Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University, Wuxi, 214122, China.
Key Laboratory of Medicinal Resources and Natural Pharmaceutical Chemistry, Ministry of Education, College of Life Sciences, Shaanxi Normal University, Xi'an, 710119, China.
Macromol Biosci. 2020 Jun;20(6):e2000036. doi: 10.1002/mabi.202000036. Epub 2020 Apr 2.
Burn wound healing remains a challenging health problem worldwide due to the lack of efficient and precise therapy. Inherent oxidative stress following burn injury is importantly responsible for prolonged inflammation, fibrotic scar, and multiple organ failure. Herein, a bioinspired antioxidative defense system coupling with in situ forming hydrogel, namely, multiresponsive injectable catechol-Fe coordination hydrogel (MICH) matrix, is engineered to promote burn-wound dermal repair by inhibiting tissue oxidative stress. This MICH matrix serves as the special traits of "Fe-superoxide dismutases," small molecular antioxidant (vitamin E), and extracellular matrix (ECM) in alleviating cellular oxidative damage, which demonstrates precise scavenging on reactive oxygen species (ROS) of different cellular locations, blocking lipid peroxidation and cell apoptosis. In in vivo burn-wound treatment, this MICH promptly integrates with injured surrounding tissue to provide hydration microenvironment and physicochemical ECM for burn wounds. Importantly, the MICH matrix suppresses tissue ROS production, reducing the inflammatory response, prompting re-epithelization and neoangiogenesis during wound healing. Meanwhile, the remodeling skin treated with MICH matrix demonstrates low collagen deposition and normal dermal collagen architecture. Overall, the MICH prevents burn wound progression and enhances skin regeneration, which might be a promising biomaterial for burn-wound care and other disease therapy induced by oxidative stress.
烧伤创面愈合仍然是一个具有挑战性的全球健康问题,因为缺乏有效的、精准的治疗方法。烧伤后固有的氧化应激是导致长期炎症、纤维性瘢痕和多器官衰竭的重要原因。在此,我们构建了一种仿生抗氧化防御系统,结合原位形成水凝胶,即多响应性可注射儿茶酚-Fe 配位水凝胶 (MICH) 基质,通过抑制组织氧化应激来促进烧伤创面皮肤修复。该 MIC 基质具有“Fe-超氧化物歧化酶”、小分子抗氧化剂(维生素 E)和细胞外基质 (ECM) 的特殊特性,可减轻细胞氧化损伤,对不同细胞位置的活性氧 (ROS) 具有精确的清除作用,阻断脂质过氧化和细胞凋亡。在体内烧伤创面治疗中,该 MIC 迅速与损伤的周围组织整合,为烧伤创面提供水合微环境和物理化学 ECM。重要的是,MICH 基质抑制组织 ROS 的产生,减轻炎症反应,在创面愈合过程中促进再上皮化和新生血管形成。同时,用 MIC 基质处理的重塑皮肤显示出较低的胶原蛋白沉积和正常的真皮胶原结构。总之,MICH 可防止烧伤创面进展并增强皮肤再生,有望成为一种用于烧伤创面护理和其他由氧化应激引起的疾病治疗的有前途的生物材料。