首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Global fold and backbone dynamics of the hepatitis C virus E2 glycoprotein transmembrane domain determined by NMR
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Global fold and backbone dynamics of the hepatitis C virus E2 glycoprotein transmembrane domain determined by NMR

机译:NMR测定的丙型肝炎病毒E2糖蛋白跨膜结构域的整体折叠和骨干动力学

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摘要

E1 and E2 are two hepatitis C viral envelope glycoproteins that assemble into a heterodimer that is essential for membrane fusion and penetration into the target cell. Both extracellular and transmembrane (TM) glycoprotein domains contribute to this interaction, but study of TM-TM interactions has been limited because synthesis and structural characterization of these highly hydrophobic segments present significant challenges. In this NMR study, by successful expression and purification of the E2 transmembrane domain as a fusion construct we have determined the global fold and characterized backbone motions for this peptide incorporated in phospholipid micelles. Backbone resonance frequencies, relaxation rates and solvent exposure measurements concur in showing this domain to adopt a helical conformation, with two helical segments spanning residues 717-726 and 732-746 connected by an unstructured linker containing the charged residues D728 and R730 involved in E1 binding. Although this linker exhibits increased local motions on the ps timescale, the dominating contribution to its relaxation is the global tumbling motion with an estimated correlation time of 12.3. ns. The positioning of the helix-linker-helix architecture within the mixed micelle was established by paramagnetic NMR spectroscopy and phospholipid-peptide cross relaxation measurements. These indicate that while the helices traverse the hydrophobic interior of the micelle, the linker lies closer to the micelle perimeter to accommodate its charged residues. These results lay the groundwork for structure determination of the E1/E2 complex and a molecular understanding of glycoprotein heterodimerization.
机译:E1和E2是两种丙型肝炎病毒包膜糖蛋白,它们组装成异源二聚体,这对于膜融合和渗透至靶细胞至关重要。细胞外和跨膜(TM)糖蛋白结构域都有助于这种相互作用,但是对TM-TM相互作用的研究受到限制,因为这些高疏水性片段的合成和结构表征提出了重大挑战。在这项NMR研究中,通过成功表达和纯化E2跨膜结构域作为融合构建体,我们确定了掺入磷脂微团的该肽的整体折叠并表征了骨架运动。骨干共振频率,弛豫率和溶剂暴露测量值一致表明该域采用螺旋构象,两个螺旋段跨越残基717-726和732-746,并通过非结构化接头连接,该非结构化接头包含与E1结合有关的带电残基D728和R730 。尽管此链接器在ps时标上显示出增加的局部运动,但对其放松的主要贡献是全局翻滚运动,估计相关时间为12.3。 ns。通过顺磁性NMR光谱法和磷脂-肽交叉弛豫测量确定混合胶束中的螺旋-接头-螺旋结构的位置。这些表明,当螺旋穿过胶束的疏水内部时,接头更靠近胶束周边以容纳其带电残基。这些结果为E1 / E2复合物的结构确定和糖蛋白异二聚化的分子理解奠定了基础。

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