首页> 外文期刊>Oxidative Medicine and Cellular Longevity >p66Shc Inactivation Modifies RNS Production, Regulates Sirt3 Activity, and Improves Mitochondrial Homeostasis, Delaying the Aging Process in Mouse Brain
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p66Shc Inactivation Modifies RNS Production, Regulates Sirt3 Activity, and Improves Mitochondrial Homeostasis, Delaying the Aging Process in Mouse Brain

机译:p66Shc失活修饰了RNS的产生,调节Sirt3的活性,并改善了线粒体的稳态,从而延缓了小鼠大脑的衰老过程。

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Programmed and damage aging theories have traditionally been conceived as stand-alone schools of thought. However, the p66Shc adaptor protein has demonstrated that aging-regulating genes and reactive oxygen species (ROS) are closely interconnected, since its absence modifies metabolic homeostasis by providing oxidative stress resistance and promoting longevity. p66Shc(−/−) mice are a unique opportunity to further comprehend the bidirectional relationship between redox homeostasis and the imbalance of mitochondrial biogenesis and dynamics during aging. This study shows that brain mitochondria of p66Shc(−/−) aged mice exhibit a reduced alteration of redox balance with a decrease in both ROS generation and its detoxification activity. We also demonstrate a strong link between reactive nitrogen species (RNS) and mitochondrial function, morphology, and biogenesis, where low levels of ONOO− formation present in aged p66Shc(−/−) mouse brain prevent protein nitration, delaying the loss of biological functions characteristic of the aging process. Sirt3 modulates age-associated mitochondrial biology and function via lysine deacetylation of target proteins, and we show that its regulation depends on its nitration status and is benefited by the improved NAD
机译:传统上,程序设计和破坏老化理论被认为是独立的思想流派。然而,p66Shc衔接子蛋白已经证明了衰老调节基因和活性氧(ROS)紧密相连,因为它的缺失通过提供抗氧化应激性和延长寿命来改变代谢稳态。 p66Shc(-/-)小鼠是进一步理解氧化还原稳态与衰老过程中线粒体生物发生和动力学失衡之间双向关系的独特机会。这项研究表明,p66Shc(-/-)老年小鼠的脑线粒体氧化还原平衡的变化减少,ROS产生及其解毒活性降低。我们还证明了活性氮物质(RNS)与线粒体功能,形态和生物发生之间的紧密联系,其中老年p66Shc(-/-)小鼠大脑中低水平的ONOO-形成阻止蛋白质硝化,从而延迟了生物学功能的丧失老化过程的特征。 Sirt3通过靶蛋白的赖氨酸脱乙酰作用调节与年龄相关的线粒体生物学和功能,我们表明其调节取决于其硝化状态,并受益于改良的NAD

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