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alpha-synuclein-induced mitochondrial dysfunction in isolated preparation and intact cells: Implications in the pathogenesis of Parkinson's disease

机译:分离制剂和完整细胞中α-突触核蛋白诱导的线粒体功能障碍:帕金森病发病机制的意义

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摘要

This study has shown that purified recombinant human α-synuclein (20 μM) causes membrane depolarization and loss of phosphorylation capacity of isolated purified rat brain mitochondria by activating permeability transition pore complex. In intact SHSY5Y (human neuroblastoma cell line) cells, lactacystin (5 μM), a proteasomal inhibitor, causes an accumulation of α-synuclein with concomitant mitochondrial dysfunction and cell death. The effects of lactacystin on intact SHSY5Y cells are, however, prevented by knocking down α-synuclein expression by specific siRNA. Furthermore, in wild-type (non-transfected) SHSY5Y cells, the effects of lactacystin on mitochondrial function and cell viability are also prevented by cyclosporin A (1 μM) which blocks the activity of the mitochondrial permeability transition pore. Likewise, in wild-type SHSY5Y cells, typical mitochondrial poison like antimycin A (50 nM) produces loss of cell viability comparable to that of lactacystin (5 μM). These data, in combination with those from isolated brain mitochondria, strongly suggest that intracellularly accumulated α-synuclein can interact with mitochondria in intact SHSY5Y cells causing dysfunction of the organelle which drives the cell death under our experimental conditions. The results have clear implications in the pathogenesis of sporadic Parkinson's disease. α-Synuclein is shown to cause mitochondrial impairment through interaction with permeability transition pore complex in isolated preparations. Intracellular accumulation of α-synuclein in SHSY5Y cells following proteasomal inhibition leads to mitochondrial impairment and cell death which could be prevented by knocking down α-synuclein gene. The results link mitochondrial dysfunction and α-synuclein accumulation, two key pathogenic mechanisms of Parkinson's disease, in a common damage pathway.
机译:这项研究表明,纯化的重组人α-突触核蛋白(20μM)通过激活通透性转换孔复合物,导致膜去极化和分离的纯化大鼠脑线粒体磷酸化能力的丧失。在完整的SHSY5Y(人类神经母细胞瘤细胞系)细胞中,蛋白酶体抑制剂lacacyacystin(5μM)导致α-突触核蛋白积聚,并伴有线粒体功能障碍和细胞死亡。然而,通过特异性siRNA敲低α-突触核蛋白的表达,可以防止乳酸菌素对完整的SHSY5Y细胞的影响。此外,在野生型(未转染)SHSY5Y细胞中,乳环菌素对线粒体功能和细胞活力的影响也可通过环孢菌素A(1μM)阻止,这会阻止线粒体通透性过渡孔的活性。同样,在野生型SHSY5Y细胞中,典型的线粒体毒物如抗霉素A(50 nM)产生的细胞活力损失可与乳胞素(5μM)相比。这些数据与来自孤立的脑线粒体的数据强烈地表明,细胞内积累的α-突触核蛋白可以与完整的SHSY5Y细胞中的线粒体相互作用,从而导致细胞器功能障碍,从而在我们的实验条件下驱动细胞死亡。该结果对散发性帕金森氏病的发病机理具有明显的意义。在分离的制剂中,α-突触核蛋白通过与渗透性过渡孔复合物相互作用而引起线粒体损伤。蛋白酶体抑制后SHSY5Y细胞中α-突触核蛋白的细胞内积累导致线粒体损伤和细胞死亡,这可以通过敲低α-突触核蛋白基因来预防。结果将线粒体功能障碍和α-突触核蛋白积累(帕金森氏病的两个关键致病机制)联系到了一条常见的损伤途径中。

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