活性氧
清除
抗菌活性
双层
化学
氧气
生物物理学
材料科学
纳米技术
抗氧化剂
生物化学
细菌
膜
生物
有机化学
遗传学
作者
Ruru Xiong,Min Zhou,Huishuang Li,Lijuan Wang,Guixia Ling,Peng Zhang
出处
期刊:Small
[Wiley]
日期:2025-06-04
卷期号:21 (30): e2502205-e2502205
被引量:14
标识
DOI:10.1002/smll.202502205
摘要
Abstract Due to hypoxia, excessive reactive oxygen species (ROS), dense bacterial biofilms, and complex inflammatory microenvironment, chronic diabetic wound healing presents a huge challenge. Currently, sustainable treatments for this multifaceted problem have not been found. Here, microalgae and silver (Ag)─fulvic acid (FA) NPs are used to develop a multinetwork hydrogel (C@Ag─KGCM) based on oxidized konjac glucomannan (OKG) for the treatment of diabetic chronic wound (DCW). The lower hydrogel carries microrobots of Chlamydomonas rheinhardtii (C. rheinhardtii) , which continuously release bio‐oxygen under light irradiation to alleviate hypoxia in deep wound tissues. The upper layer carries Ag─FA NPs formed by Ag + and FA self‐assembly chelation complex, which can effectively inhibit bacterial growth and remove bacterial biofilms through photothermal‐therapy‐based Near ‐ Infrared (NIR) 808 nm. C. reinhardtii and Ag─FA NPs synergistically scavenge excessive ROS. Therefore, a new concept of “three‐pronged strategies” that addresses multiple problems in the wound microenvironment of diabetic patients has been proposed. Histological analysis of wound tissues shows that the C@Ag─KGCM bilayer hydrogel can promote chronic diabetic wound healing and tissue regeneration, indicating promising potential for its treatment of DCW healing.
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