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Molecular dynamics simulations of the minor ampullate spidroin modular amino acid sequence from Parawixia bistriatra: Insights into silk tertiary structure and fibre formation

机译:双歧双歧小虫螺旋体氨基酸序列的分子动力学模拟:对丝绸三级结构和纤维形成的认识

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摘要

Spider fibres are primarily composed of proteins that are secreted by specialised glands found in different groups of arthropods. Because of their unique mechanical characteristics, it is of great interest to understand how the influence of repetitive modules within the fibres affects the final protein structure. Because each fibre is composed of a diverse set of repeated modular sequences, the differences between fibres allow for their structural comparison and, thereby, their functional comparison. Herein, we present molecular dynamics simulations of partial sequences from minor ampullate Spidroin (MiSp) silk of the Brazilian species Parawixia bistriata. Our data show that the formation of β-sheet structures is directly related to the N-termini alignment of the modules. The N-terminal alignment gives rise to a high number of hydrogen bonds whose formation is driven by repeated alanine (Ala) sequences, which, in turn, lead to increased fibre strength. This increased fibre strength contributes significantly to the final tertiary structure of the silk.
机译:蜘蛛纤维主要由在不同节肢动物群中发现的专门腺体分泌的蛋白质组成。由于它们独特的机械特性,人们非常有兴趣了解纤维中重复模块的影响如何影响最终的蛋白质结构。因为每根光纤由一组不同的重复模块序列组成,所以光纤之间的差异允许它们进行结构比较,从而进行功能比较。在这里,我们介绍了巴西物种Parawixia bistriata的小壶腹螺旋丝(MiSp)丝的部分序列的分子动力学模拟。我们的数据表明,β-折叠结构的形成与模块的N-末端对齐直接相关。 N端排列会产生大量氢键,氢键的形成是由重复的丙氨酸(Ala)序列驱动的,从而导致纤维强度增加。这种增加的纤维强度极大地有助于丝的最终三级结构。

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