Molecular marker-assisted selection for enhanced yield in malting barley

被引:0
作者
Schmierer D.A. [1 ]
Kandemir N. [2 ]
Kudrna D.A. [3 ]
Jones B.L. [4 ]
Ullrich S.E. [1 ]
Kleinhofs A. [1 ,5 ]
机构
[1] Dept. of Crop and Soil Sciences, Washington State University, Pullman
[2] Gaziosmanpasa Universitesi, Ziraat Fakultesi, 60110, Tokat, Tarla Bitkileri Bolumu
[3] Arizona Genomics Institute, Dept. of Plant Sciences, University of Arizona, Tucson
[4] Cereal Crops Research Unit, USDA-ARS, Madison
[5] School of Molecular Biosciences, Washington State University, Pullman
关键词
Grain yield; Malting barley; Marker-assisted selection; QTL; RFLP;
D O I
10.1007/s11032-005-0903-9
中图分类号
学科分类号
摘要
Brewers are reluctant to change malting barley (Hordeum vulgare ssp. vulgare L.) cultivars due to concerns of altered flavor and brewing procedures. The U.S. Pacific Northwest is capable of producing high yielding, high quality malting barley but lacks adapted cultivars with desirable malting characteristics. Our goal was to develop high yielding near isogenic lines that maintain traditional malting quality characteristics by transferring quantitative trait loci (QTL) associated with yield, via molecular marker-assisted backcrossing, from the high yielding cv. Baronesse to the North American two-row malting barley industry standard cv. Harrington. For transfer, we targeted Baronesse chromosome 2HL and 3HL fragments presumed to contain QTL that affect yield. Analysis of genotype and yield data suggests that QTL reside at two regions, one on 2HL (ABG461C-MWG699) and one on 3HL (MWG571A-MWG961). Genotype and yield data indicate that additional Baronesse genome regions are probably involved, but need to be more precisely defined. Based on yield trials conducted over 22 environments and malting analyses from 6 environments, we selected one isogenic line (00-170) that has consistently produced yields equal to Baronesse while maintaining a Harrington-like malting quality profile. We conclude there is sufficient data to warrant experiments testing whether the 2HL and 3HL Baronesse QTL would be effective in increasing the yield of other low yielding barley cultivars. © 2004 Kluwer Academic Publishers.
引用
收藏
页码:463 / 473
页数:10
相关论文
共 33 条
[21]  
Mesfin A., Smith K.P., Dill-Macky R., Evans C.K., Waugh R., Gustus C.D., Muehlbauer G.J., Quantitative trait loci for Fusarium head blight resistance in barley detected in a two-rowed by six-rowed population, Crop Sci., 43, pp. 307-318, (2003)
[22]  
Moreau L., Charcosset A., Hospital F., Gallais A., Marker-assisted selection efficiency in populations of finite size, Genetics, 148, pp. 1353-1365, (1998)
[23]  
Paterson A.H., DeVerna J.W., Lanini B., Tanksley S.D., Fine mapping of quantitative trait loci using selected overlapping recombinant chromosomes, in an interspecies cross of tomato, Genetics, 124, pp. 735-742, (1990)
[24]  
Paterson A.H., Damon S., Hewitt J.D., Zamir D., Rabinowitch H.D., Lincoln S.E., Lander E.S., Tanksley S.D., Mendelian factors underlying quantitative traits in tomato: Comparison across species, generations, and environments, Genetics, 127, pp. 181-197, (1991)
[25]  
Romagosa I., Ullrich S.E., Han F., Hayes P.M., Use of the additive main effects and multiplicative interaction model in QTL mapping for adaptation in barley, Theor. Appl. Genet., 96, pp. 30-37, (1996)
[26]  
Romagosa I., Han F., Ullrich S.E., Hayes P.M., Wesenberg D.M., Verification of yield QTL through realized molecular marker-assisted selection response in a barley cross, Mol. Breed., 5, pp. 143-152, (1999)
[27]  
SAS Users Guide: Statistics, (1988)
[28]  
Schmierer D.A., Molecular Marker-assisted Selection for Yield in Traditional Malting Barley Cultivars, (2002)
[29]  
Stuber C.W., Breeding multigenic traits, DNA-based Markers in Plants, pp. 97-115, (1994)
[30]  
Takahashi Y., Shomura A., Sasaki T., Yano M., Hd6, a rice quantitative trait locus involved in photoperiod sensitivity, encodes the α subunit of protein kinase CK2, Proc. Natl. Acad. Sci. USA, 98, pp. 7922-7927, (2001)