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Free Energy of Binding of Coiled-Coil Complexes with Different Electrostatic Environments: The Influence of Force Field Polarisation and Capping

机译:螺旋线圈复合物在不同静电环境下结合的自由能:力场极化和封端的影响

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Coiled-coils are well known protein–protein interaction motifs, with the leucine zipper region of activator protein-1 (AP-1) consisting of the c-Jun and c-Fos proteins being a typical example. Molecular dynamics (MD) simulations using the MM/GBSA method have been used to predict the free energy of interaction of these proteins. The influence of force field polarisation and capping on the predicted free energy of binding of complexes with different electrostatic environments (net charge) were investigated. Although both force field polarisation and peptide capping are important for the prediction of the absolute free energy of binding, peptide capping has the largest influence on the predicted free energy of binding. Polarisable simulations appear better suited to determine structural properties of the complexes of these proteins while non-polarisable simulations seem to give better predictions of the associated free energies of binding.
机译:卷线圈是众所周知的蛋白质-蛋白质相互作用基序,典型的例子是由c-Jun和c-Fos蛋白组成的激活蛋白1(AP-1)的亮氨酸拉链区域。使用MM / GBSA方法进行的分子动力学(MD)模拟已用于预测这些蛋白质相互作用的自由能。研究了力场极化和封端对配合物与不同静电环境(净电荷)结合的预测自由能的影响。尽管力场极化和肽封端对于预测结合的绝对自由能都很重要,但肽封端对预测的结合自由能影响最大。可极化的模拟似乎更适合确定这些蛋白质复合物的结构特性,而不可极化的模拟似乎可以更好地预测相关的结合自由能。

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