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Structural and Mechanical Roles for the C-Terminal Non-Repetitive Domain Become Apparent in Recombinant Spider Aciniform Silk

机译:C末端非重复域的结构和机械作用在重组蜘蛛鹰嘴形丝中变得明显。

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摘要

Spider aciniform (or wrapping) silk is the toughest of the seven types of spider silks/glue due to a combination of high elasticity and strength. Like most spider silk proteins (spidroins), aciniform spidroin (AcSp1) has a large core repetitive domain flanked by relatively short N- and C-terminal non-repetitive domains (the NTD and CTD, respectively). The major ampullate silk protein (MaSp) CTD has been shown to control protein solubility and fiber formation, but the aciniform CTD function remains unknown. Here, we compare fiber mechanical properties, solution-state structuring, and fibrous state secondary structural composition and orientation relative to native aciniform silk for two AcSp1 repeat units with or without fused AcSp1- and MaSp-derived CTDs alongside three AcSp1 repeat units without a CTD. The native AcSp1 CTD uniquely modulated fiber mechanical properties, relative to all other constructs, directly correlating to a native-like structural transformation and alignment.
机译:由于具有高弹性和强度,蜘蛛丝状(或包裹性)丝是七种蜘蛛丝/胶中最坚韧的。像大多数蜘蛛丝蛋白(spidroins)一样,aciniform spidroin(AcSp1)具有较大的核心重复结构域,其侧翼是相对较短的N和C端非重复结构域(分别为NTD和CTD)。主要的壶腹丝蛋白(MaSp)CTD已显示可控制蛋白的溶解度和纤维形成,但腺状CTD功能尚不清楚。在这里,我们比较了两个AcSp1重复单元(带有或不带有融合的AcSp1和MaSp衍生的CTD)以及三个没有CTD的AcSp1重复单元的纤维力学性能,固溶态结构以及纤维状态的二级结构组成和相对于天然aciniform丝的取向。 。相对于所有其他构造,天然AcSp1 CTD独特地调节了纤维的机械性能,直接与天然结构转变和排列相关。

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