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Stabilization of human immunodeficiency virus type 1 envelope glycoprotein conformations.

机译:稳定人类1型免疫缺陷病毒的包膜糖蛋白构象。

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摘要

Human immunodeficiency virus-1 (HIV-1) is composed of multiple functional units held together by weak interactions. Some of these interactions involve conformational flexibility within viral protein components that is important for the biological function of the virus. Such interactions may represent targets for disruption by small-molecule drugs. We attempted to gain insight into these interactions by subjecting virus to heat and cloning temperature-resistant isolates. One of the key functional complexes of the virus is the envelope glycoprotein trimer, which is composed of gp120 and gp41 subunits. Upon binding to the receptors, CD4 and CCR5/CXCR4, the envelope glycoproteins will undergo a series of conformational changes that promote virus entry. In this dissertation, we report the generation of temperature-resistant HIV-1 and the identification of a single change (histidine 66 (H66) to asparagine (N)) that was responsible for the heat-resistant phenotype. The H66N mutation stabilized the native form of the envelope glycoprotein by preventing spontaneous sampling of the labile CD4-bound conformation. Once the enevelope glycoprotein bound to CD4, the H66N change stabilized the functional intermediate formed, distinguishing for the first time the activation versus inactivation pathway in HIV-1 entry. In the CD4-bound state, H66 is strategically located at the interface of gp120 and gp41 subunits, controlling conformational transitions of the envelope glycoprotein in response to receptor binding. This enabled the H66N change to exert a striking effect on the susceptibility of HIV-1 to drug inhibition and antibody neutralization.;In this dissertation, we also report a new temperature-dependent inactivation pathway of HIV-1. Surprisingly, we found that the envelope glycoproteins of a variety of HIV-1 strains are functionally inactivated by prolonged incubation on ice. However, the envelope glycoproteins of the selected heat-resistant virus also resisted cold inactivation again as a result of the H66N change. In attempting to find a structural basis for this phenotype, we found that sensitivity to cold inactivation is dependent on the degree of exposure of gp41 epitopes in the trirner. Induction of the CD4-bound conformation by a mutation in gp120 (S375W) or treatment with soluble CD4 or a small-molecule CD4 mimetic resulted in increased cold sensitivity. These results indicate that the CD4-bound intermediate of HIV-1 envelope glycoproteins is particularly labile in the presence of destabilizing influences, such as heat or cold. Our results provide insight into the overall organization, conformational transitions, and the vulnerabilities of the HIV-1 envelope glycoprotein trimer.
机译:人类免疫缺陷病毒1(HIV-1)由通过弱相互作用保持在一起的多个功能单元组成。这些相互作用中的一些涉及病毒蛋白组分内的构象柔性,这对于病毒的生物学功能很重要。此类相互作用可能代表小分子药物破坏的靶标。我们试图通过使病毒受热并克隆耐高温分离株来深入了解这些相互作用。病毒的关键功能复合物之一是包膜糖蛋白三聚体,它由gp120和gp41亚基组成。与受体CD4和CCR5 / CXCR4结合后,包膜糖蛋白将经历一系列构象变化,从而促进病毒进入。在这篇论文中,我们报告了耐高温HIV-1的产生,并鉴定了导致耐热表型的单一变化(组氨酸66(H66)为天冬酰胺(N))。 H66N突变通过阻止不稳定的CD4结合构象的自发采样来稳定包膜糖蛋白的天然形式。一旦信封糖蛋白与CD4结合,H66N的变化就稳定了所形成的功能中间体,从而首次区分了HIV-1进入中的激活与失活途径。在结合CD4的状态下,H66战略性地位于gp120和gp41亚基的界面,响应受体结合,控制包膜糖蛋白的构象转变。这使H66N的变化对HIV-1对药物抑制和抗体中和的敏感性发挥了惊人的作用。本文还报道了一种新的温度依赖性的HIV-1失活途径。令人惊讶地,我们发现通过长时间在冰上孵育,各种HIV-1毒株的包膜糖蛋白在功能上被灭活。但是,由于H66N的变化,所选耐热病毒的包膜糖蛋白也再次抵抗了冷灭活。在尝试寻找该表型的结构基础时,我们发现对冷灭活的敏感性取决于Trirner中gp41表位的暴露程度。 gp120中的突变(S375W)诱导CD4结合的构象,或用可溶性CD4或小分子CD4模拟物处理导致感冒敏感性增加。这些结果表明,在存在不稳定影响的情况下,例如热或冷,HIV-1包膜糖蛋白的CD4结合中间体特别不稳定。我们的研究结果提供了对HIV-1包膜糖蛋白三聚体的整体组织,构象转变和脆弱性的洞察力。

著录项

  • 作者

    Kassa, Aemro Tibebu.;

  • 作者单位

    Harvard University.;

  • 授予单位 Harvard University.;
  • 学科 Health Sciences Public Health.;Health Sciences Immunology.;Biology Virology.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 313 p.
  • 总页数 313
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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