感觉系统
原位杂交
线粒体
神经科学
细胞生物学
感觉神经元
外周神经系统
生物
周围神经病变
离体
体内
过继性细胞移植
解剖
感觉神经
病理
脑干
化学
外围设备
中枢神经系统
医学
背根神经节
神经胶质
神经病理性疼痛
小胶质细胞
背
基因剔除小鼠
线粒体DNA
作者
Jing Xu,Yize Li,Charles Novak,Min Lee,Zihan Yan,Sangsu Bang,Aidan McGinnis,Sharat Chandra,Vivian Zhang,Wei He,Terry Lechler,Maria Pia Rodriguez,Çağla Eroğlu,Matthew L. Becker,Dmitry Velmeshev,Richard E. Cheney,Ru-Rong Ji
出处
期刊:Nature
[Nature Portfolio]
日期:2026-01-07
卷期号:650 (8103): 951-960
被引量:12
标识
DOI:10.1038/s41586-025-09896-x
摘要
Primary sensory neurons in dorsal root ganglia (DRG) have long axons and a high demand for mitochondria, and mitochondrial dysfunction has been implicated in peripheral neuropathy after diabetes and chemotherapy1,2. However, the mechanisms by which primary sensory neurons maintain their mitochondrial supply remain unclear. Satellite glial cells (SGCs) in DRG encircle sensory neurons and regulate neuronal activity and pain3. Here we show that SGCs are capable of transferring mitochondria to DRG sensory neurons in vitro, ex vivo and in vivo by the formation of tunnelling nanotubes with SGC-derived myosin 10 (MYO10). Scanning and transmission electron microscopy revealed tunnelling nanotube-like ultrastructures between SGCs and sensory neurons in mouse and human DRG. Blockade of mitochondrial transfer in naive mice leads to nerve degeneration and neuropathic pain. Single-nucleus RNA sequencing and in situ hybridization revealed that MYO10 is highly expressed in human SGCs. Furthermore, SGCs from DRG of people with diabetes exhibit reduced MYO10 expression and mitochondrial transfer to neurons. Adoptive transfer of human SGCs into the mouse DRG provides MYO10-dependent protection against peripheral neuropathy. This study uncovers a previously unrecognized role of peripheral glia and provides insights into small fibre neuropathy in diabetes, offering new therapeutic strategies for the management of neuropathic pain. Mitochondria that are transported from satellite glial cells in dorsal root ganglia to peripheral sensory neurons through tunneling nanotube-like structures provide protection against peripheral neuropathy.
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