Ma Yongsheng, Xu Shuyi, Yue Pengpeng, Cao Hankun, Zou Yongkang, Wang Lizhe, Long Haitao, Wu Shuangquan, Ye Qifa
Zhongnan Hospital of Wuhan University, Institute of Hepatobiliary Diseases of Wuhan University, Transplant Center of Wuhan University, National Quality Control Center for Donated Organ Procurement, Hubei Key Laboratory of Medical Technology on Transplantation, Hubei Clinical Research Center for Natural Polymer Biological Liver, Hubei Engineering Center of Natural Polymer-based Medical Materials, Wuhan 430071, Hubei, PR China.
Wuhan University School of Nursing, Wuhan 430071, Hubei, PR China.
Carbohydr Polym. 2023 Apr 15;306:120575. doi: 10.1016/j.carbpol.2023.120575. Epub 2023 Jan 12.
Infections caused by bacteria have long constituted a major threat to human health and the economy. Therefore, there is an urgent need to design broad-spectrum antibacterial materials possessing good biocompatibility to treat such infections. Herein, inspired by the good biocompatibility of chitin and antibacterial properties of imidazolium salts, a polysaccharide-based material, imidazolium salt chitin (IMSC), was homogeneously prepared using a facile method with epichlorohydrin as a chemical crosslinker to combine chitin with imidazole to enhance Staphylococcus aureus (S. aureus)-infected wound healing. The characteristics, antimicrobial properties, and biosafety of IMSC were evaluated. The results demonstrated successful grafting of imidazole onto chitin. Furthermore, IMSC exhibited good water solubility, broad-spectrum antimicrobial activity, hemocompatibility, and biocompatibility. Moreover, IMSC enabled complete healing of S. aureus-infected wound in Sprague-Dawley rats within 15 days of application, thus demonstrating that IMSC could reduce wound inflammation and remarkably accelerate wound healing owing to its efficient antibacterial activity and ability to promote collagen deposition in and around the wound area. Therefore, this study provides a promising and potential therapeutic strategy for infected wound healing by synthesizing a water-soluble and broad-spectrum antimicrobial material exhibiting good biocompatibility.
细菌引起的感染长期以来一直对人类健康和经济构成重大威胁。因此,迫切需要设计具有良好生物相容性的广谱抗菌材料来治疗此类感染。在此,受几丁质良好的生物相容性和咪唑盐抗菌性能的启发,采用一种简便的方法,以环氧氯丙烷作为化学交联剂,将几丁质与咪唑均匀结合,制备了一种多糖基材料——咪唑盐几丁质(IMSC),以促进金黄色葡萄球菌感染伤口的愈合。对IMSC的特性、抗菌性能和生物安全性进行了评估。结果表明咪唑成功接枝到了几丁质上。此外,IMSC表现出良好的水溶性、广谱抗菌活性、血液相容性和生物相容性。而且,在应用15天内,IMSC使斯普拉格-道利大鼠的金黄色葡萄球菌感染伤口完全愈合,这表明IMSC由于其高效的抗菌活性和促进伤口区域及其周围胶原蛋白沉积的能力,能够减轻伤口炎症并显著加速伤口愈合。因此,本研究通过合成一种具有良好生物相容性的水溶性广谱抗菌材料,为感染伤口愈合提供了一种有前景且潜在的治疗策略。