Combination therapy of ATRA or other retinoids with immunotherapy drugs that bind to BCMA

Combining retinoids like ATRA with BCMA-targeted immunotherapeutic agents upregulates BCMA expression, addressing low expression issues and enhancing cancer cell recognition, thereby improving therapeutic outcomes for multiple myeloma and autoimmune diseases.

JP7824883B2Active Publication Date: 2026-03-05JULIUS MAXIMILIANS UNIV WURZBURG
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Patent Information

Application Number
JP2022562543
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-14
Filing Date
2021-04-14
Publication Date
2026-03-05
Estimated Expiration
2041-04-14

AI Technical Summary

Technical Problem

Current cancer therapies, particularly for multiple myeloma, face challenges with low and uneven BCMA expression in cancer cells, leading to therapeutic limitations and tumor recurrence after antigen loss or downregulation, necessitating more effective targeting strategies.

Method used

Combining all-trans-retinoic acid (ATRA) or other retinoids with immunotherapeutic agents, such as BCMA-targeted CAR-T cells, to upregulate BCMA mRNA and protein levels in cancer cells, enhancing their recognition and lysis by immunotherapeutic agents, and potentially using gamma secretase inhibitors to further increase BCMA expression.

Benefits of technology

This combination therapy significantly enhances BCMA expression on target cells, improving the efficacy of BCMA-targeted immunotherapy by increasing recognition and cytotoxicity of BCMA-CAR T cells, resulting in prolonged tumor reduction and reduced soluble BCMA levels that do not interfere with treatment efficacy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to combination therapies using ATRA and other retinoids with immunotherapeutic agents that bind to BCMA, such as CAR-T cells capable of binding to BCMA, antibodies capable of binding to BCMA, or antibody fragments capable of binding to BCMA. According to the present invention, these combination therapies can be advantageously applied to the treatment of cancers such as multiple myeloma, and can also be applied to the treatment of antibody-mediated autoimmune diseases. Combination therapies for cancer treatment according to the present invention are advantageous because retinoids, such as ATRA, upregulate BCMA mRNA levels as well as BCMA protein levels in cancer cells, thereby enabling cancer cells to be more effectively targeted by immunotherapeutic anticancer agents capable of binding to BCMA, such as CAR-T cells capable of binding to BCMA, antibodies capable of binding to BCMA, or antibody fragments capable of binding to BCMA.
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Description

[Technical Field]

[0001] The present invention relates to combination therapy of ATRA and other retinoids with immunotherapeutic agents that bind to BCMA, such as CAR-T cells capable of binding to BCMA, antibodies capable of binding to BCMA, or antibody fragments capable of binding to BCMA. According to the present invention, these combination therapies can be advantageously applied to the treatment of cancers such as multiple myeloma, and can also be applied to the treatment of antibody-mediated autoimmune diseases. Combination therapy in cancer treatment according to the present invention is advantageous because retinoids, such as ATRA, upregulate BCMA mRNA levels and BCMA protein levels in cancer cells, thereby allowing cancer cells to be more effectively targeted by immunotherapeutic anticancer agents capable of binding to BCMA, such as CAR-T cells capable of binding to BCMA, antibodies capable of binding to BCMA, or antibody fragments capable of binding to BCMA. Furthermore, ATRA and other retinoids can be combined with gamma secretase inhibitors and BCMA-targeted immunotherapeutic agents to further increase BCMA expression on target cells, thereby resulting in better immunotherapeutic success. [Background technology]

[0002] Multiple myeloma (MM) is a primarily incurable hematological disease characterized by uncontrolled clonal proliferation of malignant plasma cells in the bone marrow. 1、2 Despite the recent approval of several novel therapeutic agents, myeloma is still considered incurable. The majority of patients become refractory to treatment or must discontinue treatment due to toxicity, ultimately succumbing to the disease. 3-5 .

[0003] Significant efforts are underway to develop CAR-based therapies for MM, as CAR T-cells have been shown to induce durable complete remissions in other advanced hematologic malignancies such as acute lymphocytic leukemia (ALL) and diffuse large B-cell lymphoma (DLBCL).6-10 Recently, there has been increasing attention on B-cell maturation antigen (BCMA) as a possible target antigen for the treatment of MM. 2、11、12 BCMA is a tumor necrosis family receptor (TNFR) expressed by MM cells. It is also found on some healthy hematopoietic cells, such as plasma cells and plasmacytoid dendritic cells, but not on cells derived from healthy solid tissues. This favorable expression profile has prompted the development of a remarkable armamentarium of BCMA-specific immunotherapies, including CAR T-cell therapy. 13-19 In a recent Phase I / II clinical trial, BCMA-CAR T cells achieved partial and complete responses in some MM patients. 16、19 .

[0004] Retinoic acid can affect cellular gene expression and protein production 20 The use of all-trans-retinoic acid (ATRA) has been widely investigated as a treatment for several cancer types, and it has been shown to be able to induce major changes in post-translational modifications, such as histone acetylation, in tumor cells. 21-24 Treatment with ATRA also induces extragenic changes in MM cells, leading to enhanced expression of CD38 and subsequently to enhanced efficacy of the CD38-targeting antibody daratumumab. 22、25 .

[0005] Administration of gamma secretase inhibitors (GSIs) can also increase BCMA expression in MM cells by blocking BCMA cleavage by the ubiquitous multisubunit γ-secretase complex, leading to improved recognition of MM cells by BCMA-CAR-T cells. 40 .

[0006] Prior to the present invention, there remained a need in the art for more effective cancer therapies, including therapies for multiple myeloma. [Prior art documents] [Non-patent literature]

[0007] [Non-licensed Document 1] K Hofmann, Front. Immunol., April 23, 2018, "Targeting B Cells and Plasma Cells in Autoimmune Diseases", https: / / doi.org / 10.3389 / fimmu.2018.00835 [Non-licensed Document 2] A. Rubbert-Rothら, "Efficacy and safety of various repeat treatment dosing regimens of rituximab in patients with active rheumatoid arthritis: results of a Phase III randomized study(MIRROR)", Rheumatology, Volume 49, No. 9, September 2010, Pages 1683~1693, https: / / doi.org / 10.1093 / rheumatology / keq116 [Non-licensed Document 3] Liu E, "Use of CAR-Transduced Natural Killer Cells in CD19-Positive Lymphoid Tumors", N Engl J Med., February 6, 2020, 382(6):545~553, doi:10.1056 / NEJMoa1910607 [Non-licensed Document 4] TT Smith, "In situ programming of leukaemia-specific T cells using synthetic DNA nanocarriers", Nat Nanotechnol., August 2017; 12(8): pages 813~820, published by にオンラインで on April 17, 2017, doi:10.1038 / nnano.2017.57 [Non-licensed Document 5] Agarwal S et al., Oncoimmunology, October 10, 2019;8(12):e1671761. “In vivo generated human CAR T cells erase tumor cells”, doi:10.1080 / 2162402X.2019.1671761 Summary of the Invention [Means for solving the problem]

[0008] We investigated whether ATRA-induced extragenic alterations affect the surface expression of BCMA and the release of soluble BCMA molecules by cancer cells, particularly MM cells, and further analyzed whether these ATRA-induced alterations also affect the efficacy of BCMA-CAR T cells.

[0009] B-cell maturation antigen (BCMA) is preferentially expressed by B-lineage cells, including multiple myeloma (MM) cells. Due to its preferred expression pattern, it represents a promising target for chimeric antigen receptor (CAR) therapy. Clinical trials using BCMA-CAR T cells are currently underway, and initial promising results have been achieved. However, several therapeutic limitations remain, including low and uneven BCMA expression and tumor recurrence after antigen loss or downregulation. To overcome these obstacles, the inventors aimed to increase overall BCMA expression in cancer cells, such as MM cells.

[0010] We investigated the potential of all-trans-retinoic acid (ATRA) to upregulate BCMA on MM cells, thereby enhancing the performance of BCMA-specific CAR T cells. Using quantitative RT-PCR and flow cytometry, we observed that co-incubation with the retinoid ATRA could induce a significant increase in BCMA RNA levels and BCMA surface expression in primary MM cells and myeloma cell lines.

[0011] Importantly, BCMA-specific CAR T cells showed enhanced recognition and lysis of target cell lines when they were pretreated with ATRA. After stimulation with ATRA-treated target cells, cytokine release and proliferation of BCMA-CAR T cells were enhanced compared to untreated target cells. Even in MM1.S / NSG mice, BCMA was upregulated on the surface of tumor cells after the animals were injected with ATRA for several days. Combinatorial treatment with ATRA and BCMA-specific CAR T cells resulted in a significant and long-term reduction in tumor mass compared to single-agent treatment.

[0012] Furthermore, it was shown that the effect of BCMA upregulation on target cell lines could be further enhanced by combining ATRA with a gamma secretase inhibitor (GSI). By combining the administration of both drugs, the efficacy of BCMA-CAR T cells was further increased in vitro and even in vivo. That is, the combined application of the two agents, GSI and ATRA, resulted in even greater effects on BCMA upregulation and recognition by BCMA-CAR T cells.

[0013] According to the present invention, retinoids such as ATRA can be used to enhance BCMA-targeted immunotherapy, for example, by increasing the baseline expression of BCMA in tumor cells and maintaining it at an elevated level during treatment.

[0014] Although the retinoid ATRA led to enhanced expression of BCMA on the surface of myeloma cells, there was no increase in shed soluble BCMA (sBCMA) in the supernatants of ATRA-treated cells. This was an unexpected favorable effect of the retinoid ATRA because 1) sBCMA is routinely found in the serum of myeloma patients and therefore would be expected to increase with ATRA treatment, and 2) an increase in sBCMA should be avoided because it may interfere with and inhibit the efficacy of BCMA-directed anticancer therapies.

[0015] Nevertheless, we confirmed that the anti-MM reactivity of the BCMA CAR was not inhibited in the presence of high concentrations of sBCMA, which occur at later time points after ATRA treatment and are routinely found in the serum of myeloma patients.

[0016] According to the present invention, beneficial upregulation of BCMA can be achieved not only with ATRA, but also with other retinoids, which are believed to share the same action (e.g., as specific exogenous modulators) and therefore can be used in accordance with the present invention.

[0017] Studies by the present inventors illustrate the beneficial effects of combining a retinoid, such as ATRA, with an immunotherapeutic agent capable of binding to BCMA, such as BCMA-CAR T cells, for the treatment of cancer, such as the treatment of myeloma.

[0018] Furthermore, according to the present invention, such combination therapy can be advantageously applied to the treatment of antibody-mediated autoimmune diseases. Antibodies are secreted by B cells, primarily plasma cells, which are differentiated B cells. Autoantibodies are antibodies that bind to an individual's own proteins and can induce autoimmune diseases (e.g., lupus erythematosus). Therefore, B cells, and particularly plasma cells, can act as therapeutic targets for the treatment of such autoimmune diseases. Several monoclonal antibodies against CD19, CD20, and CD22 have already been used to target multiple B cell subtypes. The CD20-targeting antibody rituximab has already been approved for use in rheumatoid arthritis, granulomatosis with polyangiitis, and microscopic polyangiitis (K Hofmann et al., Front. Immunol., April 23, 2018, "Targeting B Cells and Plasma Cells in Autoimmune Diseases," https: / / doi.org / 10.3389 / fimmu.2018.00835; A. Rubbert-Roth et al., "Efficacy and safety of various repeat treatment dosing regimens of rituximab in patients with active rheumatoid arthritis: results of a Phase III randomized study (MIRROR)," Rheumatology, Vol. 49, No. 9, September 2010, pp. 1683-1693, https: / / doi.org / 10.1093 / rheumatology / keq116).

[0019] B cell maturation antigen (BCMA) is preferentially expressed by B lineage cells, including plasma cells. Therefore, according to the present invention, antibody-mediated autoimmune diseases can also be treated with immunotherapeutic agents according to the present invention capable of binding to BCMA. Here, administration of an agent that upregulates BCMA mRNA levels according to the present invention, such as a retinoid according to the present invention, is expected to enhance the efficacy of treatment. Instead of immunotherapeutic agents according to the present invention capable of binding to BCMA, immunotherapeutic agents comprising a gene therapy vector encoding a chimeric antigen receptor (CAR) capable of binding to BCMA and serving as a gene therapy vector for in vivo expression of the CAR in immune cells can also be used according to the present invention.

[0020] The invention is illustrated by the following preferred embodiments. 1. An immunotherapeutic anticancer agent capable of binding to BCMA for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, wherein the method comprises administering to the human patient an agent that upregulates BCMA mRNA levels. 2. An agent for upregulating BCMA mRNA levels for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, wherein the method is a method in which an immunotherapeutic anti-cancer agent capable of binding to BCMA is administered to the human patient. 3. A combination of an immunotherapeutic anti-cancer agent capable of binding to BCMA and an agent that upregulates BCMA mRNA levels for use in a method of cancer immunotherapy directed against BCMA as a cancer antigen in a human patient. 4. A method of treating cancer by immunotherapy against BCMA as a cancer antigen in a human patient, comprising administering to the human patient an immunotherapeutic anticancer agent capable of binding to BCMA and an agent that upregulates BCMA mRNA levels. 5. The immunotherapeutic anticancer agent for use according to item 1, the upregulator for use according to item 2, the combination for use according to item 3, or the method according to item 4, wherein the upregulator is a retinoid. 6. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 5, wherein the retinoid is a non-aromatic retinoid. 7. The immunotherapeutic anticancer agent, upregulator, combination, or method for use according to Item 6, wherein the non-aromatic retinoid is all-trans-retinoic acid (ATRA), isotretinoin (13-cis-retinoic acid), alitretinoin (9-cis-retinoic acid), retinal, or retinol. 8. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 7, wherein the upregulator is all-trans-retinoic acid (ATRA). 9. The immunotherapeutic anticancer agent for use, the upregulator for use, the combination for use, or the method according to item 5, wherein the retinoid is an aromatic retinoid. 10. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to item 9, wherein the aromatic retinoid is a monoaromatic retinoid, preferably acitretin, etretinate, or motretinide. 11. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to item 9, wherein the aromatic retinoid is a polyaromatic retinoid, preferably adapalene, an arotinoid, an acetylenic retinoid, such as tazarotene, or bexarotene. 12. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 11, wherein the cancer is a cancer susceptible to upregulation of BCMA mRNA levels by the upregulator. 13. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 12, wherein the cancer is a blood cancer, preferably leukemia, lymphoma, or multiple myeloma. 14. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 13, wherein the cancer is a cancer in which some or all of the cancer cells express BCMA. 15. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 14, wherein the cancer is multiple myeloma, B-cell leukemia, or B-cell lymphoma. 16. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 15, wherein the cancer is multiple myeloma. 17. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 16, wherein the immunotherapeutic anti-cancer agent capable of binding to BCMA comprises immune cells expressing a chimeric antigen receptor (CAR) capable of binding to BCMA. 18. The immunotherapeutic anticancer agent for use, the upregulator for use, the combination for use, or the method according to Item 17, wherein the immune cells expressing a CAR capable of binding to BCMA are T cells expressing a CAR capable of binding to BCMA (CAR-T cells capable of binding to BCMA). 19. The immunotherapeutic anticancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 18, wherein the immunotherapeutic anticancer agent capable of binding to BCMA comprises an antibody capable of binding to BCMA or an antibody fragment capable of binding to BCMA, wherein said antibody or antibody fragment is preferably a bispecific antibody, more preferably an antibody selected from a BiTE or a DART. 20. The immunotherapeutic anticancer agent for use, the upregulator for use, the combination for use, or the method according to Item 19, wherein the antibody capable of binding to BCMA or the antibody fragment capable of binding to BCMA is conjugated with a drug. 21. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to item 20, wherein the drug is an anti-cancer drug. 22. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to item 17 or 18, wherein the use results in prolonged persistence of immune cells and / or prolonged reduction in tumor mass compared to cancer immunotherapy with immune cells alone. 23. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 22, wherein the cancer is relapsed and refractory multiple myeloma or newly diagnosed multiple myeloma. 24. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 1 to 23, wherein a gamma secretase inhibitor is administered in the method. 25. The immunotherapeutic anticancer agent for use, the upregulator for use, the combination for use, or the method according to Item 24, wherein the gamma secretase inhibitor is semagasestat (LY 450139), crenigasestat (LY3039478), RO4929097, DAPT, or MK-0752. 26. An immunotherapeutic agent capable of binding to BCMA for use in a method for treating an antibody-mediated autoimmune disease in a human patient, wherein the method comprises administering to the human patient an agent that upregulates BCMA mRNA levels. 27. An upregulator of BCMA mRNA levels for use in a method for treating an antibody-mediated autoimmune disease in a human patient, wherein the method comprises administering to the human patient an immunotherapeutic agent capable of binding to BCMA. 28. A combination of an immunotherapeutic agent capable of binding to BCMA and an agent that upregulates BCMA mRNA levels for use in a method of treating an antibody-mediated autoimmune disease in a human patient. 29. A method for treating an antibody-mediated autoimmune disease in a human patient, comprising administering to the human patient an immunotherapeutic agent capable of binding to BCMA and an agent that upregulates BCMA mRNA levels. 30. The immunotherapeutic agent for use according to item 26, the upregulator for use according to item 27, the combination for use according to item 28, or the method according to item 29, wherein the upregulator is defined in any one of items 5 to 11. 31. The immunotherapeutic agent for use, the upregulator for use, the combination for use, or the method according to any one of items 26 to 30, wherein the immunotherapeutic agent capable of binding to BCMA comprises immune cells expressing a chimeric antigen receptor (CAR) capable of binding to BCMA. 32. The immunotherapeutic agent for use, the upregulator for use, the combination for use, or the method according to item 31, wherein the immune cells expressing a CAR capable of binding to BCMA are T cells expressing a CAR capable of binding to BCMA (CAR-T cells capable of binding to BCMA). 33. The immunotherapeutic agent for use, the upregulator for use, the combination for use, or the method according to any one of items 26 to 32, wherein the immunotherapeutic agent capable of binding to BCMA comprises an antibody capable of binding to BCMA or an antibody fragment capable of binding to BCMA. 34. The immunotherapeutic agent for use, the upregulator for use, the combination for use, or the method according to item 33, wherein the antibody capable of binding to BCMA or the antibody fragment capable of binding to BCMA is conjugated with a drug. 35. The immunotherapeutic agent for use, the upregulator for use, the combination for use, or the method according to item 34, wherein the agent is a cytotoxic agent. 36. The immunotherapeutic agent for use, the upregulator for use, the combination for use, or the method according to any one of items 26 to 35, wherein the antibody-mediated autoimmune disease is Graves' disease, myasthenia gravis, lupus erythematosus, rheumatoid arthritis, Goodpasture's syndrome, scleroderma, CREST syndrome, granulomatosis with polyangiitis, microscopic polyangiitis, pemphigus vulgaris, Sjogren's syndrome, type 1 diabetes, primary biliary cholangitis, Hashimoto's thyroiditis, neuromyelitis optica spectrum disorder, anti-NMDA receptor encephalitis, vasculitis, or multiple sclerosis. 37. An immunotherapeutic anticancer agent comprising a gene therapy vector encoding a chimeric antigen receptor (CAR) capable of binding to BCMA, for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, wherein the gene therapy vector is for in vivo expression of the CAR in immune cells, and the method is a method in which an agent that upregulates BCMA mRNA levels is administered to the human patient. 38. An agent for upregulating BCMA mRNA levels for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, said method comprising administering an immunotherapeutic anticancer agent to the human patient, said immunotherapeutic anticancer agent comprising a gene therapy vector encoding a chimeric antigen receptor (CAR) capable of binding to BCMA, and said gene therapy vector being a gene therapy vector for in vivo expression of said CAR in immune cells. 39. A combination of an immunotherapeutic anticancer agent and an agent that upregulates BCMA mRNA levels, for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, wherein the immunotherapeutic anticancer agent comprises a gene therapy vector encoding a chimeric antigen receptor (CAR) capable of binding to BCMA, and the gene therapy vector is a gene therapy vector for in vivo expression of the CAR in immune cells. 40. A method for treating cancer by immunotherapy against BCMA as a cancer antigen in a human patient, the method comprising administering to the human patient an immunotherapeutic anticancer agent and an agent that upregulates BCMA mRNA levels, wherein the immunotherapeutic anticancer agent comprises a gene therapy vector encoding a chimeric antigen receptor (CAR) capable of binding to BCMA, and the gene therapy vector is a gene therapy vector for in vivo expression of the CAR in immune cells. 41. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 37 to 40, wherein the upregulator is defined in any one of items 5 to 11. 42. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 37 to 41, wherein the cancer is defined in any one of items 12 to 16 or 23. 43. The immunotherapeutic anti-cancer agent for use, the upregulator for use, the combination for use, or the method according to any one of items 37 to 42, wherein in the method a gamma secretase inhibitor is administered, the gamma secretase inhibitor being defined in item 24 or 25. [Brief explanation of the drawings]

[0021] [Figure 1] ATRA treatment leads to enhanced BCMA expression in myeloma cell lines. Flow cytometry analysis of BCMA expression in MM.1S, OPM-2, and NCI-H929 cell lines cultured for 72 hours in the absence or presence of 50 nM ATRA. Shaded histograms represent staining with anti-BCMA mAb, and open histograms represent staining with an isotype control antibody. Dead cells were excluded from the analysis using 7-AAD. Inset numbers represent the absolute difference in MFI between treated and untreated cells for each isotype. [Figure 2] ATRA treatment leads to enhanced BCMA expression in MM.1S, OPM-2, and NCI-H929 cells. The bar graph shows the relative increase in BCMA expression in ATRA-treated myeloma cell lines normalized to untreated cells. Bar graphs show mean values ​​+ SD (n = 3). P values ​​between the indicated groups were calculated using an unpaired t-test. *p < 0.05. [Figure 3] ATRA treatment leads to enhanced expression of BCMA in MM.1S cells. Representative photographs of the distribution of BCMA molecules for untreated and ATRA-treated MM.1S cells visualized by direct stochastic optical reconstruction microscopy (dSTORM). [Figure 4]Upregulation of BCMA by ATRA is reversible in myeloma cell lines. Overlay histograms show BCMA expression in untreated myeloma cell lines, 72 hours after ATRA treatment (50 nM), 24 hours after subsequent drug removal, and 72 hours after re-exposure to ATRA. [Figure 5] ATRA treatment leads to enhanced BCMA-RNA levels in myeloma cell lines. After 48 hours of incubation with increasing doses of ATRA, BCMA RNA levels were quantified in MM.1S (n=4) and OPM-2 (n=3) cells by quantitative reverse transcription PCR (qRT-PCR) assay. Mean values ​​+ SD are shown. P values ​​between the indicated groups were calculated using an unpaired t-test. *p<0.05. [Figure 6] BCMA expression is highly variable among myeloma patients. The difference in mean fluorescence intensity (MFI) between BCMA and isotype control staining is shown for CD38+ CD138+ myeloma cells from newly diagnosed (ND) and relapsed / refractory (R / R) myeloma previously treated with immunomodulatory drugs and proteasome inhibitors (n=18). Delta MFI is the difference in MFI between BCMA and isotype control staining. [Figure 7] ATRA treatment leads to enhanced BCMA expression in primary myeloma cells. Flow cytometry analysis of BCMA expression in primary myeloma cells cultured for 72 hours in the absence or presence of ATRA. Dead cells were excluded from the analysis using 7-AAD. [Figure 8] ATRA treatment results in enhanced BCMA expression in primary myeloma cells. The bar graph shows normalized BCMA expression in primary myeloma cells (n=5) before and after ATRA treatment. Mean values ​​+ SD are shown. P values ​​between the indicated groups were calculated using an unpaired t-test. *p<0.05. [Figure 9]Upregulation of BCMA by ATRA is reversible in primary myeloma cells. Overlay histograms show BCMA expression in untreated primary myeloma cells, 72 hours after ATRA treatment (100 nM), 24 hours after subsequent drug removal, and 72 hours after re-exposure to ATRA. Dead cells were excluded from the analysis using 7-AAD. [Figure 10] Combination of ATRA and GSI treatment results in enhanced BCMA expression in MM.1S and OPM-2 cells. Bar graphs show BCMA expression in MM.1S cells (n=5) and OPM-2 cells (n=3) after 72 hours of treatment with 100 nM ATRA and / or 0.01 μM GSI LY3039478. Mean values ​​+ SD are shown. P values ​​between the indicated groups were calculated using an unpaired t-test. *p<0.05. [Figure 11] ATRA treatment does not affect the viability of BCMA-CAR T cells. The viability of BCMA CD4+ and CD8+ CAR T cells after 72 hours of incubation with increasing doses of ATRA was determined by flow cytometry. The bar graph shows the percentage of surviving (7-AAD-) T cells after ATRA treatment normalized to untreated cells. Data are presented as mean + SD (n = 3). [Figure 12] ATRA treatment does not affect CAR expression in BCMA-CAR T cells. EGFRt_BCMA-CAR transgene expression in BCMA CD4+ and CD8+ CAR T cells after 72 hours of incubation with increasing doses of ATRA was determined by flow cytometry. Bar graphs show the percentage of EGFRt+ T cells after ATRA treatment normalized to untreated cells. Data are presented as mean + SD (n=3). [Figure 13]BCMA-CAR T cells enhance cytotoxicity against ATRA- or ATRA + GSI-treated MM.1S in vitro. Myeloma cell lines were incubated with 100 nM ATRA and / or 0.01 μM GSI for 72 hours or left untreated. After 4 hours of co-incubation with target cells, the cytolytic activity of CD8+ BCMA-CAR T cells was determined by a bioluminescence-based assay. Assays were performed in triplicate wells with 5,000 target cells per well. Data are presented as the mean + SD of n=4 independent experiments. P values ​​between the indicated groups were calculated using an unpaired t-test. *p<0.05. [Figure 14] BCMA-CAR T cells enhance cytotoxicity against ATRA- or ATRA + GSI-treated OPM-2 cells in vitro. Myeloma cell lines were incubated with 100 nM ATRA and / or 0.01 μM GSI for 72 hours or left untreated. After 4 hours of co-incubation with target cells, the cytolytic activity of CD8+ BCMA-CAR T cells was determined by a bioluminescence-based assay. Assays were performed in triplicate wells with 5,000 target cells per well. Data are presented as the mean + SD of n=4 independent experiments. P values ​​between the indicated groups were calculated using an unpaired t-test. *p<0.05. [Figure 15] BCMA-CAR T cells exhibit enhanced proliferative responses after stimulation with MM.1S treated with ATRA or ATRA + GSI in vitro. MM.1S were incubated with 100 nM ATRA and / or 0.01 μM GSI for 72 hours or left untreated. CFSE-labeled BCMA-CAR T cells were then co-incubated with these target cells. The proliferative capacity of BCMA-CAR T cells was determined after 3 days by measuring the reduction of CFSE labeling in effector cells. Data are presented as the mean + SD of n=3 independent experiments. P values ​​between the indicated groups were calculated using an unpaired t-test. *p<0.05. [Figure 16]BCMA-CAR T cells enhance cytokine release after stimulation with MM.1S treated with ATRA or ATRA + GSI in vitro. MM.1S were incubated with 100 nM ATRA and / or 0.01 μM GSI for 72 hours or left untreated. BCMA-CAR T cells were then co-incubated with these target cells for 20 hours. Cytokine release from BCMA-CAR T cells was determined in the supernatant by ELISA. Assays were performed in triplicate wells. Data are presented as the mean + SD of n=3 independent experiments. P values ​​between the indicated groups were calculated using an unpaired t-test. *p<0.05. [Figure 17] ATRA enhances BCMA expression in MM.1S cells in vivo. NSG mice were inoculated with MM.1S cells. Twelve days later, the mice were injected i.p. with 30 mg / kg ATRA for 4 days. BCMA expression in MM.1S cells obtained from the bone marrow of untreated and ATRA-treated mice was analyzed by flow cytometry. [Figure 18]Combinatorial treatment with ATRA and BCMA-CAR T cells or ATRA, GSI, and BCMA-CAR T cells resulted in enhanced extinction of MM.1S in vivo. NSG mice were inoculated with 2 × 10 MM.1S cells (ffluc+GFP+). 14 days later, these mice were treated with 1 × 10 BCMA-CAR T cells (CD4+:CD8+ ratio = 1:1). BCMA-CAR T cells were administered alone or in combination with ATRA (30 mg / kg body weight as an i.p. injection), GSI LY3039478 (1 mg / kg body weight as an i.p. injection), or both drugs. Twelve doses of ATRA were injected between days 12 and 27 (Monday to Friday). GSI was administered during the same period, and mice received a total of seven doses (Monday, Wednesday, and Friday, respectively). The mean intensity of the MM.1S signal was analyzed to assess myeloma progression / regression in each treatment group. Bioluminescence (BMI) values ​​were obtained as photons / second / cm² / sr in the region of interest encompassing the entire body of each mouse. A) Time course of the experiment. The gray boxes represent the period during which GSI and ATRA were administered. B) The graph shows the percentage change in bioluminescence signal from the baseline value induced on day 14. Each bar represents the average value per mouse group. n = 3–6 mice per group. [Figure 19] ATRA does not increase sBCMA in cell line supernatants. Concentrations of soluble BCMA in the supernatants of MM.1S and OPM-2 cells after incubation with increasing doses of ATRA. Cell lines were cultured at 1 x 106 / well for 24 hours. After incubation, supernatants were harvested and analyzed by ELISA. Stimulations were performed in triplicate. Mean values ​​+ SD are shown. [Figure 20] sBCMA levels in the serum of myeloma patients increase with tumor burden. Soluble BCMA concentrations in the serum of MM patients. Peripheral blood was collected from MM patients. Serum was obtained by centrifugation at 3,000 rpm for 10 minutes and analyzed by ELISA (stimulations were performed in triplicate). PD: progressive disease, SD: stabilization of disease, PR: partial remission, CR: complete remission. [Figure 21]Soluble BCMA does not abolish the effect of BCMA-CAR T cells on ATRA-treated myeloma cells. CD8+ BCMA-CAR T cells were co-cultured with MM.1S or K562 / BCMA target cells in the absence or presence of 150 ng / ml soluble BCMA. After 4 hours, luciferin was added to the culture medium, and cytotoxicity was assessed by a bioluminescence-based assay. Data represent the mean ± SD of technical triplicates. DETAILED DESCRIPTION OF THE INVENTION

[0022] Definitions and Embodiments Unless otherwise defined below, terms used in the present invention should be understood according to the common meanings known to those skilled in the art.

[0023] To the extent not inconsistent with the present invention, each publication, patent application, patent, and other reference cited herein is hereby incorporated by reference in its entirety for all purposes. The references are identified by their reference number and the corresponding reference details provided in the "References" section.

[0024] The term “K D " or "K D The "value" refers to the equilibrium dissociation constant as known in the art. In the context of the present invention, these terms may relate to the equilibrium dissociation constant of an immunotherapeutic or anti-cancer agent (e.g., CAR T cells or antibodies) capable of binding to BCMA with respect to an antigen of interest (i.e., BCMA). The equilibrium dissociation constant is a measure of the tendency of a complex (e.g., an antigen-targeting agent complex) to reversibly dissociate into its components (e.g., the antigen and the targeting agent). K D Methods for determining the value are known in the art.

[0025] The chimeric antigen receptor can bind to one or more antigens, preferably cancer antigens, more preferably surface antigens of cancer cells. In a preferred embodiment, the chimeric antigen receptor can bind to the extracellular domain of a cancer antigen. In a particularly preferred embodiment, the chimeric antigen receptor can bind to the extracellular domain of BCMA, and even more preferably is a chimeric antigen receptor encoded by the nucleic acid sequence of SEQ ID NO: 1 and / or a chimeric antigen receptor having the amino acid sequence of SEQ ID NO: 13.

[0026] According to the present invention, immune cells such as T cells, NK cells, or PBMCs are isolated from a patient, genetically modified (e.g., transduced) with a gene transfer vector encoding a chimeric antigen receptor according to the present invention, and administered to the patient according to the methods and uses of the present invention. In a preferred embodiment, the T cells are CD8 + T cells or CD4 + Alternatively, allogeneic immune cells such as T cells, NK cells, or PBMCs from a donor, preferably a healthy donor, can be used. These are genetically modified (e.g., transduced) with a gene transfer vector encoding a chimeric antigen receptor according to the present invention and administered to a patient according to the methods and uses of the present invention. In a preferred embodiment, the T cells are CD8 + T cells or CD4 + T cells.

[0027] CAR NK cell therapy is described, for example, in [Liu E, et al., "Use of CAR-Transduced Natural Killer Cells in CD19-Positive Lymphoid Tumors," N Engl J Med., February 6, 2020, 382(6):545-553, doi:10.1056 / NEJMoa1910607].

[0028] For CAR T cell therapy, T cells are typically engineered and expanded ex vivo. However, according to the present invention, gene transfer can also be performed in vivo. One method for programming immune cells, such as T cells, in the body is gene transfer using nanoparticles carrying DNA. This has been described, for example, by Smith et al. [TT Smith et al., "In situ programming of leukemia-specific T cells using synthetic DNA nanocarriers," Nat Nanotechnol., August 2017; 12(8):813-820, published online April 17, 2017, doi:10.1038 / nnano.2017.57]. A second strategy is the in vivo generation of CAR immune cells (e.g., CAR T cells) using viral vectors. This has been described, for example, by Agarwal et al. [Agarwal S et al., Oncoimmunology, 2019 Oct 10;8(12):e1671761. "In vivo generated human CAR T cells eradicate tumor cells", doi:10.1080 / 2162402X.2019.1671761].

[0029] The "immune cells" used in the present invention are not particularly limited and include, for example, T cells, NK cells, or PBMCs. In a preferred embodiment, T cells are CD8 + T cells or CD4 + T cells.

[0030] As used herein, the term "antibody" refers to any functional antibody capable of specifically binding to an antigen of interest. Without specific limitation, the term "antibody" encompasses antibodies derived from any suitable source species, including birds such as chickens, and mammals such as mice, goats, non-human primates, and humans. Preferably, the antibody is a humanized or human antibody. A humanized antibody is an antibody that contains human sequences and a small portion of non-human sequences that confers binding specificity to the antigen of interest (e.g., BCMA). The antibody is preferably a monoclonal antibody, which can be prepared by methods well known in the art. The term "antibody" encompasses IgG-1, -2, -3, or -4, IgE, IgA, IgM, or IgD isotype antibodies. The term "antibody" includes monomeric antibodies (e.g. (IgD, IgE, IgG) or oligomeric antibodies (such as IgA or IgM). The term "antibody" also includes (without limitation) isolated antibodies and modified antibodies such as genetically engineered antibodies, for example chimeric or bispecific antibodies, or antibody conjugates with drugs such as anti-cancer or cytotoxic drugs. A preferred bispecific antibody capable of binding to BCMA in accordance with the present invention is a BiTE (bispecific T cell engager), e.g. CD3xBCMA The antibody or antigen-binding portion may be a T cell engager such as a BiTE, or a DART (dual affinity retargeting protein). The "antibodies" (e.g., monoclonal antibodies) or "fragments thereof" described herein may be derivatized with or linked to different molecules. For example, molecules that may be linked to antibodies are other proteins (e.g., other antibodies), molecular labels (e.g., fluorescent, luminescent, colored, or radioactive molecules), pharmaceutical and / or toxic agents. The antibodies or antigen-binding portions may be linked directly (e.g., in the form of a fusion of the two proteins) or via a linker molecule (e.g., any suitable type of chemical linker known in the art).

[0031] As used herein, an antibody fragment or antibody fragment capable of binding to BCMA refers to a portion of an antibody that retains the antibody's ability to specifically bind to the BCMA antigen. This ability can be determined, for example, by determining the ability of the antigen-binding portion to compete with the antibody for specific binding to the antigen by methods known in the art. Without particular limitation, antibody fragments can be produced by any suitable method known in the art, including recombinant DNA methods and preparation by chemical or enzymatic fragmentation of antibodies. An antibody fragment can be a Fab fragment, a F(ab') fragment, a F(ab')2 fragment, a single-chain antibody (scFv), a single-domain antibody, a diabody, or any other portion of an antibody that retains the antibody's ability to specifically bind to an antigen.

[0032] Terms such as "cancer treatment" or "treating cancer" or "cancer therapy" or "cancer immunotherapy" according to the present invention refer to therapeutic treatment. The success of a therapeutic treatment can be assessed, for example, by assessing whether the treatment inhibits cancer growth in treated patients. Preferably, the inhibition is statistically significant as assessed by an appropriate statistical test known in the art. Inhibition of cancer growth can be assessed by comparing cancer growth in a group of patients treated according to the present invention with that of a control group of untreated patients, or by comparing a group of patients treated with standard cancer treatments in the art and the present invention with a control group of patients who only receive standard cancer treatments in the art. Such studies to assess inhibition of cancer growth are designed according to accepted standards for clinical trials, e.g., double-blind, randomized trials with sufficient statistical power. The term "treating cancer" includes partial inhibition of cancer growth (i.e., the growth of the cancer in the patient is slowed compared to a control group of patients), complete inhibition of cancer growth (i.e., the growth of the cancer in the patient is stopped), and reversal of cancer growth (i.e., the cancer shrinks). The success of therapeutic treatment can be assessed based on known clinical indicators of cancer progression. For cancers that do not form solid tumors, cancer growth can be assessed by known methods, such as methods based on counting cancer cells.

[0033] "Cancer treatment" or "treating cancer" or "cancer therapy" or "cancer immunotherapy" as used in accordance with the present invention is preferably the treatment of cancer itself. Alternatively, "cancer treatment" or "treating cancer" or "cancer therapy" or "cancer immunotherapy" according to the present invention may be the treatment of a precancerous condition, preferably selected from MGUS (monoclonal gammopathy of undetermined significance) and multiple myeloma precursor conditions such as smoldering multiple myeloma.

[0034] Treatment of cancer according to the present invention does not exclude producing additional or secondary therapeutic benefits in patients, such as treatment of amyloidosis, for example amyloidosis associated with multiple myeloma.

[0035] Cancer treatment according to the present invention may be first line, second line, third line, or fourth line therapy. The treatment may be more than fourth line therapy. The meanings of these terms are known in the art and are in accordance with the terminology commonly used by the US National Cancer Institute.

[0036] In one embodiment, the methods of the present invention, such as methods of cancer immunotherapy or methods of treating cancer by immunotherapy, may also include administering an exogenous modulator, which may be a BET inhibitor, a histone acetyltransferase inhibitor, a histone deacetylase inhibitor, or a DNA methyltransferase inhibitor, and is preferably selected from the group consisting of valproic acid, butyric acid, panobinostat lactate, belinostat, vorinostat, dacinostat, entinostat, mocetinostat, romidepsin, and ricolinostat.

[0037] As used herein, the term "capable of binding" refers to the ability to form a complex with the molecule to be bound (e.g., BCMA). Binding typically occurs non-covalently through intermolecular forces such as ionic bonds, hydrogen bonds, and van der Waals forces, and is typically reversible. Various methods and assays for determining binding capacity are known in the art. Binding is usually with high affinity, with a K D The affinity, measured as a value, is preferably less than 1 μM, more preferably less than 100 nM, even more preferably less than 10 nM, even more preferably less than 1 nM, even more preferably less than 100 pM, even more preferably less than 10 pM, even more preferably less than 1 pM.

[0038] As used herein, each occurrence of the terms "comprising" or "comprises" or the like may optionally be replaced with "consisting of" or "consists of".

[0039] A "combination" according to the present invention is not limited to a particular mode of administration: the immunotherapeutic or anti-cancer agent capable of binding to BCMA and the agent that upregulates BCMA mRNA levels can, for example, be administered separately but simultaneously, or simultaneously in one composition, or may be administered separately at different times.

[0040] Whether a substance is an upregulator of BCMA mRNA levels can be determined by methods known in the art, for example by measuring the level of BCMA mRNA in a cell of interest, e.g., a cancer cell, by methods such as quantitative RT-PCR as described in the "Quantifying BCMA mRNA levels" section herein.

[0041] Compositions and formulations according to the present invention, including immunotherapeutic anti-cancer agents capable of binding to BCMA and / or agents that upregulate BCMA mRNA levels, are prepared according to known standards for preparing pharmaceutical compositions and formulations. For example, compositions and formulations are prepared in a manner that allows them to be appropriately stored and administered by using pharmaceutically acceptable ingredients, such as carriers, excipients, or stabilizers. Such pharmaceutically acceptable ingredients are not toxic in the amounts used when administering the pharmaceutical composition or formulation to a patient. The pharmaceutically acceptable ingredients added to a pharmaceutical composition or formulation can be selected based on the chemical properties of the active agent (e.g., immunotherapeutic anti-cancer agents capable of binding to BCMA and / or agents that upregulate BCMA mRNA levels), the specific intended use of the pharmaceutical composition, and the route of administration. It is understood that, according to the present invention, the compositions or formulations are suitable for administration to humans.

[0042] Pharmaceutically acceptable carriers, including any suitable diluents, can be used herein as known in the art. As used herein, the term "pharmaceutically acceptable" means approved by a federal or state regulatory agency, or listed in the United States Pharmacopoeia, the European Pharmacopoeia, or other generally recognized pharmacopoeias for use in mammals, especially humans. Pharmaceutically acceptable carriers include, but are not limited to, saline, buffered saline, dextrose, water, glycerol, sterile isotonic aqueous buffer, and combinations thereof. It will be understood that the formulation will be appropriately adapted to the mode of administration. [Example]

[0043] The invention is illustrated by the following non-limiting examples.

[0044] The materials and methods used in this example were as follows.

[0045] human subjects Peripheral blood and bone marrow samples were obtained from healthy donors and myeloma patients after written informed consent to participate in a research protocol approved by the Institutional Review Boards of the University of Wurzburg.

[0046] cell line K562, OPM-2, NCI-H929, and MM.1S cell lines were obtained from the German Collection of Microorganisms and Cell Cultures (DSMZ, Braunschweig, Germany). K562, OPM-2, and MM.1S cell lines were modified with firefly luciferase (GFP) by lentiviral transduction. K562 expressing full-length human BCMA was generated by transducing the K562-ffluc cell line with a lentiviral vector encoding BCMA.

[0047] Flow cytometry Bone marrow mononuclear cells (BMMCs) were stained with anti-CD38 and anti-CD138 mAbs (Biolegend, Koblenz, Germany) to identify malignant plasma cells and anti-BCMA mAb (BioLegend, clone 19F2) or isotype control (Biolegend, mouse IgG2a,κ) according to the manufacturer's instructions. Flow cytometry was performed on a Canto II (BD, Heidelberg, Germany), and data were analyzed using FlowJo software (TreeStar, Ashland, OR).

[0048] ATRA treatment of myeloma cells 1 × 10 in RPMI-1640 (Gibco, Darmstadt, Germany) supplemented with 10% fetal bovine serum 6 Myeloma cells were cultured at 100 cells / ml. ATRA (Sigma-Aldrich, Darmstadt, Germany) was reconstituted in dimethyl sulfoxide and added to the culture medium at final concentrations of 25, 50, or 100 nM.

[0049] In vitro T cell functional assay Cytolytic activity was analyzed by a bioluminescence-based assay using firefly luciferase (ffluc)-transduced target cells. Proliferation was measured by flow cytometry using the dilution of CFSE proliferation dye. CFSE-labeled CAR T cells were then incubated with target cells at a 4:1 effector-to-target ratio for 72 hours. After 20 hours of coculture of T cells with target cells (effector:target ratio = 4:1), IFNγ and IL-2 were measured in the resulting supernatants by ELISA (Biolegend, Koblenz, Germany).

[0050] Quantification of BCMA mRNA levels Total RNA was extracted using the RNeasy Mini Kit (Qiagen, Hilden, Germany) according to the manufacturer's protocol. Reverse transcription-quantitative polymerase chain reaction (RT-qPCR) analysis of BCMA was performed using 1 μg of total RNA and SuperScript™ II Reverse Transcriptase (Thermo Fisher Scientific, Inc., Massachusetts). RNA quality and integrity were verified using a Bioanalyzer 2100 (Agilent Technologies, Santa Clara, CA). The primer sequences used were as follows: BCMA forward primer: 5'-TGT TCT TCT AAT ACT CCT CCT CT-3' (SEQ ID NO: 25) and reverse primer: 5'-AAC TCG TCC TTT AAT GGT TC-3' (SEQ ID NO: 26). Primers specific for β-actin were used as a control (forward: 5'-TCC ATC ATG AAG TGT GAC GT-3' (SEQ ID NO: 27) and reverse: 5'-GAG CAA TGATCTTGATCT TCA T-3' (SEQ ID NO: 28)). RT-qPCR was performed using the Quantitec SYBR green Kit (Qiagen, Hilden, Germany) on a 7900HT Real-time PCR System (Thermo Fisher Scientific, Inc., Massachusetts) and a 7900HT Fast Real-Time PCR System (Applied Biosystems, Foster City, CA). PCR conditions consisted of 40 cycles of denaturation at 95°C for 3 minutes, annealing at 95°C for 30 seconds, and extension at 62°C for 40 seconds. The threshold cycle for each sample was selected from the linear range and converted to starting amounts by interpolation from a standard curve generated on the same plate for each set of primers. BCMA messenger (m)RNA levels were normalized to β-actin mRNA levels for each well using the 2 −ΔΔCq method ( 21 ).

[0051] ATRA upregulates BCMA expression on MM.1S in vivo. All mouse experiments were approved by the Institutional Animal Care and Use Committee of the University of Wurzburg. Six- to eight-week-old female NSG (NOD-scid IL2rγnull) mice were obtained from Charles River and injected with 2 × 10 mice by tail vein injection on day 0. 6 Mice were inoculated with MM.1S / ffluc_GFP and randomly assigned to ATRA-treated or control groups. ATRA (Sigma-Aldrich, Darmstadt, Germany) was formulated in corn oil and administered intraperitoneally (ip) for 4 days starting 12 days after tumor inoculation (30 mg / kg). At the end of the experiment on day 16, bone marrow samples from these mice were analyzed using a Canto II (BD, Heidelberg, Germany) to examine BCMA expression on MM.1S. Data were analyzed using FlowJo software (TreeStar, Ashland, OR).

[0052] In vivo experiments with the combination of ATRA and GST To study combinatorial treatment with BCMA-CAR T cells, ATRA, and GSI, female NSG (NOD-scid IL2rγnull) mice were administered 2 × 10 BCMA-CAR T cells by tail vein injection on day 0. 6 MM.1S / ffluc_GFP and randomly assigned to treatment or control groups. On day 14, mice received a single dose of 1 x 10 MM.1S / ffluc_GFP via tail vein injection. 6 T cells (i.e., 0.5 × 10 6 CD4 + and 0.5 × 10 6 CD8 +) was administered. ATRA (Sigma Aldrich, Darmstadt, Germany) was diluted in DMSO, formulated with PEG300, Tween 80, and saline, and administered by intraperitoneal injection (ip) at a dose of 30 mg / kg, Monday through Friday, for 16 days, starting on day 12 after tumor inoculation. GSI LY3039478 (Med Chem Express, NJ 08852, USA) was diluted in DMSO, formulated with PEG300, Tween 80, and saline, and administered by intraperitoneal injection (ip) at a dose of 1 mg / kg, Monday through Friday, for 16 days, starting on day 12 after tumor inoculation. Bioluminescence imaging was performed using an IVIS Lumina (Perkin Elmer, Waltham, MA) following i.p. injection of D-luciferin (0.3 mg / g body weight) (Biosynth, Staad, Switzerland), and data were analyzed using Living Image software (Perkin Elmer).

[0053] statistical analysis Statistical analysis was performed using Prism software v6.07 (GraphPad, San Diego, California). Data from in vitro and in vivo experiments were analyzed using an unpaired t-test. A P value of less than 0.05 was considered statistically significant.

[0054] Example 1 ATRA increases the surface expression of BCMA in myeloma cell lines. The present inventors determined BCMA expression in three commonly used myeloma cell lines by flow cytometry and found graded BCMA expression. low (Delta MFI: 1,098), OPM-2 is BCMA intermediate (Delta MFI: 3,558), and NCI-H929 is BCMA high(Delta MFI: 9,883) (Figure 1). Next, the inventors treated each myeloma cell line with ATRA for 72 hours and reexamined the expression of BCMA by flow cytometry. The inventors found that the expression of BCMA increased in all three myeloma cell lines and that the sequence of BCMA expression did not change. MM.1S (Delta MFI: 2,709) < OPM-2 (Delta MFI: 7,358) < NCI-H929 (Delta MFI: 13,891) (Figure 1). The inventors normalized the Delta MFI obtained at baseline to 1. Therefore, the relative increase in BCMA expression after ATRA treatment was 1.9-fold in MM.1S (Figure 2) and OPM-2 myeloma cells (Figure 2) and 1.7-fold in NCI-H929 myeloma cells (Figure 2). Upon discontinuation of ATRA treatment, BCMA expression returned to baseline levels within 72 hours in all three myeloma cell lines, but increased again to the same magnitude when ATRA treatment was resumed (Figure 4). The increase in BCMA surface molecules in MM.1S cells after ATRA treatment was further confirmed by single-molecule sensitive super-resolution microscopy using direct stochastic optical reconstruction microscopy (dSTORM) (Figure 3). The inventors hypothesized that ATRA induces epigenetic changes in myeloma cells, which leads to an increase in BCMA gene expression, and confirmed by qPCR that this was indeed the case. In the examples of MM.1S and OPM-2, the relative increase in BCMA transcripts after treatment with 50 nM ATRA was 1.8-fold and 2.1-fold, respectively (Figure 5). Taken together, these data indicate that treatment with ATRA results in an increase in the expression of BCMA RNA and BCMA protein on the surface of MM.1S, OPM-2, and NCI-H929 myeloma cells.

[0055] (Example 2) ATRA upregulates the surface expression of BCMA in primary myeloma cells. To confirm our findings in primary myeloma cells, we obtained bone marrow from patients with newly diagnosed (ND, n=7) and relapsed / refractory (R / R, n=11) myeloma. Patients in the R / R cohort had previously been treated with immunomodulatory drugs and / or proteasome inhibitors, but none had received anti-BCMA therapy. We used purified CD38 + CD138 + Malignant plasma cells were analyzed by flow cytometry and found to have variable BCMA expression between patients as assessed by delta MFI (delta MFI low =94, Delta MFI high = 2,650). There was no significant difference in BCMA expression in myeloma cells from ND and R / R patients (Figure 6). There were sufficient numbers of primary myeloma cells from n = 5 patients to perform sequential analysis of ATRA treatment and BCMA expression (Figure 7). These five patients comprised three ND and two R / R patients, and they uniformly covered the spectrum of low to high BCMA expression as determined above. In each of these five patient samples, we detected a substantial increase in BCMA expression by flow cytometry after 72 hours of treatment with ATRA. Significant increases could be observed with ATRA used at all dose levels (100 nM P = 0.04, 50 nM P = 0.006, and 25 nM P = 0.04) (Figure 8). We observed an average increase in delta MFI of BCMA expression of 1.6-fold (1.23-fold to 2.23-fold) after 100 nM ATRA treatment in primary myeloma cells. BCMA expression also decreased to baseline levels in primary myeloma cells once exposure to ATRA was discontinued and increased again upon re-exposure to the drug (Figure 9). Together, these data demonstrate that treatment with ATRA increases surface expression of BCMA in primary myeloma cells from patients with ND and R / R disease.

[0056] Example 3 The combination of ATRA and GSI further increases BCMA expression in myeloma cell lines. GSI inhibits the shedding of BCMA molecules from the cell surface, thereby inducing increased BCMA expression in myeloma cells. 40 We determined whether the combination of ATRA and GSI could further increase BCMA expression in myeloma cells and whether this could further improve the anti-myeloma reactivity of BCMA-CAR T cells beyond the effect of ATRA alone. Treatment of MM.1S and OPM-2 cells with 100 nM ATRA and 0.01 μM GSI LY3039478 for 72 hours resulted in a significant increase in BCMA expression. The combination of both drugs resulted in higher BCMA expression than either of the two drugs used alone ( FIG. 10 ).

[0057] Example 4 BCMA-CAR T cells enhance reactivity against ATRA-treated myeloma cells. We sought to determine whether increased BCMA expression induced by ATRA treatment affected the anti-myeloma reactivity of BCMA-CAR T cells. First, we confirmed that ATRA treatment had no adverse effect on the viability of BCMA-CAR T cells (Figure 11) and did not reduce the expression of the EGFRt_BCMA-CAR transgene (Figure 12). We then tested the cytolytic activity of BCMA-CAR T cells and found superior cytolysis of ATRA-treated MM.1S myeloma cells compared to untreated MM.1S myeloma cells (Figure 13). Furthermore, when MM.1S target cells were pretreated with a combination of ATRA and GSI, the cytolytic effect of BCMA-CAR T cells was further enhanced (Figure 13). Similar results were obtained with OPM-2 cells (Figure 14). Furthermore, when target cells were pretreated with ATRA alone or a combination of ATRA and GSI, BCMA-CAR T cells exhibited enhanced proliferation capacity (Figure 15) and cytokine release (Figure 16).

[0058] This prompted experiments in a mouse xenograft model of myeloma (NSG / MM1.S). In the first set of experiments, six mice were inoculated with MM1.S cells (2 × 10 6Mice were inoculated with 100 mg / kg i.v. (administered intravenously via tail vein) for 12 days to establish systemic myeloma, followed by a 4-day treatment course of ATRA (3 mice, 30 mg / kg i.p. daily) or vehicle control (3 mice). The following day, mice were sacrificed, MM.1S myeloma cells were isolated from bone marrow, and BCMA expression was analyzed by flow cytometry. Significantly higher BCMA expression was found in MM.1S myeloma cells from ATRA-treated mice compared to control mice (P=0.002, Figure 17). In vivo upregulation of BCMA following GSI treatment has been shown by Pont et al. (2019). 40 .

[0059] In a second MM.1S / NSG mouse experiment, a suboptimal dose of BCMA-CAR T cells (1 × 10 total CAR-T cells) was administered. 6 The antimyeloma efficacy of ATRA (CD8:CD4 ratio 1:1, administered intravenously via tail vein injection on day 14) was investigated in combination with ATRA alone, GSI alone, or a combination of both drugs. Starting on day 12 after tumor inoculation, ATRA was administered ip 12 times at 30 mg / kg within 16 days. GSI was administered ip 7 times at 1 mg / kg within the same period (days 12 to 28 after tumor inoculation).

[0060] Bioluminescence imaging decreased in all mouse groups for the first few days after CAR T cell injection. However, mice administered with CAR T cells alone relapsed within 2 weeks of treatment. Mice treated with a combination of ATRA and BCMA-CAR T cells relapsed much later (Figure 18). Furthermore, bioluminescence imaging revealed clearer and more stable tumor regression in mice treated with a combination of CAR T cells, ATRA, and GSI. These mice achieved complete remission, which was sustained during the follow-up period (Figure 18).

[0061] Overall, these data indicate that ATRA enhances BCMA expression in myeloma cells in vivo and enhances the anti-myeloma reactivity of BCMA-CAR T cells. Furthermore, BCMA-targeted immunotherapies may benefit not only from ATRA treatment alone, but also from the combination of GSI and ATRA.

[0062] Example 5 sBCMA does not impair the function of BCMA-CAR T cells against ATRA-treated myeloma cells. It is well established that the extracellular portion of membrane-bound BCMA can be shed from myeloma cells to release the short soluble BCMA (sBCMA) protein isoform 26、27 We measured sBCMA in the supernatants of MM.1S and OPM-2 myeloma cells treated with ATRA for 72 hours and obtained values ​​similar to those in the corresponding untreated cell lines (Figure 19). Notably, the concentration of sBCMA in the conditioned medium of ATRA-treated or untreated MM.1S and OPM-2 myeloma cells was higher than in the serum of myeloma patients (Figure 20). We analyzed the cytolytic activity of BCMA-CAR T cells in fresh medium or sBCMA-containing medium and observed similarly potent cytolytic activity against MM.1S or K562 / BCMA target cells at all effector-to-target cell ratios and all time points (Figure 21). These data indicate that ATRA treatment does not accelerate the release of sBCMA from myeloma cells and that the enhanced reactivity of the BCMA-CAR T cells used in this invention against ATRA-treated myeloma cells is not diminished by interference with sBCMA.

[0063] Collectively, these data demonstrate that ATRA induces increased BCMA expression in primary myeloma cells and myeloma cell lines, enabling enhanced BCMA-CAR T cell reactivity in vitro and in vivo. These data encourage the investigation of BCMA-CAR T cells and other BCMA-directed immunotherapies in combination with ATRA. This effect can be enhanced by combining ATRA with a GSI.

[0064] Ongoing clinical trials of BCMA-CAR T cells have shown initial promising results in patients with MM, raising hopes for this treatment strategy 16、19 However, despite the initial high response rates, tumor eradication remained incomplete in some patients, overall response duration was short, and there were case reports of relapse following downregulation or loss of BCMA. 16、17 This phenomenon has also been described in other CAR T cell trials targeting CD19 and CD22. There is strong evidence that reduced antigen density may be a mechanism for tumor escape from CAR-targeted therapy. 32-35 .

[0065] Furthermore, baseline expression of BCMA can be low and heterogeneous on MM cells, which can lead to patient exclusion from or suboptimal response to treatment 16、17 Previous reports have found high variability in BCMA expression levels in MM samples. 36、37 It was further observed that BCMA molecules were equally expressed on the surface of primary myeloma cells from ND and R / R MM patients, indicating that BCMA-CAR therapy is applicable to both disease states.

[0066] For these reasons, there is a need to enhance the efficacy of BCMA-CAR T cells by increasing the density of BCMA on the surface of target cells. It has been demonstrated that retinoic acid receptors on MM cells play an important role in the induction of CD38 expression by ATRA. 22、38、39 Therefore, we hypothesized that ATRA might also upregulate other MM antigens besides CD38, particularly BCMA. Indeed, these data show that BCMA gene and surface expression increased after ATRA treatment in all tumor cell lines and primary malignant plasma cells. Importantly, this was also true for primary myeloma cells, which have low baseline expression of BCMA. To validate this effect in vivo, we injected ATRA into MM.1S tumor-bearing NSG mice. Analysis of these MM.1S cells revealed a significant increase in BCMA expression after ATRA treatment.

[0067] It has previously been shown that increased surface expression of BCMA on target cells leads to enhanced recognition by BCMA-CAR T cells 40 Enhanced antimyeloma efficacy of BCMA-CAR T cells was confirmed after upregulation of BCMA by ATRA treatment. This synergistic effect between CAR T cell therapy and ATRA can be used as a strategy to counteract the proliferation of antigen-poor tumor cell clones, supporting the therapeutic efficacy of BCMA-CAR T cells. Furthermore, patients with low baseline BCMA expression can be treated with ATRA and then successfully treated with BCMA-CAR T cells. Furthermore, BCMA expression in tumor cells can be further enhanced by combining ATRA and GSI administration.

[0068] We analyzed serum samples from MM patients for sBCMA and found a correlation between soluble BCMA concentrations and disease status. Consistent with previous reports, serum sBCMA levels were higher in patients with progressive disease than in patients with a therapeutic response to immunomodulatory or proteasome inhibitor therapy or low tumor burden. 27 .

[0069] We investigated whether treatment with ATRA also increased sBCMA levels in the supernatants of myeloma cell lines. Despite a significant increase in membrane-bound BCMA levels, no increase in sBCMA was observed in the supernatants of cells exposed to the drug. This led us to conclude that the shedding of the extracellular domain does not immediately increase after expressing more membrane-bound molecules.

[0070] Nevertheless, we needed to know whether sBCMA could, in principle, negate the anti-myeloma function of these BCMA-CAR T cells. Therefore, we tested the functionality of CAR T cells in the presence of up to 150 ng / ml of sBCMA. This concentration is approximately 10-fold the average concentration we observed in the serum of patients with progressive disease. Even at this high concentration, we were unable to find sBCMA to have an adverse effect on the cytolytic activity of these BCMA-CAR T cells.

[0071] There are conflicting reports regarding the effects of sBCMA on BCMA-CAR T cells. MJ Pont et al. reported that cytokine release and proliferation of CAR T cells were impaired even by low levels of sBCMA (10 ng / ml), and that cytotoxicity was impaired by high levels of sBCMA (at least 100 ng / ml). 40 On the other hand, the groups of RO Carpenter et al. and KM Friedman et al. found that BCMA-CAR T cells were highly effective in MM xenografted mice despite elevated serum sBCMA levels of approximately 7 ng / ml. 37、41 Furthermore, RO Carpenter et al. found that concentrations of sBCMA up to 150 ng / ml did not affect cytokine release by CAR T cells in vitro. 41 These different observations may be due to the use of different BCMA CARs that bind to different epitopes, not all of which are accessible in the conformation of soluble BCMA.

[0072] In conclusion, this study demonstrates that the efficacy of BCMA-CAR T cell therapy can be improved by upregulating antigen expression with ATRA. Therefore, according to the present invention, retinoids such as ATRA and BCMA-CAR T cells can be used synergistically in clinical settings to increase response rates and prolong the duration of response in ND and R / R myeloma. The use of well-selected CAR constructs could reduce the adverse effects of sBCMA molecules in patient serum. The effects of BCMA upregulation and BCMA-CAR T cell targeting are greater not only with ATRA but also with the combination of ATRA and GSI. [Industrial Applicability]

[0073] The immunotherapeutic agents and retinoids used in accordance with the present invention can be manufactured industrially in accordance with known standards for the manufacture of pharmaceutical and diagnostic products and sold as products for the claimed methods and uses (e.g., for treating cancer as defined herein), and therefore the present invention is industrially applicable.

[0074] array All nucleotide sequences are shown in 5' to 3' order. All amino acid sequences are shown in N- to C-terminal order using the three-letter amino acid code.

[0075] The full nucleotide sequence of the chimeric antigen receptor (CAR) used in the examples capable of binding to BCMA (SEQ ID NO: 1):

[0076] [ka]

[0077] [ka]

[0078] Nucleotide sequence of GMCSF signal peptide (SEQ ID NO:2):

[0079] [ka]

[0080] Nucleotide sequence of BCMA single chain variable fragment VH (SEQ ID NO:3):

[0081] [ka]

[0082] Nucleotide sequence of the (4GS)3 linker (SEQ ID NO:4):

[0083] [ka]

[0084] Nucleotide sequence of BCMA single chain variable fragment VL (SEQ ID NO:5):

[0085] [ka]

[0086] Nucleotide sequence of IgG4-Fc Hinge-CH2-CH3 4 / 2NQ (SEQ ID NO: 6):

[0087] [ka]

[0088] Nucleotide sequence of CD28 transmembrane domain (SEQ ID NO:7):

[0089] [ka]

[0090] Nucleotide sequence of 4-1BB cytoplasmic domain (SEQ ID NO:8):

[0091] [ka]

[0092] Nucleotide sequence of CD3 zeta domain (SEQ ID NO:9):

[0093] [ka]

[0094] Nucleotide sequence of the T2A ribosomal skip element (SEQ ID NO: 10):

[0095] [ka]

[0096] Nucleotide sequence of GMCSF signal peptide (SEQ ID NO: 11):

[0097] [ka]

[0098] Nucleotide sequence of tEGFR sequence (SEQ ID NO: 12):

[0099] [ka]

[0100] The full amino acid sequence of the chimeric antigen receptor (CAR) used in the examples that can bind to BCMA (SEQ ID NO: 13):

[0101] [ka]

[0102] [ka]

[0103] Amino acid sequence of GMCSF signal peptide (SEQ ID NO: 14):

[0104] [ka]

[0105] Amino acid sequence of BCMA single chain variable fragment VH (SEQ ID NO: 15):

[0106] [ka]

[0107] Amino acid sequence of the (4GS)3 linker (SEQ ID NO: 16):

[0108] [ka]

[0109] Amino acid sequence of BCMA single chain variable fragment VL (SEQ ID NO: 17):

[0110] [ka]

[0111] Amino acid sequence of IgG4-Fc hinge-CH2-CH3 4 / 2NQ (SEQ ID NO: 18):

[0112] [ka]

[0113] Amino acid sequence of CD28 transmembrane domain (SEQ ID NO: 19):

[0114] [ka]

[0115] Amino acid sequence of 4-1BB cytoplasmic domain (SEQ ID NO:20):

[0116] [ka]

[0117] Amino acid sequence of CD3 zeta domain (SEQ ID NO: 21):

[0118] [ka]

[0119] Amino acid sequence of the T2A ribosomal skip element (SEQ ID NO: 22):

[0120] [ka]

[0121] Amino acid sequence of GMCSF signal peptide (SEQ ID NO: 23):

[0122] [ka]

[0123] Amino acid sequence of tEGFR sequence (SEQ ID NO: 24):

[0124] [ka]

[0125] In a preferred embodiment according to the invention, the chimeric antigen receptor (CAR) capable of binding to BCMA is a chimeric antigen receptor (CAR) encoded by the nucleotide sequence of SEQ ID NO: 1, or a nucleotide sequence that is at least 95% identical thereto. In another preferred embodiment according to the invention, the chimeric antigen receptor (CAR) capable of binding to BCMA has the amino acid sequence of SEQ ID NO: 13, or an amino acid sequence that is at least 95% identical thereto.

[0126] (References) TIFF0007824883000027.tif223170TIFF0007824883000028.tif226170TIFF00078248830 00029.tif231170TIFF0007824883000030.tif231170TIFF0007824883000031.tif119170

Claims

1. 1. A pharmaceutical for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, comprising an immunotherapeutic anticancer agent capable of binding to BCMA, wherein the method comprises administering to the human patient an agent that upregulates BCMA mRNA levels, the upregulator being a retinoid, the immunotherapeutic anticancer agent capable of binding to BCMA comprises immune cells expressing a chimeric antigen receptor (CAR) capable of binding to BCMA, and / or comprises an antibody or an antibody fragment capable of binding to BCMA, and the cancer is myeloma.

2. 1. A pharmaceutical for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, comprising an agent for upregulating BCMA mRNA levels, wherein the method comprises administering to the human patient an immunotherapeutic anticancer agent capable of binding to BCMA, wherein the upregulator is a retinoid, and the immunotherapeutic anticancer agent capable of binding to BCMA comprises immune cells expressing a chimeric antigen receptor (CAR) capable of binding to BCMA and / or comprises an antibody or an antibody fragment capable of binding to BCMA, and the cancer is myeloma.

3. 1. A combination of an immunotherapeutic anti-cancer agent capable of binding to BCMA and an agent that upregulates BCMA mRNA levels for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, wherein said upregulator is a retinoid, and said immunotherapeutic anti-cancer agent capable of binding to BCMA comprises immune cells expressing a chimeric antigen receptor (CAR) capable of binding to BCMA and / or comprises an antibody or antibody fragment capable of binding to BCMA, and wherein said cancer is myeloma.

4. 4. The medicament or combination according to any one of claims 1 to 3, wherein the retinoid is a non-aromatic retinoid.

5. 4. The medicament or combination according to any one of claims 1 to 3, wherein the retinoid is an aromatic retinoid.

6. 6. The medicament or combination according to any one of claims 1 to 5, wherein the immune cells expressing a CAR capable of binding to BCMA are T cells expressing a CAR capable of binding to BCMA (CAR-T cells capable of binding to BCMA), and / or the antibody or antibody fragment is a bispecific antibody.

7. 7. The medicament or combination according to any one of claims 1 to 6, wherein the immunotherapeutic anti-cancer agent capable of binding to BCMA comprises immune cells expressing a chimeric antigen receptor (CAR) capable of binding to BCMA, and wherein said use results in prolonged persistence of immune cells and / or prolonged reduction in tumor mass compared to cancer immunotherapy with immune cells alone.

8. 8. The medicament or combination according to any one of claims 1 to 7, wherein a gamma secretase inhibitor is administered in said method.

9. 1. An immunotherapeutic anticancer agent for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, comprising a gene therapy vector encoding a chimeric antigen receptor (CAR) capable of binding to BCMA, wherein the gene therapy vector is a gene therapy vector for in vivo expression of the CAR in immune cells, the method comprising administering to the human patient an upregulator of BCMA mRNA levels, the upregulator being a retinoid, and the cancer being myeloma.

10. 1. A pharmaceutical for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, comprising an agent that upregulates BCMA mRNA levels, wherein the upregulator is a retinoid, the method comprises administering an immunotherapeutic anticancer agent to the human patient, the immunotherapeutic anticancer agent comprises a gene therapy vector encoding a chimeric antigen receptor (CAR) capable of binding to BCMA, the gene therapy vector is for in vivo expression of the CAR in immune cells, and the cancer is myeloma.

11. 1. A combination of an immunotherapeutic anticancer agent and an agent that upregulates BCMA mRNA levels for use in a method of cancer immunotherapy against BCMA as a cancer antigen in a human patient, wherein the immunotherapeutic anticancer agent comprises a gene therapy vector encoding a chimeric antigen receptor (CAR) capable of binding to BCMA, the gene therapy vector is for in vivo expression of the CAR in immune cells, the upregulator is a retinoid, and the cancer is myeloma.

12. 12. The immunotherapeutic anticancer agent, medicament or combination according to any one of claims 9 to 11, wherein the upregulator is as defined in claim 4 or 5, and / or wherein in the method a gamma secretase inhibitor is administered, the gamma secretase inhibitor being semagasestat (LY450139), crenigasestat (LY3039478), RO4929097, DAPT or MK-0752.

Citation Information

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