Department of Materials Science and Engineering, North Carolina State University, Raleigh, North Carolina 27695, United States.
J Chem Theory Comput. 2021 Feb 9;17(2):1208-1217. doi: 10.1021/acs.jctc.0c00931. Epub 2021 Jan 12.
Single-stranded DNA (ssDNA) plays an important role in biological processes and is used in DNA nanotechnology and other novel applications. Many important research questions can be addressed with molecular simulations of ssDNA molecules; however, no dedicated force field for ssDNA has been developed, and there is limited experimental information about ssDNA structures. This study assesses the accuracy and applicability of existing Amber force fields for all-atom simulations of ssDNA, such as ff99, bsc0, bsc1, and OL15, in implicit and explicit solvents via comparison to available experimental data, such as Forster resonance energy transfer and small angle X-ray scattering. We observed that some force fields agree better with experiments than others mainly due to the difference in parameterization of the propensity for hydrogen bonding and base stacking. Overall, the Amber ff99 force field in the IGB5 or IGB8 implicit solvent and the bsc1 force field in the explicit TIP3P solvent had the best agreement with experiment.
单链 DNA(ssDNA)在生物过程中起着重要作用,并且被用于 DNA 纳米技术和其他新的应用中。通过对 ssDNA 分子进行分子模拟,可以解决许多重要的研究问题;然而,目前还没有专门针对 ssDNA 的力场,并且有关 ssDNA 结构的实验信息有限。本研究通过与实验数据(如Förster 共振能量转移和小角度 X 射线散射)进行比较,评估了现有的 Amber 力场(如 ff99、bsc0、bsc1 和 OL15)在隐式和显式溶剂中对 ssDNA 全原子模拟的准确性和适用性。我们观察到,一些力场与实验的吻合程度优于其他力场,这主要是由于氢键和碱基堆积倾向的参数化差异所致。总体而言,IGB5 或 IGB8 隐式溶剂中的 Amber ff99 力场和显式 TIP3P 溶剂中的 bsc1 力场与实验的吻合度最好。