Physiology is pivotal for interactions between salinity and acute copper toxicity to fish and invertebrates.
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[1] C. Wood,et al. Copper toxicity in the spiny dogfish (Squalus acanthias): urea loss contributes to the osmoregulatory disturbance. , 2007, Aquatic toxicology.
[2] Lloyd Demetrius,et al. The origin of allometric scaling laws in biology. , 2006, Journal of theoretical biology.
[3] M. Grosell,et al. Copper toxicity across salinities from freshwater to seawater in the euryhaline fish Fundulus heteroclitus: is copper an ionoregulatory toxicant in high salinities? , 2006, Aquatic toxicology.
[4] M. Grosell. Intestinal anion exchange in marine fish osmoregulation , 2006, Journal of Experimental Biology.
[5] K. Brix,et al. Effects of Copper, Cadmium, and Zinc on the Hatching Success of Brine Shrimp (Artemia franciscana) , 2006, Archives of environmental contamination and toxicology.
[6] W R Arnold,et al. Validation and update of a model used to predict copper toxicity to the marine bivalve Mytilus sp. , 2006, Environmental toxicology.
[7] K. Brix,et al. The effects of metals on embryo-larval and adult life stages of the sea urchin, Diadema antillarum. , 2005, Aquatic toxicology.
[8] M. Grosell,et al. Effects of salinity on copper accumulation in the common killifish (Fundulus heteroclitus) , 2005, Environmental toxicology and chemistry.
[9] W Ray Arnold,et al. Effects of Dissolved Organic Carbon on Copper Toxicity: Implications for Saltwater Copper Criteria , 2005, Integrated environmental assessment and management.
[10] W. Marshall. Ion transport, osmoregulation, and acid-base balance , 2005 .
[11] M. Grosell. 6 Ion Transport, Osmoregulation, and Acid-Base Balance , 2005 .
[12] P. Boudry,et al. A Complementary Method for Production of Tetraploid Crassostrea gigas Using Crosses Between Diploids and Tetraploids with Cytochalasin B Treatments , 2005, Marine Biotechnology.
[13] C. Wood,et al. Effects of prolonged copper exposure in the marine gulf toadfish (Opsanus beta). I. Hydromineral balance and plasma nitrogenous waste products. , 2004, Aquatic toxicology.
[14] C. Wood,et al. Effects of prolonged copper exposure in the marine gulf toadfish (Opsanus beta) II: copper accumulation, drinking rate and Na+/K+ -ATPase activity in osmoregulatory tissues. , 2004, Aquatic toxicology.
[15] R. Beiras,et al. Inhibition of embryo development of the commercial bivalves Ruditapes decussatus and Mytilus galloprovincialis by trace metals; implications for the implementation of seawater quality criteria , 2004 .
[16] E. Taylor,et al. Differential responses to copper in rainbow trout (Oncorhynchus mykiss) acclimated to sea water and brackish water , 1993, Journal of Comparative Physiology B.
[17] E. Taylor,et al. The physiological responses of freshwater rainbow trout, Oncorhynchus mykiss, during acutely lethal copper exposure , 1993, Journal of Comparative Physiology B.
[18] D. Laurén,et al. Effects of copper on branchial ionoregulation in the rainbow trout,Salmo gairdneri Richardson , 1985, Journal of Comparative Physiology B.
[19] R. Stagg,et al. The effects of copper on ionic regulation by the gills of the seawater-adapted flounder (Platichthys flesus L.) , 1982, Journal of comparative physiology.
[20] M. McDonalda,et al. Effects of prolonged copper exposure in the marine gulf toadfish ( Opsanus beta ) I. Hydromineral balance and plasma nitrogenous waste products , 2004 .
[21] Colin R. Janssen,et al. The toxicity of metal mixtures to the estuarine mysid Neomysis integer (Crustacea: Mysidacea) under changing salinity. , 2003, Aquatic toxicology.
[22] C. Wood,et al. Copper homeostasis and toxicity in the elasmobranch Raja erinacea and the teleost Myoxocephalus octodecemspinosus during exposure to elevated water-borne copper. , 2003, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[23] J. Hunt,et al. Toxicity of Cadmium-Copper-Nickel-Zinc Mixtures to Larval Purple Sea Urchins (Strongylocentrotus purpuratus) , 2003, Bulletin of environmental contamination and toxicology.
[24] S. Wigley,et al. Length-weight relationships for 74 fish species collected during NEFSC research vessel bottom trawl surveys, 1992-99 , 2003 .
[25] R. Henry,et al. Inhibition of carbonic anhydrase in the gills of two euryhaline crabs, Callinectes sapidus and Carcinus maenas, by heavy metals. , 2002, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[26] S. Cheung,et al. Effects of heavy metals on the survival and feeding behaviour of the sandy shore scavenging gastropod Nassarius festivus (Powys). , 2002, Marine pollution bulletin.
[27] C. Wood,et al. The role of dissolved organic carbon in moderating the bioavailability and toxicity of Cu to rainbow trout during chronic waterborne exposure. , 2002, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[28] Colin R. Janssen,et al. The biotic ligand model: a historical overview. , 2002, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[29] A. Bianchini,et al. Sodium turnover rate determines sensitivity to acute copper and silver exposure in freshwater animals. , 2002, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[30] R. Beiras,et al. Effect of humic acids on speciation and toxicity of copper to Paracentrotus lividus larvae in seawater. , 2002, Aquatic toxicology.
[31] C. Wood,et al. Copper uptake across rainbow trout gills: mechanisms of apical entry. , 2002, The Journal of experimental biology.
[32] Ove Sten-Knudsen,et al. Biological membranes : theory of transport, potentials and electrical impulses , 2002 .
[33] W. Price,et al. MARSUPIAL DEVELOPMENTAL STAGES IN AMERICAMYSIS BAHIA (MYSIDA: MYSIDAE) , 2002 .
[34] P. Paquin,et al. Biotic ligand model of the acute toxicity of metals. 2. Application to acute copper toxicity in freshwater fish and Daphnia , 2001, Environmental toxicology and chemistry.
[35] C. Wood,et al. Sensitivity of the spiny dogfish (Squalus acanthias) to waterborne silver exposure. , 2001, Aquatic toxicology.
[36] J. Widdows,et al. Effects of salinity and chemical speciation on cadmium accumulation and toxicity to two mysid species , 2001, Environmental toxicology and chemistry.
[37] R. Henry,et al. Environmentally mediated carbonic anhydrase induction in the gills of euryhaline crustaceans. , 2001, The Journal of experimental biology.
[38] G. Charmantier,et al. Ecophysiological adaptation to salinity throughout a life cycle: a review in homarid lobsters. , 2001, The Journal of experimental biology.
[39] Webb,et al. Bioaccumulation and distribution of silver in four marine teleosts and two marine elasmobranchs: influence of exposure duration, concentration, and salinity. , 2000, Aquatic toxicology.
[40] M. Moore,et al. Aquatic toxicology. , 2000, Therapeutic drug monitoring.
[41] J. Harvey,et al. Relationship between Fish Size and Otolith Length for 63 Species of Fishes from the Eastern North Pacific Ocean , 2000 .
[42] J. Monserrat,et al. Inhibitory effects of cadmium on carbonic anhydrase activity and ionic regulation of the estuarine crab Chasmagnathus granulata (Decapoda, Grapsidae). , 1999, Comparative biochemistry and physiology. Part C, Pharmacology, toxicology & endocrinology.
[43] Dennis A. Hansell,et al. Biogeochemistry of total organic carbon and nitrogen in the Sargasso Sea , 1999 .
[44] F. Millero,et al. A Chemical Equilibrium Model for Natural Waters , 1998 .
[45] P. Knudsen,et al. Copper exposure impairs intra- and extracellular acid-base regulation during hypercapnia in the fresh water rainbow trout (Oncorhynchus mykiss) , 1998, Journal of Comparative Physiology B.
[46] Régnault,et al. Nitrogen metabolism of two portunid crabs, carcinus maenas and necora puber, during prolonged air exposure and subsequent recovery: a comparative study , 1998, The Journal of experimental biology.
[47] Malcolm B. Jones,et al. Salinity change and the toxicity of the free cadmium ion [Cd2+(aq)] to Neomysis integer (Crustacea: Mysidacea) , 1998 .
[48] S. Perry,et al. Extracellular Carbonic Anhydrase Activity and Carbonic Anhydrase Inhibitors in the Circulatory System of Fish , 1997, Physiological Zoology.
[49] F. Jensen,et al. Extra- and intracellular acid-base balance and ionic regulation in cod (Gadus morhua ) during combined and isolated exposures to hypercapnia and copper , 1997 .
[50] E. Hofmann,et al. A population dynamics model for the Japanese oyster, Crassostrea gigas , 1997 .
[51] S Ramachandran,et al. Effect of copper and cadmium on three Malaysian tropical estuarine invertebrate larvae. , 1997, Ecotoxicology and environmental safety.
[52] J. Hunt,et al. Influence of salinity on copper and azide toxicity to larval topsmelt Atherinops affinis (Ayres) , 1995, Archives of environmental contamination and toxicology.
[53] R. Boutilier,et al. Effects of carbonic anhydrase inhibition on the acid base status in lamprey and trout. , 1995, Respiration physiology.
[54] Geraldine M. Cripe,et al. Comparative acute toxicities of several pesticides and metals to Mysidopsis bahia and postlarval penaeus duorarum , 1994 .
[55] H. C. Lin,et al. The effect of salinity on the acute toxicity of cadmium to the tropical, estuarine, hermaphroditic fish, Rivulus marmoratus: A comparison of Cd, Cu, and Zn tolerance with Fundulus heteroclitus , 1993, Archives of environmental contamination and toxicology.
[56] M. Regnault. Effect of air exposure on nitrogen metabolism in the crab Cancer pagurus. , 1992, The Journal of experimental zoology.
[57] R. Harrell,et al. Acute Toxicity of Formalin and Copper Sulfate to Striped Bass Fingerlings Held in Varying Salinities , 1990 .
[58] J. Cairns,et al. Aquatic toxicology. Part 2 , 1990 .
[59] J. Truchot,et al. Comparative study of the effects of copper on haemolymph ion concentrations and acid-base balance in shore crabs Carcinus maenas acclimated to full-strength or dilute seawater , 1990 .
[60] J. Truchot,et al. Effects of sublethal and lethal copper levels on hemolymph acid-base balance and ion concentrations in the shore crab Carcinus maenas kept in undiluted sea water , 1989 .
[61] Mg Smith,et al. Growth and morphometry in abalone (Haliotis rubra Leach) from Victoria , 1988 .
[62] W. Sunda,et al. Effects of cupric and zinc ion activities on the survival and reproduction of marine copepods , 1987 .
[63] D. Laurén,et al. Influence of water hardness, pH, and alkalinity on the mechanisms of copper toxicity in juvenile rainbow trout, Salmo gairdneri , 1986 .
[64] A. Calabrese,et al. Combined effects of salinity, temperature, and copper on embryos and early larvae of the American oyster,Crassostrea virginica , 1979, Archives of environmental contamination and toxicology.
[65] Charles B. Miller,et al. Growth rules in the marine copepod genus Acartia1,2 , 1977 .
[66] R. Pentreath. The accumulation of cadmium by the plaice, Pleuronectes platessa L. and the thornback ray, Raja clavata L , 1977 .
[67] N. Jones,et al. Some effects of salinity on the toxicity of copper to the polychaete Nereis diversicolor , 1976 .
[68] D. McLeese. Toxicity of Copper at Two Temperatures and Three Salinities to the American Lobster (Homarus americanus) , 1974 .
[69] H. Skaer. The water balance of a serpulid polychaete, Mercierella enigmatica (Fauvel). II. Ion concentration. , 1974, The Journal of experimental biology.
[70] H. Skaer. The water balance of a serpulid polychaete, Mercierella enigmatica (Fauvel). I. Osmotic concentration and volume regulation. , 1974, The Journal of experimental biology.
[71] D. H. Spaargaren. Osmoregulation in the prawns Palaemon serratus and Lysmata seticaudata from the Bay of Naples , 1972 .
[72] J. W. Avault,et al. Toxicity of Certain Chemicals to Juvenile Pompano , 1971 .
[73] R. Smith. Chloride regulation at low salinities by Nereis diversicolor (Annelida, Polychaeta). I. Uptake and exchanges of chloride. , 1970, The Journal of experimental biology.
[74] C. E. Lucas. Physiology of Fishes , 1970, Nature.
[75] J. Robertson. Ionic regulation in some marine invertebrates. , 1949, The Journal of experimental biology.