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Studies of Amino-Specific Chemical Tags. Prospects for 19F and 13C Protein NMR and Materials Chemistry.

机译:氨基特定化学标签的研究。 19F和13C蛋白NMR和材料化学的前景。

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摘要

Site-specific chemical tagging of proteins is a precursor to many structurally-focused biological studies by NMR and mass spectrometry. In particular, reductive methylation is a well-known approach to incorporate methyl groups onto lysine and N-terminal amines in proteins. Interestingly, the NMR spectra of reductively dimethylated lysine residues are often complex, due to methyl inequivalence and chemical exchange. Whereas prior studies on small molecules have eluded to some of the underlying exchange processes, the fundamental origins of methyl inequivalence for dimethyllysines have been largely neglected. Furthermore, prior to this thesis, no comprehensive model had been proposed which encapsulates all elements of the exchange phenomena, showing how they are interconnected and give rise to experimentally observed NMR spectra of reductively methylated proteins. The first part of this thesis addresses the methyl exchange for both small molecule substituted dimethylamines and for dimethylamino groups in proteins and should therefore be useful for better understanding methyl spectra of reductively methylated proteins as well as methyl NMR spectra in general.;The second half of this thesis is primarily concerned with the application of 19F NMR toward the study of protein chemical exchange as well as the design of novel 19F tags for site-specific labeling of amino acid side chains. The former pertains to a study of exchange between monomeric and oligomeric states of the toxic PrPSc form of the prion protein, which has implications for understanding the mechanisms responsible for aggregation and pathogenesis. The subsequent two chapters describe a computational method for the design of highly-sensitive 19F chemical tags and also introduce a new general bioconjugation strategy for chemically modifying amino groups with reactive indoles, with an emphasis on 19F NMR applications. The final chapters introduce a cross-saturation, spin-diffusion-based technique that allows for the detection of subtle conformational changes in proteins.;The methodology described in this thesis extends the repertoire of techniques for designing new chemical tags for NMR applications, for site-specifically labeling proteins, and demonstrates NMR-based approaches to studying disease-relevant chemical exchange processes, characterizing conformational intermediates, and for understanding how biophysical characterization of side chain dynamics and kinetic processes can give insight into structure-function relationships in proteins.
机译:蛋白质的位点特异性化学标记是通过NMR和质谱进行许多结构集中的生物学研究的先驱。特别地,还原性甲基化是将甲基结合到蛋白质中的赖氨酸和N-末端胺上的众所周知的方法。有趣的是,由于甲基的不等价性和化学交换,还原性二甲基化赖氨酸残基的NMR光谱通常很复杂。尽管对小分子的先前研究尚未涵盖某些潜在的交换过程,但很大程度上忽略了二甲基赖氨酸的甲基不等价性的基本起源。此外,在本论文之前,还没有提出一个全面的模型来封装交换现象的所有元素,表明它们如何相互连接并产生由实验观察到的还原甲基化蛋白质的NMR光谱。本论文的第一部分讨论了小分子取代的二甲胺和蛋白质中的二甲基氨基的甲基交换,因此应有助于更好地理解还原性甲基化蛋白质的甲基光谱以及一般的甲基NMR光谱。本文主要涉及19F NMR在蛋白质化学交换研究中的应用,以及用于氨基酸侧链位点特异性标记的新型19F标签的设计。前者涉及对ion病毒蛋白有毒PrPSc形式的单体状态和低聚状态之间交换的研究,这对理解造成聚集和发病机理的机制具有重要意义。随后的两章介绍了一种设计高灵敏度19F化学标签的计算方法,并介绍了一种新的通用生物共轭策略,重点是通过反应性吲哚化学修饰氨基,重点是19F NMR应用。最后几章介绍了一种基于自饱和扩散的交叉饱和技术,该技术可检测蛋白质中的细微构象变化。本文中介绍的方法扩展了设计用于NMR应用的新化学标签的技术范围-专门标记蛋白质,并展示了基于NMR的方法来研究与疾病相关的化学交换过程,表征构象中间体,以及了解侧链动力学和动力学过程的生物物理表征如何使人们深入了解蛋白质的结构-功能关系。

著录项

  • 作者

    Larda, Sacha Thierry.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Biochemistry.;Molecular chemistry.;Physical chemistry.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 205 p.
  • 总页数 205
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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