Pyramiding of Alleles from Multiple Sources Increases the Resistance of Soybean to Highly Virulent Soybean Cyst Nematode Isolates

被引:14
作者
Brzostowski, Lillian F. [1 ]
Diers, Brian W. [1 ]
机构
[1] Univ Illinois, Dept Crop Sci, 1101 W Peabody Dr, Urbana, IL 61801 USA
关键词
COPY NUMBER VARIATION; SCN RESISTANCE; PLANT INTRODUCTIONS; LOCI; REGISTRATION; QTL; RACE-3; GENES; YIELD;
D O I
10.2135/cropsci2016.12.1007
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Soybean cyst nematode (SCN) (Heterodera glycines Ichinohe) is estimated to be the pathogen that causes the greatest economic loss to soybean [Glycine max (L.) Merr.] in the United States. Genetic resistance is an effective way to manage SCN. Resistance sources have been identified, and quantitative trait loci (QTLs) conferring resistance from these sources have been mapped. However, there is a need to diversify SCN resistance genes in cultivars, as most grown in the northern United States have resistance tracing only to the source PI 88788. The objective of this study was to determine the effectiveness of combinations of SCN resistance alleles from different sources in two populations formed via backcrossing. Population 1 segregates for a resistance QTL from both PI 567516C and PI 88788, whereas Population 2 segregates for the same QTL as Population 1 and two QTLs from PI 468916. Lines from both populations were evaluated with two virulent nematode isolates. Furthermore, a subset of lines from Population 2 (Population 2 Subset) was evaluated with two additional nematode isolates. The SCN resistance alleles from each source significantly increased SCN resistance compared with the alternative alleles. The effect of resistance alleles varied depending on SCN isolate and population, and there was generally an increase in resistance as more resistance alleles were stacked together. These results indicate that stacking multiple sources of resistance can be an effective means to increase broad-spectrum SCN resistance.
引用
收藏
页码:2932 / 2941
页数:10
相关论文
共 56 条
[1]   Differential Reactions of Soybean Isolines With Combinations of Aphid Resistance Genes Rag1, Rag2, and Rag3 to Four Soybean Aphid Biotypes [J].
Ajayi-Oyetunde, O. O. ;
Diers, B. W. ;
Lagos-Kutz, D. ;
Hill, C. B. ;
Hartman, G. L. ;
Reuter-Carlson, U. ;
Bradley, C. A. .
JOURNAL OF ECONOMIC ENTOMOLOGY, 2016, 109 (03) :1431-1437
[2]   REGISTRATION OF HARTWIG SOYBEAN [J].
ANAND, SC .
CROP SCIENCE, 1992, 32 (04) :1069-1070
[3]   SOYBEAN PLANT INTRODUCTIONS WITH RESISTANCE TO RACE-4 OR RACE-5 OR SOYBEAN CYST NEMATODE [J].
ANAND, SC ;
GALLO, KM ;
BAKER, IA ;
HARTWIG, EE .
CROP SCIENCE, 1988, 28 (03) :563-564
[4]  
[Anonymous], 1998, CROP SCI, DOI DOI 10.2135/CROPSCI1998.0011183X003800030065X
[5]  
[Anonymous], 2014, Plant Health Progress, DOI DOI 10.1094/PHP-BR-14-0006
[6]  
Arelli P. R., 2010, HARTWIG CROP SCI, V13, P163, DOI DOI 10.1007/S12892-010-0060-Z
[7]   Soybean reaction to Races 1 and 2 of Heterodera glycines [J].
Arelli, PR ;
Sleper, DA ;
Yue, P ;
Wilcox, JA .
CROP SCIENCE, 2000, 40 (03) :824-826
[8]   Inheritance of resistance in soybean PI 567516C to LY1 nematode population infecting cv. Hartwig [J].
Arelli, Prakash R. ;
Young, Lawrence D. ;
Concibido, Vergel C. .
EUPHYTICA, 2009, 165 (01) :1-4
[9]   Potential of Association Mapping and Genomic Selection to Explore PI 88788 Derived Soybean Cyst Nematode Resistance [J].
Bao, Yong ;
Tri Vuong ;
Meinhardt, Clinton ;
Tiffin, Peter ;
Denny, Roxanne ;
Chen, Senyu ;
Nguyen, Henry T. ;
Orf, James H. ;
Young, Nevin D. .
PLANT GENOME, 2014, 7 (03)
[10]  
Brzostowski L.F., 2014, Plant Health Prog, DOI [DOI 10.1094/PHP-RS-13-0100, 10.1094/PHP-RS-13-0100, 10.1094/PHP-RS-13-0100.]