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Oxidative Metabolism Drives Immortalization of Neural Stem Cells during Tumorigenesis

机译:氧化代谢在肿瘤发生过程中驱动神经干细胞的永生化

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摘要

Metabolic reprogramming is a key feature of many cancers, but how and when it contributes to tumorigenesis remains unclear. Here we demonstrate that metabolic reprogramming induced by mitochondrial fusion can be rate-limiting for immortalization of tumor-initiating cells (TICs) and trigger their irreversible dedication to tumorigenesis. Using single-cell transcriptomics, we find that Drosophila brain tumors contain a rapidly dividing stem cell population defined by upregulation of oxidative phosphorylation (OxPhos). We combine targeted metabolomics and in vivo genetic screening to demonstrate that OxPhos is required for tumor cell immortalization but dispensable in neural stem cells (NSCs) giving rise to tumors. Employing an in vivo NADH/NAD+ sensor, we show that NSCs precisely increase OxPhos during immortalization. Blocking OxPhos or mitochondrial fusion stalls TICs in quiescence and prevents tumorigenesis through impaired NAD+ regeneration. Our work establishes a unique connection between cellular metabolism and immortalization of tumor-initiating cells.
机译:代谢重编程是许多癌症的一个关键特征,但它如何以及何时促进肿瘤的发生尚不清楚。在这里,我们证明了由线粒体融合诱导的代谢重编程可以限制肿瘤起始细胞(TIC)的永生化,并触发它们对肿瘤发生的不可逆贡献。利用单细胞转录组学,我们发现果蝇脑肿瘤包含一个快速分裂的干细胞群,该干细胞群由氧化磷酸化(OxPhos)的上调定义。我们结合靶向代谢组学和体内基因筛查,证明OxPhos是肿瘤细胞永生化所必需的,但在导致肿瘤的神经干细胞(NSC)中是可有可无的。利用体内NADH/NAD+传感器,我们发现NSC在永生化过程中精确增加了OxPhos。阻断OxPhos或线粒体融合可阻止静息状态下的抽搐,并通过NAD+再生受损防止肿瘤发生。我们的工作建立了细胞代谢和肿瘤起始细胞永生化之间的独特联系。

著录项

  • 来源
    《Cell》 |2020年第6期|共37页
  • 作者单位

    Austrian Acad Sci IMBA Inst Mol Biotechnol A-1030 Vienna Austria;

    Max Delbruck Ctr Mol Med Helmholtz Assoc MDC Berlin Inst Med Syst Biol BIMSB Syst Biol Neurogenesis D-13125 Berlin Germany;

    Austrian Acad Sci IMBA Inst Mol Biotechnol A-1030 Vienna Austria;

    Vienna Bioctr Core Facil VBCF A-1030 Vienna Austria;

    Austrian Acad Sci IMBA Inst Mol Biotechnol A-1030 Vienna Austria;

    Austrian Acad Sci IMBA Inst Mol Biotechnol A-1030 Vienna Austria;

    Med Univ Vienna Dept Lab Med A-1090 Vienna Austria;

    Austrian Acad Sci IMBA Inst Mol Biotechnol A-1030 Vienna Austria;

    Med Univ Vienna Dept Lab Med A-1090 Vienna Austria;

    Max Delbruck Ctr Mol Med Helmholtz Assoc MDC Berlin Inst Med Syst Biol BIMSB Syst Biol Neurogenesis D-13125 Berlin Germany;

    Austrian Acad Sci IMBA Inst Mol Biotechnol A-1030 Vienna Austria;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

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