Vila J A, Ripoll D R, Villegas M E, Vorobjev Y N, Scheraga H A
Universidad Nacional de San Luis, Facultad de Ciencias Físico Matemáticas y Naturales, and Instituto de Matemática Aplicada San Luis, Consejo Nacional de Investigaciones Científicas y Técnicas, 5700 San Luis, Argentina.
Biophys J. 1998 Dec;75(6):2637-46. doi: 10.1016/S0006-3495(98)77709-4.
A theoretical study to identify the conformational preferences of lysine-based oligopeptides has been carried out. The solvation free energy and free energy of ionization of the oligopeptides have been calculated by using a fast multigrid boundary element method that considers the coupling between the conformation of the molecule and the ionization equilibria explicitly, at a given pH value. It has been found experimentally that isolated alanine and lysine residues have somewhat small intrinsic helix-forming tendencies; however, results from these simulations indicate that conformations containing right-handed alpha-helical turns are energetically favorable at low values of pH for lysine-based oligopeptides. Also, unusual patterns of interactions among lysine side chains with large hydrophobic contacts and close proximity (5-6 A) between charged NH3+ groups are observed. Similar arrangements of charged groups have been seen for lysine and arginine residues in experimentally determined structures of proteins available from the Protein Data Bank. The lowest-free-energy conformation of the sequence Ac-(LYS)6-NMe from these simulations showed large pKalpha shifts for some of the NH3+ groups of the lysine residues. Such large effects are not observed in the lowest-energy conformations of oligopeptide sequences with two, three, or four lysine residues. Calculations on the sequence Ac-LYS-(ALA)4-LYS-NMe also reveal low-energy alpha-helical conformations with interactions of one of the LYS side chains with the helix backbone in an arrangement quite similar to the one described recently by (Proc. Natl. Acad. Sci. U.S.A. 93:4025-4029). The results of this study provide a sound basis with which to discuss the nature of the interactions, such as hydrophobicity, charge-charge interaction, and solvent polarization effects, that stabilize right-handed alpha-helical conformations.
已开展一项理论研究以确定基于赖氨酸的寡肽的构象偏好。通过使用一种快速多重网格边界元方法计算寡肽的溶剂化自由能和电离自由能,该方法在给定pH值下明确考虑了分子构象与电离平衡之间的耦合。实验发现,孤立的丙氨酸和赖氨酸残基具有 somewhat 小的内在螺旋形成倾向;然而,这些模拟结果表明,对于基于赖氨酸的寡肽,在低pH值下,包含右手α-螺旋转角的构象在能量上是有利的。此外,观察到赖氨酸侧链之间具有大疏水接触且带电荷的NH3+基团之间紧密接近(5 - 6埃)的不寻常相互作用模式。在从蛋白质数据库获得的蛋白质实验确定结构中,赖氨酸和精氨酸残基也观察到了类似的带电基团排列。这些模拟中序列Ac-(LYS)6-NMe的最低自由能构象显示赖氨酸残基的一些NH3+基团有大的pKα位移。在具有两个、三个或四个赖氨酸残基的寡肽序列的最低能量构象中未观察到这种大的影响。对序列Ac-LYS-(ALA)4-LYS-NMe的计算还揭示了低能量的α-螺旋构象,其中一个LYS侧链与螺旋主链的相互作用排列与最近(《美国国家科学院院刊》93:4025 - 4029)描述的非常相似。这项研究的结果为讨论稳定右手α-螺旋构象的相互作用性质,如疏水性、电荷-电荷相互作用和溶剂极化效应,提供了坚实的基础。