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Studying the Solution Behavior of DNA and DNA Sliding Clamps Using Various Fluorescence Techniques.

机译:使用各种荧光技术研究DNA和DNA滑动夹的溶液行为。

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摘要

Solution conformations and dynamics of proteins and protein-DNA complexes are often difficult to predict from their crystal structures. The crystal structure only shows a snapshot of the different conformations these biological molecules can have in solution. Multiple different conformations can exist in solution and potentially have more importance in the biological activity. DNA sliding clamps are a family of proteins with known crystal structures. These clamps encircle the DNA and enable other proteins to interact more efficiently with the DNA. Eukaryotic PCNA and prokaryotic β clamp are two of these clamps, some of the most stable homo-oligomers known. However, their solution stability and conformational equilibrium have not been investigated in depth before. Presented here are the studies involving two sliding clamps: yeast PCNA and bacterial β clamp. These studies show that the β clamp has a very different solution stability than PCNA. These conclusions were reached through various different fluorescence-based experiments, including fluorescence correlation spectroscopy (FCS), Förster resonance energy transfer (FRET), single molecule fluorescence, and various time resolved fluorescence techniques.;Interpretations of these, and all other, fluorescence-based experiments are often affected by the properties of the fluorophores employed. Often the fluorescence properties of these fluorophores are influenced by their microenvironments. Fluorophores are known to sometimes interact with biological molecules, and this can have pronounced effects on the rotational mobility and photophysical properties of the dye. Misunderstanding the effect of these photophysical and rotational properties can lead to a misinterpretation of the obtained data. In this thesis, photophysical behaviors of various organic dyes were studied in the presence of deoxymononucleotides to examine more closely how interactions between fluorophores and DNA bases can affect fluorescent properties. Furthermore, the properties of cyanine dyes when bound to DNA and the effect of restricted rotation on FRET are presented in this thesis. This thesis involves studying fluorophore photophysics in various microenvironments and then expanding into the solution stability and dynamics of the DNA sliding clamps.
机译:蛋白质和蛋白质-DNA复合物的溶液构象和动力学通常很难从它们的晶体结构中预测出来。晶体结构仅显示了这些生物分子在溶液中可能具有的不同构型的快照。溶液中可以存在多种不同的构象,并且在生物学活性中可能具有更大的重要性。 DNA滑动夹具是具有已知晶体结构的蛋白质家族。这些钳夹包围DNA,并使其他蛋白质更有效地与DNA相互作用。真核PCNA和原核β钳是其中的两个钳,是一些已知的最稳定的同源寡聚体。但是,它们的溶液稳定性和构象平衡尚未得到深入研究。这里介绍的研究涉及两个滑动夹具:酵母PCNA和细菌β夹具。这些研究表明,β钳夹与PCNA的溶液稳定性非常不同。这些结论是通过各种不同的基于荧光的实验得出的,包括荧光相关光谱(FCS),福斯特共振能量转移(FRET),单分子荧光和各种时间分辨荧光技术。这些以及所有其他荧光的解释基于基础的实验通常会受到所用荧光团特性的影响。这些荧光团的荧光特性通常受其微环境影响。已知荧光团有时会与生物分子发生相互作用,这会对染料的旋转迁移率和光物理性质产生明显影响。对这些光物理和旋转特性的影响的误解会导致对所获得数据的误解。本文在脱氧单核苷酸存在下研究了各种有机染料的光物理行为,以更仔细地研究荧光团和DNA碱基之间的相互作用如何影响荧光性质。此外,本文还介绍了花青染料与DNA结合时的性质以及旋转受限对FRET的影响。本文涉及在各种微环境中研究荧光团的光物理性质,然后扩展到DNA滑动夹具的溶液稳定性和动力学。

著录项

  • 作者

    Ranjit, Suman.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Chemistry Physical.;Biophysics General.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 224 p.
  • 总页数 224
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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