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Sequential origin in the high performance properties of orb spider dragline silk

机译:球状蜘蛛拉丝丝绸高性能特性的顺序起源

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摘要

Major ampullate (MA) dragline silk supports spider orb webs, combining strength and extensibility in the toughest biomaterial. MA silk evolved ~376 MYA and identifying how evolutionary changes in proteins influenced silk mechanics is crucial for biomimetics, but is hindered by high spinning plasticity. We use supercontraction to remove that variation and characterize MA silk across the spider phylogeny. We show that mechanical performance is conserved within, but divergent among, major lineages, evolving in correlation with discrete changes in proteins. Early MA silk tensile strength improved rapidly with the origin of GGX amino acid motifs and increased repetitiveness. Tensile strength then maximized in basal entelegyne spiders, ~230 MYA. Toughness subsequently improved through increased extensibility within orb spiders, coupled with the origin of a novel protein (MaSp2). Key changes in MA silk proteins therefore correlate with the sequential evolution high performance orb spider silk and could aid design of biomimetic fibers.
机译:主要壶腹(MA)牵引线丝绸支撑蜘蛛球网,在最坚韧的生物材料中兼具强度和可扩展性。 MA蚕丝进化了约376 MYA,并确定了蛋白质的进化变化如何影响蚕丝力学对仿生生物至关重要,但受到高纺塑性的阻碍。我们使用超收缩来消除这种变异,并在整个蜘蛛系统发育中表征MA丝。我们表明,机械性能是保守的,但在主要谱系之间却有所分歧,与蛋白质的离散变化相关。早期MA丝的拉伸强度随着GGX氨基酸基序的产生和重复性的提高而迅速提高。然后在基础电蜘蛛(〜230 MYA)中使拉伸强度最大化。随后,通过增加球状蜘蛛内的可扩展性以及新蛋白质(MaSp2)的起源,提高了韧性。因此,MA丝蛋白中的关键变化与高性能的Orb蜘蛛丝的顺序进化相关,并可能有助于仿生纤维的设计。

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