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Influence of brief immersion in an aqueous solution of sodium chloride and/or copper sulphate on pikeperch (Sander lucioperca (L.)) blood parameters

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Antychowicz J. (1996). Fish diseases and poisoning (in Polish). SGGW, Warsaw, Poland, 359 pp.Search in Google Scholar

Badiola M., Mendiola D., Bostock J. (2012). Recirculating aquaculture systems (RAS) analysis: main issues on management and future challenges. Aquacult. Eng., 51: 26–35.Search in Google Scholar

Blaxhall P.C. (1972). The haematological assessment of the health of freshwater fish. J. Fish Biol., 4: 593–604.Search in Google Scholar

Blecha M., Kristan J., Policar T. (2016). Adaptation of intensively reared pikeperch (Sander lucioperca) juveniles to pond culture and subsequent re-adaptation to a recirculation aquaculture system. Turk. J. Fish. Aquat. Sci., 16: 15–18.Search in Google Scholar

Bojarski B., Witeska M. (2020). Blood biomarkers of herbicide, insecticide, and fungicide toxicity to fish – a review. Environ. Sci. Pollut. Res., 27: 19236–19250.Search in Google Scholar

Bregnballe J. (2015). A guide to recirculation aquaculture. An introduction to the new environmentally friendly and highly productive closed fish farming systems (2015 ed.). The Food and Agriculture Organization of the United Nations (FAO) and Eurofish International Organization, Retrieved from: http://www.fao.org/3/a-i4626e.pdfSearch in Google Scholar

Brown J.A., Moore W.M., Quabius E.S. (2001). Physiological effects of saline waters on zander. J. Fish Biol., 59: 1544–1555.Search in Google Scholar

Burgdorf-Moisuk A., Mitchell M.A., Watson M. (2011). Clinical and physiologic effects of sodium chloride baths in goldfish (Carassius auratus). J. Zoo Wild. Med., 42: 586–592.Search in Google Scholar

Carneiro P.C.F., Swarofsky E.C., Souza D.P.E., César T.M.R., Baglio B., Baldisserotto B. (2009). Ammonia-, sodium chloride-, and calcium sulfate-induced changes in the stress responses of jundiá, Rhamdia quelen, juveniles. J. World Aquacult. Soc., 6: 810–817.Search in Google Scholar

Chagas E.C., De Araújo L.D., De Carvalho Gomes L., De Oliveira Malta J.C., Varella A. M. B. (2012). Effect of sodium chloride on physiological responses and monogenean control in tambaqui (Colossoma macropomum). Acta. Amaz., 42: 439–444.Search in Google Scholar

Dacie J.V., Lewis S.M. (2001). Practical Hematology. London, Great Britain, Elsevier Churchill Livingstone.Search in Google Scholar

Dick P.T., Dixon D.G. (1985). Changes in circulating blood cell levels of rainbow trout Salmo gairdneri Richardson, following acute and chronic exposure to copper. J. Fish Biol., 26: 475–481.Search in Google Scholar

Diouf B., Rioux P., Blier P.U., Rajotte D. (2000). Use of brook char (Salvelinus fontinalis) physiological responses to stress as a teaching exercise. Adv. Physiol. Educ., 23: 18–23.Search in Google Scholar

FAO (Food and Agriculture Organization of the United Nations) (2012). Cultured Aquatic Species Information Programme. Sander lucioperca. Cultured Aquatic Species Information Programme. In: FAO Fisheries and Aquaculture Department [online]. Roma, Italy (text by Z. Zakęś), Retrieved from http://www.fao.org/fishery/culturedspecies/Sander_lucioperca/en. Cited 02 Mar 2020.Search in Google Scholar

FAO (Food and Agriculture Organization of the United Nations) (2018). The State of World Fisheries and Aquaculture 2018 – Meeting the sustainable development goals. Rome, Italy, The Food and Agriculture Organization of the United Nations (FAO), 210 pp.Search in Google Scholar

Faruk A.R., Mony S.F.A., Hasan M. (2012). Status of biosecurity and health management in fish hatcheries. J. Appl. Life Sci., 1: 15–26.Search in Google Scholar

Fazio F. (2019). Fish hematology analysis as an important tool of aquaculture: a review. Aquaculture, 500: 237–242.Search in Google Scholar

Fivelstad S., Kvamme K., Handeland S., Fivelstad M., Olsen A.B., Hosfeld C.D. (2015). Growth and physiological models for Atlantic salmon (Salmo salar L.) parr exposed to elevated carbon dioxide concentrations at high temperature. Aquaculture, 436: 90–94.Search in Google Scholar

Foss A., Imsland A.K., Roth B., Schram E., Stefansson S.O. (2007). Interactive effects of oxygen saturation and ammonia on growth and blood physiology in juvenile turbot. Aquaculture, 271: 244–251.Search in Google Scholar

García-Magaña L., Rodríguez-Santiago M.A., Grano-Maldonado M.I., Jiménez-Vasconcelos L., Guerra-Santos J. (2019). The effectiveness of sodium chloride and formalin in trichodiniasis of farmed fresh-water tilapia Oreochromis niloticus (Linnaeus, 1758) in southeastern Mexico. Lat. Am. J. Aquat. Res., 47: 164–174.Search in Google Scholar

González V., Labbé B.S., Valerio V., Vargas-Chacoff L., Martínez D., Oyarzún R., Muñoz J.L.P. (2016). Physicochemical parameters associated with the methods of application of salt baths and their field assessment of blood parameters of Atlantic salmon in water pre-smolt stage. Arch. Med. Vet., 48: 223–230.Search in Google Scholar

Hosseini S.A., Hoseini S.M. (2012). Effect of acute crowding stress on subsequent osmotic challenge and recovery in juvenile common carp Cyprinus carpio (Linnaeus). Comp. Clin. Pathol., 21: 583–588.Search in Google Scholar

Hoseini S.M., Tarkhani R. (2013). Serum biochemical characteristics of Carassius auratus (L) following short-term formalin or NaCl treatment. Int. J. Aquat. Biol., 1: 14–21.Search in Google Scholar

Hoseini S.M., Rajabiesterabadi H., Kordrostami S. (2016). Chronic exposure of Rutilus rutilus caspicus fingerlings to ambient copper: Effects on food intake, growth performance, biochemistry and stress resistance. Toxicol. Ind. Health, 32: 375–383.Search in Google Scholar

Hvas M., Oppedal F. (2019). Physiological responses of farmed Atlantic salmon and two cohabitant species of cleaner fish to progressive hypoxia. Aquaculture, 512: 734353.Search in Google Scholar

Klesius P., Rogers W. (1995). Parasitism of catfish and other farmraised food fish. J. Am. Vet. Med. Assoc., 207: 1473–1478.Search in Google Scholar

Knoph M.B., Thorud K. (1996). Toxicity of ammonia to Atlantic salmon (Salmo salar L.) in seawater effects on plasma osmolality, ion, ammonia, urea and glucose levels and hematologic parameters. Comp. Biochem. Physiol. A, 113: 375–381.Search in Google Scholar

Kumar S., Pant S.C. (1981). Histopathologic effects of acutely toxic levels of copper and zinc on gills, liver, kidney of Puntius conchonius (Ham.). Ind. J. Exp. Biol., 19: 191–194.Search in Google Scholar

Maltez L.C., Barbas A.L., Okamoto M.H., Lopes D.L.A., Romano L.A., Sampaio L.A., Garcia L. (2018). Secondary stress responses in juvenile Brazilian flounder, Paralichthys orbignyanus, throughout and after exposure to sublethal levels of ammonia and nitrite. J. World Aquac. Soc., 50: 346–358.Search in Google Scholar

Meriç I. (2017). Mineral element and nutrient composition of two newly-introduced fish species (Dentex dentex and Seriola dumerili) in recirculating aquaculture system (RAS). GIDA, 42: 163–168.Search in Google Scholar

Mifsud C., Rowland S.J. (2008). Use of salt to control ichthyophthiriasis and prevent saprolegniosis in silver perch, Bidyanus bidyanus. Aquac. Res., 39: 1175–1180.Search in Google Scholar

Moshtaghi B., Khara H., Pazhan Z., Shenavar A. (2016). Histopathological and bacterial study of Persian sturgeon fry, Acipenser persicus (Borodin, 1897) exposed to copper sulfate and potassium permanganate. J. Parasit. Dis., 40: 779–784.Search in Google Scholar

Mottahari R.S.J., Bozorgnia A., Ghiasi M., Farabi S.M.V., Toosi M. (2013). Impact of copper sulphate on hematological and some biochemical parameters of common carp (Cyprinus carpio L., 1758) in different pH. World. J. Fish. Mar. Sci., 5: 486–491.Search in Google Scholar

Movahed R., Khara H., Ahmadnezhad M., Sayadboorani M. (2016). Hematological characteristics associated with parasitism in pikeperch Sander lucioperca (Percidae) from Anzali Wetland. J. Parasit. Dis., 40: 1337–1341.Search in Google Scholar

Mutlu E., Aydın S., Demir T., Yanık T. (2016). Effect of zeolite and copper sulfate, administered alone and in combination on the biochemical components of blood serum of common carp, Cyprinus carpio. Pakistan J. Zool., 48: 1857–1863.Search in Google Scholar

Németh S., Horváth Z., Felföldi Z., Beliczky G., Demeter K. (2013). The use of permitted ectoparasite disinfection methods on young pike-perch (Sander lucioperca) after transition from over-wintering lake to RAS. Aquac. Aquarium Conserv. Legis., 6: 1–11.Search in Google Scholar

Noga E.J. (2010). Fish disease: Diagnosis and treatment. Hoboken, NJ, USA John Wiley and Sons, Inc, 519 pp.10.1002/9781118786758Search in Google Scholar

Nussey G., Van Vuren J.H.J., Du Preez H.H. (1995). Effects of copper on the differential white cell counts of the Mozambique tilapia, Oreochromis mossambicus. Comp. Biochem. Physiol. C, 111: 381–388.Search in Google Scholar

Perry S.F., Gilmour K.M. (2006). Acid-base balance and CO2 excretion in fish: Unanswered questions and emerging models. Respir. Physiol. Neurobiol.,154: 199–215.Search in Google Scholar

Policar T., Stejskal V., Kristan J., Podhorec P., Svinger V., Blaha M. (2013). The effect of fish size and stocking density on the weaning success of pond-cultured pikeperch Sander lucioperca L. juveniles. Aquac. Int., 21: 869–882.Search in Google Scholar

Policar T., Malinovskyi O., Kristan J., Stejskal V., Samarin A.Z. (2019). Post-spawning bath treatments to reduce morbidity and mortality of pond-cultured pikeperch (Sander lucioperca L.) broodstock. Aquac. Int., 27: 1065–1078.Search in Google Scholar

Reardon I.S., Harrell R.M. (1990). Acute toxicity of formalin and copper sulfate to striped bass fingerlings held in varying salinities. Aquaculture, 87: 255–270.Search in Google Scholar

Rónyai A., Gielen M., Philipsen E., Kamstra A. (2003). Monitoring and treatment of diseases. Hague, RIVO report, 7 pp.Search in Google Scholar

Rożyński M., Demska-Zakęś K., Sikora A., Zakęś Z. (2018). Impact of inducing general anesthesia with Propiscin (etomidate) on the physiology and health of European perch (Perca fluviatilis L.). Fish. Physiol. Biochem., 44: 927–937.Search in Google Scholar

Rożyński M., Ziomek E., Demska-Zakęś K., Zakęś Z. (2019). Impact of inducing general anaesthesia with MS-222 on haematological and biochemical parameters of pikeperch (Sander lucioperca). Aquac. Res., 50: 2125–2132.Search in Google Scholar

Sadok S., M’Hetli M., El Abed A., Uglow R.F. (2004). Changes in some nitrogenous compounds in the blood and tissues of freshwater pikeperch (Sander lucioperca) during salinity acclimation. Comp. Biochem. Physiol. A., 138: 9–15.Search in Google Scholar

Singh M. (1995). Haematological responses in a freshwater teleost Channa punctatus to experimental copper and chromium poisoning. J. Environ. Biol., 16: 339–341.Search in Google Scholar

Singh M., Reddy T.V. (1990). Effect of copper sulfate on hematology, blood chemistry, and hepato-somatic index of an Indian catfish, Heteropneustes fossilis (Bloch), and its recovery. Ecotoxicol. Environ. Saf., 20: 30–35.Search in Google Scholar

Sopinka N.M., Donaldson M.R., O’Connor C.M., Suski C.D., Cooke S.J. (2016). Stress indicators in fish. In: Fish Physiology, Vol. 35, Biology of Stress in Fish, Schreck C.B., Tort L., Farrell A.P., Brauner C.J. (eds). Academic Press, Amsterdam, The Netherlands, pp. 405–462.10.1016/B978-0-12-802728-8.00011-4Search in Google Scholar

Steinberg K., Zimmermann J., Meyer S., Schulz C. (2019). Individual growth rates of pikeperch (Sander lucioperca) depending on water exchange rates in recirculating aquaculture systems. Aquac. Int., 27: 1025–1035.Search in Google Scholar

Straus D.L., Mitchell A., Carter R.R., Steeby J.A. (2009). Optimizing copper sulfate treatments for fungus control on channel catfish eggs. J. Aquat. Anim. Health, 2: 91–97.Search in Google Scholar

Tavares-Dias M., Pedreira Mouriño J.L., Schalch S., Onaka E.M., Quintana C.F., De Moraes J.R.E., De Moraes F.R. (2002). Hematological and histopathological alteration in pacu Piaractus mesopotamicus Holmberg, 1887 (Osteichthyes, Characidae) after treatment with copper sulphate (CuSO4). Acta Sci. Biol. Health Sci., 24: 547–554.Search in Google Scholar

Tóth L., Juhász M., Varga T., Csikkel-Szolnoki A., Nemcsók J. (1996). Some effect of CuSO4 on carp. J. Environ. Sci. Health B, 31: 627–635.Search in Google Scholar

Wendelaar Bonga S.E. (1997). The stress response in fish. Physiol. Rev., 77: 591–625.Search in Google Scholar

Zakęś Z. (2007). Out-of-season spawning of cultured pikeperch (Sander lucioperca (L.)). Aquac. Res., 38: 1419–1427.Search in Google Scholar

Zakęś Z. (2012). The effect of body size and water temperature on the results of intensive rearing of pike-perch, Stizostedion lucioperca (L.) fry under controlled conditions. Arch. Pol. Fish., 20: 165–172.Search in Google Scholar

Zakęś Z. (2017). Rearing and breeding of pikeperch (in Polish). Olsztyn, Poland, IRS, 212 pp.Search in Google Scholar

Zakęś Z., Demska-Zakęś K. (1996). Effect of diets on growth and reproductive development of juvenile pikeperch, Stizostedion lucioperca (L.), reared under intensive culture conditions. Aquac. Res., 27: 841–845.Search in Google Scholar

Zakęś Z., Szczepkowski M., Szczepkowska B., Kowalska A., Kapusta A., Jarmołowicz S., Piotrowska I., Kozłowski M., Partyka K., Wunderlich K., Hopko M. (2015). Effects of stocking earthen ponds with pikeperch (Sander lucioperca (L.)) fingerlings reared in recirculating aquaculture systems – effects of fish size and the presence of predators. Bulg. J. Agric. Sci., 21: 5–11.Search in Google Scholar

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