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溶剂浇铸和紫外光固化法用于简便安全制备纳米复合膜敷料

Solvent Casting and UV Photocuring for Easy and Safe Fabrication of Nanocomposite Film Dressings.

机构信息

Department of Drug Chemistry and Technologies, Sapienza University of Rome, 00185 Rome, Italy.

Department of Chemical Engineering Materials Environment, Sapienza University of Rome, 00184 Rome, Italy.

出版信息

Molecules. 2022 May 5;27(9):2959. doi: 10.3390/molecules27092959.

Abstract

The aim of this work was to optimize and characterize nanocomposite films based on gellan gum methacrylate (GG-MA) and silver nanoparticles (AgNPs) for application in the field of wound dressing. The films were produced using the solvent casting technique coupled with a photocuring process. The UV irradiation of GG-MA solutions containing glycerol as a plasticizer and different amounts of silver nitrate resulted in the concurrent crosslinking of the photocurable polymer and a reduction of Ag ions with consequent in situ generation of AgNPs. In the first part of the work, the composition of the films was optimized, varying the concentration of the different components, the GG-MA/glycerol and GG-MA/silver nitrate weight ratios as well as the volume of the film-forming mixture. Rheological analyses were performed on the starting solutions, whereas the obtained films were characterized for their mechanical properties. Colorimetric analyses and swelling studies were also performed in order to determine the AgNPs release and the water uptake capacity of the films. Finally, microbiological tests were carried out to evaluate the antimicrobial efficacy of the optimized films, in order to demonstrate their possible application as dressings for the treatment of infected hard-to-heal wounds, which is a demanding task for public healthcare.

摘要

本工作旨在优化和表征基于甲基丙烯酰化吉兰糖胶(GG-MA)和银纳米粒子(AgNPs)的纳米复合膜,以应用于伤口敷料领域。采用溶剂浇铸技术与光固化过程相结合制备了这些薄膜。将含有甘油作为增塑剂的 GG-MA 溶液进行 UV 辐射,同时发生光固化聚合物的交联和 Ag 离子的还原,从而原位生成 AgNPs。在工作的第一部分中,通过改变不同成分的浓度、GG-MA/甘油和 GG-MA/硝酸银的重量比以及成膜混合物的体积,优化了薄膜的组成。对起始溶液进行了流变分析,而对所得薄膜的机械性能进行了表征。还进行了比色分析和溶胀研究,以确定 AgNPs 的释放和薄膜的吸水率。最后,进行了微生物测试,以评估优化薄膜的抗菌功效,从而证明它们可作为治疗感染性难愈伤口的敷料的潜在应用,这是公共卫生保健的一项艰巨任务。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e33/9102005/ade8ff2a9d7c/molecules-27-02959-g001.jpg

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