Centre for Bacterial Cell Biology, Institute for Cell and Molecular Biosciences, Newcastle University, Newcastle upon Tyne, UK.
EMBO J. 2012 Feb 1;31(3):630-9. doi: 10.1038/emboj.2011.432. Epub 2011 Nov 29.
Pausing of transcription is an important step of regulation of gene expression in bacteria and eukaryotes. Here we uncover a factor-independent mechanism of transcription pausing, which is determined by the ability of the elongating RNA polymerase to recognize the sequence of the RNA-DNA hybrid. We show that, independently of thermodynamic stability of the elongation complex, RNA polymerase directly 'senses' the shape and/or identity of base pairs of the RNA-DNA hybrid. Recognition of the RNA-DNA hybrid sequence delays translocation by RNA polymerase, and thus slows down the nucleotide addition cycle through 'in pathway' mechanism. We show that this phenomenon is conserved among bacterial and eukaryotic RNA polymerases, and is involved in regulatory pauses, such as a pause regulating the production of virulence factors in some bacteria and a pause regulating transcription/replication of HIV-1. The results indicate that recognition of RNA-DNA hybrid sequence by multi-subunit RNA polymerases is involved in transcription regulation and may determine the overall rate of transcription elongation.
转录暂停是细菌和真核生物基因表达调控的一个重要步骤。在这里,我们揭示了一种不依赖于转录因子的转录暂停机制,该机制由延伸中的 RNA 聚合酶识别 RNA-DNA 杂交序列的能力决定。我们表明,无论延伸复合物的热力学稳定性如何,RNA 聚合酶都能直接“感知”RNA-DNA 杂交中碱基对的形状和/或身份。RNA-DNA 杂交序列的识别会延迟 RNA 聚合酶的易位,从而通过“在途径”机制减慢核苷酸添加循环。我们表明,这种现象在细菌和真核 RNA 聚合酶中是保守的,并且涉及到调节性暂停,例如调节某些细菌毒力因子产生的暂停和调节 HIV-1 转录/复制的暂停。这些结果表明,多亚基 RNA 聚合酶识别 RNA-DNA 杂交序列参与转录调控,并可能决定转录延伸的总体速率。