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Structural Disorder in Silk Proteins Reveals the Emergence of Elastomericity

机译:丝绸蛋白的结构紊乱揭示了弹性的出现

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摘要

Spider silks combine basic amino acids into strong and versatile fibers where the quality of the elastomer is attributed to the interaction of highly adapted protein motifs with a complex spinning process.The evaluation,however,of the interaction has remained elusive.Here,we present a novel analysis to study silk formation by examining the secondary structures of silk proteins in solution.Using the seven different silks of Nephila edulis as a benchmark system,we define a structural disorder parameter(the folding index,gamma).We found that gamma is highly correlated with the ratio of glycine present.Testing the correlation between glycine content and me folding index(gamma)against a selected range of silks,we find quantitatively that,in order to achieve specialization with changes in mechanical performance,the spider's silks require higher structural flexibility at the expense of reduced stability and consequently an increased conversion-energy cost.Taken together,our biophysical and evolutionary findings reveal that silk elastomericity evolved in tandem with specializations in the process of silk spinning.
机译:蜘蛛丝将碱性氨基酸结合到坚固而通用的纤维中,其中弹性体的质量归因于高度适应的蛋白质基序与复杂的纺丝过程的相互作用。但是,对相互作用的评估仍然难以捉摸。通过检查溶液中丝蛋白的二级结构来研究丝形成的新颖分析。以七种Nephila edulis丝为基准系统,我们定义了一个结构无序参数(折叠指数,γ)。在选定范围的蚕丝上测试甘氨酸含量与我折叠指数γ的相关性,我们定量地发现,为了实现机械性能变化的专业化,蜘蛛的蚕丝需要更高的结构灵活性,以降低稳定性为代价,并因此增加了转化能源成本。定量的研究结果表明,丝绸的弹性随着丝绸纺丝工艺的专业化而发展。

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