小鼠勒神经胶质细胞重编程研究的主要技术进展。

IF 4 Q2 CELL & TISSUE ENGINEERING
Zhiyuan Yin, Jiahui Kang, Haoan Xu, Shujia Huo, Haiwei Xu
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引用次数: 0

摘要

在斑马鱼中,突触神经胶质(MG)细胞保持增殖和去分化为视网膜祖细胞样细胞的能力,随后分化为视网膜神经元,可以替代因视网膜损伤而受损或丢失的神经元。相比之下,哺乳动物中MG的重编程潜力已经丧失,这些细胞通常通过胶质瘤对视网膜损伤作出反应。在哺乳动物中实现MG细胞的重编程已经付出了相当大的努力。值得注意的是,采用各种方法在小鼠MG细胞重编程方面取得了重大进展。同时,一些不可避免的挑战阻碍了MG细胞重编程的准确识别,而不是错觉,更不用说提高子细胞的重编程效率和成熟度了。最近,包括谱系追踪、多组学技术和功能分析在内的几种策略被用于研究小鼠的MG重编程过程。本文综述了这些新策略用于小鼠MG重编程分析的优点和局限性,为提高MG重编程的可靠性和效率提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recent progress of principal techniques used in the study of Müller glia reprogramming in mice.

In zebrafish, Müller glia (MG) cells retain the ability to proliferate and de-differentiate into retinal progenitor-like cells, subsequently differentiating into retinal neurons that can replace those damaged or lost due to retinal injury. In contrast, the reprogramming potential of MG in mammals has been lost, with these cells typically responding to retinal damage through gliosis. Considerable efforts have been dedicated to achieving the reprogramming of MG cells in mammals. Notably, significant advancements have been achieved in reprogramming MG cells in mice employing various methodologies. At the same time, some inevitable challenges have hindered identifying accurate MG cell reprogramming rather than the illusion, let alone improving the reprogramming efficiency and maturity of daughter cells. Recently, several strategies, including lineage tracking, multi-omics techniques, and functional analysis, have been developed to investigate the MG reprogramming process in mice. This review summarizes both the advantages and limitations of these novel strategies for analyzing MG reprogramming in mice, offering insights into enhancing the reliability and efficiency of MG reprogramming.

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来源期刊
Cell Regeneration
Cell Regeneration Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
5.80
自引率
0.00%
发文量
42
审稿时长
35 days
期刊介绍: Cell Regeneration aims to provide a worldwide platform for researches on stem cells and regenerative biology to develop basic science and to foster its clinical translation in medicine. Cell Regeneration welcomes reports on novel discoveries, theories, methods, technologies, and products in the field of stem cells and regenerative research, the journal is interested, but not limited to the following topics: ◎ Embryonic stem cells ◎ Induced pluripotent stem cells ◎ Tissue-specific stem cells ◎ Tissue or organ regeneration ◎ Methodology ◎ Biomaterials and regeneration ◎ Clinical translation or application in medicine
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