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Molecular Mechanisms and Inhibition of Transcription Activation by Bacterial AraC Family Activator Proteins.

机译:细菌AraC家族激活蛋白的分子机制和转录激活抑制作用。

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摘要

AraC family proteins are transcriptional regulators that are defined by the presence of a conserved DNA binding domain (DBD). My research focused on three AraC family activators: Rns (activator of virulence genes in diarrhea-causing ETEC), VirF (activator of virulence genes in diarrhea-causing Shigella ) and RhaR (activator of L-rhamnose catabolic operons in Escherichia coli). With the ultimate goal of discovery of novel antibacterial agents that inhibit the AraC family proteins, here I have investigated the molecular mechanism of transcription activation by Rns and RhaR. Site-directed mutagenesis of residues in the ETEC Rns N-terminal domain (NTD) identified three residues (N15, N16 and I17) that are required for the transcription activation function of Rns. Site-directed mutagenesis of residues in the Rns DBD (predicted to be contacted by the NTD residues) identified three residues (K216, Y251 and G252) that are required for transcription activation, and one residue (H250) that is required for both DNA binding and transcription activation. We propose that transcription activation by Rns involves contacts between RS2 and AS2 region residues and these contacts may impart the structure or dynamics required by Rns to activate transcription.;In RhaR, I investigated the role of the RhaR Arm in transmission of the signal that effector (L-rhamnose) is bound from the NTD to the DBD, converting RhaR to its activating state. Site-directed mutagenesis results suggested that the RhaR Arm is involved in maintaining RhaR in its non-activating state. Our results suggest that residue L35 in the Arm makes inter-domain interactions with the RhaR DBD to reduce transcription activation by RhaR in the absence of L-rhamnose.;To identify novel agents that target AraC family proteins, I tested the small molecule SE-1, which our lab identified as an effective inhibitor of the AraC family proteins RhaS and RhaR. Despite limited sequence identity, SE-1 was also shown to inhibit VirF and Rns activity in cell-based assays in E. coli. I showed that SE-1 blocked in vitro DNA binding by VirF and Rns, and expression of VirF-dependent virulence genes in Shigella. A collaborator showed that SE-1 inhibited invasion of Shigella into eukaryotic host cells. SE-1 did not detectably inhibit the growth or metabolism of the bacterial or eukaryotic host cells, respectively, indicating that the inhibition of invasion was not due to general toxicity. Overall, SE-1 appears to exhibit selectivity toward AraC family proteins, and has potential to be developed into a novel antibacterial agent.
机译:AraC家族蛋白是转录调节因子,其通过存在保守的DNA结合域(DBD)来定义。我的研究集中在三种AraC家族激活因子上:Rns(引起腹泻的ETEC致病基因的激活物),VirF(引起腹泻的志贺氏菌致病性基因的激活物)和RhaR(在大肠杆菌中L-鼠李糖分解代谢操纵子的激活物)。为了发现抑制AraC家族蛋白的新型抗菌剂的最终目的,在此我研究了Rns和RhaR激活转录的分子机制。 ETEC Rns N末端结构域(NTD)中残基的定点诱变确定了Rns转录激活功能所需的三个残基(N15,N16和I17)。对Rns DBD中的残基进行定点诱变(预计会与NTD残基接触),确定了转录激活所需的三个残基(K216,Y251和G252)和两个DNA结合所需的一个残基(H250)和转录激活。我们提出Rns的转录激活涉及RS2和AS2区域残基之间的接触,这些接触可能赋予Rns激活转录所需的结构或动力学。在RhaR中,我研究了RhaR Arm在效应子信号传递中的作用。 (L-鼠李糖)从NTD绑定到DBD,将RhaR转换为其激活状态。定点诱变结果表明,RhaR Arm参与维持RhaR处于非激活状态。我们的结果表明,在不存在L-鼠李糖的情况下,Arm中的残基L35与RhaR DBD进行域间相互作用,以减少RhaR的转录激活。为了鉴定靶向AraC家族蛋白的新型药物,我测试了小分子SE- 1,我们的实验室将其鉴定为AraC家族蛋白RhaS和RhaR的有效抑制剂。尽管序列同一性有限,但在大肠杆菌中基于细胞的测定中,SE-1也显示出抑制VirF和Rns活性的作用。我发现SE-1阻断了志贺氏菌在体外与VirF和Rns的DNA结合以及VirF依赖性毒力基因的表达。一位合作者表明SE-1抑制志贺氏菌入侵真核宿主细胞。 SE-1不能分别抑制细菌或真核宿主细胞的生长或代谢,这表明入侵的抑制不是由于一般毒性引起的。总体而言,SE-1似乎表现出对AraC家族蛋白的选择性,并且有潜力被开发为新型抗菌剂。

著录项

  • 作者

    Koppolu, Veerendra.;

  • 作者单位

    University of Kansas.;

  • 授予单位 University of Kansas.;
  • 学科 Biology Microbiology.;Biology Cell.;Biology Molecular.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 202 p.
  • 总页数 202
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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