Medicinal Chemistry Research Group, Research Centre for Natural Sciences, Hungarian Academy of Sciences, Magyar tudósok krt. 2, Budapest, 1117, Hungary.
Schrödinger GmbH, Dynamostr. 13, 68165, Mannheim, Germany.
J Comput Aided Mol Des. 2018 Feb;32(2):331-345. doi: 10.1007/s10822-018-0097-y. Epub 2018 Jan 15.
Optimization of fragment size D-amino acid oxidase (DAAO) inhibitors was investigated using a combination of computational and experimental methods. Retrospective free energy perturbation (FEP) calculations were performed for benzo[d]isoxazole derivatives, a series of known inhibitors with two potential binding modes derived from X-ray structures of other DAAO inhibitors. The good agreement between experimental and computed binding free energies in only one of the hypothesized binding modes strongly support this bioactive conformation. Then, a series of 1-H-indazol-3-ol derivatives formerly not described as DAAO inhibitors was investigated. Binding geometries could be reliably identified by structural similarity to benzo[d]isoxazole and other well characterized series and FEP calculations were performed for several tautomers of the deprotonated and protonated compounds since all these forms are potentially present owing to the experimental pKa values of representative compounds in the series. Deprotonated compounds are proposed to be the most important bound species owing to the significantly better agreement between their calculated and measured affinities compared to the protonated forms. FEP calculations were also used for the prediction of the affinities of compounds not previously tested as DAAO inhibitors and for a comparative structure-activity relationship study of the benzo[d]isoxazole and indazole series. Selected indazole derivatives were synthesized and their measured binding affinity towards DAAO was in good agreement with FEP predictions.
采用计算和实验相结合的方法研究了 D-氨基酸氧化酶 (DAAO) 抑制剂的片段大小优化。对苯并[d]异噁唑衍生物进行了回顾性自由能微扰 (FEP) 计算,这是一系列已知抑制剂,具有两个源自其他 DAAO 抑制剂的 X 射线结构的潜在结合模式。在只有一种假设的结合模式中,实验和计算结合自由能之间的良好一致性强烈支持这种生物活性构象。然后,研究了以前未被描述为 DAAO 抑制剂的一系列 1-H-吲唑-3-醇衍生物。通过与苯并[d]异噁唑和其他特征良好的系列的结构相似性,可以可靠地确定结合几何形状,并且对去质子化和质子化化合物的几种互变异构体进行了 FEP 计算,因为由于该系列中代表性化合物的实验 pKa 值,所有这些形式都可能存在。与质子化形式相比,去质子化化合物被认为是最重要的结合物种,因为它们的计算和测量亲和力之间的一致性显著更好。FEP 计算还用于预测以前未作为 DAAO 抑制剂测试的化合物的亲和力,并对苯并[d]异噁唑和吲唑系列进行比较结构-活性关系研究。合成了选定的吲唑衍生物,并对其与 DAAO 的结合亲和力进行了测量,结果与 FEP 预测结果一致。