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Cadmium Accumulation and Elimination in the Tissues of the Manila Clam, Ruditapes philippinarum, after Sub-chronic Cadmium Exposure

  • Jang, Seok-Woo (Marine Environmental Research Division, National Fisheries Research and Development Institute) ;
  • Kim, Seong-Gil (Marine Environmental Research Division, National Fisheries Research and Development Institute) ;
  • Choi, Ok-In (Marine Environmental Research Division, National Fisheries Research and Development Institute) ;
  • Kim, Seong-Soo (Marine Environmental Research Division, National Fisheries Research and Development Institute) ;
  • Kang, Ju-Chan (Department of Aquatic Life Medicine, Pukyong National University)
  • Published : 2009.12.31

Abstract

Cadmium (Cd) accumulation and elimination were assessed in the tissues of the clam R. philippinarum at four experimental concentrations (control, 10, 20, 100, and $200\;{\mu}g/L$) over an exposure period of 2 weeks and an elimination period of 1 week. Cd accumulated in the digestive gland, gill, and residual clam tissues, and accumulation increased with time of exposure and concentration (100 and $200\;{\mu}g/L$). After 2 weeks of Cd exposure, the order of Cd accumulation in tissues was gill > digestive gland > residual tissues. An inverse relationship was observed between concentration factor (CF) and exposure level, but the CF showed an increase with exposure time. During the depuration period, Cd concentrations in the digestive gland, gill, and residual tissues decreased immediately on the cessation of exposure, except in individuals at the $200\;{\mu}g/L$ concentration. The Cd elimination rate from tissues decreased in the order of digestive gland > gill > residual tissues during the depuration period.

Keywords

References

  1. Amiard JC, Amiard-Triquet C, Ballan-Dufrancais C, Berthet B, Jeantet AY, Martoja R and Truchet M. 1989 Study of the bioaccumulation at the molecular, cellular and organis levels of lead and copper transferred to the oyster Crassostrea gigas Thunberg directly from water or via food. Polish Acad Sci 34, 521-529
  2. Bebianno MJ, Serafim MA and Rita MF. 1994. Involvement of metallothionein in cadmium accumulation and elimination in the clam Ruditapes decussata. Bull Environ Contam Toxicol 53, 726-732 https://doi.org/10.1007/BF00196946
  3. Blackmore G. 1998. An overview of trace metal pollution in the coastal waters of Hong Kong. Sci Total Environ 214, 21-48 https://doi.org/10.1016/S0048-9697(98)00052-7
  4. Blackmore G. 2001. Interspecific variation in heavy metal body concentrations in Hong Kong marine invertebrates. Environ Pollut 114, 303-311 https://doi.org/10.1016/S0269-7491(01)00086-0
  5. Blasco J and Puppo J. 1999. Effect of heavy metals (Cu, Cd and Pb) on aspartate and alanine aminotransferase in Ruditapes philppinarum (Mollusca: Bivalvia). Comp Biochem Physiol 122C, 253-256
  6. Boening DW. 1999. An evaluation of bivalves as biomonitors of heavy metals pollution in marine waters. Environ Monit Assess 55, 459-470 https://doi.org/10.1023/A:1005995217901
  7. Choi HJ, Ji J, Chung KH and Ahn IY. 2007. Cadmium bioaccumulation and detoxification in the gill and digestive gland of the Antarctic bivalve Laternula elliptica. Comp Biochem Physiol 145C, 227-235 https://doi.org/10.1016/j.cbpc.2006.12.005
  8. Das S and Jana BB. 1999. Dose-dependent uptake and Eichhomia-induced elimination of cadmium in various organs of the freshwater mussel, Lamellidens mαrginalis (Linn.). Eco Eng 12, 207-229 https://doi.org/10.1016/S0925-8574(98)00062-7
  9. DeForest DK, Brix KV and Adams WJ. 2007. Assessmg metal bioaccumulation in aquatic environments: The inverse relationship between bioaccumulation factors,trophic transfer factors and exposure concentration. Aquatic Toxicol 84, 236-246 https://doi.org/10.1016/j.aquatox.2007.02.022
  10. Holwerda DA, dε Knecht JA, Hemelraad J and Veenof PR. 1989. Cadmium kinetics in freshwater clams. Uptake of cadmium by the excised gill of Anoionta, anatina. Bull Environ Contam Toxicol 42, 382-388 https://doi.org/10.1007/BF01699964
  11. Kuroshima R, Kimura S, Date K and Yamamoto Y. 1993 Kinetic analysis of cadmium toxicity to red sea bream, Pagrus major. Ecotoxicol Environ Saf 25, 300-314 https://doi.org/10.1006/eesa.1993.1028
  12. Lekhi P, Cassis D, Pearce CM, Ebell N, Maldonado MT and Orians KJ. 2008. Role of dissolved and particulate cadmium in thε accumulation of cadmium incultured oysters (Crassostre, gigas). Sci Total Environ 393, 309-325 https://doi.org/10.1016/j.scitotenv.2007.12.004
  13. Mann R and Glomb SJ. 1978. The effect of temperature on growth and ammonia excretion of the Manila clam Tapes japonica. Estuar Coast Mar Sci 6, 335-339 https://doi.org/10.1016/0302-3524(78)90021-X
  14. Marig$\acute{o}$mez I, Soto M, Cajaraville PM, Angulo E and Giamberini L. 2002. Cellular and subcellular distribution ofmetals in molluscs. Microsc Res Tech 56, 358-392 https://doi.org/10.1002/jemt.10040
  15. Nair PS and Robinson WE. 2000. Cadmium speciation and transport in the blood of thε bivalve Mytilus edulis. Mar Environ Rs 50, 99-102 https://doi.org/10.1016/S0141-1136(00)00097-0
  16. Nielsen JB and Anderson O. 1996. Elimination of recently absorbed methyl mercury depends on age and gender. Pharmacol Toxicol 79, 60-64 https://doi.org/10.1111/j.1600-0773.1996.tb00243.x
  17. Park KI, Park HS, Kim JM, Park YJ, Hong JS and Choi KS 2006. Flow cytometric assessment of immunε parameters ofthe Manila Calm (Ruditapes philippinarum). J Kor Fish Soc 39, 123-131 https://doi.org/10.5657/kfas.2006.39.spc1.123
  18. Reid SD and McDonald DG. 1991. Metal binding activity of the gills of rainbow trout (Oncorhynchus mykiss). Can J Fish Aquatic Sci 48, 1061-1068 https://doi.org/10.1139/f91-125
  19. Regoli F and Orlando E. 1994. Accumulation and subcellular distribution of metals (Cu, Fe, Mn, Pb and Zn) in the mediterranean mussel Mytilus galloprovincialis during a field transplant experiment. Mar Pollut Bull 28, 592-600 https://doi.org/10.1016/0025-326X(94)90360-3
  20. Roesijadi G and Robinson WE. 1994. Metal regulation in aquatic animals: Mechanisms of uptake, accumulation and release. In: Aquatic toxicology, molecular, biochemical and cellular perspectives. Malins DC and Ostrander GK, ed. CRC Press, Boca Raton, 387-420
  21. Sheehan D and Power A. 1999. Effects of seasonality on xenobiotic and antioxidant defence mechanism of bivalve mollusks. Comp Biochems of bivalve mollusks. Comp Biochem physiol 123C, 193-199 https://doi.org/10.1016/S0742-8413(99)00033-X
  22. Shuhaimi-Othman M and Pascoe D. 2007. Bioconcen-tration and depuration of copper, cadmium, and zinc mixtures by the freshwater amphipod Hyalella azteca. Ecotoxicol Environ Saf 66, 29-35 https://doi.org/10.1016/j.ecoenv.2006.03.003
  23. Sorensen EM. 1991. Cadmium. In: Metal Poisoning in Fish, CRC press, Boca Raton, 175-234
  24. Viarengo A, Palmero S, Zanicchi G, Capelli R, Vassiere R and Orunesu M. 1985. Role of metallothioneins in Cu and Cd accumulation and elimination in the gill and digestive gland cells of Mytilus galloprovincialis Lam. Mar Environ Res 16, 25-36 https://doi.org/10.1016/0141-1136(85)90018-2
  25. Yap CK, Ismail A, Tan SG and Omar H. 2003. Accumu-lation, depuration and distribution of cadmium and zinc in the green-lipped mussel Perna viridis (Linnaeus) under laboratory conditions. Hydrobiolo-gia 498, 151-160 https://doi.org/10.1023/A:1026221930811
  26. Zaldibar B, Cancio I and Marigomez I. 2004. Circatidal variation in epithelial cell proliferation in the mussel digestive gland and stomach. Cell Tissues Res 318, 395-402 https://doi.org/10.1007/s00441-004-0960-0
  27. Zhou Q, Zhang J, Fu J, Shi J and Jiang G. 2008. Bio-monitoring: An appealing tool for assessment of metal pollution in the aquatic ecosystem. Anal Chim Acta 606, 135-150 https://doi.org/10.1016/j.aca.2007.11.018

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