Department of Chemistry, McGill University , 801 Sherbrooke Street West, Montréal, Québec, Canada H3A 0B8.
Molecular Forecaster Inc. , 969 Marc-Aurèle-Fortin, Laval, Québec, Canada H7L 6H9.
Acc Chem Res. 2016 Sep 20;49(9):1646-57. doi: 10.1021/acs.accounts.6b00185. Epub 2016 Aug 16.
Computational methods for docking small molecules to proteins are prominent in drug discovery. There are hundreds, if not thousands, of documented examples-and several pertinent cases within our research program. Fifteen years ago, our first docking-guided drug design project yielded nanomolar metalloproteinase inhibitors and illustrated the potential of structure-based drug design. Subsequent applications of docking programs to the design of integrin antagonists, BACE-1 inhibitors, and aminoglycosides binding to bacterial RNA demonstrated that available docking programs needed significant improvement. At that time, docking programs primarily considered flexible ligands and rigid proteins. We demonstrated that accounting for protein flexibility, employing displaceable water molecules, and using ligand-based pharmacophores improved the docking accuracy of existing methods-enabling the design of bioactive molecules. The success prompted the development of our own program, Fitted, implementing all of these aspects. The primary motivation has always been to respond to the needs of drug design studies; the majority of the concepts behind the evolution of Fitted are rooted in medicinal chemistry projects and collaborations. Several examples follow: (1) Searching for HDAC inhibitors led us to develop methods considering drug-zinc coordination and its effect on the pKa of surrounding residues. (2) Targeting covalent prolyl oligopeptidase (POP) inhibitors prompted an update to Fitted to identify reactive groups and form bonds with a given residue (e.g., a catalytic residue) when the geometry allows it. Fitted-the first fully automated covalent docking program-was successfully applied to the discovery of four new classes of covalent POP inhibitors. As a result, efficient stereoselective syntheses of a few screening hits were prioritized rather than synthesizing large chemical libraries-yielding nanomolar inhibitors. (3) In order to study the metabolism of POP inhibitors by cytochrome P450 enzymes (CYPs)-for toxicology studies-the program Impacts was derived from Fitted and helped us to reveal a complex metabolism with unforeseen stereocenter isomerizations. These efforts, combined with those of other docking software developers, have strengthened our understanding of the complex drug-protein binding process while providing the medicinal chemistry community with useful tools that have led to drug discoveries. In this Account, we describe our contributions over the past 15 years-within their historical context-to the design of drug candidates, including BACE-1 inhibitors, POP covalent inhibitors, G-quadruplex binders, and aminoglycosides binding to nucleic acids. We also remark the necessary developments of docking programs, specifically Fitted, that enabled structure-based design to flourish and yielded multiple fruitful, rational medicinal chemistry campaigns.
计算小分子与蛋白质对接的方法在药物发现中很突出。如果不是有成千上万的话,也有数百个记录在案的例子——在我们的研究计划中也有几个相关的例子。十五年前,我们的第一个对接指导药物设计项目产生了纳摩尔级的金属蛋白酶抑制剂,说明了基于结构的药物设计的潜力。随后,对接程序在整合素拮抗剂、BACE-1 抑制剂和与细菌 RNA 结合的氨基糖苷类药物的设计中的应用表明,现有的对接程序需要显著改进。当时,对接程序主要考虑柔性配体和刚性蛋白质。我们证明,考虑到蛋白质的灵活性,使用可置换的水分子,并使用基于配体的药效团,可以提高现有方法的对接准确性——从而设计出具有生物活性的分子。这一成功促使我们开发了自己的程序 Fitted,该程序实现了所有这些方面。主要动机一直是响应药物设计研究的需要;Fitted 发展背后的大多数概念都植根于药物化学项目和合作。以下是几个例子:(1)寻找 HDAC 抑制剂促使我们开发了考虑药物-锌配位及其对周围残基 pKa 影响的方法。(2)靶向共价脯氨酰寡肽酶 (POP) 抑制剂促使我们更新 Fitted,以在几何形状允许的情况下,识别反应基团并与给定的残基(例如催化残基)形成键。第一个完全自动化的共价对接程序 Fitted 成功地应用于发现了四类新的共价 POP 抑制剂。因此,优先进行了一些筛选命中物的高效立体选择性合成,而不是合成大型化学文库——得到了纳摩尔级的抑制剂。(3)为了研究 POP 抑制剂在细胞色素 P450 酶 (CYP) 中的代谢——用于毒理学研究——从 Fitted 衍生出了程序 Impacts,这帮助我们揭示了一种具有意想不到的立体中心异构化的复杂代谢。这些努力,以及其他对接软件开发商的努力,加强了我们对复杂药物-蛋白质结合过程的理解,同时为药物化学界提供了有用的工具,这些工具导致了药物发现。在本报告中,我们描述了我们在过去 15 年中——在其历史背景下——在候选药物设计方面的贡献,包括 BACE-1 抑制剂、POP 共价抑制剂、G-四链体结合物和与核酸结合的氨基糖苷类药物。我们还评论了对接程序的必要发展,特别是 Fitted,这使得基于结构的设计蓬勃发展,并产生了多个富有成效、合理的药物化学运动。