Nature Communications · 2019 · 998 citations · 44 references
Adhesive hydrogels are popular in biomedicine but typically have short‑term adhesion, weak mechanical strength, and no antibacterial activity. The study aims to design tough, adhesive hydrogels by exploiting dynamic plant catechol chemistry. The resulting hydrogel, formed through Ag‑Lignin nanoparticle‑triggered redox catechol chemistry, offers long‑lasting, repeatable adhesion, self‑gelation at ambient conditions, high toughness from covalent and non‑covalent interactions, and strong antibacterial as well as cell‑friendly properties.
Abstract Adhesive hydrogels have gained popularity in biomedical applications, however, traditional adhesive hydrogels often exhibit short-term adhesiveness, poor mechanical properties and lack of antibacterial ability. Here, a plant-inspired adhesive hydrogel has been developed based on Ag-Lignin nanoparticles (NPs)triggered dynamic redox catechol chemistry. Ag-Lignin NPs construct the dynamic catechol redox system, which creates long-lasting reductive-oxidative environment inner hydrogel networks. This redox system, generating catechol groups continuously, endows the hydrogel with long-term and repeatable adhesiveness. Furthermore, Ag-Lignin NPs generate free radicals and trigger self-gelation of the hydrogel under ambient environment. This hydrogel presents high toughness for the existence of covalent and non-covalent interaction in the hydrogel networks. The hydrogel also possesses good cell affinity and high antibacterial activity due to the catechol groups and bactericidal ability of Ag-Lignin NPs. This study proposes a strategy to design tough and adhesive hydrogels based on dynamic plant catechol chemistry.
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