Restoring the interplay between the endoplasmic reticulum and mitochondria by gene therapy improves Charcot–Marie–Tooth type 2A disease

MFN2型 内质网 细胞生物学 线粒体 生物 遗传增强 线粒体融合 诱导多能干细胞 转基因 神经科学 GTP酶 轴浆运输 癌症研究 转染 病毒载体 基因 线粒体内膜 基因传递 MFN1型 转基因小鼠 化学 线粒体通透性转换孔 基因亚型 神经退行性变 运动神经元 分子生物学 移植
作者
Marine Tessier,Zeinab Hamzé,Nathalie Bonello‐Palot,Nathalie Roeckel-Trévisiol,Nathalie Da Silva,Ilian Verlet,Natacha Broucqsault,Karine Bertaux,Emilien Delmont,Shahram Attarian,Marc Bartoli,Valérie Delague,Bernard Laurent Schneider,Nathalie Bernard‐Marissal
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (25): e2530774123-e2530774123
标识
DOI:10.1073/pnas.2530774123
摘要

Charcot–Marie–Tooth disease type 2A (CMT2A) is the most common axonal CMT and is associated with an early onset and severe motor neuropathy. CMT2A is mainly caused by dominant mutations in the MFN2 gene, encoding mitofusin-2, a GTPase located in the outer membrane of the mitochondria and endoplasmic reticulum (ER). Mutations in MFN2 affect mitochondrial dynamics. We previously demonstrated that mutated MFN2 further disrupts contacts between the ER and the mitochondria, leading to axonal degeneration. There are no treatments for CMT2A, and those currently under development primarily focus on restoring mitochondrial function. Here, we provide proof of concept that neuronal overexpression of wild-type MFN2 (MFN2 WT ) provides therapeutic benefit in transgenic CMT2A mice as well as in CMT2A-motor neurons derived from induced pluripotent stem cells. Intrathecal delivery of an AAV9 vector expressing MFN2 WT effectively targets motor and sensory neurons, restoring ER–mitochondria contacts and mitochondrial morphology, thereby preserving both neuromuscular junction integrity and motor function. Strikingly, therapeutic efficacy is also achieved by administering the vector after the onset of symptoms. Importantly, AAV administration was well tolerated, with no evidence of hepatotoxicity or dorsal root ganglion inflammation. We further show that CMT2A pathology can be corrected in vitro and in vivo using an ER-targeting MFN1 isoform that selectively enhances ER–mitochondria contacts. These results establish that restoring contacts between the ER and mitochondria using gene therapy is a promising therapeutic avenue for CMT2A.

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