Cargando…

Genome and secretome analysis of the hemibiotrophic fungal pathogen, Moniliophthora roreri, which causes frosty pod rot disease of cacao: mechanisms of the biotrophic and necrotrophic phases

BACKGROUND: The basidiomycete Moniliophthora roreri is the causal agent of Frosty pod rot (FPR) disease of cacao (Theobroma cacao), the source of chocolate, and FPR is one of the most destructive diseases of this important perennial crop in the Americas. This hemibiotroph infects only cacao pods and...

Descripción completa

Detalles Bibliográficos
Autores principales: Meinhardt, Lyndel W, Costa, Gustavo Gilson Lacerda, Thomazella, Daniela PT, Teixeira, Paulo José PL, Carazzolle, Marcelo Falsarella, Schuster, Stephan C, Carlson, John E, Guiltinan, Mark J, Mieczkowski, Piotr, Farmer, Andrew, Ramaraj, Thiruvarangan, Crozier, Jayne, Davis, Robert E, Shao, Jonathan, Melnick, Rachel L, Pereira, Gonçalo AG, Bailey, Bryan A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3948071/
https://www.ncbi.nlm.nih.gov/pubmed/24571091
http://dx.doi.org/10.1186/1471-2164-15-164
_version_ 1782306748497920000
author Meinhardt, Lyndel W
Costa, Gustavo Gilson Lacerda
Thomazella, Daniela PT
Teixeira, Paulo José PL
Carazzolle, Marcelo Falsarella
Schuster, Stephan C
Carlson, John E
Guiltinan, Mark J
Mieczkowski, Piotr
Farmer, Andrew
Ramaraj, Thiruvarangan
Crozier, Jayne
Davis, Robert E
Shao, Jonathan
Melnick, Rachel L
Pereira, Gonçalo AG
Bailey, Bryan A
author_facet Meinhardt, Lyndel W
Costa, Gustavo Gilson Lacerda
Thomazella, Daniela PT
Teixeira, Paulo José PL
Carazzolle, Marcelo Falsarella
Schuster, Stephan C
Carlson, John E
Guiltinan, Mark J
Mieczkowski, Piotr
Farmer, Andrew
Ramaraj, Thiruvarangan
Crozier, Jayne
Davis, Robert E
Shao, Jonathan
Melnick, Rachel L
Pereira, Gonçalo AG
Bailey, Bryan A
author_sort Meinhardt, Lyndel W
collection PubMed
description BACKGROUND: The basidiomycete Moniliophthora roreri is the causal agent of Frosty pod rot (FPR) disease of cacao (Theobroma cacao), the source of chocolate, and FPR is one of the most destructive diseases of this important perennial crop in the Americas. This hemibiotroph infects only cacao pods and has an extended biotrophic phase lasting up to sixty days, culminating in plant necrosis and sporulation of the fungus without the formation of a basidiocarp. RESULTS: We sequenced and assembled 52.3 Mb into 3,298 contigs that represent the M. roreri genome. Of the 17,920 predicted open reading frames (OFRs), 13,760 were validated by RNA-Seq. Using read count data from RNA sequencing of cacao pods at 30 and 60 days post infection, differential gene expression was estimated for the biotrophic and necrotrophic phases of this plant-pathogen interaction. The sequencing data were used to develop a genome based secretome for the infected pods. Of the 1,535 genes encoding putative secreted proteins, 1,355 were expressed in the biotrophic and necrotrophic phases. Analysis of the data revealed secretome gene expression that correlated with infection and intercellular growth in the biotrophic phase and invasive growth and plant cellular death in the necrotrophic phase. CONCLUSIONS: Genome sequencing and RNA-Seq was used to determine and validate the Moniliophthora roreri genome and secretome. High sequence identity between Moniliophthora roreri genes and Moniliophthora perniciosa genes supports the taxonomic relationship with Moniliophthora perniciosa and the relatedness of this fungus to other basidiomycetes. Analysis of RNA-Seq data from infected plant tissues revealed differentially expressed genes in the biotrophic and necrotrophic phases. The secreted protein genes that were upregulated in the biotrophic phase are primarily associated with breakdown of the intercellular matrix and modification of the fungal mycelia, possibly to mask the fungus from plant defenses. Based on the transcriptome data, the upregulated secreted proteins in the necrotrophic phase are hypothesized to be actively attacking the plant cell walls and plant cellular components resulting in necrosis. These genes are being used to develop a new understanding of how this disease interaction progresses and to identify potential targets to reduce the impact of this devastating disease.
format Online
Article
Text
id pubmed-3948071
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-39480712014-03-11 Genome and secretome analysis of the hemibiotrophic fungal pathogen, Moniliophthora roreri, which causes frosty pod rot disease of cacao: mechanisms of the biotrophic and necrotrophic phases Meinhardt, Lyndel W Costa, Gustavo Gilson Lacerda Thomazella, Daniela PT Teixeira, Paulo José PL Carazzolle, Marcelo Falsarella Schuster, Stephan C Carlson, John E Guiltinan, Mark J Mieczkowski, Piotr Farmer, Andrew Ramaraj, Thiruvarangan Crozier, Jayne Davis, Robert E Shao, Jonathan Melnick, Rachel L Pereira, Gonçalo AG Bailey, Bryan A BMC Genomics Research Article BACKGROUND: The basidiomycete Moniliophthora roreri is the causal agent of Frosty pod rot (FPR) disease of cacao (Theobroma cacao), the source of chocolate, and FPR is one of the most destructive diseases of this important perennial crop in the Americas. This hemibiotroph infects only cacao pods and has an extended biotrophic phase lasting up to sixty days, culminating in plant necrosis and sporulation of the fungus without the formation of a basidiocarp. RESULTS: We sequenced and assembled 52.3 Mb into 3,298 contigs that represent the M. roreri genome. Of the 17,920 predicted open reading frames (OFRs), 13,760 were validated by RNA-Seq. Using read count data from RNA sequencing of cacao pods at 30 and 60 days post infection, differential gene expression was estimated for the biotrophic and necrotrophic phases of this plant-pathogen interaction. The sequencing data were used to develop a genome based secretome for the infected pods. Of the 1,535 genes encoding putative secreted proteins, 1,355 were expressed in the biotrophic and necrotrophic phases. Analysis of the data revealed secretome gene expression that correlated with infection and intercellular growth in the biotrophic phase and invasive growth and plant cellular death in the necrotrophic phase. CONCLUSIONS: Genome sequencing and RNA-Seq was used to determine and validate the Moniliophthora roreri genome and secretome. High sequence identity between Moniliophthora roreri genes and Moniliophthora perniciosa genes supports the taxonomic relationship with Moniliophthora perniciosa and the relatedness of this fungus to other basidiomycetes. Analysis of RNA-Seq data from infected plant tissues revealed differentially expressed genes in the biotrophic and necrotrophic phases. The secreted protein genes that were upregulated in the biotrophic phase are primarily associated with breakdown of the intercellular matrix and modification of the fungal mycelia, possibly to mask the fungus from plant defenses. Based on the transcriptome data, the upregulated secreted proteins in the necrotrophic phase are hypothesized to be actively attacking the plant cell walls and plant cellular components resulting in necrosis. These genes are being used to develop a new understanding of how this disease interaction progresses and to identify potential targets to reduce the impact of this devastating disease. BioMed Central 2014-02-27 /pmc/articles/PMC3948071/ /pubmed/24571091 http://dx.doi.org/10.1186/1471-2164-15-164 Text en Copyright © 2014 Meinhardt et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research Article
Meinhardt, Lyndel W
Costa, Gustavo Gilson Lacerda
Thomazella, Daniela PT
Teixeira, Paulo José PL
Carazzolle, Marcelo Falsarella
Schuster, Stephan C
Carlson, John E
Guiltinan, Mark J
Mieczkowski, Piotr
Farmer, Andrew
Ramaraj, Thiruvarangan
Crozier, Jayne
Davis, Robert E
Shao, Jonathan
Melnick, Rachel L
Pereira, Gonçalo AG
Bailey, Bryan A
Genome and secretome analysis of the hemibiotrophic fungal pathogen, Moniliophthora roreri, which causes frosty pod rot disease of cacao: mechanisms of the biotrophic and necrotrophic phases
title Genome and secretome analysis of the hemibiotrophic fungal pathogen, Moniliophthora roreri, which causes frosty pod rot disease of cacao: mechanisms of the biotrophic and necrotrophic phases
title_full Genome and secretome analysis of the hemibiotrophic fungal pathogen, Moniliophthora roreri, which causes frosty pod rot disease of cacao: mechanisms of the biotrophic and necrotrophic phases
title_fullStr Genome and secretome analysis of the hemibiotrophic fungal pathogen, Moniliophthora roreri, which causes frosty pod rot disease of cacao: mechanisms of the biotrophic and necrotrophic phases
title_full_unstemmed Genome and secretome analysis of the hemibiotrophic fungal pathogen, Moniliophthora roreri, which causes frosty pod rot disease of cacao: mechanisms of the biotrophic and necrotrophic phases
title_short Genome and secretome analysis of the hemibiotrophic fungal pathogen, Moniliophthora roreri, which causes frosty pod rot disease of cacao: mechanisms of the biotrophic and necrotrophic phases
title_sort genome and secretome analysis of the hemibiotrophic fungal pathogen, moniliophthora roreri, which causes frosty pod rot disease of cacao: mechanisms of the biotrophic and necrotrophic phases
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3948071/
https://www.ncbi.nlm.nih.gov/pubmed/24571091
http://dx.doi.org/10.1186/1471-2164-15-164
work_keys_str_mv AT meinhardtlyndelw genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT costagustavogilsonlacerda genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT thomazelladanielapt genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT teixeirapaulojosepl genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT carazzollemarcelofalsarella genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT schusterstephanc genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT carlsonjohne genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT guiltinanmarkj genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT mieczkowskipiotr genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT farmerandrew genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT ramarajthiruvarangan genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT crozierjayne genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT davisroberte genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT shaojonathan genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT melnickrachell genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT pereiragoncaloag genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases
AT baileybryana genomeandsecretomeanalysisofthehemibiotrophicfungalpathogenmoniliophthoraroreriwhichcausesfrostypodrotdiseaseofcacaomechanismsofthebiotrophicandnecrotrophicphases