首页> 外文期刊>BMC Evolutionary Biology >Duplication and concerted evolution of MiSp-encoding genes underlie the material properties of minor ampullate silks of cobweb weaving spiders
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Duplication and concerted evolution of MiSp-encoding genes underlie the material properties of minor ampullate silks of cobweb weaving spiders

机译:MiSp编码基因的复制和协调进化是蜘蛛网织蜘蛛的次小壶腹丝材料特性的基础

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Orb-web weaving spiders and their relatives use multiple types of task-specific silks. The majority of spider silk studies have focused on the ultra-tough dragline silk synthesized in major ampullate glands, but other silk types have impressive material properties. For instance, minor ampullate silks of orb-web weaving spiders are as tough as draglines, due to their higher extensibility despite lower strength. Differences in material properties between silk types result from differences in their component proteins, particularly members of the spidroin (spider fibroin) gene family. However, the extent to which variation in material properties within a single silk type can be explained by variation in spidroin sequences is unknown. Here, we compare the minor ampullate spidroins (MiSp) of orb-weavers and cobweb weavers. Orb-web weavers use minor ampullate silk to form the auxiliary spiral of the orb-web while cobweb weavers use it to wrap prey, suggesting that selection pressures on minor ampullate spidroins (MiSp) may differ between the two groups. We report complete or nearly complete MiSp sequences from five cobweb weaving spider species and measure material properties of minor ampullate silks in a subset of these species. We also compare MiSp sequences and silk properties of our cobweb weavers to published data for orb-web weavers. We demonstrate that all our cobweb weavers possess multiple MiSp loci and that one locus is more highly expressed in at least two species. We also find that the proportion of β-spiral-forming amino acid motifs in MiSp positively correlates with minor ampullate silk extensibility across orb-web and cobweb weavers. MiSp sequences vary dramatically within and among spider species, and have likely been subject to multiple rounds of gene duplication and concerted evolution, which have contributed to the diverse material properties of minor ampullate silks. Our sequences also provide templates for recombinant silk proteins with tailored properties.
机译:球网织蜘蛛及其亲戚使用多种类型的特定任务丝绸。大部分蜘蛛丝研究都集中在主要壶腹腺上合成的超韧拉铲丝,但其他类型的丝具有令人印象深刻的材料特性。例如,尽管网腹编织蜘蛛的强度较低,但它们的可延展性较高,因此它们的韧性与拉丝一样坚韧。丝绸类型之间材料特性的差异是由于它们的组成蛋白(特别是蜘蛛蛋白(蜘蛛丝蛋白)基因家族的成员)不同而引起的。但是,尚不清楚通过丝胶蛋白序列的变化可以解释单一丝类型内材料性能变化的程度。在这里,我们比较了球形织布工和蜘蛛网织布工的次要壶腹蜘蛛(MiSp)。球网织工使用较小的壶腹丝来形成球网的辅助螺旋,而蜘蛛网织工则使用它包裹猎物,这表明两组中较小的壶腹蜘蛛(MiSp)的选择压力可能有所不同。我们报告了五个蜘蛛网编织蜘蛛物种的完整或接近完整的MiSp序列,并测量了这些物种的子集中较小的壶腹丝的材料特性。我们还将MiSp序列和蜘蛛网编织者的丝质特性与球网编织者的已发布数据进行比较。我们证明,我们所有的蜘蛛网织布工均具有多个MiSp位点,并且至少在两个物种中一个基因座的表达更高。我们还发现,MiSp中形成β螺旋的氨基酸基序的比例与跨球网和蜘蛛网织构的较小壶腹丝的延伸性正相关。 MiSp序列在蜘蛛物种内和蜘蛛物种之间差异很大,并且可能经历了多轮基因复制和协调进化,这有助于较小的壶腹丝的多种材料特性。我们的序列还提供了具有定制特性的重组丝蛋白模板。

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