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β-Propeller Blades as Ancestral Peptides in Protein Evolution

机译:β螺旋桨叶片作为蛋白质进化中的祖先肽

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摘要

Proteins of the β-propeller fold are ubiquitous in nature and widely used as structural scaffolds for ligand binding and enzymatic activity. This fold comprises between four and twelve four-stranded β-meanders, the so called blades that are arranged circularly around a central funnel-shaped pore. Despite the large size range of β-propellers, their blades frequently show sequence similarity indicative of a common ancestry and it has been proposed that the majority of β-propellers arose divergently by amplification and diversification of an ancestral blade. Given the structural versatility of β-propellers and the hypothesis that the first folded proteins evolved from a simpler set of peptides, we investigated whether this blade may have given rise to other folds as well. Using sequence comparisons, we identified proteins of four other folds as potential homologs of β-propellers: the luminal domain of inositol-requiring enzyme 1 (IRE1-LD), type II β-prisms, β-pinwheels, and WW domains. Because, with increasing evolutionary distance and decreasing sequence length, the statistical significance of sequence comparisons becomes progressively harder to distinguish from the background of convergent similarities, we complemented our analyses with a new method that evaluates possible homology based on the correlation between sequence and structure similarity. Our results indicate a homologous relationship of IRE1-LD and type II β-prisms with β-propellers, and an analogous one for β-pinwheels and WW domains. Whereas IRE1-LD most likely originated by fold-changing mutations from a fully formed PQQ motif β-propeller, type II β-prisms originated by amplification and differentiation of a single blade, possibly also of the PQQ type. We conclude that both β-propellers and type II β-prisms arose by independent amplification of a blade-sized fragment, which represents a remnant of an ancient peptide world.
机译:β-螺旋桨折叠的蛋白质本质上是普遍存在的,并广泛用作配体结合和酶促活性的结构支架。该褶皱包括四到十二个四链β弯头,所谓的刀片围绕中心漏斗形孔圆形排列。尽管β-螺旋桨的尺寸范围很大,但是它们的叶片经常显示出指示共同祖先的序列相似性,并且已经提出大多数β-螺旋桨通过祖先叶片的扩增和多样化而发散。考虑到β螺旋桨的结构通用性,以及第一个折叠的蛋白质是从一组较简单的肽进化而来的假设,我们研究了该叶片是否也会引起其他折叠。使用序列比较,我们确定了其他四个折叠蛋白作为β-螺旋桨的潜在同源物:需要肌醇的酶1(IRE1-LD)的腔结构域,II型β-棱镜,β-风车和WW结构域。因为随着进化距离的增加和序列长度的减少,序列比较的统计意义变得越来越难于从趋同相似性的背景中区分出来,因此我们用一种新方法对我们的分析进行了补充,该方法基于序列和结构相似性之间的相关性来评估可能的同源性。我们的结果表明,IRE1-LD和II型β棱镜与β螺旋桨具有同源关系,而对于β-风车和WW域则具有类似的关系。 IRE1-LD最有可能起源于完全形成的PQQ基序β-螺旋桨的倍数突变,而II型β棱镜则起源于单个叶片(也可能是PQQ类型)的扩增和分化。我们得出的结论是,β螺旋桨和II型β棱镜都是通过叶片大小片段的独立扩增而产生的,该片段代表着古代肽世界的残余。

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