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少突胶质细胞通过外泌体分泌来支持轴突运输和维持。

Oligodendrocytes support axonal transport and maintenance via exosome secretion.

机构信息

Institute of Developmental Biology and Neurobiology, Johannes Gutenberg University of Mainz, Mainz, Germany.

Focus Program Translational Neuroscience, Johannes Gutenberg University of Mainz, Mainz, Germany.

出版信息

PLoS Biol. 2020 Dec 22;18(12):e3000621. doi: 10.1371/journal.pbio.3000621. eCollection 2020 Dec.

Abstract

Neurons extend long axons that require maintenance and are susceptible to degeneration. Long-term integrity of axons depends on intrinsic mechanisms including axonal transport and extrinsic support from adjacent glial cells. The mechanisms of support provided by myelinating oligodendrocytes to underlying axons are only partly understood. Oligodendrocytes release extracellular vesicles (EVs) with properties of exosomes, which upon delivery to neurons improve neuronal viability in vitro. Here, we show that oligodendroglial exosome secretion is impaired in 2 mouse mutants exhibiting secondary axonal degeneration due to oligodendrocyte-specific gene defects. Wild-type oligodendroglial exosomes support neurons by improving the metabolic state and promoting axonal transport in nutrient-deprived neurons. Mutant oligodendrocytes release fewer exosomes, which share a common signature of underrepresented proteins. Notably, mutant exosomes lack the ability to support nutrient-deprived neurons and to promote axonal transport. Together, these findings indicate that glia-to-neuron exosome transfer promotes neuronal long-term maintenance by facilitating axonal transport, providing a novel mechanistic link between myelin diseases and secondary loss of axonal integrity.

摘要

神经元延伸出需要维持和易发生退化的长轴突。轴突的长期完整性取决于内在机制,包括轴突运输和相邻胶质细胞的外在支持。少突胶质细胞为下面的轴突提供支持的机制部分被理解。少突胶质细胞释放具有外泌体特性的细胞外囊泡(EVs),这些囊泡递送到神经元后可改善体外神经元的活力。在这里,我们发现由于少突胶质细胞特异性基因缺陷而表现出继发性轴突退化的 2 种小鼠突变体中,少突胶质细胞外体的分泌受损。野生型少突胶质细胞外体通过改善代谢状态和促进营养剥夺神经元中的轴突运输来支持神经元。突变体少突胶质细胞释放的外体较少,其共同特征是代表性不足的蛋白质减少。值得注意的是,突变体外体缺乏支持营养剥夺神经元和促进轴突运输的能力。这些发现表明,胶质细胞到神经元的外体转移通过促进轴突运输来促进神经元的长期维持,为髓鞘疾病和继发性轴突完整性丧失之间提供了新的机制联系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c1e/7787684/99a41b002f59/pbio.3000621.g001.jpg

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