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Functional architecture of Escherichia coli: new insights provided by a natural decomposition approach

BACKGROUND: Previous studies have used different methods in an effort to extract the modular organization of transcriptional regulatory networks. However, these approaches are not natural, as they try to cluster strongly connected genes into a module or locate known pleiotropic transcription factors...

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Autores principales: Freyre-González, Julio A, Alonso-Pavón, José A, Treviño-Quintanilla, Luis G, Collado-Vides, Julio
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2760881/
https://www.ncbi.nlm.nih.gov/pubmed/18954463
http://dx.doi.org/10.1186/gb-2008-9-10-r154
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author Freyre-González, Julio A
Alonso-Pavón, José A
Treviño-Quintanilla, Luis G
Collado-Vides, Julio
author_facet Freyre-González, Julio A
Alonso-Pavón, José A
Treviño-Quintanilla, Luis G
Collado-Vides, Julio
author_sort Freyre-González, Julio A
collection PubMed
description BACKGROUND: Previous studies have used different methods in an effort to extract the modular organization of transcriptional regulatory networks. However, these approaches are not natural, as they try to cluster strongly connected genes into a module or locate known pleiotropic transcription factors in lower hierarchical layers. Here, we unravel the transcriptional regulatory network of Escherichia coli by separating it into its key elements, thus revealing its natural organization. We also present a mathematical criterion, based on the topological features of the transcriptional regulatory network, to classify the network elements into one of two possible classes: hierarchical or modular genes. RESULTS: We found that modular genes are clustered into physiologically correlated groups validated by a statistical analysis of the enrichment of the functional classes. Hierarchical genes encode transcription factors responsible for coordinating module responses based on general interest signals. Hierarchical elements correlate highly with the previously studied global regulators, suggesting that this could be the first mathematical method to identify global regulators. We identified a new element in transcriptional regulatory networks never described before: intermodular genes. These are structural genes that integrate, at the promoter level, signals coming from different modules, and therefore from different physiological responses. Using the concept of pleiotropy, we have reconstructed the hierarchy of the network and discuss the role of feedforward motifs in shaping the hierarchical backbone of the transcriptional regulatory network. CONCLUSIONS: This study sheds new light on the design principles underpinning the organization of transcriptional regulatory networks, showing a novel nonpyramidal architecture composed of independent modules globally governed by hierarchical transcription factors, whose responses are integrated by intermodular genes.
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spelling pubmed-27608812009-10-13 Functional architecture of Escherichia coli: new insights provided by a natural decomposition approach Freyre-González, Julio A Alonso-Pavón, José A Treviño-Quintanilla, Luis G Collado-Vides, Julio Genome Biol Research BACKGROUND: Previous studies have used different methods in an effort to extract the modular organization of transcriptional regulatory networks. However, these approaches are not natural, as they try to cluster strongly connected genes into a module or locate known pleiotropic transcription factors in lower hierarchical layers. Here, we unravel the transcriptional regulatory network of Escherichia coli by separating it into its key elements, thus revealing its natural organization. We also present a mathematical criterion, based on the topological features of the transcriptional regulatory network, to classify the network elements into one of two possible classes: hierarchical or modular genes. RESULTS: We found that modular genes are clustered into physiologically correlated groups validated by a statistical analysis of the enrichment of the functional classes. Hierarchical genes encode transcription factors responsible for coordinating module responses based on general interest signals. Hierarchical elements correlate highly with the previously studied global regulators, suggesting that this could be the first mathematical method to identify global regulators. We identified a new element in transcriptional regulatory networks never described before: intermodular genes. These are structural genes that integrate, at the promoter level, signals coming from different modules, and therefore from different physiological responses. Using the concept of pleiotropy, we have reconstructed the hierarchy of the network and discuss the role of feedforward motifs in shaping the hierarchical backbone of the transcriptional regulatory network. CONCLUSIONS: This study sheds new light on the design principles underpinning the organization of transcriptional regulatory networks, showing a novel nonpyramidal architecture composed of independent modules globally governed by hierarchical transcription factors, whose responses are integrated by intermodular genes. BioMed Central 2008 2008-10-27 /pmc/articles/PMC2760881/ /pubmed/18954463 http://dx.doi.org/10.1186/gb-2008-9-10-r154 Text en Copyright © 2008 Freyre-González et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Freyre-González, Julio A
Alonso-Pavón, José A
Treviño-Quintanilla, Luis G
Collado-Vides, Julio
Functional architecture of Escherichia coli: new insights provided by a natural decomposition approach
title Functional architecture of Escherichia coli: new insights provided by a natural decomposition approach
title_full Functional architecture of Escherichia coli: new insights provided by a natural decomposition approach
title_fullStr Functional architecture of Escherichia coli: new insights provided by a natural decomposition approach
title_full_unstemmed Functional architecture of Escherichia coli: new insights provided by a natural decomposition approach
title_short Functional architecture of Escherichia coli: new insights provided by a natural decomposition approach
title_sort functional architecture of escherichia coli: new insights provided by a natural decomposition approach
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2760881/
https://www.ncbi.nlm.nih.gov/pubmed/18954463
http://dx.doi.org/10.1186/gb-2008-9-10-r154
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