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基因调控网络的概率表示

Probabilistic representation of gene regulatory networks.

作者信息

Mao Linyong, Resat Haluk

机构信息

Computational Biosciences Group, Pacific Northwest National Laboratory, PO Box 999, Mail Stop K1-92, Richland, WA 99352, USA.

出版信息

Bioinformatics. 2004 Sep 22;20(14):2258-69. doi: 10.1093/bioinformatics/bth236. Epub 2004 Apr 8.

Abstract

MOTIVATION

Recent experiments have established unambiguously that biological systems can have significant cell-to-cell variations in gene expression levels even in isogenic populations. Computational approaches to studying gene expression in cellular systems should capture such biological variations for a more realistic representation.

RESULTS

In this paper, we present a new fully probabilistic approach to the modeling of gene regulatory networks that allows for fluctuations in the gene expression levels. The new algorithm uses a very simple representation for the genes, and accounts for the repression or induction of the genes and for the biological variations among isogenic populations simultaneously. Because of its simplicity, introduced algorithm is a very promising approach to model large-scale gene regulatory networks. We have tested the new algorithm on the synthetic gene network library bioengineered recently. The good agreement between the computed and the experimental results for this library of networks, and additional tests, demonstrate that the new algorithm is robust and very successful in explaining the experimental data.

AVAILABILITY

The simulation software is available upon request.

SUPPLEMENTARY INFORMATION

Supplementary material will be made available on the OUP server.

摘要

动机

近期实验已明确证实,即使在同基因群体中,生物系统的基因表达水平在细胞间也可能存在显著差异。研究细胞系统中基因表达的计算方法应捕捉此类生物差异,以实现更真实的表征。

结果

在本文中,我们提出了一种全新的全概率方法来构建基因调控网络模型,该模型考虑了基因表达水平的波动。新算法对基因采用了非常简单的表示方式,同时兼顾了基因的抑制或诱导以及同基因群体中的生物差异。由于其简单性,该算法是构建大规模基因调控网络模型的一种非常有前景的方法。我们已在最近生物工程构建的合成基因网络库上对新算法进行了测试。该网络库的计算结果与实验结果之间的良好一致性以及其他测试表明,新算法在解释实验数据方面稳健且非常成功。

可用性

可根据要求提供模拟软件。

补充信息

补充材料将在牛津大学出版社服务器上提供。

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