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겨울철 염화칼슘(CaCl2) 처리에 따른 가로변 3가지 상록 관목류의 생육 및 생리반응 - 사철나무, 영산홍, 회양목을 중심으로 -

Growth and Physiological Response of Three Evergreen Shrubs to De-icing Salt(CaCl2) at Different Concentrations in Winter - Focusing on Euonymus japonica, Rhodoendron indicum, and Buxus koreana -

  • 주진희 (건국대학교 녹색기술융합학과) ;
  • 박지연 (건국대학교 산림과학과 대학원) ;
  • 허혜 (건국대학교 산림과학과 대학원) ;
  • 이은엽 (LH 토지주택연구원) ;
  • 현경학 (LH 토지주택연구원) ;
  • 정종석 (LH 토지주택연구원) ;
  • 최은영 (한국방송통신대학교 농학과) ;
  • 윤용한 (건국대학교 녹색기술융합학과)
  • Ju, Jin-Hee (Dept. of Green Technology Convergence, Konkuk University) ;
  • Park, Ji-Yeon (Dept. of Forest Science Graduate School, Konkuk University) ;
  • Xu, Hui (Dept. of Forest Science Graduate School, Konkuk University) ;
  • Lee, Eun-Yeob (Dept. of Urban Environment Research, Land & Housing Institute) ;
  • Hyun, Kyoung-Hak (Dept. of Urban Environment Research, Land & Housing Institute) ;
  • Jung, Jong-Suk (Dept. of Urban Environment Research, Land & Housing Institute) ;
  • Choi, Eun-Young (Dept. of Agriculture Science, Korea National Open University) ;
  • Yoon, Yong-Han (Dept. of Green Technology Convergence, Konkuk University)
  • 투고 : 2015.10.15
  • 심사 : 2016.04.22
  • 발행 : 2016.04.30

초록

본 연구는 도심 내에서 공원 및 가로수 주변에 식재된 대표적인 세 가지 상록 관목류인 사철나무(Euonymus japonica), 영산홍(Rhododendron indicum), 회양목(Buxus koreana) 등을 중심으로 겨울철 염화칼슘($CaCl_2$) 처리에 따른 생육 및 생리적 반응을 살펴봄으로써, 내염성 정도와 제설제 피해지역에 대한 내성수종을 선별하기 위한 자료로 제시하고자 한다. 염화칼슘을 각각 0%(대조구), 0.5%, 1.0%, 3.0%, 5.0% 처리한 실험구에 2014년 11월에 정식한 후 이듬해 이른 봄인 2015년 3월에 수고, 엽장, 엽폭, 엽형지수, 엽수, 생체중, 건조중, 건물률, R/T율, 엽록소함량, 엽록소형광반응, 광합성률, 기공전도도, 증산율 등의 생육 및 생리적 특성을 조사하였다. 사철나무는 3.0% 이하, 영산홍과 회양목은 1.0% 이하의 처리구에서 생존이 가능하였으며, 사철나무가 영산홍과 회양목에 비해 생육적 감소율이 비교적 낮았다. 염화칼슘 처리농도가 높을수록 대조구에 비해 생리적 반응들이 감소되는 것은 동일하나, 영산홍과 회양목은 감소세가 비교적 뚜렷한 반면, 사철나무가 완만한 감소세를 보이고 있다. 특히, 처리농도가 높아짐에 따라 영산홍은 증산율을, 회양목은 광합성율과 기공전도도를 억제시키는 경향을 보였다. 이러한 결과를 통해 사철나무가 영산홍과 회양목에 비해 염해에 좀 덜 민감한 수종임을 알 수 있어 제설제 피해지역에 상록 관목류로 적용이 가능할 것으로 본다.

It is important to know the sensitivity of shrubs to de-icing salt in order to set guidelines for ecological tolerance of evergreen shrubs along roads. Therefore, the aim of this study was to investigate the influence of de-icing salt, calcium chloride($CaCl_2$), on the growth and physiological characteristics of three evergreen shrubs, Euonymus japonica, Rhododendron indicum, and Buxus koreana. Plants were exposed to calcium chloride at different concentrations(weight percentage, 0% as control, 1.0%, 3.0%, and 5.0%) through amended soil maintained from the start of the experiment in October of 2014 until termination in March of 2015. The survival rate, plant height, leaf length, leaf width, leaf shape index, number of leaves, fresh weight, dry weight, dry matter, root/top ratio, chlorophyll contents, fluorescence, photosynthesis, stomatal conduct, and transpiration rate were recorded. Elevated calcium chloride concentrations decreased plant height, leaf length, leaf width, leaf shape index, fresh weight, dry weight, dry matter, and R/T ratio of the three shrubs. Root growth responded more sensitively than the top growth to salinity. However Euonymus japonica was more tolerant to salt stress than Rhododendron indicum and Buxus koreana. Their growths were totally inhibited by $CaCl_2$ above 3.0% and 1.0% concentrations, respectively. Chlorophyll content, fluorescence, photosynthesis, stomatal conduct, and transpiration rate of both Rhododendron indicum and Buxus koreana were reduced sharply, while Euonymus japonica exhibited mild reductions compared to plants grown in control when increasing calcium chloride was used. Especially, the transpiration rates of Rhododendron indicum, and the photosynthesis and stomatal conduct of Buxus koreana were suppressed as the concentrations of calcium chloride increased. Therefore, Euonymus japonica should be considered as an ecologically tolerant species with proven tolerance to de-icing salt.

키워드

참고문헌

  1. Bazihizina, N., T. Colmer and E. G. Barrett-Lennard(2009) Response to non-uniformsalinity in the root zone of the halophyteAtriplex nummularia: growth, photosynthesis, water relations and tissue ion concentrations. Annals of Botany 104(4): 737-45. https://doi.org/10.1093/aob/mcp151
  2. Choi, J. J. and S. G. Park(2014) Morphological characteristics and classification criteria for Azalea cultivars for landscaping in Korea. Journal of Korean Institute of Landscape Architecture 42: 77-85. https://doi.org/10.9715/KILA.2014.42.2.077
  3. Choi, S. M., H. C. Shin, I. Kom, K. Y. Huh and D. Ki(2013) Salt tolerance assessment with NaCl of Stauntonia hexaphyll(Thunb.) decence and Raphiclepis indica var. umbellata(Thunb.) Ohashi. Kor. J. Hort. Sci. Technol. 31: 617-625.
  4. Devitt, D. A., L. Wright, F. Landau and L. Apodaca(2014) Deicing salts: Assessing distribution, ion accumulation in plants and the responses of plants to different loading rates and salt mixture. Environment and Natural Resources Research 4(1): 73-93.
  5. Dubuque, C.(2010) De-icers for driveways and sidewalks, Telegraph Herald. 14 Nov. E.7.
  6. Eom, S. H., T. L. Setter, A. DiTommas and L. A. Weston(2013) Differential growth response to salt stress among selected ornamentals. Journal of Plant Nutrition 30: 1109-1126.
  7. Evans, J. R.(1996) Developmental Constraints on Photosynthesis: Effects of Light and Nutrition. Dordrecht, the Netherlands: Kluwer Academic Publishers. pp. 281-304.
  8. Evelin, H., R. Kapoor and B. Giri(2009) Arbuscular mycorrhizal fungi in alleviation of salt stress. Annals of Botany 104: 1263-1280. https://doi.org/10.1093/aob/mcp251
  9. Kim, J. H., K. W. Kwon, W. T. Kim and Y. H. Yoon(2013) Effects of watering and soil conditioners for reduction of salt stress on the growth of Callicarpa japonica. J. Korean Soc. People Plant Environ. 16: 267-274. https://doi.org/10.11628/ksppe.2013.16.5.267
  10. Kim, S. S.(2007) Landscaping Woody Plants in Korea. Kimoondang Publishing Co., Ltd. Seoul. p. 164-165.
  11. Kim, W. J., K. T. Lee, H. J. Lee and S. T. Cho(2014) Extractives from wood of Eyonymus japonica. J. Korean For. Soc. 103(1): 113-121. https://doi.org/10.14578/jkfs.2014.103.1.113
  12. Kwack, Y., S. W. Park and C. Chun(2014) Growth and development of grafted cucumber transplants as affected by seedling ages of scions and rootstocks and light intensity during their cultivation in a closed production system. Kor. J. Hort. Sci. Technol. 32(5): 600-606.
  13. Kwon, H. B. and T. J. Kim(2006) Evaluation of the coating liquid sprayed on landscape plants to prevent de-icing stresses. Journal of the Korean Institute of Landscape Architecture 35(6): 29-36.
  14. Kwon, M. Y., S. H. Kim and J. H. Sung(2014) The responses of growth and physiological traits of Acer triflorum on calcium chloride ($CaCl_2$) concentration. Korean J. Environ. Ecol. 28(5): 500-509. https://doi.org/10.13047/KJEE.2014.28.5.500
  15. Lee, G. H., J. G. Yu, J. H. Park and Y. D. Park(2014) Construction of a network model to reveal genes related to salt tolerance Chinese cabbage. Kor. J. Hort. Sci. Technol. 32(5): 684-693.
  16. Lee, J. S. and Y. H. Kim(2014) Growth and anthocyanins of lettuce grown under red or blue light-emitting diodes with distinct peak wave length. Kor. J. Hort. Sci. Technol. 32(3): 330-339.
  17. Lee, S. Y., W. T. Kim, J. H. Ju and Y. H. Yoon(2013) Effect of calcium chlroide concentration on roadside ground cover plant growth. Journal of Korean Institute of Landscape Architecture 41: 17-23. https://doi.org/10.9715/KILA.2013.41.4.017
  18. Maricle, B. R., R. W. Lee, C. E. Hellquist, O. Kirasts and G. E. Edwards(2007) Effects of salinity on chlorophyll fluorescence and $CO_2$ fixation in $C_4$ estuarine grasses. Photosynthetica 45(3): 433-440. https://doi.org/10.1007/s11099-007-0072-7
  19. Munns, R. and M. Tester(2008) Mechanisms of salinity tolerance Annu. Rev. Plant Biol. 59: 651-681. https://doi.org/10.1146/annurev.arplant.59.032607.092911
  20. Nikiforova, E. M., N. S. Kasimov and N. E. Kosheleva(2014) Long-term dynamics of the anthropogenic salinization of soils in Moscow (by the example of the eastern district). Eurasian Soil Science 47(3): 203-215. https://doi.org/10.1134/S1064229314030041
  21. Nisha, K., Y. Kuldeep, B., Neetu and A. Ashok(2013) AM fungi ameliorates growth, yield and nutrient uptake in Cicer arietinum L. under salt stress. Russian Agricultural Science 39(4): 321-329. https://doi.org/10.3103/S1068367413040058
  22. Park, C. M., C. S. Park and W. J. Park(2013) Effect of rare-earth fertilizer on the salinity tolerance of Pinus strobus and P. thunbergii. Journal of Agriculture & Life Science 44(2): 1-9.
  23. Seyed, M. H. N., P. Aidin, N. Hamed and K. S. K. Sekineh(2012) Effect of salt stress on germination and seedling growth of Prosopis juliflora(Sw.). New Forests 43: 45-55. https://doi.org/10.1007/s11056-011-9265-9
  24. Shim, K. K., Y. M. Ha, Y. H. Kang and B. K. Seo(1990) A study on new winter-green cultivar of Korean boxwood. J. Kor. Soc. Hort. Sci. 31(4): 405-413.
  25. Shin, J. H., H. R. Heo, J. S. Shin, M. Y. Kim and J. Y. Shin(2001) A study of effects on environment fromroad deicings. Korean J. Sanitation 16(4): 31-37.
  26. Shin, Y. M., H. Y. Oh and S. Y. Kim(2003) A study on the plan to expand landscape materials of Korean native deciduous shrubs: Focused on the middle area of Korea. Journal of the Korean Institute of Traditional Landscape Architecture 21(4): 100-113.
  27. Shishi, L., Y. Peng, W. Du, Y. Le and L. Li(2015) Remote estimation of leaf and canopy water content in winter wheat with different vertical distribution of water-related properites. Remote Sens. 7: 4626-4650. https://doi.org/10.3390/rs70404626
  28. Singh, A. and R. Prasad(2009) Salt stress effects growth and cell wall bound enzymes in Arachis hypogaea L. seedlings. Int. J. Integr. Biol. 7: 117-123.
  29. Sung, J. H., S. M. Je, S. H. Kim and Y. K. Kim(2009) Effects of calciumchloride($CaCl_2$) on the characteristics on photosynthetic apparatus, stomatal conductance, and fluorescence image of the leaves of Cornus kousa. J. Agric. For. Meteorol. 11: 143-150.
  30. Sung, J. H., S. M. Je, S. H. Kim and Y. K. Kim(2010) Effect of calcium chloride($CaCl_2$) on chlorophyll fluorescence image and photosynthetic apparatus in the leaves of Prunus sargentii. J. Korean. For. Soc. 99: 922-928.
  31. Susana, R. G., M. N. Enrique, D. Anthony and F. G. Munoz(2007) Growth and photosynthetic responses to salinity of the salt-marsh shrub Atriplex portulacoides. Annals of Botany 100(3): 555-563. https://doi.org/10.1093/aob/mcm119
  32. Sylvie, R. and A. Maha(2009) Improving NaCl resistance of red-osier dogwood: role of $CaCl_2$ and $CaSO_4$. Plant Soil 315: 123-133. https://doi.org/10.1007/s11104-008-9737-7
  33. Wang, S., P. Liu, D. Chen, L. Yin, H. Li and X. Deng(2015) Silicon enhanced salt tolerance by improving the root water uptake and decreasing the ion toxicity in cucumber. Frontiers in Plant Science 6: 1-10.
  34. Yang, S. J., S. C. Lee, S. H. Choi, J. B. Baek and S. D. Lee(2010) Study on a valid soil depth of belt-type shrub in street trees. Pro. Kor. Soc. Env. Eco. Con. 20(1): 241-244.

피인용 문헌

  1. Analysis on Appropriate Plants of Infiltration Swale for Road Runoff vol.19, pp.5, 2016, https://doi.org/10.13087/kosert.2016.19.5.19