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:PD-L1 CAR effector cells induce self-amplifying cytotoxic effects against target cells.
我们的研究表明,CAR 效应细胞可触发靶细胞上 PD-L1 的表达,在 PD-L1-CAR 的情况下这会导致独特的自我放大现象。
背景:免疫检查点抑制剂和嵌合抗原受体(CAR)疗法已改变癌症治疗。近期有人提出将两者结合为靶向PD-L1的CAR策略,以靶向PD-L1高表达肿瘤。本研究提供了该策略对PD-L1低表达靶细胞疗效的新信息。方法:构建基于atezolizumab的新型靶向PD-L1 CAR,并导入T细胞、NK细胞或NK-92细胞。使用乳腺癌MDA-MB-231和MCF-7细胞系,或非恶性细胞(HEK293T、HMEC、MCF-10A、BM-MSC)作为靶细胞,评估携带PD-L1-CAR的免疫效应细胞反应性或细胞毒活性。使用IFN或活化CAR-T细胞的上清液刺激靶细胞以诱导PD-L1表达上调。将HER2-CAR-T细胞与PD-L1-CAR-T细胞联合用于靶向MCF-7细胞。结果:PD-L1-CAR效应细胞对PD-L1高表达MDA-MB-231细胞产生强烈脱颗粒和细胞因子应答,但对PD-L1低表达MCF-7细胞无此反应。然而,在长期杀伤实验中,PD-L1-CAR细胞最终清除了MDA-MB-231和MCF-7细胞,但对PD-L1低表达MCF-7的清除有所延迟。值得注意的是,MCF-7细胞与活化PD-L1-CAR细胞共培养可通过旁观者效应诱导MCF-7细胞表达PD-L1,并产生独特的PD-L1-CAR细胞自我放大效应。因此,在肿瘤异种移植模型中,PD-L1-CAR-T细胞不仅对MDA-MB-231和MCF-7-PD-L1有效,也对MCF-7-pLVX有效。重要的是,PD-L1-CAR细胞对非恶性MCF-10A、HMEC和BM-MSC细胞也有强细胞毒作用,但不杀伤最初不表达PD-L1且对刺激无反应的HEK293T细胞。最后,我们观察到HER2-CAR-T细胞会刺激MCF-7细胞表达PD-L1,因此联合使用时可加快PD-L1-CAR-T细胞发挥作用。结论:CAR效应细胞可触发靶细胞表达PD-L1;对PD-L1-CAR而言,这会产生独特的自我放大现象。该效应可能导致PD-L1-CAR-T细胞对恶性和非恶性细胞的细胞毒性增强,提示将PD-L1-CAR策略引入临床研究时必须格外谨慎。
BACKGROUND: Immune checkpoint inhibitors and chimeric antigen receptor (CAR)-based therapies have transformed cancer treatment. Recently, combining these approaches into a strategy of PD-L1-targeted CAR has been proposed to target PD-L1 high tumors. Our study provides new information on the efficacy of such an approach against PD-L1 low targets. METHODS: New atezolizumab-based PD-L1-targeted CAR was generated and introduced into T, NK, or NK-92 cells. Breast cancer MDA-MB-231 and MCF-7 cell lines or non-malignant cells (HEK293T, HMEC, MCF-10A, or BM-MSC) were used as targets to assess the reactivity or cytotoxic activity of the PD-L1-CAR-bearing immune effector cells. Stimulation with IFN or with supernatants from activated CAR T cells were used to induce upregulation of PD-L1 molecule expression on the target cells. HER2-CAR T cells were used for combination with PD-L1-CAR T cells against MCF-7 cells. RESULTS: PD-L1-CAR effector cells responded vigorously with degranulation and cytokine production to PD-L1 high MDA-MB-231 cells, but not to PD-L1 low MCF-7 cells. However, in long-term killing assays, both MDA-MB-231 and MCF-7 cells were eliminated by the PD-L1-CAR cells, although with a delay in the case of PD-L1 low MCF-7 cells. Notably, the coculture of MCF-7 cells with activated PD-L1-CAR cells led to bystander induction of PD-L1 expression on MCF-7 cells and to the unique self-amplifying effect of the PD-L1-CAR cells. Accordingly, PD-L1-CAR T cells were active not only against MDA-MD-231 and MCF-7-PD-L1 but also against MCF-7-pLVX cells in tumor xenograft models. Importantly, we have also observed potent cytotoxic effects of PD-L1-CAR cells against non-malignant MCF-10A, HMEC, and BM-MSC cells, but not against HEK293T cells that initially did not express PD-L1 and were unresponsive to the stimulation . Finally, we have observed that HER-2-CAR T cells stimulate PD-L1 expression on MCF-7 cells and therefore accelerate the functionality of PD-L1-CAR T cells when used in combination. CONCLUSIONS: In summary, our studies show that CAR-effector cells trigger the expression of PD-L1 on target cells, which in case of PD-L1-CAR results in the unique self-amplification phenomenon. This self-amplifying effect could be responsible for the enhanced cytotoxicity of PD-L1-CAR T cells against both malignant and non-malignant cells and implies extensive caution in introducing PD-L1-CAR strategy into clinical studies.
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