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Mitochondrial defects and oxidative stress in Alzheimer disease and Parkinson disease

机译:阿尔茨海默病和帕金森病的线粒体缺陷和氧化应激

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摘要

Alzheimer disease (AD) and Parkinson disease (PD) are the two most common age-related neurodegenerative diseases characterized by prominent neurodegeneration in selective neural systems. Although a small fraction of AD and PD cases exhibit evidence of heritability, among which many genes have been identified, the majority are sporadic without known causes. Molecular mechanisms underlying neurodegeneration and pathogenesis of these diseases remain elusive. Convincing evidence demonstrates oxidative stress as a prominent feature in AD and PD and links oxidative stress to the development of neuronal death and neural dysfunction, which suggests a key pathogenic role for oxidative stress in both AD and PD. Notably, mitochondrial dysfunction is also a prominent feature in these diseases, which is likely to be of critical importance in the genesis and amplification of reactive oxygen species and the pathophysiology of these diseases. In this review, we focus on changes in mitochondrial DNA and mitochondrial dynamics, two aspects critical to the maintenance of mitochondrial homeostasis and function, in relationship with oxidative stress in the pathogenesis of AD and PD.
机译:阿尔茨海默氏病(AD)和帕金森氏病(PD)是两种最常见的年龄相关性神经退行性疾病,其特征在于选择性神经系统中的明显神经退行性变。尽管一小部分的AD和PD病例显示出遗传力的证据,其中已经鉴定出许多基因,但大多数是零星的,没有已知原因。这些疾病的神经退行性和发病机制的分子机制仍然难以捉摸。有说服力的证据表明,氧化应激是AD和PD中的突出特征,并将氧化应激与神经元死亡和神经功能障碍的发展联系起来,这暗示了AD和PD中氧化应激的关键致病作用。值得注意的是,线粒体功能障碍也是这些疾病的突出特征,这可能在活性氧的产生和扩增以及这些疾病的病理生理学中至关重要。在这篇综述中,我们集中于线粒体DNA和线粒体动力学的变化,这对维持线粒体稳态和功能至关重要,与AD和PD发病机理中的氧化应激有关。

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