Mechanism of CsrA-Mediated Global Control
Mechanism of CsrA-Mediated Global Control
批准号:
8439814
负责人:
PAUL L BABITZKE
金额:
$41.39万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-08-01 至 2017-05-31
关键词:
AddressAffectAnimalsAttentionBacteriaBacterial InfectionsBacterial PhysiologyBehaviorBiochemicalBioinformaticsBiological AssayBiological ProcessBiologyBoxingCandidate Disease GeneCarbonCell physiologyCodeComplexCouplesDNA-Directed RNA PolymeraseDataEscherichia coliFollow-Up StudiesFunctional RNAFutureGap JunctionsGene ExpressionGenesGeneticGenetic ScreeningGenetic TranscriptionHumanInfectionLearningLinkMediatingMembraneMessenger RNAMetabolismMicrobial BiofilmsMolecularMolecular GeneticsMolecular MimicryOrganismPathogenesisPathway interactionsPlantsPredispositionProtein BindingProteinsPublishingRNARNA BindingRNA DecayRNA DegradationRNA HelicaseRNA chemical synthesisRNA-Binding ProteinsRegulationRegulator GenesRegulonReportingRibonucleasesRibosomal RNARoleSigma FactorSignal TransductionSpecificityStagingStressStructureSystemSystems BiologyTertiary Protein StructureTherapeuticTranscriptTranslation InitiationTranslationsVaccinesVirulenceVirulence Factorsbasebiological adaptation to stressbis(3&apos,5&apos)-cyclic diguanylic acidcell motilitydimerhelicaseinsightinterestmRNA Stabilitymathematical modelmembernovelnovel strategiesnovel therapeuticspathogenpublic health relevanceresponseribonuclease Etraittranscriptome sequencingtransmission process
中文摘要
描述(由申请人提供):通过研究大肠杆菌的碳储存调控系统(Csr),将寻求对转录后调控机制和全球调控回路的深入了解。Csr包括:CsrA,一种RNA结合蛋白,调节大量靶mrna的翻译和/或稳定性;CsrB和证监会,利用分子模拟来隔离和拮抗CsrA的非编码sRNAs;BarA-UvrY,一个激活csrB和证监会转录的双组分信号转导系统;CsrD,一种特异性靶向CsrB和证监会rna的蛋白质,可被RNase e降解。在大肠杆菌中,CsrA在大范围内调节代谢、运动和多细胞行为。我们最近发表的RNA-seq研究确定了712种不同的rna与CsrA结合,包括bbb40调节因子的mrna。我们发表的初步研究结果进一步揭示,Csr与许多其他全球调控回路相互关联,这意味着Csr在全球范围内影响细菌生理。我们假设这种复杂的电路允许Csr在转录后水平上加强应激反应系统的转录效应。本提案的具体目标是:1)确定Csr与其他全球调控系统的互惠调控相互作用,并阐明新的Csr介导的调控机制,这些机制已经从遗传筛选和RNA-seq研究结果中得到了启示。我们将重点关注csra介导的两种应激反应sigma因子(¿S和¿E)的调节,以及参与大量mRNA周转的两种核糖核酸酶(RNase E和PNPase)。2)明确CsrB/C RNA转换途径,重点研究CsrD促进RNase e依赖性切割的机制。特别有趣的是,我们的初步结果表明,CsrD特异性地将CsrB合成与RNase E的靶向转换偶联,这表明RNA合成对RNA衰变的影响可能是RNA生物学的一个未被充分认识的特征。3)确定DeaD -box RNA解旋酶DeaD正调控CsrB/C RNA水平的分子机制。我们的初步结果表明,DeaD直接影响csrB/C转录所需的应答调节因子UvrY的表达。我们的研究结果进一步表明,DeaD解开了抑制uvery翻译的二级结构。因此,这些研究将确定对Csr系统的重要调控影响的机制,并为深入了解DeaD解旋酶在翻译中的作用提供基础。这些研究的长期目标是充分了解Csr系统的调控成分、遗传回路、分子机制和生物学功能,从而定义支撑调控超级网络的基本原则。与Csr同源的高度保守的调控系统控制着许多人类、动物和植物病原体中毒力因子和/或传播性状的表达,导致各种感染。因此,这些研究将提供对细菌代谢和发病机制的基本理解,并可能提出新的治疗和/或疫苗策略。
英文摘要
DESCRIPTION (provided by applicant): Insight into posttranscriptional regulatory mechanisms and global regulatory circuitry will be sought through the study of the carbon storage regulatory system (Csr) of Escherichia coli. Csr includes: CsrA, an RNA binding protein that regulates translation and/or the stability of a large number of target mRNAs; CsrB and CsrC, noncoding sRNAs that use molecular mimicry to sequester and antagonize CsrA; BarA-UvrY, a two- component signal transduction system that activates transcription of csrB and csrC; and CsrD, a protein that specifically targets CsrB and CsrC RNAs for degradation by RNase E. In E. coli, CsrA regulates metabolism, motility, and multicellular behavior on a broad scale. Our recently published RNA-seq studies identified 712 different RNAs that bind to CsrA, including mRNAs for >40 regulatory factors. Our published and preliminary findings further reveal that Csr is reciprocally linked to a number of other global regulatory circuits, implying tht Csr affects bacterial physiology on a global scale. We hypothesize that this complex circuitry allows Csr to reinforce the transcriptional effects of stress response systems at a posttranscriptional level. The specific aims of this proposal are: 1) Identify reciprocal regulatoy interactions of Csr with other global regulatory systems and elucidate novel CsrA-mediated regulatory mechanisms, which have come to light from the results of genetic screens and RNA-seq studies. We will focus on CsrA-mediated regulation of two stress-response sigma factors (¿S and ¿E), and two ribonucleases that participate in bulk mRNA turnover (RNase E and PNPase). 2) Define the CsrB/C RNA turnover pathway, focusing on the mechanism by which CsrD promotes RNase E-dependent cleavage. Of particular interest, our preliminary results indicate that CsrD specifically couples CsrB synthesis with targeted turnover by RNase E, suggesting that the influence of RNA synthesis on RNA decay may be an underappreciated feature of RNA biology. 3) Determine the molecular mechanisms by which DeaD, a DEAD-box RNA helicase, positively regulates CsrB/C RNA levels. Our preliminary results indicate that DeaD directly affects expression of the response regulator UvrY, which is required for csrB/C transcription. Our results further suggest that DeaD unwinds a secondary structure that inhibits translation of uvrY. Thus, these studies will determine the mechanism of an important regulatory influence on the Csr system and provide fundamental insight into the role of DeaD helicase in translation. The long-range objectives of these studies are to fully understand the regulatory components, genetic circuitry, molecular mechanisms, and biological functions of the Csr system, thereby defining basic principles that underpin a regulatory super-network. Highly conserved regulatory systems homologous to Csr control the expression of virulence factors and/or transmission traits in numerous human, animal, and plant pathogens, responsible for diverse infections. Thus, these studies will provide fundamental understanding of the regulation of bacterial metabolism and pathogenesis and may suggest novel therapeutic and/or vaccine strategies.
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