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Suppressor mutations reveal an NtrC-like response regulator NmpR for modulation of Type-IV Pili-dependent motility in Myxococcus xanthus

机译:抑制子突变揭示了一种类似NtrC的应答调节剂NmpR用于调节黄色粘球菌IV型菌毛依赖性运动。

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摘要

Two-component signaling systems (TCS) regulate bacterial responses to environmental signals through the process of protein phosphorylation. Specifically, sensor histidine kinases (SK) recognize signals and propagate the response via phosphorylation of a cognate response regulator (RR) that functions to initiate transcription of specific genes. Signaling within a single TCS is remarkably specific and cross-talk between TCS is limited. However, regulation of the flow of information through complex signaling networks that include closely related TCS remains largely unknown. Additionally, many bacteria utilize multi-component signaling networks which provide additional genetic and biochemical interactions that must be regulated for signaling fidelity, input and output specificity, and phosphorylation kinetics. Here we describe the characterization of an NtrC-like RR that participates in regulation of Type-IV pilus-dependent motility of Myxococcus xanthus and is thus named NmpR, NtrC Modulator of Pili Regulator. A complex multi-component signaling system including NmpR was revealed by suppressor mutations that restored motility to cells lacking PilR, an evolutionarily conserved RR required for expression of pilA encoding the major Type-IV pilus monomer found in many bacterial species. The system contains at least four signaling proteins: a SK with a protoglobin sensor domain (NmpU), a hybrid SK (NmpS), a phospho-sink protein (NmpT), and an NtrC-like RR (NmpR). We demonstrate that ΔpilR bypass suppressor mutations affect regulation of the NmpRSTU multi-component system, such that NmpR activation is capable of restoring expression of pilA in the absence of PilR. Our findings indicate that pilus gene expression in M. xanthus is regulated by an extended network of TCS which interact to refine control of pilus function.
机译:两成分信号系统(TCS)通过蛋白质磷酸化过程调节细菌对环境信号的反应。具体来说,传感器组氨酸激酶(SK)识别信号并通过关联反应调节剂(RR)的磷酸化来传播反应,该调节剂起着启动特定基因转录的作用。单个TCS中的信令非常特定,并且TCS之间的串扰受到限制。然而,通过包括紧密相关的TCS的复杂信令网络对信息流的调节仍然很大程度上未知。另外,许多细菌利用多组分信号传导网络,该网络提供了额外的遗传和生化相互作用,必须对这些相互作用进行调节,以传递信号保真度,输入和输出特异性以及磷酸化动力学。在这里,我们描述了一个NtrC样RR的特征,该RR参与了对X型葡萄球菌的IV型菌毛依赖性运动的调节,因此被称为NmpR,Pili调节剂的NtrC调节剂。抑制因子突变揭示了一个复杂的多组分信号系统,其中包括NmpR,可以恢复缺乏PilR的细胞的运动能力,PilR是表达在许多细菌物种中发现的编码主要IV型菌毛单体的pilA所需的进化保守的RR。该系统至少包含四个信号蛋白:带有原球蛋白传感器结构域(NmpU)的SK,杂合SK(NmpS),磷酸沉蛋白(NmpT)和类似NtrC的RR(NmpR)。我们证明ΔpilR旁路抑制突变影响NmpRSTU多组件系统的调节,这样NmpR激活能够在没有PilR的情况下恢复pilA的表达。我们的研究结果表明,黄花木霉菌中的菌毛基因表达受TCS扩展网络的调节,而TCS相互作用以细化菌毛功能。

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