Substitution mapping of Pup1:: a major QTL increasing phosphorus uptake of rice from a phosphorus-deficient soil

被引:215
作者
Wissuwa, M
Wegner, J
Ae, N
Yano, M
机构
[1] NIAES, Tsukuba, Ibaraki, Japan
[2] Natl Inst Agrobiol Sci, Tsukuba, Ibaraki, Japan
关键词
phosphorus deficiency; near-isogenic line; substitution mapping; marker-assisted selection; Oryza sativa;
D O I
10.1007/s00122-002-1051-9
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
A major QTL for P uptake had previously been mapped to a 13-cM marker interval on the long arm of chromosome 12. To map that major QTL with higher precision and certainty, a secondary mapping population was developed by backcrossing a near-isogenic line containing the QTL from the donor parent to the recurrent parent of low P uptake. Two different mapping strategies have been followed in this study. A conventional QTL mapping approach was based on individual F-2 RFLP data and the phenotypic evaluation of family means in the F-3. The second strategy employed a substitution-mapping approach. Phenotypic and marker data were obtained for 160 F3 individuals of six highly informative families that differed in the size of donor chromosomal segments in the region of the putative QTL. QTL mapping showed that close to 80% of the variation between families was due to a single QTL, hereafter referred to as Pup1 (Phosphorus uptake 1). Pup1 was placed in a 3-cM interval flanked by markers S14025 and S13126, which is within 1 cM of the position identified in the original QTL mapping experiment. Other chromosomal regions and epistatic effects were not significant. Substitution mapping revealed that Pup1 co-segregated with marker S13126 and that the flanking markers, S14025 and S13752, were outside the interval containing Pup1. The two mapping strategies therefore yielded almost identical results and, in combining the advantages of both, Pup1 could be mapped with high certainty. The QTL mapping appoach showed that the phenotypic variation between families was due to only one QTL without any additional epistacic interactions, whereas the advantage of substitution mapping was to place clearly defined borders around the QTL.
引用
收藏
页码:890 / 897
页数:8
相关论文
共 22 条
[11]  
PATERSON AH, 1990, GENETICS, V124, P735
[12]   LOW-INPUT TECHNOLOGY FOR MANAGING OXISOLS AND ULTISOLS IN TROPICAL AMERICA [J].
SANCHEZ, PA ;
SALINAS, JG .
ADVANCES IN AGRONOMY, 1981, 34 :279-406
[13]  
Utz H. F., 1996, Journal of Agricultural Genomics, V2, P1
[14]   Mapping of QTLs for phosphorus-deficiency tolerance in rice (Oryza sativa L.) [J].
Wissuwa, M ;
Yano, M ;
Ae, N .
THEORETICAL AND APPLIED GENETICS, 1998, 97 (5-6) :777-783
[15]  
Wissuwa M., 1999, Plant nutrition - molecular biology and genetics. Proceedings of the Sixth International Symposium on Genetics and Molecular Biology of Plant Nutrition, Elsinore, Denmark, 17-21 August 1998., P433
[16]   Further characterization of two QTLs that increase phosphorus uptake of rice (Oryza sativa L.) under phosphorus deficiency [J].
Wissuwa, M ;
Ae, N .
PLANT AND SOIL, 2001, 237 (02) :275-286
[17]   Genotypic variation for tolerance to phosphorus deficiency in rice and the potential for its exploitation in rice improvement [J].
Wissuwa, M ;
Ae, N .
PLANT BREEDING, 2001, 120 (01) :43-48
[18]   Fine mapping of quantitative trait loci Hd-1, Hd-2 and Hd-3, controlling heading date of rice, as single Mendelian factors [J].
Yamamoto, T ;
Kuboki, Y ;
Lin, SY ;
Sasaki, T ;
Yano, M .
THEORETICAL AND APPLIED GENETICS, 1998, 97 (1-2) :37-44
[19]   Genetic and molecular dissection of quantitative traits in rice [J].
Yano, M ;
Sasaki, T .
PLANT MOLECULAR BIOLOGY, 1997, 35 (1-2) :145-153
[20]   Genetic and molecular dissection of naturally occurring variation [J].
Yano, M .
CURRENT OPINION IN PLANT BIOLOGY, 2001, 4 (02) :130-135