College of Chemical Engineering & College of Biological Science and Engineering, Fuzhou University, Fuzhou 350108, China.
College of Chemical Engineering & College of Biological Science and Engineering, Fuzhou University, Fuzhou 350108, China.
Int J Biol Macromol. 2024 May;268(Pt 2):131905. doi: 10.1016/j.ijbiomac.2024.131905. Epub 2024 Apr 29.
Gelatin and sodium alginate (SA) are two important biological macromolecules, exhibiting excellent biocompatibility and gel-forming ability. However, traditional SA and gelatin hydrogel displays limited mass transport, low porosity, instability, and poor mechanical properties extremely restricted their therapeutic effect and application scenarios. Herein, microbial fermentation and synergistic toughening strategies were used for preparing macroporous and tough hydrogel. The study investigated the fermentation and toughening conditions of hydrogel. The hydrogel composed of CaCl cross-linked physically network and EDC/NHS cross-linked covalently network, exhibiting significantly improved mechanical properties, and excellent recovery efficiency. In addition, the hydrogel has a hierarchical macroporous structure of 100-500 μm, demonstrating high porosity of 10 times, swelling rate of 1541.0 %, and high mass infiltration capability. Further, after Ag treatment, the macroporous hydrogel dressing showed outstanding biocompatibility. Compared with non-porous hydrogel, the resulting macroporous hydrogel dressing displayed high antibacterial and antioxidant properties. It could effectively alleviate intracellular ROS formation induced by HOIn vivo experiments indicated that it has significantly better effect than non-porous hydrogel in accelerating wound healing. The overall results suggest that the gelatin/SA-based macroporous and tough hydrogel proposed in this study holds excellent prospects for application in wound dressings.
明胶和海藻酸钠(SA)是两种重要的生物大分子,具有优异的生物相容性和凝胶形成能力。然而,传统的 SA 和明胶水凝胶表现出有限的传质能力、低孔隙率、不稳定性和较差的机械性能,极大地限制了它们的治疗效果和应用场景。在此,采用微生物发酵和协同增韧策略来制备大孔和坚韧的水凝胶。本研究考察了水凝胶的发酵和增韧条件。该水凝胶由 CaCl2 物理交联的网络和 EDC/NHS 共价交联的网络组成,表现出显著改善的机械性能和优异的回复效率。此外,水凝胶具有 100-500 μm 的分级大孔结构,表现出 10 倍的高孔隙率、1541.0%的高溶胀率和高质量渗透能力。进一步的,经 Ag 处理后,大孔水凝胶敷料表现出出色的生物相容性。与非多孔水凝胶相比,所得的大孔水凝胶敷料表现出高的抗菌和抗氧化性能。它可以有效地减轻 HO 诱导的细胞内 ROS 形成。体内实验表明,它在加速伤口愈合方面的效果明显优于非多孔水凝胶。总的来说,本研究中提出的基于明胶/SA 的大孔坚韧水凝胶具有在伤口敷料中应用的广阔前景。