重编程miR-146b-snphb信号激活斑马鱼m细胞轴突线粒体运输并促进损伤后轴突再生

IF 5.9 2区 医学 Q1 NEUROSCIENCES Neuroscience bulletin Pub Date : 2024-12-08 DOI:10.1007/s12264-024-01329-5
Xin-Liang Wang, Zong-Yi Wang, Xing-Han Chen, Yuan Cai, Bing Hu
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引用次数: 0

摘要

急性线粒体损伤和轴突损伤后的能量危机使得线粒体转运成为轴突再生的重要靶点。Syntaphilin (Snph)以其强大的线粒体锚定作用而闻名,已成为线粒体运输和轴突再生的重要抑制剂。因此,研究影响snph基因表达水平的分子机制可以为调节线粒体运输和促进轴突再生提供可行的策略。在这里,我们揭示了microRNA-146b (miR-146b)对斑马鱼同源基因syntaphilin b (snphb)表达的抑制作用。通过CRISPR/Cas9和单细胞电穿孔,我们阐明了miR-146b-snphb轴在全局和单细胞水平上对毛特纳细胞(m细胞)轴突再生的正调控作用。通过逃逸反应测试,我们发现miR-146b-snphb信号正调控m细胞轴突损伤后的功能恢复。此外,体内连续动态成像显示,重编程miR-146b可显著促进损伤前和再生早期的轴突线粒体运输。我们的研究揭示了一个内在的轴突再生调节轴,它通过重编程线粒体运输和锚定来促进轴突再生。这种调节涉及非编码RNA和线粒体相关基因,可能为中枢神经系统损伤的修复提供了潜在的机会。
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Reprogramming miR-146b-snphb Signaling Activates Axonal Mitochondrial Transport in the Zebrafish M-cell and Facilitates Axon Regeneration After Injury.

Acute mitochondrial damage and the energy crisis following axonal injury highlight mitochondrial transport as an important target for axonal regeneration. Syntaphilin (Snph), known for its potent mitochondrial anchoring action, has emerged as a significant inhibitor of both mitochondrial transport and axonal regeneration. Therefore, investigating the molecular mechanisms that influence the expression levels of the snph gene can provide a viable strategy to regulate mitochondrial trafficking and enhance axonal regeneration. Here, we reveal the inhibitory effect of microRNA-146b (miR-146b) on the expression of the homologous zebrafish gene syntaphilin b (snphb). Through CRISPR/Cas9 and single-cell electroporation, we elucidated the positive regulatory effect of the miR-146b-snphb axis on Mauthner cell (M-cell) axon regeneration at the global and single-cell levels. Through escape response tests, we show that miR-146b-snphb signaling positively regulates functional recovery after M-cell axon injury. In addition, continuous dynamic imaging in vivo showed that reprogramming miR-146b significantly promotes axonal mitochondrial trafficking in the pre-injury and early stages of regeneration. Our study reveals an intrinsic axonal regeneration regulatory axis that promotes axonal regeneration by reprogramming mitochondrial transport and anchoring. This regulation involves noncoding RNA, and mitochondria-associated genes may provide a potential opportunity for the repair of central nervous system injury.

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来源期刊
Neuroscience bulletin
Neuroscience bulletin NEUROSCIENCES-
CiteScore
7.20
自引率
16.10%
发文量
163
审稿时长
6-12 weeks
期刊介绍: Neuroscience Bulletin (NB), the official journal of the Chinese Neuroscience Society, is published monthly by Shanghai Institutes for Biological Sciences (SIBS), Chinese Academy of Sciences (CAS) and Springer. NB aims to publish research advances in the field of neuroscience and promote exchange of scientific ideas within the community. The journal publishes original papers on various topics in neuroscience and focuses on potential disease implications on the nervous system. NB welcomes research contributions on molecular, cellular, or developmental neuroscience using multidisciplinary approaches and functional strategies. We feature full-length original articles, reviews, methods, letters to the editor, insights, and research highlights. As the official journal of the Chinese Neuroscience Society, which currently has more than 12,000 members in China, NB is devoted to facilitating communications between Chinese neuroscientists and their international colleagues. The journal is recognized as the most influential publication in neuroscience research in China.
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