School of pharmacy, Nanjing Tech University, 5th Mofan Road, Nanjing, 21009, China.
Department of Microbiology and Immunology, Stanford University, Stanford, CA 94305, USA.
Biomater Sci. 2022 Jun 14;10(12):3174-3187. doi: 10.1039/d2bm00157h.
Most wound dressings encounter a series of problems when dealing with the bacterial infection of wounds, for example, the antibacterial and antioxidant capacities, comfort, and mechanical properties are not suitable to meet clinical requirements. Here, we synthesized ε-polylysine-grafted nanocellulose (NCF-EPL) and polydopamine (PDA) nanoparticles and embedded them in genipin-cross-linked gelatin to prepare a hydrogel (NCF-EPL/GTP/PDA). In this system, the embedded NCF-EPL and PDA interact with the gelatin matrix to form a hydrogel with excellent physical properties. The hydrogel has broad-spectrum antibacterial abilities and good antioxidant performance, and it can effectively promote cell proliferation. Full-thickness MRSA-infected skin wound healing experiments clearly show that the NCF-EPL/GTP/PDA hydrogel can significantly accelerate the healing of infected wounds killing bacteria and reducing inflammation, and secondary damage caused by adhesion during dressing use is effectively avoided. In short, the hydrogel provides a new method for overcoming the shortcomings of traditional dressings, and this approach provides further solutions for the selection of clinical dressings for healing wounds.
大多数伤口敷料在处理伤口细菌感染时会遇到一系列问题,例如,抗菌和抗氧化能力、舒适性和机械性能都不适合满足临床要求。在这里,我们合成了ε-聚赖氨酸接枝纳米纤维素(NCF-EPL)和聚多巴胺(PDA)纳米粒子,并将其嵌入到京尼平交联明胶中,制备了水凝胶(NCF-EPL/GTP/PDA)。在该体系中,嵌入的 NCF-EPL 和 PDA 与明胶基质相互作用,形成具有优异物理性能的水凝胶。该水凝胶具有广谱抗菌能力和良好的抗氧化性能,能有效促进细胞增殖。全厚层耐甲氧西林金黄色葡萄球菌(MRSA)感染皮肤伤口愈合实验清楚地表明,NCF-EPL/GTP/PDA 水凝胶能显著加速感染伤口的愈合,杀死细菌并减轻炎症,同时有效避免了使用敷料时的粘连造成的二次损伤。总之,该水凝胶为克服传统敷料的缺点提供了一种新方法,这一方法为治疗伤口的临床敷料选择提供了进一步的解决方案。