Fadrná Eva, Spacková Nad'a, Stefl Richard, Koca Jaroslav, Cheatham Thomas E, Sponer Jirí
National Centre for Biomolecular Research, Faculty of Science, Masaryk University, 611 37 Brno, Czech Republic.
Biophys J. 2004 Jul;87(1):227-42. doi: 10.1529/biophysj.103.034751.
A computational analysis of d(GGGGTTTTGGGG)(2) guanine quadruplexes containing either lateral or diagonal four-thymidine loops was carried out using molecular dynamics (MD) simulations in explicit solvent, locally enhanced sampling (LES) simulations, systematic conformational search, and free energy molecular-mechanics, Poisson Boltzmann, surface area (MM-PBSA) calculations with explicit inclusion of structural monovalent cations. The study provides, within the approximations of the applied all-atom additive force field, a qualitatively complete analysis of the available loop conformational space. The results are independent of the starting structures. Major conformational transitions not seen in conventional MD simulations are observed when LES is applied. The favored LES structures consistently provide lower free energies (as estimated by molecular-mechanics, Poisson Boltzmann, surface area) than other structures. Unfortunately, the predicted optimal structure for the diagonal loop arrangement differs substantially from the atomic resolution experiments. This result is attributed to force field deficiencies, such as the potential misbalance between solute-cation and solvent-cation terms. The MD simulations are unable to maintain the stable coordination of the monovalent cations inside the diagonal loops as reported in a recent x-ray study. The optimal diagonal and lateral loop arrangements appear to be close in energy although a proper inclusion of the loop monovalent cations could stabilize the diagonal architecture.
使用显式溶剂中的分子动力学(MD)模拟、局部增强采样(LES)模拟、系统构象搜索以及明确包含结构单价阳离子的自由能分子力学、泊松玻尔兹曼、表面积(MM-PBSA)计算,对含有横向或对角四环嘧啶环的d(GGGGTTTTGGGG)(2)鸟嘌呤四链体进行了计算分析。在应用的全原子加和力场近似范围内,该研究对可用的环构象空间进行了定性完整的分析。结果与起始结构无关。应用LES时观察到了传统MD模拟中未出现的主要构象转变。受青睐的LES结构始终比其他结构提供更低的自由能(如通过分子力学、泊松玻尔兹曼、表面积估计)。不幸的是,对角环排列的预测最佳结构与原子分辨率实验有很大差异。该结果归因于力场缺陷,例如溶质 - 阳离子和溶剂 - 阳离子项之间的潜在失衡。如最近的一项X射线研究报道,MD模拟无法维持对角环内单价阳离子的稳定配位。尽管适当包含环单价阳离子可以稳定对角结构,但最佳对角和横向环排列在能量上似乎相近。