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A High-Quality Grapevine Downy Mildew Genome Assembly Reveals Rapidly Evolving and Lineage-Specific Putative Host Adaptation Genes

Downy mildews are obligate biotrophic oomycete pathogens that cause devastating plant diseases on economically important crops. Plasmopara viticola is the causal agent of grapevine downy mildew, a major disease in vineyards worldwide. We sequenced the genome of Pl. viticola with PacBio long reads an...

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Autores principales: Dussert, Yann, Mazet, Isabelle D, Couture, Carole, Gouzy, Jérôme, Piron, Marie-Christine, Kuchly, Claire, Bouchez, Olivier, Rispe, Claude, Mestre, Pere, Delmotte, François
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6660063/
https://www.ncbi.nlm.nih.gov/pubmed/30847481
http://dx.doi.org/10.1093/gbe/evz048
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author Dussert, Yann
Mazet, Isabelle D
Couture, Carole
Gouzy, Jérôme
Piron, Marie-Christine
Kuchly, Claire
Bouchez, Olivier
Rispe, Claude
Mestre, Pere
Delmotte, François
author_facet Dussert, Yann
Mazet, Isabelle D
Couture, Carole
Gouzy, Jérôme
Piron, Marie-Christine
Kuchly, Claire
Bouchez, Olivier
Rispe, Claude
Mestre, Pere
Delmotte, François
author_sort Dussert, Yann
collection PubMed
description Downy mildews are obligate biotrophic oomycete pathogens that cause devastating plant diseases on economically important crops. Plasmopara viticola is the causal agent of grapevine downy mildew, a major disease in vineyards worldwide. We sequenced the genome of Pl. viticola with PacBio long reads and obtained a new 92.94 Mb assembly with high contiguity (359 scaffolds for a N50 of 706.5 kb) due to a better resolution of repeat regions. This assembly presented a high level of gene completeness, recovering 1,592 genes encoding secreted proteins involved in plant–pathogen interactions. Plasmopara viticola had a two-speed genome architecture, with secreted protein-encoding genes preferentially located in gene-sparse, repeat-rich regions and evolving rapidly, as indicated by pairwise dN/dS values. We also used short reads to assemble the genome of Plasmopara muralis, a closely related species infecting grape ivy (Parthenocissus tricuspidata). The lineage-specific proteins identified by comparative genomics analysis included a large proportion of RxLR cytoplasmic effectors and, more generally, genes with high dN/dS values. We identified 270 candidate genes under positive selection, including several genes encoding transporters and components of the RNA machinery potentially involved in host specialization. Finally, the Pl. viticola genome assembly generated here will allow the development of robust population genomics approaches for investigating the mechanisms involved in adaptation to biotic and abiotic selective pressures in this species.
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spelling pubmed-66600632019-08-05 A High-Quality Grapevine Downy Mildew Genome Assembly Reveals Rapidly Evolving and Lineage-Specific Putative Host Adaptation Genes Dussert, Yann Mazet, Isabelle D Couture, Carole Gouzy, Jérôme Piron, Marie-Christine Kuchly, Claire Bouchez, Olivier Rispe, Claude Mestre, Pere Delmotte, François Genome Biol Evol Research Article Downy mildews are obligate biotrophic oomycete pathogens that cause devastating plant diseases on economically important crops. Plasmopara viticola is the causal agent of grapevine downy mildew, a major disease in vineyards worldwide. We sequenced the genome of Pl. viticola with PacBio long reads and obtained a new 92.94 Mb assembly with high contiguity (359 scaffolds for a N50 of 706.5 kb) due to a better resolution of repeat regions. This assembly presented a high level of gene completeness, recovering 1,592 genes encoding secreted proteins involved in plant–pathogen interactions. Plasmopara viticola had a two-speed genome architecture, with secreted protein-encoding genes preferentially located in gene-sparse, repeat-rich regions and evolving rapidly, as indicated by pairwise dN/dS values. We also used short reads to assemble the genome of Plasmopara muralis, a closely related species infecting grape ivy (Parthenocissus tricuspidata). The lineage-specific proteins identified by comparative genomics analysis included a large proportion of RxLR cytoplasmic effectors and, more generally, genes with high dN/dS values. We identified 270 candidate genes under positive selection, including several genes encoding transporters and components of the RNA machinery potentially involved in host specialization. Finally, the Pl. viticola genome assembly generated here will allow the development of robust population genomics approaches for investigating the mechanisms involved in adaptation to biotic and abiotic selective pressures in this species. Oxford University Press 2019-03-07 /pmc/articles/PMC6660063/ /pubmed/30847481 http://dx.doi.org/10.1093/gbe/evz048 Text en © The Author(s) 2019. Published by Oxford University Press on behalf of the Society for Molecular Biology and Evolution. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Dussert, Yann
Mazet, Isabelle D
Couture, Carole
Gouzy, Jérôme
Piron, Marie-Christine
Kuchly, Claire
Bouchez, Olivier
Rispe, Claude
Mestre, Pere
Delmotte, François
A High-Quality Grapevine Downy Mildew Genome Assembly Reveals Rapidly Evolving and Lineage-Specific Putative Host Adaptation Genes
title A High-Quality Grapevine Downy Mildew Genome Assembly Reveals Rapidly Evolving and Lineage-Specific Putative Host Adaptation Genes
title_full A High-Quality Grapevine Downy Mildew Genome Assembly Reveals Rapidly Evolving and Lineage-Specific Putative Host Adaptation Genes
title_fullStr A High-Quality Grapevine Downy Mildew Genome Assembly Reveals Rapidly Evolving and Lineage-Specific Putative Host Adaptation Genes
title_full_unstemmed A High-Quality Grapevine Downy Mildew Genome Assembly Reveals Rapidly Evolving and Lineage-Specific Putative Host Adaptation Genes
title_short A High-Quality Grapevine Downy Mildew Genome Assembly Reveals Rapidly Evolving and Lineage-Specific Putative Host Adaptation Genes
title_sort high-quality grapevine downy mildew genome assembly reveals rapidly evolving and lineage-specific putative host adaptation genes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6660063/
https://www.ncbi.nlm.nih.gov/pubmed/30847481
http://dx.doi.org/10.1093/gbe/evz048
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