全面了解线粒体自噬:机制、疾病关联和治疗意义

IF 2.8 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Min Tang, Ikram Outissint, Yijing Chen, Xun Gong
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引用次数: 0

摘要

线粒体自噬是一种选择性自噬过程,对维持线粒体质量和细胞稳态至关重要。它起着双重作用,通过去除受损的线粒体来促进细胞存活,或者在某些条件下促进程序性细胞死亡。线粒体自噬的失调与多种疾病有关,包括神经退行性疾病、代谢综合征、心血管疾病和癌症。本文综述了线粒体自噬的关键调控机制,重点关注PINK1-Parkin、BNIP3/NIX和FUNDC1等途径,以及新兴的调节剂。值得注意的是,有丝自噬经常与各种细胞死亡途径相关,如凋亡、坏死性死亡、铁性死亡和焦亡。首先,有丝分裂作为一种保护机制起作用,而不是直接触发细胞死亡。当它的能力被淹没而不是积极促进细胞死亡时,它可能与细胞死亡有关。例如,受损的线粒体自噬加剧了帕金森病和阿尔茨海默病的神经退行性变,而其激活可以防止心血管疾病的缺血性损伤。在癌症中,有丝分裂是矛盾的,因为它要么抑制肿瘤生长,要么促进应激下的生存。针对线粒体自噬的治疗干预措施,包括小分子调节剂,在临床前研究中显示出希望;然而,它们需要进一步的临床验证。成像技术、单细胞组学和高通量筛选的进步有望加深我们对线粒体自噬动力学和治疗潜力的理解。这篇综述强调了线粒体自噬是治疗线粒体功能障碍相关疾病的关键靶点,为创新治疗策略提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comprehensive Insights Into Mitophagy: Mechanisms, Disease Associations, and Therapeutic Implications

Mitophagy, a selective autophagic process, is critical for maintaining mitochondrial quality and cellular homeostasis. It plays a dual role, facilitating cell survival by removing damaged mitochondria or contributing to programmed cell death in certain conditions. Dysregulation of mitophagy is implicated in various diseases, including neurodegenerative disorders, metabolic syndromes, cardiovascular diseases, and cancers. This review examines the key regulatory mechanisms of mitophagy, focusing on pathways such as the PINK1-Parkin, BNIP3/NIX, and FUNDC1 pathways, alongside emerging modulators. Notably, mitophagy is frequently associated with various cell death pathways, such as apoptosis, necroptosis, ferroptosis, and pyroptosis. Primarily, mitophagy functions as a protective mechanism rather than a direct trigger of cell death. It may be connected to cell death when its capacity is overwhelmed rather than actively promoting the process. For instance, impaired mitophagy exacerbates neurodegeneration in Parkinson's and Alzheimer's diseases, while its activation protects against ischemic injury in cardiovascular diseases. In cancer, mitophagy is paradoxical, as it either inhibits tumor growth or promotes survival under stress. Therapeutic interventions targeting mitophagy, including small-molecule modulators, show promise in preclinical studies; however, they require further clinical validation. Advancements in imaging techniques, single-cell omics, and high-throughput screenings are anticipated to deepen our understanding of mitophagy dynamics and therapeutic potential. This review highlights mitophagy as a pivotal target for treating diseases associated with mitochondrial dysfunction, providing insights into innovative therapeutic strategies.

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来源期刊
Journal of cellular biochemistry
Journal of cellular biochemistry 生物-生化与分子生物学
CiteScore
9.90
自引率
0.00%
发文量
164
审稿时长
1 months
期刊介绍: The Journal of Cellular Biochemistry publishes descriptions of original research in which complex cellular, pathogenic, clinical, or animal model systems are studied by biochemical, molecular, genetic, epigenetic or quantitative ultrastructural approaches. Submission of papers reporting genomic, proteomic, bioinformatics and systems biology approaches to identify and characterize parameters of biological control in a cellular context are encouraged. The areas covered include, but are not restricted to, conditions, agents, regulatory networks, or differentiation states that influence structure, cell cycle & growth control, structure-function relationships.
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