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Parameterization of molecular mechanics (MM4) for large biological systems: Small peptides - emphasis on protein modeling, Alkylphosphines - emphasis on DNA structure.

机译:大型生物系统的分子力学(MM4)的参数化:小肽-强调蛋白质建模,烷基膦-强调DNA结构。

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摘要

The use of molecular mechanics programs to study the structure, vibrational frequencies, dipole moments, and moments of inertia of biological compounds is becoming more common. Due to the limitations of ab initio calculations, properly parameterized molecular mechanics calculations are the only accurate method available for the study of large compounds. This dissertation details the results from three separate studies of the use of the Allinger molecular mechanics force field for biological systems.;Chapter 2 involves a comparison of dipole moments of forty-four organic molecules. The results show MM3 (2000) to be the best method at predicting the magnitude of the dipole moment. The direction of the dipole moment was also compared and all of the computational methods give similar directional predictions for the dipole moment of each molecule.;Chapter 3 deals with the parameterization of phosphine and the alkylphosphines for Molecular Mechanics, MM4. This parameterization work is the first step in allowing MM4 to properly model nucleotides and phosphine moietys.;Chapter 4 involves the parameterization of MM4 for amides and peptides. By mapping the DFT torsion curves, MM4 is able to accurately model small peptides. A set of twelve amino acids were also studied and the results show that MM4 is better then MM3 at predicting molecular structures when compared against the DFT calculated result.;The results of this dissertation support the use of molecular mechanics as a valid and important computational technique.
机译:使用分子力学程序研究生物化合物的结构,振动频率,偶极矩和惯性矩变得越来越普遍。由于从头计算的局限性,正确设置参数的分子力学计算是用于研究大型化合物的唯一准确方法。本文详细介绍了三项独立研究的结果,这些研究分别针对生物系统使用阿林格分子力学力场进行了研究。第二章涉及对四十四种有机分子偶极矩的比较。结果表明,MM3(2000)是预测偶极矩大小的最佳方法。还比较了偶极矩的方向,并且所有计算方法都为每个分子的偶极矩提供了相似的方向预测。;第3章介绍了分子力学MM4的膦和烷基膦的参数化。此参数化工作是使MM4正确建模核苷酸和膦部分的第一步。第四章涉及MM4对酰胺和肽的参数化。通过绘制DFT扭转曲线,MM4能够准确地模拟小肽。还研究了一组十二种氨基酸,结果表明,与DFT计算结果相比,MM4在分子结构预测上要好于MM3。;本文的结果支持分子力学作为一种有效而重要的计算技术。

著录项

  • 作者

    Todebush, Patricia Metthe.;

  • 作者单位

    University of Georgia.;

  • 授予单位 University of Georgia.;
  • 学科 Chemistry Physical.;Chemistry Biochemistry.;Biophysics General.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 140 p.
  • 总页数 140
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:48:00

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