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Aqueous-Based Coaxial Electrospinning of Genetically Engineered Silk Elastin Core-Shell Nanofibers

机译:基因工程丝弹性蛋白核壳纳米纤维的水基同轴静电纺丝。

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摘要

A nanofabrication method for the production of flexible core-shell structured silk elastin nanofibers is presented, based on an all-aqueous coaxial electrospinning process. In this process, silk fibroin (SF) and silk-elastin-like protein polymer (SELP), both in aqueous solution, with high and low viscosity, respectively, were used as the inner (core) and outer (shell) layers of the nanofibers. The electrospinnable SF core solution served as a spinning aid for the nonelectrospinnable SELP shell solution. Uniform nanofibers with average diameter from 301 ± 108 nm to 408 ± 150 nm were obtained through adjusting the processing parameters. The core-shell structures of the nanofibers were confirmed by fluorescence and electron microscopy. In order to modulate the mechanical properties and provide stability in water, the as-spun SF-SELP nanofiber mats were treated with methanol vapor to induce β-sheet physical crosslinks. FTIR confirmed the conversion of the secondary structure from a random coil to β-sheets after the methanol treatment. Tensile tests of SF-SELP core-shell structured nanofibers showed good flexibility with elongation at break of 5.20% ± 0.57%, compared with SF nanofibers with an elongation at break of 1.38% ± 0.22%. The SF-SELP core-shell structured nanofibers should provide useful options to explore in the field of biomaterials due to the improved flexibility of the fibrous mats and the presence of a dynamic SELP layer on the outer surface.
机译:提出了一种基于全水同轴电纺丝工艺生产柔性核壳结构丝弹性蛋白纳米纤维的纳米加工方法。在此过程中,分别在水溶液中分别具有高粘度和低粘度的丝素蛋白(SF)和丝弹性蛋白样蛋白质聚合物(SELP)被用作该蛋白的内层(芯)和外层(壳)。纳米纤维。可电纺SF芯溶液可作为不可电纺SELP壳溶液的纺丝助剂。通过调整加工参数,可以获得平均直径为301±108 nm至408±150 nm的均匀纳米纤维。纳米纤维的核-壳结构通过荧光和电子显微镜确认。为了调节机械性能并在水中提供稳定性,将初纺的SF-SELP纳米纤维毡用甲醇蒸气处理,以诱导β-片层物理交联。 FTIR证实了甲醇处理后二级结构从无规卷曲转变为β-折叠。 SF-SELP核壳结构纳米纤维的拉伸试验显示出良好的柔韧性,断裂伸长率为5.20%±0.57%,而SF纳米纤维的断裂伸长率为1.38%±0.22%。 SF-SELP核-壳结构的纳米纤维应提供有益的选择,以探索生物材料领域,因为纤维垫的柔韧性得到改善,并且外表面上存在动态SELP层。

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