首页> 美国卫生研究院文献>Genetics >Rpm2 the protein subunit of mitochondrial RNase P in Saccharomyces cerevisiae also has a role in the translation of mitochondrially encoded subunits of cytochrome c oxidase.
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Rpm2 the protein subunit of mitochondrial RNase P in Saccharomyces cerevisiae also has a role in the translation of mitochondrially encoded subunits of cytochrome c oxidase.

机译:Rpm2是酿酒酵母中线粒体RNase P的蛋白质亚基在细胞色素c氧化酶的线粒体编码亚基的翻译中也有作用。

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摘要

RPM2 is a Saccharomyces cerevisiae nuclear gene that encodes the protein subunit of mitochondrial RNase P and has an unknown function essential for fermentative growth. Cells lacking mitochondrial RNase P cannot respire and accumulate lesions in their mitochondrial DNA. The effects of a new RPM2 allele, rpm2-100, reveal a novel function of RPM2 in mitochondrial biogenesis. Cells with rpm2-100 as their only source of Rpm2p have correctly processed mitochondrial tRNAs but are still respiratory deficient. Mitochondrial mRNA and rRNA levels are reduced in rpm2-100 cells compared to wild type. The general reduction in mRNA is not reflected in a similar reduction in mitochondrial protein synthesis. Incorporation of labeled precursors into mitochondrially encoded Atp6, Atp8, Atp9, and Cytb protein was enhanced in the mutant relative to wild type, while incorporation into Cox1p, Cox2p, Cox3p, and Var1p was reduced. Pulse-chase analysis of mitochondrial translation revealed decreased rates of translation of COX1, COX2, and COX3 mRNAs. This decrease leads to low steady-state levels of Cox1p, Cox2p, and Cox3p, loss of visible spectra of aa(3) cytochromes, and low cytochrome c oxidase activity in mutant mitochondria. Thus, RPM2 has a previously unrecognized role in mitochondrial biogenesis, in addition to its role as a subunit of mitochondrial RNase P. Moreover, there is a synthetic lethal interaction between the disruption of this novel respiratory function and the loss of wild-type mtDNA. This synthetic interaction explains why a complete deletion of RPM2 is lethal.
机译:RPM2是酿酒酵母的核基因,它编码线粒体RNase P的蛋白质亚基,并且具有发酵生长必不可少的功能。缺乏线粒体RNase P的细胞无法呼吸并在其线粒体DNA中积累损伤。新的RPM2等位基因rpm2-100的作用揭示了RPM2在线粒体生物发生中的新功能。以rpm2-100作为其Rpm2p唯一来源的细胞具有正确处理的线粒体tRNA,但仍存在呼吸不足。与野生型相比,rpm2-100细胞中的线粒体mRNA和rRNA水平降低。 mRNA的一般减少没有反映在线粒体蛋白质合成的类似减少中。相对于野生型,在突变体中增强了标记前体掺入线粒体编码的Atp6,Atp8,Atp9和Cytb蛋白,而减少了掺入Cox1p,Cox2p,Cox3p和Var1p的情况。线粒体翻译的脉冲追踪分析显示,COX1,COX2和COX3 mRNA的翻译速率降低。此减少导致突变体线粒体中Cox1p,Cox2p和Cox3p的稳态水平低,aa(3)细胞色素的可见光谱损失和低细胞色素c氧化酶活性。因此,RPM2除了作为线粒体RNase P的亚基,还具有线粒体生物发生中以前未被认识的作用。此外,这种新型呼吸功能的破坏与野生型mtDNA的丧失之间存在着致命的合成相互作用。这种合成的相互作用解释了为什么彻底删除RPM2是致命的。

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