Hirano Yoshinori, Okimoto Noriaki, Fujita Shigeo, Taiji Makoto
Laboratory for Computational Molecular Design and Drug Discovery Molecular Simulation Platform Unit, RIKEN Center for Biosystems Dynamics Research (BDR), 6-2-4 Furuedai, Suita, Osaka 565-0874, Japan.
ACS Omega. 2021 Jun 29;6(27):17609-17620. doi: 10.1021/acsomega.1c02159. eCollection 2021 Jul 13.
The interactions between proteins and ligands are involved in various biological functions. While experimental structures provide key static structural information of ligand-unbound and ligand-bound proteins, dynamic information is often insufficient for understanding the detailed mechanism of protein-ligand binding. Here, we studied the conformational changes of the tankyrase 2 binding pocket upon ligand binding using molecular dynamics simulations of the ligand-unbound and ligand-bound proteins. The ligand-binding pocket has two subsites: the nicotinamide and adenosine subsite. Comparative analysis of these molecular dynamics trajectories revealed that the conformational change of the ligand-binding pocket was characterized by four distinct conformations of the ligand-binding pocket. Two of the four conformations were observed only in molecular dynamics simulations. We found that the pocket conformational change on ligand binding was based on the connection between the nicotinamide and adenosine subsites that are located adjacently in the pocket. From the analysis, we proposed the protein-ligand binding mechanism of tankyrase 2. Finally, we discussed the computational prediction of the ligand binding pose using the tankyrase 2 structures obtained from the molecular dynamics simulations.
蛋白质与配体之间的相互作用涉及多种生物学功能。虽然实验结构提供了未结合配体和结合配体的蛋白质的关键静态结构信息,但动态信息通常不足以理解蛋白质-配体结合的详细机制。在这里,我们使用未结合配体和结合配体的蛋白质的分子动力学模拟,研究了端锚聚合酶2结合口袋在配体结合时的构象变化。配体结合口袋有两个亚位点:烟酰胺和腺苷亚位点。对这些分子动力学轨迹的比较分析表明,配体结合口袋的构象变化以配体结合口袋的四种不同构象为特征。这四种构象中的两种仅在分子动力学模拟中观察到。我们发现配体结合时口袋的构象变化基于口袋中相邻的烟酰胺和腺苷亚位点之间的连接。通过分析,我们提出了端锚聚合酶2的蛋白质-配体结合机制。最后,我们讨论了使用从分子动力学模拟获得的端锚聚合酶2结构对配体结合姿势进行的计算预测。