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HIV-1核衣壳蛋白在未成熟、成熟及整合酶抑制的病毒颗粒中的分布与再分布:整合酶在成熟过程中的作用

Distribution and Redistribution of HIV-1 Nucleocapsid Protein in Immature, Mature, and Integrase-Inhibited Virions: a Role for Integrase in Maturation.

作者信息

Fontana Juan, Jurado Kellie A, Cheng Naiqian, Ly Ngoc L, Fuchs James R, Gorelick Robert J, Engelman Alan N, Steven Alasdair C

机构信息

Laboratory of Structural Biology Research, National Institute of Arthritis, Musculoskeletal and Skin Diseases, National Institutes of Health, Bethesda, Maryland, USA.

Department of Cancer Immunology and AIDS, Dana-Farber Cancer Institute, Boston, Massachusetts, USA.

出版信息

J Virol. 2015 Oct;89(19):9765-80. doi: 10.1128/JVI.01522-15. Epub 2015 Jul 15.

DOI:10.1128/JVI.01522-15
PMID:26178982
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4577894/
Abstract

UNLABELLED

During virion maturation, HIV-1 capsid protein assembles into a conical core containing the viral ribonucleoprotein (vRNP) complex, thought to be composed mainly of the viral RNA and nucleocapsid protein (NC). After infection, the viral RNA is reverse transcribed into double-stranded DNA, which is then incorporated into host chromosomes by integrase (IN) catalysis. Certain IN mutations (class II) and antiviral drugs (allosteric IN inhibitors [ALLINIs]) adversely affect maturation, resulting in virions that contain "eccentric condensates," electron-dense aggregates located outside seemingly empty capsids. Here we demonstrate that in addition to this mislocalization of electron density, a class II IN mutation and ALLINIs each increase the fraction of virions with malformed capsids (from ∼ 12% to ∼ 53%). Eccentric condensates have a high NC content, as demonstrated by "tomo-bubblegram" imaging, a novel labeling technique that exploits the susceptibility of NC to radiation damage. Tomo-bubblegrams also localized NC inside wild-type cores and lining the spherical Gag shell in immature virions. We conclude that eccentric condensates represent nonpackaged vRNPs and that either genetic or pharmacological inhibition of IN can impair vRNP incorporation into mature cores. Supplying IN in trans as part of a Vpr-IN fusion protein partially restored the formation of conical cores with internal electron density and the infectivity of a class II IN deletion mutant virus. Moreover, the ability of ALLINIs to induce eccentric condensate formation required both IN and viral RNA. Based on these observations, we propose a role for IN in initiating core morphogenesis and vRNP incorporation into the mature core during HIV-1 maturation.

IMPORTANCE

Maturation, a process essential for HIV-1 infectivity, involves core assembly, whereby the viral ribonucleoprotein (vRNP, composed of vRNA and nucleocapsid protein [NC]) is packaged into a conical capsid. Allosteric integrase inhibitors (ALLINIs) affect multiple viral processes. We have characterized ALLINIs and integrase mutants that have the same phenotype. First, by comparing the effects of ALLINIs on several steps of the viral cycle, we show that inhibition of maturation accounts for compound potency. Second, by using cryoelectron tomography, we find that ALLINIs impair conical capsid assembly. Third, by developing tomo-bubblegram imaging, which specifically labels NC protein, we find that ALLINIs block vRNP packaging; instead, vRNPs form "eccentric condensates" outside the core. Fourth, malformed cores, typical of integrase-deleted virus, are partially replaced by conical cores when integrase is supplied in trans. Fifth, vRNA is necessary for ALLINI-induced eccentric condensate formation. These observations suggest that integrase is involved in capsid morphogenesis and vRNP packaging.

摘要

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在病毒体成熟过程中,HIV-1衣壳蛋白组装成一个包含病毒核糖核蛋白(vRNP)复合体的锥形核心,该复合体被认为主要由病毒RNA和核衣壳蛋白(NC)组成。感染后,病毒RNA被逆转录成双链DNA,然后通过整合酶(IN)催化整合到宿主染色体中。某些IN突变(II类)和抗病毒药物(变构IN抑制剂[ALLINIs])会对成熟产生不利影响,导致病毒体含有“偏心凝聚物”,即位于看似空衣壳外部的电子致密聚集体。在这里,我们证明,除了这种电子密度的错误定位外,一个II类IN突变和ALLINIs各自增加了衣壳畸形的病毒体比例(从约12%增加到约53%)。通过“断层气泡图”成像(一种利用NC对辐射损伤的敏感性的新型标记技术)证明,偏心凝聚物具有高NC含量。断层气泡图还将NC定位在野生型核心内部以及未成熟病毒体中球形Gag壳的内衬处。我们得出结论,偏心凝聚物代表未包装的vRNP,并且对IN的基因或药理学抑制均可损害vRNP掺入成熟核心。作为Vpr-IN融合蛋白的一部分以反式提供IN可部分恢复具有内部电子密度的锥形核心的形成以及II类IN缺失突变病毒的感染性。此外,ALLINIs诱导偏心凝聚物形成的能力需要IN和病毒RNA两者。基于这些观察结果,我们提出IN在HIV-1成熟过程中启动核心形态发生和vRNP掺入成熟核心中的作用。

重要性

成熟是HIV-1感染性所必需的过程,涉及核心组装,即病毒核糖核蛋白(vRNP,由vRNA和核衣壳蛋白[NC]组成)被包装到一个锥形衣壳中。变构整合酶抑制剂(ALLINIs)影响多个病毒过程。我们已经对具有相同表型的ALLINIs和整合酶突变体进行了表征。首先,通过比较ALLINIs对病毒周期几个步骤的影响,我们表明对成熟的抑制解释了化合物的效力。其次,通过使用冷冻电子断层扫描,我们发现ALLINIs损害锥形衣壳组装。第三,通过开发专门标记NC蛋白的断层气泡图成像,我们发现ALLINIs阻断vRNP包装;相反,vRNP在核心外部形成“偏心凝聚物”。第四,当以反式提供整合酶时,整合酶缺失病毒典型的畸形核心部分被锥形核心取代。第五,vRNA是ALLINI诱导的偏心凝聚物形成所必需的。这些观察结果表明整合酶参与衣壳形态发生和vRNP包装。