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小鼠胶质瘤模型的功能性分析突出了可靶向的免疫逃逸表型

英文原题:Functional profiling of murine glioma models highlights targetable immune evasion phenotypes.

PubMed 2024/11/27(内容时间) Acta Neuropathol Q1 · IF 10.3(JCR 2025)

研究概要

癌症内在的免疫逃逸机制和多效性是癌症免疫治疗的障碍。

中文摘要

癌症内在的免疫逃逸机制和多效性是癌症免疫治疗的障碍。这在某些高度致命的癌症中表现明显,包括高级别胶质瘤和胶质母细胞瘤(GBM)。在本研究中,我们使用功能基因组筛选、单细胞转录组学和机器学习方法,评估了两种小鼠同基因胶质瘤模型(GL261和CT2A)作为人类GBM的临床前模型。通过与多种免疫细胞(细胞毒性T细胞、NK 细胞和巨噬细胞)进行CRISPR全基因组共培养杀伤筛选,我们确定了三个关键的癌症内在逃逸机制:NFκB信号通路、自噬/内体机器和染色质重塑。额外的适应性筛选确定了小鼠胶质瘤中的依赖性,这些依赖性部分重现了在人类GBM中观察到的依赖性(例如,UFMylation)。我们的单细胞分析显示,不同的胶质瘤模型表现出不同的免疫浸润模式,并重现了在人类GBM中观察到的关键免疫基因程序,包括缺氧、干扰素和TNF信号通路。此外,体内原位肿瘤移植与表型转变和增殖能力变化相关,小鼠肿瘤重现了在人类GBM中观察到的瘤内异质性,表现出向发育样和间充质样表型的倾向。值得注意的是,我们观察到与人类GBM共享的常见转录因子和辅因子,包括发育相关(Nfia和Tcf4)、间充质相关(Prrx1和Wwtr1),以及细胞周期相关基因(Bub3、Cenpa、Bard1、Brca1和Mis18bp1)。对这些基因的扰动导致了相互的表型转变,提示存在平衡体内细胞状态的内在反馈机制。最后,我们采用机器学习方法识别出两个不同的免疫逃逸基因程序,其中一个代表了具有临床相关性的表型,并界定了一个干细胞样胶质瘤细胞亚群,该亚群可预测人类患者对免疫检查点抑制的应答。这一全面的特征描述有助于弥合小鼠胶质瘤模型与人类GBM之间的差距,为未来的治疗开发提供了有价值的见解。

展开英文摘要原文

Cancer-intrinsic immune evasion mechanisms and pleiotropy are a barrier to cancer immunotherapy. This is apparent in certain highly fatal cancers, including high-grade gliomas and glioblastomas (GBM). In this study, we evaluated two murine syngeneic glioma models (GL261 and CT2A) as preclinical models for human GBM using functional genetic screens, single-cell transcriptomics and machine learning approaches. Through CRISPR genome-wide co-culture killing screens with various immune cells (cytotoxic T cells, natural killer cells, and macrophages), we identified three key cancer-intrinsic evasion mechanisms: NFκB signaling, autophagy/endosome machinery, and chromatin remodeling. Additional fitness screens identified dependencies in murine gliomas that partially recapitulated those seen in human GBM (e.g., UFMylation). Our single-cell analyses showed that different glioma models exhibited distinct immune infiltration patterns and recapitulated key immune gene programs observed in human GBM, including hypoxia, interferon, and TNF signaling. Moreover, in vivo orthotopic tumor engraftment was associated with phenotypic shifts and changes in proliferative capacity, with murine tumors recapitulating the intratumoral heterogeneity observed in human GBM, exhibiting propensities for developmental- and mesenchymal-like phenotypes. Notably, we observed common transcription factors and cofactors shared with human GBM, including developmental (Nfia and Tcf4), mesenchymal (Prrx1 and Wwtr1), as well as cycling-associated genes (Bub3, Cenpa, Bard1, Brca1, and Mis18bp1). Perturbation of these genes led to reciprocal phenotypic shifts suggesting intrinsic feedback mechanisms that balance in vivo cellular states. Finally, we used a machine-learning approach to identify two distinct immune evasion gene programs, one of which represents a clinically-relevant phenotype and delineates a subpopulation of stem-like glioma cells that predict response to immune checkpoint inhibition in human patients. This comprehensive characterization helps bridge the gap between murine glioma models and human GBM, providing valuable insights for future therapeutic development.

论文信息

作者
Mikolajewicz N、Tatari N、Wei J、Savage N、Granda Farias A、Dimitrov V、Chen D、Zador Z
第一作者单位
Program in Genetics and Genome Biology, The Hospital for Sick Children, Toronto, Canada.Canada
通讯作者单位
Program in Genetics and Genome Biology, The Hospital for Sick Children, Toronto, Canada. jason.moffat@sickkids.ca.Canada
文献类型
非美国政府资助研究
期刊
Acta neuropathologica2024 Nov 27
原文标识
PubMed 39592459 · DOI 10.1007/s00401-024-02831-w