调节线粒体动力学在CMT2A:药物发现和评估的多方面平台。

Yang Liu, Chen Yan, Borui Cao, Dejun Kong, Jiaqi Li, Wenlei Li, Yingjie Guo, Zhongyang Yuan, Yumiao Gao, Yubo Zhang, Ran Sui, Guo Chen, Xiaojiang Hao, Quan Chen
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引用次数: 0

摘要

线粒体动力学包括融合和裂变过程,在调节线粒体分布、运动和细胞内物质交换方面起着至关重要的作用,特别是在神经系统中。Mitofusin-2 (MFN2)是一种定位于线粒体外膜的GTPase,通过二聚化和构象改变介导线粒体融合。MFN2突变是2A型腓骨肌痛病(CMT2A)的病因,CMT2A是一种遗传性周围神经病变,目前尚无治愈的治疗方法。在此,我们开发了一个全面的线粒体药物筛选和评估平台,以促进潜在治疗候选药物的鉴定。这项工作建立在我们之前对S89的研究基础上,S89是一种从螺旋胺类生物碱中提取的小分子激动剂,通过与内源性MFN1相互作用促进线粒体融合,并有效减轻CMT2A患者源性运动神经元的轴突变性。该平台整合了三个连续的评估阶段:(1)在Mfn敲除小鼠胚胎成纤维细胞(mef)中进行初步筛选,以确定能够可逆地挽救线粒体断裂的化合物;(2)对CMT2A小鼠背根神经节和皮层的原代神经元培养物进行评价,以评估化合物在恢复线粒体形态、轴突运输和神经突生长方面的功效;(3)最终评估CMT2A患者来源的诱导多能干细胞(iPSC)分化的运动神经元,以确定候选药物在人类周围神经系统细胞中的治疗潜力。这种多层次的方法促进了快速的化合物筛选,增加了生理相关性,提高了识别CMT2A候选治疗药物的效率和转化潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modulating mitochondrial dynamics in CMT2A: a multifaceted platform for drug discovery and evaluation.

Mitochondrial dynamics, encompassing fusion and fission processes, plays a crucial role in regulating mitochondrial distribution, motility, and material exchange within cells, particularly in the nervous system. Mitofusin-2 (MFN2), a GTPase localized to the outer mitochondrial membrane, mediates mitochondrial fusion through dimerization and conformational changes. Mutations in MFN2 are causal for Charcot-Marie-Tooth disease type 2A (CMT2A), an inherited peripheral neuropathy for which no curative treatment currently exists. Herein, we have developed a comprehensive mitochondrial drug-screening and evaluation platform to facilitate the identification of potential therapeutic candidates. This work builds upon our previous research with S89, a small molecule agonist derived from spiramine alkaloids that promotes mitochondrial fusion by interacting with endogenous MFN1 and effectively mitigates axonal degeneration in CMT2A patient-derived motor neurons. This platform integrates three sequential stages of assessment: (1) initial screening in Mfn knockout mouse embryonic fibroblasts (MEFs) to identify compounds capable of reversibly rescuing mitochondrial fragmentation; (2) evaluation in primary neuronal cultures derived from CMT2A mouse dorsal root ganglia and cortex to assess the compounds' efficacy in restoring mitochondrial morphology, axonal transport, and neurite outgrowth; and (3) final assessment in CMT2A patient-derived induced pluripotent stem cell (iPSC)-differentiated motor neurons to determine the candidates' therapeutic potential in human peripheral nervous system cells. This multi-tiered approach facilitates rapid compound screening with increasing physiological relevance, enhancing the efficiency and translational potential of identifying therapeutic candidates for CMT2A.

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