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  6. Reconstructing Generalized Logical Networks of Transcriptional Regulation in Mouse Brain from Temporal Gene Expression Data
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Reconstructing Generalized Logical Networks of Transcriptional Regulation in Mouse Brain from Temporal Gene Expression Data

Date Issued
January 27, 2009
Author(s)
Song, Mingzhou (Joe)
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/17137
Abstract

Gene expression time course data can be used not only to detect differentially expressed genes but also to find temporal associations among genes. The prsoblem of reconstructing generalized logical networks to account for temporal dependencies among genes and environmental stimuli from transcriptomic data is addressed. A network reconstruction algorithm was developed that uses statistical significance as a criterion for network selection to avoid false-positive interactions arising from pure chance. The multinomial hypothesis testing-based network reconstruction allows for explicit specification of the false-positive rate, unique from all extant network inference algorithms. The method is superior to dynamic Bayesian network modeling in a simulation study. Temporal gene expression data from the brains of alcohol-treated mice in an analysis of the molecular response to alcohol are used for modeling. Genes from major neuronal pathways are identified as putative components of the alcohol response mechanism. Nine of these genes have associations with alcohol reported in literature. Several other potentially relevant genes, compatible with independent results from literature mining, may play a role in the response to alcohol. Additional, previously unknown gene interactions were discovered that, subject to biological verification, may offer new clues in the search for the elusive molecular mechanisms of alcoholism.

Disciplines
Bioinformatics
Recommended Citation
EURASIP Journal on Bioinformatics and Systems Biology 2009, 2009:545176 doi:10.1155/2009/545176
Submission Type
Publisher's Version
Embargo Date
July 10, 2013
File(s)
Thumbnail Image
Name

Song2009_Article_ReconstructingGeneralizedLogic.pdf

Size

826.03 KB

Format

Adobe PDF

Checksum (MD5)

10036df736732e6e90f07bd4b4b346c4


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