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咪唑并[1,2-c]嘧啶-5(6H)-酮作为新型细胞周期蛋白依赖性激酶 2 抑制剂的核心:合成、活性测定、对接和量子力学评分。

Imidazo[1,2-c]pyrimidin-5(6H)-one as a novel core of cyclin-dependent kinase 2 inhibitors: Synthesis, activity measurement, docking, and quantum mechanical scoring.

机构信息

Institute of Organic Chemistry and Biochemistry of the Czech Academy of Sciences, Prague 6, Czech Republic.

Regional Centre of Advanced Technologies and Materials, Department of Physical Chemistry, Palacký University, Olomouc, Czech Republic.

出版信息

J Mol Recognit. 2018 Sep;31(9):e2720. doi: 10.1002/jmr.2720. Epub 2018 Apr 23.

Abstract

We report on the synthesis, activity testing, docking, and quantum mechanical scoring of novel imidazo[1,2-c]pyrimidin-5(6H)-one scaffold for cyclin-dependent kinase 2 (CDK2) inhibition. A series of 26 compounds substituted with aromatic moieties at position 8 has been tested in in vitro enzyme assays and shown to inhibit CDK2. 2D structure-activity relationships have ascertained that small substituents at position 8 (up to the size of naphtyl or methoxyphenyl) generally lead to single-digit micromolar IC values, whereas bigger substituents (substituted biphenyls) decreased the compounds' activities. The binding modes of the compounds obtained using Glide docking have exhibited up to 2 hinge-region hydrogen bonds to CDK2 and differed in the orientation of the inhibitor core and the placement of the 8-substituents. Semiempirical quantum mechanics-based scoring identified probable favourable binding modes, which will serve for future structure-based design and synthetic optimization of substituents of the heterocyclic core. In summary, we have identified a novel core for CDK2 inhibition and will explore it further to increase the potencies of the compounds and also monitor selectivities against other protein kinases.

摘要

我们报告了新型咪唑并[1,2-c]嘧啶-5(6H)-酮骨架的合成、活性测试、对接和量子力学评分,用于细胞周期蛋白依赖性激酶 2(CDK2)抑制。对 26 种在位置 8 用芳香基团取代的化合物进行了体外酶测定,结果表明它们抑制了 CDK2。二维结构-活性关系确定,位置 8 上的小取代基(最大尺寸为萘基或甲氧基苯基)通常导致化合物的 IC 值低至个位数微摩尔,而较大的取代基(取代的联苯)降低了化合物的活性。使用 Glide 对接获得的化合物的结合模式显示与 CDK2 有多达 2 个铰链区氢键,并且抑制剂核心的取向和 8 位取代基的位置不同。基于半经验量子力学的评分确定了可能有利的结合模式,这将为进一步基于结构的设计和杂环核心取代基的合成优化提供依据。总之,我们已经确定了一种新型的 CDK2 抑制核心,并将进一步探索它,以提高化合物的效力,并监测对其他蛋白激酶的选择性。

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