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A new mechanism for reduced sensitivity to demethylation‐inhibitor fungicides in the fungal banana black Sigatoka pathogen Pseudocercospora fijiensis

The Dothideomycete Pseudocercospora fijiensis, previously Mycosphaerella fijiensis, is the causal agent of black Sigatoka, one of the most destructive diseases of bananas and plantains. Disease management depends on fungicide applications, with a major contribution from sterol demethylation‐inhibito...

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Autores principales: Diaz‐Trujillo, Caucasella, Chong, Pablo, Stergiopoulos, Ioannis, Cordovez, Viviane, Guzman, Mauricio, De Wit, Pierre J. G. M., Meijer, Harold J. G., Scalliet, Gabriel, Sierotzki, Helge, Lilia Peralta, Esther, Arango Isaza, Rafael E., Kema, Gerrit H. J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6637983/
https://www.ncbi.nlm.nih.gov/pubmed/29105293
http://dx.doi.org/10.1111/mpp.12637
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author Diaz‐Trujillo, Caucasella
Chong, Pablo
Stergiopoulos, Ioannis
Cordovez, Viviane
Guzman, Mauricio
De Wit, Pierre J. G. M.
Meijer, Harold J. G.
Scalliet, Gabriel
Sierotzki, Helge
Lilia Peralta, Esther
Arango Isaza, Rafael E.
Kema, Gerrit H. J.
author_facet Diaz‐Trujillo, Caucasella
Chong, Pablo
Stergiopoulos, Ioannis
Cordovez, Viviane
Guzman, Mauricio
De Wit, Pierre J. G. M.
Meijer, Harold J. G.
Scalliet, Gabriel
Sierotzki, Helge
Lilia Peralta, Esther
Arango Isaza, Rafael E.
Kema, Gerrit H. J.
author_sort Diaz‐Trujillo, Caucasella
collection PubMed
description The Dothideomycete Pseudocercospora fijiensis, previously Mycosphaerella fijiensis, is the causal agent of black Sigatoka, one of the most destructive diseases of bananas and plantains. Disease management depends on fungicide applications, with a major contribution from sterol demethylation‐inhibitors (DMIs). The continued use of DMIs places considerable selection pressure on natural P. fijiensis populations, enabling the selection of novel genotypes with reduced sensitivity. The hitherto explanatory mechanism for this reduced sensitivity was the presence of non‐synonymous point mutations in the target gene Pfcyp51, encoding the sterol 14α‐demethylase enzyme. Here, we demonstrate a second mechanism involved in DMI sensitivity of P. fijiensis. We identified a 19‐bp element in the wild‐type (wt) Pfcyp51 promoter that concatenates in strains with reduced DMI sensitivity. A polymerase chain reaction (PCR) assay identified up to six Pfcyp51 promoter repeats in four field populations of P. fijiensis in Costa Rica. We used transformation experiments to swap the wt promoter of a sensitive field isolate with a promoter from a strain with reduced DMI sensitivity that comprised multiple insertions. Comparative in vivo phenotyping showed a functional and proportional up‐regulation of Pfcyp51, which consequently decreased DMI sensitivity. Our data demonstrate that point mutations in the Pfcyp51 coding domain, as well as promoter inserts, contribute to the reduced DMI sensitivity of P. fijiensis. These results provide new insights into the importance of the appropriate use of DMIs and the need for the discovery of new molecules for black Sigatoka management.
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spelling pubmed-66379832019-09-16 A new mechanism for reduced sensitivity to demethylation‐inhibitor fungicides in the fungal banana black Sigatoka pathogen Pseudocercospora fijiensis Diaz‐Trujillo, Caucasella Chong, Pablo Stergiopoulos, Ioannis Cordovez, Viviane Guzman, Mauricio De Wit, Pierre J. G. M. Meijer, Harold J. G. Scalliet, Gabriel Sierotzki, Helge Lilia Peralta, Esther Arango Isaza, Rafael E. Kema, Gerrit H. J. Mol Plant Pathol Original Articles The Dothideomycete Pseudocercospora fijiensis, previously Mycosphaerella fijiensis, is the causal agent of black Sigatoka, one of the most destructive diseases of bananas and plantains. Disease management depends on fungicide applications, with a major contribution from sterol demethylation‐inhibitors (DMIs). The continued use of DMIs places considerable selection pressure on natural P. fijiensis populations, enabling the selection of novel genotypes with reduced sensitivity. The hitherto explanatory mechanism for this reduced sensitivity was the presence of non‐synonymous point mutations in the target gene Pfcyp51, encoding the sterol 14α‐demethylase enzyme. Here, we demonstrate a second mechanism involved in DMI sensitivity of P. fijiensis. We identified a 19‐bp element in the wild‐type (wt) Pfcyp51 promoter that concatenates in strains with reduced DMI sensitivity. A polymerase chain reaction (PCR) assay identified up to six Pfcyp51 promoter repeats in four field populations of P. fijiensis in Costa Rica. We used transformation experiments to swap the wt promoter of a sensitive field isolate with a promoter from a strain with reduced DMI sensitivity that comprised multiple insertions. Comparative in vivo phenotyping showed a functional and proportional up‐regulation of Pfcyp51, which consequently decreased DMI sensitivity. Our data demonstrate that point mutations in the Pfcyp51 coding domain, as well as promoter inserts, contribute to the reduced DMI sensitivity of P. fijiensis. These results provide new insights into the importance of the appropriate use of DMIs and the need for the discovery of new molecules for black Sigatoka management. John Wiley and Sons Inc. 2018-02-13 /pmc/articles/PMC6637983/ /pubmed/29105293 http://dx.doi.org/10.1111/mpp.12637 Text en © 2017 The Authors. Molecular Plant Pathology published by British Society for Plant Pathology and John Wiley & Sons Ltd This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Diaz‐Trujillo, Caucasella
Chong, Pablo
Stergiopoulos, Ioannis
Cordovez, Viviane
Guzman, Mauricio
De Wit, Pierre J. G. M.
Meijer, Harold J. G.
Scalliet, Gabriel
Sierotzki, Helge
Lilia Peralta, Esther
Arango Isaza, Rafael E.
Kema, Gerrit H. J.
A new mechanism for reduced sensitivity to demethylation‐inhibitor fungicides in the fungal banana black Sigatoka pathogen Pseudocercospora fijiensis
title A new mechanism for reduced sensitivity to demethylation‐inhibitor fungicides in the fungal banana black Sigatoka pathogen Pseudocercospora fijiensis
title_full A new mechanism for reduced sensitivity to demethylation‐inhibitor fungicides in the fungal banana black Sigatoka pathogen Pseudocercospora fijiensis
title_fullStr A new mechanism for reduced sensitivity to demethylation‐inhibitor fungicides in the fungal banana black Sigatoka pathogen Pseudocercospora fijiensis
title_full_unstemmed A new mechanism for reduced sensitivity to demethylation‐inhibitor fungicides in the fungal banana black Sigatoka pathogen Pseudocercospora fijiensis
title_short A new mechanism for reduced sensitivity to demethylation‐inhibitor fungicides in the fungal banana black Sigatoka pathogen Pseudocercospora fijiensis
title_sort new mechanism for reduced sensitivity to demethylation‐inhibitor fungicides in the fungal banana black sigatoka pathogen pseudocercospora fijiensis
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6637983/
https://www.ncbi.nlm.nih.gov/pubmed/29105293
http://dx.doi.org/10.1111/mpp.12637
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