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Effector mining from the Erysiphe pisi haustorial transcriptome identifies novel candidates involved in pea powdery mildew pathogenesis

Pea powdery mildew (PM) is an important fungal disease caused by an obligate biotroph, Erysiphe pisi (Ep), which significantly impacts pea production worldwide. The phytopathogen secretes a plethora of effectors, primarily through specialized infection structures termed haustoria, to establish a dyn...

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Autores principales: Sharma, Gunjan, Aminedi, Raghavendra, Saxena, Divya, Gupta, Arunima, Banerjee, Priyajit, Jain, Deepti, Chandran, Divya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6804345/
https://www.ncbi.nlm.nih.gov/pubmed/31603276
http://dx.doi.org/10.1111/mpp.12862
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author Sharma, Gunjan
Aminedi, Raghavendra
Saxena, Divya
Gupta, Arunima
Banerjee, Priyajit
Jain, Deepti
Chandran, Divya
author_facet Sharma, Gunjan
Aminedi, Raghavendra
Saxena, Divya
Gupta, Arunima
Banerjee, Priyajit
Jain, Deepti
Chandran, Divya
author_sort Sharma, Gunjan
collection PubMed
description Pea powdery mildew (PM) is an important fungal disease caused by an obligate biotroph, Erysiphe pisi (Ep), which significantly impacts pea production worldwide. The phytopathogen secretes a plethora of effectors, primarily through specialized infection structures termed haustoria, to establish a dynamic relationship with its host. To identify Ep effector candidates, a cDNA library of enriched haustoria from Ep‐infected pea leaves was sequenced. The Ep transcriptome encodes 622 Ep candidate secreted proteins (CSPs), of which 167 were predicted to be candidate secreted effector proteins (CSEPs). Phylogenetic analysis indicates that Ep CSEPs are highly diverse, but, unlike cereal PM CSEPs, exhibit extensive sequence similarity with effectors from other PMs. Quantitative real‐time PCR of a subset of EpCSEP/CSPs revealed that the majority are preferentially expressed in haustoria and exhibit infection stage–specific expression patterns. The functional roles of EpCSEP001, EpCSEP009 and EpCSP083 were probed by host‐induced gene silencing (HIGS) via a double‐stranded (ds) RNA‐mediated RNAi approach. Foliar application of individual EpCSEP/CSP dsRNAs resulted in a marked reduction in PM disease symptoms. These findings were consistent with microscopic and molecular studies, suggesting that these Ep CSEP/CSPs play important roles in pea PM pathogenesis. Homology modelling revealed that EpCSEP001 and EpCSEP009 are analogous to fungal ribonucleases and belong to the RALPH family of effectors. This is the first study to identify and functionally validate candidate effectors from the agriculturally relevant pea PM, and highlights the utility of transcriptomics and HIGS to elucidate the key proteins associated with Ep pathogenesis.
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spelling pubmed-68043452019-10-24 Effector mining from the Erysiphe pisi haustorial transcriptome identifies novel candidates involved in pea powdery mildew pathogenesis Sharma, Gunjan Aminedi, Raghavendra Saxena, Divya Gupta, Arunima Banerjee, Priyajit Jain, Deepti Chandran, Divya Mol Plant Pathol Original Articles Pea powdery mildew (PM) is an important fungal disease caused by an obligate biotroph, Erysiphe pisi (Ep), which significantly impacts pea production worldwide. The phytopathogen secretes a plethora of effectors, primarily through specialized infection structures termed haustoria, to establish a dynamic relationship with its host. To identify Ep effector candidates, a cDNA library of enriched haustoria from Ep‐infected pea leaves was sequenced. The Ep transcriptome encodes 622 Ep candidate secreted proteins (CSPs), of which 167 were predicted to be candidate secreted effector proteins (CSEPs). Phylogenetic analysis indicates that Ep CSEPs are highly diverse, but, unlike cereal PM CSEPs, exhibit extensive sequence similarity with effectors from other PMs. Quantitative real‐time PCR of a subset of EpCSEP/CSPs revealed that the majority are preferentially expressed in haustoria and exhibit infection stage–specific expression patterns. The functional roles of EpCSEP001, EpCSEP009 and EpCSP083 were probed by host‐induced gene silencing (HIGS) via a double‐stranded (ds) RNA‐mediated RNAi approach. Foliar application of individual EpCSEP/CSP dsRNAs resulted in a marked reduction in PM disease symptoms. These findings were consistent with microscopic and molecular studies, suggesting that these Ep CSEP/CSPs play important roles in pea PM pathogenesis. Homology modelling revealed that EpCSEP001 and EpCSEP009 are analogous to fungal ribonucleases and belong to the RALPH family of effectors. This is the first study to identify and functionally validate candidate effectors from the agriculturally relevant pea PM, and highlights the utility of transcriptomics and HIGS to elucidate the key proteins associated with Ep pathogenesis. John Wiley and Sons Inc. 2019-10-11 /pmc/articles/PMC6804345/ /pubmed/31603276 http://dx.doi.org/10.1111/mpp.12862 Text en © 2019 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-nc/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Articles
Sharma, Gunjan
Aminedi, Raghavendra
Saxena, Divya
Gupta, Arunima
Banerjee, Priyajit
Jain, Deepti
Chandran, Divya
Effector mining from the Erysiphe pisi haustorial transcriptome identifies novel candidates involved in pea powdery mildew pathogenesis
title Effector mining from the Erysiphe pisi haustorial transcriptome identifies novel candidates involved in pea powdery mildew pathogenesis
title_full Effector mining from the Erysiphe pisi haustorial transcriptome identifies novel candidates involved in pea powdery mildew pathogenesis
title_fullStr Effector mining from the Erysiphe pisi haustorial transcriptome identifies novel candidates involved in pea powdery mildew pathogenesis
title_full_unstemmed Effector mining from the Erysiphe pisi haustorial transcriptome identifies novel candidates involved in pea powdery mildew pathogenesis
title_short Effector mining from the Erysiphe pisi haustorial transcriptome identifies novel candidates involved in pea powdery mildew pathogenesis
title_sort effector mining from the erysiphe pisi haustorial transcriptome identifies novel candidates involved in pea powdery mildew pathogenesis
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6804345/
https://www.ncbi.nlm.nih.gov/pubmed/31603276
http://dx.doi.org/10.1111/mpp.12862
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