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Seasonal and developmental variability of biochemical composition in Mesopodopsis zeylanica (Crustacea: Mysida) from Cochin estuary, India

Published online by Cambridge University Press:  31 May 2012

Abraham Biju*
Affiliation:
Research and Post Graduate Department of Zoology, St Stephen's College, Pathanapuram, Kerala, India
Raghauan Gireesh
Affiliation:
Central Marine Fisheries Research Institute, Ernakulam North PO, Ernakulam District, Kerala 682018
Kunjumon Jyothi
Affiliation:
Research and Post Graduate Department of Zoology, St Stephen's College, Pathanapuram, Kerala, India
*
Correspondence should be addressed to: A. Biju, Research and Post Grduate Department of Zoology, St Stephen's College, Pathanapuram, Kerala, India email: [email protected]
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Abstract

In order to study the nutritive value and patterns of variation in biochemical composition of Mesopodopsis zeylanica, the protein, carbohydrate and lipid content of freshly caught mature males, immature males, spent females, brooding females, immature females and juveniles for two seasons were determined. The biochemical composition reveals high nutritional quality of mysid and it varies with different seasons and developmental stages. Among the biochemical composition, protein was the principal component. Significant differences were observed in protein, carbohydrate and lipid content between different developmental stages. Trophic conditions and reproductive strategy were the major factors that determine the seasonal patterns of variation in biochemical composition. Mature males and females showed higher protein content than other stages, while carbohydrate content was high in immature stages, and lipid content was high in brooding females.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 2012

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References

REFERENCES

Azeiteiro, U.M., Fonseca, J.C. and Marques, J.C. (2001) Biometry, estimates of production and seasonal variation in the biochemical composition of Mesopodopsis slabberi (Van Beneden, 1861) (Crustacea: Mysidacea). Boletin Instituto Español de Oceanografía 17, 1525.Google Scholar
Azeiteiro, U.M., Fonseca, J.C., Pastorinho, R., Morgado, F. and Marques, J.C. (2003) Pattern of variation in the biochemical composition of Mesopodopsis slabberi (Van Beneden, 1861) (Crustacea: Mysidacea). Boletin Instituto Español de Oceanografía 19, 433442.Google Scholar
Bhat, K.L. and Wagh, A.B. (1992) Biochemical composition of zooplankton of Bombay High (oil platform) area in the Arabian Sea. Indian Journal of Marine Sciences 21, 220223.Google Scholar
Bhattacharya, S.S. and Kewalremani, H.G. (1972) Salinity and temperature tolerance of the mysid Mesopodopsis orientalis from west coast of India. Journal of the Indian Fisheries Association 2, 6068.Google Scholar
Biju, A., Gireesh, R., Jayalakshmi, K.J., Haridevi, C.K. and Panampunnayil, S.U. (2009) Seasonal abundance, ecology, reproductive biology, and biochemical composition of Mesopodopsis orienatalis W.M.Tattersall (Mysida) from a tropical estuary (Cochin backwater) in India. Crustaceana 82, 981996.CrossRefGoogle Scholar
Biju, A. and Panampunnayil, S.U. (2010) Seasonality, reproductive biology and ecology of Mesopodopsis zeylanica (Crustacea: Mysida) from a tropical estuary (Cochin backwater) in India. Plankton and Benthos Research 5, 4955.Google Scholar
Bligh, E.G. and Dyer, W. (1959) A rapid method for total lipid extraction and purification. Canadian Journal of Biochemistry and Physiology 37, 911917.Google Scholar
Choe, N., Deibel, D., Raymond, J.T., Sing, H.L. and Vivian, K.B. (2003) Seasonal variation in the biochemical composition of the chaetognatha Parasagitta elegans from the hyperbenthic zone of Conception Bay, Newfoundland. Marine Ecology Progress Series 251, 191200.CrossRefGoogle Scholar
Conover, R.J. (1962) Metabolism and growth in Calanus hyperboreus in relation to its life-cycle. Rapport Procès-Verbaux des Réunions du Conseil International pour l'Exploration de la Mer 153, 190196.Google Scholar
Conover, R.J. (1964) Food relations and nutrition of zooplankton. Occasional Publications of the Graduate School of Oceanography, University of Rhode Island 2, 8191.Google Scholar
Dubois, N., Gilles, K., Hamilton, J., Rebers, P. and Smith, F. (1956) Colorimetric method for determination of sugars and related substances. Analytical Biochemistry 28, 350356.Google Scholar
FAO (1989) Nutrition y alimentacion de peces y camarones cultivados. Manual de capacitac. Brazil: Proyectoion GCP/RLA/102/TTAL, 516 pp.Google Scholar
Gatten, R.R., Setgeant, J.R., Forsberg, T.E.V., O'Hara, S.C.M. and Corner, E.D.S. (1980) On the nutrition and metabolism of zooplankton. XIV. Utilization of lipid by Calanus helgolandicus during maturation and reproduction. Journal of the Marine Biological Association of United Kingdom 60, 391399.CrossRefGoogle Scholar
George, M.J. (1958) Observation on the plankton of Cochin backwaters. Indian Journal of Fisheries 5, 375401.Google Scholar
Goswami, S.C., Rao, T.S.S. and Mantondkar, S.G.P. (1981) Biochemical composition of zooplankton from the Andaman Sea. Indian Journal of Marine Sciences 10, 296300.Google Scholar
Hanamura, Y., Koizumi, N., Sawamoto, S., Siow, R. and Chee, P.E. (2008) Reassessment of the taxonomy of Mesopodopsis orientalis (Tattersall, 1908) (Crustacea, Mysida) and proposal of a new species for the genus with an appendix on M. zeylanica Nouvel, 1954. Journal of Natural History 42, 24612500.Google Scholar
Jagadeesan, L., Arivuselvan, N., Thirumaran, G., Anatharaman, P. and Balasubramanian, T. (2010) Biomass and biochemical composition of zooplankton along the Arabian Sea, west coast of India. Journal of Food Science and Technology 2, 9699.Google Scholar
Jhingran, V.G. (1975) Fish and fisheries of India. Delhi: Hindustan Publication Corporation, 954 pp.Google Scholar
Krishnakumari, L. and Achuthankutty, C.T. (1989) Standing stock and biochemical composition of zooplankton in the northern Arabian Sea. Indian Journal of Marine Sciences 18, 103105.Google Scholar
Krishnakumari, L., Nair, V. R. and Gabhiye, S.N. (1993) Biochemical composition of zooplankton from the offshore oil fields of Bombay. Proceedings of the National Academy of Science India 63, pp. 161167.Google Scholar
Lehtonen, K.K. (1996) Ecophysiology of the benthic amphipod Monoporeia affinis in an open-sea area of the northern Baltic Sea: seasonal variation in body composition, with bioenergetic considerations. Marine Ecology Progress Series 143, 8798.Google Scholar
Lowry, O.H., Rosenbough, N.J., Farr, L. and Randal, R.J. (1951) Protein measurement with the Folin phenol reagent. Journal of Biological Chemistry 193, 265275.Google Scholar
Marsh, J.B. and Weinstein, W.J. (1966) A simple charring method for determination of lipids. Journal of Lipid Research 7, 574576.CrossRefGoogle ScholarPubMed
Mauchline, J. (1980) The biology of mysids and euphausiids. In Blaxer, J.H.S., Russell, F.S. and Yonge, M. (eds) Advance in marine biology. Volume 18. London: Academic Press, pp. 1677.Google Scholar
Morris, S. (1999) Integration of physiological responses of crustaceans to environmental challenge. South African Journal of Zoology 33, 87106.Google Scholar
Nouvel, H. (1954) Description d'un Mysidace Nouvelle de Ceylon Mesopodopsis zeylanica n sp. Zoologische Mededeelingen 23, 3339.Google Scholar
Ortega, M.M., Lopez de Pariza, J.M. and Navarro, E. (1984) Variacion estacional del consumo respiratorio de los componentes bioquimicos. In Actina equina L. Actas do IVº Simposio Ibérico de estudos do Benthos Marinho pp. 321332.Google Scholar
Pastorinho, M.R., Antunes, C.P., Marques, J.C., Pereira, M.L., Azeiteiro, U.M. and Morgado, F.M. (2003) Histochemistry and histology in planktonic ecophysiological processes determination in a temperate estuary (Mondego River Estuary, Portugal). Acta Oecologica 24, 235243.Google Scholar
Qazim, S.Z. (1977) Contribution of zooplankton in the food chains of some warm water environments. In Proceedings of Symposium on warm water zooplankton. Paris: UNESCO/NIO, pp. 700708.Google Scholar
Rao, P.V. (1970) Synopsis of biological data on the penaeid prawn Parapenaeopsis stylifera (H. Milne Edwards, 1837). FAO Fisheries Report 57, 15751605.Google Scholar
Raymont, J.E.G., Srinivasagam, R.T. and Raymont, J.K.B. (1969) Biochemical studies on marine zooplankton—IV. Investigation on Meganyctiphanes norvegica (M. Sars). Deep-Sea Research 16, 141156.Google Scholar
Reeve, M.R., Raymont, J.E.G. and Raymont, J.K.B. (1970) Seasonal biochemical composition and energy source of Sagitta hispida. Marine Biology 6, 357364.Google Scholar
Sargent, J.R. and Henderson, R.J. (1986) Lipids. In Corner, E.D.S. and O'Hara, S.C.M. (eds) The biological chemistry of marine copepods. Oxford: Clarendon Press, pp. 59108.Google Scholar
Stephen, R., Panampunnayil, S.U., Gopalakrishnan, T.C. and Sankaranarayanan, V.N. (1979) Biochemical studies on zooplankton from the Laccadive Sea (Lakshadweep). Indian Journal of Marine Sciences 8, 257.Google Scholar
Verslycke, B.T. and Janssen, C.R. (2002) Effects of changing abiotic environment on the energy metabolism in the estuarine mysid shrimp Neomysis integer (Crustacea: Mysidacea). Journal of Experimental Marine Biology and Ecology 279, 6172.CrossRefGoogle Scholar
Vinogradova, Z.A. (1964) Some biochemical aspects of a comparative study of plankton from the Black Sea, the Sea of Azov and Caspian Sea. Okeanologia 4, 232242.Google Scholar