Genetic diversity and relationships detected by isozyme and RAPD analysis of crop and wild species Amaranthus

被引:123
|
作者
Chan, KF [1 ]
Sun, M [1 ]
机构
[1] UNIV HONG KONG, DEPT ZOOL, HONG KONG, HONG KONG
关键词
Amaranthus; crop evolution; isozyme; genetic diversity; RAPD;
D O I
10.1007/s001220050637
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Genetic diversity and relationships of 23 cultivated and wild Amaranthus species were examined using both isozyme and RAPD markers. A total of 30 loci encoding 15 enzymes were resolved, and all were polymorphic at the interspecific level. High levels of inter-accessional genetic diversity were found within species, but genetic uniformity was observed within most accessions. In the cultivated grain amaranths (A. caudatus, A. cruentus, and A. hypochondriacus), the mean value of HT was 0.094, H-s was 0.003, and G(ST) was 0.977 at the species level. The corresponding values in their putative wild progenitors (A. hybridus, A. powellii, and A. quitensis) were 0.135, 0.004, and 0.963, respectively. More than 600 RAPD fragments were generated with 27 arbitrary 10-base primers. On average, 39.9% of the RAPD fragments were polymorphic among accessions within each crop species; a similar level of polymorphism (42.8%) was present in the putative progenitors, but much higher levels of polymorphism were found in vegetable (51%) and other wild species (69.5%). The evolutionary relationships between grain amaranths and their putative ancestors were investigated, and both the RAPD and isozyme data sets supported a monophyletic origin of grain amaranths, with A. hybridus as the common ancestor. A complementary approach using information from both isozymes and RAPDs was shown to generate more accurate estimates of genetic diversity, and of relationships within and among crop species and their wild relatives, than either data set alone.
引用
收藏
页码:865 / 873
页数:9
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