Wang Fei, Wang Xing, Li Siwei, Yang Qisen, Mu Haibo, Li Jinyao, Yang Yu
Xinjiang Key Laboratory of Biological Resources and Genetic Engineering, College of Life Science and Technology, Xinjiang University, Urumqi 830046, Xinjiang, China; College of Chemistry & Pharmacy, Northwest A&F University, Yangling 712100, Shaanxi, China.
College of Chemistry & Pharmacy, Northwest A&F University, Yangling 712100, Shaanxi, China.
Carbohydr Polym. 2025 Feb 15;350:123046. doi: 10.1016/j.carbpol.2024.123046. Epub 2024 Nov 20.
Severe skin damage resulting from acute trauma is often accompanied by uncontrolled bleeding, microbial infections, and delayed wound healing. Herein, multifunctional sprayable hydrogels (CT-CS-ZIF@CIP Gel) were developed for wound management by incorporating antibacterial nanoplatforms (CT-CS-ZIF@CIP) into photocurable gels consisting of chitosan methacrylate and gallic acid grafted gelatin. The nanoplatform was initially constructed by sequentially loading CuSe (CS) and ciprofloxacin-decorated zeolitic imidazolate framework-8 (ZIF@CIP) onto Cu-doped Ti MOF (CT), in which CS served as a photothermal agent, ZIF enabled pH-responsive release of CIP, and CT acted as carriers for CS and ZIF@CIP. The hydrogel precursor can be sprayed onto wound surface and photocured quickly, allowing hydrogel to fit the wound shape and form a protective barrier onsite. The resultant hydrogel exhibited excellent hemostatic ability, adhesion properties, cytocompatibility and toxin adsorption capacity. By integrating CS for short-term photothermal therapy with CIP for long-acting chemotherapy, the CT-CS-ZIF@CIP Gel demonstrated 100 % sterilization of three bacterial strains. Furthermore, moderate release of zinc and copper ions promoted wound healing. The therapeutic efficacy of hydrogel was validated in an infected cutaneous mouse model. Overall, this work presents a versatile sprayable hydrogel that can be flexibly applied to irregular dynamic wounds for safe and effective wound management.
急性创伤导致的严重皮肤损伤常伴有难以控制的出血、微生物感染和伤口愈合延迟。在此,通过将抗菌纳米平台(CT-CS-ZIF@CIP)整合到由甲基丙烯酸壳聚糖和没食子酸接枝明胶组成的光固化凝胶中,开发了用于伤口处理的多功能可喷涂水凝胶(CT-CS-ZIF@CIP凝胶)。该纳米平台最初是通过将硒化铜(CS)和环丙沙星修饰的沸石咪唑酯骨架-8(ZIF@CIP)依次负载到铜掺杂的钛金属有机框架(CT)上构建而成,其中CS作为光热剂,ZIF实现CIP的pH响应释放,CT作为CS和ZIF@CIP的载体。水凝胶前体可喷涂在伤口表面并快速光固化,使水凝胶能够贴合伤口形状并在现场形成保护屏障。所得水凝胶表现出优异的止血能力、粘附性能、细胞相容性和毒素吸附能力。通过将用于短期光热治疗的CS与用于长效化疗的CIP相结合,CT-CS-ZIF@CIP凝胶对三种细菌菌株的杀菌率达100%。此外,锌和铜离子的适度释放促进了伤口愈合。水凝胶的治疗效果在感染性皮肤小鼠模型中得到验证。总体而言,这项工作展示了一种多功能可喷涂水凝胶,可灵活应用于不规则动态伤口,实现安全有效的伤口处理。