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Effect of Colchicine on the Induction of Prunella vulgaris for. albiflora Nakai

  • Kwon, Soo-Jeong (Department of Food Nutrition and Cookery, Woosong College) ;
  • Roy, Swapan Kumar (Department of Crop Science, Chungbuk National University) ;
  • Cho, Kab-Yeon (Department of Food Nutrition and Cookery, Woosong College) ;
  • Moon, Young-Ja (Department of Food Nutrition and Cookery, Woosong College) ;
  • Woo, Sun-Hee (Department of Crop Science, Chungbuk National University) ;
  • Kim, Hag-Hyun (Department of Food Nutrition and Cookery, Woosong College)
  • 투고 : 2014.11.23
  • 심사 : 2015.01.25
  • 발행 : 2015.03.31

초록

This study was conducted to find out the effective induction method of tetraploid plants to obtain potential data for cultivating superior varieties by colchicine treatment. The seed germination were decreased by the higher concentration of colchicine treatment and longer soaking time. A total of 907 individuals were germinated in 16 treated plots except control (untreated plot) and 28 tetraploids were induced which was about 3.1% of the number of seed germinated. The plant regeneration rate by colchicine treatment on explant of Prunella vulgaris for. albiflora Nakai under in vitro culture was decreased with the higher concentration of colchicine. While a total of 312 individuals were regenerated in all treatments, the explant was soaked in more than 0.05% for over 1 hour, tetraploid could be obtained. In particular, for the soaking treatment in 0.05% for 6 hours and 12 hours, 37 tetraploids were induced, which was about 57.8% of the number of plant regenerated. In accordance with the observation on doubling of DNA contents in leaf in order to identify polyploid, the peak DNA content of G1 phase was 101.3 for diploid and 197.2 for tetraploid. The result confirmed the doubling of DNA content. Furthermore, the number of chloroplasts per guard cell depending on polyploid was around 10 in diploid and 19.3 in tetraploid, which was around 1.9 times as much as diploid.

키워드

참고문헌

  1. Bae, C. H., Y. H. Lee, D. C. Yang, K. S. Min, H. I. Kim, and H. Y. Lee. 2001. Changes of chloroplast number per guard cell pairs of leaves by ploidy level in Nicotiana tabacum L. cv. BY-4. Korean J. Plant Tissue Culture. 28(4) : 179-184.
  2. Bamberg, J. B. and R. E. Hanneman Jr. 1991. Rapid ploid screening of tuberbearing Solanum(potato) species through pollen diameter measurement. Am. Potato J. 68 : 279-285. https://doi.org/10.1007/BF02853666
  3. Bingham, E. T. 1969. Haploids from cultivated alfalfa Medicago sativa L. Nature 221 : 865-866. https://doi.org/10.1038/221865a0
  4. Borrino, E. M. and W. Powell. 1987. Stomatal guard cell length as an indicator of ploid in microspore derived plants of barley. Genome 30 : 158-160.
  5. Chaudhari, H. K. and J. R. Barrow. 1975. Identification of cotton haploids by stomatal chloroplast-count technique. Crop Sci. 15 : 760-763. https://doi.org/10.2135/cropsci1975.0011183X001500060006x
  6. Cho, H. M., H. Y. Kim, and I. J. Mok. 1994. Stomatal cell characters as an Indicator for Haploid Indentification from progeny plants derived by 4xX2x interspecific crosses in potatoes. Korean J. Breed. 26(1) : 66-73.
  7. Cockerham, L. E. and G. J. Galletta. 1976. A survey of pollen characteristics in certain Vaccinium species. J. Amer. Soc. Hort. Sci. 101 : 671-676.
  8. Dudley, J. W. 1958. Number of chloroplasts in guard cells of inbred lines of tetraploid and diploid sugar beets. Agron. J. 50(3) : 169-170. https://doi.org/10.2134/agronj1958.00021962005000030016x
  9. Gaines, E. F. and H. C. Aase. 1926. A haploid wheat plant. Amer. J. Bot. 12 : 373-385.
  10. Galbraith, D. W., K. R. Harkins, J. M. Maddox, N. M. Ayres, D. P. Sharma, and E. Firoozabady. 1983. A rapid flow cytometric analysis of the cell cycle in intact plant tissues. Science 220 : 1049-1051. https://doi.org/10.1126/science.220.4601.1049
  11. Hadlaczky, G., G. Bistrary, T. Parznovszky, and D. Dudits. 1983. Mass isolation of plant chromosomes and nuclei. Planta. 157 : 278-385. https://doi.org/10.1007/BF00405195
  12. Hahn, S. G. 1969. Studies on the Tetraploid Radish(Raphanus Sativus L.) Induced by Colchicine. I. On the Resistance to Virus Diseases. J. Kor. Soc. Hort. Sci. 5 : 48-56.
  13. Hougas, R. W. and S. J. Peloquin. 1957. A haploid plant of the potato variety Katahdin. Nature 180 : 1209-1210. https://doi.org/10.1038/1801209a0
  14. Kim, I. H., H. H. Kim, E. Y. Hong, J. S. Yoon, J. K. Hwang, and C. H. Lee. 2003. Breeding of tetraploid in Platycodon grandiflorum (Jacq.) A. DC. by colchicine treatment. Korean J. Plant Res. 6 : 188-194.
  15. Kwon, S. J., K. Y. Cho, and H. H. Kim. 2013. A Tetraploid Induction in Hypericum patulum Thunberg by Colchicine Soaking Treatment. Korean J. Plant Res. 26 : 284-288. https://doi.org/10.7732/kjpr.2013.26.2.284
  16. Lapins, K. O. 1975. Polyploidy and mutations induced in apricot by colchicine treatment Can. J. Genet. Cytol. 17 : 591-599. https://doi.org/10.1139/g75-073
  17. Miyoshi, K. and N. Asakura. 1996. Callus induction, regeneration of haploid plants and chromosome doubling in ovule cultures of pot gerbera (Gevera jamesonii). Plant Cell Rep. 16 : 1-5. https://doi.org/10.1007/BF01275438
  18. Nonda, D. K. and S. S. Chase. 1966. An embryo marker for detecting monoploid of maize(Zea mays L.). Crop Sci. 6 : 213-215. https://doi.org/10.2135/cropsci1966.0011183X000600020036x
  19. Park, K. J. 1994 Cold-hardiness Tetraploid Induced by Colchicine Treatment in Mulberry Seedings (Morus alba L. Yongchonppong/Kaeryangppong). Kor. J. Seric. Sci. 36 : 1-7.
  20. Sari, N., K. Abak, and M. Pitrat. 1999. Comparison of ploid level screening methods in watermelon: Citrullus lanatus(Thunb.) Matsum. and Nakai. Sci. Hort. 82 : 265-277. https://doi.org/10.1016/S0304-4238(99)00077-1
  21. Verdenius, J. 1973. Selection from Solanum tuberosum group Phureja of genotypes combining high-frequency haploid induction with homozygosity for embryo-spot. Euphytica. 22 : 244-259. https://doi.org/10.1007/BF00022632

피인용 문헌

  1. Effect of Colchicine on Chromosome Doubling in Codonopsis lanceolata vol.29, pp.3, 2016, https://doi.org/10.7732/kjpr.2016.29.3.347
  2. In vivo Acclimatization Responses of Platycodon grandiflorum For. Duplex to Different Soil Types and Environmental Factors vol.21, pp.2, 2018, https://doi.org/10.1007/s12892-018-0096-0