2009
DOI: 10.1371/journal.pcbi.1000350
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Information Flow Analysis of Interactome Networks

Abstract: Recent studies of cellular networks have revealed modular organizations of genes and proteins. For example, in interactome networks, a module refers to a group of interacting proteins that form molecular complexes and/or biochemical pathways and together mediate a biological process. However, it is still poorly understood how biological information is transmitted between different modules. We have developed information flow analysis, a new computational approach that identifies proteins central to the transmis… Show more

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Cited by 166 publications
(150 citation statements)
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“…'interactomics', thus represents one of the important directions of functional proteomics and it could provide novel insight into microbial cellular metabolism (Singh & Nagaraj, 2006). In addition, the interaction between proteins and DNA is crucial for regulating gene expression and thus key to cellular regulatory networks (Missiuro et al, 2009). The interactome of cells can generally be obtained by three approaches.…”
Section: Interactomicsmentioning
confidence: 99%
“…'interactomics', thus represents one of the important directions of functional proteomics and it could provide novel insight into microbial cellular metabolism (Singh & Nagaraj, 2006). In addition, the interaction between proteins and DNA is crucial for regulating gene expression and thus key to cellular regulatory networks (Missiuro et al, 2009). The interactome of cells can generally be obtained by three approaches.…”
Section: Interactomicsmentioning
confidence: 99%
“…Thus, network integration of gene expression values is expected to improve module detection power by computational algorithms and further corroborate the protein modularity maps [17]. Evidence for interacting protein pairs in a complex that show mRNA coexpression was for instance provided by Dezso et al, and is also available from human interactome experimental work [18] and tissue-specific interactome analysis [19].…”
Section: Data Generation Approachesmentioning
confidence: 72%
“…1). Several models have been used for network analysis, from 'Power Graphs' and the 'Information Flow Model', to 'Boolean' and 'Bayesian' networks (Missiuro et al 2009, Pujol et al 2010, Youngs et al 2013. In Bayesian networks, the nodes represent biological variables and directed edges represent causality through conditional probabilities between them.…”
Section: Network Analysismentioning
confidence: 99%