首页> 外文期刊>Journal of Medicinal Chemistry >Insight through molecular mechanics Poisson-Boltzmann surface area calculations into the binding affinity of triclosan and three analogues for FabI, the E-coli enoyl reductase
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Insight through molecular mechanics Poisson-Boltzmann surface area calculations into the binding affinity of triclosan and three analogues for FabI, the E-coli enoyl reductase

机译:通过分子力学的Poisson-Boltzmann表面积计算了解三氯生和三种类似物对FabI(大肠杆菌烯醇酰还原酶)的结合亲和力

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摘要

Keeping pace with emerging drug resistance in clinically important pathogens will be greatly aided by inexpensive yet reliable computational methods that predict the binding affinities of ligands for drug targets. We present results using the molecular mechanics Poisson-Boltzmann surface area (MM-PBSA) method to calculate the affinity of a series of triclosan analogues for the E. coli enoyl reductase FabI, spanning a 450000-fold range of binding affinities. Significantly, a high correlation is observed between the calculated binding energies and those determined experimentally. Further examination indicates that the van der Waals energies are the most correlated component of the total affinity (r(2) = 0.74), indicating that the shape of the inhibitor is very important in defining the binding energies for this system. The validation of MM-PBSA for the E coli FabI system serves as a platform for inhibitor design efforts focused on the homologous enzyme in Staphylococcus aureues and Mycobacterium tuberculosis.
机译:通过廉价但可靠的计算方法来预测临床上重要病原体中新出现的耐药性,这些方法可预测配体对药物靶标的结合亲和力,这将极大地帮助他们。我们目前使用分子力学泊松玻尔兹曼表面积(MM-PBSA)方法来计算结果的一系列三氯生类似物对大肠杆菌烯酰还原酶FabI的亲和力,其结合亲和力为450000倍。显着地,在计算的结合能与实验确定的结合能之间观察到高度相关性。进一步的检查表明范德华能量是总亲和力中最相关的成分(r(2)= 0.74),表明抑制剂的形状对于定义该系统的结合能非常重要。用于大肠杆菌FabI系统的MM-PBSA的验证为抑制剂设计工作提供了平台,这些工作的重点是金黄色葡萄球菌和结核分枝杆菌中的同源酶。

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