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肿瘤细胞内在逃避 T 细胞杀伤的功能基因组景观

Functional genomic landscape of cancer-intrinsic evasion of killing by T cells.

机构信息

Donnelly Centre, University of Toronto, Toronto, Ontario, Canada.

Department of Molecular Genetics, University of Toronto, Toronto, Ontario, Canada.

出版信息

Nature. 2020 Oct;586(7827):120-126. doi: 10.1038/s41586-020-2746-2. Epub 2020 Sep 23.

Abstract

The genetic circuits that allow cancer cells to evade destruction by the host immune system remain poorly understood. Here, to identify a phenotypically robust core set of genes and pathways that enable cancer cells to evade killing mediated by cytotoxic T lymphocytes (CTLs), we performed genome-wide CRISPR screens across a panel of genetically diverse mouse cancer cell lines that were cultured in the presence of CTLs. We identify a core set of 182 genes across these mouse cancer models, the individual perturbation of which increases either the sensitivity or the resistance of cancer cells to CTL-mediated toxicity. Systematic exploration of our dataset using genetic co-similarity reveals the hierarchical and coordinated manner in which genes and pathways act in cancer cells to orchestrate their evasion of CTLs, and shows that discrete functional modules that control the interferon response and tumour necrosis factor (TNF)-induced cytotoxicity are dominant sub-phenotypes. Our data establish a central role for genes that were previously identified as negative regulators of the type-II interferon response (for example, Ptpn2, Socs1 and Adar1) in mediating CTL evasion, and show that the lipid-droplet-related gene Fitm2 is required for maintaining cell fitness after exposure to interferon-γ (IFNγ). In addition, we identify the autophagy pathway as a conserved mediator of the evasion of CTLs by cancer cells, and show that this pathway is required to resist cytotoxicity induced by the cytokines IFNγ and TNF. Through the mapping of cytokine- and CTL-based genetic interactions, together with in vivo CRISPR screens, we show how the pleiotropic effects of autophagy control cancer-cell-intrinsic evasion of killing by CTLs and we highlight the importance of these effects within the tumour microenvironment. Collectively, these data expand our knowledge of the genetic circuits that are involved in the evasion of the immune system by cancer cells, and highlight genetic interactions that contribute to phenotypes associated with escape from killing by CTLs.

摘要

允许癌细胞逃避宿主免疫系统破坏的遗传电路仍然知之甚少。在这里,为了鉴定一组表型稳健的核心基因和途径,使癌细胞能够逃避细胞毒性 T 淋巴细胞 (CTL)介导的杀伤,我们在一组遗传上多样化的小鼠癌细胞系中进行了全基因组 CRISPR 筛选,这些癌细胞系在 CTL 的存在下培养。我们在这些小鼠癌症模型中鉴定了一组核心的 182 个基因,这些基因的单个扰动增加了癌细胞对 CTL 介导的毒性的敏感性或抗性。使用遗传共相似性对我们的数据集进行系统探索揭示了基因和途径在癌细胞中协调其逃避 CTL 的分层和协调方式,并表明控制干扰素反应和肿瘤坏死因子 (TNF)诱导的细胞毒性的离散功能模块是主要的亚表型。我们的数据确立了以前被鉴定为 II 型干扰素反应负调节剂的基因(例如 Ptpn2、SocS1 和 Adar1)在介导 CTL 逃避中的核心作用,并表明脂质滴相关基因 Fitm2 在暴露于干扰素 -γ (IFNγ) 后维持细胞活力是必需的。此外,我们确定自噬途径是癌细胞逃避 CTL 的保守介质,并表明该途径是抵抗细胞因子 IFNγ 和 TNF 诱导的细胞毒性所必需的。通过对细胞因子和 CTL 基于遗传相互作用的映射,以及体内 CRISPR 筛选,我们展示了自噬如何控制癌细胞内在逃避 CTL 杀伤的多效性,并强调了这些效应在肿瘤微环境中的重要性。总的来说,这些数据扩展了我们对参与癌细胞逃避免疫系统的遗传电路的认识,并强调了这些遗传相互作用对与逃避 CTL 杀伤相关的表型的重要性。

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