Department of Biomedical Engineering, Washington University in St. Louis, One Brookings Drive, Campus Box 1097, St. Louis, Missouri 63130, USA.
J Phys Chem B. 2012 Jun 14;116(23):6862-71. doi: 10.1021/jp212637r. Epub 2012 Feb 27.
Poly-L-proline (PLP) polymers are useful mimics of biologically relevant proline-rich sequences. Biophysical and computational studies of PLP polymers in aqueous solutions are challenging because of the diversity of length scales and the slow time scales for conformational conversions. We describe an atomistic simulation approach that combines an improved ABSINTH implicit solvation model, with conformational sampling based on standard and novel Metropolis Monte Carlo moves. Refinements to forcefield parameters were guided by published experimental data for proline-rich systems. We assessed the validity of our simulation results through quantitative comparisons to experimental data that were not used in refining the forcefield parameters. Our analysis shows that PLP polymers form heterogeneous ensembles of conformations characterized by semirigid, rod-like segments interrupted by kinks, which result from a combination of internal cis peptide bonds, flexible backbone ψ angles, and the coupling between ring puckering and backbone degrees of freedom.
聚-L-脯氨酸(PLP)聚合物是生物相关脯氨酸丰富序列的有用模拟物。由于长度尺度的多样性和构象转换的慢时间尺度,在水溶液中对 PLP 聚合物的生物物理和计算研究具有挑战性。我们描述了一种原子模拟方法,该方法结合了改进的 ABSINTH 隐式溶剂化模型,以及基于标准和新型马尔可夫蒙特卡罗移动的构象采样。力场参数的细化是根据脯氨酸丰富系统的已发表实验数据进行指导的。我们通过与未用于细化力场参数的实验数据进行定量比较,评估了模拟结果的有效性。我们的分析表明,PLP 聚合物形成了构象的不均匀集合,这些构象的特征是半刚性、棒状片段被扭结打断,这是内部顺式肽键、柔性主链 ψ 角以及环构象和主链自由度之间的耦合的结果。