Department of Physics and Astronomy, Clemson University, Clemson, South Carolina 29634, USA.
J Chem Inf Model. 2013 Aug 26;53(8):1871-9. doi: 10.1021/ci300478y. Epub 2012 Dec 24.
Solution of the structures of ligand-receptor complexes via computational docking is an integral step in many structural modeling efforts as well as in rational drug discovery. A major challenge in ligand-receptor docking is the modeling of both receptor and ligand flexibilities in order to capture receptor conformational changes induced by ligand binding. In the molecular docking suite MedusaDock, both ligand and receptor side chain flexibilities are modeled simultaneously with sets of discrete rotamers, where the ligand rotamer library is generated "on the fly" in a stochastic manner. Here, we introduce backbone flexibility into MedusaDock by implementing ensemble docking in a sequential manner for a set of distinct receptor backbone conformations. We generate corresponding backbone ensembles to capture backbone changes upon binding to different ligands, as observed experimentally. We develop a simple clustering and ranking approach to select the top poses as blind predictions. We applied our method in the CSAR2011 benchmark exercise. In 28 out of 35 cases (80%) where the ligand-receptor complex structures were released, we were able to predict near-native poses (<2.5 Å RMSD), the highest success rate reported for CSAR2011. This result highlights the importance of modeling receptor backbone flexibility to the accurate docking of ligands to flexible targets. We expect a broad application of our fully flexible docking approach in biological studies as well as in rational drug design.
通过计算对接来解决配体-受体复合物的结构是许多结构建模工作以及合理药物发现中的一个重要步骤。配体-受体对接的主要挑战是对受体和配体的柔性进行建模,以捕获配体结合引起的受体构象变化。在 MedusaDock 分子对接套件中,同时使用离散构象的集合对配体和受体侧链的柔性进行建模,其中配体构象文库以随机方式“即时”生成。在这里,我们通过为一组不同的受体骨架构象顺序执行集合对接,在 MedusaDock 中引入了骨干柔性。我们生成相应的骨干集合,以捕获与不同配体结合时的骨干变化,如实验中观察到的那样。我们开发了一种简单的聚类和排序方法来选择最佳构象作为盲预测。我们将我们的方法应用于 CSAR2011 基准测试。在 35 个配体-受体复合物结构释放的 28 个案例中(80%),我们能够预测接近天然的构象(<2.5 Å RMSD),这是 CSAR2011 报告的最高成功率。这一结果突出了建模受体骨干柔性对准确对接柔性靶标配体的重要性。我们预计我们的完全柔性对接方法将在生物研究以及合理药物设计中得到广泛应用。