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超螺旋介导的反馈可快速耦联和调节转录。

Supercoiling-mediated feedback rapidly couples and tunes transcription.

机构信息

Department of Chemical Engineering, MIT, 25 Ames St., Cambridge, MA 02139, USA.

Department of Chemical Engineering, MIT, 25 Ames St., Cambridge, MA 02139, USA.

出版信息

Cell Rep. 2022 Oct 18;41(3):111492. doi: 10.1016/j.celrep.2022.111492.

Abstract

Transcription induces a wave of DNA supercoiling, altering the binding affinity of RNA polymerases and reshaping the biochemical landscape of gene regulation. As supercoiling rapidly diffuses, transcription dynamically reshapes the regulation of proximal genes, forming a complex feedback loop. However, a theoretical framework is needed to integrate biophysical regulation with biochemical transcriptional regulation. To investigate the role of supercoiling-mediated feedback within multi-gene systems, we model transcriptional regulation under the influence of supercoiling-mediated polymerase dynamics, allowing us to identify patterns of expression that result from physical inter-gene coupling. We find that gene syntax-the relative ordering and orientation of genes-defines the expression profiles, variance, burst dynamics, and inter-gene correlation of two-gene systems. Furthermore, supercoiling can enhance or weaken biochemical regulation. Our results suggest that supercoiling couples behavior between neighboring genes, providing a regulatory mechanism that tunes transcriptional variance in engineered gene networks and explains the behavior of co-localized native circuits.

摘要

转录引发了一波 DNA 超螺旋,改变了 RNA 聚合酶的结合亲和力,并重塑了基因调控的生化景观。随着超螺旋的迅速扩散,转录动态地重塑了邻近基因的调控,形成了一个复杂的反馈回路。然而,需要一个理论框架来整合生物物理调节和生化转录调节。为了研究超螺旋介导的反馈在多基因系统中的作用,我们在超螺旋介导的聚合酶动力学的影响下对转录调控进行建模,使我们能够识别出由物理基因间耦合产生的表达模式。我们发现,基因语法——基因的相对顺序和取向——定义了两个基因系统的表达谱、方差、爆发动力学和基因间相关性。此外,超螺旋可以增强或减弱生化调节。我们的结果表明,超螺旋耦合了相邻基因之间的行为,提供了一种调节机制,可以调节工程基因网络中的转录方差,并解释了本地化的天然电路的行为。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0466/9624111/804148e96300/nihms-1843689-f0002.jpg

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