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Cadmium accumulation in Littorina littorea, Mytilus edulis and Carcinus maenas: the influence of salinity and calcium ion concentrations

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Abstract

Accumulation of waterborne cadmium in Littorina littorea, Mytilus edulis and Carcinus maenas (collected in 1988 and 1989 around the island of Funen, Denmark) was investigated in a matrix of salinities (10 to 30‰) and calcium concentrations (2.9 to 8.9 mM Ca++). Cadmium accumulation rates in soft parts of L. littorina, soft parts and shells of M. edulis and whole bodies and exoskeletons of C. maenas decreased with increasing salinity. Changes in the calcium concentrations accounted for 72% of the ‘salinity effect’ on cadmium accumulation rates in L. littorina, whereas calcium concentrations had little or no effect on cadmium accumulation in M. edulis. Cadmium accumulation in the whole body of C. maenas was affected equally by calcium concentrations and total salinity, whereas accumulation in the exoskeleton was mainly affected by changes in total salinity. Individual variability in cadmium accumulation in the organs of C. maenas was greater than the variation attributable either to changes in ambient calcium concentrations or total salinity. An appreciable amount of the inter-individual variability in the cadmium accumulation in all three species was correlated with wet:dry weight ratios of the tissues and size of the organisms.

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References

  • Amiard JC, Amiard-Triquet C, Berthet B, Metayer C (1987) Comparative study of the patterns of bioaccumulation of essential (Cu, Zn) and non-essential (Cd, Pb) trace metals in various estuarine and coastal organisms. J exp mar Biol Ecol 106:73–89

    Google Scholar 

  • Bjerregaard P (1982) Accumulation of cadmium and selenium and their mutual interaction in the shore crab Carcinus maenas (L.). Aquat Toxic 2:113–125

    Google Scholar 

  • Bjerregaard P (1988) Effect of selenium on cadmium uptake in selected benthic invertebrates. Mar Ecol Prog Ser 48:17–28

    Google Scholar 

  • Bjerregaard P (1990) Influence of physiological condition on cadmium transport from haemolymph to hepatopancreas in Carcinus maenas. Mar Biol 106:199–209

    Google Scholar 

  • Bjerregaard P (1991) Relationship between physiological condition and cadmium accumulation in Carcinus maenas (L.). Comp Biochem Physiol 99A:75–83

    Google Scholar 

  • Bjerregaard P, Vislie T (1985) Effects of cadmium on hemolymph composition in the shore crab Carcinus maenas. Mar Ecol Prog Ser 27:135–142

    Google Scholar 

  • Carpene E, George SG (1981) Absorption of cadmium by gills of Mytilus edulis (L.). Molec Physiol 1:23–34

    Google Scholar 

  • Conklin RE, Krogh A (1938) A note on the osmotic behaviour of Eriocheir in concentrated and Mytilus in dilute seawater. Z vergl Physiol 26:239–241

    Google Scholar 

  • Depledge MH, Bjerregaard, P (1990) Explaining individual variation in trace metal concentrations in selected marine invertebrates: the importance of interactions between physiological state and environmental factors. In: Aldrich JC (ed) Phenotypic responses and individuality in aquatic ectotherms. JAPAGA, Ashford, Co. Wicklow, Ireland, pp 121–126

    Google Scholar 

  • Depledge MH, Bjerregaard P (1994) Trace metal concentrations and contents in the tissues of the shore crab Carcinus maenas (L.) (in preparation)

  • Ellis WG (1933) Calcium and the resistance of Nereis to brackish water. Nature, Lond 132:748–748

    Google Scholar 

  • Fischer H (1986) Influence of temperature, salinity, and oxygen on the cadmium balance of mussels Mytilus edulis. Mar Ecol Prog Ser 32:265–278

    Google Scholar 

  • Fletcher CR (1974) Volume regulation in Nereis diversicolor-II. The effect of calcium. Comp Biochem Physiol 47A:1215–1220

    Google Scholar 

  • Flik G, van Rijs JH, Wendelaar Bonga S E (1985) Evidence for high affinity Ca2+-ATPase activity and ATP-driven Ca2+-transport in membrane preparations of the gill epithelium of the cichlid fish Oreochromis mossambicus. J exp Biol 119:335–347

    Google Scholar 

  • Freedman DA (1983) A note on screening regression equations. Am Statistn 37:152–155

    Google Scholar 

  • George SG, Carpene E, Coombs TL (1978) The effect of salinity on the uptake of cadmium by the common mussel, Mytilus edulis (L.). In: McLusky DS, Berry AJ (eds) Physiology and behaviour of marine organisms. Pergamon Press, Oxford, pp 189–193

    Google Scholar 

  • Heuillet E, Bermond A, Jeanne N, Puiseux-Dao S, Ducauze C (1988) Use of factorial experimental design to evaluate how biotic and abiotic factors influence cadmium accumulation in the unicellular alga Dunaliella bioculata. Mar Ecol Prog Ser 44: 69–75

    Google Scholar 

  • Jackim E, Morrison G, Steele R (1977) Effects of environmental factors on radiocadmium uptake by four species of marine bivalves. Mar Biol 40:303–308

    Google Scholar 

  • Jennings JR, Rainbow PS (1979) Studies on the uptake of cadmium by the crab Carcinus maenas in the laboratory. I. Accumulation from a seawater and a food source. Mar Biol 50:131–139

    Google Scholar 

  • Langston WJ, Zhou M (1987) Cadmium accumulation, distribution and metabolism in the gastropod Littorina littorea: the role of metal-binding proteins. J mar biol Ass U K 67:585–601

    Google Scholar 

  • Long DT, Angino EE (1977) Chemical speciation of Cd, Cu, Pb, and Zn in mixed freshwater, seawater and brine solutions. Geochim Cosmochim Acta 41:1183–1191

    Google Scholar 

  • Lucu C (1973) Competitive role of calcium in sodium transport in the crab Carcinus mediterraneus acclimated to low salinities. Mar Biol 18:140–145

    Google Scholar 

  • Mantoura RFC, Dickson A, Riley JP (1978) The complexation of metals with humic materials in natural waters. Estuar cstl mar Sci 6:387–408

    Google Scholar 

  • Marigomez JA (1989) Accumulation, distribution and loss of cadmium in the marine prosobranch Littorina littorea. Sci total Envir 78:1–12

    Google Scholar 

  • McCahon CP, Pascoe D (1988) Cadmium toxicity to the freshwater amphipod Gammarus pulex (L.) during the moult cycle. Freshwat Biol 19:197–203

    Google Scholar 

  • McCutcheon M, Lucke B (1928) The effect of certain electrolytes and non-electrolytes on permeability of living cells to water. J gen Physiol 12:129–138

    Google Scholar 

  • McDonald DG (1983) The effects of H+ upon the gills of freshwater fish. Can J Zool 61:691–703

    Google Scholar 

  • McLusky DS, Bryant V, Campbell R (1986) The effects of temperature and salinity on the toxicity of heavy metals to marine and estuarine invertebrates. Oceanogr Biol A Rev 24:481–520

    Google Scholar 

  • Pantin CFA (1931) The adaptation of Gunda ulvae to salinity. J exp Biol 8:82–94

    Google Scholar 

  • Phillips DJH (1976) The common mussels Mytilus edulis as an indicator of pollution by Zinc, Cadmium, Lead and Copper. I. Effects of environmental variables on uptake of metals. Mar Biol 38:59–69

    Google Scholar 

  • Phillips DJH (1977) The common mussel Mytilus edulis as an indicator of trace metals in Scandinavian waters. I. Zinc and cadmium. Mar Biol 43:283–291

    Google Scholar 

  • Pärt P, Svanberg O (1981) Uptake of cadmium in perfused rainbow trout (Salmo gairdneri) gills. Can J Fish aquat Sciences 38: 917–924

    Google Scholar 

  • Pärt P, Svanberg O, Kiessling A (1985) The availability of cadmium to perfused rainbow trout gills in different water qualities. Wat Res 19:427–434

    Google Scholar 

  • Robertson JD (1960) Ionic regulation in the crab Carcinus maenas (L.) in relation to the moulting cycle. Comp Biochem Physiol 1: 183–212

    Google Scholar 

  • Robertson JD (1964) Osmotic and ionic regulation. In: Wilbur KM, Yonge CM (eds) Physiology of mollusca, Vol. I. New York, Academic Press, pp 283–311

    Google Scholar 

  • Roesijadi G, Unger ME (1993) Cadmium uptake in gills of the mollusc Crassostrea virginica and inhibition by calcium channel blockers. Aquat Toxic 22:195–206

    Google Scholar 

  • Rudy PP (1967) Water permeability in decapod crustaceans. Comp Biochem Physiol 22:581–589

    Google Scholar 

  • Rumsey TJ (1973) Some aspects of osmotic and ionic regulation in Littorina littorea. Comp Biochem Physiol 45A:327–344

    Google Scholar 

  • Sanders BM, Jenkins KD, Sunda WG, Costlow JD (1983) Free cupric ion activity in seawater: effects on metallothionein and growth in crab larvae. Science, NY 222:53–55

    Google Scholar 

  • Simkiss K, Taylor MG (1989) Metal fluxes across the membranes of aquatic organisms. Rev aquat Sci 1:173–189

    Google Scholar 

  • Smith RI (1970) The apparent water-permeability of Carcinus maenas (Crustacea, Brachyura, Portunidae) as a function of salinity. Biol Bull mar biol Lab, Woods Hole 139:351–362

    Google Scholar 

  • Sunda WG, Engel DW, Thuotte RM (1978) Effect of chemical speciation on toxicity of cadmium to grass shrimp, Palaemonetes pugio: importance of free cadmium ion. Environ Sci Technol 12: 409–413

    Google Scholar 

  • Sunda WG, Guillard RR (1976) The relationship between cupric ion activity and the toxicity of copper to phytoplankton. J mar Res 34:511–529

    Google Scholar 

  • Theede H (1969) Einige neue Aspekte bei der Osmoregulation von Carcinus maenas. Mar Biol 2:114–120

    Google Scholar 

  • Todd ME (1962) Osmoregulatory studies on several invertebrates. Ph.D. Thesis, University of Glasgow, Glasgow

    Google Scholar 

  • Verbost PM, Rooij J van, Flik G, Lock RAC, Wendelar Bonga SE (1989) The movement of cadmium through freshwater trout branchial epithelium and its interference with calcium transport. J exp Biol 145:185–197

    Google Scholar 

  • Webb DA (1940) Ionic regulation in Carcinus maenas. Proc R Soc Lond (Ser B) 129:107–137

    Google Scholar 

  • Wicklund A, Runn P (1988) Calcium effects on cadmium uptake, redistribution, and elimination in minnows, Phoxinus phoxinus, acclimated to different calcium concentrations. Aquat Toxic 13: 109–122

    Google Scholar 

  • Wilkinson L (1979) Tests of significance in stepwise regression. Psychol Bull 86:168–174

    Google Scholar 

  • Wright DA (1977a) The effect of salinity on cadmium uptake by the tissues of the shore crab Carcinus maenas. J exp Biol 67:137–146

    Google Scholar 

  • Wright DA (1977b) The effect of calcium on cadmium uptake by the shore crab Carcinus maenas. J exp Biol 67:163–173

    Google Scholar 

  • Wright DA (1980) Cadmium and calcium interactions in the freshwater amphipod Gammarus pulex. Freshwat Biol 10:123–133

    Google Scholar 

  • Wright DA, Brewer CC (1979) Cadmium turnover in the shore crab Carcinus maenas. Mar Biol 50:151–156

    Google Scholar 

  • Wright DA, Frain JW (1981) The effect of calcium on cadmium toxicity in the freshwater amphipod Gammarus pulex (L.). Archs envir Contam Toxic 10:321–328

    Google Scholar 

  • Zamuda CD, Sunda WG (1981) Bioavailability of dissolved copper to the American oyster Crassostrea virginica. I. Importance of chemical speciation. Mar Biol 66:77–82

    Google Scholar 

  • Zirino A, Yamamoto S (1972) A pH-dependent model for the chemical speciation of copper, zinc, cadmium and lead in seawater. Limnol Oceanogr 17:661–671

    Google Scholar 

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Communicated by T. M. Fenchel, Helsingør

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Bjerregaard, P., Depledge, M.H. Cadmium accumulation in Littorina littorea, Mytilus edulis and Carcinus maenas: the influence of salinity and calcium ion concentrations. Marine Bioliogy 119, 385–395 (1994). https://doi.org/10.1007/BF00347535

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  • DOI: https://doi.org/10.1007/BF00347535

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