SSR marker-based analysis of genetic relatedness among sugarcane cultivars (Saccharum spp. hybrids) from breeding programs in China and other countries

被引:26
作者
Chen P.H. [1 ]
Pan Y.-B. [2 ]
Chen R.-K. [1 ]
Xu L.-P. [1 ]
Chen Y.-Q. [1 ]
机构
[1] Key Lab of Genetic Improvement for Sugarcane, Ministry of Agriculture, Fujian Agriculture and Forestry University, Fujian Normal University, Fuzhou
[2] USDA-ARS, Sugarcane Research Laboratory, Houma, LA 70360
关键词
Molecular identity; Saccharum; SSR; Sugarcane;
D O I
10.1007/s12355-009-0060-2
中图分类号
学科分类号
摘要
Capillary electrophoresis-based molecular genotyping was conducted on 35 sugarcane cultivars (Saccharum spp. hybrids) and 5 clones of related wild species with 20 polymorphic SSR DNA markers. A total of 251 alleles were identified with 248 alleles displaying varying degrees of polymorphism and the remaining three alleles being monomorphic. The total number of alleles by any SSR marker varied from as few as 7 to as many as 18, with an average of 12.5 alleles per marker. Diversity index for these SSR markers ranged from 0.71 to 0.91, with a mean of 0.83. A composite parameter NDI, representing a product of the number of alleles (N) and DI, is an indicator on the general usefulness of a DNA marker. Ten SSR markers, namely, mSSCIR43, mSSCIR66, SMC119CG, SMC24DUQ, SMC278CS, SMC31CUQ, SMC336BS, SMC597CS, SMC703BS, and SMC851MS, have NDI values of greater than 12 in comparison to less than 10 from the rest markers, indicating that these 10 SSR markers provide much information for genotyping the 40 clones. A finding to minimize stutters and minus-Adenine peaks gave a guideline for the selection of best SSR markers for other SSR research. The 35 cultivars were clustered into five groups based on pairwise similarity coefficient values and their relationships to the wild species were demonstrated. Inclusion of CP67-412, CP72-1210, N21, N27, and S. officinarum clone Badila into the cultivar groups is due to the fact that these clones have been extensively used as parental material in sugarcane breeding programs. The results are in general agreement with the evolutionary course of the sugarcane cultivars that the order of contributing species in modern sugarcane cultivars is S. officinarum, S. spontaneum, S. robustum Brandes et. Jesw. ex., S. sinense Roxb., and S. barberi Jesweit. The accordance of molecular results with recorded evolution of sugarcane verified the fidelity and usefulness of these 20 SSR markers in progeny selection and allele transmission study in this aneu-polyploidy crop. © Society for Sugar Research & Promotion 2009.
引用
收藏
页码:347 / 354
页数:7
相关论文
共 37 条
[1]  
Arcenaux G., Cultivated sugarcane of the world and their botanical derivation, Proc Int Soc Sugarcane Technol, 12, pp. 844-854, (1967)
[2]  
Awadalla P., Ritland K., Microsatellite variation and evolution in the Mimulus guttatus species complex with contracting mating systems, Mol Biol Evol, 14, pp. 1023-1034, (1997)
[3]  
Brown J.S., Schnell R.J., Power E.J., Douglas S.L., Kuhn D.N., Analysis of clonal germplasm from five Saccharum species: S. barberi, S. robustum, S. officinarum, S. sinense and S. spontaneum. A study of inter- and intra species relationships using microsatellite markers, Genet Resour Crop Evol., 54, pp. 627-648, (2007)
[4]  
Breaux R.D., Legendre B.L., The USDA Commercial breeding program in Louisiana, Proc. Inter-Amer. Sugar Cane Sem.:Varieties and Breeding, III, pp. 99-105, (1983)
[5]  
Burner D.M., Legendre B.L., Sugarcane genome amplification for the subtropics: A twenty year effort, Sugar Cane, 3, pp. 5-10, (1993)
[6]  
Chen C., Yu Q., Hou S., Li Y.J., Eustice M., Skelton R.L., Veatch O., Herdes R.E., Diebold L., Saw J., Feng Y., Qian W., Bynum L., Wang L., Moore P.H., Paull R.E., Alam M., Ming R., Construction of a Sequence-Tagged High-Density Genetic Map of Papaya for Comparative Structural and Evolutionary Genomics in Brassicales, Genetics, 177, pp. 2481-2491, (2007)
[7]  
Chen P.H., Pan Y.B., Chen R.K., High-throughput Procedure for Single Pollen Grain Collection and Polymerase Chain Reaction in Plants, J Integr Plant Biol, 50, 3, pp. 375-383, (2008)
[8]  
Cordeiro G.M., Casu R., McIntyre C.L., Manners J.M., Henry R.J., Microsatellite markers from sugarcane (Saccharum sp.) ESTs transferable to Erianthus and sorghum, Plant Sci, 160, pp. 1115-1123, (2001)
[9]  
Cordeiro G.M., Pan Y.B., Henry R.J., Sugarcane microsatellites for the assessment of genetic diversity in sugarcane germplasm, Plant Sci, 165, pp. 181-189, (2003)
[10]  
Cordeiro G.M., Taylor G.O., Henry R.J., Characterisation of microsatellite markers from sugarcane (Saccharum sp.), a highly polyploid species, Plant Sci, 155, pp. 161-168, (2000)