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双组分调节因子GacS和GacA影响荧光假单胞菌Pf-5中稳定期σ因子σS的积累及应激反应。

The two-component regulators GacS and GacA influence accumulation of the stationary-phase sigma factor sigmaS and the stress response in Pseudomonas fluorescens Pf-5.

作者信息

Whistler C A, Corbell N A, Sarniguet A, Ream W, Loper J E

机构信息

Molecular and Cellular Biology Program, Oregon State University, Corvallis, Oregon 97331, USA.

出版信息

J Bacteriol. 1998 Dec;180(24):6635-41. doi: 10.1128/JB.180.24.6635-6641.1998.

Abstract

Three global regulators are known to control antibiotic production by Pseudomonas fluorescens. A two-component regulatory system comprised of the sensor kinase GacS (previously called ApdA or LemA) and GacA, a member of the FixJ family of response regulators, is required for antibiotic production. A mutation in rpoS, which encodes the stationary-phase sigma factor sigmaS, differentially affects antibiotic production and reduces the capacity of stationary-phase cells of P. fluorescens to survive exposure to oxidative stress. The gacA gene of P. fluorescens Pf-5 was isolated, and the influence of gacS and gacA on rpoS transcription, sigmaS levels, and oxidative stress response of Pf-5 was determined. We selected a gacA mutant of Pf-5 that contained a single nucleotide substitution within a predicted alpha-helical region, which is highly conserved among the FixJ family of response regulators. At the entrance to stationary phase, sigmaS content in gacS and gacA mutants of Pf-5 was less than 20% of the wild-type level. Transcription of rpoS, assessed with an rpoS-lacZ transcriptional fusion, was positively influenced by GacS and GacA, an effect that was most evident at the transition between exponential growth and stationary phase. Mutations in gacS and gacA compromised the capacity of stationary-phase cells of Pf-5 to survive exposure to oxidative stress. The results of this study provide evidence for the predominant roles of GacS and GacA in the regulatory cascade controlling stress response and antifungal metabolite production in P. fluorescens.

摘要

已知有三种全局调节因子控制荧光假单胞菌的抗生素生产。一种由传感激酶GacS(以前称为ApdA或LemA)和GacA组成的双组分调节系统是抗生素生产所必需的,GacA是应答调节因子FixJ家族的成员。rpoS基因发生突变,该基因编码稳定期σ因子σS,会对抗生素生产产生不同影响,并降低荧光假单胞菌稳定期细胞在暴露于氧化应激时的存活能力。分离出荧光假单胞菌Pf-5的gacA基因,并确定了gacS和gacA对Pf-5的rpoS转录、σS水平和氧化应激反应的影响。我们选择了Pf-5的一个gacA突变体,该突变体在预测的α螺旋区域内有一个单核苷酸取代,该区域在应答调节因子FixJ家族中高度保守。在稳定期开始时,Pf-5的gacS和gacA突变体中的σS含量不到野生型水平的20%。用rpoS-lacZ转录融合评估的rpoS转录受到GacS和GacA的正向影响,这种影响在指数生长期和稳定期之间的转变时最为明显。gacS和gacA中的突变损害了Pf-5稳定期细胞在暴露于氧化应激时的存活能力。本研究结果为GacS和GacA在控制荧光假单胞菌应激反应和抗真菌代谢物生产的调节级联中的主要作用提供了证据。

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