Self-promoted electroactive biomimetic mineralized scaffolds for bacteria-infected bone regeneration

脚手架 细胞生物学 间充质干细胞 化学 再生(生物学) 骨愈合 体内 生物医学工程 解剖 生物 医学 生物技术
作者
Zixin Li,Danqing He,Bowen Guo,Zekun Wang,Huajie Yu,Yu Wang,Shanshan Jin,Min Yu,Lisha Zhu,Liyuan Chen,Chengye Ding,Xiaolan Wu,Tianhao Wu,Shiqiang Gong,Jing Mao,Yan-Heng Zhou,Dan Luo,Yan Liu
出处
期刊:Nature Communications [Nature Portfolio]
卷期号:14 (1) 被引量:91
标识
DOI:10.1038/s41467-023-42598-4
摘要

Abstract Infected bone defects are a major challenge in orthopedic treatment. Native bone tissue possesses an endogenous electroactive interface that induces stem cell differentiation and inhibits bacterial adhesion and activity. However, traditional bone substitutes have difficulty in reconstructing the electrical environment of bone. In this study, we develop a self-promoted electroactive mineralized scaffold (sp-EMS) that generates weak currents via spontaneous electrochemical reactions to activate voltage-gated Ca 2+ channels, enhance adenosine triphosphate-induced actin remodeling, and ultimately achieve osteogenic differentiation of mesenchymal stem cells by activating the BMP2/Smad5 pathway. Furthermore, we show that the electroactive interface provided by the sp-EMS inhibits bacterial adhesion and activity via electrochemical products and concomitantly generated reactive oxygen species. We find that the osteogenic and antibacterial dual functions of the sp-EMS depend on its self-promoting electrical stimulation. We demonstrate that in vivo, the sp-EMS achieves complete or nearly complete in situ infected bone healing, from a rat calvarial defect model with single bacterial infection, to a rabbit open alveolar bone defect model and a beagle dog vertical bone defect model with the complex oral bacterial microenvironment. This translational study demonstrates that the electroactive bone graft presents a promising therapeutic platform for complex defect repair.
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