Worldwide genotyping of castor bean germplasm (Ricinus communis L.) using AFLPs and SSRs

被引:74
作者
Allan, Gerard [1 ]
Williams, Amber [2 ]
Rabinowicz, Pablo D. [3 ]
Chan, Agnes P. [3 ]
Ravel, Jacques [3 ]
Keim, Paul [2 ]
机构
[1] No Arizona Univ, Environm Genet & Genom EnGGen Lab, Dept Biol Sci, Flagstaff, AZ 86011 USA
[2] No Arizona Univ, Ctr Microbial Genet & Genom, Flagstaff, AZ 86011 USA
[3] Inst Genom Res, Rockville, MD 20850 USA
基金
美国国家卫生研究院;
关键词
amplified fragment length polymorphisms; Ricinus communis; simple sequence repeats;
D O I
10.1007/s10722-007-9244-3
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Worldwide genetic diversity in 200 individuals comprising 41 castor bean accessions was assessed using amplified fragment polymorphisms (AFLPs) and simple sequence repeats (SSRs). We found that, despite surveying five continents and 35 countries, genetic diversity in castor bean germplasm is relatively low (overall H(e) = 0.126 for AFLPs and 0.188 for SSRs) compared to estimates of genetic diversity in other plant species. Our data also show no geographic structuring of genotypes across continents or countries within continents. An assessment of the congruence between AFLP and SSRs indicates a low correlation (R(2) = 0.19) between the two data sets, but each marker class nonetheless shows similar patterns of low-genetic diversity and a lack of geographic structure. Our data do suggest that SSRs yield a higher percentage of polymorphic loci, higher heterozyosity and a greater range of genetic distances, and are therefore more informative than are AFLPs on a locus-by-locus basis. Based on comparisons with numerous other plant species, we suggest that the lower genetic variation in this worldwide collection may be due to one or more factors including: sampling strategies that have not captured the full extent of genetic variation in the species; artifactual variation due to long-term germplasm storage and seed regeneration; or intense selection followed by domestic cultivation of a limited number of castor bean genotypes, which are widely propagated for their horticultural and agro-economic value.
引用
收藏
页码:365 / 378
页数:14
相关论文
共 55 条
[11]   Diversity within American cassava germ plasm based on RAPD markers [J].
Colombo, C ;
Second, G ;
Charrier, A .
GENETICS AND MOLECULAR BIOLOGY, 2000, 23 (01) :189-199
[12]   STATISTICAL GENETIC CONSIDERATIONS FOR MAINTAINING GERM PLASM COLLECTIONS [J].
CROSSA, J ;
HERNANDEZ, CM ;
BRETTING, P ;
EBERHART, SA ;
TABA, S .
THEORETICAL AND APPLIED GENETICS, 1993, 86 (06) :673-678
[13]  
ENDO Y, 1987, J BIOL CHEM, V262, P5908
[14]  
FIGUEIREDOGOULA.M, 2005, BRAZ ARCH BIOL TECHN, V48, P275
[15]  
Frankel OH, 1984, CROP GENETIC RESOURC, P149
[16]   Genetic diversity and differentiation in Eryngium alpinum L. (Apiaceae):: comparison of AFLP and microsatellite markers [J].
Gaudeul, M ;
Till-Bottraud, I ;
Barjon, F ;
Manel, S .
HEREDITY, 2004, 92 (06) :508-518
[17]   Developing an appropriate strategy to assess genetic variability in plant germplasm collections [J].
Gilbert, JE ;
Lewis, RV ;
Wilkinson, MJ ;
Caligari, PDS .
THEORETICAL AND APPLIED GENETICS, 1999, 98 (6-7) :1125-1131
[18]   Patterns of genetic variation in rare and widespread plant congeners [J].
Gitzendanner, MA ;
Soltis, PS .
AMERICAN JOURNAL OF BOTANY, 2000, 87 (06) :783-792
[19]  
Govaerts R, 2000, WORLD CHECKLIST BIBL
[20]  
HAMRICK JL, 1989, ISOZYMES ANAL GENETI