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阿尔茨海默病小鼠模型中线粒体生物发生受损、线粒体轴突运输缺陷、线粒体动态异常和突触退化。

Impaired mitochondrial biogenesis, defective axonal transport of mitochondria, abnormal mitochondrial dynamics and synaptic degeneration in a mouse model of Alzheimer's disease.

机构信息

Neurogenetics Laboratory, Division of Neuroscience, Oregon National Primate Research Center, Oregon Health & Science University, Beaverton, OR 97006, USA.

出版信息

Hum Mol Genet. 2011 Dec 1;20(23):4515-29. doi: 10.1093/hmg/ddr381. Epub 2011 Aug 25.

Abstract

Increasing evidence suggests that the accumulation of amyloid beta (Aβ) in synapses and synaptic mitochondria causes synaptic mitochondrial failure and synaptic degeneration in Alzheimer's disease (AD). The purpose of this study was to better understand the effects of Aβ in mitochondrial activity and synaptic alterations in neurons from a mouse model of AD. Using primary neurons from a well-characterized Aβ precursor protein transgenic (AβPP) mouse model (Tg2576 mouse line), for the first time, we studied mitochondrial activity, including axonal transport of mitochondria, mitochondrial dynamics, morphology and function. Further, we also studied the nature of Aβ-induced synaptic alterations, and cell death in primary neurons from Tg2576 mice, and we sought to determine whether the mitochondria-targeted antioxidant SS31 could mitigate the effects of oligomeric Aβ. We found significantly decreased anterograde mitochondrial movement, increased mitochondrial fission and decreased fusion, abnormal mitochondrial and synaptic proteins and defective mitochondrial function in primary neurons from AβPP mice compared with wild-type (WT) neurons. Transmission electron microscopy revealed a large number of small mitochondria and structurally damaged mitochondria, with broken cristae in AβPP primary neurons. We also found an increased accumulation of oligomeric Aβ and increased apoptotic neuronal death in the primary neurons from the AβPP mice relative to the WT neurons. Our results revealed an accumulation of intraneuronal oligomeric Aβ, leading to mitochondrial and synaptic deficiencies, and ultimately causing neurodegeneration in AβPP cultures. However, we found that the mitochondria-targeted antioxidant SS31 restored mitochondrial transport and synaptic viability, and decreased the percentage of defective mitochondria, indicating that SS31 protects mitochondria and synapses from Aβ toxicity.

摘要

越来越多的证据表明,淀粉样蛋白 β(Aβ)在突触和突触线粒体中的积累导致阿尔茨海默病(AD)中突触线粒体功能衰竭和突触退化。本研究的目的是更好地了解 AD 小鼠模型中 Aβ 对神经元中线粒体活性和突触变化的影响。本研究首次使用经过充分鉴定的淀粉样前体蛋白转基因(AβPP)小鼠模型(Tg2576 鼠系)的原代神经元,研究了线粒体活性,包括线粒体的轴突运输、线粒体动力学、形态和功能。此外,我们还研究了 Aβ 诱导的突触变化和 Tg2576 小鼠原代神经元中的细胞死亡的性质,并试图确定线粒体靶向抗氧化剂 SS31 是否可以减轻寡聚 Aβ的作用。与野生型(WT)神经元相比,我们发现 AβPP 小鼠的原代神经元中顺行线粒体运动显著减少,线粒体裂变增加,融合减少,线粒体和突触蛋白异常,线粒体功能受损。透射电子显微镜显示 AβPP 原代神经元中有大量小线粒体和结构受损的线粒体,嵴断裂。我们还发现 AβPP 小鼠的原代神经元中寡聚 Aβ的积累增加,凋亡性神经元死亡增加。我们的结果揭示了 Aβ 在内神经元中的积累,导致线粒体和突触缺陷,并最终导致 AβPP 培养物中的神经退行性变。然而,我们发现线粒体靶向抗氧化剂 SS31 恢复了线粒体运输和突触活力,并减少了有缺陷的线粒体的百分比,表明 SS31 可保护线粒体和突触免受 Aβ 的毒性。

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