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通过DNA超螺旋在体内评估基因环境对转录的影响。

Assessing in vivo the impact of gene context on transcription through DNA supercoiling.

作者信息

Boulas Ihab, Bruno Lisa, Rimsky Sylvie, Espeli Olivier, Junier Ivan, Rivoire Olivier

机构信息

Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS, INSERM, Université PSL, Paris, France.

Univ. Grenoble Alpes, CNRS, UMR 5525, VetAgro Sup, Grenoble INP, TIMC, 38000 Grenoble, France.

出版信息

Nucleic Acids Res. 2023 Oct 13;51(18):9509-9521. doi: 10.1093/nar/gkad688.

Abstract

Gene context can have significant impact on gene expression but is currently not integrated in quantitative models of gene regulation despite known biophysical principles and quantitative in vitro measurements. Conceptually, the simplest gene context consists of a single gene framed by two topological barriers, known as the twin transcriptional-loop model, which illustrates the interplay between transcription and DNA supercoiling. In vivo, DNA supercoiling is additionally modulated by topoisomerases, whose modus operandi remains to be quantified. Here, we bridge the gap between theory and in vivo properties by realizing in Escherichia coli the twin transcriptional-loop model and by measuring how gene expression varies with promoters and distances to the topological barriers. We find that gene expression depends on the distance to the upstream barrier but not to the downstream barrier, with a promoter-dependent intensity. We rationalize these findings with a first-principle biophysical model of DNA transcription. Our results are explained if TopoI and gyrase both act specifically, respectively upstream and downstream of the gene, with antagonistic effects of TopoI, which can repress initiation while facilitating elongation. Altogether, our work sets the foundations for a systematic and quantitative description of the impact of gene context on gene regulation.

摘要

基因环境可对基因表达产生重大影响,但尽管存在已知的生物物理原理和定量体外测量结果,目前基因环境尚未整合到基因调控的定量模型中。从概念上讲,最简单的基因环境由单个基因构成,两侧由两个拓扑屏障界定,即所谓的双转录环模型,该模型阐释了转录与DNA超螺旋之间的相互作用。在体内,DNA超螺旋还受到拓扑异构酶的调控,但其作用方式仍有待量化。在此,我们通过在大肠杆菌中实现双转录环模型,并测量基因表达如何随启动子以及与拓扑屏障的距离而变化,弥合了理论与体内特性之间的差距。我们发现,基因表达取决于与上游屏障的距离,而与下游屏障的距离无关,且具有启动子依赖性强度。我们用DNA转录的第一性原理生物物理模型对这些发现进行了合理解释。如果拓扑异构酶I(TopoI)和促旋酶分别在基因的上游和下游特异性发挥作用,且拓扑异构酶I具有拮抗作用,即既能抑制起始又能促进延伸,那么我们的结果就能得到解释。总之,我们的工作为系统、定量描述基因环境对基因调控的影响奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a4b4/10570042/402723dbbbb5/gkad688figgra1.jpg

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