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神经元中线粒体运输的调控

Regulation of mitochondrial transport in neurons.

作者信息

Lin Mei-Yao, Sheng Zu-Hang

机构信息

Synaptic Function Section, The Porter Neuroscience Research Center, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Room 2B-215, 35 Convent Drive, Bethesda, MD 20892-3706, USA.

Synaptic Function Section, The Porter Neuroscience Research Center, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Room 2B-215, 35 Convent Drive, Bethesda, MD 20892-3706, USA.

出版信息

Exp Cell Res. 2015 May 15;334(1):35-44. doi: 10.1016/j.yexcr.2015.01.004. Epub 2015 Jan 19.

Abstract

Mitochondria are cellular power plants that supply ATP to power various biological activities essential for neuronal growth, survival, and function. Due to unique morphological features, neurons face exceptional challenges to maintain ATP and Ca(2+) homeostasis. Neurons require specialized mechanisms distributing mitochondria to distal areas where energy and Ca(2+) buffering are in high demand, such as synapses and axonal branches. These distal compartments also undergo development- and activity-dependent remodeling, thereby altering mitochondrial trafficking and distribution. Mitochondria move bi-directionally, pause briefly, and move again, frequently changing direction. In mature neurons, only one-third of axonal mitochondria are motile. Stationary mitochondria serve as local energy sources and buffer intracellular Ca(2+). The balance between motile and stationary mitochondria responds quickly to changes in axonal and synaptic physiology. Furthermore, neurons are postmitotic cells surviving for the lifetime of the organism; thus, mitochondria need to be removed when they become aged or dysfunction. Mitochondria also alter their motility under stress conditions or when their integrity is impaired. Therefore, regulation of mitochondrial transport is essential to meet altered metabolic requirements and to remove aged and damaged mitochondria or replenish healthy ones to distal terminals. Defects in mitochondrial transport and altered distribution are implicated in the pathogenesis of several major neurological disorders. Thus, research into the mechanisms regulating mitochondrial motility is an important emerging frontier in neurobiology. This short review provides an updated overview on motor-adaptor machineries that drive and regulate mitochondrial transport and docking receptors that anchor axonal mitochondria in response to the changes in synaptic activity, metabolic requirement, and altered mitochondrial integrity. The review focuses on microtubule (MT)-based mitochondrial trafficking and anchoring. Additional insight from different perspectives can be found in other in-depth reviews.

摘要

线粒体是细胞的能量工厂,为神经元生长、存活和功能所必需的各种生物活动提供ATP。由于独特的形态特征,神经元在维持ATP和Ca(2+)稳态上面临特殊挑战。神经元需要特殊机制将线粒体分布到能量和Ca(2+)缓冲需求高的远端区域,如突触和轴突分支。这些远端区室也会经历发育和活动依赖性重塑,从而改变线粒体运输和分布。线粒体双向移动,短暂停顿后再次移动,频繁改变方向。在成熟神经元中,只有三分之一的轴突线粒体是可移动的。静止的线粒体作为局部能量来源并缓冲细胞内Ca(2+)。可移动和静止线粒体之间的平衡对轴突和突触生理变化迅速做出反应。此外,神经元是有丝分裂后细胞,在生物体的整个生命周期中存活;因此,当线粒体老化或功能失调时需要将其清除。线粒体在应激条件下或其完整性受损时也会改变其运动性。因此,调节线粒体运输对于满足代谢需求的变化、清除老化和受损的线粒体或向远端末端补充健康线粒体至关重要。线粒体运输缺陷和分布改变与几种主要神经疾病的发病机制有关。因此,研究调节线粒体运动性的机制是神经生物学中一个重要的新兴前沿领域。这篇简短综述提供了关于驱动和调节线粒体运输的运动适配器机制以及响应突触活动、代谢需求和线粒体完整性改变而锚定轴突线粒体的对接受体的最新概述。该综述重点关注基于微管(MT)的线粒体运输和锚定。从不同角度的更多见解可在其他深入综述中找到。

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Regulation of mitochondrial transport in neurons.神经元中线粒体运输的调控
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