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Extension of chronological life span by reduced TOR signaling requires down-regulation of Sch9p and involves increased mitochondrial OXPHOS complex density

机译:延期 通过减少TOR信号传导来实现按时间顺序排列的寿命需要下调Sch9p和 涉及增加线粒体OXPHOS复合物密度

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摘要

The nutrient-sensing target of rapamycin (TOR) pathway appears to have a conserved role in regulating life span. This signaling network is complex, with many downstream physiological outputs, and thus the mechanisms underlying its age-related effects have not been elucidated fully. We demonstrated previously that reduced TOR signaling (intor1Δ strains) extends yeast chronological life span (CLS) by increasing mitochondrial oxygen consumption, in part, by up-regulating translation of mtDNA-encoded oxidative phosphorylation (OXPHOS) subunits. Here, we have examined in greater detail how TOR signaling influences mitochondrial function and CLS and the role of the Sch9p kinase in the TOR-mitochondria pathway. As is the case for oxygen consumption, mitochondrial translation is elevated in tor1Δ strains only during active growth and early stationary phase growth points. This is accompanied by a corresponding increase in the abundance of both mtDNA-encoded and nucleus-encoded OXPHOS subunits per mitochondrial mass. However, this increased OXPHOS complex density is not associated with more mitochondria/cell or cellular ATP and leads to an overall decrease in membrane potential, suggesting that TOR signaling may influence respiration uncoupling. Finally, we document that the Sch9p kinase is a key downstream effector of OXPHOS, ROS and CLS in the TOR-mitochondria pathway. Altogether, our results demonstrate that TOR signaling has a global role in regulating mitochondrial proteome dynamics and function that is important for its role in aging and provide compelling evidence for involvement of a "mitochondrial pre-conditioning" effect in CLS determination.
机译:雷帕霉素(TOR)途径的营养敏感目标似乎在​​调节寿命中具有保守作用。该信号网络是复杂的,具有许多下游生理输出,因此尚未完全阐明其与年龄有关的作用的机制。我们先前证明减少的TOR信号传导(intor1Δ菌株)通过增加线粒体耗氧量(部分是通过上调mtDNA编码的氧化磷酸化(OXPHOS)亚基的翻译)来延长酵母的时间寿命(CLS)。在这里,我们已经更详细地研究了TOR信号传导如何影响线粒体功能和CLS以及Sch9p激酶在TOR线粒体途径中的作用。像耗氧的情况一样,tor1Δ菌株中的线粒体翻译仅在活跃的生长和早期的固定相生长阶段才升高。这伴随着每线粒体的mtDNA编码和核编码的OXPHOS亚基的丰度相应增加。然而,这种增加的OXPHOS复合物密度与更多的线粒体/细胞无关 或细胞ATP,导致膜电位整体下降, 提示TOR信号传导可能影响呼吸解偶联。 最后,我们证明了Sch9p激酶是其关键的下游效应子 TOR-线粒体途径中的OXPHOS,ROS和CLS。总之,我们的 结果表明TOR信号在调节中具有全球性作用 线粒体蛋白质组动力学和功能对其作用至关重要 并提供令人信服的证据证明“线粒体”参与 CLS确定中的“预处理”效果。

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