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A connector of two-component regulatory systems promotes signal amplification and persistence of expression

机译:两组分调节系统的连接器促进信号放大和表达的持久性

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Organisms rely on a variety of regulatory architectures to control gene transcription. Whereas the functional characteristics of particular architectures are well understood, the properties of newly discovered regulatory designs cannot be easily predicted. One emerging design depends on small proteins that connect two-component regulatory systems, which constitute the dominant form of bacterial signal transduction. These connectors enable one system to respond to the signal perceived by a different system. To understand the functional properties of such connector-mediated architectures, we investigated the pathway controlled by the PhoP-dependent connector protein PmrD of Salmonella enterica and contrasted it to the circuit in which genes are regulated directly by the transcription factor PhoP. The PmrD-mediated pathway displayed both signal amplification and persistence of expression when compared with the direct pathway. Mathematical modeling of the two pathways allowed us to identify critical factors responsible for signal amplification.
机译:有机体依赖于多种调控结构来控制基因转录。尽管特定体系结构的功能特性已广为人知,但新发现的监管设计的特性却无法轻易预测。一种新兴的设计依赖于连接两组分调节系统的小蛋白质,后者构成细菌信号转导的主要形式。这些连接器使一个系统能够响应另一系统感知到的信号。为了了解此类连接器介导的体系结构的功能特性,我们研究了由沙门氏菌肠依赖PhoP的连接器蛋白PmrD控制的通路,并将其与由转录因子PhoP直接调节基因的电路进行了对比。与直接途径相比,PmrD介导的途径既显示信号放大又表达持续表达。这两种途径的数学模型使我们能够确定引起信号放大的关键因素。

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