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首页> 外文期刊>Human Molecular Genetics >Partial complex I deficiency due to the CNS conditional ablation of Ndufa5 results in a mild chronic encephalopathy but no increase in oxidative damage
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Partial complex I deficiency due to the CNS conditional ablation of Ndufa5 results in a mild chronic encephalopathy but no increase in oxidative damage

机译:由于中枢神经系统条件性消融Ndufa5而导致部分I复合物缺乏症,导致轻度慢性脑病,但氧化损伤没有增加

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摘要

Deficiencies in the complex I (CI; NADH-ubiquinone oxidoreductase) of the respiratory chain are frequent causes of mitochondrial diseases and have been associated with other neurodegenerative disorders, such as Parkinson's disease. The NADH-ubiquinone oxidoreductase 1 alpha subcomplex subunit 5 (NDUFA5) is a nuclear-encoded structural subunit of CI, located in the peripheral arm. We inactivated Ndufa5 in mice by the gene-trap methodology and found that this protein is required for embryonic survival. Therefore, we have created a conditional Ndufa5 knockout (KO) allele by introducing a rescuing Ndufa5 cDNA transgene flanked by loxP sites, which was selectively ablated in neurons by the CaMKIIα-Cre. At the age of 11 months, mice with a central nervous system knockout of Ndufa5 (Ndufa5 CNS-KO) showed lethargy and loss of motor skills. In these mice cortices, the levels of NDUFA5 protein were reduced to 25% of controls. Fully assembled CI levels were also greatly reduced in cortex and CI activity in homogenates was reduced to 60% of controls. Despite the biochemical phenotype, no oxidative damage, neuronal death or gliosis were detected in the Ndufa5 CNS-KO brain at this age. These results showed that a partial defect in CI in neurons can lead to late-onset motor phenotypes without neuronal loss or oxidative damage.
机译:呼吸链复合物I(CI; NADH-泛醌氧化还原酶)缺乏是线粒体疾病的常见原因,并且与其他神经退行性疾病(如帕金森氏病)有关。 NADH泛醌氧化还原酶1α亚复合物亚基5(NDUFA5)是位于外围臂中的CI的核编码结构亚基。我们通过基因陷阱方法灭活了小鼠中的Ndufa5,发现该蛋白是胚胎存活所必需的。因此,我们通过引入侧翼为loxP位点的抢救性Ndufa5 cDNA转基因,创建了条件性Ndufa5基因敲除(KO)等位基因,该基因被CaMKIIα-Cre选择性地消融在神经元中。在11个月大时,具有Ndufa5(Ndufa5 CNS-KO)中枢神经系统基因敲除的小鼠表现出嗜睡和运动技能丧失。在这些小鼠皮质中,NDUFA5蛋白的水平降至对照组的25%。完全组装的CI水平在皮质中也大大降低,匀浆中的CI活性降低到对照组的60%。尽管具有生化表型,但在该年龄的Ndufa5 CNS-KO脑中未检测到氧化损伤,神经元死亡或神经胶质增生。这些结果表明,神经元中CI的部分缺陷可以导致迟发性运动型,而没有神经元丢失或氧化损伤。

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