Snail-inspired AFG/GelMA hydrogel accelerates diabetic wound healing via inflammatory cytokines suppression and macrophage polarization

巨噬细胞极化 材料科学 伤口愈合 自愈水凝胶 生物材料 生物相容性 炎症 粘液 促炎细胞因子 生物医学工程 巨噬细胞 细胞生物学 免疫学 化学 医学 生物 生物化学 体外 冶金 高分子化学 生态学
作者
Zhipeng Zhou,Tuo Deng,Maixian Tao,Lisha Lin,Luyun Sun,Xuemei Song,Dongxiu Gao,Jixing Li,Zhongjuan Wang,Xingzi Wang,Jinpeng Li,Zexiu Jiang,Lan Luo,Lian Yang,Mingyi Wu
出处
期刊:Biomaterials [Elsevier]
卷期号:299: 122141-122141 被引量:69
标识
DOI:10.1016/j.biomaterials.2023.122141
摘要

Diabetic foot ulcers (DFUs) are a severe and rapidly growing diabetic complication, but treating DFUs remains a challenge for the existing therapies are expensive and highly non-responsive. Recently, we discovered that a natural adhesive from snail mucus can promote skin wound healing. Herein, inspired by the finding, we developed a double-network hydrogel biomaterial that composed of snail glycosaminoglycan (AFG) and methacrylated gelatin (GelMA), in which AFG is the main bioactive component of snail mucus and GelMA provides a scaffold mimicking the proteins in snail mucus. The biomimetic hydrogel exhibited strong tissue adhesion, potent anti-inflammatory activity, and excellent biocompatibility. The biodegradable AFG/GelMA hydrogel markedly promoted chronic wound healing in both STZ-induced type 1 diabetic rat and db/db mouse models after a single treatment. Further mechanistic research showed that the hydrogel significantly attenuated inflammation by sequestrating pro-inflammatory cytokines, as well as downregulated their expression by inhibiting NF-ĸB signaling pathway, and it can also promote macrophage polarization to M2 phenotype. Taken together, the bioinspired hydrogel can effectively promote the transition of chronic wounds from inflammation to proliferation stage. These data suggest that the AFG/GelMA hydrogel is a promising therapeutic biomaterial for the treatment of chronic diabetic wounds.
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