首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >The Aer protein and the serine chemoreceptor Tsr independently sense intracellular energy levels and transduce oxygen redox and energy signals for Escherichia coli behavior
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The Aer protein and the serine chemoreceptor Tsr independently sense intracellular energy levels and transduce oxygen redox and energy signals for Escherichia coli behavior

机译:Aer蛋白和丝氨酸化学感受器Tsr独立地感应细胞内能量水平并转导氧气氧化还原和能量信号以反映大肠杆菌的行为

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摘要

We identified a protein, Aer, as a signal transducer that senses intracellular energy levels rather than the external environment and that transduces signals for aerotaxis (taxis to oxygen) and other energy-dependent behavioral responses in Escherichia coli. Domains in Aer are similar to the signaling domain in chemotaxis receptors and the putative oxygen-sensing domain of some transcriptional activators. A putative FAD-binding site in the N-terminal domain of Aer shares a consensus sequence with the NifL, Bat, and Wc-1 signal-transducing proteins that regulate gene expression in response to redox changes, oxygen, and blue light, respectively. A double mutant deficient in aer and tsr, which codes for the serine chemoreceptor, was negative for aerotaxis, redox taxis, and glycerol taxis, each of which requires the proton motive force and/or electron transport system for signaling. We propose that Aer and Tsr sense the proton motive force or cellular redox state and thereby integrate diverse signals that guide E. coli to environments where maximal energy is available for growth.
机译:我们确定了一种蛋白质Aer,它是一种信号传感器,可以感知细胞内的能量水平,而不是外部环境,并且可以在大肠埃希氏菌中转换出气动力学信号(出租车对氧气)和其他能量依赖的行为响应。 Aer中的结构域与趋化性受体中的信号结构域以及某些转录激活因子的假定的氧感应结构域相似。在Aer的N末端结构域中一个推定的FAD结合位点与NifL,Bat和Wc-1信号转导蛋白共享一个共有序列,这些蛋白分别响应氧化还原变化,氧气和蓝光来调节基因表达。缺少aer和tsr的双突变体,编码丝氨酸化学感受器,对需氧量,氧化还原滑膜和甘油滑膜均呈阴性,而每种突变都需要质子动力和/或电子传输系统来传递信号。我们建议Aer和Tsr感知质子原动力或细胞氧化还原状态,从而整合多种信号,这些信号将大肠杆菌引导至可用于最大能量生长的环境。

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