一氧化氮
化学
葡萄糖氧化酶
伤口愈合
光热治疗
抗菌剂
氧化剂
药理学
铜绿假单胞菌
纳米壳
伊布塞伦
微生物学
糖尿病
抗生素
光动力疗法
糖尿病足
生物物理学
介孔二氧化硅
细菌
活性氧
胰岛素
过氧化物酶
炎症
作者
Xueqin Wang,Hong Chen,Chuan Liu,Mengna Wan,Shangyi Zhao,Na Li,Shaofeng Duan,Shaobo Duan
标识
DOI:10.1002/adhm.202505240
摘要
ABSTRACT Diabetic wound infection remains a devastating threat to human health, largely due to bacterial colonization and increased antibiotic resistance during conventional treatments, and alternative therapeutic strategies are thus urgent to improve diabetic wound healing. Herein, we developed a multifaceted nanoplatform (CuO@SiO 2 @NO@Au, CSNA NPs) consisting of a cupric oxide (CuO) core, a mesoporous silicon nanoshell loaded with nitric oxide (NO), and in situ grown ultrasmall Au nanoparticles (NPs) for improved diabetic wound treatment. The results showed that the prepared CSNA NPs exhibited remarkable dual‐enzyme mimic activity of glucose oxidase (GOx) and peroxidase (POD), effectively oxidizing glucose to generate gluconic acid, thereby reducing the glucose levels and reversing the acidic wound microenvironment. In addition, the fabricated nanoplatform generated abundant H 2 O 2 , which was converted into highly toxic hydroxyl radical ( · OH), leading to efficient bacterial eradication that was subsequently. Under near‐infrared (NIR) light irradiation, the CSNA nanozyme also triggered the release of NO gas and aided in the removal of bacterial biofilms, collectively improving the wound microenvironment. By integrating chemodynamic therapy (CDT), photothermal therapy, and NO gas therapy, this self‐activatable NIR‐ augmented nanozyme provides a promising antimicrobial strategy for diabetic wound treatment.
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