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Predicting substrates by docking high-energy intermediates to enzyme structures

机译:通过将高能中间体与酶结构对接来预测底物

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With the emergence of sequences and even structures for proteins of unknown function, structure-based prediction of enzyme activity has become a pragmatic as well as an interesting question. Here we investigate a method to predict substrates for enzymes of known structure by docking high-energy intermediate forms of the potential substrates. A database of such high-energy transition-state analogues was created from the KEGG metabolites. To reduce the number of possible reactions to consider, we restricted ourselves to enzymes of the amidohydrolase superfamily. We docked each metabolite into seven different amidohydrolases in both the ground-state and the high-energy intermediate forms. Docking the high- energy intermediates improved the discrimination between decoys and substrates significantly over the corresponding standard ground-state database, both by enrichment of the true substrates and by geometric fidelity. To test this method prospectively, we attempted to predict the enantioselectivity of a set of chiral substrates for phosphotriesterase, for both wild-type and mutant forms of this enzyme. The stereoselectivity ratios of the six enzymes considered for those four substrate enantiomer pairs differed over a range of 10-to 10 000-fold and underwent 20 switches in stereoselectivities for favored enantiomers, compared to the wild type. The docking of the high- energy intermediates correctly predicted the stereoselectivities for 18 of the 20 substrate/enzyme combinations when compared to subsequent experimental synthesis and testing. The possible applications of this approach to other enzymes are considered.
机译:随着功能未知的蛋白质的序列甚至结构的出现,基于结构的酶活性预测已成为一个实用且有趣的问题。在这里,我们研究了一种通过对接潜在底物的高能中间形式来预测底物的已知结构酶的方法。从KEGG代谢产物创建了此类高能过渡态类似物的数据库。为了减少可能考虑的反应数量,我们将自己限制在酰胺水解酶超家族的酶上。我们将每种代谢物对接成基态和高能中间体形式的七个不同的酰胺水解酶。相对于相应的标准基态数据库,高能中间体的对接显着改善了诱饵和底物之间的区分度,这既可以通过增加真实底物来实现,也可以通过几何保真度来实现。为了前瞻性地测试该方法,我们尝试预测该手性底物对磷酸三酯酶的野生型和突变体形式的对映选择性。与野生型相比,这四种底物对映异构体对所考虑的六种酶的立体选择性比率在10至10000倍范围内变化,并且对有利的对映异构体进行了20种立体选择性转换。与后续的实验合成和测试相比,高能中间体的对接可正确预测20种底物/酶组合中18种的立体选择性。考虑了该方法对其他酶的可能应用。

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