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Thermal energy requirement for strand separation during transcription initiation: the effect of supercoiling and extended protein DNA contacts.

机译:转录起始过程中链分离所需的热能:超螺旋和扩展的蛋白质DNA接触的影响。

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摘要

We have studied the role of extended protein DNA contacts and DNA topology on the ability of Escherichia coli RNA polymerase to form open complexes at several related promoters. The -35 region of several Escherichia coli promoters do not have homology with the consensus sequence, but still drive activator independent transcription initiation. This is due to the presence of a TG motif upstream from the -10 hexamer creating an 'extended -10' promoter. We have previously shown that two 'extended -10' promoters, galP1 and pBla, can form open complexes at lower temperatures than the galP1 derivative, galPcon6, which has a consensus -35 hexamer. Here we report further investigations into the mechanism of open complex formation by RNA polymerase, in particular the thermal energy requirement. A single base pair change in galPcon6 creating an 'extended -10' sequence, results in a 20 degrees C reduction in the temperature requirement for open complex formation. The DNA topology has also been shown to effect the thermal energy requirement for strand separation. Promoters carried on supercoiled plasmids form open complexes at lower temperatures than when present on linear DNA templates. We have also shown that in vivo, RNA polymerase can form open complexes at lower temperatures than those observed for linear templates in vitro, but requires slightly higher temperatures than supercoiled templates in vitro, however the promoter hierachy remains the same.
机译:我们已经研究了扩展的蛋白质DNA接触和DNA拓扑结构对大肠杆菌RNA聚合酶在几个相关启动子上形成开放复合物的能力的作用。几个大肠杆菌启动子的-35区与共有序列不具有同源性,但仍驱动活化子独立的转录起始。这是由于在-10六聚体上游存在TG基序,从而产生了“扩展-10”启动子。我们以前已经证明,与具有共有-35六聚体的galP1衍生物galPcon6相比,两个“扩展-10”启动子galP1和pBla可以在更低的温度下形成开放复合物。在这里,我们报告进一步研究RNA聚合酶形成开放复合物的机制,特别是热能需求。 galPcon6中单个碱基对的变化产生了“扩展的-10”序列,导致开放复合物形成所需的温度降低了20摄氏度。 DNA拓扑也已显示出影响链分离所需的热能。超螺旋质粒上携带的启动子在比线性DNA模板上更低的温度下形成开放复合物。我们还显示,在体外,RNA聚合酶可以在比体外线性模板所观察到的温度更低的温度下形成开放复合物,但在体外需要比超螺旋模板更高的温度,但是启动子的层次保持不变。

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