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首页> 外文期刊>Journal of the American Chemical Society >Motions on the Millisecond Time Scale and Multiple Conformations of HIV-1 Capsid Protein: Implications for Structural Polymorphism of CA Assemblies
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Motions on the Millisecond Time Scale and Multiple Conformations of HIV-1 Capsid Protein: Implications for Structural Polymorphism of CA Assemblies

机译:毫秒时间尺度上的运动和HIV-1衣壳蛋白的多个构象:对CA程序集结构多态性的影响。

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摘要

The capsid protein (CA) of human immuno deficiency virus 1 (HIV-1) assembles into a cone-like structure that encloses the viral RNA genome. Interestingly, significant heterogeneity in shape and organization of capsids can be observed in mature HIV-1 virions. In vitro, CA also exhibits structural polymorphism and can assemble into various morphologies, such as cones, tubes, and spheres. Many intermolecular contacts that are critical for CA assembly are formed by its C-terminal domain (CTD), a dimerization domain, which was found to adopt different orientations in several X-ray and NMR structures of the CTD dimer and full-length CA proteins. Tyr145 (Y145), residue two in our CTD construct used for NMR structure determination, but not present in the crystallographic constructs, was found to be crucial for infectivity and engaged in numerous interactions at the CTD dimer interface. Here we investigate the origin of CA structural plasticity using solid-state NMR and solution NMR spectroscopy. In the solid state, the hinge region connecting the NTD and CTD is flexible on the millisecond time scale, as evidenced by the backbone motions of Y145 in CA conical assemblies and in two CTD constructs (137-231 and 142-231), allowing the protein to access multiple conformations essential for pleimorphic capsid assemblies. In solution, the CTD dimer exists as two major conformers, whose relative populations differ for the different CTD constructs. In the longer CTD (144-231) construct that contains the hinge region between the NTD and CTD, the populations of the two conformers are likely determined by the protonation state of the E175 side chain that is located at the dimer interface and within hydrogen-bonding distance of the W184 side chain on the other monomer. At pH 6.5, the major conformer exhibits the same dimer interface as full-length CA In the short CTD (150-231) construct, no pH-dependent conformational shift is observed. These findings suggest that the presence of structural plasticity at the CTD dimer interface permits pleiotropic HIV-1 capsid assembly, resulting in varied capsid morphologies.
机译:人免疫缺陷病毒1(HIV-1)的衣壳蛋白(CA)组装成包围病毒RNA基因组的锥形结构。有趣的是,可以在成熟的HIV-1病毒体中观察到衣壳的形状和组织有明显的异质性。在体外,CA还表现出结构多态性,并且可以组装成各种形态,例如圆锥,管状和球形。许多对CA组装至关重要的分子间接触是由其C端结构域(CTD)(一个二聚化结构域)形成的,发现该结构在CTD二聚体和全长CA蛋白的几个X射线和NMR结构中采用不同的方向。发现Tyr145(Y145)是我们CTD构建体中的两个残基,用于NMR结构测定,但不存在于结晶构建体中,但对于感染性至关重要,并且在CTD二聚体界面处参与了许多相互作用。在这里,我们使用固态NMR和溶液NMR光谱研究CA结构可塑性的起源。在固态状态下,连接NTD和CTD的铰链区域在毫秒时间尺度上是灵活的,这由CA圆锥形组件和两个CTD结构(137-231和142-231)中Y145的骨架运动证明。蛋白质可访问多态衣壳装配必需的多个构象。在溶液中,CTD二聚体作为两个主要构象体存在,其相对种群因不同的CTD构建体而异。在包含NTD和CTD之间铰链区的较长CTD(144-231)结构中,两个构象体的种群可能由位于二聚体界面和氢内的E175侧链的质子化状态决定。 W184侧链与其他单体的键合距离。在pH 6.5时,主要构象体与全长CA表现出相同的二聚体界面在短CTD(150-231)构建体中,未观察到pH依赖性构象变化。这些发现表明,CTD二聚体界面处结构可塑性的存在允许多效性HIV-1衣壳组装,从而导致衣壳形态变化。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第14期|p.6455-6466|共12页
  • 作者单位

    Pittsburgh Center for HIV Protein Interactions University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States,Department of Structural Biology, University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States;

    Pittsburgh Center for HIV Protein Interactions University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States,Department of Chemistry and Biochemistry, University of Delaware, Newark, Delaware 19716, United States;

    Pittsburgh Center for HIV Protein Interactions University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States,Department of Chemistry and Biochemistry, University of Delaware, Newark, Delaware 19716, United States;

    Pittsburgh Center for HIV Protein Interactions University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States,Department of Chemistry and Biochemistry, University of Delaware, Newark, Delaware 19716, United States;

    Pittsburgh Center for HIV Protein Interactions University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States,Department of Structural Biology, University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States;

    Pittsburgh Center for HIV Protein Interactions University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States,Department of Structural Biology, University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States;

    Pittsburgh Center for HIV Protein Interactions University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States,Department of Structural Biology, University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States;

    Pittsburgh Center for HIV Protein Interactions University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States,Department of Structural Biology, University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States;

    Pittsburgh Center for HIV Protein Interactions University of Pittsburgh School of Medicine,Pittsburgh, Pennsylvania 15261, United States,Department of Chemistry and Biochemistry, University of Delaware, Newark, Delaware 19716, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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