Department of Pharmaceutical Sciences, University of Basel, Klingelbergstrasse 50, 4056 Basel, Switzerland.
J Chem Inf Model. 2013 Jun 24;53(6):1415-23. doi: 10.1021/ci400098y. Epub 2013 Jun 12.
Docking algorithms allowing for ligand and - to various extent - also protein flexibility are nowadays replacing techniques based on rigid protocols. The algorithm implemented in the Dolina software relies on pharmacophore matching for generating potential ligand poses and treats associated local induced-fit changes by combinatorial rearrangement of side-chains lining the binding site. In Dolina, ligand flexibility is not treated internally, instead a pool of low-energy conformers identified in a conformational search is screened for extended binding-pose candidates. Grouping rearranged residues in sterically independent families and side-chain conformer clustering are employed to achieve efficient use of the computational resources along with a good accuracy of the generated poses. Dolina was applied toward docking of small-molecule ligands to three different nuclear receptor ligand binding domains for which in total 18 high-resolution crystal structures were used as reference. The selected nuclear receptors feature a deeply buried ligand-binding site where local induced-fit is to be expected, particularly for receptor antagonists. For each receptor, a crystal structure with a cocrystallized small steroid ligand (template) was chosen as a target system, to which several synthetic ligands of different sizes were docked. Poses within an RMSD of 2.0 Å from the crystal reference pose were generated in 91% of the cases. In 28%, the pose with the lowest RMSD to the reference pose was ranked as the top one, and in 76% it was ranked among the top five poses. Detailed descriptions of the docking algorithm and observed results are included. Dolina is available free of charge for academic institutions.
现今,允许配体和(在不同程度上)也允许蛋白质柔性的对接算法正在取代基于刚性方案的技术。在 Dolina 软件中实现的算法依赖于药效团匹配来生成潜在的配体构象,并通过组合排列结合位点周围的侧链来处理相关的局部诱导适应变化。在 Dolina 中,配体柔性不是内部处理的,而是在构象搜索中识别出的低能构象池被筛选出扩展的结合构象候选物。采用将重新排列的残基分组到空间独立的家族中和侧链构象聚类的方法,以实现对计算资源的有效利用,同时生成构象的准确性也很好。Dolina 被应用于三种不同的核受体配体结合域中小分子配体的对接,总共使用了 18 个高分辨率晶体结构作为参考。所选的核受体具有深埋的配体结合位点,预计会出现局部诱导适应,特别是对于受体拮抗剂。对于每个受体,选择一个与小甾体配体(模板)共结晶的晶体结构作为目标系统,对其进行了几种不同大小的合成配体的对接。在与晶体参考构象的 RMSD 为 2.0 Å 内生成了 91%的构象。在 28%的情况下,与参考构象 RMSD 最低的构象被评为最佳构象,而在 76%的情况下,它被评为最佳构象中的前五个之一。包括对接算法和观察结果的详细描述。Dolina 可免费提供给学术机构。