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치어기 넙치(Paralichthys olivaceus) 사료 내 돈모분(Pig Bristle Meal)의 어분대체 가능성 평가

Evaluation of a Hydrolyzed Pig Bristle Meal as a Partial Fish Meal Replacer in Diets for Juvenile Olive Flounder Paralichthys olivaceus

  • 김유정 (제주대학교 해양생명과학과) ;
  • 신재형 (제주대학교 해양생명과학과) ;
  • 권황원 (베스트롱생명과학(주)) ;
  • 이소연 (베스트롱생명과학(주)) ;
  • 김주민 (강원대학교 동물생명과학대학) ;
  • 김민기 (제주대학교 해양생명과학과) ;
  • 김정대 (강원대학교 동물생명과학대학) ;
  • 이경준 (제주대학교 해양생명과학과)
  • Kim, Youjeong (Department of Marine Life Sciences, Jeju National University) ;
  • Shin, Jaehyeong (Department of Marine Life Sciences, Jeju National University) ;
  • Kwon, Hwangwon (Bestron Life Science. Co. Ltd.) ;
  • Lee, Soyoon (Bestron Life Science. Co. Ltd.) ;
  • Kim, Joo-Min (College of Animal Life Science, Kangwon National University) ;
  • Kim, Min-Gi (Department of Marine Life Sciences, Jeju National University) ;
  • Kim, Jeong-Dae (College of Animal Life Science, Kangwon National University) ;
  • Lee, Kyeong-Jun (Department of Marine Life Sciences, Jeju National University)
  • 투고 : 2018.03.05
  • 심사 : 2018.04.04
  • 발행 : 2018.04.30

초록

This study was conducted to evaluate dietary hydrolyzed pig bristle meal (PBM) for juvenile olive flounder Paralichthys olivaceus. In Experiment 1 (EXP-1), six experimental diets were prepared to contain 0, 3, 6, 9, 12 and 15% PBM (designated Con, PBM3, PBM6, PBM9, PBM12 and PBM15, respectively). Triplicate groups of olive flounder (initial body weight, 8.69 g) were fed the diets to apparent satiation for 8 weeks during the optimal water temperature season ($20.5{\pm}2.12^{\circ}C$). All PBM supplemented groups except for PBM3 showed significantly lower growth performance and feed utilization compared to the control group. The protein digestibility of PBM3, PBM6, and PBM9 diets did not significantly differ from that of the control diet. In Experiment 2, 1% mono-calcium phosphate was added into the experimental diets used in Exp-1. Triplicate groups of olive flounder (10.6 g) were fed the diets to apparent satiation for 8 weeks during the low water temperature season ($12.5{\pm}1.12^{\circ}C$). The growth performances and feed utilization of fish fed all diets except for PBM15 diet did not significantly differ from those of the control diet. This study indicates that hydrolyzed PBM can replace fish meal by up to 12% with limiting amino acids and mono-calcium phosphate in diets for juvenile olive flounder.

키워드

참고문헌

  1. Anderson DP and Siwicki AK. 1995. Basic hematology and serology for fish health programs, In: Diseases in Asian Aquaculture II. Shariff M, Arthur JR and Subasinghe RP Eds. Fish Health Section, Asian Fisheries Society, Manila, Philippines, 185-202.
  2. AOAC (Association of Official Analytical Chemists). 2005. Official Methods of Analysis. 16thed. Association of Official Analytical Chemists, Arlington, Virginia, U.S.A.
  3. Bureau DP, Harris AM, Bevan DJ, Simmons LA, Azevedo PA and Cho CY. 2000. Feather meals and meat and bone meals from different origins as protein sources in rainbow trout (Oncorhynchus mykiss) diets. Aquaculture 181, 281-291. http://dx.doi.org/10.1016/S0044-8486(99)00232-X.
  4. Cerezuela R, Fumanal M, Tapia-Paniagua ST, Meseguer J, Morinigo MA and Esteban MA. 2013. Changes in intestinal morphology and microbiota caused by dietary administration of inulin and Bacillus subtilis in gilthead sea bream (Sparus aurata L.) specimens. Fish shellfish Immunol 1063-1070. https://doi.org/10.1016/j.fsi.2013.01.015.
  5. Divakaran S, Obaldo LG and Forster IP. 2002. Note on the methods for determination of chromic oxide in shrimp feeds. J Agric Food Chem 50, 464-467. https://dx.doi.org/10.1021/jf011112s.
  6. FAO (Food and Agriculture Organization of the United Nations). 2016. Fisheries and Aquaculture Software. FAO Fisheries Report, Retrieved from http://www.fao.org/fishery/statistics/software/fish-statj/en on 24 Mar, 2016.
  7. Folch J, Lee M and Sloane-Stanley GH. 1957. A simple method for the isolation and purification of total lipids form animal tissues. J Biol Chem 226, 497-509. http://dx.doi.org/10.1016/0079-6786(71)90021-5.
  8. Fowler LG. 1990. Feather meal as a dietary protein source during parr-smolt transformation in fall chinook salmon. Aquaculture 89, 301-314. https://doi.org/10.1016/0044-8486(90)90134-9.
  9. Gatlin DM, Barrows FT, Brown P, Dabrowski K, Gaylord TG, Hardy RW, Herman E, Hu G, Krogdahl A, Nelson R, Overturf K, Rust M, Sealey W, Skonberg D, Souza EJ, Stone D, Wilson R, and Wurtele E. 2007. Expanding the utilization of sustainable plant products in aquafeeds: a review. Aquac Res 38, 551-579. https://dx.doi.org/ 10.1111/j.1365-2109.2007.01704.x.
  10. Hardy RW. 2000. New developments in aquatic feed ingredients, and potential of enzyme supplements. Avances en Nutricion Acuicola V. Memorias del V Simposium Internacional de Nutricion Acuicola, 19-22.
  11. Hartviksen M, Bakke AM, Vecino JG, Ringo E and Krogdahl A. 2014. Evaluation of the effect of commercially available plant and animal protein sources in diets for Atlantic salmon (Salmo salar L.): digestive and metabolic investigations. Fish Physiol Biochem 40, 1621-1637. https://doi.org/10.1007/s10695-014-9953-4.
  12. Hasan MR, Haq MS, Das PM and Mowlah G. 1997. Evaluation of poultry-feather meal as a dietary protein source for Indian major carp, Labeo rohita fry. Aquaculture 151, 47-54. https://dx.doi.org/10.1016/s0044-8486(96)01498-6.
  13. Hultmark D, Steiner H, Rasmuson T and Boman HG. 1980. Insect immunity: purification and properties of three inducible bactericidal proteins from hemolymph of immunized pupae of Hyalophora cecropia. Eur J Biochem 106, 7-16. http:// dx.doi.org/10.1111/j.1432-1033.1980.tb05991.x.
  14. Karapanagiotidis IT. 2014. The re-authorization of non-ruminant processed animal proteins in European aqua feeds. Fish Aquac J 5, e111. http://dx.doi.org/10.4172/2150-3508.1000e111.
  15. Kikuchi K, Furuta T and Honda H. 1994. Utilization of Feather Meal as a Protein Source in the Diet of Juvenile Japanese Flounder. Fish Sci 60, 203-206. https://doi.org/10.2331/fishsci.60.203.
  16. Kikuchi K, Sato T, Furuta T, Sakaguchi I. and Deguchi Y. 1997. Use of meat and bone meal as a protein source in the diet of juvenile Japanese flounder. Fish Sci 63, 29-32. https://doi.org/10.2331/fishsci.63.29.
  17. KOSIS (Korean Statistical Information Service). 2016. Investigation of fisheries aquaculture production 2016. Retrieved from http://kosis.kr/ on 12 Mar, 2018.
  18. Kristoffersson R, Broberg S, Oikari A and Pekkarinen M. 1974. Effect of a sublethal concentration of phenol on some blood plasma enzyme activities in the pike (Esox lucius L.) in brackish water. Ann Zool Fennici 11, 220-223.
  19. Lee J, Choi IC, Kim KT, Cho SH and Yoo JY. 2012. Response of dietary substitution of fishmeal with various protein sources on growth, body composition and blood chemistry of olive flounder (Paralichthys olivaceus, Temminck and Schlegel, 1846). Fish Physi Biochem 38, 735-744. https://doi.org/10.1007/s10695-011-9555-3.
  20. Lee KJ, Powell MS, Barrows FT, Smiley S, Bechtel P and Hardy RW. 2010. Evaluation of supplemental fish bone meal made from Alaska seafood processing byproducts and dicalcium phosphate in plant protein based diets for rainbow trout (Oncorhynchus mykiss). Aquaculture 302, 248-255. https://doi.org/10.1016/j.aquaculture.2010.02.034.
  21. Lee SM, Jeon IG, Lee JY, Park SR, Kang YJ and Jeong KS. 1996. Substitution of plant and animal proteins for fish meal in the growing Korean rockfish (Sebastes schlegeli) feeds. Korean J Fish Aquat Sci 29, 651-662.
  22. Lim SJ and Lee KJ. 2008. Supplemental iron and phosphorus increase dietary inclusion of cottonseed and soybean meal in olive flounder (Paralichthys olivaceus). Aquac Nutri 14, 423-430. https://doi.org/10.1111/j.1365-2095.2007.00546.x.
  23. Lu F, Haga Y and Satoh S. 2015. Effects of replacing fish meal with rendered animal protein and plant protein sources on growth response, biological indices, and amino acid availability for rainbow trout Oncorhynchus mykiss. Fish Sci 81, 95-105. http://dx.doi.org/10.1007/s12562-014-0818-7.
  24. Marchetti L, Capacchietti M, Sabbieti MG, Accili D, Materazzi G and Menghi G. 2006. Histology and carbohydrate histochemistry of the alimentary canal in the rainbow trout Oncorhynchus mykiss. J Fish Biol 68, 1808-1821. https://doi.org/10.1111/j.0022-1112.2006.01063.x.
  25. Martinez-Llorens S, Baeza-Arino R, Nogales-Merida S, Jover- Cerda M and Tomas-Vidal A. 2012. Carob seed germ meal as a partial substitute in gilthead sea bream (Sparus aurata) diets: amino acid retention, digestibility, gut and liver histology. Aquaculture 338, 124-133. https://dx.doi.org/10.1016/j.aquaculture.2012.01.029.
  26. Moutinho S, Martinez-Llorens S, Tomas-Vidal A, Jover-Cerda M, Oliva-Teles A and Peres H. 2017a. Meat and bone meal as partial replacement for fish meal in diets for gilthead seabream (Sparus aurata) juveniles: Growth, feed efficiency, amino acid utilization, and economic efficiency. Aquaculture 468, 271-277. https://doi.org/10.1016/j.aquaculture.2016.10.024.
  27. Moutinho S, Peres H, Serra C, Martinez-Llorens S, Tomas- Vidal A, Jover-Cerda M and Oliva-Teles A. 2017b. Meat and bone meal as partial replacement of fishmeal in diets for gilthead sea bream (Sparus aurata) juveniles: Diets digestibility, digestive function, and microbiota modulation. Aquaculture 479, 721-731. https://doi.org/10.1016/j.aquaculture. 2017.07.021.
  28. Nengas I, Alexis MN and Davies SJ. 1999. High inclusion levels of poultry meals and related byproducts in diets for gilthead seabream Sparus aurata L. Aquaculture 179, 13-23. https://doi.org/10.1016/S0044-8486(99)00148-9.
  29. NIAS (National Institute of Animal Science). 2012. Report of current state of pig industry. Retrieved from http://www.nias.go.kr/front/search.do on 12 Mar, 2018.
  30. NRC (National Research Council). 2011. Minerals. In: Nutrient Requirements of Fish and Shrimp. National Academies Press, Washington D.C., U.S.A., 14-26.
  31. Przybyl A, Madziar M and Koligot A. 1999. Suitability of modified pig bristles for extruded feed mixtures for carp fry. Arch Pol Fish 7, 113-122.
  32. Robinson EH, Li MH and Manning BE. 2001. A practical guide to nutrition, feeds, and feeding of catfish (Vol. 1113). Mississippi Agricultural and Forestry Experiment Station, Mississippi State, Mississippi, U.S.A.
  33. Sato T, and Kikuchi K. 1997. Meat Meal as a Protein Source in the Diet of Juvenile Japanese Flounder. Fisheries science, 63, 877-880. https://doi.org/10.2331/fishsci.63.877.
  34. Sevgili H and Ertürk MM. 2004. Effects of Replacement of Fish Meal with Poultry by-Product Meal on Growth Performance in Practical Diets for Rainbow Trout, Onchorynchus mykiss. Mediterranean Agricultural Sci 17, 161-167.
  35. Siwicki AK and Anderson DP. 1993. Nonspecific defence mechanism assay in fish II; Potential killing activity of neutrophils and monocytes, lysozyme activity in serum and organs and total immunoglobulin (Ig) level in serum. In: Fish Disease Diagnosis and Prevention Methods. Siwicki AK, Anderson DP and Waluga J, eds. Wydawnictwo Instytutu Rybactwa Strodladowego, Olsztyn, Poland, 105-112.
  36. Sugiura, SH, Hardy RW and Roberts RJ. 2004. The pathology of phosphorus deficiency in fish-a review. J Fish Dis 27, 255-265. https://doi.org/10.1111/j.1365-2761.2004.00527.x.
  37. Tacon AGJ and Cowey CB. 1985. Protein and amino acid requirements. In Fish energetics, Croom-Helm, London, U.K., 155-183.
  38. Tacon AGJ, Hasan MR and Metian M. 2011. Demand and supply of feed ingredients for farmed fish and crustaceans. Trends and prospects. FAO fisheries technical paper 564, FAO, Rome, Italy.
  39. Turker A, Yigit M, Ergun S, Karaali B and Erteken A. 2005. Potential of poultry by-product meal as a substitute for fishmeal in diets for Black Sea turbot Scophthalmus maeoticus: Growth and nutrient utilization in winter. Israeli J Aquac Bamidgeh 57, 49-61.
  40. Yigit M, Erdem M, Koshio S, Ergun S, Turker A and Karaali B. 2006. Substituting fish meal with poultry by product meal in diets for black Sea turbot Psetta maeotica. Aquac Nutr 12, 340-347. http://dx.doi.org/ 10.1111/j.1365-2095.2006.00409.x.