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Optimal Incorporation Level of Dietary Alternative Phosphate (MgHPO4) and Requirement for Phosphorus in Juvenile Far Eastern Catfish (Silurus asotus)

  • Yoon, Tae-Hyun (College of Animal Life Sciences, Kangwon National University) ;
  • Lee, Dong-Hoon (Gyeonggi Province Maritime and Fisheries Research Institute) ;
  • Won, Seung-Gun (College of Animal Life Sciences, Kangwon National University) ;
  • Ra, Chang-Six (College of Animal Life Sciences, Kangwon National University) ;
  • Kim, Jeong-Dae (College of Animal Life Sciences, Kangwon National University)
  • Received : 2014.05.20
  • Accepted : 2014.08.14
  • Published : 2015.01.01

Abstract

A growth trial was conducted to determine the optimal incorporation level of dietary magnesium hydrogen phosphate (MHP, $MgHPO_4$), which was manufactured from swine manure and phosphorus (P), required by juvenile far eastern catfish (Silurus asotus). Graded MHP of 0.5%, 1.0%, 1.5%, and 2.0%, and 2.0% monocalcium phosphate (MCP) each was added to the basal diet (control) in lieu of cellulose to become the range of available P (AP) from 0.4% to 0.8% of which diets were designated as control, MHP0.5, MHP1.0, MHP1.5, MHP2.0, and MCP, respectively. Control diet contained fish meal (20%), soybean meal (40%), wheat flour (27%), corn gluten meal (5%), fish oil (2%) and soy oil (2%) as main ingredients. Following a 24 h fasting, 540 fish with a mean body weight of 11.8 g were randomly allotted to 6 groups in triplicate, whereby 18 tanks ($0.4{\times}0.6{\times}0.36cm$, water volume of 66 L) were prepared. The feeding experiment lasted for 8 weeks. Fish group fed the control diet showed the lowest weight gain (WG) and feed efficiency (FE) among treatments. The WG was, however, not significantly different (p>0.05) from that of fish group fed MHP0.5. Fish group fed MHP2.0 showed the highest WG and FE of which values were not significantly different from those of fish groups fed diets MHP1.0 and MHP1.5 as well as MCP (p>0.05) except fish groups fed control and MHP0.5. Aspartate aminotransferase was significantly decreased with an increase in available P, while alanine aminotransferase did not show a significant difference among treatment. The highest inorganic P in plasma was observed in fish fed MHP2.0. From the present results, a second-order regression analysis revealed that the optimal dietary MHP level and the AP requirement were found to be 1.62% and 0.7%, respectively.

Keywords

References

  1. Antony Jesu Prabhu, P., J. W. Schrama, and S. J. Kaushik. 2013. Quantifying dietary phosphorus requirement of fish- A metaanalytic approach. Aquac. Nutr. 19:233-249. https://doi.org/10.1111/anu.12042
  2. AOAC (Association of Official Analytical Chemists). 1990. Official Methods of Analysis. Arlington, VA, USA. 1298 p.
  3. Asgard, T. and K. D. Shearer. 1997. Dietary phosphorus requirement of juvenile Atlantic salmon, Salmo sala L. Aquac. Nutr. 3:17-23. https://doi.org/10.1046/j.1365-2095.1997.00069.x
  4. Auer, M. T., M. S. Kiesser, and R. P. Canale. 1986. Identification of critical nutrient levels through field verification of models for phosphorus and phytoplankton growth. Can. J. Fish. Aquat. Sci. 43:379-388. https://doi.org/10.1139/f86-048
  5. Bolin, D. W., R. P. King, and E. W. Klosrerman. 1952. A simplified method for the determination of chromic oxide ($Cr_2O_3$) when used as an inert substance. Science 116:634-635. https://doi.org/10.1126/science.116.3023.634
  6. Boyd, C. F. 1971. Phosphorus dynamic in ponds. Proceedings of 25th Annual Conference of the Southeastern Association of Game and Fish Commissioners. 25:418-426.
  7. Brown, B. A. 1980. Routine hematology procedures. In: Hematology: Principles and Procedures. Lea and Febiger. Philadelphia PA, USA. pp. 71-112.
  8. Duncan, D. B. 1955. Multiple range and multiple 'F' tests. Biometrics 11:1-42. https://doi.org/10.2307/3001478
  9. Gatlin, D. M. III, F. T. Barrows, P. Brown, K. Dabrowski, T. Gibson, R. W. Hardy, E. Herman, G. Hu, A. Krogdahl, R. Nelson, K. Overturf, M. Rust, W. Sealey, D. Skonberg, E. J. Souza, D. Stone, R. Wilson, and E. Wurtele. 2007. Expanding the utilization of sustainable plant protein products in aquafeeds: A review. Aquac. Res. 38:551-579. https://doi.org/10.1111/j.1365-2109.2007.01704.x
  10. Hardy, R. W. and F. T. Barrows. 2002. Diet formulation and manufacture. In: Fish Nutrition (Eds. J. E. Halver and R. W. Hardy), 3rd ed. Academic Press, London, UK. pp. 505-600.
  11. Hernandez, A., S. Satoh, and V. Kiron. 2005. Effect of monocalcium phosphate supplementation in a low fish meal diet for rainbow trout based on growth, feed utilization, and total phosphorus loading. Fish. Sci. 71:817-822. https://doi.org/10.1111/j.1444-2906.2005.01032.x
  12. Ketola, H. 1975. Requirement of Atlantic salmon for dietary phosphorus. Trans. Am. Fish. Soc. 104:548-551. https://doi.org/10.1577/1548-8659(1975)104<548:ROASFD>2.0.CO;2
  13. Ketola, H. G. and M. E. Richmond. 1994. Requirement of rainbow trout for dietary phosphorus and its relationship to the amount discharged in hatchery effluents. Trans. Am. Fish. Soc. 123:587-594. https://doi.org/10.1577/1548-8659(1994)123<0587:RORTFD>2.3.CO;2
  14. Kim, J. D., K. S. Kim, J. S. Song, J. Y. Lee, and K. S. Jeong. 1998. Optimum level of dietary monocalcium phosphate based on growth and phosphorus excretion of mirror carp, Cyprinus carpio. Aquaculture 161:337-344. https://doi.org/10.1016/S0044-8486(97)00281-0
  15. Lall, S. P. 1991. Digestibility, metabolism and excretion of dietary phosphorus in fish. In: Nutritional Strategies and Aquaculture Wastes (Eds. C. B. Cowey and C.Y. Cho). University of Guelph. Ontario, Canada. pp. 21-36.
  16. Liu, L. W., J. Su, and Y. Luo. 2012. Effect of partial replacement of dietary monocalcium phosphate with neutral phytase on growth performance and phosphorus digestibility in gibel carp, Carassius auratus gibelio (Bloch). Aquac. Res. 43:1404-1413. https://doi.org/10.1111/j.1365-2109.2011.02944.x
  17. Liu, Y. H., S. Kumar, J. H. Kwag, J. H. Kim, J. D. Kim, and C. S. Ra. 2011. Recycle of electrolytically dissolved struvite as an alternative to enhance phosphate and nitrogen recovery from swine wastewater. J. Hazard. Mater. 195:175-181. https://doi.org/10.1016/j.jhazmat.2011.08.022
  18. NRC. 2011. Nutrient Requirements of Fish. National Academy Press, Washington, DC, USA. 376 p.
  19. Nwanna, L. C., H. Kuehlwein, and F. J. Schwarz. 2010. Phosphorus requirement of common carp (Cyprinus carpio L) based on growth and mineralization. Aquac. Res. 41:401-410. https://doi.org/10.1111/j.1365-2109.2009.02221.x
  20. Nwanna, L. C., I. A. Adebayo, and B. O. Omitoyin. 2009. Phosphorus requirements of African catfish, Clarias gariepinus, based on broken-line regression analysis methods. ScienceAsia 35:227-233. https://doi.org/10.2306/scienceasia1513-1874.2009.35.227
  21. Rodehutscord, M. 1996. Response of rainbow trout (Oncorhynchus mykiss) growing from 50 to 200 g to supplements of dibasic sodium phosphate in a semipurified diet. J. Nutr. 126:324-331.
  22. Roy, P. K. and S. P. Lall. 2003. Dietary phosphorus requirement of juvenile haddock (Melanogrammus aeglefinus L.). Aquaculture 221:451-468. https://doi.org/10.1016/S0044-8486(03)00065-6
  23. Schaefer, A., W. M. Koppe, K. H. Meyer-Burgdorff, and K. D. Guenther. 1995. Effect of P-supply on growth and mineralization in mirror carp (Cyprinus carpio L.). J. Appl. Ichthyol. 11:397-400. https://doi.org/10.1111/j.1439-0426.1995.tb00050.x
  24. Shu, L., P. Schneider, V. Jegatheesan, and J. Johson. 2006. An economical evaluation of phosphorus as struvite from digester supernatant. Bioresour. Technol. 97:2211-2216. https://doi.org/10.1016/j.biortech.2005.11.005
  25. Sugiura, S. H., F. M. Dong, and R. W. Hardy. 2000. A new approach to estimating the minimum dietary requirement of phosphorus for large rainbow trout based on nonfecal excretions of phosphorus and nitrogen. J. Nutr. 130:865-872.
  26. Sugiura, S. H., K. Kelsey, and R. P. Ferraris. 2007. Molecular and conventional responses of large rainbow trout to dietary phosphorus restriction. J. Comp. Physiol. B. 177:461-472. https://doi.org/10.1007/s00360-007-0144-9
  27. USEPA (US Environmental protection agency). 1996. Acid digestion of sediments, sludge, and solids, Method 3050B, Revision 2. http://www.epa.gov/epaoswer/hazwaste/test/3050b.pdf Accessed December, 1996.
  28. Xie, N. B., L. Feng, Y. Liu, J. Jiang, W. D. Jiang, K. Hu, S. H. Li, and X. Q. Zhou. 2011. Growth, body composition, intestinal enzyme activities and microflora of juvenile Jian carp (Cyprinus carpio var. Jian) fed graded levels of dietary phosphorus. Aquac. Nutr. 17:645-656. https://doi.org/10.1111/j.1365-2095.2011.00867.x
  29. Yoon, T. H., D. H. Lee, S. G. Won, C. S. Ra, and J. D. Kim. 2014. Effects of dietary supplementation of magnesium hydrogen phosphate ($MgHPO_4$) as an alternative phosphorus source on growth and feed utilization of juvenile far eastern catfish (Silurus asotus). Asian Australas. J. Anim. Sci. 27:1141-1149. https://doi.org/10.5713/ajas.2014.14079
  30. Zeitoun, I. H., D. E. Ullrey, W. T. Magae, J. L. Gill, and W. G. Bergen. 1976. Quantifying nutrient requirements of fish. J. Fish. Res. Board Can. 33:167-172. https://doi.org/10.1139/f76-019

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