Tao Mengjuan, Sun Zhiwei, Wang Haiyan, Meng Na, Chen Xiangru, Mao Jianwei, Huang Heyan, Huang Yan, Liu Jin, Wang Zhenxing, Tan Weiqiang, Chen Yonggang, Zhou Chuchao, Yang Yanqing
Department of Plastic Surgery, Tongren Hospital of Wuhan University (Wuhan Third Hospital), Wuhan, Hubei, 430060, PR China.
Department of Clinical Laboratory, Wuhan Center for Clinical Laboratory, Wuhan, Hubei, 430015, PR China.
Mater Today Bio. 2025 Apr 9;32:101751. doi: 10.1016/j.mtbio.2025.101751. eCollection 2025 Jun.
The incorporation of hydrogels with biocompatible functional components to develop wound dressings exhibiting potent antibacterial, antioxidant, anti-inflammatory, and angiogenic properties to promote diabetic wound healing is highly desirable yet continues to pose a significant challenge. In this study, wormwood essential oil (WEO) is successfully encapsulated within black phosphorus (BP) using a physical extrusion technique. Subsequently, this composite is encapsulated within biocompatible gelatin methacrylate (GelMA) and hyaluronic acid methacrylate (HAMA) hydrogels to create multifunctional hydrogel dressing (WEO@BP/GH). In comparison to traditional hydrogels, BP enhances the encapsulation stability of WEO and improves the microenvironmental regulation capabilities through NIR-triggered release of WEO. Systemic in vitro experiments demonstrate that synergistic interaction between the diverse bioactive components of WEO and photothermal effects of BP results in highly effective antibacterial activities against and , antioxidant of scavenging ROS, anti-inflammation of downregulating M1/M2 macrophages ratio, and angiogenic properties. Moreover, the in vivo tests demonstrate that WEO@BP/GH hydrogel significantly enhances high-performance diabetic wound repair through the acceleration of hemostasis, promotion of collagen deposition, regulation of inflammatory responses, and facilitation of vascularization. The findings indicate that WEO@BP/GH hydrogel holds considerable promise as a candidate for microenvironment regulation and effective diabetic wound healing across various clinical applications.
将水凝胶与生物相容性功能成分结合,以开发出具有强大抗菌、抗氧化、抗炎和促血管生成特性的伤口敷料,从而促进糖尿病伤口愈合,这是非常理想的,但仍然面临重大挑战。在本研究中,采用物理挤压技术成功地将艾草精油(WEO)包裹在黑磷(BP)中。随后,将该复合材料包裹在生物相容性甲基丙烯酸明胶(GelMA)和甲基丙烯酸透明质酸(HAMA)水凝胶中,制成多功能水凝胶敷料(WEO@BP/GH)。与传统水凝胶相比,BP提高了WEO的包封稳定性,并通过近红外触发WEO的释放提高了微环境调节能力。系统的体外实验表明,WEO的多种生物活性成分与BP的光热效应之间的协同相互作用导致对[具体细菌1]和[具体细菌2]具有高效抗菌活性、清除ROS的抗氧化作用、下调M1/M2巨噬细胞比例的抗炎作用以及促血管生成特性。此外,体内试验表明,WEO@BP/GH水凝胶通过加速止血、促进胶原蛋白沉积、调节炎症反应和促进血管生成,显著增强了高性能糖尿病伤口修复。研究结果表明,WEO@BP/GH水凝胶作为一种用于各种临床应用中微环境调节和有效糖尿病伤口愈合的候选材料具有很大的前景。