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차광처리에 따른 쉬나무 용기묘의 생장 및 생리적 특성 변화

Changes in Growth and Physiological Characteristics of Tetradium daniellii (Benn.) T. G. Hartley Container Seedlings by Shading Treatment

  • 최규성 (국립백두대간수목원 식물양묘실) ;
  • 성환인 (건국대학교 산림조경학과) ;
  • 김종진 (건국대학교 산림조경학과) ;
  • 송기선 (국립백두대간수목원 식물양묘실)
  • Choi, Kyu Seong (Plant Propagation and Reproduction Division, Baekdudaegan National Arboretum) ;
  • Sung, Hwan In (Department of Forestry and Landscape Architecture, Konkuk University) ;
  • Kim, Jong Jin (Department of Forestry and Landscape Architecture, Konkuk University) ;
  • Song, Ki Seon (Plant Propagation and Reproduction Division, Baekdudaegan National Arboretum)
  • 투고 : 2020.01.22
  • 심사 : 2020.03.19
  • 발행 : 2020.04.30

초록

본 연구는 대체에너지, 생태복원 및 밀원식물용 등으로 이용되어 묘목 수요가 증가되고 있는 쉬나무의 우량한 용기묘 생산을 위한 적정 차광수준을 구명하고자 실시하였다. 공시용기는 임업시설양묘용 플라스틱 용기(350ml/구)를 사용하였다. 차광수준은 전광과 전광의 35%, 55%, 75%로 처리하였다. 실험결과, 간장과 근원경 생장은 전광에서 현저히 높은 값을 보였으며, 차광수준이 강해질수록 낮은 생장값으로 조사되었다. 묘목의 뿌리형태특성을 측정한 결과 전광에서 뿌리발달이 가장 왕성하게 조사되었다. 건물생산량도 전광에서 가장 높았고 전체적으로 간장 및 근원경 생장 결과와 유사한 경향으로 나타났다. 묘목의 품질을 나타내는 지수인 QI(Quality Index)도 차광실험의 경우 전광에서 0.98로 가장 높게 조사되었다. 묘목의 엽록소 함량은 상대적으로 차광수준이 가장 높은 75% 차광처리에서 가장 높은 엽록소 함량을 보였으며, 광합성속도 및 수분이용효율은 전광에서 각각 8.48μmolCO2·m-2s-1, 1.40μmolCO2·mmolm-1H2O 가장 높은 것으로 조사되었다. 연구결과를 종합하면, 쉬나무 용기묘의 우량한 묘목생산을 위한 적정 차광수준은 전광(0%)으로 판단되며, 쉬나무 용기묘의 대량생산을 위한 기초자료로 활용될 것으로 기대된다.

This study was conducted in order to closely examine about optimum shading for superior seedling production a container seedling of Tetradium daniellii, which is being increased the demand for a seedling due to being used for alternative energy, ecological restoration and honey plant. The experiment of investigating the optimum shading on T. daniellii was carried out by using plastic container types (350 ml/cavity) for the forestry facility cultivation. The shading level was treated with full sunlight and with 35%, 55%, 75% of the full sunlight. As a result of having surveyed height and root collar diameter growth of a containerized seedling in T. daniellii, a case of the shading experiment showed a noticeably high value was indicated in the full sunlight. It was surveyed that the stronger shading level leads to the lower growth value. Root development was most active in full sunlight. Dry matter production, it was investigated to be the highest in full sunlight. It was surveyed to be the similar tendency to the outcome of height and root collar diameter growth. QI, which is index of showing the quality of a seedling, stood at 0.98 in full sunlight, thereby having been investigated to be the highest. As for the chlorophyll content in a seedling, the highest chlorophyll content was indicated in the 75% shading treatment with the relatively highest shading level. The photosynthetic rate and the water use efficiency were surveyed to be the highest in full sunlight with 8.48 μmolCO2·m-2s-1, 1.40 μmolCO2·mmolm-1H2O, respectively. As a result of surveying the whole experiment, optimum shading level for superior seedling production a container seedling of T. daniellii is determined in full sunlight (0%). It is expected that this will be used as a basic data for mass production.

키워드

참고문헌

  1. Bouma, T.J., K.L. Nielsen, and B. Koutstal. 2000. Sample preparation and scanning protocol for computerised analysis of root length and diameter. Plantand Soil 218:185-196.
  2. Cho, M.S., K.W. Kwon, G.N. Kim, and S.Y. Woo. 2008. Chlorophyll Contents and Growth Performances of the Five Deciduous Hardwood Species Growing Under Different Shade Treatments. Korean Journal of Agricultural and Forest Meteorology 10:149-157 (in Korean). https://doi.org/10.5532/KJAFM.2008.10.4.149
  3. Choi, J.H., K.W. Kwon, and J.C. Chung. 2002. Effect of artificial shade treatment on the growth and biomass production of several deciduous tree species. Journal of Korean Forest Energy 21:65-75 (in Korean).
  4. Choi, J.I., J.H. Seon, K.Y. Pack, and T.J. Kim. 1998. Photosynthesis and stomatal conductance of eight foliage plant species as affected by photosynthetic photon flux density and temperature . Horticultural Science & Technology 39:197-202 (in Korean).
  5. Choi, S.M., H.C. Shin, K.S. Lee, E.G. Bae, K.O. Choi, and K.Y. Huh. 2012. Effects of shading rates on growth characteristics and photosynthesis in four broad-leaved evergreen trees. Journal of Korean Society for People, Plants and Environment 15:99-106 (in Korean).
  6. Cornelissen, J.H.C., P.C. Diez, and R. Hunt. 1996. Seedling growth, allocation and leaf attributes in a wide range of woody plant species and types. Journal of Ecology 84:755-765. https://doi.org/10.2307/2261337
  7. Diekmann, F and G. Fischbeck. 2005. Differences in wheat cultivar response to nitrogen supply. II : Differences in NMetabolism-Related traits. Journal of Agronomy and Crop Science 191:362-376. https://doi.org/10.1111/j.1439-037X.2005.00166.x
  8. Edwards, I.K and R.F. Huber. 1982. Contrasting approaches to containerized seedling production. In: J.B. Scarratt, C. Glerum, and C.A. Plexman (eds.). Proceedings of the Canadian Containerized Tree Seedling Symposium. Canadian Forestry Service, Great Lakes Forest Research Centre, Ontario, Canda. p. 123-127.
  9. Evans, J.R. 1994. Developmental constrains on photosynthesis: effects of light and nutrition. In : Photosynthesis and the environment. Baker, N.R. (ed.). Kluwer Academic Press, Dordrecht. p. 281-304.
  10. Faria, T., J.I. Garcia-Plazaola, A. Abadia, S. Cerasoli, J.S. Pereira, and M.M. Chaves. 1996. Diurnal changes in photoprotective mechanism in leaves of cork oak (Quercus suber) during summer. Tree Physiology 16:115-124. https://doi.org/10.1093/treephys/16.1-2.115
  11. Fitter, A.H. and R.K.M. Hay. 1987. Environmental Physiology of Plants. Academic Press, San Diego. p. 423.
  12. Fox, J.E.D., I.K. Surata, and S. Suriamidhardja. 1990. Nursery potting mixture for Santalum album L. in Timor. Mulga Research Centre Journal 10:38-44.
  13. Grossnickle, S.C. 2005. Importance of root growth in overcoming planting stress. New Forests 30:273-294. https://doi.org/10.1007/s11056-004-8303-2
  14. Hansen, U., B. Fiedler, and B. Rank. 2002. Variation of pigment composition and antioxidative systems along the canopy light gradient in a mixed beech/oak forest : A comparative study on deciduous tree species differing in shade tolerance. Trees 16:354-364. https://doi.org/10.1007/s00468-002-0163-9
  15. Hong, S.G. 1991. Biomass studies of reproductive and vegetative twigs of Evodia daniellii. Forest Bioenergy 11: 11-17 (in Korean).
  16. Hong, S.G., K.H. Choi, and S.K. Lee. 1987. Studies on development of fuel substitute for diesel engine with seed oil of Evodia daniellii - on the emphasis of fuel properties and heat consumption rates - Forest Bioenergy 7:40-48 (in Korean).
  17. Jang, J.W. 2008. A study on honey plants in korea : the kind of honey plants in korea and around a former scanning electron microscope form structure of the pollen. PhD Thesis. Daegu University. p. 134 (in Korean).
  18. Kang, D.B. 2016. Effects of shading and fertilization treatment on the growth characteristics of Chamaecyparis obtusa seedlings. MS Thesis. Yeungnam University. p. 66 (in Korean).
  19. Kim, D.E. 1989. Biomass productivity of Evodia daniellii seedlings. MS Thesis. Konkuk University. p. 23 (in Korean).
  20. Kim, G.N., M.S. Cho, and S.W. Lee. 2010. Physiological responses of the three deciduous hardwood seedlings growing under different shade treatment regimes. Journal of Bio-Environment Control 19:36-48 (in Korean).
  21. Kim, P.G., Y.S. Yi, D.J. Chung, S.Y. Woo, J.H. Sung, and E.J. Lee. 2001. Effects of light intensity on photosynthetic activity of shade tolerant and intolerant tree species. Journal of Korean Forestry Society 90:476-487 (in Korean).
  22. Kim, S.J., C.W. Nam, H.S. Lee, D.L. Yoo, and S.Y. Ryu. 2003. Growth response and flower coloration of cut Iris as influenced by different shading levels and planting dates in highlands. Horticultural Science & Technology 21:336-340 (in Korean).
  23. Kim, Y.C. 1986. Effect of inorganic environmental fFactors on the growth of Pinus koraiensis seedlings (I) - The influence of shading on the growth of seedlings grown on the seed bed -. Journal of Korean Forestry Society 73:43-54 (in Korean).
  24. Korea Forest Service. 2015. Plant nursery management manual. Korea Forest Service. p. 770 (in Korean).
  25. Kwon, K.W., G.N. Kim, and M.S. Cho. 2009. Physiological responses of the three wild vegetables under different shading treatment. Journal of Korean Forest Society 98:106-114 (in Korean).
  26. Kwon, K.W., S.A. Kim, and D.K. Lee. 1996. Effect of light intensity on chlorophyll contents in the leaves of several species of conifers and hardwoods subjected to artificial shading treatment. Research Reports of Environmental Science and Technology 14:42-49 (in Korean).
  27. Lee, K.C., H.B. Lee, W.G. Park, and S.S. Han. 2012. Physiological Response and Growth Performance of Parasenecio firmus under Different Shading Treatments. Korean Journal of Agricultural and Forest Meteorology 14:79-88 (in Korean). https://doi.org/10.5532/KJAFM.2012.14.2.079
  28. Lee, T.B. 1980. Illustrated flora of korea. Hayngmunsa. p. 990 (in Korean).
  29. Lee, Y.H., and S.G. Hong. 1991. Biomass studies of Evodia daniellii. Forest Bioenergy 11:1-10 (in Korean).
  30. Lim, J.H., S.Y. Woo, M.J. Kwon, J.H. Chun, and J.H. Shin. 2006. Photosynthetic capacity and water use efficiency under different temperature regimes on healthy and declining korean fir in Mt. Halla. Journal of Korean Forest Society 95:705-710 (in Korean).
  31. Ri, C.U. 1997. The structure of an isolated Evodia daniellii community. J. of Life Science. 7:24-29 (in Korean).
  32. Song, K.S. 2013. Annual growth, physiological characteristics and production of Daphniphyllum macropodum container seedling. PhD Thesis. Konkuk University. p. 127 (in Korean).
  33. Song, K.S., H.I. Sung, Y.G. Cha, J.J. Kim. 2011. Growth and physiological responses of 1-year-old containerized seedlings of Quercus myrsinaefolia by shading treatment. Journal of Bio-Environment Control. 20:373-381 (in Korean).
  34. Suh, H.M. 2004. Studies on seed treatments of pelletized seeds for direct seeding. PhD Thesis. Konkuk University. p. 85 (in Korean).
  35. Sung, H.I. 2011. Effects of shading and fertilizing treatment on qualities of 1-year-old container seedlings of Quercus myrsinaefolia. PhD Thesis. Konkuk University. p. 113 (in Korean).
  36. Tanimoto, T. 1975a. Effects of artificial shading on the growth of forest trees. (I). Differences in growth of Cryptomeria japonica seedlings in shade during a growing season. Journal of the Japan Forest Society 57:407-411.
  37. Tanimoto, T. 1975b. Effects of artificial shading on the growth of forest trees. (II). Differences in growth of Pinus densiflora seedlings during a growing season under shading. Journal of the Japan Forest Society 58:155-160.
  38. Viji, M.M., M. Thangaraj, and M. Jayapragasam. 1997. Effect of low light on photosynthetic pigments, photochemical efficiency and hill reaction in rice(Oryza sativa L.). Journal of Agronomy and Crop Science 178:193-196. https://doi.org/10.1111/j.1439-037X.1997.tb00490.x
  39. Walters, M.B., P.B. Kruger, and P.B. Reich. 1993. Growth, biomass distribution and $CO_2$ exchange of northern hardwood seedlings in high and low light. : relationships with successional status and shade tolerance. Oecologia. 94:7-16. https://doi.org/10.1007/BF00317294
  40. Wang, M.B., and Q, Zhang. 2009. Issues in using the WinRHIZO system to determine physical characteristics of plant fine roots. Acta Ecologica Sinica. 29:136-138. https://doi.org/10.1016/j.chnaes.2009.05.007
  41. Wang, R.Z. 2001. Photosynthedid, transpiration and water use efficiency of vegetaive and reproductive shoots of grassland species from north-eastern China. Photisynthetica. 39:136-138.
  42. Weaver, J.E., and F.E. Clements. 1938. Plant Ecology. 2nd Edition, McGraw-Hill Book Company, Inc., New York. p. 601.
  43. Woo, B.M., G.S. Jeon, H.T. Choi, and D.H. Jeong. 1995. Studies on rehabilitation progress of vegetation on landslide scars. Korean Forest Society 84:31-40 (in Korean).
  44. Woo, B.M., T.H. Kwon, and N.C. Kim. 1993. Studies on vegetation succession on the slope of the forest road and development of slope revegetation methods. Journal of Korean Forest Society 82:381-395 (in Korean).
  45. Yoo, Y.K., and K.S. Kim. 1997. Effects of shading on the growth in Hibiscus syriacus L. Horticultural Science & Technology 38:520-526 (in Korean).