Czech J. Anim. Sci., 2016, 61(2):67-74 | DOI: 10.17221/8729-CJAS

Phosphorus and nitrogen utilization efficiency in rainbow trout (Oncorhynchus mykiss) fed diets with lupin (Lupinus albus) or soybean (Glycine max) meals as partial replacements to fish mealOriginal Paper

A.J. Hernández, D. Roman
Alimentary Production Research Nucleus/School of Aquaculture, Faculty of Natural Resources, Temuco Catholic University, Temuco, Chile

The study was conducted to compare two plant ingredients as dietary protein sources for rainbow trout on the basis of feed acceptability, survival, growth, feed conversion, nitrogen and phosphorus utilization efficiency and loading. Two extruded diets were formulated with the inclusion of a soybean meal (DS) and a lupin meal (DL). The control diet was a fish meal (FM) based diet. All diets were isonitrogenous and isolipidic. Triplicate groups of 65 fish (5.10 ± 0.10 g) were assigned to each diet. At the end of the experiment (66 days), all groups of fish fed diets had a similar final growth and feed utilization efficiency (P > 0.05). Nitrogen retention rate was higher for the group fed the control diet and in consequence the calculated loading amount of this nutrient resulted lower when compared with the test diets. However, phosphorus retention was higher in the groups of fish fed the experimental diets (DL 26.58 ± 0.22 and DS 27.67 ± 3.05) when compared to the control diet (22.08 ± 1.12) (P < 0.05). This represents a phosphorus loading of 8.33 ± 0.23, 8.96 ± 1.02, and 11.55 ± 0.67 kg/t production for the diets DL, DS, and control, respectively. Therefore, the results indicate that lupin meal can be used as a possible plant protein source for the formulation of low-phosphorus loading diets for rainbow trout without affecting feed acceptability and growth performance. This legume represents a clear opportunity to supply the high demand for plant protein sources for aquaculture. Further studies are needed to evaluate and compare different lupin species and varieties.

Keywords: sustainable aquaculture; alternative ingredients; phosphorus loading; growth performance; phosphorus retention

Published: February 29, 2016  Show citation

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Hernández AJ, Roman D. Phosphorus and nitrogen utilization efficiency in rainbow trout (Oncorhynchus mykiss) fed diets with lupin (Lupinus albus) or soybean (Glycine max) meals as partial replacements to fish meal. Czech J. Anim. Sci. 2016;61(2):67-74. doi: 10.17221/8729-CJAS.
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References

  1. AOAC (1995): Official Methods of Analysis of AOAC International. 16 th Ed. Association of Official Analytical Chemists, Washington D.C., USA.
  2. Black K.D. (2001): Environmental Impacts of Aquaculture. CRC Press, Boca Raton, USA.
  3. Bordoni A., Laghi L., Babini E., Di Nunzio M., Picone G., Ciampa A., Valli V., Danesi F., Capozzi F. (2014): The foodomics approach for the evaluation of protein bioaccessibility in processed meat upon in vitro digestion. Electrophoresis, 35, 1607-1614. Go to original source... Go to PubMed...
  4. Borquez A.S., Hernandez A.J., Dantagnan P., Saez P., Serrano E. (2011a): Incorporation of whole lupin, Lupinus albus, seed meal in commercial extruded diets for rainbow trout: effect on growth performance, nutrient digestibility and muscle fatty acid composition. Journal of the World Aquaculture Society, 42, 209-221. Go to original source...
  5. Borquez A., Serrano E., Dantagnan P., Carrasco J., Hernandez A. (2011b): Feeding high inclusion of whole grain white lupin (Lupinus albus) to rainbow trout: effects on growth, nutrient digestibility, liver and intestine histology, and muscle fatty acid composition. Aquaculture Research, 42, 1067-1078. Go to original source...
  6. Czubinski J., Dwiecki K., Siger A., Neunert G., LampartSzczapa E. (2014): Characterisation of different digestion susceptibility of lupin seed globulins. Food Chemistry, 143, 418-426. Go to original source... Go to PubMed...
  7. FAO (2014): The State of World Fisheries and Aquaculture 2014. FAO, Rome, Italy.
  8. Geurden I., Borchert P., Balasubramanian M.N., Schrama J.W., Dupont-Nivet M., Quillet E., Kaushik S.J., Panserat S., Medale F. (2013): The positive impact of the earlyfeeding of a plant-based diet on its future acceptance and utilization in rainbow trout. PLoS ONE, 8, e83162. Go to original source... Go to PubMed...
  9. FAO/NACA (2012): Farming the Waters for People and Food. In: Subasinghe R.P., Arthur J.R., Bartley D.M., De Silva S.S., Halwart M., Hishamunda N., Mohan C.V., Sorgeloos P. (eds): Proceedings of the Global Conference on Aquaculture 2010. FAO, Rome, Italy/NACA, Bangkok, Thailand.
  10. Glencross B.D., Booth M., Allan G.L. (2007): A feed is only as good as its ingredients - a review of ingredient evaluation strategies for aquaculture feeds. Aquaculture Nutrition, 13, 17-34. Go to original source...
  11. Glencross B.D., Rutherford N.R., Hawkins W.E. (2011): A comparison of the growth performance of rainbow trout when fed soybean, narrow-leaf or yellow lupin kernel meals in extruded diets. Aquaculture Nutrition, 17, e317-e325. Go to original source...
  12. Glencross B., Bourne N., Hawkins W., Karopoulos M., Evans D., Rutherford N., McCafferty P., Dods K., Burridge P., Veitch C., Sipsas S., Buirchell B., Sweetingham M. (2014): Using Near Infrared Reflectance Spectroscopy (NIRS) to predict the protein and energy digestibility of lupin kernel meals when fed to rainbow trout, Oncorhynchus mykiss. Aquaculture Nutrition, 21, 54-62. Go to original source...
  13. Hasan M.R. (2001): Nutrition and feeding for sustainable aquaculture development in the third millennium. In: Subasinghe R.P., Bueno P., Phillips M.J., Hough C., McGladdery S.E., Arthur, J.E. (eds): Aquaculture in the Third Millennium. FAO, Rome, Italy, 193-219. Go to original source...
  14. Hernandez A., Satoh S., Kiron V., Watanabe T. (2004): Phosphorus retention efficiency in rainbow trout fed diets with low fish meal and alternative protein ingredients. Fisheries Science, 70, 580-586. Go to original source...
  15. Hernandez A., Satoh S., Kiron V. (2005): Effect of monocalcium phosphate supplementation in a low fish meal diet for rainbow trout based on growth, feed utilization and total phosphorus loading. Fisheries Science, 71, 817-822. Go to original source...
  16. Hernandez A.J., Satoh S., Kiron V. (2012): Supplementation of citric acid and amino acid chelated trace elements in low fish meal diet for rainbow trout affect growth and phosphorus utilization. Journal of the World Aquaculture Society, 43, 688-696. Go to original source...
  17. Hernandez A.J., Roman D., Hooft J., Cofre C., Cepeda V., Vidal R. (2013a): Growth performance and expression of immune-regulatory genes in rainbow trout (Oncorhynchus mykiss) juveniles fed extruded diets with varying levels of lupin (Lupinus albus), peas (Pisum sativum) and rapeseed (Brassica napus). Aquaculture Nutrition, 19, 321-332. Go to original source...
  18. Hernandez A.J., Satoh S., Kiron V. (2013b): Effect of citric acid supplementation on growth performance, phosphorus absorption and retention in rainbow trout (Oncorhynchus mykiss) fed a low fishmeal diet. Ciencia e Investigación Agraria, 40, 397-406. Go to original source...
  19. Jahan P., Watanabe T., Satoh S., Kiron V. (2003): Reduction in elemental waste loading from commercial carp feeds by manipulating the dietary phosphorus levels. Fisheries Science, 69, 58-65. Go to original source...
  20. Khajepour F., Hosseini S.A. (2012): Calcium and phosphorus status in juvenile Beluga (Huso huso) fed citric acidsupplemented diets. Aquaculture Research, 43, 407-411. Go to original source...
  21. Kumar V., Sinha A.K., Makkar H.P.S., De Boeck G., Becker K. (2012): Phytate and phytase in fish nutrition. Journal of Animal Physiology and Animal Nutrition, 96, 335-364. Go to original source... Go to PubMed...
  22. Lall S.P. (1991): Digestibility, metabolism and excretion of dietary phosphorus in fish. In: Cowey C.B., Cho C.Y. (eds): Nutritional Strategies and Aquaculture Waste. Proc. 1st Internat. Symposium on Nutritional Strategies in Management of Aquaculture Waste. Guelph, Canada, 21-35.
  23. Lampart-Szczapa E., Korczak J., Nogala-Kalucka M., Zawirska-Wojtasiak R. (2003): Antioxidant properties of lupin seed products. Food Chemistry, 83, 279-285. Go to original source...
  24. Lynch P.B., Caffrey P.J. (1997): Phosphorus requirements for animal production. In: Tunney H., Carton O.T., Brookes P.C., Johnston A.E. (eds): Phosphorus Loss from Soil to Water. CAB International, New York, USA, 283-296.
  25. NRC (2011): Nutrient Requirements of Fish and Shrimp. The National Academies Press, Washington D.C., USA.
  26. Omnes M.H., Silva F.C.P., Moriceau J., Aguirre P., Kaushik S., Gatesoupe F.J. (2015): Influence of lupin and rapeseed meals on the integrity of digestive tract and organs in gilthead seabream (Sparus aurata L.) and goldfish (Carassius auratus L.) juveniles. Aquaculture Nutrition, 21, 223-233. Go to original source...
  27. Refstie S., Korsoen O.J., Storebakken T., Baeverfjord G., Lein I., Roem A.J. (2000): Differing nutritional responses to dietary soybean meal in rainbow trout and Atlantic salmon. Aquaculture, 190, 49-63. Go to original source...
  28. Refstie S., Glencross B., Landsverk T., Sorensen M., Lilleeng E., Hawkins W., Krogdahl A. (2006): Digestive function and intestinal integrity in Atlantic salmon (Salmo salar) fed kernel meals and protein concentrates made from yellow or narrow-leafed lupins. Aquaculture, 261, 1382-1395. Go to original source...
  29. Refstie S., Baeverfjord G., Seim R., Elvebo O. (2010): Effects of dietary yeast cell wall β-glucans and MOS on performance, gut health, and salmon lice resistance in Atlantic salmon (Salmo salar) fed sunflower and soybean meal. Aquaculture, 305, 109-116. Go to original source...
  30. Salini M.J., Adams L.R. (2014): Growth performance, nutrient utilization and digestibility by Atlantic salmon fed Tasmanian grown white (Lupinus albus) and narrowleafed (L. angustifolius) lupins. Aquaculture, 426-427, 296-303. Go to original source...
  31. Sarker M.S.A., Satoh S., Kamata K., Haga Y., Yamamoto Y. (2012): Supplementation effects of organic acids and/ or lipid to plant protein-based diets on juvenile yellowtail, Seriola quinqueradiata Temminck et Schlegel 1845, growth and, nitrogen and phosphorus excretion. Aquaculture Research, 43, 538-545. Go to original source...
  32. Satoh S., Takenazawa M., Akimoto A., Kiron V., Watanabe T. (2002): Changes of phosphorus absorption from several feed ingredients in rainbow trout during growing stages and effect of extrusion of soybean. Fisheries Science, 68, 325-331. Go to original source...
  33. Satoh S., Hernandez A., Tokoro T., Morishita Y., Kiron V., Watanabe T. (2003): Comparison of phosphorus retention efficiency between rainbow trout (Oncorhynchus mykiss) fed a commercial diet and a low fish meal based diet. Aquaculture, 224, 271-282. Go to original source...
  34. Sbihi H.M., Nehdi I.A., Tan C.P., Al-Resayes S.I. (2013): Bitter and sweet lupin (Lupinus albus L.) seeds and seed oils: a comparison study of their compositions and physicochemical properties. Industrial Crop and Products, 49, 573-579. Go to original source...
  35. Sugiura S.H., Babbitt J.K., Dong F.M., Hardy R.W. (2000): Utilization of fish and animal by-product meals in lowpollution feeds for rainbow trout Oncorhynchus mykiss (Walbaum). Aquaculture Research, 31, 585-593. Go to original source...
  36. Tabrett S., Blyth D., Bourne N., Glencross B. (2012): Digestibility of Lupinus albus lupin meals in barramundi (Lates calcarifer). Aquaculture, 364-365, 1-5. Go to original source...
  37. Tacon A.G.J., Metian M. (2008): Global overview on the use of fish meal and fish oil in industrially compounded aquafeeds: trends and future prospects. Aquaculture, 285, 146-158. Go to original source...
  38. Watanabe T., Takeuchi T., Satoh S. (1987): Development of practical carp diets for reduction of total nitrogen loading on water environment. Nippon Suisan Gakkaishi, 53, 2217-2225. Go to original source...

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