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CD4 结合破坏的 V3 环依赖性 gp120 元件稳定了人类免疫缺陷病毒包膜糖蛋白三聚体。

A V3 loop-dependent gp120 element disrupted by CD4 binding stabilizes the human immunodeficiency virus envelope glycoprotein trimer.

机构信息

Dana-Farber Cancer Institute, 44 Binney Street, CLS 1010, Boston, MA 02115, USA.

出版信息

J Virol. 2010 Apr;84(7):3147-61. doi: 10.1128/JVI.02587-09. Epub 2010 Jan 20.

Abstract

Human immunodeficiency virus (HIV-1) entry into cells is mediated by a trimeric complex consisting of noncovalently associated gp120 (exterior) and gp41 (transmembrane) envelope glycoproteins. The binding of gp120 to receptors on the target cell alters the gp120-gp41 relationship and activates the membrane-fusing capacity of gp41. Interaction of gp120 with the primary receptor, CD4, results in the exposure of the gp120 third variable (V3) loop, which contributes to binding the CCR5 or CXCR4 chemokine receptors. We show here that insertions in the V3 stem or polar substitutions in a conserved hydrophobic patch near the V3 tip result in decreased gp120-gp41 association (in the unliganded state) and decreased chemokine receptor binding (in the CD4-bound state). Subunit association and syncytium-forming ability of the envelope glycoproteins from primary HIV-1 isolates were disrupted more by V3 changes than those of laboratory-adapted HIV-1 envelope glycoproteins. Changes in the gp120 beta2, beta19, beta20, and beta21 strands, which evidence suggests are proximal to the V3 loop in unliganded gp120, also resulted in decreased gp120-gp41 association. Thus, a gp120 element composed of the V3 loop and adjacent beta strands contributes to quaternary interactions that stabilize the unliganded trimer. CD4 binding dismantles this element, altering the gp120-gp41 relationship and rendering the hydrophobic patch in the V3 tip available for chemokine receptor binding.

摘要

人类免疫缺陷病毒 (HIV-1) 进入细胞是由一个三聚体复合物介导的,该复合物由非共价结合的 gp120(外)和 gp41(跨膜)包膜糖蛋白组成。gp120 与靶细胞上的受体结合会改变 gp120-gp41 关系,并激活 gp41 的膜融合能力。gp120 与主要受体 CD4 的相互作用导致 gp120 第三可变环 (V3) 环的暴露,这有助于结合 CCR5 或 CXCR4 趋化因子受体。我们在这里表明,V3 茎中的插入或 V3 尖端附近保守的疏水区中的极性取代会导致 gp120-gp41 结合减少(在未结合状态下)和趋化因子受体结合减少(在 CD4 结合状态下)。来自原发性 HIV-1 分离株的包膜糖蛋白的亚单位结合和合胞体形成能力比实验室适应的 HIV-1 包膜糖蛋白更容易受到 V3 变化的破坏。gp120 的 beta2、beta19、beta20 和 beta21 链的变化也导致 gp120-gp41 结合减少,有证据表明这些变化在未结合的 gp120 中靠近 V3 环。因此,由 V3 环和相邻的 beta 链组成的 gp120 元件有助于稳定未结合三聚体的四级相互作用。CD4 结合会破坏该元件,改变 gp120-gp41 关系,并使 V3 尖端的疏水区可用于趋化因子受体结合。

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