School of Chemical and Molecular Biosciences, University of Queensland, St Lucia, Queensland 4072, Australia.
Mech Ageing Dev. 2010 Sep;131(9):554-61. doi: 10.1016/j.mad.2010.07.004. Epub 2010 Aug 3.
Lifespan in Caenorhabditis elegans, Drosophila, and mice can be extended by a decrease in mitochondrial electron transport chain (ETC) function, but the mechanism behind this extension is unknown. In the present study, we combine detailed metabolic analysis with lifespan determination following suppression of individual genes encoding respiratory complexes I-IV. We report that reduced complexes I, III, and IV activity extend lifespan but that complex II disruption does not. However, disruption to all four complexes affected metabolism in a similar manner suggesting that metabolic effects induced by ETC disruption are separable from lifespan extension. We found that suppression of ETC components induces a starvation-like metabolic response via the nuclear hormone receptor NHR-49. This includes induction of genes for mitochondrial fatty-acid β-oxidation (acs-2), the glyoxylate cycle (gei-7), gluconeogensis (PEPCK), and glycolysis (gpd-3). Interestingly, a null mutation of nhr-49 attenuated induction of these metabolic pathways, but did not affect the lifespan extension associated with decreases in complexes I, III, and IV function. Together, our results suggest that restructuring of metabolism via NHR-49 in C. elegans with mitochondrial dysfunction does not cause lifespan extension.
秀丽隐杆线虫、果蝇和小鼠的寿命可以通过降低线粒体电子传递链 (ETC) 的功能来延长,但延长寿命的机制尚不清楚。在本研究中,我们结合详细的代谢分析和抑制单个编码呼吸复合物 I-IV 的基因后的寿命测定来进行研究。我们报告称,降低复合物 I、III 和 IV 的活性可以延长寿命,但破坏复合物 II 则不会。然而,所有四个复合物的破坏以相似的方式影响代谢,这表明 ETC 破坏引起的代谢效应与寿命延长是可分离的。我们发现,ETC 成分的抑制通过核激素受体 NHR-49 诱导类似于饥饿的代谢反应。这包括诱导参与线粒体脂肪酸β-氧化(acs-2)、乙醛酸循环(gei-7)、糖异生(PEPCK)和糖酵解(gpd-3)的基因。有趣的是,nhr-49 的缺失突变减弱了这些代谢途径的诱导,但不影响与复合物 I、III 和 IV 功能降低相关的寿命延长。总之,我们的结果表明,线虫中线粒体功能障碍通过 NHR-49 重排代谢不会导致寿命延长。