决定异体 CAR T 细胞排斥与扩增的细胞和分子机制
Cellular and molecular mechanisms determining allogeneic CAR T cell rejection and expansion.
我们评估了11例接受单一批次cemacabtagene ansegedleucel(cema-cel)治疗的大B细胞淋巴瘤患者,cemacabtagene ansegedleucel是一种异体抗CD19 CAR T产品。
英文原题:Corticosteroids ameliorate CAR T-cell-induced cytokine-release syndrome without inhibiting multiple myeloma treatment.
我们的结果应鼓励进一步开展临床研究,以设计既能优化 CAR-T 细胞毒性治疗、又能维持抗肿瘤活性的糖皮质激素方案。
**背景:**细胞因子释放综合征(CRS)是嵌合抗原受体(CAR)T细胞常见毒性,通常以地塞米松等皮质类固醇治疗。地塞米松也用于治疗多发性骨髓瘤。模拟多发性骨髓瘤(MM)CAR-T治疗后的CRS需要三类细胞:单核细胞谱系细胞、CAR-T细胞和MM细胞。IL-6等部分重要CRS细胞因子主要由单核细胞谱系细胞释放。 **方法:**研究者将急性单核细胞白血病细胞系THP-1加入抗B细胞成熟抗原(BCMA)CAR-T(CAR-BCMA)和BCMA阳性靶细胞共培养体系。加入THP-1后,培养上清中IL-6和单核细胞趋化蛋白1(MCP-1)升高。研究建立小鼠CRS模型:将THP-1植入NOD-scid共同γ链缺陷小鼠,为IL-6和MCP-1等CRS相关细胞因子提供来源;同时植入生物发光BCMA阳性MM细胞系MM.1S-veff-Luc并输注CAR-BCMA。以地塞米松或载体对照治疗CRS。 **结果:**该模型中,小鼠CAR-T输注后出现CRS表现和血清细胞因子升高,CAR-BCMA可清除大量MM.1S-veff-Luc肿瘤负荷。CAR-BCMA给药后第1、3、5天给予地塞米松可减轻CRS。无论使用地塞米松敏感细胞系MM.1S-veff-Luc,还是地塞米松耐药细胞系MM.1R-veff-Luc作为肿瘤负荷,地塞米松均与肿瘤清除加快相关。重要的是,与单独CAR-BCMA相比,CAR-BCMA联合地塞米松小鼠脾脏CAR-T水平更高。治疗MM.1S-veff-Luc时,CAR-BCMA联合地塞米松组脾脏CD3阳性CAR阳性细胞中位数为764,473,而单用CAR-BCMA组为327,888(P=0.0021)。一项临床试验中4例接受抗BCMA CAR-T及皮质类固醇的患者,所有患者开始使用类固醇后CAR阳性细胞水平均继续增加。 **结论:**总体而言,研究结果支持进一步开展临床研究,设计既能优化CAR-T毒性处理、又能维持抗肿瘤活性的皮质类固醇方案。 **试验注册号:**NCT03602612。
BACKGROUND: Cytokine-release syndrome (CRS) is a common toxicity of chimeric antigen receptor (CAR) T cells. CRS is often treated with corticosteroids such as dexamethasone. Dexamethasone is also used to treat multiple myeloma. To model CRS after CAR T-cell treatment of multiple myeloma (MM), three cell types are required: monocyte-lineage cells, CAR T cells, and MM cells. Some cytokines important in CRS, including interleukin (IL)-6, are released mainly by monocyte-lineage cells. METHODS: We added cells of an acute monocytic leukemia cell line (THP-1) to co-cultures of anti-B-cell maturation antigen (BCMA) CAR T cells (CAR-BCMA) and BCMA + target cells. Addition of THP-1 cells to the co-cultures led to increased levels of IL-6 and monocyte chemoattractant protein-1 (MCP-1) in culture supernatants. We developed a murine CRS model. This model included engraftment of THP-1 into NOD-scid common -chain-deficient mice to provide a source of some cytokines associated with CRS, including IL-6 and MCP-1. The murine model also included engraftment of the bioluminescent BCMA + MM cell line MM.1S-veff-Luc and an infusion of CAR-BCMA. We treated CRS with dexamethasone or vehicle control. RESULTS: With this model, mice exhibited signs of CRS and had elevated serum cytokine levels after CAR T-cell infusion, and CAR-BCMA eliminated large burdens of MM.1S-veff-Luc. Dexamethasone administered 1, 3, and 5 days after CAR-BCMA ameliorated CRS. Dexamethasone was associated with faster elimination of MM burdens when either a dexamethasone-sensitive cell line (MM.1S-veff-Luc) or a dexamethasone-resistant cell line (MM.1R-veff-Luc) was used as the malignancy burden. Importantly, mice that received CAR-BCMA plus dexamethasone had higher levels of splenic CAR T cells when compared with mice that received CAR-BCMA without dexamethasone. When MM.1S-veff-Luc was treated, the median splenic CD3 + CAR + cell count for mice that received CAR-BCMA plus dexamethasone was 764 473 vs 327 888 for mice that received CAR-BCMA without dexamethasone (p=0.0021).Among four patients who received anti-BCMA CAR T cells and corticosteroids on a clinical trial, CAR + cell levels continued to increase after initiation of corticosteroids in all patients. CONCLUSIONS: In summary, our results should encourage further clinical research to design corticosteroid regimens that optimize treatment of CAR T-cell toxicities while maintaining anti-malignancy activity. TRIAL REGISTRATION NUMBER: NCT03602612.
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