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북방전복, Haliotis discus hannai (Ino, 1953) 아가미의 미세해부학적 특징

Microanatomy of gill of the abalone, Haliotis discus hannai (Ino, 1953) (Gastropoda: Haliotidae)

  • 김수지 (전남대학교 수산생명의학과) ;
  • 전미애 (전남대학교 수산생명의학과) ;
  • 김혜진 (전남대학교 수산생명의학과) ;
  • 최지성 (전남대학교 수산생명의학과) ;
  • 이문옥 (전남대학교 해양기술학부) ;
  • 곽인실 (전남대학교 해양기술학부) ;
  • 김재원 (강원도립대학 해양생명과학부) ;
  • 강주찬 (부경대학교 수산생명의학과) ;
  • 이정식 (전남대학교 수산생명의학과)
  • Kim, Suji (Department of Aqualife Medicine, Chonnam National University) ;
  • Jeon, Mi Ae (Department of Aqualife Medicine, Chonnam National University) ;
  • Kim, Hyejin (Department of Aqualife Medicine, Chonnam National University) ;
  • Choi, Ji Sung (Department of Aqualife Medicine, Chonnam National University) ;
  • Lee, Moon Ock (Faculty of Marine Technology, Chonnam National University) ;
  • Kwak, Ihn-Sil (Faculty of Marine Technology, Chonnam National University) ;
  • Kim, Jae Won (Department of Marine Bio-resource, Kangwon Provincial University) ;
  • Kang, Ju-Chan (Department of Aquatic Life Medicine, Pukyong National University) ;
  • Lee, Jung Sick (Department of Aqualife Medicine, Chonnam National University)
  • 투고 : 2014.03.10
  • 심사 : 2014.03.25
  • 발행 : 2014.03.31

초록

주사전자현미경과 광학현미경을 이용하여 북방전복 아가미의 형태와 조직화학적 특징에 대하여 기재하였다. 북방전복의 아가미는 원새형의 bipectinate형 이었다. 아가미 새엽의 표면은 잘 발달된 섬모들로 덮여있었다. 새엽의 상피층은 공통적으로 단층으로 원주형의 상피세포와 점액세포로 구성되어 있었다. AB-PAS (pH 2.5와 pH 1.0) 반응과 AF-AB (pH 2.5) 반응 결과, 점액세포들은 주로 산성의 뮤코점액다당류를 함유하고 있었다.

Morphology and histochemistry of gill of the abalone, Haliotis discus hannai were described using light microscopy and scanning electron microscopy (SEM). The abalone has bipectinate gill of protobranch. The cilia and microvilli were well-developed on the free surface of the gill filaments. The epithelial layer of gill filament was simple and composed columnar epithelia and mucous cells. Result of AB-PAS (pH 2.5 and 1.0) and AF-AB (pH 2.5) reaction showed that mucous cells contained mainly acidic carboxylated mucosubstances.

키워드

참고문헌

  1. Aksit, D. and Mutaf, B.F. (2007) Gill histology of Patella Linneaus, 1758 (Mollusca: Gastropoda). Rapport Commission International Mer Mediterranee, 38: 1-413.
  2. Atkins, D. (1937) On the ciliary mechanisms and interrelationships of lamellibranchs. Part III. Types of lamellibranch gills and their food currents. The Quarterly Journal of Microscopical Science, 79: 375-421.
  3. Beninger, P.G. and Dufour, S.C. (1996) Mucocyte distribution and relationship to particle transport on the pseudolamellibranch gill of Crassostrea virginica (Bivalvia: Ostreidae). Marine Ecology Progress Series, 137: 133-138. https://doi.org/10.3354/meps137133
  4. Beninger, P.G., St-Jean, S., Poussart, Y. and Ward, J.E. (1993) Gill function and mucocyte distribution in Placopecten magellanicus and Mytilus edulis (Mollusca: Bivalvia): the role of mucus in particle transport. Marine Ecology Progress Series, 98: 275-282. https://doi.org/10.3354/meps098275
  5. Cannuel, R., Beninger, P.G., McCombie, H. and Boudry, P. (2009) Gill development and its functional and evolutionary implications in the blue mussel Mytilus edulis (Bivalvia: Mytilidae). The Biological Bulletin, 217: 173-188.
  6. de Villers, C.J. and Hodgson, A.N. (1987) The structure of the secondary gills of Siphonaria capensis (Gastropoda: Pulmonata). Journal of Molluscan Studies, 53: 129-138. https://doi.org/10.1093/mollus/53.2.129
  7. Dral, A.D.G. (1967) The movements of the latero-frontal cilia and the mechanism of particle retention in the mussel. Netherlands Journal of Sea Research, 3: 391-422. https://doi.org/10.1016/0077-7579(67)90012-9
  8. Eertman, R.H.M. (1996) Comparative study on gill morphology of gastropods from Moreton Bay, Queensland. Molluscan Research, 17: 3-20. https://doi.org/10.1080/13235818.1996.10673671
  9. Gomez-Mendikute, A., Elizondo, M., Venier, P. and Cajaraville, M.P. (2005) Characterization of mussel gill cells in vivo and in vitro. Cell and Tissue Research, 321: 131-140. https://doi.org/10.1007/s00441-005-1093-9
  10. Jung, G.K., Park, J.J., Ju, S.M., Jeon, M.A. and Lee, J.S. (2011) Gill ultrastructure of the spiny top shell, Batillus cornutus (Gastropoda: Turbinidae). Korean Journal of Malacology, 27: 69-76. https://doi.org/10.9710/kjm.2011.27.1.069
  11. Moore, H.J. (1971) The structure of the latero-frontal cirri on the gills of certain lamellibranch molluscs and their role in suspension feeding. Marine Biology, 11: 23-27. https://doi.org/10.1007/BF00348017
  12. Morton, B. (1983) The biology and functional morphology of the twisted ark Trisidos semitorta (Bivalvia: Arcacea) with a discussion on shell "torsion" in the genus. Malacologia, 23: 375-396.
  13. Owen, G. (1974) Studies on the gill of Mytilus edulis: the eu-latero-frontal cirri. Proceedings of the Royal Society of London. Series B, 187: 83-91. https://doi.org/10.1098/rspb.1974.0062
  14. Ragg, N.L.C. and Taylor, H.H. (2006) Oxygen uptake, diffusion limitation, and diffusing capacity of the bipectinate gills of the abalone, Haliotis iris (Mollusca: Prosobranchia). Comparative Biochemistry and Physiology, Part A, 143: 299-306. https://doi.org/10.1016/j.cbpa.2005.12.004
  15. Starobogatov, Y.I. (1992) Morphological basis for phylogeny and classification of Bivalvia. Ruthenica, 2: 1-25.
  16. Tammes, P.N.L. and Dral, A.D.G. (1955) Observations on the straining of suspensions by mussels. Archives Neerlandaises de Zoologie, 11: 87-112.
  17. Voltzow, J. (1994) Gastropoda: Prosobranchia. In: Microscopic Anatomy of Invertebrates Vol. 5. Mollusca I. (ed. by Harrison, F.W. and Kohn, A.J.), Wiley-Liss, New York. pp. 111-252.
  18. Wanichanon, C., Laimek, P., Linthong, V., Stretarugsa, P., Kruatrachue, M., Upatham, E.S., Poomtong, T. and Sobhon, P. (2004) Histology of hypobranchial gland and gill of Haliotis asinina Linnaeus. Journal of Shellfish Research, 23: 1107-1112.
  19. Yoo, J.S. (1988) Korean Shells in Color. Iljisa Publishing company, Seoul. pp. 1-196.
  20. Zardus, J.D. (2002) Protobranch bivalves. Advances in Marine Biology, 42: 1-65. https://doi.org/10.1016/S0065-2881(02)42012-3