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自我调节基因的稳态表达

Steady-state expression of self-regulated genes.

作者信息

Fournier T, Gabriel J P, Mazza C, Pasquier J, Galbete J L, Mermod N

机构信息

Department of Mathematics, University of Fribourg, Chemin du Musée 23, CH-1700 Fribourg, Switzerland.

出版信息

Bioinformatics. 2007 Dec 1;23(23):3185-92. doi: 10.1093/bioinformatics/btm490. Epub 2007 Oct 12.

Abstract

MOTIVATION

Regulatory gene networks contain generic modules such as feedback loops that are essential for the regulation of many biological functions. The study of the stochastic mechanisms of gene regulation is instrumental for the understanding of how cells maintain their expression at levels commensurate with their biological role, as well as to engineer gene expression switches of appropriate behavior. The lack of precise knowledge on the steady-state distribution of gene expression requires the use of Gillespie algorithms and Monte-Carlo approximations.

METHODOLOGY

In this study, we provide new exact formulas and efficient numerical algorithms for computing/modeling the steady-state of a class of self-regulated genes, and we use it to model/compute the stochastic expression of a gene of interest in an engineered network introduced in mammalian cells. The behavior of the genetic network is then analyzed experimentally in living cells.

RESULTS

Stochastic models often reveal counter-intuitive experimental behaviors, and we find that this genetic architecture displays a unimodal behavior in mammalian cells, which was unexpected given its known bimodal response in unicellular organisms. We provide a molecular rationale for this behavior, and we implement it in the mathematical picture to explain the experimental results obtained from this network.

摘要

动机

调控基因网络包含诸如反馈回路等通用模块,这些模块对于许多生物学功能的调控至关重要。基因调控随机机制的研究有助于理解细胞如何将其表达维持在与其生物学作用相称的水平,以及构建具有适当行为的基因表达开关。由于缺乏关于基因表达稳态分布的精确知识,需要使用 Gillespie 算法和蒙特卡罗近似法。

方法

在本研究中,我们提供了用于计算/建模一类自我调控基因稳态的新精确公式和高效数值算法,并将其用于对引入哺乳动物细胞的工程网络中感兴趣基因的随机表达进行建模/计算。然后在活细胞中对遗传网络的行为进行实验分析。

结果

随机模型常常揭示出与直觉相悖的实验行为,我们发现这种遗传结构在哺乳动物细胞中呈现单峰行为,鉴于其在单细胞生物中已知的双峰响应,这是出乎意料的。我们为这种行为提供了分子原理,并将其纳入数学描述中以解释从该网络获得的实验结果。

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