核糖体生物发生与体内平衡:在应对细胞应激的第一线。

IF 3
Emilie L Cerezo, Yves Henry, Anthony K Henras, Yves Romeo
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引用次数: 0

摘要

细胞必须不断地通过微调分子和代谢活动来适应内部和环境的压力。核糖体生物发生是最受调节的能量消耗过程之一,对基因表达调节至关重要。虽然重点通常是在生长和增殖过程中对这一过程的调节,但本综述结合了令人兴奋的最新发现,描述了酵母和哺乳动物在应激条件下收敛于核糖体并源自核糖体的分子检查点和信号。特别强调转录因子和核糖体结合蛋白在抑制核糖体基因表达和核糖体前成熟中的作用,以及通过eIF2α磷酸化、特化核糖体和核糖体冬眠等机制发生的翻译重编程。此外,我们还研究了核糖体稳态和最终决定细胞命运的关键信号级联之间的相互作用。我们特别关注由保守信号通路介导的调控,如综合应激反应、核糖体毒性应激反应和amp激活的蛋白激酶级联反应。最后,我们讨论了p53信号通路作为核仁应激的中心整合器,将核糖体生物发生损伤与关键的细胞命运决定(如细胞周期阻滞、衰老或凋亡)联系起来。总之,这些见解提供了对核糖体的应激反应整合的全面概述,并强调了核糖体稳态在真核系统细胞适应中的核心作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ribosome biogenesis and homeostasis: in the front line to cope with cellular stress.

Cells must continuously adapt to both internal and environmental stresses by finely tuning their molecular and metabolic activities. One of the most regulated energy-consuming processes is ribosome biogenesis, essential for gene expression modulation. While the focus is often on the regulation of this process during growth and proliferation, this review incorporates exciting recent findings describing molecular checkpoints and signaling that converge to and derive from ribosomes under stress conditions, in both yeast and mammals. Special emphasis is placed on the roles of transcription factors and ribosome-binding proteins in repressing ribosomal gene expression and pre-ribosome maturation, as well as on the translational reprogramming that occurs through mechanisms such as eIF2α phosphorylation, specialized ribosome, and ribosome hibernation. In addition, we examine the interplay between ribosome homeostasis and key signaling cascades that ultimately determine cell fate. We especially focus on regulations mediated by conserved signaling pathways such as the Integrated Stress Response, the Ribotoxic Stress Response and the AMP-activated protein kinase cascade. Lastly, we discuss the p53 signaling pathway as a central integrator of nucleolar stress, linking ribosome biogenesis impairment to critical cell fate decisions, such as cell cycle arrest, senescence, or apoptosis. Together, these insights provide a comprehensive overview of stress-response integration onto ribosomes and underscore the central role of ribosome homeostasis in cellular adaptation across the eukaryotic systems.

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