自噬
细胞生物学
线粒体
线粒体分裂
生物
线粒体融合
细胞质
程序性细胞死亡
细胞凋亡
生物化学
线粒体DNA
基因
作者
Lígia C. Gomes,Giulietta Di Benedetto,Luca Scorrano
摘要
A plethora of cellular processes, including apoptosis, depend on regulated changes in mitochondrial shape and ultrastructure. The role of mitochondria and of their morphology during autophagy, a bulk degradation and recycling process of eukaryotic cells’ constituents, is not well understood. Here we show that mitochondrial morphology determines the cellular response to macroautophagy. When autophagy is triggered, mitochondria elongate in vitro and in vivo. During starvation, cellular cyclic AMP levels increase and protein kinase A (PKA) is activated. PKA in turn phosphorylates the pro-fission dynamin-related protein 1 (DRP1), which is therefore retained in the cytoplasm, leading to unopposed mitochondrial fusion. Elongated mitochondria are spared from autophagic degradation, possess more cristae, increased levels of dimerization and activity of ATP synthase, and maintain ATP production. Conversely, when elongation is genetically or pharmacologically blocked, mitochondria consume ATP, precipitating starvation-induced death. Thus, regulated changes in mitochondrial morphology determine the fate of the cell during autophagy. Mitochondria are found to fuse at the onset of autophagy. This event, which is regulated by a cyclic AMP–PKA (protein kinase A) signalling pathway, increases ATP synthase activity to prevent starvation-induced cell death.
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