Variations in kinase and effector signaling logic in a bacterial two component signaling network.

IF 4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Danielle Swingle, Leah Epstein, Ramisha Aymon, Eta A Isiorho, Rinat R Abzalimov, Denize C Favaro, Kevin H Gardner
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Abstract

The general stress response (GSR) protects bacteria from a wide range of stressors. In Alphaproteobacteria, GSR activation is coordinated by HWE/HisKA2 family histidine kinases (HKs), which can exhibit noncanonical structure and function. For example, while most light-oxygen-voltage sensor-containing HKs are light-activated dimers, the Rubellimicrobium thermophilum RT-HK has inverted "dark on, light off" signaling logic with a tunable monomer/dimer equilibrium. Here, we further investigate these atypical behaviors of RT-HK and characterize its downstream signaling network. Using hydrogen-deuterium exchange mass spectrometry, we find that RT-HK uses a signal transduction mechanism similar to light-activated systems, despite its inverted logic. Mutagenesis reveals that RT-HK autophosphorylates in trans, with changes to the Jα helix linking sensor and kinase domains affecting autophosphorylation levels. Exploring downstream effects of RT-HK, we identified two GSR genetic regions, each encoding a copy of the central regulator PhyR. In vitro measurements of phosphotransfer from RT-HK to the two putative PhyRs revealed that RT-HK signals only to one and does so at an increased intensity in the dark, consistent with its reversed logic. X-ray crystal structures of both PhyRs revealed a substantial shift within the receiver domain of one, suggesting a basis for RT-HK specificity. We probed further down the pathway using nuclear magnetic resonance to determine that the single NepR homolog interacts with both unphosphorylated PhyRs, and this interaction is decoupled from activation in one PhyR. This work expands our understanding of HWE/HisKA2 family signal transduction, revealing marked variations from signaling mechanisms previously identified in other GSR networks.

细菌双组分信号网络中激酶和效应信号逻辑的变化。
一般应激反应(GSR)保护细菌免受各种应激源的影响。在Alphaproteobacteria中,GSR的激活是由HWE/HisKA2家族组氨酸激酶(HKs)协调的,它可以表现出非规范的结构和功能。例如,虽然大多数含光氧电压传感器的hk是光激活的二聚体,但Rubellimicrobium thermoophilum RT-HK具有可调单体/二聚体平衡的“暗开,暗关”信号逻辑。在这里,我们进一步研究了RT-HK的这些非典型行为,并表征了其下游信号网络。使用氢-氘交换质谱法,我们发现RT-HK使用类似于光激活系统的信号转导机制,尽管其逻辑倒置。突变表明,RT-HK在反式中发生自磷酸化,Jα螺旋连接传感器和激酶结构域的变化影响自磷酸化水平。为了探索RT-HK的下游效应,我们确定了两个GSR遗传区域,每个区域编码一个中央调控因子PhyR的拷贝。从RT-HK到两个假定的phyr的磷转移的体外测量显示,RT-HK只向一个信号,并且在黑暗中强度增加,与其相反的逻辑一致。两种phyr的x射线晶体结构显示其中一个受体域内发生了实质性的变化,这表明了RT-HK特异性的基础。我们利用核磁共振进一步探索了这一途径,以确定单个NepR同源物与两个未磷酸化的PhyR相互作用,并且这种相互作用与一个PhyR的激活解耦。这项工作扩展了我们对HWE/HisKA2家族信号转导的理解,揭示了之前在其他GSR网络中发现的信号机制的显著差异。
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来源期刊
Journal of Biological Chemistry
Journal of Biological Chemistry Biochemistry, Genetics and Molecular Biology-Biochemistry
自引率
4.20%
发文量
1233
期刊介绍: The Journal of Biological Chemistry welcomes high-quality science that seeks to elucidate the molecular and cellular basis of biological processes. Papers published in JBC can therefore fall under the umbrellas of not only biological chemistry, chemical biology, or biochemistry, but also allied disciplines such as biophysics, systems biology, RNA biology, immunology, microbiology, neurobiology, epigenetics, computational biology, ’omics, and many more. The outcome of our focus on papers that contribute novel and important mechanistic insights, rather than on a particular topic area, is that JBC is truly a melting pot for scientists across disciplines. In addition, JBC welcomes papers that describe methods that will help scientists push their biochemical inquiries forward and resources that will be of use to the research community.
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