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Automation of the CHARMM General Force Field (CGenFF) I: bond perception and atom typing

机译:的CHaRmm通用力场(CGenFF)的自动化I:键感知和原子打字

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摘要

Molecular mechanics force fields are widely used in computer-aided drug design for the study of drug-like molecules alone or interacting with biological systems. In simulations involving biological macromolecules, the biological part is typically represented by a specialized biomolecular force field, while the drug is represented by a matching general (organic) force field. In order to apply these general force fields to an arbitrary drug-like molecule, functionality for assignment of atom types, parameters and charges is required. In the present article, which is part I of a series of two, we present the algorithms for bond perception and atom typing for the CHARMM General Force Field (CGenFF). The CGenFF atom typer first associates attributes to the atoms and bonds in a molecule, such as valence, bond order, and ring membership among others. Of note are a number of features that are specifically required for CGenFF. This information is then used by the atom typing routine to assign CGenFF atom types based on a programmable decision tree. This allows for straightforward implementation of CGenFF’s complicated atom typing rules and for equally straightforward updating of the atom typing scheme as the force field grows. The presented atom typer was validated by assigning correct atom types on 477 model compounds including in the training set as well as 126 test-set molecules that were constructed to specifically verify its different components. The program may be utilized via an online implementation at .
机译:分子力学力场广泛用于计算机辅助药物设计中,用于单独研究类药物分子或与生物系统相互作用的药物。在涉及生物大分子的模拟中,生物部分通常由专门的生物分子力场表示,而药物由匹配的一般(有机)力场表示。为了将这些通用力场应用于任意药物样分子,需要用于分配原子类型,参数和电荷的功能。在本文(这是两个系列的第一部分)中,我们介绍了CHARMM通用力场(CGenFF)的键感知和原子类型化算法。 CGenFF原子类型输入器首先将属性与原子和分子中的键相关联,例如化合价,键序和环成员。值得注意的是CGenFF特别需要的许多功能。原子类型例程随后使用此信息来基于可编程决策树分配CGenFF原子类型。这样就可以直接实现CGenFF复杂的原子类型规则,并且可以随着力场的增长而同样简单地更新原子类型方案。通过在477种模型化合物中分配正确的原子类型(包括在训练集中的126种测试集分子,以及专门用来验证其不同成分的测试集分子)来验证所提出的原子类型识别器。该程序可以通过的在线实施来使用。

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  • 年(卷),期 -1(52),12
  • 年度 -1
  • 页码 3144–3154
  • 总页数 24
  • 原文格式 PDF
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