DOI QR코드

DOI QR Code

Growth and Environmental Tolerances (Water Temperature and Low Salinity) of Hybrid Female Red Sea Bream Pagrus major × Male Black Sea Bream Acanthopagrus schregeli

교잡어, 참돔 (Pagrus major, ♀) × 감성동 (Acanthopagrus schregeli, ♂)의 성장 및 수온변화와 저염분 환경에서의 내성

  • 김양수 (긴끼대학교 수산연구소) ;
  • 지승철 (국립수산과학원 제주수산연구소) ;
  • ;
  • ;
  • 정관식 (전남대학교 수산해양대학) ;
  • ;
  • Received : 2011.03.04
  • Accepted : 2011.05.12
  • Published : 2011.06.30

Abstract

The growth and tolerance for water temperature and salinity were compared among red sea bream Pagrus major (RSB) black sea bream Acanthopagrus schregeli (BSB) and their hybrid ($F_1$), female RSB ${\times}$ male BSB. The growth of the $F_1$ fish did not differ until 27 days after hatching (dAH), after which the most rapid growth was observed until approximately 300 dAH, followed by RSB and BSB. However, the RSB had out grown the $F_1$ fish by approximately 303 dAH. By 480 dAH, the RSB were largest, followed by the $F_1$ and BSB groups. The tolerances for high and low water temperature were significantly different for each species and growth stage. The largest tolerance spectrum was observed in the BSB group, and the tolerance spectrums gradually decreased with increasing final body weight. During the salinity tolerance trials, all of the species started to die following transfer into freshwater (0 psu). BSB showed the highest survival rate when kept in fresh water for an average of 29.9 hours, while the $F_1$ fish were more tolerant than the RSB fish. The fish were increasingly tolerant to fresh water and changes in water temperature as they grew, while the size of the temperature spectrum remained unchanged but shifted to a lower temperature range with growth. Our results demonstrate that $F_1$ performed well in terms of growth compared to parental fish, with higher temperature and salinity tolerances than RSB, and is thus suggested to be a suitable aquaculture species for Korea and northeast China.

Keywords

References

  1. Arakawa T and Yoshida N. 1986. Growth, survival and morphologic comparison between fry crossbred, Pagrus major with Evynnis japonica, and hatchery-reared Pagrus major. Bull Nagasaki Pref Ins Fish 12, 27-35.
  2. Bakos J, Krasznai Z and Marian T. 1978. Cross-breeding experiments with carp, tench and Asian phytophagous cyprinids. Aquacult Hung 1, 51-57.
  3. Birchard GF and Tenney SM. 1991. Relationship between blood oxygen affinity and blood volume. Respir Physiol 83, 365-373. https://doi.org/10.1016/0034-5687(91)90055-N
  4. Boeuf G and Harache Y. 1984. Osmotic adaptation of the salmonid species Salmo trutta, Salmo gairdneri and Salvelinus fontinalis and the hybrid Salmo trutta Salvelinus fontinalis to seawater. Aquaculture 4, 343-358
  5. Brecka BJ. Kohler CC and Wahl DH. 1995. Effect of dietary protein concentration on growth, survival and body composition of muskellunge Esox masquinongy and tiger muskellunge Esox masquinongy ${\times}$ E. luscious fingerlings. J World Aquacult Soc 4, 416-425.
  6. Choi Y, Kim JH and Park JY. 2002 Marine fishes of Korea. Kyohak Publishing, Seoul, Korea, 645.
  7. Cuenco ML, Stickney RR and Grant WE. 1985. Fish bioenergetics and growth in aquaculture ponds: II. Effects of interactions among size, temperature, dissolved oxygen, unionzed ammonia and food on growh of individual fish. Ecol Mod 27, 191-206. https://doi.org/10.1016/0304-3800(85)90002-X
  8. Fujita S. 1966. Abstract, Ann Meet. Jap Soc Fish Sci 20.
  9. Fukuhara O. 1987. Larval development and behavior in early life stage of black sea bream reared in the laboratory. Nippon Suisan Gakkaishi 53, 371-379. https://doi.org/10.2331/suisan.53.371
  10. Gu HD, Lee SJ, Lee JM and Lee BC. 2000. Egg development and larval growth in hybridization of strongylocentrotus intermedius (A. Agassiz) and strongylocentrotus nudus (A. Agassiz). Bull Fish Res Dev 58, 71-78.
  11. Gunther SJ, Moccia RD and Bureau DP. 2005. Growth and whole body composition of lake trout (Salvelinus namaycush), brook trout (Salvelinus fontinalis) and their hybrid, $F_1$ splake (Salvelinus namaycush ${\times}$ Salvelinus fontinalis), from first-feeding to 16 weeks post first-feeding. Aquaculture 249, 195-204. https://doi.org/10.1016/j.aquaculture.2005.03.027
  12. Handeland SO, Imsland AK and Stefansson SO. 2008. The effect of temperature and fish size on growth, feed intake, food conversion efficiency and stomach evacuation rate of Atlantic salmon post-smolts. Aquaculture 283, 36-42. https://doi.org/10.1016/j.aquaculture.2008.06.042
  13. Harada T, Kumai H and Murata O. 1986. Artificial hybrid between Japanese parrot fish and spotted parrot fish. Bull Japan Soc Sci Fish 52, 613-621. https://doi.org/10.2331/suisan.52.613
  14. Harada T, Mizuno K, Murata O, Miyashita S, Hurutani H, Kumai H and Nakamura M. 1971. Abstract, Ann Meet. Jap Soc Fish Sci 38.
  15. Harada T, Murata O and Miyashita S. 1977. Ann Meet. Jap Soc Fish Sci 75.
  16. Harada T. 1991. Hybridization and select breeding of sea breams. SUISANZOSHOKU 39, 110-111.
  17. Harter HL. 1960. Critical values for Duncan's new multiple range tests. Biometrics 16, 671-685. https://doi.org/10.2307/2527770
  18. Hulata G. 1995. A review of genetic improvement of the common carp (Cyprinus carpio L.) and other cyprinids by crossbreeding, hybridization and selection. Aquaculture 129, 143-155. https://doi.org/10.1016/0044-8486(94)00244-I
  19. Hume DJ, Flecthcer AR and Morison AK. 1983. Interspecific hybridization between carp (Cyprinus carpio L.) and goldfish (Carassius auratus L.) from victorian waters. Aust J Mar Freshw Res 34, 915-919. https://doi.org/10.1071/MF9830915
  20. Imsland AK and Jonassen TM. 2001. Regulation of growth in turbot (Scophthalmus maximus Rafinesque) and Atlantic halibut (Hippoglossus hippoglossus L.): aspect of enviroment ${\times}$ genotype interactions. Rev Fish Biol Fish 11, 71-90. https://doi.org/10.1023/A:1014240430779
  21. Ishibashi Y, Ekawa H, Hirata H and Kumai H. 2002a. Stress response and energy metabolism in various tissues of Nile tilapia Oreochromis niloticus exposed to hypoxic conditions. Fish Sci 68, 1374-1383. https://doi.org/10.1046/j.1444-2906.2002.00577.x
  22. Ishibashi Y, Hirata H and Kumai H. 2002b. Stress response and energy status in various tissues of red sea bream, Pagrus major, subjeced to hypoxic exposure. SUISANZOSHOKU 50, 315-323.
  23. Ishibashi Y, Yonezawa H, Miyashita S, Kato K, Murata O, Hirata H and Kumai H. 2002c. Response of enzyme activities and metabolitc concentrations in various tissues of red sea bream, Pagrus major, subjected to hypoxic exposure. SUISANZOSHOKU 50, 325-331.
  24. Jantrarotai W, Sitasit P, Jatrarotai P, Viputhanumas T and Srabua P. 1998. Protein and energy levels for maximum growth, diet utilization, yield of edible flesh and protein sparing of hybrid Clarias catfish (Clarias macrocephalus ${\times}$ Clarias gariepinus). J World Aquacult Soc 29, 281-289. https://doi.org/10.1111/j.1749-7345.1998.tb00648.x
  25. Kamal MAHM and Mair GC. 2005. Salinity tolerance in superior genotypes of tilapia, Oreochromis niloticus, Oreochromis mossambicus and their hybrid. Aquaculture 247, 189-201. https://doi.org/10.1016/j.aquaculture.2005.02.008
  26. Kaneko T, Shiraishi K, Katoh F, Hasegawa S and Hiroi J. 2002. Chloride cells during early life stages of fish and their functional differentiation. Fish Sci 68, 1-9. https://doi.org/10.1046/j.1444-2906.2002.00382.x
  27. Kim BS, Kang JH, Kim JH, Kim KK, Lee JU, Lee JY and Park IS. 2005. Production of hybrid between female red seabream and male black seabream in Korea. Korean J Genetics 27, 133-140.
  28. Kim YS, Biswas AK, Ji SC, Yong ASK, Biswas BK, Takaoka O, Murata O and Takii K. 2009b. Dietary soybean meal utilization with phytase supplementation for hybrid F1, red sea bream ${\times}$ black sea bream. Aquaculture Sci 57, 46-51.
  29. Kim YS, Biswas AK, Seoka M, Biswas BK, Yong ASK, Biswas BK, Takaoka O, Murata O and Takii K. 2009a. Dietary vitamin C requirement of hybrid, female red sea bream, Pagrus major ${\times}$ male black sea bream, Acanthopagrus schlegeli. SUISANZOSHOKU 57, 127-132.
  30. Kinoshita I and Tanaka M. 1990. Differentiated spatial distribution of larvae and juveniles of the two sparids, red and black sea bream, in Shijiki Bay. Nippon Suisan Gakkaishi 56, 1807-1813. https://doi.org/10.2331/suisan.56.1807
  31. Kitajima C and Tsukashima Y. 1983. Morphology, growth and low temperature- and low salinity-tolerance of sparid hybrids. Jap J Ichthy 30, 275-283.
  32. Kumai H. 1984. Biological studies on culture of the Japanese parrot fish Oplegnathus fasciatus (Temminck et schlegel). Bull Fish Lab Kinki Univ 2, 1-127.
  33. Lovell RT. 1979. Factors affecting voluntary food consumption by channel catfish. Proc World Symp Finfish Nutr Fish feed Technol 1, 555-564.
  34. Matsukawa K. 2006. Kouzatsugyo madai ${\times}$ kurodai tsigyoki ni okeru hatsuiku to eiyou youkyuu ni kann suru kennkyuu. Master Thesis, University of Kinki, Shirahama, Japan.
  35. Miyashita S. 2002. Studies on the seedling production of the pacific bluefin tuna, Thunnus thynnus orientalis. Bull Fish Lab Kinki Univ 8, 1-171.
  36. Murata O. 1998. Studies on the breeding of cultivated marine fishes. Bull fish Lab Kinki Univ 6, 1-101.
  37. Nikinmaa M. 2001. Haemoglobin function in vertevrates: evolutionary changes in cellular regulation hypoxia. Respir Physiol 128, 317-329. https://doi.org/10.1016/S0034-5687(01)00309-7
  38. Ochiai A and Tanaka M. 1986 Gyoryuigaku (Sita). Koseisha koseikaku, Tokyo, Japan, 736-750.
  39. Park IS, Kim BS, Hur JW, Syasina IG, Kim DS, Im JH and Park IS. 2004. Cytogenetic analysis of an artificial Red Black seabream Hybrid. Korean J Genetics 26, 283-288.
  40. Park IS, Kim BS, Im JH, Park HM, Nam YK, Jeong CH and Kim DS. 1997. Improved early survival in backcrosses of male mud loach (Misgurnus mizolepis) ${\times}$ cyprinid loach (M. anguillicaudatus) hybrid to female cyprinid loach. J Aquaculture 10, 363-371.
  41. Park IS. 2003. Artificial hybridization between red seabream, Pagrus major and black seabream, Acanthopagrus schlegeli. Master Thesis, University of Maritime Management and technology, Pusan, Korea.
  42. Shiau SY and Huang SL. 1989. Optimal dietary protein level for hybrid tilapia (Oreochromis niloticus ${\times}$ O. aureus) reared in seawater. Aquaculture 81, 119-127. https://doi.org/10.1016/0044-8486(89)90237-8
  43. Shirashi M, Fujii K and Maruyama T. 1995. Characteristics of eggs and larval of bester $F_2$ (hybrid sturgeon). SUISANZOSHOKU 43, 407-413.
  44. Tagawa M and Kimura S. 1991. Naibunpikinou no hatsugenn to sono yakuwari. In: Gyorui no syouki hatuiku. Tanaka M. ed. Koseisha koseikaku, Tokyo, Japan, 47-59.
  45. Tanaka M. 1971. Studies on the structure and function of the digestive system in teleost larvae-III. Development of the digestive system during postlarval stage. Jpn J Ichthyol 18, 167-174.
  46. Tanaka M. 1991 Gyorui no syouki hatuiku. Koseisha koseikaku, Tokyo, Japan, 119-132.
  47. Tang QS, Sun Y and Zhang B. 2003. Bioenergetics models for seven species of marine fish. J Fish Chn 27, 443-449.
  48. Tuncer H, Harrell RM and Houde ED. 1990. Comparative energetics of striped bass (Morone saxatilis) and hybrid (M. saxatilis ${\times}$ M. chrysops) juveniles. Aquaculture 86, 387-400. https://doi.org/10.1016/0044-8486(90)90327-J
  49. Van Ginneken V, Van den Thillart G, Addink A and Erkelens C. 1995. Fish muscle energy metabolism measured during hypoxia and recovery: an in vivo 31P-NMP study. Am. J. Physiol 268, 1178-1187.
  50. Wegener G, Michel R and Thuy M. 1986. Anoxia in lower vertebrates and insects: effects on brain and other organs. Zool Beitr 30, 103-124.
  51. Wohlfarth GW, Feneis B, Von Lukowicz M and Hulata G. 1984. Application of selective breeding of the common carp to European aquaculture. In: Research on Aquaculture. Rosenthal H and Sarig S, eds. Eur Maricult Soc Spec Publ, Bredene, Belgium, 8, 177-193.
  52. Yamashita T. 1997. Stress outou ni kakawaru idennsi. In: Gyorui no DNA. Aoki T, Takashima F and Hirano T, eds. Koseisha koseikaku, Tokyo, Japan, 219-243.
  53. Yoo JH, Hwang DJ, Yoon YH, Jeong GS and Go HJ. 2003. Initail adaptation of released fry black sea bream, Acanthopagrus schlegeli in Gamak bay, southern coast in Korea. J Korean Fish Soc 36, 365-371.

Cited by

  1. Diseases characteristics of cultured hybrids (red seabream ♀ × black sea bream ♂), Japanese red seabream, red seabream and black seabream in marine net cage vol.25, pp.3, 2012, https://doi.org/10.7847/jfp.2012.25.3.221
  2. Suitable Dietary Protein/Lipid Ratio for Hybrid, Female Red Sea Bream Pagrus major and Male Black Sea Bream Acanthopagrus schlegeli in the Juvenile Stage, Compared with Red Sea Bream vol.17, pp.1, 2014, https://doi.org/10.5657/FAS.2014.0075