Chen Huimin, Cheng Jing, Cai Xixi, Han Jinzhi, Chen Xu, You Lijun, Xiong Caihua, Wang Shaoyun
College of Materials Science and Engineering, Fuzhou University, Fuzhou 350108, China.
College of Biological Science and Engineering, Fuzhou University, Fuzhou 350108, China.
ACS Appl Mater Interfaces. 2022 Apr 27;14(16):18120-18132. doi: 10.1021/acsami.2c00580. Epub 2022 Apr 8.
Biofilm infection will cause chronic inflammation and hinder the normal healing process of wound. Here, based on the self-assembly of three designed amphiphilic pentapeptides named EK, GG, and DR, pH-switchable antibacterial hydrogels with amphiphilic fiber network are used for the eradication of biofilms and the rescue of delayed healing in infected wounds. These pentapeptides-based hydrogels exhibit an acidic pH-switchable antimicrobial effect and are biocompatible at neutral pH. Additionally, supramolecular nanofiber networks with physical cross-linking with thermosensitive polymers (PNIPAm) and loaded antibacterial oregano oil are further developed. experiments indicate that the antimicrobial activity of hydrogels comes from the disassembly of acidic pH-dependent nanofiber network and activated release of pentapeptides and oregano oil, which achieves synergistic biofilm eradication. Remarkably, DR-based supramolecular hydrogel improves the healing efficiency of the full-thickness wound of skin , which is manifested by increased wound closure rate, reduced inflammatory response, faster angiogenesis, and collagen deposition in the wound, exhibiting great potential as wound dressing. The proposed synergistic strategy of inhibiting biofilm formation and activating healing may provide an efficient method for the treatment of clinically infected wounds.
生物膜感染会引发慢性炎症并阻碍伤口的正常愈合过程。在此,基于三种设计的两亲性五肽EK、GG和DR的自组装,具有两亲性纤维网络的pH可切换抗菌水凝胶被用于消除生物膜以及挽救感染伤口的延迟愈合。这些基于五肽的水凝胶表现出酸性pH可切换的抗菌效果,并且在中性pH下具有生物相容性。此外,还进一步开发了与热敏聚合物(PNIPAm)进行物理交联并负载抗菌牛至油的超分子纳米纤维网络。实验表明,水凝胶的抗菌活性源于酸性pH依赖性纳米纤维网络的解体以及五肽和牛至油的活化释放,从而实现了协同消除生物膜。值得注意的是,基于DR的超分子水凝胶提高了皮肤全层伤口的愈合效率,表现为伤口闭合率增加、炎症反应减轻、血管生成加快以及伤口处胶原蛋白沉积,作为伤口敷料展现出巨大潜力。所提出的抑制生物膜形成和激活愈合的协同策略可能为临床感染伤口的治疗提供一种有效方法。