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A First Insight into North American Plant Pathogenic Fungi Armillaria sinapina Transcriptome

Armillaria sinapina, a fungal pathogen of primary timber species of North American forests, causes white root rot disease that ultimately kills the trees. A more detailed understanding of the molecular mechanisms underlying this illness will support future developments on disease resistance and mana...

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Autores principales: Fradj, Narimene, de Montigny, Nicolas, Mérindol, Natacha, Awwad, Fatima, Boumghar, Yacine, Germain, Hugo, Desgagné-Penix, Isabel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407180/
https://www.ncbi.nlm.nih.gov/pubmed/32635577
http://dx.doi.org/10.3390/biology9070153
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author Fradj, Narimene
de Montigny, Nicolas
Mérindol, Natacha
Awwad, Fatima
Boumghar, Yacine
Germain, Hugo
Desgagné-Penix, Isabel
author_facet Fradj, Narimene
de Montigny, Nicolas
Mérindol, Natacha
Awwad, Fatima
Boumghar, Yacine
Germain, Hugo
Desgagné-Penix, Isabel
author_sort Fradj, Narimene
collection PubMed
description Armillaria sinapina, a fungal pathogen of primary timber species of North American forests, causes white root rot disease that ultimately kills the trees. A more detailed understanding of the molecular mechanisms underlying this illness will support future developments on disease resistance and management, as well as in the decomposition of cellulosic material for further use. In this study, RNA-Seq technology was used to compare the transcriptome profiles of A. sinapina fungal culture grown in yeast malt broth medium supplemented or not with betulin, a natural compound of the terpenoid group found in abundance in white birch bark. This was done to identify enzyme transcripts involved in the metabolism (redox reaction) of betulin into betulinic acid, a potent anticancer drug. De novo assembly and characterization of A. sinapina transcriptome was performed using Illumina technology. A total of 170,592,464 reads were generated, then 273,561 transcripts were characterized. Approximately, 53% of transcripts could be identified using public databases with several metabolic pathways represented. A total of 11 transcripts involved in terpenoid biosynthesis were identified. In addition, 25 gene transcripts that could play a significant role in lignin degradation were uncovered, as well as several redox enzymes of the cytochromes P450 family. To our knowledge, this research is the first transcriptomic study carried out on A. sinapina.
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spelling pubmed-74071802020-08-11 A First Insight into North American Plant Pathogenic Fungi Armillaria sinapina Transcriptome Fradj, Narimene de Montigny, Nicolas Mérindol, Natacha Awwad, Fatima Boumghar, Yacine Germain, Hugo Desgagné-Penix, Isabel Biology (Basel) Article Armillaria sinapina, a fungal pathogen of primary timber species of North American forests, causes white root rot disease that ultimately kills the trees. A more detailed understanding of the molecular mechanisms underlying this illness will support future developments on disease resistance and management, as well as in the decomposition of cellulosic material for further use. In this study, RNA-Seq technology was used to compare the transcriptome profiles of A. sinapina fungal culture grown in yeast malt broth medium supplemented or not with betulin, a natural compound of the terpenoid group found in abundance in white birch bark. This was done to identify enzyme transcripts involved in the metabolism (redox reaction) of betulin into betulinic acid, a potent anticancer drug. De novo assembly and characterization of A. sinapina transcriptome was performed using Illumina technology. A total of 170,592,464 reads were generated, then 273,561 transcripts were characterized. Approximately, 53% of transcripts could be identified using public databases with several metabolic pathways represented. A total of 11 transcripts involved in terpenoid biosynthesis were identified. In addition, 25 gene transcripts that could play a significant role in lignin degradation were uncovered, as well as several redox enzymes of the cytochromes P450 family. To our knowledge, this research is the first transcriptomic study carried out on A. sinapina. MDPI 2020-07-04 /pmc/articles/PMC7407180/ /pubmed/32635577 http://dx.doi.org/10.3390/biology9070153 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Fradj, Narimene
de Montigny, Nicolas
Mérindol, Natacha
Awwad, Fatima
Boumghar, Yacine
Germain, Hugo
Desgagné-Penix, Isabel
A First Insight into North American Plant Pathogenic Fungi Armillaria sinapina Transcriptome
title A First Insight into North American Plant Pathogenic Fungi Armillaria sinapina Transcriptome
title_full A First Insight into North American Plant Pathogenic Fungi Armillaria sinapina Transcriptome
title_fullStr A First Insight into North American Plant Pathogenic Fungi Armillaria sinapina Transcriptome
title_full_unstemmed A First Insight into North American Plant Pathogenic Fungi Armillaria sinapina Transcriptome
title_short A First Insight into North American Plant Pathogenic Fungi Armillaria sinapina Transcriptome
title_sort first insight into north american plant pathogenic fungi armillaria sinapina transcriptome
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407180/
https://www.ncbi.nlm.nih.gov/pubmed/32635577
http://dx.doi.org/10.3390/biology9070153
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