从损伤到恢复:斑马鱼视神经横断后自发结构和功能再生过程中视觉通路的时空动态。

IF 4.7 1区 生物学 Q1 ZOOLOGY
Bao-Guo Shen, Yuan Wen, Sheng-Jian Lu, Hong-Yuan Wei, Shu-Rui Huang, Guang-Ming Zhou, Wen-Tao Yan, Wen-Can Wu, Yi-Kui Zhang
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引用次数: 0

摘要

在成年哺乳动物中,视神经损伤由于其极其有限的再生能力而导致不可逆的视力丧失。相比之下,成年斑马鱼拥有强大的自发视觉系统再生能力,尽管对视网膜、视神经和大脑之间的恢复时空协调仍知之甚少。在本研究中,通过苏木精-伊红染色、免疫组织化学、透射电镜、单细胞RNA测序和光动力学反应(OKR)行为评估,系统地表征了成年斑马鱼视神经横断后的再生动力学。损伤后1周(1 wpi),视网膜神经节细胞明显减少,但在2 wpi时恢复明显。同时,受损视神经在2 wpi时直径和细胞数量明显增加,包括增殖细胞核抗原的广泛表达,与增殖活性增强一致。2 wpi时的单细胞转录组分析显示了5个主要细胞群:成纤维细胞、壁细胞、免疫细胞、成熟少突胶质细胞和髓鞘形成少突胶质细胞。在4-5 wpi时,视神经内的髓鞘再生和视神经顶盖突触结构的重建与OKR行为的功能恢复密切相关。这些发现为斑马鱼视觉通路再生提供了一个全面的时空框架,为阐明神经修复的保守机制建立了一个有价值的模型,并具有人类视觉恢复的翻译潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
From injury to recovery: Spatiotemporal dynamics of the visual pathway during spontaneous structural and functional regeneration after optic nerve transection in zebrafish.

In adult mammals, optic nerve injury leads to irreversible vision loss due to its extremely limited regenerative capacity. In contrast, adult zebrafish possess a robust capacity for spontaneous visual system regeneration, although the spatiotemporal coordination of recovery across the retina, optic nerve, and brain remains poorly understood. In the present study, the regenerative dynamics following optic nerve transection were systematically characterized in adult zebrafish over a 5 week period using hematoxylin-eosin staining, immunohistochemistry, transmission electron microscopy, single-cell RNA sequencing, and optokinetic response (OKR) behavioral assessments. At 1 week post-injury (1 wpi), retinal ganglion cell depletion was evident but showed significant recovery by 2 wpi. Concurrently, the injured optic nerve displayed a marked increase in diameter and cell number at 2 wpi, including widespread expression of proliferating cell nuclear antigen, consistent with heightened proliferative activity. Single-cell transcriptomic profiling at 2 wpi revealed five principal cell populations: fibroblasts, mural cells, immune cells, mature oligodendrocytes, and myelin-forming oligodendrocytes. By 4-5 wpi, remyelination within the optic nerve and re-establishment of synaptic architecture in the optic tectum were strongly correlated with functional restoration of OKR behavior. These findings provide a comprehensive spatiotemporal framework of visual pathway regeneration in zebrafish, establishing a valuable model for elucidating conserved mechanisms of neural repair with translational potential for human vision restoration.

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来源期刊
Zoological Research
Zoological Research Medicine-General Medicine
CiteScore
7.60
自引率
10.20%
发文量
1937
审稿时长
8 weeks
期刊介绍: Established in 1980, Zoological Research (ZR) is a bimonthly publication produced by Kunming Institute of Zoology, the Chinese Academy of Sciences, and the China Zoological Society. It publishes peer-reviewed original research article/review/report/note/letter to the editor/editorial in English on Primates and Animal Models, Conservation and Utilization of Animal Resources, and Animal Diversity and Evolution.
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