Burrows Patricia C, Wigneshweraraj Siva R, Buck Martin
Division of Biology, Faculty of Natural Sciences, Sir Alexander Fleming Building, Imperial College London, London SW7 2AZ, UK.
J Mol Biol. 2008 Jan 4;375(1):43-58. doi: 10.1016/j.jmb.2007.10.045. Epub 2007 Oct 23.
Transcriptional control at the promoter melting step is not yet well understood. In this study, a site-directed photo-cross-linking method was used to systematically analyse component protein-DNA interactions that govern promoter melting by the enhancer-dependent Escherichia coli RNA polymerase (RNAP) containing the sigma(54) promoter specificity factor (E sigma(54)) at a single base pair resolution in three functional states. The sigma(54)-factor imposes tight control upon the RNAP by creating a regulatory switch where promoter melting nucleates, approximately 12 bp upstream of the transcription start site. Promoter melting by E sigma(54) is only triggered upon remodelling of this regulatory switch by a specialised activator protein in an ATP-hydrolysing reaction. We demonstrate that prior to DNA melting, only the sigma(54)-factor directly interacts with the promoter in the regulatory switch within the initial closed E sigma(54)-promoter complex and one intermediate E sigma(54)-promoter complex. We establish that activator-induced conformational rearrangements in the regulatory switch are a prerequisite to allow the promoter to enter the catalytic cleft of the RNAP and hence establish the transcriptionally competent open complex, where full promoter melting occurs. These results significantly advance our current understanding of the structural transitions occurring at bacterial promoters, where regulation occurs at the DNA melting step.
目前对启动子解链步骤的转录调控尚未完全理解。在本研究中,我们使用了一种定点光交联方法,以单碱基对分辨率系统分析了在三种功能状态下,由含有σ⁵⁴启动子特异性因子(Eσ⁵⁴)的增强子依赖性大肠杆菌RNA聚合酶(RNAP)控制启动子解链的组成性蛋白质-DNA相互作用。σ⁵⁴因子通过在转录起始位点上游约12 bp处创建一个启动子解链成核的调控开关,对RNAP施加严格控制。Eσ⁵⁴介导的启动子解链仅在ATP水解反应中由专门的激活蛋白重塑此调控开关后才会触发。我们证明,在DNA解链之前,只有σ⁵⁴因子在初始封闭的Eσ⁵⁴-启动子复合物和一种中间Eσ⁵⁴-启动子复合物中的调控开关内直接与启动子相互作用。我们确定,激活剂诱导的调控开关构象重排是启动子进入RNAP催化裂隙并因此形成转录活性开放复合物(发生完全启动子解链)的先决条件。这些结果显著推进了我们目前对细菌启动子结构转变的理解,其中调控发生在DNA解链步骤。