AbstractAdvanced molecular docking methods often aim at capturing the flexibility of the protein upon '/> Prediction of binding poses to FXR using multi-targeted docking combined with molecular dynamics and enhanced sampling
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Prediction of binding poses to FXR using multi-targeted docking combined with molecular dynamics and enhanced sampling

机译:使用多目标对接结合分子动力学和增强抽样的结合对FXR的预测

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AbstractAdvanced molecular docking methods often aim at capturing the flexibility of the protein upon binding to the ligand. In this study, we investigate whether instead a simple rigid docking method can be applied, if combined with multiple target structures to model the backbone flexibility and molecular dynamics simulations to model the sidechain and ligand flexibility. The methods are tested for the binding of 35 ligands to FXR as part of the first stage of theDrug Design Data Resource (D3R) Grand Challenge 2blind challenge. The results show that the multiple-target docking protocol performs surprisingly well, with correct poses found for 21 of the ligands. MD simulations started on the docked structures are remarkably stable, but show almost no tendency of refining the structure closer to the experimentally found binding pose. Reconnaissance metadynamics enhances the exploration of new binding poses, but additional collective variables involving the protein are needed to exploit the full potential of the method.]]>
机译:<-!蛋白质结合配体后。在这项研究中,我们研究了是否可以应用简单的刚性对接方法,如果与多个目标结构组合以模拟骨干柔性和分子动力学模拟以模拟侧链和配体柔韧性。作为<重点类型=“斜体”>药物设计数据资源(D3R)大挑战2 盲目挑战,将35个配体与FXR的结合测试到FXR的结合。结果表明,多目标对接协议令人惊讶地表现出令人惊讶的良好,并且发现了21个配体的正确姿势。在停靠的结构上开始MD模拟非常稳定,但显着展示了更完善的结构更接近实验发现的绑定姿势的趋势。侦察元动力学增强了新的结合姿势的探索,但需要涉及蛋白质的额外集体变量来利用方法的全部潜力。 ]]>

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