College of Chemistry and Chemical Engineering, Shaanxi University of Science & Technology, Wei Yang District, Xi'an 710021, Shaanxi, China; Institute of Biomass & Functional Materials, Shaanxi University of Science & Technology, Weiyang District, Xi'an, Shaanxi 710021, China.
National Demonstration Center for Experimental Light Chemistry Engineering Education, Shaanxi University of Science & Technology, Weiyang District, Xi'an 710021, Shaanxi, China; Institute of Biomass & Functional Materials, Shaanxi University of Science & Technology, Weiyang District, Xi'an, Shaanxi 710021, China.
Biomater Adv. 2022 Mar;134:112556. doi: 10.1016/j.msec.2021.112556. Epub 2021 Nov 20.
Gelatin-based bioadhesives are suitable for the treatment of wounds due to their inherent biocompatibility, lack of immunogenicity, and potential for modification. However, common limitations with such adhesives include their adhesive strength and versatility. In the present study, a multifunctional injectable temperature-sensitive gelatin-based adhesive double-network hydrogel (DNGel) was engineered using facile dual-syringe methodology. An integrative crosslinking strategy utilized the complexation of catechol-Fe and NIPAAm-methacryloyl. As anticipated, the DNGel exhibited multifunctional therapeutic properties, namely temperature-sensitivity, mechanical flexibility, good adhesive strength, injectability, self-healing capability, antibacterial activity, and the capability to enable hemostasis and wound healing. The bioinspired dynamic double-network was stabilized by a number of molecular interactions between components in the DNGel, providing multifunctional therapeutic performance. In addition, comprehensive in vitro and in vivo testing confirmed that the adhesive hydrogel exhibited effective antihemorrhagic properties and accelerated wound healing by the promotion of revascularization, representing considerable potential as a next-generation multifunctional smart adhesive patch.
基于明胶的生物粘合剂由于其固有生物相容性、缺乏免疫原性和潜在的可修饰性,适用于治疗伤口。然而,此类粘合剂通常存在的局限性包括其粘合力和通用性。在本研究中,采用简便的双注射器方法构建了一种多功能可注射温度敏感的基于明胶的双网络水凝胶(DNGel)。一种综合的交联策略利用了儿茶酚-Fe 和 NIPAAm-丙烯酰之间的络合作用。正如预期的那样,DNGel 表现出多功能治疗特性,即温度敏感性、机械柔韧性、良好的粘合力、可注射性、自修复能力、抗菌活性以及止血和伤口愈合的能力。生物启发的动态双网络通过 DNGel 中各成分之间的多种分子相互作用得到稳定,从而提供多功能治疗性能。此外,全面的体外和体内测试证实,该粘合水凝胶通过促进血管生成显示出有效的抗出血特性和加速伤口愈合的作用,有望成为下一代多功能智能粘合贴片。