Department of Immunology, Erasmus University Medical Center, Rotterdam, The Netherlands.
Cancer Immunology and Tumor Microenvironment Program, Sanford Burnham Prebys Medical Discovery Institute, La Jolla, CA, United States of America.
PLoS Pathog. 2020 Jun 24;16(6):e1008555. doi: 10.1371/journal.ppat.1008555. eCollection 2020 Jun.
Exhaustion is a dysfunctional state of cytotoxic CD8+ T cells (CTL) observed in chronic infection and cancer. Current in vivo models of CTL exhaustion using chronic viral infections or cancer yield very few exhausted CTL, limiting the analysis that can be done on these cells. Establishing an in vitro system that rapidly induces CTL exhaustion would therefore greatly facilitate the study of this phenotype, identify the truly exhaustion-associated changes and allow the testing of novel approaches to reverse or prevent exhaustion. Here we show that repeat stimulation of purified TCR transgenic OT-I CTL with their specific peptide induces all the functional (reduced cytokine production and polyfunctionality, decreased in vivo expansion capacity) and phenotypic (increased inhibitory receptors expression and transcription factor changes) characteristics of exhaustion. Importantly, in vitro exhausted cells shared the transcriptomic characteristics of the gold standard of exhaustion, CTL from LCMV cl13 infections. Gene expression of both in vitro and in vivo exhausted CTL was distinct from T cell anergy. Using this system, we show that Tcf7 promoter DNA methylation contributes to TCF1 downregulation in exhausted CTL. Thus this novel in vitro system can be used to identify genes and signaling pathways involved in exhaustion and will facilitate the screening of reagents that prevent/reverse CTL exhaustion.
耗竭是慢性感染和癌症中观察到的细胞毒性 CD8+T 细胞 (CTL) 的功能障碍状态。目前使用慢性病毒感染或癌症的 CTL 耗竭体内模型只能产生很少的耗竭 CTL,限制了对这些细胞的分析。因此,建立一种能够快速诱导 CTL 耗竭的体外系统将极大地促进对这种表型的研究,确定真正与耗竭相关的变化,并允许测试逆转或预防耗竭的新方法。在这里,我们表明,用其特异性肽重复刺激纯化的 TCR 转基因 OT-I CTL 会诱导所有功能(细胞因子产生减少和多功能性降低,体内扩增能力降低)和表型(抑制性受体表达增加和转录因子变化)特征的耗竭。重要的是,体外耗竭细胞与耗竭的金标准,即来自 LCMV cl13 感染的 CTL,具有相似的转录组特征。体外和体内耗竭 CTL 的基因表达均与 T 细胞失能不同。使用该系统,我们表明 Tcf7 启动子 DNA 甲基化有助于 TCF1 在耗竭 CTL 中的下调。因此,这种新的体外系统可用于鉴定与耗竭相关的基因和信号通路,并有助于筛选预防/逆转 CTL 耗竭的试剂。