NSC-derived extracellular vesicles-mediates neuronal plasticity enhancement in vascular dementia via transferring miR-210.

IF 6.2 2区 医学 Q1 NEUROSCIENCES
Qunwen Pan, Yan Wang, Zhi Xiang, Yulan Yin, Yuyan Deng, Kesheng Xiao, Xiaobing Xu, Yahong Wang, Ganwen Deng, Xiaoxia Wang, Wangtao Zhong, Xiaotang Ma
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Abstract

Chronic hypoperfusion-induced neuronal damage is the pathological basis of vascular dementia (VD). Hypoxia enhances the paracrine effects of neural stem cells (NSCs) by promoting neuroprotection and synaptic plasticity, which may be mediated by extracellular vehicles (EVs) secretion. In this study, we aimed to investigate the therapeutic effects and underlying mechanisms of hypoxic NSC-derived EVs (hypoxic NSC-EVs) in VD. Using Co-IP and Nanoparticle Tracking Analysis (NTA), we identified HIF-1α as a hypoxic adaptor protein that binds to RAB27A, promoting the localization of RAB27A with multivesicular bodies (MVBs). This interaction enhances the secretion of NSC-EVs under hypoxic condition. By miRNA sequencing, we observed that hypoxia increased the secretion of NSC-EVs and their enrichment of miR-210. Through a series of in vivo and in vitro gain- and loss-of-function experiments, we demonstrated that hypoxic NSC-EVs were more effective than normoxic NSC-EVs in improving cognitive function, increasing neuronal survival, enhancing synaptic plasticity and dendritic spine density, and reducing neuronal ROS production and apoptosis in the cortex and hippocampus of VD mice. Additionally, hypoxic NSC-EVs promoted neuronal viability, neurite elongation, and branching in oxygen-glucose-deprived (OGD) neurons by transferring miR-210. Rescue experiments revealed that silencing SPRED1, a target gene of miR-210, restored the diminished neuroprotective effects of miR-210 knockout NSC-EVs. Our findings suggest that the HIF-1α/RAB27A axis mediates the generation of hypoxic NSC-EVs, which amplifying their effects in promoting cognitive recovery after VD through the transfer of miR-210.

nsc来源的细胞外囊泡通过转移miR-210介导血管性痴呆的神经元可塑性增强。
慢性低灌注诱导的神经元损伤是血管性痴呆(VD)的病理基础。缺氧通过促进神经保护和突触可塑性来增强神经干细胞(NSCs)的旁分泌作用,这可能与细胞外载体(EVs)的分泌有关。在这项研究中,我们旨在探讨缺氧nsc衍生的EVs(缺氧NSC-EVs)在VD中的治疗效果和潜在机制。通过Co-IP和纳米颗粒跟踪分析(NTA),我们发现HIF-1α是一种与RAB27A结合的缺氧接头蛋白,促进RAB27A在多泡体(MVBs)中的定位。这种相互作用增强了缺氧条件下nsc - ev的分泌。通过miRNA测序,我们观察到缺氧增加了nsc - ev的分泌及其miR-210的富集。通过一系列体内和体外功能获得和功能丧失实验,我们证明缺氧的nsc - ev在改善VD小鼠认知功能、增加神经元存活、增强突触可塑性和树突棘密度、减少皮层和海马神经元ROS生成和凋亡方面比正常缺氧的nsc - ev更有效。此外,缺氧的nsc - ev通过转移miR-210促进了缺氧葡萄糖剥夺(OGD)神经元的神经元活力、神经突伸长和分支。救援实验显示,沉默miR-210的靶基因SPRED1可以恢复miR-210敲除的nsc - ev的神经保护作用。我们的研究结果表明,HIF-1α/RAB27A轴介导缺氧nsc - ev的产生,从而通过miR-210的转移放大其促进VD后认知恢复的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Acta Neuropathologica Communications
Acta Neuropathologica Communications Medicine-Pathology and Forensic Medicine
CiteScore
11.20
自引率
2.80%
发文量
162
审稿时长
8 weeks
期刊介绍: "Acta Neuropathologica Communications (ANC)" is a peer-reviewed journal that specializes in the rapid publication of research articles focused on the mechanisms underlying neurological diseases. The journal emphasizes the use of molecular, cellular, and morphological techniques applied to experimental or human tissues to investigate the pathogenesis of neurological disorders. ANC is committed to a fast-track publication process, aiming to publish accepted manuscripts within two months of submission. This expedited timeline is designed to ensure that the latest findings in neuroscience and pathology are disseminated quickly to the scientific community, fostering rapid advancements in the field of neurology and neuroscience. The journal's focus on cutting-edge research and its swift publication schedule make it a valuable resource for researchers, clinicians, and other professionals interested in the study and treatment of neurological conditions.
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