首页> 美国卫生研究院文献>Journal of Cerebral Blood Flow Metabolism >Reverse electron transfer results in a loss of flavin from mitochondrial complex I: Potential mechanism for brain ischemia reperfusion injury
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Reverse electron transfer results in a loss of flavin from mitochondrial complex I: Potential mechanism for brain ischemia reperfusion injury

机译:反向电子转移导致线粒体复合物的黄素丢失I:脑缺血再灌注损伤的潜在机制

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摘要

Ischemic stroke is one of the most prevalent sources of disability in the world. The major brain tissue damage takes place upon the reperfusion of ischemic tissue. Energy failure due to alterations in mitochondrial metabolism and elevated production of reactive oxygen species (ROS) is one of the main causes of brain ischemia-reperfusion (IR) damage. Ischemia resulted in the accumulation of succinate in tissues, which favors the process of reverse electron transfer (RET) when a fraction of electrons derived from succinate is directed to mitochondrial complex I for the reduction of matrix NAD+.We demonstrate that in intact brain mitochondria oxidizing succinate, complex I became damaged and was not able to contribute to the physiological respiration. This process is associated with a decline in ROS release and a dissociation of the enzyme's flavin. This previously undescribed phenomenon represents the major molecular mechanism of injury in stroke and induction of oxidative stress after reperfusion. We also demonstrate that the origin of ROS during RET is flavin of mitochondrial complex I. Our study highlights a novel target for neuroprotection against IR brain injury and provides a sensitive biochemical marker for this process.
机译:缺血性中风是世界上最普遍的残疾来源之一。主要脑组织损伤发生在缺血组织的再灌注时。线粒体代谢改变和活性氧(ROS)产生增加引起的能量衰竭是脑缺血再灌注(IR)损伤的主要原因之一。缺血导致琥珀酸在组织中的积累,当一部分源自琥珀酸的电子被引导至线粒体复合体I以减少基质NAD + 时,有利于逆向电子转移(RET)的过程。我们证明,在完整的脑线粒体氧化琥珀酸酯中,复合物I受损且无法促进生理呼吸。该过程与ROS释放的减少和酶黄素的解离有关。这种先前未描述的现象代表了中风损伤和再灌注后诱发氧化应激的主要分子机制。我们还证明了RET期间ROS的起源是线粒体复合体I的黄素。我们的研究突出了针对IR脑损伤的神经保护作用的新型靶标,并为该过程提供了敏感的生化标记。

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