Departamento de Química Física I, Facultad de Ciencias Químicas, Universidad Complutense, E-28040 Madrid, Spain.
J Chem Phys. 2012 Jun 7;136(21):215103. doi: 10.1063/1.4725883.
We present a coarse-grained interaction potential that, using just one single interaction bead per amino acid and only realistic interactions, can reproduce the most representative features of peptide folding. We combine a simple hydrogen bond potential, recently developed in our group, with a reduced alphabet for the amino acid sequence, which takes into account hydrophobic interactions. The sequence does not pose any additional influence in the torsional properties of the chain, as it often appears in previously published work. Our model is studied in equilibrium simulations at different temperatures and concentrations. At low concentrations the effect of hydrophobic interactions is determinant, as α-helices (isolated or in bundles) or β-sheets are the most populated conformations, depending on the simulated sequence. On the other hand, an increase in concentration translates into a higher influence of the hydrogen bond interactions, which mostly favor the formation of β-type aggregates, in agreement with experimental observations. These aggregates, however, still keep some distinct characteristics for different sequences.
我们提出了一种粗粒相互作用势,该势仅使用每个氨基酸一个相互作用珠,并且仅使用实际相互作用,就可以再现肽折叠的最具代表性特征。我们将最近在我们小组中开发的简单氢键势与氨基酸序列的简化字母表结合在一起,该字母表考虑了疏水相互作用。序列不会对链的扭转性质产生任何其他影响,因为这在以前发表的工作中经常出现。我们的模型在不同温度和浓度的平衡模拟中进行了研究。在低浓度下,疏水相互作用的影响是决定性的,因为α-螺旋(孤立或成束)或β-折叠是最常见的构象,这取决于模拟的序列。另一方面,浓度的增加转化为氢键相互作用的更高影响,这主要有利于β-型聚集体的形成,这与实验观察结果一致。然而,这些聚集体对于不同的序列仍然保持一些不同的特征。