抗菌剂
内化
碳纤维
碳量子点
微生物学
膜
量子点
纳米技术
生物物理学
细菌
醋酸
免疫系统
纳米颗粒
伤口愈合
细胞生物学
自愈水凝胶
活性氧
细胞膜
化学
成纤维细胞
细胞
细菌细胞结构
超声
生物化学
细胞毒性
脂多糖
化学工程
致病菌
伤口感染
作者
Adam Truskewycz,Man Hung Choi,Line Pedersen,Jianhua Han,Melanie MacGregor,Nils Halberg
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-09-08
卷期号:19 (37): 33103-33117
被引量:3
标识
DOI:10.1021/acsnano.5c03108
摘要
When pathogenic bacteria colonize a wound, they can create an alkaline ecological niche that selects for their survival by creating an inflammatory environment restricting healthy wound healing to proceed. To aid healing, wound acidification has been exploited to disrupt this process and stimulate fibroblast growth, increase wound oxygen concentrations, minimize proteolytic activity, and restimulate the host immune system. Within this study, we have developed cobalt-doped carbon quantum dot nanoparticles that work together with mild acetic acid, creating a potent synergistic antimicrobial therapy. The acidic environment alters the osmotic balance of microorganisms, forcing them to swell and speed up the internalization of the ultrasmall particles. The particles hyperpolarize the bacterial membranes and generate damaging peroxidase species, resulting in cellular lysis. In mice, cobalt-doped carbon quantum dots remove MRSA infection while allowing wounds to heal at rates equivalent to that of uninfected wounds. This work demonstrates how synergistic antimicrobial treatment strategies can be successfully used to combat antimicrobial-resistant infections.
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