Amplification and suppression of noise in B. subtilis developmental gene circuits
Amplification and suppression of noise in B. subtilis developmental gene circuits
批准号:
7769870
负责人:
MICHAEL B ELOWITZ
金额:
$29.91万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-02-01 至 2012-01-31
关键词:
Action PotentialsAddressAffectAntibioticsBacillus subtilisBacteriaBehaviorBiological ModelsCellsColorCommunicable DiseasesCompetenceComplexCouplesDNADataDevelopmentDevelopmental GeneDevelopmental ProcessElementsEnvironmentEventFailureFeedbackFluorescenceFrequenciesFutureGenesGeneticGenetic ProgrammingGoalsHandIndividualLifeMeasuresMicroscopyModelingMutationNeuronsNoiseOrganismOutcomePenetrancePhosphorylationPlayPopulationPost-Transcriptional RegulationProcessProductionPublic HealthRegulationRelative (related person)Reproduction sporesResearchResistanceRoleSeriesSourceStressStructureSystemTechniquesTestingTimeVariantVirusbiological systemscell typedata modelingdesignextracellularhuman diseasemathematical modelmutantparallel processingprogramsresponsesuccesstime usetranscription factor
中文摘要
描述(申请人提供):“噪声”--细胞成分的随机波动--是单细胞水平生命的一个基本方面。噪声在生物系统中扮演着双重角色:一方面,它允许细胞根据外部条件做出随机决定。例如,通过对压力做出反应而产生孢子,个别细胞对其未来的环境做出了概率上的“押注”。另一方面,噪音会干扰依赖于精确基因调控的发育过程。细胞内噪声最近在简单的合成电路中被检测和量化。在这里,我们建议直接分析自然遗传电路中的噪音,这些电路做出概率的细胞命运决定并经历精确的发育过程。枯草芽孢杆菌提供了一个独特的这样做的机会:它使用具有良好特性的遗传电路来概率地启动竞争能力和产孢量的分化程序。在孢子形成期间,它还经历了一个紧密协调的、抑制噪音的发育过程。本研究的目的是了解枯草杆菌基因电路如何放大噪声以概率地调节竞争能力事件和孢子形成启动,以及它们如何在孢子形成过程中抑制噪声以产生有序的事件序列。我们将应用定量时间推移荧光显微镜技术来观察单细胞中的基因电路动力学,并重新布线电路以测试特定的预测。整个方法将由潜在基因电路的数学模型驱动。我们将具体解决三个问题:(1)在能力调节的情况下,我们将检验噪声驱动的兴奋产生概率和瞬时能力情节的假设。(2)在孢子形成启动的情况下,我们将检验这样的假设,即嵌套的正反馈环与噪声一起在启动孢子形成的决定中产生时间变异性。(3)在孢子形成的发育过程中,我们将确定噪声如何在野生型细胞中被抑制,但决定部分穿透(PP)突变体(其中一些细胞成功地完成孢子形成,而另一些细胞死亡)的命运。在这个模型系统中确定的电路级策略很可能在经历分化和发育的更复杂的生物体中运作。与公共卫生相关:传染病的传播依赖于替代遗传程序的概率激活,例如细菌中的能力、孢子形成和抗生素持久性以及病毒中的潜伏期。这项提议将解决单个细胞随机进入这些交替状态的机制。此外,该提案将调查导致突变部分外显(仅在一些受影响的个人中发生)的机制。在人类疾病中也发现了部分外显。
英文摘要
DESCRIPTION (provided by applicant): "Noise" - random fluctuation of cellular components - is a fundamental aspect of life at the single cell level. Noise plays a dual role in biological systems: On the one hand, it allows cells to make random decisions biased by external conditions. For instance, by sporulating in response to stress individual cells make probabilistic 'bets' about their future environment. On the other hand, noise can interfere with developmental processes that depend on precise genetic regulation. Intracellular noise has recently been detected and quantified in simple synthetic circuits. Here we propose to analyze noise directly within natural genetic circuits that make probabilistic cell-fate decisions and undergo precise developmental processes. Bacillus subtilis presents a unique opportunity to do so: It uses well-characterized genetic circuits to probabilistically initiate the differentiation programs of competence and sporulation. It also undergoes a tightly-coordinated, noise-suppressing developmental process during sporulation. The goal of this research is to understand how B. subtilis gene circuits amplify noise to probabilistically regulate competence events and sporulation initiation, and how they suppress noise to generate an ordered sequence of events during sporulation. We will apply quantitative time-lapse fluorescent microscopy techniques to observe gene circuit dynamics in single cells, and 're-wire' circuits to test specific predictions. The overall approach will be driven by mathematical models of underlying gene circuits. We will specifically address three problems: (1) In the case of competence regulation, we will test the hypothesis that noise- driven excitability generates probabilistic and transient competence episodes. (2) In the case of sporulation initiation, we will test the hypothesis that nested positive feedback loops, together with noise, generate temporal variability in the decision to initiate sporulation. (3) In the developmental process of sporulation, we will determine how noise is suppressed in wild-type cells but determines the fate of partially penetrant (PP) mutants (mutants in which some cells successfully complete sporulation, while others die). The circuit-level strategies identified in this model system are likely to operate in more complex organisms that undergo differentiation and development. Relevance to Public Health: The spread of infectious diseases depends on probabilistic activation of alternative genetic programs, such as competence, sporulation, and antibiotic persistence in bacteria, and latency in viruses. This proposal will address the mechanism by which individual cells randomly enter these alternate states. In addition, the proposal will investigate the mechanisms leading to the partial penetrance (occurring only in some affected individuals) of mutations. Partial penetrance is also found in human diseases.
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