MiR-6924-5p-rich exosomes derived from genetically modified Scleraxis-overexpressing PDGFRα(+) BMMSCs as novel nanotherapeutics for treating osteolysis during tendon-bone healing and improving healing strength

骨溶解 微泡 间充质干细胞 破骨细胞 骨愈合 小RNA 癌症研究 肌腱 医学 细胞生物学 生物医学工程 病理 化学 生物 内科学 外科 受体 基因 生物化学
作者
Feng Wang,Qian Jin,Mingyu Yang,He Yang,Tao Xu,Youxing Shi,Xuting Bian,Wan Chen,Yunjiao Wang,Huan Wang,Yang Ai-ning,Yan Li,Hong Tang,Pan Huang,Mu Mi-duo,Gang He,Mei Zhou,Xia Kang,Kanglai Tang
出处
期刊:Biomaterials [Elsevier]
卷期号:279: 121242-121242 被引量:44
标识
DOI:10.1016/j.biomaterials.2021.121242
摘要

Osteolysis at the tendon-bone interface can impair pullout strength during tendon-bone healing and lead to surgery failure, but the effects of clinical treatments are not satisfactory. Mesenchymal stem cell (MSC)-derived exosomes have been used as potent and feasible natural nanocarriers for drug delivery and have been proven to enhance tendon-bone healing strength, indicating that MSC-derived exosomes could be a promising therapeutic strategy. In this study, we explored Scleraxis (Scx) dynamically expressed in PDGFRα(+) bone marrow-derived mesenchymal stem cells (BMMSCs) during natural tendon-bone healing. Then, we investigated the role of PDGFRα(+) BMMSCs in tendon-bone healing after Scx overexpression as well as the underlying mechanisms. Our data demonstrated that Scx-overexpressing PDGFRα(+) BMMSCs (BMMSCScx) could efficiently inhibit peritunnel osteolysis and enhance tendon-bone healing strength by preventing osteoclastogenesis in an exosomes-dependent manner. Exosomal RNA-seq revealed that the abundance of a novel miRNA, miR-6924–5p, was highest among miRNAs. miR-6924–5p could directly inhibit osteoclast formation by binding to the 3′-untranslated regions (3′UTRs) of OCSTAMP and CXCL12. Inhibition of miR-6924–5p expression reversed the prevention of osteoclastogenic differentiation by BMMSCScx derived exosomes (BMMSCScx-exos). Local injection of BMMSCScx-exos or miR-6924–5p dramatically reduced osteoclast formation and improved tendon-bone healing strength. Furthermore, delivery of miR-6924–5p efficiently inhibited the osteoclastogenesis of human monocytes. In brief, our study demonstrates that BMMSCScx-exos or miR-6924–5p could serve as a potential therapy for the treatment of osteolysis during tendon-bone healing and improve the outcome.
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