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Clu1/Clu在代谢转变时形成线粒体相关颗粒,并通过核糖体相互作用调节线粒体蛋白质翻译。

Clu1/Clu form mitochondria-associated granules upon metabolic transitions and regulate mitochondrial protein translation via ribosome interactions.

作者信息

Miller-Fleming Leonor, Au Wing Hei, Raik Laura, Rebelo-Guiomar Pedro, Schmitz Jasper, Cho Ha Yoon, Czako Aron, Whitworth Alexander J

机构信息

MRC Mitochondrial Biology Unit, University of Cambridge, Cambridge Biomedical Campus, Cambridge, United Kingdom.

出版信息

PLoS Genet. 2025 Jul 7;21(7):e1011773. doi: 10.1371/journal.pgen.1011773. eCollection 2025 Jul.

Abstract

Mitochondria perform essential metabolic functions and respond rapidly to changes in metabolic and stress conditions. As the majority of mitochondrial proteins are nuclear-encoded, intricate post-transcriptional regulation is crucial to enable mitochondria to adapt to changing cellular demands. The eukaryotic Clustered mitochondria protein family has emerged as an important regulator of mitochondrial function during metabolic shifts. Here, we show that the Drosophila melanogaster and Saccharomyces cerevisiae Clu/Clu1 proteins form dynamic, membraneless, mRNA-containing granules adjacent to mitochondria in response to metabolic changes. Yeast Clu1 regulates the translation of a subset of nuclear-encoded mitochondrial proteins by interacting with their mRNAs while these are engaged in translation. We further show that Clu1 regulates translation by interacting with polysomes, independently of whether it is in a diffuse or granular state. Our results demonstrate remarkable functional conservation with other members of the Clustered mitochondria protein family and suggest that Clu/Clu1 granules isolate and concentrate ribosomes engaged in translating their mRNA targets, thus, integrating metabolic signals with the regulation of mitochondrial protein synthesis.

摘要

线粒体执行基本的代谢功能,并能对代谢和应激条件的变化迅速做出反应。由于大多数线粒体蛋白是由核基因编码的,复杂的转录后调控对于使线粒体适应不断变化的细胞需求至关重要。真核生物的线粒体聚集蛋白家族已成为代谢转变期间线粒体功能的重要调节因子。在这里,我们表明,果蝇和酿酒酵母的Clu/Clu1蛋白会响应代谢变化,在线粒体附近形成动态的、无膜的、含mRNA的颗粒。酵母Clu1通过与其正在进行翻译的核编码线粒体蛋白的mRNA相互作用,来调节这些蛋白的翻译。我们进一步表明,Clu1通过与多核糖体相互作用来调节翻译,而与其处于弥散状态还是颗粒状态无关。我们的结果证明了与线粒体聚集蛋白家族其他成员具有显著的功能保守性,并表明Clu/Clu1颗粒隔离并聚集参与翻译其mRNA靶标的核糖体,从而将代谢信号与线粒体蛋白合成的调控整合起来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3169/12262889/d4a73ed28df7/pgen.1011773.g001.jpg

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