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Paralog Re-Emergence: A Novel, Historically Contingent Mechanism in the Evolution of Antimicrobial Resistance

Evolution of resistance to drugs and pesticides poses a serious threat to human health and agricultural production. CYP51 encodes the target site of azole fungicides, widely used clinically and in agriculture. Azole resistance can evolve due to point mutations or overexpression of CYP51, and previou...

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Autores principales: Hawkins, Nichola J., Cools, Hans J., Sierotzki, Helge, Shaw, Michael W., Knogge, Wolfgang, Kelly, Steven L., Kelly, Diane E., Fraaije, Bart A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4069618/
https://www.ncbi.nlm.nih.gov/pubmed/24732957
http://dx.doi.org/10.1093/molbev/msu134
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author Hawkins, Nichola J.
Cools, Hans J.
Sierotzki, Helge
Shaw, Michael W.
Knogge, Wolfgang
Kelly, Steven L.
Kelly, Diane E.
Fraaije, Bart A.
author_facet Hawkins, Nichola J.
Cools, Hans J.
Sierotzki, Helge
Shaw, Michael W.
Knogge, Wolfgang
Kelly, Steven L.
Kelly, Diane E.
Fraaije, Bart A.
author_sort Hawkins, Nichola J.
collection PubMed
description Evolution of resistance to drugs and pesticides poses a serious threat to human health and agricultural production. CYP51 encodes the target site of azole fungicides, widely used clinically and in agriculture. Azole resistance can evolve due to point mutations or overexpression of CYP51, and previous studies have shown that fungicide-resistant alleles have arisen by de novo mutation. Paralogs CYP51A and CYP51B are found in filamentous ascomycetes, but CYP51A has been lost from multiple lineages. Here, we show that in the barley pathogen Rhynchosporium commune, re-emergence of CYP51A constitutes a novel mechanism for the evolution of resistance to azoles. Pyrosequencing analysis of historical barley leaf samples from a unique long-term experiment from 1892 to 2008 indicates that the majority of the R. commune population lacked CYP51A until 1985, after which the frequency of CYP51A rapidly increased. Functional analysis demonstrates that CYP51A retains the same substrate as CYP51B, but with different transcriptional regulation. Phylogenetic analyses show that the origin of CYP51A far predates azole use, and newly sequenced Rhynchosporium genomes show CYP51A persisting in the R. commune lineage rather than being regained by horizontal gene transfer; therefore, CYP51A re-emergence provides an example of adaptation to novel compounds by selection from standing genetic variation.
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spelling pubmed-40696182014-06-25 Paralog Re-Emergence: A Novel, Historically Contingent Mechanism in the Evolution of Antimicrobial Resistance Hawkins, Nichola J. Cools, Hans J. Sierotzki, Helge Shaw, Michael W. Knogge, Wolfgang Kelly, Steven L. Kelly, Diane E. Fraaije, Bart A. Mol Biol Evol Discoveries Evolution of resistance to drugs and pesticides poses a serious threat to human health and agricultural production. CYP51 encodes the target site of azole fungicides, widely used clinically and in agriculture. Azole resistance can evolve due to point mutations or overexpression of CYP51, and previous studies have shown that fungicide-resistant alleles have arisen by de novo mutation. Paralogs CYP51A and CYP51B are found in filamentous ascomycetes, but CYP51A has been lost from multiple lineages. Here, we show that in the barley pathogen Rhynchosporium commune, re-emergence of CYP51A constitutes a novel mechanism for the evolution of resistance to azoles. Pyrosequencing analysis of historical barley leaf samples from a unique long-term experiment from 1892 to 2008 indicates that the majority of the R. commune population lacked CYP51A until 1985, after which the frequency of CYP51A rapidly increased. Functional analysis demonstrates that CYP51A retains the same substrate as CYP51B, but with different transcriptional regulation. Phylogenetic analyses show that the origin of CYP51A far predates azole use, and newly sequenced Rhynchosporium genomes show CYP51A persisting in the R. commune lineage rather than being regained by horizontal gene transfer; therefore, CYP51A re-emergence provides an example of adaptation to novel compounds by selection from standing genetic variation. Oxford University Press 2014-07 2014-04-14 /pmc/articles/PMC4069618/ /pubmed/24732957 http://dx.doi.org/10.1093/molbev/msu134 Text en © The Author 2014. Published by Oxford University Press on behalf of the Society for Molecular Biology and Evolution. http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Discoveries
Hawkins, Nichola J.
Cools, Hans J.
Sierotzki, Helge
Shaw, Michael W.
Knogge, Wolfgang
Kelly, Steven L.
Kelly, Diane E.
Fraaije, Bart A.
Paralog Re-Emergence: A Novel, Historically Contingent Mechanism in the Evolution of Antimicrobial Resistance
title Paralog Re-Emergence: A Novel, Historically Contingent Mechanism in the Evolution of Antimicrobial Resistance
title_full Paralog Re-Emergence: A Novel, Historically Contingent Mechanism in the Evolution of Antimicrobial Resistance
title_fullStr Paralog Re-Emergence: A Novel, Historically Contingent Mechanism in the Evolution of Antimicrobial Resistance
title_full_unstemmed Paralog Re-Emergence: A Novel, Historically Contingent Mechanism in the Evolution of Antimicrobial Resistance
title_short Paralog Re-Emergence: A Novel, Historically Contingent Mechanism in the Evolution of Antimicrobial Resistance
title_sort paralog re-emergence: a novel, historically contingent mechanism in the evolution of antimicrobial resistance
topic Discoveries
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4069618/
https://www.ncbi.nlm.nih.gov/pubmed/24732957
http://dx.doi.org/10.1093/molbev/msu134
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