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Genetic variation and population demography of the landrace population of Camellia sinensis in Kasuga, Gifu Prefecture, Japan

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Abstract

Tea, Camellia sinensis, is economically, medicinally and culturally a very important crop. Most of the tea gardens in Japan contain clonally propagated cultivars; however, landraces that were propagated by seed contain valuable genetic variations, providing important resources for future tea breeding. Genetic diversity and differentiation, as well as the population demography of ten landrace populations in Kasuga, Gifu, Japan were investigated using microsatellite markers. All ten populations showed similar levels of genetic variation and there was no significant differentiation between them. These ten populations can be considered to represent a single large population. Gene flow between them may be natural or the result of artificial but random seed exchange by local farmers. The level of genetic diversity in the Kasuga population was compared with that in Kyoto and in China. Kasuga and Kyoto showed similar levels of genetic diversity and this suggests that the value of genetic resources in these two regions is about equal. The level of genetic diversity in Kasuga was much lower than that in China. A coalescent approach revealed that the Kasuga population suffered from severe population reduction (0.1 %) 965 years ago and then exponentially expanded to its current level. This timing and the strength of the bottleneck corresponds to the time when tea plants were brought to Japan from China by Buddhist priests in the ninth–twelfth century. Lower genetic diversities in Japanese populations are thus considered to be the result of the small number of founders brought from China.

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References

  • Beaumont MA (2008) Joint determination of topology, divergence time, and immigration in population trees. In: Matsumura S, Forster P, Renfrew C (eds) Simulation, genetics and human prehistory. McDonald Institute for Archaeological Research, Cambridge, pp 135–154

    Google Scholar 

  • Beaumont MA (2010) Approximate Bayesian computation in evolution and ecology. Ann Rev Ecol Evol Syst 41:379–405

    Article  Google Scholar 

  • Beaumont MA, Zhang W, Balding DJ (2002) Approximate Bayesian computation in population genetics. Genetics 162:2025–2035

    PubMed  PubMed Central  Google Scholar 

  • Blacket MJ, Robin C, Good RT, Lee SF, Miller AD (2012) Universal primers for fluorescent labelling of PCR fragments–an efficient cost-effective approach to genotyping by fluorescence. Mol Ecol Resour 12:456–463

    Article  CAS  PubMed  Google Scholar 

  • Chen L, Apostolides Z, Chen Z-M (2012) Global tea breeding: achievements, challenges and perspectives. Springer, Berlin, Heidelberg

    Book  Google Scholar 

  • Chybicki IJ, Burczyk J (2009) Simultaneous estimation of null alleles and inbreeding coefficients. J Heredity 100:106–113

    Article  CAS  Google Scholar 

  • Csillery K, Blum MGB, Gaggiotti OE, Francois O (2010) Approximate Bayesian computation in practice. Trends Ecol Evol 25:410–418

    Article  PubMed  Google Scholar 

  • Csillery K, Francois O, Blum MGB (2012) abc: an R package for approximate Bayesian computation (ABC). Methods Ecol Evol 3:475–479

    Article  Google Scholar 

  • Estoup A, Angers B (1998) Microsatellites and minisatellites for molecular ecology: theoretical and empirical considerations. In: Carvalho GR (ed) Advances in molecular ecology. NATO Press, Amsterdam, Holland, pp 55–86

    Google Scholar 

  • Estoup A, Jarne P, Cornuet J-M (2002) Homoplasy and mutation model at microsatellite loci and their consequences for population genetics analysis. Mol Ecol 11:1591–1604

    Article  CAS  PubMed  Google Scholar 

  • Freeman S, West J, James C, Lea V, Mayes S (2004) Isolation and characterization of highly polymorphic microsatellites in tea (Camellia sinensis). Mol Ecol Notes 4:324–326

    Article  CAS  Google Scholar 

  • Gao J, Wang B, Mao J-F, Ingvarsson P, Zeng Q-Y, Wang X-R (2012) Demography and speciation history of the homoploid hybrid pine Pinus densata on the Tibetan Plateau. Mol Ecol 21:4811–4827

    Article  PubMed  Google Scholar 

  • Garza JG, Williamson EG (2001) Detection of reduction in population size using data from microsatellite loci. Mol Ecol 10:305–318

    Article  CAS  PubMed  Google Scholar 

  • Gelman A, Carlin JB, Stern HS, Dunson DB, Vehtari A, Rubin DB (2014) Bayesian Data Analysis, 3rd edn. CRC Press, Boca Raton

    Google Scholar 

  • Goudet J (2001) FSTAT, a program to estimate and test genetic diversities and fixation indices (version 2.9.3). http://www2.unil.ch/popgen/softwares/fstat.htm. Accessed Jan 26 2015

  • Hedrick PW (2005) A standardized genetic differentiation measure. Evolution 59:1633–1638

    Article  CAS  PubMed  Google Scholar 

  • Hudson RR (2002) Generating samples under a Wright–Fisher neutral model of genetic variation. Bioinformatics 18:337–338

    Article  CAS  PubMed  Google Scholar 

  • Jost L (2008) G ST and its relatives do not measure differentiation. Mol Ecol 17:4015–4026

    Article  PubMed  Google Scholar 

  • Kasuga-mura (1983) The history of Kasuga-mura. Kasuga-mura, Gifu Prefecture, Gifu (in Japanese)

  • Markovstova L, Marjoram P, Tavare S (2000) The effects of rate variation on ancestral inference in the coalescent. Genetics 156:1427–1436

    Google Scholar 

  • Marriage TN, Hudman S, Mort ME, Orive ME, Shaw RG, Kelly JK (2009) Direct estimation of the mutation rate at dinucleotide microsatellite loci in Arabidopsis thaliana. Heredity 103:310–317

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Matsushita S (2002) The study of yamacha. Iwata Shoin, Tokyo (in Japanese)

  • Ministry of Agriculture Forestry and Fisheries of Japan (2015) Plant variety protection. http://www.hinsyu.maff.go.jp/en/en_top.html. Accessed Jan 26 2015

  • Murray MG, Thompson WF (1980) Rapid isolation of high molecular weight plant DNA. Nucleic Acids Res 8:4321–4325

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Ohsako T, Ohgushi T, Motosugi H, Oka K (2008) Microsatellite variability within and among local landrace populations of tea, Camellia sinensis (L.) O. Kuntze, in Kyoto, Japan. Genet Resour Crop Evol 55:1047–1053

    Article  Google Scholar 

  • Plummer M, Best N, Cowles K, Vines K (2006) CODA: convergence diagnosis and output analysis for MCMC. R News 6:7–11

    Google Scholar 

  • Poudel R, Moller M, Li D-Z, Shah A, Gao L-M (2014) Genetic diversity, demographical history and conservation aspects of the endangered yew tree Taxus contorta (syn. Taxus fuana) in Pakistan. Tree Genet Genomes 10:653–665

    Article  Google Scholar 

  • R Core Team (2014) R: a language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria

    Google Scholar 

  • Rural Culture Association (2008) Encyclopedia of Tea, vol I. Rural Culture Association, Tokyo (in Japanese)

  • Tanaka J (2012) Japanese tea breeding history and the future perspective. In: Chen L, Apostolides Z, Chen Z-M (eds) Global tea breeding: achievements, challenges and perspectives. Springer, Berlin, Heidelberg, pp 227–239

    Chapter  Google Scholar 

  • Taniguchi F, Kimura K, Saba T, Ogino A, Yamaguchi S, Tanaka J (2014) Worldwide core collections of tea (Camellia sinensis) based on SSR markers. Tree Genet Genomes 10:1555–1565

    Article  Google Scholar 

  • Wakeley J (2008) Coalescent theory. Roberts and Company Publishers, Colorado

    Google Scholar 

  • Wang J, Kallman T, Liu J, Guo Q, Wu Y, Lin K, Lascoux M (2014) Speciation of two desert poplar species triggered by Pleistocene climatic oscillations. Heredity 112:156–164

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Yao M-Z, Ma C-L, Qiao T-T, Jin JQ, Chen L (2012) Diversity distribution and population structure of tea germplasms in China revealed by EST-SSR markers. Tree Genet Genomes 8:205–220

    Article  Google Scholar 

Download references

Acknowledgments

We are grateful to Hiroko Endo, Osami Fujiwara, Takumi Inukai, Naiki Kato, Akira Kodera, Misako Kodera, Shigeru Kodera, Toshimi Sana, Akemi Shii, Minako Yamada and members of Kasuga Regional Planning Steering Committee for their help with the sample collection; and to Dr. Yoichi Watanabe, associate editor and two anonymous reviewers for their helpful comments on the previous version of the manuscript.

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Correspondence to Ichiro Tamaki.

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We received research grants from Kasuga Regional Planning Steering Committee.

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Tamaki, I., Kuze, T., Hirota, K. et al. Genetic variation and population demography of the landrace population of Camellia sinensis in Kasuga, Gifu Prefecture, Japan. Genet Resour Crop Evol 63, 823–831 (2016). https://doi.org/10.1007/s10722-015-0286-7

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