SSR mapping and confirmation of the QTL from PI96354 conditioning soybean resistance to southern root-knot nematode

被引:76
作者
Li, Z
Jakkula, L
Hussey, RS
Tamulonis, JP
Boerma, HR [1 ]
机构
[1] Univ Georgia, Dept Crop & Soil Sci, Athens, GA 30602 USA
[2] Univ Georgia, Dept Plant Pathol, Athens, GA 30602 USA
[3] Monsanto Co, Ames, IA 50010 USA
关键词
marker-assisted selection; quantitative trait loci; simple sequence repeats; Meloidogyne incognita; Glycine max;
D O I
10.1007/s001220100672
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Root-knot nematodes (Meloidogyne spp.) can cause severe yield loss of soybean [Glycine max (L.) Merr.] in the southern production region of the USA. Planting root-knot nematode-resistant cultivars is the most effective method of preventing yield loss. DNA marker-assisted breeding may accelerate the development of root-knot nematode-resistant cultivars. RFLP markers have previously been used to identify quantitative trait loci (QTLs) conferring resistance to southern root-knot nematode [Meloidogyne_incognita (Kofoid and White) Chitwood] (Mi) in a F-2:3 soybean population created by crossing the resistant PI96354 and the susceptible 'Bossier.' A major QTL On linkage group (LG) O conditioning 31% of the variation in Mi gall number and a minor QTL on LG-G conditioning 14% of the gall variation were reported. With the development of SSR markers for soybean improvement, a higher level of mapping resolution and semi-automated detection has become possible. The objectives of this research were: (1) to increase the marker density in the genomic regions of the QTLs for Mi resistance on LG-O and LG-G with SSR markers, and (2) to confirm the effect of the QTLs in a second population and a different genetic back, Ground. With SSR markers, the QTL on LG-O was flanked by Satt492 and Satt358, and on LG-G by Satt012 and Satt505. Utilizing SSR markers flanking the two QTLs, marker-assisted selection was performed in a second F-2:3 population of PI96354X Bossier. Results confirmed the effectiveness of marker-assisted selection to predict the Mi phenotypes. By screening the BC2F2 Population of Prichard (3)XG93-9009 we confirmed that selection for the minor QTL on LG-G with flanking SSR markers would enhance the resistance of lines containing, the major QTL (which is most-likely Rmil).
引用
收藏
页码:1167 / 1173
页数:7
相关论文
共 23 条
[11]  
Lincoln S., 1992, Mapping genes controlling quantitative traits with MAPMAKER/QTL 1.1, V2nd
[12]  
Lincoln SE., 1992, CONSTRUCTING GENETIC
[13]   Registration of southern root-knot nematode resistant soybean germplasm line G93-9009 [J].
Luzzi, BM ;
Boerma, HR ;
Hussey, RS ;
Phillips, DV ;
Tamulonis, JP ;
Finnerty, SL ;
Wood, ED .
CROP SCIENCE, 1996, 36 (03) :823-823
[14]   A GENE FOR RESISTANCE TO THE SOUTHERN ROOT-KNOT NEMATODE IN SOYBEAN [J].
LUZZI, BM ;
BOERMA, HR ;
HUSSEY, RS .
JOURNAL OF HEREDITY, 1994, 85 (06) :484-486
[15]   INHERITANCE OF RESISTANCE TO THE SOUTHERN ROOT-KNOT NEMATODE IN SOYBEAN [J].
LUZZI, BM ;
BOERMA, HR ;
HUSSEY, RS .
CROP SCIENCE, 1994, 34 (05) :1240-1243
[16]   RESISTANCE TO 3 SPECIES OF ROOT-KNOT NEMATODE IN SOYBEAN [J].
LUZZI, BM ;
BOERMA, HR ;
HUSSEY, RS .
CROP SCIENCE, 1987, 27 (02) :258-262
[17]   MICROSATELLITE AND AMPLIFIED SEQUENCE LENGTH POLYMORPHISMS IN CULTIVATED AND WILD SOYBEAN [J].
MAUGHAN, PJ ;
MAROOF, MAS ;
BUSS, GR .
GENOME, 1995, 38 (04) :715-723
[18]   Application of multiplex PCR and fluorescence-based, semi-automated allele sizing technology for genotyping plant genetic resources [J].
Mitchell, SE ;
Kresovich, S ;
Jester, CA ;
Hernandez, CJ ;
SzewcMcFadden, AK .
CROP SCIENCE, 1997, 37 (02) :617-624
[19]   THE USE OF MICROSATELLITE DNA MARKERS FOR SOYBEAN GENOTYPE IDENTIFICATION [J].
RONGWEN, J ;
AKKAYA, MS ;
BHAGWAT, AA ;
LAVI, U ;
CREGAN, PB .
THEORETICAL AND APPLIED GENETICS, 1995, 90 (01) :43-48
[20]  
*SAS I, 1989, SAS STAT US GUID VER, V1