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复合物I是百草枯产生线粒体超氧化物的主要部位。

Complex I is the major site of mitochondrial superoxide production by paraquat.

作者信息

Cochemé Helena M, Murphy Michael P

机构信息

Medical Research Council Dunn Human Nutrition Unit, Wellcome Trust/MRC Building, Hills Road, Cambridge CB2 0XY, United Kingdom.

出版信息

J Biol Chem. 2008 Jan 25;283(4):1786-98. doi: 10.1074/jbc.M708597200. Epub 2007 Nov 26.

DOI:10.1074/jbc.M708597200
PMID:18039652
Abstract

Paraquat (1,1'-dimethyl-4,4'-bipyridinium dichloride) is widely used as a redox cycler to stimulate superoxide production in organisms, cells, and mitochondria. This superoxide production causes extensive mitochondrial oxidative damage, however, there is considerable uncertainty over the mitochondrial sites of paraquat reduction and superoxide formation. Here we show that in yeast and mammalian mitochondria, superoxide production by paraquat occurs in the mitochondrial matrix, as inferred from manganese superoxide dismutase-sensitive mitochondrial DNA damage, as well as from superoxide assays in isolated mitochondria, which were unaffected by exogenous superoxide dismutase. This paraquat-induced superoxide production in the mitochondrial matrix required a membrane potential that was essential for paraquat uptake into mitochondria. This uptake was of the paraquat dication, not the radical monocation, and was carrier-mediated. Experiments with disrupted mitochondria showed that once in the matrix paraquat was principally reduced by complex I (mammals) or by NADPH dehydrogenases (yeast) to form the paraquat radical cation that then reacted with oxygen to form superoxide. Together this membrane potential-dependent uptake across the mitochondrial inner membrane and the subsequent rapid reduction to the paraquat radical cation explain the toxicity of paraquat to mitochondria.

摘要

百草枯(1,1'-二甲基-4,4'-联吡啶二氯化物)作为一种氧化还原循环剂被广泛用于刺激生物体、细胞和线粒体中超氧化物的产生。然而,这种超氧化物的产生会导致广泛的线粒体氧化损伤,并且百草枯还原和超氧化物形成的线粒体部位存在相当大的不确定性。在此我们表明,在酵母和哺乳动物线粒体中,百草枯诱导的超氧化物产生发生在线粒体基质中,这是根据对锰超氧化物歧化酶敏感的线粒体DNA损伤以及分离线粒体中的超氧化物检测推断出来的,而这些检测不受外源超氧化物歧化酶的影响。线粒体基质中这种由百草枯诱导的超氧化物产生需要膜电位,这对于百草枯摄取到线粒体中至关重要。这种摄取的是百草枯二价阳离子,而非自由基单价阳离子,并且是载体介导的。对破碎线粒体进行的实验表明,一旦进入基质,百草枯主要由复合体I(哺乳动物)或由NADPH脱氢酶(酵母)还原形成百草枯自由基阳离子,然后该阳离子与氧反应形成超氧化物。线粒体内膜上这种依赖膜电位的摄取以及随后迅速还原为百草枯自由基阳离子共同解释了百草枯对线粒体的毒性。

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