Wu Lihuang, Wang Yuqi, Zhao Xinyue, Zhao Tingting, Li Junhua, Kuang Yi, He Yiyan, Yang Shengxiang, Gu Zhongwei, Mao Hongli
Research Institute for Biomaterials, Tech Institute for Advanced Materials, Bioinspired Biomedical Materials & Devices Center, College of Materials Science and Engineering, Jiangsu Collaborative Innovation Center for Advanced Inorganic Function Composites, Suqian Advanced Materials Industry Technology Innovation Center, Nanjing Tech University, Nanjing, 211816, China.
College of Chemical and Materials Engineering, Zhejiang A&F University, Lin'an, 311300, China.
J Nanobiotechnology. 2025 Jun 16;23(1):448. doi: 10.1186/s12951-025-03513-9.
Full-thickness cutaneous wounds pose a significant threat to global health due to their complex healing demands. Standard clinical wound dressings often fall short in providing the adaptability and functionality required for the entire healing process. While hierarchically engineered nanofiber dressings have shown advancement in wound management, challenges such as material compatibility and interfacial bonding during their design have limited both manufacturing and therapeutic outcomes. This study introduces a self-adhesive hierarchical nanofiber (SAHN) patch designed to provide a comprehensive and dynamic approach to wound care. The SAHN patch strategically integrates synthetic biodegradable poly(ester carbonate) with natural bioactive components, forming a seamless dual-layer system that offers both immediate protection and sustained bioactivity to support tissue regeneration. In vitro and in vivo studies demonstrate the patch's superior interlayer adhesion, soft tissue adhesion, controlled degradation, and robust antibacterial capabilities. These features collectively safeguard the wound microenvironment, facilitate hemostasis, manage inflammation, and accelerate wound closure. Our findings highlight the transformative potential of the SAHN patch in improving traditional wound care, overcoming the manufacturing challenges associated with hierarchical nanofiber dressings, and offering a promising solution for dynamic and multistage management of full-thickness cutaneous wounds that aligns with the natural progression of tissue repair.
全层皮肤伤口因其复杂的愈合需求,对全球健康构成重大威胁。标准临床伤口敷料在提供整个愈合过程所需的适应性和功能性方面往往有所欠缺。虽然分层设计的纳米纤维敷料在伤口处理方面已取得进展,但其设计过程中的材料兼容性和界面结合等挑战限制了制造和治疗效果。本研究介绍了一种自粘性分层纳米纤维(SAHN)贴片,旨在为伤口护理提供全面且动态的方法。SAHN贴片策略性地将合成可生物降解聚(碳酸酯)与天然生物活性成分整合在一起,形成一个无缝双层系统,既能立即提供保护,又能持续发挥生物活性以支持组织再生。体外和体内研究证明了该贴片具有优异的层间附着力、软组织粘附力、可控降解性和强大的抗菌能力。这些特性共同保护伤口微环境,促进止血,控制炎症并加速伤口愈合。我们的研究结果突出了SAHN贴片在改善传统伤口护理、克服与分层纳米纤维敷料相关的制造挑战以及为全层皮肤伤口的动态和多阶段管理提供有前景的解决方案方面的变革潜力,该方案与组织修复的自然进程相一致。