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Pink1 regulates mitochondrial dynamics through interaction with the fission/fusion machinery

机译:Pink1通过与裂变/融合机制的相互作用调节线粒体的动力学

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摘要

Mitochondria form dynamic tubular networks that undergo frequent morphological changes through fission and fusion, the imbalance of which can affect cell survival in general and impact synaptic transmission and plasticity in neurons in particular. Some core components of the mitochondrial fission/fusion machinery, including the dynamin-like GTPases Drp1, Mitofusin, Opa1, and the Drp1-interacting protein Fis1, have been identified. How the fission and fusion processes are regulated under normal conditions and the extent to which defects in mitochondrial fission/fusion are involved in various disease conditions are poorly understood. Mitochondrial malfunction tends to cause diseases with brain and skeletal muscle manifestations and has been implicated in neurodegenerative diseases such as Parkinson's disease (PD). Whether abnormal mitochondrial fission or fusion plays a role in PD pathogenesis has not been shown. Here, we show that Pink1, a mitochondria-targeted Ser/Thr kinase linked to familial PD, genetically interacts with the mitochondrial fission/fusion machinery and modulates mitochondrial dynamics. Genetic manipulations that promote mitochondrial fission suppress Drosophila Pink1 mutant phenotypes in indirect flight muscle and dopamine neurons, whereas decreased fission has opposite effects. In Drosophila and mammalian cells, overexpression of Pink1 promotes mitochondrial fission, whereas inhibition of Pink1 leads to excessive fusion. Our genetic interaction results suggest that Fis1 may act in-between Pink1 and Drp1 in controlling mitochondrial fission. These results reveal a cell biological role for Pink1 and establish mitochondrial fission/fusion as a paradigm for PD research. Compounds that modulate mitochondrial fission/fusion could have therapeutic value in PD intervention.
机译:线粒体形成动态的管状网络,该网络通过裂变和融合经历频繁的形态变化,其失衡通常会影响细胞存活,特别是影响神经元的突触传递和可塑性。已经确定了线粒体裂变/融合机制的一些核心组件,包括类似动力的GTPases Drp1,Mitofusin,Opa1和与Drp1相互作用的蛋白Fis1。在正常条件下如何调节裂变和融合过程,以及各种疾病条件下线粒体裂变/融合缺陷涉及的程度,人们对此知之甚少。线粒体机能障碍往往会导致大脑和骨骼肌表现疾病,并与帕金森氏病(PD)等神经退行性疾病有关。线粒体异常分裂或融合是否在PD发病机理中发挥作用尚未得到证实。在这里,我们显示Pink1,一种与家族性PD相关的线粒体靶向Ser / Thr激酶,与线粒体裂变/融合机制发生遗传相互作用,并调节线粒体动力学。促进线粒体裂变的遗传操作抑制间接飞行的肌肉和多巴胺神经元中的果蝇Pink1突变表型,而减少裂变具有相反的作用。在果蝇和哺乳动物细胞中,Pink1的过表达促进线粒体分裂,而抑制Pink1则导致过度融合。我们的遗传相互作用结果表明,Fis1可能在控制线粒体裂变的Pink1和Drp1之间起作用。这些结果揭示了Pink1的细胞生物学作用,并将线粒体裂变/融合确立为PD研究的范例。调节线粒体裂变/融合的化合物可能在PD干预中具有治疗价值。

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