College of Biological Science and Engineering, Fuzhou University, No. 2 Xueyuan Road, Fuzhou 350108, China.
College of Biological Science and Engineering, Fuzhou University, No. 2 Xueyuan Road, Fuzhou 350108, China; Fujian Key Laboratory of Medical Instrument and Pharmaceutical Technology, Fuzhou University, No. 2 Xueyuan Road, Fuzhou 350108, China.
Acta Biomater. 2023 Mar 15;159:95-110. doi: 10.1016/j.actbio.2023.01.045. Epub 2023 Feb 2.
In general, seawater-immersed wounds are associated with tissue necrosis, infection, prolonged healing period, and high mortality because of high salinity, hyperosmosis, and the presence of various pathogenic bacteria in seawater. However, current wound dressings can hardly achieve strong and stable wet adhesion and antibacterial properties, thus limiting their application to seawater-immersed wounds. Here a multifunctional hydrogel (OD/EPL@Fe) comprising catechol-modified oxidized hyaluronic acid (OD), ε-poly-L-lysine (EPL), and Fe was prepared primarily through Schiff-base reaction, metal chelation, cation-π, and electrostatic interaction. The hydrogel with high wet adhesion (about 78 kPa) was achieved by combining the mussel-inspired strategy, dehydration effect, and cohesion enhancement, which is higher than that of commercial fibrin glues and cyanoacrylate glues. Meanwhile, the hydrogel can eliminate Marine bacteria (V. vulnificus and P. aeruginosa) and inhibit their biofilm formation. In addition, the hydrogel demonstrated injectability, self-healing, reactive oxygen species scavenging activity, photothermal effect, seawater isolation, on-demand removal, and hemostatic properties. In vivo results showed that the hydrogel had good adhesion to dynamic wounds in a rat neck full-thickness skin wound model. In particular, the hydrogel exhibited antibacterial, anti-inflammatory, and antioxidant properties in a rat seawater-immersed infected wound model and accelerated the reconstruction of skin structure and functions. The results demonstrated that the OD/EPL@Fe would be a potential wound dressing for seawater-immersed wound healing. STATEMENT OF SIGNIFICANCE: A multifunctional OD/EPL@Fe hydrogel has been prepared for the treatment of seawater-immersed wounds. The hydrogel with high wet adhesion was achieved by combining the mussel-inspired strategy, dehydration effect, and cohesion enhancement. The results revealed that the wet adhesion value of hydrogel was about eight times greater than commercial fibrin glues and 1.5 times greater than commercial cyanoacrylate glues. The hydrogel can be easily removed after being sprayed with deferoxamine mesylate. Notably, the inherent antimicrobial material of the hydrogel combined with the photothermal effect can eliminate marine bacteria and inhibit their biofilm formation. Moreover, the hydrogel can accelerate the healing of seawater-immersed infected wound on mice.
一般来说,海水浸泡的伤口会导致组织坏死、感染、愈合期延长和高死亡率,这是由于海水中的高盐度、高渗透压以及存在各种致病细菌。然而,目前的伤口敷料很难实现强而稳定的湿黏附性和抗菌性能,从而限制了它们在海水浸泡伤口中的应用。在这里,我们制备了一种多功能水凝胶(OD/EPL@Fe),它主要通过席夫碱反应、金属螯合、阳离子-π 相互作用和静电相互作用,由经过修饰的氧化透明质酸(OD)、ε-聚-L-赖氨酸(EPL)和 Fe 组成。该水凝胶通过结合贻贝启发策略、脱水效应和内聚增强作用,实现了高湿黏附性(约 78 kPa),高于商业纤维蛋白胶和氰基丙烯酸酯胶。同时,该水凝胶可以消除海洋细菌(创伤弧菌和铜绿假单胞菌)并抑制其生物膜形成。此外,该水凝胶还表现出可注射性、自修复性、活性氧清除活性、光热效应、海水隔离、按需去除和止血性能。体内结果表明,该水凝胶在大鼠颈部全层皮肤伤口模型中对动态伤口具有良好的黏附性。特别是,该水凝胶在大鼠海水浸泡感染伤口模型中表现出抗菌、抗炎和抗氧化特性,并加速了皮肤结构和功能的重建。结果表明,OD/EPL@Fe 将成为治疗海水浸泡伤口的一种有潜力的伤口敷料。