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Molecular modeling of biomolecular interactions: Natural products, peptides and proteins.

机译:生物分子相互作用的分子模型:天然产物,肽和蛋白质。

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摘要

The works in this thesis are mainly dealing with computational molecular modeling applied to biomolecular systems. First of all I present the works of predicting inhibiting mechanisms of HIV-1 entry by a natural product OLE (Olive Leaf Extract). We systematically studied the main effective polyphenolic compound Oleuropein and three of its metabolites. Our modeling works provide the detailed mechanism of OLE mediated HIV-1 entry inhibition at the atomic level, and latter experiments provided adequate proofs for the accuracy of our predictions. This computational study complements the corresponding experimental investigation and helps establish a good starting point for further refinement of OLE-based gp41 inhibitors.;In the second case, molecular dynamics (MD) simulation and MM-PBSA were used to understand how the covalent modification of the natural Bak sequence affects the binding to Bcl-xL at molecular levels. The present MD result shows that the helicities of HBS peptides are increased and the presence of the N-terminal HBS macrocycle impacts residues at the C-terminus of the helix. Our analysis also indicates that substitution of an aspartic acid residue---a helix breaker---with a hydrophobic residue not only enhances the helicity of the peptide but also stabilizes the structure of the binding complex. The present computational result is consistent with the experimental observation and provides explanations for the altered binding properties of the artificial Bak alpha-helix.;However, there are certain limits for current molecular mechanics and force field. In the third case, we studied the temperature-dependent conformation distributions of a short alanine-rich peptide XAO by an improved AMBER force field ff03 with replica exchange molecular dynamics (REMD). The results are largely deviated from the experiments, both in explicit and implicit solvent models, where experiments determined that the poly-L-proline (PPII) conformation is dominant at the low temperatures while simulations give the prediction that alpha-helical conformation is dominant at the same temperatures. Further ab initio calculations suggest that this deviation arises from lacking of polarization effects of classical force fields. These results reflect the importance of correct inclusion of polarization effects for protein folding simulations.
机译:本文的工作主要涉及应用于生物分子系统的计算分子建模。首先,我介绍了预测天然产物OLE(橄榄叶提取物)对HIV-1进入的抑制机制的工作。我们系统地研究了主要有效的多酚类化合物橄榄苦苷及其三种代谢产物。我们的建模工作在原子水平上提供了OLE介导的HIV-1进入抑制的详细机制,后来的实验为我们的预测准确性提供了充分的证据。该计算研究补充了相应的实验研究,并为进一步改进基于OLE的gp41抑制剂建立了良好的起点。在第二种情况下,使用分子动力学(MD)模拟和MM-PBSA来了解如何对OLE的gp41抑制剂进行共价修饰天然的Bak序列会在分子水平上影响与Bcl-xL的结合。本MD结果表明,HBS肽的螺旋度增加,并且N末端HBS大环的存在会影响螺旋C末端的残基。我们的分析还表明,用疏水残基取代天冬氨酸残基-螺旋破坏剂-不仅可以增强肽的螺旋度,而且可以稳定结合复合物的结构。目前的计算结果与实验观察结果一致,并为人工Bakα-螺旋的改变的结合性质提供了解释。但是,当前的分子力学和力场有一定的限制。在第三种情况下,我们通过具有复制交换分子动力学(REMD)的改进的AMBER力场ff03研究了短的富含丙氨酸的肽XAO的温度依赖性构象分布。结果在显式和隐式溶剂模型中均与实验大相径庭,在该模型中,实验确定在低温下,聚-L-脯氨酸(PPII)构象占优势,而模拟给出的预测是,α-螺旋构象在低温下占优势。相同的温度。进一步的从头算计算表明,这种偏离是由于缺乏经典力场的极化效应而引起的。这些结果反映了正确包含极化效应对蛋白质折叠模拟的重要性。

著录项

  • 作者

    Bao, Ju.;

  • 作者单位

    New York University.;

  • 授予单位 New York University.;
  • 学科 Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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