Engineered artificial antigen-presenting cells for the expansion of tumor-infiltrating lymphocytes

Modified myeloid lineage cells transduced with costimulatory molecules serve as efficient artificial antigen presenting cells (aAPCs) for expanding tumor-infiltrating lymphocytes (TILs), overcoming existing challenges by achieving consistent and cost-effective TIL expansion without the need for PBMCs.

JP7682143B2Active Publication Date: 2025-05-23IOVANCE BIOTHERAPEUTICS INC
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Patent Information

Application Number
JP2022178127
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2017-04-05
Filing Date
2022-11-07
Publication Date
2025-05-23
Estimated Expiration
2037-10-31

AI Technical Summary

Technical Problem

Current methods for expanding tumor-infiltrating lymphocytes (TILs) using artificial antigen presenting cells (aAPCs) face challenges such as variability in expansion results, high costs, and reliance on human blood samples for PBMCs.

Method used

Modified myeloid lineage cells, including MOLM-13, MOLM-14, EM-3, and EM-2 cells, transduced with costimulatory molecules like CD86, 4-1BBL, and OX40L, are used to create efficient aAPCs that can expand TILs without the need for PBMCs.

Benefits of technology

These modified myeloid cells provide superior and highly efficient expansion of TILs, achieving at least a 50-fold expansion in 7 days, with minimal variability, low cost, and without relying on human blood samples.

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Abstract

Provision of modified artificial antigen-presenting cells for the expansion and culture of tumor-infiltrating lymphocytes. [Solution] In some embodiments, compositions and methods related to isolated artificial antigen-presenting cells (aAPCs) are disclosed, including aAPCs comprising myeloid cells, such as MOLM-14 or EM-3 myeloid cells, transduced with one or more viral vectors, where the myeloid cells endogenously express HLA-A / B / C, ICOS-L, and CD58, and the one or more viral vectors comprise nucleic acids encoding CD86 and 4-1BBL and / or OX40L, transducing the myeloid cells to express CD86 and 4-1BBL and / or OX40L proteins. Also disclosed in some embodiments are methods for expanding tumor-infiltrating lymphocytes (TILs) with aAPCs and methods for treating cancer using TILs after expansion with aAPCs.
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Description

[Technical field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This international application claims the benefit of priority to U.S. Provisional Patent Application No. 62 / 481,831, filed April 5, 2017, U.S. Provisional Patent Application No. 62 / 475,053, filed March 22, 2017, U.S. Provisional Patent Application No. 62 / 438,600, filed December 23, 2016, and U.S. Provisional Patent Application No. 62 / 415,274, filed October 31, 2016, which are incorporated by reference in their entireties herein.

[0002] FIELD OF THEINVENTION

[0002] Modified artificial antigen presenting cells (aAPCs) for the expansion of tumor-infiltrating lymphocytes are disclosed. [Background technology]

[0003] 2. Background of the Invention

[0003] Treatment of large refractory cancers using autologous adoptive transfer of tumor infiltrating lymphocytes (TILs) represents a powerful therapeutic approach for patients with poor prognosis. Gattinoni, et al., Nat. Rev. Immunol. 2006, 6, 383-393. Large quantities of TILs are required for successful immunotherapy, and robust and reliable methods are required for commercialization. This has been challenging to achieve due to technical, logistical, and regulatory issues related to cell expansion. IL-2-based TIL expansion followed by the "rapid expansion protocol" (REP) is becoming the preferred method for TIL expansion due to its speed and efficiency. Dudley, et al., Science 2002, 298, 850-54;Dudley, et al., J. Clin. Oncol. 2005, 23, 2346-57;Dudley, et al., J. Clin. Oncol. 2008, 26, 5233-39;Riddell, et al., Science 1992, 257, 238-41;Dudley, et al., J. Immunother. 2003, 26, 332-42. However, REP can result in a 1,000-fold expansion of TILs in a 14-day period, but it requires a large excess (e.g., 200-fold) of irradiated allogeneic peripheral blood mononuclear cells (PBMCs) as feeder cells, often from multiple donors, as well as anti-CD3 antibodies (OKT-3) and high doses of IL-2. Dudley, et al., J. Immunother. 2003, 26, 332-42. Despite their high performance, PBMCs have a number of drawbacks, including the large numbers of allogeneic PBMCs required, the need to obtain PBMCs by leukapheresis from multiple healthy donors, the resulting donor-to-donor variability in PBMC viability after cryopreservation and variable TIL expansion results, the risk of undetected viral pathogens causing downstream patient infection, and extensive and costly laboratory testing to confirm the sterility and quality of each individual donor cell product (including testing for viral contamination) and test the expansion characteristics.

[0004]

[0004] Unfortunately, aAPCs developed for use in TIL expansion suffer from performance deficiencies, including changes in the phenotypic characteristics of input TILs, and poor expansion performance and / or high variability in expansion results, when compared with PBMCs. Because there are many potential cells that may be suitable for use as aAPCs and identifying suitable candidates is unpredictable, aAPC development for polyclonal TILs has been exclusively focused on the well-established K562 cell line to date. Butler and Hirano, Immunol. Rev. 2014, 257, 191-209. For example, K562 cells modified to express 4-1BBL (CD137L) were tested in pre-REP culture (but not REP culture) and determined to enhance TIL expansion from tumor digests, but still required the use of PBMCs in conjunction with K562 cells to achieve TIL expansion. Friedman, et al., J. Immunother. 2011, 34, 651-661. Other modified K562 cells modified to express CD64, CD86, and 4-1BBL have been tested, but have achieved TIL expansions that are at best comparable to, and most likely less than, PBMCs, and have not shown favorable CD8 + / CD4 +A bias in polyclonal TIL phenotype towards T cell ratios was also suffered. Ye, et al., J. Translat. Med. 2011, 9, 131. Recently, K562 cells modified to express CD86, 4-1BBL (CD137L), high affinity Fc receptor (CD64) and membrane-bound IL-15 have also been shown to expand TILs in comparable numbers (post-REP) compared to PBMC feeders, but with the added complication of membrane-bound IL-15. Forget, et al., J. Immunother. 2014, 37, 448-60. Other systems developed have either lacked important co-stimulatory molecules, leading to unfavorable T cell phenotype bias, or required additional interleukins (such as IL-21). Butler and Hirano, Immunol. Rev. 2014, 257, 191-209. Overall, it has not been shown that K562 modified aAPCs provide consistent TIL expansion with acceptable variability and perform better than PBMCs in other measures, including overall expanded cell numbers. Other aAPCs besides K562 cells have been used successfully in other cell expansion methods, but have not achieved the same performance as PBMCs in the unique polyclonal subsets of cells that make up TILs. Maus, et al., Nat. Biotechnol. 2002, 20, 143-148;Suhoski, et al., Mol. Ther. 2007, 75, 981-988.

[0005]

[0005] The MOLM-14 human leukemia cell line was established from peripheral blood of a patient with relapsed acute monocytic leukemia, and initial phenotypic characterization showed the presence of at least the following markers: CD4, CD9, CD11a, CD13, CD14, CD15, CD32, CD33, CD64, CD65, CD87, CD92, CD93, CD116, CD118, and CD155. Matsuo, et al., Leukemia 1997, 11, 1469-77. Further phenotypic characterization of MOLM-14 found higher levels of HLA-A / B / C, CD64, CD80, ICOS-L, CD58, and lower levels of CD86. To date, MOLM-14 and the closely related MOLM-13 cells have not been reported to be useful aAPCs for cell expansion for tumor immunotherapy applications.

[0006]

[0006] The EM-3 human cell line was established from the bone marrow of a patient with Philadelphia chromosome positive CML. Konopka, et al., Proc. Nat'l Acad. Sci. USA 1985, 82, 1810-4. To date, EM-3 cells and the closely related EM-2 cell line have not been reported to be useful aAPCs for cell expansion for tumor immunotherapy applications. Phenotypic characterization of EM-3 cells shows the presence of at least the following markers: CD13, CD15, and CD33. Summary of the Invention [Problem to be solved by the invention]

[0007]

[0007] The present invention provides the unexpected discovery that modified myeloid lineage cells, including MOLM-13, MOLM-14, EM-3, and EM-2 cells, transduced with additional costimulatory molecules, including CD86 (B7-2), 4-1BBL (CD137L), and OX40L (CD134L), provide superior and highly efficient expansion of large numbers of TILs with the advantage of using aAPCs that can be efficiently produced from a master cell bank, with minimal variability, low cost, and without relying on human blood samples as a source of PBMCs. CD86 and 4-1BBL are costimulatory molecules that provide costimulatory signals for T cell activation. MOLM-14, MOLM-13, EM-3, and / or EM-2 cells transduced with additional costimulatory molecules are useful, for example, in the expansion of TILs used in cancer immunotherapy and other therapies. [Means for solving the problem]

[0008] Summary of the Invention

[0008] In one embodiment, the present invention provides an artificial antigen presenting cell (aAPC) comprising a myeloid cell transduced with one or more vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and the myeloid cell expresses CD86 protein and 4-1BBL protein.

[0009] In certain embodiments, each of the CD86 protein and the 4-1BBL protein is a human protein.

[0010]

[0010] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 protein and 4-1BBL protein, and the aAPC is capable of stimulating and expanding tumor infiltrating lymphocytes (TILs) in contact with the aAPC.

[0011] It will be apparent that in certain embodiments of the invention, the nucleic acid molecule encoding CD86 may be included in a different viral vector than the nucleic acid molecule encoding 4-1BBL, or may be included in the same viral vector.

[0012]

[0012] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and the myeloid cells express CD86 protein and 4-1BBL protein, and the aAPC expands a TIL population at least 50-fold in a 7 day period in cell culture medium comprising IL-2 at a concentration of approximately 3000 IU / mL and OKT-3 antibody at a concentration of approximately 30 ng / mL.

[0013]

[0013] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 protein and 4-1BBL protein, and the aAPC is capable of stimulating and expanding T cells in contact with the aAPC.

[0014]

[0014] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 protein and 4-1BBL protein, and the myeloid cells endogenously express HLA-A / B / C, ICOS-L, and CD58.

[0015]

[0015] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, wherein the myeloid cells express CD86 protein and 4-1BBL protein, and wherein the myeloid cells essentially lack membrane-bound IL-15.

[0016]

[0016] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 protein and 4-1BBL protein, and the myeloid cells are MOLM-14 cells.

[0017]

[0017] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 protein and 4-1BBL protein, and the myeloid cells are MOLM-13 cells.

[0018]

[0018] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 protein and 4-1BBL protein, and the myeloid cells are EM-3 cells.

[0019]

[0019] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 protein and 4-1BBL protein, and the myeloid cells are EM-2 cells.

[0020]

[0020] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 protein and 4-1BBL protein, the CD86 protein comprises an amino acid sequence set forth in SEQ ID NO:8 or an amino acid sequence having one or more conservative amino acid substitutions thereof, and the 4-1BBL protein comprises an amino acid sequence set forth in SEQ ID NO:9 or an amino acid sequence having one or more conservative amino acid substitutions thereof.

[0021]

[0021] In one embodiment, the present invention provides an aAPC comprising myeloid cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 protein and 4-1BBL protein, the nucleic acid molecule encoding CD86 comprises the nucleic acid sequence set forth in SEQ ID NO: 16, and the nucleic acid molecule encoding 4-1BBL comprises the nucleic acid sequence set forth in SEQ ID NO: 19.

[0022]

[0022] In one embodiment, the present invention provides a method for expanding tumor infiltrating lymphocytes (TILs), the method comprising contacting aAPCs comprising myeloid cells transduced with one or more viral vectors with a TIL population, wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, the myeloid cells express CD86 and 4-1BBL proteins, and the TIL population is expanded. In one embodiment, the method is an in vitro or ex vivo method.

[0023] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium Includes.

[0024] In certain embodiments, the aforementioned method is an in vitro or ex vivo method.

[0025] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the cell culture medium further comprises IL-2 at an initial concentration of about 3000 IU / mL and OKT-3 antibody at an initial concentration of about 30 ng / mL.

[0026] In certain embodiments, the aforementioned method is an in vitro or ex vivo method.

[0027] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the APC population expands the TIL population in cell culture medium at least 50-fold over a 7 day period.

[0028] In certain embodiments, the aforementioned method is an in vitro or ex vivo method.

[0029] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the myeloid cells endogenously express HLA-A / B / C, ICOS-L, and CD58.

[0030] In certain embodiments, the aforementioned method is an in vitro or ex vivo method.

[0031] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the myeloid cells are MOLM-14 cells.

[0032] In certain embodiments, the aforementioned method is an in vitro or ex vivo method.

[0033] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the myeloid cells are MOLM-13 cells.

[0034] In certain embodiments, the aforementioned method is an in vitro or ex vivo method.

[0035] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the myeloid cells are EM-3 cells.

[0036] In certain embodiments, the aforementioned method is an in vitro or ex vivo method.

[0037] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the myeloid cells are EM-2 cells.

[0038] In certain embodiments, the aforementioned method is an in vitro or ex vivo method.

[0039] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) Transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen-presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid molecule encoding CD86 and a nucleic acid molecule encoding 4-1BBL, and the myeloid cells express CD86 protein and 4-1BBL protein, and (b) Contacting a TIL population with the aAPC population in cell culture medium comprising, wherein the CD86 protein comprises the amino acid sequence set forth in SEQ ID NO: 8 or an amino acid sequence comprising one or more conservative amino acid substitutions thereof, and the 4-1BBL protein comprises the amino acid sequence set forth in SEQ ID NO: 9 or an amino acid sequence comprising one or more conservative amino acid substitutions thereof.

[0040]

[0040] In certain embodiments, the present invention provides a method for expanding a population of tumor-infiltrating lymphocytes (TILs), the method comprising (a) Transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen-presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the myeloid cells express CD86 protein and 4-1BBL protein, and (b) Contacting a TIL population with the aAPC population in cell culture medium comprising, wherein the nucleic acid encoding CD86 comprises the nucleic acid sequence set forth in SEQ ID NO: 16, and the nucleic acid encoding 4-1BBL comprises the nucleic acid sequence set forth in SEQ ID NO: 19.

[0041]

[0041] In certain embodiments, the present invention provides a method for expanding a population of tumor-infiltrating lymphocytes (TILs), the method comprising (a) Transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen-presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the myeloid cells express CD86 protein and 4-1BBL protein, and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the expansion is carried out using a gas permeable vessel.

[0042] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the ratio of the TIL population to the aAPC population is 1:200 to 1:400.

[0043] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population, the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the ratio of the TIL population to the aAPC population is about 1:300.

[0044]

[0044] In one embodiment, the present invention provides a method for expanding tumor infiltrating lymphocytes (TILs), comprising contacting a TIL population with a myeloid artificial antigen presenting cell (aAPC), wherein the myeloid aAPCs comprise at least two costimulatory ligands that specifically bind to at least two costimulatory molecules on the TILs, wherein the binding of the costimulatory molecules to the costimulatory ligands induces proliferation of the TILs, thereby specifically expanding the TILs, and wherein the at least two costimulatory ligands comprise CD86 and 4-1BBL. In one embodiment, the method is an in vitro or ex vivo method.

[0045] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by rapid expansion of the first population of TILs using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the second population of TILs is at least 50-fold more numerous than the first population of TILs 7 days after initiation of the rapid expansion; and (c) administering to a patient having cancer a therapeutically effective amount of the second population of TILs. wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, and the myeloid aAPCs are transduced to express CD86 and 4-1BBL proteins.

[0046] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, wherein the TIL is a second TIL population, and (a) obtaining a second TIL population by performing rapid expansion of a first TIL population using a myeloid artificial antigen presenting cell (myeloid aAPC) population in a cell culture medium, the TILs being / are obtained from a tumor resected from a patient, and the second TIL population being at least 50-fold more numerous than the first TIL population 7 days after initiation of the rapid expansion. and wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, and the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein.

[0047] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by rapid expansion of the first population of TILs using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the second population of TILs is at least 50-fold more numerous than the first population of TILs 7 days after initiation of the rapid expansion; and (c) administering to a patient having cancer a therapeutically effective amount of the second population of TILs. wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein, the myeloid aAPCs comprise MOLM-14 cells transduced with one or more viral vectors, the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express the CD86 protein and the 4-1BBL protein.

[0048] In one embodiment, the present invention provides a tumor infiltrating cell (TIL) population for use in the treatment of cancer, wherein the TIL population is a second TIL population, and (a) obtaining a second TIL population by performing rapid expansion of a first TIL population using a myeloid artificial antigen presenting cell (myeloid aAPC) population in a cell culture medium, the first TIL population being obtained / derived from a tumor resected from a patient, and the second TIL population being at least 50-fold more numerous than the first TIL population 7 days after initiation of the rapid expansion culture; wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 and 4-1BBL proteins, the myeloid aAPCs comprise MOLM-14 cells transduced with one or more viral vectors, the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express the CD86 and 4-1BBL proteins.

[0049] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by rapid expansion of the first population of TILs using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the second population of TILs is at least 50-fold more numerous than the first population of TILs 7 days after initiation of the rapid expansion; and (c) administering to a patient having cancer a therapeutically effective amount of the second population of TILs. wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein, the myeloid aAPCs comprise EM-3 cells transduced with one or more viral vectors, the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the EM-3 cells express the CD86 protein and the 4-1BBL protein.

[0050] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, the TIL population being a second TIL population, and (a) obtaining a second TIL population by performing rapid expansion of a first TIL population using a myeloid artificial antigen presenting cell (myeloid aAPC) population in a cell culture medium, the first TIL population being obtained / derived from a tumor resected from a patient, and the second TIL population being at least 50-fold more numerous than the first TIL population 7 days after initiation of the rapid expansion; and wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein, the myeloid aAPCs comprise EM-3 cells transduced with one or more viral vectors, the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the EM-3 cells express the CD86 protein and the 4-1BBL protein.

[0051] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by rapid expansion of the first population of TILs using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the second population of TILs is at least 50-fold more numerous than the first population of TILs 7 days after initiation of the rapid expansion; and (c) administering to a patient having cancer a therapeutically effective amount of the second population of TILs. wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein, and the rapid expansion culture is performed for a period of 14 days or less.

[0052] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, wherein the TIL population is a second population, and (a) obtaining a second TIL population by performing rapid expansion of a first TIL population using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in cell culture medium, wherein the second TIL population is at least 50-fold more numerous than the first TIL population 7 days after initiation of the rapid expansion, wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L and CD58, the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein, and the rapid expansion is performed for a period of 14 days or less.

[0053] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by rapid expansion of the first population of TILs using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the second population of TILs is at least 50-fold more numerous than the first population of TILs 7 days after initiation of the rapid expansion; and (c) administering to a patient having cancer a therapeutically effective amount of the second population of TILs. wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein, and the cell culture medium further comprises IL-2 at an initial concentration of about 3000 IU / mL and OKT-3 antibody at an initial concentration of about 30 ng / mL.

[0054] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, the TIL population being a second TIL population, and (a) obtaining a second TIL population by performing rapid expansion culture of a first TIL population using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the first TIL population is obtained / obtained from a tumor resected from a patient, and wherein 7 days after initiation of the rapid expansion culture, the second TIL population is at least 50-fold more numerous than the first TIL population; and wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein, and the cell culture medium further comprises IL-2 at an initial concentration of about 3000 IU / mL and OKT-3 antibody at an initial concentration of about 30 ng / mL.

[0055] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by rapid expansion of the first population of TILs using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the second population of TILs is at least 50-fold more numerous than the first population of TILs 7 days after initiation of the rapid expansion; and (c) administering to a patient having cancer a therapeutically effective amount of the second population of TILs. wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 and 4-1BBL proteins, and expansion is performed using gas-permeable vessels.

[0056] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, the TIL population being a second TIL population, and (a) obtaining a second TIL population by performing rapid expansion of a first TIL population using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in cell culture medium, wherein the first TIL population is obtained / derived from a tumor resected from a patient, and wherein 7 days after initiation of the rapid expansion, the second TIL population is at least 50-fold more numerous than the first TIL population; and wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 and 4-1BBL proteins, and the expansion is performed using a gas-permeable container.

[0057] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by rapid expansion of the first population of TILs using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the second population of TILs is at least 50-fold more numerous than the first population of TILs 7 days after initiation of the rapid expansion; and (c) administering to a patient having cancer a therapeutically effective amount of the second population of TILs. wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein, and the ratio of the second TIL population to the aAPC population is 1:200 to 1:400.

[0058] In one embodiment, the present invention provides a tumor infiltrating cell (TIL) population for use in the treatment of cancer, the TIL population being a second TIL population, and (a) obtaining a second TIL population by rapid expansion of a first TIL population using a myeloid artificial antigen presenting cell (myeloid aAPC) population in a cell culture medium, the first TIL population being / is derived from a tumor resected from a patient, and the second TIL population being at least 50-fold more numerous than the first TIL population 7 days after initiation of the rapid expansion. and wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 and 4-1BBL proteins, and the ratio of the second TIL population to the aAPC population is 1:200 to 1:400. In a specific embodiment, the ratio of the second TIL population to the aAPC population is about 1:300.

[0059] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by rapid expansion of the first population of TILs using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the second population of TILs is at least 50-fold more numerous than the first population of TILs 7 days after initiation of the rapid expansion; and (c) administering to a patient having cancer a therapeutically effective amount of the second population of TILs. wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 protein and 4-1BBL protein, and the ratio of the second TIL population to the aAPC population is about 1:300.

[0060] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by rapid expansion of the first population of TILs using a population of myeloid artificial antigen presenting cells (myeloid aAPCs) in a cell culture medium, wherein the second population of TILs is at least 50-fold more numerous than the first population of TILs 7 days after initiation of the rapid expansion; and (c) administering to a patient having cancer a therapeutically effective amount of the second population of TILs. wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 and 4-1BBL proteins, and the cancer is selected from the group consisting of melanoma, ovarian cancer, cervical cancer, non-small cell lung cancer (NSCLC), lung cancer, bladder cancer, breast cancer, cancer caused by human papillomavirus, head and neck cancer, renal cancer, and renal cell carcinoma.

[0061] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, the TIL population being a second TIL population, and (a) obtaining a second TIL population by rapid expansion of a first TIL population using a myeloid artificial antigen presenting cell (myeloid aAPC) population in a cell culture medium, the first TIL population being / is derived from a tumor resected from a patient, and the second TIL population being at least 50-fold more numerous than the first TIL population 7 days after initiation of the rapid expansion. and wherein the myeloid aAPCs endogenously express HLA-A / B / C, ICOS-L, and CD58, the myeloid aAPCs are transduced to express CD86 and 4-1BBL proteins, and the cancer is selected from the group consisting of melanoma, ovarian cancer, cervical cancer, non-small cell lung cancer (NSCLC), lung cancer, bladder cancer, breast cancer, cancer caused by human papillomavirus, head and neck cancer, renal cancer, and renal cell carcinoma.

[0062] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. Includes.

[0063] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. wherein the myeloid aAPCs comprise MOLM-14 cells transduced with one or more viral vectors, the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express CD86 and 4-1BBL proteins.

[0064] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. wherein the myeloid aAPCs comprise EM-3 cells transduced with one or more viral vectors, the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the EM-3 cells express CD86 protein and 4-1BBL protein.

[0065] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, wherein the TIL population is a third TIL population, and (a) obtaining a second TIL population by initial expansion of a first TIL population in a first cell culture medium, the first TIL population being obtained / derived from a tumor resected from a patient, and the second TIL population being at least 5-fold more numerous than the first TIL population, and the first cell culture medium comprising IL-2; (b) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3. The method is obtained by a method comprising the steps of:

[0066] In some embodiments, the myeloid aAPCs include MOLM-14 cells transduced with one or more viral vectors, where the one or more viral vectors include a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express CD86 and 4-1BBL proteins. In some embodiments, the myeloid cells include MOLM-13 cells transduced with one or more viral vectors, where the one or more viral vectors include a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-13 cells express CD86 and 4-1BBL proteins. In certain embodiments, the myeloid cells include EM-3 cells transduced with one or more viral vectors, where the one or more viral vectors include a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the EM-3 cells express CD86 and 4-1BBL proteins. In a specific embodiment, the myeloid cells include EM-2 cells transduced with one or more viral vectors, where the one or more viral vectors include a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the EM-2 cells express CD86 protein and 4-1BBL protein.

[0067] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; (d) treating the patient with a non-myeloablative lymphodepleting regimen, the non-myeloablative lymphodepleting regimen being 60 mg / m 2 / day for 2 days, followed by a cyclophosphamide step of 25 mg / m 2 administering fludarabine at a dose of 0.1 mg / kg / day for 5 days; (e) administering to a patient having cancer a therapeutically effective amount of the third population of TILs; and (f) treating the patient with a high-dose IL-2 regimen comprising 600,000 or 720,000 IU / kg aldesleukin administered as a 15-minute bolus intravenous infusion every 8 hours to a tolerated dose; wherein the myeloid aAPCs comprise MOLM-14 cells transduced with one or more viral vectors, the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express CD86 protein and 4-1BBL protein.

[0068] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; (d) treating the patient with a non-myeloablative lymphodepleting regimen, the non-myeloablative lymphodepleting regimen being 60 mg / m 2 / day for 2 days, followed by a cyclophosphamide step of 25 mg / m 2 administering fludarabine at a dose of 0.1 mg / kg / day for 5 days; (e) administering to a patient having cancer a therapeutically effective amount of the third population of TILs; and (f) treating the patient with a high-dose IL-2 regimen comprising 600,000 or 720,000 IU / kg aldesleukin administered as a 15-minute bolus intravenous infusion every 8 hours to a tolerated dose; wherein the myeloid aAPCs comprise EM-3 cells transduced with one or more viral vectors, the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the EM-3 cells express CD86 protein and 4-1BBL protein.

[0069] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, wherein the TIL population is a third TIL population, and (a) obtaining a second TIL population by initial expansion of a first TIL population in a first cell culture medium, the first TIL population being obtained / derived from a tumor resected from a patient, and the second TIL population being at least 5-fold more numerous than the first TIL population, and the first cell culture medium comprising IL-2; and (b) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3. and and further wherein the TIL population is for administration to the patient in combination with a non-myeloablative lymphodepletion regimen, the non-myeloablative lymphodepletion regimen being at least 60 mg / m 2 / day for 2 days, followed by cyclophosphamide at a dose of 25 mg / m 2 / day for 5 days, further wherein the TIL population is for administration in combination with a high dose IL-2 regimen comprising 600,000 or 720,000 IU / kg aldesleukin for administration as a 15 minute bolus intravenous infusion every 8 hours to a tolerated dose. In a specific embodiment, the TIL population is for administration prior to the high dose IL-2 regimen and after the non-myeloablative lymphodepletion regimen.

[0070] In certain embodiments, the myeloid aAPCs include MOLM-14 cells transduced with one or more viral vectors, where the one or more viral vectors include a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express CD86 and 4-1BBL proteins. The myeloid aAPCs include MOLM-13 cells transduced with one or more viral vectors, where the one or more viral vectors include a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-13 cells express CD86 and 4-1BBL proteins. In certain embodiments, the myeloid aAPCs include EM-3 cells transduced with one or more viral vectors, where the one or more viral vectors include a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the EM-3 cells express CD86 and 4-1BBL proteins.

[0071]

[0071] In one embodiment, the TIL population is for use in the treatment of a cancer selected from the group consisting of melanoma, ovarian cancer, cervical cancer, non-small cell lung cancer (NSCLC), lung cancer, bladder cancer, breast cancer, cancer caused by human papillomavirus, head and neck cancer, renal cancer, and renal cell carcinoma.

[0072] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; and (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. wherein in the second cell culture medium, IL-2 is present at an initial concentration of about 3000 IU / mL and the OKT-3 antibody is present at an initial concentration of about 30 ng / mL.

[0073] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, wherein the TIL population is a third TIL population, and (a) obtaining a second TIL population by initial expansion of a first TIL population in a first cell culture medium, the first TIL population being obtained / derived from a tumor resected from a patient, and the second TIL population being at least 5-fold more numerous than the first TIL population, and the first cell culture medium comprising IL-2; and (b) obtaining a third TIL population by performing rapid expansion culture of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after the initiation of the rapid expansion culture; and the second cell culture medium comprising IL-2 and OKT-3; wherein IL-2 is present in the second cell culture medium at an initial concentration of about 3000 IU / mL and the OKT-3 antibody is present at an initial concentration of about 30 ng / mL.

[0074] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; and (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. wherein the rapid expansion culture is performed for a period of 14 days or less.

[0075] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, wherein the TIL population is a third TIL population, and (a) obtaining a second TIL population by initial expansion of a first TIL population in a first cell culture medium, the first TIL population being obtained / derived from a tumor resected from a patient, and the second TIL population being at least 5-fold more numerous than the first TIL population, and the first cell culture medium comprising IL-2; and (b) obtaining a third TIL population by performing rapid expansion culture of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion culture; and the second cell culture medium comprises IL-2 and OKT-3; wherein the rapid expansion culture is performed for a period of 14 days or less.

[0076] In an embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; and (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. wherein the initial expansion culture is carried out using a gas-permeable vessel.

[0077] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; and (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. wherein the rapid expansion culture is carried out using a gas permeable vessel.

[0078] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, wherein the TIL population is a third TIL population, and (a) obtaining a second TIL population by initial expansion of a first TIL population in a first cell culture medium, the first TIL population being obtained / derived from a tumor resected from a patient, and the second TIL population being at least 5-fold more numerous than the first TIL population, and the first cell culture medium comprising IL-2; (b) obtaining a third TIL population by performing rapid expansion culture of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion culture; and the second cell culture medium comprises IL-2 and OKT-3; wherein the initial expansion culture and / or the rapid expansion culture are performed using a gas-permeable container.

[0079] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. wherein the ratio of the second TIL population to the aAPC population in the rapid expansion culture is 1:80 to 1:400.

[0080] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. wherein the ratio of the second TIL population to the aAPC population in the rapid expansion culture is about 1:300.

[0081] In one embodiment, the present invention provides a tumor infiltrating lymphocyte (TIL) population for use in the treatment of cancer, wherein the TIL population is a third TIL population, and (a) obtaining a second TIL population by initial expansion of a first TIL population in a first cell culture medium, the first TIL population being obtained / derived from a tumor resected from a patient, and the second TIL population being at least 5-fold more numerous than the first TIL population, and the first cell culture medium comprising IL-2; (b) obtaining a third TIL population by performing rapid expansion culture of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after the initiation of the rapid expansion culture; and the second cell culture medium comprises IL-2 and OKT-3, and wherein the ratio of the second TIL population to the aAPC population in the rapid expansion culture is 1:80 to 1:400.

[0082]

[0082] In one embodiment, the ratio of the second TIL population to the aAPC population in the rapid expansion culture is about 1:300.

[0083] In one embodiment, the present invention provides a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first population of TILs from a tumor resected from a patient; (b) obtaining a second population of TILs by initial expansion of the first population of TILs in a first cell culture medium, the second population of TILs being at least 5-fold more numerous than the first population of TILs, and the first cell culture medium comprising IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a myeloid artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the second TIL population 7 days after initiation of the rapid expansion; and the second cell culture medium comprises IL-2 and OKT-3; (d) administering to a patient having cancer a therapeutically effective amount of the third population of TILs. wherein the cancer is selected from the group consisting of melanoma, ovarian cancer, cervical cancer, non-small cell lung cancer (NSCLC), lung cancer, bladder cancer, breast cancer, cancer caused by human papillomavirus, head and neck cancer, renal cancer, and renal cell carcinoma.

[0084]

[0084] In one embodiment, the present invention provides a kit for specifically inducing proliferation of tumor-infiltrating lymphocytes expressing a known costimulatory molecule, the kit comprising an effective amount of aAPC, wherein the aAPC comprises MOLM-14 cells or EM-3 cells transduced using a lentiviral vector (LV), the LV comprising nucleic acid encoding at least one costimulatory ligand that specifically binds to the known costimulatory molecule, wherein binding of the known costimulatory molecule to the costimulatory ligand stimulates the T cells to expand, and the kit further comprises an applicator and instructions for use of the kit.

[0085] In one embodiment, the present invention provides a method for evaluating the efficacy of tumor infiltrating lymphocytes (TILs), comprising: (a) providing a plurality of murine mastocytoma P815 cells expressing endogenous CD16 Fc receptors, wherein the P815 cells are transduced with enhanced green fluorescent protein (GFP) and firefly luciferase-based lentiviral vectors; (b) co-culturing a plurality of P815 cells and TILs with and without OKT-3, and assessing T cell receptor (TCR) activation (specific killing) or lymphokine-activated killer (LAK, non-specific killing), respectively; (c) incubating for 4 hours; (d) adding luciferin and incubating for 5 minutes; (e) reading the bioluminescence intensity using a luminometer; and (f) calculating percent cytotoxicity and viability; Includes.

[0086] BRIEF DESCRIPTION OF THE DRAWINGS

[0086] The foregoing summary, as well as the following detailed description of the invention, will be better understood when read in conjunction with the appended drawings. [Brief description of the drawings]

[0087] [Figure 1]

[0087] Results of rapid expansion of TILs using irradiated allogeneic PBMC feeder cells. Each TIL line (M1015T and M1016T) (1.3 x 105 cells) was co-cultured with 46 different irradiated feeders (1.3 x 107 cells), IL-2 (3000 IU / mL) and OKT-3 (30 ng / mL) in T25 flasks for 7 days. The fold expansion value of TILs was calculated on day 7. This figure shows the fold expansion figures of two TIL lines in separate stimulation experiments in which 46 different feeder lots were tested, highlighting the variability of expansion results using PBMC feeder cells. [Diagram 2]

[0088] A vector diagram of the pLV430G human 4-1BBL vector is shown. [Diagram 3]

[0089] A diagram of the 4-1BBL PCRP (polymerase chain reaction product) portion of the pLV430G human 4-1BBL vector is shown. [Figure 4]

[0090] A vector diagram of the pLV430G human CD86 vector is shown. [Diagram 5]

[0091] A diagram of the CD86 PCRP portion of the pLV430G human CD86 vector is shown. [Figure 6]

[0092] A vector diagram of the pDONR221 human CD86 donor vector is shown. [Figure 7]

[0093] 1 shows a vector diagram of the pDONR221 human 4-1BBL donor vector. [Figure 8]

[0094] A vector diagram of pLV430G empty vector is shown. [Figure 9]

[0095] A vector diagram of pDONR221 empty vector is shown. [Figure 10]

[0096] FIG. 2 shows a vector diagram of the psPAX2 helper plasmid for producing lentivirus. [Figure 11]

[0097] FIG. 1 shows a vector diagram of the pCIGO-VSV.G helper plasmid for lentivirus production. [Figure 12]

[0098] 1 shows the results of flow cytometry experiments on MOLM-14 cells before ("non-transfected") and after ("transfected") lentiviral transfection, confirming expression of CD137 and CD86 on modified MOLM-14 cells. [Figure 13]

[0099] Figure 1 shows the results of rapid expansion of TILs using irradiated parental unmodified MOLM-14 cells ("Parent MOLM14"), modified MOLM-14 cells (CD86 / 4-1BBL, "Modified MOLM14"), or PBMC feeders ("Feeders") for TIL lot M1032-T2. TILs were co-cultured with PBMC feeders or parental or modified MOLM14 cells at a ratio of 1:100 with the addition of OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL). Cells were counted and split on days 6 and 11. Points represent cell numbers determined on days 0, 6, 11, and 14, respectively. A logarithmic scale is used. [Figure 14]

[0100] The results shown in FIG. 13 are plotted using a linear scale. [Figure 15]

[0101] Results for TIL lot M1033-T6 using a logarithmic scale are shown, with other parameters as provided in FIG. [Figure 16]

[0102] The results shown in FIG. 14 are plotted using a linear scale. [Figure 17]

[0103] Figure 1 shows the results of rapid expansion of TILs using modified MOLM-14 cells expressing CD86 and 4-1BBL ("TILs + modified MOLM14 (CD86 / 41BB) + OKT3") or irradiated PBMC feeders ("TILs + feeders + OKT3"). TILs were co-cultured with PBMC feeders or modified MOLM-14 cells (aMOLM14) at a ratio of 1:100, with the addition of OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL). Cells were counted and split on days 6 and 11. Each point represents the cell number determined on day 14. [Figure 18]

[0104] Shown are the results of an experiment in which TILs (2x104) were cultured in wells of a 24-well G-Rex plate with different ratios (1:10, 1:30, and 1:100, denoted as "10", "30", and "100", respectively) of parental MOLM-14 ("MOLM14") cells, MOLM-14 cells transduced to express CD86 and 4-1BBL ("aMOLM14"), or PBMC feeders ("PBMC+"), each supplemented with OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL). Controls were performed using OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL) alone ("PBMC-"). Triplicates were cultured for each condition. Cultures were fed with fresh medium and IL-2 on days 4 and 7. Viable cells were counted on day 7. The bar graph presented here shows the mean + standard deviation (SD) of the number of viable cells counted on day 11. p values ​​were calculated by Student's "t" test. [Figure 19]

[0105] Shown are results of TILs cultured with different ratios (1:30, 1:100, and 1:300, labeled "30," "100," and "300," respectively) of PBMC feeders ("PBMC"), parental MOLM-14 cells ("MOLM14"), or MOLM-14 cells transduced to express CD86 and 4-1BBL ("aMOLM14"), each supplemented with OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL) in a single 24-well G-Rex culture plate. Viable cells were counted and plotted on day 11. Other conditions as in FIG. 18. [Figure 20]

[0106] Shown are results of TILs cultured with different ratios (1:50, 1:100, and 1:200, labeled "50," "100," and "200," respectively) of PBMC feeders ("PBMC"), parental MOLM-14 cells ("MOLM14"), or MOLM-14 cells transduced to express CD86 and 4-1BBL ("aMOLM14"), each supplemented with OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL) in a single 24-well G-Rex culture plate. Cells were counted on day 14. Other conditions as in FIG. 18. [Figure 21]

[0107] Shown are results of TILs cultured with different ratios (1:100, 1:200, 1:400, and 1:800, labeled "100," "200," "400," and "800," respectively) of PBMC feeders ("PBMC"), parental MOLM-14 cells ("MOLM14"), or MOLM-14 cells transduced to express CD86 and 4-1BBL ("aMOLM14"), each supplemented with OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL) in a single 24-well G-Rex culture plate. Cells were counted on day 14. Other conditions as in FIG. 18. [Figure 22]

[0108] Sunburst visualization showing detailed distribution of live cells, T cell receptor (TCR) α / β, CD4, CD8, CD27, CD28, and CD57 TILs expanded on PBMC feeders. [Figure 23]

[0109] Sunburst visualization showing detailed distribution of live cells, TCRα / β, CD4, CD8, CD27, CD28, and CD57 TILs expanded on aMOLM14 aAPCs. [Figure 24]

[0110] Flow cytometry contour plots showing memory subsets (CD45RA+ / -, CCR7+ / -) gated on live cells, TCRα / β+, CD4+, or CD8+ TILs are depicted. [Diagram 25]

[0111] Phenotypic characterization of T cell subsets gated on CD3+ cells, CD4+ and CD8+ post-REP TILs (expanded with aMOLM14 aAPCs) using the SPADE tree. Color gradients are proportional to mean fluorescence intensity (MFI) of LAG3, TIM3, PD1, and CD137. [Figure 26]

[0112] Phenotypic characterization of T cell subsets gated on CD3+ cells, CD4+ and CD8+ post-REP TILs (expanded with aMOLM14 aAPCs) using SPADE tree. Color gradient proportional to MFI CD69, CD154, KLRG1, and TIGIT. [Figure 27]

[0113] FIG. 1 shows the oxygen consumption rate (OCR) of TILs after expansion on feeders or aMOLM14, measured during a mitochondrial stress test. Each data point represents the mean ± standard error of the mean (SEM) measured in triplicates. [Figure 28]

[0114] Figure 1 shows the extracellular acidification rate (ECAR) of TILs after expansion on feeders or aMOLM14, measured during a mitochondrial stress test. Each data point represents the mean ± SEM of triplicate measurements. [Figure 29]

[0115] A vector diagram of the destination vector pLV4301G is shown. [Diagram 30]

[0116] A vector diagram of donor vector 1, pMK 7c12 anti-mFC scFv CoOp ECORV SacII L1R5 is shown. [Diagram 31]

[0117] A vector diagram of donor vector 2, pMK hCD8a scaffold TN L5 L2, is shown. [Diagram 32]

[0118] A vector diagram of the final vector used for lentivirus production, pLV4301G 7C12 scFv mIgG hCD8 flag, is shown. [Diagram 33]

[0119] A vector diagram of the destination vector pLV4301G is shown. [Diagram 34]

[0120] A vector diagram of donor vector 1, pMK 8B3 Anti-mFC scFv CoOp ECORV SacII L1R5, is shown. [Diagram 35]

[0121] A vector diagram of donor vector 2, pMK hCD8a scaffold TN L5 L2, is shown. [Diagram 36]

[0122] A vector diagram of the final vector used for lentivirus production, pLV4301G 8B3 scFv mIgG hCD8 flag, is shown. [Figure 37]

[0123] 1 shows the results of flow cytometry experiments on EM-3 cells before ("non-transfected") and after ("transfected") lentiviral transfection, confirming the expression of CD137 and CD86 on modified EM-3 cells. [Figure 38]

[0124] The results of an experiment in which TILs were co-cultured with aEM3 (7C12 or 8B3) at a ratio of 1:100, in the presence of OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL) are shown. Cells were counted on days 11 and 14. [Figure 39]

[0125] The results of an experiment in which TILs were co-cultured with aEM3 (7C12 or 8B3) at a ratio of 1:100, in the presence of OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL) are shown. Cells were counted on days 11 and 14. [Diagram 40]

[0126] The results of an experiment in which TILs were co-cultured with aEM3 or PBMC feeders at a 1:100 ratio with the addition of IL-2 (3000 IU / mL) and with or without OKT-3 (30 ng / mL) are shown. Bar graphs show cell numbers determined on day 11. [Diagram 41]

[0127] The results of TIL expansion with EM-3 aAPC at various TIL:aAPC ratios are shown. [Diagram 42]

[0128] Figure 1 shows the results of TIL expansion with EM-3 aAPC. TILs (2x104) were co-cultured with five different PBMC feeder lots or aEM3 (triplicates) at a 1:100 ratio in G-Rex 24-well plates with the addition of IL-2 (3000IU / mL). Viable cells were counted on day 14. Graph shows the mean number of viable cells counted on day 14 with 95% confidence intervals. [Diagram 43]

[0129] Figure 1 shows the results of TIL expansion with EM-3 aAPC and MOLM-14 aAPC. TILs (2x104) were co-cultured with five different PBMC feeder lots or aMOLM14 (triplicates) or aEM3 (also triplicates) at a 1:100 ratio in G-Rex 24-well plates with the addition of IL-2 (3000 IU / mL). Graph shows the mean number of viable cells counted on day 14 with 95% confidence intervals. [Diagram 44]

[0130] Sunburst visualization is shown to reveal detailed distribution of live cells, TCRα / β, CD4+, and CD8+ TILs (TIL batch M1054) expanded on aEM3 aAPC or PBMC feeders. [Diagram 45]

[0131] Sunburst visualization is shown to reveal detailed distribution of live cells, TCRα / β, CD4+, and CD8+ TILs (TIL batch M1055) expanded on aEM3 aAPC or PBMC feeders. [Figure 46]

[0132] Shown are CD4+ and CD8+ SPADE trees of TILs expanded on aEM3 aAPC or PBMC feeders using CD3+ cells. The color gradient is proportional to the MFI of LAG-3, TIM-3, PD-1, and CD137. [Figure 47]

[0133] CD4+ and CD8+ SPADE trees of TILs expanded on aEM3 aAPC or PBMC feeders using CD3+ cells. The color gradient is proportional to the MFI of CD69, CD154, KLRG1, and TIGIT. [Figure 48]

[0134] FIG. 1 shows a summary of spare respiratory capacity measured by the Seahorse XF Mitostress Test. [Figure 49]

[0135] Summary of glycolytic reserve measured by the Seahorse XF mitochondrial stress test. [Figure 50]

[0136] Figure 1 shows mitochondrial staining of live TILs expanded on PBMCs or aEM3 using MitoTracker dye, which stains mitochondria in live cells and whose accumulation is dependent on membrane potential. TILs expanded on PBMCs or aEM3 were stained with L / D Aqua followed by MitoTracker red dye. Data shown are MitoTracker positive (MFI) cells gated on the live population. [Figure 51]

[0137] The results of P815 BRLA in terms of cytotoxic potency and functional activity are shown comparing TILs expanded on PBMC feeders with TILs expanded using aMOLM14 aAPC. [Figure 52]

[0138] P815 BRLA results for cytotoxic potency and functional activity are shown comparing TILs expanded on PBMC feeders with TILs expanded using aEM3 aAPCs. [Figure 53]

[0139] IFN-γ release of two batches of TILs after overnight stimulation ("S") with anti-CD3 / CD28 / 4-1BB coated microbeads compared to unstimulated ("US") TILs, compared to TILs expanded on PBMC feeders and aMOLM14 aAPCs. *p<0.05, **p<0.005, ***p<0.001, ns=not significant. [Figure 54]

[0140] IFN-γ release of three batches of TILs after overnight stimulation ("S") with anti-CD3 / CD28 / 4-1BB coated microbeads compared to unstimulated ("US") TILs, compared to TILs expanded on PBMC feeders and aEM3 aAPCs. *p<0.05, **p<0.005, ***p<0.001, ns=not significant. [Figure 55]

[0141] Granzyme B release of two batches of TILs after overnight stimulation ("S") with anti-CD3 / CD28 / 4-1BB coated microbeads compared to unstimulated ("US") TILs expanded on PBMC feeders and aMOLM14 aAPCs is shown. *p<0.05, **p<0.005, ***p<0.001, ns=not significant. [Figure 56]

[0142] Granzyme B release of three batches of TILs after overnight stimulation ("S") with anti-CD3 / CD28 / 4-1BB coated microbeads compared to unstimulated ("US") TILs, compared to TILs expanded on PBMC feeders and aEM3 aAPCs. *p<0.05, **p<0.005, ***p<0.001, ns=not significant. [Figure 57]

[0143] Figure 1 shows the TIL expansion and processing process. aAPCs of the present invention may be used at both the pre-REP stage (top half of the figure) or the REP stage (bottom half of the figure) and may be added when IL-2 is added to each cell culture. Step 1 refers to the addition of 4 tumor fragments to 10 G-Rex 10 flasks. Step 2 yields approximately 40x106 or more TILs. Step 3 involves splitting into 36 G-Rex 100 flasks for REP. Step 4 harvests the TILs by centrifugation. Step 5 yields a fresh TIL product after a total processing time of approximately 43 days, at which point the TILs can be transfused into patients. [Figure 58]

[0144] The treatment protocol used for aAPC-expanded TILs is shown, with surgery (and tumor resection) first, and lymphodepleting chemotherapy, which refers to non-myeloablative lymphodepletion by chemotherapy as described elsewhere herein. [Figure 59]

[0145] Bioluminescent Redirected Lysis Assay (BRLA) results are shown showing the percentage cytotoxicity of TIL batch M1033T-1 when co-cultured with P815 clone G6 (with and without anti-CD3) at distinct effector:target ratios. [Figure 60]

[0146] ELISA data showing the amount of IFN-γ released for different effector to target cell ratios are shown. [Figure 61]

[0147] LAMP1 (%) expressed by TIL batch M1033T-1 when co-cultured with P815 clone G6 in the presence of anti-CD3 at an effector to target cell ratio of 1:1 is shown for 4 and 24 hour co-cultures. [Figure 62]

[0148] Figure 2 shows the BRLA results for TIL batch M1030. The cytotoxicity by BRLA (measured as LU50 / 1x106 TILs) is 26±16. [Figure 63]

[0149] 4 shows a standard chromium release assay for TIL batch M1030. Cytotoxicity by chromium release assay (measured as LU50 / 1×106 TILs) is 22. [Figure 64]

[0150] BRLA results for TIL batch M1053 are shown, showing lysis units of TIL by BRLA as 70±17. [Figure 65]

[0151] Standard chromium release assay results for TIL batch M1053 are shown, as are the lytic units of TIL by chromium assay, which is 14±5. Comparing the results with Figure 64 shows comparable performance of the BRLA and chromium release assays. [Figure 66]

[0152] A linear relationship between IFN-γ release and the cytotoxic potential of TILs is shown. [Figure 67]

[0153] ELISpot results for IFN-γ are shown. [Figure 68]

[0154] Enzymatic IFN-γ release of TIL batch M1053 is shown. [Figure 69]

[0155] Enzymatic IFN-γ release of TIL batch M1030 is shown. [Figure 70]

[0156] ELISpot data showing Granzyme B release by M1053T and M1030T are shown, confirming the efficacy of TILs as demonstrated by BRLA. [Figure 71]

[0157] The enzymatic granzyme B release of TIL batch M1053 is shown. [Figure 72]

[0158] The enzyme Granzyme B release of TIL batch M1030 is shown. [Figure 73]

[0159] ELISpot data showing TNF-α release by M1053T and M1030T are shown, confirming the efficacy of TILs as expressed by BRLA. [Figure 74]

[0160] Enzymatic TNF-α release of TIL batch M1053 is shown. [Figure 75]

[0161] Enzymatic TNF-α release of TIL batch M1030 is shown. [Figure 76]

[0162] The figures show changes in the cell population of aEM3 cells (C712 (A) and 8B5 (B)) when such cell populations were weaned from FBS to hAB serum medium. [Figure 77]

[0163] 1 shows the changes in cell population during freeze-thaw-recovery cycles in which aEM3 cell populations were suspended in various freezing media. [Figure 78]

[0164] 1 shows the growth of aEM3 cells in gas-permeable cell culture flasks over a time course of 8 days. [Figure 79]

[0165] 1 shows a flow panel analysis to determine the purity of aEM3 cells. [Figure 80]

[0166] 1 shows the results of a flow panel analysis used to determine the purity of aEM3 cells. [Figure 81]

[0167] 1 shows the difference in cytokine expression between aEM3 feeder cells and PBMC feeders stimulated with OKT3. [Figure 82]

[0168] It has been shown that TILs may be advantageously expanded (pre-REP) in serum-free medium (ie, CTS Optmizer), resulting in increased cell numbers when compared to CM1. [Figure 83]

[0169] We show that TILs may be advantageously expanded in serum-free medium (ie, CTS Optmizer) which can result in increased cell numbers when compared to CM1 at day 11 (pre-REP) (Figure 83). [Figure 84]

[0169] We show that TILs may be advantageously expanded in serum-free medium (i.e., CTS Optmizer) and can result in increased cell numbers when compared to CM1 at day 22 (pre- and post-REP) (Figure 84). [Figure 85]

[0170] This shows that aAPC cells (i.e., aEM3 cells) can be grown using serum-free media. Specifically, CTS OpTimizer and Prime-TCDM were found to be effective in growing aEM3 cells when compared to cDMEM (10% hSerum). Data shown were the mean + SD of five separate experiments. p values ​​were calculated by Student's t-test. *P<0.05. [Figure 86]

[0171] 86 shows the results of an experiment demonstrating rapid recovery of aEM3 cells from the TIL-R3 cell line at day 3 after cryopreservation. [Figure 87]

[0171] Figure 87 shows the results of an experiment demonstrating rapid recovery of aEM3 cells from the TIL-R3 cell line at day 3 after cryopreservation. Figure 87 shows the total cell counts for experiment 2. [Figure 88]

[0172] Growth of aEM3 cells from the TIL-R3 cell line after cryopreservation is shown, where cells were plated and grown for 9 days, and cell numbers were determined every 3 days after thawing. [Figure 89]

[0173] Growth of aEM3 cells from the TIL-R3 cell line after cryopreservation was shown, where cells were plated in GREX 10 flasks and grown for 8 days, with cell counts determined every 4 days after thawing. [Figure 90]

[0174] A vector diagram of the pLenti-C-Myc-DDK human OX40L vector is shown. [Figure 91]

[0175] Flow cytometry analysis of TILs expanded in REP with aEM3 cell line and PBMC feeders is shown, demonstrating that TILs cultured with aEM3 promote CD8+ TIL polarization. [Figure 92]

[0176] a The number of viable cells obtained from an experiment in which TILs were expanded in REP using EM3 cell line and PBMC feeders is shown. [Figure 93]

[0177] The number of CD3+ cells obtained from an experiment in which TILs were expanded in REP using aEM3 cell line and PBMC feeders is shown. [Figure 94]

[0178] a The number of CD3 − cells obtained from an experiment in which TILs were expanded in REP using the EM3 cell line and PBMC feeders is shown. [Figure 95]

[0179] 1 shows the results of telomere length analysis using qPCR methods. [Figure 96]

[0180] 1 shows a schematic diagram of an embodiment of an aAPC of the present invention. [Figure 97]

[0181] 1 shows a schematic diagram of an embodiment of an aAPC of the present invention. [Figure 98]

[0182] 1 shows a schematic diagram of an embodiment of an aAPC of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0088] Brief Description of the Sequence Listing

[0183] SEQ ID NO:1 is the amino acid sequence of the heavy chain of muromonab.

[0089]

[0184] SEQ ID NO:2 is the amino acid sequence of the light chain of muromonab.

[0090]

[0185] SEQ ID NO:3 is the amino acid sequence of recombinant human IL-2.

[0091]

[0186] SEQ ID NO:4 is the amino acid sequence of aldesleukin.

[0092]

[0187] SEQ ID NO:5 is the amino acid sequence of recombinant human IL-7.

[0093]

[0188] SEQ ID NO:6 is the amino acid sequence of recombinant human IL-15.

[0094]

[0189] SEQ ID NO:7 is the amino acid sequence of recombinant IL-21.

[0095]

[0190] SEQ ID NO:8 is the amino acid sequence of human CD86.

[0096]

[0191] SEQ ID NO: 9 is the amino acid sequence of human 4-1BBL (CD137L).

[0097]

[0192] SEQ ID NO: 10 is the amino acid sequence of human OX40L (CD134L).

[0098]

[0193] SEQ ID NO:11 is the amino acid sequence of human CD28.

[0099]

[0194] SEQ ID NO:12 is the amino acid sequence of human CTLA-4.

[0100]

[0195] SEQ ID NO: 13 is the amino acid sequence of human 4-1BB (CD137).

[0101]

[0196] SEQ ID NO: 14 is the amino acid sequence of human OX40 (CD134).

[0102]

[0197] SEQ ID NO:15 is the nucleotide sequence of the pLV430G 4-1BBL empty vector.

[0103]

[0198] SEQ ID NO:16 is the nucleotide sequence of the 4-1BBL CoOP portion of the pLV430G human 4-1BBL vector.

[0104]

[0199] SEQ ID NO:17 is the nucleotide sequence of 4-1BBL PCRP.

[0105]

[0200] SEQ ID NO:18 is the nucleotide sequence of the pLV430G hCD86 empty vector.

[0106]

[0201] SEQ ID NO:19 is the nucleotide sequence of the hCD86 CoOP portion of the pLV430G human hCD86 vector.

[0107]

[0202] SEQ ID NO:20 is the nucleotide sequence of the hCD86 CoOP B1 B2 PCRP portion of the pLV430G human hCD86 vector.

[0108]

[0203] SEQ ID NO:21 is the nucleotide sequence of the pDONR221 hCD86 vector.

[0109]

[0204] SEQ ID NO:22 is the nucleotide sequence of the pDONR221 4-1BBL vector.

[0110]

[0205] SEQ ID NO:23 is the nucleotide sequence of the pLV430G vector.

[0111]

[0206] SEQ ID NO:24 is the nucleotide sequence of the pDONR221 vector.

[0112]

[0207] SEQ ID NO:25 is the nucleotide sequence of the psPAX2 helper plasmid for producing lentivirus.

[0113]

[0208] SEQ ID NO:26 is the nucleotide sequence of the pCIGO-VSV.G helper plasmid for producing lentivirus.

[0114]

[0209] SEQ ID NO: 27 is the amino acid sequence of the mFc-7C12 scFv clone.

[0115]

[0210] SEQ ID NO: 28 is the amino acid sequence of the mFc-8B3 scFv clone.

[0116]

[0211] SEQ ID NO:29 is the nucleotide sequence of mFC-7C12 scFv.

[0117]

[0212] SEQ ID NO:30 is the nucleotide sequence of mFC-8B3 scFv.

[0118]

[0213] SEQ ID NO:31 is the nucleotide sequence of destination vector pLV4301G.

[0119]

[0214] SEQ ID NO:32 is the nucleotide sequence of donor vector 1, pMK 7c12 anti-mFC scFv CoOp ECORV SacII L1R5.

[0120]

[0215] SEQ ID NO:33 is the nucleotide sequence of donor vector 2, pMK hCD8a scaffold TN L5 L2.

[0121]

[0216] SEQ ID NO:34 is the nucleotide sequence of the final vector used for lentivirus production, pLV4301G 7C12 scFv mIgG hCD8 flag.

[0122]

[0217] SEQ ID NO:35 is the nucleotide sequence of the destination vector, pLV4301G.

[0123]

[0218] SEQ ID NO:36 is the nucleotide sequence of donor vector 1, pMK 8B3 Anti-mFC scFv CoOp ECORV SacII L1R5.

[0124]

[0219] SEQ ID NO:37 is the nucleotide sequence of donor vector 2, pMK hCD8a scaffold TN L5 L2.

[0125]

[0220] SEQ ID NO:38 is the nucleotide sequence of the final vector used for lentivirus production, pLV4301G 8B3 scFv mIgG hCD8 flag.

[0126]

[0221] SEQ ID NO:39 is the nucleotide sequence of the pLenti-C-Myc-DDK OX40L vector for producing lentivirus.

[0127]

[0222] SEQ ID NO:40 is the nucleotide sequence of the Tel-1b primer used for quantitative polymerase chain reaction measurements of telomere length.

[0128]

[0223] SEQ ID NO:41 is the nucleotide sequence of the Tel-2b primer used for quantitative polymerase chain reaction measurements of telomere length.

[0129]

[0224] SEQ ID NO:42 is the nucleotide sequence of the Tel-1b primer used for quantitative polymerase chain reaction measurements of telomere length.

[0130]

[0225] SEQ ID NO:43 is the nucleotide sequence of the Tel-1b primer used for quantitative polymerase chain reaction measurements of telomere length.

[0131] Detailed Description of the Invention

[0226] 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 patents and publications mentioned herein are incorporated by reference in their entirety.

[0132] definition

[0227] The terms "co-administration," "co-administer," "administered in combination with," "administered in combination with," "concurrently," and "concurrently," as used herein, encompass administration of two or more active pharmaceutical ingredients to a human subject such that both active pharmaceutical ingredients and / or their metabolites are present in the human subject at the same time. Co-administration includes simultaneous administration in separate compositions, administration at different times in separate compositions, or administration in a composition in which two or more active pharmaceutical ingredients are present. Simultaneous administration in separate compositions and administration in a composition in which both agents are present are also encompassed by the methods of the invention.

[0133]

[0228] The term "in vivo" refers to events that take place inside a subject's body.

[0134]

[0229] The term "in vitro" refers to events that take place outside of a subject's body. In vitro assays include cell-based assays, utilizing live or dead cells, and can also include cell-free assays that do not utilize intact cells.

[0135]

[0230] The term "ex vivo" refers to events that involve processing or subjecting cells, tissues and / or organs that have been removed from a subject's body. Suitably, the cells, tissues and / or organs may be returned to the subject's body in a surgical or therapeutic procedure.

[0136]

[0231] The term "antigen" refers to a substance that induces an immune response. In some embodiments, an antigen is a molecule that has the ability to be bound by an antibody or a T cell receptor (TCR) when presented by a major histocompatibility complex (MHC) molecule. The term "antigen" as used herein also encompasses T cell epitopes. An antigen additionally has the ability to be recognized by the immune system. In some embodiments, an antigen has the ability to induce a humoral or cellular immune response that leads to the activation of B and / or T lymphocytes. In some cases, this may require that the antigen contains or be linked to a Th cell epitope. An antigen may also have one or more epitopes (e.g., B- and T-epitopes). In some embodiments, an antigen will preferably react with its corresponding antibody or TCR, typically with high specificity and selectivity, and not with many other antibodies or TCRs that may be induced by other antigens.

[0137]

[0232] The term "effective amount" or "therapeutically effective amount" refers to an amount of a compound or combination of compounds as described herein sufficient to achieve the intended application, including but not limited to disease treatment. The therapeutically effective amount may vary depending on the intended application (in vitro or in vivo), or the human subject and disease condition under treatment (e.g., the subject's weight, age, and sex), the severity of the disease condition, the method of administration, etc., which can be readily determined by one of ordinary skill in the art. The term also applies to a dose that will produce a particular response in the target cells (e.g., reduced platelet adhesion and / or cell migration). The specific dose will vary depending on the particular compound selected, the administration regimen to be followed, whether the compound is administered in combination with other compounds, the timing of administration, the tissue to which it is administered, and the physical delivery system that carries the compound.

[0138]

[0233] A "therapeutic benefit," as that term is used herein, encompasses a therapeutic benefit and / or a prophylactic benefit in a human subject. A prophylactic benefit includes delaying or eliminating the appearance of a disease or condition, delaying or eliminating the onset of symptoms of a disease or condition, slowing, halting, or reversing the progression of a disease or condition, or any combination thereof.

[0139]

[0234] "Pharmaceutically acceptable carrier" or "pharmaceutically acceptable excipient" is intended to include any solvents, dispersion media, coatings, antibacterial and antifungal agents, isotonic and absorption delaying agents, and inert ingredients. The use of such pharmaceutically acceptable carriers or pharmaceutically acceptable excipients for active pharmaceutical ingredients is well known in the art. Except insofar as any conventional pharmaceutically acceptable carrier or pharmaceutically acceptable excipient is incompatible with the active pharmaceutical ingredient, its use in the therapeutic compositions of the present invention is contemplated. Additional active pharmaceutical ingredients, such as other drugs, can also be incorporated into the compositions and methods described.

[0140]

[0235] The term "rapid expansion" refers to an increase in the number of antigen-specific TILs of at least about 3-fold (or 4-fold, 5-fold, 6-fold, 7-fold, 8-fold, or 9-fold) in a one week period, more preferably at least about 10-fold (or 20-fold, 30-fold, 40-fold, 50-fold, 60-fold, 70-fold, 80-fold, or 90-fold) in a one week period, or most preferably at least about 100-fold in a one week period. A number of rapid expansion protocols are described herein.

[0141]

[0236] As used herein, "tumor infiltrating lymphocytes" or "TILs" refers to a population of cells originally acquired as white blood cells that have left the bloodstream of a subject and migrated into a tumor. TILs include, but are not limited to, CD8 + Cytotoxic T cells (lymphocytes), Th1 and Th17 CD4 +These include T cells, natural killer cells, dendritic cells, and M1 macrophages. TILs include both primary and secondary TILs. "Primary TILs" are those obtained from patient tissue samples as outlined herein (sometimes referred to herein as "freshly harvested" or "first TIL population"), and "secondary TILs" are any TIL cell populations that have been expanded or grown as discussed herein, including but not limited to bulk TILs and expanded TILs ("REP TILs" or "post-REP TILs", as appropriate, or "second TIL population" or "third TIL population").

[0142]

[0237] TILs can generally be defined biochemically using cell surface markers or functionally by their ability to infiltrate tumors and achieve therapy. TILs can generally be classified by expression of one or more of the following biomarkers: CD4, CD8, TCRαβ, CD27, CD28, CD56, CCR7, CD45Ra, CD95, PD-1, and CD25. Additionally and alternatively, TILs can be functionally defined by their ability to infiltrate solid tumors upon reintroduction into the patient.

[0143]

[0238] As used herein, "cryopreserved TILs" means that the TILs are treated and stored in the range of about -150°C to -60°C. General cryopreservation methods are also described elsewhere herein, including in the Examples. For clarity, "cryopreserved TILs" are distinguishable from frozen tissue samples that may be used as a source of primary TILs.

[0144]

[0239] As used herein, "thawed cryopreserved TILs" refers to a population of TILs that was previously cryopreserved and then processed to return to room temperature or above, such as, but not limited to, cell culture temperature or a temperature at which the TILs can be administered to a patient.

[0145]

[0240] As used herein, a "cell population" (including TILs) refers to a large number of cells sharing a common trait.

[0146]

[0241] The term "central memory T cells" refers to T cells that are CD45R0+ and CCR7 (CCR7 hi ) and CD62L (CD62 hi ) constitutively expresses the CD4 receptor. The surface phenotype of central memory T cells also includes TCR, CD3, CD127 (IL-7R), and IL-15R. Transcription factors of central memory T cells include BCL-6, BCL-6B, MBD2, and BMI1. Central memory T cells primarily secrete IL-2 and CD40L as effector molecules after TCR triggering. Central memory T cells predominate in the CD4 compartment in the blood and are proportionally enriched in lymph nodes and tonsils in humans.

[0147]

[0242] The term "effector memory T cells" refers to T cells that are CD45R0+ like central memory T cells, but lack constitutive expression of CCR7 (CCR7 lo ), and CD62L expression is heterogeneous or low (CD62L lo ), a subset of human or mammalian T cells. The surface phenotype of central memory T cells also includes TCR, CD3, CD127 (IL-7R), and IL-15R. Transcription factors of central memory T cells include BLIMP1. Effector memory T cells rapidly secrete high levels of inflammatory cytokines, including interferon-γ, IL-4, and IL-5, after antigenic stimulation. Effector memory T cells predominate in the CD8 compartment in the blood, and in humans are proportionally enriched in the lungs, liver, and intestine. CD8+ effector memory T cells have large amounts of perforin.

[0148]

[0243] The terms "sequence identity", "percent identity" and "percent sequence identity" in the context of two or more nucleic acids or polypeptides refer to two or more sequences or subsequences that are the same or have a certain percentage of the same nucleotides or amino acid residues when compared and aligned (introducing gaps as necessary) to maximize correspondence, without considering any conservative amino acid substitutions as part of the sequence identity. Percent identity can be measured using sequence comparison software or algorithms or by visual inspection. A variety of algorithms and software that can be used to achieve alignment of amino acid or nucleotide sequences are known in the art. Suitable programs for determining percent sequence identity include, for example, the BLAST suite of programs available from the U.S. Government's National Center for Biotechnology Information BLAST website. Comparison between two sequences can be performed using either the BLASTN or BLASTP algorithm. BLASTN is used to compare nucleic acid sequences, while BLASTP is used to compare amino acid sequences. ALIGN, ALIGN-2 (Genentech, South San Francisco, California) or MegAlign available from DNASTAR are further publicly available software programs that can be used to align sequences. Those skilled in the art can determine appropriate parameters to maximize alignment with a particular alignment software. In certain embodiments, the default parameters of the alignment software are used.

[0149]

[0244] The term "conservative amino acid substitution" refers to an amino acid sequence modification that does not abolish the binding of an antibody to an antigen or the binding of a protein to its ligand. Conservative amino acid substitutions include the substitution of an amino acid of a class with an amino acid of the same class, where the class is defined by common physicochemical amino acid side chain properties and high substitution frequency in homologous proteins found in nature, e.g., as determined by standard Dayhoff frequency exchange matrices or BLOSUM matrices. Six common amino acid side chain classes have been classified, including class I (Cys); class II (Ser, Thr, Pro, Ala, Gly); class III (Asn, Asp, Gln, Glu); class IV (His, Arg, Lys); class V (Ile, Leu, Val, Met); and class VI (Phe, Tyr, Trp). For example, a substitution of Asp with another class III residue, such as Asn, Gln, or Glu, is a conservative substitution. Thus, a predicted non-essential amino acid residue in the 4-1BBL or CD86 protein is preferably replaced with another amino acid residue of the same class. Methods for identifying conservative amino acid substitutions that do not abolish antigen or ligand binding are well known in the art (see, e.g., Brummell, et al., Biochemistry 1993, 32, 1180-1187; Kobayashi, et al., Protein Eng. 1999, 12, 879-884 (1999); and Burks, et al., Proc. Natl. Acad. Sci. USA 1997, 94, 412-417).

[0150]

[0245] The term "retrovirus" refers to an RNA virus that utilizes reverse transcriptase during its replication cycle, in which the retroviral genomic RNA is converted to double-stranded DNA by reverse transcriptase. The double-stranded DNA form is integrated into the chromosomes of infected cells (the "provirus"). The provirus serves as a template for RNA polymerase II, directing the expression of RNA molecules that code for structural proteins and enzymes required for the production of new viral particles. At each end of the provirus is a structure called the "long terminal repeat" or "LTR." The LTR contains numerous regulatory signals, including transcriptional control elements, polyadenylation signals, and sequences required for replication and integration of the viral genome. The Retroviridae family includes several genera, including Cisternavirus A, Oncovirus A, Oncovirus B, Oncovirus C, Oncovirus D, Lentivirus, Gammaretrovirus, and Spumavirus. Some retroviruses are oncogenic (i.e., tumor-forming), while others are not. Oncoviruses induce sarcomas, leukemias, lymphomas, and breast cancers in susceptible species. Retroviruses infect a wide variety of species and can be transmitted both horizontally and vertically. Retroviruses integrate into the host DNA and thus have the ability to transmit host DNA sequences from cell to cell. Exemplary gammaretroviral vectors include those derived from the amphotropic Moloney murine leukemia virus (MLV-A), which uses a cell surface phosphate transporter receptor for entry and then becomes permanently integrated into proliferating cell chromosomes.The amphotropic MLV vector system is a well-established and commonly used gene delivery tool (see, e.g., Gordon and Anderson, Curr. Op. Biotechnol., 1994, 5, 611-616 and Miller, et al., Meth. Enzymol., 1993, 217, 581-599, the disclosures of which are incorporated herein by reference).

[0151]

[0246] The term "lentivirus" refers to a genera that includes HIV (human immunodeficiency virus; including HIV type 1 and HIV type 2), Visna-Maedi, which causes encephalitis (visna) or pneumonia (maedi) in sheep, Caprine Arthritis-Encephalitis Virus, which causes immunodeficiency, arthritis, and encephalopathy in goats; Equine Infectious Anemia Virus, which causes autoimmune hemolytic anemia and encephalopathy in horses; Feline Immunodeficiency Virus (FIV), which causes immunodeficiency in cats; Bovine Immunodeficiency Virus (BIV), which causes lymphadenopathy, lymphocytosis, and sometimes central nervous system infection in cattle; and Simian Immunodeficiency Virus (SIV), which causes immunodeficiency and encephalopathy in subhuman primates. Diseases caused by these viruses are characterized by long incubation periods and prolonged course. Usually, these viruses latently infect monocytes and macrophages from which they spread to other cells. HIV, FIV, and SIV also readily infect T lymphocytes (i.e., T cells).

[0152]

[0247] The term "anti-CD3 antibody" refers to an antibody or variant thereof, such as a monoclonal antibody, including human, humanized, chimeric, or murine antibodies against the CD3 receptor in the T cell antigen receptor of mature T cells. Anti-CD3 antibodies include OKT-3, also known as muromonab. Anti-CD3 antibodies also include T3 and UHCT1 clones, also known as CD3ε. Other anti-CD3 antibodies include, for example, otelixizumab, teplizumab, and visilizumab.

[0153]

[0248] The term "OKT-3" (also referred to herein as "OKT3") refers to a monoclonal antibody or variant thereof, including human, humanized, chimeric, or murine antibody, against the CD3 receptor in the T cell antigen receptor of mature T cells, including commercially available forms such as OKT-3 (30 ng / mL, MACS GMP CD3 pure, Miltenyi Biotec GmbH, Bergisch Gladbach, Germany) and muromonab or its variants, conservative amino acid substitutions, glycoforms, or biosimilars. The amino acid sequences of the heavy and light chains of muromonab are provided in Table 1 (SEQ ID NO: 1 and SEQ ID NO: 2). A hybridoma capable of producing OKT-3 has been deposited with the American Type Culture Collection and has been assigned the ATCC accession number CRL 8001. A hybridoma capable of producing OKT-3 has also been deposited at the European Collection of Authenticated Cell Cultures (ECACC) and assigned catalog number 86022706.

[0154] [Table 1]

[0155]

[0249] The term "IL-2" (also referred to herein as "IL2") refers to the T cell growth factor known as interleukin-2, and includes all forms of IL-2, including its human and mammalian forms, conservative amino acid substitutions, glycoforms, biosimilars, and variants. IL-2 is described, for example, in Nelson, J. Immunol. 2004, 172, 3983-88 and Malek, Annu. Rev. Immunol. 2008, 26, 453-79, the disclosures of which are incorporated herein by reference. The amino acid sequence of recombinant human IL-2 suitable for use in the present invention is provided in Table 2 (SEQ ID NO:3). For example, the term IL-2 includes human recombinant forms of IL-2, such as aldesleukin (PROLEUKIN, commercially available from multiple suppliers at 22 million IU per single-use vial), as well as forms of recombinant IL-2 commercially supplied by CellGenix, Inc., Portsmouth, NH, USA (CELLGRO GMP) or ProSpec-Tany TechnoGene Ltd., East Brunswick, NJ, USA (catalog number CYT-209-b) and other commercially available equivalents from other vendors. Aldesleukin (des-alanyl-1, serine-125 human IL-2) is a non-glycosylated human recombinant form of IL-2 with a molecular weight of approximately 15 kDa. The amino acid sequence of aldesleukin suitable for use in the present invention is provided in Table 2 (SEQ ID NO: 4). The term IL-2 also encompasses pegylated forms of IL-2 as described herein, including the pegylated IL2 prodrug NKTR-214 available from Nektar Therapeutics, South San Francisco, Calif., USA. NKTR-214 and pegylated IL-2 suitable for use in the present invention are described in U.S. Patent Application Publication No. 2014 / 0328791 A1 and WO 2012 / 065086 A1, the disclosures of which are incorporated herein by reference.Alternative forms of conjugated IL-2 suitable for use in the present invention are described in U.S. Patent Nos. 4,766,106, 5,206,344, 5,089,261 and 4902,502, the disclosures of which are incorporated herein by reference. Formulations of IL-2 suitable for use in the present invention are described in U.S. Patent No. 6,706,289, the disclosure of which is incorporated herein by reference.

[0156]

[0250] The term "IL-7" (also referred to herein as "IL7") refers to a glycosylated tissue-derived cytokine known as interleukin 7, which is available from stromal and epithelial cells, as well as dendritic cells. Fry and Mackall, Blood 2002, 99, 3892-904. IL-7 can stimulate T cell development. IL-7 binds to the heterodimeric IL-7 receptor, consisting of the IL-7 receptor alpha and the common gamma chain receptor, which provides a series of signals important for T cell development in the thymus and survival in the periphery. Recombinant human IL-7 suitable for use in the present invention is commercially available from several sources, including ProSpec-Tany TechnoGene Ltd., East Brunswick, NJ, USA (catalog number CYT-254) and ThermoFisher Scientific, Inc., Waltham, MA, USA (human IL-7 recombinant protein, catalog number Gibco PHC0071). The amino acid sequence of a recombinant human IL-7 suitable for use in the present invention is provided in Table 2 (SEQ ID NO:5).

[0157]

[0251] The term "IL-15" (also referred to herein as "IL15") refers to the T cell growth factor known as interleukin-15, and includes all forms of IL-2, including its human and mammalian forms, conservative amino acid substitutions, glycoforms, biosimilars, and variants. IL-15 is described, for example, in Fehniger and Caligiuri, Blood 2001, 97, 14-32, the disclosure of which is incorporated herein by reference. IL-15 shares β and γ signaling receptor subunits with IL-2. Recombinant human IL-15 is a single, non-glycosylated polypeptide chain containing 114 amino acids (plus an N-terminal methionine) with a molecular mass of 12.8 kDa. Recombinant human IL-15 is commercially available from several sources, including ProSpec-Tany TechnoGene Ltd., East Brunswick, NJ, USA (catalog number CYT-230-b) and ThermoFisherScientific, Inc., Waltham, MA, USA (human IL-15 recombinant protein, catalog number 34-8159-82). The amino acid sequence of recombinant human IL-15 suitable for use in the present invention is provided in Table 2 (SEQ ID NO:6).

[0158]

[0252] The term "IL-21" (also referred to herein as "IL21") refers to the pleiotropic cytokine protein known as interleukin-21, and includes all forms of IL-21, including its human and mammalian forms, conservative amino acid substitutions, glycoforms, biosimilars, and variants. IL-21 is described, for example, in Spolski and Leonard, Nat. Rev. Drug. Disc. 2014, 13, 379-95, the disclosure of which is incorporated herein by reference. IL-21 primarily targets natural killer T cells and activated human CD4 +It is produced by T cells. Recombinant human IL-21 is a single non-glycosylated polypeptide chain containing 132 amino acids with a molecular mass of 15.4 kDa. Recombinant human IL-21 is commercially available from several sources, including ProSpec-Tany TechnoGene Ltd., East Brunswick, NJ, USA (catalog number CYT-408-b) and ThermoFisherScientific, Inc., Waltham, MA, USA (human IL-21 recombinant protein, catalog number 14-8219-80). The amino acid sequence of recombinant human IL-21 suitable for use in the present invention is provided in Table 2 (SEQ ID NO: 7).

[0159] [Table 2]

[0160]

[0253] The term "myeloid cells," as used herein, refers to cells of or derived from the myeloid lineage. The myeloid lineage includes a number of morphologically, phenotypically, and functionally distinct cell types, including various subsets of granulocytes (neutrophils, eosinophils, and basophils), monocytes, macrophages, erythrocytes, megakaryocytes, and mast cells. In certain embodiments, myeloid cells are cells derived from a cell line of the myeloid lineage.

[0161]

[0254] "MOLM-14" refers to a human leukemia cell line established from peripheral blood of a patient with relapsed acute monocytic leukemia, and initial phenotypic characterization showed the presence of at least the following markers: CD4, CD9, CD11a, CD13, CD14, CD15, CD32, CD33, CD64, CD65, CD87, CD92, CD93, CD116, CD118, and CD155. Matsuo, et al., Leukemia 1997, 11, 1469-77. Further phenotypic characterization of MOLM-14 found higher levels of HLA-A / B / C, CD64, CD80, ICOS-L, CD58, and lower levels of CD86. The MOLM-14 cell line has been deposited at the DSMZ under accession number ACC777. A closely related MOLM-13 cell line has been deposited at the DSMZ under accession number ACC554. As used herein, the term "MOLM-14 cells" refers to MOLM-14 cells and / or cells derived from the deposited MOLM-14 parent cell line. As used herein, the term "MOLM-13 cells" refers to MOLM-13 cells and / or cells derived from the deposited MOLM-13 parent cell line.

[0162]

[0255] "EM-3" refers to a human cell line established from the bone marrow of a patient with Philadelphia chromosome positive CML. Konopka, et al., Proc. Nat'l Acad. Sci. USA 1985, 82, 1810-4. Phenotypic characterization of EM-3 cells indicates the presence of at least the following markers: CD13, CD15, and CD33. The EM-3 cell line has been deposited at the DSMZ under accession number ACC134, while the closely related EM-2 cell line has been deposited at the DSMZ under accession number ACC135. As used herein, the term "EM-3 cells" refers to EM-3 cells and / or cells derived from the deposited EM-3 parent cell line.

[0163]

[0256] As used herein, the term "CD86 protein" may refer to a protein comprising the amino acid sequence set forth in SEQ ID NO:8 or a protein comprising an amino acid sequence having at least 90%, e.g., 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to the amino acid sequence set forth in SEQ ID NO:8.

[0164]

[0257] As used herein, the term "4-1BBL" or "CD137L" may refer to a protein comprising an amino acid sequence set forth in SEQ ID NO:9 or a protein comprising an amino acid sequence having at least 90%, e.g., 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to the amino acid sequence set forth in SEQ ID NO:9.

[0165]

[0258] As used herein, the term "OX40L" or "CD137L" may refer to a protein comprising an amino acid sequence set forth in SEQ ID NO:10 or a protein comprising an amino acid sequence having at least 90%, e.g., 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98% or 99% sequence identity to the amino acid sequence set forth in SEQ ID NO:10.

[0166]

[0259] The term "biosimilar" refers to a biologic, including a monoclonal antibody or fusion protein, that is highly similar to an originator biologic approved in the United States, despite minor differences in clinically inactive components, and for which there are no clinically meaningful differences between the biologic and the originator in terms of drug safety, purity, and potency. Furthermore, a generic biologic or "biosimilar" drug is a biologic that is similar to another biologic already approved for use by the European Medicines Agency. The term "biosimilar" is also used interchangeably by regulatory agencies in other countries and regions. A biologic or biopharmaceutical is a drug made by or derived from a biological source, such as bacteria or yeast. It can consist of relatively small molecules, such as human insulin or erythropoietin, or complex molecules, such as monoclonal antibodies. For example, if the originator IL-2 protein is aldesleukin (PROLEUKIN), a protein approved by a drug regulatory agency according to aldesleukin is a "biosimilar" to aldesleukin or a "biosimilar" of aldesleukin. In Europe, a generic or "biosimilar" medicinal product is a biological product similar to another biological product already authorized for use by the European Medicines Agency (EMA). The relevant legal basis for generic bioapplications in Europe is Article 6 of Regulation (EC) No. 726 / 2004 and Article 10(4) of Directive 2001 / 83 / EC (as subsequently amended), and therefore in Europe, a biosimilar may be authorised, authorised or the subject of an application for authorisation under Article 6 of Regulation (EC) No. 726 / 2004 and Article 10(4) of Directive 2001 / 83 / EC. The original biopharmaceutical product that is already licensed may be referred to as the "originator product" in Europe. Some of the requirements for a product to be considered a biosimilar are outlined in the CHMP Guideline on Similar Biological Medicinal Products.In addition, product-specific guidelines are provided by the EMA for each product and are published on its website, including guidelines for monoclonal antibody biosimilars. A biosimilar as described herein may be similar to the originator drug product in terms of quality attributes, biological activity, mechanism of action, safety profile and / or efficacy. In addition, a biosimilar may be used or intended for use in the treatment of the same condition as the originator drug product. Thus, a biosimilar as described herein may be considered to have similar or highly similar quality attributes to the originator drug product. Alternatively, or in addition, a biosimilar as described herein may be considered to have similar or highly similar biological activity to the originator drug product. Alternatively, or in addition, a biosimilar as described herein may be considered to have similar or highly similar safety profile to the originator drug product. Alternatively, or in addition, a biosimilar as described herein may be considered to have similar or highly similar efficacy to the originator drug product. As described herein, biosimilars in Europe are compared to originator drug products that have been approved by the EMA. However, in some cases, biosimilars may be compared to biopharmaceutical products that have been approved outside the European Economic Area in certain studies (non-EEA-authorized "comparator"). Such studies include, for example, certain clinical trials and in vivo non-clinical trials. As used herein, the term "biosimilar" also relates to biopharmaceutical products that have been compared or can be compared to non-EEA-authorized comparators. Some biosimilars are proteins, such as antibodies, antibody fragments (e.g., antigen-binding portions), and fusion proteins. Protein biosimilars may have amino acid sequences that have minor amino acid structural modifications (including, for example, amino acid deletions, additions, and / or substitutions) that do not significantly affect the function of the polypeptide. Biosimilars may include amino acid sequences that have 97% or more, e.g., 97%, 98%, 99% or 100% sequence identity to the amino acid sequence of its originator drug product.A biosimilar may contain one or more post-translational modifications, such as, but not limited to, glycosylation, oxidation, deamidation, and / or truncation, that differ from the post-translational modifications of the originator drug formulation, provided that the difference does not result in a change in the safety and / or efficacy of the pharmaceutical formulation. A biosimilar may have the same or a different glycosylation pattern as the originator drug formulation. In particular, but not limited to, a biosimilar may have a different glycosylation pattern if a safety concern associated with the originator drug formulation is addressed or intended to be addressed by the difference. In addition, a biosimilar may deviate from the originator drug formulation, for example, in terms of its strength, pharmaceutical form, formulation, excipients, and / or presentation, provided that the safety and efficacy of the pharmaceutical formulation is not compromised. A biosimilar may contain differences compared to the originator drug formulation, for example, in terms of pharmacokinetic (PK) and / or pharmacodynamic (PD) profile, but is still considered sufficiently similar to the originator drug formulation to be considered approved or suitable for approval. In certain circumstances, biosimilars exhibit different binding properties compared to originator pharmaceutical products, where the different binding properties are not considered to preclude approval as a generic biological product by regulatory authorities such as the EMA. The term "biosimilar" is also used interchangeably by regulatory agencies in other countries and regions.

[0167]

[0260] As used herein, the term "variant" includes, but is not limited to, a protein, antibody, or fusion protein that comprises an amino acid sequence that differs from the amino acid sequence of a reference protein or antibody in terms of one or more substitutions, deletions, and / or additions at specific positions within or adjacent to the amino acid sequence of the reference protein or antibody. A variant may include one or more conservative substitutions in its amino acid sequence compared to the amino acid sequence of the reference protein or antibody. Conservative substitutions may include, for example, the substitution of similarly charged or uncharged amino acids. A variant retains the ability of the reference protein or antibody to specifically bind to the antigen. The term "variant" also includes pegylated antibodies or proteins.

[0168]

[0261] "PEGylation" refers to a modified antibody, or fragment thereof, or protein that is typically reacted with polyethylene glycol (PEG), such as a reactive ester or aldehyde derivative of PEG, under conditions such that one or more PEG groups become attached to the antibody, antibody fragment, or protein. PEGylation can, for example, increase the biological (e.g., serum) half-life of an antibody or protein. Preferably, PEGylation is carried out in an acylation reaction or an alkylation reaction with a reactive PEG molecule (or an analogous reactive water-soluble polymer). As used herein, the term "polyethylene glycol" refers to a mono(C 1 ~C 10 It is intended to encompass any of the forms of PEG used to derivatize other proteins, such as alkoxy- or aryloxy-polyethylene glycols or polyethylene glycol-maleimides. The antibody or protein to be pegylated may be a non-glycosylated antibody. Pegylation methods are known in the art, for example, as described in European Patent Nos. 0154316 and 0401384, and can be applied to the antibodies and proteins described herein.

[0169]

[0262] The terms "about" and "approximately" mean within a statistically meaningful range of a value. Such a range may be within an order of magnitude, preferably within 50%, more preferably within 20%, more preferably still within 10%, and even more preferably within 5% of a given value or range. The allowable variation encompassed by the terms "about" or "approximately" depends on the particular system under study and can be readily understood by one of ordinary skill in the art. Furthermore, as used herein, the terms "about" and "approximately" mean that dimensions, sizes, formulations, parameters, shapes, and other quantities and characteristics are not and may not be exactly the same, but may be approximate and / or larger or smaller, as appropriate, reflecting tolerances, conversion factors, rounding, measurement errors, and the like, and other factors known to those of ordinary skill in the art. In general, a dimension, size, formulation, parameter, shape, or other quantity or characteristic is "about" or "approximate", whether or not it is expressly stated as such. It is noted that embodiments of widely different sizes, shapes, and dimensions may use the described configurations.

[0170]

[0263] The transitional phrases "comprising," "consisting essentially of," and "consisting of," when used in the appended claims in their original and amended form, define the claims in terms of what, if any, additional unrecited claim elements or steps are excluded from the claims. The term "comprising" is intended to be inclusive or open ended and does not exclude any additional unrecited elements, methods, steps, or materials. The term "consisting of" excludes any element, step, or material other than that specified in the claim, and in the example of the latter material, also excludes impurities normally associated with the specified material. The term "consisting essentially of" limits the scope to the specified elements, steps, or materials and those that do not materially affect the basic novel characteristics of the claimed invention. All compositions, methods, and kits described herein that embody the present invention may, in alternative embodiments, be more specifically defined by any of the transitional phrases "comprising," "consisting essentially of," and "consisting of."

[0171] Artificial antigen presenting cells

[0264] In one embodiment, the invention includes an isolated artificial antigen presenting cell (aAPC) comprising cells that express HLA-A / B / C, CD64, CD80, ICOS-L, and CD58, and that have been modified to express one or more costimulatory molecules. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells that have been modified to express one or more costimulatory molecules. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells that have been modified to express one or more costimulatory molecules.

[0172]

[0265] In one embodiment, the invention includes an aAPC comprising MOLM-14 cells that endogenously express HLA-A / B / C, CD64, CD80, ICOS-L, and CD58, wherein the cells have been modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and conservative amino acid substitutions thereof, and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO:9 and conservative amino acid substitutions thereof, and wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-14 cells.

[0173]

[0266] In certain embodiments, the invention includes an aAPC comprising MOLM-14 cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express CD86 and 4-1BBL. In certain embodiments, the invention includes an aAPC comprising MOLM-13 cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-13 cells express CD86 and 4-1BBL. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0174]

[0267] In certain embodiments, the present invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-14 cells. In certain embodiments, the present invention includes an aAPC comprising MOLM-13 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and its conservative amino acid substitutions, and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO:9 and its conservative amino acid substitutions, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-13 cells. In certain embodiments, the present invention includes a method of preparing any of the foregoing aAPC embodiments.

[0175]

[0268] In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-14 cells. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-14 cells. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-14 cells. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-14 cells. In one embodiment, the invention includes an aAPC comprising a MOLM-14 cell modified to express a CD86 protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-14 cell.In certain embodiments, the invention includes an aAPC comprising a MOLM-14 cell modified to express a CD86 protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 8 and a 4-1BBL protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-14 cell. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0176]

[0269] In certain embodiments, the invention includes an aAPC comprising MOLM-13 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-13 cells. In certain embodiments, the invention includes an aAPC comprising MOLM-13 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and conservative amino acid substitutions thereof, and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO:9 and conservative amino acid substitutions thereof, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-13 cells. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0177]

[0270] In one embodiment, the invention includes an aAPC comprising a MOLM-13 cell modified to express a CD86 protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-13 cell. In one embodiment, the invention includes an aAPC comprising a MOLM-13 cell modified to express a CD86 protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-13 cell. In one embodiment, the invention includes an aAPC comprising a MOLM-13 cell modified to express a CD86 protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-13 cell. In one embodiment, the invention includes an aAPC comprising a MOLM-13 cell modified to express a CD86 protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-13 cell. In one embodiment, the invention includes an aAPC comprising a MOLM-13 cell modified to express a CD86 protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-13 cell.In certain embodiments, the invention includes an aAPC comprising a MOLM-13 cell modified to express a CD86 protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 8 and a 4-1BBL protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the MOLM-13 cell. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0178]

[0271] In some embodiments, the invention includes an aAPC comprising MOLM-14 cells transduced with one or more viral vectors, where the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding OX40L, and the MOLM-14 cells express CD86 and OX40L. In some embodiments, the invention includes an aAPC comprising MOLM-13 cells transduced with one or more viral vectors, where the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding OX40L, and the MOLM-13 cells express CD86 and OX40L. In some embodiments, the invention includes a method of preparing any of the above-described aAPC embodiments.

[0179]

[0272] In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the MOLM-14 cells. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and conservative amino acid substitutions thereof, and an OX40L protein comprising the amino acid sequence set forth in SEQ ID NO:10 and conservative amino acid substitutions thereof, wherein the CD86 protein and the OX40L protein are expressed on the surface of the MOLM-13 cells. In one embodiment, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0180]

[0273] In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the MOLM-14 cells. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the MOLM-14 cells. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the MOLM-14 cells. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a CD86 protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the MOLM-14 cells. In one embodiment, the invention includes an aAPC comprising a MOLM-14 cell modified to express a CD86 protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the MOLM-14 cell.In certain embodiments, the invention includes an aAPC comprising a MOLM-14 cell modified to express a CD86 protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the MOLM-14 cell. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0181]

[0274] In any of the foregoing embodiments, it will be understood that aAPCs comprising MOLM-14 or MOLM-13 cells can be modified to express both OX40L and 4-1BBL.

[0182]

[0275] The sequences of human CD86, human 4-1BBL (CD137L), and human OX40L (CD134L) are provided in Table 3.

[0183] [Table 3]

[0184]

[0276] In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising the amino acid sequence set forth in SEQ ID NO: 13 and conservative amino acid substitutions thereof, and a third protein that binds to a fourth protein comprising the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12 and conservative amino acid substitutions thereof. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising the amino acid sequence set forth in SEQ ID NO: 13 and conservative amino acid substitutions thereof, and a third protein that binds to a fourth protein comprising the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12 and conservative amino acid substitutions thereof. In one embodiment, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0185]

[0277] In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.In certain embodiments, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0186]

[0278] In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.In certain embodiments, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0187]

[0279] In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising the amino acid sequence set forth in SEQ ID NO: 14 and conservative amino acid substitutions thereof, and a third protein that binds to a fourth protein comprising the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12 and conservative amino acid substitutions thereof. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising the amino acid sequence set forth in SEQ ID NO: 14 and conservative amino acid substitutions thereof, and a third protein that binds to a fourth protein comprising the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12 and conservative amino acid substitutions thereof. In one embodiment, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0188]

[0280] In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.In certain embodiments, the invention includes an aAPC comprising MOLM-14 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0189]

[0281] In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.In certain embodiments, the invention includes an aAPC comprising MOLM-13 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0190]

[0282] The sequences of the ligands bound by human CD86 (CD28 and CTLA-4), human 4-1BBL (4-1BB), and human OX40L (OX40) are provided in Table 4.

[0191] [Table 4]

[0192]

[0283] In one embodiment, the invention includes an isolated artificial antigen presenting cell (aAPC) comprising cells expressing HLA-A / B / C, ICOS-L, and CD58 and modified to express one or more costimulatory molecules, where the aAPC is derived from an EM-3 parent cell line. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express one or more costimulatory molecules. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express one or more costimulatory molecules.

[0193]

[0284] In one embodiment, the invention includes an aAPC comprising EM-3 cells expressing HLA-A / B / C, ICOS-L, and CD58, wherein the cells have been modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and conservative amino acid substitutions thereof, and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO:9 and conservative amino acid substitutions thereof, and wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-3 cells.

[0194]

[0285] In certain embodiments, the invention includes an aAPC comprising EM-3 cells transduced with one or more viral vectors, where the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the EM-3 cells express CD86 and 4-1BBL. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0195]

[0286] In certain embodiments, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO: 8 and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO: 9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-3 cells. In certain embodiments, the invention includes methods of preparing any of the foregoing aAPC embodiments.

[0196]

[0287] In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-3 cells. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-3 cells. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-3 cells. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-3 cells. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-3 cells.In certain embodiments, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 8 and a 4-1BBL protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-3 cells. In certain embodiments, the invention includes methods of preparing any of the foregoing aAPC embodiments.

[0197]

[0288] In certain embodiments, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising the amino acid sequence set forth in SEQ ID NO: 13 and conservative amino acid substitutions thereof, and a third protein that binds to a fourth protein comprising the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12 and conservative amino acid substitutions thereof. In certain embodiments, the invention includes methods of preparing any of the foregoing aAPC embodiments.

[0198]

[0289] In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-3 modified to express a first protein that binds to a second protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.In certain embodiments, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0199]

[0290] In one embodiment, the invention includes aAPCs comprising EM-3 cells modified to express a single chain fragment variable (scFv) binding domain, such as clones 7C12 and 8B3 described herein, to bind to the Fc domain of a monoclonal antibody, such as OKT-3, which provides an additional growth signal.

[0200]

[0291] In certain embodiments, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO: 8 and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO: 9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-2 cells. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0201]

[0292] In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-2 cells. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-2 cells. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-2 cells. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-2 cells. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-2 cells.In certain embodiments, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 8 and a 4-1BBL protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the EM-2 cells. In certain embodiments, the invention includes methods of preparing any of the foregoing aAPC embodiments.

[0202]

[0293] In certain embodiments, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising the amino acid sequence set forth in SEQ ID NO: 13 and conservative amino acid substitutions thereof, and a third protein that binds to a fourth protein comprising the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12 and conservative amino acid substitutions thereof. In certain embodiments, the invention includes methods of preparing any of the foregoing aAPC embodiments.

[0203]

[0294] In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-2 modified to express a first protein that binds to a second protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.In certain embodiments, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 13, and a third protein that binds to a fourth protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0204]

[0295] In one embodiment, the invention includes aAPCs comprising EM-2 cells modified to express a single chain fragment variable (scFv) binding domain, such as clones 7C12 and 8B3 described herein, to bind to the Fc domain of a monoclonal antibody, such as OKT-3, which provides an additional growth signal.

[0205]

[0296] In one embodiment, the invention includes an aAPC comprising EM-3 or EM-2 cells modified as depicted in Figure 96. In one embodiment, the invention includes an aAPC comprising EM-3 or EM-2 cells modified as depicted in Figure 97. In one embodiment, the invention includes an aAPC comprising EM-3 or EM-2 cells modified as depicted in Figure 98.

[0206]

[0297] In one embodiment, the invention includes an aAPC comprising EM-3 cells expressing HLA-A / B / C, ICOS-L, and CD58, wherein the cells are modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and conservative amino acid substitutions thereof, and an OX40L protein comprising the amino acid sequence set forth in SEQ ID NO:10 and conservative amino acid substitutions thereof, and wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-3 cells.

[0207]

[0298] In certain embodiments, the invention includes an aAPC comprising EM-3 cells transduced with one or more viral vectors, where the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding OX40L, and the EM-3 cells express CD86 and OX40L. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0208]

[0299] In certain embodiments, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-3 cells. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0209]

[0300] In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-3 cells. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-3 cells. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-3 cells. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-3 cells. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-3 cells.In certain embodiments, the invention includes an aAPC comprising EM-3 cells modified to express a CD86 protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-3 cells. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0210]

[0301] In certain embodiments, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising the amino acid sequence set forth in SEQ ID NO: 14 and conservative amino acid substitutions thereof, and a third protein that binds to a fourth protein comprising the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12 and conservative amino acid substitutions thereof. In certain embodiments, the invention includes methods of preparing any of the foregoing aAPC embodiments.

[0211]

[0302] In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-3 modified to express a first protein that binds to a second protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.In certain embodiments, the invention includes an aAPC comprising EM-3 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0212]

[0303] In one embodiment, the invention includes aAPCs comprising EM-3 cells modified to express a single chain fragment variable (scFv) binding domain, such as clones 7C12 and 8B3 described herein, to bind to the Fc domain of a monoclonal antibody, such as OKT-3, which provides an additional growth signal.

[0213]

[0304] In certain embodiments, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-2 cells. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0214]

[0305] In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-2 cells. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-2 cells. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-2 cells. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-2 cells. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-2 cells.In certain embodiments, the invention includes an aAPC comprising EM-2 cells modified to express a CD86 protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO:8 and an OX40L protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO:10, wherein the CD86 protein and the OX40L protein are expressed on the surface of the EM-2 cells. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0215]

[0306] In certain embodiments, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising the amino acid sequence set forth in SEQ ID NO: 14 and conservative amino acid substitutions thereof, and a third protein that binds to a fourth protein comprising the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12 and conservative amino acid substitutions thereof. In certain embodiments, the invention includes methods of preparing any of the foregoing aAPC embodiments.

[0216]

[0307] In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-2 modified to express a first protein that binds to a second protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In one embodiment, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12.In certain embodiments, the invention includes an aAPC comprising EM-2 cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 14, and a third protein that binds to a fourth protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 11 or SEQ ID NO: 12. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0217]

[0308] In one embodiment, the invention includes aAPCs comprising EM-2 cells modified to express a single chain fragment variable (scFv) binding domain, such as clones 7C12 and 8B3 described herein, to bind to the Fc domain of a monoclonal antibody, such as OKT-3, which provides an additional growth signal.

[0218]

[0309] In one embodiment, the invention includes an aAPC comprising EM-3 or EM-2 cells modified as depicted in Figure 96. In one embodiment, the invention includes an aAPC comprising EM-3 or EM-2 cells modified as depicted in Figure 97. In one embodiment, the invention includes an aAPC comprising EM-3 or EM-2 cells modified as depicted in Figure 98.

[0219]

[0310] In any of the foregoing embodiments, it is understood that aAPCs comprising EM-3 or EM-2 cells may be modified to express both OX40L and 4-1BBL.

[0220]

[0311] In one embodiment, the invention includes an isolated artificial antigen presenting cell (aAPC) comprising a cell that expresses CD58 and has been modified to express one or more costimulatory molecules, wherein the aAPC is derived from a K562 lineage parent cell line. In one embodiment, the invention includes an aAPC comprising a K562 lineage cell that has been modified to express one or more costimulatory molecules. In one embodiment, the K562 lineage parent cell line has been deposited under accession number ATCC CCL-243 and has also been deposited with the European Certified Cell Culture Collection (ECACC ECACC 89121407).

[0221]

[0312] In one embodiment, the invention includes an aAPC comprising a K562 lineage cell expressing CD58, wherein the cell has been modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO:8 and conservative amino acid substitutions thereof, and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO:9 and conservative amino acid substitutions thereof, and wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the K562 lineage cell.

[0222]

[0313] In certain embodiments, the invention includes an aAPC comprising K562 lineage cells transduced with one or more viral vectors, where the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the K562 lineage cells express CD86 and 4-1BBL. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0223]

[0314] In certain embodiments, the invention includes an aAPC comprising a K562 lineage cell modified to express a CD86 protein comprising the amino acid sequence set forth in SEQ ID NO: 8 and a 4-1BBL protein comprising the amino acid sequence set forth in SEQ ID NO: 9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the K562 lineage cell. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0224]

[0315] In one embodiment, the invention includes an aAPC comprising a K562-lineage cell modified to express a CD86 protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the K562-lineage cell. In one embodiment, the invention includes an aAPC comprising a K562-lineage cell modified to express a CD86 protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the K562-lineage cell. In one embodiment, the invention includes an aAPC comprising a K562-lineage cell modified to express a CD86 protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the K562-lineage cell. In one embodiment, the invention includes an aAPC comprising a K562-lineage cell modified to express a CD86 protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the K562-lineage cell. In one embodiment, the invention includes an aAPC comprising a K562-lineage cell modified to express a CD86 protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:8 and a 4-1BBL protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO:9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the K562-lineage cell.In certain embodiments, the invention includes an aAPC comprising a K562 lineage cell modified to express a CD86 protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 8 and a 4-1BBL protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 9, wherein the CD86 protein and the 4-1BBL protein are expressed on the surface of the K562 lineage cell. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0225]

[0316] In certain embodiments, the invention includes an aAPC comprising a K562 lineage cell modified to express a first protein that binds to a second protein comprising the amino acid sequence set forth in SEQ ID NO: 11 and conservative amino acid substitutions thereof, and a third protein that binds to a fourth protein comprising the amino acid sequence set forth in SEQ ID NO: 12 or SEQ ID NO: 13 and conservative amino acid substitutions thereof. In certain embodiments, the invention includes a method of preparing any of the foregoing aAPC embodiments.

[0226]

[0317] In one embodiment, the invention includes an aAPC comprising K562-lineage cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 11, and a third protein that binds to a fourth protein comprising a sequence having greater than 99% identity to the amino acid sequence set forth in SEQ ID NO: 12 or SEQ ID NO: 13. In one embodiment, the invention includes an aAPC comprising K562-lineage cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 11, and a third protein that binds to a fourth protein comprising a sequence having greater than 98% identity to the amino acid sequence set forth in SEQ ID NO: 12 or SEQ ID NO: 13. In one embodiment, the invention includes an aAPC comprising K562-lineage cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 11, and a third protein that binds to a fourth protein comprising a sequence having greater than 97% identity to the amino acid sequence set forth in SEQ ID NO: 12 or SEQ ID NO: 13. In one embodiment, the invention includes an aAPC comprising a K562-lineage cell modified to express a first protein that binds to a second protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 11, and a third protein that binds to a fourth protein comprising a sequence having greater than 96% identity to the amino acid sequence set forth in SEQ ID NO: 12 or SEQ ID NO: 13. In one embodiment, the invention includes an aAPC comprising a K562-lineage cell modified to express a first protein that binds to a second protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 11, and a third protein that binds to a fourth protein comprising a sequence having greater than 95% identity to the amino acid sequence set forth in SEQ ID NO: 12 or SEQ ID NO: 13.In certain embodiments, the present invention includes an aAPC comprising K562 lineage cells modified to express a first protein that binds to a second protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 11, and a third protein that binds to a fourth protein comprising a sequence having greater than 90% identity to the amino acid sequence set forth in SEQ ID NO: 12 or SEQ ID NO: 13. In certain embodiments, the present invention includes a method of preparing any of the foregoing aAPC embodiments.

[0227]

[0318] In certain embodiments, the present invention includes an aAPC comprising K562 lineage cells modified to express single-chain variable (scFv) binding domains, such as clone 7C12 and 8B3 described herein, for binding to the Fc domain of monoclonal antibodies, such as OKT-3, that provide additional proliferative signals.

[0228] Method for preparing artificial antigen-presenting cells

[0319] In some embodiments, the method for preparing aAPCs includes a step of stable incorporation of genes for the production of CD86 and 4-1BBL. In some embodiments, the method for preparing aAPCs includes a step of retroviral transduction. In some embodiments, the method for preparing aAPCs includes a step of lentiviral transduction. Lentiviral transduction systems are known in the art and are described, for example, in Levine, et al., Proc. Nat'l Acad. Sci. 2006,103, 17372-77; Zufferey, et al., Nat. Biotechnol. 1997,15, 871-75; Dull, et al., J. Virology 1998, 72, 8463-71, and U.S. Patent No. 6,627,442, the disclosures of each of which are incorporated herein by reference. In some embodiments, the method for preparing aAPCs includes a step of gamma retroviral transduction. Gamma retroviral transduction systems are known in the art and are described, for example, in Cepko and Pear, Cur. Prot. Mol. Biol. 1996, 9.9.1-9.9.16, the disclosure of which is incorporated herein by reference. In certain embodiments, the method of preparing aAPCs includes a transposon-mediated gene transfer step. Transposon-mediated gene transfer systems are known in the art and include systems in which the transposase is provided as a DNA expression vector or as an expressible RNA or protein such that long-term expression of the transposase does not occur in the transgenic cells, for example, a transposase provided as an mRNA (e.g., an mRNA including a cap and polyA tail).Suitable transposon-mediated gene transfer systems, such as Salmonidae-type Tel-like transposases (SB or Sleeping Beauty transposase), such as SB10, SB11, and SB100x, and engineered enzymes with increased enzymatic activity, are described, for example, in Hackett, et al., Mol. Therapy 2010, 18, 674-83 and U.S. Pat. No. 6,489,458, the disclosures of each of which are incorporated herein by reference.

[0229]

[0320] In one embodiment, the method for preparing aAPCs comprises a step of stable incorporation of genes for transient production of CD86 and 4-1BBL. In one embodiment, the method for preparing aAPCs comprises a step of electroporation. Electroporation methods are known in the art and are described, for example, in Tsong, Biophys. J. 1991, 60, 297-306, and U.S. Patent Application Publication No. 2014 / 0227237 A1, the disclosures of each of which are incorporated herein by reference. In one embodiment, the method for preparing aAPCs comprises a calcium phosphate transfection step. Calcium phosphate transfection methods (calcium phosphate DNA precipitation, cell surface coating, and endocytosis) are known in the art and described in Graham and van der Eb, Virology 1973, 52, 456-467; Wigler, et al., Proc. Natl. Acad. Sci. 1979, 76, 1373-1376; and Chen and Okayarea, Mol. Cell. Biol. 1987, 7, 2745-2752; and U.S. Patent No. 5,593,875, the disclosures of each of which are incorporated herein by reference. In certain embodiments, the method of preparing aAPCs includes a liposome transfection step.Liposomal transfection methods, such as those using a 1:1 (w / w) liposomal formulation of the cationic lipids N-[1-(2,3-dioleyloxy)propyl]-n,n,n-trimethylammonium chloride (DOTMA) and dioleoylphosphatidylethanolamine (DOPE) in filtered water, are known in the art and are described in Rose, et al., Biotechniques 1991,10, 520-525 and Feigner, et al., Proc. Natl. Acad. Sci. USA, 1987, 84, 7413-7417 and U.S. Patent Nos. 5,279,833; 5,908,635; 6,056,938; 6,110,490; 6,534,484; and 7,687,070 (the disclosures of each of which are incorporated herein by reference). In some embodiments, the method for preparing aAPCs comprises a transfection step using the method described in U.S. Patent Nos. 5,766,902; 6,025,337; 6,410,517; 6,475,994; and 7,189,705 (the disclosures of each of which are incorporated herein by reference).

[0230]

[0321] In one embodiment, aAPCs are transduced by first preparing a vector for lentiviral transduction using the Gateway cloning method (commercially available from ThermoFisher, Inc.), followed by lentiviral transduction using this vector and one or more associated helper plasmids as also described elsewhere herein. In the Gateway cloning method, a gene is selected (such as CD86), then primers are provided and amplified using PCR techniques with the aid of an attB tagging primer pair. This PCR fragment is then combined with a donor vector (pDONR, such as pDONR221) containing an attP site using a BP reaction to provide an entry clone. The PCR fragment is combined with the donor vector by an integration reaction between the attB and attP sites. The resulting entry clone contains the gene of interest flanked by attL sites. The entry clone is then combined with a destination vector using an LR reaction to generate an expression vector. In the LR reaction, the entry clone is ligated into a destination vector (such as pLV430G) using a recombination reaction using attL and attR sites and clonase enzyme. The attL site is already present in the entry clone, while the destination vector contains an attR site. When the LR reaction is performed, the sequence of interest is transferred to one or more destination vectors in a simultaneous reaction.

[0231]

[0322] In some embodiments, the aAPCs described herein may be grown and maintained in serum-based and / or serum-free media. According to an exemplary method, aAPCs are grown at approximately 1×10 per well in a 24-well plate. 6 Cells may be cultured at a cell density of 100-200 nm for 3-5 days, then isolated by centrifugation and / or washed and resuspended in medium, or cryopreserved in an appropriate cryopreservation medium (e.g., CryoStor 10 (BioLife Solutions)) and stored in a -80°C freezer.

[0232]

[0323] In some embodiments, the aAPCs described herein may be grown in the presence of a serum-based medium. In some embodiments, the aAPCs described herein may be grown in the presence of a serum-based medium that includes a human serum (hSerum)-containing medium (e.g., cDMEM with 10% hSerum). In some embodiments, the aAPCs grown in the presence of a serum-based medium may be selected from the group consisting of aMOLM-13 cells, aMOLM-14 cells, and aEM3 cells.

[0233]

[0324] In some embodiments, the aAPCs described herein may be grown in the presence of serum-free medium. In some embodiments, the serum-free medium may be selected from the group consisting of CTS Optmizer (ThermoFisher), Xvivo-20 (Lonza), Prime T Cell CDM (Irvine), XFSM (MesenCult), etc. In some embodiments, the aAPCs grown in the presence of serum-free medium may be selected from the group consisting of aMOLM-13 cells, aMOLM-14 cells, and aEM3 cells.

[0234] Method for expanding tumor-infiltrating lymphocytes and T cells

[0325] In one embodiment, the present invention includes a method for expanding tumor infiltrating lymphocytes (TILs), the method comprising contacting a TIL population comprising at least one TIL with an aAPC as described herein, wherein the aAPC comprises at least one costimulatory ligand that specifically binds to a costimulatory molecule expressed on the cell surface of the TIL, and binding of the costimulatory molecule to the costimulatory ligand induces proliferation of the TILs, thereby specifically expanding the TILs.

[0235]

[0326] In one embodiment, the present invention provides a method for expanding a tumor infiltrating lymphocyte (TIL) population using any of the aAPCs disclosed herein, the method comprising the steps as described in Jin, et al., J. Immunotherapy 2012, 35, 283-292, the disclosure of which is incorporated herein by reference. For example, the tumor may be placed in an enzyme medium and mechanically dissociated for about 1 minute. The mixture is then incubated at 37°C and 5% CO. 2 The plates can be incubated at 37°C, 5% CO for 30 min and then mechanically disrupted again for approximately 1 min. 2 After incubation at 37° C. for 30 min, the tumors may be mechanically disrupted a third time for approximately 1 min. If large tissue fragments are present after the third mechanical disruption, one or two additional mechanical dissociations may be performed at 37° C., 5% CO 2 The final incubation may be applied to the sample with or without an additional 30 min incubation at 100°C. At the end of the final incubation, if the cell suspension contains a large number of red blood cells or dead cells, density gradient separation using Ficoll may be performed to remove such cells. TIL cultures were initiated in 24-well plates (Costar 24-well cell culture cluster, flat bottom; Corning Incorporated, Corning, NY) with each well receiving 1 × 10 6 cells in 2 mL of complete medium (CM) containing IL-2 (6000 IU / mL; Chiron Corp., Emeryville, CA). 6 1 tumor digesta cell or approximately 1-8 mm 3 The CM consisted of RPMI 1640 containing GlutaMAX supplemented with 10% human AB serum, 25 mM Hepes, and 10 mg / mL gentamicin. Cultures were grown in 10 cm 2 Start with a 40 mL capacity gas permeable flask (G-Rex 10; Wilson Wolf Manufacturing, New Brighton) with a gas permeable silicone bottom, and each flask contains 10–40 × 10 cells in 10–40 mL of IL-2-containing CM. 6 10 live tumor digest cells or 5-30 tumor fragments can be loaded. G-Rex 10 and 24-well plates can be incubated at 37 °C and 5% CO in a humidified incubator. 2After 5 days of culture, half of the medium may be removed and replenished with fresh CM and IL-2, and half of the medium may be replaced every 2-3 days after day 5. Rapid Expansion Protocol (REP) of TILs may be performed using aAPCs of the present disclosure using T-175 flasks and gas permeable bags or gas permeable G-Rex flasks as described elsewhere herein. For REP in T-175 flasks, 1×10 cells / ml may be cultured in 150 mL of medium in each flask. 6 TILs may be suspended in 1000 mL of CM and AIM-V medium supplemented with 3000 IU / mL IL-2 and 30 ng / mL anti-CD3 antibody (OKT-3). TILs may be cultured with aAPCs of the present disclosure at the ratios described herein in a 1:1 mixture (50 / 50 medium) of CM and AIM-V medium supplemented with 3000 IU / mL IL-2 and 30 ng / mL anti-CD3 antibody (OKT-3). T-175 flasks may be incubated at 37° C., 5% CO 2 On day 5, half of the medium may be replaced using 50 / 50 medium containing 3000 IU / mL IL-2. On day 7, cells from two T-175 flasks may be combined into a 3 L bag and 300 mL of the TIL suspension may be added with 300 mL of AIM-V containing 5% human AB serum and 3000 IU / mL IL-2. The number of cells in each bag may be counted daily or every two days and fresh medium may be added to bring the cell number to 0.5-2.0 x 10 6 cells / mL. 100cm 2 For REP in a 500 mL volumetric flask with gas permeable silicone bottom (e.g., G-Rex 100, Wilson Wolf Manufacturing, as described elsewhere herein), 5×10 cells were cultured in 400 mL of 50 / 50 medium supplemented with 3000 IU / mL IL-2 and 30 ng / mL anti-CD3 antibody (OKT-3). 6 Or 10 x 10 6 TILs can be cultured with aAPCs at a ratio described herein (e.g., 1:100). G-Rex100 flasks are incubated at 37°C, 5% CO 2On day 5, 250 mL of the supernatant may be removed and placed in a centrifuge bottle and centrifuged at 1500 rpm (491 g) for 10 minutes. The resulting TIL pellet may be resuspended in 150 mL of fresh 50 / 50 medium containing 3000 IU / mL IL-2 and added back to the G-Rex 100 flask. If the TILs are to be continuously expanded in the G-Rex 100 flasks, on day 7, the TILs of each G-Rex 100 may be suspended in the 300 mL of medium present in each flask, and this cell suspension may be split into three 100 mL aliquots that may be used to seed three G-Rex100 flasks. Approximately 150 mL of AIM-V containing 5% human AB serum and 3000 IU / mL IL-2 may then be added to each flask. The G-Rex100 flasks may then be incubated at 37° C., 5% CO 2 After 4 days, 150 mL of AIM-V containing 3000 IU / mL IL-2 may be added to each G-Rex100 flask. REP may then be completed by harvesting the cells on day 14 of culture.

[0236]

[0327] As described herein, TILs may be advantageously expanded in the presence of serum-free medium. In some embodiments, the TIL expansion methods described herein may include the use of serum-free medium rather than serum-based medium (e.g., complete medium or CM1). In some embodiments, the TIL expansion methods described herein may use serum-free medium rather than serum-based medium. In some embodiments, the serum-free medium may be selected from the group consisting of CTS Optmizer (ThermoFisher), Xvivo-20 (Lonza), Prime T Cell CDM (Irvine), and the like.

[0237]

[0328] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium Includes.

[0238]

[0329] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the cell culture medium further comprises IL-2 at an initial concentration of about 3000 IU / mL and OKT-3 antibody at an initial concentration of about 30 ng / mL.

[0239]

[0330] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the APC population expands the TIL population in cell culture medium at least 50-fold over a 7 day period.

[0240]

[0331] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the myeloid cells endogenously express HLA-A / B / C, ICOS-L, and CD58.

[0241]

[0332] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the myeloid cells are MOLM-14 cells.

[0242]

[0333] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the myeloid cells are MOLM-13 cells.

[0243]

[0334] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (c) transducing myeloid cells with one or more viral vectors to obtain an artificial antigen presenting cell (aAPC) population, wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the myeloid cells express CD86 and 4-1BBL proteins; and (d) contacting the TIL population with the aAPC population in cell culture medium wherein the myeloid cells are EM-3 cells.

[0244]

[0335] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the CD86 protein comprises the amino acid sequence set forth in SEQ ID NO:8, or a conservative amino acid substitution thereof, and the 4-1BBL protein comprises the amino acid sequence set forth in SEQ ID NO:9, or a conservative amino acid substitution thereof.

[0245]

[0336] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the nucleic acid encoding CD86 comprises the nucleic acid sequence set forth in SEQ ID NO:19 and the nucleic acid encoding 4-1BBL comprises the nucleic acid sequence set forth in SEQ ID NO:16.

[0246]

[0337] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium, wherein the expansion is performed using a gas-permeable vessel.

[0247]

[0338] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the ratio of the TIL population to the aAPC population is 1:200 to 1:400.

[0248]

[0339] In one embodiment, the present invention provides a method for expanding a population of tumor infiltrating lymphocytes (TILs), the method comprising: (a) transducing myeloid cells with one or more viral vectors to obtain a population of artificial antigen presenting cells (aAPCs), wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and wherein the myeloid cells express CD86 and 4-1BBL proteins; and (b) contacting the TIL population with the aAPC population in cell culture medium wherein the ratio of the TIL population to the aAPC population is about 1:300.

[0249]

[0340] In one embodiment, the present invention provides a method for expanding tumor infiltrating lymphocytes (TILs), the method comprising contacting a TIL population with a myeloid artificial antigen presenting cell (aAPC), wherein the myeloid aAPC comprises at least two costimulatory ligands that specifically bind to at least two costimulatory molecules on the TILs, wherein binding of the costimulatory molecules to the costimulatory ligands induces proliferation of the TILs, thereby specifically expanding the TILs, and wherein the at least two costimulatory ligands comprise CD86 and 4-1BBL.

[0250]

[0341] In any of the foregoing embodiments, the aAPCs may further comprise OX40L in addition to 4-1BBL, or may comprise OX40L in place of 4-1BBL.

[0251]

[0342] In one embodiment, the method of expanding or treating cancer includes obtaining TILs from a patient tumor sample. Patient tumor samples may be obtained using methods known in the art. For example, TILs may be obtained from tumor fragments (about 1 to about 8 mm) from enzymatic tumor digests and sharp scrapings. 3Tumor digests may be cultured from tumor tissue (size of 1000 to 10 ... 2 The cell suspension may be prepared by incubating at 4° C. for 30 minutes, followed by repeated cycles of mechanical dissociation and incubation under the aforementioned conditions until only small tissue fragments are present. At the end of this process, if the cell suspension contains a large number of red blood cells or dead cells, a density gradient separation using FICOLL branched hydrophilic polysaccharides may be performed to remove those cells. Alternative methods known in the art may be used, such as those described in U.S. Patent Application Publication No. 2012 / 0244133 A1, the disclosure of which is incorporated herein by reference. Any of the aforementioned methods may be used in any of the embodiments described herein for the method of expanding TILs or the method of treating cancer.

[0252]

[0343] In certain embodiments, REP can be performed in a gas-permeable container using aAPCs of the present disclosure by any suitable method. For example, TILs can be rapidly expanded using non-specific T cell receptor stimulation in the presence of interleukin-2 (IL-2) or interleukin-15 (IL-15). Non-specific T cell receptor stimulation can include, for example, about 30 ng / mL of anti-CD3 antibody, such as monoclonal anti-CD3 antibody OKT-3 (commercially available from Ortho-McNeil, Raritan, NJ, USA or Miltenyi Biotech, Auburn, CA, USA) or UHCT-1 (commercially available from BioLegend, San Diego, CA, USA). The TILs can be rapidly expanded by further stimulating the TILs in vitro with one or more antigens of the cancer, including one or more epitopes thereof, optionally expressed from a vector, such as human leukocyte antigen A2 (HLA-A2) binding peptides, e.g., 0.3 μM MART-1:26-35 (27L) or gp100:209-217 (210M), optionally in the presence of a T cell growth factor, such as 300 IU / mL IL-2 or IL-15. Other suitable antigens can include, for example, NY-ESO-1, TRP-1, TRP-2, tyrosinase cancer antigen, MAGE-A3, SSX-2, and VEGFR2, or antigenic portions thereof. The TILs can also be rapidly expanded by restimulation with the same one or more antigens of the cancer pulsed onto HLA-A2 expressing antigen presenting cells. Alternatively, TILs can be further restimulated, for example, with irradiated autologous lymphocytes or with irradiated HLA-A2+ allogeneic lymphocytes and IL-2.

[0253]

[0344] In certain embodiments, the method for expanding TILs may include using about 5000 mL to about 25000 mL of cell culture medium, about 5000 mL to about 10000 mL of cell culture medium, or about 5800 mL to about 8700 mL of cell culture medium. In certain embodiments, the method for expanding TILs may include using about 1000 mL to about 2000 mL of cell culture medium, about 2000 mL to about 3000 mL of cell culture medium, about 3000 mL to about 4000 mL of cell culture medium, about 4000 mL to about 5000 mL of cell culture medium, about 5000 mL to about 6000 mL of cell culture medium, about 6000 mL to about 7000 mL of cell culture medium, about 7000 mL to about 8000 mL of cell culture medium, about 8000 mL to about 9000 mL of cell culture medium, about 9000 mL to about 10000 mL of cell culture medium, about 10000 mL to about 15000 mL of cell culture medium, about 15000 mL to about 20000 mL of cell culture medium, or about 20000 mL to about 25000 mL of cell culture medium. In some embodiments, no more than one type of cell culture medium is used to expand the number of TILs. Any suitable cell culture medium may be used, for example, AIM-V cell culture medium (L-glutamine, 50 μM streptomycin sulfate, and 10 μM gentamicin sulfate) cell culture medium (Invitrogen, Carlsbad, CA, USA). In this regard, the method of the present invention advantageously reduces the amount of medium and the number of types of medium required to expand the number of TILs. In some embodiments, expanding the number of TILs may include feeding the cells no more frequently than every 2 or 3 days. Expanding the number of cells in a gas-permeable container simplifies the procedure required to expand the number of cells by reducing the feeding frequency required for the expansion culture of the cells.

[0254]

[0345] In one embodiment, the rapid expansion culture is performed using a gas permeable container. Such an embodiment is for a cell population of about 5×10 5 cells / cm 2 From 10×10 6 ~30×10 6 cells / cm 2In some embodiments, the expansion is performed without feeding. In some embodiments, the expansion is performed without feeding as long as the medium is present in the gas permeable flask to a height of about 10 cm. In some embodiments, there is no feeding, but there is the addition of one or more cytokines. In some embodiments, the cytokine can be added as a bolus without the need to mix the cytokine with the medium at all. Such vessels, devices, and methods are known in the art and have been used to expand TILs, including, for example, U.S. Patent Application Publication No. 2014 / 0377739 A1, WO 2014 / 210036 A1, U.S. Patent Application Publication No. 2013 / 0115617 A1, WO 2013 / 188427 A1, U.S. Patent Application Publication No. 2011 / 0136228 A1, U.S. Patent Application Publication No. 8,809,050, WO 2011 / 072088 A2, U.S. Patent Application Publication No. 2016 / 0208216 A1, U.S. Patent Application Publication No. 2012 / 0244133 A1, WO 2012 / 129201 A1, U.S. Patent Application Publication No. 2013 / 0102075 A1, U.S. Patent No. 8,956,860, International Publication No. WO 2013 / 173835 A1, and U.S. Patent Application Publication No. 2015 / 0175966 A1, the disclosures of which are incorporated herein by reference. Such processes are also described in Jin, et al., J. Immunotherapy 2012, 35, 283-292, the disclosures of which are incorporated herein by reference.

[0255]

[0346] In one embodiment, the gas permeable vessel is a G-Rex 10 flask (Wilson Wolf Manufacturing Corporation, New Brighton, MN, USA). 2 In one embodiment, the gas permeable container comprises a cell culture medium volume of 40 mL. In one embodiment, the gas permeable container provides 100-300 million TILs after two medium exchanges.

[0256]

[0347] In one embodiment, the gas permeable vessel is a G-Rex 100 flask (Wilson Wolf Manufacturing Corporation, New Brighton, MN, USA). 2 In one embodiment, the gas permeable container comprises a cell culture medium volume of 450 mL. In one embodiment, the gas permeable container provides 1-3 billion TILs after two medium exchanges.

[0257]

[0348] In one embodiment, the gas permeable vessel is a G-Rex 100M flask (Wilson Wolf Manufacturing Corporation, New Brighton, MN, USA). 2 In one embodiment, the gas permeable container comprises a cell culture medium volume of 1000 mL. In one embodiment, the gas permeable container provides 1-3 billion TILs without medium exchange.

[0258]

[0349] In one embodiment, the gas permeable vessel is a G-Rex 100 L flask (Wilson Wolf Manufacturing Corporation, New Brighton, MN, USA). 2 In one embodiment, the gas permeable container comprises a cell culture medium volume of 2000 mL. In one embodiment, the gas permeable container provides 1-3 billion TILs without medium exchange.

[0259]

[0350] In one embodiment, the gas permeable container is a G-Rex 24-well plate (Wilson Wolf Manufacturing Corporation, New Brighton, MN, USA). In one embodiment, the gas permeable container comprises a plate with wells, where each well is 2 cm 2 In one embodiment, the gas permeable container comprises a plate with wells, where each well contains 8 mL of cell culture medium volume. In one embodiment, the gas permeable container provides 20-60 million cells per well after two medium changes.

[0260]

[0351] In one embodiment, the gas permeable container is a G-Rex 6-well plate (Wilson Wolf Manufacturing Corporation, New Brighton, MN, USA). In one embodiment, the gas permeable container comprises a plate with wells, where each well is 10 cm 2 In one embodiment, the gas permeable container comprises a plate with wells, where each well contains a volume of 40 mL of cell culture medium. In one embodiment, the gas permeable container provides 100-300 million cells per well after two medium changes.

[0261]

[0352] In some embodiments, the cell culture medium in the first and / or second gas permeable container is unfiltered. The use of unfiltered cell culture medium can simplify the procedures required to expand the number of cells. In some embodiments, the cell culture medium in the first and / or second gas permeable container does not contain β-mercaptoethanol (BME).

[0262]

[0353] In one embodiment, the duration of the method includes obtaining a tumor tissue sample from a mammal; culturing the tumor tissue sample in a first gas permeable container having cell culture medium therein; obtaining TILs from the tumor tissue sample; and expanding the number of TILs in a second gas permeable container having cell culture medium therein using aAPCs for about 14 to about 42 days, e.g., about 28 days.

[0263]

[0354] In one embodiment, the rapid expansion culture comprises about 1×10 9 ~Approx. 1×10 11 In one embodiment, about 1×10 aAPCs are used for rapid expansion. 9 In one embodiment, about 1×10 aAPCs are used for rapid expansion. 10 In one embodiment, about 1×10 aAPCs are used for rapid expansion. 11 aAPCs are used.

[0264]

[0355] In certain embodiments, the TIL to aAPC ratio (TIL:aAPC) is 1:5, 1:10, 1:15, 1:20, 1:25, 1:30, 1:35, 1:40, 1:45, 1:50, 1:55, 1:60, 1:65, 1:70, 1:75, 1:80, 1:85, 1:90, 1:95, 1:100, 1:105, 1:110, 1:115, 1:120, 1:130, 1:140, 1:150, 1:160, 1:170, 1:180, 1:190, 1:200, 1:210, 1:220, 1:230, 1:240, 1:250, 1:260, 1:270, 1:280, 1:290, 1:300, 1:310, 1:320, 1:330, 1:340, 1:350, 1:360, 1:370, 1:380, 1:390, 1:400, 1:410, 1:420, 1:430, 1:440, 1:450, 1:500, 1:550, 1:600, 1:650, 1:700, 1:750, 1:800, 1:850, 1:900, 1:950, 1:1000, 1:1050, 1:1100, 1:1150, 1:1200, 1:125, 1:130, 1:135, 1:140, 1:145, 1:150, 1:155, 1:160, 1:165, 1:170, 1:175, 1:180, 1:185, 1:190, 1:195, 1:200, 1:225, 1:250, 1:275, 1:300, 1:350, 1:400, 1:450, and 1:500. In a preferred embodiment, the TIL to aAPC ratio (TIL:aAPC) is about 1:90. In a preferred embodiment, the TIL to aAPC ratio (TIL:aAPC) is about 1:95. In a preferred embodiment, the TIL to aAPC ratio (TIL:aAPC) is about 1:100. In a preferred embodiment, the ratio of TILs to aAPCs (TIL:aAPC) is about 1: 105. In a preferred embodiment, the ratio of TILs to aAPCs (TIL:aAPC) is about 1: 110.

[0265]

[0356] In some embodiments, the ratio of TILs to aAPCs in the rapid expansion culture is about 1:25, about 1:50, about 1:100, about 1:125, about 1:150, about 1:175, about 1:200, about 1:225, about 1:250, about 1:275, about 1:300, about 1:325, about 1:350, about 1:375, about 1:400, or about 1:500. In some embodiments, the ratio of TILs to aAPCs in the rapid expansion culture is 1:50 to 1:300. In some embodiments, the ratio of TILs to aAPCs in the rapid expansion culture is 1:100 to 1:200.

[0266]

[0357] In some embodiments, the cell culture medium further comprises IL-2. In a preferred embodiment, the cell culture medium comprises about 3000 IU / mL of IL-2. In some embodiments, the cell culture medium comprises about 1000 IU / mL, about 1500 IU / mL, about 2000 IU / mL, about 2500 IU / mL, about 3000 IU / mL, about 3500 IU / mL, about 4000 IU / mL, about 4500 IU / mL, about 5000 IU / mL, about 5500 IU / mL, about 6000 IU / mL, about 6500 IU / mL, about 7000 IU / mL, about 7500 IU / mL, or about 8000 IU / mL of IL-2. In certain embodiments, the cell culture medium comprises between 1000-2000 IU / mL, 2000-3000 IU / mL, 3000-4000 IU / mL, 4000-5000 IU / mL, 5000-6000 IU / mL, 6000-7000 IU / mL, 7000-8000 IU / mL, or 8000 IU / mL of IL-2.

[0267]

[0358] In some embodiments, the cell culture medium comprises an OKT-3 antibody. In a preferred embodiment, the cell culture medium comprises about 30 ng / mL of an OKT-3 antibody. In some embodiments, the cell culture medium comprises about 0.1 ng / mL, about 0.5 ng / mL, about 1 ng / mL, about 2.5 ng / mL, about 5 ng / mL, about 7.5 ng / mL, about 10 ng / mL, about 15 ng / mL, about 20 ng / mL, about 25 ng / mL, about 30 ng / mL, about 35 ng / mL, about 40 ng / mL, about 50 ng / mL, about 60 ng / mL, about 70 ng / mL, about 80 ng / mL, about 90 ng / mL, about 100 ng / mL, about 200 ng / mL, about 500 ng / mL, and about 1 μg / mL of an OKT-3 antibody. In certain embodiments, the cell culture medium contains 0.1 ng / mL to 1 ng / mL, 1 ng / mL to 5 ng / mL, 5 ng / mL to 10 ng / mL, 10 ng / mL to 20 ng / mL, 20 ng / mL to 30 ng / mL, 30 ng / mL to 40 ng / mL, 40 ng / mL to 50 ng / mL, and 50 ng / mL to 100 ng / mL of OKT-3 antibody.

[0268]

[0359] In one embodiment, the rapid expansion process of TILs can be performed using T-175 flasks and gas-permeable bags as previously described (Tran, et al., J. Immunother. 2008, 31, 742-51; Dudley, et al., J. Immunother. 2003, 26, 332-42) or gas-permeable cultureware (G-Rex flasks, commercially available from Wilson Wolf Manufacturing Corporation, New Brighton, MN, USA). For rapid expansion of TILs in T-175 flasks, 1×10 cells suspended in 150 mL of medium were used. 6 TILs may be added to each T-175 flask. TILs may be cultured with aAPCs at a ratio of 1 TIL to 100 aAPCs, and cells were cultured in a 1:1 mixture of CM and AIM-V medium supplemented with 3000 IU (international units) / mL IL-2 and 30 ng / ml anti-CD3 antibody (e.g., OKT-3). The T-175 flasks were incubated at 37°C, 5% CO 2On day 5, half of the medium may be replaced using 50 / 50 medium containing 3000 IU / mL IL-2. On day 7, cells from two T-175 flasks may be combined into a 3 liter bag and the 300 mL of TIL suspension may be added with 300 mL of AIM V containing 5% human AB serum and 3000 IU / mL IL-2. The number of cells in each bag may be counted daily or every two days and fresh medium may be added to keep the cell number at 0.5-2.0 x 10 6 cells / mL.

[0269]

[0360] In one embodiment, for TIL rapid expansion culture in a 100 cm gas permeable silicone bottom, 500 mL capacity gas permeable flask (G-Rex 100, commercially available from Wilson Wolf Manufacturing Corporation, New Brighton, MN, USA), 5×10 cells were cultured in 400 mL of 50 / 50 medium supplemented with 5% human AB serum, 3000 IU / mL IL-2, and 30 ng / mL anti-CD3 (OKT-3). 6 Or 10 x 10 6 TILs can be cultured with aAPCs at a ratio of 1:100. G-Rex 100 flasks are incubated at 37°C, 5% CO 2 On day 5, 250 mL of the supernatant may be removed and placed in a centrifuge bottle and centrifuged at 1500 rpm (revolutions per minute; 491×g) for 10 minutes. The TIL pellet may be resuspended in 150 mL of fresh medium containing 5% human AB serum, 3000 IU / mL IL-2, and added back to the original G-Rex 100 flask. If the TILs are to be continuously expanded in the G-Rex 100 flasks, on day 7, the TILs of each G-Rex 100 may be suspended in the 300 mL of medium present in each flask, and this cell suspension may be split into three 100 mL aliquots that may be used to seed three G-Rex 100 flasks. Then, 150 mL of AIM-V containing 5% human AB serum and 3000 IU / mL IL-2 may be added to each flask. The G-Rex 100 flasks may be incubated at 37° C., 5% CO 2After 4 days, 150 mL of AIM-V containing 3000 IU / mL IL-2 can be added to each G-Rex 100 flask. Cells can be harvested on day 14 of culture.

[0270]

[0361] In one embodiment, TILs may be prepared as follows: 2 mm in complete medium (CM) containing AIM-V medium (Invitrogen Life Technologies, Carlsbad, Calif.) supplemented with 2 mM glutamine (Mediatech, Inc. Manassas, Va.), 100 U / mL penicillin (Invitrogen Life Technologies), 100 μg / mL streptomycin (Invitrogen Life Technologies), 5% heat-inactivated human AB serum (Valley Biomedical, Inc. Winchester, Va.), and 600 IU / mL rhIL-2 (Chiron, Emeryville, Calif.). 3 Culturing tumor fragments. For enzymatic digestion of solid tumors, tumor specimens were diced in RPMI-1640, washed, centrifuged at 800 rpm for 5 min at 15-22°C, and resuspended in enzymatic digestion buffer (0.2 mg / mL collagenase and 30 units / mL DNase in RPMI-1640), followed by overnight rotation at room temperature. TILs established from fragments were grown in CM for 3-4 weeks and expanded fresh or frozen in heat-inactivated HAB serum containing 10% dimethyl sulfoxide (DMSO) and stored at -180°C until testing. Tumor associated lymphocytes (TAL) obtained from harvested ascites were cultured at 3 × 10 6 Cells / well were seeded in CM in 24-well plates and TIL growth was examined approximately every other day using a low-magnification inverted microscope.

[0271]

[0362] In one embodiment, the TILs are expanded in a gas-permeable container. The gas-permeable container is used to expand the TILs using PBMCs using methods, compositions, and devices known in the art, including those described in U.S. Patent Application Publication No. 2005 / 0106717 A1, the disclosure of which is incorporated herein by reference. In one embodiment, the TILs are expanded in a gas-permeable bag. In one embodiment, the TILs are expanded using a cell expansion system that expands the TILs in a gas-permeable bag, such as the Xuri Cell Expansion System W25 (GE Healthcare). In one embodiment, the TILs are expanded using a cell expansion system that expands the TILs in a gas-permeable bag, such as the WAVE Bioreactor System, also known as the Xuri Cell Expansion System W5 (GE Healthcare). In certain embodiments, the cell expansion culture system comprises a gas permeable cell bag having a volume selected from the group consisting of about 100 mL, about 200 mL, about 300 mL, about 400 mL, about 500 mL, about 600 mL, about 700 mL, about 800 mL, about 900 mL, about 1 L, about 2 L, about 3 L, about 4 L, about 5 L, about 6 L, about 7 L, about 8 L, about 9 L, about 10 L, about 11 L, about 12 L, about 13 L, about 14 L, about 15 L, about 16 L, about 17 L, about 18 L, about 19 L, about 20 L, about 25 L, and about 30 L. In one embodiment, the cell expansion culture system includes a gas permeable cell bag having a volume range selected from the group consisting of 50-150 mL, 150-250 mL, 250-350 mL, 350-450 mL, 450-550 mL, 550-650 mL, 650-750 mL, 750-850 mL, 850-950 mL, and 950-1050 mL.In some embodiments, the cell expansion culture system includes a gas permeable cell bag having a volume range selected from the group consisting of 1L-2L, 2L-3L, 3L-4L, 4L-5L, 5L-6L, 6L-7L, 7L-8L, 8L-9L, 9L-10L, 10L-11L, 11L-12L, 12L-13L, 13L-14L, 14L-15L, 15L-16L, 16L-17L, 17L-18L, 18L-19L, and 19L-20L. In some embodiments, the cell expansion culture system includes a gas permeable cell bag having a volume range selected from the group consisting of 0.5L-5L, 5L-10L, 10L-15L, 15L-20L, 20L-25L, and 25L-30L. In certain embodiments, the cell expansion culture system utilizes a rocking time of about 30 minutes, about 1 hour, about 2 hours, about 3 hours, about 4 hours, about 5 hours, about 6 hours, about 7 hours, about 8 hours, about 9 hours, about 10 hours, about 11 hours, about 12 hours, about 24 hours, about 2 days, about 3 days, about 4 days, about 5 days, about 6 days, about 7 days, about 8 days, about 9 days, about 10 days, about 11 days, about 12 days, about 13 days, about 14 days, about 15 days, about 16 days, about 17 days, about 18 days, about 19 days, about 20 days, about 21 days, about 22 days, about 23 days, about 24 days, about 25 days, about 26 days, about 27 days, and about 28 days. In some embodiments, the cell expansion culture system utilizes rocking times of 30 minutes to 1 hour, 1 hour to 12 hours, 12 hours to 1 day, 1 day to 7 days, 7 days to 14 days, 14 days to 21 days, and 21 days to 28 days. In some embodiments, the cell expansion culture system utilizes rocking speeds of about 2 rocks / min, about 5 rocks / min, about 10 rocks / min, about 20 rocks / min, about 30 rocks / min, and about 40 rocks / min. In some embodiments, the cell expansion culture system utilizes rocking speeds of 2 rocks / min to 5 rocks / min, 5 rocks / min to 10 rocks / min, 10 rocks / min to 20 rocks / min, 20 rocks / min to 30 rocks / min, and 30 rocks / min to 40 rocks / min. In certain embodiments, the cell expansion culture system utilizes rocking angles of about 2°, about 3°, about 4°, about 5°, about 6°, about 7°, about 8°, about 9°, about 10°, about 11°, and about 12°.In certain embodiments, the cell expansion culture system utilizes rocking angles of 2°-3°, 3°-4°, 4°-5°, 5°-6°, 6°-7°, 7°-8°, 8°-9°, 9°-10°, 10°-11°, and 11°-12°.

[0272]

[0363] In some embodiments, the method of expanding TILs using aAPCs further comprises selecting TILs for superior tumor responsiveness. Any selection method known in the art can be used. For example, the method described in U.S. Patent Application Publication No. 2016 / 0010058 A1 (the disclosure of which is incorporated herein by reference) can be used to select TILs for superior tumor responsiveness.

[0273]

[0364] In one embodiment, the aAPCs of the present invention can be used for the expansion of T cells. Any of the above-mentioned embodiments of the present invention that describe the expansion of TILs can also be applied to the expansion of T cells. In one embodiment, the aAPCs of the present invention can be used to expand CD8 + T cells may be expanded. In one embodiment, the aAPCs of the invention are used to +T cells may be expanded. In some embodiments, aAPCs of the present invention may be used to expand T cells transduced with chimeric antigen receptors (CAR-T). In some embodiments, aAPCs of the present invention may be used to expand T cells comprising modified T cell receptors (TCR). CAR-T cells may be targeted against any suitable antigen, including CD19, as described in the art, for example, in U.S. Patent Nos. 7,070,995; 7,446,190; 8,399,645; 8,916,381; and 9,328,156, the disclosures of which are incorporated herein by reference. The modified TCR cells may be targeted against any suitable antigen, or antigenic portion thereof, including NY-ESO-1, TRP-1, TRP-2, tyrosinase cancer antigen, MAGE-A3, SSX-2, and VEGFR2, as described in the art, for example, in U.S. Pat. Nos. 8,367,804 and 7,569,664, the disclosures of which are incorporated herein by reference.

[0274] Methods of Treating Cancer and Other Diseases

[0365] The compositions and methods described herein can be used in methods of treating disease. In some embodiments, the compositions and methods are for use in treating hyperproliferative disorders. The compositions and methods can also be used in treating other disorders as described herein and in the following paragraphs. The TILs, populations and compositions described herein can be for use in treating disease. In some embodiments, the TILs, populations and compositions described herein are for use in treating hyperproliferative disorders.

[0275]

[0366] In some embodiments, the hyperproliferative disorder is cancer. In some embodiments, the hyperproliferative disorder is a solid tumor cancer. In some embodiments, the solid tumor cancer is selected from the group consisting of melanoma, ovarian cancer, cervical cancer, non-small cell lung cancer (NSCLC), lung cancer, bladder cancer, breast cancer, cancer caused by human papillomavirus, head and neck cancer, renal cancer, and renal cell carcinoma, pancreatic cancer, and glioblastoma. In some embodiments, the hyperproliferative disorder is a hematological malignancy. In some embodiments, the hematological malignancy is selected from the group consisting of chronic lymphocytic leukemia, acute lymphoblastic leukemia, diffuse large B-cell lymphoma, non-Hodgkin's lymphoma, Hodgkin's lymphoma, follicular lymphoma, and mantle cell lymphoma.

[0276]

[0367] In one embodiment, the present invention includes a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising: (a) obtaining a first TIL population from a tumor resected from a patient; (b) obtaining a second TIL population by rapid expansion of the first TIL population using a population of artificial antigen presenting cells (aAPC) in cell culture medium, the second TIL population being at least 50-fold more numerous than the first TIL population; and (c) administering a therapeutically effective amount of the second TIL population to a patient having cancer. In one embodiment, the aAPC comprises MOLM-14 cells transduced with one or more viral vectors, wherein the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express CD86 and 4-1BBL proteins. In one embodiment, the rapid expansion is performed for a period of 14 days or less.

[0277]

[0368] In one embodiment, the present invention includes a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising the steps of: (a) obtaining a first TIL population from a tumor resected from a patient; (b) obtaining a second TIL population by initial expansion of the first TIL population using a first artificial antigen presenting cell (aAPC) population in a first cell culture medium, wherein the second TIL population is at least 10-fold more numerous than the first TIL population, and wherein the first cell culture medium comprises IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using a second aAPC population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the first TIL population; and wherein the second cell culture medium comprises IL-2 and OKT-3; and (d) administering a therapeutically effective amount of the third TIL population to a patient having cancer. In some embodiments, the aAPCs comprise MOLM-14 cells transduced with one or more viral vectors, where the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express CD86 and 4-1BBL proteins. In some embodiments, the rapid expansion is performed for a period of 14 days or less. In some embodiments, the initial expansion is performed using gas-permeable vessels.

[0278]

[0369] In one embodiment, the present invention includes a method of treating cancer with a tumor infiltrating lymphocyte (TIL) population, comprising the steps of: (a) obtaining a first TIL population from a tumor resected from a patient; (b) obtaining a second TIL population by initial expansion of the first TIL population in a first cell culture medium, wherein the second TIL population is at least 10-fold more numerous than the first TIL population, and wherein the first cell culture medium comprises IL-2; (c) obtaining a third TIL population by rapid expansion of the second TIL population using an artificial antigen presenting cell (aAPC) population in a second cell culture medium, wherein the third TIL population is at least 50-fold more numerous than the first TIL population; and wherein the second cell culture medium comprises IL-2 and OKT-3; and (d) administering a therapeutically effective amount of the third TIL population to a patient having cancer. In one embodiment, the aAPCs comprise MOLM-14 cells transduced with one or more viral vectors, where the one or more viral vectors comprise a nucleic acid encoding CD86 and a nucleic acid encoding 4-1BBL, and the MOLM-14 cells express CD86 and 4-1BBL proteins. In one embodiment, the rapid expansion is performed for a period of 14 days or less.

[0279]

[0370] In one embodiment, the invention includes a method of treating cancer with a TIL population, where the patient is pretreated with non-myeloablative chemotherapy prior to infusion of the TILs according to the present disclosure. In one embodiment, the non-myeloablative chemotherapy comprises cyclophosphamide 60 mg / kg / day for two days (days 27 and 26 prior to TIL infusion) and fludarabine 25 mg / m 2 / day for 5 days (days 27-23 prior to TIL infusion). In one embodiment, after non-myeloablative chemotherapy and TIL infusion according to the present disclosure (day 0), the patient receives an intravenous infusion of 720,000 IU / kg of IL-2 intravenously every 8 hours to physiologically tolerated dose.

[0280]

[0371] The efficacy of the compounds and combinations of compounds described herein in treating, preventing and / or managing the applicable disease or disorder can be tested using various models known in the art that provide guidelines for treating human diseases.For example, models for determining the efficacy of ovarian cancer treatment are described, for example, in Mullany, et al., Endocrinology 2012, 153, 1585-92; and Fong, et al., J. Ovarian Res. 2009, 2, 12. Models for determining the efficacy of pancreatic cancer treatment are described, for example, in Herreros- Villanueva, et al., World J. Gastroenterol. 2012, 18, 1286-1294. Models for determining the efficacy of breast cancer treatment are described, for example, in Fantozzi, Breast Cancer Res. 2006, 8, 212. Models for determining the efficacy of melanoma treatments are described, for example, in Damsky, et al., Pigment Cell & Melanoma Res. 2010, 23, 853-859. Models for determining the efficacy of lung cancer treatments are described, for example, in Meuwissen, et al., Genes & Development, 2005, 19, 643-664. Models for determining the efficacy of lung cancer treatments are described, for example, in Kim, Clin. Exp. Otorhinolaryngol. 2009, 2, 55-60; and Sano, Head Neck Oncol. 2009, 1, 32.

[0281] Nonmyeloablative lymphodepletion with chemotherapy

[0372] In one embodiment, the invention includes a method of treating cancer with a TIL population, wherein the patient is pretreated with non-myeloablative chemotherapy prior to infusion of the TILs according to the present disclosure. In one embodiment, the invention provides a TIL population obtainable by the methods described herein for use in treating cancer, wherein the TIL population is for treating a patient pretreated with non-myeloablative chemotherapy. In one embodiment, the non-myeloablative chemotherapy comprises cyclophosphamide 60 mg / kg / day for two days (days 27 and 26 prior to TIL infusion) and fludarabine 25 mg / m 2 / day for 5 days (days 27-23 prior to TIL infusion). In one embodiment, following non-myeloablative chemotherapy and TIL infusion according to the present disclosure (day 0), the patient receives an intravenous infusion of 720,000 IU / kg IL-2 (aldesleukin, commercially available as PROLEUKIN) intravenously every 8 hours to a physiologically tolerated dose.

[0282]

[0373] Experimental findings indicate that lymphodepletion prior to adoptive transfer of tumor-specific T lymphocytes plays an important role in enhancing therapeutic efficacy by removing regulatory T cells and competing elements of the immune system ("cytokine sinks"). Thus, some embodiments of the invention utilize a lymphodepletion step (sometimes referred to as "immunosuppressive conditioning") on patients prior to introduction of TILs expanded with aAPCs of the invention.

[0283]

[0374] Lymphocyte depletion is generally achieved using the administration of fludarabine or cyclophosphamide (the active form of which is called mafosfamide) and combinations thereof. Such methods are described in Gassner, et al., Cancer Immunol. Immunother. 2011, 60, 75-85; Muranski, et al., Nat. Clin. Pract. Oncol., 2006, 3, 668-681; Dudley, et al., J. Clin. Oncol. 2008, 26, 5233-5239; and Dudley, et al., J. Clin. Oncol. 2005, 23, 2346-2357, all of which are incorporated herein by reference in their entirety.

[0284]

[0375] In some embodiments, fludarabine is administered at a concentration of 0.5 μg / mL to 10 μg / mL fludarabine. In some embodiments, fludarabine is administered at a concentration of 1 μg / mL fludarabine. In some embodiments, fludarabine treatment is administered for 1, 2, 3, 4, 5, 6, or 7 days or more. In some embodiments, fludarabine is administered at a dosage of 10 mg / kg / day, 15 mg / kg / day, 20 mg / kg / day, 25 mg / kg / day, 30 mg / kg / day, 35 mg / kg / day, 40 mg / kg / day, or 45 mg / kg / day. In some embodiments, fludarabine treatment is administered at 35 mg / kg / day for 2 to 7 days. In some embodiments, fludarabine treatment is administered at 35 mg / kg / day for 4 to 5 days. In some embodiments, fludarabine treatment is administered at 25 mg / kg / day for 4 to 5 days.

[0285]

[0376] In some embodiments, the active form of cyclophosphamide, mafosfamide, is achieved by administration of cyclophosphamide at a concentration of 0.5 μg / ml to 10 μg / ml. In some embodiments, the active form of cyclophosphamide, mafosfamide, is achieved by administration of cyclophosphamide at a concentration of 1 μg / mL. In some embodiments, cyclophosphamide treatment is administered for 1, 2, 3, 4, 5, 6, or 7 days or more. In some embodiments, cyclophosphamide is administered at a concentration of 100 mg / m 2 / day, 150mg / m 2 / day, 175mg / m 2 / day, 200mg / m 2 / day, 225mg / m 2 / day, 250mg / m 2 / day, 275mg / m 2 / day or 300 mg / m 2 In some embodiments, cyclophosphamide is administered at a dosage of 35 mg / kg / day for 2-7 days. In some embodiments, cyclophosphamide treatment is administered at a dosage of 250 mg / kg / day. In some embodiments, cyclophosphamide is administered intravenously (iv). In some embodiments, cyclophosphamide treatment is administered at a dosage of 35 mg / kg / day for 2-7 days. 2 / day iv for 4-5 days. In some embodiments, cyclophosphamide treatment is administered at 250 mg / m 2 / day iv for 4 days.

[0286]

[0377] In some embodiments, lymphodepletion is performed by administering fludarabine and cyclophosphamide together to the patient. 2 / day iv, and cyclophosphamide 250 mg / m 2 / day iv for 4 days.

[0287]

[0378] In one embodiment, lymphodepletion is at 60 mg / m 2 / day for 2 days, followed by cyclophosphamide at 25 mg / m 2 This is accomplished by administration of fludarabine at a dose of 100 mg / day for 5 days.

[0288] Pharmaceutical Compositions, Dosages, and Administration Regimens

[0379] In some embodiments, the TILs expanded using aAPCs of the present disclosure are administered to a patient as a pharmaceutical composition. In some embodiments, the pharmaceutical composition is a suspension of TILs in a sterile buffer. The TILs expanded using aAPCs of the present disclosure may be administered by any suitable route as known in the art. Preferably, the TILs are administered as a single infusion, such as an intra-arterial or intravenous infusion, which preferably lasts about 30-60 minutes. Other suitable routes of administration include intraperitoneal, intrathecal, and intralymphatic administration.

[0289]

[0380] Any suitable dose of TILs can be administered. Preferably, about 2.3×10 10 ~Approx. 13.7×10 10 When TILs were administered, specifically when the cancer was melanoma, an average of approximately 7.8 × 10 10 In one embodiment, the TIL is about 1.2×10 10 ~Approx. 4.3×10 10 of TILs will be administered.

[0290]

[0381] In some embodiments, the number of TILs provided in the pharmaceutical composition of the present invention is about 1×10 6 , 2×10 6 , 3×10 6 , 4×10 6 , 5×10 6 , 6×10 6 , 7×10 6 , 8×10 6 , 9×10 6 , 1×10 7 , 2×10 7 , 3×10 7 , 4×10 7 , 5×10 7 , 6×10 7 , 7×10 7 , 8×10 7 , 9×10 7 , 1×10 8 , 2×10 8 , 3×108 , 4×10 8 , 5×10 8 , 6×10 8 , 7×10 8 , 8×10 8 , 9×10 8 , 1×10 9 , 2×10 9 , 3×10 9 , 4×10 9 , 5×10 9 , 6×10 9 , 7×10 9 , 8×10 9 , 9×10 9 , 1×10 10 , 2×10 10 , 3×10 10 , 4×10 10 , 5×10 10 , 6×10 10 , 7×10 10 , 8×10 10 , 9×10 10 , 1×10 11 , 2×10 11 , 3×10 11 , 4×10 11 , 5×10 11 , 6×10 11 , 7×10 11 , 8×10 11 , 9×10 11 , 1×10 12 , 2×10 12 , 3×10 12 , 4×10 12 , 5×10 12 , 6×10 12 , 7×10 12 , 8×10 12 , 9×10 12 , 1×10 13 , 2×10 13 , 3×10 13 , 4×10 13 , 5×10 13 , 6×10 13 , 7×10 13 , 8×10 13 , and 9×10 13 In one embodiment, the number of TILs provided in the pharmaceutical composition of the present invention is 1×10 6 ~5×106 , 5×10 6 ~1×10 7 , 1×10 7 ~5×10 7 , 5×10 7 ~1×10 8 , 1×10 8 ~5×10 8 , 5×10 8 ~1×10 9 , 1×10 9 ~5×10 9 , 5×10 9 ~1×10 10 , 1×10 10 ~5×10 10 , 5×10 10 ~1×10 11 , 5×10 11 ~1×10 12 , 1×10 12 ~5×10 12 , and 5 × 10 12 ~1×10 13 The range is.

[0291]

[0382] In some embodiments, the concentration of TILs provided in the pharmaceutical composition of the invention is, for example, 100%, 90%, 80%, 70%, 60%, 50%, 40%, 30%, 20%, 19%, 18%, 17%, 16%, 15%, 14%, 13%, 12%, 11%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.4%, 0.3%, 0.2%, 0.1%, 0.09%, 0.08%, 0.07%, ... %, 0.06%, 0.05%, 0.04%, 0.03%, 0.02%, 0.01%, 0.009%, 0.008%, 0.007%, 0.006%, 0.005%, 0.004%, 0.003%, 0.002%, 0.001%, 0.0009%, 0.0008%, 0.0007%, 0.0006%, 0.0005%, 0.0004%, 0.0003%, 0.0002% or 0.0001% w / w, w / v or v / v.

[0292]

[0383] In some embodiments, the concentration of TILs provided in the pharmaceutical composition of the present invention is 90%, 80%, 70%, 60%, 50%, 40%, 30%, 20%, 19.75%, 19.50%, 19.25% 19%, 18.75%, 18.50%, 18.25% 18%, 17.75%, 17.50%, 17.25% 17%, 16.75%, 16.50%, 16.25% 16%, 15.75%, 15.50%, 15.25% 15%, 14.75%, 14.50%, 14.25% 14%, 13.75%, 13.50%, 13.25% 13%, 12.75%, 12.50%, 12.25% 12%, 11.75%, 11.50%, 11.25% 11%, 10.75%, 10.50%, 10.25% 10%, 9.75%, 9.50%, 9.25% 9%, 8.75%, 8.50%, 8.25% 8%, 7.75%, 7.50%, 7.25% 7%, 6.75%, 6.50%, 6.25% 6%, 5.75%, 5.50%, 5.25% 5%, 4.75%, 4.50%, 4.25%, 4%, 3.75%, 3.50%, 3.25%, 3%, 2.75%, 2.50%, 2.25%, 2%, 1.75%, 1.50%, 125%, 1%, 0.5%, 0.4%, 0.3%, 0.2%, 0.1%, 0.09%, 0.08%, 0.07%, 0.06%, 0.05%, 0.04%, 0.03%, 0.02%, 0.01%, 0.009%, 0.008%, 0.007%, 0.006%, 0.005%, 0.004%, 0.003%, 0.002%, 0.001%, 0.0009%, 0.0008%, 0.0007%, 0.0006%, 0.0005%, 0.0004%, 0.0003%, 0.0002% or greater than 0.0001% w / w, w / v, or v / v.

[0293]

[0384] In some embodiments, the concentration of TILs provided in the pharmaceutical composition of the present invention is from about 0.0001% to about 50%, from about 0.001% to about 40%, from about 0.01% to about 30%, from about 0.02% to about 29%, from about 0.03% to about 28%, from about 0.04% to about 27%, from about 0.05% to about 26%, from about 0.06% to about 25%, from about 0.07% to about 24% of the pharmaceutical composition. , about 0.08% to about 23%, about 0.09% to about 22%, about 0.1% to about 21%, about 0.2% to about 20%, about 0.3% to about 19%, about 0.4% to about 18%, about 0.5% to about 17%, about 0.6% to about 16%, about 0.7% to about 15%, about 0.8% to about 14%, about 0.9% to about 12%, or about 1% to about 10% w / w, w / v or v / v.

[0294]

[0385] In some embodiments, the concentration of TILs provided in the pharmaceutical compositions of the present invention ranges from about 0.001% to about 10%, about 0.01% to about 5%, about 0.02% to about 4.5%, about 0.03% to about 4%, about 0.04% to about 3.5%, about 0.05% to about 3%, about 0.06% to about 2.5%, about 0.07% to about 2%, about 0.08% to about 1.5%, about 0.09% to about 1%, about 0.1% to about 0.9% w / w, w / v or v / v of the pharmaceutical composition.

[0295]

[0386] In some embodiments, the amount of TILs provided in the pharmaceutical composition of the present invention is 10 g, 9.5 g, 9.0 g, 8.5 g, 8.0 g, 7.5 g, 7.0 g, 6.5 g, 6.0 g, 5.5 g, 5.0 g, 4.5 g, 4.0 g, 3.5 g, 3.0 g, 2.5 g, 2.0 g, 1.5 g, 1.0 g, 0.95 g, 0.9 g, 0.85 g, 0.8 g, 0.75 g, 0.7 g, 0.65 g, 0.6 g, 0.55 g, 0.5 g, 0.45 g, 0.4 g, 0.35 g, 0.3 g, 0.25 g, 0.2g, 0.15g, 0.1g, 0.09g, 0.08g, 0.07g, 0.06g, 0.05g, 0.04g, 0.03g, 0.02g, 0.01g, 0.009g, 0.008g, 0.007g, 0.006g, 0.005g, 0.004g, 0.003g, 0.002g, 0.001g, 0.0009g, 0.0008g, 0.0007g, 0.0006g, 0.0005g, 0.0004g, 0.0003g, 0.0002g, or 0.0001g.

[0296]

[0387] In some embodiments, the amount of TILs provided in the pharmaceutical composition of the present invention is 0.0001g, 0.0002g, 0.0003g, 0.0004g, 0.0005g, 0.0006g, 0.0007g, 0.0008g, 0.0009g, 0.001g, 0.0015g, 0.002 ... 5g, 0.003g, 0.0035g, 0.004g, 0.0045g, 0.005g, 0.0055g, 0.006g, 0.0065g, 0.00 7g, 0.0075g, 0.008g, 0.0085g, 0.009g, 0.0095g, 0.01g, 0.015g, 0.02g, 0.025g, 0 .03g, 0.035g, 0.04g, 0.045g, 0.05g, 0.055g, 0.06g, 0.065g, 0.07g, 0.075g, 0.0 8g, 0.085g, 0.09g, 0.095g, 0.1g, 0.15g, 0.2g, 0.25g, 0.3g, 0.35g, 0.4g, 0.45g, 0.5g, 0.55g, 0.6g, 0.65g, 0.7g, 0.75g, 0.8g, 0.85g, 0.9g, 0.95g, 1g, 1.5g, 2g, 2 .5, 3g, 3.5, 4g, 4.5g, 5g, 5.5g, 6g, 6.5g, 7g, 7.5g, 8g, 8.5g, 9g, 9.5g, or more than 10g.

[0297]

[0388] The TILs provided in the pharmaceutical composition of the present embodiment are effective over a wide dosage range. The exact dosage will depend on the route of administration, the dosage form of the compound, the sex and age of the subject to be treated, the weight of the subject to be treated, and the preferred choice and experience of the attending physician. Clinically established dosages of TILs may also be used where appropriate. The amount of pharmaceutical composition administered using the methods herein, such as the dosage of TILs, will depend on the human or mammal being treated, the severity of the disorder or condition, the rate of administration, the nature of the active pharmaceutical ingredient, and the discretion of the prescribing physician.

[0298]

[0389] In some embodiments, the TILs may be administered in a single dose. Such administration may be by injection, for example, intravenous injection. In some embodiments, the TILs may be administered in multiple doses. Administration may be once, twice, three times, four times, five times, six times, or more than six times per year. Administration may be once a month, once every two weeks, once a week, or once every other day. Administration of the TILs may be continued as long as necessary.

[0299]

[0390] In some embodiments, an effective dosage of TILs is about 1×10 6 , 2×10 6 , 3×10 6 , 4×10 6 , 5×10 6 , 6×10 6 , 7×10 6 , 8×10 6 , 9×10 6 , 1×10 7 , 2×10 7 , 3×10 7 , 4×10 7 , 5×10 7 , 6×10 7 , 7×10 7 , 8×10 7 , 9×10 7 , 1×10 8 , 2×10 8 , 3×10 8 , 4×10 8 , 5×10 8 , 6×10 8 , 7×10 8 , 8×10 8 , 9×10 8 , 1×10 9 , 2×10 9 , 3×10 9 , 4×10 9 , 5×10 9 , 6×10 9 , 7×10 9 , 8×10 9 , 9×10 9 , 1×10 10 , 2×10 10 , 3×10 10 , 4×10 10 , 5×10 10 , 6×10 10, 7×10 10 , 8×10 10 , 9×10 10 , 1×10 11 , 2×10 11 , 3×10 11 , 4×10 11 , 5×10 11 , 6×10 11 , 7×10 11 , 8×10 11 , 9×10 11 , 1×10 12 , 2×10 12 , 3×10 12 , 4×10 12 , 5×10 12 , 6×10 12 , 7×10 12 , 8×10 12 , 9×10 12 , 1×10 13 , 2×10 13 , 3×10 13 , 4×10 13 , 5×10 13 , 6×10 13 , 7×10 13 , 8×10 13 , and 9×10 13 In some embodiments, the effective dosage of TILs is 1×10 6 ~5×10 6 , 5×10 6 ~1×10 7 , 1×10 7 ~5×10 7 , 5×10 7 ~1×10 8 , 1×10 8 ~5×10 8 , 5×10 8 ~1×10 9 , 1×10 9 ~5×10 9 , 5×10 9 ~1×10 10 , 1×10 10 ~5×10 10 , 5×10 10 ~1×10 11 , 5×10 11 ~1×10 12 , 1×10 12 ~5×10 12, and 5 × 10 12 ~1×10 13 The range is.

[0300]

[0391] In some embodiments, an effective dosage of TILs is about 0.01 mg / kg to about 4.3 mg / kg, about 0.15 mg / kg to about 3.6 mg / kg, about 0.3 mg / kg to about 3.2 mg / kg, about 0.35 mg / kg to about 2.85 mg / kg, about 0.15 mg / kg to about 2.85 mg / kg, about 0.3 mg to about 2.15 mg / kg, about 0.45 mg / kg to about 1.7 mg / kg, about 0.15 mg / kg to about 1.3 mg / kg, about 0.5 mg / kg to about 1.8 mg / kg, about 0.6 mg / kg to about 1.8 mg / kg, about 0.7 mg / kg to about 1.8 mg / kg, about 0.8 mg / kg to about 1.8 mg / kg, about 0.9 mg / kg to about 1.6 mg / kg, about 0.9 mg / kg to about 1.8 ... .3mg / kg~about 1.15mg / kg, about 0.45mg / kg~about 1mg / kg, about 0.55mg / kg~about 0.85mg / kg, about 0.65mg / kg~about 0.8mg / kg, about 0.7mg / kg~about 0.7 5mg / kg, about 0.7mg / kg to about 2.15mg / kg, about 0.85mg / kg to about 2mg / kg, about 1mg / kg to about 1.85mg / kg, about 1.15mg / kg to about 1.7mg / kg, about 1.3mg / kg The range is from about 2.6 mg / kg to about 3.15 mg / kg, from about 2.7 mg / kg to about 3 mg / kg, from about 2.8 mg / kg to about 3 mg / kg, from about 2.85 mg / kg to about 2.95 mg / kg, from about 2.7 mg / kg to about 3 mg / kg, from about 2.8 mg / kg to about 3 mg / kg, or from about 2.85 mg / kg to about 2.95 mg / kg.

[0301]

[0392] In some embodiments, an effective dosage of TILs is from about 1 mg to about 500 mg, from about 10 mg to about 300 mg, from about 20 mg to about 250 mg, from about 25 mg to about 200 mg, from about 1 mg to about 50 mg, from about 5 mg to about 45 mg, from about 10 mg to about 40 mg, from about 15 mg to about 35 mg, from about 20 mg to about 30 mg, from about 23 mg to about 28 mg, from about 50 mg to about 150 mg, from about 60 mg to about 140 mg, The range is about 70 mg to about 130 mg, about 80 mg to about 120 mg, about 90 mg to about 110 mg, or about 95 mg to about 105 mg, about 98 mg to about 102 mg, about 150 mg to about 250 mg, about 160 mg to about 240 mg, about 170 mg to about 230 mg, about 180 mg to about 220 mg, about 190 mg to about 210 mg, about 195 mg to about 205 mg, or about 198 mg to about 207 mg.

[0302]

[0393] An effective amount of the TILs may be administered in either a single dose or multiple doses by any of the commonly accepted modes of administration for drugs having similar utilities, including intranasal and transdermal routes, by intra-arterial injection, intravenously, intraperitoneally, parenterally, intramuscularly, subcutaneously, topically, by implantation, or by inhalation. EXAMPLES

[0303] Working Example

[0394] The embodiments encompassed herein will now be described with reference to the following examples, which are provided for illustrative purposes only and should in no way be construed as limiting the disclosure encompassed herein to these examples, but rather as encompassing any variations that become evident as a result of the teachings provided herein.

[0304] Example 1 – Variability in expansion of tumor-infiltrating lymphocytes using PBMC feeder cells

[0395] The variability of TIL expansion achieved using PBMC feeder cells can be demonstrated by comparing the results of multiple TIL expansions of the same TIL line obtained from a patient. Figure 1 shows a typical result of rapid expansion of TILs using irradiated allogeneic PBMC feeder cells (PBMC feeder). Two TIL lines, designated M1015T and M1016T (1.3 × 10 5 cells) from 46 different irradiated feeder cell lots (1.3 × 10 7 ), IL-2 (3000 IU / mL, recombinant human IL-2 (e.g., aldesleukin or equivalent), CellGenix, Inc., Portsmouth, NH, USA) and OKT-3 (30 ng / mL, MACS GMP CD3 pure, Miltenyi Biotec GmbH, Bergisch Gladbach, Germany) in T25 flasks for 7 days. The fold expansion values ​​of the TILs were calculated on day 7. The figure shows the fold expansion figures of two TIL lines in separate stimulation experiments. For each TIL line, 46 different PBMC feeder lots were tested. The results ranged over 100-fold for each TIL line, highlighting the variability of expansion results using PBMC feeder cells. The aAPCs of the present invention provide reduced variability in expansion performance compared to PBMC feeders, as well as other advantages, as shown in the examples below.

[0305] Example 2 – Selection of myeloid cells for aAPC development

[0396] Phenotypic characterization was performed on various myeloid lineage cell lines to identify potential candidates for further modification into aAPCs for TIL expansion. Results are summarized in Table 5. The MOLM-14 cell line exhibited endogenous expression of CD64 and was selected for further development. The EM-3 cell line was selected based on the observed endogenous expression of ICOS-L (which was not observed for the EM-2 cell line, even though it was derived from the same patient).

[0306] [Table 5]

[0307] Example 3 – Preparation of MOLM-14 artificial antigen presenting cells (aMOLM14 aAPC)

[0397] MOLM-14 cells were obtained from the Leibniz-Institut DSMZ-Deutsche Sammlung von Mikroorganismen und Zellkulturen GmbH. To develop MOLM-14-based aAPCs, MOLM-14 cells were modified with the costimulatory molecules CD86 and 4-1BBL (CD137L). Human CD86 (hCD86) and human 4-1BBL (h4-1BBL) genes were cloned into commercially available PLV430G and co-transfected with the PDONR221 vector (Invitrogen / Thermo Fisher Scientific, Carlsbad, CA, USA) using a lentiviral transduction method. The hCD86 and hCD137L genes were cloned into the PLV430G and PDONR221 vectors using the Gateway cloning method as described in Katzen, Expert Opin. Drug Disc. 2007, 4, 571-589. The 293T cell line (human embryonic kidney cells transformed with large T antigen) was used for lentivirus production and transduced into MOLM-14 cells. Cells were isolated and enriched by sorting the transfected cells using APC-conjugated CD86 and PE-conjugated CD137L (S3e cell sorter, Bio-Rad, Hercules, CA, USA). The purity of the enriched cells was examined by flow cytometry.

[0308]

[0398] The vectors used for cloning and a part thereof are illustrated in FIGS. 2 to 11, and the nucleotide sequences of the respective vectors are provided in Table 6. The pLV430G human 4-1BBL vector is shown in FIG. 2, and its polymerase chain reaction product (PCRP) part is shown in FIG. 3. The pLV430G human CD86 vector is shown in FIG. 4, and its PCRP part is shown in FIG. 5. The pDONR221 human CD86 donor and human 4-1BBL donor vectors are shown in FIGS. 6 and 7, respectively. Diagrams of the empty pLV430G destination vector and the empty pDONR221 donor vector for the Gateway cloning method are shown in FIGS. 8 and 9, respectively. FIGS. 10 and 11 show vector diagrams of the psPAX2 and pCIGO-VSV.G helper plasmids used for the production of lentivirus.

[0309]

Table 6

[0310]

Table 7

[0311]

Table 8

[0312]

Table 9

[0313]

Table 10

[0314]

Table 11

[0315]

Table 12

[0316] [Table 13]

[0317] [Table 14]

[0318] [Table 15]

[0319] [Table 16]

[0320] [Table 17]

[0321] [Table 18]

[0322] [Table 19]

[0323] [Table 20]

[0324]

[0399] CD86 and 4-1BBL expression of modified MOLM-14 aAPCs (also referred to herein as aMOLM14 aAPCs) was confirmed using flow cytometry (Canto II flow cytometer, Becton, Dickinson, and Co., Franklin Lakes, NJ, USA). The results are shown in Figure 12. aMOLM-14 aAPCs were γ-irradiated at 100 Gy and frozen.

[0325] Example 4 – Expansion of tumor-infiltrating lymphocytes using MOLM-14 artificial antigen-presenting cells

[0400] Modified MOLM-14 cells were γ-irradiated at 100 Gy and then co-cultured with TILs. REP was initiated by culturing TILs with irradiated modified MOLM-14 cells at a ratio of 1:100 in CM2 medium containing OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL) for 14 days. Upon REP harvest, TIL expansion rate, phenotype of activation and differentiation stage markers, metabolic rate, cytotoxicity and re-rapid expansion protocol (re-REP) assay were measured.

[0326]

[0401] The results are shown in Figures 13, 14, 15, and 16, which compare the two expansion cultures for two sets of patient TILs. Results with CD86 / 4-1BBL-modified MOLM-14 cells (labeled "TIL+modified MOLM14+OKT3") are comparable to PBMC feeders (labeled "TIL+feeder+OKT3").

[0327]

[0402] The results at day 14 are compared in Figure 17, where the results of two additional patient TILs are shown. The results indicate that MOLM-14 cells modified with CD86 and 4-1BBL showed similar TIL expansion in the rapid expansion protocol when compared to allogeneic feeder cells. However, TILs cultured with parental MOLM-14 did not expand.

[0328]

[0403] In addition, TILs expanded against MOLM-14 maintained the TIL phenotype and demonstrated killing efficacy of P815 cells as measured using BRLA (described in detail in Example 9). Briefly, luciferin-transduced P815 target cells and TILs of interest were co-cultured with and without anti-CD3 to determine whether the tumor responsiveness of TILs was through TCR activation (specific killing) or non-specific killing. After 4 hours of incubation, luciferin was added to the wells and incubated for 5 minutes. After incubation, bioluminescence intensity was read using a luminometer. Percentage cytotoxicity and percentage viability were calculated using the following formula: % viability = (experimental viability - minimum) / (maximum signal - minimum signal) x 100 or % cytotoxicity = 100 - (% viability).

[0329]

[0404] Figure 18 shows the results of expansion cultures performed at low TIL to MOLM-14 aAPC ratios compared to expansion cultures on PBMC feeders. TILs (2x10 4) were cultured at different TIL to aAPC or PBMC ratios (1:10, 1:30, and 1:100, denoted as "10," "30," and "100," respectively) with parental MOLM-14 ("MOLM14") cells, MOLM-14 cells transduced to express CD86 and 4-1BBL ("aMOLM14"), or PBMC feeders ("PBMC+"), each supplemented with OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL). Controls were performed using only OKT-3 (30 ng / mL) and IL-2 (3000 IU / mL) ("PBMC-"). Triplicates were cultured for each condition. Cultures were fed with fresh medium and IL-2 on days 4 and 7. Viable cells were counted on day 7. Figure 18 shows the mean + standard deviation (SD) of viable cell counts on day 11, with p-values ​​calculated by Student's t-test. Additional control experiments were performed using TILs alone, PBMCs alone, and aMOLM-14 cells alone, all of which resulted in undetectable cell numbers (data not shown). These results indicate that a 1:100 ratio (TILs:aMOLM14) with OKT-3 and IL-2 results in similar expansion cultures when compared to PBMC feeders with OKT-3 and IL-2 (p=0.0598).

[0330]

[0405] FIG. 19 shows the results of expansion cultures performed at higher TIL to MOLM-14 aAPC ratios and otherwise as described above for FIG. 18, compared to the results of expansion cultures with PBMC feeders. At a ratio of 1:300, CD86 / 4-1BBL modified MOLM-14 aAPC supplemented with OKT-3 and IL-2 are significantly superior to PBMC feeders supplemented with OKT-3 and IL-2. These results were confirmed using different TIL batches in repeat experiments shown in FIG. 20 and FIG. 21. In particular, as can be seen in FIG. 21, a TIL to aMOLM14 ratio of 1:200 shows enhanced TIL expansion compared to PBMC feeders under the same conditions. These results confirm that aMOLM14 aAPC are unexpectedly superior to PBMCs in terms of expanding TIL numbers, especially when TIL:aMOLM14 ratios of 1:200 to 1:300 are used.

[0331]

[0406] In Figures 22 and 23, TILs expanded in aMOLM14 or PBMCs were compared by flow cytometry analysis, confirming that the TILs exhibited similar phenotypes, which may be expected to perform similarly upon reinfusion into patients. Briefly, TILs were first stained with L / D Aqua to determine viability. Cells were then surface stained with TCR α / β PE-Cy7, CD4 FITC, CD8 PB, CD56 APC, CD28PE, CD27 APC-C7, and CD57-PerCP-Cy5.5. Phenotypic analysis was performed by gating 10,000-100,000 cells based on forward light scatter (FSC) / side light scatter (SSC) using a Canto II flow cytometer (Becton, Dickinson, and Co., Franklin Lakes, NJ, USA). Data were analyzed by Cytobank software to generate sunburst plots and SPADE (Spanning Tree Progression of Density Normalized Events) analysis. Gates were set based on fluorescence minus one (FMO) controls. TILs expanded on aMOLM14 were significantly more CD8+ than PBMC feeders. + Without being bound by theory, this CD8 + The enhanced TIL percentage may be due to the presence of modified 4-1BBL in MOLM14. There is no difference in expression of CD28, CD57, and CD27 differentiation markers. Further flow cytometry data is shown in Figure 24, which shows that live cells, TCRα / β+, CD4 + or CD8 + Flow cytometry contour plots showing memory subsets gated on TILs (CD45RA+ / -, CCR7+ / -) are illustrated, demonstrating that memory subsets obtained on PBMC feeders are recapitulated by aMOLM14 aAPCs.

[0332]

[0407] The CD4 and CD8 SPADE trees of TILs expanded on aMOLM14 aAPC or PBMC feeders using CD3+ cells are shown in Figures 25 and 26. The color gradient is proportional to the mean fluorescence intensity (MFI) of LAG3, TIL3, PD1, and CD137 or CD69, CD154, KLRG1, and TIGIT. Without being bound by theory, these results show that although the two batches of TILs expanded on aMOLM14 were activated, there was no difference in MFI between aMOLM14 aAPC and PBMC feeders, indicating that aMOLM14 aAPC effectively recapitulates the TIL phenotypic results obtained with PBMC feeders.

[0333]

[0408] The metabolic profile of TILs expanded on aMOLM14 or PBMCs was also analyzed. A dual mitochondrial-glycolytic stress test was used to measure the oxygen consumption rate (OCR) and extracellular acidification rate (ECAR) of TILs after expansion on irradiated PBMC feeders or aMOLM14 aAPCs. Briefly, cells were washed with assay medium, pH 7.4, supplemented with 10 mM glucose, 1 mM sodium pyruvate, and 2 mM L-glutamine (XF Assay Medium, Agilent Technologies, Santa Clara, CA, USA), and then plated at 1 × 10 cells / ml onto adhesive-coated (Cell-Tak™, Corning) XFp cell culture microplates. 5 Live cells were plated. The plates were spun to allow the cells to adhere to the plate and then incubated in a humidified, non-CO 2After equilibration at 37°C in an incubator, cell metabolism was analyzed. Mitochondrial and glycolysis stress test experiments were performed using a Seahorse XFp analyzer (Agilent Technologies, Santa Clara, CA, USA) by sequentially injecting the following compounds at specific intervals: 1 μM oligomycin; 0.5 μM FCCP; 50 mM 2-deoxyglucose; and 0.5 μM each of rotenone and antimycin A to simultaneously analyze mitochondrial and glycolytic respiration of cells. The results were analyzed using WAVE v2.3.0 software (Agilent Technologies, Santa Clara, CA, USA) and GraphPad Prism v6.07 graphics software and are shown in Figures 27 and 28, where the points represent the mean ± SEM measured in triplicates. Both TILs grown on aMOLM14 aAPC and PBMC feeders show similar oxidative phosphorylation and glycolysis behavior. This data suggests that aMOLM14 does not alter the metabolic programming of TILs when compared to PBMC feeders.

[0334] Example 5 – Preparation of EM-3 artificial antigen presenting cells (aEM3 aAPC)

[0409] EM-3 cells were obtained from Creative Bioarray, Inc. (Shirley, NY, USA). To develop EM-3-based artificial APCs, the EM-3 cell line was modified with CD86, 4-1BBL, and antibodies against IgG Fc region (clone 7C12 or clone 8B3). Human CD86 and human 4-1BBL / CD137 genes were cloned into commercially available PLV430G and co-transfected with PDONR221 vector (Invitrogen) using lentiviral transduction method. hCD86 and hCD137L genes were cloned into PLV430G and PDONR221 vector using Gateway cloning method as described in Katzen, Expert Opin. Drug Disc. 2007, 4, 571-589. 293T cell line was used for lentivirus production and transduced into EM-3 cell line. Cells were isolated and enriched by sorting the transfected cells using APC-conjugated CD86 and PE-conjugated CD137L (S3e cell sorter, BioRad, Hercules, CA, USA). The purity of the enriched cells was examined by flow cytometry. Single-chain Fv (scFv) antibody clones, designated 7C12 and 8B3, were generated against the Fc of mouse IgG1, IgG2a, and IgG2b (Viva Biotech Ltd., Chicago, IL, USA). The amino acid sequences of these scFv clones are provided in Table 7 (SEQ ID NO: 27 and SEQ ID NO: 28). The generated scFv clones were screened for Fc binding efficiency against OKT-3 and modified towards pLV4301G containing eGFP as a co-reporter to generate lentivirus. The 293T cell line was used for packaging and lentivirus production. Modified EM-3 (CD86 / CD137L) cells were transduced using the lentivirus system and selected using eGFP. EM37C12CD86CD137L and EM38B3CD86CD137L were routinely assessed by flow cytometry for consistent expression of each transduced molecule.

[0335] [Table 21]

[0336]

[0410] A non-limiting preparation protocol for aEM3 aAPCs (which can also be adapted for use with aMOLM14 aAPCs) is described in the following paragraphs.

[0337]

[0411] Molecular cloning of the plasmid of interest may be performed as follows. For the generation of DONR vectors, the following cocktail may be used: 50-100 μg of B-site flanking PCR product or destination vector (e.g., Gateway compatible lentivector); 50-100 μg of DONR vector (e.g., pDONR222); 1 μL of BR Clonase II (Life Technologies); and TE buffer ((1 mM Tris, 0.1 mM EDTA, pH 8.0, sufficient volume to bring the volume to 5 μL). Incubate at room temperature for at least 1 hour. After incubation, bacterial transformation is performed by either heat shock or electroporation. For the generation of destination vectors, the following cocktail may be used: 50-100 μg of recombinant pDONR vector (e.g., pDON222-geneX), 50-100 μg of destination vector (e.g., Gateway compatible lentivector), 1 μL of LR Clonase II (Life Technologies), and TE buffer ((1 mM Tris, 0.1 mM EDTA, pH 8.0, enough volume to make 5 μL). Incubate at room temperature for at least 1 hour. After incubation, perform bacterial transformation by either chemically competent transformation / heat shock method.

[0338]

[0412] Transformation and selection of cloned plasmids may be performed as follows: Chemically competent transformation methods may be performed as follows: Prepare nutrient agar plates (LB-Lennox or YT) containing the antibiotic for selection. Ensure recovery medium (supplemented with Lucigen, Middleton, WI, USA) is readily available at room temperature. Optionally, chill sterile culture tubes on ice (e.g., 17 mm x 100 mm tubes (14 mL tubes), one tube for each transformation reaction). Remove E. cloni cells (Lucigen) from the -80°C freezer and thaw completely (5-15 min) on wet ice. Optionally, add 40 μL of E. cloni cells to the chilled culture tube. Add 1-4 μL of DNA sample to the 40 μL of cells. Flick gently with your finger (do not mix by pipetting up and down, as this may introduce air bubbles and warm the cells). Incubate the cell / DNA mixture on ice for 30 min. Heat shock the cells by placing the culture tube in a 42°C water bath for 45 seconds. Return the 1.7mL tube or culture tube to ice for 2 minutes. Add 350 μL of room temperature recovery medium to the cells or add 960 μL of room temperature recovery medium to the cells in the culture tube. Place the tube in a shaking incubator at 37°C and 250 rpm for 1 hour. Plate up to 100% of the transformation mixture on LB-Lennox or YT agar plates containing the appropriate antibiotic. Plating volumes may need to be optimized depending on the DNA. Incubate the plates at 37°C overnight. Transformed clones can be further grown in any rich culture medium (e.g. LB or TB).

[0339]

[0413] Colonies for Minipreps (Qiagen, Inc., Valencia, CA, USA) may be grown as follows: Plating of DNA Manipulations After colonies form from the recovery transformation reaction (e.g., LR reaction), add 1 mL of the desired TB / antibiotic into the desired number of 2 mL Eppendorf microtubes with perforated caps. Pick the desired number of colonies using an ART LTS 20 μL soft pipette tip (VWR 89031-352) or a 10 μL Denville tip. Place the tip into a 2 mL Eppendorf microtube with perforated cap. Cut the tip to fit the tubes, close the cap, and place the tubes in a shaker (purple 15 mL tube holder with VWR brand 15 mL tubes). Shake at 225 rpm / 37°C overnight (no more than 16 hours). After overnight incubation, place each tip into a 1 mL tube in a ClavePak 96 plate from Denville with sterile water (reserve the tip for screening the plasmid and making bacterial stock products after selection). Perform Miniprep according to Qiagen Miniprep kit protocol (Qiagen, Inc., Valencia, CA, USA). Once the plasmid is eluted, perform restriction digestion to select the correct clone. After plasmid selection, use the reserved tip from the same plasmid clone to grow E. coli containing the plasmid to make bacterial stocks.

[0340]

[0414] Lentivirus production may be performed as follows: Prepare the following media composition: 500 mL DMEM / F12 (Sigma); 25 mL FBS heat inactivated (HI) (Hyclone); 10 mM HEPES (Life Technologies); 1× Primocin (Invivogen); 1× Plasmocin (Invivogen); and 1× 2-mermactoethanol (Life Technologies). Harvest a T75 flask (Thermo Fisher Scientific) with 90% confluent 293T cells. Aspirate the media. Add 10 ml PBS, rinse gently, and aspirate off. Add 2 mL TrypLE Express (Life Technologies), distribute it evenly over the cell layer, and leave at 37°C (cell culture incubator) for 3-5 minutes. Add 10 mL media and disperse the cells by pipetting up and down. Combine multiple flasks if present. Count the cells. If using a hemocytometer to determine concentration, cells / mL = (number of cells counted x dilution factor x 10 4 ). Determine how long it takes for the cells to become fully confluent before splitting them back into T75 flasks and dilute accordingly. (Cells double every 16-18 hours, so 3 days = 1 / 27 dilution). As a general rule, a confluence of 2×10 5 cells / cm 2 A daily proliferation factor of 2.5 may be used if the volume is 25 mL of medium. To plate for titration of stock, each well of the assay contains 5 x 10 cells in 0.4 mL of medium. 4 Cells are required. 293T cells are 2×10 in culture medium. 4Adjust to 6.8 x 10 / mL. Plate 1 mL per well in a 24-well plate. For example, cells plated on Monday can be infected on Tuesday and run on the flow cytometer on Friday, cells plated on Thursday can be infected on Friday and run on the flow cytometer on Monday. To plate for packaging transfections, add 6.8 x 10 cells to a T75 flask the day before transfection. 6 1.7 x 10 for cell or transfection monitoring 6Plate the cells. (Seeding on the day of transfection may reduce variability in transfection efficiency). Bring the volume in the flask to 25 mL with medium. For example, flasks set up on Monday are transfected on Tuesday and virus is harvested on Thursday and Friday. In some cases (e.g., high titration constructs), the second harvest may be omitted. To package lentiviral vectors, each T75 flask transfection requires 2 μg Baculo p35 plasmid (optional; only required if packaging a death gene), 2 μg VSV.G env plasmid (e.g., pMD2.G or PCIGO VSV-G); 4.7 μg Gag / polymerase plasmid (e.g., psPAX2 or pCMV-ΔR8.91), and 2.3 μg of the lentiviral vector described above. Determine the amount of VSV and R8.2 / 9.1 (+ / -Baculo) plasmids needed for all samples (make a mix of these DNAs if preparing multiple samples). For each T75 transfection, 90 μL of LipofectAmine 2000 (Thermo Fisher Scientific) in 2 mL of Opti-MEM medium (Thermo Fisher Scientific) is required. For all samples, make a mixture containing sufficient Opti-Mem and LipofectAmine 2000. Mix gently, let sit at room temperature for 5 minutes, and label tube A. For each transfection, add packaging DNA and specific lentiviral vector DNA to 500 μL room temperature Opti-MEM medium to a microtube and label tube B. Add 500 μL of DNA from tube B to the 2 mL of LipofectAmine 2000 mixture in tube A, mix gently, and incubate at room temperature for 20-30 minutes. Aspirate medium from packaging flask. Add 2.5 mL of DNA / Lipofectamine complex to 5 mL of Opti-MEM medium and add to cells (do not pipette directly on cells as 293T cells are only semi-adherent). Plates are treated in small batches to prevent drying. Incubate overnight and change medium the following morning.Harvest the supernatant 24 hours after medium change. The supernatant may be harvested in a single harvest at 48 hours post-transfection, or in two harvests at 48 and 72 hours post-transfection (in which case the harvests are pooled). If a double harvest is desired, the supernatant is harvested on the first day by pipetting and replenished with 20 mL of fresh medium. Work with only five flasks at a time to prevent the flasks from drying out. Keep the harvested supernatant at 4°C until pooling the next day. The next day, cool the supernatant again and pool accordingly. Spin the supernatant at 2000 rpm for 5 minutes to sediment any contaminating 293T cells. Filter the harvested supernatant through a 0.45 μm or 0.8 μm filter unit containing a prefilter disk. Use a filter unit that is large enough to ensure a relatively fast filtration rate. Store at 4°C until ready to concentrate.

[0341]

[0415] Virus may be concentrated using PEG-it method (System Biosciences, Inc., Palo Alto, CA 94303) for long-term storage at -80°C. Collect the supernatant from the transfection plate. Spin down the cell debris in the supernatant. The supernatant may also be filtered to completely remove any packaging cells. Add an amount of PEG-it solution to the supernatant equal to one-quarter of the supernatant's volume. Incubate the suspension overnight at 4°C. Centrifuge at 3500 rpm (1500 g) for 30 minutes at 4°C. Remove the supernatant and centrifuge at 3500 rpm for 5 minutes at 4°C. Remove the remaining supernatant. Resuspend the virus in the desired amount of phosphate buffered saline (PBS) and freeze aliquots at -80°C.

[0342]

[0416] Transduction of cell lines using lentivirus may be performed as follows: Cells to be transduced are plated at 1 x 10 per well of a 24-well plate. 6 Adjust the cells to either 1x10 for suspension cells (1 well per transduction) or 50% confluence for adherent cells in 24-well plates (1 well per transduction). For suspension cells, adjust the cell concentration to 1x10 7Adjust to 100 µL / mL and plate 100 µL per well of a 24-well plate (one well per transduction). For adherent cells, adjust to 100 cells / cm on the day of transduction. 2 Plate to achieve 50% confluence based on the following: (e.g., for 293T cells, confluence = 2 x 10 5 / cm 2 ). The total transduction volume per well should be approximately 500 μL containing 3–10 μg / mL polybrene (hexadimethrine bromide, Sigma-Aldrich Co., St. Louis, MO, USA). The amount of concentrated virus added will depend on the desired MOI (multiplicity of infection). A typical MOI is 10:1, but this can vary depending on cell type. Transfection wells should contain 1 × 10 6 The plate should contain 100 µL of standard medium containing either suspension cells or 50% confluent cells. For an MOI of 10:1 (e.g., viral activity of 1 x 10 8 IU / mL, with a goal of 1×10 6 The aim was to infect cells with 1 × 10 7 (You will need 100 virions or 100 μL of virus). Add standard medium to 500 μL. Add polybrene to 3 μg / mL (primary cells) to 10 μg / mL (tumor cell lines). Spin the plate(s) at 1800 rpm at 30°C for 1.5-2 hours. Keep the plate(s) at 37°C / 5% CO in a tissue culture incubator. 2 Incubate at 4 °C for 5 h to overnight. Change the medium. After 72 h of transduction, if sufficient cells are available, perform flow cytometry analysis to test transduction efficiency.

[0343]

[0417] Selection of aAPCs may be performed as follows: Culture cells in the medium described above until cell numbers reach a minimum of 10-20 million cells. 6Take the cells and stain them with an antibody against the protein to be transfected. Wash the cells and analyze them by flow cytometry to test the stability of transfection. After analyzing and confirming the expression of the target protein, prepare the remaining cells for sorting. Sort the cells by gating on the target marker in an S3 sorter. Culture the sorted cells using the medium described above. Before freezing the vials, test the stability of the target protein expression. Create a cell bank of the same cells using Recovery cell culture freezing medium (Invitrogen). The cells can be banked each time the transfection and sorting procedures are completed.

[0344]

[0418] The nucleotide sequence information (SEQ ID NO: 29 and SEQ ID NO: 30) of the 7C12 and 8B3 scFv clones and their lentiviral vectors are provided in Table 8. The sequences used for the construction of the pLV4301G 7C12 scFv mIgG hCD8 flag vector are provided as SEQ ID NO: 31 to SEQ ID NO: 34 and illustrated in FIGS. 29 to 32. The sequences used for the construction of the pLV4301G 8B3 scFv mIgG hCD8 flag vector are provided as SEQ ID NO: 35 to SEQ ID NO: 38 and illustrated in FIGS. 33 to 36.

[0345]

Table 22

[0346]

Table 23

[0347]

Table 24

[0348]

Table 25

[0349]

Table 26

[0350]

Table 27

[0351]

Table 28

[0352]

Table 29

[0353]

Table 30

[0354]

Table 31

[0355]

Table 32

[0356]

Table 33

[0357]

Table 34

[0358]

Table 35

[0359]

Table 36

[0360]

Table 37

[0361]

[0419] In preparation of modified EM-3 aAPCs (also referred to herein as aEM3 aAPCs) used in the experiments described herein, expression of CD86 and 4-1BBL was confirmed using flow cytometry (Canto II flow cytometer, Becton, Dickinson, and Co., Franklin Lakes, NJ, USA). The results are shown in Figure 37. aEM3 aAPCs were gamma-irradiated at 100 Gy and frozen.

[0362]

[0420] aEM-3 cells previously transduced to express CD86, an antibody against the IgG Fc region, and 4-1BBL (or optionally without 4-1BBL) as described above were engineered with costimulatory human OX-40L using a similar lentiviral transduction approach. To generate lentivirus containing human OX-40L, the pLenti-C-Myc-DDK OX40L (PS100064, Origene, SEQ ID NO: 39, FIG. 90) vector was co-transfected with the VSV-G envelope plasmid (pCIGO-VSV.G) into the Phoenix-GP (ATCC CRL-3215) cell line using PolyJet (Signagen Laboratories, Rockville, MD, USA). After 60 hours, the supernatant was collected and concentrated using an Amicon Ultra-15 centrifugal filter unit with an Ultracel-100 membrane. aEM-3 cells were then infected with the concentrated lentivirus and expanded for another 5 days. Cells were stained with PE-conjugated anti-human OX40L, brilliant violet 421-conjugated anti-human CD137L (if the preceding aEM-3 cells contained 4-1BBL), and PE / Cy7-conjugated anti-human CD86, and sorted based on the expression of GFP, OX40L, CD137L (if present), and CD86 using an S3e cell sorter (Bio-Rad, Inc., Hercules, CA, USA). The purity of the sorted cells was further verified using flow cytometry. The purity of the enriched cells was examined by flow cytometry.

[0363] Example 6 - Expansion of tumor-infiltrating lymphocytes using EM-3 artificial antigen-presenting cells

[0421] Experiments were performed to test the ability of EM-3 aAPC (aEM3) to expand TILs. TILs were co-cultured with aEM3 (7C12 or 8B3) at a 1:100 ratio, with the addition of OKT-3 (30 mg / mL) and IL-2 (3000 IU / mL). Cells were counted on days 11 and 14. Results are plotted in Figures 38 and 39 for two batches of TILs. In addition, TILs were co-cultured with aEM3 or PBMC feeders at a 1:100 ratio, with the addition of IL-2 (3000 IU / mL), with or without the addition of OKT-3 (30 mg / mL). Results are plotted in Figure 40, where the bar graph shows the cell numbers determined on day 11.

[0364]

[0422] Figure 41 shows the results of TIL expansion culture with EM-3 aAPC (aEM3) at different TIL:aAPC ratios. These results show that aEM3 aAPC performs as well as, and in some cases better than, PBMC, especially at a ratio of 1:200 and at longer culture times (14 days).

[0365]

[0423] Figure 42 shows that there is less variability in cell numbers from TIL expansion cultures with EM-3 aAPC (aEM3) compared to PBMC feeders. TILs (2x10 4 ) were co-cultured with five different PBMC feeder lots or aEM3 (in triplicates) at a 1:100 ratio with the addition of IL-2 (3000 IU / mL). The graph shows the mean number of viable cells counted on day 14 with 95% confidence intervals. Figure 43 compares TIL expansion culture results with MOLM-3 aAPC and MOLM-14 aAPC, showing the expansion of TILs (2 x 10 4) for both aEM3 and aMOLM14. Viable cells were counted on day 14. The graph shows the viable cell count (mean) with 95% confidence intervals. The aEM3 and aMOLM14 results show that greater consistency can be achieved with both aAPCs compared to the PBMC feeder approach preferred in the prior art.

[0366]

[0424] TILs expanded on aEM3 or PBMC feeders were used to perform flow cytometry analysis using four different panels: differentiation panels 1 and 2, T cell activation panels 1 and 2. Briefly, TILs were first stained with L / D Aqua to determine viability. Next, we selected TCRα / β PE-Cy7, CD4 FITC, CD8 PB, CD56 APC, CD28 PE, CD27 APC-Cy7, and CD57-PerCP-Cy5.5 for differentiation panel 1; CD45RA PE-Cy7, CD8a PerCP / Cy5, CCR7 PE, CD4 FITC, CD3 APC-Cy7, CD38 APC, and HLA-DR PB for differentiation panel 2; CD137 PE-Cy7, CD8a PerCP-Cy5.5, Lag3 PE, CD4 FITC, CD3 APC-Cy7, PD1 APC, and Tim-3 BV421 for T cell activation panel 1; or CD69 PE-Cy7, CD8a PerCP / Cy5.5, TIGIT PE, CD4 FITC, CD3 APC-Cy7, KLRG1 for T cell activation panel 2. Cells were surface stained with ALEXA 647, and CD154 BV421. Phenotypic analysis was performed by gating 10,000–100,000 cells based on FSC / SSC using a Canto II flow cytometer. Data were analyzed using Cytobank software (Cytobank, Inc., Santa Clara, CA, USA) to generate sunburst and SPADE (Spanning-tree Progression Analysis of Density-normalized Events) plots. Gates were set based on fluorescence minus one (FMO) controls. SPADE plots were generated with cell populations characterized by associated nodal morphology based on surface marker expression levels. CD3 + Gating based on CD4 + and CD8 +TIL subsets were determined and trees were generated. Sunburst visualization is shown in Figure 44 and Figure 45. Figure 44 shows that TILs expanded on aEM3 aAPCs were significantly more CD8+ than TILs expanded on PBMC feeders. + Figure 45 shows the results of a second batch of TILs from a different patient expanded on aEM3 aAPCs, where CD8 TILs were maintained in the culture compared to expansion using PBMC feeders (25%). + There is a clear increase in cells (65.6%).

[0367]

[0425] CD3 + The CD4 and CD8 SPADE trees of TILs expanded with cells on aEM3 aAPC or PBMC feeders are shown in Figures 46 and 47. The color gradient is proportional to the mean fluorescence intensity (MFI) of LAG3, TIL3, PD1 and CD137 or CD69, CD154, KLRG1 and TIGIT. Without being bound by theory, these results indicate that TILs expanded with aEM3 aAPC were activated, but there was no difference in MFI between aEM3 aAPC and PBMC feeders, indicating that aEM3 aAPC effectively recapitulates the phenotypic results achieved with PBMC feeders.

[0368]

[0426] Spare respiratory capacity (SRC) and glycolytic reserve were also assessed for TILs expanded on aEM3 aAPCs compared to PBMC feeders. Results are shown in Figure 48 and Figure 49. The Seahorse XF cell mitostress test measures mitochondrial function by directly measuring cellular oxygen consumption rate (OCR) using respiratory regulators that target components of the electron transport chain in mitochondria. Test compounds (oligomycin, FCCP, and a mixture of rotenone and antimycin A, described below) are continuously injected to measure ATP production, maximal respiration, and non-mitochondrial respiration, respectively. These parameters and basal respiration are then used to calculate proton leak and spare respiratory capacity. Each regulator targets a specific component of the electron transport chain. Oligomycin inhibits ATP synthase (complex V), and the decrease in OCR after oligomycin injection correlates with mitochondrial respiration, which is linked to cellular ATP production. Carbonyl cyanide-4(trifluoromethoxy)phenylhydrazone (FCCP) is an uncoupling agent that disrupts the proton gradient and destroys the mitochondrial membrane potential. As a result, electron flow through the electron transport chain is uninhibited and oxygen is maximally consumed by complex IV. FCCP-stimulated OCR can then be used to calculate spare respiratory capacity, defined as the difference between maximal and basal respiration. Spare respiratory capacity (SRC) is a measure of the ability of cells to respond to increased energy demands. The third injection is a mixture of rotenone, a complex I inhibitor, and antimycin A, a complex III inhibitor. This combination blocks mitochondrial respiration and allows the calculation of non-mitochondrial respiration, which is driven by processes outside the mitochondria.

[0369]

[0427] Figure 50 shows mitochondrial staining of live TILs expanded on PBMC feeders or aEM3 aAPCs. MitoTracker dye stains mitochondria in live cells, and its accumulation is dependent on membrane potential. TILs expanded on PBMC feeders or aEM3 were stained with L / D Aqua followed by MitoTracker red dye. Data shows MitoTracker positive (MFI) cells gated on the live population.

[0370] Example 7 –Comparison of modified MOLM-14 (aMOLM14) and EM-3 (aEM3) aAPCs

[0428] As described in the previous examples, functional activity of TILs expanded on PBMC feeders and aMOLM14 and aEM3 aAPCs was assessed for cytotoxic potency using the BRLA. The P815 BRLA is described in detail in Example 9. The results are shown in Figures 51 and 52 and demonstrate that TILs expanded on aAPCs have similar functional properties (and predicted clinical efficacy) as those expanded on PBMC feeders.

[0371]

[0429] IFN-γ and granzyme B release from TILs expanded on PBMC feeders and aMOLM14 and aEM3 aAPCs as described above were also assessed after overnight stimulation with anti-CD3 / CD28 / 4-1BB coated microbeads. IFN-γ release results are shown in Figures 53 and 54, and granzyme B release results are shown in Figures 55 and 56. A significant and unexpected increase in IFN-γ and granzyme B release was observed for TILs expanded on aEM3 aAPCs compared to those expanded on PBMC feeders, but not for TILs expanded with aMOLM14 aAPCs. Without being bound by theory, this suggests that TILs cultured with aEM3 aAPCs may be more active as cancer therapy in vivo. Many of the other differences observed were not statistically significant.

[0372]

[0430] The results of TIL expansion with aEM3 and aMOLM14 aAPCs are summarized in Table 9.

[0373] [Table 38]

[0374] Example 8 –Preparation of aEM3 and aMOLM14 aAPC Master Cell Banks

[0431] aEM3 and aMOLM14 aAPCs may be grown in the following media composition to generate a master cell bank, which may be further grown in this media for aAPC supply: 500 mL Dulbecco's Modified Eagle's Medium DMEM / F12 (Sigma-Aldrich, St. Louis, MO, USA), 50 mL fetal bovine serum (FBS) heat inactivated (HI) (Hyclone); 10 mM 4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid (HEPES buffer) (Life Technologies); 1× Primocin (Invivogen); 1× Plasmocin (Invivogen), and 1× 2-mercaptoethanol (Life Technologies).

[0375]

[0432] The aAPCs described herein, including aEM3 and aMOLM14 aAPCs, may also be grown from master cell banks using any suitable method known in the art for growing cells. In one embodiment, the aAPCs are thawed and then split 1:2-1:3 from saturated cultures every 2-3 days in 80-90% RPMI 1640 + 10-20% heat-inactivated FBS (fetal bovine serum) medium, and plated in 24-well plates at approximately 0.5-1 x 10 6 Cells / mL were seeded and incubated at 37 °C and 5% CO 2 Incubation at 0.5 to 1.5 × 10 6 Expand the culture by maintaining at 100 cells / mL.

[0376]

[0433] Further steps that may be utilized for the use of aAPCs of certain embodiments of the invention in the generation of human therapeutics are known in the art and include characterization of cell lines (HLA high resolution typing); cytokine release testing; testing of human serum in place of FBS for growing aAPCs; testing of freezing media for freezing aAPCs; master cell banking (including raw material testing and stability testing); standardization of irradiation (including irradiation doses (1000, 3000, 5000, 10000, 15000 rad), comparison of fresh vs. frozen aAPCs, and with / without TILs); stability of aAPCs; development of panels to determine contamination of aAPCs; development of molecular biology assays (qPCR, DNA sequencing); testing of TIL expansion cultures from different tumor types including melanoma, cervical cancer, and head and neck cancer (G-Rex). 5M); potency, purity, and identity testing; mycoplasma and sterility assays; microbiological testing (USP / EP sterility, bioburden, and endotoxin assays); and adventitious viral agent testing.

[0377] Example 9 - Method for expanding TILs and method for treating cancer with expanded TILs

[0434] TILs may be expanded using any of the expansion methods described herein, using aAPCs of certain embodiments of the invention, such as aEM3 and aMOLM14 aAPCs. For example, a method for expanding TILs is illustrated in FIG. 57. The expansion of TILs using aAPCs may be further combined with any of the methods for treating cancer in a patient described herein. A method for expanding TILs and treating a patient with the expanded TILs is shown in FIG. 58, where the expansion utilizes aAPCs (including aEM3 and aMOLM14 aAPCs).

[0378] Example 10 – P815 Bioluminescence Redirected Lysis Assay

[0435] In this example, we describe the development of a surrogate target cell line to determine the lytic potential of TILs in a Bioluminescent Redirected Lysis Assay (BRLA). BRLA allows the assessment of T cell-mediated killing in the absence of autologous tumor cells. Cytolytic activity can be assessed in 1-4 hours with and without T cell receptor engagement, and T cell killing with and without T cell receptor engagement, so-called lymphokine-activated killer activity (LAK), is assessed.

[0379]

[0436] Mouse mastocytoma P815 cells expressing endogenous CD16 Fc receptors can bind anti-CD3ε (OKT-3), providing a potent TCR activation signal as a target cell line. P815 clone G6 was transduced with eGFP and firefly luciferase-based lentiviral vectors, sorted, and cloned using BD FACSAria II. Clone G6 was selected based on eGFP intensity analyzed using Intellicyt iQue Screener. Target cells and TILs of interest were co-cultured + / -OKT-3 to assess TCR activation (specific killing) or non-specific (lymphokine-activated killer, LAK), respectively. After 4 hours of incubation, firefly luciferin ((4S)-2-(6-hydroxy-1,3-benzothiazol-2-yl)-4,5-dihydrothiazole-4-carboxylic acid, commercially available from multiple sources) was added to the wells and incubated for 5 minutes. Bioluminescence intensity was read using a luminometer. Percent cytotoxicity and viability were calculated using the following formulas: % viability = (experimental viability - minimum) / (maximum signal - minimum signal) x 100; % cytotoxicity = 100 - (% viability). Interferon-gamma release in the culture supernatants of co-cultured TILs was analyzed by ELISA, and LAMP1 (CD107a, clone eBioH4A3) expression on TILs was analyzed by flow cytometer to determine the cytotoxic potency of TILs.

[0380]

[0437] The r...

Claims

1. 1. An isolated artificial antigen presenting cell (aAPC) comprising EM-3 myeloid cells that endogenously express ICOS-L (inducible T cell costimulatory ligand), CD58, and one or more of HLA (human leukocyte antigen)-A, HLA-B, or HLA-C, said aAPC being stably transduced with one or more viral vectors, said one or more viral vectors being: (i) a nucleic acid encoding CD86; and (ii) one or more nucleic acids encoding one or more costimulatory molecules selected from the group consisting of OX40L and 4-1BBL; (iii) a nucleic acid encoding SEQ ID NO: 27; wherein the myeloid cell expresses on its surface the proteins encoded by the nucleic acids of (i), (ii) and (iii).

2. The aAPC of claim 1, which is capable of stimulating and expanding tumor infiltrating lymphocytes (TILs) that are contacted with the aAPC.

3. 3. The aAPC of claim 1 or 2, wherein the TIL population is expanded at least 50-fold over a period of 7 days in a cell culture medium comprising IL-2 (interleukin-2) at a concentration of about 3000 IU / mL and OKT-3 antibody at a concentration of about 30 ng / mL.

4. The aAPC according to any one of claims 1 to 3, which is capable of stimulating and expanding T cells contacted with the aAPC.

5. The aAPC of any one of claims 1 to 4, wherein the CD86 protein comprises the sequence set forth in SEQ ID NO: 8, or a sequence containing one or more conservative amino acid substitutions thereof.

6. The aAPC of any one of claims 1 to 5, wherein the nucleic acid encoding CD86 comprises SEQ ID NO:

19.

7. The aAPC of any one of claims 1 to 6, wherein the one or more costimulatory molecules comprises 4-1BBL protein.

8. The aAPC of claim 7, wherein the 4-1BBL protein comprises a sequence set forth in SEQ ID NO:9, or a sequence containing one or more conservative amino acid substitutions thereof.

9. The aAPC of claim 7, wherein the one or more nucleic acids encoding the 4-1BBL protein comprise SEQ ID NO:

16.

10. The aAPC of any one of claims 1 to 9, wherein the one or more costimulatory molecules comprises an OX40L protein.

11. The aAPC of claim 10, wherein the OX40L protein comprises a sequence set forth in SEQ ID NO: 10, or a sequence containing one or more conservative amino acid substitutions thereof.

12. 1. An isolated artificial antigen presenting cell (aAPC) comprising EM-3 cells that endogenously express ICOS-L (inducible T cell costimulatory ligand), CD58, and one or more of HLA-A, HLA-B, or HLA-C, said aAPC being stably transduced with one or more viral vectors, said one or more viral vectors being: (i) a nucleic acid encoding CD86; and (ii) one or more nucleic acids comprising a sequence encoding one or more amino acid sequences selected from the group consisting of SEQ ID NO:9 and SEQ ID NO:10; (iii) a nucleic acid encoding SEQ ID NO: 27; wherein the EM-3 cell expresses on its surface the proteins encoded by the nucleic acids of (i), (ii) and (iii).

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