首页> 外文期刊>Journal of enzyme inhibition and medicinal chemistry. >Scaffold hopping and optimisation of 3’,4’-dihydroxyphenyl- containing thienopyrimidinones: synthesis of quinazolinone derivatives as novel allosteric inhibitors of HIV-1 reverse transcriptase-associated ribonuclease H
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Scaffold hopping and optimisation of 3’,4’-dihydroxyphenyl- containing thienopyrimidinones: synthesis of quinazolinone derivatives as novel allosteric inhibitors of HIV-1 reverse transcriptase-associated ribonuclease H

机译:支架跳跃和优化3',4'-二羟基苯基 - 含硫基嘧啶酮:喹唑啉酮衍生物的合成作为HIV-1逆转录酶相关核糖核酸酶H的新型变形抑制剂

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摘要

Bioisosteric replacement and scaffold hopping are powerful strategies in drug design useful for rationally modifying a hit compound towards novel lead therapeutic agents. Recently, we reported a series of thienopyrimidinones that compromise dynamics at the p66/p51 HIV-1 reverse transcriptase (RT)-associated Ribonuclease H (RNase H) dimer interface, thereby allosterically interrupting catalysis by altering the active site geometry. Although they exhibited good submicromolar activity, the isosteric replacement of the thiophene ring, a potential toxicophore, is warranted. Thus, in this article, the most active 2-(3,4-dihydroxyphenyl)-5,6-dimethylthieno[2,3-d]pyrimidin-4(3 H )-one 1 was selected as the hit scaffold and several isosteric substitutions of the thiophene ring were performed. A novel series of highly active RNase H allosteric quinazolinone inhibitors was thus obtained. To determine their target selectivity, they were tested against RT-associated RNA-dependent DNA polymerase (RDDP) and integrase (IN). Interestingly, none of the compounds were particularly active on (RDDP) but many displayed micromolar to submicromolar activity against IN.
机译:生物脑同位替代和脚手架跳跃是药物设计中的强大策略,可用于合理修饰朝向新型铅治疗剂的击中化合物。最近,我们报道了一系列噻吩酮烷酮,其损害了P66 / P51 HIV-1逆转录酶(RT) - 分配的核糖核酸酶H(RNase H)二聚体界面的动态,从而通过改变有源位点几何来构思地中断催化。虽然它们表现出良好的亚麻摩洛尔活性,但有保证噻吩环的替代噻吩环的替代因子替代。因此,在本文中,选择最活性的2-(3,4-二羟基苯基)-5,6-二甲基硫氧化苄苯-4(3H) - 酮-ONE 1作为击中支架和几个基石进行噻吩环的取代。由此获得了一种新型高活性RNase H构型喹唑啉酮抑制剂。为了确定其靶选择性,对RT相关的RNA依赖性DNA聚合酶(RDDP)和整体酶(IN)进行测试。有趣的是,没有一种化合物在(RDDP)上特别活跃,但许多展示的微摩尔与亚硫代摩尔活性的影响。

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