음나무의 유묘생장에 영향을 미치는 엽중 무기성분 함량

Effect of Inorganic Components on the Seedling Growth Performance of Kalopanx pictus Nakai

  • Lee, Cheul-Ho (Department of Plant Conservation, Korea National Arboretum) ;
  • Shin, Chang-Ho (Department of Plant Conservation, Korea National Arboretum) ;
  • Kim, Kyu-Sick (Department of Plant Conservation, Korea National Arboretum) ;
  • Choi, Myung-Suk (Division of Environmental Forest Science, Gyeongsang National University)
  • 발행 : 2006.06.30

초록

음나무는 잎을 산채로, 뿌리와 수피를 식의약용으로 다양하게 이용되고 있으며, 최근 농산촌의 신소득 작목으로 재배하기 시작하였다. 본 연구는 엽내 무기성분분석을 통하여 음나무 유묘의 생장에 미치는 영향을 조사하여 향후 재배 및 생산성 향상을 위한 기초자료를 제공하고자 수행하였다. 음나무 유묘의 엽내 무기영양원소는 다량 및 미량 무기성분에 따라 함량차이를 보였으며, N성분이 가장 많았으며, 다음으로 K, Ca, P, Mg, Mn, Fe, Zn 순으로 나타났다. N, P, K 성분은 유묘의 생장과 고도의 정의 상관관계를 나타내었으며, Mg와 Mn은 낮은 정의 상관을 보인 반면, Na과는 높은 부의 상관관계를 나타내었다. 한편 Ca, Fe, Cu, Zn 성분은 유묘의 생장과 상관관계가 인정되지 않았다. 분석된 무기성분 중에서 N, P, K, Mg, Mn, Na 성분은 음나무 유묘의 생장에 영향을 미치는 (P<0.01) 무기성분으로 나타났으며, 특히 N성분은 가장 영향을 미치는 성분으로 나타났다.

Terminal buds and young leaves of Kalopanax pictus are in a great demand as a edible vegetable. Its bark of stems and roots have been used as the resources of folk medicine in Korea. Recently, attempts to cultivate the plant have being tried in farms and mountain villages. This study was conducted to determine effect of inorganic elements on seedlings growth of K. pictus. Levels of inorganic elements in the leaves were variable based on macro and micro inorganic elements. Among the inorganic elements in the leaves of K. pictus seedlings, level of N was high, while other ions were low in the order of K, Ca, P, Mg, Mn, Fe and Zn. A highly significant correlations between the seedling growth and the level of N, P, K, and Na in the leaves, while a low positive significant correlations between the growth and the level of either Mg or Mn and no significant correlations between the growth and the level of Ca, Fe, Cu, and Zn. The most affecting inorganic ion on the seedling growth was N, and followed by the order of K, P, Mg, Mn and Na.

키워드

참고문헌

  1. Kim DH, Yu KW, Bae EA, Park HJ, Choi JW (1998a) Metabolism of kalopanax B and H by human intestinal bacteria and antidiabetic activity of their metabolites. Biol Pharm Bull 21(4):360-365 https://doi.org/10.1248/bpb.21.360
  2. Kim YH. Kim JP, Yun BS, Moon SS, Yoo ID (1998b) Antioxidents isolated from Kalopanax pictus. Korean Journal of Plant Resources 11:89-109
  3. Kozlowski TT, Pallardy SG (1997) Physiology of woody plantssecond edition. Academic Press, New York, San Francisco. p. 411
  4. Lee CH, Choi MS, Kwon KW (2000) Variation of kalosaponin content in plant parts and population of native Kalopanax septemlobus (Thunb.) Koidz. Kor J Pharmacogn 31:203-208
  5. Lee CH, Jo DK, Lee KY, Kwon KW, Choi MS (2002) Growth factors affecting to kalosaponins contents of Kalopanax pictus Nakai. Korean J. Plant Biotechnology 29(3):209-215 https://doi.org/10.5010/JPB.2002.29.3.209
  6. Leyton L (1956) The relationship between the growth and mineral composition of Japanese larch (Larix leptolepis, Mrr.). Plant and Soil 7:167-177 https://doi.org/10.1007/BF01343725
  7. Leyton L, Armson KA (1955) Mineral composition of foliage in relation to the growth of Scots pine. For. Sci. 1:210-218
  8. Meiri A, Silk WK, Lauchli A (1992) Growth and deposition of inorganic nutrient elements in developing leaves of Zea mays L. Plant Physiol. 99:972-978 https://doi.org/10.1104/pp.99.3.972
  9. Nakai T (1927) Araliaceae. In, Flora Sylvatica Koreana. For. exp. Sta. Govern. Chosen, Seoul. p. 45-46
  10. O'rourke Jr EN (1952) Effect of nitrogen, potassium and magnesium on the growth of non-bearing tung trees on lakeland fine sand. American Society for Horticultural Science 61 :56-61
  11. Pahlavanian A, Silk WK (1988) Effect of temperature on spatial and temporal spects of growth in the primary maize root. Plant Physiol 87:529-532 https://doi.org/10.1104/pp.87.2.529
  12. Porzel A, Sung TV, Schmidt J, Lischewski M, Adam G (1992) Studies on the chemical constituents of Kalopanax septemlobus. Planta Med. 58:481-482 https://doi.org/10.1055/s-2006-961526
  13. SAS Institute Inc (1987) SAS/STAT TM Guide for Personal Computer. Version 6 Edition. SAS Institute Inc., cary, N. C. p. 1028
  14. Schomaker CE, Rudolph VJ (1964) Nutritional relationship affecting height growth of planted yellow-poplar in southwestern Michigan. Forest Science 10(1):66-76
  15. Shao CJ, Kassi R, Xu JD, Tanaka O (1989) Saponins from roots of Kalopanax septemlobust Koid., Cique. Structures of kalopanax-saponins C, D, and F. Chem. Pharm. Bull. 37(2): 311-314 https://doi.org/10.1248/cpb.37.311
  16. Shao CJ, Kassi R, Ohtani K, Kohda H (1990) Saponins from leaves of Kalopanax pictus Nakai, Harigiri. Structures of kalopanax-saponins JLa and JLb. Chem. Pharm. Bull. 38(4): 1087-1089 https://doi.org/10.1248/cpb.38.1087
  17. Sharp RE, Silk WK, Hsiao TC (1988) Growth of the maize primary root at low water potentials. I. Spatial distribution of expansive growth. Plant Physiol 87:50-57 https://doi.org/10.1104/pp.87.1.50
  18. Yusura H, Tei DG (1936) Bull. of For. Exp. Sta. of Chosen. p. 22-68
  19. 강삼식 (1996) 사포닌. 서울대학교출판부. p. 586
  20. 정보섭, 신민교 (1990) 향약대사전. 영림사 p. 820
  21. 정태현, 도봉섭, 심학진 (1949) 조선식물명집. 조선생물학회편
  22. 大友 玲子, 太田誠一, 眞田勝 (1993) 土壤pHの違いと苗木の生長. 日本林學 會論文集104(10):331-332
  23. 夏日 俊二, 壕本 光弘 (1988) ハリキリの 山地根さしについて. 北海道大學 演習林 試驗年報. 5:10-11
  24. 安尾正元 (1952) 植物生育と鹽類性分. 農及園. 27(8):968
  25. 朝日正美 (1962) 山林植生と 土壤との相互作用 (II) 樹木の成分吸收とかきょうとの關係. 日本林學會誌 44(9):225-230