The sunflower genome provides insights into oil metabolism, flowering and Asterid evolution

Hélène Badouin(Centre National de la Recherche Scientifique), Jérôme Gouzy(Université Fédérale de Toulouse Midi-Pyrénées), Christopher J. Grassa(Université Fédérale de Toulouse Midi-Pyrénées), Florent Murat(Génétique, Diversité, Écophysiologie des Céréales), S. Evan Staton(University of British Columbia), Ludovic Cottret(Centre National de la Recherche Scientifique), Christine Lelandais‐Brière(Centre National de la Recherche Scientifique), Gregory L. Owens(University of British Columbia), Sébastien Carrère(Université Fédérale de Toulouse Midi-Pyrénées), Baptiste Mayjonade(Centre National de la Recherche Scientifique), Ludovic Legrand(Centre National de la Recherche Scientifique), Navdeep Gill(University of British Columbia), Nolan C. Kane(University of Colorado Boulder), John E. Bowers(University of Georgia), Sariel Hübner(Tel Hai Academic College), Arnaud Bellec(Laboratoire de Recherche en Sciences Végétales), Aurélie Berard(Commissariat à l'Énergie Atomique et aux Énergies Alternatives), Hélène Bergès(Laboratoire de Recherche en Sciences Végétales), Nicolas Blanchet(Université Fédérale de Toulouse Midi-Pyrénées), Marie‐Claude Boniface(Centre National de la Recherche Scientifique), Dominique Brunel(Commissariat à l'Énergie Atomique et aux Énergies Alternatives), Olivier Catrice(Centre National de la Recherche Scientifique), Nadia Chaidir(University of British Columbia), Clotilde Claudel(Biogemma (France)), Cécile Donnadieu, Thomas Faraut(Génétique Physiologie et Systèmes d'Elevage), Ghislain Fievet(Université Fédérale de Toulouse Midi-Pyrénées), Nicolas Helmstetter(Laboratoire de Recherche en Sciences Végétales), Matthew King(University of British Columbia), Steven J. Knapp(University of California, Davis), Zhao Lai(Indiana University Bloomington), Marie‐Christine Le Paslier(Commissariat à l'Énergie Atomique et aux Énergies Alternatives), Yannick Lippi(Université Fédérale de Toulouse Midi-Pyrénées), Lolita Lorenzon(Centre National de la Recherche Scientifique), Jennifer R. Mandel(University of Memphis), Gwenola Marage(Université Fédérale de Toulouse Midi-Pyrénées), Gwenaëlle Marchand(Centre National de la Recherche Scientifique), Elodie Marquand(Commissariat à l'Énergie Atomique et aux Énergies Alternatives), Emmanuelle Bret-Mestries(École Nationale Supérieure Agronomique de Toulouse), Evan Morien(University of British Columbia), Savithri U. Nambeesan(University of Georgia), Thuy Nguyen(University of British Columbia), Prune Pegot-Espagnet(Université Fédérale de Toulouse Midi-Pyrénées), Nicolas Pouilly(Centre National de la Recherche Scientifique), Frances Raftis(University of British Columbia), Erika Sallet(Université Fédérale de Toulouse Midi-Pyrénées), Thomas Schiex(Université Fédérale de Toulouse Midi-Pyrénées), Justine Thomas(Université Fédérale de Toulouse Midi-Pyrénées), Céline Vandecasteele, Didier Varès(Centre National de la Recherche Scientifique), Félicity Vear(Génétique, Diversité, Écophysiologie des Céréales), Sonia Vautrin(Laboratoire de Recherche en Sciences Végétales), Martín Crespi(Centre National de la Recherche Scientifique), Brigitte Mangin(Centre National de la Recherche Scientifique), John M. Burke(University of Georgia), Jérôme Salse(Génétique, Diversité, Écophysiologie des Céréales), Stéphane Muños(Université Fédérale de Toulouse Midi-Pyrénées), Patrick Vincourt(Centre National de la Recherche Scientifique), Loren H. Rieseberg(Indiana University Bloomington), Nicolas Langlade(Centre National de la Recherche Scientifique)
Nature
May 18, 2017
Cited by 832Open Access
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Abstract

A high-quality reference for the sunflower genome (Helianthus annuus L.) and analysis of gene networks involved in flowering time and oil metabolism provide a basis for nutritional exploitation and analyses of adaptation to climate change. Nicolas Langlade and colleagues report the genome sequence of the domesticated sunflower, Helianthus annuus L., a global oil crop that can maintain stable yields across a wide range of environmental conditions. Their comparative analyses provide insights into the evolutionary history of Asterids. They also analysed transcriptomic data from vegetative and floral organs, re-sequenced 80 domesticated lines and performed genome-wide association studies identifying 35 loci associated with flowering time. These resources will be useful in breeding programs as well as ecological and evolutionary studies. The domesticated sunflower, Helianthus annuus L., is a global oil crop that has promise for climate change adaptation, because it can maintain stable yields across a wide variety of environmental conditions, including drought1. Even greater resilience is achievable through the mining of resistance alleles from compatible wild sunflower relatives2,3, including numerous extremophile species4. Here we report a high-quality reference for the sunflower genome (3.6 gigabases), together with extensive transcriptomic data from vegetative and floral organs. The genome mostly consists of highly similar, related sequences5 and required single-molecule real-time sequencing technologies for successful assembly. Genome analyses enabled the reconstruction of the evolutionary history of the Asterids, further establishing the existence of a whole-genome triplication at the base of the Asterids II clade6 and a sunflower-specific whole-genome duplication around 29 million years ago7. An integrative approach combining quantitative genetics, expression and diversity data permitted development of comprehensive gene networks for two major breeding traits, flowering time and oil metabolism, and revealed new candidate genes in these networks. We found that the genomic architecture of flowering time has been shaped by the most recent whole-genome duplication, which suggests that ancient paralogues can remain in the same regulatory networks for dozens of millions of years. This genome represents a cornerstone for future research programs aiming to exploit genetic diversity to improve biotic and abiotic stress resistance and oil production, while also considering agricultural constraints and human nutritional needs8,9.


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