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首页> 外文期刊>Human Molecular Genetics >The PINK1/Parkin pathway regulates mitochondrial dynamics and function in mammalian hippocampal and dopaminergic neurons.
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The PINK1/Parkin pathway regulates mitochondrial dynamics and function in mammalian hippocampal and dopaminergic neurons.

机译:PINK1 / Parkin途径调节哺乳动物海马和多巴胺能神经元的线粒体动力学和功能。

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PTEN-induced putative kinase 1 (PINK1) and Parkin act in a common pathway to regulate mitochondrial dynamics, the involvement of which in the pathogenesis of Parkinson's disease (PD) is increasingly being appreciated. However, how the PINK1/Parkin pathway influences mitochondrial function is not well understood, and the exact role of this pathway in controlling mitochondrial dynamics remains controversial. Here we used mammalian primary neurons to examine the function of the PINK1/Parkin pathway in regulating mitochondrial dynamics and function. In rat hippocampal neurons, PINK1 or Parkin overexpression resulted in increased mitochondrial number, smaller mitochondrial size and reduced mitochondrial occupancy of neuronal processes, suggesting that the balance of mitochondrial fission/fusion dynamics is tipped toward more fission. Conversely, inactivation of PINK1 resulted in elongated mitochondria, indicating that the balance of mitochondrial fission/fusion dynamics is tipped toward more fusion. Furthermore, overexpression of the fission protein Drp1 (dynamin-related protein 1) or knocking down of the fusion protein OPA1 (optical atrophy 1) suppressed PINK1 RNAi-induced mitochondrial morphological defect, and overexpression of PINK1 or Parkin suppressed the elongated mitochondria phenotype caused by Drp1 RNAi. Functionally, PINK1 knockdown and overexpression had opposite effects on dendritic spine formation and neuronal vulnerability to excitotoxicity. Finally, we found that PINK1/Parkin similarly influenced mitochondrial dynamics in rat midbrain dopaminergic neurons. These results, together with previous findings in Drosophila dopaminergic neurons, indicate that the PINK1/Parkin pathway plays conserved roles in regulating neuronal mitochondrial dynamics and function.
机译:PTEN诱导的激酶1(PINK1)和Parkin在调节线粒体动力学的共同途径中起作用,越来越多的人参与到帕金森氏病(PD)的发病机理中来。但是,PINK1 / Parkin途径如何影响线粒体功能尚不清楚,并且该途径在控制线粒体动力学中的确切作用仍存在争议。在这里,我们使用哺乳动物的初级神经元来检查PINK1 / Parkin通路在调节线粒体动力学和功能中的功能。在大鼠海马神经元中,PINK1或Parkin过表达导致线粒体数目增加,线粒体大小减小和神经元过程的线粒体占有率降低,这表明线粒体裂变/融合动力学的平衡趋向于更多的裂变。相反,PINK1的失活导致线粒体延长,表明线粒体裂变/融合动力学的平衡趋向于更多融合。此外,裂变蛋白Drp1(动力相关蛋白1)的过表达或融合蛋白OPA1的敲除(光学萎缩1)抑制了PINK1 RNAi诱导的线粒体形态学缺陷,而PINK1或Parkin的过度表达则抑制了由Drp1 RNAi。在功能上,敲低PINK1和过度表达对树突状脊柱形成和神经元易受兴奋性毒性作用相反。最后,我们发现PINK1 / Parkin同样影响大鼠中脑多巴胺能神经元的线粒体动力学。这些结果,加上以前在果蝇多巴胺能神经元中的发现,表明PINK1 / Parkin途径在调节神经元线粒体动力学和功能中起保守作用。

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