A quantitative study of cell-to-cell communication in bacteria
A quantitative study of cell-to-cell communication in bacteria
批准号:
7678027
负责人:
Pankaj Mehta
金额:
$12.64万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-09-01 至 2010-07-31
关键词:
AccountingBacteriaBiochemicalBiologicalCell CommunicationCell physiologyCellsCholeraCommunicationCommunication Aids for DisabledComplexControlled StudyCuesDNA-Binding ProteinsDataDevelopmentElementsEngineeringEnvironmentFluorescence MicroscopyGene ExpressionGoalsHealthHeartHumanInfection ControlInformation TheoryKineticsLeadLearningMarinesMediatingModelingNeurosciencesNoiseOutputPathway interactionsPharmaceutical PreparationsPhosphotransferasesPhysicsProcessPropertyRNAResearchResearch PersonnelRoleSensorySignal TransductionSignaling MoleculeSmall RNASourceSpecificityStimulusSystemTechniquesTheoretical modelVibrioVibrio choleraeVirulenceanalytical toolcomparativecomputerized data processinginformation processingmathematical theorynovelpathogenprogramspromoterquorum sensingresearch studyresponsesimulationtool
中文摘要
描述(申请人提供):本研究的总体目标是了解群体感应:细菌中细胞间通讯的过程。这一应用将集中在两种相关细菌的群体感应上:霍乱弧菌,人类的主要病原体和海洋细菌哈维氏弧菌。这些细菌中的群体感应系统将多个群体感应信号导入一个信号电路。这个回路的核心是多个小的调节RNA(SRNA),它们介导群体感应开关,并允许细胞共同调节基因表达。这项应用的具体目标是(1)开发霍乱弧菌和哈维氏弧菌群体感应电路的定量模型,以及(2)利用工程和物理的分析工具,开发一种新的理论框架,用于分析法定弧菌感应电路是如何整合感觉信息的。开发一个分析信息流的量化模型和理论框架将有助于回答三个基本问题。(1)弧菌群体感应网络如何即使在多个信号通过共同的途径传递时也能保持信号转导的特异性?(2)在群体感应回路中由RNA调节器(相对于DNA结合蛋白)提供的信号有哪些比较优势?(3)群体感应回路中的主要噪声源是什么?这种噪声对信号特性有什么影响?回答这些问题将有助于我们理解细菌的种内和种间交流,以及细胞回路中潜在的信息处理和信号转导的原理。从广泛的建模角度来看,这项研究可能会为分析生化网络中的信号转导和信息流提供新的分析和定量工具。这项研究还具有重要的健康意义,因为许多病原体,如霍乱(霍乱弧菌),都使用群体感应来调节毒力。因此,更好地理解群体感应可能会导致新的药物来控制感染。
英文摘要
DESCRIPTION (provided by applicant): The overall goal of this research is to understand quorum sensing: the process of cell-to-cell communication in bacteria. This application will focus on quorum sensing in two related bacteria: Vibrio cholerae, a major human pathogen and the marine-bacteria Vibrio harveyi. The quorum- sensing systems in these bacteria channel multiple quorum-sensing signals into one signaling circuit. At the heart of this circuit are multiple small regulatory RNAs (sRNAs) that mediate the quorum-sensing switch and allow cells to collectively regulate gene expression. The specific goals of this application are (1) to develop a quantitative model for the quorum sensing circuit in V. cholerae and V. harveyi and (2) to develop a new theoretical framework for analyzing how sensory information is integrated by the Vibrio quorum sensing circuit using analytical tools from engineering and physics. Developing a quantitative model and theoretical framework for analyzing information flow will help answer three fundamental questions. (1) How can the Vibrio quorum-sensing network maintain signal-transduction specificity even when multiple signals are transmitted through a shared pathway? (2) What are the comparative advantages for signaling provided by RNA regulators (as opposed to DNA-binding proteins) in the quorum- sensing circuit? (3) What are the major sources of noise in the quorum-sensing circuit and what is the effect of this noise on signaling properties? Answering these questions will contribute to our understanding of intra- and inter-species communication in bacteria and the principles underlying information processing and signaling-transduction in cellular circuits. From a broad modeling perspective, this research is likely to yield new analytic and quantitative tools for analyzing signal-transduction and information flow in biochemical networks. This research also has important health implications because many pathogens such as cholera (Vibrio cholerae) use quorum sensing to regulate virulence. Thus, a greater understanding of quorum-sensing may lead to novel drugs to control infection.
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会议论文
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国内基金
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依托单位: