丝素
微球
海藻酸钠
药物输送
微流控
银纳米粒子
抗菌剂
伤口愈合
化学
丝绸
生物相容性
铜绿假单胞菌
体内
材料科学
纳米技术
钠
生物医学工程
化学工程
纳米颗粒
复合材料
医学
细菌
有机化学
外科
工程类
生物技术
生物
遗传学
作者
Liu Jinglong,Wei Zhou,Shuo Yang,Ruixue Chu,Yuqi Zhen,Rui Ding,Juan Xu,Zhiyong Qian,Ning Wen
标识
DOI:10.1177/08839115241241294
摘要
Micro/nano drug delivery systems can provide ideal controlled drug release. Microfluidic chip technology plays an important role in the preparation of microspheres. Sodium alginate (SA) has been used to prepare microspheres as drug carriers owing to its good biosafety and easy preparation. However, these microspheres lack antimicrobial activity and drug loading efficiency, which prevent their application for infected wound repair. Although silver nanoparticles (AgNPs) possess broad-spectrum antibiotic activity, liquid mixtures of AgNPs and SA are too unstable to fabricate drug-loaded microspheres using microfluidic chip technology. In this study, AgNPs were coated with silk fibroin (SF) and then dispersed in SA solution to fabricate antibacterial microspheres (denoted SA-SF-Ag) using microfluidic chip technology. SA-SF-Ag effectively inhibited the growth of microorganisms and gradually released AgNPs. Moreover, in vivo results showed that SA-SF-Ag promoted infected wound healing and angiogenesis by killing Pseudomonas aeruginosa on the surface of infected skin wounds of mouse models. This study offers a new method to integrate AgNPs into organic polymeric microspheres for the treatment of infected wounds.
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