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Metabolic and Environmental Conditions Determine Nuclear Genomic Instability in Budding Yeast Lacking Mitochondrial DNA

机译:代谢和环境条件确定缺乏线粒体DNA的芽酵母中的核基因组不稳定性。

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摘要

Mitochondrial dysfunctions are an internal cause of nuclear genome instability. Because mitochondria are key regulators of cellular metabolism, we have investigated a potential link between external growth conditions and nuclear chromosome instability in cells with mitochondrial defects. Using Saccharomyces cerevisiae, we found that cells lacking mitochondrial DNA (rho0 cells) have a unique feature, with nuclear chromosome instability that occurs in nondividing cells and strongly fluctuates depending on the cellular environment. Calorie restriction, lower growth temperatures, growth at alkaline pH, antioxidants (NAC, Tiron), or presence of nearby wild-type cells all efficiently stabilize nuclear genomes of rho0 cells, whereas high glucose and ethanol boost instability. In contrast, other respiratory mutants that still possess mitochondrial DNA (RHO+) keep fairly constant instability rates under the same growth conditions, like wild-type or other RHO+ controls. Our data identify mitochondrial defects as an important driver of nuclear genome instability influenced by environmental factors.
机译:线粒体功能障碍是核基因组不稳定的内部原因。由于线粒体是细胞代谢的关键调节因子,因此我们研究了线粒体缺陷细胞的外部生长条件与核染色体不稳定性之间的潜在联系。使用酿酒酵母,我们发现缺少线粒体DNA的细胞(rho0细胞)具有独特的功能,核染色体不稳定性发生在不分裂的细胞中,并根据细胞环境而剧烈波动。热量限制,较低的生长温度,在碱性pH下生长,抗氧化剂(NAC,Tiron)或附近野生型细胞的存在均能有效稳定rho0细胞的核基因组,而高葡萄糖和乙醇则增加了不稳定性。相反,其他仍具有线粒体DNA(RHO + )的呼吸突变体在相同的生长条件下仍保持相当恒定的不稳定性,例如野生型或其他RHO + 对照。我们的数据确定线粒体缺陷是受环境因素影响的核基因组不稳定性的重要驱动力。

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