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Spectroscopy of Metal containing Biomolecules and Biomimetic complexes involved in Oxygen and Water Activation.

机译:涉及氧气和水活化的含金属生物分子和仿生复合物的光谱学。

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摘要

Metalloenzymes catalyze the transformation of substrates while activating O2 and H2O in key reactions of metabolic and photosynthetic processes. Electron Paramagnetic Resonance (EPR) and Mossbauer spectroscopies are used to characterize the heme enzyme Tryptophan Dioxygenase (TDO), which catalyzes a critical ring-opening step in the pathway of NAD biosynthesis in humans. The present work demonstrates the existence of two dominant inequivalent heme species in reduced and oxidized states of the enzyme. This is consistent with a dimer of dimer protein quaternary structure that now extends to the electronic properties of the hemes. This work presents a new description of the heme interactions with the protein, which must be considered during the general interpretation of physical data as it relates to kinetics, mechanism, and function of TDO.;Synthetic biomimetic complexes provide insight into the electronic and magnetic properties of short-lived reactive intermediates that are otherwise hard to trap in proteins. This work presents a characterization of a series of biomimetic Mn/Fe complexes of the same ligand set for oxidation states +2, +3, +4 and +5 (Mn) allowing comparison of electronic parameters of the metal in d5 to d2 electronic states in the same environment. Density Functional Theory (DFT) calculations give good agreement with specific experimentally determined properties, thereby providing connections to the structure. The Fe+4 and Mn+5 complexes are the first EPR detection of these metal states. High-valent Fe+4 species are key catalytic intermediates in enzymatic reactions involving O2 and a Mn+5 center has been postulated in Photosystem II for H2O oxidation. The ability to detect such species with EPR, coupled with quantitative simulations provides a new probe for detection of the reactive intermediates in enzymes.
机译:金属酶在代谢和光合作用过程的关键反应中,在激活O2和H2O的同时催化底物的转化。电子顺磁共振(EPR)和Mossbauer光谱用于表征血红素酶色氨酸双加氧酶(TDO),该酶催化人类NAD生物合成途径中的关键开环步骤。本工作证明了在酶的还原态和氧化态中两种主要的不等价血红素种类的存在。这与二聚体蛋白四元结构的二聚体一致,该二聚体现在延伸至血红素的电子性质。这项工作提出了血红素与蛋白质相互作用的新描述,在物理数据的一般解释中必须考虑到它,因为它与TDO的动力学,机理和功能有关。合成的仿生复合物提供了对电子和磁性性质的洞察力短寿命的反应性中间体,否则很难捕获蛋白质。这项工作提出了一系列具有相同配体的仿生Mn / Fe配合物的表征,其氧化态为+ 2,+ 3,+ 4和+5(Mn),可以比较d5和d2电子态下金属的电子参数。在相同的环境中。密度泛函理论(DFT)计算与特定的实验确定的特性非常吻合,从而提供了与结构的连接。 Fe + 4和Mn + 5络合物是这些金属态的首次EPR检测。高价的Fe + 4是涉及O2的酶促反应中的关键催化中间体,并且在Photosystem II中已假定Mn + 5中心可用于H2O氧化。利用EPR检测此类物质的能力,再加上定量模拟,为检测酶中反应性中间体提供了新的探针。

著录项

  • 作者

    Gupta, Rupal.;

  • 作者单位

    Carnegie Mellon University.;

  • 授予单位 Carnegie Mellon University.;
  • 学科 Chemistry Physical.;Chemistry Biochemistry.;Biophysics General.;Chemistry Inorganic.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 252 p.
  • 总页数 252
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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