Genetic divergence between North American ancestral soybean lines and introductions with resistance to soybean cyst nematode revealed by chloroplast haplotype

被引:3
作者
Bilyeu, KD [1 ]
Beuselinck, PR [1 ]
机构
[1] Univ Missouri, USDA ARS, Plant Genet Res Unit, Columbia, MO 65211 USA
关键词
D O I
10.1093/jhered/esi087
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Domesticated soybean [Glycine max (L.) Merr.] is a major crop with an established ancestral relationship to wild soybean (Glycine soja Sieb. & Zucc.) native to Asia. Soybean genetic diversity can be assessed at different levels by identification of polymorphic alleles at genetic loci, in either the plastid or nuclear genomes. The objective of this study was to evaluate genetic diversity based on chloroplast haplotypes for soybean genotypes present in the USDA germplasm resource collection. Shared chloroplast haplotypes represent broad groups of genetic relatedness. Previous work categorized three-quarters of the cultivated soybeans from Asia into a single haplotype group. Our results confirmed the close relationship of North American soybean ancestors and G. max plant introductions previously identified as representing potential sources of soybean genetic variation with the finding that these genotypes belonged to a single chloroplast haplotype group. Genetic diversity was identified in soybean genotypes determined to have a high density of single nucleotide polymorphisms and in a screen of accessions with resistance to soybean cyst nematode. Characterization of soybean plant introduction lines into chloroplast haplotype group may be an important initial step in evaluating the appropriate use of particular soybean genotypes. © The American Genetic Association. 2005. All rights reserved.
引用
收藏
页码:593 / 599
页数:7
相关论文
共 29 条
[11]   BAC contig development by fingerprint analysis in soybean [J].
Marek, LF ;
Shoemaker, RC .
GENOME, 1997, 40 (04) :420-427
[12]   Two large-insert soybean genomic libraries constructed in a binary vector: applications in chromosome walking and genome wide physical mapping [J].
Meksem, K ;
Zobrist, K ;
Ruben, E ;
Hyten, D ;
Quanzhou, T ;
Zhang, HB ;
Lightfoot, DA .
THEORETICAL AND APPLIED GENETICS, 2000, 101 (5-6) :747-755
[13]  
Niblack TL, 2002, J NEMATOL, V34, P279
[14]   POLYMORPHIC SIMPLE SEQUENCE REPEAT REGIONS IN CHLOROPLAST GENOMES - APPLICATIONS TO THE POPULATION-GENETICS OF PINES [J].
POWELL, W ;
MORGANTE, M ;
MCDEVITT, R ;
VENDRAMIN, GG ;
RAFALSKI, JA .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1995, 92 (17) :7759-7763
[15]  
Provan J, 1999, GENETICS, V153, P943
[16]   Phylogenetic relationships of the chloroplast genomes in the genus Glycine inferred from four intergenic spacer sequences [J].
Sakai, M ;
Kanazawa, A ;
Fujii, A ;
Thseng, FS ;
Abe, J ;
Shimamoto, Y .
PLANT SYSTEMATICS AND EVOLUTION, 2003, 239 (1-2) :29-54
[17]   Characterizing the cytoplasmic diversity and phyletic relationship of Chinese landraces of soybean, Glycine max, based on RFLPs of chloroplast and mitochondrial DNA [J].
Shimamoto, Y ;
Abe, J ;
Gao, Z ;
Gai, JY ;
Thseng, FS .
GENETIC RESOURCES AND CROP EVOLUTION, 2000, 47 (06) :611-617
[18]   A compilation of soybean ESTs: generation and analysis [J].
Shoemaker, R ;
Keim, P ;
Vodkin, L ;
Retzel, E ;
Clifton, SW ;
Waterston, R ;
Smoller, D ;
Coryell, V ;
Khanna, A ;
Erpelding, J ;
Gai, XW ;
Brendel, V ;
Raph-Schmidt, C ;
Shoop, EG ;
Vielweber, CJ ;
Schmatz, M ;
Pape, D ;
Bowers, Y ;
Theising, B ;
Martin, J ;
Dante, M ;
Wylie, T ;
Granger, C .
GENOME, 2002, 45 (02) :329-338
[19]   CHLOROPLAST DNA VARIATION IN THE GENUS GLYCINE SUBGENUS SOJA [J].
SHOEMAKER, RC ;
HATFIELD, PM ;
PALMER, RG ;
ATHERLY, AG .
JOURNAL OF HEREDITY, 1986, 77 (01) :26-30
[20]   PEDIGREE ANALYSIS OF ELITE SOYBEAN LINES [J].
SNELLER, CH .
CROP SCIENCE, 1994, 34 (06) :1515-1522