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基于结构的肌苷单磷酸环水解酶过渡态类似物抑制剂的设计、合成、评估及晶体结构

Structure-based design, synthesis, evaluation, and crystal structures of transition state analogue inhibitors of inosine monophosphate cyclohydrolase.

作者信息

Xu Lan, Chong Youhoon, Hwang Inkyu, D'Onofrio Anthony, Amore Kristen, Beardsley G Peter, Li Chenglong, Olson Arthur J, Boger Dale L, Wilson Ian A

机构信息

Department of Molecular Biology, The Scripps Research Institute, La Jolla, California 92037, USA.

出版信息

J Biol Chem. 2007 Apr 27;282(17):13033-46. doi: 10.1074/jbc.M607293200. Epub 2007 Feb 26.

Abstract

The inosine monophosphate cyclohydrolase (IMPCH) component (residues 1-199) of the bifunctional enzyme aminoimidazole-4-carboxamide ribonucleotide transformylase (AICAR Tfase, residues 200-593)/IMPCH (ATIC) catalyzes the final step in the de novo purine biosynthesis pathway that produces IMP. As a potential target for antineoplastic intervention, we designed IMPCH inhibitors, 1,5-dihydroimidazo[4,5-c][1,2,6]thiadiazin-4(3H)-one 2,2-dioxide (heterocycle, 1), the corresponding nucleoside (2), and the nucleoside monophosphate (nucleotide) (3), as mimics of the tetrahedral intermediate in the cyclization reaction. All compounds are competitive inhibitors against IMPCH (K(i) values = 0.13-0.23 microm) with the simple heterocycle 1 exhibiting the most potent inhibition (K(i) = 0.13 microm). Crystal structures of bifunctional ATIC in complex with nucleoside 2 and nucleotide 3 revealed IMPCH binding modes similar to that of the IMPCH feedback inhibitor, xanthosine 5'-monophosphate. Surprisingly, the simpler heterocycle 1 had a completely different IMPCH binding mode and was relocated to the phosphate binding pocket that was identified from previous xanthosine 5'-monophosphate structures. The aromatic imidazole ring interacts with a helix dipole, similar to the interaction with the phosphate moiety of 3. The crystal structures not only revealed the mechanism of inhibition of these compounds, but they now serve as a platform for future inhibitor improvements. Importantly, the nucleoside-complexed structure supports the notion that inhibitors lacking a negatively charged phosphate can still inhibit IMPCH activity with comparable potency to phosphate-containing inhibitors. Provocatively, the nucleotide inhibitor 3 also binds to the AICAR Tfase domain of ATIC, which now provides a lead compound for the design of inhibitors that simultaneously target both active sites of this bifunctional enzyme.

摘要

双功能酶氨基咪唑 - 4 - 甲酰胺核糖核苷酸转甲酰基酶(AICARTfase,残基200 - 593)/肌苷单磷酸环水解酶(IMPCH,残基1 - 199)的肌苷单磷酸环水解酶(IMPCH)组分催化从头嘌呤生物合成途径中产生IMP的最后一步反应。作为抗肿瘤干预的潜在靶点,我们设计了IMPCH抑制剂,1,5 - 二氢咪唑并[4,5 - c][1,2,6]噻二嗪 - 4(3H) - 酮2,2 - 二氧化物(杂环化合物,1)、相应的核苷(2)和核苷单磷酸(核苷酸)(3),作为环化反应中四面体中间体的模拟物。所有化合物都是IMPCH的竞争性抑制剂(K(i)值 = 0.13 - 0.23 μM),其中简单的杂环化合物1表现出最强的抑制作用(K(i) = 0.13 μM)。双功能ATIC与核苷2和核苷酸3复合物的晶体结构揭示了IMPCH的结合模式与IMPCH反馈抑制剂5'-单磷酸黄苷的相似。令人惊讶的是,更简单的杂环化合物1具有完全不同的IMPCH结合模式,并重新定位到从先前的5'-单磷酸黄苷结构中确定的磷酸结合口袋。芳香族咪唑环与螺旋偶极相互作用,类似于与3的磷酸部分的相互作用。晶体结构不仅揭示了这些化合物的抑制机制,而且现在为未来抑制剂的改进提供了一个平台。重要的是,核苷复合物结构支持这样一种观点,即缺乏带负电荷磷酸基团的抑制剂仍然可以以与含磷酸抑制剂相当的效力抑制IMPCH活性。具有启发性的是,核苷酸抑制剂3也与ATIC的AICARTfase结构域结合,这现在为设计同时靶向这种双功能酶两个活性位点的抑制剂提供了一种先导化合物。

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