DOI QR코드

DOI QR Code

Effect of LEDs on shoot multiplication and rooting of rare plant Abeliophyllum distichum Nakai

희귀 수종 미선나무(Abeliophyllum distichum Nakai.)의 기내 증식 및 발근에 미치는 LED (light emitting diode) 효과

  • Lee, Na Nyum (Division of Biotechnology, Korea Forest Research Institute) ;
  • Choi, Yong Eui (Depart. of Forestry, Kangwon Nat'l University) ;
  • Moon, Heung Kyu (Division of Biotechnology, Korea Forest Research Institute)
  • 이나념 (국립산림과학원 산림생명공학과) ;
  • 최용의 (강원대학교 산림자원학과) ;
  • 문흥규 (국립산림과학원 산림생명공학과)
  • Received : 2014.06.11
  • Accepted : 2014.06.25
  • Published : 2014.06.30

Abstract

This study was conducted to elucidate the effect of light sources and explant types on in vitro shoot multiplication and rooting of a rare and endangered plant Abeliophyllum distichum. Both apical buds and axillary buds were used as explants under 4 different light sources, cool white florescent light (F), 100% blue light-emitting diode (LED) (B), 50% blue and 50% red LED mixture (BR), and 100% red LED (R). Clear difference was observed in terms of shoot proliferation by light sources types but not by position-dependent explant types. Multiple shoot induction rates were enhanced under both B and BR light sources. Spontaneous rooting was induced in shoot induction medium under B light source. Both the rates of rooting and numbers of roots per explant were higher in apical bud explants compared to axillary bud explants. Interestingly R light source stimulated shoot elongation but inhibited root development. Therefore, our results suggest that the use of apical bud explants under B or BR light sources is suitable for in vitro micropropagation of a rare and endangered plant species, Abeliophyllum distichum.

희귀 멸종위기 식물인 미선나무를 재료로 기내 증식 및 발근에 미치는 광질 및 절편체(정아지 및 액아지) 효과를 조사하였다. 광질은 냉백색 형광등(F), 100% 청색광 LED(B), 혼합광(BR; 50% blue LED+50% red LED) 및 100% 적색광(R)을 사용하였다. 줄기의 증식은 절편체 종류에 따른 뚜렷한 차이를 보이지 않았으나 광질에 따른 차이를 보였다. 전반적으로 줄기의 증식은 청색광 및 혼합광에서 촉진되는 것으로 나타났으며, 특히 청색광에서는 일부 절편에서 발근이 이루어 졌다. 줄기의 생장 역시 광질에 따른 현저한 차이가 없었다. 적색광에서 줄기 신장이 촉진된 반면 잎의 발달은 저조하였다. 발근은 전반적으로 광질에 관계없이 정아지가 액아지보다 양호하였고, 뿌리수도 증가하였으나 혼합광에서는 발근이 억제되었다. 한편 적색광에서는 뿌리의 발달이 매우 부진하여 다른 광질과 유의적인 차이를 보였다. 발근유도 시 줄기는 주로 단일 줄기로 자랐다. 이상의 결과를 볼 때 LED를 이용한 미선나무의 기내번식은 정아지를 절편으로 청색광 및 혼합광 LED (BR) 하에서 배양함이 좋은 것으로 나타났다.

Keywords

References

  1. Beena MR, Martin KP. 2003. In vitro propagation of the rare medicinal plant Ceropegia candelabrum L. through somatic embryogenesis. In Vitro Cell Dev Biol-Plant 39:510-513 https://doi.org/10.1079/IVP2003468
  2. Budiarto K. 2010. Spectral quality affects morphogenesis on Anthurium plantlet during in vitro culture. Agrivita 32:234-240
  3. Chen UC, Hsia CN, Yeh MS, Agrawal DC, Rsay HS. 2006. In vitro micropropagation and ex vitro acclimation of Bulpleurum Kaoi – an endangered medicinal plant native to Taiwan, In Vitro Cell Dev Biol-Plant 42:128-133 https://doi.org/10.1079/IVP2005744
  4. Choi YW. 2003. Effect of red, blue and far-red LEDs for night break on growth, flowering, and photosynthetic rate in Perilla ocymoides. J Kor Soc Horticul Sci 44:442-446
  5. Eun JS, Kim YS and Kim YH. 2000. Effects of light emitting diodes on growth and morphogenesis of in vitro seedlings in Platycodeon grandiflorum. Korean J Plant Tiss Cult 27:71-75
  6. Gresshoff PM, Doy CH. 1972. Development and differentiation of haploid Lycopersicon exculentum (tomato). Plant (Berl.) 107:161-170
  7. Gupta SD, Jatothu B. 2013. Fundamentals and applications of light-emitting diodes (LEDs) in in vitro plant growth and morphogenesis. Plant Biotechnol Rep 7:211-220 https://doi.org/10.1007/s11816-013-0277-0
  8. Hahn EJ, Kozai T., Paek KY. 2000. Blue and red light-emitting diodes with or without sucrose and ventilation affect in vitro growth of Rehmannia glutinosa plantlets. J Plant Biol 43: 247-250 https://doi.org/10.1007/BF03030425
  9. Han EJ, Kozai T and Paek KY. 2000. Blue and red light emitting diodes with or without sucrose and ventilation affects in vitro growth of Rehmania glutinosa plantlets. J Plant Biol 43:247-250 https://doi.org/10.1007/BF03030425
  10. Han JS, Kim SK, Kim SW and Kim YJ. 2001. Effects of shading treatments and harvesting methods on the growth of Eleutherococcus senticosus Maxim. Korean J Medi Crop Sci 9:1-7
  11. Han MS, Moon HK, Kang YJ, Kim WW, Kang BS, Byun KO. 2004. Micropropagation of an endangered species, Stellera rosea N. by tissue culture. Korean J Plant Biotechnol 31(1):31-35 https://doi.org/10.5010/JPB.2004.31.1.031
  12. Heo JW, Lee CW, Chakrabarty D and Paek KY. 2002. Growth responses of marigold and salvia bedding plants as affected by monochromic or mixture radiation provided by a Light-Emitting Diode (LED). Plant Growth Regul 38:225-230 https://doi.org/10.1023/A:1021523832488
  13. Heo JW, Shin KS, Paek KY. 2006. Light quality affects in vitro growth of grape 'Teleki 5BB7'. J Plant Biol 49:276-280 https://doi.org/10.1007/BF03031155
  14. Jeong JH, Kim YS, Moon HK, Hwang SJ, Choi YE. 2009. Effects of LED on growth, morphogenesis and eleutheroside contents of in vitro cultured plantlets of Elutherococcus senticocus Maxim. Korean J Medicinal Crop Sci 17(1):39-45
  15. Kartsonas E, Papafotiou M. 2007. Mother plant age and seasonal influence on in vitro propagation of Quercus euboica Pap., an endemic, rare and endangered oak species of Greece. Plant Cell Tiss Org Cult 90:111-116 https://doi.org/10.1007/s11240-007-9232-5
  16. Kim HH, Goins GD, Wheeler RM, Sager JC. 2004a. Green light supplementation for enhanced lettuce growth under red and blue light emitting diodes. HortSci 39:1617-1622
  17. Kim HH, Goins GD, Wheeler RM, Sager JC. 2004b. Stomatal conductance of lettuce grown under or exposed to different light qualities. Ann Bot 94:691-697 https://doi.org/10.1093/aob/mch192
  18. Kim HH, Goins GD, Wheeler RM, Sager JC. 2004c. Effects of LEDs on net photosynthetic rate, growth and leaf stomata of Chrysanthemum plantlets in vitro. Sci Hortic 101:143-151 https://doi.org/10.1016/j.scienta.2003.10.003
  19. Kozai T, Watanabe K and Jeong BR. 1995. Stem elongation and growth of Solanum tuberosum L. in vitro in response to photosynthetic photon flux, photoperiod and difference in photoperiod and dark period temperatures. Sci Horticul 64:1-9 https://doi.org/10.1016/0304-4238(95)00828-4
  20. Lee TB. 1976. Studies on conservation of endemic species-Abeliophyllum distichum N. Nature Conservation 12:6-10
  21. Lee TB. 1990. Conservation of threatened plants in Korea. Bull Kwanak Arboretum 3:190-196
  22. Lee SW, Kim GS, Lee MJ, Hyun DY, Park CG, Park HK and Cha SW. 2007. Effect of blue and yellow polyethylene shading net on growth characteristics and ginsenoside contenets in Panax ginseng C. A. Meyer. Korean J Med Crop Sci 15:194-198
  23. Lian ML, Murthy HN and Paek KY. 2002. Effects of light emitting diodes (LEDs) on the in vitro induction and growth of bulblets of Lilium oriental hybrid ‘Pesaro’. Sci Horticul 94:365-370 https://doi.org/10.1016/S0304-4238(01)00385-5
  24. Lin Y, Li J, Li B, He T, Chun Z. 2010. Effects of light quality on growth and development of protocorm-like bodies of Dendrobium officinale in vitro. Plant Cell Tiss Org Cult 105:329-335
  25. Moon HK and Park SY. 2008. Effect of different light sources and ventilation on in vitro shoot growth and rooting of a rare and endangered species, Tsuru-rindo (Tripterospermon japonicum). J Plant Biotech 35:215-221 https://doi.org/10.5010/JPB.2008.35.3.215
  26. Moon HK, Park SY, Kim YW and Kim CS. 2006. Growth of Tsuru-rindo (Tripterospermum japonicum) cultured in vitro under various sources of light-emitting diode (LED) irradiation. J Plant Biol 49:174-179 https://doi.org/10.1007/BF03031014
  27. Moon HK, Suk GY, Kwon YJ, Son SH. 1999. Micropropagation of a rare species, Abeliophyllum distichum Nakai. via axillary bud culture. Korean J Plant Tiss Cult 26(2):133-136
  28. Morrow RC. 2008. LED lighting in horticulture. HortSci 43: 1947-1950
  29. Muleo R., Morini S, Casano S. 2001. Photoregulation of growth and branching of plum shoots: physiological action of two photosystems. In Vitro Cell Dev Biol-Plant 37:609-617 https://doi.org/10.1007/s11627-001-0107-x
  30. Muleo R., Morini S. 2006. Light quality regulates shoot cluster growth and development of MM 106 apple genotype in in vitro culture. Sci Hort 108(4):364-307 https://doi.org/10.1016/j.scienta.2006.02.014
  31. Murashige T, Skoog F. 1962. A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiol Plant 15:473-497 https://doi.org/10.1111/j.1399-3054.1962.tb08052.x
  32. Nhut DT, Hong LTA, Watanabe H, Goi M, Tanaka M. 2000. Growth of banana plantlets cultured in vitro under red and blue light-emitting diode (LED) irradiation source. Acta Hort 575:7-23
  33. Nhut DT, Takamura T, Watanabe H, Okamoto K, Tanaka M. 2003. Response of strawberry plantlets cultured in vitro under superbright red and blue light-emitting diodes (LEDs). Plant Cell Tiss Org Cult 73:43-52 https://doi.org/10.1023/A:1022638508007
  34. Park SY, Ahn JK, Lee WY. 2003. High frequency shoot induction from root segments of Albizzia coreana. J Kor For Soc 92(6):626-631
  35. Seabrook JEA. 2005. Light effects on the growth and morphogenesis of potato (Solanum tuberosum) in vitro: a review. Amer J Potato Res 82:353-367 https://doi.org/10.1007/BF02871966
  36. Shin KS, Murthy HN, Heo JW, Hahn EJ, Paek KY. 2008. The effect of light quality on the growth and develop of in vitro cultured Doritaenopsis plants. Acta Physiol Plant 30:339-343 https://doi.org/10.1007/s11738-007-0128-0
  37. Youn Y, Lee SK, Park JI. 1992. In vitro propagation of a rare species-Berchemia berchemiaefolia. Res Rep For Gen Res Inst Kor 28:63-67

Cited by

  1. Enhancement of Anti-wrinkle Activities of Abeliophyllum distichum Nakai through Low Temperature Extraction Process vol.23, pp.3, 2015, https://doi.org/10.7783/KJMCS.2015.23.3.231
  2. Application of 3D printing to prototype and develop novel plant tissue culture systems vol.13, pp.1, 2017, https://doi.org/10.1186/s13007-017-0156-8
  3. Effect of explant’s position and culture method on shoot proliferation and micro-cuttings for a rare and endangered species, Abeliophyllum distichum Nakai vol.42, pp.3, 2015, https://doi.org/10.5010/JPB.2015.42.3.228