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A new global optimization strategy for the molecular replacement problem.

机译:针对分子置换问题的新的全局优化策略。

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摘要

The primary technique for determining the three-dimensional structure of a protein is X-ray crystallography, in which the molecular replacement (MR) problem arises as a critical step. Knowledge of protein structures is extremely useful for medical research, including discovering the molecular basis of disease and designing pharmaceutical drugs. This thesis proposes a new strategy to solve the MR problem, which is a global optimization problem to find the optimal orientation and position of a structurally similar model protein that will produce calculated intensities closest to those observed from an X-ray crystallography experiment. Improving the applicability and the robustness of MR methods is an important research goal because commonly used traditional MR methods, though often successful, have difficulty solving certain classes of MR problems. Moreover, the use of MR methods is only expected to increase as more structures are deposited into the Protein Data Bank.; The new strategy has two major components: a six-dimensional global search and multi-start local optimization. The global search uses a low-frequency surrogate objective function and samples a coarse grid to identify good starting points for multi-start local optimization, which uses a more accurate objective function. As a result, the global search is relatively quick and the local optimization efforts are focused on promising regions of the MR variable space where solutions are likely to exist, in contrast to the traditional search strategy that exhaustively samples a uniformly fine grid of the variable space. In addition, the new strategy is deterministic, in contrast to stochastic search methods that randomly sample the variable space.; This dissertation introduces a new MR program called SOMoRe that implements the new global optimization strategy. When tested on seven problems, SOMoRe was able to straightforwardly solve every test problem, including three problems that could not be directly solved by traditional MR programs. Moreover, SOMoRe also solved a MR problem using a less complete model than those required by two traditional programs and a stochastic 6D program. Based on these results, this new strategy promises to extend the applicability and robustness of MR.
机译:确定蛋白质三维结构的主要技术是X射线晶体学,其中分子置换(MR)问题是关键步骤。蛋白质结构的知识对医学研究极为有用,包括发现疾病的分子基础和设计药物。本文提出了一种新的策略来解决MR问题,这是一个全局优化问题,旨在找到结构相似的模型蛋白的最佳方向和位置,该蛋白将产生与X射线晶体学实验所观察到的强度最接近的计算强度。改善MR方法的适用性和鲁棒性是一个重要的研究目标,因为常用的传统MR方法虽然通常很成功,但很难解决某些类别的MR问题。此外,仅随着更多的结构沉积到蛋白质数据库中,预计MR方法的使用才会增加。新策略包含两个主要部分:六维全局搜索和多起点局部优化。全局搜索使用低频替代目标函数,并对粗网格进行采样,以识别用于多点局部优化的良好起点,该局部优化使用更精确的目标函数。结果,与传统的搜索策略详尽地采样了可变空间的均匀精细网格的传统搜索策略相比,全局搜索相对较快,并且局部优化工作集中在可能存在解的MR变量空间的有希望的区域上。另外,与随机采样变量空间的随机搜索方法相比,新策略是确定性的。本文介绍了一个新的MR程序SOMoRe,它实现了新的全局优化策略。在对七个问题进行测试时,SOMoRe能够直接解决每个测试问题,包括传统MR程序无法直接解决的三个问题。此外,SOMoRe还使用比两个传统程序和一个随机6D程序所需的模型更不完整的模型解决了MR问题。基于这些结果,该新策略有望扩展MR的适用性和鲁棒性。

著录项

  • 作者

    Jamrog, Diane Christine.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Mathematics.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 170 p.
  • 总页数 170
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 数学;
  • 关键词

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