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Mining Tertiary Structural Motifs for Assessment of Designability

机译:采矿三级结构基序用于评估可设计性

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摘要

The observation of a limited secondary-structural alphabet in native proteins, with significant sequence preferences, has profoundly influenced the fields of protein design and structure prediction (; ). In the era of structural genomics, as the size of the structural dataset continues to grow rapidly, it is becoming possible to extend this analysis to tertiary structural motifs and their sequences. For a hypothetical tertiary motif, the rate of its utilization in natural proteins may be used to assess its designability - the ease with which the motif can be realized with natural amino acids. This requires a structural similarity search methodology, which rather than looking for global topological agreement (more appropriate for functional categorization of proteins or domains), identifies detailed geometric matches. In this chapter we introduce such a method, called MaDCaT, and demonstrate its use by assessing the designability landscapes of two tertiary structural motifs. We also show that such analysis can establish structure/sequence links by providing the sequence constraints necessary to encode designable motifs. As a logical extension of their secondary-structure counterparts, statistics of tertiary structural preferences will likely prove extremely useful in de novo protein design and structure prediction.
机译:天然蛋白质中有限的二级结构字母的观察以及显着的序列偏好,对蛋白质设计和结构预测领域产生了深远的影响。在结构基因组学时代,随着结构数据集的大小持续快速增长,有可能将这种分析扩展到三级结构基序及其序列。对于假设的第三基序,可以使用其在天然蛋白质中的利用率来评估其可设计性-利用天然氨基酸轻松实现基序。这需要结构相似性搜索方法,而不是寻找全局拓扑协议(更适合于蛋白质或域的功能分类),而是要确定详细的几何匹配。在本章中,我们介绍了一种称为MaDCaT的方法,并通过评估两个三级结构图案的可设计性景观来证明其使用。我们还表明,此类分析可以通过提供编码可设计基序所需的序列约束来建立结构/序列链接。作为其二级结构对应物的逻辑扩展,三级结构偏好的统计数据可能将被证明在从头蛋白质设计和结构预测中极为有用。

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