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Declining NAD+ Induces a Pseudohypoxic State Disrupting Nuclear-Mitochondrial Communication during Aging

机译:衰老过程中NAD +下降导致假性低氧状态破坏核线粒体通讯

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摘要

Ever since eukaryotes subsumed the bacterial ancestor of mitochondria, the nuclear and mitochondrial genomes have had to closely coordinate their activities, as each encode different subunits of the oxidative phosphorylation (OXPHOS) system. Mitochondrial dysfunction is a hallmark of aging, but its causes are debated. We show that, during aging, there is a specific loss of mitochondrial, but not nuclear, encoded OXPHOS subunits. We trace the cause to an alternate PGC-1α/β-independent pathway of nuclear-mitochondrial communication that is induced by a decline in nuclear NAD'+ and the accumulation of HIF-1α under normoxic conditions, with parallels to Warburg reprogramming. Deleting SIRT1 accelerates this process, whereas raising NAD~+ levels in old mice restores mitochondrial function to that of a young mouse in a SIRT1 -dependent manner. Thus, a pseudohypoxic state that disrupts PGC-1α/β-independent nuclear-mitochondrial communication contributes to the decline in mitochondrial function with age, a process that is apparently reversible.
机译:自从真核生物纳入线粒体的细菌祖先以来,核和线粒体基因组就不得不密切协调其活性,因为它们各自编码氧化磷酸化(OXPHOS)系统的不同亚基。线粒体功能障碍是衰老的标志,但其原因尚有争议。我们显示,在衰老过程中,线粒体有特定的丢失,但没有核编码的OXPHOS亚基。我们将原因追溯到核线粒体通讯的另一种PGC-1α/β独立途径,该途径由正常氧条件下核NAD'+的下降和HIF-1α的积累诱导,与Warburg重编程相似。删除SIRT1会加速此过程,而提高老龄小鼠的NAD〜+水平则会以依赖SIRT1的方式将线粒体功能恢复为年轻小鼠的线粒体功能。因此,破坏PGC-1α/β独立核线粒体通讯的假性低氧状态会导致线粒体功能随着年龄的增长而下降,这一过程显然是可逆的。

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