Quantitative trait loci for resistance to stripe rust of wheat revealed using global field nurseries and opportunities for stacking resistance genes

被引:21
|
作者
Bokore, Firdissa E. [1 ]
Cuthbert, Richard D. [1 ]
Knox, Ron E. [1 ]
Randhawa, Harpinder S. [2 ]
Hiebert, Colin W. [3 ]
DePauw, Ron M. [4 ]
Singh, Asheesh K. [5 ]
Singh, Arti [5 ]
Sharpe, Andrew G. [6 ]
N'Diaye, Amidou [7 ]
Pozniak, Curtis J. [7 ]
McCartney, Curt [3 ]
Ruan, Yuefeng [1 ]
Berraies, Samia [1 ]
Meyer, Brad [1 ]
Munro, Catherine [8 ]
Hay, Andy [8 ]
Ammar, Karim [9 ]
Huerta-Espino, Julio [10 ]
Bhavani, Sridhar [11 ]
机构
[1] Agr & Agri Food Canada, Swift Current Res & Dev Ctr, Swift Current, SK S9H 3X2, Canada
[2] Agr & Agri Food Canada, Lethbridge Res & Dev Ctr, 5403 1st Ave South, Lethbridge, AB T1J 4B1, Canada
[3] Agr & Agri Food Canada, Morden Res & Dev Ctr, 101 Route 100, Morden, MB R6M 1Y5, Canada
[4] Adv Wheat Technol, 870 Field Dr, Swift Current, SK S9H 4N5, Canada
[5] Iowa State Univ, Dept Agron, Ames, IA USA
[6] Natl Res Council Canada, 110 Gymnasium Pl, Saskatoon, SK S7N 0W9, Canada
[7] Univ Saskatchewan, Dept Plant Sci, Saskatoon, SK S7N 5A8, Canada
[8] Plant & Food Res Canterbury Agr & Sci Ctr, Gerald St, Lincoln 7608, New Zealand
[9] CIMMYT, Int Maize & Wheat Improvement Ctr, Apdo Postal 6-6-41, Mexico City 06600, DF, Mexico
[10] Campo Expt Valle Mexico INIFAP, Apdo Postal 10, Chapingo 56230, Mexico
[11] CIMMYT, Int Maize & Wheat Improvement Ctr, Nairobi, Kenya
关键词
ADULT-PLANT RESISTANCE; RED SPRING WHEAT; F-SP TRITICI; MULTIPLE FUNGAL PATHOGENS; LEAF RUST; POWDERY MILDEW; BREAD WHEAT; DURABLE RESISTANCE; YELLOW RUST; PROTEIN-CONTENT;
D O I
10.1007/s00122-017-2980-7
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Quantitative trait loci controlling stripe rust resistance were identified in adapted Canadian spring wheat cultivars providing opportunity for breeders to stack loci using marker-assisted breeding. Stripe rust or yellow rust, caused by Puccinia striiformis Westend. f. sp. tritici Erikss., is a devastating disease of common wheat (Triticum aestivum L.) in many regions of the world. The objectives of this research were to identify and map quantitative trait loci (QTL) associated with stripe rust resistance in adapted Canadian spring wheat cultivars that are effective globally, and investigate opportunities for stacking resistance. Doubled haploid (DH) populations from the crosses Vesper/Lillian, Vesper/Stettler, Carberry/Vesper, Stettler/Red Fife and Carberry/AC Cadillac were phenotyped for stripe rust severity and infection response in field nurseries in Canada (Lethbridge and Swift Current), New Zealand (Lincoln), Mexico (Toluca) and Kenya (Njoro), and genotyped with SNP markers. Six QTL for stripe rust resistance in the population of Vesper/Lillian, five in Vesper/Stettler, seven in Stettler/Red Fife, four in Carberry/Vesper and nine in Carberry/AC Cadillac were identified. Lillian contributed stripe rust resistance QTL on chromosomes 4B, 5A, 6B and 7D, AC Cadillac on 2A, 2B, 3B and 5B, Carberry on 1A, 1B, 4A, 4B, 7A and 7D, Stettler on 1A, 2A, 3D, 4A, 5B and 6A, Red Fife on 2D, 3B and 4B, and Vesper on 1B, 2B and 7A. QTL on 1A, 1B, 2A, 2B, 3B, 4A, 4B, 5B, 7A and 7D were observed in multiple parents. The populations are compelling sources of recombination of many stripe rust resistance QTL for stacking disease resistance. Gene pyramiding should be possible with little chance of linkage drag of detrimental genes as the source parents were mostly adapted cultivars widely grown in Canada.
引用
收藏
页码:2617 / 2635
页数:19
相关论文
共 50 条
  • [41] Quantitative Trait Loci for Resistance to Stripe Disease in Rice (Oryza sativa)
    SUN Dai-zhen1
    2 Institute of Crop Science
    3 College of Agriculture
    # These authors contributed equally to this paper)
    Rice Science, 2007, (02) : 157 - 160
  • [42] Mapping of Aegilops umbellulata-derived leaf rust and stripe rust resistance loci in wheat
    Bansal, M.
    Kaur, S.
    Dhaliwal, H. S.
    Bains, N. S.
    Bariana, H. S.
    Chhuneja, P.
    Bansal, U. K.
    PLANT PATHOLOGY, 2017, 66 (01) : 38 - 44
  • [43] Stripe rust resistance and genes in Chinese wheat cultivars and breeding lines
    Qing-Dong Zeng
    De-Jun Han
    Qi-Lin Wang
    Feng-Ping Yuan
    Jian-Hui Wu
    Li Zhang
    Xiao-Jie Wang
    Li-Li Huang
    Xian-Ming Chen
    Zhen-Sheng Kang
    Euphytica, 2014, 196 : 271 - 284
  • [44] Meta-QTLs and candidate genes for stripe rust resistance in wheat
    Jan, Irfat
    Saripalli, Gautam
    Kumar, Kuldeep
    Kumar, Anuj
    Singh, Rakhi
    Batra, Ritu
    Sharma, Pradeep Kumar
    Balyan, Harindra Singh
    Gupta, Pushpendra Kumar
    SCIENTIFIC REPORTS, 2021, 11 (01)
  • [45] Registration of five wheat isogenic lines for leaf rust and stripe rust resistance genes
    Chicaiza, O
    Khan, IA
    Zhang, X
    Brevis, JC
    Jackson, L
    Chen, X
    Dubcovsky, J
    CROP SCIENCE, 2006, 46 (01) : 485 - 487
  • [46] Meta-QTLs and candidate genes for stripe rust resistance in wheat
    Irfat Jan
    Gautam Saripalli
    Kuldeep Kumar
    Anuj Kumar
    Rakhi Singh
    Ritu Batra
    Pradeep Kumar Sharma
    Harindra Singh Balyan
    Pushpendra Kumar Gupta
    Scientific Reports, 11
  • [47] Stripe rust resistance genes in the UK winter wheat cultivar Claire
    Powell, N. M.
    Lewis, C. M.
    Berry, S. T.
    MacCormack, R.
    Boyd, L. A.
    THEORETICAL AND APPLIED GENETICS, 2013, 126 (06) : 1599 - 1612
  • [48] Stripe rust resistance and genes in Chinese wheat cultivars and breeding lines
    Zeng, Qing-Dong
    Han, De-Jun
    Wang, Qi-Lin
    Yuan, Feng-Ping
    Wu, Jian-Hui
    Zhang, Li
    Wang, Xiao-Jie
    Huang, Li-Li
    Chen, Xian-Ming
    Kang, Zhen-Sheng
    EUPHYTICA, 2014, 196 (02) : 271 - 284
  • [49] Postulation of Stripe Rust Resistance Genes in 44 Chinese Wheat Cultivars
    Xu Xiaodan
    Feng Jing
    Lin Ruiming
    Hussain, Khalid
    Xu Shichang
    Lin Feng
    INTERNATIONAL JOURNAL OF AGRICULTURE AND BIOLOGY, 2011, 13 (05) : 665 - 670
  • [50] Stripe rust resistance genes in the UK winter wheat cultivar Claire
    N. M. Powell
    C. M. Lewis
    S. T. Berry
    R. MacCormack
    L. A. Boyd
    Theoretical and Applied Genetics, 2013, 126 : 1599 - 1612