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Applied force reveals mechanistic and energetic details of transcription termination

机译:外加力揭示了转录终止的机制和能量细节

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Transcription termination by bacterial RNA polymerase (RNAP) occurs at sequences coding for a GC-rich RNA hairpin followed by a U-rich tract. We used single-molecule techniques to investigate the mechanism by which three representative terminators (his, t500, and tR2) destabilize the elongation complex (EC). For his and tR2 terminators, loads exerted to bias translocation did not affect termination efficiency (TE). However, the force-dependent kinetics of release and the force-dependent TE of a mutant imply a forward translocation mechanism for the t500 terminator. Tension on isolated U-tracts induced transcript release in a manner consistent with RNA: DNA hybrid shearing. We deduce that different mechanisms, involving hypertranslocation or shearing, operate at terminators with different U-tracts. Tension applied to RNA at terminators suggests that closure of the final 2-3 hairpin bases destabilizes the hybrid and that competing RNA structures modulate TE. We propose a quantitative, energetic model that predicts the behavior for these terminators and mutant variants.
机译:细菌RNA聚合酶(RNAP)终止的转录发生在编码富含GC的RNA发夹和随后富含U的序列的序列上。我们使用单分子技术研究了三种代表性终止子(his,t500和tR2)使延伸复合物(EC)不稳定的机制。对于他的和tR2终止子,施加给偏置易位的负载不会影响终止效率(TE)。但是,突变体的释放依赖于动力的动力学和突变体的依赖于动力的TE暗示了t500终止子的正向转运机制。分离的U线上的张力以与RNA一致的方式诱导转录释放:DNA杂交剪切。我们推断,涉及超移位或剪切的不同机制在具有不同U形的终止子上起作用。在终止子处施加于RNA的张力表明,最后2-3个发夹碱基的闭合破坏了杂种的稳定性,竞争性RNA结构调节了TE。我们提出了一个定量的,充满活力的模型,该模型可以预测这些终止子和突变体变体的行为。

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