Center for Bioinformatics, Saarland University, 66041, Saarbruecken, Germany.
J Mol Model. 2010 Oct;16(10):1625-37. doi: 10.1007/s00894-010-0672-1. Epub 2010 Mar 2.
The transmembrane domains of the envelope glycoprotein E1 and E2 have crucial multifunctional roles in the biogenesis of hepatitis C virus. We have performed molecular dynamics simulations to investigate a structural model of the transmembrane segments of the E1-E2 heterodimer. The simulations support the key role of the Lys370-Asp728 ion pair for mediating the E1-E2 heterodimerization. In comparison to these two residues, the simulation results also reveal the differential effect of the conserved Arg730 residue that has been observed in experimental studies. Furthermore, we discovered the formation of inter-helical hydrogen bonds via Asn367 that stabilize dimer formation. Simulations of single and double mutants further demonstrate the importance of the ion-pair and polar interactions between the interacting helix monomers. The conformation of the E1 fragment in the simulation of the E1-E2 heterodimer is in close agreement with an NMR structure of the E1 transmembrane segment. The proposed model of the E1-E2 heterodimer supports the postulated cooperative insertion of both helices by the translocon complex into the bilayer.
包膜糖蛋白 E1 和 E2 的跨膜结构域在丙型肝炎病毒的生物发生中具有至关重要的多功能作用。我们进行了分子动力学模拟,以研究 E1-E2 异二聚体跨膜片段的结构模型。模拟结果支持 Lys370-Asp728 离子对在介导 E1-E2 异二聚化中的关键作用。与这两个残基相比,模拟结果还揭示了在实验研究中观察到的保守 Arg730 残基的差异效应。此外,我们发现通过 Asn367 形成了稳定二聚体形成的螺旋间氢键。对单突变体和双突变体的模拟进一步证明了离子对和相互作用的螺旋单体之间的极性相互作用的重要性。E1-E2 异二聚体模拟中 E1 片段的构象与 E1 跨膜片段的 NMR 结构非常吻合。所提出的 E1-E2 异二聚体模型支持假定的跨膜复合物将两个螺旋共同插入双层的协同插入。