嗅粘膜间充质干细胞介导的外泌体lncRNA rmrp通过EIF4A3/SIRT1抑制小胶质细胞焦亡改善脊髓损伤

IF 4.6 2区 医学 Q1 NEUROSCIENCES
Molecular Neurobiology Pub Date : 2025-07-01 Epub Date: 2025-02-21 DOI:10.1007/s12035-025-04756-1
Chuang Wang, Jiangshan Zhang, Weiming Chen, Ling Gao, Jun He, Ying Xia
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引用次数: 0

摘要

小胶质细胞焦亡对脊髓损伤后的病理过程和功能恢复有显著影响。嗅觉粘膜间充质干细胞(OM-MSCs)由于其神经替代潜能和旁分泌机制在脊髓损伤中显示出显著的治疗效果。因此,本研究的目的是探讨om - mscs来源的外泌体(Exo)在脊髓损伤后调节小胶质细胞焦亡中的功能和机制。提取并鉴定OM-MSCs及其分泌的Exo。用脂多糖(LPS)刺激小胶质细胞(HMC3),并与Exo共培养;CCK-8和流式细胞术检测HMC3细胞活力和凋亡情况。采用酶联免疫吸附法(ELISA)和免疫印迹法(western blot)检测炎症因子和焦热相关蛋白水平。通过RNA免疫沉淀和RNA下拉验证分子相互作用。构建脊髓损伤小鼠模型,用Exo给药,采用H&E、Nissl染色、BMS评分检测组织病理学特征。lncRNA RMRP在om - msc - exo中富集,在lps诱导的HMC3细胞中下调。在lps诱导的HMC3细胞中,om - msc - exo可显著提高lncRNA RMRP表达并抑制小胶质细胞凋亡,而当om - msc - exo中lncRNA RMRP缺失时,这些作用减弱。在机制上,lncRNA RMRP通过募集EIF4A3维持SIRT1 mRNA的稳定性。SIRT1过表达可以挽救lncRNA RMRP敲低介导的小胶质细胞焦亡。体内实验数据进一步支持om - msc - exo通过携带lncRNA RMRP减轻脊髓损伤后的焦亡和神经损伤。我们的数据表明,外泌体lncRNA RMRP通过调节EIF4A3/SIRT1轴减轻脊髓损伤后小胶质细胞焦亡,促进运动功能恢复。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exosomal lncRNA RMRP-shuttled by Olfactory Mucosa-Mesenchymal Stem Cells Suppresses Microglial Pyroptosis to Improve Spinal Cord Injury via EIF4A3/SIRT1.

Microglial pyroptosis significantly influences the pathological process and functional recovery after spinal cord injury (SCI). Olfactory mucosal mesenchymal stem cells (OM-MSCs) have shown remarkable therapeutic effects in SCI due to their neural substitution potential and paracrine mechanism. Therefore, the purpose of this study was to investigate the function and mechanism of OM-MSCs-derived exosomes (Exo) in regulating microglial pyroptosis after SCI. OM-MSCs and their secreted Exo were extracted and identified correspondingly. Microglia cells (HMC3) were stimulated by lipopolysaccharide (LPS) and co-cultured with Exo; the cell viability and pyroptosis of HMC3 cells were validated by CCK-8 and flow cytometry analysis. The inflammatory cytokines and pyroptosis-related proteins were measured by ELISA and western blot. Molecular interactions were verified by RNA immunoprecipitation and RNA pull-down. The SCI mouse model was constructed and administered with Exo, and then the histopathological features were detected using H&E, Nissl staining, and BMS score. lncRNA RMRP was enriched in OM-MSCs-Exo and downregulated in LPS-induced HMC3 cells. OM-MSCs-Exo administration markedly elevated lncRNA RMRP expression and repressed microglial pyroptosis in LPS-induced HMC3 cells, while these effects were diminished when lncRNA RMRP was depleted in OM-MSCs-Exo. Mechanistically, lncRNA RMRP maintained SIRT1 mRNA stability by recruiting EIF4A3. Overexpression of SIRT1 could rescue lncRNA RMRP knockdown-mediated microglia pyroptosis. In vivo data further supported that OM-MSCs-Exo administration relieves pyroptosis and nerve damage after SCI by carrying lncRNA RMRP. Our data suggested that exosomal lncRNA RMRP mitigated microglia pyroptosis and promoted motor function recovery after SCI by regulating the EIF4A3/SIRT1 axis.

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来源期刊
Molecular Neurobiology
Molecular Neurobiology 医学-神经科学
CiteScore
9.00
自引率
2.00%
发文量
480
审稿时长
1 months
期刊介绍: Molecular Neurobiology is an exciting journal for neuroscientists needing to stay in close touch with progress at the forefront of molecular brain research today. It is an especially important periodical for graduate students and "postdocs," specifically designed to synthesize and critically assess research trends for all neuroscientists hoping to stay active at the cutting edge of this dramatically developing area. This journal has proven to be crucial in departmental libraries, serving as essential reading for every committed neuroscientist who is striving to keep abreast of all rapid developments in a forefront field. Most recent significant advances in experimental and clinical neuroscience have been occurring at the molecular level. Until now, there has been no journal devoted to looking closely at this fragmented literature in a critical, coherent fashion. Each submission is thoroughly analyzed by scientists and clinicians internationally renowned for their special competence in the areas treated.
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