eIF4F 是翻译热休克反应中的热感应调节节点。

IF 14.5 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Molecular Cell Pub Date : 2024-05-02 Epub Date: 2024-03-27 DOI:10.1016/j.molcel.2024.02.038
Christine Desroches Altamirano, Moo-Koo Kang, Mareike A Jordan, Tom Borianne, Irem Dilmen, Maren Gnädig, Alexander von Appen, Alf Honigmann, Titus M Franzmann, Simon Alberti
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引用次数: 0

摘要

热休克细胞优先翻译热休克(HS)mRNA,但其潜在机制尚不清楚。我们报告说,芽殖酵母中的热休克诱导 eIF4F 复合物解体,其中 eIF4G 和 eIF4E 组装成翻译受阻的 mRNA 核糖核蛋白颗粒(mRNPs)和热休克颗粒(HSGs),而 eIF4A 则促进热休克翻译。我们利用体外重组生物化学方法表明,eIF4G 的热感应 eIF4A 结合域的构象重排会解离 eIF4A 并促进其与 mRNA 组装成 HS-mRNPs,后者会招募其他翻译因子(包括 Pab1p 和 eIF4E)以形成多组分凝聚体。我们利用提取物和细胞实验证明,HS-mRNPs 和凝聚体抑制了相关 mRNA 的翻译,并耗尽了维持翻译所需的翻译因子,而 HS mRNA 可通过 eIF4A 进行高效翻译。我们的结论是,eIF4F 复合物是在 HS 期间调节翻译的热感应节点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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eIF4F is a thermo-sensing regulatory node in the translational heat shock response.

Heat-shocked cells prioritize the translation of heat shock (HS) mRNAs, but the underlying mechanism is unclear. We report that HS in budding yeast induces the disassembly of the eIF4F complex, where eIF4G and eIF4E assemble into translationally arrested mRNA ribonucleoprotein particles (mRNPs) and HS granules (HSGs), whereas eIF4A promotes HS translation. Using in vitro reconstitution biochemistry, we show that a conformational rearrangement of the thermo-sensing eIF4A-binding domain of eIF4G dissociates eIF4A and promotes the assembly with mRNA into HS-mRNPs, which recruit additional translation factors, including Pab1p and eIF4E, to form multi-component condensates. Using extracts and cellular experiments, we demonstrate that HS-mRNPs and condensates repress the translation of associated mRNA and deplete translation factors that are required for housekeeping translation, whereas HS mRNAs can be efficiently translated by eIF4A. We conclude that the eIF4F complex is a thermo-sensing node that regulates translation during HS.

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来源期刊
Molecular Cell
Molecular Cell 生物-生化与分子生物学
CiteScore
26.00
自引率
3.80%
发文量
389
审稿时长
1 months
期刊介绍: Molecular Cell is a companion to Cell, the leading journal of biology and the highest-impact journal in the world. Launched in December 1997 and published monthly. Molecular Cell is dedicated to publishing cutting-edge research in molecular biology, focusing on fundamental cellular processes. The journal encompasses a wide range of topics, including DNA replication, recombination, and repair; Chromatin biology and genome organization; Transcription; RNA processing and decay; Non-coding RNA function; Translation; Protein folding, modification, and quality control; Signal transduction pathways; Cell cycle and checkpoints; Cell death; Autophagy; Metabolism.
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