions during elution of Protein A. Figure 12B further illustrates the two non-covalently associated components of this activated form.

[0365] Another activated form of P-0315 was obtained by proteolytic cleavage of P-0315 by both uPA and MMP-2 ( Figure 2 Schematically illustrated as active form 3). Briefly, 100 μg of P-0315 was incubated with 5 μg in 400 μl PBS pH 7.2 buffer for 20 hours. Then an equal volume of buffer containing 200 mM Tris, 40 mM CaCl2, 450 mM NaCl, 0.2% (w / v) Brij 35, pH 7.5 was added to the reaction to adjust the buffer to close to the manufacturer's recommended MMP-2 assay buffer (100 mM Tris, 20 mM CaCl2, 300 mM NaCl, 0.1% (w / v) Brij 35, pH 7.5). Latent MMP-2 (660 ng) was activated by APMA, the buffer was exchanged for assay buffer, added to the reaction, and incubated at 37°C for 3 hours. Ni-Excel resin (50 μl of a 50% slurry equilibrated in PBS, GE Healthcare) was added to remove His-tagged MMP-2 and uPA from the solution. At the same time, 100 μl of MabSelectSure protein A resin (50% slurry equilibrated in PBS, GE Healthcare) was added to the reaction to remove the cleaved Fc fraction and the remaining uncleaved or incompletely digested P-0315. After incubation with both affinity resins for 15 min at room temperature, the resin was removed by centrifugation and the 5% slurry containing the affinity resin was recovered. Figure 2 12C , P-0315 active form 3 contains the IL-15 / IL-15RαSushi+ non-covalent complex as expected from the dual proteolytic reaction; IL-15 migrates as a fuzzy band, while IL-15RαSushi+ is a sharp band at ˜9 KDa, as observed in active form 2 ( FIG. 12B ).

[0366] Example 7

[0367] Activity Assessment of Protease-Activated Fc IL-15 VitoKine by Human PBMC Assay

[0368] As detailed in Example 2, FACS analysis of the activation marker CD69 of immune cell subsets from fresh human PBMCs was performed to assess the activity of protease-activated IL-15 VitoKine. P-0203 and its corresponding activated form generated by uPA digestion (P-0203 activated form; Figure 213 ). The activity of VitoKine before protease activation was approximately 3 logs lower than that of the highly active IL-15 / IL-15RαFc fusion protein P-0165, which is consistent with the activity of VitoKine described in Example 3. uPA digestion significantly restored the potency of both activated CD56+ NK cells ( FIG. 13A ) and CD8+ T cells ( FIG. 13B ), but was still significantly lower than that of P-0165, which may be due to the covalent linkage of the IL-15 and IL-15α domains. Prolonging the length of the flexible linker connecting IL-15 and IL-15α is expected to enhance the potency of the activated form. Paradoxically, an increase in the length of the linker may also reduce the activity shielding efficiency of the D3 domain and thus result in a VitoKine construct with higher basal activity.

[0369] The bioactivity of another IL-15Fc VitoKine P-0315 and its two activated forms was evaluated by measuring the activation of CD69 in immune cell subsets of activated fresh human PBMCs. As can be seen in Figure 14, the activity of uncleaved P-0315 was barely measurable, confirming the effective shielding of the active moiety in the VitoKine form. Figure 2 As described in, active form 2 of P-0315 comprises Fc-fused IL-15 non-covalently complexed with the IL-15RαSushi+ domain released by MMP-2 cleavage; active form 2 of P-0315 is structurally similar to the positive control P-0313, which is a highly potent IL-15IL-15RαFc fusion protein. Figure 2 As depicted in Figure 14 , the active form 3 of P-0315 contains the free IL-15 domain cleaved from the Fc domain by uPA, and the IL-15RαSushi+ domain released by MMP-2 cleavage, both of which form a non-covalent complex. The two activated forms of P-0315 showed complete or near-complete potency restoration in both activating CD56+NK cells (Figure 14A) and CCD8+T cells (Figure 14B); active form 3 was moderately more active than active form 2. The lack of the Fc domain in active form 3 can be beneficial when transient activation of the intended pathway in the tumor microenvironment is desired.

[0370] The activity of P-0315 before and after MMP-2 proteolysis is also studied by measuring the Ki67 expression in the nuclei of NK cells (Figure 15A) and CD8+T cells (Figure 15B) after treatment. P-0351, which comprises two non-cleavable flexible joints, is included for comparison. These data further demonstrate the active inertness of VitoKine and the recovery of about 3 logarithms of efficacy in both NK cells and CD8+T cells after in vitro proteolytic activation. The observation that P-0351 and P-0315 have the same activity shows that the two cleavable joints in P-0315 remain intact during production, expression and storage, and are specific to their respective proteases.

[0371] In conclusion, cleavage of IL-15 VitoKine P-0315 by MMP-2 / 9 and / or uPA resulted in activation of the molecule and restoration of cytokine activity to levels similar to the highly active IL-15 compound P-0313, with an EC in the subnanomolar range. 50 .

[0372] Example 8

[0373] Fc IL-15 VitoKine has minimal systemic cytokine effects in healthy mice

[0374] The goal of the VitoKine platform technology is to reduce systemic on-target toxicity and enhance the therapeutic window. VitoKine masks active cytokines as an inert state and prevents active cytokines from binding to receptors in the periphery of non-lesional cells or on the cell surface. Therefore, the VitoKine platform limits overactivation of cytokine pathways and reduces undesirable "out-of-tissue" "on-target" toxicity. It is intended that VitoKine is locally activated by proteases that are upregulated in diseased tissues. To evaluate this hypothesis, protease-cleavable and non-cleavable VitoKine were administered to healthy mice and compared with highly active IL-15Fc fusion proteins to evaluate their systemic cytokine effects.

[0375] P-0313 (SEQ ID NO: 47 and 5) is a fully active IL-15 / IL-15RαFc fusion molecule as a positive control. P-0315 (SEQ ID NO: 33) is an Fc IL-15 VitoKine containing two protease cleavable linkers. P-0351 (SEQ ID NO: 25) is an Fc IL-15 VitoKine containing two non-cleavable linkers. Vehicle (PBS) was included as a negative control. Compounds were provided at a single ip injection into healthy BALB / c mice (8-10 weeks old, n=6 / group) at doses of 0.1 mg / kg and 0.3 mg / kg. Blood samples were collected before dosing (day -1) or on days 3, 5, and 7 after dosing for immunophenotyping.

[0376] After lysing red blood cells with BD pharm lysis buffer, total viable mononuclear blood cells were counted by trypan blue dead cell exclusion. After blocking Fc receptors with purified anti-mouse CD16 / CD32 (1:50 dilution), cells were stained with anti-mouse CD3-FITC, anti-mouse CD49b-APC, and anti-mouse CD8-Percpcy5.5 (1:50 dilution). After incubation for 30 minutes, cells were collected and washed, resuspended in FACS buffer, and analyzed by flow cytometry.

[0377] As shown in Figure 16, fully active IL-15 Fc fusion protein P-0313 significantly expanded peripheral blood cytotoxic CD8+T cells (Figure 16A), NK cells (Figure 16B) and total leukocytes (Figure 16C) in a dose-dependent manner at two test doses. Cell expansion was observed on the 3rd day, peaked on the 5th day, and returned close to baseline on the 7th day. In contrast, throughout the 7-day study, cleavable (P-0315) and non-cleavable (P-0351) VitoKine did not show an increase in CD8 T cells. A slight and delayed increase in NK cell expansion was observed in mice treated with high-dose cleavable VitoKine P-0315. P-0351 and low-dose P-0315 did not show signs of increase in any targeted cell population tested. Overall, both tested VitoKines showed minimal systemic activation and expansion of targeted lymphocyte populations compared to the active molecule P-0313, and demonstrated successful masking and delay of IL-15 activity in the periphery.

[0378] Example 9

[0379] Inhibition of colon cancer cell lung metastasis by Fc IL-15 VitoKine in mice

[0380] The anti-metastatic efficacy and immune response of the IL-15 Fc VitoKine molecule were investigated in the mouse CT26 lung metastasis model. Briefly, 1x10 5 Mouse colon cancer cells CT26-WT (ATCC CRL-2638) were injected intravenously into female Balb / C mice (9-11 weeks old). Four Q5D treatments via intraperitoneal injections were started the next day (day 1). The treatment group (6 in total, n=7 / group) included 0.3mg / kg P-0315, 0.3mg / kg P-0351 and 0.1mg / kg P-0313. P-0315 (SEQ ID NO: 33) is an Fc IL-15 VitoKine containing two protease cleavable joints. P-0351 (SEQ ID NO: 25) is an uncleaved Fc IL-15 VitoKine. P-0313 (SEQ ID NO: 47 and 5) is a fully active IL-15 / IL-15RαFc fusion molecule. Vehicle (PBS) was included as a negative control. On the 17th day, all mice were sacrificed for tissue harvesting. Lungs were inflated with 15% India ink and destained in Fekete solution (10% formaldehyde, 5% glacial acetic acid and 60% ethanol).Lung tumor nodules were counted and the anti-metastatic effect was expressed by the different number of tumor nodules between the treatment groups and the vehicle control.

[0381] like Fig.17 As described in , P-0313 has a significant effect in inhibiting the formation and growth of lung metastases. At 0.1 mg / kg, P-0313 treatment resulted in near-complete inhibition of lung metastases. The cleavable VitoKine P-0315 demonstrated 70% inhibition of lung nodule development; the anti-metastatic efficacy of all three doses (0.3 mg / kg, 1 mg / kg, or 3 mg / kg) was comparable. The uncleavable VitoKine P-0351 demonstrated a relatively weaker but still significant effect in reducing metastatic development, suggesting some inherent basal activity at high doses. However, P-0315 demonstrated significantly superior anti-metastatic efficacy to P-0351 (p<0.05; Fig.17 ), suggesting that proteolytic cleavage of one or both linkers in P-0315 and subsequent release of the active form of IL-15 may contribute to the superior in vivo efficacy of P-0315 over P-0351. Tumor metastasis development can lead to increased proteolytic activity near the tumor microenvironment.

[0382] On day 15 (4 days after the third treatment), the immune response after IL-15 compound treatment was investigated by flow cytometric analysis of mouse peripheral blood. Compared to controls, an expansion of CD8+ T cells was observed in mice treated with active IL-15 Fc fusion protein P-0313, but not in mice treated with cleavable VitoKine P-0315 or uncleavable VitoKine P-0351, indicating that the anti-colon cancer metastasis efficacy of VitoKine was observed without VitoKine causing an increase in systemic CD8+ T cells ( Fig.17 and Figure 18A). However, after repeated administration, peripheral blood NK cells increased in all three IL-15 compound-treated groups, with the most significant increase in the non-cleavable VitoKine group (Figure 18B). In the VitoKine-treated group, the increase in systemic expansion of NK cells rather than CD8+T cells indicated that NK cells were more sensitive to IL-15 treatment than CD8+T cells, and that the inherent basal activity of VitoKine may lead to NK cell expansion. Therefore, it is crucial to adjust the dosing concentration of IL-15 VitoKine to reduce residual systemic effects. The significant increase in NK cells in the P-0351 group also suggests that low-potency non-cleavable VitoKine can weakly but continuously activate this pathway and lead to a long-term immune response.

[0383] Example 10

[0384] Fc IL-15 VitoKine P-0315 inhibits established CT26 tumor growth in mice with minimal systemic cytokine activation

[0385] The antitumor efficacy and immune response of Fc IL-15 VitoKine P-0315 compared with the fully active IL-15 / IL-15Rα-Fc fusion protein P-0313 were investigated in the CT26 murine colorectal cancer tumor model. Briefly, female Balb / C mice (10-12 weeks old) were injected subcutaneously in the right flank with 1×10 5 CT26 cells. On day 11, when the average tumor volume was ∼70 mm 3 At 14:00, mice were randomized into three groups (n=11 / group) and received an intraperitoneal injection of 0.1 mg / kg of vehicle (PBS) or P-0315 or P-0313 on the same day of randomization. One additional intraperitoneal injection of each test agent was performed on day 16 (2×Q5D). Tumors were measured three times a week using a caliper, and tumor volume was calculated as follows: volume=0.5×(width) 2x (length). To study immune responses, non-terminal peripheral blood was collected in heparin-treated tubes on day 19. On day 21, all mice were sacrificed for tissue harvest.

[0386] As shown in Figure 19A, PBS-treated mice rapidly developed large subcutaneous tumors, while treatment of mice with P-0315 or P-0313 was roughly equivalent in delaying tumor growth (Figures 19B and 19C). On day 21 after tumor inoculation, the average tumor volume in control-treated mice was ∼1000 mm 3 , compared with an average tumor volume of ∼450 mm in mice treated with P-0315 or P-0313. 3 (****, P < 0.0001; one-way ANOVA with Tukey post hoc test) ( Fig.19D ). Notably, P-0313 initially showed greater reduction in tumor burden than P-0315, but the difference tapered off as treatment progressed. The delayed antitumor effect of P-0315 may be due to the time it takes for the appropriate amount of protease to develop access to and cleave the substrate peptide linker and activate VitoKine.

[0387] Next, the effect of P-0315 on the proliferation of CD8+T cells and NK cells in peripheral blood compared with P-0313 and vehicle was studied by flow cytometry. The effect of P-0315 on the total WBC population and lymphocyte subsets (CD8+T cells and NK cells) in the periphery and spleen was similarly evaluated.

[0388] Injection of fully active IL-15 / IL-15RαFc fusion protein P-0313 into tumor-bearing mice induced significant lymphocyte proliferation and expansion in both peripheral blood and spleen (Figures 20-22). Compared with the PBS group, after P-0313 treatment, Ki67 proliferation in peripheral NK cells increased to 4 times (61% vs. 15%; Figure 20A), and Ki67 proliferation in CD8+ cells increased to 5.3 times (46% vs. 8.6%; Figure 20B). Similarly, P-0313 treatment resulted in significant cell expansion of total leukocytes, NK cells, and CD8+T cells in peripheral blood (Figures 21A-21C) and spleen (Figures 22A-22C). For example, it was observed that the number of total peripheral WCB cells expanded to 6 times, and the number of CD8+T cells expanded to 5 times; the number of NK cells increased significantly to 85 times. In spleen, the most obvious cell expansion (10 times) of NK cells was also observed, followed by CD8+T cells, which expanded to 2.9 times. Total spleen WBC expanded moderately to 1.7 times. The strong activation of cytotoxic CD8+T cells and NK cells is consistent with the overall immunomodulatory properties of IL-15, and effective immune response may be the main contributor to the anti-tumor activity of P-0313 in vivo. However, the lymphocyte subsets that changed significantly in the blood may cause toxicity and reduce the therapeutic index.

[0389] In sharp contrast to P-0313, treatment with Fc IL-15 VitoKine P-0315 resulted in minimal changes in the homeostasis of lymphocyte subsets in the blood. The observations of Ki67 proliferation of peripheral NK cells and CD8+T cells are shown in Figure 20, and the observations of cell expansion of total leukocytes, NK cells, and CD8+T cells in peripheral blood are shown in Figure 21. After P-0315 treatment, the only notable immunopharmacodynamic effect was a 4-fold increase in the number of NK cells in the spleen (Figure 22B). Since P-0315 is roughly equivalent to P-0313 in delaying the growth of established CT26 tumors (Figures 19A- Fig.19D ), so the in vivo antitumor activity of P-0315 may be caused by the proteolysis and subsequent activation of the cleavable linker of VitoKine near the tumor microenvironment. Since the activated VitoKine is only present near the tumor, the response of peripheral lymphocytes to the administration of inert VitoKine molecules is far less obvious than that of fully active P-0313.

[0390] In summary, IL-15 Fc VitoKine, exemplified by P-0315, is able to effectively delay tumor growth without significantly altering the proliferation and expansion of lymphocyte subsets in the blood and spleen. Thus, overactivation of pathways, undesirable "off-tissue" "on-target" toxicities, and undesirable target silencing that are typically associated with fully active cytokines can be prevented or reduced by the VitoKine format without compromising anti-tumor effects.

[0391] Embodiment 11

[0392] Non-cleavable VitoKine as a weakened form of cytokine

[0393] It is known in the art that cytokines that are effective in vitro may not elicit the strongest lymphocyte response in vivo. Highly effective cytokines are often associated with stronger receptor stimulation, internalization and desensitization, reduced signaling, proliferation and function, and increased cell death or clonal depletion. Therefore, cytokines with reduced potency may be highly desirable to prevent overly potent lymphocyte activation and achieve sustained and enhanced pharmacodynamic effects and anti-tumor efficacy in vivo.

[0394] In vitro, the uncleavable Fc IL-15 VitoKine P-0351 exhibited a significant reduction in potency compared to the fully active IL-15 compound, but P-0351 showed anti-metastatic efficacy and significant NK cell responses in the mouse CT26 lung metastasis model (Example 8). Therefore, the uncleavable VitoKine construct can be used as a reduced potency cytokine with sustained activity to optimize in vivo pharmacodynamics.

[0395] In terms of inducing Ki67 proliferation in both NK cells and CD8+T cells (Figures 23A and 23B), P-0351 showed the same potency as the benchmark molecule (SEQ ID NO: 177 and 178), which is equivalent to XENP024306 in patent application WO2018071919A1. XENP024306 is an IL-15 / IL-15RαFc fusion molecule containing amino acid substitutions (D30N / E64Q / N65D) in IL-15 and half-life extension mutations in Fc. It is reported that the triple mutation in the IL-15 chain of XENP024306 resulted in a 200-fold reduction in in vitro potency, but XENP024306 was shown to be more active in vivo, which may be due to optimized in vivo pharmacodynamics.

[0396] Likewise, by avoiding or reducing the overactivation and undesirable target silencing typically associated with fully active cytokines, the attenuation of the potency of P-0351 is expected to result in more sustained exposure to improve pharmacodynamics (PD). Thus, P-0651 (SEQ ID NO: 170), the half-life-extended counterpart of P-0351, can promote a longer half-life and further extend PD in vivo.

[0397] Example 12

[0398] Construction and production of Fc IL-2 VitoKine (Treg IL-2 VitoKine) for selective expansion of regulatory T cells for the treatment of autoimmune diseases, inflammatory disorders, transplantation and other disorders

[0399] The goal is to design IL-2 VitoKine constructs that will remain inert until activated locally by proteases upregulated at sites of inflammation. Low doses of wild-type IL-2 that preferentially stimulate Tregs over effector T cells and IL-2 muteins with reduced binding affinity to IL-2Rβ have been reported to expand the selectivity window. These molecules could be developed as therapeutics for the prevention of autoimmune diseases. Interference with IL-2Rβ and / orγ C Additional mutations that combine but do not affect the interaction with IL-2Rα could also expand the selectivity window for Treg activation over Teff.

[0400] IL-2 Fc VitoKine comprises wild-type IL-2 or an IL-2 mutein with increased selectivity for stimulating Tregs over effector T cells as an active moiety, which is reversibly shielded between the Fc domain and IL-2RαSushi (SEQ ID NO: 10). IL-2Rα (SEQ ID NO: 9) comprises two sushi domains separated by a native peptide linker region. The IL-2 VitoKine construct comprises one or two cleavable linkers recognized by proteases that are reported to be upregulated at sites of inflammatory disorders. While the linker connecting the Fc and IL-2 / mutein can be either cleavable or non-cleavable, the linker connecting IL-2 and IL-2RαSushi is preferably capable of being specifically cleaved by a protease.

[0401] The activity of IL-2 mutant proteins that selectively stimulate Tregs is expected to be restored after protease cleavage, release of IL-2Rα from IL-2, and diffusion away. Due to the nM binding affinity between IL-2Rα and IL-2, it is possible that IL-2RαSushi remains non-covalently associated with IL-2 after linker cleavage; therefore, the interaction of IL-2 with IL-2Rα on Treg cells remains blocked. To address this potential problem, IL-2Rα mutant proteins with amino acid substitutions at the interface with IL-2 were designed to weaken their binding to IL-2. Therefore, after protease cleavage of the linker, the IL-2RαSushi mutant can dissociate and then diffuse away from IL-2, which is a similar phenomenon to Figure 2 A slightly different activation mechanism than that described in Fig.26 Schematically illustrated in ).

[0402] Representative amino acid substitutions were made at position 38 (i.e., K38E) and position 43 (i.e., Y43A) of the IL-2Rα domain. Other IL-2Rα variants with substitutions on residues that interact with IL-2 are expected to disrupt the interaction between IL-2 and IL-2Rα and may also be incorporated. As will be appreciated by those skilled in the art, all mutations may be optionally and independently combined in any manner to achieve optimal affinity regulation. IL-2 VitoKine molecules comprising different linker compositions, wild-type or variant IL-2 and wild-type or variant IL-2RαSushi were produced, and their respective sequences are listed in SEQ ID NO:49-65.

[0403] Gene synthesis, expression vector construction, and protein production, purification, and characterization followed the same procedures detailed in Example 1. As an example showing the protein profile of IL-2 VitoKine, SDS-PAGE analysis of P-0320 is shown in Figure 24A. The size exclusion chromatogram in Figure 24B shows that there is <5% aggregation after the initial protein A capture step without a polishing step. The low aggregation tendency indicates that IL-2 VitoKine has a favorable developability profile.

[0404] Example 13

[0405] Construction and production of Fc IL-2 VitoKine (TeffIL-2 VitoKine) for selective expansion of effector T cells for the treatment of cancer and other disorders

[0406] The goal is to design an IL-2 VitoKine construct that will remain inert until locally activated by a protease that is present or upregulated only at the tumor site. The preferential amplification of IL-2 to Treg represents the undesirable effect of IL-2 on cancer immunotherapy, because Treg can inhibit effector T cell response. In order to overcome these limitations, amino acid substitutions at the interface bound to IL-2Rα, including F42A and R38E (PNAS, 1991.88: 4636-4640) are designed for IL-2 to reduce / eliminate binding to IL-2Rα. Other mutations that only interfere with binding to IL-2Rα without affecting interaction with IL-2Rβγ, such as R38A, T41A, T41G, T41V, Y107G, Y107H, Y107L or Y107V, can also be incorporated. As will be appreciated by those skilled in the art, all mutations can be optionally and independently combined in any manner to achieve optimal affinity regulation.

[0407] The Fc IL-2 VitoKine constructs contain wild-type IL-2 or an IL-2 variant with reduced / eliminated binding to IL-2Rα as the active portion, which is reversibly shielded between the Fc domain and IL-2RαSushi (SEQ IDNO: 10). These constructs contain one or two cleavable linkers recognized by proteases that are reported to be upregulated in various types of cancers, such as solid tumors. Although the linker connecting the Fc and IL-2 / mutant protein can be either cleavable or non-cleavable, the linker connecting IL-2 and IL-2RαSushi is preferably capable of being specifically cleaved by the protease. After cleavage, IL-2Rα can preferably associate with IL-2 to increase selectivity for Teff function. After protease cleavage, the IL-2 mutant protein activity is restored after IL-2Rα is released from IL-2 and diffuses away. Figure 1 IL-2 VitoKine molecules incorporating different IL-2 muteins as active moieties are schematically depicted in. Exemplary Fc IL-2 VitoKine molecules for selective expansion of Teff cells were constructed and produced, and their respective sequences are listed in SEQ ID NOs: 59-61.

[0408] Gene synthesis, expression vector construction, and protein production, purification, and characterization followed the same procedures as detailed in Example 1.

[0409] Embodiment 14

[0410] Evaluation of Fc IL-2 VitoKine in vitro activity

[0411] The biological activity of IL-2 VitoKine on T cells was determined by measuring the levels of phosphorylated STAT5 (pStat5) in specific T cell subsets in fresh human PBMCs. Stat5 is known to be involved in the binding of IL-2 to the transmembrane IL-2Rβγ C The downstream intracellular signaling induced by the complex. The levels of pStat5 in fixed and permeabilized cells were measured by flow cytometry using an antibody against the pStat5 peptide. Briefly, human PBMCs were isolated from buffy coats of healthy donors purchased from the Oklahoma Blood Institute by Ficoll-Hypaque centrifugation. 2 × 10 5 Each PBMC was treated with a serial dilution of the test compound for 30 minutes. Then, according to the manufacturer's instructions, the cells were treated with Foxp3 / transcription factor staining buffer set (EBIO). The cells were then fixed with Cytofix buffer and permeabilized with Perm buffer III (BD Biosciences) and then washed. After blocking Fc receptors by adding human TruStain FcX (1:50 dilution), the cells were stained at room temperature for 60 minutes with a mixture of anti-CD25-PE, anti-FOXP3-APC, anti-pSTAT5-FITC and anti-CD4-PerCP-Cy5.5 antibodies at a concentration recommended by the manufacturer. The cells were then collected and washed, resuspended in FACS buffer, and analyzed by flow cytometry. The flow cytometry data of Treg and CD4 effector T cell subsets were gated as Foxp3+ / CD25, respectively. 高 and Foxp3- / CD25 低 Data are expressed as the percentage of pStat5-positive cells in the gated population.

[0412] The pStat5 activation of IL-2 VitoKine P-0320 (SEQ ID NO: 49) and P-0329 (SEQ ID NO: 62) was evaluated compared to P-0250 (SEQ ID NO: 48). P-0320 contains a wild-type IL-2 domain fused at its N-terminus to the Fc domain via a uPA cleavable linker and connected at its C-terminus to the IL-2RαSushi domain via a flexible (GGGGS)3 (SEQ ID NO: 127) linker. P-0329 contains a wild-type IL-2 domain fused at its C-terminus to the Fc domain via a uPA cleavable linker and connected at its N-terminus to the IL-2RαSushi domain via a flexible (GGGGS)3 linker. P-0250 is a highly active IL-2 Fc fusion protein. The percentage of pStat5 positive cells in Treg and CD4+ conventional T cell (Tconv) subsets for the compounds tested are illustrated in Figure 25. It is clearly observed that pStat5 activation in Tregs is significantly reduced and pStat5 activation of CD4+ Tconv cells is barely measurable for both IL-2 VitoKines compared to the fully active IL-2 fusion protein. These data clearly demonstrate the effective masking of IL-2 activity in the VitoKine format.

[0413] Embodiment 15

[0414] Protease Activation and In Vitro Activity Assessment of IL-2 VitoKine

[0415] IL-2 VitoKine P-0382 (SEQ ID NO: 51) comprises a flexible GGGSGGGS linker (SEQ ID NO: 115) connecting Fc and IL-2, and a 10-amino acid MMP-2 / 9 cleavable linker (SEQ ID NO: 77) between IL-2 and IL-2RαSushi domains. The IL-2RαSushi domain in P-0382 contains an amino acid substitution (K38E) designed to reduce the binding affinity of the IL-2RαSushi domain to IL-2, to ensure that the IL-2RαSushi domain dissociates after protease cleavage of the linker and subsequently diffuses away from IL-2.

[0416] P-0382 is activated by in vitro protease cleavage using MMP-2. Briefly, 3.3 μg of latent MMP-2 (BioLegend) was first activated with APMA (Millipore Sigma) according to the manufacturer's instructions, then the buffer was changed and added to 120 μg of P-0382 in 0.4 ml of the assay buffer (100 mM Tris, 20 mM CaCl2, 300 mM NaCl, 0.1% (w / v) Brij35, pH 7.5) recommended by the manufacturer. After incubation at 37°C for 20 hrs, half of the reaction was purified with MabSelectSure protein A resin and the activated VitoKine was eluted with 25 mM sodium citrate, 25 mM sodium chloride pH 3.2. The protein was neutralized by adding 3% of 1 M Tris pH 10.2. The other half of the sample was incubated with Ni-Excel resin to stop the reaction by removing the His-tagged MMP-2 protein, and the activated VitoKine was collected by removing the Ni resin via centrifugation. Protein A purification was performed to confirm that the IL-2RαSushi domain did not non-covalently associate with IL-2 after cleavage from the polypeptide chain, as shown in Figure 2. Fig.26 Schematically illustrated. Samples were evaluated on a 4%-12% Tris-Bis SDS-PAGE as shown in Figure 27. Despite the increased amount of protease and prolonged reaction time compared to the structurally similar IL-15 VitoKine (e.g., P-0315), the reaction did not result in complete cleavage. Comparison of samples treated with MMP-2 purified with and without Protein A purification (Figures 27A and 27B) indeed confirmed that the IL-2RαSushi domain was released from the covalent attachment and was not co-purified with the Fc-IL-2 fusion polypeptide.

[0417] Despite incomplete cleavage, two MMP-2 activated samples, one Ni-Excel flowthrough (active form 1) and the other Protein A eluate (active form 2), were evaluated in the pStat5 activation assay described in Example 13 and the data are illustrated in Figure 28. P-0382 had very low activity in Tregs and was barely measurable for CD4+Tconv cells, again confirming effective masking of the active portion in the IL-2 VitoKine format. Both activated samples showed almost complete recovery of activity. Slightly less potent than P-0250, likely due to incomplete proteolysis.

[0418] The presence of the IL-2RαSushi domain cleaved by MMP-2 in the active form 1 sample did not appear to alter the activity of the activated IL-2 VitoKine, as active forms 1 and 2 were comparable in inducing pStat5 phosphorylation in both Treg cells and Tconv cells (Figures 28A and 28B). The data suggest that the IL-2RαSushi domain generated by MMP-2 cleavage does not associate with IL-2 and should not interfere with the binding of IL-2 to the receptor complex expressed on lymphocytes.

[0419] MMP-2 proteolysis of P-0382 did not produce complete cleavage, and it was inferred that the extension of the cleavable linker could make the substrate peptide more accessible to the protease responsible for cleavage. The 10-amino acid linker in P-0382 (SEQ ID NO: 95) was replaced with a 15-amino acid MMP-2 / 9-cleavable linker (SEQ ID NO: 94) containing additional flanking residues, and a new VitoKine construct P-0398 (SEQ ID NO: 52) was generated. Following the same protocol detailed above, P-0398 was activated by in vitro protease cleavage using MMP-2. Three times lower amounts of MMP-2 (1.5 μg MMP-2 for 180 μg P-0398 and 3.3 μg MMP-2 for 120 μg P-0382) resulted in complete digestion of P-0398, as evidenced by the presence of only a "completely cleaved" band on an SDS-PAGE gel (data not shown).

[0420] The biological activity of activated P-0398 with IL-2RαSushi domain removed by protein A purification was determined in pStat5 assay (Figure 29A and Figure 29B). Activated P-0398 is similar to IL-2 Fc fusion molecule P-0250 in sequence and structure, and they have almost the same effect in inducing Stat5 phosphorylation in both Treg cells and Tconv cells. Although the two VitoKine (P-0382 and P-0398) have significantly impaired biological activity (4 logarithms) due to covalent connection with IL-2RαSushi domain, there seems to be a trend that P-0398 containing longer L2 joints is more active. Similar to the observations of IL-15 Fc VitoKine, the active inert level of IL-2 VitoKine can be further adjusted by adjusting the L2 joint length. Likewise, the choice of cleavable L2 linker length and sequence should be balanced between the presence of a specific protease at the intended disease indication site, accessibility of the substrate peptide to the protease, and the desired rate of proteolysis.

[0421] In summary, IL-2 VitoKine requires a longer L2 linker for optimal enzymatic accessibility to achieve complete proteolysis compared to IL-15 VitoKine. MMP-2 cleavage of exemplary IL-2 VitoKine constructs P-0382 and P-0398 results in full activation of the molecule. The activated IL-2 VitoKine achieves similar biological activity to the highly active IL-2 Fc fusion compound P-0250.

[0422] Example 16

[0423] Construction of antibody VitoKine

[0424] The use of recombinant antibody-cytokine fusion proteins (immunocytokines) is expected to improve the therapeutic index of cytokines by targeting cytokines to disease sites. However, fusing fully active cytokines to antibodies can result in peripheral activation and lack of tumor targeting. The active inertness of VitoKine before activation at the intended treatment site makes the antibody VitoKine a new and innovative form of immunocytokine. In addition to tumor-targeted antibodies, immune checkpoint blocking antibodies that bypass the immunosuppressive effects in the tumor microenvironment or immunostimulatory antibodies that enhance existing responses can also be used to construct antibody VitoKine, which can lead to further enhancement of the anti-tumor activity of the immune system. In addition, antibody VitoKine targeting inflammatory problem sites can be used to treat anti-autoimmune and chronic inflammatory disorders.

[0425] Following this concept, an antibody VitoKine protein containing IL-15 or IL-2 as the D2 domain was constructed. Exemplary antibodies include PD-1 blocking antibody JS-001, PD-L1 blocking antibody Tecentriq, anti-CTLA4 antibody ipilimumab, agonist CD40 antibody RO7009789, tumor antigen targeting antibodies (including L19 for the extracellular domain of fibronectin, rituximab for CD20, Herceptin for Her-2, cetuximab for EGFR) and anti-inflammatory antibodies (Vedolizumab for integrin α4β7 and Humira for TNFα). The sequence of the exemplary antibody VitoKine is listed in SEQ ID NO: 128-143.

[0426] Gene synthesis, expression vector construction, and protein production, purification, and characterization followed the same procedures detailed in Example 1. The bioactivity of the exemplary anti-PDL1 antibody IL-15 VitoKine P-0485 (SEQ ID NOs: 180 and 181) was tested by measuring Ki67 expression in NK cells ( FIG. 30A ) and CD8+ T cells ( FIG. 30B ) after treatment of human PBMCs with the IL-15 VitoKine compound. P-0485 shares the same L1 and L2 linkers and D2 and D3 domains with its Fc VitoKine counterpart P-0315. The data in FIG. 29 show that the two VitoKines have comparable and severely impaired bioactivity compared to the activated P-0315 shown in FIG. 15 . P-0485 appears to have slightly higher potency, which may be due to lymphocyte activation caused by PD-L1 blockade.

[0427] Embodiment 17

[0428] Generation of protease-activatable inert IL-15 fusion protein or IL-2 fusion protein based on IL-15Rβ blocking peptide

[0429] A different approach to produce a protease-activatable inert IL-15 fusion protein or IL-2 fusion protein is to genetically fuse a blocking peptide (e.g., a blocking peptide based on IL-2Rβ) to IL-15 or IL-2 via a cleavable linker. The blocking peptides explored are based on two IL-2Rβ loops (SEQ ID NOs: 97 and 98) containing key residues that make direct contact with IL-15. The peptides listed in Table 13 are based on the sequences of these two loops.

[0430] Table 13

[0431]

[0432] Five peptides L01 to L05 (SEQ ID NO: 97-101) in Table 13 were synthesized and evaluated for binding to IL-15 in an ELISA format. Briefly, IL-15 / IL-15RαSushi+Fc fusion protein P-0153 (SEQ ID NO: 44 and 46) was coated on the wells of a Nunc Maxisorp 96-well microplate at 1 μg / well, and a 3-fold serial dilution of biotinylated peptide starting from 100 μM was added to each well. Streptavidin-HRP complex was added at a concentration recommended by the manufacturer, and the signal was developed by TMB substrate. As depicted in Figure 30, specific binding of L03 (SEQ ID NO: 99) was observed, which is a cyclized loop 2 (SEQ ID NO: 98).

[0433] The sequence based on loop 2 was used as a blocking peptide and incorporated into the IL-15 fusion protein. Exemplary sequences (SEQ NO ID: 102-106) of fusion proteins containing IL-2Rβ-based blocking peptides fused to IL-15 via a cleavable linker and a peptide spacer are shown in Table 13, where bold represents IL-15Rβ-based blocking peptides, wavy underlines represent cleavable linkers, and straight underlines represent spacer peptides. IL-15αSushi+ (SEQ ID NO: 5) was co-expressed with an IL-15 fusion protein containing a blocking peptide and formed a non-covalent complex.

[0434] Gene synthesis, expression vector construction, and protein production, purification, and characterization followed the same procedures detailed in Example 1. These IL-15 fusion proteins containing blocking peptides were first tested in an ELISA assay to assess their ability to bind to IL-2Rβ. Fig.32 As described in, compared with P-0153, there is a moderate reduction in binding affinity due to the connection of different blocking peptides. However, PBMC assays evaluating the activation of immune cells (including CD56+NK cells or CD8+T cells) by these IL-15 fusion proteins containing blocking peptides did not show a significant decrease in activity (data not shown), indicating that the shielding efficiency of the tested blocking peptides is insufficient. Blocking peptides of different lengths can be explored, including the entire extracellular domain of IL-2Rβ, to observe the efficiency of active shielding. The same method can be applied to IL-2 in a similar manner.

[0435] Embodiment 18

[0436] VitoKine format improves developability of fusion proteins

[0437] It is known in the art that naturally occurring IL-2 proteins tend to be less stable and prone to aggregation. This has been demonstrated in our experiments, where wild-type IL-2 Fc fusion protein (P-0250) was expressed at low levels (transiently expressed in HEK-293F cells at about 3 mg / L) with a high tendency to aggregate, as illustrated by the SEC chromatogram depicted in Figure 33A. Four IL-2 VitoKine molecules, P-0320, P-0382, P-0362, and P-0379, were compared with P-0250. P-0320 (SEQ ID NO: 49) comprises a wild-type IL-2 domain, the N-terminus of which is fused to the Fc domain, and the C-terminus of which is connected to the IL-2RαSushi domain. The L1 linker connecting Fc and IL-2 is a cleavable linker containing a uPA substrate peptide and flanking spacer peptides (SEQ ID NO: 92), and the L2 linker between IL-2 and IL-2RαSushi is a flexible (GGGGS)3 linker (SEQ ID NO: 127). P-0382 (SEQ ID NO: 51) differs from P-0320 only in the linker sequence; the L1 linker of P-0382 is a flexible (G3S)2 linker (SEQ ID NO: 115), and the L2 linker is a MMP-2 / 9 cleavable linker (SEQ ID NO: 95). P-0362 (SEQ ID NO: 53) and P-0379 (SEQ ID NO: 59) differ from P-382 in a single point mutation. P-0362 contains a K38E mutation in the IL-2RαSushi domain, while P-0379 contains a F42A substitution in the IL-2 domain. P-0250 (SEQ ID NO: 48) is an IL-2 Fc fusion protein in which IL-2 is fused to the C-terminus of Fc using a flexible (G3S)2 (SEQ ID NO: 115) linker.

[0438] The size exclusion plots for these five molecules are shown in Figures 33A-33E. It is very apparent from the chromatograms that all four IL-2 VitoKine constructs have significantly improved purity characteristics over the IL-2 Fc fusion protein. P-0250 contains over 25% of undesirable high molecular weight material. In contrast, all four VitoKine molecules show a sharp monomer peak with over 96% monomer content. There is no apparent effect of linker variation, mutations in IL-2 or IL-2RαSushi on the quality. This significant increase in protein quality is clearly attributed to the fusion of the IL-2RαSushi domain in VitoKine.

[0439] In addition to protein quality, the expression level of IL-2 VitoKine was also improved, especially the VitoKine format with a GS linker between Fc and IL-2 and a 10 amino acid MMP-2 / 9 activatable linker between IL-2 and IL-2RαSushi. Although protein expression levels may vary between batches due to cell growth conditions, it is clear that the expression level of VitoKine is always several times higher than that of IL-2 Fc fusion protein. Table 14 lists the protein expression titer (mg / L) and the percentage of protein monomer.

[0440] Table 14

[0441] Protein ID Expression titer (mg / L) Monomer detected by SEC P-0250 3.1 74.3% P-0320 9.3 96.2% P-0382 23.3 97.8% P-0362 18.1 100% P-0379 16.6 99.1%

[0442] In addition, the engineering work carried out by the inventors to IL-2 has also identified a single amino acid substitution of serine replaced with isoleucine at position 125, which has resulted in a general improvement in the developability of the IL-2 Fc fusion construct with fully retained biological activity. The Ile substitution at position 125 of IL-2 variants with different mutation backgrounds in wild-type IL-2 and Fc fusion forms all resulted in 4 to 11 times of expression level increases, and the aggregation tendency is consistently low. The expression level (mg / L) and the purity of the material purified by protein A assessed by the aggregation percentage of exemplary molecules by SEC chromatography are summarized in Table 15. Two molecules in the same row of Table 15 have the same other amino acid substitutions, and the difference is only that residue 125 is serine or isoleucine.

[0443] Table 15 The S125I substitution improves the developability profile of various IL-2 Fc fusion proteins

[0444]

[0445] In summary, the VitoKine platform significantly improves the developability profile of proteins, as demonstrated by the increased protein expression and greatly reduced aggregation tendency of the Fc IL-2 VitoKine constructs. In addition, IL-2 (wild type or variant) VitoKine constructs incorporating the beneficial IL-2S125I amino acids may have a further enhanced developability profile.

[0446] Embodiment 19

[0447] VitoKine D3 domain selection can significantly affect protein expression

[0448] The D3 domain of the VitoKine platform was also explored, which is a variant of the homologous receptor of the D2 domain or an unrelated protein domain. Based on crystal structure analysis (Wang et al., Science 310: 1159-1163, 2005), IL-2Rαsushi domains 1 and 2 participate in chain exchange events, and the result is that residues 1-19 of IL-2Rα are part of sushi domain 2, and residues 102-122 are part of sushi domain 1. Such a structural arrangement is reflected in the IL-2RαSushi variant (SEQ ID NO: 147), which contains IL-2Rα (SEQ ID NO: 10) residues 102-122 at the N-terminus and IL-2Rα residues 20-68 at the C-terminus. Such IL-2RαSushi variants contain most of the residues that interact with IL-2, and are presumed to reproduce most of the activity with assumed structural integrity. IL-2 VitoKine P-0321 (SEQ ID NO: 179) was generated by replacing the IL-2RαSushi domain in P-0320 (SEQ ID NO: 49) with the IL-2RαSushi variant. Unexpectedly, P-0321 containing the IL-2RαSushi variant as the D3 domain was not expressed at all or the expression level was so low that no material could be captured and purified.

[0449] Similarly, the IL-15αSushi+ domain in VitoKine P-0315 (SEQ ID NO: 33) was replaced with IL-2RαSushi (SEQ ID NO: 10) and the resulting protein was P-0389 (SEQ ID NO: 42). P-0389 was expressed at significantly lower levels than P-0315. More notably, the purified P-0389 was primarily high molecular weight aggregates, as shown in the SDS-PAGE gel image depicted in FIG. 34A. For comparison purposes, the SDS-PAGE gel image of the corresponding molecule P-0315 is shown in FIG. 34B. In addition, despite the presence of the MMP-2 / 9 substrate peptide in the sequence, the purified P-0389 was resistant to MMP-2 digestion, indicating that the molecule was not properly folded, or that aggregation restricted the access of the protease.

[0450] In summary, D3 is a key component of the VitoKine construct. In addition to functioning as a shielding moiety, D3 can significantly impact the developability profile of the protein, both positively and negatively.

[0451] All articles and methods disclosed and claimed herein can be prepared and executed without excessive experimentation in view of the present disclosure. Although the articles and methods of the present disclosure have been described according to preferred embodiments, it will be obvious to those skilled in the art that variations can be applied to the articles and methods without departing from the spirit and scope of the present disclosure. It is obvious to those skilled in the art that all such variations and equivalents, whether existing or developed later, are considered to be within the spirit and scope of the present disclosure as defined by the appended claims. All patents, patent applications and publications mentioned in the specification indicate the level of ordinary technicians in the field to which the present disclosure belongs. For all purposes, all patents, patent applications and publications are incorporated herein by reference in their entirety, and to the extent that each individual publication is individually and specifically indicated to be incorporated herein by reference in its entirety for any and all purposes. The disclosure exemplarily stated herein can be suitably practiced under the condition that any one or more elements not specifically disclosed herein do not exist. It should be understood, therefore, that although the present disclosure has been specifically disclosed through preferred embodiments and optional features, those skilled in the art may seek changes and variations of the concepts disclosed herein and that such changes and variations are considered to be within the scope of the present disclosure as defined by the appended claims.

[0452] Sequence Listing

[0453] The nucleic acid and amino acid sequences listed in the accompanying sequence listing are shown using the standard letter abbreviations for nucleotide bases and the single letter codes for amino acids as set forth in 37 CFR 1.822.

[0454] SEQ ID NO: 1 is the amino acid sequence of human IL-15 precursor.

[0455] SEQ ID NO: 2 is the amino acid sequence of the mature form of human IL-15.

[0456] SEQ ID NO: 3 is the amino acid sequence of an IL-15 variant polypeptide.

[0457] SEQ ID NO: 4 is the amino acid sequence of human IL-15Rα.

[0458] SEQ ID NO: 5 is the human IL-15Rα, sushi domain + amino acid sequence.

[0459] SEQ ID NO: 6 is the amino acid sequence of human IL-2 precursor.

[0460] SEQ ID NO:7 is the naturally occurring amino acid sequence of the mature form of human IL-2.

[0461] SEQ ID NO: 8 is the wild-type amino acid sequence of the mature form of human IL-2.

[0462] SEQ ID NO: 9 is the amino acid sequence of human IL-2Rα (CD25) precursor.

[0463] SEQ ID NO: 10 is the amino acid sequence of human IL-2Rα, sushi domain.

[0464] SEQ ID NO: 11 is the amino acid sequence of human IL-2Rβ precursor.

[0465] SEQ ID NO: 12 is the amino acid sequence of the human IL-2Rβ extracellular domain.

[0466] SEQ ID NO: 13 is the human IgG1-Fc amino acid sequence.

[0467] SEQ ID NO: 14 is the sequence of human IgG1-Fc with reduced / eliminated effector function.

[0468] SEQ ID NO: 15 is the Knob-Fc amino acid sequence.

[0469] SEQ ID NO: 16 is the Hole-Fc amino acid sequence.

[0470] SEQ ID NO: 17 is the amino acid sequence of the mature form of human IL-4.

[0471] SEQ ID NO: 18 is the amino acid sequence of the mature form of human IL-7.

[0472] SEQ ID NO: 19 is the amino acid sequence of the mature form of human IL-9.

[0473] SEQ ID NO: 20 is the amino acid sequence of the mature form of human IL-10.

[0474] SEQ ID NO: 21 is the sequence of the mature form of human IL-12 subunit alpha.

[0475] SEQ ID NO: 22 is the sequence of the mature form of human IL-12 subunit β.

[0476] SEQ ID NO: 23 is the sequence of the mature form of human IL-23 subunit alpha.

[0477] SEQ ID NO: 24 is the sequence of the mature form of human IL-27 subunit β.

[0478] SEQ ID NOs: 25-43 are the amino acid sequences of various Fc IL-15 VitoKine constructs.

[0479] SEQ ID NO:44 is the amino acid sequence of Hole-Fc-IL-15 fusion protein.

[0480] SEQ ID NO:45 is the amino acid sequence of Knob-Fc-IL-15 fusion protein.

[0481] SEQ ID NO:46 is the amino acid sequence of Knob-Fc-IL-15Rα-Sushi+ fusion protein.

[0482] SEQ ID NO: 47 is the amino acid sequence of the Fc-IL-15S58D fusion protein.

[0483] SEQ ID NO: 48 is the amino acid sequence of the IL-2 fusion protein.

[0484] SEQ ID NOs:49-65 are the amino acid sequences of various Fc IL-2 VitoKine constructs.

[0485] SEQ ID NOs: 66-70 are the amino acid sequences of various IL-15 constructs comprising a blocking peptide.

[0486] SEQ ID NOs: 71-87 and 157-159 are the amino acid sequences of various protease substrate peptides.

[0487] SEQ ID NOs: 88-96 and 160-161 are the amino acid sequences of various protease cleavable linkers comprising various spacer peptides flanking the protease substrate peptide.

[0488] SEQ ID NOs:97-106 are the amino acid sequences of various blocking peptide sequences.

[0489] SEQ ID NOs: 107-127 are the amino acid sequences of various non-cleavable linker sequences.

[0490] SEQ ID NOs: 128-146 are the amino acid sequences of various antibody VitoKine constructs.

[0491] SEQ ID NO: 147 is the human IL-2Rα variant sequence.

[0492] SEQ ID NOs: 148-149 are the amino acid sequences of Hole-Fc-IL-15 fusion constructs.

[0493] SEQ ID NOs: 150-155 are the amino acid sequences of various Fc IL-2 VitoKine constructs.

[0494] SEQ ID NO: 156 is a human IgG1-Fc sequence with reduced / eliminated effector function and extended half-life.

[0495] SEQ ID NOs: 162-165 are the amino acid sequences of various Fc IL-15 VitoKine constructs.

[0496] SEQ ID NO: 166 is the sequence of human IgG1-Fc with reduced / eliminated effector function and extended half-life.

[0497] SEQ ID NO: 167 is the amino acid sequence of Knob-Fc with extended half-life.

[0498] SEQ ID NO: 168 is the amino acid sequence of Hole-Fc with extended half-life.

[0499] SEQ ID NOs: 169-174 are the amino acid sequences of various Fc IL-15 VitoKine constructs.

[0500] SEQ ID NOs: 175-178 are the amino acid sequences of various IL-15 Fc fusion constructs.

[0501] SEQ ID NO: 179 is the amino acid sequence of the Fc IL-2 VitoKine construct.

[0502] SEQ ID NOs: 180-181 are the amino acid sequences of the antibody IL-15 VitoKine constructs.

[0503] SEQ ID NOs: 182-192 are the nucleotide sequences of various Fc IL-15 VitoKine constructs.

[0504] Sequence Listing

[0505] Human IL-15 precursor sequence

[0506]

[0507] Human IL-15 mature form sequence

[0508]

[0509] Human IL-15S58D mutant protein

[0510]

[0511] Human IL-15Rα precursor sequence

[0512]

[0513] Human IL-15Rα, sushi domain+

[0514]

[0515] Human IL-2 precursor sequence

[0516]

[0517] The naturally occurring sequence of the mature form of human IL-2

[0518]

[0519] Human IL-2 mature wild-type sequence

[0520]

[0521] Human IL-2Rα(CD25) precursor sequence

[0522]

[0523] Human IL-2RαSushi

[0524]

[0525] Human IL-2Rβ precursor sequence

[0526]

[0527] Human IL-2Rβ extracellular domain sequence

[0528] Human IgG1-Fc

[0529]

[0530] Human IgG1-Fc with reduced / eliminated effector functions

[0531]

[0532] Knob-Fc

[0533]

[0534] Hole-Fc

[0535]

[0536] Sequence of mature form of human IL-4

[0537]

[0538] Human IL-7 mature form sequence

[0539]

[0540] Human IL-9 mature form sequence

[0541]

[0542] Human IL-9 mature form sequence

[0543]

[0544] Sequence of the mature form of human IL-12 subunit alpha

[0545]

[0546] Sequence of the mature form of human IL-12 subunit β

[0547]

[0548] Sequence of the mature form of human IL-23 subunit alpha

[0549]

[0550] Human TGFβ mature form sequence

[0551]

[0552] P-0351

[0553]

[0554] P-0170 Hole Chain

[0555]

[0556] P-0172

[0557]

[0558] P-0202

[0559]

[0560] P-0203

[0561]

[0562]

[0563] P-0204

[0564]

[0565] P-0205

[0566]

[0567] P-0206

[0568]

[0569] P-0315

[0570]

[0571] P-0316

[0572]

[0573] P-0350

[0574]

[0575] P-0354

[0576]

[0577] P-0355

[0578]

[0579] P-0385

[0580]

[0581]

[0582] P-0386

[0583]

[0584] P-0387

[0585]

[0586] P-0388

[0587]

[0588] P-0389

[0589]

[0590] P-0397

[0591]

[0592] Hole-Fc-IL-15

[0593]

[0594] Knob-Fc-IL-15

[0595]

[0596] Knob-Fc-IL-15Rα-Sushi+

[0597]

[0598] Fc-IL-15 S58D

[0599]

[0600] P-0250

[0601]

[0602]

[0603] P-0320

[0604]

[0605] P-0352

[0606]

[0607] P-0382

[0608]

[0609] P-0398

[0610]

[0611]

[0612] P-0362

[0613]

[0614] P-0380

[0615]

[0616] P-0384

[0617]

[0618] P-0400

[0619]

[0620]

[0621] P-0404

[0622]

[0623] P-0399

[0624]

[0625] P-0379

[0626]

[0627] P-0381

[0628]

[0629]

[0630] P-0383

[0631]

[0632] P-0329

[0633]

[0634] P-0401

[0635]

[0636] P-0402

[0637]

[0638]

[0639] P-0403

[0640]

[0641] Hole-Fc-15p1

[0642]

[0643] Hole-Fc-15p2

[0644]

[0645] Hole-Fc-15p3

[0646]

[0647] p1'-15-Fc

[0648]

[0649]

[0650] p3'-15-Fc

[0651]

[0652] Protease substrate peptide sequences

[0653]

[0654] Protease substrate peptide sequences

[0655]

[0656] Protease substrate peptide sequences

[0657]

[0658] Protease substrate peptide sequences

[0659]

[0660] Protease substrate peptide sequences

[0661]

[0662] Protease substrate peptide sequences

[0663]

[0664] Protease substrate peptide sequences

[0665]

[0666] Protease substrate peptide sequences

[0667]

[0668] Protease substrate peptide sequences

[0669]

[0670] Protease substrate peptide sequences

[0671]

[0672] Protease substrate peptide sequences

[0673]

[0674] Protease substrate peptide sequences

[0675]

[0676] Protease substrate peptide sequences

[0677]

[0678] Protease substrate peptide sequences

[0679]

[0680] Protease substrate peptide sequences

[0681]

[0682] Protease substrate peptide sequence 1

[0683]

[0684] Protease substrate peptide sequences

[0685]

[0686] Protease cleavable linker sequence

[0687]

[0688] Protease cleavable linker sequence

[0689]

[0690] Protease cleavable linker sequence

[0691]

[0692] Protease cleavable linker sequence

[0693]

[0694] Protease cleavable linker sequence

[0695]

[0696] Protease cleavable linker sequence

[0697]

[0698] Protease cleavable linker sequence

[0699]

[0700] Protease cleavable linker sequence

[0701]

[0702] Protease cleavable linker sequence

[0703]

[0704] Peptide sequence

[0705]

[0706] Peptide sequence

[0707]

[0708] Peptide sequence

[0709]

[0710] Peptide sequence

[0711]

[0712] Peptide sequence

[0713]

[0714] Peptide sequence

[0715]

[0716] Peptide sequence

[0717]

[0718] Peptide sequence

[0719]

[0720] Peptide sequence

[0721]

[0722] Peptide sequence

[0723]

[0724] Non-cleavable linker sequence

[0725]

[0726] Non-cleavable linker sequence

[0727]

[0728] Non-cleavable linker sequence

[0729]

[0730] Non-cleavable linker sequence

[0731]

[0732] Non-cleavable linker sequence

[0733]

[0734] Non-cleavable linker sequence

[0735]

[0736] Non-cleavable linker sequence

[0737]

[0738] Non-cleavable linker sequence

[0739]

[0740] Non-cleavable linker sequence

[0741]

[0742] Non-cleavable linker sequence

[0743]

[0744] Non-cleavable linker sequence

[0745]

[0746] Non-cleavable linker sequence

[0747]

[0748] Non-cleavable linker sequence

[0749]

[0750] Non-cleavable linker sequence

[0751]

[0752] Non-cleavable linker sequence

[0753]

[0754] Non-cleavable linker sequence

[0755]

[0756] Non-cleavable linker sequence

[0757]

[0758] Non-cleavable linker sequence

[0759]

[0760] Non-cleavable linker sequence

[0761]

[0762] Non-cleavable linker sequence

[0763]

[0764] Non-cleavable linker sequence

[0765]

[0766] JS001-IL-15-VitoKine-HC

[0767]

[0768] JS001-Lκ

[0769]

[0770] Ipilimumab-IL-15-VitoKine-HC

[0771]

[0772] Ipilimumab-Lκ

[0773]

[0774]

[0775] RO7009789-IL-15-VitoKine-HC

[0776]

[0777] RO7009789-Lκ

[0778]

[0779] L19-IL-15-VitoKine-HC

[0780]

[0781] L19-Lκ

[0782]

[0783] Rituximab-IL-2-VitoKine-HC

[0784]

[0785]

[0786] Rituximab-Lκ

[0787]

[0788] Herceptin-IL-2-VitoKine-HC

[0789]

[0790] Herceptin-Lκ

[0791]

[0792] Cetuximab-IL-2-VitoKine-HC

[0793]

[0794]

[0795] Cetuximab-Lκ

[0796]

[0797] JS001-IL-2-VitoKine-HC

[0798]

[0799] Vedolizumab-IL-2-VitoKine-HC

[0800]

[0801] Vedolizumab-Lκ

[0802]

[0803] Humira-IL-2-VitoKine-HC

[0804]

[0805] Humira-Lκ

[0806]

[0807] IL-2Rα domain-swapped Sushi

[0808]

[0809] Hole-Fc-IL-15-2

[0810]

[0811] Hole-Fc-IL-15-3

[0812]

[0813] P-0420

[0814]

[0815] P-0421

[0816]

[0817] P-0423

[0818]

[0819] P-0424

[0820]

[0821] P-0425

[0822]

[0823] P-0426

[0824]

[0825] Human IgG1-Fc with reduced / eliminated effector function and extended half-life

[0826]

[0827] Protease substrate peptide sequences

[0828]

[0829] Protease substrate peptide sequences

[0830]

[0831] Protease substrate peptide sequences

[0832]

[0833] Protease cleavable linker sequence

[0834]

[0835] Protease cleavable linker sequence

[0836]

[0837] P-0660

[0838]

[0839] P-0488

[0840]

[0841] P-0489

[0842]

[0843] P-0661

[0844]

[0845] Human IgG1-Fc with reduced / eliminated effector function and extended in vivo half-life

[0846]

[0847] Knob-Fc with extended in vivo half-life

[0848]

[0849] Hole-Fc with extended in vivo half-life

[0850]

[0851] P-0650

[0852]

[0853] P-0651

[0854]

[0855] P-0662 Hole Chain

[0856]

[0857] P-0663 Hole chain with extended half-life

[0858]

[0859]

[0860] P-0664 Hole chain with extended half-life

[0861]

[0862] P-0665 Hole Chain with Extended Half-Life

[0863]

[0864] P-0156 Knob-Chain

[0865]

[0866] P-0156 hole-chain

[0867]

[0868] Benchmark chain 1

[0869]

[0870]

[0871] Benchmark Chain 2

[0872]

[0873] P-0321

[0874]

[0875] Tecentriq-IL-15-VitoKineHC

[0876]

[0877] Tai Shengqi-Lκ

[0878]

[0879] P-0315

[0880]

[0881]

[0882] P-0350

[0883]

[0884] P-0351

[0885]

[0886]

[0887] P-0650

[0888]

[0889] P-0651

[0890]

[0891] P-0662 Chain 1

[0892]

[0893] P-0662 Chain 1

[0894]

[0895] P-0663 Chain 1

[0896]

[0897]

[0898] P-0664 Chain 1

[0899]

[0900] P-0665 Chain 1

[0901]

[0902] P-0663 / P-0664 / P-0665 Chain 2

[0903]

Claims

1. A bioactivatable polypeptide drug construct, said construct being D1-D2-D3 in the N-terminal to C-terminal direction, comprising: 1) a functional portion D1 domain, 2) a bioactivatable portion D2 domain, and 3) a shielding portion D3 domain; wherein said functional portion D1 domain is selected from the group consisting of: a D1 domain that functions to target said bioactivatable portion to an intended treatment site, a D1 domain that functions to target said bioactivatable portion to an intended treatment site and prolong the half-life of D2, and a D1 that functions to target said bioactivatable portion to an intended treatment site and maintain it at the intended treatment site; wherein D3 is capable of shielding the functional activity of D2 until D2 is activated at the intended treatment site; wherein D1 is an Fc domain consisting of the amino acid sequence set forth in SEQ ID NO: 14 or SEQ ID NO: 15; wherein D2 is an IL-15 polypeptide consisting of the amino acid sequence set forth in SEQ ID NO: 2 or 3; and wherein D3 is a cognate receptor / binding partner of IL-15 and consists of the amino acid sequence set forth in SEQ ID NO: 5; wherein D2 is attached to D1 via a peptide linker L1 selected from the group consisting of a protease-cleavable peptide linker and a non-cleavable peptide linker; and wherein D2 is attached to D3 via a peptide linker L2 selected from the group consisting of a protease-cleavable peptide linker and a non-cleavable peptide linker.

2. The construct according to claim 1, wherein the protease-cleavable peptide linker is selected from the group of sequences listed in SEQ ID NOs: 71-96 and 157-161.

3. The construct according to claim 1, wherein the non-cleavable peptide linker is selected from the group of sequences listed in SEQ ID NOs: 107-127.

4. The construct according to any one of claims 1 to 3, wherein both L1 and L2 are protease-cleavable peptide linkers.

5. The construct according to any one of claims 1 to 3, wherein both L1 and L2 are non-cleavable peptide linkers.

6. The construct according to any one of claims 1 to 3, wherein L1 is a protease-cleavable peptide linker, and L2 is a non-cleavable peptide linker.

7. The construct according to any one of claims 1 to 3, wherein L1 is a non-cleavable peptide linker and L2 is a protease cleavable peptide linker.

8. The construct of claim 1, wherein the construct consists of the amino acid sequence listed in SEQ ID NOs: 25, 27-38 and 162-165.

9. The construct according to claim 1, wherein the construct consists of the amino acid sequence listed in SEQ ID NO: 25 or 33.

10. A pharmaceutical composition comprising the construct according to any one of claims 1 to 9 in admixture with a pharmaceutically acceptable carrier.

11. Use of a construct according to any one of claims 1 to 9 for the preparation of a pharmaceutical composition for the treatment of colorectal cancer or lung metastasis of colon cancer.

12. The use of claim 11, wherein the treatment further comprises a second therapeutic agent or therapy capable of treating cancer or cancer metastasis in the subject.

13. A nucleic acid molecule encoding the bioactivatable polypeptide drug construct according to any one of claims 1 to 9. An expression vector comprising the nucleic acid molecule according to claim 13 .

15. A host cell comprising the expression vector according to claim 14.

16. A method for producing a bioactivatable polypeptide drug construct according to any one of claims 1 to 9, the method comprising culturing the host cell according to claim 15 under conditions that promote the expression of the bioactivatable polypeptide drug construct, and recovering the bioactivatable polypeptide drug construct protein.

17. An isolated bioactivatable polypeptide drug construct protein produced by the method according to claim 16.

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