DOI QR코드

DOI QR Code

Effect of Timing of Ethephon Treatment on the Formation of Female Flowers and Seeds from Male Plant of Hemp (Cannabis sativa L.)

  • Moon, Youn-Ho (Department of Herbal Crop Research, NIHHS, RDA) ;
  • Lee, Yoon Jeong (Department of Herbal Crop Research, NIHHS, RDA) ;
  • Koo, Sung Cheol (Department of Herbal Crop Research, NIHHS, RDA) ;
  • Hur, Mok (Department of Herbal Crop Research, NIHHS, RDA) ;
  • Huh, Yun Chan (Department of Herbal Crop Research, NIHHS, RDA) ;
  • Chang, Jae-Ki (Department of Herbal Crop Research, NIHHS, RDA) ;
  • Park, Woo Tae (Department of Herbal Crop Research, NIHHS, RDA)
  • Received : 2020.10.13
  • Accepted : 2020.11.23
  • Published : 2020.12.01

Abstract

Hemp (Cannabis sativa L.) is a dioecious plant, although monoecious plants are bred in some cultivars for fiber or seed production. Recently, hemp has received attention for medicinal use with some cannabinoids, including cannabidiol. Self-fertilization for breeding inbred lines is difficult because of dioeciousness and anemophily in hemp. This experiment was conducted to develop a self-fertilization method by forming female flowers and seeds from male plants of dioecious hemp. To induce the formation of female flowers on male plants, 500 mg L-1 of ethephon was sprayed on plants at soon, seven and fourteen days after primordia formation. The plant ratio of female flowers formation and the number of harvested seeds were increased by ethephon treatment. Female flowers of male plants have 5 stigmas in contrast to the dual stigma of female 1plants. Male plant seeds were lighter and smaller than those from female plants. Although the germination rate was lower than that of normal seeds from female plants, the seeds from male plants germinated to grow seedlings. Thus, we suggest that hemp plants should be treated with ethephon at soon after primordia formation to induce the formation of more female flowers on the male plants.

Keywords

References

  1. Aryal, R. and R. Ming. 2014. Sex determination in flowering plants: papaya as a model system. Plant Sci. 217:56-62. https://doi.org/10.1016/j.plantsci.2013.10.018
  2. Bai, Q., Z. Ma, Y. Zhang, S. Su and P. Leng. 2019. The sex expression and sex determining mechanism in Pistacia species. Breed. Sci. 69(2) 205-214. https://doi.org/10.1270/jsbbs.18167
  3. Bandara, M.S., K.K. Tanino and D.R. Waterer. 1998. Effect of pot size and timing of plant growth regulator treatments on growth and tuber yield in greenhouse-grown Norland and Russet Burbank potatoes. J. Plant Growth Regul. 17(2):75-79. https://doi.org/10.1007/PL00007020
  4. Beutler, J.A., and A.H. Marderosian. 1978. Chemotaxonomy of cannabis I. Crossbreeding between Cannabis sativa and C. ruderalis, with analysis of cannabinoid content. Econ. Bot. 32(4):387. https://doi.org/10.1007/BF02907934
  5. Cabezudo, B., M. Recio, J. Sanchez-Laulhe, M.D.M. Trigo, F.J. Toro and F. Polvorinos. 1997. Atmospheric transportation of marihuana pollen from North Africa to the southwest of Europe. Atmos. Environ. 31(20):3323-3328. https://doi.org/10.1016/S1352-2310(97)00161-1
  6. Carter, C. 2017. Cannabis plants named 'Katelyn Faith'. USA. Plant Patent. US 20170172040P1.
  7. Chandra, S., H. Lata, M.A. ElSohly, L.A. Walker and D. Potter. 2017. Cannabis cultivation: Methodological issues for obtaining medical-grade product. Epilepsy Behav. 70:302-312.
  8. Clarke, R.C. and M.D. Merlin. 2016. Cannabis domestication, breeding history, present-day genetic diversity, and future prospects. Cr. Rev. Plant Sci. 35(5-6):293-327. https://doi.org/10.1080/07352689.2016.1267498
  9. Cohen, Y. 2014. Cannabis plants named 'Erez'. USA. Plant Patent. US 20140245494A1.
  10. Cohen, Y. 2020. Cannabis plants named 'Avidekel'. USA. Plant Patent. US 20200008336P1.
  11. de Meijer, E.P.M and L.J.M. Van Soest. 1992. The CPRO cannabis germplasm collection. Euphytica 62(3):201-211. https://doi.org/10.1007/BF00041754
  12. Dubois, M., L. Van den Broeck and D. Inze. 2018. The pivotal role of ethylene in plant growth. Trends Plant Sci. 23(4):311-323. https://doi.org/10.1016/j.tplants.2018.01.003
  13. Faux, A.M., A. Berhin, N. Dauguet and P. Bertin. 2014. Sex chromosomes and quantitative sex expression in monoecious hemp (Cannabis sativa L.). Euphytica 196(2):183-197. https://doi.org/10.1007/s10681-013-1023-y
  14. Galoch, E. 1978. The hormonal control of sex differentiation in dioecious plants of hemp (Cannabis sativa L.). The influence of plant growth regulators on sex expression in male and female plants. Acta Soc. Bot. Pol. 47(1-2):153-162. https://doi.org/10.5586/asbp.1978.013
  15. Hall, J., S.P. Bhattarai and D.J. Midmore. 2012. Review of flowering control in industrial hemp. J. Nat. Fibers 9(1):23-36. https://doi.org/10.1080/15440478.2012.651848
  16. Heikrujam, M., K. Sharma, M. Prasad and V. Agrawal. 2015. Review on different mechanisms of sex determination and sex-linked molecular markers in dioecious crops: a current update. Euphytica 201(2):161-194. https://doi.org/10.1007/s10681-014-1293-z
  17. Holmes, D. 2019. Cannabis plants named 'DD-CT-BR5'. USA. Plant Patent. US00PP30668P3.
  18. Kim, S.K. 2019. The Use situation of cannabis and its value as a resource plants. In Proceedings of the Plant Resources Society of Korea Conference. p. 6.
  19. Lewis, M.A. 2020. Cannabis plants named 'Lemon Crush OG'. USA. Plant Patent. US 00PP31535P3.
  20. Mahlberg, P.G. and E.S. Kim. 2004. Accumulation of cannabinoids in glandular trichomes of cannabis (Cannabaceae). J. Indust. Hemp 9(1):15-36. https://doi.org/10.1300/J237v09n01_04
  21. Mandolino, G., A. Carboni, S. Forapani, V. Faeti and P. Ranalli. 1999. Identification of DNA markers linked to the male sex in dioecious hemp (Cannabis sativa L.). Theor. Appl. Genet. 98(1):86-92. https://doi.org/10.1007/s001220051043
  22. McPartland, J.M. 2018. Cannabis systematics at the levels of family, genus, and species. Cannabis Cannabinoid Res. 3(1):203-212. https://doi.org/10.1089/can.2018.0039
  23. Mediavilla, V., M. Jonquera, I. Schmid-Slembrouck and A. Soldati. 1998. Decimal code for growth stages of hemp (Cannabis sativa L.). J. Int. Hemp Ass. 5(2):65, 68-74.
  24. Moliterni, V.C., L. Cattivelli, P. Ranalli and G. Mandolino. 2004. The sexual differentiation of Cannabis sativa L.: A morphological and molecular study. Euphytica 140(1-2):95-106. https://doi.org/10.1007/s10681-004-4758-7
  25. Moon, Y.H., B.C. Koo, Y.H. Choi, S.T. Bark, S.H. Ahn, Y.L. Cha and S.J. Suh. 2010. Seed production by induction of male flowers on female plants of hemp (Cannabis sativa L.). Korean J. Crop Sci. 55(4):327-332 (in Korean).
  26. Moon, Y.H., Y.S. Song, B.C. Jeong and J.G. Bang. 2005. Variation on fatty acid profile including γ-linolenic acid among hemp (Cannabis sativa L.) accessions. Korean J. Medicinal Crop Sci. 13(4):190-193 (in Korean).
  27. Moon, Y.H., Y.S. Song, B.C. Jeong and J.G. Bang. 2006. Cluster analysis and growth characteristics of hemp (Cannabis sativa L.) germplasm. Korean J. Crop Sc. 51(5):483-490 (in Korean).
  28. Moon, Y.H., Y.L. Cha, J.E. Lee, K.S. Kim, D.E. Kwon and Y.K. Kang. 2020. Investigation of suitable seed sizes, segregation of ripe seeds, and improved germination rate for the commercial production of hemp sprouts (Cannabis sativa L.). J. Sci. Food Agr. 100(7):2819-2827. https://doi.org/10.1002/jsfa.10294
  29. Potter, D.A., M.C. Buxton, C.T. Redmond, C.G. Patterson and A.J. Powell. 1990. Toxicity of pesticides to earthworms (Oligochaeta: Lumbricidae) and effect on thatch degradation in Kentucky bluegrass turf. J. Econ. Entom. 83(6):2362-2369. https://doi.org/10.1093/jee/83.6.2362
  30. Sakthinathan, B., V. Swaminathan, P. Balasubramanian and T. Sivakumar. 2017. Effect of ethrel on sex expression on pumpkin (Cucurbita moschata L.). Int. J. Chem. Stud. 5(6):964-966.
  31. Scott, P.C. and A.C. Leopold. 1967. Opposing effects of gibberellin and ethylene. Plant Physiol. 42(7):1021. https://doi.org/10.1104/pp.42.7.1021
  32. Small, E. 2015. Evolution and classification of Cannabis sativa (marijuana, hemp) in relation to human utilization. Bot. Rev. 81(3):189-294. https://doi.org/10.1007/s12229-015-9157-3
  33. Spitzer-Rimon, B., S. Duchin, N. Bernstein and R. Kamenetsky. 2019. Architecture and florogenesis in female Cannabis sativa plants. Front. Plant Sci. 10:350. https://doi.org/10.3389/fpls.2019.00350
  34. Zager, J.J., I. Lange, N. Srividya, A. Smith and B.M. Lange. 2019. Gene networks underlying cannabinoid and terpenoid accumulation in cannabis. Plant Physiol. 180(4):1877-1897. https://doi.org/10.1104/pp.18.01506