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Air-Jet Spun Corn Zein Nanofibers and Thin Films with Topical Drug for Medical Applications

机译:空气喷射纺玉米玉米蛋白纳叶和薄膜用于医疗应用局部药物

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摘要

Diabetic patients are especially susceptible to chronic wounds of the skin, which can lead to serious complications. Sodium citrate is one potential therapeutic molecule for the topical treatment of diabetic ulcers, but its viability requires the assistance of a biomaterial matrix. In this study, nanofibers and thin films fabricated from natural corn zein protein are explored as a drug delivery vehicle for the topical drug delivery of sodium citrate. Corn zein is cheap and abundant in nature, and easily extracted with high purity, while nanofibers are frequently cited as ideal drug carriers due to their high surface area and high porosity. To further reduce costs, the 1-D nanofibers in this study were fabricated through an air jet-spinning method rather than the conventional electrospinning method. Thin films were also created as a comparative 2-D material. Corn zein composite nanofibers and thin films with different concentration of sodium citrate (1–30%) were analyzed through FTIR, DSC, TGA, and SEM. Results reveal that nanofibers are a much more effective vehicle than films, with the ability to interact with sodium citrate. Thermal analysis results show a stable material with low degradation, while FTIR reveals strong control over the protein secondary structures and hold of citrate. These tunable properties and morphologies allow the fibers to provide a sustained release of citrate and then revert to their structure prior to citrate loading. A statistical analysis via -test confirmed a significant difference between fiber and film drug release. A biocompatibility study also confirms that cells are much more tolerant of the porous nanofiber structure than the nonporous protein films, and lower percentages of sodium citrate (1–5%) were outperformed to higher percentages (15–30%). This study demonstrated that protein-based nanofiber materials have high potential as vehicles for the delivery of topical diabetic drugs.
机译:糖尿病患者特别容易受到皮肤慢性伤口的影响,这可能导致严重的并发症。柠檬酸钠是一种用于糖尿病溃疡的局部治疗的潜在治疗分子,但其活力需要生物材料基质的辅助。在本研究中,由天然玉米蛋白蛋白蛋白蛋白质制造的纳纤维和薄膜作为柠檬酸钠的局部药物递送的药物输送载体。玉米玉米蛋白本质上便宜,丰富,易于纯度提取,而纳面纤维经常被引起理想的药物载体,因为它们的高表面积和高孔隙率。为了进一步降低成本,本研究中的1-D纳米纤维通过空气喷射纺丝方法而不是传统的静电纺丝方法制造。还以比较的2-D材料产生薄膜。通过FTIR,DSC,TGA和SEM分析玉米玉米蛋白复合纳米纤维和具有不同浓度的柠檬酸钠(1-30%)的薄膜。结果表明,纳米纤维是比薄膜更有效的车辆,具有与柠檬酸钠相互作用的能力。热分析结果显示出稳定的材料,具有低降解,而FTIR揭示对蛋白质二级结构和柠檬酸盐的强烈控制。这些可调谐性质和形态允许纤维提供柠檬酸盐的持续释放,然后在柠檬酸盐负载之前恢复它们的结构。通过最终统计学分析证实了纤维和薄膜药物释放之间的显着差异。生物相容性研究还证实,细胞比无孔蛋白质膜更容许多孔纳米纤维结构,并且柠檬酸钠(1-5%)的较低百分比优于更高的百分比(15-30%)。该研究表明,基于蛋白质的纳米纤维材料具有高潜力作为用于递送局部糖尿病药物的车辆。

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