Biased il2 muteins, methods and compositions

IL2 muteins with altered receptor binding preferences address the toxicity issues of high-dose IL2 therapy by preferentially activating CD25+ T cells, reducing NK cell activation and systemic toxicity, and maintaining anti-tumor efficacy.

JP2025160450APending Publication Date: 2025-10-22SYNTHEKINE INC
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Patent Information

Application Number
JP2025129829
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-01-12
Filing Date
2025-08-04
Publication Date
2025-10-22

AI Technical Summary

Technical Problem

Current IL2 therapies for cancer treatment, such as high-dose IL2, induce severe toxicities like capillary leak syndrome due to activation of regulatory T cells and NK cells, limiting their therapeutic efficacy and requiring specialized management in healthy patients.

Method used

Development of human IL2 muteins with altered binding characteristics that preferentially activate CD25+ T cells over NK cells, reducing systemic toxicity while maintaining anti-tumor efficacy by retaining binding to CD25 and CD122, and reducing binding to CD132.

Benefits of technology

The IL2 muteins effectively treat neoplastic diseases with reduced NK-mediated toxicity and systemic side effects, promoting the proliferation of antigen-activated T cells without activating regulatory T cells, thus enhancing therapeutic outcomes.

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Abstract

To provide human interleukin-2 (hIL2) muteins, pharmaceutical formulations thereof, methods for preparing interleukin-2 muteins, recombinant vectors and cells comprising a nucleic acid encoding IL2 mutein, and methods for treating human diseases.SOLUTION: Disclosed herein is a pharmaceutical composition comprising a polypeptide comprising a specific sequence or a nucleic acid encoding the polypeptide for treating a human subject suffering from a neoplastic disease, where the polypeptide does not contain a certain amino acid substituting group, exhibits reduced binding to CD132 compared with a wild type hIL2 of a specific amino acid sequence, and when the polypeptide is contacted with CD25POST cells and CD25negT cells, the ratio of pSTAT5 induction on CD25POST cells to pSTAT5 induction on CD25negT cells is larger as compared with the wild type hIL2, and the polypeptide comprises a certain mutation set.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] Federal Funding Statement No federal funding was used in the conception or reduction to practice of the subject matter of this disclosure.

[0002] Related Applications This application claims priority to U.S. Provisional Patent Application No. 62 / 961,141, filed January 14, 2020, and U.S. Provisional Patent Application No. 63 / 136,599, filed January 12, 2021, each of which is incorporated by reference for all purposes. [Background technology]

[0003] Background of the Invention Tumor immunotherapy: Tumor immunotherapy (or cancer immunotherapy) is a form of neoplastic disease treatment based on enhancing the immune system's innate ability to attack neoplastic cells. Although current understanding of immune system mechanisms has greatly aided the development of cancer immunotherapeutic agents, the concept of modulating the immune system to treat cancer may date back more than 100 years. Currently, there are various approaches to cancer immunotherapy, including anticancer vaccines, engineered immune cells, allogeneic TIL therapy, cytokines, and checkpoint-modulating antibodies. The general principle underlying all of these approaches is the fundamental belief that a subject's innate and adaptive immune systems are effective in attacking neoplastic cells and eliminating the neoplasm. Antitumor immunity in human cancer patients is limited by the low abundance of antitumor immune checkpoint-positive CD8+ T cells and / or their exhaustion.

[0004] Interleukin 2:IL2 is a pluripotent cytokine produced by antigen-activated T cells. IL2 exerts a wide range of effects on the immune system, playing an important role in regulating immune activation, suppression, and homeostasis. IL2 promotes the proliferation and expansion of activated T lymphocytes, induces the proliferation and activation of naive T cells, enhances B cell growth, and promotes the proliferation and expansion of NK cells. Human interleukin-2 (IL2) is a 133-amino acid, four-alpha helix bundle cytokine. IL2 is a member of the IL2 family of cytokines, which includes IL2, IL-4, IL-7, IL-9, IL-15, and IL-21. However, the function of IL2 is nonredundant, as evidenced by gene knockout in mice (Schorle, et al. (1991) Nature 352(6336): 621-624). The amino acid sequence of hIL2 (SEQ ID NO:1) can be found at Genbank accession locator NP_000577.2.

[0005] IL2 receptor: IL-2 exerts its effects on mammalian immune cells through interactions with three distinct cell surface proteins: (1) CD25 (also called IL2 receptor alpha, IL2Rα, p55), CD122 (also called interleukin-2 receptor beta, IL2Rβ, IL15Rβ, and p70-75), and CD132 (interleukin-2 receptor gamma, IL2Rγ; or common gamma chain because it is a component of other multimeric receptors in the IL2 receptor family).

[0006] CD25(IL2Rα): CD25 is a 55 kD polypeptide that is constitutively expressed on Treg cells and inducibly expressed on other T cells in response to activation. -8It binds to hCD25 with a Kd of M. CD25 is also referred to in the literature as the "low affinity" IL2 receptor. Human CD25 ("hCD25") is expressed as a 272-amino acid preprotein containing a 21-amino acid signal sequence, which is removed posttranslationally to yield a 251-amino acid mature protein. Amino acids 22-240 (amino acids 1-219 of the mature protein) correspond to the extracellular domain. Amino acids 241-259 (amino acids 220-238 of the mature protein) correspond to the transmembrane domain. Amino acids 260-272 (amino acids 239-251 of the mature protein) correspond to the intracellular domain. The intracellular domain of CD25 is relatively small (13 amino acids) and is not associated with any independent signaling activity. The IL2 / CD25 complex has not been observed to produce a detectable intracellular signaling response. The nucleic acid and protein sequences of human CD25 can be found under GenBank accession numbers NM_000417 and NP_0004Q8, respectively.

[0007] CD122 (IL2Rβ): CD122 is a single-pass, type I transmembrane protein. Human CD122 (hCD122) is expressed as a 551-amino acid preprotein, the first 26 of which contain a signal sequence. The signal sequence is cleaved posttranslationally to yield a 525-amino acid protein. Amino acids 27-240 (amino acids 1-214 of the mature protein) correspond to the extracellular domain, amino acids 241-265 (amino acids 225-239 of the mature protein) correspond to the transmembrane domain, and amino acids 266-551 (amino acids 240-525 of the mature protein) correspond to the intracellular domain. As used herein, the term CD122 includes naturally occurring variants of the CD122 protein, including CD122 variants containing S57F and D365E substitutions (numbered according to the mature hCD122 protein). hCD122 is referenced in the UniProtKB database as entry P14784. The nucleic acid and protein sequences for human CD122 can be found under GenBank accession numbers NM_000878 and NP_000869, respectively.

[0008] CD132 (IL2Rγ): CD132 is a type 1 cytokine receptor and is referred to in the literature as the "common" gamma chain because it is shared by the receptor complexes for IL-4, IL-7, IL-9, IL-15, and IL-21. Human CD132 (hCD132) is expressed as a 369-amino acid preprotein, including a 22-amino acid N-terminal signal sequence. Amino acids 23-262 (amino acids 1-240 of the mature protein) correspond to the extracellular domain, amino acids 263-283 (amino acids 241-262 of the mature protein) correspond to the 21-amino acid transmembrane domain, and amino acids 284-369 (amino acids 262-347 of the mature protein) correspond to the intracellular domain. hCD132 is referenced in the UniProtKB database as entry P31785. The nucleic acid and protein sequences for human CD132 can be found under GenBank accession numbers NM_000206 and NP_000197, respectively.

[0009] Intermediate and high affinity receptors for IL2: In addition to the "low affinity" CD25 IL2 receptor, two additional IL2 receptor complexes have been characterized: (a) the "intermediate affinity" dimeric IL2 receptor (also referred to as "IL2Rβγ"), which comprises CD122 and CD132, and (b) the "high affinity" trimeric IL2 receptor complex (also referred to as "IL2Rαβγ"), which comprises CD25, CD122, and CD132 proteins. hIL2 is expressed at approximately 10 fold relative to the intermediate affinity CD122 / CD132 (IL2βγ) receptor complex. -9 hIL2 has a Kd of approximately 10 M for the high IL2 affinity receptor complex. -11 It has a Kd of M.

[0010] IL2 receptor expression:The IL2 receptor is expressed on the surface of most lymphoid cells, particularly T cells, NK cells, and B cells, although expression levels vary and depend on various factors, including the activation stage of the cells. Resting T cells and NK cells express almost exclusively the intermediate-affinity dimeric IL2 receptor, consisting of two signaling receptors, CD122 and CD132. They exhibit relatively low responsiveness to IL2 because they primarily express the intermediate-affinity CD122 / CD132 complex, which has a relatively low affinity for IL2 compared to the CD25 / CD122 / CD132 high-affinity receptor. In contrast, activated T cells and regulatory T cells express the high-affinity trimeric IL2 receptor, consisting of CD25, CD122, and CD132. TCR-activated T cells (i.e., so-called "antigen-experienced" T cells) express the high-affinity trimeric IL2 receptor. T cells, including tumor-infiltrating T cells ("TIL") and tumor-recognizing cells, upregulate CD25 and CD122 upon receiving T cell receptor (TCR) signals (Kalia, et al. (2010) Immunity 32(1): 91-103). Upregulation of CD25 and CD122 receptors in response to T cell receptor (TCR) signals renders antigen-activated T cells highly sensitive to IL2 cytokines. Tregs constitutively express CD25 and therefore express high-affinity trimeric IL2 receptors, whereas TCR-activated T cells express higher levels of trimeric receptors than regulatory T cells. As a result, antigen-induced expansion of antigen-activated T cells in the host significantly exceeds the expansion of Tregs. (Humblet-Baron, et al. (2016) J Allergy Clin Immunol 138(1): 200-209 e208 (Non-Patent Document 3)).

[0011] IL2 / IL2 receptor interaction:Monomeric IL2 forms complexes with both the trimeric "high affinity" form of the IL2 receptor and the dimeric intermediate affinity receptor through binding to the extracellular domains of the receptor components expressed on the cell surface (Wang, et al. (2005) Science 310:159-1163). IL2 binding to CD25 induces a conformational change in IL2 that promotes improved binding to CD122. IL2 mutants that mimic the conformational change induced by CD25 binding exhibit improved binding to CD122 (Levin, et al. (2012) Nature 484(7395): 529-533). CD132 association results in the formation of a dimeric intermediate affinity receptor complex or a trimeric high affinity receptor complex that are involved in intracellular signaling. In addition to resulting in intracellular signaling through the JAK / STAT pathway (e.g., phosphorylation of STAT5) and other cellular systems, interaction of hIL2 with the hIL2 high-affinity trimeric receptor on cells initiates a process in which CD122 is internalized, and membrane-bound CD25 is released from activated cells as a soluble protein (termed "soluble CD25" or "sCD25"), as well as triggering the release of IL2, which is endogenously produced by activated cells and can act in an autocrine and / or paracrine manner.

[0012] Use of IL2 in the treatment of human cancers:Recombinant hIL2 is indicated for the treatment of adult humans with metastatic melanoma and metastatic renal cell carcinoma. Therapeutic application of high-dose hIL2 (HD-hIL2) induces tumor rejection in highly immune-infiltrated melanoma and renal cell carcinoma (Atkins, et al. (1999) J Clin Oncol 17(7):2105-2116 (Non-Patent Document 6)). However, HD-hIL2 therapy is associated with severe dose-limiting toxicities, including neutrophil dysfunction, fever, hypotension, and diarrhea, requiring specialized management. Dutcher, et al. (2014) J Immunother Cancer 2(1): 26 (Non-Patent Document 7). HD-hIL2 therapy activates most lymphoid cells, including naive T cells and NK cells, which primarily express intermediate-affinity receptors (CD122 / CD132), and CD25+ regulatory T cells (Tregs), which express high-affinity trimeric receptors (CD25 / CD122 / CD132). HD-hIL2 monotherapy can also induce systemic capillary leak syndrome, which can be fatal. This limits the use of HD-IL2 therapy to primarily young, extremely healthy patients with normal cardiopulmonary function. HD-IL2 therapy is typically administered in a hospital setting, often requiring admission to an intensive care unit.

[0013] Clinical experience has demonstrated that HD-IL2 treatment activates not only naive T cells and NK cells, which primarily express intermediate-affinity receptors, but also CD25+ regulatory T cells (Tregs), which mediate the activity of CD8+ T cells. Tregs are particularly sensitive to IL2 due to the constitutive expression of CD25 on Tregs. To avoid preferential activation of Tregs, IL2 variants designed to avoid binding to CD25 and have improved binding to the intermediate-affinity CD122 / CD132 receptors, which activate NK cells and resting CD8+ T cells, have been developed and are in clinical development. Such IL2 muteins are often referred to in the literature as "non-α-IL2" or "β / γ-IL2" muteins. However, such "non-α-IL2" or "β / γ-IL2" muteins also have reduced binding to CD25, thereby avoiding binding to antigen-activated T cells, which has been identified as a primary mediator of anti-tumor T cell responses (Peace, DJ and Cheever, MA (1989) J Exp Med 169(1):161-173).

[0014] Furthermore, preclinical studies have implicated NK cells as the dominant mechanism of IL2-mediated acute toxicity. Assier E, et al. (2004) J Immunol 172:7661-7668 (Non-Patent Document 9). Because NK cells express the intermediate-affinity (CD122 / CD132; β / γ) IL2 receptor, the nature of such β / γ-IL2 muteins is to enhance the proliferation of such NK cells, which may result in enhanced toxicity. Furthermore, although Tregs are associated with the downregulation of CD8+ T cells, they have also been shown to limit IL2-mediated off-tumor toxicity (Li, et al. (2017) Nature Communications 8(1):1762 (Non-Patent Document 10)). Although nitric oxide synthase inhibitors have been suggested to ameliorate VLS symptoms, the common approach when VLS is observed is to discontinue IL2 therapy. Low-dose IL2 regimens have been tested in patients with HD to alleviate VLS associated with IL2 treatment. While low-dose IL2 treatment regimens partially ameliorate VLS toxicity, this lower toxicity is achieved at the expense of optimal therapeutic outcome in the treatment of the neoplasm.

[0015] In light of the pluripotent effects of hIL2 and its demonstrated ability to modulate the activity of a wide variety of cell types relevant to human disease, IL2 muteins that retain certain desirable characteristics of the native molecule while minimizing undesirable characteristics depending on the therapeutic situation remain an active area of ​​research. [Prior art documents] [Non-patent literature]

[0016] [Non-Patent Document 1] Schorle, et al. (1991) Nature 352(6336): 621-624 [Non-patent document 2] Kalia, et al. (2010) Immunity 32(1): 91-103 [Non-patent document 3] Humblet - Baron, et al. (2016) J Allergy Clin Immunol 138(1): 200 - 209 e208 [Non - Patent Document 4] Wang, et al. (2005) Science 310:159 - 1163 [Non - Patent Document 5] Levin, et al. (2012) Nature 484(7395): 529 - 533 [Non - Patent Document 6] Atkins, et al. (1999) J Clin Oncol 17(7):2105 - 2116 [Non - Patent Document 7] Dutcher, et al. (2014) J Immunother Cancer 2(1): 26 [Non - Patent Document 8] Peace, D. J. and Cheever, M. A. (1989) J Exp Med 169(1):161 - 173 [Non - Patent Document 9] Assier E, et al. (2004) J Immunol 172:7661 - 7668 [Non - Patent Document 10] Li, et al. (2017) Nature Communications 8(1):1762 [Summary of the Invention]

[0017] Summary of the Disclosure The present disclosure relates to human interleukin-2 (IL2) muteins that exhibit altered binding characteristics to one or more IL2 receptors and their use in the treatment of neoplastic diseases. The hIL2 muteins of the present disclosure retain the desirable biological functions of IL2 (e.g., T cell proliferation and cytotoxic activity of antigen-activated T cells) without the systemic toxicity associated with HD IL2 treatment. Moreover, the compositions of the present disclosure exhibit significantly lower levels of NK-mediated toxicity, including but not limited to, capillary leak syndrome, compared to wild-type IL2 or β / γ-IL2 muteins. The hIL2 muteins of the present disclosure retain binding to CD25 and CD122, but exhibit reduced binding to CD132, and preferentially activate CD25+ T cells over NK cells.

[0018] IL2 mutein:The present disclosure provides compositions comprising, and methods of using, human IL2 ("hIL2") muteins useful for the treatment and / or prevention of neoplastic disease, wherein the hIL2 muteins exhibit reduced binding affinity to CD132 compared to wild-type hIL2 ("wt hIL2"). In some embodiments, the hIL2 muteins exhibit reduced binding affinity to CD132 compared to wt hIL2, while retaining significant binding affinity to CD122 and / or CD25. In some embodiments, the hIL2 muteins exhibit reduced binding affinity to CD132 compared to wt hIL2, while retaining binding affinity to CD122 that is equal to or greater than wt hIL2. In some embodiments, the hIL2 muteins exhibit reduced binding affinity to CD132 compared to wt hIL2, while retaining binding affinity to CD25 that is equal to or greater than wt hIL2. In some embodiments, the hIL2 mutein exhibits reduced binding affinity to CD132 compared to wt hIL2, and retains binding affinity to CD122 and CD25 equal to or greater than wt hIL2. In some embodiments, the hIL2 mutein exhibits reduced binding affinity to CD132 compared to wt hIL2, and exhibits improved binding affinity to CD122 in the presence of CD25, membrane-bound CD25, or sCD25 equal to or greater than wt hIL2. In some embodiments, the hIL2 mutein exhibits reduced binding affinity to CD132 compared to wt hIL2, and exhibits improved binding affinity to CD122 in the presence of sCD25 equal to or greater than wt hIL2. In some embodiments, the hIL2 mutein exhibits reduced binding affinity to hCD132 compared to wt hIL2, and exhibits improved binding affinity to the hCD25 / hCD122 receptor complex and / or the high-affinity hCD25 / hCD122 / hCD132 receptor complex compared to wt hIL2. In one aspect, the present disclosure provides hIL2 muteins that exhibit significant or improved binding affinity to hCD25 compared to wild-type hIL2 and exhibit reduced binding affinity to the extracellular domain of the hCD132 receptor. In some embodiments, the hIL2 muteins of the present disclosure contain one or more amino acid substitutions that reduce CD132 receptor binding.In some embodiments, the one or more amino acid substitutions that reduce CD132 receptor binding affinity are selected from amino acid modifications at positions 18, 22, and 126 of the hIL2 mutein, numbered according to mature wt hIL2.

[0019] Methods of use in neoplastic diseases: The present disclosure provides methods for preventing and / or treating neoplastic disease in a mammalian subject in need of such treatment or prevention, comprising administering to the subject in need thereof a therapeutically or prophylactically effective amount of a hIL2 mutein, wherein the hIL2 mutein is selected from the group consisting of: (a) hIL2 that exhibits reduced binding affinity to CD132 compared to wt hIL2; (b) hIL2 that exhibits reduced binding affinity to CD132 compared to wt hIL2 and retains significant binding affinity to CD122 and / or CD25; (c) hIL2 that exhibits reduced binding affinity to CD132 compared to wt hIL2 and retains binding affinity to CD122 that is equal to or greater than wt hIL2; (d) hIL2 that exhibits reduced binding affinity to CD132 compared to wt hIL2 and retains binding affinity to CD25 that is equal to or greater than wt hIL2; and (e) hIL2 that exhibits reduced binding affinity to CD132 compared to wt hIL2 and retains binding affinity to CD122 and CD25 that is equal to or greater than wt hIL2. (f) hIL2 that retains binding affinity equal to or greater than that of wt hIL2; (f) hIL2 that exhibits reduced binding affinity to CD132 compared to wt hIL2 and exhibits improved binding affinity to CD122 in the presence of CD25 equal to or greater than that of wt hIL2; or (g) hIL2 that exhibits reduced binding affinity to CD132 compared to wt hIL2 and exhibits improved binding affinity to CD122 in the presence of sCD25 compared to wt hIL2.

[0020] In some embodiments, the method further comprises administering to the mammalian subject one or more adjunctive agents, including, but not limited to, one or more of a chemotherapeutic agent, an immune checkpoint modulator, radiation therapy, and / or a physical interventional treatment method such as surgery.

[0021] In some embodiments, the adjunct agent is a therapeutic antibody. In some embodiments, the therapeutic antibody binds to a tumor cell antigen.

[0022] In some embodiments, the adjunctive agent is an immune cell. In some embodiments, the immune cell is an engineered immune cell, including but not limited to, a CAR T cell, an engineered NK cell, a TCR-engineered cell, or an engineered Treg, or a cell population comprising one or more such engineered immune cells. In some embodiments, the immune cell is a tumor-infiltrating lymphocyte (TIL) or a cell population comprising one or more TILs. In some embodiments, the present disclosure provides a method of treating a subject using an IL2 mutein of the present disclosure, wherein the administering step results in a serum concentration of the IL2 mutein in the subject at a level sufficient to promote the proliferation of T cells expressing high-affinity IL2 receptors (e.g., T cells activated by an antigen), but less than a concentration sufficient to substantially induce the activation of T cells expressing primarily intermediate-affinity receptors (e.g., NK cells).

[0023] The present disclosure further provides nucleic acids encoding the hIL2 muteins of the present disclosure.

[0024] The present disclosure further provides recombinant vectors comprising a nucleic acid encoding a hIL2 mutein of the present disclosure operably linked to one or more expression control sequences functional in the host cell used for recombinant production.

[0025] The present disclosure further provides a method for preventing and / or treating a neoplastic disease in a mammalian subject in need thereof, comprising administering to the subject a therapeutically or prophylactically effective amount of a nucleic acid encoding a hIL2 mutein of the present disclosure or a recombinant vector encoding a hIL2 mutein of the present disclosure. In some embodiments, the recombinant vector can be a non-viral vector (e.g., a plasmid or other non-viral delivery system) or a viral vector, including replication-competent, replication-deficient, and conditionally-replicating viral vectors.

[0026] The present disclosure further provides engineered cells comprising a recombinant vector, the recombinant vector comprising a nucleic acid encoding a hIL2 mutein of the present disclosure operably linked to one or more expression control sequences.

[0027] The present disclosure further provides a method for preventing and / or treating a neoplastic disease in a mammalian subject in need thereof, the method comprising administering to the subject a therapeutically or prophylactically effective amount of an engineered eukaryotic cell, the engineered eukaryotic cell comprising a recombinant vector, the recombinant vector comprising a nucleic acid encoding a hIL2 mutein of the present disclosure operably linked to one or more expression control sequences functional in the eukaryotic cell. In some embodiments, the eukaryotic cell is a mammalian cell. In some embodiments, the mammalian cell is an immune cell. In some embodiments, the mammalian immune cell can be an engineered immune cell.

[0028] The present disclosure further provides modified versions of the hIL2 muteins of the present disclosure, wherein the hIL2 muteins are modified to extend their duration of action in a mammalian subject. Examples of such modifications include, but are not limited to, conjugation to one or more carrier proteins, PEGylation, acylation, or modification, substitution, or deletion of the amino acid sequence of the hIL2 mutein.

[0029] The present disclosure further provides methods for producing the hIL2 muteins of the present disclosure. Examples of such methods for producing hIL2 muteins include, but are not limited to, recombinant production in prokaryotic or eukaryotic cells or chemical synthesis.

[0030] The present disclosure further provides pharmaceutically acceptable formulations of the hIL2 muteins of the present disclosure or recombinant vectors comprising a nucleic acid sequence encoding a hIL2 mutein operably linked to one or more expression control sequences active in a target cell. In some embodiments, the pharmaceutically acceptable formulations may include one or more auxiliary agents.

[0031] The present disclosure provides a method for preventing and / or treating a neoplastic disease in a mammalian subject, comprising administering to a subject in need of treatment a therapeutically or prophylactically effective amount of a pharmaceutically acceptable dosage form comprising a hIL2 mutein or a vector encoding a hIL2 mutein of the present disclosure.

[0032] The present disclosure further provides kits, which include a pharmaceutically acceptable dosage form of the hIL2 mutein of the present disclosure and instructions for use. The pharmaceutical dosage form may be provided in a pre-filled syringe. The kit may optionally further provide a quantity of a solution for mixing with the pharmaceutically acceptable dosage form of the hIL2 mutein, where the solution includes one or more components of a sustained-release formulation, including, but not limited to, a diluent, a reconstitution buffer, an activator, a formulant, a tonicity agent, or a biodegradable or bioerodible biocompatible polymer. The kit may optionally provide a pharmaceutically acceptable formulation including one or more auxiliary agents. The kit may optionally include a medical device (e.g., a syringe or an autoinjector) to facilitate administration. The kit may also provide one or more components for maintaining the kit and its components at refrigerated temperatures for extended periods of time, such as one or more gel ice packs and / or insulated packaging.

[0033] Garcia et al. (International Application No. PCT / US2018 / 062122, PCT International Publication No. WO2019 / 104092A1 published May 31, 2019, hereinafter "Garcia '092") describe, inter alia, certain IL2 muteins having modifications involving positions 18, 22, and 126 that exhibit reduced binding to CD132 while retaining partial IL2 activity, and which are useful in practicing the methods described herein.

[0034] In some embodiments, the present disclosure provides a method of treating a subject suffering from a neoplastic disease, disorder, or condition, comprising administering to a subject a compound of Formula 1 (SEQ ID NO:10): TIFF2025160450000002.tif73128[In formula: each of a, b, c, d, e, f, g, h, and i is individually selected from 0 or 1; AA1 is A (wild type, a = 1) or deleted (a = 0); AA2 was P (wild type, b = 1) or deleted (b = 0); AA3 is T (wild type, c = 1), C, A, G, Q, E, N, D, R, K, P, or deleted (c = 0); AA4 was S (wild type, d = 1) or deleted (d = 0); AA5 was S (wild type, e = 1) or deleted (e = 0); AA6 was S (wild type, f = 1) or deleted (f = 0); AA7 was T (wild type, g = 1) or deleted (g = 0); AA8 was K (wild type, h = 1) or deleted (h = 0); AA9 was K (wild type, i = 1) or deleted (i = 0); AA18 is L (wild type) or R, L, G, M, F, E, H, W, K, Q, S, V, I, Y, H, D, or T; AA22 is Q (wild type) or F, E, G, A, L, M, F, W, K, S, V, I, Y, H, R, N, D, T, or F; AA35 is K (wild type) or E; AA38 is R (wild type), W, or G; AA39 is M (wild type), L, or V; AA55 is H (wild type) or Y; AA69 is V (wild type) or A; AA74 is Q (wild type), P, N, H, S; AA80 is L (wild type), F, or V; AA81 is R (wild type), I, D, or T; AA85 is L (wild type) or V; AA86 is I (wild type) or V; AA89 is I (wild type) or V; AA91 is V (wild type), R, or K; AA92 is I (wild type) or F; AA97 is K (wild type) or Q; AA104 is M (wild type) or A; AA109 is D (wild type), C, or an unnatural amino acid with an activated side chain; AA113 is T (wild type) or N; AA125 is C (wild type), A, or S; AA126 is Q (wild type) or H, M, K, C, D, E, G, I, R, S, or T; AA130 is S (wild type), T, G, or R] and administering to said subject a polypeptide having at least 95% homology to the polypeptide of formula (I).

[0035] In some embodiments, the polypeptide comprises the following mutation: AA18 is selected from the group consisting of L (wild type) or R, L, G, M, F, E, H, W, K, Q, S, V, I, Y, H, D, or T; AA22 is selected from the group consisting of Q (wild type) or F, E, G, A, L, M, F, W, K, S, V, I, Y, H, R, N, D, T, or F; and AA126 is selected from the group consisting of Q (wild type) or H, M, K, C, D, E, G, I, R, S, or T. Includes.

[0036] In some embodiments, the polypeptide comprises the following mutation: a=0; AA18 is selected from the group consisting of L (wild type) or R, L, G, M, F, E, H, W, K, Q, S, V, I, Y, H, D, or T; AA22 is selected from the group consisting of Q (wild type) or F, E, G, A, L, M, F, W, K, S, V, I, Y, H, R, N, D, T, or F; and AA126 is selected from the group consisting of Q (wild type) or H, M, K, C, D, E, G, I, R, S, or T. Includes.

[0037] In some embodiments, the polypeptide comprises the following set of mutations: L18R, Q22E, and Q126H; L18R, Q22E, and Q126K; L18R, Q22E, and Q126M; L18R, Q22E, Q126T; L18R; Q22E; V91K; V91R; Q126H; L18R, and Q126H; Q22E, and Q126H; L18G, Q22E, and Q126H; L18A, Q22E, and Q126M. 6H;L18M, Q22E and Q126H;L18F, Q22E and Q126H;L18W, Q22E and Q126H;L18K, Q22E and Q126H;L18Q, Q22E and Q126H;L18E, Q22E and Q126H;L18S, Q22E and Q126H;L18V, Q22E and Q126H;L18I, Q22E and Q126H;L18Y, Q22E and Q126H;L18H, Q22E and Q126H;L18N, Q22E and Q126H;L18D, Q22E and Q126H;L18T, Q22E and Q126H;L18R, Q22G and Q126H;L18R, Q22A and Q126H;L18R, Q22L and Q126H;L18R, Q22M and Q126H;L18R, Q22F and Q126H;L18R, Q22W and Q126H;L18R, Q22K and The set of mutations includes a set of mutations selected from Q126H; L18R, Q22S and Q126H; L18R, Q22V and Q126H; L18R, Q22I and Q126H; L18R, Q22Y and Q126H; L18R, Q22H and Q126H; L18R, Q22R and Q126H; L18R, Q22N and Q126H; L18R, Q22D and Q126H; and L18R, Q22T and Q126H.

[0038] In some embodiments, the polypeptide is PEGylated. In some embodiments, the PEG portion of such PEGylated polypeptides has a molecular weight of about 10 kD to about 70 kD. In some embodiments, the PEG portion of such PEGylated polypeptides has a molecular weight of about 40 kD or greater.

[0039] In some embodiments, the polypeptide is a fusion protein. In some embodiments, the fusion protein comprises an Fc domain.

[0040] Nucleic acids encoding the polypeptides described above or elsewhere herein are also provided. In some embodiments, the nucleic acid is DNA.

[0041] Also provided is a recombinant expression vector comprising the above nucleic acid.

[0042] In some embodiments, the vector is a viral vector. In some embodiments, the vector is a non-viral vector.

[0043] Host cells transformed with the above vectors are also provided.

[0044] Also provided is a pharmaceutical formulation comprising the above polypeptide, the above nucleic acid, or the above vector.

[0045] Also provided are methods for treating a mammalian subject suffering from a neoplastic disease, disorder, or condition, comprising administering a therapeutically effective amount of the above-described pharmaceutical formulation. In some embodiments, the method further comprises administering an adjunct agent to the subject. In some embodiments, the adjunct agent is selected from the group consisting of a chemotherapeutic agent, an antibody, an immune checkpoint modulator, a TIL, a CAR-T cell, and a physical method. In some embodiments, the adjunct agent is an immune checkpoint modulator. In some embodiments, the immune checkpoint modulator is an anti-PD-1 antibody or an anti-PD-L1 antibody. In some embodiments, the adjunctive agent is selected from the group consisting of [fam-]trastuzumab deruxtecan, enfortumab vedotin, polatuzumab vedotin, cemiplimab, moxetumomab pasudotox, mogamulizumab, tildrakizumab, ibalizumab, durvalumab, inotuzumab ozogamicin, avelumab, atezolizumab, olaratumumab, ixekizumab, aratumumab, elotuzumab, necitumumab, dinutuximab, nivolumab, blinatumomab, pembrolizumab, ramucirumab, siltuximab, obinutuzumab, ado-trastuzumab emtansine, pertuzumab, brentuximab The antibody is selected from the group consisting of vedotin, ipilimumab, ofatumumab, certolizumab pegol, catumaxomab, panitumumab, bevacizumab, cetuximab, tositumomab-I131, ibritumomab tiuxetan, gemtuzumab ozogamicin, trastuzumab, infliximab, rituximab, and edrecolomab.

[0046] In some embodiments, the neoplastic disease, disorder, or condition is selected from the group consisting of adenoma, fibroma, hemangioma, hyperplasia, atypia, metaplasia, dysplasia, carcinoma, leukemia, breast cancer, sarcoma, leukemia, lymphoma, genitourinary cancer, ovarian cancer, urethral cancer, bladder cancer, prostate cancer, gastrointestinal cancer, colon cancer, esophageal cancer, stomach cancer, lung cancer; myeloma; pancreatic cancer; liver cancer; kidney cancer; endocrine cancer; skin cancer; glioma, neuroblastoma, astrocytoma, myelodysplastic disorder; cervical cancer Intradermal carcinoma; intestinal polyposis; oral leukoplakia; histiocytosis, hyperproliferative scars including keloid scars, cancers of the respiratory system, digestive system, genitourinary system, testicular cancer, breast cancer, prostate cancer, cancers of the endocrine system, melanoma, adenocarcinoma, myeloproliferative neoplasms, myeloid and lymphoid disorders with eosinophilia, myeloproliferative / myelodysplastic neoplasms, myelodysplastic syndromes, acute myeloid leukemia and related precursor neoplasms, and acute myeloid leukemia of ambiguous lineage Leukemias, promyelocytic leukemia (APML), acute myeloid leukemia (AML) and chronic myeloid leukemia (CML), precursor lymphoid neoplasms, mature B-cell neoplasms, mature T-cell neoplasms, Hodgkin's lymphoma, and immunodeficiency-associated lymphoproliferative disorders, lymphoid leukemia (ALL) including B-cell ALL and T-cell ALL, chronic lymphocytic leukemia (CLL), prolymphocytic leukemia (PLL), hairy cell leukemia (HLL), and Waldemar-Jackson disease. The cancer is selected from the group consisting of malignant lymphomas, including but not limited to, Ström's gammopathy (WM), erythroblastic leukemia and acute megakaryoblastic leukemia, non-Hodgkin's lymphoma and variants thereof, peripheral T-cell lymphoma, adult T-cell leukemia / lymphoma (ATL), cutaneous T-cell lymphoma (CTCL), large granular lymphocytic leukemia (LGF), Hodgkin's disease, and Reed-Sternberg disease.

[0047] In some embodiments, the method includes administering to a subject a therapeutically effective amount of an hIL2 mutein, the therapeutically effective amount of the hIL2 mutein being sufficient to maintain a serum concentration of the IL2 mutein at or above an effective concentration of the IL2 mutein sufficient to promote proliferation of CD3-activated primary human T cells, but below a serum concentration of the IL2 mutein sufficient to induce T cell activation, for a period of at least about 50% of a 24-hour period. [The present invention 1001] 1. A method of treating a subject suffering from a neoplastic disease, disorder, or condition, comprising: Formula 1: TIFF2025160450000003.tif62128[in formula: each of a, b, c, d, e, f, g, h, and i is individually selected from 0 or 1; · AA1 is A (wild type, a = 1) or deleted (a = 0); · AA2 was P (wild type, b = 1) or deleted (b = 0); · AA3 is T (wild type, c=1), C, A, G, Q, E, N, D, R, K, P, or deleted (c=0); · AA4 was S (wild type, d = 1) or deleted (d = 0); · AA5 is S (wild type, e = 1) or deleted (e = 0); · AA6 was S (wild type, f = 1) or deleted (f = 0); · AA7 is T (wild type, g = 1) or deleted (g = 0); · AA8 was K (wild type, h = 1) or deleted (h = 0); · AA9 is K (wild type, i = 1) or deleted (i = 0); AA18 is L (wild type) or R, L, G, M, F, E, H, W, K, Q, S, V, I, Y, H, D, or T; AA22 is Q (wild type) or F, E, G, A, L, M, F, W, K, S, V, I, Y, H, R, N, D, T, or F; AA35 is K (wild type) or E; AA38 is R (wild type), W, or G; AA39 is M (wild type), L, or V; AA55 is H (wild type) or Y; AA69 is V (wild type) or A; · AA74 is Q (wild type), P, N, H, S; AA80 is L (wild type), F, or V; AA81 is R (wild type), I, D, or T; AA85 is L (wild type) or V; AA86 is I (wild type) or V; AA89 is I (wild type) or V; AA92 is I (wild type) or F; AA97 is K (wild type) or Q; AA104 is M (wild type) or A; AA109 is a D (wild type), C, or unnatural amino acid with an activated side chain; AA113 is T (wild type) or N; AA125 is C (wild type), A, or S; AA126 is Q (wild type) or H, M, K, C, D, E, G, I, R, S, or T; AA130 is S (wild type), T, G, or R] by administering to said subject a polypeptide having at least 95% homology to the polypeptide of claim 1. [The present invention 1002] The polypeptide further comprises the following mutation: AA18 is selected from the group consisting of L (wild type) or R, L, G, M, F, E, H, W, K, Q, S, V, I, Y, H, D, or T; AA22 is selected from the group consisting of Q (wild type) or F, E, G, A, L, M, F, W, K, S, V, I, Y, H, R, N, D, T, or F; and AA126 is selected from the group consisting of Q (wild type) or H, M, K, C, D, E, G, I, R, S, or T The method of the present invention 1001, comprising: [The present invention 1003] The polypeptide further comprises the following mutation: a=0; AA18 is selected from the group consisting of L (wild type) or R, L, G, M, F, E, H, W, K, Q, S, V, I, Y, H, D, or T; AA22 is selected from the group consisting of Q (wild type) or F, E, G, A, L, M, F, W, K, S, V, I, Y, H, R, N, D, T, or F; and AA126 is selected from the group consisting of Q (wild type) or H, M, K, C, D, E, G, I, R, S, or T The method of the present invention 1001, comprising: [The present invention 1004] The polypeptide has the following set of mutations: L18R, Q22E, and Q126H; L18R, Q22E, and Q126K; L18R, Q22E, and Q126M; L18R, Q22E, Q126T; L18R; Q22E; V91K; V91R; Q126H; L18R and Q126H; Q22E and Q126H; L18G, Q22E, and Q126H; L18A, Q22E, and Q126H; L18M, Q22E, and Q126H;L18F, Q22E, and Q126H;L18W, Q22E, and Q126H;L18K, Q22E, and Q126H;L18Q, Q22E, and Q126H;L18E, Q22E, and Q126H;L18S, Q22E, and Q126H;L18V, Q22E, and Q126H;L18I, Q22E, and Q126H;L18Y, Q22E, and Q126H;L18H, Q22E, and Q126H; L18N, Q22E, and Q126H;L18D, Q22E, and Q126H;L18T, Q22E, and Q126H;L18R, Q22G, and Q126H;L18R, Q22A, and Q126H;L18R, Q22L, and Q126H;L18R, Q22M, and Q126H;L18R, Q22F, and Q126H;L18R, Q22W, and Q126H;L18R, Q22K, and Q126H;L18R, Q 22S, and Q126H; L18R, Q22V, and Q126H; L18R, Q22I, and Q126H; L18R, Q22Y, and Q126H; L18R, Q22H, and Q126H; L18R, Q22R, and Q126H; L18R, Q22N, and Q126H; L18R, Q22D, and Q126H; and L18R, Q22T, and Q126H. [The present invention 1005] The polypeptide of any one of 1001 to 1004 of the present invention, which is PEGylated. [The present invention 1006] The polypeptide of the present invention 1004, wherein the PEG moiety of the PEGylated polypeptide has a molecular weight of about 10 kD to about 70 kD. [The present invention 1007] 1006. The polypeptide of the present invention, wherein the PEG portion of said PEGylated polypeptide has a molecular weight of about 40 kD or greater. [The present invention 1008] The polypeptide of any one of 1001 to 1004 of the present invention, which is a fusion protein. [The present invention 1009] The polypeptide of claim 10, wherein the fusion protein comprises an Fc domain. [The present invention 1010] A nucleic acid encoding any one of the polypeptides 1001 to 1004 and 1008 to 1009 of the present invention. [The present invention 1011] The nucleic acid of the present invention 1010, which is DNA. [The present invention 1012] A recombinant expression vector comprising the nucleic acid of the present invention 1010 or 1011. [The present invention 1013] The vector of the present invention 1012, which is a viral vector. [The present invention 1014] The vector of the present invention 1012, which is a non-viral vector. [The present invention 1015] A host cell transformed with the vector of the present invention 1013 or 1014. [The present invention 1016] A pharmaceutical preparation comprising a polypeptide of any one of the present inventions 1001 to 1009, a nucleic acid of the present invention 1010 or 1011, or a vector of the present inventions 1012 to 1014. [The present invention 1017] A method of treating a mammalian subject suffering from a neoplastic disease, disorder, or condition comprising administering a therapeutically effective amount of a pharmaceutical formulation of the present invention. [The present invention 1018] The method of claim 1017, further comprising administering to said subject an adjunct agent. [The present invention 1019] 1018. The method of claim 1018, wherein said ancillary agent is selected from the group consisting of a chemotherapeutic agent, an antibody, an immune checkpoint modulator, a TIL, a CAR-T cell, and a physical method. [The present invention 1020] The method of claim 1019, wherein said adjunctive agent is an immune checkpoint modulator. [The present invention 1021] 1019. The method of claim 1019, wherein said immune checkpoint modulator is an anti-PD-1 antibody or an anti-PD-L1 antibody. [The present invention 1022] The adjunctive agent is selected from the group consisting of [fam-]trastuzumab deruxtecan, enfortumab vedotin, polatuzumab vedotin, cemiplimab, moxetumomab pasudotox, mogamulizumab, tildrakizumab, ibalizumab, durvalumab, inotuzumab ozogamicin, avelumab, atezolizumab, olaratumumab, ixekizumab, aratumumab, elotuzumab, necitumumab, dinutuximab, nivolumab, blinatumomab, pembrolizumab, ramucirumab, siltuximab, obinutuzumab, ado-trastuzumab emtansine, pertuzumab, brentuximab vedotin, ipilimumab, ofatumumab, certolizumab The method of the present invention 1019, wherein the antibody is selected from the group consisting of pegol, catumaxomab, panitumumab, bevacizumab, cetuximab, tositumomab-I131, ibritumomab tiuxetan, gemtuzumab ozogamicin, trastuzumab, infliximab, rituximab, and edrecolomab. [The present invention 1023] The neoplastic disease, disorder, or condition is selected from the group consisting of adenoma, fibroma, hemangioma, hyperplasia, atypia, metaplasia, dysplasia, carcinoma, leukemia, breast cancer, sarcoma, leukemia, lymphoma, genitourinary cancer, ovarian cancer, urethral cancer, bladder cancer, prostate cancer, gastrointestinal cancer, colon cancer, esophageal cancer, stomach cancer, lung cancer; myeloma; pancreatic cancer; liver cancer; kidney cancer; endocrine cancer; skin cancer; glioma, neuroblastoma, astrocytoma, myelodysplastic disorder; cervical intraepithelial carcinoma; intestinal polyposis ; oral leukoplakia; histiocytosis, hyperproliferative scars including keloid scars, cancers of the respiratory system, digestive system, genitourinary system, testicular cancer, breast cancer, prostate cancer, cancers of the endocrine system, melanoma, adenocarcinoma, myeloproliferative neoplasms, myeloid and lymphoid disorders with eosinophilia, myeloproliferative / myelodysplastic neoplasms, myelodysplastic syndromes, acute myeloid leukemia and related precursor neoplasms, and acute leukemia of ambiguous lineage, promyelocytic leukemia (AP) ML), acute myeloid leukemia (AML) and chronic myeloid leukemia (CML), precursor lymphoid neoplasms, mature B-cell neoplasms, mature T-cell neoplasms, Hodgkin's lymphoma, and immunodeficiency-associated lymphoproliferative disorders, lymphoid leukemia (ALL) including B-cell ALL and T-cell ALL, chronic lymphocytic leukemia (CLL), prolymphocytic leukemia (PLL), hairy cell leukemia (HLL), and Waldenstrom's hypergammaglobulinemia (HGL). WM), erythroblastic leukemia and acute megakaryoblastic leukemia, malignant lymphoma including, but not limited to, non-Hodgkin's lymphoma and variants thereof, peripheral T-cell lymphoma, adult T-cell leukemia / lymphoma (ATL), cutaneous T-cell lymphoma (CTCL), large granular lymphocytic leukemia (LGF), Hodgkin's disease, and Reed-Sternberg disease. [The present invention 1024] Any of the methods of inventions 1001 to 1023, wherein the method comprises administering to the subject a therapeutically effective amount of an hIL2 mutein, wherein the therapeutically effective amount of the hIL2 mutein is sufficient to maintain a serum concentration of the IL2 mutein at or above an effective concentration of the IL2 mutein sufficient to promote proliferation of primary human T cells activated by CD3 and below a serum concentration of the IL2 mutein sufficient to induce T cell activation, for more than about 50% of a period of at least 24 hours. [Brief explanation of the drawings]

[0048] The invention is best understood from the following detailed description when read in conjunction with the accompanying drawings. It is emphasized that, according to common practice, the various features of the drawings are not to scale. Conversely, the dimensions of the various features have been arbitrarily expanded or reduced for clarity.

[0049] [Figure 1] Figure 1 of the accompanying drawings provides a graphical representation of pSTAT5 levels as measured in NKL cells treated with 293T transfection supernatants containing the indicated IL2 muteins (and controls) as described in the Examples. The vertical axis represents the level of IL2 activity as measured according to the Examples, and each bar indicates the level of activity of a particular IL2 peptide assessed in the context of the construct, as identified by its three-letter abbreviation as described in the Examples. [Figure 2] Figure 2 of the accompanying drawings provides a comparison of pSTAT5 activity in CD25-positive and CD25-negative YT cells treated with 293T transfection supernatants containing the indicated IL2 muteins (and controls) described in the Examples. The vertical axis is a measure of selectivity calculated as the ratio of the level of pSTAT5 activity observed on CD25-positive YT cells divided by the level of pSTAT5 activity measured on CD25-negative YT cells, and each bar represents the activity level of the particular IL2 peptide evaluated, as identified by its three-letter abbreviation as described in the Examples. [Figure 3] Table 1 provides data illustrating that various dilutions of hIL2 muteins exhibited preferential pSTAT5 signaling activity compared to wild-type hIL2 on CD25-positive YT CD25 cells compared to CD25-negative YT cells. [Figure 4] As explained more fully in the specification and in Example 8, data are provided regarding cell proliferation of 3F8 cells contacted with hIL2 muteins. [Figure 5]As explained more fully in the specification and in Example 8, data are provided regarding interferon gamma production from 3F8 cells contacted with hIL2 muteins. [Figure 6] This figure provides data on the expression of IL-2 receptor components on YT CD25 cells verified by fluorescent flow cytometry. Panel A shows expression of CD25 (IL2Ra) by YT CD25 NKL cells, panel B shows expression of CD122 (IL2Rb), and panel C shows expression of CD132 (IL2Rg). Black histograms represent stained cells, and dashed histograms represent unstained control cells. Gates indicate the percent of positive cells for each stain. [Figure 7] We provide data showing that wt hIL-2 and STK-012 induce proliferation of NKL cells at a similar dose range and demonstrating that STK-012 retains the ability to induce pSTAT5 in human immune cells comparable to wt hIL2. [Figure 8] Figure 1 provides data on the percent of P-STAT5 positive cells for the indicated cell lines after treatment with wild-type IL-2 (Panel A) or STK-012 (Panel B). Trend lines calculated by a four-parameter fit are shown. The x-axis shows protein concentration on a log10 scale. Values ​​for untreated cells are shown on the y-axis. [Figure 9] Data are provided regarding survival rates of mice treated with the various dosages and agents described and as fully described herein. [Figure 10] Data are provided for lung water content in mice treated with mIL-2 or STK-014, calculated as the difference between wet lung weight and dry lung weight. Lungs were harvested at the end of the study or at premature termination or death (in mIL-2-treated animals). [Figure 11] Lung weight data are provided as a percentage of body weight for mice treated with mIL-2 or STK-014 at the various doses indicated. Lungs were harvested at the end of the study or at premature termination or death (in mIL-2-treated animals). [Figure 12] 1 provides data on tumor volume during a CT-26 colon cancer model study in mice in response to STK-014 treatment, PEGmIL2, and control. [Figure 13] We provide data on immunohistochemical assessment of intratumoral expansion of CD8+ T cells and CD8+ CD25+ T cells in response to STK-014 in a CT-26 colon cancer model study. [Figure 14] 1 provides data on immunohistochemical assessment of CD25+ T cell expansion in the spleens of mice in response to STK-014 in a CT-26 colon cancer model study. [Figure 15] 1 provides data on tumor volume (y-axis) during an MC38 colon cancer model in mice illustrating tumor volume changes over time in response to STK-014 and PEG-mIL-2. [Figure 16] Figures 16A and 16B provide data regarding the quantification of CD8+ T cells and CD25+ CD8+ T cells, respectively, by IHC within MC38 tumors at the end of the treatment interval with STK-014 and PEG-mIL-2. [Figure 17] We provide data on intratumoral CD8+ T cells versus regulatory T cells in MC38 tumors in response to treatment with STK-014 and PEG-mIL-2. [Figure 18] Data are provided regarding the quantification by IHC analysis of CD8+ T cells and Tregs in MC38 tumors at the end of the treatment period. [Figure 19] 1 provides data on changes in body weight in mice in the MC38 tumor model in response to the indicated treatments. [Figure 20] 1 provides data on tumor volume in the MC38 tumor model in mice in response to STK-014 treatment in combination with anti-PD-1 therapy. [Figure 21]We provide data on the levels of intratumoral T cells in the MC38 tumor model in mice in response to treatment with STK-014, an anti-PD1 antibody, and combination treatment with STK014 and anti-PD-1. [Figure 22] Provides data on systemic exposure at various STK-012 doses evaluated in non-human primates. STK-012 concentrations (day 1 / day 8 doses shown) are compared to one dose of Proleukin (equivalent to high-dose (HD) Proleukin). [Figure 23] We provide data on pSTAT5 in response to STK-012 in non-human primate FACS analysis of p-STAT5 in CD25+ CD4+ T cells isolated from cynomolgus monkeys treated with STK-012, demonstrating that a single dose of STK-012 induced sustained p-STAT5 signaling for 7 days. [Figure 24] Data are provided for STAT5 phosphorylation (Y-axis) in three cell types from peripheral blood (CD25- CD122- CD8+ T cells, CD25+ CD122- CD8+ T cells, and CD25+ CD122+ CD8+ T cells) versus STK-012 serum concentration. [Figure 25] 1 provides data on the proliferation (KI67+) induced by STK-012 (0.1 / 0.35 mg / kg) in CD8+ CD25+ T cells and CD25-negative cells. [Figure 26] We provide data on memory T cell concentrations of CD8 T cells in NHPs in response to STK-012. DETAILED DESCRIPTION OF THE INVENTION

[0050] Detailed Description In order that this disclosure may be more readily understood, certain terms and phrases are defined below, as well as throughout the specification. The definitions provided herein are non-limiting and should be read in light of the knowledge that would be known to one of ordinary skill in the art.

[0051] Before the present methods and compositions are described, it is to be understood that this invention is not limited to the particular methods or compositions described, as such may, of course, vary. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to be limiting.

[0052] Where a range of values ​​is provided, unless the context clearly dictates otherwise, it is understood that each intervening value, to the tenth of the unit of the lower limit, between the upper and lower limit of that range is also specifically disclosed. Each smaller range between any stated value or intervening value in a stated range and any other stated value or intervening value in a stated range is encompassed within the invention. The upper and lower limits of these smaller ranges may independently be included in or excluded from the smaller ranges, and if any limits in a stated range are specifically excluded, each range in which either or both of those limits are included in the smaller range, or each range in which neither of those limits are included, is also encompassed within the invention. When a stated range includes either or both of those limits, ranges excluding either or both of those included limits are also included within the invention.

[0053] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this invention belongs. Although any methods and materials similar or equivalent to those described herein can be used in the practice or testing of the present invention, some potentially preferred methods and materials will now be described. All publications mentioned herein are incorporated by reference to disclose and describe the methods and / or materials in connection with which the publications are cited.

[0054] It should be noted that as used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Thus, for example, a reference to a "cell" includes a plurality of such cells, and a reference to a "peptide" includes a reference to one or more peptides and equivalents thereof, such as polypeptides known to those skilled in the art.

[0055] The publications discussed herein are provided solely for their disclosure prior to the filing date of the present application. Nothing contained herein should be construed as an admission that the present invention is not entitled to antedate such publication by virtue of prior invention. Further, the dates of publication provided may be different from the actual publication dates, which may need to be independently confirmed.

[0056] Unless otherwise indicated, parts are parts by weight, molecular weight is weight average molecular weight, temperature is in degrees Celsius (°C), and pressure is at or near atmospheric. Standard abbreviations are used: bp = base pairs; kb = kilobase; s or sec = seconds; min = minutes; h or hr = hours; AA or aa = amino acid; kb = kilobase; nt = nucleotide; pg = picogram; ng = nanogram; μg = microgram; mg = milligram; g = gram; kg = kilogram; pl = picoliter; dl or dL = deciliter; μl, ul or μL = microliter; ml or mL = milliliter; l or L = liter; μM or uM = micromolar; pM = picomolar; nM = nanomolar; fm = femtomolar; mM = millimolar; M = molar; kDa = kilodalton; SC or SQ = subcutaneous; QD = once daily; QW = once weekly; QM = once monthly; BW = body weight; U = unit; ns = not statistically significant; PBS = phosphate buffered saline; HSA = human serum albumin; MSA = mouse serum albumin; and the abbreviations provided in Table 1 below.

[0057] (Table 1) Additional abbreviations TIFF2025160450000004.tif125150TIFF2025160450000005.tif211150

[0058] It will be appreciated that throughout this disclosure, amino acids will be referred to according to either the one-letter code or the three-letter code. For the convenience of the reader, the one-letter and three-letter amino acid codes are provided in Table 2 below:

[0059] Table 2: Amino acid abbreviations TIFF2025160450000006.tif110128

[0060] Standard methods in molecular biology are described in the scientific literature (see, e.g., Sambrook and Russell (2001) Molecular Cloning, 3rd ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY; and Ausubel, et al. (2001) Current Protocols in Molecular Biology, Vols. 1-4, John Wiley and Sons, Inc. New York, NY, which describe cloning and DNA mutagenesis in bacterial cells (Vol. 1), cloning in mammalian cells and yeast (Vol. 2), expression of glycoconjugates and proteins (Vol. 3), and bioinformatics (Vol. 4)). This scientific literature describes methods for protein purification, including immunoprecipitation, chromatography, electrophoresis, centrifugation, and crystallization, as well as chemical analysis, chemical modification, post-translational modification, production of fusion proteins, and protein glycosylation (see, e.g., Coligan, et al. (2000) Current Protocols in Protein Science, Vols. 1-2, John Wiley and Sons, Inc., NY).

[0061] Unless otherwise indicated, the following terms are intended to have the meanings indicated below. Other terms are defined separately throughout this specification.

[0062] Definition: Activate: As used herein, the term "activate" is used in reference to a receptor or receptor complex to reflect the biological effect of binding of an agonist ligand to the receptor. An activator is a molecule that increases, activates, promotes, enhances activation, sensitizes, or upregulates, for example, a gene, protein, ligand, receptor, or cell. For example, binding of an IL2 agonist to the IL2 receptor (e.g., the high-affinity CD25 / CD122 / CD132 receptor complex) "activates" receptor signaling to produce one or more intracellular biological effects (e.g., phosphorylation of STAT5).

[0063] Active: As used herein, the term "activity" is used with respect to a molecule to describe the properties of the molecule with respect to a test system (e.g., an assay), the biological or chemical properties of the molecule (e.g., the degree of binding of the molecule to another molecule), or the physical properties of a substance or cell (e.g., alteration of cell membrane potential). Examples of such biological functions include, but are not limited to, the catalytic activity of a biological agent, the ability to stimulate intracellular signaling, the ability to modulate gene expression, cell proliferation, immune activity such as an inflammatory response, etc. "Activity" is typically expressed as bioactivity per unit of administered agent, e.g., [catalytic activity] / [mg protein], [immune activity] / [mg protein], International Units of activity (IU), [STAT5 phosphorylation] / [mg protein], [T-cell proliferation] / [mg protein], plaque-forming units (pfu), etc.

[0064] Administer / Administer:The terms "administration" and "administering" are used interchangeably herein to refer to the act of contacting a subject, including contacting a cell, tissue, organ, or biological fluid of a subject in vitro, in vivo, and / or ex vivo with an agent (e.g., a hIL2 mutein, a vector encoding a hIL2 mutein, an engineered cell expressing a hIL2 mutein, a chemotherapeutic agent, an antibody, or a pharmaceutical formulation containing one or more of the foregoing). Administration of an agent may be achieved by any of a variety of art-recognized methods, including, but not limited to, topical administration, intravascular injection (including intravenous or intra-arterial infusion), intradermal injection, subcutaneous injection, intramuscular injection, intraperitoneal injection, intracranial injection, intratumoral injection, transdermal, transmucosal, iontophoretic delivery, intralymphatic injection, intragastric injection, intraprostatic injection, intravesical instillation (e.g., bladder), inhalation (e.g., inhaler, including dry powder inhaler), intraocular injection, intraperitoneal injection, intralesional injection, intraovarian injection, intracerebral infusion or injection, intracerebroventricular injection (ICVI), etc. The term "administration" includes contact of an agent with a cell, tissue, or organ, as well as contact of an agent with a fluid in contact with a cell. The term "administration" includes ex vivo contacting of cells (or cell populations) that may be isolated from a subject and contacted with an agent, with the cells (or cell populations) being administered to the same subject (e.g., autologous cell transfer) or a different subject (e.g., allogeneic cell transfer).

[0065] Adverse events: The term "adverse event" as used herein refers to any undesirable experience associated with the use of a therapeutic or preventive agent in a subject. Adverse events do not necessarily have to be caused by the administration of a therapeutic or preventive agent (e.g., an IL2 mutein), and may arise from unrelated circumstances. Adverse events are typically classified as mild, moderate, or severe. As used herein, the classification of adverse events used herein is in accordance with the Common Terminology Criteria for Adverse Events v5.0 (CTCAE), published by the U.S. Department of Health and Human Services, the National Institutes of Health, and the National Cancer Institute, dated November 27, 2017.

[0066] Affinity:As used herein, the term "affinity" refers to the degree of specific binding of a first molecule (e.g., a ligand) to a second molecule (e.g., a receptor), and is determined by the dissociation constant (K off ) and the association constant (K on ) is the ratio of K d The binding kinetics is measured by the binding kinetics expressed as

[0067] Agonists:The term "agonist" as used herein refers to a first agent that specifically binds to a second agent ("target") and interacts with the target, causing or promoting enhanced activation of the target. In some cases, an agonist is an activator of a receptor protein that modulates cell activation, enhances activation, sensitizes cells to activation by a second agent, or upregulates the expression of one or more genes, proteins, ligands, receptors, biological pathways that can lead to cell proliferation or pathways that result in cell death, such as cell cycle arrest or apoptosis. In some embodiments, an agonist is an agent that binds to a receptor, changes the state of the receptor, and results in a biological response that mimics the effect of the receptor's endogenous ligand. The term "agonist" includes partial agonists, full agonists, and superagonists. Agonists may be described as "full agonists" when they produce substantially the complete biological response induced by the receptor under study (i.e., the response associated with the natural ligand / receptor binding interaction), or as partial agonists. A "superagonist" is a type of agonist that can produce a maximum response greater than that of the endogenous agonist at the target receptor, and thus has greater than 100% of the activity of the natural ligand. A superagonist is typically a synthetic molecule that, when evaluated at similar concentrations in an equivalent assay, exhibits a response greater than 110%, alternatively greater than 120%, alternatively greater than 130%, alternatively greater than 140%, alternatively greater than 150%, alternatively greater than 160%, or alternatively greater than 170% of a measurable quantitative or qualitative parameter of the naturally occurring form of the molecule. With respect to hIL2 muteins, the activity of the hIL2 muteins is expressed according to the WHO International Standard (NIBSC code: 86 / 500) wild-type mature hIL2 when assessed at similar concentrations in equivalent assays. It should be noted that the biological effects associated with full agonists may differ in degree and / or type from those of partial agonists or superagonists.In contrast to agonists, antagonists can specifically bind to a receptor but do not result in the signal cascade typically initiated by the receptor and can alter the action of an agonist at that receptor. Inverse agonists are agents that produce a pharmacological response opposite to that of an agonist.

[0068] In contrast to agonists, antagonists can specifically bind to a receptor but typically do not result in a receptor-initiated signal cascade and can alter the action of an agonist at that receptor. A "superagonist" is a type of agonist capable of producing a maximal response greater than that of the endogenous agonist at the target receptor, and thus has greater than 100% efficacy. The IL2 superagonists of the present disclosure may have greater than 110%, alternatively greater than 120%, alternatively greater than 130%, alternatively greater than 140%, alternatively greater than 150%, alternatively greater than 160%, or alternatively greater than 170% of the activity of WHO International Standard (NIBSC code: 86 / 500) wild-type mature hIL2 when evaluated at similar concentrations in an equivalent assay. An inverse agonist is an agent that produces a pharmacological response opposite to that of an agonist.

[0069] Antagonists: The term "antagonist" or "inhibitor" as used herein refers to a molecule that opposes the action of an agonist.An antagonist prevents, reduces, inhibits, or neutralizes the activity of an agonist, and an antagonist can also prevent, inhibit, or reduce the constitutive activity of a target, such as a target receptor, even in the absence of a specified agonist.An inhibitor is, for example, a molecule that reduces, blocks, prevents, delays activation, inactivates, desensitizes, or downregulates a biological pathway, such as a gene, protein, ligand, receptor, immune checkpoint pathway, or cell.

[0070] antibody:As used herein, the term "antibody" refers collectively to: (a) glycosylated and non-glycosylated immunoglobulins (including, but not limited to, mammalian immunoglobulin classes IgG1, IgG2, IgG3, and IgG4) that specifically bind to a target molecule, and (b) IgG(1-4) delta C, which compete with the immunoglobulin from which it was derived for binding to the target molecule. H 2, F(ab')2, Fab, ScFv, V H , V LThe term "antibody" refers to immunoglobulin derivatives, including, but not limited to, tetrabodies, triabodies, diabodies, dsFv, F(ab')3, scFv-Fc, and (scFv)2. The term antibody is not limited to immunoglobulins derived from any particular mammalian species, and includes murine, human, equine, camelid, and human antibodies. The term antibody also includes so-called "heavy chain antibodies" or "VHHs" or "Nanobodies®," such as those typically obtained from immunization of camelids (including camels, llamas, and alpacas) (see, e.g., Hamers-Casterman, et al. (1993) Nature 363:446-448). Antibodies with a given specificity can also be derived from non-mammalian sources, such as VHHs obtained from immunization of cartilaginous fish, including, but not limited to, sharks. The term "antibody" encompasses not only antibodies isolable from natural sources or from animals after immunization with an antigen, but also engineered antibodies, including monoclonal, bispecific, trispecific, chimeric, humanized, human, CDR-grafted, veneered, or deimmunized (e.g., to remove T-cell epitopes) antibodies. The term "human antibody" encompasses not only antibodies obtained from humans, but also antibodies obtained from transgenic mammals containing human immunoglobulin genes such that, upon stimulation with an antigen, the transgenic animal produces antibodies containing amino acid sequences characteristic of antibodies produced by humans. The term antibody encompasses both parent antibodies and their derivatives, such as affinity-matured, veneered, CDR-grafted (including CDR-grafted VHHs), humanized, camelized (in the case of non-camelid-derived VHHs), or binding molecules containing the binding domains (e.g., CDRs) of an antibody in a non-immunoglobulin scaffold.The term "antibody" is not limited to any particular synthetic means, and includes engineered antibody molecules prepared by "recombinant" means, including not only natural antibodies isolatable from natural sources, but also antibodies isolated from transgenic animals transgenic for human immunoglobulin genes or hybridomas prepared therefrom, antibodies isolated from host cells transformed with nucleic acid constructs that result in the expression of the antibody, antibodies isolated from combinatorial antibody libraries, including phage display libraries, or chemically synthesized (e.g., solid-phase protein synthesis). In one embodiment, an "antibody" is a mammalian immunoglobulin. In some embodiments, the antibody is a "full-length antibody" comprising variable and constant domains that provide binding and effector functions. In most cases, a full-length antibody comprises two light chains and two heavy chains, each light chain comprising a variable region and a constant region. In some embodiments, the term "full-length antibody" is used to refer to a conventional IgG immunoglobulin structure comprising two light chains and two heavy chains, each light chain comprising a variable region and a constant region that provide binding and effector functions. The term antibody includes antibody conjugates that contain modifications to extend their duration of action, such as conjugation to fusion proteins or polymers (e.g., PEGylation), as described in more detail below.

[0071] Biological samples:As used herein, the term "biological sample" or "sample" refers to a sample obtained from or derived from a subject. By way of example, a biological sample includes a material selected from the group consisting of bodily fluids, blood, whole blood, plasma, serum, mucus secretions, saliva, cerebrospinal fluid (CSF), bronchoalveolar lavage fluid (BALF), eye fluid (e.g., vitreous humor, aqueous humor), lymphatic fluid, lymph node tissue, spleen tissue, bone marrow, and immunoglobulin-enriched fractions derived from one or more of these tissues. In some embodiments, the sample is obtained from a subject who has undergone a therapeutic treatment regimen including a pharmaceutical formulation of an IL2 mutein, such as repeated exposure to the same IL2 mutein. In other embodiments, the sample is obtained from a subject who has not recently been exposed to an IL2 mutein, or from a subject prior to scheduled administration of the IL2 mutein.

[0072] "CAR" or "Chimeric Antigen Receptor":As used herein, the terms "chimeric antigen receptor" and "CAR" are used interchangeably to refer to a chimeric polypeptide comprising multiple functional domains arranged from the amino terminus to the carboxy terminus: (a) an extracellular domain (ECD) comprising an antigen-binding domain (ABD) and a "hinge" domain, (b) a transmembrane domain (TD); and (c) one or more cytoplasmic signaling domains (CSDs), wherein the aforementioned domains may optionally be linked by one or more spacer domains. CARs may also further comprise a signal peptide sequence, which is routinely removed during post-translational processing of the CAR and presentation of the CAR on the cell surface of cells transformed with an expression vector comprising a nucleic acid sequence encoding the CAR. CARs can be prepared according to principles well known in the art. See, for example, Eshhar et al. (U.S. Patent No. 7,741,465 B1 issued June 22, 2010); Sadelain, et al. (2013) Cancer Discovery 3(4):388-398; Campana and Imai (U.S. Patent No. 8,399,645 issued March 19, 2013); Jensen and Riddell (2015) Current Opinions in Immunology 33:9-15; Gross, et al. (1989) PNAS(USA) 86(24): 10024-10028; Curran, et al. (2012) J Gene Med 14(6):405-15; Brogdon et al. (U.S. Patent No. 10,174,095 issued January 8, 2019); Guedan, et al. (2019) Engineering and Design of Chimeric Antigens See Receptors (2019) Molecular Therapy: Methods & Clinical Development Vol. 12: 145-156.

[0073] CAR-T cells:As used herein, the terms "chimeric antigen receptor T cells" and "CAR-T cells" are used interchangeably to refer to T cells that have been engineered to express a chimeric antigen receptor (CAR). Examples of commercially available CAR-T cell products include axicabtagene ciloleucel (commercially available as Yescarta® from Gilead Pharmaceuticals) and tisagenlecleucel (commercially available as Kymriah® from Novartis).

[0074] CD25: As used herein, the terms "CD25," "IL2 receptor alpha," "IL2Rα," "IL2Ra," and "p55" are used interchangeably to refer to a 55 kD polypeptide constitutively expressed in Treg cells and inducibly expressed on other T cells in response to activation (e.g., by CD3). CD25 is also referred to in the literature as the "low affinity" IL2 receptor. The nucleic acid and protein sequences for human CD25 can be found under GenBank accession numbers NM_000417 and NP_0004Q8, respectively. Human CD25 is expressed as a 272-amino acid preprotein containing a 21-amino acid signal sequence, which is post-translationally removed to yield the 251-amino acid mature protein. Amino acids 22-240 (amino acids 1-219 of the mature protein) correspond to the extracellular domain. Amino acids 241-259 (amino acids 220-238 of the mature protein) correspond to the transmembrane domain. Amino acids 260-272 (amino acids 239-251 of the mature protein) correspond to the intracellular domain. The amino acid sequence of the mature form of hCD25 is: The file is TIFF2025160450000007.tif22132.

[0075] CD122:As used herein, the terms "CD122," "interleukin-2 receptor beta," "IL2Rb," "IL2Rβ," "IL15Rβ," and "p70-75" are used interchangeably to refer to the human CD122 transmembrane protein. Human CD122 (hCD122) is expressed as a 551-amino acid protein, the first 26 amino acids of which contain a signal sequence that is post-translationally cleaved to yield the 525-amino acid mature protein. Amino acids 27-240 (amino acids 1-214 of the mature protein) correspond to the extracellular domain, amino acids 241-265 (amino acids 225-239 of the mature protein) correspond to the transmembrane domain, and amino acids 266-551 (amino acids 240-525 of the mature protein) correspond to the intracellular domain. As used herein, the term CD122 includes naturally occurring variants of the CD122 protein, including S57F and D365E (when numbered according to the mature hCD122 protein). hCD122 is referenced in the UniProtKB database as entry P14784. The nucleic acid and protein sequences of human CD122 can be found under GenBank accession numbers NM_000878 and NP_000869, respectively. The amino acid sequence of the mature hCD122 protein is: TIFF2025160450000008.tif46132, and the amino acid sequence of the extracellular domain of hCD122 is The file is TIFF2025160450000009.tif17132.

[0076] CD132:As used herein, the terms "CD132," "IL2 receptor gamma," "IL2Rg," and "IL2Rγ" refer to the type 1 cytokine receptor, commonly referred to as the "common" gamma chain, shared by the receptor complexes for IL-4, IL-7, IL-9, IL-15, and IL-21. Human CD132 (hCD132) is expressed as a 369-amino acid preprotein, including a 22-amino acid N-terminal signal sequence. Amino acids 23-262 (amino acids 1-240 of the mature protein) correspond to the extracellular domain, amino acids 263-283 (amino acids 241-262 of the mature protein) correspond to the 21-amino acid transmembrane domain, and amino acids 284-369 (amino acids 262-347 of the mature protein) correspond to the intracellular domain. hCD132 is referenced in the UniProtKB database as entry P31785. The nucleic acid and protein sequences of human CD132 can be found under GenBank accession numbers NM_000206 and NP_000197, respectively. The amino acid sequence of the mature hCD132 protein is: The file is TIFF2025160450000010.tif27133.

[0077] CDR:As used herein, the term "CDR" or "complementarity determining region" is intended to mean the non-contiguous antigen-binding combining sites found within the variable regions of both heavy and light chain immunoglobulin polypeptides. CDRs are described by Kabat et al., J. Biol. Chem. 252:6609-6616 (1977); Kabat, et al., US Dept. of Health and Human Services publication entitled "Sequences of proteins of immunological interest" (1991) (also referred to herein as "Kabat 1991" or "Kabat"); Chothia, et al. (1987) J. Mol. Biol. 196:901-917 (also referred to herein as "Chothia"); and MacCallum, et al. (1996) J. Mol. Biol. 262:732-745, where these definitions include overlapping or subsets of amino acid residues when compared with each other. Nevertheless, application of either definition to refer to a CDR of an antibody or grafted antibody or variants thereof is intended to be within the scope of the term as defined and used herein. In the context of this disclosure, the numbering of the CDR positions is provided according to the Kabat numbering convention.

[0078] Equivalent:As used herein, the term "equivalent" is used to describe the degree of difference between two measurements of evaluable quantitative or qualitative parameters. For example, if the difference between a first measurement of an evaluable quantitative parameter (e.g., CTLL-2 proliferation or IL2 activity level as determined by a phospho-STAT5 assay) and a second measurement of the evaluable parameter does not exceed a range that a person skilled in the art would recognize as not resulting in a statistically significant difference between the two results in that situation, the two measurements would be considered "equivalent." In some cases, measurements can be considered "equivalent" if the difference between one measurement and another is less than 30%, alternatively less than 25%, alternatively less than 20%, alternatively less than 15%, alternatively less than 10%, alternatively less than 7%, alternatively less than 5%, alternatively less than 4%, alternatively less than 3%, alternatively less than 2%, or alternatively less than 1%. In certain embodiments, a measurement is equivalent to a reference standard if the difference between the measurement and the reference standard is less than 15%, alternatively less than 10%, or alternatively less than 5%.

[0079] Conservative amino acid substitutions: As used herein, the term "conservative amino acid substitution" refers to a modification in the amino acid sequence of a polypeptide in which one amino acid residue is replaced with another amino acid residue such that the resulting protein retains equivalent activity to the parent polypeptide in a similar test system. In some embodiments, the IL2 muteins of the present disclosure may further comprise another conservative amino acid substitution within the wild-type IL2 amino acid sequence. Examples of conservative substitutions include those described by Dayhoff in *The Atlas of Protein Sequence and Structure* 5 (1978) and by Argos in *EMBO J., 8:779-785 (1989). Conservative substitutions are typically made according to the following chart shown in Table 3 below:

[0080] Table 3: Exemplary conservative amino acid substitutions TIFF2025160450000011.tif104134

[0081] Substantial changes in function or immunological identity can be made by selecting amino acid substitutions that are less conservative than those shown in Table 3 ("non-conservative amino acid substitutions"). Examples of non-conservative amino acid substitutions are those that significantly affect the structure of the polypeptide backbone or disrupt secondary or tertiary elements, including the substitution of an amino acid with a small, uncharged side chain (e.g., glycine) with a large, charged, bulky side chain (asparagine).

[0082] Derived from: As used herein, the term "derived from," in the context of an amino acid sequence or polynucleotide sequence (e.g., an amino acid sequence "derived from" an IL2 polypeptide), is meant to indicate that the polypeptide or nucleic acid has a sequence based on the sequence of a reference polypeptide or nucleic acid (e.g., a native IL2 polypeptide or a nucleic acid encoding IL2), and is not meant to be limiting with respect to the source or manner in which the protein or nucleic acid is made. By way of example, the term "derived from" includes homologs or variants of the reference amino acid or DNA sequence.

[0083] Effective concentration (EC): As used herein, the term "effective concentration" or its abbreviation "EC" are used interchangeably to refer to the concentration of an agent (e.g., a hIL2 mutein) in an amount sufficient to elicit a response in a given parameter in a test system. The abbreviation "E" refers to the magnitude of a given biological effect observed in a test system when the test system is exposed to a test agent. The abbreviation "EC" is used when the magnitude of the response is expressed as a factor of the concentration ("C") of the test agent. In the context of a biological system, the term Emax refers to the maximum magnitude of a given biological effect observed in response to a saturating concentration of an activating test agent. When the abbreviation EC is accompanied by a subscript (e.g., EC 40 , E.C. 50etc.), where the subscript refers to the percent of Emax of the biological effect observed at that concentration. For example, a concentration of such a test agent sufficient to result in the induction of a measurable biological parameter in a test system that is 30% of the maximum level of such measurable biological parameter in response to the test agent is the "EC" of the test agent with respect to such biological parameter. 30 Similarly, it is called "EC 100 The term "effective concentration" is used to mean the effective concentration of an agent that results in a maximal (100%) response of a measurable parameter in response to such an agent. 50 The term "EC" (commonly used in the field of pharmacodynamics) refers to the concentration of an agent sufficient to result in a half-maximal (50%) change in a measurable parameter. The term "saturation concentration" refers to the maximum possible amount of a test agent that can be dissolved in a standard volume of a particular solvent (e.g., water) under standard conditions of temperature and pressure. In pharmacodynamics, the saturation concentration of a drug is typically used to mean a drug concentration sufficient for all available receptors to be occupied by the drug, and is referred to as the EC 50 is the drug concentration for giving a half-maximal effect. The EC for a particular effective concentration of a test agent may be abbreviated for a particular parameter and test system. For example, the concentration of an IL2 mutein that induces 50% of the maximal level of STAT5 phosphorylation in CD25+ T cells may be referred to as "EC" depending on the context. 50 pSTAT5-CD25+ " or similar terms. Emax is a factor of the parameter being measured (e.g., pSTAT5 induction, proliferation), the test agent (e.g., a particular IL2 mutein such as "REH" below), and the test system (e.g., CD25+ human T cells, human CD25- cells, primary human T cells), and therefore the concentration of test agent (e.g., EC 20 , E.C. 50Determination of bioactivity (e.g., activity, activity level, etc.) can be empirically determined in a particular test system. In some cases, there are generally accepted standardized measures of bioactivity established for molecules. For example, with respect to the potency of hIL2, the standard methodology for assessing hIL2 potency in International Units (IU) is measured in the murine cytotoxic T cell line CTLL-2 according to standard procedures as fully described by Wadhwa, et al. (2013) "The 2nd International standard for Interleukin-2 (IL2) Report of a collaborative study" Journal of Immunological Methods 397:1-7. In the context of the present disclosure, it should be noted that the mouse IL2 receptor functions differently from the human IL2 receptor, particularly with regard to the requirement for all components of the trimeric receptor complex to provide intracellular signal transduction (e.g., STAT5 phosphorylation). See, for example, Horta, et al., (2019) "Human and murine IL2 receptors differentially respond to the human-IL2 component of immunocytokines" Oncoimmunology 8(6):e1238538-1, e1238538-15 and Nemoto, et al. (1995) "Differences in the Interleukin-2 (IL2) receptor system in human and mouse: alpha chain is required for formation of the functional mouse IL2 receptor" European J Immunology 25(11)3001-5.As a result, when assessing the activity of the hIL2 muteins of the present disclosure, particularly with respect to selectivity for CD25, the use of human cells or systems that recapitulate the biology of low-, medium-, and high-affinity human IL2 receptors and receptor complexes is preferred, and molecules that exhibit selective binding or activation in mouse test systems (e.g., in vitro test systems using mouse cells or in vivo in mice) may not recapitulate such selective activity in human systems (e.g., in vitro test systems using human cells or in vivo in human subjects).

[0084] EC proliferation: "An effective concentration sufficient to induce proliferation of CD3-activated primary human T cells" (referred to herein as "EC PRO The term "IL2 mutein" (abbreviated as "EC") refers to the effective concentration of an IL2 mutein sufficient to induce proliferation of CD3-activated primary human T cells, as determined according to the teachings of protocols standard in the art. Examples of such standard protocols for assessing proliferation of CD3-activated primary human T cells include a bioluminescence assay that generates a luminescent signal proportional to the amount of ATP present, which is directly proportional to the number of cells present in culture, as described in Crouch, et al. (1993) "The use of ATP bioluminescence as a measure of cell proliferation and cytotoxicity," J. Immunol. Methods 160: 81-8, or a standard commercially available assay system such as the CellTiter-Glo® 2.0 Cell Viability Assay or the CellTiter-Glo® 3D Cell Viability Kit, commercially available from Promega Corporation, 2800 Woods Hollow Road, Madison, WI 53711, under catalog numbers G9241 and G9681, respectively, in substantial accordance with the instructions provided by the manufacturer. The abbreviation EC PROWhen used with a subscript, this is provided to indicate the concentration of a test agent sufficient to induce the indicated percent of maximal proliferation of primary human T cells in response to the test agent as measured by a given test protocol. Illustratively, the abbreviation EC 30 PRO can be used with respect to a hIL2 mutein to indicate the concentration associated with 30% of the maximal level of proliferation of CD3-activated primary human T cells in response to that IL2 mutein as measured by the CellTiter-Glo® 2.0 cell viability assay.

[0085] EC activation : "An effective concentration sufficient to induce T cell activation" (referred to herein as "EC ACT The term IL2 mutein (abbreviated as "IL2") refers to an effective concentration of an IL2 mutein sufficient to induce activation and / or differentiation of human T cells. Evaluable parameters for measuring T cell activation are well known in the art. In some embodiments, the level of T cell activation in response to administration of a test agent can be determined by the described flow cytometry method, as determined by the level of STAT5 phosphorylation according to methods well known in the art. STAT5 phosphorylation can be measured using flow cytometry techniques such as those described in Horta et al., supra, Garcia et al., supra, or using commercially available kits such as the phospho-STAT5 (Tyr694) kit (commercially available from Perkin-Elmer / cisbio Waltham, MA as part number 64AT5PEG) substantially in accordance with the manufacturer's instructions. Abbreviations: EC ACT When used with a subscript, this is provided to indicate the concentration of a test agent sufficient to induce the indicated percent of maximal STAT5 phosphorylation in T cells in response to application of the test agent, as measured according to the test protocol. Illustratively, the abbreviation EC 30 PRO can be used with respect to hIL2 muteins to indicate the concentration associated with 30% of the maximal level of proliferation of T cells responding with that IL2 mutein, as measured.

[0086] Concentrated: As used herein, the term "enriched" refers to a sample in which a species (e.g., a molecule or cell) of interest is present at a concentration: (a) greater than the concentration of the species in a starting sample, e.g., a biological sample (e.g., a sample in which the molecule naturally occurs or in which the molecule occurs after administration) (e.g., at least 3-fold greater, alternatively at least 5-fold greater, alternatively at least 10-fold greater, alternatively at least 50-fold greater, alternatively at least 100-fold greater, or alternatively at least 1000-fold greater); or (b) a sample that has been non-naturally engineered such that the species (e.g., a molecule or cell) is present at a concentration greater than the concentration of the species in the starting sample, e.g., a biological sample (e.g., a sample in which the molecule naturally occurs or in which the molecule occurs after administration); or (b) a sample that has been non-naturally engineered such that the species is present at a concentration greater than the environment in which the molecule was made (e.g., a recombinantly modified bacterial or mammalian cell).

[0087] Extracellular domain: As used herein, the term "extracellular domain" or its abbreviation "ECD" refers to the portion of a cell surface protein (e.g., a cell surface receptor) that is on the outside of the plasma membrane of the cell. The cell surface protein can be a transmembrane protein, a cell surface protein, or a membrane-associated protein.

[0088] Identity:The term "identity" as used herein with reference to a polypeptide sequence or DNA sequence refers to the subunit sequence identity between two molecules. If a subunit position in both molecules is occupied by the same monomer subunit (i.e., the same amino acid residue or nucleotide), then the molecules are identical at that position. The similarity between two amino acid or two nucleotide sequences is a direct function of the number of identical positions. Generally, these sequences are aligned to obtain the highest level of match. If necessary, identity can be calculated using published techniques and widely available computer programs, such as the GCS program package (Devereux, et al., (1984) Nucleic Acids Res. 12:387), BLASTP, BLASTN, and FASTA (Atschul, et al. (1990) J. Molecular Biol. 215:403-410). Suitable algorithms for determining percent sequence identity and sequence similarity are the BLAST and BLAST 2.0 algorithms described in Altschul et al. (1990) J. Mol. Biol. 215: 403-410 and Altschul, et al. (1977) Nucleic Acids Res. 25: 3389-3402. Software for performing BLAST analysis is publicly available through the website of the National Center for Biotechnology Information (NCBI). This algorithm involves first identifying high-scoring sequence pairs (HSPs) by identifying short words of length W in a query sequence that match or meet a certain positive threshold score "T" when aligned with words of the same length in a database sequence. T is referred to as the neighborhood word score threshold (Altschul et al., supra). These initial neighborhood word hits serve as seeds for initiating searches to find longer HSPs containing them. The word hits are then extended in both directions for each sequence for as far as the total alignment score can be increased.For nucleotide sequences, the total score is calculated using the parameters "M" (reward score for a pair of matching residues; always >0) and "N" (penalty score for mismatching residues; always <0). For amino acid sequences, a scoring matrix is ​​used to calculate the total score. Extension of the word hit in each direction is stopped until (a) the total alignment score is reduced by an amount X from its maximum achieved value; the accumulation of alignment of one or more negatively scoring residues causes the total score to fall below zero; or (b) the end of either sequence is reached. The BLAST algorithm parameters "W," "T," and "X" determine the sensitivity and speed of the alignment. The BLASTN program (for nucleotide sequences) functions similarly, but uses as defaults a word size ("W") of 28, an expectation ("E") of 10, M=1, N=-2, and a comparison of both strands. For amino acid sequences, the BLASTP program uses as defaults a word size (W) of 3, an expectation (E) of 10, and the BLOSUM62 scoring matrix (see Henikoff & Henikoff, (1989) PNAS (USA) 89:10915-10919).

[0089] IL2: As used herein, the term "interleukin-2" or "IL2" refers to a naturally occurring IL2 polypeptide having IL2 activity. In some embodiments, IL2 refers to mature wild-type human IL2. Mature wild-type human IL2 (hIL2) exists as a 133 amino acid mature polypeptide (minus a signal peptide consisting of an additional 20 N-terminal amino acids) as described in Fujita, et. al, PNAS USA, 80, 7437-7441 (1983). The residue numbering of hIL2 muteins used herein is based on the hIL2 sequence UniProt ID P60568, excluding the signal peptide, which is the same as the sequence of SEQ ID NO:1. The amino acid sequence of a naturally occurring variant of mature wild-type human IL2 (hIL2) is: TIFF2025160450000012.tif13128.

[0090] IL2 activity The term "IL2 activity" refers to one or more biological effects on a cell in response to contacting the cell with an effective amount of an IL2 polypeptide. IL2 activity can be measured, for example, in a cell proliferation assay using CTLL-2 murine cytotoxic T cells substantially according to the teachings of Gearing, AJH and CB Bird (1987) in Lymphokines and Interferons, A Practical Approach. Clemens, MJ et al. (eds): IRL Press. 295. The specific activity of recombinant human IL2 (rhIL2) is approximately 2.1 x 10 4 IU / μg, which is calibrated against the WHO International Standard for Recombinant Human IL2 (NIBSC Code: 86 / 500). In some embodiments, the level of IL2 activity can be expressed as STAT5 phosphorylation levels, which can be determined by flow cytometry methods known in the art.

[0091] IL2 mutein: As used herein, the term "IL2 mutein" refers to a mutein derived from a naturally occurring form of IL2 that contains modifications to the amino acid sequence of the IL2 molecule. IL2 muteins are characterized by amino acid insertions, deletions, substitutions, and modifications at one or more sites or other residues in the naturally occurring parent IL2 polypeptide chain. In some embodiments, the IL2 muteins of the present invention retain CD122 binding activity equivalent to that of wild-type mature human IL2 of the WHO international standard (NIBSC code: 86 / 500) when evaluated at similar concentrations in an equivalent assay. Exemplary muteins can contain 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, or more amino acid substitutions.

[0092] In amounts sufficient to elicit a response:As used herein, the phrase "in an amount sufficient to elicit a response" refers to an amount of a test agent sufficient to provide a detectable change in the level of a measured indicator before (e.g., baseline level) and after application of the test agent to a test system. In some embodiments, the test system is a cell, tissue, or organism. In some embodiments, the test system is an in vitro test system, such as a fluorescent assay. In some embodiments, the test system is an in vivo system that involves measuring a change in the level of a parameter of a cell, tissue, or organism that reflects biological function before and after application of a test agent to the cell, tissue, or organism. In some embodiments, the indicator reflects the biological function or developmental state of the cell assessed in the assay in response to administration of an amount of the test agent. In some embodiments, the test system involves measuring a change in the level of an indicator of a cell, tissue, or organism that reflects the biological state before and after application of one or more test agents to the cell, tissue, or organism. The term "in an amount sufficient to elicit a response" can be a sufficiently therapeutically effective amount, but can also be more or less than a therapeutically effective amount.

[0093] Needs treatment: As used herein, the term "in need of treatment" refers to a judgment made by a physician or other caregiver regarding a subject that the subject needs or would potentially benefit from treatment. This judgment is made based on a variety of factors within the physician's or caregiver's expertise.

[0094] Precautions required: As used herein, the term "in need of prevention" refers to a judgment made by a physician or other caregiver regarding a subject that the subject is in need of or would potentially benefit from preventative care. This judgment is made based on a variety of factors that are within the physician's or caregiver's expertise.

[0095] Inhibitors:The term "inhibitor" as used herein refers to a molecule that reduces, blocks, prevents, delays the activation of, inactivates, desensitizes, or downregulates, for example, a gene, protein, ligand, receptor, or cell. An inhibitor can also be defined as a molecule that reduces, blocks, or inactivates the constitutive activity of a cell or organism.

[0096] Isolated: The term "isolated" as used herein refers to a polypeptide of interest that is in an environment different from the environment in which it can naturally exist if it exists in nature. "Isolated" refers to a polypeptide that is in a sample in which the polypeptide of interest is substantially enriched and / or in which the polypeptide of interest is partially or substantially purified.When a polypeptide is non-naturally occurring, "isolated" refers to the polypeptide being separated from the environment in which it was synthesized, for example, from a recombinant cell culture containing cells engineered to express the polypeptide, or by a solution resulting from solid-phase synthesis.

[0097] Kabat numbering: As used herein, the term "Kabat numbering" is a term recognized in the art of antibody engineering to refer to a numbering system for amino acid residues that are more variable than other amino acid residues (e.g., hypervariable residues) within the heavy and light chain regions of immunoglobulins (Kabat, et al., (1971) Ann. NY Acad. Sci 190:382-93; Kabat, et al., (1991) Sequences of Proteins of Immunological Interest, Fifth Edition, US Department of Health and Human Services, NIH Publication No. 91-3242). For purposes of this disclosure, the positioning of CDRs within the variable regions of the antibodies disclosed herein is according to Kabat numbering or simply "Kabat".

[0098] Metastasis: As used herein, the term "metastasis" describes the spread of cancer cells from a primary tumor to surrounding tissues and distant organs.

[0099] Ligand: The term "ligand" as used herein refers to a molecule that specifically binds to a receptor and modifies the receptor to cause a change in receptor activity or response in cells expressing that receptor. In one aspect, the term "ligand" refers to a molecule, or complex thereof, that can act as an agonist or antagonist of a receptor. The term "ligand" as used herein encompasses natural and synthetic ligands. "Ligand" also encompasses small molecules, peptide mimetics of cytokines, and peptide mimetics of antibodies. A complex of a ligand and a receptor is termed a "ligand-receptor complex." A ligand can comprise a domain of a polyprotein or a fusion protein (e.g., either domain of an antibody / ligand fusion protein). A complex of a ligand and a receptor is termed a "ligand-receptor complex."

[0100] Engineered IL2 muteins:As used herein, the term "modified IL2 mutein" refers to an IL2 mutein that comprises one or more additional modifications (i.e., modifications other than the core amino acid sequence of the hIL2 mutein), such as PEGylation, glycosylation (N-linked and O-linked), acylation, or polysialylation, or an IL2 mutein that is conjugated (by chemical conjugation or as a fusion protein) to another polypeptide carrier molecule, including, but not limited to, an albumin fusion polypeptide or Fc-fusion protein comprising serum albumin (e.g., human serum albumin (HSA) or bovine serum albumin (BSA)), or an IL2 mutein that has a targeting moiety such as an IL2 orthogonal polypeptide fusion protein, an IgG containing target IL2 mutein polypeptide, e.g., an ScFv-IL2 mutein polypeptide fusion protein, and a VHH-IL2 mutein polypeptide fusion protein. Modified IL2 muteins can be prepared to enhance one or more properties, for example, to modulate immunogenicity; to increase water solubility, bioavailability, serum half-life, and / or therapeutic half-life; and / or to modulate biological activity. Certain modifications can also be useful, for example, to generate antibodies for use in detection assays (e.g., epitope tags) and to provide ease in protein purification. In some embodiments, the modified IL2 mutein is at least 95, 96, 97, 98, or 99% identical to SEQ ID NO:1 and has one of three combinations of modifications relative to SEQ ID NO:1 as shown in Table 4.

[0101] Modulate: As used herein, the terms "modulate," "modulation," and the like refer to the ability of a test agent to cause a response, either positively or negatively, or directly or indirectly, in a biological system or a system containing a biochemical pathway. The term modulator includes both agonists (including partial agonists, full agonists, and superagonists) and antagonists.

[0102] Mutein: As used herein, the term "mutein" refers to a modified version of a wild-type polypeptide that contains modifications to the primary structure (i.e., amino acid sequence) of such polypeptide. The term mutein may refer to the polypeptide itself, a composition comprising the polypeptide, or the nucleic acid sequence encoding it. In some embodiments, a mutein polypeptide contains about 1 to about 10 amino acid modifications relative to the parent polypeptide, alternatively about 1 to about 5 amino acid modifications relative to the parent, alternatively about 1 to about 3 amino acid modifications relative to the parent, alternatively 1 to 2 amino acid modifications relative to the parent, or alternatively a single amino acid modification relative to the parent. A mutein can be at least about 99% identical to the parent polypeptide, alternatively at least about 98% identical, alternatively at least about 97% identical, alternatively at least about 95% identical, or alternatively at least about 90% identical.

[0103] N-terminus: As used herein in the context of a polypeptide's structure, "N-terminus" (or "amino terminus") and "C-terminus" (or "carboxyl terminus") refer to the extreme amino and carboxyl termini of a polypeptide, respectively, while "N-terminally" and "C-terminally" refer to the relative position toward the N-terminus and C-terminus, respectively, in the amino acid sequence of a polypeptide and can include residues at the N-terminus and C-terminus, respectively. "Directly N-terminally" or "directly C-terminally" refers to the position of a first amino acid residue relative to a second amino acid residue, where the first and second amino acid residues are covalently linked to provide a contiguous amino acid sequence.

[0104] Neoplastic diseases:The term "neoplastic disease," as used herein and described in more detail below, refers to a disorder or condition in a subject resulting from excessive cell proliferation or unregulated (or dysregulated) cell replication. The term neoplastic disease refers to a disorder resulting from the presence of a neoplasm in a subject. Neoplasms can be classified as (1) benign, (2) premalignant (or "precancerous"); and (3) malignant (or "cancerous"). The term "neoplastic disease" includes neoplasia-related diseases, disorders, and conditions, which refer to conditions directly or indirectly associated with neoplastic disease, including, for example, angiogenesis and precancerous conditions such as dysplasia or smoldering multiple myeloma. Examples of benign disorders resulting from dysregulated cell replication include hypertrophic scars, such as keloid scars.

[0105] Nucleic acid: The terms "nucleic acid," "nucleic acid molecule," "polynucleotide," and the like are used interchangeably herein to refer to polymeric forms of any length of nucleotides, be they deoxyribonucleotides or ribonucleotides or analogs thereof. Non-limiting examples of polynucleotides include linear or circular nucleic acids, messenger RNA (mRNA), complementary DNA (cDNA), recombinant polynucleotides, vectors, probes, primers, and the like.

[0106] Numbered according to IL2: As used herein, the term "numbered according to IL2" refers to the identification of the location of a particular amino acid relative to the position where that amino acid normally occurs in the mature sequence of mature wild-type hIL2, e.g., R81 refers to the 81st amino acid, arginine, present in SEQ ID NO:1.

[0107] Functionally linked:The term "operably linked" is used herein to refer to the relationship between molecules, typically polypeptides or nucleic acids, arranged in a construct such that the function of each of the component molecules is maintained, although operably linkage may result in positive or negative modulation of the activity of the individual components of the construct. For example, operably linking a polyethylene glycol (PEG) molecule to a wild-type protein may result in a construct in which the biological activity of the protein is reduced compared to the wild-type molecule, yet the two are still considered operably linked. When the term "operably linked" is applied to the relationship of multiple nucleic acid sequences encoding different functions, the multiple nucleic acid sequences, when combined into a single nucleic acid molecule, provide a nucleic acid capable of directing transcription and / or translation of the specific nucleic acid sequence in a cell when introduced into the cell, e.g., using recombinant techniques. For example, a nucleic acid sequence encoding a signal sequence may be considered operably linked to DNA encoding a polypeptide if the signal sequence results in expression of a preprotein that promotes secretion of the polypeptide; a promoter or enhancer may be considered operably linked to a coding sequence if it affects the transcription of the sequence; or a ribosome binding site may be considered operably linked to a coding sequence if it is positioned so as to facilitate translation. In reference to nucleic acid molecules, the term "operably linked" generally means that the nucleic acid sequences being linked are contiguous, and, in the case of a secretory leader or related subdomain of the molecule, contiguous and in reading phase. However, certain genetic elements, such as enhancers, may function at a distance and need not be contiguous with respect to the sequences through which they provide their effect, yet may still be considered operably linked.

[0108] Parent Polypeptide:As used herein, the terms "parent polypeptide" or "parent protein" are used interchangeably to refer to the origin of a second polypeptide (e.g., a derivative or variant) that is modified with respect to a first "parent" polypeptide. In some cases, the parent polypeptide is a wild-type or naturally occurring form of the protein. In some cases, the parent polypeptide may be a modified form of the naturally occurring protein that has been further modified. The term "parent polypeptide" can refer to the polypeptide itself or a composition comprising the parent polypeptide (e.g., a glycosylated or PEGylated form and / or a fusion protein comprising the parent polypeptide).

[0109] Partial agonists:The term "partial agonist" as used herein refers to a molecule that specifically binds to and activates a given receptor, but only partially activates the receptor compared to a full agonist.Partial agonists may exhibit both agonist and antagonist effects.For example, when both a full agonist and a partial agonist are present, the partial agonist acts as a competitive antagonist by competing with the full agonist to bind to the receptor, resulting in a net reduction in receptor activation compared to the contact of the receptor with the full agonist in the absence of the partial agonist.Clinically, partial agonists can be used to activate receptors in the presence of insufficient endogenous ligands to provide desired submaximal responses, or they can reduce receptor overstimulation in the presence of excessive endogenous ligands.The maximum response (Emax) produced by a partial agonist is called its intrinsic activity, and can be expressed on a percentage scale, where a full agonist produces a 100% response. An IL2 partial agonist of the present disclosure may have more than 10%, alternatively more than 20%, alternatively more than 30%, alternatively more than 40%, alternatively more than 50%, alternatively more than 60%, or alternatively more than 70%, or alternatively more than 10% but less than 100%, alternatively more than 20% but less than 100%, alternatively more than 30% but less than 100%, alternatively more than 40% but less than 100%, alternatively more than 50% but less than 100%, alternatively more than 60% but less than 100%, alternatively more than 70% but less than 100%, alternatively more than 80% but less than 100%, or alternatively more than 90% but less than 100% of the activity of WHO International Standard (NIBSC code: 86 / 500) wild-type mature human IL2 when evaluated in an equivalent assay at similar concentrations.

[0110] PEG-IL2 mutein:As used herein, the term "PEG-IL2 mutein" refers to an IL2 mutein covalently linked to at least one polyethylene glycol (PEG) molecule, wherein the at least one PEG molecule is covalently attached to at least one amino acid residue of the IL2 mutein. PEGylated polypeptides may be further referred to as mono-PEGylated, di-PEGylated, tri-PEGylated (and others), respectively, to refer to PEG-IL2 muteins containing one, two, or three (or more) PEG moieties attached to the IL2 mutein. In some embodiments, PEG may be directly covalently attached to the IL2 mutein (e.g., via a lysine side chain, a cysteine ​​sulfhydryl group, or the N-terminal amine), or a linker may be employed between the PEG and the IL2 mutein. In some embodiments, the PEG-IL2 mutein comprises multiple PEG molecules, each attached to a different amino acid residue. In some embodiments, the PEG-IL2 mutein is derived from SEQ ID NO:1 (native hIL2). Pegylated forms of IL2 and methodologies for PEGylation of IL2 polypeptides are well known in the art (see, e.g., Katre et al., U.S. Pat. No. 4,931,544, issued June 5, 1990; Katre et al., U.S. Pat. No. 5,206,344, issued April 27, 1993; and Bossard et al., U.S. Pat. No. 9,861,705, issued January 9, 2018). In some embodiments, IL2 muteins may be modified by the incorporation of unnatural amino acids bearing non-naturally occurring amino acid side chains to facilitate site-specific PEGylation, as described in Ptacin et al., U.S. Patent Application Publication US20170369871A1, published December 28, 2017. In other embodiments, cysteine ​​residues may be incorporated at various positions within the IL2 molecule to facilitate site-specific PEGylation via cysteine ​​side chains, as described in Greve et al., PCT International Patent Application No. PCT / US2015 / 044462, published February 18, 2016 as WO2016 / 025385.

[0111] Polypeptides:As used herein, the terms "polypeptide," "peptide," and "protein" are used interchangeably to refer to polymeric forms of amino acids of any length, including genetically encoded and non-genetically encoded amino acids, chemically or biochemically modified or derivatized amino acids, and polypeptides with modified polypeptide backbones. The term polypeptide includes fusion proteins, including, but not limited to, fusion proteins with heterologous amino acid sequences; fusion proteins with heterologous and homologous leader sequences; fusion proteins with or without an N-terminal methionine residue; fusion proteins with amino acid sequences that facilitate purification, such as chelating peptides; fusion proteins with immunologically tagged proteins; and fusion proteins containing peptides with immunologically active polypeptide fragments (e.g., antigenic diphtheria or tetanus toxin or toxoid fragments).

[0112] Preventive measures: As used herein, the terms "prevent," "preventing," "prevention," and the like, generally in relation to a subject who is predisposed to having a particular disease, disorder, or condition due to genetic, experiential, or environmental factors, refer to an action initiated in a subject prior to the onset of a disease, disorder, condition, or symptoms thereof, such that the subject temporarily or permanently prevents, suppresses, inhibits, or reduces the risk of, or delays the onset of, the disease, disorder, condition, or other (e.g., as determined by the absence of clinical symptoms). In certain instances, the terms "prevent," "preventing," and "prevention" are also used to refer to slowing the progression of a disease, disorder, or condition from its current state to a more deleterious state.

[0113] Receptor:The term "receptor," as used herein, refers to a polypeptide having a domain that specifically binds to a ligand, where binding of the ligand results in a change in at least one biological property of the polypeptide. In some embodiments, the receptor is a "soluble" receptor that is not associated with a cell surface. The soluble form of hCD25 is an example of a soluble receptor that specifically binds hIL2. In some embodiments, the receptor is a cell surface receptor comprising an extracellular domain (ECD) and a membrane-associated domain that acts to anchor the ECD to the cell surface. In some embodiments of cell surface receptors, the receptor is a transmembrane polypeptide comprising an intracellular domain (ICD) and an extracellular domain (ECD) connected by a transmembrane domain, typically referred to as the transmembrane domain (TM). Binding of a ligand to the receptor results in a conformational change in the receptor, resulting in a measurable biological effect. In some cases where the receptor is a transmembrane polypeptide comprising an ECD, a TM, and an ICD, binding of a ligand to the ECD results in a measurable intracellular biological effect mediated by one or more domains of the ICD in response to binding of the ligand to the ECD. In some embodiments, the receptor is a component of a multicomponent complex that promotes intracellular signaling. For example, a ligand may bind to a cell surface molecule that is not associated with any intracellular signaling alone, but upon ligand binding promotes the formation of heteromultimers, including heterodimeric (e.g., intermediate-affinity CD122 / CD132 IL2 receptor), heterotrimeric (e.g., high-affinity CD25 / CD122 / CD132 hIL2 receptor), or homomultimeric (e.g., homodimeric, homotrimeric, homotetrameric) complexes that result in activation of intracellular signaling cascades (e.g., Jak / STAT pathways).

[0114] Recombination:As used herein, the term "recombinant" is used as an adjective to refer to the manner in which a polypeptide, nucleic acid, or cell has been modified using recombinant DNA technology. A "recombinant protein" is a protein produced using recombinant DNA technology and is often abbreviated by preceding the protein name with a lowercase "r" to indicate the method by which the protein was produced (e.g., recombinantly produced human growth hormone is commonly abbreviated as "rhGH"). Similarly, if a cell has been modified using recombinant DNA technology by the incorporation (e.g., transfection, transduction, infection) of an exogenous nucleic acid (e.g., ssDNA, dsDNA, ssRNA, dsRNA, mRNA, viral or non-viral vectors, plasmids, cosmids, etc.), the cell is referred to as a "recombinant cell." Techniques and protocols for recombinant DNA technology are well known in the art.

[0115] response:For example, the term "response" of a cell, tissue, organ, or organism encompasses quantitative or qualitative changes in an assessable biochemical or physiological parameter (e.g., concentration, density, adhesion, proliferation, activation, phosphorylation, migration, enzyme activity, gene expression level, gene expression rate, energy expenditure rate, level or state of differentiation), where the change correlates with activation, stimulation, or treatment with, or contact with, an exogenous agent or an internal mechanism such as genetic programming. In certain contexts, terms such as "activation," "stimulation," and the like refer to cellular activation when regulated by external or environmental factors as well as internal mechanisms; whereas terms such as "inhibition," "downregulation," and the like refer to the opposite effect. A "response" can be assessed in vitro, such as by the use of assay systems, surface plasmon resonance, enzyme activity, mass spectrometry, amino acid or protein sequencing technologies. "Response" can be assessed quantitatively in vivo by evaluation of objective physiological parameters such as body temperature, body weight, tumor volume, blood pressure, etc., the results of X-ray or other imaging techniques, or qualitatively by changes in reported subjective feelings of well-being, depression, agitation, or pain. In some embodiments, the level of proliferation of CD3-activated primary human T cells can be assessed with a bioluminescence assay that generates a luminescent signal proportional to the amount of ATP present, which is directly proportional to the number of cells present in culture, as described in Crouch, et al. (1993) J. Immunol. Methods 160: 81-8, or by using a commercially available assay such as the CellTiter-Glo® 2.0 Cell Viability Assay or the CellTiter-Glo® 3D Cell Viability Kit, commercially available from Promega Corporation, Madison, WI 53711, catalog numbers G9241 and G9681, in substantial accordance with the instructions provided by the manufacturer. In some embodiments, the level of T cell activation in response to administration of a test agent can be determined by flow cytometry methods described above, as determined by STAT (e.g., STAT1, STAT3, STAT5) phosphorylation levels, according to methods well known in the art.For example, STAT5 phosphorylation can be measured using flow cytometry techniques described in Horta et al., supra, Garcia et al., supra, or a commercially available kit such as the phospho-STAT5(Tyr694) kit (commercially available as part number 64AT5PEG from Perkin-Elmer, Waltham MA) performed substantially according to the instructions provided by the manufacturer.

[0116] Selective: As used herein, the term "selective" refers to the property of an agent to preferentially bind to and / or activate a particular cell type based on the particular properties of such cell population. In some embodiments, the present disclosure provides muteins that are CD25-selective in that such muteins exhibit preferential activation of cells expressing CD25 and / or CD25 / CD122 receptors relative to cells expressing CD132 receptors. Selectivity is typically assessed by activity measured as an assay characteristic of activity induced in response to ligand / receptor binding. In some embodiments, selective IL2 muteins exhibit significantly reduced binding. In some embodiments, selectivity is measured by activation of cells expressing CD25 (e.g., YTCD25 or YTCD25 cells) relative to activation of cells displaying significantly low (preferably undetectable) levels of CD25 (e.g., YTCD25 or YTCD25 cells). In some embodiments, selectivity is measured by activation of T cells expressing CD25 (e.g., Tregs) compared to T cells expressing low levels of CD25 (e.g., unstimulated CD8+ or CD4+ T cells). In some embodiments, an IL2 mutein of the present disclosure has at least a 3-fold, alternatively at least a 5-fold, alternatively at least a 10-fold, alternatively at least a 20-fold, alternatively at least a 30-fold, alternatively at least a 40-fold, alternatively at least a 50-fold, alternatively at least a 100-fold, alternatively at least a 200-fold difference in EC50 on CD25+ cells compared to CD25- cells when measured in the same assay.

[0117] Significantly reduced connectivity:As used herein, the term "exhibiting significantly reduced binding" is used in reference to a variant of a first molecule (e.g., a ligand) that exhibits significantly reduced affinity for a second molecule (e.g., a receptor) compared to the parent form of the first molecule. With respect to antibody variants, an antibody variant "exhibits significantly reduced binding" if it binds to the native form of a receptor with less than 20%, alternatively less than about 10%, alternatively less than about 8%, alternatively less than about 6%, alternatively less than about 4%, alternatively less than about 2%, alternatively less than about 1%, or alternatively less than about 0.5% of the affinity of the parent antibody from which the variant is derived. Similarly, with respect to a variant ligand, a variant ligand "exhibits significantly reduced binding" if it binds to a receptor with less than 20%, alternatively less than about 10%, alternatively less than about 8%, alternatively less than about 6%, alternatively less than about 4%, alternatively less than about 2%, alternatively less than about 1%, or alternatively less than about 0.5% of the affinity of the parent ligand from which the variant ligand was derived. Similarly, with respect to a variant receptor, a variant ligand "exhibits significantly reduced binding" if it binds to a receptor with less than 20%, alternatively less than about 10%, alternatively less than about 8%, alternatively less than about 6%, alternatively less than about 4%, alternatively less than about 2%, alternatively less than about 1%, or alternatively less than about 0.5% of the affinity of the parent receptor from which the variant receptor was derived.

[0118] Small molecule: The term "small molecule" refers to a chemical compound (typically a pharmaceutically active compound) having a molecular weight of less than about 10 kDa, less than about 2 kDa, or less than about 1 kDa. Small molecules include, but are not limited to, inorganic molecules, organic molecules, organic molecules containing inorganic components, molecules containing radioactive atoms, and synthetic molecules. The term "small molecule" is a term well understood by those skilled in the pharmaceutical arts and is typically used to distinguish organic chemical compounds from biologics.

[0119] Soluble hCD25:As used herein, the terms "soluble CD25," "soluble human CD25," "soluble hCD25," and "shCD25" are used interchangeably herein to refer to hCD25 molecules comprising the ECD of hCD25 that lack the transmembrane and intracellular domains. As previously described, human CD25 ("hCD25") is expressed as a 272-amino acid preprotein containing a 21-amino acid signal sequence, which is removed post-translationally to yield a 251-amino acid mature protein. Amino acids 22-240 (amino acids 1-219 of the mature protein) correspond to the extracellular domain. Amino acids 241-259 (amino acids 220-238 of the mature protein) correspond to the transmembrane domain. Amino acids 260-272 (amino acids 239-251 of the mature protein) correspond to the intracellular domain. The amino acid sequence of the mature form of hCD25 is provided as SEQ ID NO:2.

[0120] Specific binding to: As used herein, the term "specifically bind" refers to the degree of selectivity or affinity with which one molecule binds to another molecule. In the context of a binding pair (e.g., ligand / receptor, antibody / antigen, antibody / ligand, antibody / receptor binding pair), a first molecule of the binding pair is said to specifically bind to a second molecule of the binding pair if the first molecule does not bind in significant amounts to other components present in the sample. A first molecule of a binding pair is said to specifically bind to a second molecule if the affinity of the first molecule for the second molecule is at least 2-fold greater, alternatively at least 5-fold greater, alternatively at least 10-fold greater, alternatively at least 20-fold greater, or alternatively at least 100-fold greater than the affinity of the first molecule for other components present in the sample. In certain embodiments where the first molecule of the binding pair is an antibody, the equilibrium dissociation constant between the antibody and the second molecule of the binding pair is about 10, e.g., as determined by Scatchard analysis (Munsen, et al. 1980 Analyt. Biochem. 107:220-239). 6 Larger than M, alternatively about 10 8 Larger than M, alternatively about 10 10Larger than M, alternatively about 10 11 Larger than M, alternatively about 10 10 Larger than M, about 10 12 If M is greater than M, then the antibody specifically binds to the second molecule of the binding pair (e.g., a protein, antigen, ligand, or receptor). In one embodiment, the ligand is an IL2 mutein and the receptor comprises an orthogonal CD122 ECD, the equilibrium dissociation constant for IL2 mutein / orthogonal CD122 ECD is about 10 5 Greater than M, alternatively about 10 6 Larger than M, alternatively about 10 7 Larger than M, alternatively about 10 8 Larger than M, alternatively about 10 9 Larger than M, alternatively about 10 10 Greater than M, or alternatively about 10 11 If M is greater than IL2, the IL2 mutein specifically binds. Specific binding may be assessed using techniques known in the art, including, but not limited to, competitive ELISA, radioactive ligand binding assays (e.g., saturation binding, Scatchard plots, non-linear curve fitting programs, and competitive binding assays); non-radioactive ligand binding assays (e.g., fluorescence polarization (FP), fluorescence resonance energy transfer (FRET), and surface plasmon resonance assays (see, e.g., Drescher et al., Methods Mol Biol 493:323-343 (2009) and instrumentation such as the Biacore 8+, Biacore S200, Biacore T200 (GE Healthcare Bio-Sciences, 100 Results Way, Marlborough MA 01752) are commercially available from GE Healthcare Bio-Sciences); solution-phase ligand binding assays (e.g., real-time polymerase chain reaction (RT-qPCR), and immunoprecipitation); and solid-phase ligand binding assays (e.g., multiwell plate assays, on-bead ligand binding assays, on-column ligand binding assays, and filter assays).

[0121] subject: The terms "recipient," "individual," "subject," and "patient" are used interchangeably herein and refer to any mammalian subject, particularly humans, for whom diagnosis, treatment, or therapy is desired. A "mammal" for purposes of treatment refers to any animal classified as a mammal, including humans, domestic and farm animals, and exhibition, sport, or pet animals, such as dogs, horses, cats, cows, sheep, goats, pigs, etc. In some embodiments, the mammal is a human.

[0122] Suffering from: As used herein, the term "suffering" refers to a determination made by a physician regarding a subject that the subject requires or would benefit from treatment based on available information accepted in the art for identifying a disease, disorder, or condition, including, but not limited to, X-rays, CT scans, conventional clinical diagnostic tests (such as blood counts), genomic data, protein expression data, and immunohistochemistry. The term suffering is typically used in conjunction with specific medical conditions, such as "suffering from a neoplastic disease," to refer to a subject who has been diagnosed with the presence of a neoplasm.

[0123] Virtually pure: As used herein, the term "substantially pure" indicates that a component of a composition comprises more than about 50%, alternatively more than about 60%, alternatively more than about 70%, alternatively more than about 80%, alternatively more than about 90%, or alternatively more than about 95% of the total content of the composition. A "substantially pure" protein comprises more than about 50%, alternatively more than about 60%, alternatively more than about 70%, alternatively more than about 80%, alternatively more than about 90%, or alternatively more than about 95% of the total content of the composition.

[0124] T cells: As used herein, the term "T-cell" or "T cell" is used in its conventional sense to refer to lymphocytes that differentiate within the thymus, have specific cell surface antigen receptors, and include those that control the initiation or suppression of cell-mediated and humoral immunity, as well as those that lyse antigen-bearing cells. In some embodiments, T cells are naive CD8+ T cells, cytotoxic CD8 + T cells, naive CD4 + T cells, helper T cells, e.g., T H 1. T H 2. T H 9. T H 11. T H 22, T FH ;regulatory T cells, e.g. T R 1. Tregs, inducible Tregs; memory T cells, such as central memory T cells, effector memory T cells, NKT cells, tumor-infiltrating lymphocytes (TILs), and engineered variants of such T cells, including, but not limited to, CAR-T cells, recombinantly modified TILs, and TCR-engineered cells.

[0125] End / End Side: As used herein in reference to the structure of a polypeptide, the terms "N-terminus" (or "amino-terminus") and "C-terminus" (or "carboxyl-terminus") refer to the extreme amino-terminus and extreme carboxyl-terminus of a polypeptide, respectively, whereas the terms "N-terminally" and "C-terminally" refer to the relative position of a polypeptide's amino acid sequence toward the N-terminus and C-terminus, respectively, and can include the N- and C-terminal residues, respectively. "Directly N-terminally" refers to the position of a first amino acid residue relative to a second amino acid residue in a contiguous polypeptide sequence, the first amino acid being closer to the N-terminus of the polypeptide. "Directly C-terminally" refers to the position of a first amino acid residue relative to a second amino acid residue in a contiguous polypeptide sequence, the first amino acid being closer to the C-terminus of the polypeptide.

[0126] Therapeutically effective amount:The phrase "therapeutically effective amount" is used herein to refer to administering an active substance to a subject in a single dose, as part of a series of doses, alone, or as part of a pharmaceutical composition or treatment regimen, in an amount that can have any detectable positive effect on any symptom, aspect, or characteristic of a disease, disorder, or condition when administered to a subject.The therapeutically effective amount can be confirmed by measuring the relevant physiological effect, which can be adjusted in relation to the dosage regimen and according to diagnostic analysis such as the subject's condition.The parameters for evaluation to determine the therapeutically effective amount of an active substance are determined by a physician using art-recognized diagnostic criteria, including but not limited to, age, weight, sex, general health, ECOG score, observable physiological parameters, blood level, blood pressure, electrocardiogram, computed tomography, X-ray, and other signs. Alternatively or additionally, other parameters typically assessed in a clinical setting, such as body temperature, heart rate, normalization of blood chemistry, normalization of blood pressure, normalization of cholesterol levels, or any symptom, aspect, or characteristic of a disease, disorder, or condition, biomarkers (e.g., inflammatory cytokines, IFN-γ, granzymes, etc.), reduction in serum tumor markers, improvement in Response Evaluation Criteria in Solid Tumors (RECIST), improvement in immune-related response criteria (irRC), prolonged survival, prolonged progression-free survival, prolonged time to progression, prolonged time to treatment failure, prolonged event-free survival, prolonged time to next treatment, improved response rate, improved duration of response, reduction in tumor burden, complete response, partial response, stable disease, etc., may be monitored to determine whether a therapeutically effective amount of an agent has been administered to a subject, and these parameters are relied upon by clinicians in the art to assess improvement in a subject's condition in response to administration of an agent. The terms "complete response (CR)," "partial response (PR)," "stable disease (SD)," and "progressive disease (PD)" as used herein in relation to target lesions, and the terms "complete response (CR)," "incomplete response / stable disease (SD)," and "progressive disease (PD)" in relation to non-target lesions, are understood to be as defined in RECIST criteria.As used herein, the terms "immune-related complete response (irCR)," "immune-related partial response (irPR)," "immune-related progressive disease (irPD)," and "immune-related stable disease (irSD)" are as defined according to the immune-related response criteria (irRC). As used herein, the term "immune-related response criteria (irRC)" refers to a system for evaluating response to immunotherapy as described in Wolchok, et al. (2009) Guidelines for the Evaluation of Immune Therapy Activity in Solid Tumors: Immune-Related Response Criteria, Clinical Cancer Research 15(23): 7412-7420. A therapeutically effective amount may be adjusted over the course of a subject's treatment in conjunction with the dosing regimen and / or evaluation of the subject's condition and variations in the aforementioned factors. In one aspect, a therapeutically effective amount is an amount of an agent that, when used alone or in combination with another agent, does not result in irreversible serious adverse events during administration to a mammalian subject.

[0127] Transmembrane domain:The term "transmembrane domain" or "TM" refers to a domain of a transmembrane polypeptide (e.g., a transmembrane polypeptide such as CD122 or CD132 or CAR) that is embedded in the cell membrane and is peptide-bound to the extracellular domain (ECD) and intracellular domain (ICD) of the transmembrane polypeptide when the transmembrane polypeptide is associated with the cell membrane. The transmembrane domain may be homologous (naturally associated) or heterologous (not naturally associated) to one or both of the extracellular domain and / or intracellular domain. The transmembrane domain may be homologous (naturally associated) or heterologous (not naturally associated) to one or both of the extracellular domain and / or intracellular domain. In some embodiments, where the receptor is a chimeric receptor comprising an intracellular domain derived from a first parent receptor and a second extracellular domain derived from a second, different parent receptor, the transmembrane domain of the chimeric receptor is the transmembrane domain normally associated with either the ICD or ECD of the parent receptor from which the chimeric receptor is derived. Alternatively, the transmembrane domain of the receptor may be an artificial amino acid sequence that spans the plasma membrane. In some embodiments, in which the receptor is a chimeric receptor comprising an intracellular domain derived from a first parent receptor and a second extracellular domain derived from a second, different parent receptor, the transmembrane domain of the chimeric receptor is the transmembrane domain normally associated with either the ICD or ECD of the parent receptor from which the chimeric receptor is derived.

[0128] Treat:The terms "treat," "treating," "treatment," and the like refer to an action initiated with respect to a subject after a disease, disorder, or condition, or a symptom thereof, has been diagnosed, observed, or otherwise, in a subject, to temporarily or permanently eliminate, reduce, inhibit, alleviate, or ameliorate at least one underlying cause of, or at least one symptom associated with, the disease, disorder, or condition afflicting the subject (e.g., administering an IL2 mutein, or a pharmaceutical composition comprising same). Treatment includes an action taken with respect to a subject suffering from a disease, which action results in the inhibition of the disease in the subject (e.g., halting the progression of, or ameliorating one or more symptoms associated with, the disease, disorder, or condition).

[0129] Treg cells or regulatory T cells: As used herein, the term "regulatory T cells" or "Treg cells" refers to CD4 T cells that are capable of suppressing the responses of other T cells, including, but not limited to, effector T cells (Teff). + This refers to a type of T cell. Treg cells are characterized by expression of CD4, the IL2 receptor α subunit (CD25), and the transcription factor forkhead box P3 (FOXP3) (Sakaguchi, Annu Rev Immunol 22, 531-62 (2004)). "Conventional CD4 + T cells, which are CD4 T cells other than regulatory T cells. + T cells are meant.

[0130] variant: The terms "protein variant" or "variant protein" or "variant polypeptide" are used interchangeably herein to refer to a polypeptide that differs from a parent polypeptide by at least one amino acid modification. The parent polypeptide may be a native or wild-type (WT) polypeptide, or may be a modified version (i.e., a mutein) of a WT polypeptide.

[0131] Wild type:By "wild-type" or "WT" or "native" herein is meant an amino acid or nucleotide sequence found in nature, including allelic variations. A wild-type protein, polypeptide, antibody, immunoglobulin, IgG, etc., has an amino acid or nucleotide sequence that has not been altered by the hand of man.

[0132] Naming convention: In some embodiments, the hIL2 muteins of the present disclosure contain substitutions, deletions, or insertions compared to the wt hIL2 (SEQ ID NO:1) amino acid sequence. Residues may be named herein by their amino acid position in wt hIL2 followed by their single-letter or three-letter amino acid code; for example, "Cys125" or "C125" refers to the cysteine ​​residue at position 125 of wt hIL2 (SEQ ID NO:1). The following nomenclature is used herein to refer to substitutions, deletions, or insertions: Substitutions are named herein by the single-letter amino acid code for the wt hIL2 residue followed by the amino acid position in IL2, followed by the single-letter amino acid code for the newly substituted amino acid. For example, "K35A" refers to the substitution of a lysine (K) residue at position 35 of SEQ ID NO:1 with an alanine (A) residue. Deletions are referred to as "des" followed by the amino acid residue and its position in wt hIL2 (SEQ ID NO:1). For example, the term "des-Ala1" or "desA1" refers to the deletion of alanine at position 1 of the wt hIL2 polypeptide (SEQ ID NO:1).

[0133] hIL2 mutein In some embodiments, hIL2 muteins useful in practicing the methods of the present disclosure that are partial agonists have one or more reduced functions compared to wild-type hIL2, hi some embodiments, the hIL2 muteins consist of 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, or 15 amino acid substitutions, modifications, or deletions compared to wild-type hIL2 (SEQ ID NO:1).

[0134] The present disclosure provides compositions comprising and methods of using human IL2 ("hIL2") muteins useful for the treatment and / or prevention of neoplastic diseases, wherein the human IL2 mutein has the following formula 1 (SEQ ID NO:10): TIFF2025160450000013.tif62128[in formula: each of a, b, c, d, e, f, g, h, and i is individually selected from 0 or 1; · AA1 is A (wild type, a = 1) or deleted (a = 0); · AA2 was P (wild type, b = 1) or deleted (b = 0); · AA3 is T (wild type, c=1), C, A, G, Q, E, N, D, R, K, P, or deleted (c=0); · AA4 was S (wild type, d = 1) or deleted (d = 0); · AA5 is S (wild type, e = 1) or deleted (e = 0); · AA6 was S (wild type, f = 1) or deleted (f = 0); · AA7 is T (wild type, g = 1) or deleted (g = 0); · AA8 was K (wild type, h = 1) or deleted (h = 0); · AA9 is K (wild type, i = 1) or deleted (i = 0); AA18 is L (wild type) or R, L, G, M, F, E, H, W, K, Q, S, V, I, Y, H, D, or T; AA22 is Q (wild type) or F, E, G, A, L, M, F, W, K, S, V, I, Y, H, R, N, D, T, or F; AA35 is K (wild type) or E; AA38 is R (wild type), W, or G; AA39 is M (wild type), L, or V; AA55 is H (wild type) or Y; AA69 is V (wild type) or A; · AA74 is Q (wild type), P, N, H, S; AA80 is L (wild type), F, or V; AA81 is R (wild type), I, D, or T; AA85 is L (wild type) or V; AA86 is I (wild type) or V; AA89 is I (wild type) or V; AA91 is V (wild type), R, or K; AA92 is I (wild type) or F; AA97 is K (wild type) or Q; AA104 is M (wild type) or A; AA109 is a D (wild type), C, or unnatural amino acid with an activated side chain; AA113 is T (wild type) or N; AA125 is C (wild type), A, or S; AA126 is Q (wild type) or H, M, K, C, D, E, G, I, R, S, or T; AA130 is S (wild type), T, G, or R] The polypeptide exhibits reduced binding affinity to CD132 compared to wild-type hIL2 ("wt hIL2", SEQ ID NO:1) polypeptide comprising an amino acid sequence according to the formula:

[0135] A hIL2 mutein of the present disclosure has reduced binding affinity to hCD132 (SEQ ID NO:5) or the extracellular domain of hCD132 if it binds to hCD132 (or its extracellular domain) with <70%, alternatively <65%, alternatively <60%, alternatively <55%, alternatively <50%, alternatively <45%, alternatively <40%, alternatively <35%, alternatively <25%, alternatively <20%, alternatively <15%, alternatively <10%, or alternatively <5% of the affinity of wt hIL2 (SEQ ID NO:1).

[0136] In certain embodiments, the hIL2 mutein disrupts the association of CD122 with CD132, such that the CD122 / CD132 interaction is reduced by about 2%, about 5%, about 10%, about 15%, about 20%, about 50%, about 75%, about 90%, about 95%, or more compared to wild-type hIL2.

[0137] In some embodiments, the hIL2 mutein exhibits reduced binding affinity for CD132 compared to wt hIL2, while retaining significant binding affinity for CD122 and / or CD25.

[0138] In some embodiments, the hIL2 mutein exhibits reduced binding affinity to CD132 compared to wt hIL2 and exhibits binding affinity to hCD122 (SEQ ID NO:3), or its ECD (SEQ ID NO:4), that is equal to or greater than wt hIL2. If the hIL2 mutein binds to hCD122 (or its ECD) with a binding affinity that is greater than about 50%, alternatively >60%, alternatively >65%, alternatively >70%, alternatively >75%, alternatively >80%, alternatively >85%, alternatively >90%, alternatively >90%, alternatively >95%, alternatively >100%, alternatively >105%, alternatively >110%, alternatively >115%, alternatively >125%, alternatively >150%, alternatively >200%, alternatively >300%, alternatively >400%, alternatively >500% greater than the binding affinity of wt hIL2 to wild-type human CD122 (SEQ ID NO:3) or its ECD, then the IL2 mutein retains a binding affinity for hCD122 (or its ECD) that is equal to or greater than wt hIL2.

[0139] In some embodiments, the hIL2 mutein exhibits reduced binding affinity to CD132 compared to wt hIL2, while retaining equal or greater binding affinity to CD25 than wt hIL2. If the hIL2 mutein binds to hCD25 with an affinity that is greater than about 50% of the affinity of wild-type IL2 for wild-type hCD25 (SEQ ID NO:2) and / or shCD25, alternatively >60%, alternatively >65%, alternatively >70%, alternatively >75%, alternatively >80%, alternatively >85%, alternatively >90%, alternatively >90%, alternatively >95%, alternatively >100%, alternatively >105%, alternatively >110%, alternatively >115%, alternatively >125%, alternatively >150%, alternatively >200%, alternatively >300%, alternatively >400%, alternatively >500% of the affinity of wild-type IL2, then the IL2 mutein retains a binding affinity for hCD25 that is equal to or greater than wt hIL2.

[0140] In some embodiments, the hIL2 mutein exhibits reduced binding affinity to CD132 compared to wt hIL2, while retaining binding affinity to CD122 and CD25 that is equal to or greater than wt hIL2.

[0141] In some embodiments, the hIL2 mutein exhibits reduced binding affinity to hCD132 compared to wt hIL2 and exhibits improved binding affinity to the hCD25 / hCD122 receptor complex and / or the high affinity hCD25 / hCD122 / hCD132 receptor complex compared to wt hIL2.

[0142] In some embodiments, the hIL2 mutein exhibits reduced binding affinity to hCD132 compared to wt hIL2 and exhibits binding affinity to the hCD25 / hCD122 receptor complex that is equal to or greater than wt hIL2. The hIL2 mutein exhibits reduced binding affinity to hCD132 compared to wt hIL2, and the hIL2 mutein exhibits greater than about 50%, alternatively >60%, alternatively >65%, alternatively >70%, alternatively >75%, alternatively >80%, alternatively >85%, alternatively >90%, alternatively >90%, alternatively >95%, alternatively >100%, alternatively >15 ... NO:1), exhibits a binding affinity for the hCD25 / hCD122 receptor complex that is equal to or greater than wt hIL2.

[0143] In some embodiments, the hIL2 mutein exhibits reduced binding affinity to hCD132 compared to wt hIL2 and exhibits binding affinity to the hCD25 / hCD122 / CD132 receptor complex that is equal to or greater than wt hIL2. The hIL2 mutein exhibits reduced binding affinity to hCD132 compared to wt hIL2, wherein the hIL2 mutein exhibits greater than about 50% of the affinity of wild-type IL2 for the hCD25 / hCD122 / CD132 receptor complex, alternatively >60%, alternatively >65%, alternatively >70%, alternatively >75%, alternatively >80%, alternatively >85%, alternatively >90%, alternatively >90%, alternatively >95%, alternatively >100%, alternatively >150%, alternatively >100% of the affinity of wild-type IL2, alternatively >150%, alternatively >100%, ... If the hIL2 mutein binds to the hCD25 / hCD122 / CD132 complex with an affinity that is >105%, alternatively >110%, alternatively >115%, alternatively >125%, alternatively >150%, alternatively >200%, alternatively >300%, alternatively >400%, alternatively >500% of the affinity of NO:1), then the hIL2 mutein exhibits a binding affinity for the hCD25 / hCD122 / hCD132 receptor complex that is equal to or greater than that of wt hIL2.

[0144] In some embodiments, the hIL2 mutein exhibits reduced binding affinity to hCD132 compared to wild-type hIL2 and exhibits improved binding affinity to the hCD25 / hCD122 receptor complex and the high-affinity hCD25 / hCD122 / hCD132 receptor complex compared to wild-type hIL2. In some embodiments, the hIL2 mutein exhibits reduced binding affinity to CD132 compared to wild-type hIL2 and exhibits improved binding affinity to CD122 in the presence of CD25, membrane-bound CD25, or sCD25 that is equal to or greater than wild-type hIL2. In some embodiments, the hIL2 mutein of the present disclosure contains one or more amino acid substitutions that reduce CD132 receptor binding. In some embodiments, the one or more amino acid substitutions that reduce CD132 receptor binding affinity are selected from amino acids located at the interface between hIL2 and hCD132. The crystal structure of hIL2 and its interface with hCD132 has been published, and other studies have identified locations in the hIL2 molecule, including residues L18, Q22, Q126, T123, S127, I129, and S130, as interacting with the binding of hIL2 to CD132. In some embodiments, substitutions at L18 include L18R, L18G, L18M, L18F, L18E, L18H, L18W, L18K, L18Q, L18S, L18V, L18I, L18Y, L18H, L18D, L18N, and L18T. In some embodiments, substitutions at Q22 include Q22F, Q22E, Q22G, Q22A, Q22L, Q22M, Q22F, Q22W, Q22K, Q22S, Q22V, Q22I, Q22Y, Q22H, Q22R, Q22N, Q22D, Q22T, and F. In some embodiments, substitutions at Q126 include Q126H, Q126M, Q126K, Q126C, Q126D, Q126E, Q126G, Q126I, Q126R, Q126S, or Q126T. In some embodiments, substitutions at S130 include S130R and S130G.

[0145] In some embodiments, hIL2 muteins that exhibit reduced binding affinity to hCD132 compared to wild-type hIL2 incorporate modifications in the primary structure of wild-type IL2 by incorporating modifications at positions 18, 22, and / or 126, numbered according to wild-type hIL2. In some embodiments, hIL2 muteins exhibit reduced binding affinity to hCD132 compared to wild-type hIL2 when the modification to the primary structure of wild-type IL2 incorporates a single amino acid substitution at one of L18, Q22, and / or Q126, numbered according to wild-type hIL2, including, but not limited to, [Q126H], also referred to herein as "LQH"; [Q22E], also referred to herein as "LEQ"; and [L18R], also referred to herein as "RQQ."

[0146] In some embodiments, hIL2 muteins that incorporate modifications in the primary structure of wild-type IL2 and exhibit reduced binding affinity for hCD132 compared to wild-type hIL2 incorporate a set of amino acid substitutions at one of L18, Q22 and / or Q126, numbered according to wild-type hIL2: [Q22E, Q126H], also referred to herein as "LEH"; and [L18R;Q126H], also referred to herein as "RQH," including, but not limited to, a single substitution.

[0147] In certain aspects, the disclosure provides hIL2 muteins comprising substitutions at positions 18, 22 and 126, wherein the substitutions at positions 18, 22 and 126 are: · One of L18R, L18G, L18M, L18F, L18E, L18H, L18W, L18K, L18Q, L18S, L18V, L18I, L18Y, L18H, L18D, L18N, and L18T; One of Q22F, Q22E, Q22G, Q22A, Q22L, Q22M, Q22F, Q22W, Q22K, Q22S, Q22V, Q22I, Q22Y, Q22H, Q22R, Q22N, Q22D, Q22T, and F; and One of Q126H, Q126M, Q126K, Q126C, Q126D, Q126E, Q126G, Q126I, Q126R, Q126S, and Q126T Exemplary hIL2 muteins containing substitutions at positions 18, 22 and 126, numbered according to wild-type hIL2, containing a set of amino acid substitutions are provided in Table 4 below.

[0148] Table 4: 18, 22, and 126-substituted hIL2 muteins TIFF2025160450000014.tif215131TIFF2025160450000015.tif165131

[0149] It should be noted that the three-letter abbreviations for particular IL2 muteins reflect IL2 muteins with mutations at positions 18, 22, and 126, for example, "FEH" is a shorthand nomenclature for an IL2 mutein containing the substitutions L18F, Q22E, and Q126H. The names provided above are used throughout this specification to refer to one or more sets of amino acid substitutions in the hIL2 muteins evaluated herein.

[0150] In some embodiments, the hIL2 muteins of the present disclosure comprise one or more amino acid substitutions that increase hCD122 receptor binding (or binding to the ECD of hCD122). In some embodiments, hIL2 muteins useful in practicing the methods of the present disclosure that have reduced binding affinity for the CD132 receptor further comprise 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10 or more mutations that improve CD122 binding affinity. In certain embodiments, the subject IL2 muteins useful in practicing the methods of the present disclosure comprise at least one mutation (e.g., deletion, addition, or substitution of 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, or more amino acid residues) compared to wt hIL2, such that the hIL2 mutein binds to CD122 with higher affinity than wt hIL2. In certain embodiments, the hIL2 mutein binds to CD122 with an affinity that is at least 1%, 2%, 3%, 4%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% greater than wild-type IL2. The binding affinity of the IL2 mutein can also be expressed as an affinity that is 1.2, 1.4, 1.5, 2, 5, 10, 15, 20, 25, 50, 100, 200, 250, or even significantly greater for CD122 than wild-type hIL2.

[0151] In some embodiments, the one or more amino acid substitutions that improve the binding affinity of hCD122 receptor are selected from amino acids at the interface between hIL2 and hCD122. Based on the crystal structure of hIL2 and its receptor, positions identified as interacting with hIL2 binding to hCD122 include, but are not limited to, Q74, L80, R81, L85, I86, I89V, and I92, numbered according to mature wt hIL2. Examples of amino acid substitutions that improve CD122 binding affinity include, but are not limited to, Q74N, Q74H, Q74S, L80F, L80V, R81D, R81T, L85V, I86V, I89V, and / or I92F, or combinations thereof. In certain embodiments, amino acid substitutions that improve CD122 binding affinity include L80F, R81D, L85V, I86V, and I92F. In some embodiments, amino acid substitutions that improve the binding affinity of CD122 include N74Q, L80F, R81D, L85V, I86V, I89V, and I92F. In some embodiments, amino acid substitutions that improve the binding affinity of CD122 include Q74N, L80V, R81T, L85V, I86V, and I92F. In particular embodiments, amino acid substitutions that improve the binding affinity of CD122 include Q74H, L80F, R81D, L85V, I86V, and I92F. In some embodiments, amino acid substitutions that improve the binding affinity of CD122 include Q74S, L80F, R81D, L85V, I86V, and I92F. In particular embodiments, amino acid substitutions that improve the binding affinity of CD122 include Q74N, L80F, R81D, L85V, I86V, and I92F. In certain embodiments, amino acid substitutions that improve binding affinity for CD122 include Q74S, R81T, L85V, and I92F, numbered according to mature wt hIL2.

[0152] In one aspect, the present disclosure provides hIL2 muteins that exhibit significant or improved binding affinity for hCD25 and reduced binding affinity for the hCD132 (or the extracellular domain of hCD132) receptor compared to wild-type human IL2 (hIL2). In some embodiments, the hIL2 muteins of the present disclosure contain one or more amino acid substitutions that increase hCD25 binding. In some embodiments, the one or more amino acid substitutions for improving hCD25 receptor binding affinity are selected from amino acids at the interface between hIL2 and hCD25. In some embodiments, the IL2 muteins contain one or more mutations at positions in the IL2 sequence that contact CD25 or alter the orientation of other positions that contact CD25, resulting in an IL2 mutein with improved affinity for CD25. Based on the crystal structure of hIL2 and its receptor and other studies, positions identified as interacting with the binding of hIL2 to hCD25 include V69 and Q74, numbered according to mature wt hIL2. In some embodiments, the IL2 muteins of the present disclosure contain one or more of the substitutions V69A and Q74P.

[0153] Further sequence modifications: In addition to the aforementioned amino acid substitutions and modifications to the wt hIL2 sequence that modulate the binding activity of the hIL2 mutein with respect to CD25, CD122 and / or CD132, hIL2 may optionally be provided with one or more modifications to its primary sequence that provide additional benefits.

[0154] Removal of glycosylation sites:When the IL2 mutein is expressed in a eukaryotic expression system, particularly in mammalian host cells such as CHO cells or HEK cells, the hIL2 mutein of the present disclosure may contain a modification to eliminate the O-glycosylation site at position Thr3 (T3) to facilitate the production of a non-glycosylated hIL2 mutein. In one embodiment, the hIL2 mutein of the present disclosure contains an amino acid modification, deletion, or substitution site at position Thr3 (T3) of human IL2 to prevent O-glycosylation at T3. In one embodiment, the modification at T3 is an amino acid substitution. Exemplary amino acid substitutions include T3A, T3G, T3Q, T3E, T3N, T3D, T3R, T3K, and T3P, which remove the glycosylation site at position 3 without abolishing biological activity (see U.S. Pat. No. 5,116,943; Weiger et al., (1989) Eur. J. Biochem., 180:295-300). In one embodiment, the hIL2 mutein contains the amino acid substitution T3A.

[0155] Minimizing vascular leak syndrome: In some embodiments of the present disclosure, the IL2 mutein comprises amino acid substitutions to avoid vascular leak syndrome, a substantially negative and dose-limiting side effect of the use of IL2 therapy in humans, without substantial loss of efficacy. See Epstein et al., U.S. Patent No. 7,514,073 B2, issued April 7, 2009. In one embodiment, the hIL2 mutein further comprises one or more amino acid substitutions selected from R38W, R38G, R39L, R39V, F42K, and H55Y.

[0156] Oxidation resistance M104A: In some embodiments of the present disclosure, the hIL2 mutein comprises an amino acid substitution of methionine 104 with an alanine residue (M104A). Such IL2 muteins may be more resistant to oxidation and loss of activity (see Koths et al., U.S. Patent No. 4,752,585, issued June 21, 1988).

[0157] Cys125:The wild-type hIL2 sequence contains an unpaired cysteine ​​residue at position 125. The unpaired cysteine ​​presents an opportunity for protein misfolding due to incorrect disulfide bridges between the sulfhydryl groups of the cysteine. This can be a particular problem when hIL2 muteins are recombinantly expressed in bacteria and isolated from inclusion bodies. As a result, the hIL2 muteins of the present disclosure can optionally contain an amino acid substitution at position 125. In some embodiments, the substitution is C125A or C125S.

[0158] V91: In some embodiments, a CD25-biased IL2 mutein useful in practicing the methods of the disclosure comprises an amino acid substitution at position 91. In some embodiments, the methods of the disclosure comprise treating a neoplastic disease with an IL2 mutein comprising a substitution at position 91 selected from V91K, V91R, V91K. In some embodiments, the methods of the disclosure comprise treating a neoplastic disease with an IL2 mutein comprising a substitution at position 91 selected from V91K, V91R, V91K, wherein the IL2 mutein is used in the form of an Fc fusion, as more fully described in U.S. Patent No. 9,580,486 B2 to Gavin et al., granted February 28, 2017, the teachings of which are incorporated herein by reference with respect to the construction of Fc fusions of IL2 muteins comprising substitutions at position 91.

[0159] Incorporation of unnatural amino acids:In some embodiments, CD25-biased IL2 muteins useful in practicing the methods of the present disclosure include the incorporation of a PEG structure to prevent binding to CD132 and bias the activity of the molecule toward CD25+ T cells. Examples of such molecules disclosed as useful for treating inflammatory and autoimmune indications include those described in Ptacin et al. (PCT International Application No. PCT / US2018 / 045257, filed August 3, 2018, published February 7, 2019 as International Publication No. WO2019 / 028419A1). One embodiment of such a PEG IL2 mutein is the PEGylated IL2 molecule identified as THOR-809 as described in Ptacin, et al. (2019) THOR-809: An IL2 Engineered from an Expanded Genetic Alphabet for the Potential Treatment of Autoimmune Disorders, Abstract 89, 2019 PACR / ARP Annual Meeting, November 8-13, 2019 Atlanta; Arthritis Rheumatol 2019: 71(supplement 10).

[0160] Affinity maturation: In some embodiments, hIL2 muteins are affinity matured to improve their affinity for CD25 and / or CD122, which may result in modifications to the amino acid sequence of the hIL2 mutein. An "affinity matured" polypeptide is one that has one or more changes at one or more residues that result in an improvement in the affinity of the polypeptide for its receptor compared to a parent polypeptide that does not have those changes, or vice versa. Affinity maturation can be carried out to improve the binding affinity of the IL2 mutein by at least about 10%, alternatively at least about 50%, alternatively at least about 100%, alternatively at least about 150%, or by 2-, 3-, 4-, or 5-fold compared to the parent IL2 mutein polypeptide.

[0161] N-terminal deletion: hIL2 muteins further comprise a compound of Formula 1 above wherein a, b, c, d, e, f, g, h, and i are all zero, a compound of Formula 1 above wherein a, b, c, d, e, f, g, and h are all zero, a compound of Formula 1 above wherein a, b, c, d, e, f, g, and h are all zero, a compound of Formula 1 above wherein a, b, c, d, e, f, and g ... a, b, c, d, and e are all zero), alternatively positions 1-5 (a compound of Formula 1 above where a, b, c, and d are all zero), alternatively positions 1-4 (a compound of Formula 1 above where a, b, c, and d are all zero), alternatively positions 1-3 (a compound of Formula 1 above where a, b, and c are all zero), alternatively positions 1-2 (a compound of Formula 1 above where a and b are zero), or alternatively position 1 (a compound of Formula 1 above where a is zero).

[0162] The IL2 muteins can include selective N-terminal modifications, particularly deletion of the first two amino acids (desAla1-desPro2) to facilitate PEGylation of the sulfhydryl group of cysteine, as well as substitution of Thr3 glycosylation with a cysteine ​​residue (see, e.g., Katre et al., U.S. Pat. No. 5,206,344, issued April 27, 1993).

[0163] When endogenously expressed in mammalian cells, wild-type hIL2 is expressed as a preprotein containing a signal peptide that is efficiently cleaved in mammalian cells, resulting in an alanine residue (Ala1) at the N-terminal amino acid of the mature hIL2 polypeptide. While expression of hIL2 muteins in mammalian cells is possible, it is typically more expensive than bacterial cell production, and expression in mammalian cells can also result in non-native glycosylation of hIL2 depending on the cell line used. As a result, production of hIL2 muteins in bacterial cells may be preferred in certain situations. However, direct expression of the hIL2 peptide in bacterial cells (i.e., not as a fusion protein) results in the addition of an N-terminal methionine residue. If the Ala1 residue in the wild-type IL2 sequence is retained, this results in a proline at the +2 position relative to the N-terminal methionine. Endogenous bacterial methionyl aminopeptidase (MAP) does not efficiently cleave the N-terminal methionine when a proline is present at the +2 position relative to the N-terminal methionine. As a result, direct bacterial expression of Met-IL2 results in a mixture of IL2 species, some of which have an N-terminal methionine and others lacking it. Such a mixture of IL2 species is difficult to separate using typical manufacturing procedures, resulting in increased processing and product loss, creating difficulties when attempting to conjugate the IL2 mutein to an N-terminal moiety such as a targeting moiety or a PEG molecule. However, by deleting Ala1 from the IL2 mutein, the residue at position +2 relative to the N-terminal methionine is a threonine (T3), which results in highly efficient cleavage of the N-terminal methionine and facilitates bacterial production of the IL2 mutein. In some embodiments, the present disclosure provides hIL2 muteins containing a deletion of alanine at position 1 (des-Ala1; des-A1, numbered according to hIL2).

[0164] Agonist activity:In some embodiments, the hIL2 muteins of the present disclosure are partial agonists, full agonists, or superagonists for the activation and / or proliferation of immune cells such as T cells, including engineered T cells or isolated T cells. In some embodiments, the hIL2 muteins of the present disclosure are partial agonists, full agonists, or superagonists of STAT5 phosphorylation in immune cells. In some embodiments, the hIL2 muteins of the present disclosure are partial agonists that induce STAT5 phosphorylation in hIL2 receptor-positive immune cells at levels that are 1%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95% or less of the level at which wild-type IL2 stimulates STAT5 phosphorylation in the same cell type. In some embodiments, the hIL2 muteins of the present disclosure are full agonists, inducing STAT5 phosphorylation in hIL2 receptor-positive immune cells at levels 95% to 105% of the levels at which wild-type IL2 stimulates STAT5 phosphorylation in the same cell type. In some embodiments, the hIL2 muteins of the present disclosure are superagonists, inducing STAT5 phosphorylation in the same cell type at levels greater than 105%, alternatively greater than 110%, alternatively greater than 120%, alternatively greater than 150%, alternatively greater than 200% (2-fold), or alternatively greater than 300% (3-fold) of the levels at which wild-type IL2 stimulates STAT5 phosphorylation in hIL2 receptor-positive immune cells. In certain embodiments, the immune cells are T cells. In certain embodiments, the immune cells are CD8+ T cells. In some embodiments, the CD8+ T cells are freshly isolated CD8+ T cells. In some embodiments, the freshly isolated CD8+ cells are TILs. In other embodiments, the CD8+ T cells are activated CD8+ T cells. In certain embodiments, the immune cells are engineered immune cells, including but not limited to, CAR T cells, TCR-engineered cells, engineered Tregs, or engineered NK cells.

[0165] In some embodiments, the hIL2 muteins of the present disclosure are partial agonists, full agonists, or superagonists of pERK1 / ERK2 signaling in hIL2 receptor-positive immune cells. In some embodiments, the hIL2 muteins of the present disclosure are partial agonists that stimulate pERK1 / ERK2 signaling at a level that is 1%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95% or less of the level at which wild-type IL2 stimulates pERK1 / ERK2 signaling in the same cell type. In some embodiments, the hIL2 muteins of the present disclosure are full agonists, stimulating pERK1 / ERK2 signaling in hIL2 receptor-positive immune cells at 95% to 105% of the level at which wild-type IL2 stimulates pERK1 / ERK2 signaling in the same cell type. In some embodiments, the hIL2 muteins of the present disclosure are superagonists, stimulating pERK1 / ERK2 signaling in the same cell type at greater than 105%, alternatively greater than 110%, alternatively greater than 120%, alternatively greater than 150%, alternatively greater than 200% (2-fold), or alternatively greater than 300% (3-fold) of the level at which wild-type IL2 stimulates pERK1 / ERK2 signaling in hIL2 receptor-positive immune cells. In certain embodiments, the immune cells are T cells. In certain embodiments, the immune cells are CD8+ T cells. In some embodiments, the CD8+ T cells are freshly isolated CD8+ T cells. In some embodiments, the freshly isolated CD8+ cells are TILs. In other embodiments, the CD8+ T cells are activated CD8+ T cells. In certain embodiments, the immune cells are engineered immune cells, including but not limited to CAR T cells, TCR-engineered cells, engineered Tregs, or engineered NK cells.

[0166] STAT5 and ERK1 / 2 signaling can be measured, for example, by phosphorylation of STAT5 and ERK1 / 2 using any suitable method known in the art. For example, STAT5 and ERK1 / 2 phosphorylation can be measured using antibodies specific for the phosphorylated versions of these molecules.

[0167] In certain embodiments, hIL2 muteins of the present disclosure useful in practicing the methods of the present disclosure are partial, full, or superagonists as measured by the ability of the hIL2 mutein to induce lymphocyte proliferation compared to wild-type hIL2. In some embodiments, hIL2 muteins of the present disclosure are partial agonists that induce lymphocyte proliferation at a level that is 1%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95% or less of the level at which wild-type IL2 induces lymphocyte proliferation in the same cell type. In some embodiments, the hIL2 muteins of the present disclosure are full agonists, inducing lymphocyte proliferation in hIL2 receptor-positive immune cells at 95% to 105% of the level at which wild-type IL2 induces lymphocyte proliferation in the same cell type. In some embodiments, the hIL2 muteins of the present disclosure are superagonists, inducing lymphocyte proliferation signaling in the same cell type at greater than 105%, alternatively greater than 110%, alternatively greater than 120%, alternatively greater than 150%, alternatively greater than 200% (2-fold), or alternatively greater than 300% (3-fold) of the level at which wild-type IL2 induces lymphocyte proliferation in hIL2 receptor-positive immune cells. In certain embodiments, the immune cells are T cells. In certain embodiments, the immune cells are CD8+ T cells. In some embodiments, the CD8+ T cells are freshly isolated CD8+ T cells. In some embodiments, the freshly isolated CD8+ cells are TILs. In other embodiments, the CD8+ T cells are activated CD8+ T cells. In certain embodiments, the immune cells are engineered immune cells, including but not limited to CAR T cells, TCR-engineered cells, engineered Tregs, or engineered NK cells. In some embodiments, the lymphocytes are T cells. In certain embodiments, the lymphocytes are primary CD8+ T cells. In other embodiments, the lymphocytes are activated CD8+ T cells. The proliferation of immune cells can be measured using any suitable method known in the art.For example, lymphocyte proliferation can be measured using the carboxyfluorescein diacetate succinimidyl diester (CFSE) dilution assay as described herein or by [31-1]-thymidine incorporation.

[0168] Because the hIL2 muteins of Formula 1 retain binding to both the CD122 and CD132 receptor components, the hIL2 muteins can act as partial agonists of natural killer (NK) cells. IL2 activation of NK cells can be measured by any suitable method known in the art, for example, by measuring IL2-induced CD69 expression and / or cytotoxicity as described herein.

[0169] In vitro evaluation of hIL2 muteins: To demonstrate the activity of hIL2 muteins with reduced binding affinity for CD132 compared to wild-type hIL2 of the present disclosure and their preferential activation of CD25-expressing cells, a series of hIL2 muteins were prepared and evaluated for their ability to provide selective activation of YT cells, NK cells expressing the intermediate-affinity dimeric form of the IL2 receptor, and a YT cell variant designated YT CD25, which is a YT cell engineered to express CD25 on the cell surface (iCD25+), resulting in human immune cells expressing all three components of the high-affinity trimeric IL2 receptor.

[0170] A series of exemplary hIL2 muteins of Formula 1 containing amino acid substitutions at positions 18, 22, and / or 126, which form an interface with CD132, were prepared and tested. The molecules were prepared and tested substantially according to the teachings of Examples 1-7 herein. The results of these experiments are provided in Figures 1, 2, and 3 of the accompanying drawings. As shown in Figure 1, hIL2 muteins containing amino acid substitutions at positions 18, 22, and / or 126, which are involved in binding of hIL2 to hCD132, exhibited significant enhancement of pSTAT5 signaling, demonstrating that these hIL2 muteins retain significant hIL2 activity compared to wild-type hIL2 in YT CD25 cells. As shown in Figure 2, the hIL2 muteins of the present disclosure exhibited preferential pSTAT5 signaling activity compared to wild-type hIL2 on CD25-positive YT CD25 cells compared to CD25-negative YT cells. Data from dilutions of these molecules are provided in Figure 3 of the accompanying drawings.

[0171] Further studies were conducted to evaluate additional hIL2 muteins of the present disclosure for activity in CD4-positive human T cells, 3F8 cells. The 3F8 cell line was generated by activation of PBMCs obtained from a healthy human donor with the EBV-transformed B cell line JY. The CD4-positive T cell clone 3F8 expresses CD25 and CD122, proliferates in response to IL-2, and produces IFNγ. Following the teachings of Example 8 herein, additional representative hIL2 muteins of Formula 1 were evaluated for proliferation activity and IFNγ production in 3F8 cells, as detailed in Table 5 below. Data from this experiment are provided in Table 5 below and in Figures 4 (cell proliferation) and 5 (IFNγ production) of the accompanying drawings. IC 50 is corrected for protein concentration in the transfection supernatant.

[0172] Table 5. Proliferation and IFNγ production of human CD4+ T cell clone 3F8 in response to hIL2 muteins TIFF2025160450000016.tif90134

[0173] The above data in Table 5 and Figures 4 and 5 demonstrate that the hIL2 muteins of the present disclosure, which have reduced binding affinity for CD132 compared to wild-type hIL2, are effective in stimulating the proliferation of and IFNγ production from CD25+ / CD122+ human immune cells.

[0174] Evaluation of antineoplastic activity The present disclosure provides compositions and methods for using hIL2 muteins in the treatment and / or prevention of neoplastic diseases, wherein the human IL2 muteins exhibit, among other properties, reduced binding affinity for CD132 compared to wild-type hIL2. To demonstrate the utility of this approach, further in vitro characterization studies were conducted, as well as in vivo studies to evaluate therapeutic efficacy, toxicity, and pharmacokinetics in rodents and non-human primates, as described in further detail below. Cumulatively, the results of these studies demonstrate that the hIL2 muteins of the present disclosure, at therapeutically effective and well-tolerated doses and exposures, (a) selectively activate and / or expand human immune cells expressing the high-affinity hIL-2 receptor (particularly antigen-activated T cells, antigen-experienced T cells, and regulatory T cells); (b) significantly less toxicity than wild-type hIL2 (including less evidence of vascular leak syndrome (VLS)), while (c) exhibit significantly reduced biological activity against NK cells or naive CD25-negative T cells.

[0175] hIL2 Mutein Test Agents: To conduct these extensive in vitro characterization and in vivo studies demonstrating the utility of the hIL2 muteins of the present disclosure for the effective treatment of neoplastic disease in mammalian subjects, exemplary hIL2 muteins of Formula 1 containing amino acid substitutions at positions L18, Q22, and Q126 were evaluated as representative members of the compounds of Formula 1. As previously described, modifications of hIL2 at positions L18, Q22, and Q126 provide hIL2 muteins with modulated affinity for hCD132 but typically comparable binding to wild-type hIL2 for hCD25 and hCD122. Two representative L18, Q22, and Q126-modified hIL2 muteins (STK-008 and STK-011), the structures of which are provided below, and a surrogate murine IL2 (mIL2) mutein (STK-014) were used in these studies.

[0176] STK-008: An exemplary hIL2 mutein of Formula 1 is a human IL2 mutein containing the amino acid substitutions L18R, Q22E, and Q126H, as well as a deletion of Ala1, referred to herein as des-Ala1 REH, REH, and STK-008. The amino acid sequence of STK-008 is provided below (SEQ ID NO:7): TIFF2025160450000017.tif14132

[0177] STK-011: A second exemplary hIL2 mutein of Formula 1 is a human IL2 mutein containing the amino acid substitutions L18R, Q22E, and Q126K, as well as a deletion of Ala1, referred to herein as des-Ala1 REK, REK, and STK-011. The amino acid sequence of STK-011 is provided below (SEQ ID NO:8): TIFF2025160450000018.tif12128

[0178] Samples of STK-011 and STK-008 polypeptides were recombinantly produced in Escherichia coli (E. coli) using conventional recombinant DNA techniques and isolated in substantially pure form by conventional procedures, including dialysis, ion exchange chromatography, and size exclusion chromatography. By deleting the alanine typically present at position 1 of the hIL2 molecule, the N-terminal methionine is more efficiently removed by bacterial production cells because there is a proline instead of alanine at the position following the N-terminal methionine, resulting in the expression and recovery of substantially more homogeneous hIL2 product, which offers both economic and technical advantages, such as increased processing efficiency, lower costs, and simplified purification and refolding to produce a substantially pure, homogeneous protein product, resulting in a more homogeneous reagent when additional agents, such as carriers or targeting molecules, are conjugated to the N-terminus of the hIL2 polypeptide. As previously reported and confirmed by this study, the deletion of alanine at position 1 does not substantially alter the biological activity of the resulting hIL2 polypeptide.

[0179] Substantially following previous studies and as more fully described in Examples 1-7, the ability of REH and REK to provide signaling through the IL-2 receptor, as assessed by STAT5 phosphorylation relative to wild-type hIL-2, was evaluated in YT CD25 (CD25-positive) and YT (CD25-negative) cells. Briefly, 293T cells were transfected with IL-2 mutein constructs, and 2-3 days later, supernatants containing soluble hIL-2 muteins were removed. After 20 minutes of stimulation, the supernatants were added to YT and YT CD25 cells. YT cells are an NK lymphoma cell line that does not endogenously express detectable levels of CD25. The IL-2 responses of YT cells and derived YT cells (YT CD25) exogenously expressing CD25 were compared. Expression of IL-2 receptor components on YT CD25 cells was verified by fluorescent flow cytometry, and the data are presented in Figure 6, panels A and B of the accompanying drawings. The data show the expression of CD25 (IL2Rα), CD122 (IL2Rβ), and CD132 (IL2Rγ) by YT cells and YT CD25 cells, respectively. The black histograms represent stained cells, and the dashed histograms represent unstained control cells. Gates indicate the percent of positive cells for each stain. pSTAT5 levels were measured by flow cytometry. IL-2 concentrations in the supernatants were measured by MSD assay. The mean fluorescence intensity data generated from this experiment are provided in Tables 6 and 7 below.

[0180] Table 6. MFI of pSTAT5 in treated YT CD25+ cells TIFF2025160450000019.tif45147

[0181] Table 7. MFI of P-STAT5 in treated YT (CD25 negative) cells TIFF2025160450000020.tif45147

[0182] As shown by the data in Tables 6 and 7 above, REH and REK provide selective activation of CD25-positive T cells relative to CD25-negative T cells, as indicated by enhanced pSTAT5 production (similar to wild-type hIL2) in human immune cells expressing the high-affinity trimeric CD25 / CD122 / CD132 hIL2 receptor (YT CD25 cells) compared with pSTAT5 in human immune cells expressing the intermediate-affinity dimeric CD122 / CD132 hIL2 receptor, YT cells.

[0183] STK-010 and STK-012: To provide favorable in vivo pharmacokinetics (e.g., extended duration of action), the N-terminal prolines of the STK-008 and STK-011 muteins were conjugated to a 40 kd (20 kD x 2 arms) branched PEG moiety via a linker to provide compounds designated herein as STK-010 and STK-012, respectively. The branched 40 kD PEG and linkers conjugated to the N-terminal prolines of STK-008 and STK-011 to produce STK-010 and STK-012 have the structure: I have TIFF2025160450000021.tif13128.

[0184] In vitro characterization of STK-012:The biological activity of STK-012 was evaluated by a proliferation bioassay using NKL cells. NKL is a natural killer cell line that expresses wild-type human high-affinity IL-2 receptor (CD25 / CD122 / CD132) and responds to human IL-2. Expression of IL-2 receptor components was verified by fluorescent flow cytometry (Figure 6). As shown by the presented data, expression of the trimeric high-affinity IL-2R renders NKL cells responsive to STK-012. The biological activity of both wild-type human IL-2 and STK-012 was evaluated in a proliferation assay using NKL cell lines, a human lymphoblastoid NK cell line. The specificity of STK-012 for CD25-expressing cells was demonstrated by pSTAT5 activity assay in YT cells and YT CD25. As shown in the data presented in Figure 7 of the accompanying drawings, human IL-2 and STK-012 induce proliferation of NKL cells at similar dose ranges, demonstrating that STK-012 retains the ability to induce pSTAT5 in human immune cells comparable to wt hIL2.

[0185] STK-014: STK-012 mouse surrogate for efficacy testing in mice: The interface between IL2 and its receptor component differs slightly between rodent (e.g., mouse) and primate (e.g., human) IL2 molecules. Consequently, to demonstrate the activity of human IL2 muteins in a mouse model, a representative human IL2 mutein (STK-012) of the present disclosure was selected and a mouse IL2 mutein surrogate (STK-014) was developed for in vivo testing in mice to contrast activity between rodent (mouse) and primate (human) environments. The amino acid sequence of the mouse IL2 (mIL2) polypeptide component of STK-014 is: To complete the STK-014 molecule, the N-terminus of the IL2 polypeptide is PEGylated with a PEG linker of the same structure as that used to prepare STK-010 and STK-012.

[0186] To demonstrate that STK-014 represents a reasonable surrogate for STK-012, we performed studies to assess target specificity on mouse and human cells. Each molecule induced phospho-STAT5 (pSTAT5) in primary human CD8+ T cells and primary human NK cells activated by anti-CD3 / anti-CD28 stimulation. 50 A study was conducted to assess the relative potency of human wild-type IL-2 (huIL-2) and STK-012 by comparing their potencies. Both cell types were isolated from fresh donor peripheral blood mononuclear cells (PBMCs). Because STK-014 is a murine IL-2 mutein, it was tested against an equivalent cell population freshly isolated from mouse spleen. The results of this study are provided in Table 8 below.

[0187] Table 8. Potency of human and mouse IL2 muteins in the pSTAT5 assay TIFF2025160450000023.tif29150

[0188] The data provided in Table 8 demonstrate that STK-014 represents a reasonable surrogate for STK-012 for use in in vivo efficacy models, as it has similar target specificity for mouse cells as STK-012 exhibits for human cells.

[0189] In vivo efficacy study with STK-014 in mice Several in vivo efficacy and pharmacology studies were conducted in mice using STK-014, which acts as a murine surrogate for human STK-012. These studies were conducted to evaluate the ability of STK-014 to expand and activate antigen-activated T cells in vivo, as well as to examine the antitumor efficacy and toxicity of STK-014 alone and in combination with anti-PD-1 in mouse tumor models. Additionally, toxicity of the administered molecule was assessed in animals involved in toxicity studies. The activity of STK-014 was compared with PEGylated wild-type murine IL-2 (mPEG-IL-2). STK-014 demonstrated improved antitumor activity and increased T cell tumor infiltration compared to mPEG-IL-2, as well as improved toxicity, including significantly reduced lethality and reduced evidence of capillary leak syndrome (CLS), compared to mPEG-IL-2. STK-014 did not exhibit lethality or significant evidence of CLS.

[0190] Establishing the maximum tolerated dose of STK-014:In clinical oncology practice, IL-2 is administered at or near the maximum tolerated dose (MTD) in order to maintain high serum exposure and overcome the short half-life of recombinant IL-2 (Atkins, et al., supra). To establish the maximum tolerated doses of PEGmIL-2 and / or STK-014 for in vivo studies, the MTDs were established for recombinant mIL-2, PEGylated murine wild-type IL-2 (PEGmIL-2) with a 40 kD PEG moiety covalently attached to the N-terminus, and STK-014. C57BL / 6 mice were administered three times daily for 5 days. Wild-type IL-2 was administered three times daily. All other molecules were administered every other day with a 3-day slip, so that for recombinant mIL-2, administration was on days 0-2-3-5-7-9, and for PEG-mIL-2 or STK-014, administration was every other day. Dosages are provided in the legend to Figure 9. A Kaplan-Meier survival plot of the results of the study is presented in Figure 9 of the accompanying drawings. As shown by the data presented in Figure 9, lethality was observed with both mIL-2 and PEGmIL-2 (at doses of 5 μg qod and above), but not with STK-014. The foregoing data demonstrate that the hIL2 muteins of the present disclosure have reduced toxicity compared to wild-type hIL2, suggesting a significant safety advantage over HD-hIL2.

[0191] Assessment of capillary leakage in response to PEGmIL-2 and STK-014: Patients receiving HD-IL-2 experienced acute hypotension and CLS after 3 or more days of continuous HD-IL-2 treatment or after a median of 8 doses administered 8 hours apart. In the aforementioned study to establish the MTD, lungs were harvested at the end of the study, prematurely, or at death (in mIL-2-treated animals). As a measure of CLS, the water content of lungs from mice treated with mIL-2 or STK-014 was calculated as the difference between fresh lung weight and dried lung weight. The results of this study are presented in Figure 10 of the accompanying drawings. As illustrated by the data provided in Figure 10, animals treated with HD-IL-2 or PEG-mIL-2, but not mice treated with STK-014, had increased wet lung weight, indicative of capillary leakage.

[0192] To directly compare STK-014 with IL-2 during the early development of CLS, mice were treated twice, two days apart, with PEG-mIL2 or STK-014 at the dose levels indicated in the legend to Figure 11 for three days. Additionally, wild-type mIL2 (unPEGylated) was administered at a dose of 12.2 μg (HD-mouse IL-2) to stimulate HD-hIL2 therapy. Wet lung weight was determined relative to total starting body weight. The results of this study are presented in Figure 11 of the accompanying drawings. As illustrated by the data presented in Figure 11, animals treated with HD-IL-2, PEGmIL-2, but not STK-014, had increased wet lung weight-to-body weight ratios, indicative of capillary leak. The foregoing data demonstrate that the hIL2 muteins of the present disclosure have a reduced risk of CLS compared to wild-type hIL2, suggesting a significant safety advantage over HD-hIL2 in the treatment of human subjects.

[0193] Evaluation of STK-014 in a syngeneic CT26 colon cancer model: The antitumor efficacy of STK-014 was examined in a murine CT-26 colon cancer model in Balb / C mice. The study design and treatment groups are summarized in Table 9 below.

[0194] Table 9. Study design to evaluate the antitumor efficacy of STK-014 TIFF2025160450000024.tif39150

[0195] Briefly, CT-26 colon cancer (3 × 10 cells) 5 ) were injected subcutaneously to grow tumors to a size of >100 mm 3 The mice were allowed to grow to 10 days after tumor cell implantation, and treatment began 10 days after tumor cell implantation. Mice were dosed according to Table 9. Tumor size was measured twice weekly by caliper measurement during the treatment phase. The results of this CT26 study are graphically depicted in Figure 12 of the accompanying drawings. As shown in Figure 12, only the STK-014 treatment group (Group 4) resulted in tumor rejection in more than 50% of mice in the CT-26 colon cancer model. This data suggests that the hIL2 muteins of the present disclosure, including PEGylated variants thereof, have improved anti-tumor efficacy compared to wt hIL2 therapy in human subjects.

[0196] Analysis of tumor-infiltrating T cells in the CT-26 tumor model: Organs harvested from animals in the aforementioned CT26 tumor model study were evaluated by immunohistochemistry. Immunohistochemistry analysis of tissues demonstrated that tumors in mice treated with STK-014 exhibited a robust expansion of intratumoral CD8+ T cells compared with PEG-mIL-2 (Figure 13, panel A). Greater expansion of intratumoral CD25+ CD8+ T cells was observed in tumors, demonstrating the CD25 selectivity of STK-014 (Figure 13, panel B). CD25+ T cells, including Tregs, in the spleen were also robustly expanded by STK-014 treatment and to a lesser extent by PEG-IL-2 (Figure 14). T cell infiltration in human tumors is prognostically associated with improved patient survival, regardless of tumor staging (Fridman, et al. 2012). Similarly, response to immune checkpoint blockade correlates with high infiltration of CD8+ T cells in tumors (Tumeh, et al. 2014). Consequently, the increased intratumoral infiltration of CD8+ T cells observed with STK-014, a murine surrogate of the hIL2 mutein of Formula 1, suggests that the hIL2 muteins of the present disclosure similarly exhibit such an increase in intratumoral T cells that is associated with improved clinical outcomes in human cancer patients.

[0197] MC38 syngeneic colon cancer model: In addition to the CT-26 colon cancer study described above, representative compositions and methods of the present disclosure were evaluated in the MC-38 colon cancer model. The study design and treatment groups for the MC38 study are summarized in Table 10 below.

[0198] Table 10. Study design to evaluate antitumor efficacy in MC-38 colon cancer TIFF2025160450000025.tif39150

[0199] Briefly, MC-38 colon cancer cells (1 × 10 cells) were cultured in a 2000-well plate. 6Mice were subcutaneously injected with STK-014 (particles) and local tumors were allowed to form for 18 days. Mice were left untreated or treated with STK-014 beginning on day 18. STK-014 treatment was continued throughout the observation period. The results of this study are presented in Figure 15 of the accompanying drawings. As shown, treatment with STK-014 resulted in tumor control and regression, whereas PEG-mIL-2 monotherapy showed a reduced ability to control tumors.

[0200] Increased intratumoral CD8+ T cells: Organs harvested from animals in the MC38 tumor model study described above were evaluated by immunohistochemistry. Immunohistochemistry analysis of tissues demonstrated that tumors from mice treated with STK-014 exhibited a stronger expansion of intratumoral CD8+ T cells compared to PEG-mIL-2. As shown in Figure 16A, treatment with PEG-mIL-2 increased the number of intratumoral CD8+ T cells in MC-38 tumors, while treatment with STK-014 further improved T cell infiltration into MC-38 tumors. Similarly, as shown in Figure 16B, STK-014 also increased the number of CD8+ CD25+ T cells in MC-38 tumors.

[0201] Vascular leak syndrome: As mentioned above, wild-type hIL2 (especially HD-hIL2) therapy results in significant toxicity, particularly due to vascular leak syndrome (VLS). Exemplary hIL2 muteins of the present disclosure were evaluated in vivo in mice and non-human primates, as described in more detail below. In a mouse toxicity model, STK-014 demonstrated reduced toxicity without inducing vascular leak syndrome. In efficacy studies using STK-014 in a syngeneic mouse tumor model, the hIL2 muteins of the present disclosure provide favorable toxicity compared to wild-type hIL2.

[0202] Evaluation of VLS in mice:VLS is associated with increased body weight gain and wet organ weight, but also with a loss of overall body weight due to lethargy. Briefly, a study was conducted in which mice were administered STK-014 daily at doses of 1.25, 2.5, 5, and 10 micrograms, with phosphate-buffered saline as a control. As shown in Figure 18, the results of this study did not demonstrate significant weight loss (less than 8% in the test animals, indicating the absence of VLS in mice responding to treatment with the composition of the present disclosure). In addition to the weight gain associated with VLS, a substantial decrease in body weight indicates systemic toxicity in the mice. Experiments were conducted to evaluate the effects of administering wild-type mouse IL2 at a dose of 12.2 micrograms three times daily, as well as administering a 40 kD N-terminally PEGylated wt mIL2 molecule at doses of 2.5, 5, and 10 micrograms. The experimental results are presented in graphical form in Figure 19 of the accompanying drawings. As shown in Figure 19, wt mIL2 induces significant weight loss in mice, which is exacerbated by the prolonged duration of PEGylated wt mIL2 molecules. In contrast, the data in Figure 19 demonstrate that the similarly PEGylated mIL2 REH variant did not induce significant weight loss. Together, these data demonstrate that the molecules of the present disclosure have reduced toxicity compared to wild-type IL2 in both their native and long-acting forms.

[0203] Summary of in vivo pharmacology data in mice:The benefit of immunotherapy often correlates with the relative expansion of effector T cells compared with regulatory T cells. STK-014 most significantly increased the CD8 / Treg ratio in tumors (Figure 17). In efficacy studies using STK-014 in syngeneic mice, STK-014 induced significantly stronger activation and expansion of intratumoral T cells compared with wt-mIL-2. Analysis of T cells in tumors from treated mice showed a stronger expansion of intratumoral CD8+ T cells in response to STK-014 compared with PEG-IL-2. A greater expansion of CD25+ CD8+ T cells was observed, indicating the CD25 selectivity of STK-014. CD25+ T cells, including Tregs, were also expanded strongly in the spleen by STK-014 treatment and to a lesser extent by PEG-IL-2. Furthermore, STK-014 treatment did not induce lethality and capillary leak syndrome associated with HD-IL-2 in mice. STK-014 induced tumor control / complete response in syngeneic tumor models. Administration of STK-014 increased the number of tumor-infiltrating CD8+ T cells, CD25+CD8+ T cells, and granzyme (data not shown)-expressing cells.

[0204] Efficacy of STK-014 in combination with anti-PD-1: Blockade of the anti-PD-1 immune checkpoint is a hallmark of immunotherapy for human tumors. Combination treatment of STK-014 and anti-PD-1 was evaluated in MC-38 tumors, which partially respond to anti-PD-1 therapy. MC-38 tumors were fully established before the initiation of treatment to generate an immunomodulatory tumor microenvironment. Mice were treated with anti-PD-1, PEG-mIL-2, or STK-014 alone or in combination (Table 11).

[0205] Table 11. Study design for combination therapy with STK-014 and PD1 inhibitors in the MC38 tumor model TIFF2025160450000026.tif47151

[0206] The results of the aforementioned study are provided in Figure 20 of the accompanying drawings. Both PEG-IL-2 and STK-014 were effective as single agents, inducing partial responses in this tumor model. Combining either agent with anti-PD-1 increased anti-tumor efficacy, with the combination of STK-014 and anti-PD-1 having a 100% complete response (Figure 20). Furthermore, the presence of intratumoral T cells was assessed as described above, and the results are provided in Figure 21 of the accompanying drawings. As shown, the combination of STK-014 and anti-PD-1 resulted in tumor eradication in the mouse model and was associated with an increase in the number of intratumoral CD8+ T cells.

[0207] Non-human primate studies: In addition to the toxicity studies in mice described above, STK-012 was evaluated in non-human primate (NHP) toxicity studies. STK-012 was tolerated in 2-week pharmacokinetic (PK) and tolerability studies at the effective doses and exposures described above. In summary, STK-012 and its murine surrogate, STK-014, did not exhibit the toxicity associated with PEGylated murine IL-2, despite significantly higher exposures.

[0208] A Non-GLP Tolerability and Toxicity Study of STK-012 in Non-Human Primates A non-GLP tolerability and toxicokinetic multiple ascending dose (MAD) study of STK-012 in cynomolgus monkeys is being conducted by the sponsor. Non-human primates (NHPs) were administered up to two doses of STK-012 below for up to two weeks (Table 12).

[0209] Table 12. Dosing frequency and dose levels for non-GLP tolerability and toxicity studies in non-human primates TIFF2025160450000027.tif27151

[0210] Serum PK, cytokine analysis, cell flow cytometry, clinical chemistry, and hematology analyses were performed throughout the study. Gross and microscopic analysis of organs was performed at terminal takedown. Recombinant human IL-2 (Proleukin) was used as a positive control.

[0211] Toxicokinetic analysis of STK-012: Serum concentrations of STK-012 increased rapidly after SC injection of STK-012, reaching Cmax at 24 h post-injection (PI). STK-012 exposure was stable, with clearance between doses occurring at a T of 11 h. 1 / 2 The T of STK-012 was slower (7 days) than a similarly sized PEG-IL-2 mutein that binds to the intermediate IL-2 receptor (Figure 22) (Milla, et al. 2018). 1 / 2 The mean time to presentation was 23 to 27 hours after the first dose (Table 13).

[0212] Table 13. Pharmacokinetic data of STK-012 in cynomolgus monkeys TIFF2025160450000028.tif43153

[0213] Pharmacodynamic evaluation of STK-012: STK-012 demonstrated bioactivity in NHP studies, including restricted STAT5 phosphorylation in the CD25+CD122+ T cell subset (Figure 24). STK-012 doses of 0.05 mg / kg or higher induced phosphorylated STAT5 (P-STAT5) in the CD25+CD4+ T cell subset in the blood. STK-012 persisted at levels sufficient to maintain P-STAT5 positivity in the STK-012-sensitive population throughout the dosing interval (Figure 23). STK-012 specifically targets T cells with recent TCR-mediated upregulation of CD25 and CD122. Concentration-dependently, STK-012 specifically induced STAT5 phosphorylation in cells expressing high levels of CD25 and CD122 on their surface (Figure 24). STK-012 specifically binds to and activates CD25+ T cells in vitro and in cynomolgus monkeys (Figure 24). Supporting STK-012 specificity, CD25+ CD8+ T cells proliferated earlier and to a higher percentage than CD25- CD8+ T cells in response to STK-012 (detected by KI-67+) (Figure 25). The delayed proliferation of CD25- CD8+ T cells compared with CD25+ CD8+ T cells following STK-012 administration may be a result of the secretion of wtIL-2 by CD25+ T cells. CD28+ CD95+ CD8+ central memory T cells (Tcm) represent an antigen-experienced T cell population. In melanoma patients, treatment with anti-PD-1 antibodies induces proliferation and expansion of CD28+ Tcm, correlating with tumor response (Huang, et al. 2017). STK-012 treatment induced the expansion of CD28+ CD95+ CD8+ T cells in the blood of NHPs (FIG. 26).

[0214] Summary of Clinical Observations in Nonclinical Studies: Administration of 0.36 mg / kg STK-012 on Day 8 was associated with behavioral changes in clinical observations, including hunched posture, lethargy, eyelid swelling, flaky skin, and loose and liquid stools. Hunchback posture occurred on Days 9, 12, 14, and 15 in males and on Days 14 and 15 in females. Male animals also exhibited lethargy on Days 9 and 12, decreased activity on Day 12, bilateral eyelid swelling on Day 15, flaky skin on the left hind paw on Days 9 and 12, loose stools on Days 11-13, and liquid stools on Days 9 and 10. No test article-related clinical observations occurred in animals at other STK-012 dose levels. The highest non-serious toxicity dose (HNSTD) in this study is therefore 100 μg / kg.

[0215] Summary of Pathology Evaluation: The following test article-related microscopic findings were observed in the liver, kidney, and spleen of animals treated with STK-012: minimal to moderate perivascular mixed inflammatory cell infiltration in the liver (STK-012, 0.01 / 0.05 and 0.1 / 0.36 mg / kg); minimal increased mononuclear cell cellularity in the red pulp of the spleen (STK-012, 0.1 / 0.36 mg / kg); and mild mononuclear cell infiltration in the renal cortex (STK-012, 0.01 / 0.05 and 0.1 / 0.36 mg / kg). The affected areas primarily involved perivascular areas, including both the portal and central veins, but no obvious hepatocyte degeneration or necrosis was observed. Serum transaminases were unchanged.

[0216] STK-012 is a structurally modified IL-2 that binds and activates only the high-affinity human IL-2R (CD25, CD122, and CD132). This target cell selectivity may reduce target-mediated clearance. STK-012 exhibited reduced clearance and higher exposure compared to Proleukin (this study) or other similarly PEGylated IL-2s described in the literature (Milla, Ptacin et al. 2018). Despite high serum exposure, STK-012 was tolerated with sustained high serum concentrations at doses up to 100 μg / kg. STK-012 demonstrated robust and sustained bioactivity, as indicated by P-STAT5 uptake in CD25+ T cells.

[0217] hIL2 muteins with altered pharmacokinetics: The present disclosure further provides modified hIL2 muteins with modified pharmacokinetic (PK) properties. In some embodiments, the hIL2 muteins of the present disclosure with modified PK properties are modified to extend their duration of action in mammalian subjects. Examples of such PK modifications include, but are not limited to, conjugation of the hIL2 mutein to one or more carrier proteins, PEGylation, acylation, or amino acid sequence modification, substitution, or deletion.

[0218] In some embodiments, the modified hIL2 mutein with modified pharmacokinetic (PK) properties comprises a plasma half-life in a human subject that is greater than 4 hours, 5 hours, 6 hours, 7 hours, 8 hours, 9 hours, 10 hours, 12 hours, 18 hours, 24 hours, 2 days, 3 days, 4 days, 5 days, 6 days, 7 days, 10 days, 14 days, or 30 days.

[0219] Amino acid modifications:In some embodiments, the hIL2 mutein may contain specific amino acid substitutions that alter the PK of the hIL2 mutein to result in an extended in vivo lifetime. For example, Dakshinamurthi, et al. (International Journal of Bioinformatics Research (2009) 1(2):4-13) state that one or more of the substitutions V91R, K97E, and T113N in the hIL2 polypeptide provide hIL2 variants with enhanced stability and activity. In some embodiments, the hIL2 mutein of the present disclosure contains one, two, or all three of the V91R, K97E, and / or T113N modifications.

[0220] Conjugation to carrier molecules: In some embodiments, the hIL2 muteins of the present disclosure with altered PK properties are conjugated to one or more carrier molecules. In some embodiments, to extend the half-life of the IL2 mutein, the IL2 mutein can be covalently linked to the Fc domain of IgG, albumin, or other molecules, for example, by PEGylation, glycosylation, fatty acid acylation, and others known in the art.

[0221] In some embodiments, the hIL2 muteins of the present disclosure with modified PK properties are expressed as fusion proteins with albumin molecules (e.g., human serum albumin), which are known in the art to promote extended exposure in vivo. In one embodiment of the present invention, the hIL2 muteins are conjugated with albumin and are referred to herein as "hIL2 mutein albumin fusions." The term "albumin" used in the context of hIL2 analog albumin fusions includes albumins such as human serum albumin (HSA), canine serum albumin, and bovine serum albumin (BSA). In some embodiments, the HSA contains a C34S or K573P amino acid substitution compared to the wild-type HSA sequence. According to the present disclosure, albumin can be conjugated to the hIL2 muteins at the carboxyl terminus, amino terminus, both the carboxyl terminus and amino terminus, and internally (see, e.g., U.S. Pat. Nos. 5,876,969 and 7,056,701). The HSA-hIL2 mutein polypeptide conjugates contemplated by the present disclosure can use various forms of albumin, such as the albumin secretory presequence and variants thereof, fragments and variants thereof, and HSA variants. Such forms generally possess one or more desired albumin activities. In a further aspect, the present disclosure involves fusion proteins comprising hIL2 analog polypeptides fused directly or indirectly to albumin, albumin fragments, albumin variants, and the like, wherein the fusion protein has greater plasma stability than the unfused drug molecule and / or the fusion protein retains the therapeutic activity of the unfused drug molecule. In some aspects, the indirect fusion is achieved by a linker, such as a peptide linker or modified version thereof, as described more fully below.

[0222] Alternatively, the hIL2 mutein albumin fusion comprises an IL2 mutein, which is a fusion protein comprising an albumin binding domain (ABD) polypeptide sequence and an IL2 mutein polypeptide. As mentioned above, a fusion protein comprising an albumin binding domain (ABD) polypeptide sequence and an hIL2 analog polypeptide can be achieved, for example, by genetic engineering, in which a nucleic acid encoding HSA or a fragment thereof is linked to a nucleic acid encoding one or more IL2 mutein sequences. In some embodiments, the albumin-binding peptide comprises the amino acid sequence ICLPRWGCLW (SEQ ID NO:6).

[0223] In some embodiments, the hIL2 muteins of the present disclosure with altered PK properties are achieved by conjugation to large, slowly metabolized macromolecules such as proteins; polysaccharides such as sepharose, agarose, cellulose, or cellulose beads; polymeric amino acids such as polyglutamic acid or polylysine; amino acid copolymers; inactivated virus particles; inactivated bacterial toxins such as toxoids from diphtheria, tetanus, or cholera, or leukotoxin molecules; inactivated bacteria, dendritic cells, thyroglobulin; tetanus toxoid; diphtheria toxoid; polyamino acids such as poly(D-lysine:D-glutamic acid); rotavirus VP6 polypeptide; influenza virus hemagglutinin, influenza virus nucleoprotein; keyhole limpet hemocyanin (KLH); and hepatitis B virus core protein and surface antigen. Such conjugated forms can be used to produce antibodies against the polypeptides of the present disclosure, if desired.

[0224] In some embodiments, hIL2 muteins of the present disclosure with modified PK properties can be produced as recombinant fusion proteins in E. coli by conjugation with XTEN, which provides extended duration similar to PEGylation. Suitable XTEN polymers for use with the IL2 muteins of the present disclosure are provided in Podust, et al. (2016) "Extension of in vivo half-life of biologically active molecules by XTEN protein polymers," J Controlled Release 240:52-66 and Haeckel et al. (2016) "XTEN as a Biological Alternative to PEGylation Allows Complete Expression of a Protease-Activatable Killin-Based Cytostatic," PLOS ONE | DOI:10.1371 / journal.pone.0157193 June 13, 2016. The XTEN polymer fusion protein may incorporate a protease-sensitive cleavage site, such as an MMP-2 cleavage site, between the XTEN polypeptide and the IL2 mutein.

[0225] The IL2 muteins of the present disclosure can be chemically conjugated to such carrier molecules using well-known chemical conjugation methods. Bifunctional cross-linking reagents, such as homofunctional and heterofunctional cross-linking reagents, well known in the art, can be used for this purpose. The type of cross-linking reagent to be used depends on the nature of the molecule to be coupled with the IL2 mutein and can be easily identified by one skilled in the art. Alternatively or additionally, the IL2 mutein and / or the molecule intended to be conjugated can be chemically derivatized so that the two can be conjugated in separate reactions, as is also well known in the art.

[0226] PEGylation:In some embodiments, the IL2 mutein is conjugated to one or more water-soluble polymers. Examples of water-soluble polymers useful in the practice of the present invention include polyethylene glycol (PEG), polypropylene glycol (PPG), polysaccharides (polyvinylpyrrolidone, copolymers of ethylene glycol and propylene glycol, poly(oxyethylated polyols), polyolefin alcohols, polysaccharides, poly-alpha-hydroxy acids, polyvinyl alcohol (PVA), polyphosphazenes, polyoxazolines (POZ), poly(N-acryloylmorpholines), or combinations thereof. In some embodiments, the IL2 mutein is conjugated, or "PEGylated," with one or more polyethylene glycol molecules. While the method or site of attachment of PEG to the IL2 mutein can vary, in certain embodiments, PEGylation does not alter, or only minimally alters, the activity of the IL2 mutein. In some embodiments, a cysteine ​​can be substituted for a threonine at position 3 (3TC) to facilitate N-terminal PEGylation using certain chemistries.

[0227] In some embodiments, selective PEGylation of IL2 muteins by incorporation of unnatural amino acids bearing side chains to facilitate selective PEG conjugation chemistry, e.g., as described in Ptacin et al. (PCT International Application Publication No. PCT / US2018 / 045257, filed August 3, 2018, and published February 7, 2019 as International Publication No. WO2019 / 028419A1), can be employed to generate IL2 muteins with reduced affinity for one or more subunits of the IL2 receptor complex (e.g., CD25, CD132). For example, hIL2 muteins incorporating unnatural amino acids bearing specific PEGylatable moieties at sequences or residues of IL2 identified to interact with CD25, including amino acids 34-45, 61-72, and 105-109, typically provide IL2 muteins with reduced binding to CD25. Similarly, hIL2 muteins incorporating unnatural amino acids with specific PEGylatable moieties at sequences or residues of IL2 identified to interact with hCD132, including amino acids 18, 22, 109, 126, or 119-133, provide IL2 muteins with reduced binding to hCD132.

[0228] In certain embodiments, the increase in half-life is greater than any decrease in biological activity. PEG suitable for conjugation to polypeptide sequences is generally water soluble at room temperature and has the general formula R(O-CH-CH). n OR, where R is hydrogen or a protecting group such as an alkyl or alkanol group, and n is an integer between 1 and 1000. When R is a protecting group, it generally has 1 to 8 carbons. The PEG conjugated to the polypeptide sequence can be linear or branched. Branched PEG derivatives, "star PEGs," and multi-armed PEGs are contemplated by the present disclosure.

[0229] The molecular weight of PEG used in the present disclosure is not limited to any particular range. The PEG portion of the PEG-IL2 mutein can have a molecular mass of greater than about 5 kDa, greater than about 10 kDa, greater than about 15 kDa, greater than about 20 kDa, greater than about 30 kDa, greater than about 40 kDa, or greater than about 50 kDa. In some embodiments, the molecular mass is about 5 kDa to about 10 kDa, about 5 kDa to about 15 kDa, about 5 kDa to about 20 kDa, about 10 kDa to about 15 kDa, about 10 kDa to about 20 kDa, about 10 kDa to about 25 kDa, or about 10 kDa to about 30 kDa. The linear or branched PEG molecule has a molecular weight of about 2,000 to about 80,000 daltons, alternatively about 2,000 to about 70,000 daltons, alternatively about 5,000 to about 50,000 daltons, alternatively about 10,000 to about 50,000 daltons, alternatively about 20,000 to about 50,000 daltons, alternatively about 30,000 to about 50,000 daltons, alternatively about 20,000 to about 40,000 daltons, alternatively about 30,000 to about 40,000 daltons. In one embodiment of the invention, the PEG is a 40 kD branched PEG comprising two 20 kD arms.

[0230] The present disclosure also contemplates compositions of conjugates in which PEG has different n values, and thus various different PEGs are present in specific ratios. For example, some compositions contain a mixture of conjugates where n=1, 2, 3, and 4. In some compositions, the proportion of conjugates where n=1 is 18-25%, the proportion of conjugates where n=2 is 50-66%, the proportion of conjugates where n=3 is 12-16%, and the proportion of conjugates where n=4 is up to 5%. Such compositions can be produced using reaction conditions and purification methods known in the art. Chromatography may be used to separate fractions of conjugates, and then, for example, fractions containing conjugates with a desired number of PEGs attached can be identified and purified to be free of unmodified protein sequences and conjugates with other numbers of PEGs attached.

[0231] PEG suitable for conjugation to polypeptide sequences is generally water soluble at room temperature and has the general formula R(O-CH-CH) n It has the formula OR, where R is hydrogen or a protecting group such as an alkyl or alkanol group, and n is an integer from 1 to 1000. When R is a protecting group, it generally has 1 to 8 carbons.

[0232] Two widely used first-generation activated monomethoxy PEGs (mPEGs) are succinimidyl carbonate PEG (SC-PEG; see, e.g., Zalipsky, et al. (1992) Biotehnol. Appl. Biochem 15:100-114) and benzotriazole carbonate PEG (BTC-PEG; see, e.g., Dolence et al., U.S. Pat. No. 5,650,234), which react preferentially with lysine residues to form carbamate bonds but are also known to react with histidine and tyrosine residues. The use of PEG-aldehyde linkers targets a single site at the N-terminus of a polypeptide via reductive amination.

[0233] Pegylation most often occurs at the α-amino group at the N-terminus of a polypeptide, the epsilon-amino group at the side chain of a lysine residue, and the imidazole group at the side chain of a histidine residue. Most recombinant polypeptides have a single α-amino group and several ε-amino and imidazole groups, so multiple positional isomers can be generated depending on the chemical nature of the linker. General PEGylation strategies known in the art can be applied herein.

[0234] PEG can be attached to the IL2 muteins of the present disclosure via a terminal reactive group ("spacer") that mediates a bond between a free amino or carboxyl group of one or more polypeptide sequences and polyethylene glycol. PEGs having a spacer that can be attached to a free amino group include N-hydroxysuccinylimide polyethylene glycol, which can be prepared by activating the succinate ester of polyethylene glycol with N-hydroxysuccinylimide.

[0235] In some embodiments, PEGylation of an IL2 mutein is facilitated by incorporating an unnatural amino acid bearing a unique side chain to facilitate site-specific PEGylation. The incorporation of an unnatural amino acid into a polypeptide to provide a functional moiety for achieving site-specific PEGylation of such polypeptides is known in the art. See, for example, Ptacin et al. (PCT International Application No. PCT / US2018 / 045257, filed August 3, 2018, and published February 7, 2019 as International Publication No. WO2019 / 028419A1). In one embodiment, an IL2 mutein of the invention incorporates an unnatural amino acid at position D109 of the IL2 mutein. In one embodiment of the invention, the IL2 mutein is PEGylated at position 109 of the IL2 mutein to a PEG molecule having a molecular weight of about 20 kD, alternatively about 30 kD, or alternatively about 40 kD.

[0236] The PEG conjugated to the polypeptide sequence can be linear or branched. Branched PEG derivatives, "star PEGs," and multi-armed PEGs are contemplated by the present disclosure.In certain embodiments, PEGs useful in the practice of the present invention include 10 kDa linear PEG-aldehyde (e.g., Sunbright® ME-100AL, NOF America Corporation, One North Broadway, White Plains, NY 10601 USA), 10 kDa linear PEG-NHS ester (e.g., Sunbright® ME-100CS, Sunbright® ME-100AS, Sunbright® ME-100GS, Sunbright® ME-100HS, NOF), 20 kDa linear PEG-aldehyde (e.g., Sunbright® ME-200AL, NOF), 20 kDa linear PEG-NHS ester (e.g., Sunbright® ME-200CS, Sunbright® ME-200AS, Sunbright® ME-200GS, Sunbright® ME-2 ...aldehyde (e.g., Sunbright® ME-200AL, NOF), 20 kDa linear PEG-aldehyde (e.g., Sunbright 20kDa 2-arm branched PEG-aldehyde, comprising two 10kDa linear PEG molecules (e.g., Sunbright® GL2-200AL3, NOF); 20kDa 2-arm branched PEG-NHS ester, comprising two 10kDa linear PEG molecules (e.g., Sunbright® GL2-200TS, Sunbright® GL200GS2, NOF); 40kDa 2-arm branched PEG-aldehyde, comprising two 20kDa linear PEG molecules (e.g., Sunbright® GL2-400AL3); 40kDa 2-arm branched PEG-NHS ester, comprising two 20kDa linear PEG molecules (e.g., Sunbright® GL2-400AL3); These include PEG-NHS ester (e.g., Sunbright® GL2-400AL3, Sunbright® GL2-400GS2, NOF), linear 30 kDa PEG-aldehyde (e.g., Sunbright® ME-300AL), and linear 30 kDa PEG-NHS ester.

[0237] As mentioned above, PEG may be attached to the IL2 mutein directly or via a linker molecule. Suitable linkers generally include "flexible linkers" of sufficient length to allow some movement between the modified polypeptide sequence and the linked components and molecules. Linker molecules are generally about 6-50 atoms in length. Linker molecules can also be, for example, arylacetylene, ethylene glycol oligomers containing 2-10 monomer units, diamines, diacids, amino acids, or combinations thereof. Suitable linkers can be readily selected and can be of any suitable length, for example, 1 amino acid (e.g., Gly), 2, 3, 4, 5, 6, 7, 8, 9, 10, 10-20, 20-30, 30-50, or more than 50 amino acids in length. An example of a flexible linker is a glycine polymer (Gly). n , glycine-serine polymers, glycine-alanine polymers, alanine-serine polymers, and other flexible linkers. Glycine and glycine-serine polymers are relatively structure-free and can therefore serve as neutral tethers between components. Further examples of flexible linkers include glycine polymers (G) n , glycine-alanine polymers, alanine-serine polymers, and glycine-serine polymers. Glycine and glycine-serine polymers are relatively structure-free and, therefore, may serve as neutral tethers between components. Multimers (e.g., 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 10-20, 20-30, or 30-50) of these linker sequences may be linked together to provide flexible linkers that can be used to conjugate heterologous amino acid sequences to the polypeptides disclosed herein.

[0238] Furthermore, such linkers may be used to link the IL2 mutein to additional heterologous polypeptide components described herein, where the heterologous amino acid sequence may be a signal sequence and / or a fusion partner, e.g., albumin, Fc sequence, etc.

[0239] Acylation: In some embodiments, the IL2 muteins of the present disclosure can be acylated by conjugation with a fatty acid molecule as described in Resh (2016) Progress in Lipid Research 63: 120-131. Examples of fatty acids that can be conjugated include myristate, palmitate, and palmitoleic acid. Myristoylates are typically linked to the N-terminal glycine, although lysines can also be myristoylated. Palmitoylation is typically achieved by enzymatic modification of the -SH group of free cysteines, such as DHHC proteins, which catalyze S-palmitoylation. Palmitoylation of serine and threonine residues is typically achieved enzymatically using the PORCN enzyme.

[0240] Acetylation: In some embodiments, the IL2 mutein is N-terminally acetylated by enzymatic reaction with an N-terminal acetyltransferase and, for example, acetyl-CoA. Alternatively or additionally to N-terminal acetylation, the IL2 mutein is acetylated at one or more lysine residues by, for example, enzymatic reaction with a lysine acetyltransferase. See, e.g., Choudhary et al. (2009) Science 325 (5942):834L2 ortho840.

[0241] Fc fusion:In some embodiments, an IL2 fusion protein may incorporate an Fc region derived from an antibody of the IgG subclass that lacks the IgG heavy chain variable region. The "Fc region" can be a natural or synthetic polypeptide homologous to the IgG C-terminal domain produced by digestion of IgG with papain. IgG Fc has a molecular weight of approximately 50 kDa. A mutant IL2 polypeptide can include the entire Fc region or a smaller portion that retains the ability to extend the circulating half-life of the chimeric polypeptide of which it is a part. In addition, full-length or fragmented Fc regions can be variants of the wild-type molecule. That is, they can contain mutations that may or may not affect the function of the polypeptide; as described further below, native activity may not be necessary or desired in all cases. In certain embodiments, an IL2 mutein fusion protein (e.g., an IL2 partial agonist or antagonist described herein) comprises an IgG1, IgG2, IgG3, or IgG4 Fc region. An exemplary Fc region can contain mutations that inhibit complement fixation and Fc receptor binding, or it can be lytic, i.e., capable of fixing complement or lysing cells through another mechanism such as antibody-dependent complement lysis (ADCC).

[0242] In some embodiments, the IL2 mutein comprises a functional domain of an Fc-fused chimeric polypeptide molecule. Fc fusion conjugates have been shown to increase the systemic half-life of biologics, thus allowing biologic products to require less frequent administration. Fc binds to the neonatal Fc receptor (FcRn) in endothelial cells lining blood vessels. Upon binding, the Fc fusion molecule is protected from degradation and re-released into the circulation, maintaining the molecule in circulation for a longer period. This Fc binding is thought to be the mechanism by which endogenous IgG maintains its long plasma half-life. Recent Fc-fusion technology links a single copy of a biologic to the Fc region of an antibody, optimizing the pharmacokinetic and pharmacodynamic properties of the biologic compared with conventional Fc-fusion conjugates. The "Fc region" useful for preparing Fc fusions can be a natural or synthetic polypeptide homologous to the IgG C-terminal domain produced by papain digestion of IgG. IgG Fc has a molecular weight of approximately 50 kDa. An IL2 mutein may represent the entire Fc region, or a smaller portion that retains the ability to extend the circulating half-life of the chimeric polypeptide of which it is a part. In addition, the full-length or fragmented Fc region can be a variant of the wild-type molecule. In a typical presentation, each monomer of a dimeric Fc carries a heterologous polypeptide, which may be the same or different.

[0243] In some embodiments, when an IL2 mutein is to be administered in the form of an Fc fusion, particularly in situations where the polypeptide chain conjugated to each subunit of the Fc dimer is different, the Fc fusion can be engineered to have a "knob-into-hole modification." Knob-into-hole modifications are more fully described in Ridgway, et al. (1996) Protein Engineering 9(7):617-621 and U.S. Patent No. 5,731,168, issued March 24, 1998. A knob-into-hole modification refers to a modification at the interface between two immunoglobulin heavy chains in the CH3 domains, in which: i) an amino acid residue in the CH3 domain of a first heavy chain is replaced with an amino acid residue having a larger side chain (e.g., tyrosine or tryptophan) to create a protrusion ("knob") from the surface; and ii) an amino acid residue in the CH3 domain of a second heavy chain is replaced with an amino acid residue having a smaller side chain (e.g., alanine or threonine), thereby creating a cavity ("hole") within the interface in the second CH3 domain, into which the protruding side chain ("knob") of the first CH3 domain is accommodated by the cavity in the second CH3 domain. In one embodiment, a "knob-into-hole modification" comprises the amino acid substitution T366W and, optionally, the amino acid substitution S354C in one of the antibody heavy chains, and the amino acid substitutions T366S, L368A, Y407V, and, optionally, Y349C in the other antibody heavy chain. Additionally, the Fc domain may be modified by the introduction of cysteine ​​residues at positions S354 and Y349, which results in stabilizing disulfide bridges between the two antibody heavy chains in the Fe region (Carter, et al. (2001) Immunol Methods 248, 7-15). The knob-into-hole format is used to facilitate expression of a first polypeptide (e.g., an IL2 mutein) on a first Fc monomer with a "knob" modification and a second polypeptide on a second Fc monomer with a "hole" modification to facilitate expression of a heterodimeric polypeptide conjugate.

[0244] Fc regions can be "lytic" or "nonlytic," but are typically nonlytic. Nonlytic Fc regions typically lack high-affinity Fc receptor binding sites and C1q binding sites. The high-affinity Fc receptor binding site of mouse IgG Fc contains a Leu residue at position 235 of IgG Fc. Therefore, the Fc receptor binding site can be disrupted by mutating or deleting Leu235. For example, substituting Glu for Leu235 inhibits the ability of the Fc region to bind to the high-affinity Fc receptor. The mouse C1q binding site can be functionally disrupted by mutating or deleting Glu318, Lys320, and Lys322 residues of IgG. For example, substituting Ala for Glu318, Lys320, and Lys322 prevents IgG1 Fc from directing antibody-dependent complement lysis. In contrast, the soluble IgG Fc region has a high-affinity Fc receptor binding site and a C1q binding site. The high-affinity Fc receptor binding site contains a Leu residue at position 235 of IgG Fc, and the C1q binding site contains Glu318, Lys320, and Lys322 residues of IgG1. Soluble IgG Fc has wild-type residues or conservative amino acid substitutions at these sites. Soluble IgG Fc can target cells for antibody-dependent cellular cytotoxicity or complement-dependent cytolysis (CDC). Mutations suitable for human IgG are also known (see, for example, Morrison et al., The Immunologist 2: 119-124, 1994; and Brekke et al., The Immunologist 2: 125, 1994).

[0245] In certain embodiments, the amino or carboxyl terminus of the disclosed IL2 muteins can be fused to an immunoglobulin Fc region (e.g., human Fc) to form a fusion conjugate (or fusion molecule). Fc fusion conjugates have been shown to increase the systemic half-life of biologics, thus allowing biologic products to require less frequent administration. Fc binds to the neonatal Fc receptor (FcRn) in endothelial cells lining blood vessels; upon binding, the Fc fusion molecule is protected from degradation and re-released into the circulation, maintaining the molecule in circulation for longer. This Fc binding is thought to be the mechanism by which endogenous IgG maintains its long plasma half-life. Recent Fc-fusion technology links a single copy of a biologic to the Fc region of an antibody, optimizing the pharmacokinetic and pharmacodynamic properties of the biologic compared to traditional Fc-fusion conjugates.

[0246] In some embodiments, the Fc domain monomer comprises at least one mutation compared to a wild-type human IgG1, IgG2, or IgG4 Fc region as described in U.S. Patent No. 10,259,859B2, the entire teachings of which are incorporated herein by reference. In some embodiments, the polypeptide exhibits reduced phagocytosis in a phagocytosis assay compared to a polypeptide having a wild-type human IgG Fc region. In some embodiments, the Fc domain monomer is linked to a second polypeptide comprising a second Fc domain monomer to form an Fc domain dimer.

[0247] Chimeric polypeptides / fusion proteins: In some embodiments, an IL2 mutein may comprise a functional domain of a chimeric polypeptide. The IL2 mutein fusion proteins of the present disclosure may be readily produced by recombinant DNA methodology by techniques known in the art by constructing a recombinant vector containing a nucleic acid sequence encoding the IL2 mutein in frame with a nucleic acid sequence encoding a fusion partner at either the N- or C-terminus of the IL2 mutein, which may optionally further include a nucleic acid sequence encoding a linker or spacer polypeptide in frame.

[0248] Antigenic tag: In other embodiments, the IL2 mutein may be optionally modified to incorporate an additional polypeptide sequence that functions as an antigenic tag, such as a FLAG sequence, which is recognized by a biotinylated, highly specific anti-FLAG antibody as described herein (see, e.g., Blanar et al. (1992) Science 256:1014 and LeClair, et al. (1992) PNAS-USA 89:8145). In some embodiments, the IL2 mutein polypeptide further comprises a C-terminal c-myc epitope tag.

[0249] Additional candidate molecules for conjugation to the hIL2 muteins of the present disclosure include those suitable for isolation or purification. Specific, non-limiting examples include binding molecules such as biotin (biotin-avidin specific binding pair), antibodies, receptors, ligands, lectins, or molecules that constitute solid supports, including, for example, plastic or polystyrene beads, plates or beads, magnetic beads, test strips, and membranes.

[0250] His tag:In some embodiments, the hIL2 muteins of the present invention (including fusion proteins of the IL2 muteins) are expressed as fusion proteins with one or more transition metal chelating polypeptide sequences. The incorporation of such transition metal chelating domains facilitates purification by immobilized metal affinity chromatography (IMAC), as described in Smith et al., U.S. Pat. No. 4,569,794, issued Feb. 11, 1986. Examples of transition metal chelating polypeptides useful in the practice of the present invention are described in Smith et al., supra, and in Dobeli et al., U.S. Pat. No. 5,320,663, issued May 10, 1995, the entire teachings of which are incorporated herein by reference. A particular transition metal chelating polypeptide useful in the practice of the present invention is a peptide containing three to six consecutive histidine residues (SEQ ID NO: 12), e.g., the 6-histidine peptide (His)6 (SEQ ID NO: 13), often referred to in the art as a "His tag."

[0251] Targeted hIL2 muteins: In some embodiments, the IL2 mutein is provided as a fusion protein with a polypeptide sequence ("targeting domain"), optionally incorporating a linker molecule of 1-40 amino acids (alternatively 2-20, alternatively 5-20, alternatively 10-20) between the IL2 mutein sequence and the targeting domain sequence of the fusion protein to promote selective binding to specific cell types or tissues expressing a cell surface molecule that specifically binds to such targeting domain. In other embodiments, chimeric polypeptides can be generated comprising an hIL2 mutein and an antibody or antigen-binding portion thereof. The antibody or antigen-binding component of the chimeric protein can act as a targeting moiety. For example, it can be used to localize the chimeric protein to a specific subset of cells or target molecule. Methods for generating cytokine-antibody chimeric polypeptides are described, for example, in U.S. Pat. No. 6,617,135, "Nucleic Acid Molecules Encoding Mutant IL2."

[0252] In some embodiments, the targeting domain of the hIL2 mutein fusion protein specifically binds to a cell surface molecule of a tumor cell. In one embodiment in which the ECD of the CAR of a CAR-T cell specifically binds to CD-19, the IL2 mutein can be provided as a fusion protein with a CD-19 targeting moiety. For example, in one embodiment in which the ECD of the CAR of a CAR-T cell is an scFv molecule that provides specific binding to CD-19, the IL2 mutein is provided as a fusion protein with a CD-19 targeting moiety, such as a single-chain antibody (e.g., scFv or VHH) that specifically binds to CD-19. In some embodiments, the fusion protein comprises a hIL2 mutein and the anti-CD19 scFv FMC63 (Nicholson, et al. (1997) Mol Immunol 34: 1157-1165).

[0253] Similarly, in some embodiments in which the ECD of the CAR of a CAR-T cell specifically binds BCMA, the hIL2 mutein may be provided as a fusion protein with a BCMA-targeting moiety, such as an antibody comprising the CDRs of the anti-BMCA antibodies described in Kalled et al. (U.S. Patent No. 9,034,324, issued May 9, 2015) or an antibody comprising the CDRs described in Brogdon et al. (U.S. Patent No. 10,174,095, issued January 8, 2019). In some embodiments, the hIL2 mutein may be provided as a fusion protein with a GD2 targeting moiety, such as an antibody comprising the CDRs described in Cheung et al. (U.S. Patent No. 9,315,585 issued April 19, 2016) or CDRs from ME36.1 (Thurin et al., (1987) Cancer Research 47:1229-1233), 14G2a, 3F8 (Cheung, et al., 1985 Cancer Research 45:2642-2649), hu14.18, 8B6, 2E12, or ic9.

[0254] In an alternative embodiment, the targeting hIL2 muteins of the present disclosure can be administered in combination with CAR-T cell therapy to provide targeted delivery of the IL2 mutein to CAR-T cells based on the extracellular receptor of the CAR-T cells, such as by using a targeting hIL2 mutein construct comprising an anti-FMC63 antibody, to target IL2 activity to the CAR-T cells and rejuvenate exhausted CAR-T cells in vivo. Consequently, embodiments of the present disclosure include targeted delivery of the IL2 mutein by conjugating the IL2 mutein to an antibody or ligand designed to interact with a specific cell surface molecule on the CAR-T cells. An example of such a molecule would be an anti-FMC63-hIL2 mutein.

[0255] In other embodiments, the chimeric polypeptide comprises a mutant IL2 polypeptide and a heterologous polypeptide that functions to enhance expression or direct cellular localization of the mutant IL2 polypeptide, such as the Aga2p agglutinin subunit (see, e.g., Boder and Wittrup, Nature Biotechnol. 15:553-7, 1997).

[0256] Protein transduction domain fusion proteins:In some embodiments, the IL2 mutein may be operably linked to a "protein transduction domain" or "PTD." A PTD is a polypeptide, polynucleotide, carbohydrate, or organic or inorganic molecule that facilitates crossing a lipid bilayer, micelle, cell membrane, organelle membrane, or vesicle membrane. Incorporation of a PTD into an IL2 mutein facilitates the molecule's crossing of the membrane. In some embodiments, the PTD is covalently attached to the amino or carboxy terminus of the IL2 mutein. In some embodiments, the PTD is incorporated at either the N- or C-terminus of the molecule as part of a PTD-IL2 mutein fusion protein.Exemplary protein transduction domains include a minimal decapeptide protein transduction domain (corresponding to residues 47-57 of HIV-1 TAT); a polyarginine sequence containing a sufficient number of arginine residues to direct entry into cells (e.g., 3, 4, 5, 6, 7, 8, 9, 10, or 10-50 arginines); a VP22 domain (Zender et al. (2002) Cancer Gene Ther. 9(6):489-96); the Drosophila Antennapedia protein transduction domain (Noguchi et al. (2003) Diabetes 52(7):1732-1737); a truncated human calcitonin peptide (Trehin et al. (2004) Pharm. Research 21:1248-1256); polylysine (Wender et al. (2000) Proc. Natl. Acad. Sci. USA 97:13003-13008), transportan (described in Wierzbicki, et al., (2014) Folio Histomchemica et Cytobiologica 52(4): 270-280 and Pooga, et al. (1998) FASEB J 12(1)67-77 and commercially available from AnaSpec as catalog number AS-61256); KALA (described in Wyman et al., (1997) Biochemistry 36(10) 3008-3017 and commercially available from AnaSpec as catalog number AS-65459); antennapedia peptide (described in Pietersz et al., (2001) Vaccine 19:1397 and commercially available from AnaSpec as catalog number AS-61032); TAT 47-57 (available from AnaSpec as catalog number AS-60023), but is not limited to.

[0257] Conjugation of Adjunctive Therapeutic Agents: In some embodiments, the hIL2 mutein may be linked to one or more additional therapeutic agents, including, but not limited to, anti-inflammatory or anti-neoplastic compounds, therapeutic antibodies (e.g., Herceptin), targeting moieties such as anti-tumor antigen antibodies, immune checkpoint modulators, immune checkpoint inhibitors (e.g., anti-PD1 antibodies), or cancer vaccines. Antibacterial agents include aminoglycosides such as gentamicin; antiviral compounds such as rifampicin, 3'-azido-3'-deoxythymidine (AZT), and acyclovir; antifungal agents such as azoles, including fluconazole; macrolides such as amphotericin B and candicidin; antiparasitic compounds, and the like. IL2 mutein can be conjugated with other cytokines, such as CSF, GSF, GMCSF, TNF, erythropoietin, immunomodulators or cytokines, such as interferons or interleukins, neuropeptides, reproductive hormones, such as HGH, FSH, or LH, thyroid hormones, neurotransmitters, such as acetylcholine, hormone receptors, such as estrogen receptors.Non-steroidal anti-inflammatory drugs, such as indomethacin, salicylic acid acetate, ibuprofen, sulindac, piroxicam, and naproxen, and anesthetics or analgesics, are also included.Radioisotopes, including those useful not only for imaging but also for treatment, are also included.

[0258] Synthesis of IL2 muteins The IL2 muteins of the present disclosure may be produced by conventional methodologies for constructing polypeptides, including recombinant synthesis or solid phase synthesis.

[0259] Chemical synthesis:In addition to producing mutant polypeptides through the expression of nucleic acid molecules modified by recombinant molecular biology techniques, the subject hIL2 muteins can be chemically synthesized. Chemically synthesized polypeptides are routinely produced by those skilled in the art. Chemical synthesis involves the direct synthesis of peptides by chemical means from protein sequences encoding IL2 muteins exhibiting the described properties. This method allows the incorporation of both natural and unnatural amino acids at positions that affect the interaction of IL2 with CD25, CD122, and CD132.

[0260] In some embodiments, the IL2 muteins of the present disclosure can be prepared by chemical synthesis. Chemical synthesis of IL2 muteins can proceed via liquid phase or solid phase. Solid phase peptide synthesis (SPPS) allows the incorporation of unnatural amino acids and / or peptide / protein backbone modifications. Various forms of SPPS that can be used to synthesize the IL2 muteins of the present disclosure are known in the art (e.g., Ganesan A. (2006) Mini Rev. Med. Chem. 6:3-10; and Camarero JA et al., (2005) Protein Pept Lett. 12:723-8). During chemical synthesis, alpha functional groups and any reactive side chains can be protected with acid-labile or base-labile groups that are stable under conditions for linking amide bonds but can be easily cleaved without damaging the formed peptide chain.

[0261] In solid-phase synthesis, the N- or C-terminal amino acid of a polypeptide can be coupled to a suitable support material. Suitable support materials are those that are inert to the reagents and reaction conditions for the stepwise condensation and cleavage reactions of the synthesis process and are insoluble in the reaction medium used. Examples of commercially available support materials include styrene / divinylbenzene copolymers and / or polyethylene glycols that have been modified to have reactive groups; chloromethylated styrene / divinylbenzene copolymers; hydroxymethylated styrene or aminomethylated styrene / divinylbenzene copolymers; and the like. The sequential coupling of protected amino acids can be carried out according to conventional methods in peptide synthesis, typically using an automated peptide synthesizer.

[0262] At the end of solid-phase synthesis, the polypeptide is cleaved from the support material with simultaneous cleavage of side chain protecting groups. The resulting polypeptide can be purified by a variety of chromatographic methods, including, but not limited to, hydrophobic adsorption chromatography, ion exchange chromatography, partition chromatography, high performance liquid chromatography (HPLC), and reverse-phase HPLC.

[0263] Recombinant production:Alternatively, the IL2 muteins of the present disclosure are produced by recombinant DNA technology. In a typical implementation of recombinant production of a polypeptide, a nucleic acid sequence encoding the desired polypeptide is incorporated into an expression vector appropriate for the host cell in which expression will be achieved, and the nucleic acid sequence is operably linked to one or more expression control sequences encoded by the vector and functional in the target host cell. If a secretory leader sequence (signal peptide) is incorporated into the polypeptide, the recombinant protein may be recovered via disruption of the host cell or from the cell culture medium. The recombinant protein may be purified and concentrated for further use, including incorporation. Methods for the recombinant production of IL2 polypeptides are known in the art and are described in Fernandes and Taforo, U.S. Pat. No. 4,604,377, issued Aug. 5, 1986, and methods for the recombinant production of IL2 muteins are described in Mark et al., U.S. Pat. No. 4,512,584, issued May 21, 1985, and Gillis, U.S. Pat. No. 4,401,756, issued Aug. 30, 1983, the entire teachings of which are incorporated herein by reference.

[0264] Construction of nucleic acid sequences encoding IL2 muteins: In some embodiments, the IL2 mutein is produced by recombinant methods using a nucleic acid sequence encoding the IL2 mutein (or a fusion protein containing the IL2 mutein). A nucleic acid sequence encoding the desired hIL2 mutein can be synthesized by chemical means using an oligonucleotide synthesizer. A nucleic acid molecule is not limited to a sequence encoding a polypeptide; it can also include some or all of the non-coding sequences (e.g., the coding sequence for IL-2) present upstream or downstream of the coding sequence. Those skilled in the art of molecular biology are familiar with routine procedures for isolating nucleic acid molecules. They can be generated, for example, by treating genomic DNA with restriction endonucleases or by the power of the polymerase chain reaction (PCR). Consequently, the nucleic acid molecule is ribonucleic acid (RNA), and the molecule can be produced, for example, by in vitro transcription.

[0265] Nucleic acid molecules encoding IL2 muteins (and fusions thereof) can contain sequences that differ from the native or naturally occurring sequence, but encode the same polypeptide due to the degeneracy of the genetic code. These nucleic acid molecules can be composed of RNA or DNA (e.g., genomic DNA, cDNA, or synthetic DNA, e.g., produced by phosphonamidite-based synthesis), or combinations or modifications of nucleotides within these types of nucleic acids. In addition, nucleic acid molecules can be double-stranded or single-stranded (i.e., sense or antisense strand).

[0266] Nucleic acid sequences encoding IL2 muteins may be obtained from various commercial sources that provide custom-made nucleic acid sequences. Amino acid sequence variants of IL2 polypeptides for producing the IL2 muteins of the present disclosure are prepared by introducing appropriate nucleotide changes into the coding sequence based on the genetic code, as is well known in the art. Such variants represent insertions, substitutions, and / or specific deletions of residues as described. Any combination of insertions, substitutions, and / or specific deletions may be made to arrive at the final construct, provided that the final construct possesses the desired biological activity as defined herein.

[0267] Methods for constructing DNA sequences encoding hIL2 muteins and expressing those sequences in appropriate transformed hosts include, but are not limited to, the use of PCR-assisted mutagenesis techniques. Mutations consisting of deletions or additions of amino acid residues to hIL2 polypeptides can also be made using standard recombinant techniques. In the case of deletions or additions, the nucleic acid molecule encoding hIL2 is optionally digested with an appropriate restriction endonuclease. The resulting fragment can be expressed directly or further manipulated, for example, by ligating it with a second fragment. Ligation may be facilitated if the two ends of the nucleic acid molecule contain complementary nucleotides that overlap each other, although blunt-ended fragments can also be ligated. Nucleic acids generated by PCR can also be used to generate various mutant sequences.

[0268] The IL2 muteins of the present disclosure can be recombinantly produced not only directly but also as fusion polypeptides with heterologous polypeptides, such as with signal sequences or with other polypeptides that have specific cleavage sites at the N- or C-terminus of the mature IL2 mutein. Generally, the signal sequence may be a component of the vector or may be part of the coding sequence inserted into the vector. The heterologous signal sequence selected is preferably one that is recognized and processed (i.e., cleaved by a signal peptidase) by the host cell. In some embodiments, the signal sequence is the signal sequence naturally associated with the IL2 mutein (i.e., the human IL2 signal sequence). The inclusion of a signal sequence depends on whether it is desired to secrete the hIL2 mutein from the recombinant cell in which it is produced. If the selected cell is a prokaryotic cell, it is generally preferred that the DNA sequence does not encode a signal sequence. If the selected cell is a eukaryotic cell, it is generally preferred that a signal sequence be encoded, with the wild-type hIL2 signal sequence being most preferably used. Alternatively, heterologous mammalian signal sequences, such as signal sequences from secreted polypeptides of the same or related species, as well as viral secretory leaders, such as the herpes simplex gD signal, may be suitable. When the recombinant host cell is a yeast cell such as Saccharomyces cerevisiae, the alpha mating factor secretory signal sequence may be employed to achieve extracellular secretion of the IL2 mutein into the culture medium as described in U.S. Patent No. 7,198,919 B1, issued April 3, 2007, to Singh.

[0269] When the IL2 mutein is expressed as a chimera (e.g., a fusion protein comprising an IL2 mutein and a heterologous polypeptide sequence), the chimeric protein can be encoded by a hybrid nucleic acid molecule comprising a first sequence encoding all or a portion of the hIL2 mutein and a second sequence encoding all or a portion of the heterologous polypeptide. For example, the subject hIL2 muteins described herein can be fused to a hexa-histidine tag (SEQ ID NO: 13) to facilitate purification of proteins expressed in bacteria, or to a hemagglutinin tag to facilitate purification of proteins expressed in eukaryotic cells. By first and second, it is not to be understood as a limitation on the orientation of the elements of the fusion protein; the heterologous polypeptide can be linked to the N-terminus and / or C-terminus of the IL2 mutein. For example, the N-terminus can be linked to a targeting domain and the C-terminus can be linked to a hexa-histidine tag (SEQ ID NO: 13) purification handle.

[0270] The full-length amino acid sequence of the polypeptide (or fusion / chimera) to be expressed can be used to construct a reverse-translated gene. DNA oligomers containing nucleotide sequences encoding hIL2 muteins can be synthesized. For example, several small oligonucleotides encoding portions of the desired polypeptide can be synthesized and then ligated together. Individual oligonucleotides typically contain 5' or 3' overhangs for complementary assembly.

[0271] Codon optimization: In some embodiments, nucleic acid sequences encoding IL2 muteins may be "codon-optimized" to facilitate expression in particular host cell types. Techniques for codon optimization in a wide variety of expression systems, including mammalian, yeast, and bacterial host cells, are well known in the art, and online tools exist to provide codon-optimized sequences for expression in a wide variety of host cell types. See, for example, Hawash, et al (2017) 9:46-53 and David Hacker, ed., Recombinant Protein Expression in Mammalian Cells: Methods and Protocols(Human Press, New York). Additionally, there are a variety of web-based online software packages that are freely available to the public to assist in the preparation of codon-optimized nucleic acid sequences.

[0272] Expression vector: Once assembled (by synthesis, site-directed mutagenesis, or another method), the nucleic acid sequence encoding the hIL2 mutein will be inserted into an expression vector. A variety of expression vectors are available for use in various host cells, and they are typically selected based on the host cell for expression. Expression vectors typically include one or more of the following, but are not limited to: an origin of replication, one or more marker genes, an enhancer element, a promoter, and a transcription termination sequence. Vectors include viral vectors, plasmid vectors, integrating vectors, etc. A plasmid is an example of a non-viral vector.

[0273] Selection Marker: Expression vectors usually contain a selection gene, also called a selectable marker. This gene encodes a protein necessary for the survival or growth of transformed host cells grown in a selective medium. Host cells not transformed with a vector containing a selection gene will not survive in the culture medium. Typical selection genes encode proteins that (a) confer resistance to antibiotics or other toxins, such as ampicillin, neomycin, methotrexate, or tetracycline, (b) complement an auxotrophic deficiency, or (c) supply a critical nutrient unavailable from complex media.

[0274] Regulatory control sequences:To facilitate efficient expression of a recombinant polypeptide, the nucleic acid sequence encoding the polypeptide sequence to be expressed is operably linked to transcriptional and translational regulatory control sequences functional in the selected expression host. Expression vectors for the IL2 muteins of the present disclosure contain regulatory sequences recognized by the host organism and operably linked to the nucleic acid sequence encoding the IL2 mutein. The terms "regulatory control sequence," "regulatory sequence," or "expression control sequence" are used interchangeably herein to refer to promoters, enhancers, and other expression control elements (e.g., polyadenylation signals). See, for example, Goeddel (1990) in Gene Expression Technology: Methods in Enzymology 185 (Academic Press, San Diego, CA USA). Regulatory sequences include those that direct constitutive expression of a nucleotide sequence in many types of host cells and those that direct expression of a nucleotide sequence only in certain host cells (e.g., tissue-specific regulatory sequences). Those skilled in the art will recognize that the design of the expression vector can depend on factors such as the choice of host cell to be transformed, the desired protein expression level, and the like. In selecting an expression control sequence, a variety of factors should be considered as will be appreciated by those of skill in the art, including, for example, the relative strength of the sequence, its controllability, and its compatibility with the actual DNA sequence encoding the subject hIL2 mutein, particularly with respect to potential secondary structure.

[0275] promoter:In some embodiments, the regulatory sequence is a promoter, selected, for example, based on the cell type in which expression is sought. A promoter is an untranslated sequence located upstream (5') of the start codon of a structural gene (generally within about 100-1000 bp) that controls the transcription and translation of a specific nucleic acid sequence to which it is operably linked. Such promoters are typically divided into two classes: inducible promoters and constitutive promoters. Inducible promoters are promoters that initiate increased levels of transcription from DNA under their control in response to certain changes in culture conditions, such as the presence or absence of a nutrient or a change in temperature. Numerous promoters recognized by a variety of potential host cells are known.

[0276] T7 promoter can be used in bacteria, polyhedrin promoter can be used in insect cells, and cytomegalovirus promoter or metallothionein promoter can be used in mammalian cells.In addition, for higher eukaryotes, tissue-specific promoters and cell type-specific promoters are widely available.These promoters are named as such because they can direct the expression of nucleic acid molecules in a given tissue or cell type in the body.Those skilled in the art are well aware of numerous promoters and other regulatory elements that can be used to direct the expression of nucleic acids.

[0277] Transcription from vectors in mammalian host cells can be controlled by promoters derived from the genomes of viruses such as polyoma virus, fowlpox virus, adenovirus (e.g., human adenovirus serotype 5), bovine papilloma virus, avian sarcoma virus, cytomegalovirus, retrovirus (e.g., murine stem cell virus), hepatitis B virus, and most preferably, simian virus 40 (SV40), from heterologous mammalian promoters such as the actin promoter, PGK (phosphoglycerate kinase), or immunoglobulin promoters, or from heat shock promoters, provided that such promoters are compatible with the host cell system. The early and late promoters of the SV40 virus are conveniently obtained as an SV40 restriction fragment that also contains the SV40 viral origin of replication.

[0278] Enhancer:Transcription in higher eukaryotes is often increased by inserting enhancer sequences into vectors. Enhancers are cis-acting elements of DNA, usually about 10 to 300 bp, that act on a promoter to increase its transcription. Enhancers are relatively orientation- and position-independent and have been found 5' and 3' of transcription units, within introns, and within the coding sequence itself. Many enhancer sequences are now known from mammalian genes (globin, elastase, albumin, alpha-fetoprotein, and insulin). However, enhancers from eukaryotic viruses will typically be used. Examples include the SV40 enhancer on the late side of the replication origin, the cytomegalovirus early promoter enhancer, the polyoma enhancer on the late side of the replication origin, and adenovirus enhancers. Enhancers can be spliced ​​into expression vectors at positions 5' or 3' to the coding sequence, but are preferably located at the 5' site of the promoter. Expression vectors used in eukaryotic host cells also contain sequences necessary for transcription termination and mRNA stabilization. Such sequences are usually available from the 5' untranslated region, and sometimes the 3' untranslated region, of eukaryotic or viral DNA or cDNA. The construction of suitable vectors containing one or more of the above components employs standard techniques.

[0279] In addition to sequences that promote transcription of the inserted nucleic acid molecule, vectors can contain origins of replication and other genes encoding selectable markers. For example, the neomycin resistance (neoR) gene confers G418 resistance to cells expressing it, thus allowing phenotypic selection of transfected cells. Additional examples of marker or reporter genes include beta-lactamase, chloramphenicol acetyltransferase (CAT), adenosine deaminase (ADA), dihydrofolate reductase (DHFR), hygromycin-B-phosphotransferase (HPH), thymidine kinase (TK), lacZ (encoding beta-galactosidase), and xanthine guanine phosphoribosyltransferase (XGPRT). Those skilled in the art can easily determine whether a given regulatory element or selectable marker is suitable for use in a particular experimental situation.

[0280] Proper assembly of the expression vector can be confirmed by nucleotide sequencing, restriction mapping, and expression of a bioactive polypeptide in a suitable host.

[0281] Host cells: The present disclosure further provides prokaryotic or eukaryotic cells that contain and express a nucleic acid molecule encoding a hIL2 mutein of the present disclosure. The cells of the present disclosure are transfected cells, i.e., cells into which a nucleic acid molecule, e.g., a nucleic acid molecule encoding a mutant hIL2 polypeptide, has been introduced by recombinant DNA techniques. Progeny of such cells are also considered within the scope of the present disclosure.

[0282] Host cells are typically selected according to their compatibility with the chosen expression vector, the toxicity of the product encoded by the DNA sequence of the invention, their secretion characteristics, their ability to properly fold the polypeptide, their fermentation or cultivation requirements, and the ease of purification of the product encoded by the DNA sequence. Suitable host cells for cloning or expressing the DNA in the vectors herein are prokaryotic, yeast, or higher eukaryotic cells.

[0283] In some embodiments, recombinant hIL2 muteins or bioactive variants thereof can also be produced in eukaryotic organisms, such as yeast cells or human cells. Suitable eukaryotic host cells include insect cells (examples of baculovirus vectors available for expression of proteins in cultured insect cells (e.g., Sf9 cells) include the pAc series (Smith et al. (1983) Mol. Cell Biol. 3:2156-2165) and the pVL series (Lucklow and Summers (1989) Virology 170:31-39)); yeast cells (examples of vectors for expression in the yeast S. cerevisiae include pYepSec1 (Baldari et al. (1987) EMBO J. 6:229-234), pMFa (Kurjan and Herskowitz (1982) Cell 30:933-943), pJRY88 (Schultz et al. (1987) Gene 54:113-123), pYES2 (Invitrogen Corporation, San Diego, Calif.), and pPicZ (Invitrogen Corporation, San Diego, Calif.); or mammalian cells (mammalian expression vectors include pCDM8 (Seed (1987) Nature 329:840) and pMT2PC (Kaufman et al. (1987) EMBO J. 6:187:195)).

[0284] Examples of useful mammalian host cell lines are mouse L cells (LM[TK-], ATCC#CRL-2648), SV40-transformed monkey kidney CV1 line (COS-7, ATCC CRL 1651); human embryonic kidney line (HEK293 or HEK293 cells subcloned for growth in suspension culture); baby hamster kidney cells (BHK, ATCC CCL 10); Chinese hamster ovary cells / -DHFR (CHO); mouse Sertoli cells (TM4); monkey kidney cells (CV1 ATCC CCL 70); African green monkey kidney cells (VERO-76, ATCC CRL-1 587); human cervical carcinoma cells (HELA, ATCC CCL 2); canine kidney cells (MDCK, ATCC CCL 34); buffalo rat liver cells (BRL 3A, ATCC CRL 1442); human lung cells (W138, ATCC CCL 75); human liver cells (Hep G2, HB 8065); mouse mammary tumor (MMT 060562, ATCC CCL51); TRI cells; MRC5 cells; FS4 cells; and human hepatoma line (Hep G2). In mammalian cells, control functions of expression vectors are often provided by viral regulatory elements. For example, commonly used promoters are derived from polyoma, adenovirus 2, cytomegalovirus, and simian virus 40.

[0285] hIL2 muteins can be produced in prokaryotic hosts such as the bacterium Escherichia coli, or eukaryotic hosts such as insect cells (e.g., Sf21 cells), or mammalian cells (e.g., COS cells, NIH 3T3 cells, or HeLa cells). These cells are available from many sources, including the American Type Culture Collection (Manassas, Va.). In selecting an expression system, the only question is whether the components are compatible with each other. One of ordinary skill in the art can make such a determination. Furthermore, if guidance is needed in selecting an expression system, one of ordinary skill in the art may consult Ausubel et al. (Current Protocols in Molecular Biology, John Wiley and Sons, New York, NY, 1993) and Pouwels et al. (Cloning Vectors: A Laboratory Manual, 1985 Suppl. 1987).

[0286] In some embodiments, the resulting hIL2 mutein will be glycosylated or non-glycosylated depending on the host organism used to produce the mutein. If a bacterium is chosen as the host, the hIL2 mutein produced will be non-glycosylated. On the other hand, eukaryotic cells will glycosylate the hIL2 mutein, although perhaps not in the same way that native hIL2 is glycosylated.

[0287] For further expression systems for both prokaryotic and eukaryotic cells, see Chapters 16 and 17 of Sambrook et al. (1989) Molecular Cloning: A Laboratory Manual (2nd ed., Cold Spring Harbor Laboratory Press, Plainview, NY). See Goeddel (1990) in Gene Expression Technology: Methods in Enzymology 185 (Academic Press, San Diego, Calif.).

[0288] Transfection: The expression construct can be introduced into a host cell to produce the hIL2 mutein disclosed herein or a bioactive mutein thereof. Vector DNA can be introduced into prokaryotic or eukaryotic cells via conventional transformation or transfection techniques. Suitable methods for transforming or transfecting host cells can be found in Sambrook et al. (1989) Molecular Cloning: A Laboratory Manual (2d ed., Cold Spring Harbor Laboratory Press, Plainview, NY) and other standard molecular biology laboratory manuals.

[0289] In order to promote the transfection of target cells, target cells may be directly exposed to non-viral vector under the conditions that promote the uptake of non-viral vector.The examples of conditions that promote the uptake of exogenous nucleic acid by mammalian cells are well known in the art, and they include but are not limited to chemical means (for example, Lipofectamine (registered trademark), Thermo-Fisher Scientific), high salt, and magnetic field (electroporation).

[0290] Cell culture: Cells can be cultured in conventional nutrient media modified as appropriate for inducing promoters, selecting transformants, or amplifying genes encoding desired sequences. Mammalian host cells can be cultured in a variety of media. Commercially available media such as Ham's F10 (Sigma), minimal essential medium (MEM, Sigma), RPMI 1640 (Sigma), and Dulbecco's modified Eagle's medium (DMEM, Sigma) are suitable for culturing host cells. Any of these media may be supplemented, as needed, with hormones and / or other growth factors (e.g., insulin, transferrin, or epidermal growth factor), salts (e.g., sodium chloride, calcium, magnesium, and phosphate), buffers (e.g., HEPES), nucleosides (e.g., adenosine and thymidine), antibiotics, trace elements, and glucose or an equivalent energy source. Any other necessary nutritional supplements may also be included at appropriate concentrations that would be known to those skilled in the art. Culture conditions, such as temperature, pH, etc., will be those previously used with the host cell selected for expression and will be apparent to one skilled in the art.

[0291] Recombinant protein recovery: When a secretory leader sequence is used, recombinantly produced IL2 mutein polypeptides can be recovered from the culture medium as secreted polypeptides. Alternatively, IL2 mutein polypeptides can be recovered from host cell lysates. To inhibit proteolysis during purification, protease inhibitors, such as phenylmethylsulfonyl fluoride (PMSF), may be used during the recovery step from cell lysates, and antibiotics may be included to prevent the growth of adventitious contaminants.

[0292] purification: Various purification steps are known in the art, such as affinity chromatography. Affinity chromatography uses highly specific binding sites typically present in biological macromolecules to separate molecules according to their ability to bind to specific ligands. A covalent bond binds the ligand to an insoluble porous support medium, clearly presenting the ligand to a protein sample, thereby using the natural specific binding of one molecular species to separate and purify a second species from a mixture. Antibodies are commonly used in affinity chromatography. A size selection step may also be used, such as gel filtration chromatography (also known as size exclusion chromatography or molecular sieve chromatography) to separate proteins according to their size. In gel filtration, a protein solution is passed through a column packed with a semipermeable porous resin. The semipermeable resin has a range of pore sizes that determines the size of proteins that can be separated by the column.

[0293] The hIL2 mutein produced by the transformed host can be purified according to any suitable method. Various methods are known for purifying hIL2. See, for example, Current Protocols in Protein Science, Vol. 2. Eds: John E. Coligan, Ben M. Dunn, Hidde L. Ploehg, David W. Speicher, Paul T. Wingfield, Unit 6.5 (Copyright 1997, John Wiley and Sons, Inc.). The hIL2 mutein can be isolated from inclusion bodies produced in E. coli or from conditioned medium from mammalian or yeast cultures producing a given mutein using cation exchange, gel filtration, and / or reverse-phase liquid chromatography.

[0294] Substantially purified forms of the recombinant polypeptides can be purified from expression systems using routine biochemical procedures and used, for example, as therapeutic agents described herein.

[0295] The biological activity of hIL2 muteins can be assayed by any suitable method known in the art and may be assessed in substantially purified form or as part of a cell lysate, or, if a secretory leader sequence is used for expression, as part of the cell culture medium. Such activity assays include CTLL-2 proliferation, induction of phospho-STAT5 (pSTAT5) activity in T cells, PHA-blast proliferation, and NK cell proliferation.

[0296] formulation: An embodiment of the therapeutic method of the present disclosure involves administering to a subject in need of treatment a pharmaceutical formulation comprising an IL2 mutein (and / or a nucleic acid encoding an IL2 mutein). Administration to a subject can be accomplished by intravenous injection, either as a bolus or by continuous infusion over a period of time. Alternative routes of administration include intramuscular, intraperitoneal, intracerebrospinal, subcutaneous, intra-articular, intrasynovial, intrathecal, oral, topical, or inhalation routes. The IL2 mutein can also be suitably administered by intratumoral, peritumoral, intralesional, intranodal, or perilesional routes, or into the lymphatics to exert not only local but also systemic therapeutic effects.

[0297] In some embodiments, the subject hIL2 muteins (and / or nucleic acids encoding the IL2 muteins) can be incorporated into compositions, including pharmaceutical compositions. Such compositions typically comprise a polypeptide or nucleic acid molecule and a pharmaceutically acceptable carrier. The pharmaceutical composition is formulated to be compatible with its intended route of administration and is compatible with the therapeutic use in which the IL2 mutein will be administered to a subject in need of treatment or prevention.

[0298] Parenteral formulations: In some embodiments, the method of the present disclosure may include parenteral administration of the hIL2 mutein. Examples of parenteral routes of administration include, for example, intravenous, intradermal, subcutaneous, transdermal (topical), transmucosal, and rectal administration. Parenteral formulations, including solutions or suspensions used for parenteral application, can include vehicles, carriers, and buffers. Pharmaceutical formulations for parenteral administration include sterile aqueous solutions (if water soluble) or dispersions, and sterile powders for the extemporaneous preparation of sterile injection solutions or dispersions.

[0299] Carrier: Carriers include sterile diluents such as water for injection, saline, fixed oils, polyethylene glycol, glycerin, propylene glycol, or other synthetic solvents. Carriers can be solvents or dispersion media containing, for example, water, ethanol, polyols (e.g., glycerol, propylene glycol, and liquid polyethylene glycol, etc.), and suitable mixtures thereof. Proper fluidity can be maintained, for example, by the use of a coating agent such as lecithin, by maintaining the required particle size in the case of dispersions, and by the use of surfactants such as sodium dodecyl sulfate. For intravenous administration, suitable carriers include physiological saline, bacteriostatic water, Cremophor EL™ (BASF, Parsippany, NJ), or phosphate-buffered saline (PBS).

[0300] Buffer: The term buffering agent includes buffers such as acetates, citrates, or phosphates, and agents for adjusting tonicity, such as sodium chloride or dextrose. The pH can be adjusted (e.g., to about pH 7.2-7.8, e.g., 7.5) with acids or bases such as mono- and / or di-sodium phosphate, hydrochloric acid, or sodium hydroxide.

[0301] Dispersion:Generally, dispersions are prepared by incorporating the active compound into a sterile vehicle containing a basic dispersion medium and the required other ingredients from those enumerated above. In the case of sterile powders for the preparation of sterile injectable solutions, the preferred methods of preparation are vacuum drying and freeze-drying, which yields a powder of the active ingredient plus any additional desired ingredient from a previously sterile-filtered solution thereof.

[0302] Preservatives: Pharmaceutical preparations for parenteral administration to subjects should be sterile and fluid to facilitate easy syringability.It should be stable under the conditions of manufacture and storage and be protected from contamination.Prevention of microbial activity can be achieved by various antibacterial and antifungal agents, such as benzyl alcohol or methylparaben; antioxidants such as ascorbic acid or sodium bisulfite; chelating agents such as ethylenediaminetetraacetic acid, parabens, chlorobutanol, phenol, ascorbic acid, thimerosal and other agents.Sterile solution can be prepared by incorporating the required amount of active compound in a suitable solvent with one or a combination of the above-listed components, and then aseptically filtering as needed.

[0303] Isotonic agent: In many cases, it will be preferable to include isotonic agents, for example, sugars, polyalcohols such as mannitol, sorbitol, sodium chloride in the composition.

[0304] Oral composition:Oral compositions, if used, generally contain an inert diluent or edible carrier. For oral therapeutic administration, the active compound can be incorporated with an excipient and used in the form of tablets, lozenges, or capsules, such as gelatin capsules. Oral compositions can also be prepared using a liquid carrier for use as a mouthwash. Pharmaceutically compatible binders and / or auxiliary substances can be included as part of the composition. Tablets, pills, capsules, lozenges, etc. can contain the following ingredients: binders, such as microcrystalline cellulose, tragacanth gum, or gelatin; excipients, such as starch or lactose; disintegrants, such as alginic acid, Primogel®, or corn starch; lubricants, such as magnesium stearate or Sterotes®; glidants, such as colloidal silicon dioxide; sweeteners, such as sucrose or saccharin; or flavorings, such as peppermint, methyl salicylate, or orange flavoring, or compounds of a similar nature.

[0305] Inhaled formulations: For administration by inhalation, the subject hIL2 muteins, or nucleic acids encoding them, are delivered in the form of an aerosol spray from a pressurized container or dispenser which contains therein a suitable propellant, e.g., a gas such as carbon dioxide, or a nebulizer. Such methods include those described in U.S. Patent No. 6,468,798.

[0306] Mucous membranes and skin:The systemic administration of the subject hIL2 mutein or nucleic acid can also be via transmucosal or transdermal means. For transmucosal or transdermal administration, a penetrant appropriate to the barrier to be permeated is used in the formulation. Such penetrants are generally known in the art, and include, for example, detergents, bile salts, and fusidic acid derivatives for transmucosal administration. Transmucosal administration can be achieved by using nasal sprays or suppositories for rectal delivery (e.g., using conventional suppository bases such as cocoa butter and other glycerides) or retention enemas. For transdermal administration, the active compound can be formulated into ointments, salves, gels, or creams as generally known in the art, and may incorporate penetration enhancers such as ethanol or lanolin.

[0307] Extended-release and depot formulations: In some embodiments of the disclosed methods, the IL2 mutein is administered to a subject in need of treatment in a formulation that provides sustained release of the IL2 mutein agent. An example of a sustained-release formulation for an injectable composition can be achieved by including an agent that delays absorption, such as aluminum monostearate and gelatin, in the composition. In one embodiment, the subject hIL2 mutein or nucleic acid is prepared with a carrier that protects the mutant hIL2 polypeptide from rapid elimination from the body, such as a controlled-release formulation including implants and microencapsulated delivery systems. Biodegradable, biocompatible polymers such as ethylene vinyl acetate, polyanhydrides, polyglycolic acid, collagen, polyorthoesters, and polylactic acid can be used. Such formulations can be prepared using standard techniques. Materials can also be commercially obtained from Alza Corporation and Nova Pharmaceuticals, Inc. Liposomal suspensions (including liposomes that target monoclonal antibodies against viral antigens to infected cells) can also be used as pharmaceutically acceptable carriers. These can be prepared according to methods known to those skilled in the art, for example, as described in US Pat. No. 4,522,811.

[0308] Administration of nucleic acids encoding IL2 muteins (gene therapy):In some embodiments of the methods of the present disclosure, a nucleic acid encoding an IL2 mutein is administered to a subject by transfection or infection using methods known in the art, including, but not limited to, those described in McCaffrey et al. (Nature 418:6893, 2002), Xia et al. (Nature Biotechnol. 20: 1006-1010, 2002), or Putnam (Am. J. Health Syst. Pharm. 53: 151-160, 1996, erratum at Am. J. Health Syst. Pharm. 53:325, 1996). In some embodiments, the IL2 mutein is administered to a subject by administration of a pharmaceutically acceptable formulation of a recombinant expression vector. In one embodiment, the recombinant expression vector is a viral vector. In some embodiments, the recombinant vector is a recombinant viral vector. In some embodiments, the recombinant viral vector is a recombinant adeno-associated virus (rAAV) or recombinant adenovirus (rAd), particularly a replication-deficient adenovirus derived from human adenovirus serotype 3 and / or 5. In some embodiments, the replication-deficient adenovirus has one or more modifications to the E1 region that disrupt the virus's ability to initiate the cell cycle and / or apoptosis pathway in human cells. The replication-deficient adenoviral vector may optionally contain a deletion in the E3 domain. In some embodiments, the adenovirus is a replication-competent adenovirus. In some embodiments, the adenovirus is a replication-competent recombinant virus engineered to selectively replicate in lymphocytes.

[0309] In one embodiment, an IL2 mutein formulation is provided in accordance with the teachings of Fernandes and Taforo, U.S. Pat. No. 4,604,377, issued Aug. 5, 1986, and Yasui et al., U.S. Pat. No. 4,645,830, the teachings of which are incorporated herein by reference.

[0310] The parenteral preparation can be enclosed in ampoules, disposable syringes or multiple dose vials made of glass or plastic, hi one embodiment, the formulation is provided in a pre-filled syringe for parenteral administration.

[0311] Treatment method The present disclosure provides methods of using IL2 muteins in the treatment of a subject suffering from a neoplastic disease, disorder, or condition by administering a therapeutically effective amount of an IL2 mutein as described herein (or a nucleic acid encoding an IL2 mutein, including a recombinant vector encoding an IL2 mutein).

[0312] The present disclosure provides methods and compositions for treating and / or preventing neoplastic diseases, disorders, or conditions by administering a therapeutically effective amount of a hIL2 mutein that has reduced binding affinity for CD132 but still retains significant binding affinity for CD122 and / or CD25 equivalent to that of wild-type human IL2.

[0313] In some aspects, the present disclosure provides methods and compositions for treating and / or preventing neoplastic diseases, disorders, or conditions by administering a therapeutically effective amount of a human IL2 mutein that has reduced binding affinity for CD132 but still retains significant binding affinity for CD122 and / or CD25 equivalent to the activity of wild-type hIL2, in combination with adjunctive agents including, but not limited to, one or more of chemotherapeutic agents, immune checkpoint modulators, radiation therapy, and / or physical interventional treatment methods such as surgery.

[0314] In some aspects, the present disclosure provides human interleukin-2 (IL2) muteins that provide altered binding characteristics to one or more IL2 receptors for the treatment of neoplastic diseases.

[0315] Neoplasms that can be treated:The compositions and methods of the present disclosure are useful for treating subjects suffering from neoplastic diseases characterized by the presence of a neoplasm, including benign and malignant neoplasms and neoplastic diseases.

[0316] Examples of benign neoplasms amenable to treatment using the compositions and methods of the present disclosure include, but are not limited to, adenomas, fibromas, hemangiomas, and lipomas. Examples of premalignant neoplasms amenable to treatment using the compositions and methods of the present disclosure include, but are not limited to, hyperplasia, atypia, metaplasia, and dysplasia. Examples of malignant neoplasms amenable to treatment using the compositions and methods of the present disclosure include, but are not limited to, carcinomas (cancers arising from epithelial tissues such as skin or tissues covering internal organs), leukemias, lymphomas, and sarcomas, which typically originate from bone, fat, muscle, blood vessels, or connective tissue. The term neoplasm also includes virally induced neoplasms such as warts and EBV-induced diseases (i.e., infectious mononucleosis), hyperproliferative vascular diseases including scar formation, intimal smooth muscle cell hyperplasia, restenosis, vascular occlusion, etc.

[0317] The term "neoplastic disease" includes cancers characterized by solid and non-solid tumors, including, but not limited to, breast cancer; sarcoma (including, but not limited to, osteosarcoma and angiosarcoma and fibrosarcoma), leukemia, lymphoma, genitourinary cancer (including, but not limited to, ovarian, urethral, ​​bladder, and prostate cancer); gastrointestinal cancer (including, but not limited to, colon, esophageal, and stomach cancer); lung cancer; myeloma; pancreatic cancer; liver cancer; kidney cancer; endocrine cancer; skin cancer; and tumors of the brain or central nervous system (CNS) and peripheral nervous system, malignant or benign, including glioma and neuroblastoma, astrocytoma, myelodysplastic disorders; cervical intraepithelial neoplasia; intestinal polyposis; oral leukoplakia; histiocytosis, hyperproliferative scars including keloid scars, hemangiomas; hyperproliferative arterial stenosis, psoriasis, inflammatory arthritis; hyperkeratosis and papular-scaling eruptions including arthritis.

[0318] The term neoplastic disease includes carcinoma. The term "carcinoma" refers to malignant diseases of epithelial or endocrine tissue, including respiratory system carcinoma, digestive system carcinoma, genitourinary system carcinoma, testicular cancer, breast cancer, prostate cancer, endocrine system carcinoma, and melanoma. The term neoplastic disease includes adenocarcinoma. "Adenocarcinoma" refers to a carcinoma derived from glandular tissue or in which the tumor cells form recognizable glandular structures.

[0319] As used herein, the term "hematopoietic neoplastic disorder" refers to a neoplastic disease involving hyperplastic / neoplastic cells arising from hematopoietic origin, e.g., myeloid, lymphoid, or erythroid lineages, or precursor cells thereof.

[0320] Myeloid neoplasms include, but are not limited to, myeloproliferative neoplasms, myeloid and lymphoid disorders with eosinophilia, myeloproliferative / myelodysplastic neoplasms, myelodysplastic syndromes, acute myeloid leukemia and related progenitor neoplasms, and acute leukemia of ill-defined lineage. Exemplary myeloid disorders amenable to treatment in accordance with the present disclosure include, but are not limited to, acute promyelocytic leukemia (APML), acute myeloid leukemia (AML), and chronic myeloid leukemia (CML).

[0321] Lymphoid neoplasms include, but are not limited to, precursor lymphoid neoplasms, mature B-cell neoplasms, mature T-cell neoplasms, Hodgkin's lymphoma, and immunodeficiency-associated lymphoproliferative disorders. Exemplary lymphoid disorders amenable to treatment in accordance with the present disclosure include, but are not limited to, acute lymphocytic leukemia (ALL), including B-cell acute lymphocytic leukemia (ALL) and T-cell ALL, chronic lymphocytic leukemia (CLL), prolymphocytic leukemia (PLL), hairy cell leukemia (HLL), and Waldenstrom's hypergammaglobulinemia (WM).

[0322] In some cases, hematopoietic neoplastic disorders result from poorly differentiated acute leukemias (e.g., erythroblastic leukemia and acute megakaryoblastic leukemia). As used herein, the term "hematopoietic neoplastic disorder" refers to malignant lymphomas, including, but not limited to, non-Hodgkin's lymphoma and its variants, peripheral T-cell lymphoma, adult T-cell leukemia / lymphoma (ATL), cutaneous T-cell lymphoma (CTCL), large granular lymphocytic leukemia (LGF), Hodgkin's disease, and Reed-Sternberg disease.

[0323] A determination of whether a subject "has a neoplastic disease" refers to a determination made by a physician about a subject that the subject requires or would benefit from treatment based on available information accepted in the art for identifying a disease, disorder, or condition, including, but not limited to, x-rays, CT scans, conventional clinical diagnostic tests (e.g., blood counts), genomic data, protein expression data, and immunohistochemistry.

[0324] Tumor mutational burden and immunotherapy: The adaptive immune system recognizes the display of specific cell surface proteins in response to tumor mutations, promoting the recognition and elimination of neoplastic cells. Tumors with a higher tumor mutation burden (TMB) are more likely to display such "tumor antigens." Indeed, clinical experience has shown that tumors composed of neoplastic cells exhibiting a high tumor mutation burden are more likely to respond to immunotherapy, including immune checkpoint blockade (Rizvi, et al. (2015) Science 348(6230): 124-128; Marabelle, et al. (2020) Lancet Oncol 21(10): 1353-1365). Tumor mutation burden is useful as a biomarker for identifying tumors sensitized to immunotherapy, such as those provided in the present disclosure.

[0325] In some embodiments, the compositions and methods of the present disclosure are useful for treating neoplastic diseases associated with the formation of solid tumors exhibiting moderate or high tumor mutation burden (TMB). In some embodiments, the compositions and methods of the present disclosure are useful for treating immune-sensitive solid tumors exhibiting moderate or high tumor mutation burden (TMB). Examples of neoplastic diseases associated with the formation of solid tumors with moderate or high tumor mutation burden that can be treated using the compositions and methods of the present disclosure include, but are not limited to, non-small cell lung cancer and renal cell carcinoma. In one embodiment, the compositions and methods are useful for treating non-small cell lung cancer (NSCLC) exhibiting moderate or high TMB. NSCLC cells typically have a significant number of mutations and are therefore more susceptible to immunotherapy. The current standard of care for NSCLC is stratified by the mechanism of cancer development and generally follows the recommendations of NCCN or ASCO. Most NSCLCs have increased TMB and are therefore initially more susceptible to immunotherapy. However, most tumors eventually recur when subjected to immune checkpoint inhibition. Patients with recurrent tumors typically exhibit reduced T cell infiltration in tumors, systemic T cell exhaustion, and suppressed immune responses compared with pre-immune checkpoint blockade lesions. Therefore, improved immunotherapies are needed to reactivate and expand rare, exhausted tumor-infiltrating T cells.

[0326] Tumor mutational burden:As used herein, the term "tumor mutation burden (TMB)" refers to the number of somatic mutations present in a tumor sample, as determined by nucleic acid sequencing, expressed as the number of mutations per megabase, wherein at least 0.2 megabases of nucleic acid in the tumor sample are sequenced, alternatively at least 0.5 megabases of nucleic acid in the tumor sample are sequenced, alternatively at least 1 megabase of nucleic acid in the tumor sample are sequenced, or alternatively at least 5 megabases or alternatively at least 10 megabases of nucleic acid in the tumor sample are sequenced. It is understood that the rate of tumor mutation burden varies among neoplastic diseases, and therefore, tumor mutation burden should be assessed in relation to a given disease type. For example, certain types of cancer exhibit a wide range of mutation rates, from less than one mutation per megabase to several hundred mutations per megabase. As described in Chalmers, et al. (2017) Genome Medicine 9:34, the accuracy of assessing low tumor mutation burden (low TMB) is improved using the FoundationOne® assay (Foundation Medicine, Cambridge MA, described in Frampton, et al. (2013) Nature Biotechnology 31:1023-31; He, et al. (2016) Blood 127:3004-14).

[0327] High, low, and medium TMB:Tumors are usually characterized in clinical practice as having " high ", " low " or " medium " tumor mutation burden.As used herein, the term " medium tumor mutation burden " refers to a tumor mutation burden that is greater than the upper threshold of the level of tumor mutation burden that is applied to the term low mutation burden in certain contexts.In some embodiments, the term medium tumor mutation burden is greater than about 15 mutations per megabase sequenced but less than about 100 mutations per megabase sequenced; alternatively, greater than about 10 mutations per megabase sequenced but less than 75 mutations per megabase sequenced; alternatively, greater than about 5 mutations per megabase sequenced but less than 50 mutations per megabase sequenced; alternatively, greater than about 1 mutation per megabase sequenced but less than 30 mutations per megabase sequenced; alternatively, greater than about 1 mutation per megabase sequenced but less than 20 mutations per megabase sequenced. As used herein, the term "high tumor mutation burden" refers to a tumor mutation burden that is greater than a medium tumor mutation burden, such as 100 or more mutations per megabase sequenced, alternatively 75 or more mutations per megabase sequenced, alternatively 50 or more mutations per megabase sequenced, alternatively 30 or more mutations per megabase sequenced, alternatively 20 or more mutations per megabase sequenced, or alternatively 10 or more mutations per megabase sequenced.As used herein, the term "low tumor mutation burden" refers to a tumor mutation burden that is 15 or less mutations per megabase sequenced, 10 or less mutations per megabase sequenced, alternatively 7 or less mutations per megabase sequenced, alternatively 5 or less mutations per megabase sequenced, alternatively 2 or less mutations per megabase sequenced, or alternatively 1 or less mutation per megabase sequenced.Sequencing for assessing TMB can be achieved by any of a variety of methods accepted in the art, including partial genome sequencing, whole exome sequencing (WES) or whole genome sequencing (WGS), using next-generation sequencing (NGS) technology that is well established in the art.The accuracy of assessing TMB increases with the amount of nucleic acid sequenced, but the percentage deviation is lower for samples with TMB.As a result, high TMB can be effectively identified by targeting sequencing of only a few hundred genes, while medium TMB can be improved by sequencing at least 0.5Mb of sequence, while reliable assessment of low TMB can be improved by sequencing 5 megabases, alternatively 10 megabases or more of nucleic acid in tumor samples.

[0328] Assessment of Anti-Neoplastic Efficacy: Determining the effectiveness of the disclosed methods in treating cancer generally relates to achieving one or more parameters recognized in the art, such as reduction in lesions, particularly reduction in metastatic lesions, reduction in metastasis, reduction in tumor volume, improvement in ECOG score, etc. Determining response to treatment can be assessed through measurement of biomarkers that can provide reproducible information useful in any aspect of IL2 mutein therapy, including the presence and degree of a subject's response to such therapy and the presence and degree of adverse effects caused by such therapy. By way of example and not limitation, biomarkers include increased IFNγ and upregulation of granzyme A, granzyme B, and perforin; increased number and enhanced function of CD8+ T cells; increased IFNγ, increased ICOS expression on CD8+ T cells, IL-10 expression T cells, and the like. RegTherapeutic response may be characterized by improvements in traditional measures of clinical efficacy, such as complete response (CR), partial response (PR), and stable disease (SD) for target lesions, including complete response (CR), incomplete response / stable disease (SD) as defined by RECIST, as well as immune-related complete response (irCR), immune-related partial response (irPR), and immune-related stable disease (irSD) as defined by immune-related response criteria (irRC), which are considered by those skilled in the art to evidence efficacy in treating neoplastic disease in mammalian (e.g., human) subjects.

[0329] Maintenance of serum concentrations: In some aspects of the present invention, the present disclosure provides methods and compositions for treating and / or preventing neoplastic diseases, disorders, or conditions by administration of a therapeutically effective amount of a hIL2 mutein that has reduced binding affinity for CD132, but still retains significant binding affinity for CD122 and / or CD25 equivalent to wild-type hIL2, wherein the serum concentration of the hIL2 mutein is elevated for a majority of the time (i.e., greater than about 50% of the time; alternatively, greater than about 60% of the time; alternatively, greater than about 70% of the time; alternatively, greater than about 80% of the time; alternatively, greater than about 90% of the time) ( For example, for at least 24 hours, alternatively at least 48 hours, alternatively at least 72 hours, alternatively at least 96 hours, alternatively at least 120 hours, alternatively at least 144 hours, alternatively at least 7 days, alternatively at least 10 days, alternatively at least 12 days, alternatively at least 14 days, alternatively at least 28 days, alternatively at least 45 days, alternatively at least 60 days, or longer), an effective concentration of the IL2 mutein (e.g., EC 10 PRO The above is an alternative to EC 20 PRO The above is an alternative to EC 30 PRO The above is an alternative to EC 40 PRO That’s all, EC 50PRO The above is an alternative to EC 60 PRO or greater), but below the effective concentration of the IL2 mutein sufficient to induce T cell activation for the IL2 mutein (e.g., EC 100 PRO Below, alternatively EC 90 PRO Below, alternatively EC 80 PRO Below, alternatively EC 70 PRO Below, EC 60 PRO Below, alternatively EC 50 PRO The serum concentration is maintained at 0.05% (or less).

[0330] Combination of IL2 muteins with adjunctive therapeutic agents: The present disclosure provides methods for using the IL2 muteins of the present disclosure in combination with one or more additional active agents ("adjunctive agents"). Such additional combinations are interchangeably referred to as "adjunctive combinations" or "adjunctive combination therapies," and therapeutic agents used in combination with the IL2 muteins of the present disclosure are referred to as "adjunctive agents." As used herein, the term "adjunctive agent" includes agents that can be administered or introduced separately, e.g., agents formulated separately for separate administration (e.g., that can be provided in a kit) and / or therapies that can be administered or introduced in combination with the hIL2 mutein.

[0331] Combined with:As used herein, the term "in combination with," when used in reference to the administration of multiple agents to a subject, refers to the administration of a first agent and at least one additional (i.e., second, third, fourth, fifth, etc.) agent to a subject. For purposes of the present invention, an agent (e.g., a hIL2 mutein) is considered to be administered in combination with a second agent (e.g., a modulator of an immune checkpoint pathway) if the biological effect resulting from the administration of the first agent persists in the subject upon administration of the second agent, such that the therapeutic effect of the first agent overlaps with the therapeutic effect of the second agent. For example, PD1 immune checkpoint inhibitors (e.g., nivolumab or pembrolizumab) are typically administered by IV infusion every two or three weeks, whereas the hIL2 muteins of the present disclosure are typically administered more frequently, e.g., daily, BID, or weekly. However, if administration of a first agent (e.g., pembrolizumab) provides a therapeutic effect over an extended period of time, and administration of a second agent (e.g., an hIL2 mutein) provides its therapeutic effect, the therapeutic effect of the first agent continues, such that the second agent and the first agent are considered to be administered in combination, even though the first agent may have been administered at a time significantly separated (e.g., days or weeks) from the time of administration of the second agent. In one aspect, an agent is considered to be administered in combination with a second agent if the first and second agents are administered simultaneously (within 30 minutes of each other), concurrently, or sequentially. In some embodiments, a first agent is considered to be administered "concurrently" with a second agent if the first and second agents are administered within about 24 hours of each other, preferably within about 12 hours of each other, preferably within about 6 hours of each other, preferably within about 2 hours of each other, or preferably within about 30 minutes of each other. It should also be understood that the term "in combination with" applies to situations where the first and second agents are co-formulated into a single pharmaceutically acceptable formulation and the co-formulation is administered to a subject.In certain embodiments, for example, if one agent is administered before one or more other agents, the hIL2 mutein and the auxiliary agent are administered or applied sequentially. In other embodiments, for example, if two or more agents are administered simultaneously or approximately simultaneously, the hIL2 mutein and the auxiliary agent are administered simultaneously; the two or more agents may be present in two or more separate formulations or combined in a single formulation (i.e., co-formulation). Whether the agents are administered sequentially or simultaneously, they are considered to be administered in combination for purposes of this disclosure.

[0332] Establishing optimal combination therapy: Further embodiments include methods or models for determining optimal amounts of combined agents. The optimal amount can be, for example, an amount that achieves an optimal effect in a subject or subject population, or an amount that achieves a therapeutic effect while minimizing or eliminating adverse effects associated with one or more agents. In some embodiments, the methods involve combining an hIL2 mutein and an adjunct agent that is known or determined to be effective in treating or preventing a disease, disorder, or condition described herein (e.g., a cancerous condition) in a subject (e.g., a human) or subject population, where the amount of one agent is titrated while the amount of the other agent is held constant. By manipulating the amounts of the agents in this manner, a clinician can determine, for example, the ratio of agents that is most effective for treating a particular disease, disorder, or condition, or for eliminating or reducing adverse effects, thereby making them tolerable in that situation.

[0333] Auxiliary agents: Chemotherapeutic agents:In some embodiments, the adjunctive agent is a chemotherapeutic agent. In some embodiments, the adjunctive agent is a "cocktail" of multiple chemotherapeutic agents. In some embodiments, the chemotherapeutic agent or cocktail is administered in combination with one or more physical methods (e.g., radiation therapy). The term "chemotherapeutic agent" includes alkylating agents, such as thiotepa and cyclophosphamide; alkylsulfonates, such as busulfan, improsulfan, and piposulfan; aziridines, such as benzodepa, carboquone, meturedepa, and uredepa; ethyleneimines and methylamelamines, including altretamine, triethylenemelamine, triethylenephosphoramide, triethylenethiophosphoramide, and trimethylolmelamine. ); nitrogen mustards, such as chlorambucil, chlornaphazine, chlorophosphamide, estramustine, ifosfamide, mechlorethamine, mechlorethamine oxide hydrochloride, melphalan, nobuenbiquine, phenesterine, prednimustine, trofosfamide, uracil mustard; nitrosoureas, such as carmustine, chlorozotocin, fotemustine, lomustine, nimustine, ranimustine; antibiotics, such as aclacinomycin, actinomycin, Anthramycin, azaserine, bleomycins such as bleomycin A2, cactinomycin, calicheamicin, carabicin, caminomycin, carzinophilin, chromomycin, dactinomycin, daunorubicin and demethoxy-daunomycin, 11-deoxydaunorubicin, 13-deoxydaunorubicin, detorubicin, 6-diazo-5-oxo-L-norleucine, doxorubicin, epirubicin, esorubicin, idarubicin Mitomycins such as marcelomycin, mitomycin C, N-methylmitomycin C, and their derivatives; mycophenolic acid, nogalamycin, olivomycin, peplomycin, potfiromycin, puromycin, queramycin, rhodolubicin, streptonigrin, streptozocin, tubercidin, ubenimex, zinostatin, zorubicin; antimetabolites such as methotrexate and 5-fluorouracil (5-FU);Folic acid analogues, such as denopterin, methotrexate, pteropterin, trimetrexate, dideazatetrahydrofolic acid, and folinic acid; purine analogues, such as fludarabine, 6-mercaptopurine, thiamiprine, thioguanine; pyrimidine analogues, such as ancitabine, azacitidine, 6-azauridine, carmofur, cytarabine, dideoxyuridine, doxifluridine, enocitabine, floxuridine, 5-FU; androgens, such as calusterone, dromostanolone propionate, epithiostanol, mepitiostane, tetanol, Stractone; Anti-adrenal drugs, e.g., aminoglutethimide, mitotane, trilostane; Folic acid supplements, e.g., furoic acid; Aceglatone; Aldophosphamide glycosides; Aminolevulinic acid; Amsacrine; Bestravcil; Bisantrene; Edatrexate; Defofamine; Demecolcine; Diaziquone; Eflornithine; Elliptinium acetate; Etoglucide; Gallium nitrate; Hydroxyurea; Lentinan; Lonidamine; Mitoguazone; Mitoxantrone; Mopidamol; Nitracrine; Pento Statins; Fenamet; Pirarubicin; Podophyllic acid; 2-Ethylhydrazide; Procarbazine; Razoxane; Sizofiran; Spirogermanium; Tenuazonic acid; Triazicon; 2,2',2"-Trichlorotriethylamine; Urethane; Vindesine; Dacarbazine; Mannomustine; Mitobronitol; Mitolactol; Pipobroman; Gacytosine; Arabinoside (Ara-C); Cyclophosphamide; T...

Claims

1. Formula 1: [In the formula: AA1 is A or deleted; AA2 is P or deleted; AA3 is T, C, A, G, Q, E, N, D, R, K, P or deleted; AA4 is S or deleted; AA5 is S or deleted; AA6 is S or deleted; AA7 is T or deleted; AA8 is K or deleted; AA9 is K or deleted; AA35 is K or E; AA38 is R, W, or G; AA39 is M, L, or V; AA55 is H or Y; AA69 is V or A; AA74 is Q, P, N, H, or S; AA80 is L, F, or V; AA81 is R, I, D, or T; AA85 is L or V; AA86 is I or V; AA89 is I or V; AA91 is V, R, or K; AA92 is I or F; AA97 is K or Q; AA104 is M or A; AA109 is D or C; AA113 is T or N; AA125 is C, A, or S; AA130 is S, T, G, or R.

1. A pharmaceutical composition for treating a human subject suffering from a neoplastic disease, comprising a polypeptide comprising the sequence of or a nucleic acid encoding said polypeptide, (a) the polypeptide does not contain the group of amino acid substitutions 80F, 81D, 85V, 86V and 92F; (b) the polypeptide exhibits reduced binding to CD132 compared to wild-type hIL2 of SEQ ID NO: 1; and (c)(i)CD25 POS T cells and CD25 neg When T cells are contacted with the polypeptide, neg CD25 for pSTAT5 induction in T cells POS (ii) the percentage of pSTAT5 induction in T cells; POS T cells and CD25 neg CD25 when T cells were contacted with wild-type hIL2 of SEQ ID NO: 1 neg CD25 for pSTAT5 induction in T cells POS greater than the rate of pSTAT5 induction in T cells, and The polypeptide comprises the following set of mutations: 18L, 22E, and 126Q; 18L, 22Q, and 126H; 18R, 22Q, and 126Q; 18R, 22E, and 126Q; 18Y, 22E, and 126H; 18L, 22E, and 126H; 18R, 22A, and 126H; 18K, 22E, and 126H; 18M, 22E, and 126H; 18R, 22E, and 126H; 18F, 22E, and 126H; 18R, 22M, and 126H; 18T, 22E, and 126H; 18R, 22Q, and 126H; 18R, 22L, and 126H; 18R, 22S, and 126H; 18R, 22G, and 126H; 18R, 22D, and 126H; 18R, 22V, and 126H; 18R, 22W, and 126H; 18D, 22E, and 126H; 18W, 22E, and 126H; 18R, 22Y, and 126H; 18R, 22F, and 126H; 18I, 22E, and 126H; 18R, 22K, and 126H; 18R, 22I, and 126H; 18Q, 22E, and 126H; 18H, 22E, and 126H; 18N, 22E, and 126H; 18R, 22N, and 126H; 18R, 22E, and 126K; 18R, 22T, and 126H; 18V, 22E, and 126H; 18S, 22H, and 126E; 18R, 22H, and 126H; 18R, 22E, and 126E; 18E, 22E, and 126H; 18A, 22E, and 126H; 18G, 22E, and 126H; and 18R, 22R, and 126H A pharmaceutical composition comprising a set of mutations selected from:

2. 2. The pharmaceutical composition of claim 1, wherein AA1 is deleted.

3. The pharmaceutical composition of claim 1, wherein the polypeptide is PEGylated.

4. 4. The pharmaceutical composition of claim 3, wherein the polypeptide is PEGylated with PEG having a molecular weight of 10,000 to 50,000 daltons.

5. 2. The pharmaceutical composition of claim 1, comprising the nucleic acid encoding the polypeptide.

6. 6. The pharmaceutical composition of claim 5, wherein the nucleic acid is DNA.

7. The pharmaceutical composition of claim 5, wherein the nucleic acid is a recombinant expression vector.

8. The pharmaceutical composition of claim 7, wherein the vector is a viral vector.

9. The pharmaceutical composition of claim 7, wherein the vector is a non-viral vector.

10. 10. The pharmaceutical composition of claim 1, used in combination with an adjunct agent.

11. 11. The pharmaceutical composition of claim 10, wherein the ancillary agent is selected from the group consisting of a chemotherapeutic agent, an antibody, an immune checkpoint modulator, a tumor-infiltrating T cell (TIL), and a CAR-T cell.

12. 10. The pharmaceutical composition of claim 1, used in combination with radiation therapy or surgery.

13. 12. The pharmaceutical composition of claim 11, wherein the ancillary agent is an immune checkpoint modulator.

14. 14. The pharmaceutical composition of claim 13, wherein the immune checkpoint modulator is an anti-PD-1 antibody or an anti-PD-L1 antibody.

15. 2. The pharmaceutical composition of claim 1, wherein the polypeptide comprises SEQ ID NO:

8.

16. the polypeptide 16. The pharmaceutical composition of claim 15, comprising an amino terminal proline linked to:

17. 15. The pharmaceutical composition of claim 14, wherein the anti-PD-1 antibody is nivolumab.

18. 15. The pharmaceutical composition of claim 14, wherein the anti-PD-1 antibody is pembrolizumab.