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由活动驱动的髓鞘生长由代谢型谷氨酸受体5(mGluR5)介导。

Activity-driven myelin sheath growth is mediated by mGluR5.

作者信息

Braaker Philipp N, Mi Xuelong, Soong Daniel, Bin Jenea M, Marshall-Phelps Katy, Bradley Stephen, Benito-Kwiecinski Silvia, Meng Julia, Arafa Donia, Richmond Claire, Keatinge Marcus, Yu Guoqiang, Almeida Rafael G, Lyons David A

机构信息

Centre for Discovery Brain Sciences, MS Society Edinburgh Centre for Multiple Sclerosis Research, University of Edinburgh, Edinburgh, UK.

Bradley Department of Electrical and Computer Engineering, Virginia Polytechnic Institute and State University, Arlington, VA, USA.

出版信息

Nat Neurosci. 2025 May 14. doi: 10.1038/s41593-025-01956-9.

Abstract

Myelination by oligodendrocytes in the central nervous system is influenced by neuronal activity, but the molecular mechanisms by which this occurs have remained unclear. Here we employed pharmacological, genetic, functional imaging and optogenetic-stimulation approaches in zebrafish to assess activity-regulated myelination in vivo. Pharmacological inhibition and activation of metabotropic glutamate receptor 5 (mGluR5) impaired and promoted myelin sheath elongation, respectively, during development, without otherwise affecting the oligodendrocyte lineage. Correspondingly, mGluR5 loss-of-function mutants exhibit impaired myelin growth, while oligodendrocyte-specific mGluR5 gain of function promoted sheath elongation. Functional imaging and optogenetic-stimulation studies revealed that mGluR5 mediates activity-driven high-amplitude Ca transients in myelin. Furthermore, we found that long-term stimulation of neuronal activity drives myelin sheath elongation in an mGluR5-dependent manner. Together these data identify mGluR5 as a mediator of the influence of neuronal activity on myelination by oligodendrocytes in vivo, opening up opportunities to assess the functional relevance of activity-regulated myelination.

摘要

少突胶质细胞在中枢神经系统中的髓鞘形成受神经元活动影响,但其发生的分子机制仍不清楚。在此,我们在斑马鱼中采用药理学、遗传学、功能成像和光遗传学刺激方法,以评估体内活性调节的髓鞘形成。在发育过程中,代谢型谷氨酸受体5(mGluR5)的药理学抑制和激活分别损害和促进了髓鞘的伸长,而未对少突胶质细胞谱系产生其他影响。相应地,mGluR5功能丧失突变体表现出髓鞘生长受损,而少突胶质细胞特异性mGluR5功能获得则促进了髓鞘伸长。功能成像和光遗传学刺激研究表明,mGluR5介导了髓鞘中活性驱动的高幅度钙瞬变。此外,我们发现长期刺激神经元活动以mGluR5依赖的方式驱动髓鞘伸长。这些数据共同确定mGluR5是体内神经元活动对少突胶质细胞髓鞘形成影响的介质,为评估活性调节髓鞘形成的功能相关性提供了机会。

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