Meta-analysis of GWAS in canola blackleg (Leptosphaeria maculans) disease traits demonstrates increased power from imputed whole-genome sequence

被引:20
作者
Fikere, M. [1 ,2 ,3 ]
Barbulescu, D. M. [4 ]
Malmberg, M. M. [1 ,2 ]
Spangenberg, G. C. [1 ,2 ]
Cogan, N. O. I. [1 ,2 ]
Daetwyler, H. D. [1 ,2 ]
机构
[1] La Trobe Univ, Sch Appl Syst Biol, Bundoora, Vic 3086, Australia
[2] AgriBio, Agr Victoria, Ctr AgriBiosci, Bundoora, Vic 3083, Australia
[3] Univ Queensland, Queensland Alliance Agr & Food Innovat QAAFI, Brisbane, Qld 4072, Australia
[4] Agr Victoria, Grains Innovat Pk, Horsham, Vic 3401, Australia
关键词
BRASSICA-NAPUS; WIDE ASSOCIATION; OILSEED RAPE; GENOTYPE IMPUTATION; AUSTRALIAN CANOLA; AGRONOMIC TRAITS; RESISTANCE GENES; CAUSAL AGENT; MAJOR GENE; LOCI;
D O I
10.1038/s41598-020-71274-6
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Blackleg disease causes yield losses in canola (Brassica napus L.). To identify resistance genes and genomic regions, genome-wide association studies (GWAS) of 585 diverse winter and spring canola accessions were performed using imputed whole-genome sequence (WGS) and transcriptome genotype-by-sequencing (GBSt). Blackleg disease phenotypes were collected across three years in six trials. GWAS were performed in several ways and their respective power was judged by the number of significant single nucleotide polymorphisms (SNP), the false discovery rate (FDR), and the percentage of SNP that validated in additional field trials in two subsequent years. WGS GWAS with 1,234,708 million SNP detected a larger number of significant SNP, achieved a lower FDR and a higher validation rate than GBSt with 64,072 SNP. A meta-analysis combining survival and average internal infection resulted in lower FDR but also lower validation rates. The meta-analysis GWAS identified 79 genomic regions (674 SNP) conferring potential resistance to L. maculans. While several GWAS signals localised in regions of known Rlm genes, fifty-three new potential resistance regions were detected. Seventeen regions had underlying genes with putative functions related to disease defence or stress response in Arabidopsis thaliana. This study provides insight into the genetic architecture and potential molecular mechanisms underlying canola L. maculans resistance.
引用
收藏
页数:15
相关论文
共 91 条
[1]  
Alamery S, 2018, CROP PASTURE SCI, V69, P79, DOI [10.1071/CP17214, 10.1071/cp17214]
[2]  
[Anonymous], 2015, SPRING BLACKL MAN GU
[3]   The effects of sowing date and nitrogen availability during vegetative stages on Leptosphaeria maculans development on winter oilseed rape [J].
Aubertot, JN ;
Pinochet, X ;
Doré, T .
CROP PROTECTION, 2004, 23 (07) :635-645
[4]   The sunflower genome provides insights into oil metabolism, flowering and Asterid evolution [J].
Badouin, Helene ;
Gouzy, Jerome ;
Grassa, Christopher J. ;
Murat, Florent ;
Staton, S. Evan ;
Cottret, Ludovic ;
Lelandais-Briere, Christine ;
Owens, Gregory L. ;
Carrere, Sebastien ;
Mayjonade, Baptiste ;
Legrand, Ludovic ;
Gill, Navdeep ;
Kane, Nolan C. ;
Bowers, John E. ;
Hubner, Sariel ;
Bellec, Arnaud ;
Berard, Aurelie ;
Berges, Helene ;
Blanchet, Nicolas ;
Boniface, Marie-Claude ;
Brunel, Dominique ;
Catrice, Olivier ;
Chaidir, Nadia ;
Claudel, Clotilde ;
Donnadieu, Cecile ;
Faraut, Thomas ;
Fievet, Ghislain ;
Helmstetter, Nicolas ;
King, Matthew ;
Knapp, Steven J. ;
Lai, Zhao ;
Le Paslier, Marie-Christine ;
Lippi, Yannick ;
Lorenzon, Lolita ;
Mandel, Jennifer R. ;
Marage, Gwenola ;
Marchand, Gwenaelle ;
Marquand, Elodie ;
Bret-Mestries, Emmanuelle ;
Morien, Evan ;
Nambeesan, Savithri ;
Thuy Nguyen ;
Pegot-Espagnet, Prune ;
Pouilly, Nicolas ;
Raftis, Frances ;
Sallet, Erika ;
Schiex, Thomas ;
Thomas, Justine ;
Vandecasteele, Celine ;
Vares, Didier .
NATURE, 2017, 546 (7656) :148-+
[5]   New avirulence genes in the phytopathogenic fungus Leptosphaeria maculans [J].
Balesdent, MH ;
Attard, A ;
Kühn, AL ;
Rouxel, T .
PHYTOPATHOLOGY, 2002, 92 (10) :1122-1133
[6]   Plant pan-genomes are the new reference [J].
Bayer, Philipp E. ;
Golicz, Agnieszka A. ;
Scheben, Armin ;
Batley, Jacqueline ;
Edwards, David .
NATURE PLANTS, 2020, 6 (08) :914-920
[7]   Detailed phenotyping identifies genes with pleiotropic effects on body composition [J].
Bolormaa, Sunduimijid ;
Hayes, Ben J. ;
van der Werf, Julius H. J. ;
Pethick, David ;
Goddard, Michael E. ;
Daetwyler, Hans D. .
BMC GENOMICS, 2016, 17
[8]   A Multi-Trait, Meta-analysis for Detecting Pleiotropic Polymorphisms for Stature, Fatness and Reproduction in Beef Cattle [J].
Bolormaa, Sunduimijid ;
Pryce, Jennie E. ;
Reverter, Antonio ;
Zhang, Yuandan ;
Barendse, William ;
Kemper, Kathryn ;
Tier, Bruce ;
Savin, Keith ;
Hayes, Ben J. ;
Goddard, Michael E. .
PLOS GENETICS, 2014, 10 (03)
[9]   Meta-analysis of genome-wide association studies for cattle stature identifies common genes that regulate body size in mammals [J].
Bouwman, Aniek C. ;
Daetwyler, Hans D. ;
Chamberlain, Amanda J. ;
Ponce, Carla Hurtado ;
Sargolzaei, Mehdi ;
Schenkel, Flavio S. ;
Sahana, Goutam ;
Govignon-Gion, Armelle ;
Boitard, Simon ;
Dolezal, Marlies ;
Pausch, Hubert ;
Brondum, Rasmus F. ;
Bowman, Phil J. ;
Thomsen, Bo ;
Guldbrandtsen, Bernt ;
Lund, Mogens S. ;
Servin, Bertrand ;
Garrick, Dorian J. ;
Reecy, James ;
Vilkki, Johanna ;
Bagnato, Alessandro ;
Wang, Min ;
Hoff, Jesse L. ;
Schnabel, Robert D. ;
Taylor, Jeremy F. ;
Vinkhuyzen, Anna A. E. ;
Panitz, Frank ;
Bendixen, Christian ;
Holm, Lars-Erik ;
Gredler, Birgit ;
Hoze, Chris ;
Boussaha, Mekki ;
Sanchez, Marie-Pierre ;
Rocha, Dominique ;
Capitan, Aurelien ;
Tribout, Thierry ;
Barbat, Anne ;
Croiseau, Pascal ;
Drogemueller, Cord ;
Jagannathan, Vidhya ;
Jagt, Christy Vander ;
Crowley, John J. ;
Bieber, Anna ;
Purfield, Deirdre C. ;
Berry, Donagh P. ;
Emmerling, Reiner ;
Goetz, Kay-Uwe ;
Frischknecht, Mirjam ;
Russ, Ingolf ;
Soelkner, Johann .
NATURE GENETICS, 2018, 50 (03) :362-+
[10]   Genotype Imputation with Millions of Reference Samples [J].
Browning, Brian L. ;
Browning, Sharon R. .
AMERICAN JOURNAL OF HUMAN GENETICS, 2016, 98 (01) :116-126