Assessment Of Genetic Diversity Among Kidney Bean (Phaseolus Vulgaris L.) Cultivars Using Est-Simple Sequence Repeat (Ssr) Markers
DOI:
https://doi.org/10.48165/Keywords:
Genetic diversity, Phaseolus vulgaris, polymorphism, simple sequence repeat markerAbstract
Genetic variation among kidney bean (Phaseolus vulgaris L.) cultivars, procured from the farmers of Kinnaur district of Himachal Pradesh (India), was evaluated using EST-SSR markers. A total of 25 primers were used out of which 19 primers showed amplification. The total n0umber of bands amplified was 26, out of which 24 were polymorphic and 2 were monomorphic. On an average, the number of bands generated primer-1 was 1.37 of which 1.26 was polymorphic and 0.11 were monomorphic. Seven primers produced 14 bands (2 bands primer-1) and only one band each was obtained with remaining primers. The number of unique bands were 2 and the size of amplified product from 70 to 800 bp. Similarity between cultivars estimated as per Jaccard’s coefficients ranged from 0.17-0.90 indicating substantial diversity in bean cultivars. Maximum similarity coefficient (0.90) was between ‘Capsule’ and ‘Kaju’ cultivars while minimum (0.17) between ‘Chitra’ and ‘Luxmi’. Dendrogram grouped cultivars into two major clusters. The PIC value was highest for primer SP5.
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Arunga, E.E., Kinyua, M., Ochuodho, J., Owuoche, J. and Chepkoech, E. 2015. Genetic diversity of determinate French beans grown in Kenya based on morpho-agronomic and simple sequence repeat variation. Journal of Plant Breeding and Crop Science, 7: 240-250.
Blair, M.W., Pedraza, F., Buendia, H.F. and Gaitan, S.E. 2003. Development of a genome-wide anchored microsatellite map for kidney bean (Phaseolus vulgaris L.). Theoretical and Applied Genetic, 107: 1362-1374.
Burle, M.L., Fonseca, J.R., Kami, J.A. and Gepts, P. 2010. Microsatellite diversity and genetic structure among kidney bean (Phaseolus vulgaris L.) landraces in Brazil, a secondary centre of diversity. Theoretical and Applied Genetics, 121: 801-813.
Chen, H., Liu, L., Wang, L., Wang, S., Somta, P. and Cheng, X. 2015. Development and validation of EST SSR markers from the transcriptome of adzuki bean (Vigna angularis). PLoS ONE, 10: 101-114.
Doyle, J.J. and Doyle, J. 1990. Isolation of plant DNA from fresh tissues. Focus, 12:13-15. Filimon, R., Nechifor, B. and Szilagyi, L. 2011. Genetic diversity of kidney bean (Phaseolus vulgaris L.) cultivars. Scientific Papers, LIV: 1222-5339.
Galvan, M.Z., Aulicino, M.B., Garcia, M.S. and Balatti, P.A. 2001. Genetic diversity among Northwestern Argentinian cultivars of kidney bean (Phaseolus vulgaris L.) as revealed by RAPD markers. Genetic Resources and Crop Evolution, 48: 251-260.
Hanai, L.R., Santini, L., Camargo, L.E.A., Fungaro, M.H.P., Gepts, P., Tsai, S.M. and Vieira, M.L.C. 2010. Extension of the core map of kidney bean with EST-SSR, RGA, AFLP and putative functional markers. Molecular Breeding, 25: 25-45.
Ince, A.G. and Karaca, M. 2011. Genetic variation in kidney bean landraces efficiently revealed by Td-DAMD-PCR markers. Plant Omics, 4: 220-227.
Kandemir, N., Yılmaz, G., Karan, Y.B. and Borazan, D. 2010. Isolation of different genotypes in ‘başçiftlikbeyazı’ potato landrace using SSR markers. Turkish Journal of Field Crops, 15: 84- 88.
Khaidizar, M.I., Haliloglu, K., Elkoca, E., Aydin, M. and Lantar, F. 2012. Genetic diversity of kidney bean (Phaseolus vulgaris L.) landraces grown in Northeast Anatolia of Turkey assessed with simple sequence repeat markers. Turkish Journal of Field Crops, 17: 145-150.
Lioi, L., Piergiovanni, A.R., Pignone, D., Puglisi, S., Santantonio, M. and Sonnante, G. 2005. Genetic diversity of some surviving on-farm Italian kidney bean (Phaseolus vulgaris L.) landraces. Plant Breeding, 124: 576-581.
Subhash Chand Parmar et al.
Maryrose, N.K., Steele, K.A. and Palapala, V.A.P. 2015. Genetic diversity of dry bean (Phaseolus vulgaris L.) accessions of Kenya using SSR markers. American Journal of Experimental Agriculture, 5: 306-319.
Masi, P., Zeuli, P.L.S. and Donini, P. 2003. Development and analysis of multiplex microsatellite markers set in kidney bean (Phaseolus vulgaris L.). Molecular Breeding, 11: 303-313. Metais, I., Aubry, C., Hamon, B., Jalouzot, R. and Peltier, D. 2000. Description and analysis of genetic diversity between commercial bean lines (Phaseolus vulgaris L.). Theoretical and Applied Genetics, 101: 1207-1214.
Nei, M., Tajima, F. and Tateno, Y.1983. Accuracy of estimated phylogenetic trees from molecular data. Journal of Molecular Evolution, 19: 153-170.
Ojuederie, O.B., Balogun, M.O., Fawole, L., Igwe, D.O. and Olowolafe, M.O. 2014 Assessment of the genetic diversity of African yam bean (Sphenostylis stenocarpa Hochst) accessions using amplified fragment length polymorphism (AFLP) markers. African Journal of Biotechnology, 13: 1850-1858.
Razvi, S.M., Khan, M.N., Bhat, M.A., Mushtaq, A., Khan, M.H., Ganie, S.A. and Paddar, B.A. 2013. Genetic diversity studies in kidney bean (Phaseolus vulgaris L.) using molecular markers. African Journal of Biotechnology, 12: 7031-7037.
Richardo, C.P., Alves, M., Chaves, I., Carrilho, D. and Veloso, M. 2010. Detection of novel trypsin inhibitors in the cotyledons of Phaseolus vulgaris seeds. Journal of Plant Physiology, 167: 848-854.
Rohlf, F.J. 1998. NTSYS-pc: Numerical Taxonomy and Multivariate Analysis System. Setauket, New York, USA.
Sadeghi, A. and Cheghamirza, K. 2012. Efficiency of RAPD and ISSR marker systems for studying genetic diversity in kidney bean (Phaseolus vulgaris L.) cultivars. Annals of Biological Research, 3: 3267-3273.
Saghai, M.M.A., Biyashev, R.M., Yang, G.P., Zhang, Q. and Allard, R.W. 1994. Extraordinarily polymorphic microsatellite DNA in barley: Species diversity, chromosomal locations and population dynamics. Proceedings of the National Academy of Sciences USA, 91: 5466-5470.
Santalla, M., Rodino, A.P. and De-Ron, A.M. 2002. Allozyme evidence supporting southwestern Europe as a secondary center of genetic diversity for the kidney bean. Theoretical and Applied Genetics,104: 934-944.
Tautz, D. and Renz, M. 1984. Simple sequences are ubiquitous repetitive components of eukaryotic genomes. Nucleic Acids Research, 12: 4127-4138.
Wang, H.H., Toong, L.J., Tsung, L.C., Su, J.C., Meng, L.W. and Jih, M.S. 2010. Molecular and morpho-agronomic characterization of NaN3-induced kidney bean mutants. Crop Environment and Bioinformatics, 7: 221-232.
Williams, J.G.K., Kubelik, A.R., Ratalski, K.J. and Tingey, S.V. 1990. DNA polymorphisms amplified by arbitrary primers are useful as genetic markers. Nucleic Acids Research, 18: 6531- 6535.