首页> 美国卫生研究院文献>Journal of Visualized Experiments : JoVE >Air Filter Devices Including Nonwoven Meshes of Electrospun Recombinant Spider Silk Proteins
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Air Filter Devices Including Nonwoven Meshes of Electrospun Recombinant Spider Silk Proteins

机译:空气过滤装置包括电纺重组蜘蛛丝蛋白的无纺网

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摘要

Based on the natural sequence of Araneus diadematus Fibroin 4 (ADF4), the recombinant spider silk protein eADF4(C16) has been engineered. This highly repetitive protein has a molecular weight of 48kDa and is soluble in different solvents (hexafluoroisopropanol (HFIP), formic acid and aqueous buffers). eADF4(C16) provides a high potential for various technical applications when processed into morphologies such as films, capsules, particles, hydrogels, coatings, fibers and nonwoven meshes. Due to their chemical stability and controlled morphology, the latter can be used to improve filter materials. In this protocol, we present a procedure to enhance the efficiency of different air filter devices, by deposition of nonwoven meshes of electrospun recombinant spider silk proteins. Electrospinning of eADF4(C16) dissolved in HFIP results in smooth fibers. Variation of the protein concentration (5-25% w/v) results in different fiber diameters (80-1,100 nm) and thus pore sizes of the nonwoven mesh.Post-treatment of eADF4(C16) electrospun from HFIP is necessary since the protein displays a predominantly α-helical secondary structure in freshly spun fibers, and therefore the fibers are water soluble. Subsequent treatment with ethanol vapor induces formation of water resistant, stable β-sheet structures, preserving the morphology of the silk fibers and meshes. Secondary structure analysis was performed using Fourier transform infrared spectroscopy (FTIR) and subsequent Fourier self-deconvolution (FSD).The primary goal was to improve the filter efficiency of existing filter substrates by adding silk nonwoven layers on top. To evaluate the influence of electrospinning duration and thus nonwoven layer thickness on the filter efficiency, we performed air permeability tests in combination with particle deposition measurements. The experiments were carried out according to standard protocols.
机译:根据Araneus diadematus Fibroin 4(ADF4)的天然序列,对重组蜘蛛丝蛋白eADF4(C16)进行了工程改造。这种高度重复的蛋白质的分子量为48kDa,可溶于不同的溶剂(六氟异丙醇(HFIP),甲酸和水性缓冲液)。 eADF4(C16)加工成薄膜,胶囊,颗粒,水凝胶,涂层,纤维和非织造网状等形态后,在各种技术应用中都具有很高的潜力。由于其化学稳定性和可控的形态,后者可用于改进过滤材料。在此协议中,我们提出了一种通过沉积电纺重组蜘蛛丝蛋白的非织造网来提高不同空气过滤器设备效率的程序。溶于HFIP的eADF4(C16)的静电纺丝可产生光滑的纤维。蛋白质浓度(5-25%w / v)的变化会导致不同的纤维直径(80-1,100 nm),从而导致无纺布网眼的孔径变大。从HFIP电纺制eADF4(C16)的后处理是必要的,因为蛋白质在刚纺出的纤维中主要表现出α-螺旋二级结构,因此纤维是水溶性的。随后用乙醇蒸气处理可诱导形成耐水的,稳定的β-折叠结构,并保持丝纤维和网眼的形态。使用傅里叶变换红外光谱(FTIR)和随后的傅里叶自解卷积(FSD)进行二级结构分析。主要目标是通过在顶部添加丝绸无纺布层来提高现有过滤器基材的过滤效率。为了评估静电纺丝时间以及无纺布层厚对过滤效率的影响,我们结合颗粒沉积测量进行了透气性测试。根据标准方案进行实验。

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