伤口愈合
自愈
胶粘剂
邻苯三酚
材料科学
制作
自粘
化学
纳米技术
外科
生物化学
病理
替代医学
医学
图层(电子)
作者
Lele Tang,Yuan Dang,Yu Wang,Yunlong Zhang,Tianshuo Hu,Cui-Cui Ding,Hui Wu,Yonghao Ni,Lihui Chen,Liulian Huang,Min Zhang
出处
期刊:Biomaterials advances
[Elsevier BV]
日期:2022-03-17
卷期号:136: 212765-212765
被引量:19
标识
DOI:10.1016/j.bioadv.2022.212765
摘要
Hydrogels are functional materials that are similar to human skin and have received much attention in recent years for biomedical applications. However, the preparation of nontoxic, highly adhesive, and antimicrobial hydrogels in an efficient way remains a great challenge. Inspired by adhesive mussel foot proteins (mfps) which consist of abundant catecholic amino acids and lysine (Lys) residues, gallic acid-modified ε-poly-L-lysine (EPL/GA) was synthesized, and an active functional monomer (AA-EPL/GA) was then created through a reaction with acrylic acid (AA). The polymerization of AA-EPL/GA occurred rapidly (30-160 s) under blue light (λ = 405 nm) irradiation to produce a biomimetic PAA-EPL/GA hydrogel under mild conditions. The biomimetic pyrogallol-Lys distribution endowed the PAA-EPL/GA hydrogels with superior adhesion in humid environments (with an adhesive strength of 50.02 kPa toward wet porcine skin) and tunable mechanical and self-healing properties. Additionally, the PAA-EPL/GA hydrogels exhibited outstanding antibacterial ability due to the inherent characteristics of GA and EPL. In a mouse model, PAA-EPL/GA adhered firmly around the wound tissues. Photographs of the wound and the histological results demonstrated the ability of the hydrogel to promote wound healing, control wound infection, and suppress scar formation. Moreover, the hydrogel had a good hemostatic effect on liver bleeding. Our results highlighted the promising application potential of GA-based hydrogels, which were easily, harmlessly, and efficiently fabricated by blue light irradiation.
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