壳聚糖
铜绿假单胞菌
胍
药品
化学
伤口愈合
药物输送
微生物学
抗菌剂
抗菌活性
金黄色葡萄球菌
柠檬酸
细菌生长
控制释放
药理学
生物相容性
靶向给药
细胞毒性
毒品携带者
抗生素
炎症
活性氧
亲水化
细菌
作者
Shuangying Yang,Youjia Wu,Xiaoyuan Huang,Xiaoyu Li,Yao Wang,Jianfeng Pan,Zhengjun Huang,Shaohuang Weng,Jianyong Huang
标识
DOI:10.1016/j.mtbio.2025.102420
摘要
The treatment of infectious wounds is confronted with the challenges of antibiotic-resistant bacterial infections and excessive inflammatory responses, significantly impacting the healing process. A multifunctional hydrogel dressing system used as local strategy is needed to address this clinical dilemma. Herein, a kind of carbon dots (P-CDs) were synthesized using polyhexamethylene guanidine (PHMG) and citric acid (CA) through a hydrothermal method, exhibiting excellent broad-spectrum antibacterial activity, including effective inhibition of clinically isolated resistant bacteria. The antibacterial mechanism of P-CDs involved the generation of reactive oxygen species, inhibition of ATP synthesis, and disruption of bacterial membrane integrity with the leakage of protein. Additionally, P-CDs demonstrate pronounced immunomodulatory properties by inducing macrophage polarization toward the M2 phenotype, thus modulating the inflammatory microenvironment. These functional components were incorporated into an intelligent hydrogel system (P-CDs@EPCS) constructed from ε-poly-L-lysine and carboxymethyl chitosan, resulting in a wound dressing with tissue adhesion, resilient maintenance of mechanical integrity, and favorable mechanical properties. P-CDs@EPCS exhibited a sustained pH-responsive drug release profile for up to 10 days, maintaining the stability of active constituents throughout the release period. In vivo experiments confirmed that P-CDs@EPCS significantly accelerated wound healing in infections caused by Pseudomonas aeruginosa, demonstrating a synergistic effect of antibacterial, anti-inflammatory, and repair-promoting actions. This study provides a promising solution for treating infectious wounds, integrating key advancements in the field of hydrogels, including dynamic crosslinking design and smart drug delivery systems.
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