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Exosomes from Microvascular Endothelial Cells under Mechanical Unloading Inhibit Osteogenic Differentiation via miR-92b-3p/ELK4 Axis

Mechanical unloading-related bone loss adversely harms astronauts’ health. Nevertheless, the specific molecular basis underlying the phenomenon has not been completely elucidated. Although the bone microvasculature contributes significantly to bone homeostasis, the pathophysiological role of microva...

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Autores principales: Zhang, Xiaoyan, Zhang, Lijun, Xu, Liqun, Li, Gaozhi, Wang, Ke, Xue, Tong, Sun, Quan, Tang, Hao, Cao, Xinsheng, Hu, Zebing, Zhang, Shu, Shi, Fei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785449/
https://www.ncbi.nlm.nih.gov/pubmed/36556251
http://dx.doi.org/10.3390/jpm12122030
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author Zhang, Xiaoyan
Zhang, Lijun
Xu, Liqun
Li, Gaozhi
Wang, Ke
Xue, Tong
Sun, Quan
Tang, Hao
Cao, Xinsheng
Hu, Zebing
Zhang, Shu
Shi, Fei
author_facet Zhang, Xiaoyan
Zhang, Lijun
Xu, Liqun
Li, Gaozhi
Wang, Ke
Xue, Tong
Sun, Quan
Tang, Hao
Cao, Xinsheng
Hu, Zebing
Zhang, Shu
Shi, Fei
author_sort Zhang, Xiaoyan
collection PubMed
description Mechanical unloading-related bone loss adversely harms astronauts’ health. Nevertheless, the specific molecular basis underlying the phenomenon has not been completely elucidated. Although the bone microvasculature contributes significantly to bone homeostasis, the pathophysiological role of microvascular endothelial cells (MVECs) in bone loss induced by mechanical unloading is not apparent. Here, we discovered that MC3T3-E1 cells could take up exosomes produced by MVECs under clinorotation-unloading conditions (Clino Exos), which then prevented MC3T3-E1 cells from differentiating into mature osteoblasts. Moreover, miR-92b-3p was found to be highly expressed in both unloaded MVECs and derived exosomes. Further experiments demonstrated that miR-92b-3p was transferred into MC3T3-E1 cells by exosomes, resulting in the suppression of osteogenic differentiation, and that encapsulating miR-92b-3p inhibitor into the Clino Exos blocked their inhibitory effects. Furthermore, miR-92b-3p targeted ELK4 and the expression of ELK4 was lessened when cocultured with Clino Exos. The inhibitor-92b-3p-promoted osteoblast differentiation was partially reduced by siRNA-ELK4. Exosomal miR-92b-3p secreted from MVECs under mechanical unloading has been shown for the first time to partially attenuate the function of osteoblasts through downregulation of ELK4, suggesting a potential strategy to protect against the mechanical unloading-induced bone loss and disuse osteoporosis.
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spelling pubmed-97854492022-12-24 Exosomes from Microvascular Endothelial Cells under Mechanical Unloading Inhibit Osteogenic Differentiation via miR-92b-3p/ELK4 Axis Zhang, Xiaoyan Zhang, Lijun Xu, Liqun Li, Gaozhi Wang, Ke Xue, Tong Sun, Quan Tang, Hao Cao, Xinsheng Hu, Zebing Zhang, Shu Shi, Fei J Pers Med Article Mechanical unloading-related bone loss adversely harms astronauts’ health. Nevertheless, the specific molecular basis underlying the phenomenon has not been completely elucidated. Although the bone microvasculature contributes significantly to bone homeostasis, the pathophysiological role of microvascular endothelial cells (MVECs) in bone loss induced by mechanical unloading is not apparent. Here, we discovered that MC3T3-E1 cells could take up exosomes produced by MVECs under clinorotation-unloading conditions (Clino Exos), which then prevented MC3T3-E1 cells from differentiating into mature osteoblasts. Moreover, miR-92b-3p was found to be highly expressed in both unloaded MVECs and derived exosomes. Further experiments demonstrated that miR-92b-3p was transferred into MC3T3-E1 cells by exosomes, resulting in the suppression of osteogenic differentiation, and that encapsulating miR-92b-3p inhibitor into the Clino Exos blocked their inhibitory effects. Furthermore, miR-92b-3p targeted ELK4 and the expression of ELK4 was lessened when cocultured with Clino Exos. The inhibitor-92b-3p-promoted osteoblast differentiation was partially reduced by siRNA-ELK4. Exosomal miR-92b-3p secreted from MVECs under mechanical unloading has been shown for the first time to partially attenuate the function of osteoblasts through downregulation of ELK4, suggesting a potential strategy to protect against the mechanical unloading-induced bone loss and disuse osteoporosis. MDPI 2022-12-08 /pmc/articles/PMC9785449/ /pubmed/36556251 http://dx.doi.org/10.3390/jpm12122030 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhang, Xiaoyan
Zhang, Lijun
Xu, Liqun
Li, Gaozhi
Wang, Ke
Xue, Tong
Sun, Quan
Tang, Hao
Cao, Xinsheng
Hu, Zebing
Zhang, Shu
Shi, Fei
Exosomes from Microvascular Endothelial Cells under Mechanical Unloading Inhibit Osteogenic Differentiation via miR-92b-3p/ELK4 Axis
title Exosomes from Microvascular Endothelial Cells under Mechanical Unloading Inhibit Osteogenic Differentiation via miR-92b-3p/ELK4 Axis
title_full Exosomes from Microvascular Endothelial Cells under Mechanical Unloading Inhibit Osteogenic Differentiation via miR-92b-3p/ELK4 Axis
title_fullStr Exosomes from Microvascular Endothelial Cells under Mechanical Unloading Inhibit Osteogenic Differentiation via miR-92b-3p/ELK4 Axis
title_full_unstemmed Exosomes from Microvascular Endothelial Cells under Mechanical Unloading Inhibit Osteogenic Differentiation via miR-92b-3p/ELK4 Axis
title_short Exosomes from Microvascular Endothelial Cells under Mechanical Unloading Inhibit Osteogenic Differentiation via miR-92b-3p/ELK4 Axis
title_sort exosomes from microvascular endothelial cells under mechanical unloading inhibit osteogenic differentiation via mir-92b-3p/elk4 axis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785449/
https://www.ncbi.nlm.nih.gov/pubmed/36556251
http://dx.doi.org/10.3390/jpm12122030
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