Association analysis of historical bread wheat germplasm using additive genetic covariance of relatives and population structure

被引:319
作者
Crossa, Jose
Burgueno, Juan
Dreisigacker, Susanne
Vargas, Mateo
Herrera-Foessel, Sybil A.
Lillemo, Morten
Singh, Ravi P.
Trethowan, Richard
Warburton, Marilyn
Franco, Jorge
Reynolds, Matthew
Crouch, Jonathan H.
Ortiz, Rodomiro
机构
[1] CIMMYT, Crop Res Informat Lab, Biometr & Stat Unit, Int Maize & Wheat Inprovement Ctr, Mexico City 06600, DF, Mexico
[2] Norwegian Univ Life Sci, Dept Plant & Environm Sci, N-1432 As, Norway
[3] Univ Sydney, Camden, NSW 2570, Australia
[4] Univ Republ Uruguay, Fac Agron, Montevideo 12900, Uruguay
关键词
D O I
10.1534/genetics.107.078659
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Linkage disequilibrium can be used for identifying associations between traits of interest and genetic markers. This study used mapped diversity array technology (DArT) markers to find associations with resistance to stem rust, leaf rust, yellow rust, and powdery mildew, plus grain yield in five historical wheat international multienvironment trials from the International Maize and Wheat Improvement Center (CIMMYT). Two linear mixed models were used to assess marker-trait associations incorporating information on population structure and covariance between relatives. An integrated map containing 813 DArT markers and 831 other markers was constructed. Several linkage disequilibrium clusters bearing multiple host plant resistance genes were found. Most of the associated markers were found in genomic regions where previous reports had found genes or quantitative trait loci (QTL) influencing the same traits, providing an independent validation of this approach. In addition, many new chromosome regions for disease resistance and grain yield were identified in the wheat genome. Phenotyping across up to 60 environments and years allowed modeling of genotype X environment interaction, thereby making possible the identification of markers contributing to both additive and additive X additive interaction effects of traits.
引用
收藏
页码:1889 / 1913
页数:25
相关论文
共 111 条
[1]   Diversity arrays technology (DArT) for high-throughput profiling of the hexaploid wheat genome [J].
Akbari, Mona ;
Wenzl, Peter ;
Caig, Vanessa ;
Carling, Jason ;
Xia, Ling ;
Yang, Shiying ;
Uszynski, Grzegorz ;
Mohler, Volker ;
Lehmensiek, Anke ;
Kuchel, Haydn ;
Hayden, Mathew J. ;
Howes, Neil ;
Sharp, Peter ;
Vaughan, Peter ;
Rathmell, Bill ;
Huttner, Eric ;
Kilian, Andrzej .
THEORETICAL AND APPLIED GENETICS, 2006, 113 (08) :1409-1420
[2]  
ALI ML, 2007, PLANT AN GEN 15 C JA
[3]  
[Anonymous], 1998, Genetics and Analysis of Quantitative Traits (Sinauer)
[4]  
[Anonymous], PLANT BREEDING REV
[5]   Mixed-model QTL mapping for kernel hardness and dough strength in bread wheat [J].
Arbelbide, M ;
Bernardo, R .
THEORETICAL AND APPLIED GENETICS, 2006, 112 (05) :885-890
[6]   Identifying AFLP and microsatellite markers for vernalization response gene Vrn-B1 in hexaploid wheat using reciprocal mapping populations [J].
Barrett, B ;
Bayram, M ;
Kidwell, K .
PLANT BREEDING, 2002, 121 (05) :400-406
[7]   CONTROLLING THE FALSE DISCOVERY RATE - A PRACTICAL AND POWERFUL APPROACH TO MULTIPLE TESTING [J].
BENJAMINI, Y ;
HOCHBERG, Y .
JOURNAL OF THE ROYAL STATISTICAL SOCIETY SERIES B-STATISTICAL METHODOLOGY, 1995, 57 (01) :289-300
[8]   Mapping of quantitative trait loci determining agronomic important characters in hexaploid wheat (Triticum aestivum L.) [J].
Börner, A ;
Schumann, E ;
Fürste, A ;
Cöster, H ;
Leithold, B ;
Röder, MS ;
Weber, WE .
THEORETICAL AND APPLIED GENETICS, 2002, 105 (6-7) :921-936
[9]   A major QTL effect controlling resistance to powdery mildew in winter wheat at the adult plant stage [J].
Bougot, Y. ;
Lemoine, J. ;
Pavoine, M. T. ;
Guyomar'ch, H. ;
Gautier, V. ;
Muranty, H. ;
Barloy, D. .
PLANT BREEDING, 2006, 125 (06) :550-556
[10]   Quantitative trait loci for resistance against Yellow rust in two wheat-derived recombinant inbred line populations [J].
Boukhatem, N ;
Baret, PV ;
Mingeot, D ;
Jacquemin, JM .
THEORETICAL AND APPLIED GENETICS, 2002, 104 (01) :111-118