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M2 microglia-derived exosomes protect the mouse brain from ischemia-reperfusion injury via exosomal miR-124

Rationale: Microglia play a critical role in modulating cell death and neurobehavioral recovery in response to brain injury either by direct cell-cell interaction or indirect secretion of trophic factors. Exosomes secreted from cells are well documented to deliver bioactive molecules to recipient ce...

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Autores principales: Song, Yaying, Li, Zongwei, He, Tingting, Qu, Meijie, Jiang, Lu, Li, Wanlu, Shi, Xiaojing, Pan, Jiaji, Zhang, Linyuan, Wang, Yongting, Zhang, Zhijun, Tang, Yaohui, Yang, Guo-Yuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6568171/
https://www.ncbi.nlm.nih.gov/pubmed/31244932
http://dx.doi.org/10.7150/thno.30879
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author Song, Yaying
Li, Zongwei
He, Tingting
Qu, Meijie
Jiang, Lu
Li, Wanlu
Shi, Xiaojing
Pan, Jiaji
Zhang, Linyuan
Wang, Yongting
Zhang, Zhijun
Tang, Yaohui
Yang, Guo-Yuan
author_facet Song, Yaying
Li, Zongwei
He, Tingting
Qu, Meijie
Jiang, Lu
Li, Wanlu
Shi, Xiaojing
Pan, Jiaji
Zhang, Linyuan
Wang, Yongting
Zhang, Zhijun
Tang, Yaohui
Yang, Guo-Yuan
author_sort Song, Yaying
collection PubMed
description Rationale: Microglia play a critical role in modulating cell death and neurobehavioral recovery in response to brain injury either by direct cell-cell interaction or indirect secretion of trophic factors. Exosomes secreted from cells are well documented to deliver bioactive molecules to recipient cells to modulate cell function. Here, we aimed to identify whether M2 microglia exert neuroprotection after ischemic attack through an exosome-mediated cell-cell interaction. Methods: M2 microglia-derived exosomes were intravenously injected into the mouse brain immediately after middle cerebral artery occlusion. Infarct volume, neurological score, and neuronal apoptosis were examined 3 days after ischemic attack. Exosome RNA and target protein expression levels in neurons and brain tissue were determined for the mechanistic study. Results: Our results showed that the M2 microglia-derived exosomes were taken up by neurons in vitro and in vivo. M2 microglia-derived exosome treatment attenuated neuronal apoptosis after oxygen-glucose deprivation (p<0.05). In vivo results showed that M2 microglia-derived exosome treatment significantly reduced infarct volume and attenuated behavioral deficits 3 days after transient brain ischemia (p<0.05), whereas injection of miR-124 knockdown (miR-124k/d) M2 microglia-derived exosomes partly reversed the neuroprotective effect. Our mechanistic study further demonstrated that ubiquitin-specific protease 14 (USP14) was the direct downstream target of miR-124. Injection of miR-124k/d M2 exosomes plus the USP14 inhibitor, IU1, achieved comparable neuroprotective effect as injection of M2 exosomes alone. Conclusions: We demonstrated that M2 microglia-derived exosomes attenuated ischemic brain injury and promoted neuronal survival via exosomal miR-124 and its downstream target USP14. M2 microglia-derived exosomes represent a promising avenue for treating ischemic stroke.
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spelling pubmed-65681712019-06-26 M2 microglia-derived exosomes protect the mouse brain from ischemia-reperfusion injury via exosomal miR-124 Song, Yaying Li, Zongwei He, Tingting Qu, Meijie Jiang, Lu Li, Wanlu Shi, Xiaojing Pan, Jiaji Zhang, Linyuan Wang, Yongting Zhang, Zhijun Tang, Yaohui Yang, Guo-Yuan Theranostics Research Paper Rationale: Microglia play a critical role in modulating cell death and neurobehavioral recovery in response to brain injury either by direct cell-cell interaction or indirect secretion of trophic factors. Exosomes secreted from cells are well documented to deliver bioactive molecules to recipient cells to modulate cell function. Here, we aimed to identify whether M2 microglia exert neuroprotection after ischemic attack through an exosome-mediated cell-cell interaction. Methods: M2 microglia-derived exosomes were intravenously injected into the mouse brain immediately after middle cerebral artery occlusion. Infarct volume, neurological score, and neuronal apoptosis were examined 3 days after ischemic attack. Exosome RNA and target protein expression levels in neurons and brain tissue were determined for the mechanistic study. Results: Our results showed that the M2 microglia-derived exosomes were taken up by neurons in vitro and in vivo. M2 microglia-derived exosome treatment attenuated neuronal apoptosis after oxygen-glucose deprivation (p<0.05). In vivo results showed that M2 microglia-derived exosome treatment significantly reduced infarct volume and attenuated behavioral deficits 3 days after transient brain ischemia (p<0.05), whereas injection of miR-124 knockdown (miR-124k/d) M2 microglia-derived exosomes partly reversed the neuroprotective effect. Our mechanistic study further demonstrated that ubiquitin-specific protease 14 (USP14) was the direct downstream target of miR-124. Injection of miR-124k/d M2 exosomes plus the USP14 inhibitor, IU1, achieved comparable neuroprotective effect as injection of M2 exosomes alone. Conclusions: We demonstrated that M2 microglia-derived exosomes attenuated ischemic brain injury and promoted neuronal survival via exosomal miR-124 and its downstream target USP14. M2 microglia-derived exosomes represent a promising avenue for treating ischemic stroke. Ivyspring International Publisher 2019-05-04 /pmc/articles/PMC6568171/ /pubmed/31244932 http://dx.doi.org/10.7150/thno.30879 Text en © Ivyspring International Publisher This is an open access article distributed under the terms of the Creative Commons Attribution (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Song, Yaying
Li, Zongwei
He, Tingting
Qu, Meijie
Jiang, Lu
Li, Wanlu
Shi, Xiaojing
Pan, Jiaji
Zhang, Linyuan
Wang, Yongting
Zhang, Zhijun
Tang, Yaohui
Yang, Guo-Yuan
M2 microglia-derived exosomes protect the mouse brain from ischemia-reperfusion injury via exosomal miR-124
title M2 microglia-derived exosomes protect the mouse brain from ischemia-reperfusion injury via exosomal miR-124
title_full M2 microglia-derived exosomes protect the mouse brain from ischemia-reperfusion injury via exosomal miR-124
title_fullStr M2 microglia-derived exosomes protect the mouse brain from ischemia-reperfusion injury via exosomal miR-124
title_full_unstemmed M2 microglia-derived exosomes protect the mouse brain from ischemia-reperfusion injury via exosomal miR-124
title_short M2 microglia-derived exosomes protect the mouse brain from ischemia-reperfusion injury via exosomal miR-124
title_sort m2 microglia-derived exosomes protect the mouse brain from ischemia-reperfusion injury via exosomal mir-124
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6568171/
https://www.ncbi.nlm.nih.gov/pubmed/31244932
http://dx.doi.org/10.7150/thno.30879
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