Tounge Brett A, Rajamani Ramkumar, Baxter Ellen W, Reitz Allen B, Reynolds Charles H
Drug Discovery, Johnson & Johnson Pharmaceutical Research & Development, L.L.C., P.O. Box 776, Welsh and McKean Roads, Spring House, PA 19477-0776, USA.
J Mol Graph Model. 2006 May;24(6):475-84. doi: 10.1016/j.jmgm.2005.10.002. Epub 2005 Nov 15.
Computing the binding affinity of a protein-ligand complex is one of the most fundamental and difficult tasks in computer-aided drug design. Many approaches for computing binding affinities can be classified as linear interaction energy (LIE) models as they rely on some type of linear fit of computed interaction energies between ligand and protein. We have examined the computed interaction energies of a series of beta-secretase (BACE) inhibitors in terms of van der Waals, coulombic, and continuum-solvation contributions to ligand binding. We have also systematically examined the effect of different protonation states of the protein and ligands. We find that the binding affinities are relatively insensitive to the protonation state of the protein when neutral ligands are considered. Inclusion of charged ligands leads to large deviations in the coulomb, solvation, and even van der Waals terms. The latter is due to increased repulsive van der Waals interactions in the complex due to the strong coulomb attraction found between oppositely charged functional groups in the protein and ligand. In general, we find that the best models are obtained when the protein is judiciously charged (e.g. Asp32-, Arg235+) and the potentially charged ligands are treated as neutral.
计算蛋白质-配体复合物的结合亲和力是计算机辅助药物设计中最基本且最具挑战性的任务之一。许多计算结合亲和力的方法可归类为线性相互作用能(LIE)模型,因为它们依赖于配体与蛋白质之间计算出的相互作用能的某种线性拟合。我们从范德华力、库仑力以及连续介质溶剂化对配体结合的贡献方面,研究了一系列β-分泌酶(BACE)抑制剂的计算相互作用能。我们还系统地研究了蛋白质和配体不同质子化状态的影响。我们发现,当考虑中性配体时,结合亲和力对蛋白质的质子化状态相对不敏感。包含带电荷的配体导致库仑力、溶剂化甚至范德华力项出现较大偏差。后者是由于蛋白质和配体中带相反电荷的官能团之间存在强烈的库仑吸引力,导致复合物中的范德华排斥相互作用增加。总体而言,我们发现当蛋白质经过合理带电(例如Asp32-、Arg235+)且潜在带电的配体被视为中性时,能得到最佳模型。