透明质酸
生物相容性
材料科学
光热治疗
膜
光热效应
生物物理学
聚乳酸
伤口愈合
抗氧化剂
药物输送
体内
化学
钙
生物医学工程
氧化应激
肉芽组织
细胞毒性
壳聚糖
图层(电子)
纳米技术
溴化钠
没食子酸
作者
Mei Wen,Y. B. Shen,Chuang Liu,Xiao Wang,Nuo Yu,Zhigang Chen
标识
DOI:10.1002/adfm.202600053
摘要
ABSTRACT Diabetic foot ulcers are difficult to heal, trapped in a vicious cycle involving excessive high‐glucose exudate, persistent infection, oxidative stress, and impaired cell proliferation. To address these issues, this work presents a multifunctional Janus‐structured fibrous membrane (P/2PHE CaPDA ) capable of regulating the diabetic wound microenvironment. This system integrates anti‐gravity exudate management, photothermal sterilization, Ca 2+ release, and glucose‐responsive drug delivery. The membrane consists of a hydrophobic polylactic acid (PLA) layer and a hydrophilic composite layer (2PHE CaPDA ) containing CaPDA and hyaluronic acid grafted with epigallocatechin gallate (EGCG) via boronate ester bonds. This asymmetric structure, featuring gradient pores and differential wettability, facilitates self‐pumping exudate removal at a rate of 1.96 g·cm − 2 ·h − 1 , driven by the transition of water molecules from van der Waals adsorption to an ordered hydrogen‐bonding network. The CaPDA component provides potent photothermal antibacterial activity (>99% bactericidal efficacy) and releases Ca 2 + to support healing. Meanwhile, the boronate‐linked EGCG enables glucose‐responsive antioxidant release, alleviates oxidative stress, and enhances M2 macrophage polarization by 3.5‐fold relative to baseline. In vivo studies confirmed the material's excellent biocompatibility and its ability to significantly accelerate wound closure. This integrated platform represents a promising strategy for treating infected diabetic wounds.
科研通智能强力驱动
Strongly Powered by AbleSci AI