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Improving the performance of the PLB index for ligand-binding site prediction using dihedral angles and the solvent-accessible surface area

机译:使用二面角和溶剂可及表面积提高PLB指数的配体结合位点预测性能

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Protein ligand-binding site prediction is highly important for protein function determination and structure-based drug design. Over the past twenty years, dozens of computational methods have been developed to address this problem. Soga et al. identified ligand cavities based on the preferences of amino acids for the ligand-binding site (RA) and proposed the propensity for ligand binding (PLB) index to rank the cavities on the protein surface. However, we found that residues exhibit different RAs in response to changes in solvent exposure. Furthermore, previous studies have suggested that some dihedral angles of amino acids in specific regions of the Ramachandran plot are preferred at the functional sites of proteins. Based on these discoveries, the amino acid solvent-accessible surface area and dihedral angles were combined with the RA and PLB to obtain two new indexes, multi-factor RA (MF-RA) and multi-factor PLB (MF-PLB). MF-PLB, PLB and other methods were tested using two benchmark databases and two particular ligand-binding sites. The results show that MF-PLB can improve the success rate of PLB for both ligand-bound and ligand-unbound structures, particularly for top choice prediction.
机译:蛋白质配体结合位点预测对于蛋白质功能测定和基于结构的药物设计非常重要。在过去的二十年中,已经开发了数十种计算方法来解决该问题。 Soga等。根据氨基酸对配体结合位点(RA)的偏好确定了配体腔,并提出了配体结合(PLB)指数的倾向来对蛋白表面上的腔进行排名。但是,我们发现残留物根据溶剂暴露的变化表现出不同的RA。此外,先前的研究表明,在蛋白质的功能位点,优选在Ramachandran图的特定区域中某些氨基酸的二面角。基于这些发现,将氨基酸溶剂可及的表面积和二面角与RA和PLB相结合,获得了两个新指标,即多因素RA(MF-RA)和多因素PLB(MF-PLB)。使用两个基准数据库和两个特定的配体结合位点测试了MF-PLB,PLB和其他方法。结果表明,MF-PLB可以提高PLB在配体结合和配体未结合结构上的成功率,特别是对于首选预测而言。

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