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线粒体融合蛋白 2 与线粒体分裂的调控

Crosstalk between the mTOR and DNA Damage Response Pathways in Fission Yeast.

机构信息

ZEAB Therapeutic, University of East London, Stratford Campus, Water Lane, Stratford, London E15 4LZ, UK.

School of Health, Sport and Bioscience, University of East London, Stratford Campus, Water Lane, Stratford, London E15 4LZ, UK.

出版信息

Cells. 2021 Feb 2;10(2):305. doi: 10.3390/cells10020305.

Abstract

Cells have developed response systems to constantly monitor environmental changes and accordingly adjust growth, differentiation, and cellular stress programs. The evolutionarily conserved, nutrient-responsive, mechanistic target of rapamycin signaling (mTOR) pathway coordinates basic anabolic and catabolic cellular processes such as gene transcription, protein translation, autophagy, and metabolism, and is directly implicated in cellular and organismal aging as well as age-related diseases. mTOR mediates these processes in response to a broad range of inputs such as oxygen, amino acids, hormones, and energy levels, as well as stresses, including DNA damage. Here, we briefly summarize data relating to the interplays of the mTOR pathway with DNA damage response pathways in fission yeast, a favorite model in cell biology, and how these interactions shape cell decisions, growth, and cell-cycle progression. We, especially, comment on the roles of caffeine-mediated DNA-damage override. Understanding the biology of nutrient response, DNA damage and related pharmacological treatments can lead to the design of interventions towards improved cellular and organismal fitness, health, and survival.

摘要

细胞已经开发出响应系统来不断监测环境变化,并相应地调整生长、分化和细胞应激程序。进化上保守的、受营养响应的、机械靶标雷帕霉素信号(mTOR)途径协调基因转录、蛋白质翻译、自噬和代谢等基本的合成代谢和分解代谢细胞过程,并且直接涉及细胞和机体衰老以及与年龄相关的疾病。mTOR 介导这些过程以响应广泛的输入,如氧气、氨基酸、激素和能量水平,以及压力,包括 DNA 损伤。在这里,我们简要总结了 mTOR 途径与有丝分裂酵母(细胞生物学的首选模型)中的 DNA 损伤反应途径相互作用的数据,以及这些相互作用如何塑造细胞决策、生长和细胞周期进程。我们特别评论了咖啡因介导的 DNA 损伤覆盖的作用。了解营养反应、DNA 损伤和相关药物治疗的生物学可以导致设计干预措施,以提高细胞和机体的适应性、健康和生存。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/40e8/7913062/3fb7f6560516/cells-10-00305-g001.jpg

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