用于生物医学应用的嵌入式同轴电纺 PVA-胶原蛋白复合纳米纤维膜

Ayub Ali, M. A. R. Bhuiyan, M. Mohebbullah, M. F. Hossain, Md Rubel Alam, Md. Nur Uddin, Md. Ariful Islam, M. A. Hossain, Azizur Rahman, Md. Golam Mortuza Limon, Imam Hossain
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引用次数: 0

摘要

利用药用植物缓解健康问题是一种古老的做法,但由于尖端技术的出现,这种做法在近代得到了迅猛发展。因此,将植物提取物融入具有生物相容性和杀菌活性的电纺纳米纤维中,已成为生物医学应用的竞争性选择。在这项研究中,以聚(乙烯醇)为芯,以胶原蛋白-黑麦草为鞘,成功开发出了一种新型同轴电纺纳米纤维垫,具有更强的抗菌性能。通过扫描电子显微镜对所制备的纳米纤维毡进行结构分析,发现膜中形成了直径在 205 至 250 纳米之间随机定向的纳米纤维。傅立叶变换红外光谱分析证实了纳米纤维毡中存在聚乙烯醇、胶原蛋白和黑木耳提取物,它们的峰值各具特色。通过琼脂扩散法对革兰氏阳性金黄色葡萄球菌进行的杀菌试验表明,随着黑木耳提取物用量的增加,同轴电纺纳米纤维的抑菌区(17 毫米和 37 毫米)增大,抗菌性能得到改善。湿度管理曲线表明,纳米纤维与湿度/液体之间存在充分的相互作用,能顺利地通过膜转移液体。这种电纺纳米纤维的形成将为选择电纺技术来适当设计和制造具有增强功能特性的纳米纤维材料铺平道路,以用于生物医学应用。
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Nigella sativa Embedded Co-axial Electrospun PVA–Collagen Composite Nanofibrous Membrane for Biomedical Applications
Mitigating health issues utilizing medicinal plants is an ancient practice that has surged in recent times due to the advent of sophisticated technology. Plant extracts incorporated in electrospun nanofibers having biocompatibility and germicidal activity are, therefore, become a competitive choice for biomedical applications. In this study, a novel co-axial electrospun nanofibrous mat with enhanced antimicrobial performance was successfully developed using poly (vinyl alcohol) in the core and collagen– Nigella sativa in the sheath. The structural analysis of the developed nanofibrous mat through a scanning electron microscope revealed the formation of nanofibers with diameters varying from 205 to 250 nm randomly oriented in the membrane. The FT-IR spectroscopy confirmed the existence of poly(vinyl alcohol), collagen, and nigella extract in the nanofibrous mat from their respective characteristic peaks. The bactericidal assay against Gram-positive Staphylococcus aureus bacteria through the agar diffusion method demonstrated an improved antibacterial performance with a higher zone of inhibition (17 and 37 mm) of the coaxial electrospun nanofibers with the increased amount of nigella extract. The moisture management profile indicated an adequate interaction between nanofibers and moisture/liquid, transferring the fluids through the membrane satisfactorily. The formation of such electrospun nanofibers will pave the way for selecting electrospinning techniques for appropriate designing and fabricating nanofibrous materials with enhanced functional properties for biomedical applications.
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