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Material properties of evolutionary diverse spider silks described by variation in a single structural parameter

机译:通过单个结构参数的变化来描述进化多样的蜘蛛丝的材料特性

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摘要

Spider major ampullate gland silks (MAS) vary greatly in material properties among species but, this variation is shown here to be confined to evolutionary shifts along a single universal performance trajectory. This reveals an underlying design principle that is maintained across large changes in both spider ecology and silk chemistry. Persistence of this design principle becomes apparent after the material properties are defined relative to the true alignment parameter, which describes the orientation and stretching of the protein chains in the silk fiber. Our results show that the mechanical behavior of all Entelegynae major ampullate silk fibers, under any conditions, are described by this single parameter that connects the sequential action of three deformation micromechanisms during stretching: stressing of protein-protein hydrogen bonds, rotation of the β-nanocrystals and growth of the ordered fraction. Conservation of these traits for over 230 million years is an indication of the optimal design of the material and gives valuable clues for the production of biomimetic counterparts based on major ampullate spider silk.
机译:蜘蛛主要的壶腹腺丝(MAS)在物种间的材料特性差异很大,但是,这种变化仅限于沿单一通用性能轨迹的进化变化。这揭示了一种基本的设计原理,该原理在蜘蛛生态学和丝绸化学的巨大变化中得以保持。在相对于真正的比对参数定义了材料属性之后,这种设计原理的持久性就变得显而易见,该比对参数描述了真丝纤维中蛋白质链的取向和拉伸。我们的结果表明,在任何条件下,所有Entelegynae主要壶腹丝纤维的机械行为均由该单一参数描述,该参数连接了拉伸过程中三种变形微机制的顺序作用:蛋白质-蛋白质氢键的应力,β-的旋转纳米晶体和有序级分的生长。这些特性的保存已超过2.3亿年,表明该材料的最佳设计,并为生产基于主要壶腹蜘蛛丝的仿生对应物提供了宝贵的线索。

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