基于 gp120 V3 环静电特性的 HIV-1 亚型聚类。

Q1 Biochemistry, Genetics and Molecular Biology BMC Biophysics Pub Date : 2012-02-07 DOI:10.1186/2046-1682-5-3
Aliana López de Victoria, Chris A Kieslich, Apostolos K Rizos, Elias Krambovitis, Dimitrios Morikis
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引用次数: 0

摘要

背景:HIV-1 糖蛋白 gp120 的 V3 环作为核心受体 CCR5 或 CXCR4,在病毒进入细胞过程中发挥着重要作用,并与 HIV 病毒的表型趋向有关。据推测,V3 环和 CCR5 或 CXCR4 之间的相互作用是由静电介导的。我们对含有 HIV-1 亚型共识序列的 V3 环结构的静电位和电荷的空间分布进行了分层聚类分析:尽管大多数共识序列的净电荷为+3,但其静电位和电荷的空间分布可能是影响结合力和感染力的一个鉴别因素。这表现为在主要聚类中形成了几个小的亚聚类,这表明静电特性具有共同的起源和独特的空间细节。其中一些信息可能以粗略的方式存在于序列的聚类中,但空间细节却在很大程度上丢失了。我们展示了离子强度对静电电势聚类的影响,这些信息在电荷或序列聚类中并不存在。我们还将静电位聚类与净电荷、核心受体选择性、全球流行程度和地理分布联系起来。最后,我们根据 N6X7T8|S8X9 序列糖基化图案、根据 11/24/25 规则的特定正电荷位置以及整体电荷和静电位分布来解释核心受体的选择性:我们认为,除了各亚型 V3 环的序列和净电荷外,静电位和电荷的空间分布也可能是受体识别和结合以及病毒随后进入细胞的重要因素。这意味着整体静电位负责 V3 环与核心受体 CCR5/CXCR4 的长程识别,而电荷分布则有助于形成结合复合物的特定短程相互作用。我们还提出了一种基于序列糖基化基团、11/24/25 规则和净电荷的核心受体选择性方案。
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Clustering of HIV-1 Subtypes Based on gp120 V3 Loop electrostatic properties.

Background: The V3 loop of the glycoprotein gp120 of HIV-1 plays an important role in viral entry into cells by utilizing as coreceptor CCR5 or CXCR4, and is implicated in the phenotypic tropisms of HIV viruses. It has been hypothesized that the interaction between the V3 loop and CCR5 or CXCR4 is mediated by electrostatics. We have performed hierarchical clustering analysis of the spatial distributions of electrostatic potentials and charges of V3 loop structures containing consensus sequences of HIV-1 subtypes.

Results: Although the majority of consensus sequences have a net charge of +3, the spatial distribution of their electrostatic potentials and charges may be a discriminating factor for binding and infectivity. This is demonstrated by the formation of several small subclusters, within major clusters, which indicates common origin but distinct spatial details of electrostatic properties. Some of this information may be present, in a coarse manner, in clustering of sequences, but the spatial details are largely lost. We show the effect of ionic strength on clustering of electrostatic potentials, information that is not present in clustering of charges or sequences. We also make correlations between clustering of electrostatic potentials and net charge, coreceptor selectivity, global prevalence, and geographic distribution. Finally, we interpret coreceptor selectivity based on the N6X7T8|S8X9 sequence glycosylation motif, the specific positive charge location according to the 11/24/25 rule, and the overall charge and electrostatic potential distribution.

Conclusions: We propose that in addition to the sequence and the net charge of the V3 loop of each subtype, the spatial distributions of electrostatic potentials and charges may also be important factors for receptor recognition and binding and subsequent viral entry into cells. This implies that the overall electrostatic potential is responsible for long-range recognition of the V3 loop with coreceptors CCR5/CXCR4, whereas the charge distribution contributes to the specific short-range interactions responsible for the formation of the bound complex. We also propose a scheme for coreceptor selectivity based on the sequence glycosylation motif, the 11/24/25 rule, and net charge.

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BMC Biophysics
BMC Biophysics BIOPHYSICS-
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