Departamento de Microbiologia - Instituto de Ciências Biomédicas, Universidade de São Paulo, Brazil.
FEBS J. 2019 Apr;286(7):1407-1419. doi: 10.1111/febs.14785. Epub 2019 Mar 1.
Mitochondrial translation normally requires formylation of the initiator tRNA-met, a reaction catalyzed by the enzyme formyltransferase, Fmt1p and MTFMT in Saccharomyces cerevisiae and human mitochondria, respectively. Yeast fmt1 mutants devoid of Fmt1p, however, can synthesize all mitochondrial gene products by initiating translation with a non-formylated methionyl-tRNA. Yeast synthetic respiratory-deficient fmt1 mutants have uncovered several factors suggested to play a role in translation initiation with non-formylated methionyl-tRNA. Here, we present evidence that Msc6p, a member of the pentatricopeptide repeat (PPR) motif family, is another essential factor for mitochondrial translation in fmt1 mutants. The PPR motif is characteristic of RNA-binding proteins found in chloroplasts and plant and fungal mitochondria, and is generally involved in RNA stability and transport. Moreover, in the present study, we show that the respiratory deficiency of fmt1msc6 double mutants can be rescued by overexpression of the yeast mitochondrial initiation factor mIF-2, encoded by IFM1. The role of Msc6p in translational initiation is further supported by pull-down assays showing that it transiently interacts with mIF-2. Altogether, our data indicate that Msc6p is an important factor in mitochondrial translation with an auxiliary function related to the mIF-2-dependent formation of the initiation complex.
线粒体翻译通常需要起始 tRNA-met 的甲酰化,该反应分别由酿酒酵母和人线粒体中的酶甲酰转移酶 Fmt1p 和 MTFMT 催化。然而,缺乏 Fmt1p 的酵母 fmt1 突变体可以通过使用非甲酰化甲硫氨酰-tRNA 起始翻译来合成所有线粒体基因产物。酵母合成呼吸缺陷型 fmt1 突变体已经发现了几种被认为在非甲酰化甲硫氨酰-tRNA 起始翻译中起作用的因素。在这里,我们提供的证据表明,Msc6p,五肽重复(PPR)基序家族的成员,是 fmt1 突变体中线粒体翻译的另一个必需因素。PPR 基序是存在于叶绿体和植物及真菌线粒体中的 RNA 结合蛋白的特征,通常参与 RNA 的稳定性和运输。此外,在本研究中,我们表明,fmt1msc6 双突变体的呼吸缺陷可以通过过表达酵母线粒体起始因子 mIF-2(由 IFM1 编码)来挽救。Msc6p 在翻译起始中的作用进一步得到了下拉实验的支持,该实验表明它与 mIF-2 瞬时相互作用。总之,我们的数据表明,Msc6p 是线粒体翻译的一个重要因素,它具有与 mIF-2 依赖性起始复合物形成相关的辅助功能。