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过氧化氢是一种神经元警报素,可触发施万细胞中特定的 RNA、膜联蛋白 A2 的局部翻译和细胞骨架重塑。

Hydrogen peroxide is a neuronal alarmin that triggers specific RNAs, local translation of Annexin A2, and cytoskeletal remodeling in Schwann cells.

机构信息

Department of Biomedical Sciences, University of Padua, 35131 Padua, Italy.

Institute of Biophysics, CNR Unit at Trento, 38123 Povo, Italy.

出版信息

RNA. 2018 Jul;24(7):915-925. doi: 10.1261/rna.064816.117. Epub 2018 Apr 11.

Abstract

Schwann cells are key players in neuro-regeneration: They sense "alarm" signals released by degenerating nerve terminals and differentiate toward a proregenerative phenotype, with phagocytosis of nerve debris and nerve guidance. At the murine neuromuscular junction, hydrogen peroxide (HO) is a key signal of Schwann cells' activation in response to a variety of nerve injuries. Here we report that Schwann cells exposed to low doses of HO rewire the expression of several RNAs at both transcriptional and translational levels. Among the genes positively regulated at both levels, we identified an enriched cluster involved in cytoskeleton remodeling and cell migration, with the Annexin (Anxa) proteins being the most represented family. We show that both Annexin A2 (Anxa2) transcript and protein accumulate at the tips of long pseudopods that Schwann cells extend upon HO exposure. Interestingly, Schwann cells reply to this signal and to nerve injury by locally translating Anxa2 in pseudopods, and undergo an extensive cytoskeleton remodeling. Our results show that, similarly to neurons, Schwann cells take advantage of local protein synthesis to change shape and move toward damaged axonal terminals to facilitate axonal regeneration.

摘要

许旺细胞是神经再生的关键参与者

它们感知退化的神经末梢释放的“警报”信号,并向促再生表型分化,吞噬神经碎片和提供神经导向。在鼠类运动终板,过氧化氢 (HO) 是许旺细胞对多种神经损伤作出反应时激活的关键信号。在这里,我们报告称,许旺细胞暴露于低剂量的 HO 会在转录和翻译水平上重新布线几种 RNA 的表达。在这两个水平上均受到正向调控的基因中,我们鉴定出一个富含参与细胞骨架重塑和细胞迁移的基因簇,其中 Annexin(Anxa)蛋白家族的代表性最强。我们表明,Anxa2(Anxa2)的转录本和蛋白在 HO 暴露时许旺细胞伸出的长伪足的末端积累。有趣的是,许旺细胞对这种信号和神经损伤作出反应,在伪足中局部翻译 Anxa2,并经历广泛的细胞骨架重塑。我们的研究结果表明,与神经元类似,许旺细胞利用局部蛋白质合成来改变形状并向受损的轴突末端移动,以促进轴突再生。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b8a/6004060/b10cfb88680b/915f01.jpg

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