Two microsatellite markers that flank the major soybean cyst nematode resistance locus

被引:56
作者
Mudge, J
Cregan, PB
Kenworthy, JP
Kenworthy, WJ
Orf, JH
Young, ND
机构
[1] UNIV MINNESOTA,DEPT PLANT PATHOL,ST PAUL,MN 55108
[2] UNIV MINNESOTA,DEPT AGRON & PLANT GENET,ST PAUL,MN 55108
[3] ARS,USDA,SOYBEAN & ALFALFA RES LAB,BELTSVILLE,MD 20705
[4] UNIV MARYLAND,DEPT AGRON,COLLEGE PK,MD 20742
关键词
D O I
10.2135/cropsci1997.0011183X003700050034x
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
The use of resistant cultivars is the most effective method for controlling soybean cyst nematode (Heterodera glycines Ichinoe; SCN) on soybean [Glycine max (L.) Merrill]. However, resistance to SCN is oligogenic, making inheritance patterns complex and breeding difficult. One major partial-resistance locus for SCN resistance is located on molecular Linkage group (MLG) 'G'. This locus controls more than 50% of variation associated with response to SCN and resistant alleles are present in many important sources of SCN resistance, including PI 209332, PI 88788, PI 90763, PI 437654, and 'Peking'. Restriction fragment length polymorphisms (RFLPs) Linked to the major SCN resistance alleles on MLG G have proven effective in tracking the alleles and predicting SCN response. These RFLPs are much more efficient in terms of time and labor than greenhouse assays for SCN. Nevertheless, more efficient DNA markers are needed to screen the many lines required for marker-assisted selection. Polymerase chain reaction-based markers, such as microsatellites (simple sequence repeats), have been sought because they are faster, less expensive, more polymorphic, and require less labor than RFLPs. In this study, we report two microsatellites, BARC-Satt038 and BARC-Satt130, that flank the major SCN resistance locus on MLG G. These microsatellites efficiently identify the chromosome fragment carrying the resistance allele and are also good predictors of SCN phenotype response.
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页码:1611 / 1615
页数:5
相关论文
共 30 条
[1]   INTEGRATION OF SIMPLE SEQUENCE REPEAT DNA MARKERS INTO A SOYBEAN LINKAGE MAP [J].
AKKAYA, MS ;
SHOEMAKER, RC ;
SPECHT, JE ;
BHAGWAT, AA ;
CREGAN, PB .
CROP SCIENCE, 1995, 35 (05) :1439-1445
[2]  
AKKAYA MS, 1992, GENETICS, V132, P1131
[3]  
ANAND SC, 1983, J NEMATOL, V15, P120
[4]   IDENTIFICATION OF ADDITIONAL SOYBEAN GERM PLASM WITH RESISTANCE TO RACE 3 OF THE SOYBEAN CYST NEMATODE [J].
ANAND, SC ;
GALLO, KM .
PLANT DISEASE, 1984, 68 (07) :593-595
[5]  
[Anonymous], BIOL MANAGEMENT SOYB
[6]  
CAVINESS CE, 1992, BIOLOGY AND MANAGEMENT OF THE SOYBEAN CYST NEMATODE, P143
[7]   RFLP mapping and marker-assisted selection of soybean cyst nematode resistance in PI 209332 [J].
Concibido, VC ;
Denny, RL ;
Lange, DA ;
Orf, JH ;
Young, ND .
CROP SCIENCE, 1996, 36 (06) :1643-1650
[8]   Targeted comparative genome analysis and qualitative mapping of a major partial-resistance gene to the soybean cyst nematode [J].
Concibido, VC ;
Young, ND ;
Lange, DA ;
Denny, RL ;
Danesh, D ;
Orf, JH .
THEORETICAL AND APPLIED GENETICS, 1996, 93 (1-2) :234-241
[9]   Genome mapping of soybean cyst nematode resistance genes in 'Peking', PI 90763, and PI 88788 using DNA markers [J].
Concibido, VC ;
Lange, DA ;
Denny, RL ;
Orf, JH ;
Young, ND .
CROP SCIENCE, 1997, 37 (01) :258-264
[10]   DNA MARKER ANALYSIS OF LOCI UNDERLYING RESISTANCE TO SOYBEAN CYST-NEMATODE (HETERODERA-GLYCINES ICHINOHE) [J].
CONCIBIDO, VC ;
DENNY, RL ;
BOUTIN, SR ;
HAUTEA, R ;
ORF, JH ;
YOUNG, ND .
CROP SCIENCE, 1994, 34 (01) :240-246