Comparison of Spinal Cord Regeneration Capacity in Zebrafish and Medaka

IF 3.7 3区 医学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Shun Aoki, Masato Hori, Hanjie Zhang, Hiroshi Tsujioka, Toshihide Yamashita
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引用次数: 0

Abstract

In mammals, spinal cord injury often results in permanent impairment of motor function owing to ineffective tissue regeneration. Unlike mammals, zebrafish have the remarkable ability to regenerate many tissues, including the spinal cord. Cross-species comparison is an attractive approach for revealing regeneration-specific mechanisms, but the large evolutionary distance between species sometimes hinders direct comparison. Recent studies have revealed that another model fish species, medaka, has a low regenerative ability in some tissues, making comparisons with them advantageous to revealing regeneration-specific mechanisms. However, their spinal cord regenerative ability has not been compared to other models. In this study, we functionally and histologically compared the spinal cord regeneration abilities of zebrafish and medaka. Swimming speed recovery was significantly lower in medaka than in zebrafish. Bridging of glia and neural tissue were thinner in medaka than in zebrafish. Axonal extension across the injured site was observed in zebrafish but not in medaka. Comparison of their gene expression profiles revealed genes involved in “Regeneration” were upregulated in zebrafish, whereas genes related to “Synaptic signaling” were downregulated in medaka. These results suggest that the ability to regenerate the spinal cord is lower in medaka than in zebrafish, making medaka an attractive model for revealing the mechanisms of spinal cord regeneration.

斑马鱼和青鳉脊髓再生能力的比较
在哺乳动物中,由于组织再生无效,脊髓损伤常常导致运动功能永久性损伤。与哺乳动物不同,斑马鱼具有再生许多组织的非凡能力,包括脊髓。跨物种比较是揭示再生特异性机制的一种有吸引力的方法,但物种之间较大的进化距离有时阻碍了直接比较。最近的研究表明,另一种模式鱼,medaka,在某些组织中具有较低的再生能力,与它们进行比较有利于揭示再生特异性机制。然而,它们的脊髓再生能力尚未与其他模型进行比较。在这项研究中,我们从功能和组织学上比较了斑马鱼和水母的脊髓再生能力。medaka的游泳速度恢复明显低于斑马鱼。水母神经胶质细胞与神经组织的桥接比斑马鱼更薄。在斑马鱼中观察到横跨受伤部位的轴突延伸,但在medaka中没有观察到。比较它们的基因表达谱发现,斑马鱼中与“再生”相关的基因上调,而与“突触信号传导”相关的基因在medaka中下调。这些结果表明,medaka的脊髓再生能力低于斑马鱼,使medaka成为揭示脊髓再生机制的有吸引力的模型。
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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来源期刊
Neurochemical Research
Neurochemical Research 医学-神经科学
CiteScore
7.70
自引率
2.30%
发文量
320
审稿时长
6 months
期刊介绍: Neurochemical Research is devoted to the rapid publication of studies that use neurochemical methodology in research on nervous system structure and function. The journal publishes original reports of experimental and clinical research results, perceptive reviews of significant problem areas in the neurosciences, brief comments of a methodological or interpretive nature, and research summaries conducted by leading scientists whose works are not readily available in English.
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