Small molecules reprogram reactive astrocytes into neuronal cells in the injured adult spinal cord

IF 11.4 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Journal of Advanced Research Pub Date : 2024-05-01 DOI:10.1016/j.jare.2023.06.013
Zijian Tan , Shangyao Qin , Hong Liu , Xiao Huang, Yingyan Pu, Cheng He, Yimin Yuan, Zhida Su
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Abstract

Introduction

Ectopic expression of transcription factor-mediated in vivo neuronal reprogramming provides promising strategy to compensate for neuronal loss, while its further clinical application may be hindered by delivery and safety concerns. As a novel and attractive alternative, small molecules may offer a non-viral and non-integrative chemical approach for reprogramming cell fates. Recent definitive evidences have shown that small molecules can convert non-neuronal cells into neurons in vitro. However, whether small molecules alone can induce neuronal reprogramming in vivo remains largely unknown.

Objectives

To identify chemical compounds that can induce in vivo neuronal reprogramming in the adult spinal cord.

Methods

Immunocytochemistry, immunohistochemistry, qRT-PCR and fate-mapping are performed to analyze the role of small molecules in reprogramming astrocytes into neuronal cells in vitro and in vivo.

Results

By screening, we identify a chemical cocktail with only two chemical compounds that can directly and rapidly reprogram cultured astrocytes into neuronal cells. Importantly, this chemical cocktail can also successfully trigger neuronal reprogramming in the injured adult spinal cord without introducing exogenous genetic factors. These chemically induced cells showed typical neuronal morphologies and neuron-specific marker expression and could become mature and survive for more than 12 months. Lineage tracing indicated that the chemical compound-converted neuronal cells mainly originated from post-injury spinal reactive astrocytes.

Conclusion

Our proof-of-principle study demonstrates that in vivo glia-to-neuron conversion can be manipulated in a chemical compound-based manner. Albeit our current chemical cocktail has a low reprogramming efficiency, it will bring in vivo cell fate reprogramming closer to clinical application in brain and spinal cord repair. Future studies should focus on further refining our chemical cocktail and reprogramming approach to boost the reprogramming efficiency.

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小分子将受损成人脊髓中的反应性星形胶质细胞重新编程为神经细胞
导言异位表达转录因子介导的体内神经元重编程为补偿神经元缺失提供了有前途的策略,但其进一步的临床应用可能会受到递送和安全性问题的阻碍。作为一种新颖而有吸引力的替代方法,小分子可提供一种非病毒和非整合的化学方法来重编细胞命运。最近有确凿证据表明,小分子可以在体外将非神经元细胞转化为神经元。目的确定能诱导成人脊髓体内神经元重编程的化学物质。方法通过免疫细胞化学、免疫组织化学、qRT-PCR 和命运图谱分析小分子化合物在体外和体内将星形胶质细胞重编程为神经元细胞过程中的作用。重要的是,这种鸡尾酒化学物质还能在不引入外源遗传因子的情况下,成功触发损伤的成人脊髓中的神经元重编程。这些化学诱导的细胞表现出典型的神经元形态和神经元特异性标志物表达,可以成熟并存活 12 个月以上。系谱追踪表明,化合物转化的神经元细胞主要来源于损伤后脊髓反应性星形胶质细胞。 结论:我们的原理验证研究证明,体内胶质细胞向神经元的转化可以通过基于化合物的方式进行操作。尽管我们目前的化学鸡尾酒重编程效率较低,但它将使体内细胞命运重编程更接近于脑和脊髓修复的临床应用。未来的研究应侧重于进一步改进我们的鸡尾酒化学药剂和重编程方法,以提高重编程效率。
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来源期刊
Journal of Advanced Research
Journal of Advanced Research Multidisciplinary-Multidisciplinary
CiteScore
21.60
自引率
0.90%
发文量
280
审稿时长
12 weeks
期刊介绍: Journal of Advanced Research (J. Adv. Res.) is an applied/natural sciences, peer-reviewed journal that focuses on interdisciplinary research. The journal aims to contribute to applied research and knowledge worldwide through the publication of original and high-quality research articles in the fields of Medicine, Pharmaceutical Sciences, Dentistry, Physical Therapy, Veterinary Medicine, and Basic and Biological Sciences. The following abstracting and indexing services cover the Journal of Advanced Research: PubMed/Medline, Essential Science Indicators, Web of Science, Scopus, PubMed Central, PubMed, Science Citation Index Expanded, Directory of Open Access Journals (DOAJ), and INSPEC.
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