Davis Ian W, Baker David
Department of Biochemistry, University of Washington, Seattle, WA 98195-7350, USA.
J Mol Biol. 2009 Jan 16;385(2):381-92. doi: 10.1016/j.jmb.2008.11.010. Epub 2008 Nov 18.
Computational docking of small-molecule ligands into protein receptors is an important tool for modern drug discovery. Although conformational adjustments are frequently observed between the free and ligand-bound states, the conformational flexibility of the protein is typically ignored in protein-small molecule docking programs. We previously described the program RosettaLigand, which leverages the Rosetta energy function and side-chain repacking algorithm to account for flexibility of all side chains in the binding site. Here we present extensions to RosettaLigand that incorporate full ligand flexibility as well as receptor backbone flexibility. Including receptor backbone flexibility is found to produce more correct docked complexes and to lower the average RMSD of the best-scoring docked poses relative to the rigid-backbone results. On a challenging set of retrospective and prospective cross-docking tests, we find that the top-scoring ligand pose is correctly positioned within 2 A RMSD for 64% (54/85) of cases overall.
将小分子配体与蛋白质受体进行计算对接是现代药物发现的重要工具。尽管在游离状态和配体结合状态之间经常观察到构象调整,但在蛋白质 - 小分子对接程序中,蛋白质的构象灵活性通常被忽略。我们之前描述了RosettaLigand程序,它利用Rosetta能量函数和侧链重排算法来考虑结合位点中所有侧链的灵活性。在此,我们展示了RosettaLigand的扩展,它纳入了配体的完全灵活性以及受体主链的灵活性。发现纳入受体主链灵活性会产生更多正确的对接复合物,并相对于刚性主链结果降低最佳评分对接姿势的平均RMSD。在一组具有挑战性的回顾性和前瞻性交叉对接测试中,我们发现总体上64%(54/85)的案例中,得分最高的配体姿势在RMSD为2 Å范围内被正确定位。