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一系列2-羟基异喹啉-1,3(2H,4H)-二酮作为人类免疫缺陷病毒1型整合酶和逆转录酶核糖核酸酶H结构域双重抑制剂的设计、合成及生物学评价

Design, synthesis, and biological evaluation of a series of 2-hydroxyisoquinoline-1,3(2H,4H)-diones as dual inhibitors of human immunodeficiency virus type 1 integrase and the reverse transcriptase RNase H domain.

作者信息

Billamboz Muriel, Bailly Fabrice, Barreca Maria Letizia, De Luca Laura, Mouscadet Jean-François, Calmels Christina, Andréola Marie-Line, Witvrouw Myriam, Christ Frauke, Debyser Zeger, Cotelle Philippe

机构信息

Laboratoire de Chimie Organique et Macromoléculaire, UMR CNRS 8009, Université de Lille 1, 59655 Villeneuve d'Ascq, France.

出版信息

J Med Chem. 2008 Dec 25;51(24):7717-30. doi: 10.1021/jm8007085.

Abstract

We report herein the synthesis of a series of 19 2-hydroxyisoquinoline-1,3(2H,4H)-dione derivatives variously substituted at position 7 aimed at inhibiting selectively two-metal ion catalytic active sites. The compounds were tested against HIV-1 reverse transcriptase (RT) polymerase, HIV-1 RT ribonuclease H (RNase H), and HIV-1 integrase (IN). Most compounds displayed poor inhibition of RT polymerase even at 50 microM. The majority of the synthesized compounds inhibited RNase H and IN at micromolar concentrations, and some of them were weakly selective for IN. Surprisingly, two new hits were discovered, which displayed a high selectivity for IN with submicromolar IC50 values. These enzymatic inhibitory properties may be related to the metal binding abilities of the compounds. Physicochemical studies were consistent with a 1/1 stoichiometry of the magnesium complexes in solution, and the metal complexation was strictly dependent on the enolization abilities of the compounds. Unfortunately, all tested compounds exhibited high cellular cytotoxicity in cell culture which limits their applications as antiviral agents.

摘要

我们在此报告了一系列19种7位有不同取代基的2-羟基异喹啉-1,3(2H,4H)-二酮衍生物的合成,旨在选择性抑制双金属离子催化活性位点。这些化合物针对HIV-1逆转录酶(RT)聚合酶、HIV-1 RT核糖核酸酶H(RNase H)和HIV-1整合酶(IN)进行了测试。即使在50微摩尔浓度下,大多数化合物对RT聚合酶的抑制作用也很差。大多数合成化合物在微摩尔浓度下抑制RNase H和IN,其中一些对IN具有弱选择性。令人惊讶的是,发现了两个新的活性化合物,它们对IN具有高选择性,IC50值低于微摩尔。这些酶抑制特性可能与化合物的金属结合能力有关。物理化学研究表明溶液中镁配合物的化学计量比为1/1,并且金属络合严格取决于化合物的烯醇化能力。不幸的是,所有测试化合物在细胞培养中均表现出高细胞毒性,这限制了它们作为抗病毒剂的应用。

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