Research Paper

Genetic Diversity and Allelic Frequency of Selected Thai and Exotic Rice Germplasm Using SSR Markers

Expand
  • 1Center for Agricultural Biotechnology, Kasetsart University, Kamphaeng Saen Campus, Nakhon Pathom 73140, Thailand
    2Center of Excellence on Agricultural Biotechnology, Science and Technology Postgraduate Education and Research Development Office, Office of Higher Education Commission, Ministry of Education, Bangkok 10900, Thailand
    3Department of Agricultural Sciences, Faculty of Agriculture, Natural Resources and Environment, Naresuan University, Phitsanulok 65000, Thailand
    4National Center for Genetic Engineering and Biotechnology, Thailand Science Park, Pathum Thani 12120, Thailand
    5Department of Plant Pathology, Faculty of Agriculture at Kamphaeng Saen, Kasetsart University, Kamphaeng Saen Campus, Nakhon Pathom 73140, Thailand

Received date: 2018-07-10

  Accepted date: 2018-11-06

  Online published: 2019-08-19

Abstract

A collection of 167 Thai and exotic rice accessions was subjected for evaluation of genetic diversity and assessment of relationship by simple sequence repeat (SSR) markers. Among a total of 49 SSR markers, 13 markers distributing over 12 rice chromosomes showed clear polymorphic band patterns, and they were selected for genetic assessment. A total of 110 alleles were detected with an average of 8.46 alleles per locus. The averages of gene diversity, heterozygosity and polymorphic information content were 0.59, 0.02 and 0.56, respectively. The unweighted-pair group method with arithmetic averages (UPGMA) clustering analysis was performed for genetic distance, and phylogenetic tree was constructed. The result showed that this rice collection was divided into two major groups, classified as japonica and indica subspecies. Within the japonica group, temperate japonica and tropical japonica subgroups can be clearly separated. Three-dimensional principal component analysis projection and model-based population structure analysis showed consistent clustering results with two major groups of UPGMA analysis, supporting the classification of japonica and indica subspecies. The indica allelic frequency was also investigated to provide an indicative guide for breeders to overcome the practical problems on sterility of inter-subspecies hybrid offspring. This rice collection and information obtained in this study will be useful for rice breeding programs.

Cite this article

Pathaichindachote Wanwarang, Panyawut Natjaree, Sikaewtung Kannika, Patarapuwadol Sujin, Muangprom Amorntip . Genetic Diversity and Allelic Frequency of Selected Thai and Exotic Rice Germplasm Using SSR Markers[J]. Rice Science, 2019 , 26(6) : 393 -403 . DOI: 10.1016/j.rsci.2018.11.002

References

[1] Babu B K, Meena V, Agarwal V, Agrawal P K.2014. Population structure and genetic diversity analysis of Indian and exotic rice (Oryza sativa L.) accessions using SSR markers. Mol Biol Rep, 41(7): 4329-4339.
[2] Bassam B J, Caetano-Anolles G, Gresshoff P M.1991. Fast and sensitive silver staining of DNA in polyacrylamide gels.Anal Biochem, 196(1): 80-83.
[3] Bhattacharya K R, Ali S Z.2015. An Introduction to Rice-Grain Technology. New Delhi, India: Woodhead Publishing India Pvt. Ltd.
[4] Botstein D, White R L, Skolnick M, Davis R W.1980. Construction of a genetic linkage map in man using restriction fragment length polymorphisms.Am J Hum Genet, 32(3): 314-331.
[5] Chakhonkaen S, Pitnjam K, Saisuk W, Ukoskit K, Muangprom A.2012. Genetic structure of Thai rice and rice accessions obtained from the International Rice Research Institute.Rice, 5: 19-31.
[6] Chang T T.1976. The origin, evolution, cultivation, dissemination, and diversification of Asian and African rices.Euphytica, 25(1): 425-441.
[7] Chen C, Chen H, Shan J X, Zhu M Z, Shi M, Gao J P, Lin H X.2013. Genetic and physiological analysis of a novel type of interspecific hybrid weakness in rice.Mol Plant, 6(3): 716-728.
[8] Dan Z W, Liu P, Huang W C, Zhou W, Yao G X, Hu J, Zhu R S, Lu B R, Zhu Y G.2014. Balance between a higher degree of heterosis and increased reproductive isolation: A strategic design for breeding inter-subspecific hybrid rice.PLoS One, 9(3): e93122.
[9] Earl D A, vonHoldt B M.2012. Structure Harvester: A website and program for visualizing STRUCTURE output and implementing the Evanno method.Conserv Genet Resour, 4(2): 359-361.
[10] Evanno G, Regnaut S, Goudet J.2005. Detecting the number of clusters of individuals using the software STRUCTURE: A simulation study.Mol Ecol, 14(8): 2611-2620.
[11] Garris A J, Tai T H, Coburn J, Kresovich S, McCouch S.2005. Genetic structure and diversity in Oryza sativa L. Genetics, 169(3): 1631-1638.
[12] Giarrocco L E, Marassi M A, Salerno G L.2007. Assessment of the genetic diversity in argentine rice cultivars with SSR markers.Crop Sci, 47(2): 853-858.
[13] Glaszmann J C.1987. Isozymes and classification of Asian rice varieties.Theor Appl Genet, 74(1): 21-30.
[14] Global Rice Science Partnership.2013. Rice Almanac. Los Baños, the Philippines: International Rice Research Institute.
[15] Guo X, Elston R C.1999. Linkage information content of polymorphic genetic markers.Hum Hered, 49(2): 112-118.
[16] Heal G, Walker B, Levin S, Arrow K, Dasgupta P, Daily G, Ehrlich P, Maler K G, Kautsky N, Lubchenco J, Schneider S, Starrett D.2004. Genetic diversity and interdependent crop choices in agriculture.Resour Energy Econ, 26(2): 175-184.
[17] Hori K, Yamamoto T, Yano M.2017. Genetic dissection of agronomically important traits in closely related temperate japonica rice cultivars. Breeding Sci, 67(5): 427-434.
[18] Hoshino A A, Bravo J P, Nobile P M, Morelli K A.2012. Microsatellites as tools for genetic diversity analysis, genetic diversity in microorganisms. InTechOpen: 382.
[19] Jin L, Lu Y, Xiao P, Sun M, Corke H, Bao J S.2010. Genetic diversity and population structure of a diverse set of rice germplasm for association mapping.Theor Appl Genet, 121(3): 475-487.
[20] Jones M P, Dingkuhn M, Alukosnm G K, Semon M.2004. InterspecificOryza sativa L. X O. Glaberrima Steud. progenies in upland rice improvement. Euphytica, 94(2): 237-246.
[21] Kanawapee N, Sanitchon J, Srihaban P, Theerakulpisut P.2011. Genetic diversity analysis of rice cultivars (Oryza sativa L.) differing in salinity tolerance based on RAPD and SSR markers. Electron J Biotechnol, 14(6): 1-17.
[22] Khush G S.1995. Breaking the yield frontier of rice.Geo Journal, 35(3): 329-332.
[23] Khush G S.1997. Origin, dispersal, cultivation and variation of rice.Plant Mol Biol, 35: 25-34.
[24] Khush G S.2001. Green revolution: The way forward.Nat Rev Genet, 2(10): 815-822.
[25] Linares O F.2002. African rice (Oryza glaberrima): History and future potential. Proc Natl Acad Sci USA, 99: 16360-16365.
[26] Liu K J, Muse S V.2005. PowerMarker: An integrated analysis environment for genetic marker analysis.Bioinformatics, 21(9): 2128-2129.
[27] Liu P, Dan Z W, Wang Z, Li S Q, Li N W, Yan H X, Cai X X, Lu B R.2015. Predicting hybrid fertility from maker-based genetic divergence index of parental varieties: Implications for utilizing inter-subspecies heterosis in hybrid rice breeding.Euphytica, 203(1): 47-57.
[28] Lu B R, Cai X X, Xin J.2009. Efficient indica and japonica rice identification based on the InDel molecular method: Its implication in rice breeding and evolutionary research. Prog Nat Sci, 19(10): 1241-1252.
[29] Ma L, Zhu F G, Li Z W, Zhang J F, Li X, Dong J L, Wang T.2015. TALEN-based mutagenesis of lipoxygenase LOX3 enhances the storage tolerance of rice (Oryza sativa) seeds. PLoS One, 10(12): e0143877.
[30] Mackill D J.1995. Classifyingjaponica rice cultivars with RAPD markers. Crop Sci, 35(3): 889-894.
[31] Maclean J L.2002. Rice Almanac. England: CABI.
[32] Mondini L, Noorani A, Pagnotta M A.2009. Assessing plant genetic diversity by molecular tools.Diversity, 1(1): 19-35.
[33] Murray M G, Thompson W F.1980. Rapid isolation of high molecular weight plant DNA.Nucl Acids Res, 8(19): 4321-4325.
[34] Nachimuthu V V, Muthurajan R, Duraialaguraja S, Sivakami R, Pandian B A, Ponniah G, Gunasekaran K, Swaminathan M, Suji K K, Sabariappan R.2015. Analysis of population structure and genetic diversity in rice germplasm using SSR markers: An initiative towards association mapping of agronomic traits inOryza sativa. Rice, 8(1): 30.
[35] Nayar N M. 2014. Oryza species and their interrelationships. In: Origin and Phylogeny of Rices. San Diego: Academic Press: 59-115.
[36] Nei M.1973. Analysis of gene diversity in subdivided populations.Proc Natl Acad Sci USA, 70(12): 3321-3323.
[37] Ni J J, Colowit P M, Mackill D J.2002. Evaluation of genetic diversity in rice subspecies using microsatellite markers.Crop Sci, 42(2): 601-607.
[38] Oka H I.1957. Genic analysis for the sterility of hybrids between distantly related varieties of cultivated rice.J Genet, 55(3): 397-409.
[39] Oka H I.1958. Intervarietal variation and classification of cultivated rice.Ind J Genet Plant Breeding, 18: 79-89.
[40] Oka H I.1988. Origin of Cultivated Rice. Amsterdam: Elsevier.
[41] Panaud O, Chen X, McCouch S R.1996. Development of microsatellite markers and characterization of simple sequence length polymorphism (SSLP) in rice (Oryza sativa L.). Mol Gen Genet, 252(5): 597-607.
[42] Peng S, Laza R C, Visperas R M, Khush G S, Virk P, Zhu D.2004. Rice: Progress in breaking the yield ceiling. New directions for a diverse planet. In: Proceedings of the 4th International Crop Science Congress. Australia: Brisbane.
[43] Powell W, Morgante M, Andre C, Hanafey M, Vogel J, Tingey S, Rafalski A.1996. The comparison of RFLP, RAPD, AFLP and SSR (microsatellite) markers for germplasm analysis.Mol Breeding, 2(3): 225-238.
[44] Pritchard J K, Stephens M, Donnelly P.2000. Inference of population structure using multilocus genotype data.Genetics, 155(2): 945-959.
[45] Ramanatha Rao V, Hodgkin T.2002. Genetic diversity and conservation and utilization of plant genetic resources.Plant Cell Tissue Organ Cult, 68(1): 1-19.
[46] Rohlf F J.1998. NTSYSpc numerical taxonomy and multivariate analysis system version 2.0 user guide. Setauket, New York: Applied Biostatistics Inc.
[47] Sakamoto T, Matsuoka M.2004. Generating high-yielding varieties by genetic manipulation of plant architecture.Curr Opin Biotechnol, 15(2): 144-147.
[48] Salem K F M, Sallam A.2016. Analysis of population structure and genetic diversity of Egyptian and exotic rice (Oryza sativa L.) genotypes. CR Biol, 339(1): 1-9.
[49] Singh N, Choudhury D R, Tiwari G, Singh A K, Kumar S, Srinivasan K, Tyagi R K, Sharma A D, Singh N K, Singh R.2016. Genetic diversity trend in Indian rice varieties: An analysis using SSR markers.BMC Genet, 17(1): 127.
[50] Sneath P H A, Sokal R R.1973. Numerical Taxonomy. San Francisco, California, USA: W.H.: Freeman andCompany.
[51] Subudhi P K, Sasaki T, Khush G S.2006. Rice, Cereals and Millets. Berlin, Heidelberg: Springer.
[52] Sun C Q, Wang X K, Li Z C, Yoshimura A, Iwata N.2001. Comparison of the genetic diversity of common wild rice (Oryza rufipogon Griff.) and cultivated rice (O. sativa L.) using RFLP markers. Theor Appl Genet, 102(1): 157-162.
[53] Sutoro, Lestari P, Kurniawan H.2015. Genetic diversity of upland rice landraces from java island as revealed by SSR markers.Indones J Agric Sci, 16(1): 1-10.
[54] Tang S, Zhang Y, Zeng L, Luo L, Zhong Y, Geng Y.2010. Assessment of genetic diversity and relationships of upland rice accessions from southwest China using microsatellite markers.Plant Biosyst, 144(1): 85-92.
[55] Thatsanabanjong K, Phoasavadi P.2017. The music of rice in Amphawa.J Silpakorn Univ: Veridian E, 10(5): 492-505.
[56] Toro M A, Caballero A.2005. Characterization and conservation of genetic diversity in subdivided populations.Philos Trans R Soc Lond B Biol Sci, 360: 1367-1378.
[57] Travis A J, Norton G J, Datta S, Sarma R, Dasgupta T, Savio F L, Macaulay M, Hedley P E, McNally K L, Sumon M H, Islam M R, Price A H.2015. Assessing the genetic diversity of rice originating from Bangladesh, Assam and West Bengal.Rice, 8(1): 35.
[58] Virmani S S, Aquino R C, Khush G S.1982. Heterosis breeding in rice (Oryza sativa L.). Theor Appl Genet, 63(4): 373-380.
[59] Wang C H, Zheng X M, Xu Q, Yuan X P, Huang L, Zhou H F, Wei X H, Ge S.2014. Genetic diversity and classification of Oryza sativa with emphasis on Chinese rice germplasm. Heredity, 112(5): 489-496.
[60] Wang M M, Zhu Z F, Tan L B, Liu F X, Fu Y C, Sun C Q, Cai H W.2013. Complexity of indica-japonica varietal differentiation in Bangladesh rice landraces revealed by microsatellite markers. Breeding Sci, 63(2): 227-232.
[61] Wang Y R, Qiu F L, Hua Z T, Dai G J.2010. Relationship of parental indica-japonica indexes with yield and grain quality traits of japonica hybrid rice in Northern China. Rice Sci, 17(3): 199-205.
[62] Wuthiyano C.2000. Thai Rice Landraces. Pathum Thani, Thailand: Department of Agriculture.
[63] Xu Q, Yuan X P, Wang S, Feng Y, Yu H Y, Wang Y P, Yang Y L, Wei X H, Li X M.2016. The genetic diversity and structure of indica rice in China as detected by single nucleotide polymorphism analysis. BMC Genet, 17: 53.
[64] Yonemaru J I, Choi S H, Sakai H, Ando T, Shomura A, Yano M, Wu J, Fukuoka S.2015. Genome-wide indel markers shared by diverse Asian rice cultivars compared to Japanese rice cultivar ‘Koshihikari’.Breeding Sci, 65(3): 249-256.
[65] Zhang D L, Zhang H L, Wei X H, Qi Y W, Wang M X, Sun J L, Ding L, Tang S X, Qiu Z E, Cao Y S, Wang X K, Li Z C.2007. Genetic structure and diversity of Oryza sativa L. in Guizhou, China. Chin Sci Bull, 52(3): 343-351.
[66] Zhang L N, Cao G L, Han L Z.2013. Genetic diversity of rice landraces from lowland and upland accessions of China.Rice Sci, 20(4): 259-266.
[67] Zhang P, Li J Q, Li X L, Liu X D, Zhao X J, Lu Y G.2011. Population structure and genetic diversity in a rice core collection (Oryza sativa L.) investigated with SSR markers. PLoS One, 6(12): e27565.
Outlines

/

浙ICP备05004719号-15   公安备案号:33010302003355
Copyright © Editorial office of Rice Science
Tel: 0571-63371017 E-mail: crrn@fy.hz.zn.cn; cjrs278@gmail.com
Supported by Beijing Magtech Co., Ltd.
Total visitors:  Visitors of today:  Now online: