Chen D, Bachellier S, Lilley D M
Cancer Research Campaign Nucleic Acid Structure Research Group, Department of Biochemistry, The University, Dundee DD1 4HN, United Kingdom.
J Biol Chem. 1998 Jan 2;273(1):653-9. doi: 10.1074/jbc.273.1.653.
The leu-500 promoter is inactivated by a mutation in the -10 region but can be activated in topA Escherichia coli and Salmonella strains. We have found that the tetA gene plays a vital role in the topA-dependent activation of a plasmid-borne leu-500 promoter. In previous studies, the leu-500 promoter and tetA gene have been arranged divergently. In this study we have reversed the polarity of the tetA gene, thus locating the leu-500 promoter at the 3' end of tetA. Despite being formally located in the downstream region of tetA, the leu-500 promoter is equally well activated in a topA strain in this environment, even though it is 1.6 kilobase pairs away from the promoter of the reversed tetA gene. Activation of the leu-500 promoter depends on transcription and translation of tetA but is largely insensitive to the function of other transcription units on the plasmid. These results require a change in viewpoint of the role of tetA, from local to global supercoiling. We conclude that transcription of the tetA gene is the main generator of transcription-induced supercoiling that activates the leu-500 promoter. Unbalanced relaxation of this supercoiling leads to a net increase in the negative linking difference of the plasmid globally, and there is a linear correlation between the change in global plasmid topology and the activation of the leu-500 promoter. Thus the leu-500 promoter appears to respond to the negative supercoiling of the plasmid overall.
leu - 500启动子因 - 10区域的突变而失活,但在topA大肠杆菌和沙门氏菌菌株中可被激活。我们发现tetA基因在质粒携带的leu - 500启动子的topA依赖性激活中起着至关重要的作用。在先前的研究中,leu - 500启动子和tetA基因呈反向排列。在本研究中,我们颠倒了tetA基因的极性,从而将leu - 500启动子定位在tetA的3'端。尽管从形式上看位于tetA的下游区域,但在这种环境下,leu - 500启动子在topA菌株中同样能被很好地激活,即便它与反向tetA基因的启动子相距1.6千碱基对。leu - 500启动子的激活依赖于tetA的转录和翻译,但在很大程度上对质粒上其他转录单元的功能不敏感。这些结果需要改变对tetA作用的看法,从局部超螺旋转变为全局超螺旋。我们得出结论,tetA基因的转录是激活leu - 500启动子的转录诱导超螺旋的主要产生者。这种超螺旋的不平衡松弛导致质粒全局负链差净增加,并且质粒全局拓扑结构的变化与leu - 500启动子的激活之间存在线性相关性。因此,leu - 500启动子似乎总体上对质粒的负超螺旋作出反应。