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一类调控基因网络的随机模型与数值算法

Stochastic models and numerical algorithms for a class of regulatory gene networks.

作者信息

Fournier Thomas, Gabriel Jean-Pierre, Pasquier Jerôme, Mazza Christian, Galbete José, Mermod Nicolas

机构信息

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

出版信息

Bull Math Biol. 2009 Aug;71(6):1394-431. doi: 10.1007/s11538-009-9407-9. Epub 2009 Apr 22.

Abstract

Regulatory gene networks contain generic modules, like those involving feedback loops, which are essential for the regulation of many biological functions (Guido et al. in Nature 439:856-860, 2006). We consider a class of self-regulated genes which are the building blocks of many regulatory gene networks, and study the steady-state distribution of the associated Gillespie algorithm by providing efficient numerical algorithms. We also study a regulatory gene network of interest in gene therapy, using mean-field models with time delays. Convergence of the related time-nonhomogeneous Markov chain is established for a class of linear catalytic networks with feedback loops.

摘要

调控基因网络包含一些通用模块,比如那些涉及反馈回路的模块,它们对于许多生物学功能的调控至关重要(圭多等人,《自然》439:856 - 860,2006年)。我们考虑一类自我调控基因,它们是许多调控基因网络的构建单元,并通过提供高效的数值算法来研究相关 Gillespie 算法的稳态分布。我们还使用具有时间延迟的平均场模型来研究基因治疗中感兴趣的一个调控基因网络。对于一类具有反馈回路的线性催化网络,建立了相关的时间非齐次马尔可夫链的收敛性。

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