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The development of bass, Dicentrarchus labrax, eggs in relation to temperature

Published online by Cambridge University Press:  11 May 2009

S. Jennings
Affiliation:
Marine, Environmental and Evolutionary Research Group, School of Biological Sciences, University of Wales, Swansea, SA PP
M. G. Pawson
Affiliation:
Ministry of Agriculture, Fisheries and Food, Fisheries Laboratory, Lowestoft, Suffolk, NR33 0HT (Address for correspondence)

Extract

Naturally spawned bass, Dicentrarchus labrax, eggs were incubated from fertilization at 15 temperatures from 6·8–20·6°C, and the developmental process was categorised into seven stages. Times from fertilization to the midpoints of each stage were calculated at each temperature. Knowledge of the developmental stage and incubation temperature was used to derive predictive relationships with which to age eggs. Minimum precision of age prediction was ±18 h. The first developmental stage was divided into six substages, and temperature-stage relationships derived to improve the precision of ageing to a minimum of ±1·75 h during early development. Bass eggs failed to hatch at temperatures below 9·7°C and above 16·8°C; this observation is discussed with reference to the developmental process.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 1991

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References

Barnabé, G.Boulineau-Coatanea, F. & Rene, F. 1976. Chronologie de la morphogenése chez le loup ou bar Dicentrarchus labrax (L.) (Pisces, Serranidae) obtenu par reproduction artifidelle. Aquaculture, 8, 351363.CrossRefGoogle Scholar
BertoliniF., F., 1933. Uova, larve e stadi giovanili di Teleostei. Fauna e Flora del Golfo di Napoli, 38, 310331.Google Scholar
Coombs, S.H. & Hiby, A.R. 1979. The Development Of The Eggs And Early Larvae Of Blue Whiting, Micromesistius Poutassou And The Effect Of Temperature On Development. Journal of Fish Biology, 14, 111123.CrossRefGoogle Scholar
Hubbs, C. & Bryan, C., 1974. Effect of parental temperature experience on thermal tolerance of eggs of Menidia audens. In The Early Life History of Fish (ed. Blaxter, J.H.S.) pp. 431435. Berlin: Springer- Verlag.CrossRefGoogle Scholar
Iversen, S.A. & Danielssen, D.S. 1984. Development and mortality of cod (Gadus morhua L.) eggs and larvae in different temperatures. In The Propagation of Cod Gadus morhua L. (ed. Danielssenet, D.S. ah), pp. 4965. [Flødevigen Rapportser, vol. 1.]Google Scholar
Jackman, L.A.J. 1954. The early development stages of the bass Morone labrax (L.). Proceedings of the Zoological Society of London, 124, 531535.Google Scholar
Koenst, W.M. & Smith, L.L. Jr, 1976. Thermal requirements of the early life history stages of walleye, Stizostedion vitreum vitreum, and sauger, Stizostedion canadense. Journal of the Fisheries Research Board of Canada, 33, 11301138.CrossRefGoogle Scholar
Lasker, R. 1985. An egg production method for anchovy biomass assessment. National Oceanic and Atmospheric Administration Technical Report NMFS, no. 36, 13.Google Scholar
Laurence, G.C. & Rogers, C.A. 1976. Effects of temperature and salinity on comparative embryo development and mortality of Atlantic cod (Gadus morhua L.) and haddock (Melanogrammus aeglefinus L. Journal du Conseil, 36, 220228.Google Scholar
Lockwood, S.J.Nichols, J.H. & Coombs, S.H. 1977. The development rates of mackerel (Scomber scombrus L.) eggs over a range of temperatures. International Council for the Exploration of the Sea (CM Papers and Reports), J: 13, 5 pp.Google Scholar
Marangos, C.Yagi, H. & Ceccaldi, H.J., 1986. Role de la température et de la salinité sur le taux de survie et la morphogenése au cours du développement embryonnaire chez les oeufs du loup de mer Dicentrarchus labrax (Linnaeus, 1758) (Pisces, Teleostei, Serranidae). Aquaculture, 54, 287300.Google Scholar
Mayer, I. 1987. Reproductive Biology of the Bass Dicentrarchus labrax L. PhD Thesis, University of Wales.Google Scholar
Nichols, J.H. 1989. The diurnal rhythm in spawning of plaice (Pleuronectes platessa) in the southern North Sea. Journal du Conseil, 45, 277283.CrossRefGoogle Scholar
Pawson, M.G. & Pickett, G.D. 1987. The Bass And Management Of Its Fishery In England And Wales. Laboratory Leaflets. Ministry of Agriculture, Fisheries and Food, Lowestoft, no. 59, 37 pp.Google Scholar
Riley, J.D. 1974. The distribution and mortality of sole eggs in inshore areas. In The Early Life History of Fish (Ed. Blaxter, J.H.S.), pp. 3952. Berlin:Springer-Verlag.CrossRefGoogle Scholar
Scholes, P. 1980. The sea-water well system at the Fisheries Laboratory, Lowestoft and the methods in use for keeping marine fish. Journal of the Marine Biological Association of the United Kingdom, 60, 215225.CrossRefGoogle Scholar
Simpson, A.C. 1959. The spawning of plaice (Pleuronectes platessa) in the North Sea. Fishery Investigations. Ministry of Agriculture, Fisheries and Food (ser. 2), 22(7), 111 pp.Google Scholar
Simpson, A.C. 1971. Diel spawning behaviour in populations of plaice, dab, sprat and pilchard. Journal du Conseil, 34, 5864.Google Scholar
Sylvester, J.R. & Nash, C.E. 1975. Thermal tolerance of eggs and larvae of Hawaiian striped mullet Mugil cephalus. Transactions of the American Fisheries Society, 104, 143147.2.0.CO;2>CrossRefGoogle Scholar
Thompson, B.M. & Harrop, R.T. 1987. The distribution and abundance of bass (Dicentrarchus labrax) eggs and larvae in the English Channel and southern North Sea. Journal of the Marine Biological Association of the United Kingdom, 67, 263274.CrossRefGoogle Scholar
Thompson, B.M. & Riley, J.D. 1981. Egg and larval development studies in the North Sea cod (Gadus morhua L.). Rapport et Procés-verbaux des Réunions. Conseil International pour l'Exploration de la Mer, 178, 553559.Google Scholar