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神经疾病中的线粒体动力学:一篇叙述性综述。

Mitochondrial dynamics in neurological diseases: a narrative review.

作者信息

Shen Yue, Jiang Wen-Li, Li Xin, Cao Ai-Lin, Li Dan, Li Shang-Ze, Yang Jun, Qian Jiao

机构信息

Department of Pharmacy, The First Affiliated Hospital (Changhai Hospital), Naval Medical University, Shanghai, China.

Department of Biochemistry and Molecular Biology, College of Basic Medical Sciences, Naval Medical University, Shanghai, China.

出版信息

Ann Transl Med. 2023 Mar 31;11(6):264. doi: 10.21037/atm-22-2401. Epub 2023 Feb 7.

Abstract

BACKGROUND AND OBJECTIVE

The mitochondrion is a crucial organelle for aerobic respiration and energy metabolism. It undergoes dynamic changes, including changes in its shape, function, and distribution through fission, fusion, and movement. Under normal conditions, mitochondrial dynamics are in homeostasis. However, once the balance is upset, the nervous system, which has high metabolic demands, will most likely be affected. Recent studies have shown that the imbalance of mitochondrial dynamics is involved in the occurrence and development of various neurological diseases. However, whether the regulation of mitochondrial dynamics can be used to treat neurological diseases is still unclear. We aimed to comprehensively analyze mitochondrial dynamics regulation and its potential role in the treatment of neurological diseases.

METHODS

A comprehensive literature review was carried out to understand the mechanisms and applications of mitochondrial dynamics in neurological diseases based on the literature available in PubMed, Web of Science, and Google Scholar.

KEY CONTENT AND FINDINGS

This review discusses the molecular mechanisms related to mitochondrial dynamics and expounds upon the role of mitochondrial dynamics in the occurrence and development of neurodegenerative diseases, epilepsy, cerebrovascular disease, and brain tumors. Several clinically tested drugs with fewer side effects have been shown to improve the mitochondrial dynamics and nervous system function in neurological diseases.

CONCLUSIONS

Disorders of mitochondrial dynamics can cause various neurological diseases. Elucidation of mechanisms and applications involved in mitochondrial dynamics will inform the development of new therapeutic targets and strategies for neurological diseases. Dynamin-related protein 1 (Drp1), as a highly relevant molecular for mitochondrial dynamics, might be a potential target for treating neurological diseases in the future.

摘要

背景与目的

线粒体是有氧呼吸和能量代谢的关键细胞器。它会经历动态变化,包括通过分裂、融合和移动在形状、功能及分布上的改变。在正常情况下,线粒体动态处于稳态。然而,一旦平衡被打破,对代谢需求较高的神经系统很可能会受到影响。近期研究表明,线粒体动态失衡参与了多种神经疾病的发生和发展。然而,线粒体动态调节是否可用于治疗神经疾病仍不明确。我们旨在全面分析线粒体动态调节及其在神经疾病治疗中的潜在作用。

方法

基于PubMed、Web of Science和谷歌学术上的文献,进行了全面的文献综述,以了解线粒体动态在神经疾病中的机制和应用。

关键内容与发现

本综述讨论了与线粒体动态相关的分子机制,并阐述了线粒体动态在神经退行性疾病、癫痫、脑血管疾病和脑肿瘤的发生和发展中的作用。已显示几种副作用较少的经临床测试的药物可改善神经疾病中线粒体动态和神经系统功能。

结论

线粒体动态紊乱可导致多种神经疾病。阐明线粒体动态所涉及的机制和应用将为神经疾病新治疗靶点和策略的开发提供依据。动力相关蛋白1(Drp1)作为与线粒体动态高度相关的分子,可能是未来治疗神经疾病的潜在靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7f09/10113088/b9eb207017f5/atm-11-06-264-f1.jpg

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