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首页> 外文期刊>Molecular BioSystems >Stochastic kinetic model of two component system signalling reveals all-or-none, graded and mixed mode stochastic switching responses
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Stochastic kinetic model of two component system signalling reveals all-or-none, graded and mixed mode stochastic switching responses

机译:两组分系统信号的随机动力学模型揭示了全或无,渐变和混合模式的随机切换响应

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摘要

Two-component systems (TCSs) are prevalent signal transduction systems in bacteria that control innumerable adaptive responses to environmental cues and host-pathogen interactions. We constructed a detailed stochastic kinetic model of two component signalling based on published data. Our model has been validated with flow cytometry data and used to examine reporter gene expression in response to extracellular signal strength. The model shows that, depending on the actual kinetic parameters, TCSs exhibit all-or-none, graded or mixed mode responses. In accordance with other studies, positively autoregulated TCSs exhibit all-or-none responses. Unexpectedly, our model revealed that TCSs lacking a positive feedback loop exhibit not only graded but also mixed mode responses, in which variation of the signal strength alters the level of gene expression in induced cells while the regulated gene continues to be expressed at the basal level in a substantial fraction of cells. The graded response of the TCS changes to mixed mode response by an increase of the translation initiation rate of the histidine kinase. Thus, a TCS is an evolvable design pattern capable of implementing deterministic regulation and stochastic switches associated with both graded and threshold responses. This has implications for understanding the emergence of population diversity in pathogenic bacteria and the design of genetic circuits in synthetic biology applications. The model is available in systems biology markup language (SBML) and systems biology graphical notation (SBGN) formats and can be used as a component of large-scale biochemical reaction network models.
机译:两组分系统(TCS)是细菌中的普遍信号转导系统,可控制对环境线索和宿主-病原体相互作用的无数适应性反应。我们基于已发布的数据构建了一个详细的两组分信号随机动力学模型。我们的模型已通过流式细胞仪数据验证,并用于检查响应细胞外信号强度的报告基因表达。该模型显示,根据实际动力学参数,TCS表现出全或无,渐变或混合模式响应。根据其他研究,阳性自动调节的TCS表现为全有或全无。出乎意料的是,我们的模型揭示了缺少正反馈回路的TCS不仅表现出分级反应,而且还表现出混合模式反应,其中信号强度的变化改变了诱导细胞中基因表达的水平,而受调控的基因继续在基础水平上表达在大部分细胞中通过增加组氨酸激酶的翻译起始速率,TCS的分级响应变为混合模式响应。因此,TCS是一种可演变的设计模式,能够实现与分级响应和阈值响应相关的确定性调节和随机切换。这对于理解病原细菌中种群多样性的出现以及合成生物学应用中遗传电路的设计具有重要意义。该模型以系统生物学标记语言(SBML)和系统生物学图形表示法(SBGN)格式提供,并且可以用作大规模生化反应网络模型的组成部分。

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  • 来源
    《Molecular BioSystems》 |2010年第3期|531-542|共12页
  • 作者单位

    Faculty of Health and Medical Sciences, University of Surrey, Guildford, Surrey, UK GU2 7XH;

    Department of Biological Sciences, Purdue University, West Lafayette, IN 47907-2054, USA;

    Department of Biological Sciences, Purdue University, West Lafayette, IN 47907-2054, USA;

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