Neural stem cell–derived exosomes regulate cell proliferation, migration, and cell death of brain microvascular endothelial cells via the miR‐9/Hes1 axis under hypoxia

Author:

Deng Xiaojun1,Hu Xiaoyi2,Wang Shang2,Zhao Hui3,Wei Yaqin2,Fu Jiaqi3,Wu Wenhui2ORCID,Liu Jinming2ORCID,Zhang Caicai4,Wang Lili5,Yuan Ping2ORCID

Affiliation:

1. Department of Critical Care Medicine, Shanghai Sixth People's Hospital Shanghai Jiao Tong University Shanghai China

2. Department of Cardio‐Pulmonary Circulation, Shanghai Pulmonary Hospital, School of Medicine Tongji University Shanghai China

3. Institute of Bismuth Science, University of Shanghai for Science and Technology Shanghai China

4. Department of Physiology Hainan Medical University Haikou Hainan China

5. Department of Clinical Medical Laboratory Center Hangzhou Red Cross Hospital Zhejiang China

Abstract

AbstractBackgroundOur previous study found that mouse embryonic neural stem cell (NSC)–derived exosomes (EXOs) regulated NSC differentiation via the miR‐9/Hes1 axis. However, the effects of EXOs on brain microvascular endothelial cell (BMEC) dysfunction via the miR‐9/Hes1 axis remain unknown. Therefore, the current study aimed to determine the effects of EXOs on BMEC proliferation, migration, and death via the miR‐9/Hes1 axis.MethodsImmunofluorescence, quantitative real‐time polymerase chain reaction, cell counting kit‐8 assay, wound healing assay, calcein‐acetoxymethyl/propidium iodide staining, and hematoxylin and eosin staining were used to determine the role and mechanism of EXOs on BMECs.ResultsEXOs promoted BMEC proliferation and migration and reduced cell death under hypoxic conditions. The overexpression of miR‐9 promoted BMEC proliferation and migration and reduced cell death under hypoxic conditions. Moreover, miR‐9 downregulation inhibited BMEC proliferation and migration and also promoted cell death. Hes1 silencing ameliorated the effect of amtagomiR‐9 on BMEC proliferation and migration and cell death. Hyperemic structures were observed in the regions of the hippocampus and cortex in hypoxia‐induced mice. Meanwhile, EXO treatment improved cerebrovascular alterations.ConclusionNSC‐derived EXOs can promote BMEC proliferation and migration and reduce cell death via the miR‐9/Hes1 axis under hypoxic conditions. Therefore, EXO therapeutic strategies could be considered for hypoxia‐induced vascular injury.

Funder

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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