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非重叠串联形式的合成启动子中的转录衰减。

Transcription Attenuation in Synthetic Promoters in Nonoverlapping Tandem Formation.

机构信息

Faculty of Medicine and Health Technology, Tampere University, 33520 Tampere, Finland.

Department of Cell and Molecular Biology (ICM), Uppsala University, 751 24 Uppsala, Sweden.

出版信息

Biochemistry. 2024 Aug 20;63(16):2009-2022. doi: 10.1021/acs.biochem.4c00012. Epub 2024 Jul 12.

Abstract

Closely spaced promoters are ubiquitous in prokaryotic and eukaryotic genomes. How their structure and dynamics relate remains unclear, particularly for tandem formations. To study their transcriptional interference, we engineered two pairs and one trio of synthetic promoters in nonoverlapping, tandem formation, in single-copy plasmids transformed into cells. From in vivo measurements, we found that these promoters in tandem formation can have attenuated transcription rates. The attenuation strength can be widely fine-tuned by the promoters' positioning, natural regulatory mechanisms, and other factors, including the antibiotic rifampicin, which is known to hamper RNAP promoter escape. From this, and supported by in silico models, we concluded that the attenuation in these constructs emerges from premature terminations generated by collisions between RNAPs elongating from upstream promoters and RNAPs occupying downstream promoters. Moreover, we found that these collisions can cause one or both RNAPs to falloff. Finally, the broad spectrum of possible, externally regulated, attenuation strengths observed in our synthetic tandem promoters suggests that they could become useful as externally controllable regulators of future synthetic circuits.

摘要

紧密排列的启动子在原核生物和真核生物基因组中普遍存在。它们的结构和动态如何相关仍然不清楚,特别是对于串联形成。为了研究它们的转录干扰,我们在非重叠的串联形式中设计了两对和一对合成启动子,这些启动子以单拷贝质粒的形式转化为 细胞。通过体内测量,我们发现这些串联形成的启动子的转录速率可能会减弱。通过启动子的定位、自然调节机制和其他因素(包括已知会阻碍 RNAP 启动子逃逸的抗生素利福平),可以广泛地微调衰减强度。由此,并得到计算机模型的支持,我们得出结论,这些构建体中的衰减是由从上游启动子延伸的 RNAP 与占据下游启动子的 RNAP 之间的碰撞产生的过早终止引起的。此外,我们发现这些碰撞会导致一个或两个 RNAP 脱落。最后,我们在合成串联启动子中观察到的广泛的可能的、外部调节的衰减强度表明,它们可以成为未来合成电路的有用的外部可控调节剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4ceb/11339919/82e68be6c4a2/bi4c00012_0001.jpg

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