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LICORN:从基因表达数据中学习协同调控网络。

LICORN: learning cooperative regulation networks from gene expression data.

作者信息

Elati Mohamed, Neuvial Pierre, Bolotin-Fukuhara Monique, Barillot Emmanuel, Radvanyi François, Rouveirol Céline

机构信息

LRI, CNRS UMR 8623, bât 490, Université Paris Sud, 91405 F-Orsay, France.

出版信息

Bioinformatics. 2007 Sep 15;23(18):2407-14. doi: 10.1093/bioinformatics/btm352. Epub 2007 Aug 24.

Abstract

MOTIVATION

One of the most challenging tasks in the post-genomic era is the reconstruction of transcriptional regulation networks. The goal is to identify, for each gene expressed in a particular cellular context, the regulators affecting its transcription, and the co-ordination of several regulators in specific types of regulation. DNA microarrays can be used to investigate relationships between regulators and their target genes, through simultaneous observations of their RNA levels.

RESULTS

We propose a data mining system for inferring transcriptional regulation relationships from RNA expression values. This system is particularly suitable for the detection of cooperative transcriptional regulation. We model regulatory relationships as labelled two-layer gene regulatory networks, and describe a method for the efficient learning of these bipartite networks from discretized expression data sets. We also evaluate the statistical significance of such inferred networks and validate our methods on two public yeast expression data sets.

AVAILABILITY

http://www.lri.fr/~elati/licorn.html.

SUPPLEMENTARY INFORMATION

Supplementary data are available at Bioinformatics online.

摘要

动机

后基因组时代最具挑战性的任务之一是转录调控网络的重建。目标是针对在特定细胞环境中表达的每个基因,确定影响其转录的调节因子,以及特定类型调节中多个调节因子的协调作用。DNA微阵列可通过同时观察调节因子及其靶基因的RNA水平,来研究它们之间的关系。

结果

我们提出了一种用于从RNA表达值推断转录调控关系的数据挖掘系统。该系统特别适用于协同转录调控的检测。我们将调控关系建模为带标签的两层基因调控网络,并描述了一种从离散化表达数据集中有效学习这些二分网络的方法。我们还评估了此类推断网络的统计显著性,并在两个公开的酵母表达数据集上验证了我们的方法。

可用性

http://www.lri.fr/~elati/licorn.html。

补充信息

补充数据可在《生物信息学》在线获取。

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