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Recombinant spider silk from aqueous solutions via a bio-inspired microfluidic chip

机译:通过生物启发的微流控芯片从水溶液中重组蜘蛛丝

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摘要

Spiders achieve superior silk fibres by controlling the molecular assembly of silk proteins and the hierarchical structure of fibres. However, current wet-spinning process for recombinant spidroins oversimplifies the natural spinning process. Here, water-soluble recombinant spider dragline silk protein (with a low molecular weight of 47 kDa) was adopted to prepare aqueous spinning dope. Artificial spider silks were spun via microfluidic wet-spinning, using a continuous post-spin drawing process (WS-PSD). By mimicking the natural spinning apparatus, shearing and elongational sections were integrated in the microfluidic spinning chip to induce assembly, orientation of spidroins, and fibril structure formation. The additional post-spin drawing process following the wet-spinning section partially mimics the spinning process of natural spider silk and substantially contributes to the compact aggregation of microfibrils. Subsequent post-stretching further improves the hierarchical structure of the fibres, including the crystalline structure, orientation, and fibril melting. The tensile strength and elongation of post-treated fibres reached up to 510 MPa and 15%, respectively.
机译:蜘蛛通过控制丝蛋白的分子组装和纤维的层次结构来获得优质的丝纤维。但是,当前用于重组蜘蛛丝蛋白的湿纺工艺过分简化了自然纺丝工艺。在这里,采用水溶性重组蜘蛛牵引丝蛋白(低分子量为47 kDa)制备水性纺丝原液。人造蜘蛛丝通过连续纺丝后拉伸工艺(WS-PSD)通过微流体湿纺丝纺制。通过模拟天然纺丝设备,将剪切和伸长部分整合到微流体纺丝芯片中,以诱导组装,蜘蛛丝蛋白的取向和原纤维结构的形成。湿纺后的附加纺丝后拉伸过程部分地模仿了天然蜘蛛丝的纺丝过程,并极大地有助于微纤维的紧密聚集。随后的后拉伸进一步改善了纤维的分层结构,包括晶体结构,取向和原纤维熔融。后处理纤维的拉伸强度和伸长率分别达到510 MPa和15%。

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