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首页> 外文期刊>Mutation Research: International Journal on Mutagenesis, Chromosome Breakage and Related Subjects >Inactivation of the 20S proteasome maturase, Ump1p, leads to the instability of mtDNA in Saccharomyces cerevisiae.
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Inactivation of the 20S proteasome maturase, Ump1p, leads to the instability of mtDNA in Saccharomyces cerevisiae.

机译:20S蛋白酶体成熟酶Ump1p失活导致啤酒酵母中mtDNA的不稳定。

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The proteasome plays fundamental roles in the removal of oxidized proteins and in normal degradation of short-lived proteins. Increasing evidence suggests that the proteasome may be an important factor in both oxidative stress response and cellular aging. Moreover, it was recently reported that proteasome inhibition leads to mitochondrial dysfunction. In this study, we have investigated whether proteasome impairment, caused by deletion of UMP1, a gene necessary for the 20S proteasome biogenesis, may influence the stability of the yeast mitochondrial genome. Here we show that an ump1Delta mutant displays enhanced mitochondrial point mutagenesis, measured by the frequency of oligomycin-resistant (Oli(r)) and erythromycin-resistant (Ery(r)) mutants, compared to that of the isogenic wild-type strain. Deletion of UMP1 significantly increases also the frequency of respiration-defective mutants having gross rearrangements of the mitochondrial genome. We show that this mitochondrial mutator phenotype of the ump1Delta strain is considerably reduced in the presence of a plasmid encoding Msh1p, the mitochondrial homologue of the bacterial mismatch protein MutS, which was shown previously to counteract oxidative lesion-induced instability of mtDNA. In search of the mechanism underlying the decreased stability of mtDNA in the ump1Delta deletion mutant, we have determined the level of reactive oxygen species (ROS) in the mutant cells and have found that they are exposed to endogenous oxidative stress. Furthermore, we show also that both cellular and intramitochondrial levels of Msh1p are significantly reduced in the mutant cells compared to the wild-type cells. We conclude, therefore, that both an increased ROS production and a markedly decreased level of Msh1p, a protein crucial for the repair of mtDNA, lead in S. cerevisiae cells with impaired proteasome activity to the increased instability of their mitochondrial genome.
机译:蛋白酶体在氧化蛋白质的去除和短寿命蛋白质的正常降解中起基本作用。越来越多的证据表明,蛋白酶体可能是氧化应激反应和细胞衰老的重要因素。此外,最近报道了蛋白酶体的抑制导致线粒体功能障碍。在这项研究中,我们调查了由20S蛋白酶体生物发生所必需的基因UMP1缺失引起的蛋白酶体损伤是否会影响酵母线粒体基因组的稳定性。在这里,我们显示一个ump1Delta突变体显示出增强的线粒体点诱变作用,与同基因野生型菌株相比,该突变体通过抗寡霉素(Oli(r))和抗红霉素(Ery(r))突变体的频率来衡量。删除UMP1还显着增加了具有线粒体基因组总体重排的呼吸缺陷型突变体的频率。我们显示,在编码Msh1p(细菌错配蛋白MutS的线粒体同源物)的质粒存在下,ump1Delta菌株的这种线粒体突变体表型显着降低,先前已证明它可抵消mtDNA的氧化损伤诱导的不稳定性。为了寻找降低ump1Delta缺失突变体中mtDNA稳定性的机制,我们确定了突变细胞中活性氧(ROS)的水平,并发现它们暴露于内源性氧化应激。此外,我们还显示,与野生型细胞相比,突变型细胞中Msh1p的细胞水平和线粒体内水平均显着降低。因此,我们得出的结论是,ROS产量增加和Msh1p(对mtDNA的修复至关重要的蛋白质)水平显着降低,导致蛋白酶体活性受损的酿酒酵母细胞中线粒体基因组的不稳定增加。

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