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人类免疫缺陷病毒gp120包膜糖蛋白的寡聚体建模与静电分析

Oligomeric modeling and electrostatic analysis of the gp120 envelope glycoprotein of human immunodeficiency virus.

作者信息

Kwong P D, Wyatt R, Sattentau Q J, Sodroski J, Hendrickson W A

机构信息

Department of Biochemistry and Molecular Biophysics, Columbia University, New York, New York 10032, USA.

出版信息

J Virol. 2000 Feb;74(4):1961-72. doi: 10.1128/jvi.74.4.1961-1972.2000.

Abstract

The human immunodeficiency virus envelope glycoproteins, gp120 and gp41, function in cell entry by binding to CD4 and a chemokine receptor on the cell surface and orchestrating the direct fusion of the viral and target cell membranes. On the virion surface, three gp120 molecules associate noncovalently with the ectodomain of the gp41 trimer to form the envelope oligomer. Although an atomic-level structure of a monomeric gp120 core has been determined, the structure of the oligomer is unknown. Here, the orientation of gp120 in the oligomer is modeled by using quantifiable criteria of carbohydrate exposure, occlusion of conserved residues, and steric considerations with regard to the binding of the neutralizing antibody 17b. Applying similar modeling techniques to influenza virus hemagglutinin suggests a rotational accuracy for the oriented gp120 of better than 10 degrees. The model shows that CD4 binds obliquely, such that multiple CD4 molecules bound to the same oligomer have their membrane-spanning portions separated by at least 190 A. The chemokine receptor, in contrast, binds to a sterically restricted surface close to the trimer axis. Electrostatic analyses reveal a basic region which faces away from the virus, toward the target cell membrane, and is conserved on core gp120. The electrostatic potentials of this region are strongly influenced by the overall charge, but not the precise structure, of the third variable (V3) loop. This dependence on charge and not structure may make electrostatic interactions between this basic region and the cell difficult to target therapeutically and may also provide a means of viral escape from immune system surveillance.

摘要

人类免疫缺陷病毒包膜糖蛋白gp120和gp41通过与细胞表面的CD4和趋化因子受体结合,在细胞进入过程中发挥作用,并协调病毒膜与靶细胞膜的直接融合。在病毒粒子表面,三个gp120分子与gp41三聚体的胞外结构域非共价结合,形成包膜寡聚体。尽管已确定单体gp120核心的原子水平结构,但寡聚体的结构尚不清楚。在此,通过使用碳水化合物暴露的可量化标准、保守残基的封闭以及关于中和抗体17b结合的空间位阻因素,对寡聚体中gp120的方向进行建模。将类似的建模技术应用于流感病毒血凝素表明,定向gp120的旋转精度优于10度。该模型显示,CD4倾斜结合,使得与同一寡聚体结合的多个CD4分子的跨膜部分至少相隔190埃。相比之下,趋化因子受体与靠近三聚体轴的空间位阻受限表面结合。静电分析揭示了一个背离病毒、朝向靶细胞膜的碱性区域,该区域在核心gp120上保守。该区域的静电势受第三个可变(V3)环的整体电荷而非精确结构的强烈影响。这种对电荷而非结构的依赖性可能使该碱性区域与细胞之间的静电相互作用难以成为治疗靶点,也可能为病毒逃避免疫系统监测提供一种方式。

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