Central European Institute of Technology, Masaryk University, Kamenice 5, 61137 Brno, Czech Republic.
Glycobiology. 2014 Jan;24(1):70-84. doi: 10.1093/glycob/cwt093. Epub 2013 Oct 16.
Knowledge of the structure and conformational flexibility of carbohydrates in an aqueous solvent is important to improving our understanding of how carbohydrates function in biological systems. In this study, we extend a variant of the Hamiltonian replica-exchange molecular dynamics (MD) simulation to improve the conformational sampling of saccharides in an explicit solvent. During the simulations, a biasing potential along the glycosidic-dihedral linkage between the saccharide monomer units in an oligomer is applied at various levels along the replica runs to enable effective transitions between various conformations. One reference replica runs under the control of the original force field. The method was tested on disaccharide structures and further validated on biologically relevant blood group B, Lewis X and Lewis A trisaccharides. The biasing potential-based replica-exchange molecular dynamics (BP-REMD) method provided a significantly improved sampling of relevant conformational states compared with standard continuous MD simulations, with modest computational costs. Thus, the proposed BP-REMD approach adds a new dimension to existing carbohydrate conformational sampling approaches by enhancing conformational sampling in the presence of solvent molecules explicitly at relatively low computational cost.
了解碳水化合物在水溶剂中的结构和构象灵活性对于提高我们对碳水化合物在生物系统中如何发挥作用的理解至关重要。在这项研究中,我们扩展了哈密顿复制交换分子动力学(MD)模拟的变体,以改善在明溶剂中糖的构象采样。在模拟过程中,在沿着寡糖中糖单体单元之间的糖苷键的 replica 运行的各个位置施加沿糖苷键二面角的偏置势,以实现各种构象之间的有效转变。一个参考 replica 在原始力场的控制下运行。该方法在二糖结构上进行了测试,并在具有生物学意义的血型 B、Lewis X 和 Lewis A 三糖上进一步验证。与标准连续 MD 模拟相比,基于偏置势的 replica-exchange 分子动力学(BP-REMD)方法提供了对相关构象状态的显著改善采样,计算成本适中。因此,所提出的 BP-REMD 方法通过在相对较低的计算成本下在存在溶剂分子的情况下增强构象采样,为现有的碳水化合物构象采样方法增加了一个新的维度。