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解决被困高能水的问题:基于嘧啶并吲哚的高效糖原合酶激酶-3β抑制剂的设计与合成

Addressing a Trapped High-Energy Water: Design and Synthesis of Highly Potent Pyrimidoindole-Based Glycogen Synthase Kinase-3β Inhibitors.

作者信息

Andreev Stanislav, Pantsar Tatu, Tesch Roberta, Kahlke Niclas, El-Gokha Ahmed, Ansideri Francesco, Grätz Lukas, Romasco Jenny, Sita Giulia, Geibel Christian, Lämmerhofer Michael, Tarozzi Andrea, Knapp Stefan, Laufer Stefan A, Koch Pierre

机构信息

Institute of Pharmaceutical Sciences, Department of Medicinal and Pharmaceutical Chemistry, Eberhard Karls University Tübingen, Auf der Morgenstelle 8, 72076 Tübingen, Germany.

School of Pharmacy, Faculty of Health Sciences, University of Eastern Finland, P.O. Box 1627, 70211 Kuopio, Finland.

出版信息

J Med Chem. 2022 Jan 27;65(2):1283-1301. doi: 10.1021/acs.jmedchem.0c02146. Epub 2021 Jul 2.

Abstract

In small molecule binding, water is not a passive bystander but rather takes an active role in the binding site, which may be decisive for the potency of the inhibitor. Here, by addressing a high-energy water, we improved the IC value of our co-crystallized glycogen synthase kinase-3β (GSK-3β) inhibitor by nearly two orders of magnitude. Surprisingly, our results demonstrate that this high-energy water was not displaced by our potent inhibitor ()-3-(3-((7-ethynyl-9-pyrimido[4,5-]indol-4-yl)(methyl)amino)piperidin-1-yl)propanenitrile (-, IC value of 6 nM). Instead, only a subtle shift in the location of this water molecule resulted in a dramatic decrease in the energy of this high-energy hydration site, as shown by the WaterMap analysis combined with microsecond timescale molecular dynamics simulations. - demonstrated both a favorable kinome selectivity profile and target engagement in a cellular environment and reduced GSK-3 autophosphorylation in neuronal SH-SY5Y cells. Overall, our findings highlight that even a slight adjustment in the location of a high-energy water can be decisive for ligand binding.

摘要

在小分子结合过程中,水并非被动的旁观者,而是在结合位点发挥着积极作用,这可能对抑制剂的效力起决定性作用。在此,通过处理一个高能水分子,我们将共结晶的糖原合酶激酶-3β(GSK-3β)抑制剂的IC值提高了近两个数量级。令人惊讶的是,我们的结果表明,这种高能水分子并未被我们强效的抑制剂()-3-(3-((7-乙炔基-9-嘧啶并[4,5-]吲哚-4-基)(甲基)氨基)哌啶-1-基)丙腈(,IC值为6 nM)取代。相反,正如结合微秒级分子动力学模拟的WaterMap分析所示,该水分子位置仅发生细微移动,就导致这个高能水合位点的能量大幅降低。-在细胞环境中展现出良好的激酶组选择性谱和靶点结合能力,并降低了神经元SH-SY5Y细胞中GSK-3的自磷酸化水平。总体而言,我们的研究结果突出表明,即使高能水分子位置的微小调整也可能对配体结合起决定性作用。

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