化学
催化作用
氧化磷酸化
伤口愈合
辅因子
氧化还原
癌症研究
氧化损伤
生物膜
基质金属蛋白酶
内生
生物物理学
姜黄素
组合化学
三合会(社会学)
双重角色
生物化学
催化三位一体
生物相容性材料
同种类的
氧化应激
水解
席夫碱
抗菌剂
作者
xianchun fu,Jing Wang,Han Zhang,Zhi Liu
标识
DOI:10.1002/adhm.202504199
摘要
Abstract Diabetic wounds are trapped in a self‐perpetuating pathological triad of hypoxia, infection, and oxidative stressdisrupting physiological wound healing and causing recalcitrant nonhealing ulcerswhile conventional therapies, limited by static interventions and simplistic co‐delivery, fail to adapt to the spatiotemporally heterogeneous wound microenvironment and break this cycle; to address this, we engineered a microenvironment‐responsive closed‐loop hydrogel dressing by integrating Cu‐doped oxygen‐vacancy molybdenum oxide nanozymes (MoO 3− x (Cu)) and curcumin (Cur) into an oxidized alginatehyaluronic acid matrix: MoO 3− x (Cu) forms a self‐regenerative defect synergy via Mo 5+ /Mo 6+ ‐Cu + /Cu 2+ dual redox cycles (oxygen vacancies (Vo) regenerate Cu 2+ →Cu + , Cu + stabilizes Vo, decomposing 98.7% endogenous H 2 O 2 into O 2 in 24 h with sustained catalysis), Cur acts as a catalytic cofactor (chelating Cu 2+ ) and antimicrobial (disrupting bacterial membranes) for > 99.9% biofilm inhibition, and the pH‐responsive Schiff base‐crosslinked hydrogel (activated by diabetic wounds' alkaline pH 79) accelerates Schiff base hydrolysis to release nanozymes/Cur and boost MoO 3− x (Cu)'s catalytic efficiency by 1.8‐fold, dynamically matching wound microenvironment demands.
科研通智能强力驱动
Strongly Powered by AbleSci AI