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Improving Prediction Accuracy of Binding Free Energies and Poses of HIV Integrase Complexes Using the Binding Energy Distribution Analysis Method with Flattening Potentials

机译:使用具有展平潜力的结合能分布分析方法提高HIV整合酶复合物的结合自由能和位姿的预测准确性

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摘要

To accelerate conformation sampling of slow dynamics from receptor or ligand, we introduced flattening potentials on selected bonded and nonbonded intramolec-ular interactions to the binding energy distribution analysis method (BEDAM) for calculating absolute binding free energies of protein-ligand complexes using an implicit solvent model, and implemented flattening BEDAM using the asynchronous replica exchange (AsyncRE) framework for performing large scale replica exchange molecular dynamics (REMD) simulations. The advantage of using the flattening feature to reduce high energy barriers was exhibited first by the p-xylene-T4 Lysozyme complex, where the intramolecular interactions of a protein sidechain on the binding site were flattened to accelerate the conformational transition of the sidechain from the trans to the gauche state when the p-xylene ligand is present in the binding site. Much more extensive flattening BEDAM simulations were performed for 53 experimental binders and 248 nonbinders of HIV-1 integrase which formed the SAMPL4 challenge, with the total simulation time of 24.3 microseconds. We demonstrated that the flattening BEDAM simulations not only substantially increase the number of true positives (and reduce false negatives) but also improve the prediction accuracy of binding poses of experimental binders. Furthermore, the values of area under the curve (AUC) of receiver operating characteristic (ROC) and the enrichment factors at 20% cutoff calculated from the flattening BEDAM simulations were improved significantly in comparison with that of simulations without flattening as we previously reported for the whole SAMPL4 database. Detailed analysis found that the improved ability to discriminate the binding free energies between the binders and nonbinders is due to the fact that the flattening simulations reduce the reorganization free energy penalties of binders and decrease the overlap of binding free energy distributions of binders relative to that of nonbinders. This happens because the conformational ensemble distributions for both the ligand and protein in solution match those at the fully coupled (complex) state more closely when the systems are more fully sampled after the flattening potentials are applied to the intermediate states.
机译:为了加快来自受体或配体的慢动力学的构象采样,我们将结合的和未结合的分子内相互作用的平整势引入了结合能分布分析方法(BEDAM),以使用隐式溶剂计算蛋白质-配体复合物的绝对结合自由能模型,并使用异步副本交换(AsyncRE)框架实施扁平化BEDAM,以执行大规模副本交换分子动力学(REMD)模拟。对位二甲苯​​-T4溶菌酶复合物首先显示出使用扁平化特征减少高能垒的优势,其中对蛋白质侧链在结合位点的分子内相互作用进行了扁平化,以加速侧链从反式构象转变。当对二甲苯配体存在于结合位点时,其状态变为无规状态。针对53个实验结合剂和248个非结合剂HIV-1整合酶(形成SAMPL4挑战)进行了更广泛的扁平化BEDAM模拟,总模拟时间为24.3微秒。我们证明了扁平化的BEDAM模拟不仅大大增加了真实阳性的数量(并减少了假阴性),而且还提高了实验粘合剂的结合姿势的预测准确性。此外,与平展的BEDAM模拟相比,接收器工作特性(ROC)的曲线下面积(AUC)值和截止20%截止时的富集因子与未展平的模拟相比得到了显着改善,如我们先前报道的。整个SAMPL4数据库。详细的分析发现,区分粘合剂和非粘合剂之间的结合自由能的能力得到了提高,这是由于扁平化模拟减少了粘合剂的重组自由能罚分,并减少了粘合剂相对于粘合剂的自由能分布的重叠。非粘合剂。发生这种情况的原因是,在将平整电势应用于中间状态后,如果对系统进行了更充分的采样,则溶液中配体和蛋白质的构象总体分布会更接近于完全耦合(复杂)状态的构象总体分布。

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