CAR-T(CAR-T)细胞疗法在非肿瘤性疾病中的应用
Chimeric antigen receptor T (CAR-T) cell therapy in non-oncological diseases.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Deleting DNMT3A in CAR T cells prevents exhaustion and enhances antitumor activity.
Deleting DNMT3A in CAR T cells prevents exhaustion and enhances antitumor activity.
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嵌合抗原受体(CAR)T细胞疗法正在革新B细胞恶性肿瘤患者的癌症免疫治疗,目前也正在针对实体瘤和慢性病毒感染进行开发。尽管临床试验已证明CAR-T 细胞疗法具有治愈潜力,但一个显著且已被充分证实的局限性是,在长期抗原暴露过程中CAR-T 细胞会加剧收缩并呈现短暂的持续性。这种功能障碍状态(通常称为CAR-T 细胞耗竭)的潜在机制仍不明确。
在此,我们报道人CAR-T 细胞的耗竭是通过对T细胞多能发育潜能的表观遗传抑制而发生的。在表达第一代或第二代CAR的T细胞中删除从头DNA甲基转移酶3α(DNMT3A)可普遍保留细胞在长期肿瘤暴露期间增殖并产生抗肿瘤反应的能力。抗耗竭的DNMT3A敲除CAR-T 细胞功能增强与白细胞介素-10上调相耦合,全基因组DNA甲基化谱分析定义了一个被表观遗传沉默的靶基因图谱。该图谱提供了CAR-T 细胞耗竭的分子定义,其中包括许多限制免疫细胞干性的转录调控因子,如CD28、CCR7、TCF7和LEF1。
最后,我们证明这一表观遗传调控的多能性程序与既往CAR-T 细胞疗法的临床结局紧密耦合。这些数据记录了表观遗传机制在限制人T细胞命运潜能中的关键作用,并为利用这一信息改善CAR-T 细胞疗效提供了路线图。
Chimeric antigen receptor (CAR) T cell therapy is revolutionizing cancer immunotherapy for patients with B cell malignancies and is now being developed for solid tumors and chronic viral infections. Although clinical trials have demonstrated the curative potential of CAR T cell therapy, a substantial and well-established limitation is the heightened contraction and transient persistence of CAR T cells during prolonged antigen exposure. The underlying mechanism(s) for this dysfunctional state, often termed CAR T cell exhaustion, remains poorly defined.
Here, we report that exhaustion of human CAR T cells occurs through an epigenetic repression of the T cell s multipotent developmental potential. Deletion of the de novo DNA methyltransferase 3 alpha (DNMT3A) in T cells expressing first- or second-generation CARs universally preserved the cells ability to proliferate and mount an antitumor response during prolonged tumor exposure. The increased functionality of the exhaustion-resistant DNMT3A knockout CAR T cells was coupled to an up-regulation of interleukin-10, and genome-wide DNA methylation profiling defined an atlas of genes targeted for epigenetic silencing.
This atlas provides a molecular definition of CAR T cell exhaustion, which includes many transcriptional regulators that limit the stemness of immune cells, including CD28, CCR7, TCF7, and LEF1. Last, we demonstrate that this epigenetically regulated multipotency program is firmly coupled to the clinical outcome of prior CAR T cell therapies. These data document the critical role epigenetic mechanisms play in limiting the fate potential of human T cells and provide a road map for leveraging this information for improving CAR T cell efficacy.
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