Tailored carbon dots with photoresponsive oxidase-mimicking activity for bacteria-infected wound therapy

金黄色葡萄球菌 活性氧 材料科学 附带损害 体内 超氧化物 大肠杆菌 纳米技术 抗菌活性 碳纤维 化学 催化作用 炎症 氧气 炎症反应 纳米颗粒 脚手架 合理设计 伤口愈合 体外 生物物理学
作者
Na Gao,Yajuan Zhao,Mengyao Jing,Zhirui Li,Honglei Wang,Xiaolong Hao,Jing Li,Shaoli Cui,Linlin Yang,Liguo Ji,Xiao-Dong Yang,Jianzhao Niu,Guangjie He
出处
期刊:Materials & Design [Elsevier BV]
卷期号:261: 115396-115396
标识
DOI:10.1016/j.matdes.2025.115396
摘要

• Developed metal-free carbon dots with photo-activated oxidase-mimicking activity. • Achieved precise ROS-mediated bactericidal control via light activation. • Validated accelerated wound healing in bacterial-infected murine models • Overcome the toxicity limitation in traditional nanozyme-based ROS therapies. The advancement of nanozymes with reactive oxygen species (ROS)-generating capabilities has emerged as a highly promising therapeutic strategy for managing infected wounds. Nevertheless, achieving precise modulation of their antibacterial efficacy remains a persistent challenge. In this study, we introduce an innovative metal-free carbon dots (CDs) functioning as photoresponsive nanozymes tailored for bacterial infection treatment. The CDs manifest exceptional photo-activated oxidase-like activity with a high maximum reaction rate of 33.3 × 10 -8 M/s, enabling efficient catalytic conversion of dissolved oxygen into superoxide anion (O 2 •− ) under light irradiation. This photo-triggered ROS generation capacity confers potent antibacterial effects against both Escherichia coli ( E. coli ) and Staphylococcus aureus ( S. aureus ), with plate counting assays demonstrating that 75 μg/mL of CDs eliminates 98.4 % of E. coli and 99.2 % of S. aureus with just 10 min of light exposure. In vivo studies further revealed that the CDs not only exert robust disinfection effects but also accelerate the healing of S. aureus -infected wounds by alleviating inflammation and promoting angiogenesis. Notably, the light-dependency ROS-generating capability of CDs preclude excessive ROS accumulation and minimizes collateral tissue damage, enabling precise and efficient management of bacteria-infected wounds and highlighting substantial potential for clinical anti-infection therapeutic applications.
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