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Structuring of Functional Spider Silk Wires, Coatings, and Sheets by Self-Assembly on Superhydrophobic Pillar Surfaces

机译:通过自组装在超疏水柱表面上构造功能性蜘蛛丝,涂层和薄板

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摘要

Spider silk has recently become a material of high interest for a large number of biomedical applications. Previous work on structuring of silk has resulted in particles (0D), fibers (1D), films (2D), and foams, gels, capsules, or microspheres (3D). However, the manufacturing process of these structures is complex and involves posttreatment of chemicals unsuitable for biological applications. In this work, the self-assembly of recombinant spider silk on micropatterned superhydrophobic surfaces is studied. For the first time, structuring of recombinant spider silk is achieved using superhydrophobic surfaces under conditions that retain the bioactivity of the functionalized silk. By tuning the superhydrophobic surface geometry and the silk solution handling parameters, this approach allows controlled generation of silk coatings, nanowires, and sheets. The underlying mechanisms and governing parameters are discussed. It is believed that the results of this work pave the way for fabrication of silk formations for applications including vehicles for drug delivery, optical sensing, antimicrobial coatings, and cell culture scaffolds.
机译:蜘蛛丝最近已成为许多生物医学应用中高度关注的材料。以前关于丝绸结构化的工作产生了颗粒(0D),纤维(1D),薄膜(2D)和泡沫,凝胶,胶囊或微球(3D)。但是,这些结构的制造过程很复杂,并且涉及不适合生物应用的化学物质的后处理。在这项工作中,研究了重组蜘蛛丝在微图案超疏水表面上的自组装。第一次,在保持功能化蚕丝生物活性的条件下,使用超疏水表面实现了重组蜘蛛丝的结构化。通过调整超疏水表面的几何形状和丝绸溶液的处理参数,该方法可以控制丝绸涂层,纳米线和薄片的生成。讨论了潜在的机制和控制参数。可以相信,这项工作的结果为制造包括药物输送载体,光学传感,抗菌涂层和细胞培养支架在内的各种应用的丝状结构铺平了道路。

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