COPEPOD GRAZING AND ITS POTENTIAL IMPACT ON THE PHYTOPLANKTON DEVELOPMENT IN THE BARENTS SEA

被引:41
作者
BAMSTEDT, U
EILERTSEN, HC
TANDE, KS
SLAGSTAD, D
SKJOLDAL, HR
机构
[1] Department of Fisheries and Marine Biology, High-Technology Centre, Bergen
[2] Norwegian College of Fisheries, University of Tromsø, Tromsø, N-9001
[3] Trondheim-Nth
[4] Institute of Marine Research, Bergen, N-5024
关键词
D O I
10.1111/j.1751-8369.1991.tb00658.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Compiled data from published and unpublished sources on copepod grazing of the large-sized copepods in the Barents Sea give wide ranges in grazing rates. Approximate average values indicate daily rations of 7-18% for copepodite stages V and VI and considerably higher values for the earliest copepodite stages. It is demonstrated that individual variability in gut fullness of copepods from a given locality is typically very high and not closely related to variable food abundance or depth of occurrence. There is no diel feeding rhythm during the summer, and even when relating copepod grazing to a number of biotic and abiotic factors through stepwise linear regression analysis, much of the variability remains unexplained. It is suggested that feeding behaviour, food quality and feeding history of the copepods all play important roles as factors which regulate copepod grazing. Model simulations on the phytoplankton succession, using literature data on laboratory-determined growth characteristics for solitary cells and colonies of the prymnesiophyte Phaeocystis pouchetii and large diatoms, indicate that the extent of thc mixed layer and selective grazing by zooplankton are important factors that may explain the occurrence of dense blooms of P. pouchetii colonies, frequently observed during the spring.
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收藏
页码:339 / 353
页数:15
相关论文
共 48 条
[1]  
Batedt U., Diel variation in the nutritional physiology of Calanus glacialis from lat. 78°N in the summer., Mar. Biol., 79, pp. 257-267, (1984)
[2]  
Batedt U., Chemical composition and energy content. Pp. 1‐58, The biological chemistry of marine copepods., (1986)
[3]  
Batedt U., Ecological significance of individual variability in copepod bioenergetics., Hydrobiologia, 167-168, pp. 43-59, (1988)
[4]  
Batedt U., Ervik A., Local variation in size and activity among Calanus finmarchicus and Metridia longa (Copepoda, Calanoida) overwintering on the west coast of Norway., J. Plankton Res., 6, pp. 843-857, (1984)
[5]  
Batedt U., Tande K.S., Respiration and excretion rates of Calanus glacialis in arctic waters of the Barents Sea., Mar. Biol., 87, pp. 259-266, (1985)
[6]  
Batedt U, Tande K.S, Physiological responses of Calanus finmarchicus and Metridia longa (Copepoda: Cal‐anoida) during the winter‐spring transition., Mar. Biol., 99, pp. 31-38, (1988)
[7]  
Batedt U., Tande K.S, Nicolajsen H., Ecological investigations on the zooplankton community of Balsfjorden. northern Norway: physiological adaptations in Metridia longa (Copepoda) to the overwintering period, Marine biology of polar regions and effects of stress on marine organisms, pp. 313-327, (1985)
[8]  
Batje M., Michaelis H., Phaeocystis pouchelii blooms in the east Frisian coastal waters (German Bight. North Sea)., Mar. Biol., 93, pp. 21-27, (1986)
[9]  
Berggren U, Hansen B., Kiorboe T., Food‐size spectra. ingestion and growth of the copepod Acartia tonsa: implications for the determination of copepod production, Mar. Biol., 99, pp. 341-352, (1988)
[10]  
Boyd C.M., Smith S.L., Cowles T.J., Grazing patterns of copepods in the upwelling system of Peru., Limnol. Oceanogr., 24, pp. 583-596, (1980)