Li Rui, Cheng Zhiqiang, Wen Ruicheng, Zhao Xiaodong, Yu Xiaobin, Sun Lin, Zhang Yingying, Han Zhiyuan, Yuan Yafeng, Kang Lijuan
College of Resources and Environment, Jilin Agriculture University Changchun 130118 People's Republic of China
College of Life Sciences, Jilin Agricultural University Changchun 130118 People's Republic of China.
RSC Adv. 2018 Apr 24;8(28):15558-15566. doi: 10.1039/c8ra00784e. eCollection 2018 Apr 23.
Therapeutic drugs remain of great significance for the absorption of wound blood, the closure of wounds and rapid wound healing. Hence, we propose a novel composite nanofiber membrane with the above characteristics as a wound healing material. We utilize the reaction of calcium ion and alginate gel, sodium alginate (SA) and skin peptides (RCSPs) extracted from discarded skin; these two natural substances were successfully used to prepare composite nanofibers by coaxial electrospinning. The composite nanofibers are named SA@Ca/RCSPs nanofibers. SA@Ca/RCSPs nanofibers exhibited that the nanofibers contact with the liquid is unmelted, instead become gel, when compared to nanofibers of does not contain calcium ions, and the absorption rate reached 179.87%. SA@Ca/RCSPs nanofibers conform to the quasi-first-order dynamics model and the Ritger-Peppas release model. wound healing experiments showed that the wound-healing rate of SA@Ca/RCSPs nanofiber-treated wounds was 46.65% and 97.46% on days 5 and 15, respectively. In addition, SA@Ca/RCSPs nanofibers promoted collagen deposition and enhanced epidermal regeneration. The present study showed that composite nanofibers could quickly undergo hemostasis and effectively promote wound healing.
治疗药物对于伤口血液吸收、伤口闭合和伤口快速愈合仍具有重要意义。因此,我们提出一种具有上述特性的新型复合纳米纤维膜作为伤口愈合材料。我们利用钙离子与海藻酸盐凝胶、海藻酸钠(SA)和从废弃皮肤中提取的皮肤肽(RCSPs)的反应;这两种天然物质通过同轴电纺成功用于制备复合纳米纤维。这种复合纳米纤维被命名为SA@Ca/RCSPs纳米纤维。与不含钙离子的纳米纤维相比,SA@Ca/RCSPs纳米纤维表现出与液体接触时不会熔化,而是变成凝胶,其吸收率达到179.87%。SA@Ca/RCSPs纳米纤维符合准一级动力学模型和Ritger-Peppas释放模型。伤口愈合实验表明,在第5天和第15天,SA@Ca/RCSPs纳米纤维处理的伤口愈合率分别为46.65%和97.46%。此外,SA@Ca/RCSPs纳米纤维促进了胶原蛋白沉积并增强了表皮再生。本研究表明,复合纳米纤维能够快速止血并有效促进伤口愈合。