| Literature DB >> 35929210 |
Tongtong Leng1, Yidan Wang1, Wei Cheng1, Wensi Wang2, Xiaoyan Qu1, Bo Lei3.
Abstract
Highly efficient wound healing and skin regeneration remain a challenge. Long-term inflammation and bacterial infection can inhibit the healing process and lead to the scar formation. Here, we report a hydrogel (FEM) formed by self-assembly of ε-poly-l-lysine-F127-ε-poly-l-lysine (EPL-F127-EPL) and metformin for wound repair. Especially, the role of metformin-based antibacterial hydrogel in wound healing and repair was investigated for the first time. FEM has inherent multifunctional properties, including controlled metformin release, anti-inflammatory and antibacterial activity, temperature responsiveness, injectable and self-healing capabilities. The in vivo results showed that FEM dressings accelerated the wound healing by stimulating the angiogenesis process of the wound tissue and anti-inflammation. This study shows that the multifunctional metformin-contained hydrogel scaffolds could enhance the wound repair through the anti-inflammation and accelerated angiogenesis, which could also expand the biomedical applications of metformin-based biomaterials.Entities:
Keywords: Anti-inflammation; Bioactive biomaterials; Metformin; Multifunctional scaffolds; Wound healing
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Year: 2022 PMID: 35929210 DOI: 10.1016/j.bioadv.2022.212737
Source DB: PubMed Journal: Biomater Adv ISSN: 2772-9508