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Optimizing the nanostructure of graphene oxide/silver/arginine for effective wound healing

机译:优化石墨烯氧化物/银/精氨酸的纳米结构,以进行有效伤口愈合

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In this study, we introduce a novel graphene oxide/silver/arginine (GO/Ag/Arg) nanohybrid structure, which can act as an angiogenesis promoter and provide antibacterial nanostructure for improving the wound healing process. GO/Ag nanostructure has been optimized in terms of the GO/Ag mass ratio and pH values using central composite design and the response surface method to increase the Ag loading efficiency. Then, Arg was chemically introduced to the surface of GO/Ag nanostructure. Electrospun polycaprolactone (PCL)-GO/Ag/Arg nanocomposite was successfully fabricated and characterized. The synthesized nanocomposite demonstrated not only a great antibacterial effect on both Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus) bacterial species, but appropriate biocompatibility against L929 fibroblastic cell lines. The results demonstrated that the preparation of the PCL-GO/Ag/Arg nanocomposite at a concentration of 1.0 wt% GO/Ag/Arg possessed the best biological and mechanical features. In vivo experiments also revealed that the use of optimized PCL-GO/Ag/Arg nanocomposite, after 12 d of treatment, led to significant increase in the healing process and also regeneration of the wound via reconstruction of a thickened epidermis layer on the wound surface, which was confirmed by histological analysis. In conclusion, the proposed approach can introduce a novel notion for preparing antibacterial material that significantly promotes angiogenesis.
机译:在这项研究中,我们介绍了一种新的石墨烯/银/精氨酸(GO / AG / ARG)纳米次组结构,其可以充当血管生成促进剂并提供用于改善伤口愈合过程的抗菌纳米结构。通过使用中央复合设计和响应面法在GO / Ag质量比和pH值方面已经优化了Go / Ag纳米结构,以提高Ag加载效率。然后,将Arg化学引入Go / Ag纳米结构的表面。 Electrom ow聚己内酯(PCL)-go / Ag / Arg纳米复合物成功制造和表征。合成的纳米复合材料不仅表明了对大肠杆菌(大肠杆菌)和金黄色葡萄球菌(S. aureus)细菌种类的大抗菌作用,但对L929纤维细胞系的适当生物相容性。结果表明,以1.0wt%Go / Ag / Arg的浓度的浓度制备PCL-GO / Ag / Arg纳米复合材料具有最佳的生物和机械特征。在体内实验中还显示使用优化的PCL-GO / Ag / Arg纳米复合材料,在12 d处理后,愈合过程的显着增加,并且还通过在伤口表面上的增厚表皮层的重建再生伤口,由组织学分析确认。总之,所提出的方法可以引入一种用于制备显着促进血管生成的抗菌材料的新颖观点。

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