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PTEN-induced kinase 1(PINK1)缺失会影响线粒体代谢、钙稳态和能量维持。

Depletion of PINK1 affects mitochondrial metabolism, calcium homeostasis and energy maintenance.

机构信息

Laboratory for Neurobiology and Gene Therapy, Molecular Medicine, Katholieke Universiteit Leuven, 3000 Leuven, Flanders, Belgium.

出版信息

J Cell Sci. 2011 Apr 1;124(Pt 7):1115-25. doi: 10.1242/jcs.078303. Epub 2011 Mar 8.

Abstract

Loss-of-function mutations in the gene encoding the mitochondrial PTEN-induced putative kinase 1 (PINK1) are a major cause of early-onset familial Parkinson's disease (PD). Recent studies have highlighted an important function for PINK1 in clearing depolarized mitochondria by mitophagy. However, the role of PINK1 in mitochondrial and cellular functioning in physiological conditions is still incompletely understood. Here, we investigate mitochondrial and cellular calcium (Ca(2+)) homeostasis in PINK1-knockdown and PINK1-knockout mouse cells, both in basal metabolic conditions and after physiological stimulation, using unbiased automated live single-cell imaging in combination with organelle-specific fluorescent probes. Our data reveal that depletion of PINK1 induces moderate fragmentation of the mitochondrial network, mitochondrial membrane depolarization and increased production of reactive oxygen species. This results in reduced uptake of Ca(2+) by mitochondria after physiological stimulation. As a consequence, cells with knockdown or knockout of PINK1 display impaired mitochondrial ATP synthesis, which is exacerbated under conditions of increased ATP demand, thereby affecting cytosolic Ca(2+) extrusion. The impairment in energy maintenance was confirmed in the brain of PINK1-knockout mice by in vivo bioluminescence imaging. Our findings demonstrate a key role for PINK1 in the regulation of mitochondrial homeostasis and energy metabolism under physiological conditions.

摘要

线粒体 PTEN 诱导假定激酶 1(PINK1)基因的功能丧失性突变是早发性家族性帕金森病(PD)的主要原因。最近的研究强调了 PINK1 在通过线粒体自噬清除去极化线粒体方面的重要功能。然而,PINK1 在生理条件下对线粒体和细胞功能的作用仍不完全清楚。在这里,我们使用无偏自动活细胞成像结合细胞器特异性荧光探针,在基础代谢条件和生理刺激后,研究了 PINK1 敲低和 PINK1 敲除小鼠细胞中的线粒体和细胞内钙(Ca(2+))稳态。我们的数据表明,PINK1 的耗竭会导致线粒体网络中度碎片化、线粒体膜去极化和活性氧的产生增加。这导致生理刺激后线粒体对 Ca(2+)的摄取减少。结果,敲低或敲除 PINK1 的细胞显示线粒体 ATP 合成受损,在增加 ATP 需求的条件下会加剧,从而影响细胞溶质 Ca(2+)外排。在 PINK1 敲除小鼠的大脑中通过体内生物发光成像证实了能量维持的损伤。我们的研究结果表明,PINK1 在生理条件下调节线粒体稳态和能量代谢中起着关键作用。

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