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Electrostatic field-adapted molecular fractionation with conjugated caps for energy calculations of charged biomolecules

机译:带共轭帽的静电场自适应分子分级,用于带电生物分子的能量计算

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An electrostatic field-adapted molecular fractionation with conjugated caps (EFA-MFCC) approach is implemented for treating macromolecules with several charge centers. The molecular fragmentation is performed in an "electrostatic field," which is described by putting point charges on charge centers, directly affecting the Hamiltonians of both fragments and conjugated caps. So the present method does not need truncation during the calculation of electrostatic interactions. Our test calculations on a series of charged model systems and biological macromolecules using the HF and B3LYP methods have demonstrated that this approach is capable of describing the electronic structure with accuracy comparable to other fragment-based methods. The EFA-MFCC approach is an alternative way for predicting the total energies of charged macromolecules with acyclic, loop, and intersectional loop structures and interaction energies between two molecules. (c) 2006 American Institute of Physics.
机译:采用共轭帽(EFA-MFCC)方法实现了静电场自适应分子分级分离技术,用于处理带有多个电荷中心的大分子。分子分裂是在“静电场”中进行的,该静电场通过将点电荷置于电荷中心来描述,直接影响片段和共轭帽的哈密顿量。因此,本方法在静电相互作用的计算过程中不需要截断。我们使用HF和B3LYP方法对一系列带电模型系统和生物大分子进行的测试计算表明,该方法能够以与其他基于片段的方法相媲美的精度描述电子结构。 EFA-MFCC方法是一种用于预测带电大分子具有无环,环状和交叉环状结构以及两个分子之间相互作用能的总能量的替代方法。 (c)2006年美国物理研究所。

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