生物膜
光热治疗
体内
聚合
抗生素
抗菌活性
纳米技术
环糊精
细菌
材料科学
化学
组合化学
生物
有机化学
聚合物
生物化学
生物技术
复合材料
遗传学
作者
Yaping He,X. Wang,Chi Zhang,Junkui Sun,Jianzhong Xu,Daifeng Li
出处
期刊:Small
[Wiley]
日期:2023-05-08
卷期号:19 (35)
被引量:24
标识
DOI:10.1002/smll.202300199
摘要
Abstract Bacterial infections pose a significant threat to global public health; therefore, the development of novel therapeutics is urgently needed. Herein, a controllable antibacterial nanoplatform utilizing cyclodextrin metal–organic frameworks (CD‐MOFs) as a template to synthesize ultrafine silver nanoparticles (Ag NPs) in their porous structure is constructed. Subsequently, polydopamine (PDA) is encapsulated on the CD‐MOFs’ surface via dopamine polymerization to enhance the water stability and enable hyperthermia capacity. The resulting Ag@MOF@PDA generates localized hyperthermia and gradually releases Ag + to achieve long‐term photothermal‐chemical bactericidal capability. The release rate of Ag + can be accelerated by NIR‐mediated heating in a controllable manner, quickly reaching the effective concentration and reducing the frequency of medication to avoid potential toxicity. In vitro experiments demonstrate that the combined antibacterial strategy can not only effectively kill both gram‐negative and gram‐positive bacteria, but also directly eradicate mature biofilms. In vivo results confirm that both bacterial‐ and biofilm‐infected wounds treated with a combination of Ag@MOF@PDA and laser exhibit satisfactory recovery with minimal toxicity, displaying a superior therapeutic effect compared to other groups. Together, the results warrant that the Ag@MOF@PDA realizes synergistic antibacterial capacity and controllable release of Ag + to combat bacterial and biofilm infections, providing a potential antibiotic‐free alternative in the “post‐antibiotic era.”
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