Describing the structural robustness landscape of bacterial small RNAs

<p>Abstract</p> <p>Background</p> <p>The potential role of RNA molecules as gene expression regulators has led to a new perspective on the intracellular control and genome organization. Because secondary structures are crucial for their regulatory role, we sought to inv...

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Main Authors: Rodrigo Guillermo, Fares Mario A
Format: Article
Language:English
Published: BMC 2012-04-01
Series:BMC Evolutionary Biology
Subjects:
Online Access:http://www.biomedcentral.com/1471-2148/12/52
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author Rodrigo Guillermo
Fares Mario A
author_facet Rodrigo Guillermo
Fares Mario A
author_sort Rodrigo Guillermo
collection DOAJ
description <p>Abstract</p> <p>Background</p> <p>The potential role of RNA molecules as gene expression regulators has led to a new perspective on the intracellular control and genome organization. Because secondary structures are crucial for their regulatory role, we sought to investigate their robustness to mutations and environmental changes.</p> <p>Results</p> <p>Here, we dissected the structural robustness landscape of the small non-coding RNAs (sncRNAs) encoded in the genome of the bacterium <it>Escherichia coli</it>. We found that bacterial sncRNAs are not significantly robust to both mutational and environmental perturbations when compared against artificial, unbiased sequences. However, we found that, on average, bacterial sncRNAs tend to be significantly plastic, and that mutational and environmental robustness strongly correlate. We further found that, on average, epistasis in bacterial sncRNAs is significantly antagonistic, and positively correlates with plasticity. Moreover, the evolution of robustness is likely dependent upon the environmental stability of the cell, with more fluctuating environments leading to the emergence and fixation of more robust molecules. Mutational robustness also appears to be correlated with structural functionality and complexity.</p> <p>Conclusion</p> <p>Our study provides a deep characterization of the structural robustness landscape of bacterial sncRNAs, suggesting that evolvability could be evolved as a consequence of selection for more plastic molecules. It also supports that environmental fluctuations could promote mutational robustness. As a result, plasticity emerges to link robustness, functionality and evolvability.</p>
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spelling doaj.art-0acdc511cbe14be58fa077aedf1328742022-12-21T23:09:03ZengBMCBMC Evolutionary Biology1471-21482012-04-011215210.1186/1471-2148-12-52Describing the structural robustness landscape of bacterial small RNAsRodrigo GuillermoFares Mario A<p>Abstract</p> <p>Background</p> <p>The potential role of RNA molecules as gene expression regulators has led to a new perspective on the intracellular control and genome organization. Because secondary structures are crucial for their regulatory role, we sought to investigate their robustness to mutations and environmental changes.</p> <p>Results</p> <p>Here, we dissected the structural robustness landscape of the small non-coding RNAs (sncRNAs) encoded in the genome of the bacterium <it>Escherichia coli</it>. We found that bacterial sncRNAs are not significantly robust to both mutational and environmental perturbations when compared against artificial, unbiased sequences. However, we found that, on average, bacterial sncRNAs tend to be significantly plastic, and that mutational and environmental robustness strongly correlate. We further found that, on average, epistasis in bacterial sncRNAs is significantly antagonistic, and positively correlates with plasticity. Moreover, the evolution of robustness is likely dependent upon the environmental stability of the cell, with more fluctuating environments leading to the emergence and fixation of more robust molecules. Mutational robustness also appears to be correlated with structural functionality and complexity.</p> <p>Conclusion</p> <p>Our study provides a deep characterization of the structural robustness landscape of bacterial sncRNAs, suggesting that evolvability could be evolved as a consequence of selection for more plastic molecules. It also supports that environmental fluctuations could promote mutational robustness. As a result, plasticity emerges to link robustness, functionality and evolvability.</p>http://www.biomedcentral.com/1471-2148/12/52EvolutionEvolvabilityPlasticityRNA structureRobustnessSmall RNAThermodynamics
spellingShingle Rodrigo Guillermo
Fares Mario A
Describing the structural robustness landscape of bacterial small RNAs
BMC Evolutionary Biology
Evolution
Evolvability
Plasticity
RNA structure
Robustness
Small RNA
Thermodynamics
title Describing the structural robustness landscape of bacterial small RNAs
title_full Describing the structural robustness landscape of bacterial small RNAs
title_fullStr Describing the structural robustness landscape of bacterial small RNAs
title_full_unstemmed Describing the structural robustness landscape of bacterial small RNAs
title_short Describing the structural robustness landscape of bacterial small RNAs
title_sort describing the structural robustness landscape of bacterial small rnas
topic Evolution
Evolvability
Plasticity
RNA structure
Robustness
Small RNA
Thermodynamics
url http://www.biomedcentral.com/1471-2148/12/52
work_keys_str_mv AT rodrigoguillermo describingthestructuralrobustnesslandscapeofbacterialsmallrnas
AT faresmarioa describingthestructuralrobustnesslandscapeofbacterialsmallrnas