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线粒体氧化还原代谢:癌症进展过程中代谢的核心

Mitochondrial Redox Metabolism: The Epicenter of Metabolism during Cancer Progression.

作者信息

Choudhury Feroza K

机构信息

Drug Metabolism and Pharmacokinetics Department, Genentech Inc., South San Francisco, CA 94080, USA.

出版信息

Antioxidants (Basel). 2021 Nov 19;10(11):1838. doi: 10.3390/antiox10111838.

Abstract

Mitochondrial redox metabolism is the central component in the cellular metabolic landscape, where anabolic and catabolic pathways are reprogrammed to maintain optimum redox homeostasis. During different stages of cancer, the mitochondrial redox status plays an active role in navigating cancer cells' progression and regulating metabolic adaptation according to the constraints of each stage. Mitochondrial reactive oxygen species (ROS) accumulation induces malignant transformation. Once vigorous cell proliferation renders the core of the solid tumor hypoxic, the mitochondrial electron transport chain mediates ROS signaling for bringing about cellular adaptation to hypoxia. Highly aggressive cells are selected in this process, which are capable of progressing through the enhanced oxidative stress encountered during different stages of metastasis for distant colonization. Mitochondrial oxidative metabolism is suppressed to lower ROS generation, and the overall cellular metabolism is reprogrammed to maintain the optimum NADPH level in the mitochondria required for redox homeostasis. After reaching the distant organ, the intrinsic metabolic limitations of that organ dictate the success of colonization and flexibility of the mitochondrial metabolism of cancer cells plays a pivotal role in their adaptation to the new environment.

摘要

线粒体氧化还原代谢是细胞代谢格局的核心组成部分,在此过程中,合成代谢和分解代谢途径会重新编程,以维持最佳的氧化还原稳态。在癌症的不同阶段,线粒体氧化还原状态在引导癌细胞进展以及根据每个阶段的限制调节代谢适应方面发挥着积极作用。线粒体活性氧(ROS)的积累会诱导恶性转化。一旦旺盛的细胞增殖使实体瘤核心缺氧,线粒体电子传递链就会介导ROS信号传导,以使细胞适应缺氧环境。在此过程中会选择高侵袭性细胞,这些细胞能够在转移的不同阶段通过增强的氧化应激进行远距离定植。线粒体氧化代谢受到抑制以降低ROS生成,并且整体细胞代谢会重新编程,以维持氧化还原稳态所需的线粒体中最佳的NADPH水平。到达远处器官后,该器官固有的代谢限制决定了定植的成功与否,而癌细胞线粒体代谢的灵活性在其适应新环境中起着关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2722/8615124/f0e582bf6c98/antioxidants-10-01838-g001.jpg

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