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首页> 外文期刊>Antiviral Research >Discovery of dihydroxyindole-2-carboxylic acid derivatives as dual allosteric HIV-1 Integrase and Reverse Transcriptase associated Ribonuclease H inhibitors
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Discovery of dihydroxyindole-2-carboxylic acid derivatives as dual allosteric HIV-1 Integrase and Reverse Transcriptase associated Ribonuclease H inhibitors

机译:发现二羟基吲哚-2-羧酸衍生物作为双变构HIV-1整合酶和逆转录酶相关核糖核酸酶H抑制剂

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摘要

The management of Human Immunodeficiency Virus type 1 (HIV-1) infection requires life-long treatment that is associated with chronic toxicity and possible selection of drug-resistant strains. A new opportunity for drug intervention is offered by antivirals that act as allosteric inhibitors targeting two viral functions (dual inhibitors). In this work, we investigated the effects of 5,6-dihydroxyindole-2-carboxylic acid (DHICA) derivatives on both HIV-1 Integrase (IN) and Reverse Transcriptase associated Ribonuclease H (RNase H) activities. Among the tested compounds, the dihydroxyindole-carboxamide 5 was able to inhibit in the low micromolar range (1-18 mu M) multiple functions of IN, including functional IN-IN interactions, IN-LEDGF/p75 binding and IN catalytic activity. Docking and site-directed mutagenesis studies have suggested that compound 5 binds to a previously described HIV-1 IN allosteric pocket. These observations indicate that 5 is structurally and mechanistically distinct from the published allosteric HIV-1 IN inhibitors. Moreover, compound 5 also inhibited HIV-1 RNase H function, classifying this molecule as a dual HIV-1 IN and RNase H inhibitor able to impair the HIV-1 virus replication in cell culture. Overall, we identified a new scaffold as a suitable platform for the development of novel dual HIV-1 inhibitors.
机译:人类免疫缺陷病毒类型1(HIV-1)感染的管理需要与慢性毒性相关的终身治疗和可能的耐药菌株的选择。抗病毒人提供了一种新的药物干预机会,其作为靶向两种病毒功能(双抑制剂)的颠振抑制剂。在这项工作中,我们研究了5,6-二羟基吲哚-2-羧酸(DHICA)衍生物对HIV-1整合酶(IN)和逆转录酶相关核糖核酸酶H(RNase H)活性的影响。在测试化合物中,二羟基吲哚 - 甲酰胺5能够抑制低微摩尔范围(1-18μm)在其中的多种功能,包括在in-LEDGF / P75结合和催化活性中的功能内相互作用。对接和定点定向的诱变研究表明化合物5与先前描述的颠覆口袋中的HIV-1结合。这些观察结果表明,5在结构上和机械地与抑制剂中已发表的变构HIV-1不同。此外,化合物5还抑制了HIV-1的RNA酶H功能,将该分子分类为双HIV-1中,并且RNase H抑制剂能够损害细胞培养中的HIV-1病毒复制。总体而言,我们将新的脚手架确定为新型双HIV-1抑制剂的开发的合适平台。

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