Axonal regeneration in zebrafish spinal cord.

Regeneration (Oxford, England) Pub Date : 2018-04-22 eCollection Date: 2018-03-01 DOI:10.1002/reg2.99
Sukla Ghosh, Subhra Prakash Hui
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引用次数: 31

Abstract

In the present review we discuss two interrelated events-axonal damage and repair-known to occur after spinal cord injury (SCI) in the zebrafish. Adult zebrafish are capable of regenerating axonal tracts and can restore full functionality after SCI. Unlike fish, axon regeneration in the adult mammalian central nervous system is extremely limited. As a consequence of an injury there is very little repair of disengaged axons and therefore functional deficit persists after SCI in adult mammals. In contrast, peripheral nervous system axons readily regenerate following injury and hence allow functional recovery both in mammals and fish. A better mechanistic understanding of these three scenarios could provide a more comprehensive insight into the success or failure of axonal regeneration after SCI. This review summarizes the present understanding of the cellular and molecular basis of axonal regeneration, in both the peripheral nervous system and the central nervous system, and large scale gene expression analysis is used to focus on different events during regeneration. The discovery and identification of genes involved in zebrafish spinal cord regeneration and subsequent functional experimentation will provide more insight into the endogenous mechanism of myelination and remyelination. Furthermore, precise knowledge of the mechanism underlying the extraordinary axonal regeneration process in zebrafish will also allow us to unravel the potential therapeutic strategies to be implemented for enhancing regrowth and remyelination of axons in mammals.

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斑马鱼脊髓轴突再生。
本文综述了斑马鱼脊髓损伤(SCI)后轴突损伤和修复两个相互关联的事件。成年斑马鱼能够再生轴突束,并能在脊髓损伤后完全恢复功能。与鱼类不同,成年哺乳动物中枢神经系统的轴突再生极为有限。作为损伤的结果,脱离轴突的修复很少,因此在成年哺乳动物脊髓损伤后功能缺陷持续存在。相比之下,周围神经系统轴突在损伤后容易再生,因此在哺乳动物和鱼类中都允许功能恢复。更好地了解这三种情况的机制可以为脊髓损伤后轴突再生的成功或失败提供更全面的见解。本文综述了目前对外周神经系统和中枢神经系统轴突再生的细胞和分子基础的认识,并利用大规模的基因表达分析来关注再生过程中的不同事件。斑马鱼脊髓再生相关基因的发现和鉴定以及随后的功能实验将为进一步了解髓鞘形成和再髓鞘形成的内源性机制提供更多的信息。此外,对斑马鱼非凡的轴突再生过程背后机制的精确了解,也将使我们能够揭示用于促进哺乳动物轴突再生和再髓鞘形成的潜在治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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