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Nozzle-less electrospinning of curcumin laoded alginate/PVA blended nanofibers for wound healing

机译:姜黄素胶合藻酸盐/ PVA混合纳米纤维的无喷嘴静电纺丝,用于伤口愈合

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摘要

Nozzle free electrospinning has been found as an advantageous measure over other scaffold fabrication techniques for scaling up the process. Present study was tried to optimize the process parameters to fabricate nanofibrous scaffold using sodium alginate and polyvinyl alcohol (PVA) for tissue engineering applications. PVA and sodium alginate were blended in the ratios of 80:20, 70:30, 60:40, 50:50 and 40:60 for fabrication of scaffold. Curcumin was loaded with the sample containing equal amounts of alginate and PVA. Surface tension, viscosity and conductivity analysis were done to evaluate the material properties. Process optimization was carried out by standardizing the voltage, tip-collector distance and speed of rotation for fiber formation. Nanofibers were characterized by scanning electron microscopy (SEM), Fourier transform infrared (FT-IR), X-ray diffraction (XRD) studies, Differential scanning colorimetery (DSC), Thermogravitometric Analysis (TGA) and Film Burst analysis. Curcumin loaded samples were cross linked with glutaraldehyde and analyzed for their biodegradability, antimicrobial activity and in vitro drug release. A reduced level of surface tension and conductivity and increased level of viscosity were observed in the blends with increase ratios of PVA. Standard voltage, collector-tip distance and speed of rotation were optimized as 72V, 12cm and 9.2 rpm respectively. SEM analysis revealed the decrease in fibre diameter with higher volumes of sodium alginate. FTIR and XRD data suggested the interaction mechanism in PVA and sodium alginate due to hydrogen bonding. Intermolecular interactions of PVA with alginate through hydrogen bonding might have improved spinnability of the blended system. The optimized process may be used for the mass production of alginate nanofibers to be applicable in wound healing and tissue engineering.
机译:已经发现无喷嘴静电纺丝是优于其他脚手架制造技术的有利措施,用于扩大工艺。本研究试图优化工艺参数,以利用藻酸钠和聚乙烯醇(PVA)制备用于组织工程应用的纳米纤维支架。将PVA和藻酸钠以80:20、70:30、60:40、50:50和40:60的比例混合以制造支架。姜黄素上样的样品中含有等量的藻酸盐和PVA。进行了表面张力,粘度和电导率分析以评估材料性能。通过标准化电压,尖端收集器距离和纤维形成的旋转速度来进行工艺优化。通过扫描电子显微镜(SEM),傅立叶变换红外(FT-IR),X射线衍射(XRD)研究,差示扫描比色法(DSC),热重分析(TGA)和膜破裂分析来表征纳米纤维。将姜黄素负载的样品与戊二醛交联,并对其生物降解性,抗菌活性和体外药物释放进行分析。随着PVA比率的增加,在共混物中观察到降低的表面张力和电导率以及增加的粘度水平。标准电压,集电极尖端距离和旋转速度分别优化为72V,12cm和9.2 rpm。 SEM分析表明,随着海藻酸钠体积的增加,纤维直径减小。 FTIR和XRD数据表明由于氢键作用,PVA和藻酸钠之间的相互作用机理。 PVA与藻酸盐通过氢键的分子间相互作用可能会改善共混体系的可纺性。优化的工艺可以用于海藻酸盐纳米纤维的大规模生产,以应用于伤口愈合和组织工程中。

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    Udaseen Sagar;

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  • 年度 2013
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