Zgarbová Marie, Šponer Jiří, Otyepka Michal, Cheatham Thomas E, Galindo-Murillo Rodrigo, Jurečka Petr
Regional Centre of Advanced Technologies and Materials, Department of Physical Chemistry, Faculty of Science, Palacky University , 17. listopadu 12, 77146 Olomouc, Czech Republic.
Institute of Biophysics, Academy of Sciences of the Czech Republic , Královopolská 135, 612 65 Brno, Czech Republic.
J Chem Theory Comput. 2015 Dec 8;11(12):5723-36. doi: 10.1021/acs.jctc.5b00716. Epub 2015 Nov 20.
Z-DNA duplexes are a particularly complicated test case for current force fields. We performed a set of explicit solvent molecular dynamics (MD) simulations with various AMBER force field parametrizations including our recent refinements of the ε/ζ and glycosidic torsions. None of these force fields described the ZI/ZII and other backbone substates correctly, and all of them underpredicted the population of the important ZI substate. We show that this underprediction can be attributed to an inaccurate potential for the sugar-phosphate backbone torsion angle β. We suggest a refinement of this potential, β(OL1), which was derived using our recently introduced methodology that includes conformation-dependent solvation effects. The new potential significantly increases the stability of the dominant ZI backbone substate and improves the overall description of the Z-DNA backbone. It also has a positive (albeit small) impact on another important DNA form, the antiparallel guanine quadruplex (G-DNA), and improves the description of the canonical B-DNA backbone by increasing the population of BII backbone substates, providing a better agreement with experiment. We recommend using β(OL1) in combination with our previously introduced corrections, εζ(OL1) and χ(OL4), (the combination being named OL15) as a possible alternative to the current β torsion potential for more accurate modeling of nucleic acids.
Z-DNA双链体对于当前的力场来说是一个特别复杂的测试案例。我们使用各种AMBER力场参数化方法进行了一组显式溶剂分子动力学(MD)模拟,包括我们最近对ε/ζ和糖苷扭转的改进。这些力场中没有一个能正确描述ZI/ZII和其他主链亚态,并且它们都低估了重要的ZI亚态的数量。我们表明,这种低估可归因于糖-磷酸主链扭转角β的势能不准确。我们提出了对这种势能β(OL1)的改进,它是使用我们最近引入的包括构象依赖溶剂化效应的方法推导出来的。新的势能显著提高了主导的ZI主链亚态的稳定性,并改善了对Z-DNA主链的整体描述。它对另一种重要的DNA形式——反平行鸟嘌呤四链体(G-DNA)也有积极(尽管很小)的影响,并通过增加BII主链亚态的数量改善了对经典B-DNA主链的描述,与实验结果更吻合。我们建议将β(OL1)与我们之前引入的修正εζ(OL1)和χ(OL4)(组合命名为OL15)结合使用,作为当前β扭转势能的一种可能替代方案,以更准确地模拟核酸。