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:Reductive carboxylation epigenetically instructs T cell differentiation.
这些发现表明,CD8⁺ T 细胞中的还原性羧化对其效应应答和增殖并非必需,但它主要产生一组代谢物,通过表观遗传方式将 CD8⁺ T 细胞锁定在终末效应分化程序中。
针对病原体或癌症的保护性免疫,依赖抗原特异性初始T细胞活化和克隆扩增并分化为效应T细胞。为维持快速增殖和效应功能,静息初始T细胞会转向合成代谢状态,增加有氧糖酵解,同时增强线粒体代谢和氧化磷酸化,以产生能量和信号分子。然而,这种代谢重编程如何驱动并决定T细胞分化仍不清楚。本研究发现,增殖中的效应CD8+ T细胞通过线粒体酶异柠檬酸脱氢酶2(IDH2)对谷氨酰胺进行还原羧化。值得注意的是,敲除IDH2编码基因不会损害T细胞增殖或效应功能,却会促进记忆CD8+ T细胞分化。因此,在体外制备嵌合抗原受体(CAR)T细胞期间抑制IDH2,可诱导记忆T细胞特征,并增强其对黑色素瘤、白血病和多发性骨髓瘤的抗肿瘤活性。机制上,抑制IDH2会激活代偿代谢通路,使调节组蛋白修饰酶的代谢物失衡,并维持记忆T细胞分化所需基因的染色质可及性。这些发现表明,CD8+ T细胞的还原羧化对效应反应和细胞增殖并非必需,其主要产生一组代谢物,从表观遗传层面将CD8+ T细胞锁定在终末效应分化程序中。阻断这条代谢途径可促进记忆T细胞形成,或可用于优化CAR-T治疗效果。
Protective immunity against pathogens or cancer is mediated by the activation and clonal expansion of antigen-specific naive T cells into effector T cells. To sustain their rapid proliferation and effector functions, naive T cells switch their quiescent metabolism to an anabolic metabolism through increased levels of aerobic glycolysis, but also through mitochondrial metabolism and oxidative phosphorylation, generating energy and signalling molecules 1-3 . However, how that metabolic rewiring drives and defines the differentiation of T cells remains unclear. Here we show that proliferating effector CD8 + T cells reductively carboxylate glutamine through the mitochondrial enzyme isocitrate dehydrogenase 2 (IDH2). Notably, deletion of the gene encoding IDH2 does not impair the proliferation of T cells nor their effector function, but promotes the differentiation of memory CD8 + T cells. Accordingly, inhibiting IDH2 during ex vivo manufacturing of chimeric antigen receptor (CAR) T cells induces features of memory T cells and enhances antitumour activity in melanoma, leukaemia and multiple myeloma. Mechanistically, inhibition of IDH2 activates compensating metabolic pathways that cause a disequilibrium in metabolites regulating histone-modifying enzymes, and this maintains chromatin accessibility at genes that are required for the differentiation of memory T cells. These findings show that reductive carboxylation in CD8 + T cells is dispensable for their effector response and proliferation, but that it mainly produces a pattern of metabolites that epigenetically locks CD8 + T cells into a terminal effector differentiation program. Blocking this metabolic route allows the increased formation of memory T cells, which could be exploited to optimize the therapeutic efficacy of CAR T cells.
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