Adar Y Y, Simaan M, Ulitzur S
Department of Food Engineering and Biotechnology, Technion-Israel Institute of Technology, Haifa.
J Bacteriol. 1992 Nov;174(22):7138-43. doi: 10.1128/jb.174.22.7138-7143.1992.
The transcription of the luminescence (lux) system of Vibrio fischeri is regulated by the LuxR protein and an autoinducer. We previously showed that apart from these regulatory elements, the transcription of the lux system is negatively controlled by the LexA protein and positively controlled by the HtpR protein (sigma 32). This study was conducted in order to elucidate the mode of action of the HtpR protein. Using luxR-lacZ fused genes, we showed that the HtpR protein is essential for the maximum expression of beta-galactosidase activity in Escherichia coli lac mutant cells. Using this construct, we also demonstrated that luxR is preferentially expressed toward the end of the logarithmic phase of growth. Starvation and addition of ethanol significantly advanced the appearance of beta-galactosidase activity in htpR+ cells. The luminescence system of E. coli htpR+ cells harboring the pChv1 plasmid with a deletion in the luxI gene is induced in the presence of low and constant concentrations (150 pg/ml) of the inducer only at a late stage of the logarithmic phase of growth. When the cellular LuxR content is reduced, following 23 generations of exponential growth in Luria broth, a mid-log-phase culture does not respond to the inducer (150 pg/ml). On the basis of the above observations we suggest that the HtpR protein controls the formation of V. fischeri LuxR protein. Preliminary findings indicate that the HtpR protein acts through the chaperonins GroESL. E. coli htpR/pChv1 cells retained their full level of in vivo and in vitro luciferase activities in the presence of multiple copies of groESL genes. The possibility that GroESL proteins stabilize the native form of LuxR protein is discussed.
费氏弧菌发光(lux)系统的转录受LuxR蛋白和一种自诱导物调控。我们之前表明,除了这些调控元件外,lux系统的转录还受到LexA蛋白的负调控和HtpR蛋白(σ32)的正调控。进行本研究是为了阐明HtpR蛋白的作用方式。利用luxR - lacZ融合基因,我们发现HtpR蛋白对于大肠杆菌lac突变细胞中β - 半乳糖苷酶活性的最大表达至关重要。利用该构建体,我们还证明luxR在生长对数期接近尾声时优先表达。饥饿和添加乙醇显著提前了htpR⁺细胞中β - 半乳糖苷酶活性的出现。携带在luxI基因中有缺失的pChv1质粒的大肠杆菌htpR⁺细胞的发光系统仅在生长对数期后期,在低且恒定浓度(150 pg/ml)的诱导物存在下被诱导。当细胞内LuxR含量降低时,在Luria肉汤中经过23代指数生长后,对数中期培养物对诱导物(150 pg/ml)无反应。基于上述观察结果,我们认为HtpR蛋白控制费氏弧菌LuxR蛋白的形成。初步研究结果表明,HtpR蛋白通过伴侣蛋白GroESL发挥作用。在存在多个groESL基因拷贝的情况下,大肠杆菌htpR/pChv1细胞在体内和体外均保持其完整水平的荧光素酶活性。文中讨论了GroESL蛋白稳定LuxR蛋白天然形式的可能性。