Outdoor phytoplankton continuous culture in a marine fish-phytoplankton-bivalve integrated system:: combined effects of dilution rate and ambient conditions on growth rate, biomass and nutrient cycling

被引:18
作者
Lefebvre, S
Probert, I
Lefrançois, C
Hussenot, J
机构
[1] Univ Caen, Lab Biol & Biotechnol Marines, F-14032 Caen, France
[2] Int Marine Ctr, I-09072 Torregrande, Italy
[3] IFREMER, CNRS, CREMA, Ctr Rech Ecosyst Marins & Aquacoles, F-17137 Lhoumeau, France
关键词
diatom; phytoplankton; dilution rate; fish effluent; continuous culture; nutrients; integrated system;
D O I
10.1016/j.aquaculture.2004.06.022
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Natural phytoplankton populations were cultured in outdoor continuous cultures using fish-farm effluents as the source of nutrients. The dilution rate was assumed to be the integrating factor of phytoplankton growth and biomass development (flux and stock). In this context, the combined effects of (i) dilution rates of the outdoor culture and (ii) ambient conditions were tested on phytoplankton growth, biomass and cycling of the major nutrient elements (C, N and P). Experiments were carried out in outdoor polyester tanks (0.7 m deep), homogenised by gentle aeration. Si/P ratio was balanced at around 5 in the inflow in order to induce diatom domination while maintaining high N and P assimilation by phytoplankton. Nutrient cycling was assessed through analyses of the different forms of particulate and dissolved nutrients in the inflow and the outflow. Culture dilution rates determined the longevity of the culture and the assimilation efficiency of nutrients. Dissolved phosphorus was the most limiting nutrient. The optimal dilution rate was approximately 0.5 day(-1) at 10 degreesC and 1.5 day(-1) at 20 degreesC with a mean diatom biomass of 9 muM P. Under these conditions, 80% of the dissolved nutrients provided to the tanks were transformed, a production of 8 g C M-2 day(-1) and an assimilation rate of 0.3 g p M-2 day(-1) were recorded. Assimilation by diatoms was the major pathway of nutrient cycling. During the experiment, a bottom sediment developed progressively and this also played an important role in denitrifying the excess dissolved nitrogen in the fish-farm effluent. However, the results showed that diatom biomass can collapse and we hypothesize that this was the consequence of an increase in cellular sinking rates due to cell aggregation under nutrient or light stress. Modelling approaches are needed in future research in order to determine optimal dilution rates taking into account phytoplankton growth rates, nutrient inputs and ambient conditions (e.g. light and temperature). (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:211 / 231
页数:21
相关论文
共 53 条
[1]   Ingestion, fecundity, growth rates and culture of the harpacticoid copepod, Tisbe furcata, in the laboratory [J].
AbuRezq, TS ;
Yule, AB ;
Teng, SK .
HYDROBIOLOGIA, 1997, 347 (1-3) :109-118
[2]  
Aminot A., 1983, MANUEL ANAL CHIMIQUE
[3]   MODELING OF PHYTOPLANKTON POPULATION-DYNAMICS IN AN ENCLOSED WATER COLUMN [J].
ANDERSEN, V ;
NIVAL, P .
JOURNAL OF THE MARINE BIOLOGICAL ASSOCIATION OF THE UNITED KINGDOM, 1989, 69 (03) :625-646
[4]   Effects on phytoplankton growth of dissolved substances produced by fish farming [J].
Arzul, G ;
Clement, A ;
Pinier, A .
AQUATIC LIVING RESOURCES, 1996, 9 (02) :95-102
[5]  
BEERS JR, 1985, ZOOPLANKTON FIXATION, P35
[6]   Modeling phytoplankton production: problems with the Eppley curve and an empirical alternative [J].
Brush, MJ ;
Brawley, JW ;
Nixon, SW ;
Kremer, JN .
MARINE ECOLOGY PROGRESS SERIES, 2002, 238 :31-45
[7]   Effect of CO2 concentration on C:N:P ratio in marine phytoplankton:: A species comparison [J].
Burkhardt, S ;
Zondervan, I ;
Riebesell, U .
LIMNOLOGY AND OCEANOGRAPHY, 1999, 44 (03) :683-690
[8]   CO2 availability affects elemental composition (C:N:P) of the marine diatom Skeletonema costatum [J].
Burkhardt, S ;
Riebesell, U .
MARINE ECOLOGY PROGRESS SERIES, 1997, 155 :67-76
[9]   Seasonal dynamics of phytoplankton and Calanus finmarchicus in the North Sea as revealed by a coupled one-dimensional model [J].
Carlotti, F ;
Radach, G .
LIMNOLOGY AND OCEANOGRAPHY, 1996, 41 (03) :522-539
[10]   Integrating seaweeds into marine aquaculture systems:: A key toward sustainability [J].
Chopin, T ;
Buschmann, AH ;
Halling, C ;
Troell, M ;
Kautsky, N ;
Neori, A ;
Kraemer, GP ;
Zertuche-González, JA ;
Yarish, C ;
Neefus, C .
JOURNAL OF PHYCOLOGY, 2001, 37 (06) :975-986