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构象转变与绝对结合自由能计算的收敛性

Conformational Transitions and Convergence of Absolute Binding Free Energy Calculations.

作者信息

Lapelosa Mauro, Gallicchio Emilio, Levy Ronald M

机构信息

BioMaPS Institute for Quantitative Biology and Department of Chemistry and Chemical Biology, Rutgers the State University of New Jersey, Piscataway, NJ 08854.

出版信息

J Chem Theory Comput. 2012 Jan 10;8(1):47-60. doi: 10.1021/ct200684b.

DOI:10.1021/ct200684b
PMID:22368530
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3285237/
Abstract

The Binding Energy Distribution Analysis Method (BEDAM) is employed to compute the standard binding free energies of a series of ligands to a FK506 binding protein (FKBP12) with implicit solvation. Binding free energy estimates are in reasonably good agreement with experimental affinities. The conformations of the complexes identified by the simulations are in good agreement with crystallographic data, which was not used to restrain ligand orientations. The BEDAM method is based on λ -hopping Hamiltonian parallel Replica Exchange (HREM) molecular dynamics conformational sampling, the OPLS-AA/AGBNP2 effective potential, and multi-state free energy estimators (MBAR). Achieving converged and accurate results depends on all of these elements of the calculation. Convergence of the binding free energy is tied to the level of convergence of binding energy distributions at critical intermediate states where bound and unbound states are at equilibrium, and where the rate of binding/unbinding conformational transitions is maximal. This finding mirrors similar observations in the context of order/disorder transitions as for example in protein folding. Insights concerning the physical mechanism of ligand binding and unbinding are obtained. Convergence for the largest FK506 ligand is achieved only after imposing strict conformational restraints, which however require accurate prior structural knowledge of the structure of the complex. The analytical AGBNP2 model is found to underestimate the magnitude of the hydrophobic driving force towards binding in these systems characterized by loosely packed protein-ligand binding interfaces. Rescoring of the binding energies using a numerical surface area model corrects this deficiency. This study illustrates the complex interplay between energy models, exploration of conformational space, and free energy estimators needed to obtain robust estimates from binding free energy calculations.

摘要

结合能分布分析方法(BEDAM)用于计算一系列配体与具有隐式溶剂化作用的FK506结合蛋白(FKBP12)的标准结合自由能。结合自由能估计值与实验亲和力相当吻合。模拟确定的复合物构象与晶体学数据高度一致,而晶体学数据未用于限制配体取向。BEDAM方法基于λ跳跃哈密顿量并行副本交换(HREM)分子动力学构象采样、OPLS-AA/AGBNP2有效势以及多态自由能估计器(MBAR)。获得收敛且准确的结果取决于计算的所有这些要素。结合自由能的收敛与关键中间态的结合能分布的收敛水平相关,在这些中间态中,结合态和未结合态处于平衡,且结合/解离构象转变的速率最大。这一发现反映了在例如蛋白质折叠的有序/无序转变背景下的类似观察结果。获得了关于配体结合和解离物理机制的见解。仅在施加严格的构象限制后,最大的FK506配体才实现收敛,然而这需要对复合物结构有准确的先验结构知识。发现在这些以松散堆积的蛋白质-配体结合界面为特征的系统中,解析AGBNP2模型低估了疏水结合驱动力的大小。使用数值表面积模型对结合能进行重新评分可纠正这一缺陷。本研究说明了能量模型、构象空间探索以及从结合自由能计算中获得可靠估计所需的自由能估计器之间的复杂相互作用。

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