帕金森病线粒体拯救策略:线粒体转移的意义

IF 12.4
Junhan Liang, Zhaoqin Su, Gongmeiyue Su, Madiha Rasheed, Shiyi Tang, Hafsa Sunniya, Mohamed Maazouzi, Yaoyuan Cui, Junxiao Wang, Xuezhe Wang, Jing Yang, Mingchao Ding, Zhao Li, Yulin Deng
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摘要

帕金森病(PD)是一种常见的以多巴胺能神经元变性和病理性α-突触核蛋白积累为特征的神经退行性疾病。线粒体功能障碍是帕金森病发病机制的核心特征,导致生物能量代谢受损、氧化应激、神经炎症和细胞器通讯缺陷。本文综述了目前对线粒体质量控制机制的理解,包括分裂、融合、线粒体自噬和生物发生,以及它们在帕金森病中的破坏。特别强调的是放在细胞间线粒体转移作为补偿机制的作用。新出现的证据表明,线粒体可以通过隧道纳米管、细胞外囊泡和间隙连接在神经元和神经胶质细胞之间转移,通过恢复代谢功能和减轻细胞应激提供保护作用。我们研究了这些转移途径的分子介质,pd相关突变的影响,以及供体和受体细胞之间的双向动力学。此外,我们还探索了翻译策略,包括线粒体移植、生物工程线粒体和基于干细胞的递送系统。虽然临床前模型显示出有希望的治疗结果,但临床翻译面临着挑战,包括靶向特异性、线粒体活力和免疫相容性。通过将机制见解与治疗发展相结合,本综述强调了线粒体转移作为未来治疗PD的一种新颖且有前途的方法,可能解决传统神经保护策略的长期局限性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Strategies to rescue mitochondria in Parkinson's disease: The significance of mitochondrial transfer.

Parkinson's disease (PD) is a common neurodegenerative disorder characterized by dopaminergic neuronal degeneration and pathological α-synuclein accumulation. Mitochondrial dysfunction is a central feature in PD pathogenesis, contributing to impaired bioenergetics, oxidative stress, neuroinflammation, and defective organelle communication. This review synthesizes the current understanding of mitochondrial quality control mechanisms, including fission, fusion, mitophagy, and biogenesis, and their disruption in PD. Particular emphasis is placed on the role of intercellular mitochondrial transfer as a compensatory mechanism. Emerging evidence suggests that mitochondria can be transferred between neurons and glial cells through tunneling nanotubes, extracellular vesicles, and gap junctions, offering protective effects by restoring metabolic function and attenuating cellular stress. We examine the molecular mediators of these transfer pathways, the influence of PD-associated mutations, and the bidirectional dynamics between donor and recipient cells. Additionally, we explore translational strategies, including mitochondrial transplantation, bioengineered mitochondria, and stem cell-based delivery systems. While preclinical models demonstrate promising therapeutic outcomes, clinical translation faces challenges, including targeting specificity, mitochondrial viability, and immune compatibility. By integrating mechanistic insights with therapeutic developments, this review highlights mitochondrial transfer as a novel and promising approach in the future treatment of PD, potentially addressing longstanding limitations in conventional neuroprotective strategies.

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