Cai Yixuan, Gao Botao, Hong Jinsong, Zhu Xiaofeng, Cheang Lek Hang, Yang Xinchun, Sun Chunhan, Zheng Shaowei, Li Ye, Wang Huajun, Wu Tingting, Zhou Zongbao, Zheng Xiaofei
Institute of Biological and Medical Engineering, Guangdong Academy of Sciences, Guangzhou 510316, China; Department of Sports Medicine, The First Affiliated Hospital, The Guangzhou Key Laboratory of Precision Orthopedics and Regenerative Medicine, Guangdong Provincial Key Laboratory of Speed Capability, Jinan University, Guangzhou 510630, China; National Engineering Research Center for Healthcare Devices, Guangzhou 510316, China; Guangdong Provincial Key Laboratory of Medical Electronic Instruments and Materials, Guangzhou 510316, China.
Institute of Biological and Medical Engineering, Guangdong Academy of Sciences, Guangzhou 510316, China; National Engineering Research Center for Healthcare Devices, Guangzhou 510316, China; Guangdong Provincial Key Laboratory of Medical Electronic Instruments and Materials, Guangzhou 510316, China.
Int J Biol Macromol. 2025 Sep;322(Pt 2):146724. doi: 10.1016/j.ijbiomac.2025.146724. Epub 2025 Aug 9.
Severe skin damage, such as trauma and burns, is a major challenge in the field of wound healing biomaterials research. In this work, a Gel/ECM nanofibrous membrane was developed through electrospinning; structurally, it mimics the extracellular matrix (ECM) involved in skin regeneration. Its mechanical properties and biological functionality are ensured by selecting the optimal Gel/ECM ratio of 4:1. Gel/ECM membrane with this ratio exhibits appropriate degradability, and has a hydrophilic surface more conducive to cell adhesion and tissue remodeling. Biocompatibility tests show that the material is cell-friendly and promotes the adhesion and proliferation of fibroblasts. In vivo rat full-thickness wound experiments showed more rapid wound closure than the control, with enhanced neovascularization and reduced scarring. Further, histological analysis showed modulation of the macrophage response by Gel/ECM 4:1 and supported collagen remodeling, hence promoting effective new tissue formation for wound repair. The Gel/ECM nanofibrous membrane provides a strong, active support structure without cells, solving problems that regular dressings often have. This work highlights the potential of ECM-functionalized electrospun membranes as an advanced wound dressing material.
严重的皮肤损伤,如创伤和烧伤,是伤口愈合生物材料研究领域的一项重大挑战。在这项工作中,通过静电纺丝制备了一种凝胶/细胞外基质(ECM)纳米纤维膜;在结构上,它模拟了参与皮肤再生的细胞外基质(ECM)。通过选择4:1的最佳凝胶/ECM比例来确保其机械性能和生物学功能。具有该比例的凝胶/ECM膜表现出适当的可降解性,并且具有更有利于细胞粘附和组织重塑的亲水性表面。生物相容性测试表明,该材料对细胞友好,并能促进成纤维细胞的粘附和增殖。体内大鼠全层伤口实验表明,与对照组相比,伤口闭合更快,新血管形成增强,疤痕减少。此外,组织学分析表明,4:1的凝胶/ECM可调节巨噬细胞反应,并支持胶原蛋白重塑,从而促进有效的新组织形成以进行伤口修复。凝胶/ECM纳米纤维膜提供了一种无细胞的强大、活性支持结构,解决了常规敷料常有的问题。这项工作突出了ECM功能化静电纺丝膜作为一种先进伤口敷料材料的潜力。