Ishige K, Nagasawa S, Tokishita S, Mizuno T
Laboratory of Molecular Microbiology, School of Agriculture, Nagoya University, Japan.
EMBO J. 1994 Nov 1;13(21):5195-202. doi: 10.1002/j.1460-2075.1994.tb06850.x.
The osmoregulatory expression of ompC and ompF in Escherichia coli is mediated by a pair of bacterial signal transduction proteins, EnvZ (sensory kinase) and OmpR (response regulator). We isolated previously multicopy suppressors which can complement a defect in the phosphotransfer signal transduction caused by an envZ deletion mutation. Among such suppressors, arcB and barA are of particular interest because these gene products are unique in the sense that they contain both an autophosphorylated histidine site (or transmitter module) and a phospho-accepting aspartate site (or receiver module) in their primary amino acid sequences. Here we report that ArcB and BarA possess in the C-terminal region a phosphorylated histidine site which has never been noticed, in addition to the authentic one identified previously. This newly identified histidine in ArcB and BarA was demonstrated to play a crucial role in the observed multicopy suppression. Furthermore, it was demonstrated in vivo and in vitro for ArcB that the C-terminal domain containing the histidine can function as an alternative phosphodonor (or transmitter). This novel type of sensory kinase was therefore revealed to contain two independent phosphodonor sites, together with a phospho-accepting site. These findings suggest that this unique feature of ArcB and BarA, in terms of the signaling modules, make it possible for these sensory kinases to function as dual-signaling transducers.
大肠杆菌中ompC和ompF的渗透调节表达由一对细菌信号转导蛋白EnvZ(传感激酶)和OmpR(应答调节因子)介导。我们之前分离出了多拷贝抑制子,它们可以弥补由envZ缺失突变导致的磷酸转移信号转导缺陷。在这些抑制子中,arcB和barA特别引人关注,因为这些基因产物在其一级氨基酸序列中既含有一个自磷酸化组氨酸位点(或传递模块)又含有一个磷酸接受天冬氨酸位点(或接收模块),这一点很独特。在此我们报告,除了之前鉴定出的正宗位点外,ArcB和BarA在C末端区域还拥有一个从未被注意到的磷酸化组氨酸位点。ArcB和BarA中这个新鉴定出的组氨酸在观察到的多拷贝抑制中起着关键作用。此外,体内和体外实验均表明,含有该组氨酸的ArcB的C末端结构域可作为替代磷酸供体(或传递体)发挥作用。因此,这种新型传感激酶被揭示含有两个独立的磷酸供体位点以及一个磷酸接受位点。这些发现表明,就信号模块而言,ArcB和BarA的这一独特特征使得这些传感激酶能够作为双信号转导器发挥作用。