首页> 外文期刊>Journal of chemical theory and computation: JCTC >ff14ipq: A Self-Consistent Force Field for Condensed-Phase Simulations of Proteins
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ff14ipq: A Self-Consistent Force Field for Condensed-Phase Simulations of Proteins

机译:ff14ipq:蛋白质凝聚相模拟的自洽力场

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We present the ff14ipq force field, implementing the previously published IPolQ. charge set for simulations of complete proteins. Minor modifications to the charge derivation scheme and van der Waals interactions between polar atoms are introduced. Torsion parameters are developed through a generational learning approach, based on gas-phase MP2/cc-pVTZ single-point energies computed of structures optimized by the force field itself rather than the quantum benchmark. In this manner, we sacrifice information about the true quantum minima in order to ensure that the force field maintains optimal agreement with the MP2/cc-pVTZ benchmark for the ensembles it will actually produce in simulations. A means of making the gas-phase torsion parameters compatible with solution-phase IPolQ. charges is presented. The fF14ipq model is an alternative to ff99SB and other Amber force fields for protein simulations in programs that accommodate pair-specific Lennard-Jones combining rules. The force field gives strong performance on α-helical and β-sheet oligopeptides as well as globular proteins over microsecond time scale simulations, although it has not yet been tested in conjunction with lipid and nucleic acid models. We show how our choices in parameter development influence the resulting force field and how other choices that may have appeared reasonable would actually have led to poorer results. The tools we developed may also aid in the development of future fixed-charge and even polarizable biomolecular force fields.
机译:我们介绍了ff14ipq力场,实现了以前发布的IPolQ。用于模拟完整蛋白质的电荷组。引入了对电荷衍生方案和极性原子之间的范德华相互作用的细微修改。扭转参数是通过基于代代相传的学习方法开发的,该方法基于气相MP2 / cc-pVTZ单点能量,该能量是通过力场本身而不是量子基准优化的结构计算得出的。通过这种方式,我们牺牲了有关真实量子极小值的信息,以确保力场与MP2 / cc-pVTZ基准保持最佳一致性,以使其在模拟中实际产生。使气相扭转参数与溶液相IPolQ兼容的方法。收费。 fF14ipq模型是ff99SB和其他Amber力场的替代品,可在容纳对特定的Lennard-Jones组合规则的程序中进行蛋白质模拟。尽管尚未与脂质和核酸模型一起进行测试,但在微秒级的时间范围内,力场对α-螺旋和β-折叠寡肽以及球状蛋白具有很强的性能。我们展示了我们在参数开发中的选择如何影响合力场,以及其他看起来合理的选择实际上如何导致较差的结果。我们开发的工具也可能有助于未来固定电荷甚至极化的生物分子力场的发展。

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