Eye Center & Department of Nuclear Medicine, The Second Affiliated Hospital , Zhejiang University School of Medicine , Hangzhou 310009 , China.
Department of Pharmaceutical Science Laboratory , Åbo Akademi University , Turku 20520 , Finland.
ACS Appl Mater Interfaces. 2019 Jan 30;11(4):3809-3822. doi: 10.1021/acsami.8b21766. Epub 2019 Jan 15.
Chronic nonhealing wounds have imposed serious challenges in the clinical practice, especially for the patients infected with multidrug-resistant microbes. Herein, we developed an ultrasmall copper sulfide (covellite) nanodots (CuS NDs) based dual functional nanosystem to cure multidrug-resistant bacteria-infected chronic nonhealing wound. The nanosystem could eradicate multidrug-resistant bacteria and expedite wound healing simultaneously owing to the photothermal effect and remote control of copper-ion release. The antibacterial results indicated that the combination treatment of photothermal CuS NDs with photothermal effect initiated a strong antibacterial effect for drug-resistant pathogens including methicillin-resistant Staphylococcus aureus (MRSA) and extended-spectrum β-lactamase Escherichia coli both in vitro and in vivo. Meanwhile, the released Cu could promote fibroblast cell migration and endothelial cell angiogenesis, thus accelerating wound-healing effects. In MRSA-infected diabetic mice model, the nanosystem exhibited synergistic wound healing effect of infectious wounds in vivo and demonstrated negligible toxicity and nonspecific damage to major organs. The combination of ultrasmall CuS NDs with photothermal therapy displayed enhanced therapeutic efficacy for chronic nonhealing wound in multidrug-resistant bacterial infections, which may represent a promising class of antibacterial strategy for clinical translation.
慢性难愈性创面在临床实践中带来了严峻挑战,尤其对于多重耐药菌感染的患者而言。在此,我们开发了一种基于超小硫化铜(蓝铜矿)纳米点(CuS NDs)的双功能纳米系统,用于治疗多重耐药菌感染的慢性难愈性创面。该纳米系统能够通过光热效应和远程控制铜离子释放来同时消灭多重耐药菌并促进创面愈合。抗菌结果表明,光热 CuS NDs 的联合光热治疗对包括耐甲氧西林金黄色葡萄球菌(MRSA)和产超广谱β-内酰胺酶大肠埃希菌在内的耐药病原体具有强大的抗菌作用,无论是在体外还是体内。同时,释放的铜可以促进成纤维细胞迁移和内皮细胞血管生成,从而加速创面愈合效果。在 MRSA 感染的糖尿病小鼠模型中,该纳米系统在体内表现出协同感染创面的愈合作用,且对主要器官几乎没有毒性和非特异性损伤。超小 CuS NDs 与光热疗法的联合应用显示出对多重耐药菌感染慢性难愈性创面的增强治疗效果,这可能代表着一种有前景的用于临床转化的抗菌策略。