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首页> 外文期刊>Journal of peptide science: An official publication of the European Peptide Society >In silico predictions of 3D structures of linear and cyclic peptides with natural and non-proteinogenic residues
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In silico predictions of 3D structures of linear and cyclic peptides with natural and non-proteinogenic residues

机译:在计算机上预测具有天然和非蛋白残基的线性和环状肽的3D结构

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摘要

We extended the use of Peplook, an in silico procedure for the prediction of three-dimensional (3D) models of linear peptides to the prediction of 3D models of cyclic peptides and thanks to the ab initio calculation procedure, to the calculation of peptides with non-proteinogenic amino acids. Indeed, such peptides cannot be predicted by homology or threading. We compare the calculated models with NMR and X-ray models and for the cyclic peptides, with models predicted by other in silico procedures (Pep-Fold and I-Tasser). For cyclic peptides, on a set of 38 peptides, average root mean square deviation of backbone atoms (BB-RMSD) was 3.8 and 4.1? for Peplook and Pep-Fold, respectively. The best results are obtained with I-Tasser (2.5?) although evaluations were biased by the fact that the resolved Protein Data Bank models could be used as template by the server. Peplook and Pep-Fold give similar results, better for short (up to 20 residues) than for longer peptides. For peptides with non-proteinogenic residues, performances of Peplook are sound with an average BB-RMSD of 3.6? for 'non-natural peptides' and 3.4? for peptides combining non-proteinogenic residues and cyclic structure. These results open interesting possibilities for the design of peptidic drugs.
机译:我们将Peplook(一种用于线性肽段的三维(3D)模型预测的计算机程序)的使用扩展到了环状肽段的3D模型的预测,并且由于使用了从头算起的计算程序,因此可用于计算非肽段的肽段-蛋白原氨基酸。实际上,不能通过同源性或穿线来预测此类肽。我们将计算的模型与NMR和X射线模型以及环状肽进行比较,并与其他计算机程序(Pep-Fold和I-Tasser)预测的模型进行比较。对于环肽,在一组38种肽上,骨架原子的平均均方根偏差(BB-RMSD)为3.8和4.1?分别用于Peplook和Pep-Fold。使用I-Tasser(2.5?)可获得最佳结果,尽管由于解析的Protein Data Bank模型可以被服务器用作模板这一事实而使评估有偏差。 Peplook和Pep-Fold给出相似的结果,短肽(最多20个残基)比长肽更好。对于具有非蛋白残基的肽,Peplook的性能良好,平均BB-RMSD为3.6? “非天然肽”和3.4?用于结合非蛋白残基和环状结构的肽。这些结果为肽类药物的设计提供了有趣的可能性。

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