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首页> 外文期刊>Human Molecular Genetics >Mutant Huntingtin's interaction with mitochondrial protein Drp1 impairs mitochondrial biogenesis and causes defective axonal transport and synaptic degeneration in Huntington's disease
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Mutant Huntingtin's interaction with mitochondrial protein Drp1 impairs mitochondrial biogenesis and causes defective axonal transport and synaptic degeneration in Huntington's disease

机译:突变的亨廷顿蛋白与线粒体蛋白Drp1的相互作用削弱了线粒体的生物发生,并导致亨廷顿氏病中的轴突转运缺陷和突触变性

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摘要

The purpose of this study was to investigate the link between mutant huntingtin (Htt) and neuronal damage in relation to mitochondria in Huntington's disease (HD). In an earlier study, we determined the relationship between mutant Htt and mitochondrial dynamics/synaptic viability in HD patients. We found mitochondrial loss, abnormal mitochondrial dynamics and mutant Htt association with mitochondria in HD patients. In the current study, we sought to expand on our previous findings and further elucidate the relationship between mutant Htt and mitochondrial and synaptic deficiencies. We hypothesized that mutant Htt, in association with mitochondria, alters mitochondrial dynamics, leading to mitochondrial fragmentation and defective axonal transport of mitochondria in HD neurons. In this study, using postmortem HD brains and primary neurons from transgenic BACHD mice, we identified mutant Htt interaction with the mitochondrial protein Drp1 and factors that cause abnormal mitochondrial dynamics, including GTPase Drp1 enzymatic activity. Further, using primary neurons from BACHD mice, for the first time, we studied axonal transport of mitochondria and synaptic degeneration. We also investigated the effect of mutant Htt aggregates and oligomers in synaptic and mitochondrial deficiencies in postmortem HD brains and primary neurons from BACHD mice. We found that mutant Htt interacts with Drp1, elevates GTPase Drp1 enzymatic activity, increases abnormal mitochondrial dynamics and results in defective anterograde mitochondrial movement and synaptic deficiencies. These observations support our hypothesis and provide data that can be utilized to develop therapeutic targets that are capable of inhibiting mutant Htt interaction with Drp1, decreasing mitochondrial fragmentation, enhancing axonal transport of mitochondria and protecting synapses from toxic insults caused by mutant Htt.
机译:这项研究的目的是调查亨廷顿舞蹈病(HD)中突变亨廷顿蛋白(Htt)与线粒体相关的神经元损伤之间的联系。在较早的研究中,我们确定了HD患者中突变型Htt与线粒体动力学/突触活力之间的关系。我们发现HD患者的线粒体丢失,线粒体动力学异常以及突变型Htt与线粒体的相关性。在当前的研究中,我们试图扩大以前的发现,并进一步阐明突变型Htt与线粒体和突触缺陷之间的关系。我们假设突变体Htt与线粒体相关联,改变线粒体动力学,导致线粒体破碎和高清神经元中线粒体的轴突运输缺陷。在这项研究中,使用来自转基因BACHD小鼠的死后高清大脑和原代神经元,我们鉴定了突变型Htt与线粒体蛋白Drp1的相互作用以及引起异常线粒体动力学的因素,包括GTPase Drp1酶活性。此外,首次使用来自BACHD小鼠的原代神经元,我们研究了线粒体的轴突运输和突触变性。我们还调查了死后高清大脑和来自BACHD小鼠的原代神经元中突变Htt聚集体和寡聚体在突触和线粒体缺陷中的作用。我们发现突变体Htt与Drp1相互作用,提高了GTPase Drp1的酶活性,增加了异常的线粒体动力学,并导致顺行的线粒体运动和突触缺陷。这些观察结果支持我们的假设,并提供了可用于开发能够抑制突变型Htt与Drp1相互作用,减少线粒体片段化,增强线粒体轴突运输并保护突触免受突变型Htt所致毒性伤害的治疗靶标的数据。

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