Abstract
The Escherichia coli transcription network has an essentially feedforward structure, with abundant feedback at the level of self-regulations. Here, we investigate how these properties emerged during evolution. An assessment of the role of gene duplication based on protein domain architecture shows that (i) transcriptional autoregulators have mostly arisen through duplication, whereas (ii) the expected feedback loops stemming from their initial cross-regulation are strongly selected against. This requires a divergent coevolution of the transcription factor DNA-binding sites and their respective DNA cis-regulatory regions. Moreover, we find that the network tends to grow by expansion of the existing hierarchical layers of computation, rather than by addition of new layers. We also argue that rewiring of regulatory links due to mutation/selection of novel transcription factor/DNA binding interactions appears not to significantly affect the network global hierarchy, and that horizontally transferred genes are mainly added at the bottom, as new target nodes. These findings highlight the important evolutionary roles of both duplication and selective deletion of cross-talks between autoregulators in the emergence of the hierarchical transcription network of E. coli.
MeSH Terms
Binding Sites
DNA/chemistry
Data Interpretation, Statistical
Escherichia coli/metabolism
Escherichia coli Proteins/physiology
Evolution, Molecular
Feedback, Physiological
Gene Expression Regulation, Bacterial
Gene Transfer, Horizontal
Models, Biological
Models, Genetic
Monte Carlo Method
Protein Structure, Tertiary
Transcription Factors/metabolism
Transcription, Genetic
Chemicals
Escherichia coli Proteins
Transcription Factors
DNA
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Cosentino Lagomarsino M
Unité Mixte de Recherche 168/Institut Curie, 26 rue d'Ulm, 75005 Paris, France.
[email protected].
Jona P
Bassetti B
Isambert H
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