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首页> 外文期刊>Journal of computational biology: A journal of computational molecular cell biology >Wrap-and-pack: A new paradigm for beta structural motif recognition with application to recognizing beta trefoils
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Wrap-and-pack: A new paradigm for beta structural motif recognition with application to recognizing beta trefoils

机译:包装:用于β结构基序识别的新范式,用于识别β三叶草

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摘要

A method is presented that uses beta-strand interactions at both the sequence and the atomic level, to predict beta-structural motifs of protein sequences. A program called Wrap-and-Pack implements this method and is shown to recognize beta-trefoils, an important class of globular beta-structures, in the Protein Data Bank with 92% specificity and 92.3% sensitivity in cross-validation. It is demonstrated that Wrap-and-Pack learns each of the ten known SCOP beta-trefoil families, when trained primarily on beta-structures that are not beta-trefoils, together with three-dimensional structures of known beta-trefoils from outside the family. Wrap-and-Pack also predicts many proteins of unknown structure to be beta-trefoils. The computational method used here may generalize to other beta-structures for which strand topology and profiles of residue accessibility are well conserved.
机译:提出了一种在序列和原子水平上都使用β-链相互作用来预测蛋白质序列的β-结构基序的方法。名为Wrap-and-Pack的程序可以实现此方法,并且可以在蛋白质数据库中识别出β-三叶草(一种重要的球状β-结构),交叉验证的特异性为92%,灵敏度为92.3%。事实证明,当主要对不是β-三叶草的β-结构以及来自家族之外的已知β-三叶草的三维结构进行培训时,“包装包装”学习了十个已知的SCOPβ-三叶草家族中的每一个。 Wrap-and-Pack还预测许多结构未知的蛋白质为β-三叶草。此处使用的计算方法可以推广到其他β结构,这些结构的链拓扑和残基可及性都得到了很好的保留。

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