Exploring on the Defense Strategies Against Hervivory of Juglans regia and J. mandshurica

호두나무와 가래나무의 초식에 대한 방어전략 탐색

  • Kim, Gab-Tae (Department of Forest Sciences, Sangji University) ;
  • Lyu, Dong-Pyo (Department of Forest Sciences, Sangji University) ;
  • Kim, Hoi-Jin (Department of Forest Sciences, Graduate school, Seoul National University)
  • 김갑태 (상지대학교 산림과학과) ;
  • 류동표 (상지대학교 산림과학과) ;
  • 김회진 (서울대학교 대학원 산림과학부)
  • Received : 2010.02.18
  • Accepted : 2010.05.06
  • Published : 2010.06.30

Abstract

To explore on the defense strategies against hervivory of Juglans regia and J. mandshurica, morphological characteristics of the leaf, leaf domatia structure and the number, herbivores insects and mites on the leaves, collected from the trees growing in Mt. Chiak, Mt. Cheongtae, Mt. Jungwang, Namyangju-si and Wonju-si, were investigated from May to October, 2009. Domatia of J. mandshurica revealed tuft type, these of J. regia revealed pocket+tuft type. Domatia number per leaflet proved the higher figures, 28.3/leaflet for J. mandshurica, and the lower, 19.6/leaflet for J. regia. Leaf surface trichomes of J. regia revealed stellates only on the domatia structures, and that of J. mandshurica does dense stellates and glandular hairs on the leaf-blade and vein. Predatory mites' number per leaflet proved highly significant differences among tree species, and mean of predatory mites was higher values (4.8/leaflet) in J. mandshurica and lower values (3.5/leaflet) in J. regia. Small amount of nectar are found distal veinparts on the leaf margin of J. mandshurica. Dense glandular hairs on the lower leaf surfaces of J. mandshurica estimates useful strategy against herbivory. It may be possible to breed J. regia for better expression of leaf traits such as dense glandular hairs that increase predator populations and efficacy.

목본식물의 초식에 대한 방어 전략을 알아보고자 호두나무와 가래나무 잎에 대하여 형태적 특성, domatia 구조와 수, 초식곤충과 응애 서식 여부 등을 관찰 조사하였다. 치악산, 청태산, 중왕산, 경기도 남양주시, 원주시에 생육 중인 개체목에서 엽시료를 채취하여 2009년 5월부터 8월까지 관찰, 조사하였다. 가래나무는 엽액 사이에 털이 밀생하여 공간을 만드는 tuft type domatia를 지녔고, 호두나무는 pocket 모양구조에 털이 나있는 pocket+tuft type domatia를 지녔음이 확인되었다. 소엽 당 domatia 평균 갯수는 호두나무는 19.6개로 나타났고, 가래나무는 28.3개/엽으로 큰 차이가 있었다. 잎 표면의 털은 호두나무의 경우에는 맥액의 domatia 구조에서만 성모가 있으나, 윗면 아랫면 모두 털이 거의 없었다. 가래나무는 잎의 윗면에는 거의 털이 없으나, 뒷면에서는 맥상에는 밀도가 높고 엽신에도 성모(stellates)와 점액질을 분비하는 선모(glandula hairs)가 많이 분포하였다. 가래나무의 선모는 매우 유용한 직접적인 방어전략이라 사료된다. 엽에서 관찰된 엽당 포식응애의 개체수는 수종 간 통계적 유의성이 인정되었으며, 가래나무가 호두나무 보다 포식응애의 개체수가 많았다. 가래나무에서만 엽맥의 말단부에 소량의 단물이 분비됨을 확인하였다. 이 부분에서도 호두나무에 비하여 가래나무가 우월한 간접적 방어전략을 지녔다고 사료된다. 가래나무 잎 뒷면에 선모를 밀생시키고 있는 것은 초식에 대한 훌륭한 방어전략이라 평가되며, 재배하는 호두나무 품종개량에서 이 형질을 도입하는 것이 매우 좋은 효과를 나타낼 것이라 사료된다.

Keywords

References

  1. Agrawal, A.A. and R. Karban. 1997. Domatia mediate plant-arthropod mutualism. Nature 387: 562-563. https://doi.org/10.1038/42384
  2. Grostal, P. and O'Dowd, D.J. 1994. Plants, mites and mutualism: leaf domatia and the abundance and reproduction of mites on Viburnum tinus(Caprifoliaceae). Oecologia 97: 308-315.
  3. Heil, M. 2008. Indirect defense via tritrophic interactions. New Phytologist 178: 41-61. https://doi.org/10.1111/j.1469-8137.2007.02330.x
  4. Heil, M., Koch, T., Hilpert, A., Fiala, B., Biland, W. and Lisenmair, K.E. 2001. Extrafloral nectar production of the ant-associated plant, Macaranga tanarius, is an induced, indirect, defensive response elicited by jasmonic acid. Ecology 98(3): 1083-1088.
  5. Kabicek, J. 2003. Broad leaf trees as reservoirs for phytoseiid mites (Acari: Phytoseiidae). Plant Protection Science 39(2): 65-69.
  6. Kim, G.T., Lyu, D.P. and Kim, H.J. 2009. A study of the defense mechanism against herbivores of 8 species of the Genus Acer. Korean Journal of Environment and Ecology 23(5): 411-417.(in Korean)
  7. Kim, J.H., Byeon, Y.W., Kim, Y.H. and C.G. Park. 2006. Biological control of thrips with Orius strigicollis (Poppius)( Hemiptera: Anthocoridae) and Amblyseius cucumeris (Oudemans)(Acari: Phytoseiidae) on greenhouse green pepper, sweet pepper and cucumber. Korean Journal of Applied Entomology 45(1): 1-7. (in Korean)
  8. Korea Agriculture Information Institute and Korea Forest Research Institute. 2005. Diagnosis and Control of Pests in Horticultural Crops and Trees. Haksulpynsugwan 1,050pp. (in Korean)
  9. Krantz G.W. and Walter, D.E. and Hans, K. 2009. A Manual of Acarology. 3rd ed. Texas Tech. Univ. Press, 704pp.
  10. Krings, M., Taylor, T.N. and Kellogg, D.W. 2002. Touchsensitive glandular trichomes: a mode of defence against herbivorous arthropods in the Carboniferous. Evolutionary Ecology Research 4: 779-786.
  11. Lee J.W. (1998) Insects' Life in Korea. I. Apterygota, Exopterygota (in part), and Aquatic Insects. Korean Entomological Institute, Korea University. Seoul. 246pp. (in Korean)
  12. Lee, W.K. and Ryu, M.O. 1989. A taxonomic study on the Phytoseiid mites (Acarina: Arachnida) in Korea. The Korean Journal of Applied Entomology 19(3): 215-225. (in Korean)
  13. Lundstroem, A.N. 1887. Planzenbiologische Studien. II. Die Anpassungen der Planzen an Thiere. Nova Acta Regiae Society Science Upsaliensis series 3. 13: 1-87.
  14. Mathews, C.R, Bottrell, D.G. and Rrown, M.W. 2009. Extrafloral nectaries alter arthropod community structure and mediate peach (Prunus persica) plant defense. Ecological Applications 19(3): 722-730. https://doi.org/10.1890/07-1760.1
  15. Matos, C.H.C., Pallini, A., Chaves, F.F., Schoereder, J.H. and Janssen, A. 2006. Do domatia mediate mutualistic interactions between coffee plants and predatory mites?. Entomologia Experimentalis et Applicata 118: 185-192. https://doi.org/10.1111/j.1570-7458.2006.00381.x
  16. Monks, A., O'Connell, D.M., Lee, W.G. Bannister, J.M. and K.J.M. Dickinson. 2007. Benefits associated with the domatia mediated tritrophic mutualism in the shrub Coprosma lucida. Oikos 116: 873-881. https://doi.org/10.1111/j.0030-1299.2007.15654.x
  17. Norton, A.P., English-Loeb, G. and E. Belden. 2001. Host plant manipulation of natural enemies: leaf domatia protect beneficial mites from insect predators. Oecologia 126: 535-542. https://doi.org/10.1007/s004420000556
  18. Norton, A.P., English-Loeb, G., Gadoury, D. and R.C. Seem. 2000. Mycophagous Mites and foliar pathogens: leaf domatia mediate tritrophic interactions in grapes. Ecology 81(2): 490-499. https://doi.org/10.1890/0012-9658(2000)081[0490:MMAFPL]2.0.CO;2
  19. O'Dowd, D.J. and Pemberton, R.W. 1994. Leaf domatia in Korean plants: floristics, frequency, and biogeography. Vegetatio 114: 137-148.
  20. O'Dowd, D.J. and Pemberton, R.W. 1998. Leaf domatia and foliar mite abundance in broadleaf deciduous forest of North Asia. American Journal of Botany 85(1): 70-78. https://doi.org/10.2307/2446556
  21. O'Dowd, D.J., Brew, C.R., Christophel, D.C. and Norton, R.A. 1991. Mite-palnt associations from the Eocene of South Australia. Science 252: 99-101. https://doi.org/10.1126/science.252.5002.99
  22. Port, C.M. and N.E.A. Scopes. 1981. Biological control by predatory mites (Phytoseiulus persimitis Athias-Henriot) of red spider mite (Tetranychus urticae Koch) infesting strawberries grown in 'walk-in' plastic tunnels. Plant Pathology 30: 95-99. https://doi.org/10.1111/j.1365-3059.1981.tb01234.x
  23. Ryu, M.O., Lee, W.K. and T.H. Kim. 1997. Habitats and abundances of Korean Phytoseiid mites. Korean Journal of Applied Entomology 36(3): 224-230. (in Korean)
  24. Seelmann, L., Auer, A., Hoffmann, D. and Schausberger, P. 2007. Leaf pubescence mediates intraguild predation between predatory mites. Oikos 116: 807-817. https://doi.org/10.1111/j.0030-1299.2007.15895.x
  25. Wagner, G.J. 1991. Secreting glandular trichomes: more than just hairs. Plant Physiology 96: 675-679. https://doi.org/10.1104/pp.96.3.675
  26. Wagner, G.J., Wang, E. and Shepherd, R.W. 2004. New approaches for studying and exploiting an old protuberance, the plant trichome. Annals of Botany 93: 3-11. https://doi.org/10.1093/aob/mch011
  27. Walter, D.E. and O'Dowd,. D.J. 1992. Leaves withz domatia have more mites. Ecology 73(4): 1514-1518. https://doi.org/10.2307/1940694
  28. Walter, D.E. 1996. Living on leaves: mites, tomenta, and leaf domatia. Annual Review of Entomology 41: 101- 114. https://doi.org/10.1146/annurev.en.41.010196.000533
  29. Weintraub, P. and E. Palevsky. 2008. Evaluation of the predatory mite, Neoseiulus californicus, for spider mite control on greenhouse sweet pepper under hot arid field conditions. Experimental and Applied Acarology 45: 29- 37. https://doi.org/10.1007/s10493-008-9169-3