선발 육종된 넙치, Paralichthys olivaceus의 부화율 및 자치어 성장

Hatching Rate of Eggs, and Growth of Larvae and Juveniles from Selected Olive Flounder, Paralichthys olivaceus

  • 민병화 (국립수산과학원 육종연구센터) ;
  • 이정호 (국립수산과학원 육종연구센터) ;
  • 노재구 (국립수산과학원 육종연구센터) ;
  • 김현철 (국립수산과학원 육종연구센터) ;
  • 박철지 (국립수산과학원 육종연구센터) ;
  • 최상준 (국립수산과학원 육종연구센터) ;
  • 명정인 (국립수산과학원 육종연구센터)
  • Min, Byung-Hwa (Genetics and Breeding Research Center, National Fisheries Research and Development Institute) ;
  • Lee, Jeong-Ho (Genetics and Breeding Research Center, National Fisheries Research and Development Institute) ;
  • Noh, Jae-Koo (Genetics and Breeding Research Center, National Fisheries Research and Development Institute) ;
  • Kim, Hyun-Chul (Genetics and Breeding Research Center, National Fisheries Research and Development Institute) ;
  • Park, Choul-Ji (Genetics and Breeding Research Center, National Fisheries Research and Development Institute) ;
  • Choi, Sang-Jun (Genetics and Breeding Research Center, National Fisheries Research and Development Institute) ;
  • Myeong, Jeong-In (Genetics and Breeding Research Center, National Fisheries Research and Development Institute)
  • 발행 : 2009.12.31

초록

속성장 육종 넙치(selected line of olive flounder cultured, SF)의 수정란의 부화율 및 기형률, 자치어의 성장을 일반 넙치(unselected line of olive flounder cultured, UF)와 비교하였다. 동일한 날에 획득한 SF구 및 UF구 수정란의 부화율은 SF구가 96.2${\pm}$1.7%, UF구는 90.4${\pm}$2.1%로 SF구가 높았으며, 기형률은 UF가 유의하게 높았다. 이들 수정란으로부터 부화한 자어를 8주 동안 사육한 결과, 부화후 1주째에 SF 및 UF구의 전장은 각각 4.36${\pm}$0.24, 4.25${\pm}$0.20 mm였던 것이 실험 종료시에 각각 50.49${\pm}$2.67, 40.55${\pm}$3.13 mm로 SF구가 UF구에 비해 24.5% 빨랐다. 체고는 부화후 1주째에 각각 1.13${\pm}$0.08, 1.18${\pm}$0.07 mm였으며, 종료시에 각각 16.30${\pm}$0.085, 13.50${\pm}$0.96 mm로 SF가 UF구에 비해 20.7% 크게 나타났다. 실험 종료시에 체중은 각각 1.036${\pm}$0.118, 0.557${\pm}$0.073 g으로 SF구가 UF에 비해 43.0% 빨랐다. 또한 실험 종료시에 SF구와 UF구의 체형지수는 각각 0.85${\pm}$0.02, 0.82${\pm}$0.03으로 SF구가 유의하게 높았으며, 비만도는 각각 7.99${\pm}$0.33, 8.22${\pm}$0.52로 SF구가 UF구에 비해 낮았다. 이상의 결과는 속성장을 위해 선발 육종된 넙치가 일반 넙치에 비해 성장이 월등이 우수하며, 체형이 자연산 넙치에 가깝게 개선되었음을 나타내었다.

Hatching rate, larval deformation and growth rate of selected olive flounder (Paralichthys olivaceus) for rapid growth were compared to those of the unselected fish. Fish were spawned on the same day and cultured under the similar conditions. The selected fish had a significantly higher eggs hatching rate, and lower larval deformation. The selected fish grew significantly faster, and at the end of the experiment (8 weeks after hatching) averaged 50.49${\pm}$2.67 mm in total length, 16.30${\pm}$0.08 mm in body height, and 1.036${\pm}$0.118 g in weight, compared to 40.55${\pm}$3.13 mm, 13.50${\pm}$0.96 mm, and 0.557${\pm}$0.073 g for unselected fish, respectively. The selected fish had a significantly higher body shape index, however lower condition factor than the unselected fish. The results of the present study demonstrate that the selected fish of the olive flounder for rapid growth had superior growth and improved body shape.

키워드

참고문헌

  1. Bendiksen EA, Berg OK, Jobling M, Arnesen AM, Masoval K (2003) Digestibility, growth and nutrient utilization of Atlantic salmon parr (Salmo salar L.) in relation to temperature, feed fat content and oil source. Aquaculture 224:283-299. https://doi.org/10.1016/S0044-8486(03)00218-7
  2. Boily P, Magnan P (2002) Relationship between individual variation in morphological characters and swimming costs in brook charr (Salvelinus fontinalis) and yellow perch (Perca flavenscens). J Exp Biol 205:1031-1036.
  3. Bromage N, Bruce M, Basavaraja M, Rana K, Shields R, Young C, Dye J, Smith P, Gillespie M, Gamble J (1994) Egg quality determinants in finfish: the role of overripening with special reference to the timing of stripping in the Atlantic halibut Hippoglossus hippoglossus. J World Aquacult Soc 25:13-21. https://doi.org/10.1111/j.1749-7345.1994.tb00799.x
  4. Brooks S, Tyler CR, Sumpter JP (1997) Egg quality in fish: what makes a good egg- Rev Fish Biol Fish 7: 387-416.
  5. Cameron P, Berg J, Westernhagen HV (1996) Biological effects monitoring of the North Sea employing fish embryological data. Environ Monit Assess 40:107-124. https://doi.org/10.1007/BF00414385
  6. Brown CL, Bern HA (1989) Hormones in early development with special reference to teleost fishes. In: Scanes CG, Scheibman MP (eds.) Hormones in Development, Maturation and Senescence of Neuroendocrine Systems. Academic Press, New York, pp 289-306.
  7. Cammack KM, Leymaster KA, Jenkins TG, Nielsen MK (2005). Estimates of genetic parameters for feed intake, feeding behavior, and daily gain in composite ram lambs. J Anim Sci 83:777-785.
  8. Fjalestad KT, Moen T, Gomez-Raya L (2003). Prospects for genetic technology in salmon breeding programmes. Aquac Res 34:397-406. https://doi.org/10.1046/j.1365-2109.2003.00823.x
  9. Gjedrem T (1983) Genetic variation in quantitative traits and selective breeding in fish and shellfish. Aquaculture 33: 51-72. https://doi.org/10.1016/0044-8486(83)90386-1
  10. Gjedrem T (1997) Selective breeding to improve aquaculture production. World Aquacult 28:33-45.
  11. Gjedrem T (2000) Genetic improvement of cold-water species. Aquac Res 31:25-33. https://doi.org/10.1046/j.1365-2109.2000.00389.x
  12. Grove DJ, Loizides LG, Nott J (1978). Satiation amount, frequency of feeding and gastric emptying rate in Salmo gairdneri. J Fish Biol 12:507-516. https://doi.org/10.1111/j.1095-8649.1978.tb04195.x
  13. Heath DD, Fox CW, Heath JW (1999). Maternal effects on offspring size: variation through early development of chinook salmon. Evolution 53:1605-1611. https://doi.org/10.2307/2640906
  14. Kim HC, Noh JK, Lee JH, Kim JH, Park CJ, Kang JH, Kim KK, Lee JG, Myeong JI (2008) Estimation of genetic parameters and reproductivity test of genetic evaluation for growth-related traits of olive flounder Paralichthys olivaceus at 180 days of age. J Aquaculture 21:317-324 (in Korean).
  15. Kincaid HL (1976) Effect of inbreeding on rainbow trout population. Trans Am Fish Soc 105:273-280. https://doi.org/10.1577/1548-8659(1976)105<273:EOIORT>2.0.CO;2
  16. Kjorsvik E, Mangor-Jensen A, Holmefjord I (1990) Egg quality in fishes. Adv Mar Biol 26:71-113. https://doi.org/10.1016/S0065-2881(08)60199-6
  17. Li MH, Robinson EH, Wolters WR (1998) Evaluation of three strains of channel catfish Ictalurus punctatus fed diets containing three concentrations of protein and digestible energy. J World Aquac Soc 29:155-160. https://doi.org/10.1111/j.1749-7345.1998.tb00974.x
  18. Lin PY, Romsos DR, Vander Tuig JG, Leveille GA (1979) Maintenance energy requirements, energy retention and heat production of young obese (ob/ob) and lean mice fed a high-fat or a high-carbohydrate diet 1. J Nutr 109: 1143-1153.
  19. Makhotin V, Solemdal P, Korsbrekke K, Salthaug A (2001) Types and Frequency of Malformations and Mortality in Eggs of Arcto-Norwegian Cod: A Field Study. pp 1-17.
  20. Mambrini M, Labbe L, Randriamanantsoa F, Boujard T (2006) Response of growth selected brown trout (Salmo trutta) to challenging feeding conditions. Aquaculture 252:429-440. https://doi.org/10.1016/j.aquaculture.2005.07.001
  21. Menoyo D, Lopez-Bote CJ, Bautista JM, Obach A (2003) Growth, digestibility and fatty acid utilization in large Atlantic salmon (Salmo salar) fed varying levels of n-3 and saturated fatty acids. Aquaculture 225:295-307. https://doi.org/10.1016/S0044-8486(03)00297-7
  22. Neely KJ, Myers JM, Hard JJ, Shearer KD (2008) Comparison of growth, feed intake, and nutrient efficiency in a selected strain of coho salmon (Oncorhynchus kisutch) and its source stock. Aquaculture 283:134-140. https://doi.org/10.1016/j.aquaculture.2008.06.038
  23. Ogata HY, Oku H, Murai T (2002) Growth, feed efficiency and feed intake of offspring from selected and wild Japanese flounder (Paralichthys olivaceus). Aquaculture 211:183-193. https://doi.org/10.1016/S0044-8486(01)00798-0
  24. Ozimba CE, Lukefahr SD (1991) Evaluation of purebred and crossbred rabbits for carcass merit. J Anim Sci 69: 2371-2378.
  25. Rindorf A (2002) The effect of stomach fullness on food intake of whiting in the North Sea. J Fish Biol 61: 579-593. https://doi.org/10.1111/j.1095-8649.2002.tb00897.x
  26. Robinson BW, Doyle RW (1990) Phenotypic correlations among behavior and growth variables in tilapia: implications for domestication selection. Aquaculture 85:177-186. https://doi.org/10.1016/0044-8486(90)90017-H
  27. Robison BD, Wheeler PA, Sundin K, Sikka P, Thorgaard GH (2001) Composite interval mapping reveals a major locus influencing embryonic development rate in rainbow trout (Oncorhynchus mykiss). J Heredity 92:16-22. https://doi.org/10.1093/jhered/92.1.16
  28. Ruzzante DE (1994) Domestication effects on aggressive and schooling behavior in fish. Aquaculture 120:1-24. https://doi.org/10.1016/0044-8486(94)90217-8
  29. Sizemore FG, Siegel HS (1993) Growth, feed conversion, and carcass composition in females of four broiler crosses fed starter diets with different energy levels and energy to protein ratios. Poult Sci 72:2216-2228. https://doi.org/10.3382/ps.0722216
  30. Smith RS, Kincaid HL, Regenstein JM, Rumsey GL (1988) Growth, carcass composition, and taste of rainbow trout of different strains fed diets containing primarily plant or animal protein. Aquaculture 70:309-321. https://doi.org/10.1016/0044-8486(88)90115-9
  31. Su GS, Liljedahl LE, Gall GAE (1996) Genetic and environmental variation of body weight in rainbow trout (Oncorhynchus mykiss). Aquaculture 144:71-80. https://doi.org/10.1016/S0044-8486(96)01306-3
  32. Tanaka M, Tanangonan JB, Tagawa M, de Jesus EG, Nishida H, Isaka M, Kimura R, Hirano T (1995) Development of the pituitary, thyroid and interrenal glands and applications of endocrinology to the improved rearing of marine fish larvae. Aquaculture 135:111-126. https://doi.org/10.1016/0044-8486(95)01019-X
  33. Thodesen J, Grisdale-Hellend B, Helland SJ, Gjerde B (1999) Feed intake, growth and feed utilization of offspring from wild and selected Atlantic salmon (Salmo salar). Aquaculture 180:237-246. https://doi.org/10.1016/S0044-8486(99)00204-5
  34. Wangila BCC, Dick TA (1988) Influence of genotype and temperature on the relationship between specific growth rate and size of rainbow trout. Trans Am Fish Soc 117: 560-564. https://doi.org/10.1577/1548-8659(1988)117<0560:IOGATO>2.3.CO;2
  35. Westernhagen H, Dethlefsen V, Cameron P, Berg J, Furstenberg G (1988) Developmental defects in pelagic fish embryos from the western Baltic. Helgol Wiss Meeresunters 42: 13-36. https://doi.org/10.1007/BF02364202
  36. White JR (1985) Determination of the energetic cost of swimming from the analysis of growth rate and body composition in juvenile chinook salmon, Oncorhynchus tshawytscha. Comp Biochem Physiol A 81:25-33. https://doi.org/10.1016/0300-9629(85)90262-2
  37. Woltmann MD, Clutter AC, Buchanan DS, Dolezal HG (1992) Growth and carcass characteristics of pigs selected for fast of slow gain in relation to feed intake and efficiency. J Anim Sci 70:1049-1059.
  38. 농림수산식품부, 2008. 2007어업생산통계연보.