Rampioni Giordano, Schuster Martin, Greenberg Everett Peter, Bertani Iris, Grasso Marco, Venturi Vittorio, Zennaro Elisabetta, Leoni Livia
Department of Biology, University Roma Tre, 00146, Rome, Italy.
Mol Microbiol. 2007 Dec;66(6):1557-65. doi: 10.1111/j.1365-2958.2007.06029.x.
The quorum sensing (QS) signalling system of Pseudomonas aeruginosa controls many important functions, including virulence. Although the production of the QS signal molecule N-3-oxo-dodecanoyl-homoserine lactone (3OC(12)-HSL) is positively autoregulated, its concentration reaches a steady level long before stationary phase. The RsaL protein represses transcription of the lasI signal synthase gene, and thus reduces QS signal production. We show that RsaL binds simultaneously with LasR to the rsaL-lasI bidirectional promoter thereby preventing the LasR-dependent activation of both genes. In an rsaL mutant, 3OC(12)-HSL production continues to increase throughout growth. Thus RsaL provides homeostasis by functioning in opposition to LasR and limiting 3OC(12)-HSL production to a physiological concentration. Furthermore, transcription profiling revealed that RsaL regulates 130 genes independent of its effect on QS signal molecule production, including genes involved in virulence. We show that RsaL can repress pyocyanin and hydrogen cyanide virulence genes in two ways: directly, by binding to their promoters, and indirectly, by decreasing levels of the signals for their QS signal-dependent transcription. These investigations highlight the importance of RsaL as a global regulator of P. aeruginosa physiology that provides a counterbalance to 3OC(12)-HSL-dependent gene activation via multiple mechanisms.
铜绿假单胞菌的群体感应(QS)信号系统控制着许多重要功能,包括毒力。尽管QS信号分子N-3-氧代十二烷酰高丝氨酸内酯(3OC(12)-HSL)的产生存在正自调控,但在稳定期之前很久其浓度就达到了稳定水平。RsaL蛋白抑制lasI信号合成酶基因的转录,从而减少QS信号的产生。我们发现,RsaL与LasR同时结合到rsaL-lasI双向启动子上,从而阻止LasR对这两个基因的依赖性激活。在rsaL突变体中,3OC(12)-HSL的产生在整个生长过程中持续增加。因此,RsaL通过与LasR拮抗发挥作用,并将3OC(12)-HSL的产生限制在生理浓度,从而实现稳态。此外,转录谱分析表明,RsaL独立于其对QS信号分子产生的影响来调控130个基因,包括参与毒力的基因。我们发现,RsaL可以通过两种方式抑制绿脓菌素和氰化氢毒力基因:直接结合其启动子,以及间接降低其QS信号依赖性转录的信号水平。这些研究突出了RsaL作为铜绿假单胞菌生理学全局调节因子的重要性,它通过多种机制为3OC(12)-HSL依赖性基因激活提供了一种平衡。