Modified natural killer cells, pharmaceutical compositions, methods of making same and methods of using same

By developing modified natural killer cells with specific phenotypes and adopting specific culture methods, the shortcomings of improving the efficacy of NK cells in the prior art are solved, and effective treatment of cancer and enhanced immune response are achieved.

JP7678667B2Active Publication Date: 2025-05-16FULLHOPE BIOMEDICAL
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Patent Information

Application Number
JP2020210259
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-02-21
Filing Date
2020-12-18
Publication Date
2025-05-16
Estimated Expiration
2040-12-18

AI Technical Summary

Technical Problem

There is a lack of effective therapeutic and preventive methods in the prior art to deal with cancer, especially in improving the efficacy of natural killer cells (NK cells).

Method used

By developing modified natural killer cells (NK cells) with specific phenotypes that have high CD56 expression, low CD16 expression, NKG2D, CD11c, CD86, HLA-DR, and CD83 phenotypes and enhance their function through specific culture methods and media such as IL-15, IL-12 and IL-18.

Benefits of technology

These modified NK cells show higher efficacy in treating cancer, can effectively recognize and kill cancer cells, and also have antigen presentation functions to enhance immune response.

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Abstract

To provide modified natural killer cells having a unique phenotype to satisfy the need for effective treatment and / or prevention for cancer.SOLUTION: This disclosure provides modified natural killer (NK) cells possessing both the NK cell function and the dendritic cell function, and a method of culturing the same. By administration of the modified NK cell, cancer cells in a subject may be effectively inhibited via cell-mediated immunity.SELECTED DRAWING: None
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Description

[Technical field]

[0001] The present disclosure relates to modified natural killer (NK) cells and pharmaceutical compositions comprising the same. Methods for identifying modified NK cells and for culturing modified NK cells are also provided. [Background technology]

[0002] Immune surveillance plays an important role against cancer and is a very attractive therapeutic approach, especially in light of the many shortcomings of traditional surgery, radiation and chemotherapy in the management of cancer.

[0003] The body's first line of defense against cancer are natural killer (NK) cells, which are CD3 - CD14 - CD19 - CD56 + CD16 + NGK2D + CD11c dim HLA-DR - CD86 - CD83 - NK cells have a phenotype of NK cell cytotoxicity. NK cells are cytotoxic lymphocytes that actively survey the body for abnormal cells, destroying them before they can develop into actual cancer cells. As NK cells patrol the body, they interact with many types of cells using their numerous activating and inhibitory surface receptors. Most cancer cells engage the activating receptors of NK cells, which triggers their natural killing response. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] WO2015 / 100495 [Non-patent literature]

[0005] [Non-Patent Document 1] 21st Edition of Remington's Pharmaceutical Science, Mack Publishing Company, Easton, Pa. ("Remington's") [Non-Patent Document 2] Sonderstrup, Springer, Sem. Immunopathol. 25: pp. 35-45, 2003 [Non-Patent Document 3] Nikula et al., Inhal. Toxicol. 4(12j: pp. 123-53, 2000 Summary of the Invention [Problem to be solved by the invention]

[0006] As there remains an unmet need for effective treatments and / or prevention for cancer, these findings support the rationale for developing culture methods to generate larger numbers of therapeutically competent NK cells for NK-based therapies and clinical applications against cancer cells. The present disclosure provides modified natural killer cells with distinct phenotypes to meet these and other needs. These cells can be used in autologous or non-autologous therapies. [Means for solving the problem]

[0007] In light of the urgent need in the art, provided herein are modified natural killer (NK) cells and pharmaceutical compositions comprising same that are safe and effective in the treatment of cancer.

[0008] In one embodiment, the present disclosure provides a method for the detection of CD45 + CD3 - CD19 - CD14 - In a preferred embodiment, the modified NK cells comprise a phenotype of CD56. hi CD16 dim NKG2D + CD11c + CD86 + HLA-DR+ CD83 - HLA-ABC + The modified NK cells can further comprise the phenotype of CD45 + CD3 - CD19 - CD14 - CD56 hi CD16 dim NKG2D + CD11c + CD86 + HLA-DR + CD83 - HLA-ABC + The phenotype may include:

[0009] Some embodiments provide a pharmaceutical composition comprising the modified NK cells described herein and a pharma- ceutically acceptable carrier or excipient.

[0010] Some embodiments provide a method of treating cancer cells, comprising administering to a subject in need thereof an effective amount of an engineered NK cell or pharmaceutical composition described herein.

[0011] In a preferred embodiment, the effective amount is about 1×10 3 ~Approx. 1×10 9 The number of cells may be 100 or more.

[0012] In a preferred embodiment, the modified NK cells may be autologous or allogeneic.

[0013] In a preferred embodiment, the modified NK cells can be derived from peripheral blood, umbilical cord blood, or bone marrow.

[0014] In a preferred embodiment, the method can further comprise expanding the modified NK cells in vitro.

[0015] Another embodiment is a method of culturing modified NK cells having both NK cell and dendritic cell functions, comprising: Obtaining a body fluid containing mononuclear cells; contacting the mononuclear cells with a first medium comprising IL-15, IL-12 and IL-18 to obtain a cultured cell population; and CD3 from cultured cell populations - CD19 - CD14 - CD56 hi CD16 dim NKG2D + CD11c + CD86 + HLA-DR + CD83 - Isolating modified NK cells having a phenotype of The present invention provides a method comprising:

[0016] In a preferred embodiment, the mononuclear cells may be derived from peripheral blood, umbilical cord blood or bone marrow.

[0017] In a preferred embodiment, the first culture medium may further comprise a hematopoietic cell culture medium, preferably an AIM-V culture medium.

[0018] In a preferred embodiment, the first culture medium may further comprise a serum protein, preferably human platelet lysate.

[0019] In a preferred embodiment, the mononuclear cells can be contacted with the first medium for about 1 to 6 days.

[0020] In a preferred embodiment, the method may further comprise contacting the cultured cell population after contacting with the first culture medium with a second culture medium comprising IL-15 and IL-12.

[0021] In a preferred embodiment, the second culture medium may further comprise a hematopoietic cell culture medium, preferably an AIM-V medium.

[0022] In a preferred embodiment, the second culture medium may further comprise serum proteins, preferably human platelet lysate.

[0023] In a preferred embodiment, the cultured cell population can be contacted with the second medium for about 1 to 6 days.

[0024] In a preferred embodiment, the method further comprises the step of: - CD14 - CD19 - The method can further include negatively selecting the mononuclear cells for cells having a phenotype of

[0025] The culture methods described herein allow for the isolation of greater numbers of modified NK cells from a quantitative sample, for example 10 mL of blood.

[0026] Exemplary embodiments of the present application are described in detail below with reference to the following drawings: [Brief description of the drawings]

[0027] [Figure 1A] FIG. 1 illustrates the cell numbers of engineered NK cells cultured in various media. [Figure 1B-1] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured in various media for expression of NKG2D, CD45, CD16, CD56, CD3, CD14, CD19, CD86, CD83, CD11c, and HLA-ABC. [Figure 1B-2] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured in various media for expression of NKG2D, CD45, CD16, CD56, CD3, CD14, CD19, CD86, CD83, CD11c, and HLA-ABC. [Figure 1B-3] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured in various media for expression of NKG2D, CD45, CD16, CD56, CD3, CD14, CD19, CD86, CD83, CD11c, and HLA-ABC. [Figure 1C-1]FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured in various media for expression of NKG2D, CD45, CD16, CD56, CD3, CD14, CD19, CD86, CD83, CD11c, and HLA-ABC. [Figure 1C-2] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured in various media for expression of NKG2D, CD45, CD16, CD56, CD3, CD14, CD19, CD86, CD83, CD11c, and HLA-ABC. [Figure 1C-3] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured in various media for expression of NKG2D, CD45, CD16, CD56, CD3, CD14, CD19, CD86, CD83, CD11c, and HLA-ABC. [Figure 2A] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured from various progenitor cells for expression of CD45, CD3, CD14, and CD19. [Figure 2B] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured from various progenitor cells for NK and DC phenotypes, respectively. [Figure 2C-1] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured from various progenitor cells for NK and DC phenotypes, respectively. [Figure 2C-2] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured from various progenitor cells for NK and DC phenotypes, respectively. [Figure 3A] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured with or without IFN-γ for expression of CD45, CD3, CD14, and CD19. [Figure 3B] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured with and without IFN-γ for NK and DC phenotypes, respectively. [Figure 3C-1] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured with and without IFN-γ for NK and DC phenotypes, respectively. [Figure 3C-2] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured with and without IFN-γ for NK and DC phenotypes, respectively. [Figure 4A] FIG. 1 illustrates the cell numbers of engineered NK cells cultured with various periods of IL-12 exposure. [Figure 4B] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured with various IL-12 exposure periods for NK and DC phenotypes, respectively. [Figure 4C-1] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured with various IL-12 exposure periods for NK and DC phenotypes, respectively. [Figure 4C-2] FIG. 1 illustrates an assembly of flow cytometry images of engineered NK cells cultured with various IL-12 exposure periods for NK and DC phenotypes, respectively. [Figure 4D] FIG. 1 shows an assembly of flow cytometry images illustrating the cytotoxicity of engineered NK cells. [Figure 4E] FIG. 1 shows an assembly of flow cytometry analysis of cell division illustrating the antigen presenting cell (APC) activity of modified NK cells towards T lymphocyte proliferation. [Figure 5A] FIG. 1 illustrates the cell numbers of engineered NK cells cultured at various IL-18 exposure concentrations. [Figure 5B-1] FIG. 1 illustrates an assembly of flow cytometry images of upregulation of CD25, HLA-DR and CD86 expression on engineered NK cells at day 3. [Figure 5B-2] FIG. 1 illustrates an assembly of flow cytometry images of upregulation of CD25, HLA-DR and CD86 expression on engineered NK cells at day 3. [Figure 5C-1] FIG. 1 illustrates an assembly of flow cytometry images of HLA-DR and CD86 downregulation of engineered NK cells on day 12. [Figure 5C-2] FIG. 1 illustrates an assembly of flow cytometry images of HLA-DR and CD86 downregulation of engineered NK cells on day 12. [Figure 5D-1] FIG. 1 shows an assembly of flow cytometry images illustrating the cytotoxicity of engineered NK cells cultured with IL-18. [Figure 5D-2] FIG. 1 shows an assembly of flow cytometry images illustrating the cytotoxicity of engineered NK cells cultured with IL-18. [Figure 5E-1] FIG. 1 shows an assembly of flow cytometry analysis of cell division illustrating the APC activity of modified NK cells cultured with IL-18 on T lymphocyte proliferation. [Figure 5E-2] FIG. 1 shows an assembly of flow cytometry analysis of cell division illustrating the APC activity of modified NK cells cultured with IL-18 on T lymphocyte proliferation. [Figure 6A-1] FIG. 1 illustrates cell numbers of engineered NK cells cultured with various periods of IL-18 exposure. [Figure 6A-2] FIG. 1 illustrates cell numbers of engineered NK cells cultured with various periods of IL-18 exposure. [Figure 6B-1] FIG. 1 shows an assembly of flow cytometry images illustrating the cytotoxicity of engineered NK cells cultured for various periods of IL-18 exposure. [Figure 6B-2] FIG. 1 shows an assembly of flow cytometry images illustrating the cytotoxicity of engineered NK cells cultured for various periods of IL-18 exposure. [Figure 6B-3] FIG. 1 shows an assembly of flow cytometry images illustrating the cytotoxicity of engineered NK cells cultured for various periods of IL-18 exposure. [Figure 6C-1]FIG. 1 shows an assembly of flow cytometry analysis of cell division illustrating the APC activity of modified NK cells cultured with various IL-18 culture periods on T lymphocyte proliferation. [Figure 6C-2] FIG. 1 shows an assembly of flow cytometry analysis of cell division illustrating the APC activity of modified NK cells cultured with various IL-18 culture periods on T lymphocyte proliferation. [Figure 7] 1 is a flow chart according to an embodiment of a method for culturing modified NK cells. [Figure 8-1] FIG. 1 shows a phenotypic analysis of modified NK cells according to embodiments of the present application. [Figure 8-2] FIG. 1 shows a phenotypic analysis of modified NK cells according to embodiments of the present application. [Figure 8-3] FIG. 1 shows a phenotypic analysis of modified NK cells according to embodiments of the present application. [Figure 9A] FIG. 1 illustrates cytotoxicity mediated by modified NK cells according to embodiments of the present application. [Figure 9B] FIG. 1 illustrates APC activity mediated by modified NK cells according to embodiments of the present application. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0028] The above and other aspects of the present disclosure will now be described in more detail with respect to other embodiments described herein. It should be understood that the present invention may be embodied in different forms and should not be construed as being limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art.

[0029] The terminology used in the present specification is for the purpose of describing particular embodiments only and is not intended to be limiting of the present invention. As used in the specification and the appended claims, the singular forms "a," "an," and "the" are intended to include the plural forms unless the context clearly dictates otherwise.

[0030] As used herein, the terms "comprises," "comprising," "includes," "including," "having," "having," "containing," "characterized by," or any other variant thereof, are intended to encompass a non-exclusive inclusion, subject to any limitations expressly stated. For example, a composition, mixture, process, or method that includes a list of elements is not necessarily limited to only those elements, but may include other elements not expressly listed or inherent to such composition, mixture, process, or method.

[0031] The transitional phrase "consisting of" excludes any element, step, or ingredient not specified. When in a claim, it will close the claim against the inclusion of materials other than those recited, except for impurities ordinarily accompanying them. When the phrase "consisting of" appears in a clause in the body of a claim rather than immediately following a preamble, it limits only the elements set forth in that clause. Other elements are not excluded from the claim as a whole.

[0032] It should be readily understood that where an applicant has defined an invention or a portion thereof in open-ended terms such as "comprising," the statement (unless otherwise specified) should be construed to also describe such invention using the term "consisting of."

[0033] All numbers herein can be understood to be modified by "about." As used herein, the term "about" is used to indicate that a value includes, for example, the inherent variation of error of a measuring device, the method used to determine the value, or the variation that exists among test subjects. In general, the term encompasses a variability of approximately 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, or 20%, or less, depending on the context.

[0034] Unless expressly stated to refer to alternatives only or the alternatives are not mutually exclusive, use of the term "or" in the claims is used to mean "and / or," but the present disclosure supports a definition that refers to alternatives only and "and / or."

[0035] As used herein, "subject" refers to animals, including, for example, mammalian subjects diagnosed with or suspected of having or developing cancer. In one embodiment, the term "subject" can refer to a vertebrate animal having cancer or believed to be in need of cancer treatment. Subjects include warm-blooded animals, such as mammals, for example, primates, more preferably humans. Non-human primates are also subjects. The term subject includes livestock animals, such as cats, dogs, apes, etc., farm animals (e.g., cows, horses, pigs, sheep, goats, etc.), and laboratory animals (e.g., mice, rabbits, rats, gerbils, guinea pigs, etc.). Thus, veterinary uses and medical preparations are contemplated herein.

[0036] "Administering" or "administration" is considered herein to provide the NK cells or pharmaceutical composition of the present application to a subject. By way of example and not limitation, administration can be performed via parenteral, subcutaneous, intramuscular, intravenous, intraarticular, intrabronchial, intraperitoneal, intracapsular, intrachondral, intracavity, intracavity, intracerebellar, intraventricular, intracolonic, intracervical, intragastric, intrahepatic, intramyocardial, intraosseous, intrapelvic, intrapericardial, intraperitoneal, intrapleural, intraprostatic, intrapulmonary, intrarectal, intrarenal, intraretinal, intraspinal, intrasynovial, intrathoracic, intrauterine, intravesical, bolus, vaginal, rectal, buccal, sublingual, intranasal, and transdermal. For example, injection can be performed by intravenous (iv), subcutaneous (sc), intradermal (id), intraperitoneal (ip) or intramuscular (im) injection. One or more such routes can be used. Parenteral administration can be, for example, by bolus injection or by gradual perfusion over time. Alternatively, or concurrently, administration can be by the oral route.

[0037] The use of the term "treat" or "treatment" herein refers to the administration of NK cells or pharmaceutical compositions to a subject to cure, alleviate, reduce, treat, prevent or ameliorate a disorder, a symptom of a disorder, a disease state secondary to a disorder, or a predisposition to a disorder. The terms "inhibit," "reduce," or "prevent," or any variation of these terms, as used in the claims and / or specification, include any measurable decrease or complete inhibition to achieve the desired result.

[0038] "Cancers" that can be treated by the NK cells or pharmaceutical compositions of the present application include those classified by site, such as cancers of the oral cavity and pharynx (lips, tongue, salivary glands, floor of the mouth, gums and other parts of the mouth, nasopharynx, tonsils, oropharynx, hypopharynx, other parts of the mouth / pharynx); cancers of the digestive system (esophagus; stomach; small intestine; colon and rectum; anus, anal canal and anorectum; liver; intrahepatic bile duct; gallbladder; other bile ducts; pancreas; retroperitoneal space; peritoneum, omentum and mesentery; other parts of the digestive tract); cancers of the respiratory system (nasal cavity, middle ear and paranasal sinuses; larynx; lungs and bronchi; pleura; trachea, mediastinum and other respiratory tract); mesothelioma; cancers of soft tissues, including bone and joints; and heart; skin cancers, such as melanoma and other non-epithelial skin cancers; Kaposi's sarcoma and breast cancer; cancer of the female reproductive system (cervix; uterus; ovaries; vagina; vulva; and other female reproductive organs); cancer of the male reproductive system (prostate; testes; penis; and other male reproductive organs); cancer of the urinary system (bladder; kidneys and renal pelvis; ureters; and other urinary organs); cancer of the eye and orbit; cancer of the brain and nervous system (brain; and other nervous systems); cancer of the endocrine system (thyroid and other endocrine including thymus); lymphoma (Hodgkin's disease and non-Hodgkin's lymphoma), multiple myeloma, and leukemia (lymphocytic leukemia; myeloid leukemia; monocytic leukemia; and other leukemias).

[0039] Other cancers classified by histological type that may be suitable targets for the therapeutic compositions of the present application include, but are not limited to, malignant neoplasms; carcinoma not otherwise specified (NOS); undifferentiated carcinoma, NOS; giant and spindle cell carcinoma; small cell carcinoma, NOS; papillary carcinoma, NOS; squamous cell carcinoma, NOS; lymphoepithelial carcinoma; basal cell carcinoma, NOS; calcifying epithelioma; transitional cell carcinoma, NOS; papillary transitional cell carcinoma; adenocarcinoma, NOS; malignant gastrinoma; cholangiocarcinoma; hepatocellular carcinoma, NOS; combined hepatocellular carcinoma and cholangiocarcinoma; trabecular adenocarcinoma; adenoid cystic carcinoma; adenocarcinoma in adenomatous polyps; adenocarcinoma, familial polyposis coli ;Solid carcinoma, NOS;Malignant carcinoid tumor;Bronchioloalveolar adenocarcinoma;Papillary adenocarcinoma, NOS;Chromophobe carcinoma;Osinophilic carcinoma;Osinophilic adenocarcinoma;Basophilic carcinoma;Clear cell adenocarcinoma, NOS;Granular cell carcinoma;Follicular adenocarcinoma, NOS;Papillary and follicular adenocarcinoma;Non-encapsulated sclerosing carcinoma;Adrenal cortical carcinoma;Intrauterine carcinoma;Skin appendage carcinoma;Apocrine adenocarcinoma;Sebaceous adenocarcinoma;Ear wax adenocarcinoma;Mucous epidermoid carcinoma;Cystadenocarcinoma, NOS;Papillary cystadenocarcinoma, NOS;Papillary serous cystadenocarcinoma;Mucous cystadenocarcinoma, NOS;Mucous adenocarcinoma;Signet ring cell carcinoma;Invasive ductal carcinoma;Medullary carcinoma, NOS;Lobular carcinoma;Inflammatory carcinoma;Pe Jett's disease;Acinic cell carcinoma;Adenosquamous carcinoma;Adenocarcinoma w / squamous dysplasia;Malignant thymoma;Malignant ovarian stromal tumor;Malignant theca cell tumor;Malignant granulosa cell tumor;Malignant cytoma;Sertoli cell carcinoma;Malignant Leydig cell tumor;Malignant lipocytoma;Malignant paraganglioma;Malignant extramammary paraganglioma;Pheochromocytoma;Glomus angiosarcoma;Malignant melanoma, NOS;Amelanotic melanoma;Superficial diffuse melanoma;Malignant melanoma in giant pigmented nevus;Epithelioid cell melanoma;Malignant blue nevus;Sarcoma, NOS;Fibrosarcoma, NOS;Malignant fibrous histiocytoma;Myxosarcoma;Fat Sarcoma, NOS;Leiomyosarcoma, NOS;Rhabdomyosarcoma, NOS;Embryonal rhabdomyosarcoma;Alveolar rhabdomyosarcoma;Stromatous sarcoma, NOS;Malignant mixed tumor, NOS;Mullerian mixed tumor;Nephroblastoma;Hepatoblastoma;Carcinosarcoma, NOS;Malignant mesenchymal cell tumor;Malignant Brenner tumor;Malignant pseudofibroid tumor;Synovial sarcoma, NOS;Malignant mesothelioma;Dysgerminoma;Embryonal carcinoma, NOS;Malignant teratoma, NOS;Malignant ovarian goiter;Choriocarcinoma;Malignant mesonephroma;Angiosarcoma;Malignant hemangioendothelioma;Kaposi's sarcoma;Malignant hemangiopericytoma;Lymphangiosarcoma;Osteosarcoma, NOS;Juxtacortical osteosarcoma;Chondrosarcoma, NOS;Malignant chondroblastoma;Mesenchymal chondrosarcoma;Giant cell tumor of bone;Ewing's sarcoma;Malignant odontogenic tumor;Ameloblastic odontoma;Malignant ameloblastoma;Ameloblastic fibrosarcoma;Malignant pinealoma;Chordoma;Malignant glioma;Ependymoma, NOS;Astrocytoma, NOS;Protoplasmic astrocytoma;Fibrous astrocytoma;Astroblastoma;Glioblastoma, NOS;Oligodendroglioma, NOS;Oligodendroglioma;Primitive neuroectodermal;Cerebellar sarcoma, NOS;Ganglioblastoma;Neuroblastoma, NOS;Retinoblastoma, NOS;Olfactory neurogenic tumor;Malignant meningioma;Neurofibrosarcoma;Malignant schwannoma;Malignant granular cell tumor;Malignant malignant lymphoma, NOS;Hodgkin's disease, NOS;Hodgkin's;lateral granuloma, NOS;malignant lymphoma, small lymphocytic;malignant disseminated lymphoma, large cell;malignant lymphoma, follicular, NOS;mycosis fungoides;other specified non-Hodgkin's lymphoma;malignant histiocytosis;multiple myeloma;mast cell sarcoma;immunoproliferative small intestinal disease;leukemia, NOS;lymphocytic leukemia, NOS;plasma cell leukemia;erythroleukemia;lymphoblastic cell leukemia;myeloid leukemia, NOS;basophilic leukemia;eosinophilic leukemia;monocytic leukemia, NOS;mastocytic cell leukemia;megakaryoblastic leukemia;myeloid sarcoma;and hairy cell leukemia.

[0040] "Effective amount," as used herein, refers to a dose of the engineered NK cells or pharmaceutical composition that is sufficient to reduce the symptoms and signs of cancer, including, but not limited to, weight loss, pain, or tumor mass that is detectable clinically as a palpable mass or radiologically through various imaging means.

[0041] In certain embodiments, it is desired to limit, reduce or ameliorate the size of a tumor or cancer lesion. The route of administration will naturally vary depending on the location and nature of the target lesion or site, and includes, for example, localized, parenteral, intravenous, intramuscular and / or systemic administration and formulations. For target areas, direct injection into an organ or tissue, and injection into the vascular system or blood vessels therefrom and therein, are specifically contemplated. Local, regional or systemic administration may also be appropriate.

[0042] In this disclosure, the expression levels or surface density of cell surface antigens using FACS / flow cytometry analysis are defined in Table 1. The interpretation of the various expression levels in Table 1 are examples for defining the expression levels of cell surface antigens. It should be noted that flow cytometry signal level intensity varies depending on the following factors: flow cytometry, software and different batches of antibodies used.

[0043] [Table 1]

[0044] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. All publications, patent applications, patents, and other references cited herein are fully incorporated by reference for the teachings relevant to the sentence and / or paragraph in which the reference is presented.

[0045] Engineered NK cells Naturally occurring or conventional NK cells express CD16 + CD56 + In one embodiment, naturally occurring or conventional NK cells have a phenotype of CD3 - CD14 - CD19 - CD56 + CD16 + NKG2D + CD11c dim Has a phenotype.

[0046] In one embodiment, the present application relates to CD3 - CD19 - CD14 - CD56 hi CD16 dim NKG2D + CD11c + CD86 + HLA-DR + CD83- The present application provides modified NK cells that contain a cell phenotype that is not naturally occurring. The modified NK cells contain one or more fully activated dendritic (DC) cell surface antigens (e.g., HLA-DR and CD86) and have both NK cell function and DC cell function and enhanced anti-cancer activity.

[0047] [Table 2]

[0048] Specifically, the present application relates to CD16 dim CD56 hi The present invention provides a modified NK cell comprising a CD16 phenotype, dim CD56 hi NK cells express the CD83 cell surface antigen (CD16 dim CD56 hi CD83 - phenotype).

[0049] WO2015 / 100495 is a CD3 - CD19 - CD14 - CD56 + CD16 + NKG2D + CD11c - CD86 + HLA-DR + CD83 + The present application discloses modified NK cells including the phenotype. Compared with the modified NK cells of WO2015 / 100495, the modified NK cells of the present application have the general DC cell surface antigen CD11c, but lack the fully activated DC cell surface antigen CD83. Nevertheless, the modified NK cells of the present application have 66% higher potent DC cell functions, such as antigen presentation, than the modified NK cells of WO2015 / 100495.

[0050] In one embodiment, the expression level or surface density of cell surface antigens is quantified by exposing the engineered NK cells to a fluorochrome-tagged specific anti-human monoclonal antibody (e.g., CD86-PE (Beckman Coulter; Cat. No.: IM2729U) or anti-human CD83-PE-Cy5 (BioLegend; Cat. No.: 305310) followed by sorting the engineered NK cells using a flow cytometer (e.g., commercially available from Navios, Beckman Coulter, USA).

[0051] The engineered NK cells can be generated from an individual and can be, for example, autologous or allogeneic.

[0052] Pharmaceutical Compositions In one embodiment, the present application provides a pharmaceutical composition comprising the modified NK cells described herein and a pharma- ceutically acceptable carrier or excipient.

[0053] The present application also provides a method of inhibiting cancer cells by administering to a subject in need thereof the modified NK cells or the pharmaceutical composition in an amount effective to inhibit the cancer cells. Without being bound by any particular theory, it is believed that the modified NK cells inhibit cancer cells by one or more of the following NK cell / DC cell functions: enhancing cytotoxicity, stimulating cancer-specific T lymphocyte proliferation or IFN-γ secretion.

[0054] Routes of administration of the pharmaceutical composition or modified NK cells include, but are not limited to, intravenous, intramuscular, subcutaneous, oral, topical, intradermal, transdermal, subcutaneous, parenteral, rectal, spinal or epidermal administration. In one embodiment, the modified NK cells are administered by intravenous injection or infusion.

[0055] The pharmaceutical compositions of the present application can be prepared as injectables, either as liquid solutions or suspensions, or as solid forms suitable for solution or suspension in liquid vehicles prior to injection.

[0056] The modified NK cells are formulated into a pharmaceutical composition for delivery to a mammalian subject. The pharmaceutical composition is administered alone and / or mixed with a pharma- ceutically acceptable vehicle, excipient, or carrier. Suitable vehicles are, for example, saline (e.g., saline), dextrose, glycerol, platelet-rich plasma (PRP), and the like, and combinations thereof. In addition, the vehicle may contain minor amounts of auxiliary substances, such as wetting or emulsifying agents, pH buffering agents, or adjuvants. The pharma- ceutically acceptable carrier may contain a physiologically acceptable compound that acts, for example, to stabilize or increase or decrease the absorption or clearance rate of the pharmaceutical composition of the present application. The physiologically acceptable compound may include, for example, carbohydrates, such as glucose, sucrose, or dextran, antioxidants, such as ascorbic acid or glutathione, chelating agents, small proteins, surfactants, liposome carriers or excipients, or other stabilizers and / or buffers. Other physiologically acceptable compounds include wetting agents, emulsifying agents, dispersing agents, or preservatives. See, e.g., the 21st Edition of Remington's Pharmaceutical Sciences, Mack Publishing Company, Easton, Pa. ("Remington's"). The pharmaceutical compositions of the present application can also include auxiliary substances, such as pharmacological agents, cytokines, or other biological response modifiers.

[0057] Actual methods for preparing such dosage forms will be known, or apparent, to those skilled in the art (see, e.g., Remington's Pharmaceutical Sciences, Mack Publishing Company, Easton, Pennsylvania, 21st Edition).

[0058] The modified NK cells or pharmaceutical compositions can be administered in a single dose treatment regimen or in a scheduled and multiple dose treatment regimen over a period of time, appropriate to the age, weight and condition of the subject, the particular composition used, and the route of administration, regardless of whether the modified NK cells or pharmaceutical compositions are used for prophylactic or therapeutic purposes. For example, in one embodiment, the modified NK cells or pharmaceutical compositions according to the present application are administered once a month, twice a month, three times a month, every other week (qow), once a week (qw), twice a week (biw), three times a week (tiw), four times a week (qiw), five times a week, six times a week, every other day (qod), daily (qd), twice a day (bid), three times a day (tid), or four times a day (qid).

[0059] The duration of treatment of modified NK cells or pharmaceutical compositions according to the present application, e.g., the period over which the modified NK cells or pharmaceutical compositions are administered, can vary depending on any of a variety of factors, e.g., subject response, etc. For example, the modified NK cells or pharmaceutical compositions can be administered for a period ranging from about one or a few seconds to one or a few minutes, from one or a few hours to one day to about one week, from about two weeks to about four weeks, from about one month to about two months, from about two months to about four months, from about four months to about six months, from about six months to about eight months, from about eight months to about one year, from about one year to about two years, or from about two years to about four years, or longer.

[0060] For ease of administration and uniformity of dosage, it is advantageous to formulate the parenteral pharmaceutical composition or modified NK cells in dosage unit form. As used herein, dosage unit form refers to physically discrete units suitable as single dosages for the subjects to be treated, each unit containing a predetermined quantity of modified NK cells calculated to produce the desired therapeutic effect in association with the required pharmaceutical carrier.

[0061] Data obtained from cell culture assays and animal studies can be used in formulating a range of dosages for use in humans. In one embodiment, such NK cell dosages are administered with minimal toxicity and with minimal ED 50The therapeutically effective dose is within a circulating concentration range including the IC50 / IC60 concentration. Dosages can vary within this range depending on the dosage form employed and the route of administration utilized. In another embodiment, the therapeutically effective dose can be estimated initially from cell culture assays. The IC50 / IC60 concentration is determined in cell culture. 50 Doses can be formulated in animal models to achieve a circulating plasma concentration range that includes (i.e., the concentration of modified NK cells that achieves half-maximal inhibition of symptoms). Sonderstrup, Springer, Sem. Immunopathol. 25: 35-45, 2003. Nikula et al., Inhal. Toxicol. 4(12j: 123-53, 2000.

[0062] Pharmaceutical compositions are formulated to contain an effective amount of the modified NK cells, which amount depends on the animal being treated and the condition being treated. The specific dose level for any particular subject will depend on a variety of factors, including the activity of the specific modified NK cells, age, body weight, general health, sex, diet, time of administration, route of administration and excretion rate, drug combination, and the severity of the particular disease being treated. An exemplary non-limiting range for a therapeutically or prophylactically effective amount of the modified NK cells of the present application is at least about 1×10 per dose. 3 from a cell count of approximately 1 × 10 per dose 9 The cell count is 1 x 10 per dose. 4 , 1×10 5 , 1×10 6 , 1×10 7 , 1×10 8 Or 1×10 9 Other dosages are possible, including but not limited to cell numbers of 0.1 to 100 μg / ml.

[0063] The modified NK cells or pharmaceutical compositions can be administered alone or in combination with another therapeutic agent, such as chemotherapy, radiation therapy or targeted therapy or a cancer vaccine.

[0064] Methods for identifying and culturing modified NK cells In one embodiment, a method for identifying initial NK cells and culturing modified NK cells is illustrated in Figure 7. Briefly, the method comprises the steps of: obtaining a bodily fluid containing mononuclear cells; contacting the mononuclear cells with a first medium comprising IL-15, IL-12 and IL-18 to obtain a cultured cell population; and detecting the cell marker CD3 - CD19 - CD14 - CD56 hi CD16 dim NKG2D + CD11c + CD86 + HLA-DR + CD83 - The method includes at least a step of isolating NK cells having both NK cell function and dendritic cell function from the cultured cell population having the above function.

[0065] Preferably, the mononuclear cells used herein for the selection or generation of modified NK cells are purified CD3 - CD14 - CD19 - It is a mononuclear cell.

[0066] In one embodiment, CD3 - CD14 - CD19 - The identification / depletion steps to obtain a highly purified fraction of mononuclear cells are as follows: (a) collecting a sample from a subject; the sample includes, but is not limited to, any bodily fluid that contains one or more mononuclear cells, such as a peripheral blood, umbilical cord blood, or bone marrow sample. (b) Separating mononuclear cells from other types of blood cells in the sample of step (a) through centrifugation (Ficoll-Paque™ PREMIUM, GE Healthcare USA). Other methods of isolating mononuclear cells will be known or become apparent to those skilled in the art. (c) CD3 cell surface antigen (e.g., monocytic cell phenotype CD3 + CD56 - and CD3 + CD56+ ), removing one or more mononuclear cells comprising the CD14 cell surface antigen or the CD19 cell surface antigen from the other mononuclear cells of step (b), e.g. by MACS sorting (Mitenyi Biotec, Germany). (d) Culturing the CD3 - CD14 - CD19 - Harvesting the mononuclear cells.

[0067] One embodiment of the present disclosure provides a method of identifying progenitor cells from a sample, the method comprising depleting one or more of the following cell surface antigens from mononuclear cells in the sample, wherein the progenitor cells are substantially free of one or more of the cell surface antigens selected from CD3, CD14 and CD19.

[0068] In one embodiment, the CD3-comprising mononuclear cells of step (b) are deleted in the sample. In another embodiment, the CD14-comprising mononuclear cells of step (b) are deleted in the sample. In yet another embodiment, the CD19-comprising mononuclear cells of step (b) are deleted in the sample. In yet another embodiment, the CD14-comprising mononuclear cells or cells and the CD3-comprising mononuclear cells of step (b) are deleted in the sample. In yet another embodiment, the CD14-comprising mononuclear cells or cells and the CD19-comprising mononuclear cells of step (b) are deleted in the sample. In yet another embodiment, the CD19-comprising mononuclear cells or cells and the CD3-comprising mononuclear cells of step (b) are deleted in the sample. In yet another embodiment, the CD19-comprising mononuclear cells or cells, the CD3-comprising mononuclear cells and the CD14-comprising mononuclear cells of step (b) are deleted in the sample.

[0069] In one embodiment, substantially all of the mononuclear cells that contain CD3 are depleted in the sample. In another embodiment, substantially all of the mononuclear cells that contain CD14 are depleted in the sample. In yet another embodiment, substantially all of the mononuclear cells that contain CD19 are depleted in the sample.

[0070] In one embodiment, the composition for culturing cells further comprises IFN-γ. In an alternative embodiment, the composition for culturing cells does not comprise IFN-γ. In this embodiment, IFN-γ had little effect on the generation of modified NK cells disclosed herein.

[0071] The incubation time of the composition comprising IL-12 may be critical for the function of the modified NK cells. In one embodiment, to generate modified NK cells, mononuclear cells can be cultured with IL-12, e.g., human IL-12, for 1 to 12 days, preferably 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 or 12 days. In one embodiment, mononuclear cells cultured with IL-12 for 3, 6, 9 or 12 days generate modified NK cells with similar cell yield and phenotypic pattern. In another embodiment, prolonged exposure to IL-12, e.g., 12 days, enhanced the cytotoxicity and antigen presenting cell activity of the cultured cells compared to cells with a shorter time of IL-12 exposure, e.g., 9 days.

[0072] In one embodiment, the composition for culturing cells further comprises IL-18. In one embodiment, the effective concentration of IL-18 is about 1 to 300 ng / mL, e.g., 50, 100, 150, 200, 250, 300 ng / mL. In another embodiment, the effective concentration of IL-18 is about 10 to about 250 ng / mL, or any value or range of values ​​therebetween in 10 ng / mL increments (e.g., about 30 ng / mL, about 220 ng / mL, etc.).

[0073] In another embodiment, IL-18 affected the phenotypic pattern and functional activity of the modified NK cells. Long-term IL-18 exposure can have opposite effects on cell size, phenotype and functional activity. In one embodiment, mononuclear cells can be cultured with IL-18, e.g., human IL-18, for 1-12 days, preferably 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 or 12 days, to generate modified NK cells. In one embodiment, mononuclear cells cultured with IL-18 for 3, 6, 9 or 12 days generate modified NK cells with various phenotypes. In another embodiment, sufficient exposure to IL-18, e.g., 6 days, can have opposite effects on cell size, phenotype and function of modified NK cells compared to cells with a shorter time of IL-18 exposure, e.g., 6 days.

[0074] In one embodiment, CD3 - CD14 - CD19 - The highly purified fraction of mononuclear cells is contacted with a culture composition comprising IL-18, IL-15 and / or IL-12. In another embodiment, the CD3 - CD14 - CD19 - The mononuclear cells are mixed with a composition consisting essentially of hematopoietic cell medium (e.g., X-vivo 20), IL-18, IL-15, IL-12, and serum proteins (e.g., human platelet lysate). - CD14 - CD19 - The mononuclear cells are mixed with a composition consisting essentially of X-vivo 20, IL-18, IL-15, IL-12 and human platelet lysate.

[0075] In another embodiment, the composition further comprises a hematopoietic cell medium. Non-limiting examples of hematopoietic cell medium include X-vivo 10, X-vivo 15, X-vivo 20 (commercially available from Lonza, Switzerland) and AIM-V (commercially available from ThermoFisher Scientific, USA).

[0076] In yet another embodiment, the composition further comprises a serum protein, such as human platelet lysate. In this application, a "serum protein" is a protein present in blood or plasma that serves many different functions, including transport and regulation of cellular activity. Non-limiting examples of serum proteins include enzymes, complement components, protease inhibitors, kinin precursors, serum albumin, globulins, and fibrinogen, etc.

[0077] Non-limiting examples of compositions for culturing cells include: (a) hematopoietic cell medium + IL-15 + IL-18; (b) hematopoietic cell medium + IL-12 + IL-18; (c) hematopoietic cell medium + IL-15 + IL-12 + IL-18; (d) X-vivo 20 + IL-15 + IL-18; (e) X-vivo 20 + IL-12 + IL-18; (f) X-vivo 20 + IL-15 + IL-12 + IL-18; (g) AIM-V + IL-15 + IL-18; (h) AIM-V + IL-12 + IL-18; (i) AIM-V + IL-15 + IL-12 + IL-18; (j) hematopoietic cell medium + IL-15 + IL-18 + serum proteins; (k) hematopoietic cell medium + IL-12 + IL-18 + serum proteins; (l) hematopoietic cell medium + IL-15 + IL-12 + IL-18 + serum proteins; (m) X-vivo 20 + IL-15 + IL-18 + serum proteins; (n) X-vivo 20 + IL-12 + IL-18 + serum proteins; (o) X-vivo 20 + IL-15 + IL-12 + IL-18 + serum proteins; (p) AIM-V + IL-15 + IL-18 + serum proteins; (q) AIM-V + IL-12 + IL-18 + serum proteins; and (r) AIM-V + IL-15 + IL-12 + IL-18 + serum proteins.

[0078] In one embodiment, the composition is used to culture modified NK cells at 37° C. in the presence of 5% CO2.

[0079] Compositions according to some embodiments of the present application enhance the proliferation of modified NK cells. In one embodiment, the composition substantially enhances the expression of CD11c cell surface antigen on modified NK cells. In another embodiment, the composition enhances the expression of fully activated DC cell markers, e.g., HLA-DR and CD86 cell surface antigens, but not the expression of CD83 cell surface antigen, on modified NK cells. The proliferation rate of modified NK cells is monitored by CD3 expression through FACS and viable counts. - CD14 - CD19 - The purity of the cells was determined. Other assays for cell proliferation are known in the art, such as clonogenic assays, metabolic assays, and direct proliferation assays.

[0080] CD3 - CD14 - CD19 - Exemplary non-limiting ranges of contact times of the mononuclear cells and the composition are from about 1 minute to about 1 hour, from about 1 hour to about 24 hours, from about 1 day to about 3 days, from about 1 day to about 6 days, from about 1 day to about 9 days, from about 1 day to about 12 days, from about 3 days to about 6 days, from about 3 days to about 9 days, from about 3 days to about 12 days, from about 6 days to about 9 days, from about 6 days to about 12 days, or at least 1 day. In one embodiment, the contact time is about 3 days. In another embodiment, the contact time is about 6 days.

[0081] In one embodiment, CD3 - CD14 - CD19 - The mononuclear cells are contacted with a first composition comprising IL-15, IL-12 and IL-18, followed by contact with a second composition comprising IL-15 and IL-12. In another embodiment, the first and second compositions further comprise hematopoietic cell media, e.g., AIM-V or X-vivo, and / or serum proteins, e.g., human platelet lysate.

[0082] The following examples of specific modes for carrying out the present invention are provided for illustrative purposes only and are not intended to limit the scope of the invention in any way. EXAMPLES

[0083] Example 1 Selection of medium CD3 - CD14 - CD19 - Mononuclear cells were cultured for 15 days in AIM-V medium or X-vivo 20 medium in the presence of 30 ng / mL human recombinant IL-15 (hIL-15), 3 ng / mL human recombinant IL-12 (hIL-12), 60 ng / mL human recombinant IL-2 (hIL-2), 37.5 ng / mL human recombinant IL-18 (hIL-18) and 4% (w / w) human platelet lysate (HPL) as required. Cell numbers in each group were counted using trypan blue exclusion. Additionally, cells were then stained with monoclonal antibodies (mAbs) for NKG2D-PE, CD45-ECD, CD16-PE-Cy7, CD56-APC-Alexa Flour 700, CD3-APC-Alexa Flour 750, CD14-APC-Alexa Flour 750, CD19-APC-Alexa Flour 750 (Beckman Coulter), CD86-Alexa488, CD83-PE-Cy5, CD11c-APC, and HLA-ABC-Pacific Blue (Biolegend). Samples were acquired and analyzed through a Navios flow cytometer, and data analysis was performed through Kaluza software (Beckman Coulter).

[0084] As shown in Figure 1A, the cell number of cells cultured in AIM-V medium supplemented with HPL reached a better cell culture yield than that with X-vivo 20, indicating that AIM-V medium containing HPL had the ability to increase cell yield. Furthermore, culturing cells in AIM-V medium supplemented with HPL results in a phenotype equivalent to that with X-vivo 20 (Figures 1B-1C).

[0085] Example 2 Initial mononuclear cell selection CD3 - CD14- CD19 - (TN1) or CD25 - CD14 - CD19 - (TN2) Mononuclear cells were cultured for 9 days in AIM-V medium in the presence of 30 ng / mL hIL-15, 3 ng / mL hIL-12, 45 ng / mL human recombinant IFN-γ (hIFN-γ) and 4% (w / w) HPL. Cultured cells were counted using trypan blue dye exclusion and stained with mAbs for CD45-ECD, CD3-APC-Alexa Flour 750, CD14-APC-Alexa Flour 750 and CD19-APC-Alexa Flour 750 (Beckman Coulter). Samples were acquired and analyzed through a Navios flow cytometer and data analysis was performed through Kaluza software (Beckman Coulter).

[0086] As shown in FIG. 2A and Table 3, TN1 progenitor cells gave target cells with higher purity and in better yield than did the use of TN2 progenitor cells.

[0087] [Table 3]

[0088] Meanwhile, the cultured cells were stained with mAbs of NKG2D-PE, CD45-ECD, CD16-PE-Cy7, CD56-APC-Alexa Flour 700, CD3-APC-Alexa Flour 750, CD14-APC-Alexa Flour 750, CD19-APC-Alexa Flour 750 (Beckman Coulter), CD86-Alexa488, CD83-PE-Cy5, CD11c-APC and HLA-ABC-Pacific Blue (Biolegend) to analyze their phenotype. Samples were acquired and analyzed through a Navios flow cytometer and data analysis was performed through Kaluza software (Beckman Coulter).

[0089] As shown in Figures 2B and 2C, phenotypic analysis demonstrated similar patterns of cultured cells generated from TN1 and TN2 progenitor cells.

[0090] Thus, cultures generated from TN1 progenitor cells are CD3 - CD14 - CD19 - CD56 hi CD16 dim NKG2D + CD11c + HLA-DR + CD86 + CD83 - As a result, TN1 progenitors (CD3 - CD14 - CD19 - ) are TN2 progenitor cells (CD25 - CD14 - CD19 - ) gave highly pure cultures with superior yields compared to those using

[0091] Example 3 A minor role for IFN-γ WO2015 / 100495 disclosed that IFN-γ is critical for the generation of modified NK cells with NK cell and DC cell functions. However, we unexpectedly found that IFN-γ had little effect on the generation of modified NK cells disclosed herein.

[0092] 1×10 6 / mL CD3 - CD14 - CD19 -Mononuclear cells were cultured for 9 days in the presence of 30 ng / mL hIL-15, 3 ng / mL hIL-12, and with or without 45 ng / mL hIFN-γ. Cultured cells were stained with mAbs for CD45-ECD, CD3-APC-Alexa Flour 750, CD14-APC-Alexa Flour 750, and CD19-APC-Alexa Flour 750 (Beckman Coulter). Samples were acquired and analyzed through a Navios flow cytometer, and data analysis was performed through Kaluza software (Beckman Coulter).

[0093] As shown in Figure 3A and Table 4, cells cultured with or without IFN-γ resulted in virtually the same purity and yield of cultured cells, indicating that the emergence of cultured cells from TN1 progenitor cells was independent of IFN-γ. Furthermore, phenotypic analysis showed similar patterns of cells cultured with or without IFN-γ (Figures 3B and 3C).

[0094] [Table 4]

[0095] As a result, IFN-γ had less of an impact on the appearance of the cultured cells disclosed herein in terms of cell purity, yield and acquisition of NK and DC phenotypes.

[0096] Example 4 Duration of IL-12 treatment CD3 - CD14 - CD19 -Mononuclear cells were cultured with 30 ng / mL hIL-15 for 12 days and in the presence of 3 ng / mL hIL-12 for 9 or 12 days. Cells were subcultured on day 6 and medium was changed every 3 days. Cultured cells were counted using trypan blue dye exclusion. In addition, cultured cells were stained with mAbs for NKG2D-PE, CD45-ECD, CD16-PE-Cy7, CD56-APC-Alexa Flour 700, CD3-APC-Alexa Flour 750, CD14-APC-Alexa Flour 750, CD19-APC-Alexa Flour 750 (Beckman Coulter), CD86-Alexa488, CD83-PE-Cy5, CD11c-APC, and HLA-ABC-Pacific Blue (Biolegend). Samples were acquired and analyzed through a Navios flow cytometer and data analysis was performed through Kaluza software (Beckman Coulter).

[0097] As shown in Figure 4A, chronic exposure to IL-12 for 12 days had less impact on the appearance of cultured cells in terms of cell yield compared to cells with IL-12 exposure for 9 days. Similarly, phenotypic analysis showed similar patterns of cultured cells with IL-12 exposure for 9 or 12 days (Figures 4B and 4C).

[0098] On the other hand, functional assays were also performed to evaluate the cytotoxicity and antigen-presenting activity. The evaluation of the cytotoxicity of the modified NK cells was performed by PanToxilux kit (OncoImmunin). Human chronic myeloid leukemia (CML) cell line, K562, served as target cells and was stained with TFL4 under optimal concentration for 50 min. Co-incubation of TFL4-labeled target cells and cultured cells with caspase substrate at 37°C for 20 min. Cells were harvested and analyzed for TFL-4 through flow cytometry. + substrate +The signal was analyzed. Assessment of the antigen-presenting activity of the cultured cells was performed by mixed lymphocyte reaction (MLR). Responder cells (CD25-PBMC) were enriched and stained with CellTrace™ CFSE cell proliferation kit (Invitrogen). Co-culture of CSFE-labeled CD25-PBMC and modified NK cells at 37°C for 5 days. hIL-2 and hIL-15 were added on days 1 and 3 to reduce the threshold for TCR engagement. Cells were harvested and the CFSE dilution pattern was analyzed via flow cytometry.

[0099] As shown in Figures 4D and 4E, chronic exposure to IL-12 for 12 days enhanced the cytotoxicity and antigen-presenting cell activity of the cultured cells compared to cells with IL-12 exposure for 9 days.

[0100] As a result, while long-term IL-12 exposure had less of an impact on the appearance of the cultured cells disclosed herein in terms of cell purity, yield, and acquisition of NK and DC phenotypes, the cytotoxicity and antigen-presenting cell activity of the modified NK cells was actually enhanced by long-term IL-12 exposure for 12 days.

[0101] Example 5 The effect of IL-18 on the emergence of engineered NK cells CD3 - CD14 - CD19 -Mononuclear cells were cultured for 12 days in the presence of 30 ng / mL hIL-15, 3 ng / mL hIL-12, and 0, 50, 100, or 200 ng / mL hIL-18. Cells were subcultured on day 6 and medium was changed every 3 days. Cultured cells were harvested on days 3, 6, 9, and 12 and counted using trypan blue dye exclusion. Additionally, cultured cells on days 3 and 12 were harvested and stained with mAbs against NKG2D-PE, CD45-ECD, CD16-PE-Cy7, CD56-APC-Alexa Flour 700, CD3-APC-Alexa Flour 750, CD14-APC-Alexa Flour 750, CD19-APC-Alexa Flour 750 (Beckman Coulter), CD86-Alexa488, CD83-PE-Cy5, CD25-PerCP / Cyanine5.5 CD11c-APC, and HLA-ABC-Pacific Blue (Biolegend). Samples were acquired and analyzed through a Navios flow cytometer, and data analysis was performed through Kaluza software (Beckman Coulter).

[0102] As shown in Figure 5A, the addition of IL-18 enhanced the expansion of cultured cells after day 6 until day 12. Unexpectedly, phenotypic analysis showed that the addition of IL-18 upregulated the expression of CD25, HLA-DR, and CD86 on day 3 (Figure 5B). However, the expression of HLA-DR and CD86 was downregulated on day 12 (Figure 5C).

[0103] Similarly, functional assays were also performed to evaluate the cytotoxicity and antigen-presenting activity of cultured cells treated with various doses of IL-18. Figures 5D and 5E show that the addition of IL-18 negatively regulated the cytotoxicity and antigen-presenting cell activity of cultured cells on day 12.

[0104] As a result, the addition of 50 ng / mL IL-18 enhanced the expression of CD25, HLA-DR and CD86 of modified NK cells on day 3, and the cell population expansion of modified NK cells was enhanced up to day 12. However, prolonged IL-18 exposure may have adverse effects on the cell size, phenotype and function of modified NK cells. Therefore, a sufficient exposure period of IL-18 may be important for modified NK cell generation.

[0105] Example 6 Duration of IL-18 treatment CD3 - CD14 - CD19 - Mononuclear cells were cultured for 12 days in the presence of 30 ng / mL hIL-15, 3 ng / mL hIL-12. Kinetic exposure to 50 ng / mL hIL-18 on days 0, 3 and 6. Cells were subcultured on day 6 and medium was changed every 3 days. Cultured cells were harvested on days 3, 6, 9, 12 and 15 and counted using trypan blue dye exclusion.

[0106] Similarly, functional assays were also performed to assess the cytotoxicity and antigen-presenting activity of cultured cells treated with IL-18 for various periods of time.

[0107] As shown in Figure 6A, addition of IL-18 on days 0 and 3 (i.e., 6 days of exposure) promoted the best expansion of cultured cells on day 15 than cells with addition of IL-18 on day 0 (i.e., 3 days of exposure) or on days 0, 3, and 6 (i.e., 9 days of exposure). For cytotoxicity, exposure to IL-18 for 6 days promoted the best cytotoxicity of cultured cells on day 9 than exposure to IL-18 for 3 or 9 days (Figure 6B). For antigen-presenting activity, exposure to IL-18 for 6 days promoted the best antigen-presenting cell activity of cultured cells on day 12 than exposure to IL-18 for 3 or 9 days (Figure 6C).

[0108] In addition, the antigen-presenting activity of cultured cells exposed to IL-18 for 6 days reached a maximum level on day 12 and then declined significantly on day 15. As a result, the optimal culture period for cultured cells in the current cytokine niche was less than 15 days.

[0109] Example 7 Preparation of progenitor cells 40 mL of peripheral blood from healthy volunteers was collected in vacuum tubes containing K2EDTA. The blood samples were mixed with an equal volume of pre-warmed phosphate buffered saline (PBS) (Biological Industries, Israel). A 40 mL aliquot of the diluted peripheral blood was placed in a 50 mL centrifuge tube and 10 mL of pre-warmed Ficoll-Paque™ PREMIUM was added. The tube was centrifuged at 2000 rpm for 30 minutes at room temperature. The mononuclear cells in the interface layer were collected and washed once in PBS. The cell pellet was collected by centrifugation at 2000 rpm for 30 minutes at room temperature. The mononuclear cells in the interface layer were collected by centrifugation at 2000 rpm for 30 minutes at room temperature ... 6 Resuspended to a density of cells / 100 mL MACS buffer.

[0110] CD14 + cells, CD19 + Cells and CD3 + To deplete the cells, mononuclear cells were subjected to immunomagnetic bead separation using a "QuadroMACS separator" (Miltenyi Biotec Bergisch, Gladbach, Germany) according to the manufacturer's instructions. Briefly, mononuclear cells were reacted with biotin-anti-CD14, biotin-anti-CD19 and biotin-anti-CD3, separated by magnetic separation, and CD14 - , CD19 - and CD3 - The cell fraction was purified from unbound cells by washing. The enriched mononuclear cell fraction contained CD14 + cells, CD19 + Cells and CD3 + It was substantially free of cells.

[0111] Example 8 Modified NK cell culture After negative depletion, purified CD14 from Example 7- , CD19 - and CD3 - The NK cell fraction was cultured as follows: (a) 1×l0 on day 0 6 / mL CD14 - CD19 - CD3 - The progenitor cells are contacted with a composition comprising AIM-V medium, HPL (concentration: 4% w / w), IL-15 (concentration: 30 ng / mL), IL-12 (concentration: 3 ng / mL) and IL-18 (concentration: 50 ng / mL). (b) On day 6, half of the progenitor cells from step (a) are harvested and spun down, and the cell pellet is then resuspended in a composition comprising AIM-V medium, HPL, IL-15 and IL-12. (c) Harvest the entire culture of cells from step (b) on day 12.

[0112] If necessary, the composition for culturing cells can be replaced with fresh medium and with the same components on days 0 and 6, and on days 3 and 9, respectively. For example, progenitor cells can be cultured as follows: (a) 1×l0 on day 0 6 / mL CD14 - CD19 - CD3 - The NK cells are contacted with a composition comprising AIM-V medium, HPL (concentration: 4% w / w), IL-15 (concentration: 30 ng / mL), IL-12 (concentration: 3 ng / mL) and IL-18 (concentration: 50 ng / mL). (b) On day 3, the medium is replaced with a composition containing AIM-V medium, HPL, IL-15, IL-12 and IL-18. (c) On day 6, half of the cultured cells from step (b) are harvested and centrifuged, and the cell pellet is then resuspended in a composition containing AIM-V medium, 4% w / w HPL, 30 ng / mL IL-15 and 3 ng / mL IL-12. (d) On day 9, the medium is replaced with a composition containing AIM-V medium, HPL, IL-15 and IL-12. (e) Harvest the entire cultured cells from step (d) on day 12.

[0113] Alternatively, the composition for culturing cells can be replaced with fresh medium and with the same components on days 0 and 6, and on days 3 and 9, respectively. For example, progenitor cells can be cultured as follows: (a) 1×l0 on day 0 6 / mL CD14 - CD19 - CD3 - The NK cells are contacted with a composition comprising AIM-V medium, HPL (concentration: 4% w / w), IL-15 (concentration: 30 ng / mL), IL-12 (concentration: 3 ng / mL) and IL-18 (concentration: 50 ng / mL). (b) On day 3, the medium is replaced with a composition containing AIM-V medium, HPL, IL-15, IL-12 and IL-18. (c) On day 6, half of the cultured cells from step (b) are harvested and centrifuged, and the cell pellet is then resuspended in a composition containing AIM-V medium, 4% w / w HPL, 30 ng / mL IL-15, 3 ng / mL IL-12 and 50 ng / mL IL-18. (d) On day 9, the medium is replaced with a composition containing AIM-V medium, HPL, IL-15, IL-12 and IL-18. (e) Harvest the entire cultured cells from step (d) on day 12.

[0114] The cultured cells in step (e) were analyzed for their phenotypes using a Navios flow cytometer (10 colors / 3 lasers, serial number: AW40325, Beckman Coulter USA), Kazula software version 2.1 (Beckman Coulter USA) and the antibodies listed in Table 5.

[0115] [Table 5A]

[0116] [Table 5B]

[0117] [Table 5C]

[0118] Results: As shown in Figure 8, the resulting modified NK cells were CD3 - CD19 - CD14 - CD56 hi CD16 dim NKG2D + CD11c + CD86 + HLA-DR + CD83 - have NK- and DC-related phenotypes.

[0119] Example 9 Determination of NK cell function "Killing" assay The evaluation of the cytotoxicity of the modified NK cells from Example 8 was performed by PanToxilux kit (OncoImmunin). Human chronic myeloid leukemia (CML) cell line, K562, served as target cells and were stained with TFL4 under optimal concentration for 50 min. Co-incubation of TFL-4 labeled target cells and modified NK cells with caspase substrates at 37° C. for 20 min. Cells were harvested and analyzed for TFL-4 through flow cytometry. + substrate + The signals were analyzed. Caspase positive cells indicate death.

[0120] Results: As shown in Figure 9A, the percentage of caspase-positive target cells (without modified NK cells) was 0.77%, while the percentage of caspase-positive target cells (with modified NK cells) was 40.2%. The results indicate that the modified NK cells have a cytotoxic effect on the leukemia target cells K562.

[0121] Antigen-presenting activity assay Evaluation of the antigen-presenting activity of the modified NK cells from Example 8 was carried out by mixed lymphocyte reaction (MLR). Responder cells (CD25 - PBMCs) were enriched and stained with the CellTrace™ CFSE Cell Proliferation Kit (Invitrogen). - PBMCs and engineered NK cells were co-cultured for 5 days at 37° C. To reduce the threshold for TCR engagement, hIL-2 and hIL-15 were added on days 1 and 3. Cells were then harvested and CFSE dilution patterns were analyzed via flow cytometry.

[0122] Results: As shown in Figure 9B, 4.32% of the responder cells were dividing as determined by flow cytometry. However, 24.71% of the cells were dividing in the presence of the modified NK cells from Example 8. This result indicates that the modified NK cells are CD25 - This shows that PBMC responder cells have antigen-presenting activity.

[0123] Although specific embodiments of the present invention have been described and illustrated, such embodiments should be considered as merely illustrative of the present invention, and not limiting, as interpreted by the appended claims. All publications and patent applications cited herein are fully incorporated by reference herein for all purposes, as if each individual publication or patent application was specifically and individually indicated to be incorporated by reference for all purposes. Although the above invention has been described in some detail by way of illustration and example for clarity of understanding, it will be readily apparent to those skilled in the art that, in light of the teachings of the present invention, certain changes and modifications can be made thereto without departing from the spirit or scope of the appended claims.

[0124] Without further elaboration, it is believed that, based on the above description, one skilled in the art can utilize the present invention to its fullest extent.The following specific examples are therefore to be construed as merely illustrative, and in no way limiting to the remainder of the disclosure.All publications cited herein are incorporated by reference.

Claims

1. CD3 - CD19 - CD14 - CD56 hi CD16 dim NKG2D + CD11c + CD86 + HLA-DR + CD83 - Modified natural killer (NK) cells having:

2. (a) the modified NK cell of claim 1; and (b) A pharma- ceutically acceptable carrier or excipient.

13. A pharmaceutical composition comprising:

3. 3. The pharmaceutical composition of claim 2 for treating cancer cells, comprising an effective amount of the modified NK cells of claim 1.

4. The effective amount is 1×10 3 ~1×10 9 The pharmaceutical composition according to claim 3, wherein the cell count is

5. The pharmaceutical composition of claim 3, wherein the modified NK cells are autologous or allogeneic.

6. The pharmaceutical composition of claim 3, wherein the modified NK cells are derived from peripheral blood, umbilical cord blood, or bone marrow.

7. The pharmaceutical composition of claim 3, further comprising expanding the modified NK cells in vitro.

8. 1. A method for culturing modified NK cells, comprising: contacting the mononuclear cells with a first culture medium containing IL-15, IL-12 and IL-18 for 1 to 6 days to obtain a cultured cell population; After contacting with the first culture medium, contacting the cultured cell population with a second culture medium comprising IL-15 and IL-12 for 1 to 6 days; The cultured cell population was then subjected to a ELISA to detect CD3 - CD19 - CD14 - CD56 hi CD16 dim NKG2D + CD11c + CD86 + HLA-DR + CD83 - and isolating modified NK cells having a phenotype of The method includes:

9. The method of claim 8, wherein the mononuclear cells are derived from peripheral blood, umbilical cord blood or bone marrow.

10. 9. The method of claim 8, wherein the first medium further comprises a hematopoietic cell medium.

11. The method of claim 10, wherein the hematopoietic cell medium comprises AIM-V medium.

12. The method of claim 10, wherein the first culture medium further comprises a serum protein.

13. The method of claim 12, wherein the serum protein comprises human platelet lysate.

14. 9. The method of claim 8, wherein the second medium further comprises a hematopoietic cell medium.

15. The method of claim 14, wherein the hematopoietic cell medium comprises AIM-V medium.

16. 15. The method of claim 14, wherein the second culture medium further comprises a serum protein.

17. 17. The method of claim 16, wherein the serum protein comprises human platelet lysate.

18. Prior to contact with the first medium, - CD14 - CD19 - 9. The method of claim 8, further comprising selecting the mononuclear cells for cells having a phenotype of:

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