Mechanically activated mesenchymal-derived bone cells drive vessel formation via an extracellular vesicle mediated mechanism

血管生成 细胞生物学 旁分泌信号 串扰 间充质干细胞 胞外囊泡 骨愈合 化学 骨细胞 微泡 分泌物 生物 癌症研究 小RNA 解剖 生物化学 基因 光学 物理 受体
作者
Na Shen,M. Maggio,Ian Woods,M. C. Lowry,Rafic Yunus Al-Masri,Cansu Görgün,Kian F. Eichholz,Elena Stavenschi,Karsten Hokamp,Fiona Roche,Lorraine O’Driscoll,David A. Hoey
出处
期刊:Journal of Tissue Engineering [SAGE Publishing]
卷期号:14 被引量:7
标识
DOI:10.1177/20417314231186918
摘要

Blood vessel formation is an important initial step for bone formation during development as well as during remodelling and repair in the adult skeleton. This results in a heavily vascularized tissue where endothelial cells and skeletal cells are constantly in crosstalk to facilitate homeostasis, a process that is mediated by numerous environmental signals, including mechanical loading. Breakdown in this communication can lead to disease and/or poor fracture repair. Therefore, this study aimed to determine the role of mature bone cells in regulating angiogenesis, how this is influenced by a dynamic mechanical environment, and understand the mechanism by which this could occur. Herein, we demonstrate that both osteoblasts and osteocytes coordinate endothelial cell proliferation, migration, and blood vessel formation via a mechanically dependent paracrine mechanism. Moreover, we identified that this process is mediated via the secretion of extracellular vesicles (EVs), as isolated EVs from mechanically stimulated bone cells elicited the same response as seen with the full secretome, while the EV-depleted secretome did not elicit any effect. Despite mechanically activated bone cell-derived EVs (MA-EVs) driving a similar response to VEGF treatment, MA-EVs contain minimal quantities of this angiogenic factor. Lastly, a miRNA screen identified mechanoresponsive miRNAs packaged within MA-EVs which are linked with angiogenesis. Taken together, this study has highlighted an important mechanism in osteogenic-angiogenic coupling in bone and has identified the mechanically activated bone cell-derived EVs as a therapeutic to promote angiogenesis and potentially bone repair.
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