Journal of Animal and Veterinary Advances

Year: 2009
Volume: 8
Issue: 5
Page No. 888 - 892

The Relationship Between Chloride Cells and Salinity Adaptation in the Euryhaline Teleost, Lebistes reticulatus

Authors : Belda Erkmen and Durdane Kolankaya

References

APHA., 1989. Standard Methods for the Examination of Water and Waste Water. 17th Edn., American Public Health Association, Washington, DC.

Boutet, I., C.L.K. Long and F. Bonhomme, 2006. A transcriptomic approach of salinity response in the euryhaline teleost, Dicentrarchus labrax. Gene, 379: 40-50.
CrossRef  |  

Chretien, M. and M. Pisam, 1986. Cell renewal and differentiation in the gill epithelium of fresh or salt water adapted euryhaline fish as revealed by (3H) thymidine radioautography. Biol. Cell, 56: 137-150.
Direct Link  |  

Dean, D.B., Z.W. Whitlow and R.J. Borski, 2003. Glucocorticoid receptor upregulation during seawater adaptation in a euryhaline teleost, the tilapia Oreochromis mossambicus. Gen. Comp. Endocrinol., 132: 112-118.
CrossRef  |  

Eckert, R. and D.J. Randall, 1983. Animal Physiology, Mechanisms and Adaptations. 2nd Edn., Freeman, W.H. and Company, New York, ISBN: 07166-724 146, pp: 830.

Erkmen, B. and D. Kolankaya, 2000. Effects of water quality on epithelial morphology in the gill of Capoeta tinca living in 2 tributaries of Kizilirmak river, Turkey. Bull. Environ. Contam. Toxicol., 64: 418-425.
CrossRef  |  Direct Link  |  

Evans, D.H., 1984. The Roles of Gill Permeability and Transport Mechanisims in Euryhalinity. In: Fish Physiology, Hoar, W.S. and D.J. Randall (Eds.). Vol. 10B, Academic Press, New York, pp: 239-283.

Evans, D.H., 1993. Osmotic and Ionic Regulation. In: The Physiology of Fishes, Evans, D.H. (Ed.). CRC Press, Boca Raton, pp: 315-342.

Foskett, J.K., A.B. Howard, E.M. Terry and C. Marilyn, 1983. Chloride cells and the hormonal control of teleost fish osmoregulation. J. Exp. Biol., 106: 255-281.
Direct Link  |  

Foskett, J.K., C.D. Longsdon, T. Turner, T.E. Machen and H.A. Bern, 1981. Differentiation of the chloride extrusion mechanism during seawater adaptation of a teleost fish, the cichlid Sarotherodon mossambicus. J. Exp. Biol., 93: 209-224.
Direct Link  |  

Garcia-Romeu, P.F. and A. Masoni, 1970. Demonstration of chloride cells in the gills of fishes (Sur la mise en evidence des cellules a chlorure de la branchie des poissons). Arch. Anat. Microsc., 59: 289-294.

Hwang, P.P., 1987. Tolarence and ultrastructural responses of branchial chloride cells to salinity changes in the euryhaline teleost Oreochromis mossambicus. Mar. Biol., 94: 643-649.
CrossRef  |  Direct Link  |  

Karnaky, Jr., K.J., L.B. Kinter, W.B. Kinter and C.E. Stirling, 1976. Teleost chloride cell. II. Auto-radiographic localization of gill Na, K-ATPase in killifish Fundulus heteroclitus adapted to low and high salinity environments. J. Cell. Biol., 70: 157-177.
PubMed  |  Direct Link  |  

Karnaky, Jr., K.J., S.A. Ernst and C.W. Philpott, 1976. Teleost chloride cell. I. Response of pupfish Cyprinodon variegatus gill Na, K-ATPase and chloride cell fine structure to various high salinity environments. J. Cell. Biol., 70: 144-156.
Direct Link  |  

Keys, A.B. and E.N. Willmer, 1932. Chloride-secreting cells in the gills of fishes with special reference to the common eel. J. Physiol. (Lond.), 76: 368-378.
Direct Link  |  

Laiz-Carrion, R., P.M. Gurreiro, J. Fuentes, A.V.M. Canario, M.P. Martin del Rio and J.M. Mancera, 2005. Branchial osmoregulatory response to salinity in the gilthead sea bream, Sparus auratus. J. Exp. Zool., 303: 563-576.
CrossRef  |  

Lee, K.M., T. Kaneko, F. Katoh and K. Aida, 2006. Prolactin gene expression and gill chloride activity in fugu Takifugu rubripes exposed to hipoosmatic environment. Gen. Comp. Endocrinol., 149: 285-293.

Lee, T.H., S.H. Feng, C.H. Lin, Y.H. Hwang, C.L. Huang and P.P. Hwang, 2003. Ambient salinity modulates the expression of sodium pumps in branchial mitochondria-rich cells of Mozambique tilapia, Oreochromis mossambicus. Zool. Sci., 20: 29-36.
Direct Link  |  

Lin, Y.M., C.N. Chen and T.H. Lee, 2003. The expression of gill Na, K-ATPase in milkfish Chanos chanos, acclimated to seawater, brackish water and fresh water. Comp. Biochem. Physiol. A, 135: 489-497.
Direct Link  |  

Maetz, J., 1974. Aspects of Adaptation to Hypo-osmotic and Hyper-osmotic Environments. In: Biochemical and Biophysical Perspectives in Marine Biology, Malins, D.C. and J.R. Sargent (Eds.). Vol. 1, Academic Press, New York.

Pisam, M., 1981. Membranous systems in the chloride cell of teleostean fish gill: Their modifications in response to the salinity of the environment. Anat. Rec., 200: 401-414.
Direct Link  |  

Pisam, M., C. Le Moal, B. Auperin, P. Prunet and A. Rambourg, 1995. Apical structures ofmitochondria-rich α and β cells in euryhaline fish gill: Their behaviour in various living conditions. Anat. Rec., 241: 13-24.
PubMed  |  Direct Link  |  

Saquragui, M.M., M.G. Paulino, H.S. Henrique and M.N. Fernandes, 2007. Na+/K+ ATPase activity in the fish gills of Pimelodus maculatus. Comp. Biochem. Physiol. A, 148: S66-S79.
CrossRef  |  

Sardet, C., M. Pisam and J. Maetz, 1979. The surface epithelium of teleostean fish gills. Cellular and junctional adaptations of the chloride cell in relation to salt adaptation. J. Cell. Biol., 80: 96-117.
PubMed  |  

Shirai, N. and S. Utida, 1970. Development and degeneration of the chloride cell during seawater and freshwater adaptation of the Japanese eel Anguilla japonica Z. Cell Tissue Res., 103: 247-264.
CrossRef  |  Direct Link  |  

Design and power by Medwell Web Development Team. © Medwell Publishing 2024 All Rights Reserved