Jiang Zewu, Sun Qingqing, Li Qian, Li Xiaomeng
School of Mechanics and Safety Engineering, Zhengzhou University, Zhengzhou 450001, China.
National Center for International Joint Research of Micro-Nano Moulding Technology, Zhengzhou University, Zhengzhou 450001, China.
Gels. 2023 Feb 24;9(3):181. doi: 10.3390/gels9030181.
The effectiveness of cell culture and tissue regeneration largely depends on the structural and physiochemical characteristics of tissue-engineering scaffolds. Hydrogels are frequently employed in tissue engineering because of their high-water content and strong biocompatibility, making them the ideal scaffold materials for simulating tissue structures and properties. However, hydrogels created using traditional methods have low mechanical strength and a non-porous structure, which severely restrict their application. Herein, we successfully developed silk fibroin glycidyl methacrylate (SF-GMA) hydrogels with oriented porous structures and substantial toughness through directional freezing (DF) and in situ photo-crosslinking (DF-SF-GMA). The oriented porous structures in the DF-SF-GMA hydrogels were induced by directional ice templates and maintained after photo-crosslinking. The mechanical properties, particularly the toughness, of these scaffolds were enhanced compared to the traditional bulk hydrogels. Interestingly, the DF-SF-GMA hydrogels exhibit fast stress relaxation and variable viscoelasticity. The remarkable biocompatibility of the DF-SF-GMA hydrogels was further demonstrated in cell culture. Accordingly, this work reports a method to prepare tough SF hydrogels with aligned porous structures, which can be extensively applied to cell culture and tissue engineering.
细胞培养和组织再生的有效性很大程度上取决于组织工程支架的结构和物理化学特性。水凝胶因其高含水量和强生物相容性而经常用于组织工程,使其成为模拟组织结构和特性的理想支架材料。然而,使用传统方法制备的水凝胶机械强度低且结构无孔,这严重限制了它们的应用。在此,我们通过定向冷冻(DF)和原位光交联(DF-SF-GMA)成功开发了具有定向多孔结构和高韧性的丝素蛋白甲基丙烯酸缩水甘油酯(SF-GMA)水凝胶。DF-SF-GMA水凝胶中的定向多孔结构由定向冰模板诱导,并在光交联后得以保留。与传统的块状水凝胶相比,这些支架的机械性能,特别是韧性得到了增强。有趣的是,DF-SF-GMA水凝胶表现出快速的应力松弛和可变的粘弹性。DF-SF-GMA水凝胶卓越的生物相容性在细胞培养中得到了进一步证明。因此,这项工作报道了一种制备具有排列多孔结构的坚韧丝素蛋白水凝胶的方法,该方法可广泛应用于细胞培养和组织工程。