首页> 外文学位 >Spectroscopic characterization of the reaction intermediates of the heme-thiolate proteins of cytochrome P450cam and Caldariomyces fumago chloroperoxidase and investingation of the structure and kinetics of hemecontaining proteins using magnetic circular dichroism and rapid-scan, stopped-flow spectroscopy.
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Spectroscopic characterization of the reaction intermediates of the heme-thiolate proteins of cytochrome P450cam and Caldariomyces fumago chloroperoxidase and investingation of the structure and kinetics of hemecontaining proteins using magnetic circular dichroism and rapid-scan, stopped-flow spectroscopy.

机译:光谱学表征细胞色素P450cam和富马卡德氏霉菌的氯过氧化物酶的血红素硫醇盐蛋白的反应中间体,并利用磁性圆二色性和快速扫描,停止流光谱学研究含血红素的蛋白的结构和动力学。

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摘要

Heme proteins are highly versatile with important roles in biochemistry including oxygen transport, storage, and catalysis. Work on heme proteins has often led the way for studying biological systems, and while different heme protein families have unique gene sequences, protein folding and varied roles in biochemistry, some characteristics are similar throughout all heme proteins and a variety of spectroscopic methods have been first applied to the study of heme proteins over the years. Using the two defining features of all heme proteins, the iron metal center and the tetrapyrrole macrocycle, UV-visible (UV-Vis) electronic absorption and rapid-scan, stopped-flow spectroscopies were utilized to determine reaction mechanisms and kinetics data. Due to the chromophore properties of heme-containing proteins, magnetic circular dichroism (MCD) spectrophotometry was used to determine structural aspects of different heme-containing proteins.;In part one of this dissertation, two projects highlight the kinetics of reacting thiolate-ligated heme proteins with different oxo-donors. The reaction between ferric Caldariomyces fumago chloroperoxidase (CCPO) and meta-chloroperoxybenzoic acid (mCPBA) has been examined, but unlike most CCPO reactions, Compound I (Cpd I) and Compound II (Cpd II) are formed using the same reactant. Thus, the peracid is used as an oxo donor to produce Cpd I and then as a reductant to reduce Cpd I to Cpd II, and finally, Cpd II to the ferric state. In the second project, the reaction of ferric cytochrome P450cam (Cyp101) with substituted (Cl, CH 3, OCH3) perbenzoic acids was studied using rapid scanning stopped flow spectroscopy. An absorption appears en route to the formation of the high-valent moiety known as Compound I that is thought to be an ferric acylperoxo heme adduct similar to the known Compound 0 of other peroxidases. Further support for this conclusion derive from additional linear Hammett correlation plots for both the rate of formation of the intermediate as well as for its conversion to Compound I vs. the substituent Hammett rho constant.;In the second part, MCD studies were completed on a variety of heme-containing proteins in order to determine the axial ligands critical for binding the heme cofactor. Glyceraldehyde-3-phosphate dehydrogenase (GAPDH) is an enzyme recently implicated in a new role for eukaryotic systems: heme transport protein. Different spectroscopic techniques (UV-Vis and MCD) were employed to identify the axial binding site for heme to GAPDH, which was determined to be a bis-histidine ligand set. Another group of proteins studied for their heme-uptake properties were the gram-positive bacteria Streptococcus pyogenes Shr NEAT1 and NEAT 2 domains and Corynebactrium diphtheriae HmuT. Both NEAT1 and NEAT2 were determined to contain two thioether donors, presumably bis-methionine in the various oxidation states. For HmuT, the native protein was determined to be ligated to a nitrogen donor and an oxo-donor. It was concluded that wild-type HmuT adopts the His/Tyr active site similar to other known heme-uptake systems. During the course of mutation studies, His136 and Tyr235 were determined to be the axial ligands of wild-type HmuT.;Finally, the last project completed was spectroscopic studies completed on Saccharomyces cervisiae iso-1-cytochrome c and its F82H, M80C, F82C, and T78C/K79G mutants. UV-vis absorption and MCD spectroscopy were utilized to compare these mutants to the wild-type yeast cytochrome c and its His/Met active site ligand set, as well as to the F82H bis-His mutant. Spectroscopic changes in these mutants upon heme reduction suggest a new Cys-to-Met ligand switch, pointing to the flexibility of the heme environment in these systems.
机译:血红素蛋白具有很高的通用性,在生物化学中具有重要作用,包括氧的运输,储存和催化。血红素蛋白的研究通常为研究生物学系统铺平了道路,尽管不同的血红素蛋白家族具有独特的基因序列,蛋白质折叠和在生物化学中的不同作用,但在所有血红素蛋白中某些特征是相似的,并且首先是各种光谱方法多年来用于血红素蛋白的研究。利用所有血红素蛋白的两个定义特征,铁金属中心和四吡咯大环,利用紫外可见(UV-Vis)电子吸收和快速扫描,停止流光谱学确定反应机理和动力学数据。由于含血红素的蛋白质具有发色特性,因此采用磁性圆二色性(MCD)分光光度法测定了不同的含血红素的蛋白质的结构方面。本论文的第一部分,两个项目着重说明了硫醇盐连接的血红素的反应动力学。具有不同氧代供体的蛋白质。已经研究了烟酸卡尔曼氏霉菌的氯过氧化物酶(CCPO)和间氯过氧苯甲酸(mCPBA)之间的反应,但与大多数CCPO反应不同,化合物I(Cpd I)和化合物II(Cpd II)是使用相同的反应物形成的。因此,过酸被用作氧代供体以产生Cpd I,然后被用作还原剂以将Cpd I还原为Cpd II,最后将Cpd II还原为三价态。在第二个项目中,使用快速扫描停止流动光谱法研究了铁细胞色素P450cam(Cyp101)与取代的(Cl,CH 3,OCH3)过苯甲酸的反应。在形成称为化合物I的高价部分的途中出现吸收,该高价部分被认为是类似于其他过氧化物酶的已知化合物0的酰基过氧化铁血红素铁。该结论的进一步支持来自其他线性Hammett相关图,该图涉及中间体的形成速率及其向化合物I的转化率与取代基Hammett rho常数的关系。第二部分,MCD研究在各种含血红素的蛋白,以确定对血红素辅因子结合至关重要的轴向配体。甘油醛-3-磷酸脱氢酶(GAPDH)是一种酶,最近与真核系统的新作用有关:血红素转运蛋白。采用不同的光谱技术(UV-Vis和MCD)来确定血红素与GAPDH的轴向结合位点,GAPDH被确定为双组氨酸配体。另一组因其血红素摄取特性而研究的蛋白质是革兰氏阳性化脓性链球菌Shr NEAT1和NEAT 2结构域以及白喉棒状杆菌HmuT。确定NEAT1和NEAT2都包含两个硫醚供体,可能是处于各种氧化态的双甲硫氨酸。对于HmuT,确定天然蛋白已连接至氮供体和氧代供体。结论是,野生型HmuT具有类似于其他已知血红素摄取系统的His / Tyr活性位点。在突变研究过程中,His136和Tyr235被确定为野生型HmuT的轴向配体。最后,最后完成的项目是对啤酒酵母异-1-细胞色素c及其F82H,M80C,F82C的光谱学研究。和T78C / K79G突变体。利用紫外可见吸收和MCD光谱将这些突变体与野生型酵母细胞色素c及其His / Met活性位点配体组以及F82H bis-His突变体进行比较。这些突变体在血红素还原后的光谱变化表明新的Cys-Met配体转换,表明这些系统中血红素环境的灵活性。

著录项

  • 作者

    Collins, Daniel P.;

  • 作者单位

    University of South Carolina.;

  • 授予单位 University of South Carolina.;
  • 学科 Chemistry General.;Chemistry Biochemistry.;Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 304 p.
  • 总页数 304
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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