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Binding Energy Distribution Analysis Method (BEDAM): Hamiltonian replica exchange with torsional flattening for binding mode prediction and binding free energy estimation

机译:结合能分布分析方法(BEDAM):带有扭转展平的哈密顿量交换用于结合模式预测和结合自由能估计

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摘要

Molecular dynamics modeling of complex biological systems is limited by finite simulation time. The simulations are often trapped close to local energy minima separated by high energy barriers. Here, we introduce Hamiltonian replica exchange (H-REMD) with torsional flattening in the Binding Energy Distribution Analysis Method (BEDAM), to reduce energy barriers along torsional degrees of freedom and accelerate sampling of intra-molecular degrees of freedom relevant to protein-ligand binding. The method is tested on a standard benchmark (T4 Lysozyme/L99A/p-xylene complex) and on a library of HIV-1 integrase complexes derived from the SAMPL4 blind challenge. We applied the torsional flattening strategy to 26 of the 53 known binders to the HIV Integrase LEDGF site found to have a binding energy landscape funneled towards the crystal structure. We show that our approach samples the conformational space more efficiently than the original method without flattening when starting from a poorly docked pose with incorrect ligand dihedral angle conformations. In these unfavorable cases convergence to a binding pose within 2-3 angstroms from the crystallographic pose is obtained within a few nanoseconds of the Hamiltonian replica exchange simulation. We found that torsional flattening is insufficient in cases where trapping is due to factors other than torsional energy, such as the formation of incorrect intra-molecular hydrogen bonds and stacking. Work is in progress to generalize the approach to handle these cases and thereby make it more widely applicable.
机译:复杂生物系统的分子动力学建模受有限的仿真时间限制。模拟通常被困在由高能垒分隔的局部能量最小值附近。在这里,我们在结合能分布分析方法(BEDAM)中引入具有扭转展平的哈密顿量副本交换(H-REMD),以减少沿扭转自由度的能垒,并加快与蛋白质-配体有关的分子内自由度的采样捆绑。该方法在标准基准(T4溶菌酶/ L99A /对二甲苯复合物)和源自SAMPL4盲法攻击的HIV-1整合酶复合物文库中进行了测试。我们对53种已知的HIV Integrase LEDGF位点的粘合剂中的26种采用了扭转扁平化策略,发现该位点具有向晶体结构集中的结合能态势。我们表明,从具有错误配体二面角构象的对接不良的姿势开始时,我们的方法比原始方法更有效地采样构象空间,而不会变平。在这些不利的情况下,在汉密尔顿复制品交换模拟的几纳秒内会收敛到晶体姿势2-3埃之内的结合姿势。我们发现,在由于其他原因(例如,不正确的分子内氢键形成和堆积)导致的扭转能以外的其他情况下,扭转平坦化是不够的。目前正在努力推广处理这些案件的方法,从而使其更广泛地适用。

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