Efectos del cobre disuelto sobre la supervivencia, estado antioxidante, expresión de la metalotionina-I mRNA y la respuesta fisiológica de las larvas del cangrejo de Shangai, Eriocheir sinensis (Decapoda: Brachyura)

Autores/as

  • Shengming Sun Key Laboratory of Genetic Breeding and Aquaculture Biology of Freshwater Fishes, Ministry of Agriculture, Freshwater Fisheries Research Center, Chinese Academy of Fishery Sciences - School of Life Science, Dalian Ocean University
  • Xianping Ge Key Laboratory of Genetic Breeding and Aquaculture Biology of Freshwater Fishes, Ministry of Agriculture, Freshwater Fisheries Research Center, Chinese Academy of Fishery Sciences
  • Jian Zhu Key Laboratory of Genetic Breeding and Aquaculture Biology of Freshwater Fishes, Ministry of Agriculture, Freshwater Fisheries Research Center, Chinese Academy of Fishery Sciences
  • Hongtuo Fu Key Laboratory of Genetic Breeding and Aquaculture Biology of Freshwater Fishes, Ministry of Agriculture, Freshwater Fisheries Research Center, Chinese Academy of Fishery Sciences
  • Zhiqiang Jiang School of Life Science, Dalian Ocean University

DOI:

https://doi.org/10.3989/scimar.03929.06B

Palabras clave:

Eriocheir sinensis, toxicidad del cobre, fisiológica, larvas, enzima antioxidante, metalotionina

Resumen


La concentración letal de cobre disuelto se determina mediante la exposición de larvas del cangrejo de Shangai (Eriocheir sinensis) a dosis de 0, 0.1, 0.2, 0.3, 0.5 y 0.8 mg Cu L–1, a 20°C durante 96 h. La concentración letal media (LC50) y su correspondiente intervalo de confianza del 95% fueron estimados en los estadios larvales zoea I y megalopa. La toxicidad aguda del cobre disuelto fue mayor sobre larvas de zoea I (0.16 mg L–1) que sobre las de megalopa (0.21 mg L–1). El estado antioxidante, la expresión del mRNA de la metalotionina–I y la respuesta fisiológica del cangrejo a la toxicidad del cobre fueron posteriormente investigados exponiendo las larvas de megalopa a dosis de 0, 0.08 y 0.16 mg Cu L–1 durante 96 h. La actividad de la superóxido dismutasa (SOD), de la catalasa (CAT), de la glutatión-S-transferasa (GST) y la peroxidación lipídica de las larvas de megalopa se incrementó en relación con el tiempo de exposición y la concentración de cobre. Los niveles de expresión de MT-1 mRNA se correlacionaron positivamente con la concentración de cobre y el tiempo de exposición. El consumo de oxígeno y la tasa respiratoria de las larvas de megalopa fueron significativamente más elevadas que las del grupo control (P < 0.05) en respuesta a dosis de 0.16 mg Cu L–1, durante 96 h de exposición. Los resultados presentados en este estudio ponen de manifiesto los efectos potenciales del cobre como factor de estrés sobre las larvas de E. sinensis. MT-I y GST parecen ser adecuados biomarcadores de estrés a la exposición de Cu ambiental en larvas de E. sinensis.

Descargas

Los datos de descargas todavía no están disponibles.

Citas

Aebi H. 1984. Catalase in vitro. In: Packer, L. (ed.), Methods in Enzymology, vol. 105. Academic Press Inc., San Diego, pp. 121-126.

Agrahari KC. 2009. Heavy metals in aquatic ecosystem: some environmental implications. Everyman's Science, Vol. XLIV No. 2. pp. 88-93.

Amin O.A., Comoglio L.I. 2010. Effects of copper on the physiological responses of the commercial crab Lithodes santolla (Decapoda: Anomura) larvae. Sci. Mar. 74: 25-31. http://dx.doi.org/10.3989/scimar.2010.74n2215

Amin O., Comoglio L., Rodríguez E. 2003. Toxicity of Cadmium, Lead, and Zinc to larval stages of Lithodes santolla (Decapoda, Anomura). Bull. Environ. Contam. Toxicol. 71: 527-534. http://dx.doi.org/10.1007/s00128-003-8611-9

Bambang Y., Thuet P., Charmantier-Daures M., Trilles J.P., Charmantier G. 1995. Effect of copper on survival and osmoregulation of various developmental stages of the shrimp Penaeus japonicus Bate (Crustacea, Decapoda). Aquat. Toxicol. 33: 125-139. http://dx.doi.org/10.1016/0166-445X(95)00011-R

Barata C., Varo I., Navarro J.C., Arun S., Porte C. 2005. Antioxidant enzyme activities and lipid peroxidation in the freshwater cladoceran Daphnia magna exposed to redox cycling compounds. Comp. Biochem. Physiol. C 140: 175-186.

Beuge J.A., Aust S.D. 1972. Microsomal Lipoperoxidation. Methods. Enzymol. 52: 302-307.

Brouwer M., Schlenk D., Ringwood A.H., Brouwer-Hoexum T.M. 1992. Metal-specific induction of metallothionein isoforms in the blue crab, Callinectes sapidus. Arch. Biochem. Biophys. 294: 461-468. http://dx.doi.org/10.1016/0003-9861(92)90712-6

Brouwer M., Enghild J., Hoexum-Brouwer T.M., Thogersen I., Truncali A. 1995. Primary structure and tissue-specific expression of blue crab (Callinectes sapidus) metallothionein isoforms. Biochem. J. 311: 617-622.

Brouwer M., Syring R., Brouwer T.H. 2002. Role of a copper-specific metallothionein of the blue crab, Callinectes sapidus, in copper metabolism associated with degradation and synthesis of hemocyanin. J. Inorg. Biochem. 88: 228-239. http://dx.doi.org/10.1016/S0162-0134(01)00381-6

Chen J.R. 1998. Experimental Direction Book for Aquatic Chemistry. China agricultural Press, Beijing, pp. 120-126.

Chourpagar A.R., Kulkarni G.K. 2011. Heavy metal toxicity to a freshwater crab, Barytelphusa cunicularis (Westwood) from Aurangabad region. Recent. Res. Sci. Technol. 3: 1-5.

Correia A.D., Livingstone D.R., Costa M.H. 2002. Effects of water-born copper on metallothionein and lipid peroxidation in the marine amphipod Gammarus lacusta. Mar. Environ. Res. 54: 357-360. http://dx.doi.org/10.1016/S0141-1136(02)00114-9

Coyle P., Philcox J.C., Carey L.C., Rofe A.M. 2002. Metallothionein: the multipurpose protein. Cell. Mol. Life. Sci. 59: 627-647. http://dx.doi.org/10.1007/s00018-002-8454-2

D'Adamo R., Di Stasio M., Fabbrocini A., Petitto F., Roselli L., Volpe M.G. 2008. Migratory crustaceans as biomonitors of metal pollution in their nursery areas. The Lesina lagoon (SE Italy) as a case study. Environ. Monit. Assess. 143: 15-24. http://dx.doi.org/10.1007/s10661-007-9944-3

De Boeck G.D., Ngo T.T.H., Campenhout K.V., Blust R. 2003. Differential metallothionein induction patterns in three freshwater fish during sublethal copper exposure. Aquat. Toxicol. 65: 413-424. http://dx.doi.org/10.1016/S0166-445X(03)00178-4

Dissanayake A., Galloway T.S., Jones M.B. 2008. Physiological responses of juvenile and adult shore crabs Carcinus maenas (Crustacea: Decapoda) to pyrene exposure. Mar. Environ. Res. 66: 445-450. http://dx.doi.org/10.1016/j.marenvres.2008.07.006

El-Bahr S.M. 2013. Biochemistry of free radicals and oxidative stress. Sci. Int. 1: 111-117. http://dx.doi.org/10.5567/sciintl.2013.111.117

Fang Y., Yang S., Wu G. 2002. Free radicals, antioxidants, and nutrition. Nutrition. 18: 872-879. http://dx.doi.org/10.1016/S0899-9007(02)00916-4

Ferrer L.D., Andrade J.S., Contardi E.T., Asteasuaian R.O., Marcovecchio J.E. 2003. Copper and zinc concentrations in Bahía Blanca Estuary (Argentina), and their acute lethal effects on larvae of the crab Chasmagnathus granulata. Chem. Speciat. Bioavailab. 15: 7-14. http://dx.doi.org/10.3184/095422903782775271

Finney D.J. 1971. Probit analysis. 3rd edition. Cambridge University Press, Cambridge.

Habig W., Jakobi W.B. 1981. Glutathione S-transferase (rat and human). Methods of Biochemical alterations in rats subjected to dermal application of dodine. Ind. Comput. Physiol. 9: 27-31.

Haq F., Mahoney M., Koropatnick J. 2003. Signaling events for metallothionein induction. Mutat. Res. 533: 211-226. http://dx.doi.org/10.1016/j.mrfmmm.2003.07.014

Hasspieler B.M., Behar J.V., Di Giulio R.T. 1994. Glutathione-dependent defense in channel catfish (Ictalurus punctatus) and brown bullhead (Ameriurus nebulosus). Ecotoxicol. Environ. Safety. 28: 82-90. http://dx.doi.org/10.1006/eesa.1994.1036

Hou Y.X., Wang Y, Li H.Y., Li X.X., Hu X.J. 2011. Accumulation and distribution of heavy metals in Phragmites australis in the wetland of Liaohe river estuary. Adv. Mater. Res. 994: 356-360.

Hotard S, Zou E. 2008. Activity of glutathione S-transferase in the hepatopancreas is not influenced by the molting cycle in the fiddler crab, Uca pugilator. Bull. Environ. Contam. Toxicol. 81: 242–244. http://dx.doi.org/10.1007/s00128-008-9487-5

Jing T.Y., Zhao X.Y. 1995. The improved pyrogallol method by using terminating agent for superoxide dismutase measurement. Prog. Inorg. Biochem. Biophys. 1: 13-15.

Leung K.M.Y., Furness R.W. 1999. Induction of metallothionein in dogwhelk Nucella lapillus during and after exposure to cadmium. Ecotoxicol. Environ. Safe. 43:156-164. http://dx.doi.org/10.1006/eesa.1999.1769

Li Q.S., Li Y.T. 2003. Practical manual for water environmental monitoring. China Waterpower Press, Beijing, China, 433.

Li N., Zhao Y.L., Yan J. 2008. Effects of water-borne copper on digestive and metabolic enzymes of the giant freshwater prawn Macrobrachium rosenbergii. Arch. Environ. Contam. Toxicol. 55: 86-93. http://dx.doi.org/10.1007/s00244-007-9099-9

Li E.H., Chen L.Q., Zeng C., Chen X.M., Yu N., Lai Q.M., Qin J.G. 2007. Growth, body composition, respiration and ambient ammonia nitrogen tolerance of the juvenile white shrimp, Litopenaeus vannamei, at different salinities. Aquaculture. 265: 385-390. http://dx.doi.org/10.1016/j.aquaculture.2007.02.018

Liang X.Q., Yan S.L., Zheng D.C., Guo D.D. 1974. Larval development of Eriocheir sinensis H. Milne-Edwards. Acta. Zoologica. Sinica. 20: 61-75. (in Chinese with English abstract).

Lin S., Hsieh I.J., Huang K.M., Wang C.H. 2002. Influence of the Yangtze River and grain size on the spatial variations of heavy metals and organic carbon in the East China Sea continental shelf sediments. Chem. Geol. 182: 377-394. http://dx.doi.org/10.1016/S0009-2541(01)00331-X

Livak K.J., Schmittgen T.D. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) method. Methods 25: 402-408. http://dx.doi.org/10.1006/meth.2001.1262

López Greco L.S., Sánchez M.V., Nicoloso G.L., Medesani D.A., Rodríguez E.M. 2001. Toxicity of cadmium and copper on larval and juvenile stages of the estuarine crab Chasmagnathus granulata (Brachyura, Grapsidae). Arch. Environ. Contam. Toxicol. 41: 333-338. http://dx.doi.org/10.1007/s002440010256

Lowry O.H., Rosenbrough N.J., Farr A.L., Randall R.J. 1951. Protein measurement with a Folin reagent. J. Biol. Chem. 193: 265-275.

Marklund S., Marklund G. 1974. Involvement of superoxide anion radical in the autoxidation of pyrogallol and a convenient assay for superoxide dismutase. Eur. J. Biochem. 47: 469-474. http://dx.doi.org/10.1111/j.1432-1033.1974.tb03714.x

Moksnes P.O., Lindahl U., Haux C. 1995. Metallothionein as a bioindicator of heavy-metal exposure in the tropical shrimp Penaeus vanname, a study of dose-dependent indication. Mar. Environ. 39: 143-146. http://dx.doi.org/10.1016/0141-1136(94)00057-V

Martins Cde M., Barcarolli I.F., de Menezes E.J., Giacomin M.M., Wood C.M., Bianchini A. 2011. Acute toxicity, accumulation and tissue distribution of copper in the blue crab Callinectes sapidus acclimated to different salinities: In vivo and in vitro studies. Aquat. Toxicol. 17: 88-99. http://dx.doi.org/10.1016/j.aquatox.2010.09.005

Ministry of Agriculture, State Environmental Protection Administration. 2004. Report on state of the fishery eco-environment in China.

Ministry of Agriculture, State Environmental Protection Administration, Beijing, China, pp. 3-7.

Munshi A.B., Quan S.Y., Li, S.J. 1996. Acute toxicity of cop-per, cadmium and copper-cadmium mixture to the larvae of the shrimp Penaeus monodon. Pak. J. Sci. Res. 39: 68-71.

Olafson R.W., Kearns A., Sim R.G. 1979. Heavy metal induction of metallothionein synthesis in the hepatopancreas of the crab Scylla serrata. Comp. Biochem. Physiol. B 62: 417-424. http://dx.doi.org/10.1016/0305-0491(79)90112-3

Rainbow P.S., 1992. The significance of accumulated heavy metal concentrations in marine organisms. In: Proceedings of bioaccumulation workshop, Water Board and Australian Marine Sciences Association Inc., Sydney.

Ren F., Jiang H., Sun J., He L., Li W.W., Wang Y, Wang Q. 2011.Cloning, characterization, expression, and copper sensitivity of the metallothionein-1 gene in the Chinese mitten crab, Eriocheir sinensis. Mol. Biol. Rep. 38: 2383-2393. http://dx.doi.org/10.1007/s11033-010-0372-z

Sharonov B.P., Churilova I.V. 1992. Inactivation and oxidative modification of Cu, Zn superoxide dismutase by stimulated neutrophils: the appearance of new catalytically active structures. Biochem. Biophys. Res. Commun. 189: 1129-1135. http://dx.doi.org/10.1016/0006-291X(92)92321-N

Stohs S.J., Bagchi D. 1995. Oxidative mechanisms in the toxicity of metal ions. Free. Radic. Biol. Med. 18: 321-336. http://dx.doi.org/10.1016/0891-5849(94)00159-H

Sunda W.G., Hanson A.K. 1987. Measurement of free cupric ion concentration in seawater by a ligand competition technique involving copper sorption onto C18 SEP-PAK cartridge. Limnol. Oceanog. 32: 537-551. http://dx.doi.org/10.4319/lo.1987.32.3.0537

Syring R.A., Brouwer T.H., Brouwer M. 2000. Cloning and sequencing of cDNAs encoding for a novel copper-specific metallothionein and two cadmium-inducible metallothioneins from the blue crab Callinectes sapidus. Comp. Biochem. Physiol. C 125: 325-332.

van der Oost R., Beyer J., Vermeulen N.P.E. 2003. Fish bioaccumulation and biomarkers in environmental risk assessment: a review. Environ. Toxicol. Pharmacol. 13: 57-149. http://dx.doi.org/10.1016/S1382-6689(02)00126-6

Vosloo A., Van Aardt W.J., Mienie L.J. 2002. Sublethal effects of copper on the freshwater crab Potamonautes warreni. Comp. Biochem. Physiol. A 133: 695-702. http://dx.doi.org/10.1016/S1095-6433(02)00214-3

Yang Z.B., Zhao Y.L., Zhou Z.L., Zhou X., Yang J. 2005. Effects of copper in water on distribution of copper and digestive enzymes activities in Eriocheir sinensis. J. Fish. China. 29: 496-501. (in Chinese with English abstract).

Yang Z.B., Zhao Y.L., Zhou Z.L., Yang J. 2006a. Effects of CuSO4 on molting, growth, and survival of Eriocheir sinensis. Acta. Hydrobiol. Sin. 30: 563-569. (in Chinese with English abstract).

Yang Z.B., Zhao Y.L., Zhou Z.L., Li N., Yang J. 2006b. Effects of water-borne copper on activities of metabolism enzymes in the crab Eriocheir sinensis. Oceanol. Limnol. Sin. 37: 118-124. (in Chinese with English abstract).

Yang Z.B., Zhao Y.L., Li N., Yang J. 2007. Effect of water-borne copper on the microstructures of gill and hepatopancreas in Eriocheir sinensis and its induction of metallothionein synthesis. Arch. Environ. Contam. Toxicol. 52: 222-228. http://dx.doi.org/10.1007/s00244-006-0133-0

Yeh S.T., Liu C.H., Chen J.C. 2004. Effect of copper sulphate on the immune response and susceptibility to Vibrio alginolyticus in the white shrimp Litopenaeus vannamei. Fish. Shellfish. Immunol. 17: 437-446. http://dx.doi.org/10.1016/j.fsi.2004.04.016

Zapata V., López Greco L., Rodríguez E. 2001. Effect of copper on hatching and development of larvae of the estuarine crab Chasmagnathus granulata (Decapoda, Brachyura). Environ. Toxicol. Chem. 20: 1579-1583. http://dx.doi.org/10.1897/1551-5028(2001)020<1579:EOCOHA>2.0.CO;2

Publicado

2014-03-30

Cómo citar

1.
Sun S, Ge X, Zhu J, Fu H, Jiang Z. Efectos del cobre disuelto sobre la supervivencia, estado antioxidante, expresión de la metalotionina-I mRNA y la respuesta fisiológica de las larvas del cangrejo de Shangai, Eriocheir sinensis (Decapoda: Brachyura). Sci. mar. [Internet]. 30 de marzo de 2014 [citado 2 de agosto de 2026];78(1):91-7. Disponible en: https://scientiamarina.revistas.csic.es/index.php/scientiamarina/article/view/1497

Número

Sección

Artículos