Inference of radio-responsive gene regulatory networks using the graphical lasso algorithm Journal Article


Authors: Oh, J. H.; Deasy, J. O.
Article Title: Inference of radio-responsive gene regulatory networks using the graphical lasso algorithm
Abstract: Background: Inference of gene regulatory networks (GRNs) from gene microarray expression data is of great interest and remains a challenging task in systems biology. Despite many efforts to develop efficient computational methods, the successful modeling of GRNs thus far has been quite limited. To tackle this problem, we propose a novel framework to reconstruct radio-responsive GRNs based on the graphical lasso algorithm. In our attempt to study radiosensitivity, we reviewed the literature and analyzed two publicly available gene microarray datasets. The graphical lasso algorithm was applied to expression measurements for genes commonly found to be significant in these different analyses. Results: Assuming that a protein-protein interaction network obtained from a reliable pathway database is a gold-standard network, a comparison between the networks estimated by the graphical lasso algorithm and the gold-standard network was performed. Statistically significant p-values were achieved when comparing the gold-standard network with networks estimated from one microarray dataset and when comparing the networks estimated from two microarray datasets. Conclusion: Our results show the potential to identify new interactions between genes that are not present in a curated database and GRNs using microarray datasets via the graphical lasso algorithm.
Keywords: apoptosis; c-myc; therapy; p53; expression; cells; dna-damage; ionizing-radiation; transcriptional responses
Journal Title: BMC Bioinformatics
Volume: 15
Issue: Suppl. 7
ISSN: 1471-2105
Publisher: Biomed Central Ltd  
Date Published: 2014-05-28
Start Page: S5
Language: English
ACCESSION: WOS:000337465800005
DOI: 10.1186/1471-2105-15-s7-s5
PROVIDER: wos
PMCID: PMC4110733
PUBMED: 25077716
Notes: Source: Wos
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  1. Jung Hun Oh
    187 Oh
  2. Joseph Owen Deasy
    524 Deasy