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Mussel-inspired multifunctional coating for bacterial infection prevention and osteogenic induction 被引量:1
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作者 Mingjun Li Christoph Schlaich +7 位作者 Jianguang Zhang ievgen s.donskyi Karin Schwibbert Frank Schreiber Yi Xi Jorg Radnik Tanja Schwerdtle Rainer Haag 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2021年第9期160-171,共12页
Bacterial infection and osteogenic integration are the two main problems that cause severe complications after surgeries. In this study, the antibacterial and osteogenic properties were simultaneously introduced in bi... Bacterial infection and osteogenic integration are the two main problems that cause severe complications after surgeries. In this study, the antibacterial and osteogenic properties were simultaneously introduced in biomaterials, where copper nanoparticles(Cu NPs) were generated by in situ reductions of Cu ions into a mussel-inspired hyperbranched polyglycerol(MI-h PG) coating via a simple dip-coating method.This hyperbranched polyglycerol with 10 % catechol groups’ modification presents excellent antifouling property, which could effectively reduce bacteria adhesion on the surface. In this work, polycaprolactone(PCL) electrospun fiber membrane was selected as the substrate, which is commonly used in biomedical implants in bone regeneration and cardiovascular stents because of its good biocompatibility and easy post-modification. The as-fabricated Cu NPs-incorporated PCL membrane [PCL-(MI-h PG)-Cu NPs]was confirmed with effective antibacterial performance via in vitro antibacterial tests against Staphylococcus aureus(S. aureus), Escherichia coli(E. coli), and multi-resistant E. coli. In addition, the in vitro results demonstrated that osteogenic property of PCL-(MI-h PG)-Cu NPs was realized by upregulating the osteoblast-related gene expressions and protein activity. This study shows that antibacterial and osteogenic properties can be balanced in a surface coating by introducing Cu NPs. 展开更多
关键词 Mussel-inspired coating CuNPs Multi-resistant bacteria ANTIBACTERIAL ANTIFOULING OSTEOGENESIS
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