Effect of Light-emitting Diodes (LEDs) and Ventilation on the in vitro Shoot Growth of Eucalyptus pellita

Eucalyptus pellita의 기내(器內) 줄기생장에 미치는 LEDs (Light-emitting diodes) 및 환기처리(換氣處理) 효과

  • Kim, Ji-Ah (Biotechnology Div., Korea Forest Research Institute) ;
  • Moon, Heung Kyu (Biotechnology Div., Korea Forest Research Institute)
  • 김지아 (국립산림과학원 생물공학과) ;
  • 문흥규 (국립산림과학원 생물공학과)
  • Received : 2006.08.30
  • Accepted : 2006.10.09
  • Published : 2006.12.30

Abstract

Various light sources including LEDs (Light emitting diodes) affecting on shoot growth was examined using in vitro shoots of E. pellita. Generally, it appeared that ventilation treatment was the most important factor affecting on normal shoot growth, irrespective of irradiation sources. Ventilation resulted in better performance of the cultures under 100% blue LED radiation. These include better shoot growth, more number of leaves, more number of internodes, more number of axillary buds, and heavier dry matters. The highest total chlorophyll content was obtained under both cool-white fluorescent lamps and R5B5 (50% red LED + 50% blue LED). The value was $24.5{\mu}g/g$ and $20.1{\mu}g/g$, respectively. In addition, ventilation resulted in higher carotenoid content in all irradiation sources except 100% red LED radiation. In conclusion, shoot growth of E. pellita could be reached maximum by ventilation under R5B5 (50% red LED + 50% blue LED).

Eucalyptus pellita 기내줄기를 재료로 광질에 따른 생육 특성을 조사하였다. 전반적으로 줄기의 생장은 광질보다는 환기처리가 더 주요한 요인으로 나타났다. 특히 환기처리 한 청색광(blue LED) 하에서 묘고, 잎수, 절간수 및 액아수가 양호하였고, 잎에 캘러스가 형성되지 않았다. 식물체의 충실정도를 나타내는 건물율 역시 환기처리 하에서 높게 나타났으며, 청색광 하에서 가장 높은 건물율을 나타냈다. 광질별 총엽록소 함량은 형광등과 혼합광 R5B5(50% red LED + 50% blue LED)에서 $24.5{\mu}g/g$$20.1{\mu}g/g$으로 가장 높게 나타났다. 광합성에 관여하는 카로티노이드 함량 역시 적색광(red LED)을 제외한 모든 광질에서 환기 처리 시 양호하게 나타났다. 결론적으로 E. pellita의 기내 줄기생장은 환기처리가 중요하고, 총 카로티노이드 함량을 기준으로 볼 때 혼합광 R5B5에서 건전한 줄기생장이 가능한 것으로 나타났다.

Keywords

References

  1. 문흥규, 김지아, 이현신, 강호덕. 2003. 액아유도에 의한 Eucalyptus pellita의 기내번식. 식물생명공학회지 30: 269-273
  2. Akoyunoglou, G. and Anni, H. 1984. Blue light effect on chloroplast development in higher plants, In: Senger H (Ed), Blue light effects in biological systems, Springer-Verlag, Berlin, pp, 397-406
  3. Appelgren, M. 1991. Effects of light quality in stem elongation of Pelargonium in vitro, Hortscience 45: 345-351
  4. Arjen, V.H. and Peter, V.T. 1997. Variation in growth form in relation to spectral light quality (red/far-red ratio) in Plantago lanceolata L. in sun and shade populations. Oecologia 111: 452-459 https://doi.org/10.1007/s004420050258
  5. Bertazza, G., Baradi1, R. and Predieri, S. 1995. Light effects on in vitro rooting of pear cultivars of different rhizogenic ability. Plant Cell, Tissue and Organ Culture 41: 139-143 https://doi.org/10.1007/BF00051582
  6. Bula, R.J., Morrow, T.W., Tibbitts, T.W., Barta, D.J., Ignatius, R.W. and Martin, T.S. 1991. Light-emitting diodes as a radiation source for plants. Hortsciencc 120: 808-813
  7. Chee, R. and Pool, R.M. 1989. Morphogenetic responses to propagule trimming, spectral irradiance, and photoperiod of grapevine shoots re-cultured in vitro. HortScience 114: 350-354
  8. Cournac, L., Dimon, B., Carrier, P., Lohou, A. and Chag-vardieff, P. 1991. Growth and photosynthetic characteristic of Solanum tuberosum p1antlets cultivated in vitro under different conditions of aeration, sucrose supply, and $CO_2$ enrichment. Plant Physiology 97: 112-117 https://doi.org/10.1104/pp.97.1.112
  9. Cui, Y.I., Hahn, E.J., Kozai, T. and Paek, K.Y. 2000. Number of air exchanges, sucrose concentration, photosynthetic photon flux, and differences in photoperiod and dark period temperatures affect growth of Rehmannia glutinosa plantlets in vitro. Plant Cell, Tissue and Organ Culture 62: 219-226 https://doi.org/10.1023/A:1006412321864
  10. Dooley, J.H. 1991. Influence of lighting spectra on plant tissue culture, Presented at an ASAE (American Society of Agricultural Engineers) Meeting, Chicago, Illinois
  11. Driver, J.A. and Kuniyuki, A.H. 1984. In vitro propagation of paradox walnut rootstock. Hortscience 19(4): 507-509
  12. Fujiwara, K., Kira, S. and Kozai, T. 1995. Contribution of photosynthesis to dry weight increase of in vitro potato cultures under different $CO_2$ concentrations. Acta Horticulturae 393: 119-125
  13. Goins, G.D., Yorio, N.C., Sanwon, M.M. and Brown, C.S. 1997. Photomorphogenesis, photosynthesis and seed yield of wheat plants grown under red light-emitting diodes (LEDs) with and without supplemental blue lighting. Journal of Experimental Botany 48: 1407-1413 https://doi.org/10.1093/jxb/48.7.1407
  14. Gonzlez, A., Arigita, L., Majada, J. and Snchez Tams, R. 1997. Ethylene involvement in in vitro organogenesis and plant growth of Populus tremula L. Plant Growth Regulation 22(1): 1-6 https://doi.org/10.1023/A:1005751017498
  15. Hahn, E.J., Kozai, T. and Paek, K.Y. 2000. Blue and red 1ight -emitting diodes with or without sucrose and ventilation affects in vitro growth of Rehmannia glutinose plantlets. Journal of Plant Biology 43: 247-250 https://doi.org/10.1007/BF03030425
  16. Hoad, S.P. and Leakey, R.R.B. 1996. Effect of pre-severance light quality on the vegetative propagation of Eucalyptus grandis W. Hill ex Maiden. Stock plant gas exchange and dry matter partitioning between shoots and their leaves and stems. Forest and Ecology Management 70: 265-273
  17. Hoenecke, M., Bula, R.J. and Tibbitts, T.W. 1992. Importance of 'blue' photon levels for lettuce seedlings grown under red light-emitting diodes. Hortxcience 27: 427-430
  18. Kozai, T., Kubota, C. and Jeong, B.R. 1997. Environmental control for large-scale production of plants through in vitro techniques. Plant Cell, Tissue and Organ Culture 51: 49-56 https://doi.org/10.1023/A:1005809518371
  19. Kraepiel, Y. and Miginiac, E. 1997. Photomorphogenesis and phytohormones. Plant Cell and Enviroment 20: 807-812 https://doi.org/10.1046/j.1365-3040.1997.d01-111.x
  20. Mcree, K.J. 1972. The action spectra, absorptance and quantum yield of photosynthesis in crop plants. Journal of Agricultural Meteorology 9: 191-196
  21. Mortensen, L.M. and Stromme, E. 1987. Effects of light quality on some greenhouse crops. Hortscience 33: 27-36
  22. Moreira da Sikva M.H. and Debergh, P.C. 1997. The effect of light quality on the morphogenesis of in vitro cultures of Azorina vidalii Feer. Plant Cell, Tissue and Organ Culture 51: 187-193 https://doi.org/10.1023/A:1005988621036
  23. Prasad, T.K. and Cline, M.G. 1985. Mechanical perturbation-induced ethylene releases apical dominance in Pharbitis nil by restricting shoot growth. Plant Science 41: 217-222 https://doi.org/10.1016/0168-9452(85)90092-5
  24. Saebo, A., Krekling, T. and Appelgren, M. 1995. Light quality affects photosynthesis and leaf anatomy of birch plantlets in vitro. Plant Cell, Tissue and Organ Culture 41: 177-185 https://doi.org/10.1007/BF00051588
  25. Senger, H. 1982. The effect of blue light on plants and microorganisms. Photochemistry and Photobiology 35: 911-920 https://doi.org/10.1111/j.1751-1097.1982.tb02668.x
  26. Smith, E.F., Roberts, A.V. and Mottley, J. 1990. The preparation in vitro of Chrysanthemum for transplantation to soil. 3. Improved resistance to desiccation conferred by reduced humidity. Plant Cell, Tissue and Organ Culture 21: 141-145 https://doi.org/10.1007/BF00033433
  27. Sung, I.K., Kitoya, M. and Hirano, T. 1998. The effects of time and intensity of supplemental blue lighting during morning twilight on growth and physiological performance of cucumber seedlings. Life Support and Biosphere Science 5: 137-142
  28. Tanaka, M. 1999. The use of light-emitting diodes (LED) as a novel light source for micropropagation. Proc. Kor-Jap. Joint Symposium on Transplant Production in Horti-cultural Plants. Nov. 1999. Chungbuk Nat'l Univ. pp. 43-52
  29. Warrington, I.J., Rook, D.A., Morgan, D.C. and Turnbull, H.L. 1989. The influence of stimulated shade light and daylight on growth, development and photosynthesis of Pinus radiata, Agathis australias and Dicarydium cupressinum. Plant Cell Enviroment 12: 343-356 https://doi.org/10.1111/j.1365-3040.1989.tb01951.x
  30. Wellburn, A.R. 1994. The spectral determination chloro-phyll a and b, as well as total carotenoids, using various solvents with spectrophotometers of different resolution. Journal of Plant Physiology 144: 307-313 https://doi.org/10.1016/S0176-1617(11)81192-2
  31. Zeiger, E. 1984. Blue light and stomatal function. In: Senger H (Ed) Blue light effects in biological systems, Springer-Verlag, Berlin pp. 484-494
  32. Zobayed, S.M.A., Armstrong, J. and Armstrong, W. 1999. Evaluation of a closed system, diffusive and humidityinduced convective through flow ventilation on the growth and physiology of cauliflower in vitro. Plant Cell, Tissue and Organ Culture 59: 113-123 https://doi.org/10.1023/A:1006481506904
  33. Zobayed, S.M.A., Armstrong, J. and Armstrong, W. 2002. Multiple shoot induction and leaf and flower bud abscission of Annona cultures as affected by types of ventilation. Plant Cell, Tissue and Organ Culture 69: 155-165 https://doi.org/10.1023/A:1015275718908