Otwarty dostęp

High stocking density affected the growth performance, digestive enzyme activity, intestinal histology, and immune response of Nile tilapia (Oreochromis niloticus) fry grown in brackish water


Zacytuj

Abd El-Hack M.E., El-Saadony M.T., Nader M.M., Salem H.M., El-Tahan A.M., Soliman S.M., Khafaga A.F. (2022). Effect of environmental factors on growth performance of Nile tilapia (Oreochromis niloticus). Int. J. Biometeorol., 66: 2183–2194. Search in Google Scholar

Abdel-Tawwab M., Hagras A.E., Elbaghdady H.A.M., Monier M.N. (2014). Dissolved oxygen level and stocking density effects on growth, feed utilization, physiology, and innate immunity of Nile Tilapia, Oreochromis niloticus. J. Appl. Aquac., 26: 340–355. Search in Google Scholar

Aketch B.O., Ang’ienda P.O., Radull J.O., Waindi E.N. (2014). Effect of stocking density on the expression of glucose transporter protein 1 and other physiological factors in the Lake Victoria Nile tilapia, Oreochromis niloticus (L.). Int. Aquat. Res., 6: 69. Search in Google Scholar

Bancroft J., Stevens A., Turner D. (1996). Theory and practice of histological techniques: Churchill Livingstone New York. The text, 766. Search in Google Scholar

Biller J.D., Takahashi L.S. (2018). Oxidative stress and fish immune system: phagocytosis and leukocyte respiratory burst activity. Anais da Academia Brasileira de Ciências, 90: 3403–3414. Search in Google Scholar

Birnie-Gauvin K., Costantini D., Cooke S.J., Willmore W.G. (2017). A comparative and evolutionary approach to oxidative stress in fish: A review. Fish Fish., 18: 928–942. Search in Google Scholar

Caraway W.T. (1959). A stable starch substrate for the determination of amylase in serum and other body fluids. Am. J. Clin. Pathol., 32: 97–99. Search in Google Scholar

Cavatti Neto A., Alvarenga É.R.d., Toral F.L.B., Leite N.R., da Costa F.F.B., Goulart L.Q., Correa R.D.S., da Silva M.A., dos Santos B.D., Fernandes A.F.A., Turra E.M. (2023). Impact of selection for growth and stocking density on Nile tilapia production in the biofloc system. Aquaculture, 577: 739908. Search in Google Scholar

Dawood M.A., Shukry M., Zayed M.M., Omar A.A., Zaineldin A.I., El Basuini M.F. (2019). Digestive enzymes, immunity and oxidative status of Nile tilapia (Oreochromis niloticus) reared in intensive conditions. Slov. Vet. Res., 56: 99–108. Search in Google Scholar

Dawood M.A.O. (2021). Nutritional immunity of fish intestines: important insights for sustainable aquaculture. Rev. Aquac., 13: 642–663. Search in Google Scholar

Durigon E.G., Lazzari R., Uczay J., Lopes D.L.d.A., Jerônimo G.T., Sgnaulin T., Emerenciano M.G.C. (2020). Biofloc technology (BFT): Adjusting the levels of digestible protein and digestible energy in diets of Nile tilapia juveniles raised in brackish water. Aquac. Fish., 5: 42–51. Search in Google Scholar

El-Sayed A.-F.M., Fitzsimmons K. (2023). From Africa to the world –The journey of Nile tilapia. Rev. Aquac., 15: 6–21. Search in Google Scholar

FAO (2022). World Fisheries and Aquaculture. Food and Agriculture Organization, Rome, 10.4060/cc0461en. Search in Google Scholar

Febry R., Lutz P. (1987). Energy partitioning in fish: The activityrelated cost of osmoregulation in a euryhaline cichlid. J. Exp. Biol., 128: 63–85. Search in Google Scholar

Fridman S., Bron J.E., Rana K.J. (2012). Ontogenic changes in the osmoregulatory capacity of the Nile tilapia Oreochromis niloticus and implications for aquaculture. Aquaculture, 356–357: 243–249. Search in Google Scholar

Furuya W.M., Cruz T.P., Gatlin D.M. (2023). Amino acid requirements for Nile Tilapia: an update. Animals, 13. Search in Google Scholar

GAFRD (2021). General Authority for Fish Resources Development. Fish Statistics Year Book –2019. 29th ed. Ministry of Agriculture and Land Reclamation. Search in Google Scholar

Garg C.K., Sardar P., Sahu N.P., Maiti M.K., Shamna N., Varghese T., Deo A.D. (2023). Effect of graded levels of dietary methionine on growth performance, carcass composition and physio-metabolic responses of genetically improved farmed tilapia (GIFT) juveniles reared in inland saline water of 10 ppt. Anim. Feed Sci. Technol., 298: 115602. Search in Google Scholar

Huang W.B., Chiu T.S. (1997). Effects of stocking density on survival, growth, size variation, and production of Tilapia fry. Aquac. Res., 28: 165–173. Search in Google Scholar

Ibrahim L.A., Abu-Hashim M., Shaghaleh H., Elsadek E., Hamad A.A., Alhaj Hamoud Y. (2023). A Comprehensive review of the multiple uses of water in aquaculture-integrated agriculture based on international and national experiences. Water, 15. Search in Google Scholar

Kabir K.A., Verdegem M.C.J., Verreth J.A.J., Phillips M.J., Schrama J.W. (2019). Effect of dietary protein to energy ratio, stocking density and feeding level on performance of Nile tilapia in pond aquaculture. Aquaculture, 511: 634200. Search in Google Scholar

Larumbe-Morán E., Hernández-Vergara M.P., Olvera-Novoa M.A., Pérez Rostro C.I. (2010). Protein requirements of Nile tilapia (Oreochromis niloticus) fry cultured at different salinities. Aquac. Res., 41: 1150–1157. Search in Google Scholar

Li L., Shen Y., Yang W., Xu X., Li J. (2021). Effect of different stocking densities on fish growth performance: A meta-analysis. Aquaculture, 544: 737152. Search in Google Scholar

Liu G., Ye Z., Liu D., Zhao J., Sivaramasamy E., Deng Y., Zhu S. (2018). Influence of stocking density on growth, digestive enzyme activities, immune responses, antioxidant of Oreochromis niloticus fingerlings in biofloc systems. Fish Shellfish Immunol., 81: 416–422. Search in Google Scholar

Luz R.K., Silva W.d.S., Melillo Filho R., Santos A.E.H., Rodrigues L.A., Takata R., Alvarenga É.R.d., Turra E.M. (2012). Stocking density in the larviculture of Nile tilapia in saline water. Rev. Bras. Zootec., 41: 2385–2389. Search in Google Scholar

MacKinnon B., Debnath P.P., Bondad-Reantaso M.G., Fridman S., Bin H., Nekouei O. (2023). Improving tilapia biosecurity through a value chain approach. Rev. Aquac., 15: 57–91. Search in Google Scholar

Manduca L.G., Silva M.A.d., Alvarenga É.R.d., Alves G.F.d.O., Ferreira N.H., Teixeira E.d.A., Fernandes A.F.A., Silva M.d.A.e., Turra E.M. (2021). Effects of different stocking densities on Nile tilapia performance and profitability of a biofloc system with a minimum water exchange. Aquaculture, 530: 735814. Search in Google Scholar

Martos-Sitcha J.A., Mancera J.M., Prunet P., Magnoni L.J. (2020). Editorial: Welfare and stressors in fish: Challenges facing aquaculture. Front. Physiol., 11. Search in Google Scholar

Mashaii N., Rajabipour F., Mohammadi M., Sarsangi H., Bitaraf A., Hossein-Zadeh H., Sharif-Rohani M. (2016). Reproduction of Nile tilapia, Oreochromis niloticus in brackish water. J. Appl. Aquac., 28: 1–8. Search in Google Scholar

Mehrim A.I., Refaey M.M. (2023). An overview of the implication of climate change on fish farming in Egypt. Sustainability, 15: 1679. Search in Google Scholar

Mitra S., Khan M.A., Rahman M.T., Nielsen R. (2023). Effects of open water availability on productivity and efficiency of tilapia fish farming. Aquac. Econ. Manag., 27: 315–334. Search in Google Scholar

Moss D.W., Henderson A.R. (1996). Enzymes in: Tietz fundermental of clinical chemistry, 4th Ed. Tietz N.W. (ed.). W. B. Sounders company, Philadelphia, pp. 283–335. Search in Google Scholar

Negm S.S., Ismael N.E.M., Ahmed A.I., Asely A.M.E., Naiel M.A.E. (2021). The efficiency of dietary Sargassum aquifolium on the performance, innate immune responses, antioxidant activity, and intestinal microbiota of Nile Tilapia (Oreochromis niloticus) raised at high stocking density. J. Appl. Phycol., 33: 4067–4082. Search in Google Scholar

Ninh N.H., Thoa N.P., Knibb W., Nguyen N.H. (2014). Selection for enhanced growth performance of Nile tilapia (Oreochromis niloticus) in brackish water (15–20 ppt) in Vietnam. Aquaculture, 428–429: 1–6. Search in Google Scholar

Onxayvieng K., Piria M., Fuka M.M., Gavrilović A., Liang X., Liu L., Tang R., Li L., Li D. (2021). High stocking density alters growth performance, blood biochemical profiles, and hepatic antioxidative capacity in gibel carp (Carassius gibelio). Fish Physiol. Biochem., 47: 203–212. Search in Google Scholar

Rakocy J.E., Nair A. (1984). Tilapia fry and fingerling production in small tanks. Conference Paper, 10.22004/ag.econ.261606 Search in Google Scholar

Refaey M.M., Li D., Tian X., Zhang Z., Zhang X., Li L., Tang R. (2018). High stocking density alters growth performance, blood biochemistry, intestinal histology, and muscle quality of channel catfish Ictalurus punctatus. Aquaculture, 492: 73–81. Search in Google Scholar

Rossignoli C.M., Manyise T., Shikuku K.M., Nasr-Allah A.M., Dompreh E.B., Henriksson P.J.G., Lam R.D., Lozano D., Tran N., Roem A., Badr A., Sbaay A.S., Moruzzo R., Charo-Karisa H., Gasparatos A. (2023). Tilapia aquaculture systems in Egypt: Characteristics, sustainability outcomes and entry points for sustainable aquatic food systems. Aquaculture, 577: 739952. Search in Google Scholar

Sarsangi Aliabad H., Naji A., Mortezaei S.R.S., Sourinejad I., Akbarzadeh A. (2022). Effects of restricted feeding levels and stocking densities on water quality, growth performance, body composition and mucosal innate immunity of Nile tilapia (Oreochromis niloticus) fry in a biofloc system. Aquaculture, 546: 737320. Search in Google Scholar

Saurabh S., Sahoo P.K. (2008). Lysozyme: an important defence molecule of fish innate immune system. Aquac. Res., 39: 223–239. Search in Google Scholar

Sewilam H., Kimera F., Nasr, P. (2023). Water energy food nexus model: an integrated aqua-agriculture system to produce tilapia and sweet basil using desalinated water. Environ. Sci. Pollut. Res., 30: 15975–15990. Search in Google Scholar

Shao M., Xu H., Ge X., Zhu J., Huang D., Ren M., Liang H. (2023). Salinity levels affect the lysine nutrient requirements and nutrient metabolism of juvenile genetically improved farmed tilapia (Oreochromis niloticus). Br. J. Nutr., 129: 564–575. Search in Google Scholar

Shourbela R.M., Khatab S.A., Hassan M.M., Van Doan H., Dawood M.A.O. (2021). The effect of stocking density and carbon sources on the oxidative status, and nonspecific immunity of Nile tilapia (Oreochromis niloticus) reared under biofloc conditions. Animals, 11. Search in Google Scholar

Song C., Sun C., Liu B., Xu P. (2023). Oxidative stress in aquatic organisms. Antioxidants (Basel), 12: 1223. Search in Google Scholar

Tseng Y.-C., Hwang P.-P. (2008). Some insights into energy metabolism for osmoregulation in fish. Comp. Biochem. Physiol. C. Toxicol. Pharmacol., 148: 419–429. Search in Google Scholar

Uchiyama M., Mihara M. (1978). Determination of malonaldehyde precursor in tissues by thiobarbituric acid test. Anal. Biochem., 86: 271–278. Search in Google Scholar

Wang B., Thompson K.D., Wangkahart E., Yamkasem J., Bondad-Reantaso M.G., Tattiyapong P., Jian J., Surachetpong W. (2023). Strategies to enhance tilapia immunity to improve their health in aquaculture. Rev. Aquac., 15: 41–56. Search in Google Scholar

Wang Y., Ni J., Nie Z., Gao J., Sun Y., Shao N., Li Q., Hu J., Xu P., Xu G. (2020). Effects of stocking density on growth, serum parameters, antioxidant status, liver and intestine histology and gene expression of largemouth bass (Micropterus salmoides) farmed in the in-pond raceway system. Aquac. Res., 51: 5228–5240. Search in Google Scholar

Winston G.W. (1991). Oxidants and antioxidants in aquatic animals. Comp. biochem. Physiol. C. Toxicol. Pharmacol., 100: 173–176. Search in Google Scholar

Wu F., Wen H., Tian J., Jiang M., Liu W., Yang C., Yu L., Lu X. (2018). Effect of stocking density on growth performance, serum biochemical parameters, and muscle texture properties of genetically improved farm tilapia, Oreochromis niloticus. Aquac. Int., 26: 1247–1259. Search in Google Scholar

Xiong W., Guo C., Gozlan R.E., Liu J. (2023). Tilapia introduction in China: Economic boom in aquaculture versus ecological threats to ecosystems. Rev. Aquac., 15: 179–197. Search in Google Scholar

Yan B., Wang Z.-H., Zhao J.-L. (2013). Mechanism of osmoregulatory adaptation in tilapia. Mol. Biol. Rep., 40: 925–931. Search in Google Scholar

Yousefi M., Hoseini S.M., Weber R.A., da Silva E., Rajabiesterabadi H., Arghideh M., Delavar F.H. (2022). Alleviation of transportation-induced stress in Nile tilapia, Oreochromis niloticus, using brackish water. Aquac. Rep., 27: 101378. Search in Google Scholar

Zafar A., Roni M.A., Rana M., Akter N. (2022). Growth, digestive enzyme activities, proximate composition and hemato-biochemcial responses of juvenile Nile tilapia (Oreochromis niloticus) reared at various stocking densities in a recirculatory aquaculture system. J. Appl. Aquac., 35: 1–23. Search in Google Scholar

eISSN:
2300-8733
Język:
Angielski
Częstotliwość wydawania:
4 razy w roku
Dziedziny czasopisma:
Life Sciences, Biotechnology, Zoology, Medicine, Veterinary Medicine