Ryan Robert P, Fouhy Yvonne, Lucey Jean F, Crossman Lisa C, Spiro Stephen, He Ya-Wen, Zhang Lian-Hui, Heeb Stephan, Cámara Miguel, Williams Paul, Dow J Maxwell
BIOMERIT Research Centre, Department of Microbiology, BioSciences Institute, National University of Ireland, Cork, Ireland.
Proc Natl Acad Sci U S A. 2006 Apr 25;103(17):6712-7. doi: 10.1073/pnas.0600345103. Epub 2006 Apr 12.
HD-GYP is a protein domain of unknown biochemical function implicated in bacterial signaling and regulation. In the plant pathogen Xanthomonas campestris pv. campestris, the synthesis of virulence factors and dispersal of biofilms are positively controlled by a two-component signal transduction system comprising the HD-GYP domain regulatory protein RpfG and cognate sensor RpfC and by cell-cell signaling mediated by the diffusible signal molecule DSF (diffusible signal factor). The RpfG/RpfC two-component system has been implicated in DSF perception and signal transduction. Here we show that the role of RpfG is to degrade the unusual nucleotide cyclic di-GMP, an activity associated with the HD-GYP domain. Mutation of the conserved H and D residues of the isolated HD-GYP domain resulted in loss of both the enzymatic activity against cyclic di-GMP and the regulatory activity in virulence factor synthesis. Two other protein domains, GGDEF and EAL, are already implicated in the synthesis and degradation respectively of cyclic di-GMP. As with GGDEF and EAL domains, the HD-GYP domain is widely distributed in free-living bacteria and occurs in plant and animal pathogens, as well as beneficial symbionts and organisms associated with a range of environmental niches. Identification of the role of the HD-GYP domain thus increases our understanding of a signaling network whose importance to the lifestyle of diverse bacteria is now emerging.
HD-GYP是一种生化功能未知的蛋白质结构域,与细菌信号传导和调控有关。在植物病原菌野油菜黄单胞菌野油菜致病变种中,毒力因子的合成和生物膜的扩散受到一个双组分信号转导系统的正向调控,该系统由HD-GYP结构域调节蛋白RpfG和同源传感器RpfC组成,同时也受到由可扩散信号分子DSF(可扩散信号因子)介导的细胞间信号传导的调控。RpfG/RpfC双组分系统与DSF感知和信号转导有关。在此,我们表明RpfG的作用是降解异常核苷酸环二鸟苷酸,这一活性与HD-GYP结构域相关。分离出的HD-GYP结构域中保守的H和D残基发生突变,导致对环二鸟苷酸的酶活性以及在毒力因子合成中的调节活性丧失。另外两个蛋白质结构域GGDEF和EAL已分别与环二鸟苷酸的合成和降解有关。与GGDEF和EAL结构域一样,HD-GYP结构域广泛分布于自由生活的细菌中,存在于植物和动物病原菌以及有益共生体和与一系列环境生态位相关的生物体中。因此,对HD-GYP结构域作用的鉴定增进了我们对一个信号网络的理解,该信号网络对多种细菌生存方式的重要性正在显现。