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Theoretical Vibrational Spectroscopy of Proteins.

机译:蛋白质的理论振动光谱。

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摘要

Vibrational spectroscopy, such as linear and two-dimensional infrared (IR) spectroscopy, is widely utilized to study the structure and dynamics of peptides and proteins. Interpretation of the experiment, or a direct assignment of the complex experimental spectra to the underlying protein structure, can be difficult. Molecular dynamics (MD) simulations offer a complementary approach to provide high-resolution structural and temporal information of proteins, although they are limited by factors such as force field accuracy and are not directly comparable to spectroscopic experiments. We have developed vibrational frequency maps for proteins that generate instantaneous site frequencies directly from MD simulations. We combine the frequency maps with established nearest-neighbor frequency shift and coupling schemes and a mixed quantum/classical framework to form a theoretical strategy for calculating protein linear and 2D IR spectra in the amide I region. This theoretical method provides a means to bridge spectroscopic experiments and molecular simulations, which allows a critical assessment of MD simulations by comparison to experiment, and enables the interpretation of experimental spectra at the molecular level.;In this dissertation, we present the development of the vibrational frequency maps and provide the theoretical protocol that allows the calculation of protein vibrational spectra directly from MD simulations. We validate the theoretical method by applying it to peptides with various secondary structures in aqueous solution, and apply it to a few biologically relevant problems.;For instance, we have studied the thermal unfolding transition of the villin headpiece subdomain (HP36) using IR spectra calculations. We follow the unfolding process of HP36 by monitoring its spectral changes as a function of temperature. With the help of isotope labeling, we are able to capture the feature that helix 2 of HP36 loses its secondary structure before global unfolding occurs, in agreement with experiment.;In collaboration with the Zanni group and the de Pablo group at University of Wisconsin, we have also carried out studies on IAPP, a peptide closely related to type 2 diabetes. By combining theoretical modeling with extensive computer simulations and spectroscopic experiments, we have investigated the structure and dynamics of IAPP in aqueous solution, in the fibril form and in the vicinity of lipid membranes.
机译:振动光谱,例如线性和二维红外(IR)光谱,被广泛用于研究肽和蛋白质的结构和动力学。对实验进行解释,或将复杂的实验光谱直接分配给基础蛋白质结构可能很困难。分子动力学(MD)模拟提供了一种补充方法,可提供蛋白质的高分辨率结构和时间信息,尽管它们受到诸如力场精度等因素的限制,并且不能直接与光谱实验相提并论。我们已经开发了蛋白质的振动频率图,这些蛋白质可以直接通过MD模拟生成瞬时位点频率。我们将频率图与已建立的最近邻频移和耦合方案以及混合的量子/经典框架相结合,以形成用于计算酰胺I区中蛋白质线性和2D IR光谱的理论策略。这种理论方法提供了一种将光谱实验和分子模拟联系起来的方法,该方法允许通过与实验的比较来对MD模拟进行严格的评估,并能够在分子水平上解释实验光谱。振动频率图并提供理论协议,该协议允许直接从MD模拟中计算蛋白质振动光谱。我们通过将其应用于水溶液中具有各种二级结构的肽来验证该理论方法,并将其应用于一些生物学相关的问题。例如,我们使用IR光谱研究了villin头域(HP36)的热展开转变计算。我们通过监视HP36随温度变化的光谱变化来跟踪其展开过程。通过同位素标记,我们能够捕获HP36的螺旋2的特征,并与实验相一致,然后在整体展开之前就失去了其二级结构。与威斯康星大学的Zanni组和de Pablo组合作,我们还对IAPP(与2型糖尿病密切相关的一种肽)进行了研究。通过将理论模型与广泛的计算机模拟和光谱实验相结合,我们研究了水溶液中,原纤维形式和脂质膜附近的IAPP的结构和动力学。

著录项

  • 作者

    Wang, Lu.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Chemistry General.;Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 128 p.
  • 总页数 128
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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