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Ribogospod. nauka Ukr., 2023; 1(63): 33-52
DOI: https://doi.org/10.15407/fsu2023.01.033
УДК 591. 4: [597.556.331.1:597.551.2]:556.55 (477. – 25)

Morphophysiological characteristics of European perch (Perca fluviatilis Linnaeus, 1758) and rudd (Scardinius erythrophthalmus Linnaeus, 1758) from Kyiv water bodies

M. Prychepa, This email address is being protected from spambots. You need JavaScript enabled to view it. , Institute of Hydrobiology of Ukraine, Kyiv
Yu. Kovalenko, This email address is being protected from spambots. You need JavaScript enabled to view it. , Institute of Hydrobiology of Ukraine, Kyiv

Purpose. To study morphophysiological parameters of European perch and rudd from the urbanized water bodies of Kyiv in order to use them as indicators of the physiological state of fish.

Methodology. The ichthyological study was carried out in different water bodies in Kyiv in May 2021. The material for the study were native species: European perch and rudd. Morpho-physiological parameters were determined separately for males and females. The probability of the obtained results was assessed by a Student’s t-test (Р≤0.05).

Findings. Differences in morpho-physiological parameters of European perch and rudd from two water bodies were studied. A high content of oil products in water (0.090 mg/dm3) and bottom sediments (80.5 mg/kg) was found in the Lake Kyrylivske, while their concentration was several times lower in water (0.005 mg/dm3) and bottom sediments (10.5 mg/kg) of the Lake Martyshiv. Differences in the living conditions were manifested in the studied samples of fish. European perch from the Lake Martyshiv had a higher body length and weight by 10.6% and 30%, respectively, compared to the sample from the Lake Kyrylivske. On the other hand, no significant differences in body weight were found for rudd. This indicates the presence of interspecies differences for the studied fish in the living conditions of water bodies under human impact.

In addition, differences in morphophysiological parameters have been established in European perch. Condition factor of perch females from the Lake Martyshiv was 16.5% higher than that of females from the Lake Kyrylivske. High liver indices were observed in European perch males from the anthropogenically transformed water body, while rudd males had a liver index lower by 26.3% than that in the Lake Martyshiv. The confirmation of the stressful living conditions in the Lake Kyrylivske during the study period was a significant decrease in gonadal and spleen indices of European perch.

Originality. It was established that males and females of European perch and rudd have different physiological reactions to negative living conditions, which were reflected in the indices of internal organs.

Practical Value. The obtained results allow assessing the physiological state of most abundant fish communities in urbanized water bodies of Kyiv for further forecasting their abundance and structure.

Keywords: European perch (Perca fluviatilis, Linnaeus 1758), rudd (Scardinius erythrophthalmus, Linnaeus 1758), morphophysiological characteristics, organ indices, adaptive reactions, human impact.

REFERENCES

  1. Vyshnevskyi, V. I. (2021). Vodoimy Kyieva. Kyiv: Nika-Tsentr.
  2. Zhezheria, V. A., Lynnyk, P. M., & Zubenko, I. B. (2001). Umist ta formy znakhodzhennia metaliv u ozerakh systemy Opechen (m. Kyiv). Naukovi pratsi UkrNDHMI, 269, 70-86.
  3. Romanenko, O. V., Arsan, O. M., Kipnis, L. S., & Sytnyk, Yu. M. (2015). Ekolohichni problemy kyivskykh vodoim i prylehlykh terytorii. Kyiv: Naukova dumka.
  4. Medovnyk,  D. V. (2019). Ecological-physiological features of native and invasive fish species in small rivers under different degree of transformation // Hydrobiol. J. 2019. Vol. 55, N 4. P. 63–74. https://doi.org/10.1615/HydrobJ.v55.i4.60 
  5. Kochet, V. M. (2010). Suchasnyi stan ikhtiofauny malykh richok Dnipropetrovskoi oblasti. Naukovi zapysky Ternopilskoho natsionalnoho pedahohichnoho universytetu im. V. Hnatiuka. Seriia: Biolohiia. Spets. vyp.: Hidroekolohiia, 2 (43), 280-283.
  6. Sondak, V. V., Volkoshovets, O. V., & Babych, L. M. (2013). Dynamika vydovoho skladu rybnoho naselennia r. Horyn ta ryzyky vyzhyvannia aboryhennoi ikhtiofauny v transformovanii richkovii merezhi. Visnyk NUVHP. 3 (63), 15-23.
  7. Medovnyk, D. V. (2018). Mali richky urbanizovanykh terytorii v yakotsi isnuvannia ikhtoitsenoziv.  Ribogospod. nauka Ukr., 3(45), 5‐15. DOI: 10.15407/fsu2018.03.005.
  8. Medovnyk, D. V. (2018). Mizhvydovi vidnosyny invazyvnykh ta aboryhennykh vydiv ryb u malykh richkakh urbanizovanykh terytorii. Nauk. zap. Ternop nats ped. un-tu Ser. Biol., 2 (73), 170-174.
  9. Linde-Arias, A. R., Inacio, A. F., Novo, L. A., Albuquerque, C., & Moreira, J. C. (2008). Multibiomarker approach in fish to assess the impact of pollution in a large Brazilian river, Paraiba do Sul. Environmental Pollution, 156(3), 974-979. https://doi.org/10.1016/j.envpol.2008.05.006 
  10. Fernandes, C., Fontaìnhas-Fernandes, A., Rocha, E., & Salgano, M. A. (2008). Monitoring pollution in Esmorzi-Paramos lagoon, Portugal: liver histological and biochemical effects in Liza sapiens.Environmental Monitoring and Assessment, 145, 315-322. https://doi.org/10.1007/s10661-007-0041-4 
  11. Esin, E. V., & Fedorov, A. E. (2016). The effect of chronic volcanic pollution on the morphometric characteristics of juvenile Dolly Varden (Salvelinus malma W.) on the Kamchatka peninsula. Hydrobiologia, 783(1), 1-10.  DOI: 10.1007/s10750-016-2741-7.
  12. Sadekarpawar, S., & Parikh, P. (2013). Gonadosomatic and Hepatosomatic indices of freshwater fish. WorldJournal of Zoology, 8(1), 110-118.
  13. Hismayasari, I. B., Marhendra, A. P. W., Rahayu, S., Saidin, S., & Supriyadi, D. S. (2015). Gonadosomatic index (GSI), Hepatosomatic index (HSI) and proportion of oocytes stadia as an indicator of rainbowfish Melanotaenia boesemani spawning season. International Journal of Fisheries and Aquatic Studies, 2(5), 359-362.
  14. Morado, C. N., Francisco Gerson Araújo, F.G., & Gomes, I. D. (2010). The use of biomarkers for assessing effects of pollutant stress on fish species from a tropical river in Southeastern Brazil. Acta Scientiarum. Biological Sciences, 39(4), 431-439. DOI: 10.4025/actascibiolsci.v39i4.34293.
  15. Shykhshabekov, M. M., Fedonenko, E. V., Marenkov, O. N., Abdullaeva, N. M., Rabazanov, N. Y. (2014). Adaptyvnyi potentsyal y funktsyonalnye osobennosty reproduktyvnykh system ryb v ekolohychesky transformyrovannykh vodoemakh: monohrafyia.  Dnepropetrovsk: Zhurfond.
  16. Arsan, O. M., Davydov, O. A., Yevtushenko, M. Iu., & Zhukynskyi, V. M. (2006). Metody hidroekolohichnykh doslidzhen poverkhnevykh vod. Kyiv: Lohos.
  17. Wziatek, B., Poczyczynski, P., Kozlowski, J., & Wojnar, K.  (2004). The feeding of sexually mature European perch ((Perca fluviatilis L.) in Lake Kortowskie in the autumn-winter period. Archives of Polish Fisheries, 12(2), 197-201.
  18. Nehemia, A., Maganira, J. D., & Rumisha, C. (2012).  Length-weight relationship and condition factor of tilapia species grown in marine and fresh water ponds. AgricultureBiological Journal of North America, 3(3), 117-124. https://doi.org/10.5251/abjna.2012.3.3.117.124 
  19. Barrilli, G. H. C., Rocha, O., Negreiros, N. F., & Verani, J. R. (2015). Influence of environmental quality of the tributaries of the Monjolinho River on the relative condition factor (Kn) of the local ichthyofauna. Biota Neotropica, 15(1), e20140107. http://dx.doi.org/10.1590/1676-06032015010714.
  20. Roussel, H., Ten-Hage, L., Joachim, S., Le Cohu, R., Gauthier, L., & Bonzom, J. M. (2007). A long-term copper exposure on a freshwater ecosystem using lotic mesocosms: primary producer community responses. Aquatic Toxicology, 81(2), 168-182. https://doi.org/10.1016/j.aquatox.2006.12.006 
  21. Bervoets, L., Campenhout, K. V., Reynders, H., Knapen, D., Covaci, A., & Blust, R. (2009). Bioaccumulation of micropollutants and biomarker responses in caged carp (Cyprinus carpio). Ecotoxicology and EnvironmentalSafety, 72(3), 720-728. https://doi.org/10.1016/j.ecoenv.2008.10.008 
  22. Pasichna, O. O., Horbatiuk, L. O., Platonov, M. O., Burmistrenko, S. P., & Hodlevska, O. O., et al. (2021). Osoblyvosti nakopychennia vazhkykh metaliv vodnymy makrofitamy ozer m. Kyieva ta otsinka yikhnoi bioremediatsiinoi zdatnosti. Hidrobiolohichnyi zhurnal, 57(2), 70-81.
  23. Kovalenko, Yu. O., Prymachov, M. T., Potrokhov, O. S., & Zinkovskyi, O. H.  (2018). Deiaki adaptyvni reaktsii karasia sribliastoho Carassius auratus gibelio (Bloch) za nadmirnoho navantazhennia amoniinym azotom. Ribogospod. nauka Ukr., 2(44), 116‐129. DOI: 10.15407/fsu2018.02.1.
  24. Kanu, K.C., Ogbonna, O.A., & Mpamah, I.C. (2019). Acute Toxicity and Biological Responses of Clarias gariepinus to Environmentally Realistic Chlorpyrifos Concentrations. Pollution, 5(4), 839-846. DOI: 10.22059/poll.2019.279504.614.
  25. Nassr-Allah, H., & Abdel-Hameid, L. (2007). Physiological and Histopathological Alterations Induced by Phenol Exposure in Oreochromis aureus Juveniles. Turkish Journal of Fisheries and Aquatic Sciences, 7, 131-138.
  26. Kime, D. E. (1999). A strategy for assessing the effects of xenobiotics on fish reproduction. Sci. Total. Environ., 225(1–2), 3-11. https://doi.org/10.1016/S0048-9697(98)00328-3 
  27. Hansson, T., Hansen, W., Tjärnlund, U., Balk, L., & Bengtsson, B. E. (2014). Biomarker investigations in adult female perch (Perca fluviatilis) from industrialised areas in northern Sweden in 2003. Archives of Environmental Contamination and Toxicology, 66, 237-247. https://doi.org/10.1007/s00244-013-9974-5 
  28. Dewi, N. K., & Prabowo, R. (2017). Determination of Liver Somatic Index (LSI) and Gonadosomatic Index (GSI) Value of Crap (Cyprinus carpio) and Nile tilapia (Perca fluviatilis). International Journal of Scientific and Research Publications, 7(6), 221-223.
  29. Dekić, R., Savić, N., Manojlović, M., Golub, D., & Pavličević, J. (2016).Condition factor and organosomatic indices of rainbow trout (Оnchorhynchus mykiss, Wal.) from different brood stock. Biotechnology in Animal Husbandry, 32(2), 229-237. DOI: 10.2298/BAH1602229D.
  30. Fedonenko, O. V., & Ananieva, T. V. (2011). Ekoloho-biokhimichni pokaznyky tkanyn ta orhaniv osnovnykh vydiv khyzhykh ryb Zaporizkoho vodoskhovyshcha. Hidrolohiia, hidrokhimiia i hidroekolohiia, 1(22), 184-191. https://doi.org/10.1002/adfm.201101590 
  31. Yakushyn, V. M., Potrokhov, A. S., Zynkovskyi, O. H., Romanyshyn, H. M., Kalenychenko, K. P., & Lynchuk, M. Y. (2015). Chyslennost bakteryi y proteolytycheskaia aktyvnost v vode ozera, raspolozhennoho v horodskoi cherte. Hydrobyol. zhurn, 51(1), 83-92. https://doi.org/10.1016/j.omega.2014.09.006 
  32. Inyang, I. R., Ollor, A. O., & Izah., S. C. Effect of Diazinon on Organosomatic Indices and Behavioural Responses of Clarias gariepinus (a Common Niger Delta Wetland Fish). Greener Journal of Biological Sciences, 7(2), 015-019. (DOI: http://doi.org/10.15580/GJBS.2017.2.020917021).