$\require{mediawiki-texvc}$

연합인증

연합인증 가입 기관의 연구자들은 소속기관의 인증정보(ID와 암호)를 이용해 다른 대학, 연구기관, 서비스 공급자의 다양한 온라인 자원과 연구 데이터를 이용할 수 있습니다.

이는 여행자가 자국에서 발행 받은 여권으로 세계 각국을 자유롭게 여행할 수 있는 것과 같습니다.

연합인증으로 이용이 가능한 서비스는 NTIS, DataON, Edison, Kafe, Webinar 등이 있습니다.

한번의 인증절차만으로 연합인증 가입 서비스에 추가 로그인 없이 이용이 가능합니다.

다만, 연합인증을 위해서는 최초 1회만 인증 절차가 필요합니다. (회원이 아닐 경우 회원 가입이 필요합니다.)

연합인증 절차는 다음과 같습니다.

최초이용시에는
ScienceON에 로그인 → 연합인증 서비스 접속 → 로그인 (본인 확인 또는 회원가입) → 서비스 이용

그 이후에는
ScienceON 로그인 → 연합인증 서비스 접속 → 서비스 이용

연합인증을 활용하시면 KISTI가 제공하는 다양한 서비스를 편리하게 이용하실 수 있습니다.

[국내논문] 온난화 처리가 신갈나무(Quercus mongolica)와 졸참나무(Q. serrate)의 종자발아와 생장에 미치는 영향
The Effects of Experimental Warming on Seed Germination and Growth of Two Oak Species (Quercus mongolica and Q. serrata) 원문보기

생태와 환경 = Korean journal of ecology and environment, v.52 no.3, 2019년, pp.210 - 220  

박성애 (국립환경과학원 자연환경연구부) ,  김태규 (국립환경과학원 자연환경연구부) ,  심규영 (국립환경과학원 자연환경연구부) ,  공학양 (국립환경과학원 자연환경연구부) ,  양병국 (국립생물자원관 생물다양성정보팀) ,  서상욱 (건국대학교 생물학과) ,  이창석 (서울여자대학교 생명.환경공학과)

초록
AI-Helper 아이콘AI-Helper

본 연구는 기온상승 강도에 따른 우리나라 주요 참나무류의 종자 발아와 초기생장에 미치는 영향을 파악하기 위해 수행되었다. 신갈나무와 졸참나무를 대상으로 온도구배온실을 이용하여 대조구, 중간 강도 온난화 처리구($+1.7^{\circ}C$) 및 강한 강도 온난화 처리구($+3.2^{\circ}C$)를 준비하여 재배실험을 실시하였다. 그 결과, 발아반응과 초기생장 반응은 기온상승 강도 및 수종에 따라 차이를 보였다. 중간 강도의 온난화 환경은 두 종의 발아반응을 촉진하고, 생장량(묘고, 근원경)과 생물량(잎, 줄기, 뿌리의 건중량 및 총 생물량)을 증가시켜, 초기정착에 다소 유리할 수 있을 것으로 판단된다. 그러나 Tm에서 두 종 모두 대조구보다 낮은 RMR과 높은 H/D율을 나타내, 장기적으로는 생장에 불리하게 작용할 수 있을 것임을 암시한다. 강한 강도의 온난화 환경은 신갈나무와 졸참나무의 발아반응을 촉진시켰으나, 생육기간 종료 시점의 총 생물량은 대조구보다 유의하게 낮았다. 뿌리 생장은 대조구보다 크게 저하되었고, 이로 인하여 RMR은 낮고 S/R율은 높게 나타났다. 이러한 결과는 강한 강도의 온난한 환경이 봄철에는 발아시기를 앞당겨 생장기간을 증가시켰지만, 여름철에는 임계치 이상의 높은 온도가 생장에 스트레스요인으로 작용하는데 기인한 것으로 판단된다. 식물의 생장은 온난화 처리기간, 토양수분, 광환경 등의 환경요인에 따라 다를 수 있으므로, 온난화에 의한 영향을 정확하게 판단하기 위해서는 다른 환경인자에 대한 모니터링과 장기간에 걸친 추가 연구가 필요할 것으로 판단되었다. 기온상승에 대한 두 식물의 반응을 비교하면, 발아 반응에서 졸참나무가 신갈나무보다 기온상승에 따른 발아율 상승이 높게 반응하였고, 생물량 분배반응에서 신갈나무가 졸참나무보다 민감하게 반응하는 차이를 보였다. 이는 자연에서 양 식물의 공간 분포가 가져오는 미기후 차이에서 비롯된 것으로 판단된다.

Abstract AI-Helper 아이콘AI-Helper

Population growth and the increase of energy consumption due to civilization caused global warming. Temperature on the Earth rose about $0.7^{\circ}C$ for the last 100 years, the rate is accelerated since 2000. Temperature is a factor, which determines physiological action, growth and dev...

Keyword

참고문헌 (63)

  1. An J.A, H.N. Chang, M.J. Park, S.H. Han, J.H. Hwang, M.S. Cho and Y. Son. 2016. Effect of Experimental Warming on Physiological and Growth Responses of Larix kaempferi Seedlings. Journal of Climate Change Research 7(1): 77-84. 

  2. Arend, M., T. Kuster, M.S. Gunthardt-Goerg and M. Dobbertin. 2011. Provenance-specific growth responses to drought and air warming in three European oak species (Quercus robur, Q. petraea and Q. pubescens). Tree Physiology 31(3): 287-297. 

  3. Baskin, C.C. and J.M. Baskin. 1998. Seeds: Ecology, Biogeography, and Evolution of Dormancy and Germination. Academic Press, San Diego. 

  4. Bernareggi, G. 2015. Study of the effects of climate warming on seed germination and seed longevity of snowbed species. PhD Thesis, Universita degli Studi di Parma, Parma, Italy. 

  5. Bewley, J.D. and M. Black. 1982. Physiology and biochemistry of seeds in relation to germination. 2nd Ed. springer-Verlagpress. Berlin. Heidelberg and New York. 

  6. Bonner, F.T. and R.P. Karrfalt. 2008. The woody plant seed manual. Agric. Handbook No. 727. US Department of Agriculture, Forest Service. Washington, DC. 

  7. Cannell, M.G.R. and R.I. Smith. 1986. Climatic warming, spring budburst and forest damage on trees. Journal of Applied Ecology 23(1): 177-191. 

  8. Cannell, M.G.R., J. Grace and A. Booth. 1989. Possible impacts of climatic warming on trees and forests in the United Kingdom: a review. Forestry: An International Journal of Forest Research 62(4): 337-364. 

  9. Cho, M.S., J. Hwang, A.R. Yang, S. Han and Y. Son. 2014. Seed Germination and Seedling Survival Rate of Pinus densiflora and Abies holophylla in Open-field Experimental Warming Using the Infrared Lamp. Journal of Korean Society of Forest Science 103(2): 203-210. 

  10. Cho, Y.C., N.S. Kim and B.Y. Koo. 2018. Changed land management policy and the emergence of a novel forest ecosystem in South Korea: landscape dynamics in Pohang over 90 years. Ecological Research 33(2): 351-361. 

  11. Choi, C.H., B.S. Seo, W.S. Tak, K.J. Cho, C.S. Kim and S.U. Han. 2008. Comparison of Seed Germination Response to Temperature by Provenances in Fraxinus rhynchophylla. Journal of Korean Forest Society 97(6): 576-581. 

  12. Choung, Y.S. 1998. Vegetation in the Paekdoo Great Mountain Chain. Preservation Nature 103: 48-54. 

  13. Ericsson, T., L. Rytter and E. Vapaavuori. 1996. Physiology of carbon allocation in trees. Biomass and Bioenergy 11(2-3): 115-127. 

  14. Figueroa, J.A. and J.J. Armesto. 2001. Community-wide germination strategies in a temperate rain forest of Southern Chile: ecological and evolutionary correlates. Australian Journal of Botany 49: 411-425. 

  15. Footitt, S., Z. Huang, H. Olcer-Footitt, H. Clay and W.E. Finch-Savage. 2018. The impact of global warming on germination and seedling emergence in Alliaria petiolata, a woodland species with dormancy loss dependent on low temperature. Plant Biology (Stuttg) 20(4): 682-690. 

  16. Garzoli, K. (ed). 1988. The Australian Greenhouse Handbook. Australian Government Publishing Service. Canberra Australia. 185 pp. 

  17. Ghannoum, O., N.G. Phillips, J.P. Conroy, R.A. Smith, R.D. Attard, R. Woodfield, B.A. Logan, J.D. Lewis and D.T. Tissue. 2010. Exposure to preindustrial, current and future atmospheric $CO_2$ and temperature differentially affects growth and photosynthesis in Eucalyptus. Global Change Biology 16: 303-319. 

  18. Haase, D.L. 2007. Morphological and physiological evaluations of seedling quality. Riley, L.E., Dumroese, R.K., Landis, T.D. (tech. cords) National proceedings: Forest and Conservation Nursery Associations-2006. Proc. RMRS-P-50. Fort Collins, CO: US Department of Agriculture, Forest Service, Rocky Mountain Research Station. 3-8. 

  19. Han, S., J. An, T.K. Yoon, S.J. Yun, J. Hwang, M.S. Cho and Y. Son. 2014. Species-specific growth responses of Betula costata, Fraxinus rhynchophylla, and Quercus variabilis seedlings to open-field artificial warming. Korean Journal of Agricultural and Forest Meteorology 16(3): 219-226. 

  20. Heydecker, W. 1977. Stress and seed germination: An agronomic view, p. 237-282. In: The physiology and biochemistry of seed dormancy and germination (Elsevier, A.K. ed.). North Holland and Biomedical Press, Amsterdam. 

  21. Houle, G. 1994. Spatiotemporal patterns in the components of regeneration of four sympatric tree species - Acer rubrum, A. saccharum, Betula alleghaniensis and Fagus grandifolia. Journal of Ecology 82(1): 39-53. 

  22. IPCC. 2013. Climate change 2013: The physical Science Basis. NY, Cambridge University Press. New York. 

  23. Jang, R.H., S.Y. Lee and Y.H. You. Phenological response of 6 oak species to climate change. Proceedings Korean Soc. Environ. Ecol. Con. 27(1): 3. 

  24. Jeon, B.S., J.H. Kang, S.Y. Yoon, S.W. Lee and J.I. Chung. 2003, Germination, Seedling Emergence, and Growth of Burcucumber Affected by Maturity and Size. Korean Journal of Crop Science 48(3): 152-155. 

  25. Jeong, J.K., H.R. Kim and Y.H. You. 2010. Effects of elevated $CO_2$ concentration and temperature on growth response of Quercus acutissima and Quercus variabilis. Korean Journal of Environment and Ecology 24(6): 648-656. 

  26. Khan, M.A. and I.A. Ungar. 1997. Effects of thermo period on recovery of seed germination of halophytes from saline conditions. American Journal of Botany 84: 279-283. 

  27. Kim, I.T., M.S. Song and S.H. Jung. 2009. Analysis of Distribution and Association Structure on the Sawtooth Oak (Quercus acutissima) Forest in Korea. Journal of Life Science 19(3): 356-361. 

  28. Klady, R.A., G.H. Henry and V. Lemay. 2011. Changes in high arctic tundra plant reproduction in response to long-term experimental warming. Global Change Biology 17(4): 1611-1624. 

  29. K.M.A. (Korea Meteorological Administration). 2017. Korean Peninsula Climate Change Report for New Climate Regime. 

  30. Kulkarni, M.G., R.A. Street and J. Van Staden. 2007. Germination and seedling growth requirements for propagation of Dioscorea dregeana (Kunth) Dur. and Schinz: A tuberous medicinal plant. South African Journal of Botany 73: 131-137. 

  31. Lee, C.S. 1989. A study on the succession of pine forests damaged by pine gall midge. PhD Thesis, Seoul National University, Seoul. 

  32. Lee, C.S., J.H. Kim, H. Yi and Y.H. You. 2004. Seedling establishment and regeneration of Korean red pine (Pinus densiflora S. et Z.) forests in Korea in relation to soil moisture. Forest Ecology and Management 199(2-3): 423-432. 

  33. Lee, C.S., S. Jung, B.S. Lim, A.R. Kim, C.H. Lim and H. Lee. 2019. Forest Decline Under Progress in the Urban Forest of Seoul, Central Korea. In: Deforestation around the world. IntechOpen. DOI: http://dx.doi.org/10.5772/intechopen.86248. 

  34. Lee, H.J., Y.M. Chun and C.H. Kim. 1998. Floristic Composition and Soil Condition of Quercus mongolica Forest on Mt. Worak. Korean Journal of Environmental Biology 16(2): 169-180. 

  35. Lee, J.S., O. Takehisa, M. Shigeru and H.J. Lee. 2000. Effects of Elevated $CO_2$ and Temperature on Seedling Emergence of Herbsina Japanese Temperate Grassland. The Korean Journal of Ecology 23(6): 423-429. 

  36. Lee, M.J. and H. Song. 2011. Vegetation Structure and Ecological Restoration Model of Quercus mongolica Community. Journal of the Korea Society of Environmental Restoration Technology 14(1): 57-65. 

  37. Lee, S.J., S. Han, T.K. Yoon, H. Chung, N.J. Noh, W. Jo, C.W. Park, S. Ko, S.H. Han and Y. Son. 2012. Effects of experimental warming on growth of Quercus variabilis seedlings. Journal of Korean Society of Forest Science 101(4): 722-728. 

  38. Lee, W.T. and T.H. Chung. 1965. Korea Forest Vegetation Zone and Theory of Right Tree on Right Site. Journal of Sungkyunkwan University 10: 329-435. 

  39. Lloret, F., J. Penuelas, P. Prieto, L. Llorens and M. Estiarte. 2009. Plant community changes induced by experimental climate change: seedling and adult species composition. Perspectives in Plant Ecology, Evolution and Systematics 11(1): 53-63. 

  40. Lopushinsky, W. and T.A. Max. 1990. Effects of soil temperature on root and shoot growth and on bud burst timing in conifer seedling transplants. New Forest 4(2): 107-124. 

  41. Milbau, A., B.J. Graae and A. Shevtsova. 2009. Effects of a warmer climate on seed germination in the subarctic. Annals of Botany 104: 287-296. 

  42. Moles, A. and M. Westoby. 2004. What do seedlings die from and what are the implications for evolution of seed size? Oikos 106: 193-199. 

  43. Mullan, B. and J. Haqq-Misra. 2019. Population growth, energy use, and the implications for the search for extraterrestrial intelligence. Futures 106(2019): 4-17. 

  44. NOAA. 2017. Earth system research laboratory ESR Global monitoring division. www.esrl.noaa.gov/gmd/ccgg/trends/global.html/. 

  45. Norby, R.J., T.M. Long, J.S. Jartz-Rubin and E.Z. O’Neil. 2000. Nitrogen resorption in senescing tree leaves in a warmer, $CO_2$ -enriched atmosphere. Plant and Soil 224(1): 15-29. 

  46. Park, J.H. 2014. Phytochemical variation of Quercus mongolica Fisch. ex Ledeb. and Quercus serrata Murray (Fagaceae) in Mt. Jiri, Korea1a. Korean Journal of Environment and Ecology 28(5): 574-587. 

  47. Park, M.J., S.J. Yun, H.M. Yun, H. Chang, S.H. Han, J. An and Y. Son. 2016. Effects of open-field artificial warming and precipitation manipulation on physiological characteristics and growth of Pinus densiflora seedlings. Journal of Climate Change Research 7: 9-17. 

  48. Pearson, R.G., W. Thuiller, M.B. Araujo, E. Martinez-Meyer, L. Brotons, C. McClean, L. Miles, P. Segurado, T.P. Dawson and D.C. Lees. 2006. Model-based uncertainty in species range prediction. Journal of Biogeography 33(10): 1704-1711. 

  49. Peng, Y.Y. and Q.L. Dang. 2003. Effects of soil temperature on biomass production and allocation in seedlings of four boreal tree species. Forest Ecology and Management 180(1-3): 1-9. 

  50. Rees, M. 1993. Trade-offs among dispersal strategies in British plants. Nature 366: 150-152. 

  51. Roberts, E.H. 1988. Temperature and seed germination. In : Symposia of the Society for Experimental Biology 42: 109-132. 

  52. Song, K.S., K.S. Jeon, K.S. Choi, J.Y. Choi, H.I. Sung and J.J. Kim. 2014. Growth Characteristics of Daphniphyllum macropodum Seedlings of Warm-Temperate Landscape Tree by Shading and Fertilization Treatment: Research on seedling production of D. macropodum by container nursery for meteorological disasters. Journal of Climate Research 9: 65-76. 

  53. Thompson, B.E. 1985, Seedling morphological evaluation - what you can tell by looking, In: Proceedings, Evaluation seedling quality: principles, procedures, and predictive abilities of major tests. Corvallis, Oregon State University, Forestry Research Laboratory. 59-72. 

  54. Thompson, L.J. and S. Naeem. 1996. The effects of soil warming on plant recruitment. Plant and Soil 182(2): 339-343. 

  55. Thompson, P.A. 1970. Characterization of the germination responses to temperature of species and ecotypes. Nature 225: 827-831. 

  56. Thuiller, W., C. Albert, M.B. Araujo, P.M. Berry, M. Cabeza, A. Guisan, T. Hickler, G.F. Midgley, J. Paterson, F.M. Schurr, M.T. Sykes and N.E. Zimmermann. 2008. Predicting global change impacts on plant species’ distributions: future challenges. Perspectives in Plant Ecology, Evolution and Systematics 9(3-4): 137-152. 

  57. Tripathi, R.S. and M.L. Khan. 1990. Effects of seed weight and microsite characteristics on germination and seedling fitness in two species of Quercus in a subtropical wet hill forest. Oikos 57(3): 289-296. 

  58. Walck, J.L., S.N. Hidayati, K.W. Dixon, K.E.N. Thompson and P. Poschilod. 2011. Climate change and plant regeneration from seed. Global Change Biology 17: 2145-2161. 

  59. Wang, K.Y., S. Kellomaki and K. Laitinen. 1995. Effects of needle age, long-term temperature and $CO_2$ treatments on the photosynthesis of Scots pine. Tree Physiology 15: 211-218. 

  60. Wertin, T.M., M.A. McGuire and R.O. Teskey. 2011. Higher growth temperatures decreased net carbon assimilation and biomass accumulation of northern red oak seedlings near the southern limit of the species range. Tree Physiology 3: 1277-1288. 

  61. Xiao, Z., Z. Zhang and Y. Wang. 2004. Dispersal and germination of big and small nuts of Quercus serrata in a subtropical broad-leaved evergreen forest. Forest Ecology and Management 195(1-2): 141-150. 

  62. Xu, J., W. Li, C. Zhang, W. Liu and G. Du. 2017. The determinants of seed germination in an alpine/subalpine community on the Eastern Qinghai-Tibetan Plateau. Ecological Engineering 98: 114-122. 

  63. Xu, Z.F., T.X. Hu, K.Y. Wang, Y.B. Zhang and J.R. Xian. 2009. Short-term responses of phenology, shoot growth and leaf traits of four alpine shrubs in a timberline ecotone to simulated global warming, Eastern Tibetan Plateau, China. Plant Species Biology 24(1): 27-34. 

저자의 다른 논문 :

활용도 분석정보

상세보기
다운로드
내보내기

활용도 Top5 논문

해당 논문의 주제분야에서 활용도가 높은 상위 5개 콘텐츠를 보여줍니다.
더보기 버튼을 클릭하시면 더 많은 관련자료를 살펴볼 수 있습니다.

관련 콘텐츠

오픈액세스(OA) 유형

GOLD

오픈액세스 학술지에 출판된 논문

이 논문과 함께 이용한 콘텐츠

저작권 관리 안내
섹션별 컨텐츠 바로가기

AI-Helper ※ AI-Helper는 오픈소스 모델을 사용합니다.

AI-Helper 아이콘
AI-Helper
안녕하세요, AI-Helper입니다. 좌측 "선택된 텍스트"에서 텍스트를 선택하여 요약, 번역, 용어설명을 실행하세요.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.

선택된 텍스트

맨위로