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The transfer of65Zn and 59Fe along a Fucus serratus (L.)→ Littorina obtusata (L.) food chain

Published online by Cambridge University Press:  11 May 2009

M. L. Young
Affiliation:
Fisheries Radiobiological Laboratory, Lowestoft, Suffolkcor1corresp
*

Extract

In marine organisms the fresh-weight concentrations of the trace metals zinc and iron are 102–105 times the concentrations in sea water. Study of the transfer of these metals along marine food chains is of interest because of the possibility of their being pollutants of the marine environment. Also65Zn and 65Fe are released to the marine environment and have been found, in many instances, to be the predominant radionuclides in food chains leading to man (Lowman, Palumbo & South, 1957; Lowman, 1960; Osterberg, Pearcy & Curl, 1964; Preston, 1967). The transfer of these metals along marine food chains is thus of interest also in the context of human radiation exposure.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 1975

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References

Aston, S. R. & Chester, R., 1973. The influence of suspended particles on the precipitation of iron in natural waters. Estuarine and Coastal Marine Science, 1, 225–31.CrossRefGoogle Scholar
Baptist, J. P. & Lewis, C. W., 1969. Transfer of 65Zn and 51Cr through an estuarine food chain. In: Symposium on radioecology. Proceedings of the 2nd national symposium, Ann Arbor, Michigan, 1967, eds Nelson, D. J. and Evans, F. C., 420–30. United States Atomic Energy Commission. Conf. 670503.Google Scholar
Bernhard, M. & Zattera, A., 1969. A comparison between the uptake of radioactive and stable zinc by a marine unicellular alga. In: Symposium on radioecology. Proceedings of the 2nd national symposium, Ann Arbor, Michigan, 1967, eds Nelson, D. J. and Evans, F. C., 389–98. United States Atomic Energy Commission. Conf. 670503.Google Scholar
Brooks, R. R., Presley, B. J. & Kaplan, I. R., 1967. APDC-MIBK extraction system for the determination of trace elements in saline waters by atomic absorption spectrophotometry. Talanta, 14, 809–16.CrossRefGoogle ScholarPubMed
Bryan, G. W., 1967. The metabolism of Zn and 65Zn in crabs, lobsters and fresh-water crayfish. In: Radioecological concentration processes. Proceedings of the international symposium, Stockholm, 1966, eds B., Åberg & Hungate, F. P., 1005–16. Oxford: Pergamon Press.Google Scholar
Bryan, G. W., 1969. The absorption of zinc and other metals by the brown seaweed Laminaria digitata. Journal of the Marine Biological Association of the United Kingdom, 49, 225–43.CrossRefGoogle Scholar
Bryan, G. W., 1971. The effects of heavy metals (other than mercury) on marine and estuarine organisms. Proceedings of the Royal Society of London, B, 177, 389410.Google Scholar
Bryan, G. W. & Hummerstone, L. G., 1973. Brown seaweed as an indicator of heavy metals in estuaries in south-west England. Journal of the Marine Biological Association of the United Kingdom, 53, 705–20.CrossRefGoogle Scholar
Butterworth, J., Lester, P. & Nickless, G., 1972. Distribution of heavy metals in the Severn Estuary. Marine Pollution Bulletin, 3, 72–4.Google Scholar
Colman, J., 1933. The nature of the intertidal zonation of plants and animals. Journal of the Marine Biological Association of the United Kingdom, 18, 435–76.CrossRefGoogle Scholar
Davies, A. G., 1967. Studies of the accumulation of radio-iron by a marine diatom. In: Radioecological concentration processes. Proceedings of the international symposium, Stockholm, 1966, eds B., Åberg and Hungate, F. P., 983–91. Oxford: Pergamon Press.Google Scholar
Fuge, R. & James, K. H., 1973. Trace metal concentrations in brown seaweeds, Cardigan Bay, Wales. Marine Chemistry, 1, 281–93.CrossRefGoogle Scholar
Gutknecht, J., 1961. Mechanism of radioactive zinc uptake by Ulva lactuca. Limnology and Oceanography, 6, 426–31.CrossRefGoogle Scholar
Gutknecht, J., 1963. Zn65 uptake by benthic marine algae. Limnology and Oceanography, 8, 31–8.Google Scholar
Gutknecht, J., 1965. Uptake and retention of cesium-137 and zinc-65 by seaweeds. Limnology and Oceanography, 10, 5866.Google Scholar
Hoss, D. E., 1964. Accumulation of zinc-65 by flounder of the genus Paralichihys. Transactions of the American Fisheries Society, 93, 364–8.CrossRefGoogle Scholar
Ikuta, K., 1968. Studies on accumulation of heavy metals in aquatic organisms. II. On accumulation of copper and zinc in oysters. Bulletin of the Japanese Society of Scientific Fisheries, 34, 112–16.CrossRefGoogle Scholar
Ireland, M. P., 1973. Result of fluvial zinc pollution on the zinc content of littoral and sublittoral organisms in Cardigan Bay, Wales. Environmental Pollution, 4, 2735.Google Scholar
Knight, M. & Parke, M., 1950. A biological study of F. vesiculosus (L.) and F. serratus (L.). Journal of the Marine Biological Association of the United Kingdom, 29, 439514.Google Scholar
Lowman, F. G., 1960. Marine biological investigations at the Eniwetok test site. In: Disposal of radioactive wastes. Proceedings of a conference, Monaco, 1959, 2, 105–38. Vienna: International Atomic Energy Agency.Google Scholar
Lowman, F. G., Palumbo, R. F. & South, D. J., 1957. The occurrence and distribution of radioactive non-fission products in plants and animals of the Pacific proving ground. University of Washington (Fisheries Laboratory), Report UWFL-51, 61 pp.Google Scholar
Lowman, F. G., Rice, T. R. & Richards, F. A., 1971. Accumulation and redistribution of radionuclides by marine organisms. In: Radioactivity in the marine environment, 161–99. Washington, D.C.: National Academy of Sciences.Google Scholar
Osterberg, C, Pearcy, W. G. & Curl, H., 1964. Radioactivity and its relationship to oceanic food chains. Journal of Marine Research, 22, 212.Google Scholar
Pentreath, R. J., 1973 a. The accumulation from water of 65Zn, 54Mn, 58Co and 59Fe by the mussel, Mytilus edulis. Journal of the Marine Biological Association of the United Kingdom, 53, 127–43.Google Scholar
Pentreath, R. J., 1973 b. The accumulation and retention of 65Zn and 54Mn by the plaice, Pleuronectes platessa (L.). Journal of Experimental Marine Biology and Ecology, 12, 118.Google Scholar
Pentreath, R. J., 1973 c. The accumulation and retention of 59Fe and 58Co by the plaice, Pleuronectes platessa (L.). Journal of Experimental Marine Biology and Ecology, 12, 315–26.CrossRefGoogle Scholar
Pentreath, R. J., 1973 d. The accumulation from sea water of 65Zn, 54Mn, 58Co and 59Fe by the thornback ray, Raja clavata. Journal of Experimental Marine Biology and Ecology, 12, 327–34.CrossRefGoogle Scholar
Pentreath, R. J., 1975. Fish. In: Reference methods for marine radioecological studies. Vienna: International Atomic Energy Agency, Technical Report Series.Google Scholar
Pentreath, R. J. & Jefferies, D. F., 1971. The uptake of radionuclides by I-group plaice (Pleuronectes platessa) off the Cumberland coast, Irish Sea. Journal of the Marine Biological Association of the United Kingdom, 51, 963–76.Google Scholar
Piro, A., Bernhard, M., Branica, M. & Verzi, M., 1973. Incomplete exchange reaction between radioactive ionic zinc and stable natural zinc in sea water. In: Radioactive contamination of the marine environment. Proceedings of a symposium, Seattle, 1972, 2945. Vienna: International Atomic Energy Agency.Google Scholar
Polikarpov, G. G., 1966. Radioecology of aquatic organisms. 314 pp. Amsterdam: North-Holland Publishing Company.Google Scholar
Preston, A., 1967. The concentration of 65Zn in the flesh of oysters related to the discharge of cooling pond effluent from the C.E.G.B. nuclear power station at Bradwell-on-Sea, Essex. In: Radioecological concentration processes. Proceedings of the international symposium, Stockholm, 1966, eds B., Åberg and Hungate, F. P., 9951004. Oxford: Pergamon Press.Google Scholar
Preston, A., Jefferies, D. F., Dutton, J. W. R., Harvey, B. R. & Steele, A. K., 1972. British Isles coastal waters: the concentrations of selected heavy metals in sea water, suspended matter and biological indicators - a pilot survey. Environmental Pollution, 3, 6982.Google Scholar
Preston, A., Jefferies, D. F. & Pentreath, R. J., 1972. The possible contributions of radioecology to marine productivity studies. Symposia of the Zoological Society of London, 29, 271–84.Google Scholar
Reichle, D. E., Dunaway, P. B. & Nelson, D. J., 1970. Turnover and concentration of radionuclides in food chains. Nuclear Safety, 11, 4355.Google Scholar
Rice, T. R., 1963. Review of zinc in ecology. In: Radioecology. Proceedings of the 1st national symposium on radioecology, eds V., Schultz and Klement, A. W., 619–31. New York: Reinhold.Google Scholar
Robertson, D. E., 1972. The accumulation of radionuclides as a function of the physico-chemical state. In: Marine Radioecology. Proceedings of the 2nd European nuclear energy agency seminar, Hamburg, 1971, 2193. Paris: Organisation for Economic Co-operation and Development.Google Scholar
Shuster, C. N. & Pringle, B. H., 1969. Trace metal accumulation by the American eastern oyster, Crassostrea virginica. Proceedings of the National Shellfisheries Association, 59, 91103.Google Scholar
Stenner, R. D. & Nickless, G., 1974. Absorption of cadmium, copper and zinc by dog whelks in the Bristol Channel. Nature, London, 247, 198–9.Google Scholar
Townsley, S. J., Reid, D. F. & Ego, W. T., 1960. Uptake of radioisotopes and their transfer through food chains by marine organisms. Annual Report 1959–60. United States Atomic Energy Commission, TID-6630, 40 pp.Google Scholar
Van Weers, A. W., 1972. Zinc and cobalt uptake by the brown seaweed Fucus spiralis (L.). In: Proceedings of an international symposium on radioecology applied to the protection of man and his environment. Rome, 1971, 1357–67. Luxemburg: Commission of the European Communities.Google Scholar
Zanefeld, J. S., 1937. The littoral zonation of some Fucaceae in relation to desiccation. Journal of Ecology, 25, 431–68.Google Scholar