QTL analysis of kernel shape and weight using recombinant inbred lines in wheat

被引:203
作者
Sun, Xian-Yin [1 ,2 ]
Wu, Ke [2 ]
Zhao, Yan [1 ]
Kong, Fan-Mei [1 ]
Han, Guan-Zhu [1 ]
Jiang, Hong-Ming [1 ]
Huang, Xing-Jiao [1 ,3 ,4 ]
Li, Rui-Jun [1 ]
Wang, Hong-Gang [1 ]
Li, Si-Shen [1 ]
机构
[1] Shandong Agr Univ, Coll Agron, Natl Key Lab Crop Biol, Tai An 271018, Shandong, Peoples R China
[2] Taian Acad Agr Sci, Tai An 271000, Shandong, Peoples R China
[3] Yantai Acad Agr Sci, Yantai 265500, Peoples R China
[4] Heze Acad Agr Sci, Heze 274000, Peoples R China
关键词
Wheat; Quantitative trait locus; Recombinant inbred line; QUANTITATIVE TRAIT LOCI; AGRONOMIC TRAITS; GRAIN-YIELD; WINTER-WHEAT; TRITICUM-DICOCCOIDES; CHROMOSOME; 3A; GENETIC-MAP; IDENTIFICATION; CROSS; SIZE;
D O I
10.1007/s10681-008-9794-2
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Quantitative trait locus (QTL) analysis of kernel shape and weight in common wheat was conducted using a set of 131 recombinant inbred lines (RIL) derived from 'Chuan 35050' x 'Shannong 483'. The RIL and their two parental genotypes were evaluated for kernel length (KL), kernel width (KW), thousand-kernel weight (TKW), and test weight (TW) in four different environments. Twenty QTL were located on 12 chromosomes, 1A, 1B, 1D, 2A, 2B, 3B, 4A, 4B, 5D, 6A, 6B, and 7B, with single QTL in different environments explaining 5.9-26.4% of the phenotypic variation. Six, three, four, and seven QTL were detected for KL, KW, TKW, and TW, respectively. The additive effects for 17 QTL were positive with Chuan 35050 increasing the QTL effects, whereas the remaining three QTL were negative with Shannong 483 increasing the effects. Eight QTL (40%) were detected in two or more environments. Two QTL clusters relating to KW, TKW, and TW were located on chromosomes 2A and 5D, and the co-located QTL on chromosome 6A involved a QTL for KW found in two environments and a QTL for TKW detected in four environments.
引用
收藏
页码:615 / 624
页数:10
相关论文
共 31 条
[1]  
*AACC, 1995, OFF METH AN
[2]  
Aguirre A, 2002, CEREAL RES COMMUN, V30, P203
[3]   Identification of inter simple sequence repeat (ISSR) markers associated with seed size in wheat [J].
Ammiraju, JSS ;
Dholakia, BB ;
Santra, DK ;
Singh, H ;
Lagu, MD ;
Tamhankar, SA ;
Dhaliwal, HS ;
Rao, VS ;
Gupta, VS ;
Ranjekar, PK .
THEORETICAL AND APPLIED GENETICS, 2001, 102 (05) :726-732
[4]   Identification of genetic loci affecting amylose content and agronomic traits on chromosome 4A of wheat [J].
Araki, E ;
Miura, H ;
Sawada, S .
THEORETICAL AND APPLIED GENETICS, 1999, 98 (6-7) :977-984
[5]   Kernel morphology variation in a population derived from a soft by hard wheat cross and associations with end-use quality traits [J].
Bergman, CJ ;
Gualberto, DG ;
Campbell, KG ;
Sorrells, ME ;
Finney, PL .
JOURNAL OF FOOD QUALITY, 2000, 23 (04) :391-407
[6]  
Blair CP, 1992, THEOR APPL GENET, V83, P1022
[7]   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
[8]   Field evaluation of early vigour for genetic improvement of grain yield in wheat [J].
Botwright, TL ;
Condon, AG ;
Rebetzke, GJ ;
Richards, RA .
AUSTRALIAN JOURNAL OF AGRICULTURAL RESEARCH, 2002, 53 (10) :1137-1145
[9]   QTL analysis of kernel size and shape in two hexaploid wheat mapping populations [J].
Breseghello, Flavio ;
Sorrells, Mark E. .
FIELD CROPS RESEARCH, 2007, 101 (02) :172-179
[10]   Identification of QTLs and environmental interactions associated with agronomic traits on chromosome 3A of wheat [J].
Campbell, BT ;
Baenziger, PS ;
Gill, KS ;
Eskridge, KM ;
Budak, H ;
Erayman, M ;
Dweikat, I ;
Yen, Y .
CROP SCIENCE, 2003, 43 (04) :1493-1505