bioRxiv · 10.1101/2022.02.25.481925
Quantitative contribution of the spacer length in the supercoiling-sensitivity of bacterial promoters
Abstract
DNA supercoiling acts as a global transcriptional regulator in bacteria, but the promoter sequence or structural determinants controlling its effect remain unclear. It was previously proposed to modulate the torsional angle between the -10 and -35 hexamers, and thereby regulate the formation of the closed-complex depending on the length of the "spacer" between them. Here, we develop a ther-modynamic model of this notion based on DNA elasticity, providing quantitative and parameter-free predictions on the relative activation of promoters containing a short vs long spacer when the DNA supercoiling level is varied. The model is tested through an analysis of in vitro and in vivo expression assays of mutant promoters with variable spacer lengths, confirming its accuracy for spacers ranging from 15 to 19 nucleotides, except those of 16 nucleotides where other regulatory mechanisms likely overcome the effect of this specific step. An analysis at the whole-genome scale in E. coli then demonstrates a significant effect of the spacer length on the genomic expression after transient or inheritable superhelical variations, validating the models predictions. Altogether, this study shows that the torsional constraints associated to promoter binding by RNA Polymerase underpin a basal and global regulatory mechanism independent of specific transcription factors.
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Forquet, R., Nasser, W., Reverchon, S., Meyer, S.. 2022-02-28. Quantitative contribution of the spacer length in the supercoiling-sensitivity of bacterial promoters. https://doi.org/10.1101/2022.02.25.481925
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