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首页> 外文期刊>Environmental microbiology >A three-component signalling system fine-tunes expression kinetics of HPPK responsible for folate synthesis by positive feedback loop during stress response of Xanthomonas campestris
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A three-component signalling system fine-tunes expression kinetics of HPPK responsible for folate synthesis by positive feedback loop during stress response of Xanthomonas campestris

机译:三组分信号传导系统可在油菜黄单胞菌(Xanthomonas campestris)应激反应期间通过正反馈回路微调负责叶酸合成的HPPK的表达动力学。

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During adaptation to environments, bacteria employ two-component signal transduction systems, which contain histidine kinases and response regulators, to sense and respond to exogenous and cellular stimuli in an accurate spatio-temporal manner. Although the protein phosphorylation process between histidine kinase and response regulator has been well documented, the molecular mechanism fine-tuning phosphorylation levels of response regulators is comparatively less studied. Here we combined genetic and biochemical approaches to reveal that a hybrid histidine kinase, SreS, is involved in the SreKSreR phosphotransfer process to control salt stress response in the bacterium Xanthomonas campestris. The N-terminal receiver domain of SreS acts as a phosphate sink by competing with the response regulator SreR to accept the phosphoryl group from the latter's cognate histidine kinase SreK. This regulatory process is critical for bacterial survival because the dephosphorylated SreR protein participates in activating one of the tandem promoters (P2) at the 5′ end of the sreK-sreR-sreS-hppK operon, and then modulates a transcriptional surge of the stress-responsive gene hppK, which is required for folic acid synthesis. Therefore, our study dissects the biochemical process of a positive feedback loop in which a 'threecomponent' signalling system fine-tunes expression kinetics of downstream genes.
机译:在适应环境期间,细菌采用包含组氨酸激酶和响应调节剂的两组分信号转导系统,以准确的时空方式感应和响应外源和细胞刺激。尽管已经充分证明了组氨酸激酶和应答调节剂之间的蛋白质磷酸化过程,但对应答调节剂的磷酸化水平进行微调的分子机理研究相对较少。在这里,我们结合了遗传和生化方法,揭示了一种混合组氨酸激酶SreS参与了SreKSreR磷酸转移过程,从而控制了油菜黄单胞菌中的盐胁迫响应。 SreS的N末端受体结构域通过与反应调节剂SreR竞争以接受来自后者的同源组氨酸激酶SreK的磷酸基而充当磷酸沉。此调节过程对细菌存活至关重要,因为去磷酸化的SreR蛋白参与激活sreK-sreR-sreS-hppK操纵子5'端的串联启动子(P2)之一,然后调节应激-叶酸合成所需的响应基因hppK。因此,我们的研究剖析了正反馈回路的生化过程,其中“三成分”信号系统微调下游基因的表达动力学。

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