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Integrating genome annotation and QTL position to identify candidate genes for productivity, architecture and water-use efficiency in Populus spp.

Identifieur interne : 002A14 ( Main/Exploration ); précédent : 002A13; suivant : 002A15

Integrating genome annotation and QTL position to identify candidate genes for productivity, architecture and water-use efficiency in Populus spp.

Auteurs : Romain Monclus [France] ; Jean-Charles Leplé ; Catherine Bastien ; Pierre-François Bert ; Marc Villar ; Nicolas Marron ; Franck Brignolas ; Véronique Jorge

Source :

RBID : pubmed:23013168

Descripteurs français

English descriptors

Abstract

BACKGROUND

Hybrid poplars species are candidates for biomass production but breeding efforts are needed to combine productivity and water use efficiency in improved cultivars. The understanding of the genetic architecture of growth in poplar by a Quantitative Trait Loci (QTL) approach can help us to elucidate the molecular basis of such integrative traits but identifying candidate genes underlying these QTLs remains difficult. Nevertheless, the increase of genomic information together with the accessibility to a reference genome sequence (Populus trichocarpa Nisqually-1) allow to bridge QTL information on genetic maps and physical location of candidate genes on the genome. The objective of the study is to identify QTLs controlling productivity, architecture and leaf traits in a P. deltoides x P. trichocarpa F1 progeny and to identify candidate genes underlying QTLs based on the anchoring of genetic maps on the genome and the gene ontology information linked to genome annotation. The strategy to explore genome annotation was to use Gene Ontology enrichment tools to test if some functional categories are statistically over-represented in QTL regions.

RESULTS

Four leaf traits and 7 growth traits were measured on 330 F1 P. deltoides x P. trichocarpa progeny. A total of 77 QTLs controlling 11 traits were identified explaining from 1.8 to 17.2% of the variation of traits. For 58 QTLs, confidence intervals could be projected on the genome. An extended functional annotation was built based on data retrieved from the plant genome database Phytozome and from an inference of function using homology between Populus and the model plant Arabidopsis. Genes located within QTL confidence intervals were retrieved and enrichments in gene ontology (GO) terms were determined using different methods. Significant enrichments were found for all traits. Particularly relevant biological processes GO terms were identified for QTLs controlling number of sylleptic branches: intervals were enriched in GO terms of biological process like 'ripening' and 'adventitious roots development'.

CONCLUSION

Beyond the simple identification of QTLs, this study is the first to use a global approach of GO terms enrichment analysis to fully explore gene function under QTLs confidence intervals in plants. This global approach may lead to identification of new candidate genes for traits of interest.


DOI: 10.1186/1471-2229-12-173
PubMed: 23013168
PubMed Central: PMC3520807


Affiliations:


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<term>Crosses, Genetic (MeSH)</term>
<term>Genes, Plant (genetics)</term>
<term>Genetic Association Studies (MeSH)</term>
<term>Genetic Linkage (MeSH)</term>
<term>Genetic Markers (MeSH)</term>
<term>Genome, Plant (genetics)</term>
<term>Molecular Sequence Annotation (MeSH)</term>
<term>Plant Leaves (genetics)</term>
<term>Populus (anatomy & histology)</term>
<term>Populus (genetics)</term>
<term>Populus (growth & development)</term>
<term>Quantitative Trait Loci (genetics)</term>
<term>Quantitative Trait, Heritable (MeSH)</term>
<term>Water (metabolism)</term>
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<term>Annotation de séquence moléculaire (MeSH)</term>
<term>Caractère quantitatif héréditaire (MeSH)</term>
<term>Cartographie chromosomique (MeSH)</term>
<term>Croisements génétiques (MeSH)</term>
<term>Eau (métabolisme)</term>
<term>Feuilles de plante (génétique)</term>
<term>Gènes de plante (génétique)</term>
<term>Génome végétal (génétique)</term>
<term>Intervalles de confiance (MeSH)</term>
<term>Liaison génétique (MeSH)</term>
<term>Locus de caractère quantitatif (génétique)</term>
<term>Marqueurs génétiques (MeSH)</term>
<term>Populus (anatomie et histologie)</term>
<term>Populus (croissance et développement)</term>
<term>Populus (génétique)</term>
<term>Études d'associations génétiques (MeSH)</term>
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<term>Water</term>
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<term>Genetic Markers</term>
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<term>Populus</term>
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<term>Populus</term>
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<term>Populus</term>
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<term>Genome, Plant</term>
<term>Plant Leaves</term>
<term>Populus</term>
<term>Quantitative Trait Loci</term>
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<term>Populus</term>
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<term>Feuilles de plante</term>
<term>Gènes de plante</term>
<term>Génome végétal</term>
<term>Locus de caractère quantitatif</term>
<term>Populus</term>
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<term>Eau</term>
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<term>Chromosome Mapping</term>
<term>Confidence Intervals</term>
<term>Crosses, Genetic</term>
<term>Genetic Association Studies</term>
<term>Genetic Linkage</term>
<term>Molecular Sequence Annotation</term>
<term>Quantitative Trait, Heritable</term>
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<term>Caractère quantitatif héréditaire</term>
<term>Cartographie chromosomique</term>
<term>Croisements génétiques</term>
<term>Intervalles de confiance</term>
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<b>BACKGROUND</b>
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<p>Hybrid poplars species are candidates for biomass production but breeding efforts are needed to combine productivity and water use efficiency in improved cultivars. The understanding of the genetic architecture of growth in poplar by a Quantitative Trait Loci (QTL) approach can help us to elucidate the molecular basis of such integrative traits but identifying candidate genes underlying these QTLs remains difficult. Nevertheless, the increase of genomic information together with the accessibility to a reference genome sequence (Populus trichocarpa Nisqually-1) allow to bridge QTL information on genetic maps and physical location of candidate genes on the genome. The objective of the study is to identify QTLs controlling productivity, architecture and leaf traits in a P. deltoides x P. trichocarpa F1 progeny and to identify candidate genes underlying QTLs based on the anchoring of genetic maps on the genome and the gene ontology information linked to genome annotation. The strategy to explore genome annotation was to use Gene Ontology enrichment tools to test if some functional categories are statistically over-represented in QTL regions.</p>
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<b>RESULTS</b>
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<p>Four leaf traits and 7 growth traits were measured on 330 F1 P. deltoides x P. trichocarpa progeny. A total of 77 QTLs controlling 11 traits were identified explaining from 1.8 to 17.2% of the variation of traits. For 58 QTLs, confidence intervals could be projected on the genome. An extended functional annotation was built based on data retrieved from the plant genome database Phytozome and from an inference of function using homology between Populus and the model plant Arabidopsis. Genes located within QTL confidence intervals were retrieved and enrichments in gene ontology (GO) terms were determined using different methods. Significant enrichments were found for all traits. Particularly relevant biological processes GO terms were identified for QTLs controlling number of sylleptic branches: intervals were enriched in GO terms of biological process like 'ripening' and 'adventitious roots development'.</p>
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<b>CONCLUSION</b>
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<p>Beyond the simple identification of QTLs, this study is the first to use a global approach of GO terms enrichment analysis to fully explore gene function under QTLs confidence intervals in plants. This global approach may lead to identification of new candidate genes for traits of interest.</p>
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<AbstractText Label="BACKGROUND" NlmCategory="BACKGROUND">Hybrid poplars species are candidates for biomass production but breeding efforts are needed to combine productivity and water use efficiency in improved cultivars. The understanding of the genetic architecture of growth in poplar by a Quantitative Trait Loci (QTL) approach can help us to elucidate the molecular basis of such integrative traits but identifying candidate genes underlying these QTLs remains difficult. Nevertheless, the increase of genomic information together with the accessibility to a reference genome sequence (Populus trichocarpa Nisqually-1) allow to bridge QTL information on genetic maps and physical location of candidate genes on the genome. The objective of the study is to identify QTLs controlling productivity, architecture and leaf traits in a P. deltoides x P. trichocarpa F1 progeny and to identify candidate genes underlying QTLs based on the anchoring of genetic maps on the genome and the gene ontology information linked to genome annotation. The strategy to explore genome annotation was to use Gene Ontology enrichment tools to test if some functional categories are statistically over-represented in QTL regions.</AbstractText>
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