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Silk protein aggregation kinetics revealed by Rheo-IR.

机译:Rheo-IR揭示了丝蛋白的聚集动力学。

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摘要

The remarkable mechanical properties of silk fibres stem from a multi-scale hierarchical structure created when an aqueous protein "melt" is converted to an insoluble solid via flow. To directly relate a silk protein's structure and function in response to flow, we present the first application of a Rheo-IR platform, which couples cone and plate rheology with attenuated total reflectance infrared spectroscopy. This technique provides a new window into silk processing by linking shear thinning to an increase in molecular alignment, with shear thickening affecting changes in the silk protein's secondary structure. Additionally, compared to other static characterization methods for silk, Rheo-IR proved particularly useful at revealing the intrinsic difference between natural (native) and reconstituted silk feedstocks. Hence Rheo-IR offers important novel insights into natural silk processing. This has intrinsic academic merit, but it might also be useful when designing reconstituted silk analogues alongside other polymeric systems, whether natural or synthetic.
机译:蚕丝纤维的卓越机械性能源于将水性蛋白质“熔体”通过流动转化为不溶性固体时产生的多尺度层次结构。为了直接关联丝蛋白的结构和功能对流量的响应,我们提出了Rheo-IR平台的首次应用,该平台将锥板流变学与衰减全反射红外光谱结合起来。通过将剪切稀化与分子排列的增加联系起来,该技术为丝绸加工提供了一个新窗口,剪切增稠影响了丝绸蛋白二级结构的变化。此外,与丝绸的其他静态表征方法相比,Rheo-IR被证明在揭示天然(天然)和再生丝绸原料之间的内在差异方面特别有用。因此,Rheo-IR为天然丝绸加工提供了重要的新颖见解。这具有内在的学术价值,但在与其他聚合物系统(天然或合成)一起设计重构的丝绸类似物时,也可能有用。

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