DOI QR코드

DOI QR Code

Study of Ecological Response of Endangered Sarcandra glabra (Thunb.) Nakai according to Moisture and Nutrient under Condition of Climate Change for Propagation and Restoration

증식 및 복원을 위한 기후변화조건에서 수분과 유기물에 따른 멸종위기식물 죽절초(Sarcandra glabra (Thunb.) Nakai)의 생태적 반응 연구

  • 이수인 (공주대학교 생명과학과) ;
  • 이응필 (공주대학교 생명과학과) ;
  • 정영호 (공주대학교 생명과학과) ;
  • 김의주 (공주대학교 생명과학과) ;
  • 이재근 (공주대학교 생명과학과) ;
  • 이승연 (공주대학교 생명과학과) ;
  • 박재훈 (국립생태원 생태보전연구실) ;
  • 이상훈 (국립생태원 생태보전연구실) ;
  • 유영한 (공주대학교 생명과학과)
  • Received : 2017.10.16
  • Accepted : 2018.01.19
  • Published : 2018.02.28

Abstract

The purpose of this paper is to provide reference data about propagation, restoration, and preparation of policy of endangered Sarcandra glabra (Thunb.) Nakai by investigating growth response and variation of ecological niche breadth according to moisture and nutrient under the condition of elevated $CO_2$ concentration and elevated temperature. We divided the investigation into the controlled group and treated group (elevated $CO_2$ concentration and elevated temperature) and then varied the moisture and nutrient treatment for testing. The results showed that the ecological niche breadth was wide at moisture and nutrient gradients of 0.899 and 0.844, respectively, under control. Also, the ecological niche breadth regarding the moisture and nutrient gradients under treatment simulating global warming was wider as 6.60% and 2.09%, respectively. Therefore, moisture and nutrient will not be the restriction factors concerning the growth of Sarcandra glabra under continued global warming. However, it will be advisable to specify the nutrient content condition in the soil to be 10% for population restoration when growing Sarcandra glabra in the green house which is not affected by external environment since the studies of rearing reaction reported that Sarcandra glabra prefer 10% of nutrient content than 0-5%. Furthermore, it is necessary to protect evergreen broad-leaved forest where is the natural habitat of Sarcandra glabra that has relatively high nutrient content.

기후변화에 대비한 멸종위기식물인 죽절초에 대한 정책 마련과 증식 및 복원을 위한 기초자료를 제공하고자 $CO_2$농도와 온도가 상승하였을 때 수분과 유기물 처리에 따른 죽절초의 생육반응을 알아보고 생태적 지위폭의 변화를 확인하였다. 대조구와 처리구($CO_2$농도 상승+온도 상승)로 나누었고 그 내에서 각각 수분 구배와 유기물 구배를 두어 실험을 진행하였다. 그 결과, 대조구에서 수분 구배와 유기물 구배에서 생태적 지위폭이 각각 0.899, 0.844이였고, 지구온난화가 진행되었을 때, 수분 구배와 유기물 구배에서 각각 6.60%(0.988), 2.09%(0.858)로 더 넓어졌다. 이러한 결과로 보아, 지구온난화가 진행된다면 죽절초의 생육에 수분과 유기물은 제한요인이 되지 않을 것이다. 하지만, 생육반응에 대한 연구결과에서 죽절초는 유기물이 함량이 낮은 조건(0~5%)보다는 약간 높은 조건(10%)을 선호하기 때문에, 외부환경에 영향을 받지 않는 온실에서 증식을 시킬 때는 유기물의 함량을 약 10%로 조성해주는 것이 죽절초의 개체 복원을 위해서 좋을 것으로 생각된다. 또한 상대적으로 유기물함량이 높은 죽절초의 자생지 상록활엽수림을 보호해야할 필요가 있다.

Keywords

References

  1. Ahn, K.H., Y.H. You, and K.T. Cho(2016) Growth response to Light, Moisture and Nutrients for the Conservation Measures of Bupleurum latissimum(Apiaceae, endangered species) under Future Climate Environment(Elevated $CO_2$ Concentration and Temperature). Korean Journal of Environment and Ecology 30(5): 803-809. (in Korean with English abstract) https://doi.org/10.13047/KJEE.2016.30.5.803
  2. Bazzaz, F.A., J.S. Coleman and S.R. Morse(1990) Growth responses of seven major co-occurring tree species of the northeastern United States to elevated $CO_2$. Canadian Journal of Forest Research 20(9): 1479-1484. https://doi.org/10.1139/x90-195
  3. Bennett, J.M. and S.L. Albrecht(1984) Drought and flooding effects on $N_2$ fixation, water relations, and diffusive resistance of soybean. Agronomy journal 76(5): 735-740. https://doi.org/10.2134/agronj1984.00021962007600050007x
  4. Boyer, J.S. (1970) Differing sensitivity of photosynthesis to low leaf water potentials in corn and soybean. Plant physiology 46(2): 236-239. https://doi.org/10.1104/pp.46.2.236
  5. Choi, S.M., H.C. Shin, J.H. Yoon, and Y.B. Park(2014) Shade Tolerance Assessment with Light Intensity of Broad-Leaved Evergreen three species. Korean Forest Society 121. (in Korean with English abstract)
  6. Chung, J.M., H.R. Jung, J.T. Kang and H.S. Moon(2010) Vegetation Structure and Soil Characteristic around Camellia japonica Stand in Hakdong, Geoje Island. Journal of Agriculture & Life Science 44(3): 31-40. (in Korean)
  7. Florides, G.A. and Christodoulides, P.(2009) Global warming and carbon dioxide through sciences. Environment International 35: 390-401. https://doi.org/10.1016/j.envint.2008.07.007
  8. Han, Y.S., H.R. Kim and Y.H. You(2012) Effect of Elevated $CO_2$ Concentration and Temperature on the Ecological Responses of Aster altaicus var. uchiyamae, Endangered Hydrophyte. Journal of Wetlands Research 14(2): 169-180. (in Korean) https://doi.org/10.17663/JWR.2012.14.2.169
  9. He, J.S., Kelly, Wolfe-Bellin S, Bazzaz(2005) Leaf-level physiology, biomass and reproduction of Phytolacca americana under conditions of elevated $CO_2$ and altered temperature regimes. International J. of Plant Sciences 166(4): 615-622. https://doi.org/10.1086/430196
  10. Hubalek, Z.(2004) An annotated checklist of pathogenic microorganisms associated with migratory birds. Journal of Wildlife Diseases 40(4): 639-659. https://doi.org/10.7589/0090-3558-40.4.639
  11. Idso, S.B., B.A. Kimball, M.G. Anderson and J.R. Mauneyv(1987) Effect of atmospheric $CO_2$ enrichment on plant growth: the inter- action role of air temperature. Agriculture, Ecosystems and Environment 20: 1-10. https://doi.org/10.1016/0167-8809(87)90023-5
  12. IPCC. (2007) Climate change 2007: Mitigation of Climate Change. Contribution Working Group III Contribution to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge university press, Cambridge, New york, USA. 863.
  13. IPCC. (2014) Climate Change 2014: Synthesis Report. Contribution of Working Groups I, II and III to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change [Core Writing Team, R.K. Pachauri and L.A. Meyer (eds.)]. IPCC, Geneva, Switzerland, 151.
  14. Jang, R.H., S.H. Lee, Y.S. Han, K.T. Cho and Y.H. You(2013) Ecologcal Response of the endangered aquatic plant, Viola raddeana Regal, to Effect of Increased $CO_2$ Concentration and Air Temperature. Journal of Wetlands Research 15(3): 381-386. (in Korean) https://doi.org/10.17663/JWR.2013.15.3.381
  15. Je, S.M., S.G. Son, S.Y. Woo, K.O. Byun and C.S. Kim(2006) Photosynthesis and Chlorophyll Contents of Chloranthus glaber under Different Shading Treatments. Korean Journal of Agricultural and Forest Meteorology 8(2): 54-60. (in Korean)
  16. Jeong, J.H., K.S. Koo, C.H. Lee and C.S. Kim(2002) Physiochemical properties of Korean forest soils by regions. Joural of Korean Forest Society 91(6): 694-700. (in Korean)
  17. Jeong, W.J., J.H. Lee, H.C. Kim and J.H. Bae(2009) Dry Matter Production, Distribution and Yield of Sweet Pepper Grown under Glasshouse and Plastic Greenhouse in Korea. The Korean Society for Bio-Environment Control Quarterly 18(3): 258-265.
  18. Kil, M.J., S.Y. Choi and Y.S. Kwon(2012) Dwarfing Effect by Different Temperature Treatment in Chloranthus glaber. Journal of Bio-Environment Control 21(4):343-347. (in Korean with English abstract) https://doi.org/10.12791/KSBEC.2012.21.4.343
  19. Kim, C.S.(2007) Studies on the distribution and vegetation of the endangered wild plants in Jeju Island. D. Dissertation, Jeju Univ., Jeju, 139. (in Korean with English abstract)
  20. Kim, J. H. (2012) The Global Warming as seen by Biologist. Seoul National University Press. 566. (in Korean)
  21. Kim, J.H., G.H. Nam and J.S. Kim(2012) The vascular plants in Is. Gageo (Jeollanam-do). Journal of Environmental Science International 21(4): 437-450. https://doi.org/10.5322/JES.2012.21.4.437
  22. Krussmann. (1984) Manual of cultivated broad-leaved tress and shrubs. Timber press, Vol. 1. 448.
  23. Lavergne, S., J.D. Thompson, E. Garnier and M. Debussche(2004) The biology and ecology of narrow endemic and widespread plants: a comparative study of trait variation in 20 congeneric pairs. Oikos 107(3): 505-518. https://doi.org/10.1111/j.0030-1299.2004.13423.x
  24. Lawlor, D.W. and R.A.C. Mitchell(1991) The effects of increasing $CO_2$ on crop photosynthesis and productivity: a review of field studies. Plant, Cell & Environment 14(8): 807-818. https://doi.org/10.1111/j.1365-3040.1991.tb01444.x
  25. Leadley, P.W., P.A. Niklaus, R. Stocker and C. Karner(1999) A field study of the effects of elevated $CO_2$ on plant biomass and community structure in a calcareous grassland. Oecologia 118(1): 39-49. https://doi.org/10.1007/s004420050701
  26. Lee, H.S., S. Lee, J.C. Lee, K.W. Kim and P.G. Kim(2013) Effects of Elevated $CO_2$ Concentration and Temperature on Physiological Characters of Liriodendron tulipifera. Korean Journal of Agricultural and Forest Meteorology 15(3): 145-152. (in Korean) https://doi.org/10.5532/KJAFM.2013.15.3.145
  27. Lee, J.H., S.K. So, K.U. Suh, M.Y. Kim and H.K. Song(2010) Vegetation and Soil Properties of Warm Temperate Evergreen Broad-Leaved Forest in Hongdo, Korea. Korean Journal of Environment and Ecology 24(1): 54-61. (in Korean)
  28. Lee, S.I., E.P. Lee, E.J. Kim, J.H. Park, K.T. Cho, S.Y. Lee and Y.H. You(2017) Growth response and Variation of ecological niche breadth of Hibiscus hamabo, the endangered plant, according to Light, Moisture and Nutrient under elevated $CO_2$ concentration and temperature. Korean Journal of Environment and Ecology 31(3): 279-286. https://doi.org/10.13047/KJEE.2017.31.3.279
  29. Lee, S.W., D.Y. Hyun, C.G. Park, T.S. Kim, B.Y. Yeon, C.G. Kim and S.W. Cha(2007) Effect of soil moisture content on photosynthesis and root yield of Panax ginseng CA Meyer seedling. Korean Journal of Medicinal Crop Science 15(6): 367-370. (in Korean)
  30. Ministry of Environment. (2012) White paper of environment. Ministry of Environment.896. (in Korean)
  31. Park, H. R.(2003) Global warming and its effects and preventive. Uyoug, Seoul, 285. (in Korean)
  32. Park, J.H., Y.S. Hong, H.R. Kim, J.K. Jeong, H. M. Jeong and Y.H. You(2014) Effects of Elevated $CO_2$ and Temperate on the Growth of Endangered Species, Cicuta virosa L. in Korea. Journal of Wetlands Research 16(1): 11-18. (in Korean with English abstract) https://doi.org/10.17663/JWR.2014.16.1.011
  33. Park, W.K.(1993) Increasing atmospheric carbon dioxide and growth trends of Korean subalpine conifers-Dendrochronological analysis. Journal of Korean Forestry Society 82(1): 17-25. (in Korean)
  34. Saxe, H., D.S. Ellsworth and J. Heath(1998) Tree and forest functioning in an enriched $CO_2$ atmosphere. The New Phytologist 139(3): 395-436. https://doi.org/10.1046/j.1469-8137.1998.00221.x
  35. Son, S.K., K.O. Beon, M.J. Kim, S.Y. Woo and C.S. Kim(2005) Effect of Different Shading Treatment in Chloranthus glaber Thunb. Mak. The Plant Resources Society of Korea 12:141-143. (in Korean with English abstract)
  36. Song, G.P., C.G. Jang and S.H. Kang(2012) Conservation and vegetation structure of Euchresta japonica (Leguminosae) in Jeju Island. Korean Journal of Plant Resources 25(1): 89-95. (in Korean with English abstract) https://doi.org/10.7732/kjpr.2012.25.1.089
  37. Wennman, P. and T. Katterer(2006) Effects of moisture and temperature on carbon and nitrogen mineralization in mine tailings mixed with sewage sludge. Journal of environmental quality 35(4): 1135-1141. https://doi.org/10.2134/jeq2005.0142