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载环丙沙星壳聚糖/聚氧化乙烯/二氧化硅纳米纤维的制备及其在创伤敷料中的应用:体外和体内评价。

Fabrication of ciprofloxacin-loaded chitosan/polyethylene oxide/silica nanofibers for wound dressing application: In vitro and in vivo evaluations.

机构信息

Pharmaceutical Nanotechnology Research Center, Zanjan University of Medical Sciences, Zanjan, Iran; Department of Textile Engineering, Faculty of Environmental Sciences, Urmia University of Technology, Urmia, Iran.

Department of Pathobiology, Faculty of Veterinary Medicine, Shahid Chamran University, Ahwaz, Iran.

出版信息

Int J Pharm. 2021 Mar 15;597:120313. doi: 10.1016/j.ijpharm.2021.120313. Epub 2021 Feb 1.

Abstract

Silica plays an effective role in collagen creation; hence, the degradation products of silica-based materials accelerate wound healing. In this regard, chitosan/polyethylene oxide/silica hybrid nanofibers were prepared by the combining the sol-gel method with electrospinning technique to accelerate the wound healing process. Ciprofloxacin, as an antibacterial drug, was then added to the electrospinning mixture. The nanofibers were characterized by SEM, EDX, X-ray mapping, TEM, TGA, FTIR, and XRD analysis. The degradation, swelling ratio, and release of ciprofloxacin were investigated in PBS. The prepared nanofiber could absorb water, maintain its morphological integrity during the degradation process, and gradually release ciprofloxacin. The nanofibers revealed an efficient antibacterial activity against Escherichia coli and Staphylococcus aureus. Cell viability assays showed that the nanofibers had no cytotoxicity against L929 mouse fibroblast and HFFF2 human foreskin fibroblast cell lines. The potential of the chitosan/polyethylene oxide/silica/ciprofloxacin nanofiber for healing full-thickness wound was assessed by applying the scaffold in the dorsal cutaneous wounds of the Balb/C mice. The white blood cell counts of the animals indicated the nanofiber-treated mice compared with the untreated ones had less infection and inflammation. According to the histopathologic data, the prepared nanofiber accelerated and enhanced tissue regeneration by increasing fibroblast cells and angiogenesis as well as decreasing the inflammation phase. The findings suggest that the prepared antibacterial scaffold with drug delivery properties could be an appropriate candidate for many medical and hygienic applications, especially as a bio-compatible and bio-degradable wound dressing.

摘要

硅在胶原蛋白的生成中起着有效的作用;因此,基于硅的材料的降解产物会加速伤口愈合。在这方面,通过将溶胶-凝胶法与静电纺丝技术相结合,制备了壳聚糖/聚氧化乙烯/二氧化硅杂化纳米纤维,以加速伤口愈合过程。然后将抗菌药物环丙沙星添加到静电纺丝混合物中。通过 SEM、EDX、X 射线映射、TEM、TGA、FTIR 和 XRD 分析对纳米纤维进行了表征。研究了纳米纤维在 PBS 中的降解、溶胀比和环丙沙星的释放情况。制备的纳米纤维可以吸水,在降解过程中保持其形态完整性,并逐渐释放环丙沙星。纳米纤维对大肠杆菌和金黄色葡萄球菌表现出有效的抗菌活性。细胞活力测定表明,纳米纤维对 L929 小鼠成纤维细胞和 HFFF2 人包皮成纤维细胞系没有细胞毒性。通过将支架应用于 Balb/C 小鼠的背部皮肤全层伤口,评估了壳聚糖/聚氧化乙烯/二氧化硅/环丙沙星纳米纤维的愈合全层伤口的潜力。动物的白细胞计数表明,与未处理的动物相比,纳米纤维处理的动物感染和炎症较少。根据组织病理学数据,所制备的纳米纤维通过增加成纤维细胞和血管生成以及减少炎症期,加速和增强了组织再生。这些发现表明,具有药物输送性能的这种抗菌支架可以作为许多医疗和卫生应用的合适候选物,特别是作为生物相容和可生物降解的伤口敷料。

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