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Myelination and axonal electrical activity modulate the distribution and motility of mitochondria at CNS nodes of Ranvier

机译:髓鞘化和轴突电活动调节Ranvier中枢神经系统节点线粒体的分布和运动

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摘要

Energy production presents a formidable challenge to axons as their mitochondria are synthesized and degraded in neuronal cell bodies. To meet the energy demands of nerve conduction, small mitochondria are transported to and enriched at mitochondrial stationary sites located throughout the axon. In this study, we investigated whether size and motility of mitochondria in small myelinated CNS axons are differentially regulated at nodes, and whether mitochondrial distribution and motility are modulated by axonal electrical activity. The size/volume of mitochondrial stationary sites was significantly larger in juxtaparanodal/internodal axoplasm than in nodal/paranodal axoplasm. With three-dimensional electron microscopy, we observed that axonal mitochondrial stationary sites were composed of multiple mitochondria of varying length, except at nodes where mitochondria were uniformly short and frequently absent altogether. Mitochondrial transport speed was significantly reduced in nodal axoplasm compared with internodal axoplasm. Increased axonal electrical activity decreased mitochondrial transport and increased the size of mitochondrial stationary sites in nodal/paranodal axoplasm. Decreased axonal electrical activity had the opposite effect. In cerebellar axons of the myelin-deficient rat, which contain voltage-gated Na(+) channel clusters but lack paranodal specializations, axonal mitochondrial motility and stationary site size were similar at Na(+) channel clusters and other axonal regions. These results demonstrate juxtaparanodal/internodal enrichment of stationary mitochondria and neuronal activity-dependent dynamic modulation of mitochondrial distribution and transport in nodal axoplasm. In addition, the modulation of mitochondrial distribution and motility requires oligodendrocyte-axon interactions at paranodal specializations.
机译:能量产生对轴突提出了巨大的挑战,因为它们的线粒体在神经元细胞体中合成并降解。为了满足神经传导的能量需求,将小的线粒体运输到位于整个轴突的线粒体固定部位并在其处富集。在这项研究中,我们调查了小的有髓的CNS轴突中线粒体的大小和运动是否受结节的差异调节,以及线粒体的分布和运动是否受到轴突电活动的调节。线旁固定位点的大小/体积在结节旁/节间的腋下明显大于结节/副结的腋下。使用三维电子显微镜,我们观察到轴突线粒体固定位点由多个不同长度的线粒体组成,但在线粒体均匀短且经常不存在的节点处除外。与节点间的轴质相比,节点的轴质的线粒体运输速度显着降低。轴突电活动的增加减少了结/副结轴质中线粒体的运输并增加了线粒体固定位点的大小。轴突电活动降低有相反的作用。在髓鞘缺乏大鼠的小脑轴突,其中包含电压门控的Na(+)通道簇,但缺乏节旁特化,在Na(+)通道簇和其他轴突区域,轴突线粒体运动性和固定位点大小相似。这些结果证明了固定线粒体的近节旁/节间富集以及在节点腋窝中线粒体分布和运输的神经元活动依赖性动态调节。另外,线粒体分布和运动性的调节需要在偏执旁特化中少突胶质细胞-轴突相互作用。

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