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2017 | 21 |

Tytuł artykułu

Effects of oral vaccination against Yersinia ruckeri on oxidative stress biomarkers in gills, liver and heart of rainbow trout (Oncorhynchus mykiss Walbaum)

Treść / Zawartość

Warianty tytułu

PL
Efekty doustnego szczepienia przeciwko Yersinia ruckeri na stężenie markerów stresu oksydacyjnego w skrzelach, wątrobie i sercu pstrąga tęczowego (Oncorhynchus mykiss Walbaum)

Języki publikacji

EN

Abstrakty

EN
The aim of this study was to assess the effect of oral vaccination against Yersinia ruckeri based on oxidative stress biomarkers in different tissues of rainbow trout (Oncorhynchus mykiss Walbaum). Vaccine consisted of three Y. ruckeri strains (O1 serotype) that originated from rainbow trout cultured on the different farms, where fish exhibited clinical signs of enteric redmouth disease. Concentrated vaccine was incorporated in the fish food; treatment was delivers three times at one day intervals. One month after immunization, gills, hepatic and cardiac tissues were sampled. The vaccinated trout showed tissue-specific oxidative stress responses in the gills, liver, and heart. The gill tissue was the most sensitive to oxidative damage among the samples. Accumulation of oxidative stress biomarkers in the rainbow trout was tissue-specific with following accumulation: gills > heart > liver. These results suggest that the trout expressed tissue-specific oxidative stress mechanisms due to anti- Yersinia vaccine treatment. There were no statistically significant alterations in the activities of antioxidant defenses instead superoxide dismutase activity in the hepatic and cardiac tissue and glutathione peroxidase activity in the gills of vaccinated trout. Correlative analysis confirmed the role of catalase in the antioxidant defense in vaccinated trout. The oxidative stress biomarkers, i.e. content of oxidative modified proteins in the gills, and liver, and 2-thiobarbituric acid reactive substances level in the gills, and total antioxidant capacity in the liver, were sensitive to vaccination of trout against Y. ruckeri and may potentially be used as biomarkers in evaluating vaccine toxicity in rainbow trout.
PL
Celem pracy było zbadanie wpływu doustnego szczepienia przeciwko Yersinia ruckeri na poziom biomarkerów stresu oksydacyjnego w różnych tkankach pstrąga tęczowego (Oncorhynchus mykiss Walbaum). Szczepionka składała się z trzech szczepów Y. ruckeri (serotyp O1) pochodzących od pstrąga tęczowego z klinicznymi objawami jersiniozy. Inaktywowane antygeny Y. Druckeri wprowadzono do paszy; immunizacja ryb odbywała się trzykrotnie w odstępach jednodniowych. Po upływie pierwszego miesiąca po skończeniu szczepienia do badań biochemicznych pobrano próbki skrzeli, tkanki wątrobowej i sercowej ryb. Szczepione ryby wykazały specyficzne zmiany poziomu markerów stresu oksydacyjnego w skrzelach, wątrobie i sercu. Skrzela okazały się najbardziej wrażliwe na uszkodzenia oksydacyjne wśród badanych tkanek. Akumulacja biomarkerów stresu oksydacyjnego u pstrąga tęczowego charakteryzowała się następującą specyficznością: skrzela > serce > wątroba. Wyniki te sugerują, że mechanizmy stresu oksydacyjnego są specyficzne dla różnych tkanek pstrąga tęczowego w wyniku szczepienia przeciwko jersiniozie. Nie stwierdzono statystycznie istotnych zmian w aktywności przeciwutleniaczy oprócz dysmutazy ponadtlenkowej w tkance wątroby i serca oraz peroksydazy glutationowej w skrzelach szczepionych ryb. Analiza korelacyjna potwierdziła ważną rolę katalazy w obronie antyoksydacyjnej immunizowanych ryb. Biomarkery stresu oksydacyjnego, tj. zawartość zmodyfikowanych oksydacyjnie białek w skrzelach i wątrobie, poziom produktów reagujących z kwasem 2-tiobarbiturowym w skrzelach oraz całkowita zdolność antyoksydacyjna w wątrobie, są wrażliwe na wpływ szczepienia przeciwko Y. ruckeri i mogą potencjalnie być wykorzystane jako biomarkery w ocenie toksyczności szczepionek w akwakulturze pstrąga tęczowego.

Wydawca

-

Rocznik

Tom

21

Opis fizyczny

p.109-128,fig.,ref.

Twórcy

autor
  • Department of Zoology and Animal Physiology, Institute of Biology and Environmental Protection, Pomeranian University in Slupsk, Arciszewskiego 22b, 76-200 Slupsk, Poland
  • Department of Salmonid Research, Stanisław Sakowicz Inland Fisheries Institute, 83-330 Rutki, Poland
autor
  • Department of Fish Diseases, National Veterinary Research Institute, Aleja Partyzantow 57, 24-100 Pulawy, Poland

Bibliografia

  • Banaee M., 2013. Physiological Dysfunction in Fish After Insecticides Exposure. In: Insecticides – Development of Safer and More Effective Technologies. InTech, Chapter 4, 103-143, an open access article distributed under the terms of the Creative Commons Attribution License, http://creativecommons.org/licenses/by/3.0, access on 22/05/2017.
  • Barnes A.C., 2011. Enteric Redmouth Disease (ERM) (Yersinia ruckeri). In: Fish Diseases and Disorders. Vol. 3: Viral, Bacterial and Fungal Infections, (Eds) P.T.K. Woo, D.W. Bruno, 2nd Ed., MPG Books Group, UK, 484-511.
  • Bisogni S., Ferreira F.T., Amstalden Neto A., Chiarelli L.O., Ortiz V., 2012. Influence of oxidative stress on inducing micturition dysfunction following chronic infravesical obstruction and the protective role of an antioxidant diet-association of in vivo and in vitro studies in rats. Int. Braz. J. Urol., 38 (4), 552-560.
  • Bradford M.M., 1976. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal. Biochem., 72, 248-254.
  • Chevion M., Berenshtein E., Stadtman E.R., 2000. Human studies related to protein oxidation: protein carbonyl content as a marker of damage. Free Radic. Res., 33 Suppl., S99-S108.
  • Davies R.L., 1991. Virulence and serum-resistance in different clonal groups and serotypes of Yersinia ruckeri. Vet. Microbiol., 29 (3-4), 289-297.
  • Dröge W., 2002. Free radicals in the physiological control of cell function. Physiol. Rev., 82 (1), 47-95.
  • Dubinina E.E., Burmistrov S.O., Khodov D.A., Porotov I.G., 1995. Окислительная модификация белков сыворотки крови человека, метод ее определения. (Oxidative modification of human serum proteins. A method of determining it). Vopr. Med. Khim., 41, 24-26 (article in Russian, abstract in English).
  • Dussauze M., Danion M., Le Floch S., Lemaire P., Pichavant-Rafini K., Theron M., 2015. Innate immunity and antioxidant systems in different tissues of sea bass (Dicentrarchus labrax) exposed to crude oil dispersed mechanically or chemically with Corexit 9500. Ecotoxicol. Environ. Saf., 120, 270-278.
  • El-Gendy K.S., Radwan M.A., Gad A.F., 2009. In vivo evaluation of oxidative stress biomarkers in the land snail, Theba pisana exposed to copper-based pesticides. Chemosphere, 77 (3), 339-344.
  • Ewing W.H., Ross A.J., Brenner D.J., Fanning G.R., 1978. Yersinia ruckeri sp. nov. redmouth (rm) bacterium. Internat. J. Syst. Bacteriol., 28 (1), 37-44.
  • Filipak Neto F., Zanata S.M., Silva de Assis H.C., Nakao L.S., Randi M.A., Oliveira Ribeiro C.A., 2008. Toxic effects of DDT and methyl mercury on the hepatocytes from Hoplias malabaricus. Toxicol. In Vitro, 22 (7), 1705-1713.
  • From J., Rasmussen G., 1984. A growth model, gastric evacuation, and body composition in rainbow trout, Salmo gaidneri Richardson 1836. Dana, 3, 61-139.
  • Galaktionova L.P., Molchanov A.V., El’chaninova S.A., Varshavskiĭ Bla., 1998. Состояние перекисного окисления больных с язвенной болезнью желудка и двенадцатиперстной кишки. (Lipid peroxidation in patients with gastric and duodenal ulcers). Klin. Lab. Diag., 6, 10-14 (article in Russian, abstract in English).
  • Glatzle D., Vuilleumier J.P., Weber F., Decker K., 1974. Glutathione reductase test with whole blood, a convenient procedure for the assessment of the riboflavin status in human. Experientia, 30, 665-667.
  • Grove S., Johansen R., Reitan L.J., Press C.M., 2006. Immune- and enzyme histochemical characterisation of leukocyte populations within lymphoid and mucosal tissues of Atlantic halibut (Hippoglossus hippoglossus). Fish Shellfish Immunol., 20 (5), 693-708.
  • Gubelit Y., Polyak Y., Dembska G., Pazikowska-Sapota G., Zegarowski L., Kochura D., Krivorotov D., Podgornaya E., Burova O., Maazouzi C., 2016. Nutrient and metal pollution of the eastern Gulf of Finland coastline: sediments, macroalgae, microbiota. Sci. Total Environ., 550, 806-819.
  • Gudding R., Lillehaug A., Evensen O., 1999. Recent developments in fish vaccinology. Vet. Immunol. Immunopathol., 72 (1-2), 203-312.
  • Haugarvoll E., Bjerkås I., Nowak B.F., Hordvik I., Koppang E.O., 2008. Identification and characterization of a novel intraepithelial lymphoid tissue in the gills of Atlantic salmon. J. Anat., 213 (2), 202-209.
  • Jifa W., Yu Z., Xiuxian S., You W., 2006. Response of integrated biomarkers of fish (Lateolabrax japonicus) exposed to benzo[a]pyrene and sodium dodecylbenzene sulfonate. Ecotoxicol. Environ. Saf., 65 (2), 230-236.
  • Johnson K.A., Amend D.F., 1983. Efficacy of Vibrio anguillarum and Yersinia ruckeri bacterins applied by oral and anal intubation of salmonids. J. Fish Dis., 6 (5), 473-476.
  • Kamyshnikov V.S., 2004. Справочник по клинико-биохимическим исследованиям и лабораторной диагностике. (Reference book on clinic and biochemical researches and laboratory diagnostics). MEDpress-inform, Moscow, (in Russian).
  • Koppang E.O., Fischer U., Moore L., Tranulis M.A., Dijkstra J.M., Köllner B., Aune L., Jirillo E., Hordvik I., 2010. Salmonid T cells assemble in the thymus, spleen and in novel interbranchial lymphoid tissue. J. Anat., 217 (6), 728-739.
  • Koroliuk M.A., Ivanova L.I., Maĭorova I.G., Tokarev V.E., 1988. Метод определения активности каталазы. (A method of determining catalase activity). Laborotornoe Delo, 1, 16-19, (in Russian).
  • Kostiuk V.A., Potapovich A.I., Kovaleva Zh.V., 1990. Простой и чувствительный метод определения супероксиддисмутазы, основанный на реакции окисления кверцетина (A simple and sensitive method of determination of superoxide dismutase activity based on the reaction of quercetin oxidation). Vopr. Med. Khim., 36, 88-91 (in Russian, abstract in English).
  • Kumar G., Menanteau-Ledouble S., Saleh M., El-Matbouli M., 2015. Yersinia ruckeri, the causative agent of enteric redmouth disease in fish. Vet. Res., 46, 103.
  • Levine R.L., 2002. Carbonyl modified proteins in cellular regulation, aging, and disease. Free Radic. Biol. Med., 32 (9), 790-796.
  • Levine R.L., Garland D., Oliver C.N., Amic A., Climent I., Lenz A.G., Ahn B.W., Shaltiel S., Stadtman E.R., 1990. Determination of carbonyl content in oxidatively modified proteins. Methods in Enzymol., 186, 464-478.
  • Li Z.H., Zlabek V., Velisek J., Grabic R., Machova J., Kolarova J., Li P., Randak T., 2011. Acute toxicity of carbamazepine to juvenile rainbow trout (Oncorhynchus mykiss): effects on antioxidant responses, hematological parameters and hepatic EROD. Ecotoxicol. Environ. Saf., 74 (3), 319-327.
  • Liss G.M., Greenberg R.A., Tamburro C.H., 1985. Use of serum bile acids in the identification of vinyl chloride hepatotoxicity. Am. J. Med., 78 (1), 68-76.
  • Marnett L.J., 2000. Oxyradicals and DNA damage. Carcinogenesis, 21 (3), 361-370.
  • McCarthy D.H., Johnson K.A., 1982. A serotypic survey and cross-protection test of North American field isolates of Yersinia ruckeri. J. Fish Dis., 5 (4), 323-328.
  • Moin V.M., 1986. Простой и специфический метод определения активности глутатионпероксидазы в эритроцитах. (A simple and specific method for determining glutathione peroxidase activity in erythrocytes). Laboratornoe Delo, 12, 724-727 (article in Russian, abstract in English).
  • Olson K.R., 2002. Vascular anatomy of the fish gill. J. Exp. Zool., 293 (3), 214-231.
  • Paiva C.N., Bozza M.T., 2014. Are reactive oxygen species always detrimental to pathogens? Antioxid. Redox Signal., 20 (6), 1000-1037.
  • Poljsak B., Šuput D., Milisav I., 2013. Achieving the balance between ROS and antioxidants: when to use the synthetic antioxidants. Oxid. Med. Cell Longev., 2013, 956792.
  • Puertollano M.A., Puertollano E., de Cienfuegos G.Á., de Pablo M.A., 2011. Dietary antioxidants: immunity and host defense. Curr. Top. Med. Chem., 11 (14), 1752-1766.
  • Quentel C., Vigneulle M., 1997. Antigen uptake and immune responses after oral vaccination. Dev. Biol. Stand., 90, 69-78.
  • Rahal A., Kumar A., Singh V., Yadav B., Tiwari R., Chakraborty S., Dhama K., 2014. Oxidative stress, prooxidants, and antioxidants: the interplay. Biomed. Res. Int., 2014, 761264.
  • Raida M.K., Buchmann K., 2008a. Bath vaccination of rainbow trout (Oncorhynchus mykiss Walbaum) against Yersinia ruckeri: Effects of temperature on protection and gene expression. Vaccine, 26 (8), 1050-1062.
  • Raida M.K., Buchmann K., 2008b. Development of adaptive immunity in rainbow trout, Oncorhynchus mykiss (Walbaum) surviving an infection with Yersinia ruckeri. Fish Shellfish Immun., 25 (5), 533-541.
  • Refsgaard H.H., Tsai L., Stadtman E.R., 2000. Modifications of proteins by polyunsaturated fatty acid peroxidation products. Proc. Natl. Acad. Sci. USA, 97 (2), 611-616.
  • Ross A.J., Rucker R.R., Ewing W.H., 1966. Description of a bacterium associated with redmouth disease of rainbow trout (Salmo gairdneri). Can. J. Microbiol., 12 (4), 763-770.
  • Salinas I., Zhang Y.A., Sunyer J.O., 2011. Mucosal immunoglobulins and B cells of teleost fish. Dev. Comp. Immunol., 35 (12), 1346-1365.
  • Santhiya G., Lakshumanan C., Selvin J., Asha D., 2011. Microbiological analysis of seawater and sediments in urban shorelines: occurrence of heavy metals resistance bacteria on Chennai beaches, Bay of Bengal. Microchem. J., 99 (2), 197-202.
  • dos Santos N.M., Taverne-Thiele J.J., Barnes A.C., van Muiswinkel W.B., Ellis A.E., Rombout J.H., 2001. The gill is a major organ for antibody secreting cell production following direct immersion of sea bass (Dicentrarchus labrax, L.) in a Photobacterium damselae ssp. Piscicida bacterin: an ontogenetic study. Fish Shellfish Immunol., 11 (1), 65-74.
  • Sayre L.M., Lin D., Yuan Q., Zhu X., Tang X., 2006. Protein adducts generated from products of lipid oxidation: focus on HNE and one. Drug Metab. Rev., 38 (4), 651-675.
  • Schippmann B., Schernewski G., Gräwe U., Burchard H., Walczykiewicz T., 2013. A model tool for bathing water quality management: a case study on Salmonella occurrence at the southern Baltic coast. Ocean Coast Manage, 82 (3), 71-84.
  • Slatter D.A., Bolton C.H., Bailey A.J., 2000. The importance of lipid-derived malondialdehyde in diabetes mellitus. Diabetologia, 43 (5), 550-557.
  • Stadtman E.R., Berlett B.S., 1998. Reactive oxygen-mediated protein oxidation in aging and disease. Drug Metab. Rev., 30 (2), 225-243.
  • Stadtman E.R., Levine R.L., 2000. Protein oxidation. Ann. NY Acad. Sci., 899, 191-208.
  • Thompson K.D., Adams A., 2004. Current Trends in Immunotherapy and Vaccine Development for Bacterial Diseases of Fish. In: Current trends in the study of bacterial and viral fish and shrimp diseases. Vol. 3: Molecular aspects of fish and marine biology. (Ed.) Ka Yin Leung, World Scientific Publishing Co. Pte. Ltd., Singapore, 313-362.
  • Tkachenko H., Grudniewska J., 2016. Effect of vaccination against Yersinia ruckeri on oxidative stress biomarkers in the liver and heart of rainbow trout (Oncorhynchus mykiss Walbaum). Sci. J. “Kaliningrad State Technical University News”, 41, 59-67.
  • Tkachenko H., Grudniewska J., Pękala A., 2016a. Biochemical response in the muscle tissue of rainbow trout (Oncorhynchus mykiss Walbaum) following vaccination against Yersinia ruckeri. In: Globalisation and regional environment protection. Technique, technology, ecology. Scientific. (Eds) T. Noch, W. Mikołajczewska, A. Wesołowska. Gdańsk High School Publ., Gdańsk, 235-264.
  • Tkachenko H., Grudniewska J., Pękala A. 2016b. Muscle biochemistry in rainbow trout Oncorhynchus mykiss following Yersinia ruckeri vaccination. Balt. Coast. Zone, 20, 137-159.
  • Tkachenko H., Grudniewska J., Pękala A., 2016c. Post-vaccination alterations of oxidative stress biomarkers in the liver of rainbow trout Oncorhynchus mykiss immunized against Yersinia ruckeri. Słup. Pr. Biol., 13, 253-276.
  • Tkachenko H., Grudniewska J., Pękala A., Paździor E., 2016d. Effects of vaccination against Yersinia ruckeri on oxidative stress biomarkers and liver and heart biochemistry in rainbow trout (Oncorhynchus mykiss). Arch. Pol. Fish., 24, 33-46.
  • Tkachenko H., Grudniewska J., Pękala A., Terech-Majewska E. 2016e. Oxidative stress and antioxidant defence markers in muscle tissue of rainbow trout (Oncorhynchus mykiss) after vaccination against Yersinia ruckeri. J. Vet. Res., 60, 25-33.
  • Tkachenko H., Komorowski I., Grudniewska J., Kurhaluk N., 2015. Przemiany metaboliczne w wątrobie pstrąga tęczowego (Oncorhynchus mykiss, Walbaum) immunizowanego szczepionką przeciwko Yersinia ruckeri. (Metabolic changes in the liver of rainbow trout (Oncorhynchus mykiss, Walbaum) immunized with vaccine against Yersinia ruckeri). Słup. Pr. Biol., 12, 367-391, (in Polish).
  • Xie Y., Qiu N., Wang G., 2017. Toward a better guard of coastal water safety – Microbial distribution in coastal water and their facile detection. Mar. Pollut. Bull., 118 (1-2), 5-16.
  • Young K.M., Russell S., Smith M., Huber P., Ostland V.E., Brooks A.S., Hayes M.A., Lumsden J.S., 2007. Bacterial-binding activity and plasma concentration of ladderlectin in rainbow trout (Oncorhynchus mykiss). Fish Shellfish Immun., 23 (2), 305-315.
  • Zar J.H., 1999. Biostatistical Analysis. 4th ed., Prentice Hall Inc., New Jersey.
  • Zhang J., Shen H., Wang X., Wu J., Xue Y., 2004. Effects of chronic exposure of 2,4-dichlorophenol on the antioxidant system in liver of freshwater fish Carassius auratus. Chemosphere, 55 (2), 167-174.

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