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Probing the mechanism of bacterial metalloregulation and virulence regulation.

机译:探索细菌金属调控和毒力调控的机制。

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摘要

A chemical biology approach is employed to understand biological processing such as bacterial metal ion sensing, antibiotic resistance and pathogenesis. As the first part of this dissertation, Chapter One to Chapter Three center on "Studying Bacterial Metalloregulation". Chapter One introduces the general strategy I developed on construction of metal ion fluorescent reporters based on the MerR family of metalloregulatory proteins. In Chapter Two, I performed functional study of a newly identified lead binding protein PbrR691 from MerR family and demonstrated that this is an exceptional selective lead recognition protein. Chapter Three reports spectroscopic investigation towards understanding the molecular mechanism for the high selectivity exhibited by PbrR691 against lead(II). The second part of this dissertation is Chapter Four and Chapter Five. The content of this part is "Probing the Virulence and Antibiotic Resistance Regulation in Pathogen". Chapter Four focuses on a global regulator MgrA in S. aureus and demonstrated that MgrA regulates a variety of genes including antibiotic resistance and virulence factors in this human pathogen. Structural and functional investigation of this key protein illustrated that an oxidation sensing mechanism is used by MgrA to tune a broad spectrum of genes to cope with the stress induced by the environment or the host. Due to the important role and the unique mechanism of MgrA in S. aureus, I seek to find a novel approach for the treatment of S. aureus infection by targeting MgrA. Chapter Five shows the strategy on developing small molecule modulators for tuning MgrA's function inside S. aureus. Chapter Six forms the third part of this dissertation with the emphasis on "Identifying Metal Participated Drug Resistance Regulation". The activation mechanism of MarR remained unclear despite extensive study on this important regulatory protein. Inspired by my previous results on identifying MgrA (MarR's close homologue) as a redox switch in S. aureus, I subsequently investigated MarR in E. coli. Instead of direct sensing of oxidative stress, my results proved that MarR is ready to react with copper ion. A copper participated activation mechanism is proposed for MarR to tune its downstream genes including antibiotic efflux pumps.
机译:化学生物学方法用于理解生物学过程,例如细菌金属离子感测,抗生素抗性和发病机理。作为本论文的第一部分,第一章至第三章的重点是“研究细菌的金属调节”。第一章介绍了我基于金属调控蛋白MerR家族构建金属离子荧光报告基因的一般策略。在第二章中,我对来自MerR家族的新发现的铅结合蛋白PbrR691进行了功能研究,并证明了这是一种出色的选择性铅识别蛋白。第三章报告了光谱学研究,以了解PbrR691对铅(II)表现出的高选择性的分子机理。本文的第二部分是第四章和第五章。这部分的内容是“探究病原体的毒力和抗生素耐药性调控”。第四章重点研究金黄色葡萄球菌中的全球调节物MgrA,并证明MgrA调节该人类病原体中的各种基因,包括抗生素抗性和毒力因子。对该关键蛋白的结构和功能研究表明,MgrA使用氧化感应机制来调节广泛的基因,以应对环境或宿主诱导的压力。由于MgrA在金黄色葡萄球菌中的重要作用和独特的机制,我寻求找到一种针对MgrA的新方法来治疗金黄色葡萄球菌感染。第五章介绍了开发用于调节金黄色葡萄球菌内部MgrA功能的小分子调节剂的策略。第六章是本论文的第三部分,重点是“识别金属参与的耐药性法规”。尽管对此重要调节蛋白进行了广泛研究,但MarR的激活机制仍不清楚。受到先前将MgrA(MarR的近缘同源物)鉴定为金黄色葡萄球菌的氧化还原开关的研究结果的启发,我随后在大肠杆菌中研究了MarR。我的结果不是直接检测氧化应激,而是证明MarR准备与铜离子反应。提出了一种铜参与的激活机制,用于MarR调节其下游基因,包括抗生素外排泵。

著录项

  • 作者

    Chen, Peng.;

  • 作者单位

    The University of Chicago.;

  • 授予单位 The University of Chicago.;
  • 学科 Biology Molecular.;Chemistry Biochemistry.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 215 p.
  • 总页数 215
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 宗教;
  • 关键词

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