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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Electrostatic Potential of Insulin: Exploring the Limitations of Density Functional Theory and Force Field Methods
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Electrostatic Potential of Insulin: Exploring the Limitations of Density Functional Theory and Force Field Methods

机译:胰岛素的静电势:探索密度泛函理论和力场方法的局限性

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摘要

We show that standard density functional theory leads to large errors in the electron density distribution compared to reference second order Moller—Plesset perturbation theory (MP2) calculations for the insulin molecule and zwitterionic peptides, while range-separated versions perform much better. The error is quantified in terms of the electrostatic potential (ESP) on a molecular surface, which shows that standard density functional theory incorrectly predicts partial electron transfer from anionic to cationic sites. In addition, we compare the MP2 calculated ESPs to those predicted by commonly used force fields. Several fixed charge force fields display very similar performances with rather large errors, while polarizable force fields significantly reduce the error. Solvation enhances the molecular ESP, which is partly accounted for by fixed charge force fields, but polarizable force fields again perform significantly better.
机译:我们证明,与胰岛素分子和两性离子肽的参考二阶Moller-Plesset微扰理论(MP2)计算相比,标准密度泛函理论导致电子密度分布中的较大误差,而范围分隔的版本则表现更好。该误差是根据分子表面的静电势(ESP)进行量化的,这表明标准密度泛函理论错误地预测了部分电子从阴离子位向阳离子位转移。此外,我们将MP2计算得出的ESP与常用力场预测的ESP进行了比较。几个固定的电荷力场显示出非常相似的性能,但误差很大,而可极化的力场则大大减小了误差。溶剂化增强了分子ESP,这部分是由固定的电荷力场造成的,但是可极化的力场再次表现得更好。

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