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9-脱氮-7,9-双脱氮-7-氧杂-2'-C-甲基腺苷的合成及其对丙型肝炎病毒的抑制特性

Synthesis and HCV inhibitory properties of 9-deaza- and 7,9-dideaza-7-oxa-2'-C-methyladenosine.

作者信息

Butora Gabor, Olsen David B, Carroll Steven S, McMasters Daniel R, Schmitt Christoph, Leone Joseph F, Stahlhut Mark, Burlein Christine, Maccoss Malcolm

机构信息

Department of Medicinal Chemistry, Merck Research Laboratories, Rahway, NJ 07065, USA.

出版信息

Bioorg Med Chem. 2007 Aug 1;15(15):5219-29. doi: 10.1016/j.bmc.2007.05.020. Epub 2007 May 22.

Abstract

As a part of an ongoing medicinal chemistry effort to identify inhibitors of the Hepatitis C Virus RNA replication, we report here the synthesis and biological evaluation of 9-deaza- and 7,9-dideaza-7-oxa-2'-C-methyladenosine. The parent 2'-C-methyladenosine shows excellent intracellular inhibitory activity but poor pharmacokinetic profile. Replacement of the nucleoside-defining 9-N of 2'-C-methyladenosine with a carbon atom was designed to yield metabolically more stable C-nucleosides. Modifications at position 7 were designed to exploit the importance of the hydrogen bond accepting properties of this heteroatom in modulating the adenosine deaminase (ADA) mediated 6-N deamination. 7-Oxa-7,9-dideaza-2'-C-methyladenosine was found to be a moderately active inhibitor of intracellular HCV RNA replication, whereas 9-deaza- 2'-C-methyladenosine showed only weak activity despite excellent overlap of both of the synthesized target compounds with 2'-C-methyladenosine's three dimensional structure. Position 7 of the nucleobase proved to be an effective handle for modulating ADA-mediated degradation, with the rate of degradation correlating with the hydrogen-bonding properties at this position.

摘要

作为正在进行的旨在鉴定丙型肝炎病毒RNA复制抑制剂的药物化学研究工作的一部分,我们在此报告9-脱氮-7,9-二脱氮-7-氧杂-2'-C-甲基腺苷的合成及生物学评价。母体2'-C-甲基腺苷显示出优异的细胞内抑制活性,但药代动力学性质较差。用碳原子取代2'-C-甲基腺苷中定义核苷的9-N,旨在得到代谢上更稳定的C-核苷。在7位进行修饰,旨在利用该杂原子的氢键接受性质在调节腺苷脱氨酶(ADA)介导的6-N脱氨反应中的重要性。发现7-氧杂-7,9-二脱氮-2'-C-甲基腺苷是细胞内丙型肝炎病毒RNA复制的中度活性抑制剂,而9-脱氮-2'-C-甲基腺苷尽管与2'-C-甲基腺苷的三维结构有很好的重叠,但仅显示出微弱的活性。核苷碱基的7位被证明是调节ADA介导的降解的有效作用点,降解速率与该位置的氢键性质相关。

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