Quantifying novel sequence variation and selective advantage in synthetic hexaploid wheats and their backcross-derived lines using SSR markers

被引:55
作者
Zhang, PZ
Dreisigacker, S
Melchinger, AE
Reif, JC
Kazi, AM
Van Ginkel, M
Hoisington, D
Warburton, ML
机构
[1] CIMMYT, Int Maize & Wheat Improvement Ctr, Mexico City 06600, DF, Mexico
[2] Univ Hohenheim, Inst Plant Breeding Seed Sci & Populat Genet, D-70593 Stuttgart, Germany
关键词
gene diversity; simple sequence repeats; synthetic backcross-derived lines; synthetic hexaploid wheats;
D O I
10.1007/s11032-004-1167-5
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Synthetic hexaploid wheats (SHWs) and synthetic backcross-derived lines (SBLs) obtained from them are novel sources of useful traits for broadening the diversity in breeding germplasm of hexaploid bread wheat (Triticum aestivum). Fifty-one EST-derived and 39 genomic-derived microsatellite markers (SSRs) covering the A, B, and D genomes were used to assess the genetic diversity present in 11 SHWs, their backcross derived families, and their durum and bread wheat parents and to test for the selective advantage of SHW alleles in SBL families after several generations of selection. The 90 SSR markers amplified 91 loci with 474 alleles across all genotypes. In many of the SHWs, novel alleles were observed which were stably inherited in the SBL families. Gene diversity, the average number of alleles per locus, cluster analysis, and principal coordinate analysis revealed a high level of genetic diversity in the Aegilops tauschii and durum parents of the SHWs, and also in the SBLs. In the latter, alleles from the SHW parent had a selective advantage for six SSR markers. This indicates that SHWs and SBLs are a valuable resource for broadening the genetic base of elite wheat breeding germplasm. Fingerprinting of SBLs and their corresponding SHW and bread wheat parents, and testing for selective advantage of SHWs alleles promises to be a useful method for detecting chromosomal regions of interest for bread wheat improvement.
引用
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页码:1 / 10
页数:10
相关论文
共 40 条
[1]   Diversity changes in an intensively bred wheat germplasm during the 20th century [J].
Christiansen, MJ ;
Andersen, SB ;
Ortiz, R .
MOLECULAR BREEDING, 2002, 9 (01) :1-11
[2]   Physiological performance of synthetic hexaploid wheat-derived populations [J].
del Blanco, IA ;
Rajaram, S ;
Kronstad, WE ;
Reynolds, MP .
CROP SCIENCE, 2000, 40 (05) :1257-1263
[3]   Agronomic potential of synthetic hexaploid wheat-derived populations [J].
del Blanco, IA ;
Rajaram, S ;
Kronstad, WE .
CROP SCIENCE, 2001, 41 (03) :670-676
[4]   APPLICATION OF 2 MICROSATELLITE SEQUENCES IN WHEAT STORAGE PROTEINS AS MOLECULAR MARKERS [J].
DEVOS, KM ;
BRYAN, GJ ;
COLLINS, AJ ;
STEPHENSON, P ;
GALE, MD .
THEORETICAL AND APPLIED GENETICS, 1995, 90 (02) :247-252
[5]   RAPD marker variation among smooth bromegrass cultivars [J].
Diaby, M ;
Casler, MD .
CROP SCIENCE, 2003, 43 (04) :1538-1547
[6]  
Dreisigacker S, 2004, CROP SCI, V44, P381, DOI 10.2135/cropsci2004.0381
[7]  
DUFNER J, 2002, STAT SAS, P212
[8]   The structure of the Aegilops tauschii genepool and the evolution of hexaploid wheat [J].
Dvorak, J ;
Luo, MC ;
Yang, ZL ;
Zhang, HB .
THEORETICAL AND APPLIED GENETICS, 1998, 97 (04) :657-670
[9]   Isolation of EST-derived microsatellite markers for genotyping the A and B genomes of wheat [J].
Eujayl, I ;
Sorrells, ME ;
Baum, M ;
Wolters, P ;
Powell, W .
THEORETICAL AND APPLIED GENETICS, 2002, 104 (2-3) :399-407
[10]   PLABSIM: Software for simulation of marker-assisted backcrossing [J].
Frisch, M ;
Bohn, M ;
Melchinger, AE .
JOURNAL OF HEREDITY, 2000, 91 (01) :86-87