Widge Alik S, Matsuoka Yoky, Kurnikova Maria
Carnegie Mellon University, 4400 Fifth Avenue, Pittsburgh, PA 15213, United States.
J Mol Graph Model. 2008 Aug;27(1):34-44. doi: 10.1016/j.jmgm.2008.02.005. Epub 2008 Mar 6.
Conductive polymers from the polythiophene (PT) family have attracted interest in numerous domains, including potential applications in biosensing. Despite this, atomistic simulations of PTs have tended to use general organic force fields without well-tuned PT parameters, and there exists no optimized and well-validated PT force field that is compatible and consistent with existing biomolecular simulation suites. We present here the development of a new PT forcefield following the AMBER approach, using the program ANTECHAMBER and ab initio calculations at the HF/6-31G* level of theory to assign partial charges and parameterize the critical backbone torsion potential. The optimized geometries and force field potentials match well with both empirical data and previous investigators' calculations. Initial testing of these parameters through a series of replica exchange simulations of two PT derivatives in aqueous and organic implicit solvents demonstrates that the parameters can match empirical expectations within the limits of an implicit solvent model. This new force field forms a framework for modeling of proposed PT-based devices and sensors, and is expected to accelerate device design and eventual deployment.
聚噻吩(PT)家族的导电聚合物在众多领域引起了人们的兴趣,包括在生物传感中的潜在应用。尽管如此,对聚噻吩的原子模拟往往使用通用的有机力场,而没有经过良好调整的聚噻吩参数,并且不存在与现有生物分子模拟套件兼容且一致的优化和经过充分验证的聚噻吩力场。我们在此介绍一种遵循AMBER方法开发的新聚噻吩力场,使用ANTECHAMBER程序和理论水平为HF/6 - 31G*的从头算计算来分配部分电荷并对关键主链扭转势进行参数化。优化后的几何结构和力场势与经验数据以及先前研究者的计算结果都匹配良好。通过在水性和有机隐式溶剂中对两种聚噻吩衍生物进行一系列副本交换模拟对这些参数进行初步测试,结果表明这些参数在隐式溶剂模型的范围内能够符合经验预期。这种新的力场为基于聚噻吩的器件和传感器建模提供了一个框架,有望加速器件设计和最终部署。