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驱动蛋白家族成员5(Kif5)调节线粒体的移动、形态、功能及神经元存活。

Kif5 regulates mitochondrial movement, morphology, function and neuronal survival.

作者信息

Iworima Diepiriye G, Pasqualotto Bryce A, Rintoul Gordon L

机构信息

Department of Biological Sciences, Simon Fraser University, Burnaby, BC V5A 1S6, Canada.

Department of Biological Sciences, Simon Fraser University, Burnaby, BC V5A 1S6, Canada.

出版信息

Mol Cell Neurosci. 2016 Apr;72:22-33. doi: 10.1016/j.mcn.2015.12.014. Epub 2016 Jan 6.

Abstract

Due to the unique architecture of neurons, trafficking of mitochondria throughout processes to regions of high energetic demand is critical to sustain neuronal health. It has been suggested that compromised mitochondrial trafficking may play a role in neurodegenerative diseases. We evaluated the consequences of disrupted kif5c-mediated mitochondrial trafficking on mitochondrial form and function in primary rat cortical neurons. Morphological changes in mitochondria appeared to be due to remodelling, a phenomenon distinct from mitochondrial fission, which resulted in punctate-shaped mitochondria. We also demonstrated that neurons displaying punctate mitochondria exhibited relatively decreased ROS and increased cellular ATP levels using ROS-sensitive GFP and ATP FRET probes, respectively. Somewhat unexpectedly, neurons overexpressing the dominant negative form of kif5c exhibited enhanced survival following excitotoxicity, suggesting that the impairment of mitochondrial trafficking conferred some form of neuroprotection. However, when neurons were exposed to H2O2, disruption of kif5c exacerbated cell death indicating that the effect on cell viability was dependent on the mode of toxicity. Our results suggest a novel role of kif5c. In addition to mediating mitochondrial transport, kif5c plays a role in the mechanism of regulating mitochondrial morphology. Our results also suggest that kif5c mediated mitochondrial dynamics may play an important role in regulating mitochondrial function and in turn cellular health. Moreover, our studies demonstrate an interesting interplay between the regulation of mitochondrial motility and morphology.

摘要

由于神经元独特的结构,线粒体在整个神经元突起中运输到能量需求高的区域对于维持神经元健康至关重要。有人提出,线粒体运输受损可能在神经退行性疾病中起作用。我们评估了kif5c介导的线粒体运输中断对原代大鼠皮质神经元线粒体形态和功能的影响。线粒体的形态变化似乎是由于重塑,这是一种不同于线粒体分裂的现象,导致线粒体呈点状。我们还分别使用对活性氧敏感的绿色荧光蛋白(ROS-sensitive GFP)和ATP荧光共振能量转移(ATP FRET)探针证明,显示点状线粒体的神经元活性氧相对减少,细胞ATP水平升高。有点出乎意料的是,过表达kif5c显性负性形式的神经元在兴奋性毒性后表现出增强的存活能力,这表明线粒体运输受损赋予了某种形式的神经保护作用。然而,当神经元暴露于过氧化氢(H2O2)时,kif5c的破坏加剧了细胞死亡,这表明对细胞活力的影响取决于毒性模式。我们的结果表明kif5c具有新的作用。除了介导线粒体运输外,kif5c在调节线粒体形态的机制中也起作用。我们的结果还表明,kif5c介导的线粒体动力学可能在调节线粒体功能进而调节细胞健康方面发挥重要作用。此外,我们的研究证明了线粒体运动性和形态调节之间存在有趣的相互作用。

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