Incorporating copper-based nanosheets into an injectable self-healing hydrogel enables superb repair of infected diabetic wound

自愈水凝胶 伤口愈合 胱胺 透明质酸 明胶 化学 活性氧 单宁酸 材料科学 高分子化学 生物化学 外科 有机化学 医学 解剖
作者
Dingqi Xie,Chuan Hu,Chao Jiang,Jiechao Xia,Lin Ye,Jin Yang,Sicheng Jiang,Yinwen Ji,Zhengduo Zhang,Honghai Song,Yutao Zhu,Pan Tang,Zehui Hu,Ying Xiao,Jiayong Dai,Zhijun Hu
出处
期刊:Chemical Engineering Journal [Elsevier]
卷期号:476: 146788-146788 被引量:11
标识
DOI:10.1016/j.cej.2023.146788
摘要

Continuous bleeding, bacterial infection, oxidative stress, and vascular damage within a diabetic wound microenvironment necessitate the development of multifunctional dressings that match the complex physiological process of skin healing. Herein, copper–tannic acid (CuTA) nanosheets were first synthesized by chelating copper ions with tannic acid (TA). These nanosheets were subsequently integrated into an injectable self-healing hydrogel comprising methacrylic anhydride-modified gelatin (GelMA), cationic guar gum (CG), and borax. Through free-radical polymerization as well as hydrogen and borate ester bonds formation, we fabricated an acidic and highly reactive oxygen species (ROS)-responsive composite hydrogel named GGB-CT, which exhibited remarkable hemostasis and adhesion. With responsive decomposition of GGB-CT, the released CuTA efficiently scavenged excess ROS as well as effectively killed bacteria by inhibiting arginine synthesis, blocking the tricarboxylic acid cycle and inducing cuproptosis-like death in the tested microbes. In the later stages of wound healing, the composite hydrogel substantially promoted macrophage polarization and angiogenesis, thus accelerating the re-epithelialization of the wound area. Overall, this study proposes an innovative hydrogel for treating infected diabetic wounds and may inspire new thinking of high-performance hydrogels for biomedical applications.
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