Department of Medicinal Chemistry, College of Pharmacy, University of Utah, 2000 East 30 South Skaggs 306, Salt Lake City, Utah 84112,United States.
Department of Medicinal Chemistry, Ionis Pharmaceuticals, 2855 Gazelle Court, Carlsbad, California 92010, United States.
J Chem Theory Comput. 2023 Dec 12;19(23):8955-8966. doi: 10.1021/acs.jctc.3c01002. Epub 2023 Nov 28.
In addition to the well-characterized B-form of DNA, duplex DNA can adopt various conformations, such as A or Z-DNA. Though less common, these structures can be induced biologically through protein or ligand interactions or experimentally with niche environmental conditions, such as high salt concentrations or in mixed water-ethanol. Reproducing these alternate structures through molecular dynamics simulations in recent years has been quite challenging with the currently available force fields, simulation techniques, and time scales. In this study, the Drude polarizable force field is tested for its ability to facilitate transitions between A-DNA and B-DNA or maintain A-DNA. Though transitions away from B-DNA were observed in high concentrations of ethanol, the resulting structures had hybrid properties taken from both B-DNA and A-DNA structures. This was also true for A-DNA in ethanol, which lost some of the A-DNA properties that it was expected to maintain. When B-DNA was tested in high salt environments, the resulting B-DNA structures showed no distinguishable differences with the increasing salt concentrations tested. These results with the Drude FF and recent results with additive force fields suggest that at present the current additive and polarizable force fields do not facilitate a complete transition between B- to A-DNA conformations under the conditions simulated. At present, the Drude FF favors A-B DNA hybrid structures when simulated in nonphysiological conditions.
除了特征明确的 B 型 DNA 外,双链 DNA 还可以采取各种构象,如 A 型或 Z 型 DNA。尽管不太常见,但这些结构可以通过蛋白质或配体相互作用或通过特殊的环境条件(如高盐浓度或混合水-乙醇)在生物体内诱导。近年来,通过分子动力学模拟重现这些替代结构一直是一项极具挑战性的任务,因为目前可用的力场、模拟技术和时间尺度存在限制。在这项研究中,测试了 Drude 极化力场促进 A-DNA 和 B-DNA 之间转换或维持 A-DNA 的能力。尽管在高浓度乙醇中观察到了远离 B-DNA 的转变,但得到的结构具有来自 B-DNA 和 A-DNA 结构的混合特性。在乙醇中的 A-DNA 也是如此,它失去了一些预期要维持的 A-DNA 特性。当在高盐环境中测试 B-DNA 时,得到的 B-DNA 结构与所测试的增加盐浓度之间没有明显的区别。这些 Drude FF 的结果以及最近的加和力场的结果表明,目前加和和极化力场在模拟条件下不能促进 B-DNA 构象完全向 A-DNA 构象转变。目前,在模拟非生理条件下,Drude FF 有利于 A-B DNA 混合结构。