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鉴定一种抗逆转录病毒小分子,该小分子似乎是一种靶向 HIV-1 组装的宿主抑制剂。

Identification of an Antiretroviral Small Molecule That Appears To Be a Host-Targeting Inhibitor of HIV-1 Assembly.

机构信息

Department of Global Health, University of Washington, Seattle, Washington, USA.

Prosetta Biosciences, San Francisco, California, USA.

出版信息

J Virol. 2021 Jan 13;95(3). doi: 10.1128/JVI.00883-20.

Abstract

Given the projected increase in multidrug-resistant HIV-1, there is an urgent need for development of antiretrovirals that act on virus life cycle stages not targeted by drugs currently in use. Host-targeting compounds are of particular interest because they can offer a high barrier to resistance. Here, we report identification of two related small molecules that inhibit HIV-1 late events, a part of the HIV-1 life cycle for which potent and specific inhibitors are lacking. This chemotype was discovered using cell-free protein synthesis and assembly systems that recapitulate intracellular host-catalyzed viral capsid assembly pathways. These compounds inhibit replication of HIV-1 in human T cell lines and peripheral blood mononuclear cells, and are effective against a primary isolate. They reduce virus production, likely by inhibiting a posttranslational step in HIV-1 Gag assembly. Notably, the compound colocalizes with HIV-1 Gag ; however, unexpectedly, selection experiments failed to identify compound-specific resistance mutations in or , even though known resistance mutations developed upon parallel nelfinavir selection. Thus, we hypothesized that instead of binding to Gag directly, these compounds localize to assembly intermediates, the intracellular multiprotein complexes containing Gag and host factors that form during immature HIV-1 capsid assembly. Indeed, imaging of infected cells shows compound colocalized with two host enzymes found in assembly intermediates, ABCE1 and DDX6, but not two host proteins found in other complexes. While the exact target and mechanism of action of this chemotype remain to be determined, our findings suggest that these compounds represent first-in-class, host-targeting inhibitors of intracellular events in HIV-1 assembly. The success of antiretroviral treatment for HIV-1 is at risk of being undermined by the growing problem of drug resistance. Thus, there is a need to identify antiretrovirals that act on viral life cycle stages not targeted by drugs in use, such as the events of HIV-1 Gag assembly. To address this gap, we developed a compound screen that recapitulates the intracellular events of HIV-1 assembly, including virus-host interactions that promote assembly. This effort led to the identification of a new chemotype that inhibits HIV-1 replication at nanomolar concentrations, likely by acting on assembly. This compound colocalized with Gag and two host enzymes that facilitate capsid assembly. However, resistance selection did not result in compound-specific mutations in , suggesting that the chemotype does not directly target Gag. We hypothesize that this chemotype represents a first-in-class inhibitor of virus production that acts by targeting a virus-host complex important for HIV-1 Gag assembly.

摘要

鉴于多药耐药性 HIV-1 的预计增加,迫切需要开发针对目前使用的药物未靶向的病毒生命周期阶段的抗逆转录病毒药物。宿主靶向化合物特别有趣,因为它们可以提供高耐药性屏障。在这里,我们报告了两种相关的小分子的鉴定,它们抑制 HIV-1 晚期事件,这是 HIV-1 生命周期的一部分,缺乏有效的特异性抑制剂。这种化学型是使用细胞游离蛋白合成和组装系统发现的,该系统再现了细胞内宿主催化的病毒衣壳组装途径。这些化合物抑制人 T 细胞系和外周血单核细胞中 HIV-1 的复制,并且对原发性分离物有效。它们减少病毒产生,可能通过抑制 HIV-1 Gag 组装中的翻译后步骤。值得注意的是,该化合物与 HIV-1 Gag 共定位; 然而,出乎意料的是,选择实验未能在 或 中鉴定出化合物特异性耐药突变,尽管在平行 nelfinavir 选择中出现了已知的耐药突变。因此,我们假设这些化合物不是直接结合 Gag,而是定位于组装中间体,即包含 Gag 和宿主因子的细胞内多蛋白复合物,这些因子在不成熟的 HIV-1 衣壳组装过程中形成。实际上,感染细胞的成像显示化合物与在组装中间体中发现的两种宿主酶共定位,ABCE1 和 DDX6,但与其他复合物中发现的两种宿主蛋白不共定位。虽然这种化学型的确切靶标和作用机制仍有待确定,但我们的发现表明,这些化合物代表了第一类,针对 HIV-1 组装中细胞内事件的宿主靶向抑制剂。抗逆转录病毒治疗 HIV-1 的成功面临着药物耐药性日益严重的威胁。因此,需要鉴定针对药物未靶向的病毒生命周期阶段的抗逆转录病毒药物,例如 HIV-1 Gag 组装的事件。为了解决这一差距,我们开发了一种化合物筛选,该筛选再现了 HIV-1 组装的细胞内事件,包括促进组装的病毒 - 宿主相互作用。这一努力导致了一种新的化学型的鉴定,该化学型以纳摩尔浓度抑制 HIV-1 复制,可能通过作用于组装。该化合物与 Gag 和两种促进衣壳组装的宿主酶共定位。然而,耐药性选择并未导致 中出现化合物特异性突变,这表明该化学型不是直接靶向 Gag。我们假设这种化学型代表了一类新型病毒产生抑制剂,通过靶向对 HIV-1 Gag 组装很重要的病毒 - 宿主复合物起作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ea2/7925099/ab59c1d08a41/JVI.00883-20-f0001.jpg

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