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Carbon and Nitrogen Scope for Growth as A Function of Diet in the Sea Scallop Placopecten Magellanicus

Published online by Cambridge University Press:  11 May 2009

Jonathan Grant
Affiliation:
Department of Oceanography, Dalhousie University, Halifax, Nova Scotia, B3H 4J1, Canada
Peter J. Cranford
Affiliation:
Department of Fisheries and Oceans, Biological Sciences Branch, Habitat Ecology Division, Bedford Institute of Oceanography, PO Box 1006, Dartmouth, Nova Scotia BY A2, Canada

Extract

Laboratory feeding experiments with the sea scallop Placopecten magellanicus were carried out to compare scope for growth (SFG) to measured growth and determine the effect of diet on carbon and nitrogen SFG. Diets consisting of cultured phytoplankton, kelp detritus, and resuspended sediment were provided daily for 52 days (October-December). Measurements of clearance rate, absorption efficiency, respiration, O/N ratio, and carbon and nitrogen content of diets and scallop tissue were used to construct carbon and nitrogenbudgets for each diet. Growth coefficients were calculated from change in tissue weight during the study period.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 1991

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References

REFERENCES

Ansell, A.D 1974. Seasonal changes in biochemical composition of the bivalve Chlamys septemradiata from the Clyde Sea area. Marine Biology, 25, 8599.CrossRefGoogle Scholar
Ansell, A.D & Sivadas, P 1973. Some effects of temperature and starvation on the bivalve Donax vittatus (da Costa) in experimental laboratory populations. Journal of Experimental Marine Biology and Ecology, 13, 229262.CrossRefGoogle Scholar
Barber, B.J & Blake, N.J 1985. Substrate catabolism related to reproduction in the bay scallop Argopecten irradians concentricus, as determined by O/N and RQ physiological indexes. Marine Biology, 87, 1318.CrossRefGoogle Scholar
Bayne, B.L 1973. Physiological changes in Mytilus edulis L. induced by temperature and nutritive stress. Journal of the Marine Biological Association of the United Kingdom, 53, 3958.CrossRefGoogle Scholar
Bayne, B.LBrown, D.ABurns, KDixon, D.RIvanovici, ALivingstone, D.RLowe, D.MMoore, M.NStebbing, A.R.D &Widdows, J 1985. The Effects of Stress and Pollution on Marine Animals. New York: Praeger.Google Scholar
Bayne, B.LBubel, AGabbott, P.ALivingstone, D.RLowe, D.M& Moore, M.N 1982. Glycogen utilization and gametogenesis in Mytilus edulis L. Marine Biology Letters, 3, 89105.Google Scholar
Bayne, B.LHawkins, A.J.S & Navarro, E 1987. Feeding and digestion by the mussel Mytilus edulis L. (Bivalvia: Mollusca) in mixtures of silt and algal cells at low concentrations. Journal of Experimental Marine Biology and Ecology, 111, 122.CrossRefGoogle Scholar
Bayne, B.LHawkins, A.J.SNavarro, E & Iglesias, I.P 1989. Effects of seston concentration on feeding, digestion and growth in the mussel Mytilus edulis. Marine Ecology Progress Series, 55, 4754.CrossRefGoogle Scholar
Bayne, B.LMoore, M.NWiddows, JLivingstone, D.R & Salkeld, P 1979. Measurements of the responses of individuals to environmental stress and pollution: studies with bivalve molluscs. Philosophical Transactions of the Royal Society (B), 286, 563581.Google ScholarPubMed
Bayne, B.L & Newell, R.C 1983. Physiological energetics of marine molluscs. In The Mollusca, vol. 4. Physiology, part 1 (ed. Saleudin, A.S.M. and Wilbur, K.M.), pp. 407515. Academic Press.Google Scholar
Bayne, B.L & Scullard, C 1977. An apparent specific dynamic action in Mytilus edulis L. Journal of theMarine Biological Association of the United Kingdom, 57, 371378.CrossRefGoogle Scholar
Bayne, B.L & Widdows, J 1978. The physiological ecology of two populations of Mytilus edulis L. Oecologia, 37, 137162.CrossRefGoogle ScholarPubMed
Bayne, B.L & Worrall, Cm 1980. Growth and production of mussels Mytilus edulis from two populations. Marine Ecology Progress Series, 3, 317328.CrossRefGoogle Scholar
Branch, G.M & Griffiths, C.L 1988. The Benguela ecosystem. Part V. The coastal zone. Oceanography and Marine Biology, an Annual Review, 26, 395486.Google Scholar
Conover, R.J 1976. Assimilation of organic matter by zooplankton. Limnology and Oceanography, 11, 338345.CrossRefGoogle Scholar
Cranford, P.J & Grant, J 1990. Particle clearance and absorption of phytoplankton and detritus by the sea scallop Placopecten magellanicus (Gmelin). Journal of Experimental Marine Biology and Ecology, 137, 105121CrossRefGoogle Scholar
Duggins, D.OSimenstad, C. A & Estes, J. A 1989. Magnification of secondary production by kelp detritus in coastal marine ecosystems. Science, New York, 245, 170173.Google ScholarPubMed
Fielding, P.J & Davis, C.L 1989. Carbon and nitrogen resources available to kelp bed feeders in an upwelling environment. Marine Ecology Progress Series, 55, 181189.CrossRefGoogle Scholar
Gabbott, P.A 1975. Storage cycles in marine bivalve molluscs: an hypothesis concerning the relationship between glycogen and gametogenesis. In Proceedings of the Ninth European Marine Biology Symposium, Oban, Scotland (ed. Barnes, H.) pp. 191211. Aberdeen University Press.Google Scholar
Gabbott, P.A & Bayne, B.L 1973. Biochemical effects of temperature and nutritive stress on Mytilus edulis L. Journal of the Marine Biological Association of the United Kingdom, 53, 269286.CrossRefGoogle Scholar
Gilfillan, E.SMayo, DHanson, SDonavan, D & Jiang, L.C 1976. Reduction in carbon flux in Mya arenaria caused by a spill of no. 6 fuel oil. Marine Biology, 37, 115123.CrossRefGoogle Scholar
Grant, J & Cranford, P.J 1989. The effect of laboratory diet conditioning on tissue and gonad growth in the sea scallop Placopecten magellanicus. In Reproduction, Genetics and Distribution of Marine Organisms (ed. Ryland, J.S. and Tyler, P.A.), pp. 95106. Fredensborg: Olsen and Olsen.Google Scholar
Griffiths, C.L & Griffiths, R.J 1987. Bivalvia. In Animal Energetics, vol. 2 (ed. Pandian, T.J. and Vernberg, FJ.) pp. 188. Academic Press.Google Scholar
Hawkins, A.J.S 1985. Relationships between the synthesis and breakdown of protein, dietary absorption and turnovers of nitrogen and carbon in the blue mussel, Mytilus edulis L. Oecologia, 66, 4249.Google Scholar
Hawkins, A.J.S & Bayne, B.L 1985. Seasonal variation in the relative utilization of carbon and nitrogen by the mussel Mytilus edulis: budgets, conversion efficiencies and maintenance requirements. Marine Ecology Progress Series, 25, 181188.CrossRefGoogle Scholar
Hawkins, A.J.SSalkeld, P.NBayne, B.LGnaiger, E & Lowe, D.M 1985. Feeding and resource allocation in the mussel Mytilus edulis: evidence for time-averaged optimization. Marine Ecology Progress Series, 20, 273287.CrossRefGoogle Scholar
Langdon, C.J & Newell, R.C 1990. Utilization of detritus and bacteria as food sources by two bivalve suspension-feeders, the oyster Crassostrea virginica and the mussel Geukensia demissa. Marine Ecology Progress Series, 58, 299310.CrossRefGoogle Scholar
Macdonald, B.A 1986. Production and resource partitioning in the giant scallop Placopecten magellanicus grown on the bottom and in suspended culture. Marine Ecology Progress Series, 34, 7986.CrossRefGoogle Scholar
Macdonald, B.A & Thompson, R.J 1986. Influence of temperature and food availability on the ecologicalenergetics of the giant scallop Placopecten magellanicus. III. Physiological ecology, the gametogenic cycle and scope for growth. Marine Biology, 93, 3748.Google Scholar
Mann, K.H 1988. Production and use of detritus in various freshwater, estuarine, and coastal marine ecosystems. Limnology and Oceanography, 33, 910930.CrossRefGoogle Scholar
Marin, VHuntley, M.E & Frost, B 1986. Measuring feeding rates of pelagic herbivores: an analysis of experimental design and methods. Marine Biology, 93, 4958.CrossRefGoogle Scholar
Mathers, N.F 1976. The effects of tidal currents on the rhythm of feeding and digestion in Pecten maximus Journal of Experimental Marine Biology and Ecology, 24, 271283.Google Scholar
Poulsen, ERiisgard, H.U & Mehlenberg, F 1982. Accumulation of cadmium and bioenergetics in the mussel Mytilus edulis. Marine Biology, 68, 2529.CrossRefGoogle Scholar
Riisgard, H.U. & 1981. Energy budgets, growth and filtration rates in Mytilus edulis at different algal concentrations. Marine Biology, 61, 227–234.CrossRefGoogle Scholar
Robinson, W.EWehling, W.EMorse, M.P & McLeod, G.C 1981. Seasonal changes in soft-body componentindices and energy reserves in the Atlantic deep-sea scallop, Placopecten magellanicus. Fishery Bulletin. National Oceanic and Atmospheric Administration of the United States, 79, 449458.Google Scholar
Seiderer, L.J & Newell, R.C 1985. Relative significance of phytoplankton, bacteria and plant detritusas carbon and nitrogen resources for the kelp bed filter-feeder Choromytilus meridionalis. Marine Ecology Progress Series, 22, 127139.CrossRefGoogle Scholar
Seiderer, L.JNewell, R.C & Cook, P. A 1982. Quantitative significance of style enzymes from two marine mussels (Choromytilus meridionalis and Perna perna Linnaeus) in relation to diet. Marine Biology Letters, 3, 257271.Google Scholar
Shumway, S.EBarter, J & Stahlnecker, J 1988. Seasonal changes in oxygen consumption of the giant scallop Placopecten magellanicus. Journal of Shellfish Research, 7, 7782.Google Scholar
Stuart, V 1982. Absorbed ration, respiratory costs and resultant scope for growth in the mussel Aulocomya ater (Molina) fed on a diet of kelp detritus of different ages. Marine Biology Letters, 3, 289306.Google Scholar
Thompson, R.J 1977. Blood chemistry, chemical composition, and the annual reproductive cycle in the giant scallop, Placopecten magellanicus, from southeast Newfoundland. Journal of the Fisheries Research Board of Canada, 34, 21042116.Google Scholar
Thompson, R.JLivingstone, D.R & Zwaan, A. De 1980. Physiological and biochemical aspects of the valve snap and valve closure responses in the giant scallop Placopecten magellanicus. I. Physiology. Journal ofComparative Physiology, 137, 97104.Google Scholar
Volckaert, F 1988. The Implications of Heterozygosity in the Scallop Placopecten magellanicus. PhD thesis, Dalhousie University, Halifax, Canada.Google Scholar
Widdows, JFieth, P & Worrall, Cm 1979. Relationships between seston, available food and feeding activity in the common mussel Mytilus edulis. Marine Biology, 50, 195207.CrossRefGoogle Scholar
Widdows, J & Johnson, D 1988. Physiological energetics of Mytilus edulis: scope for growth. Marine Ecology Progress Series, 46, 113121.CrossRefGoogle Scholar