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In vitro transcription of a torsionally constrained template

机译:受扭约束模板的体外转录

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摘要

RNA polymerase (RNAP) and the DNA template must rotate relative to each other during transcription elongation. In the cell, however, the components of the transcription apparatus may be subject to rotary constraints. For instance, the DNA is divided into topological domains that are delineated by rotary locked boundaries. Furthermore, RNAPs may be located in factories or attached to matrix sites limiting or prohibiting rotation. Indeed, the nascent RNA alone has been implicated in rotary constraining RNAP. Here we have investigated the consequences of rotary constrains during transcription of torsionally constrained DNA by free RNAP. We asked whether or not a newly synthesized RNA chain would limit transcription elongation. For this purpose we developed a method to immobilize covalently closed circular DNA to streptavidin-coated beads via a peptide nucleic acid (PNA)-biotin conjugate in principle mimicking a SAR/MAR attachment. We used this construct as a torsionally constrained template for transcription of the beta-lactamase gene by Escherichia coli RNAP and found that RNA synthesis displays similar characteristics in terms of rate of elongation whether or not the template is torsionally constrained. We conclude that transcription of a natural bacteria gene may proceed with high efficiency despite the fact that newly synthesized RNA is entangled around the template in the narrow confines of torsionally constrained supercolied DNA.
机译:RNA聚合酶(RNAP)和DNA模板必须在转录延伸过程中相对旋转。但是,在单元中,转录设备的组件可能会受到旋转约束。例如,DNA被分成由旋转锁定边界划定的拓扑结构域。此外,RNAP可能位于工厂中或附着在基质位点上,从而限制或禁止旋转。确实,仅新生的RNA已经牵涉到旋转约束RNAP中。在这里,我们研究了通过自由RNAP在扭转受约束的DNA转录过程中旋转约束的后果。我们询问了新合成的RNA链是否会限制转录延伸。为此目的,我们开发了一种方法,原理上是通过模拟SAR / MAR的附着,通过肽核酸(PNA)-生物素偶联物将共价闭合的环状DNA固定在链霉亲和素包被的磁珠上。我们将该构建体用作受扭转的模板,用于通过大肠杆菌RNAP转录β-内酰胺酶基因,并且发现无论模板是否受扭转,RNA合成均显示出相似的特征。我们得出结论,尽管事实上新合成的RNA被缠绕在扭转约束的超螺旋DNA的狭窄范围内的模板周围,但自然细菌基因的转录可能会高效进行。

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