National Engineering Research Center of Ophthalmology and Optometry, Eye Hospital, Wenzhou Medical University, Wenzhou, 325027, China.
Wenzhou Institute, Wenzhou Key Laboratory of Perioperative Medicine, University of Chinese Academy of Sciences, Wenzhou, 325001, China.
Adv Sci (Weinh). 2024 Mar;11(9):e2305405. doi: 10.1002/advs.202305405. Epub 2023 Dec 20.
Treating the most widespread complication of diabetes: diabetic wounds poses a significant clinical obstacle due to the intricate nature of wound healing in individuals with diabetes. Here a novel approach is proposed using easily applicable injectable gelatin/metal/tea polyphenol double nanonetworks, which effectively remodel the wound microenvironment and accelerates the healing process. The gelatin(Gel) crosslink with metal ions (Zr ) through the amino acids, imparting advantageous mechanical properties like self-healing, injectability, and adhesion. The nanonetwork's biological functions are further enhanced by incorporating the tea polyphenol metal nanonetwork through in situ doping of the epigallocatechin gallate (EGCG) with great antibacterial, self-healing, antioxidant, and anticancer capabilities. The in vitro and in vivo tests show that this double nanonetworks hydrogel exhibits faster cell migration and favorable anti-inflammatory and antioxidant properties and can greatly reshape the microenvironment of diabetic wounds and accelerate the wound healing rate. In addition, this hydrogel is completely degraded after subcutaneous injection for 7 days, with nondetectable cytotoxicity in H&E staining of major mice organs and the serum level of liver function indicators. Considering the above-mentioned merits of this hydrogel, it is believed that the injectable gelatin/metal/tea polyphenol double nanonetworks have broad biomedical potential, especially in diabetic wound repair and tissue engineering.
糖尿病伤口由于糖尿病患者伤口愈合的复杂性而构成重大临床障碍。在这里,提出了一种新的方法,使用易于应用的可注射明胶/金属/茶多酚双重纳米网络,有效地重塑伤口微环境并加速愈合过程。明胶(Gel)通过氨基酸与金属离子(Zr)交联,赋予了自修复、可注射性和粘附性等有利的机械性能。通过将表没食子儿茶素没食子酸酯(EGCG)原位掺杂到纳米网络中,进一步增强了纳米网络的生物学功能,具有出色的抗菌、自修复、抗氧化和抗癌能力。体外和体内试验表明,这种双重纳米网络水凝胶表现出更快的细胞迁移和良好的抗炎和抗氧化特性,可以极大地重塑糖尿病伤口的微环境并加速伤口愈合速度。此外,这种水凝胶在皮下注射 7 天后完全降解,在 H&E 染色的主要小鼠器官和肝功能指标的血清水平中没有检测到细胞毒性。考虑到这种水凝胶的上述优点,相信可注射明胶/金属/茶多酚双重纳米网络具有广泛的生物医学潜力,特别是在糖尿病伤口修复和组织工程中。