电刺激对PNS损伤和修复的影响是通过加速细胞内运输介导的?

Lidan Wan , Xuequn Lin
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引用次数: 2

摘要

周围神经损伤和修复是一个复杂的动态过程,包括新生轴突的生长、再生轴突的靶向选择和髓鞘再生。整个过程受到各种再生相关因子和与之配合的其他分子的精细调节和影响。当前研究的重点是通过协调神经再生团队中各成员的活动来改善神经修复和功能恢复。神经细胞高度极化,大部分发育包括细胞体和过程在内的各种亚细胞区室,分别参与基因和蛋白质的连续合成和传递。在核周围合成的一些rna被选择性地转运到远端并在局部翻译成蛋白质。一些蛋白质选择到生长过程的末端,并在那里发挥生物功能。微环境的改变可以诱导细胞核内的生物合成过程,从而影响细胞间的网络。虽然基因和蛋白质的具体转运途径仅部分被揭示,但通过这种方式促进细胞核与远端神经之间的转运以辅助神经修复是一种可行的手段。电刺激作为一种简便易行的技术,广泛应用于神经系统疾病的临床治疗,并被证明具有显著的疗效。但电刺激对神经损伤和修复的潜在机制尚不清楚。我们推测电刺激疗法不仅通过刺激神经细胞合成与再生相关的基因和蛋白质,而且通过加速它们的转运和促进病变部位的局部基因翻译参与神经退化和再生。
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Electrical stimulation effects on PNS injury and repair are mediated by accelerating intracellular trafficking?

Peripheral nerve injury and repair is a complex and dynamic process including the outgrowth of newborn axons, the selecting targeting of regenerating axons and their remyelination. The whole process is finely modulated and affected by various regeneration-associated factors and other molecules cooperating with them. The emphasis of current studies aims to improve nerve repair and functional recovery by coordinating the activity of each member involved in the teamwork of nerve regeneration. The neural cells are highly polarized, most of which develop various subcellular compartments including the cell body and processes, respectively participating in the consecutive synthesis and delivery of genes and proteins. Some RNAs synthesized at perikaryon are selectively transported to the distal end and translated into proteins locally. Some proteins choose the way to the distal part of the growing process and play biological functions there. Changes of the microenvironment could induce intracellular biosynthesis at the nucleus and processes thereby to impact the network between cells. Although the route of the specific trafficking of genes and proteins is only partly revealed, it is a feasible means to facilitate negotiation between the nucleus and the distal reaches in this way to assist nerve repair. Electrical stimulation as a convenient technique was applied extensively to clinical therapies on nervous diseases and proved to produce marked effects. But the underlying mechanism of electrical stimulation on nerve injury and repair is poorly understood. We speculate that electrical stimulation therapies take part in nerve degeneration and regeneration not only by stimulating the neural cells to synthesize regeneration-associated genes and proteins, but also by accelerating their transport and promote the localized genes translation at the lesion site.

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