A Combination of Leaf Rust Resistance Genes, Including Lr34 and Lr46, Is the Key to the Durable Resistance of the Canadian Wheat Cultivar, Carberry

被引:21
作者
Bokore, Firdissa E. [1 ]
Knox, Ron E. [1 ]
Hiebert, Colin W. [2 ]
Cuthbert, Richard D. [1 ]
DePauw, Ron M. [1 ]
Meyer, Brad [1 ]
N'Diaye, Amidou [3 ]
Pozniak, Curtis J. [3 ]
McCallum, Brent D. [2 ]
机构
[1] Agr & Agrifood Canada AAFC, Swift Current Res & Dev Ctr, Swift Current, SK, Canada
[2] Agr & Agrifood Canada Morden, Morden Res & Dev Ctr, Morden, MB, Canada
[3] Univ Saskatchewan, Dept Plant Sci, Saskatoon, SK, Canada
关键词
Triticum aestivum; leaf rust; QTL mapping; SNP markers; gene combination; SPRING WHEAT; PUCCINIA-RECONDITA; STRIPE RUST; IDENTIFICATION; INHERITANCE; LOCI;
D O I
10.3389/fpls.2021.775383
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The hexaploid spring wheat cultivar, Carberry, was registered in Canada in 2009, and has since been grown over an extensive area on the Canadian Prairies. Carberry has maintained a very high level of leaf rust (Puccinia triticina Eriks.) resistance since its release. To understand the genetic basis of Carberry's leaf rust resistance, Carberry was crossed with the susceptible cultivar, Thatcher, and a doubled haploid (DH) population of 297 lines was generated. The DH population was evaluated for leaf rust in seven field environments at the adult plant stage. Seedling and adult plant resistance (APR) to multiple virulence phenotypes of P. triticina was evaluated on the parents and the progeny population in controlled greenhouse studies. The population was genotyped with the wheat 90 K iSelect single nucleotide polymorphism (SNP) array, and quantitative trait loci (QTL) analysis was performed. The analysis using field leaf rust response indicated that Carberry contributed nine QTL located on chromosomes 1B, 2B (2 loci), 2D, 4A, 4B, 5A, 5B, and 7D. The QTL located on 1B, 2B, 5B, and 7D chromosomes were observed in two or more environments, whereas the remainder were detected in single environments. The resistance on 1B, detected in five environments, was attributed to Lr46 and on 7D, detected in seven environments to Lr34. The first 2B QTL corresponded with the adult plant gene, Lr13, while the second QTL corresponded with Lr16. The seedling analysis showed that Carberry carries Lr2a, Lr16, and Lr23. Five epistatic effects were identified in the population, with synergistic interactions being observed for Lr34 with Lr46, Lr16, and Lr2a. The durable rust resistance of Carberry is attributed to Lr34 and Lr46 in combination with these other resistance genes, because the resistance has remained effective even though the P. triticina population has evolved virulent to Lr2a, Lr13, Lr16, and Lr23.
引用
收藏
页数:20
相关论文
共 54 条
[1]   Wheat diseases on the prairies: A Canadian story [J].
Aboukhaddour, Reem ;
Fetch, Thomas ;
McCallum, Brent D. ;
Harding, Michael W. ;
Beres, Brian L. ;
Graf, Robert J. .
PLANT PATHOLOGY, 2020, 69 (03) :418-432
[2]   Mapping quantitative trait loci associated with leaf rust resistance in five spring wheat populations using single nucleotide polymorphism markers [J].
Bokore, Firdissa E. ;
Knox, Ron E. ;
Cuthbert, Richard D. ;
Pozniak, Curtis J. ;
McCallum, Brent D. ;
N'Diaye, Amidou ;
DePauw, Ron M. ;
Campbell, Heather L. ;
Munro, Catherine ;
Singh, Arti ;
Hiebert, Colin W. ;
McCartney, Curt A. ;
Sharpe, Andrew G. ;
Singh, Asheesh K. ;
Spaner, Dean ;
Fowler, D. B. ;
Ruan, Yuefeng ;
Berraies, Samia ;
Meyer, Brad .
PLOS ONE, 2020, 15 (04)
[3]   Quantitative trait loci for resistance to stripe rust of wheat revealed using global field nurseries and opportunities for stacking resistance genes [J].
Bokore, Firdissa E. ;
Cuthbert, Richard D. ;
Knox, Ron E. ;
Randhawa, Harpinder S. ;
Hiebert, Colin W. ;
DePauw, Ron M. ;
Singh, Asheesh K. ;
Singh, Arti ;
Sharpe, Andrew G. ;
N'Diaye, Amidou ;
Pozniak, Curtis J. ;
McCartney, Curt ;
Ruan, Yuefeng ;
Berraies, Samia ;
Meyer, Brad ;
Munro, Catherine ;
Hay, Andy ;
Ammar, Karim ;
Huerta-Espino, Julio ;
Bhavani, Sridhar .
THEORETICAL AND APPLIED GENETICS, 2017, 130 (12) :2617-2635
[4]   Genome-wide comparative diversity uncovers multiple targets of selection for improvement in hexaploid wheat landraces and cultivars [J].
Cavanagh, Colin R. ;
Chao, Shiaoman ;
Wang, Shichen ;
Huang, Bevan Emma ;
Stephen, Stuart ;
Kiani, Seifollah ;
Forrest, Kerrie ;
Saintenac, Cyrille ;
Brown-Guedira, Gina L. ;
Akhunova, Alina ;
See, Deven ;
Bai, Guihua ;
Pumphrey, Michael ;
Tomar, Luxmi ;
Wong, Debbie ;
Kong, Stephan ;
Reynolds, Matthew ;
da Silva, Marta Lopez ;
Bockelman, Harold ;
Talbert, Luther ;
Anderson, James A. ;
Dreisigacker, Susanne ;
Baenziger, Stephen ;
Carter, Arron ;
Korzun, Viktor ;
Morrell, Peter Laurent ;
Dubcovsky, Jorge ;
Morell, Matthew K. ;
Sorrells, Mark E. ;
Hayden, Matthew J. ;
Akhunov, Eduard .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (20) :8057-8062
[5]  
DePauw RM, 2011, CAN J PLANT SCI, V91, P529, DOI [10.4141/CJPS10187, 10.4141/cjps10187]
[7]   INHERITANCE OF ADULT-PLANT LEAF RUST RESISTANCE DERIVED FROM COMMON WHEAT VARIETIES EXCHANGE AND FRONTANA [J].
DYCK, PL ;
SAMBORSK.DJ ;
ANDERSON, RG .
CANADIAN JOURNAL OF GENETICS AND CYTOLOGY, 1966, 8 (04) :665-&
[8]   The past, present and future of breeding rust resistant wheat [J].
Ellis, Jeffrey G. ;
Lagudah, Evans S. ;
Spielmeyer, Wolfgang ;
Dodds, Peter N. .
FRONTIERS IN PLANT SCIENCE, 2014, 5
[9]   Quantitative Trait Loci Associated with Phenological Development, Low-Temperature Tolerance, Grain Quality, and Agronomic Characters in Wheat (Triticum aestivum L.) [J].
Fowler, D. B. ;
N'Diaye, A. ;
Laudencia-Chingcuanco, D. ;
Pozniak, C. J. .
PLOS ONE, 2016, 11 (03)
[10]  
Hayes H., 1936, AGR EXP STN, V1936, P325