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首页> 外文期刊>Materials science & engineering >Air-jet spinning corn zein protein nanofibers for drug delivery: Effect of biomaterial structure and shape on release properties
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Air-jet spinning corn zein protein nanofibers for drug delivery: Effect of biomaterial structure and shape on release properties

机译:用于药物递送的空气喷射玉米玉米蛋白纳米纤维:生物材料结构和形状对释放性能的影响

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摘要

Nanofiber materials are commonly used as delivery vehicles for dermatological drugs due to their high surface-area-to-volume ratio, porosity, flexibility, and reproducibility. In this study air-jet spinning was used as a novel and economic method to fabricate corn zein nanofiber meshes with model drugs of varying solubility, molecular weight and charge. The release profiles of these drugs were compared to their release from corn zein films to elucidate the effect of geometry and structure on drug delivery kinetics. In film samples, over 50% of drug was released after only 2 h. However, fiber samples exhibited more sustained release, releasing less than 50% after one day. FTIR, SEM, and DSC were performed on nanofibers and films before and after release of the drugs. Structural analysis revealed that the incorporation of model drugs into the fibers would transform the zein proteins from a random coil network to a more alpha helical structure. Upon release, the protein fiber reverted to its original random coil network. In addition, thermal analysis indicated that fibers can protect the drug molecules in high temperature above 160 degrees C, while drugs within films will degrade below 130 degrees C. These findings can likely be attributed to the mechanical infiltration of the drug molecules into the ordered structure of the zein fibers during their solution fabrication. The slow release from fiber samples can be attributed to this biophysical interaction, illustrating that release is dictated by more than diffusion in protein-based carriers. The controlled release of a wide variety of drugs from the air-jet spun corn zein nanofiber meshes demonstrates their success as drug delivery vehicles that can potentially be incorporated into different biological materials in the future.
机译:由于其高表面积到体积比,孔隙度,柔韧性和再现性,纳米纤维材料通常用作皮肤病药物的递送载体。在该研究中,空气喷射纺丝用作制造玉米玉米蛋白纳米纤维网的新颖和经济方法,其具有不同溶解度,分子量和电荷的模型药物。将这些药物的释放轮廓与玉米玉米蛋白膜的释放进行了比较,以阐明几何形状和结构对药物递送动力学的影响。在薄膜样品中,仅在2小时后释放超过50%的药物。然而,纤维样品显示出更多持续的释放,在一天后释放小于50%。在释放药物之前和之后,对纳米纤维和薄膜进行FTIR,SEM和DSC。结构分析表明,将模型药物掺入纤维中将将玉米醇素蛋白从随机线圈网络转变为更α螺旋结构。释放后,蛋白质纤维恢复到其原始随机线圈网络。此外,热分析表明,纤维可以在高于160℃的高温下保护药物分子,而薄膜内的药物会降低低于130℃。这些发现可能归因于药物分子的机械渗透到有序结构中在溶液制造期间的玉米蛋白纤维。纤维样品的缓释释放可归因于这种生物物理相互作用,说明释放由基于蛋白质的载体中的扩散而提出。来自空气喷射的玉米玉米蛋白纳米纤维网眼各种药物的受控释放证明了它们作为药物递送载体的成功,这些载体可以将来可能融入不同的生物材料中。

著录项

  • 来源
    《Materials science & engineering》 |2021年第1期|111419.1-111419.11|共11页
  • 作者单位

    Rowan Univ Dept Phys & Astron Glassboro NJ 08028 USA|Rowan Univ Dept Biomed Engn Glassboro NJ 08028 USA;

    Rowan Univ Dept Biomed Engn Glassboro NJ 08028 USA;

    Rowan Univ Dept Phys & Astron Glassboro NJ 08028 USA|Rowan Univ Dept Biomed Engn Glassboro NJ 08028 USA;

    Rowan Univ Dept Phys & Astron Glassboro NJ 08028 USA;

    Rowan Univ Dept Biomed Engn Glassboro NJ 08028 USA|Rowan Univ Dept Chem & Biochem Glassboro NJ 08028 USA;

    Rowan Univ Dept Phys & Astron Glassboro NJ 08028 USA;

    Rowan Univ Dept Biomed Engn Glassboro NJ 08028 USA;

    Rowan Univ Dept Chem & Biochem Glassboro NJ 08028 USA;

    Rowan Univ Dept Phys & Astron Glassboro NJ 08028 USA|Rowan Univ Dept Biomed Engn Glassboro NJ 08028 USA|Rowan Univ Dept Mol & Cellular Biosci Glassboro NJ 08028 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Corn zein protein; Air-jet spinning; Drug release; Nanofiber; Film; Secondary structure;

    机译:玉米玉米蛋白蛋白质;空气喷射;药物释放;纳米纤维;薄膜;二级结构;

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