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Mitochondrial Dysfunction Induces Formation of Lipid Droplets as a Generalized Response to Stress

机译:线粒体功能障碍诱导脂质液滴的形成作为对压力的普遍反应

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Lipid droplet (LD) formation is a hallmark of cellular stress. Cells attempt to combat noxious stimuli by switching their metabolism from oxidative phosphorylation to glycolysis, sparing resources in LDs for generating cellular reducing power and for anabolic biosynthesis. Membrane phospholipids are also a source of LDs. To elucidate the formation of LDs, we exposed mice to hyperoxia, hypoxia, myocardial ischemia, and sepsis induced by cecal ligation and puncture (CLP). All the above-mentioned stressors enhanced the formation of LDs, as assessed by transmission electron microscopy, with severe mitochondrial swelling. Disruption of mitochondria by depleting mitochondrial DNA (ρ0 cells) significantly augmented the formation of LDs, causing transcriptional activation of fatty acid biosynthesis and metabolic reprogramming to glycolysis. Heme oxygenase (HO)-1 counteracts CLP-mediated septic shock in mouse models. In HO-1-deficient mice, LD formation was not observed upon CLP, but a concomitant decrease in “LD-decorating proteins” was observed, implying a link between LDs and cytoprotective activity. Collectively, LD biogenesis during stress can trigger adaptive LD formation, which is dependent on mitochondrial integrity and HO-1 activity; this may be a cellular survival strategy, apportioning energy-generating substrates to cellular defense.
机译:脂质滴(LD)形成是细胞应激的标志。细胞试图通过将新陈代谢从氧化磷酸化转变为糖酵解来对抗有害刺激,在LD中保留资源以产生细胞还原能力和合成代谢生物合成。膜磷脂也是LD的来源。为了阐明LD的形成,我们将小鼠暴露于因盲肠结扎和穿刺(CLP)引起的高氧,缺氧,心肌缺血和败血症。如通过透射电子显微镜所评估的,所有上述应激源均增强了LD的形成,并伴随着严重的线粒体肿胀。通过消耗线粒体DNA(ρ0细胞)破坏线粒体可显着增加LD的形成,从而导致脂肪酸生物合成的转录激活和代谢重编程为糖酵解。血红素加氧酶(HO)-1在小鼠模型中抵消了CLP介导的败血性休克。在HO-1缺陷型小鼠中,在CLP时未观察到LD的形成,但同时观察到“ LD修饰蛋白”的减少,这暗示了LDs与细胞保护活性之间的联系。总的来说,应激期间的LD生物发生可以触发适应性LD的形成,这取决于线粒体的完整性和HO-1的活性。这可能是细胞存活策略,将产生能量的底物分配给细胞防御。

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