International Centre for Science and High Technology, UNIDO, AREA Science Park, Padriciano 99, 34012, Trieste, Italy.
J Comput Aided Mol Des. 2011 Jan;25(1):31-49. doi: 10.1007/s10822-010-9399-4. Epub 2010 Nov 17.
Thymidine monophosphate kinase (TMPK(mt)) is an essential enzyme for nucleotide metabolism in Mycobacterium tuberculosis, and thus an attractive target for novel antituberculosis agents. In this work, we have explored the chemical space around the 2',3'-bicyclic thymidine nucleus by designing and in silico screening of a virtual focused library selected via structure based methods to identify more potent analogs endowed with favorable ADME-related properties. In all the library members we have exchanged the ribose ring of the template with a cyclopentane moiety that is less prone to enzymatic degradation. In addition, we have replaced the six-membered 2',3'-ring by a number of five-membered and six-membered heterocyclic rings containing alternative proton donor and acceptor groups, to exploit the interaction with the carboxylate groups of Asp9 and Asp163 as well as with several cationic residues present in the vicinity of the TMPK(mt) binding site. The three-dimensional structure of the TMPK(mt) complexed with 5-hydroxymethyl-dUMP, an analog of dTMP, was employed to develop a QSAR model, to parameterize a scoring function specific for the TMPK(mt) target and to select analogues which display the highest predicted binding to the target. As a result, we identified a small highly focused combinatorial subset of bicyclic thymidine analogues as virtual hits that are predicted to inhibit the mycobacterial TMPK in the submicromolar concentration range and to display favorable ADME-related properties.
胸苷单磷酸激酶(TMPK(mt))是结核分枝杆菌核苷酸代谢的必需酶,因此是新型抗结核药物的理想靶点。在这项工作中,我们通过设计和基于结构的方法对虚拟聚焦文库进行了筛选,探索了 2',3'-环胸腺嘧啶核周围的化学空间,以识别更有效的类似物,并赋予其有利的与 ADME 相关的性质。在所有文库成员中,我们用环戊烷取代了模板的核糖环,环戊烷不易被酶降解。此外,我们用含有替代质子供体和受体的五元环和六元杂环取代了六元 2',3'-环,以利用与 Asp9 和 Asp163 的羧基的相互作用,以及与 TMPK(mt)结合位点附近的几个阳离子残基的相互作用。与 5-羟甲基-dUMP(dTMP 的类似物)结合的 TMPK(mt)的三维结构被用于开发 QSAR 模型,以参数化针对 TMPK(mt)靶标的特定评分函数,并选择显示对靶标最高预测结合的类似物。结果,我们确定了一小部分高度集中的环胸腺嘧啶类似物作为虚拟命中,它们预计能以亚微摩尔浓度范围抑制分枝杆菌 TMPK,并显示有利的与 ADME 相关的性质。