Barba-Aliaga Marina, Bernal Vanessa, Rong Cynthia, Zid Brian M, Alepuz Paula
Instituto de Biotecnología y Biomedicina (Biotecmed), Universitat de València, 46100 València, Spain.
Departamento de Bioquímica y Biología Molecular, Facultad de Ciencias Biológicas, Universitat de València, 46100 València, Spain.
bioRxiv. 2023 Dec 19:2023.12.19.572290. doi: 10.1101/2023.12.19.572290.
The efficient import of nuclear-encoded proteins into mitochondria is crucial for proper mitochondrial function. The conserved translation factor eIF5A is primarily known as an elongation factor which binds ribosomes to alleviate ribosome stalling at sequences encoding polyprolines or combinations of proline with glycine and charged amino acids. eIF5A is known to impact the mitochondrial function across a variety of species although the precise molecular mechanism underlying this impact remains unclear. We found that depletion of eIF5A in yeast drives reduced translation and levels of TCA cycle and oxidative phosphorylation proteins. We further found that loss of eIF5A leads to the accumulation of mitoprotein precursors in the cytosol as well as to the induction of a mitochondrial import stress response. Here we identify an essential polyproline-containing protein as a direct eIF5A target for translation: the mitochondrial inner membrane protein Tim50, which is the receptor subunit of the TIM23 translocase complex. We show how eIF5A directly controls mitochondrial protein import through the alleviation of ribosome stalling along mRNA at the mitochondrial surface. Removal of the polyprolines from Tim50 rescues the mitochondrial import stress response, as well as the translation of oxidative phosphorylation reporter genes in an eIF5A loss of function. Overall, our findings elucidate how eIF5A impacts the mitochondrial function by reducing ribosome stalling and facilitating protein translation, thereby positively impacting the mitochondrial import process.
将核编码蛋白有效导入线粒体对于线粒体的正常功能至关重要。保守的翻译因子eIF5A主要作为一种延伸因子,它结合核糖体以缓解核糖体在编码多聚脯氨酸或脯氨酸与甘氨酸及带电荷氨基酸组合的序列处的停滞。尽管这种影响背后的确切分子机制尚不清楚,但已知eIF5A会影响多种物种的线粒体功能。我们发现,酵母中eIF5A的缺失会导致翻译减少以及三羧酸循环和氧化磷酸化蛋白水平降低。我们进一步发现,eIF5A的缺失会导致线粒体蛋白前体在细胞质中积累,并引发线粒体导入应激反应。在这里,我们确定一种必需的含多聚脯氨酸蛋白是eIF5A直接的翻译靶点:线粒体内膜蛋白Tim50,它是TIM23转位酶复合体的受体亚基。我们展示了eIF5A如何通过缓解线粒体表面mRNA上的核糖体停滞来直接控制线粒体蛋白导入。从Tim50上去除多聚脯氨酸可挽救线粒体导入应激反应,以及在eIF5A功能丧失情况下氧化磷酸化报告基因的翻译。总体而言,我们的研究结果阐明了eIF5A如何通过减少核糖体停滞和促进蛋白质翻译来影响线粒体功能,从而对线粒体导入过程产生积极影响。