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酵母中单基因分析表明转录的非平衡调控动力学。

Single gene analysis in yeast suggests nonequilibrium regulatory dynamics for transcription.

机构信息

Department of Molecular Cell and Developmental Biology, University of California, Santa Cruz, CA, USA.

Department of Electrical and Computer Engineering, University of California, Santa Cruz, CA, USA.

出版信息

Nat Commun. 2024 Jul 23;15(1):6226. doi: 10.1038/s41467-024-50419-5.

Abstract

Fluctuations in the initiation rate of transcription, the first step in gene expression, ensue from the stochastic behavior of the molecular process that controls transcription. In steady state, the regulatory process is often assumed to operate reversibly, i.e., in equilibrium. However, reversibility imposes fundamental limits to information processing. For instance, the assumption of equilibrium is difficult to square with the precision with which the regulatory process executes its task in eukaryotes. Here we provide evidence - from microscopic analyses of the transcription dynamics at a single gene copy of yeast - that the regulatory process for transcription is cyclic and irreversible (out of equilibrium). The necessary coupling to reservoirs of free energy occurs via sequence-specific transcriptional activators and the recruitment, in part, of ATP-dependent chromatin remodelers. Our findings may help explain how eukaryotic cells reconcile the dual but opposing requirements for fast regulatory kinetics and high regulatory specificity.

摘要

转录起始速率的波动是基因表达的第一步,源于控制转录的分子过程的随机行为。在稳态下,调控过程通常被假设为可逆的,即在平衡状态下。然而,可逆性对信息处理施加了基本限制。例如,平衡的假设很难与调控过程在真核生物中执行任务的精度相一致。在这里,我们从酵母单个基因拷贝的转录动力学的微观分析中提供证据,表明转录的调控过程是循环的和不可逆的(非平衡状态)。通过序列特异性转录激活因子和部分募集 ATP 依赖性染色质重塑因子与自由能库的必要耦合来实现。我们的发现可能有助于解释真核细胞如何协调快速调控动力学和高调控特异性这两个相互矛盾的要求。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/99d9/11266658/bb3e7a7d87a8/41467_2024_50419_Fig1_HTML.jpg

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