EFFECT OF NUTRIENT LIMITATION ON FATTY-ACID AND LIPID-CONTENT OF MARINE MICROALGAE

被引:398
作者
REITAN, KI
RAINUZZO, JR
OLSEN, Y
机构
[1] SINTEF, Center of Aquaculture, Trondheim
关键词
BACILLARIOPHYCEAE; CHLOROPHYCEAE; DINOPHYCEAE; FATTY ACIDS; LIPIDS; MARINE MICROALGAE; NUTRIENT LIMITATION; PRASINOPHYCEAE; PRYMNESIOPHYCEAE;
D O I
10.1111/j.0022-3646.1994.00972.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Phaeodactylum tricornutum and Chaetoceros sp. (Bacillariophyceae), Isochrysis galbana (clone T-Iso) and Pavlova lutheri (Prymnesiophyceae), Nannochloris atomus (Chlorophyceae), Tetraselmis sp. (Prasinophyceae), and Gymnodinum sp. (Dinophyceae) were cultured at different extents of nutrient-limited growth: 50 and 5% of mu(max). The lipid content of the algae was in the range 8.3-29. 5% of dry matter and was generally higher in, the Prymnesiophyceae than in the Prasinophyceae and the Chlorophyceae. Increasing extent of phosphorus limitation resulted in increased lipid content in the Bacillariophyceae and Prymnesiophyceae and decreased lipid content in the green flagellates N. atomus and Tetraselmis sp. The fatty acid composition of the algae showed taxonomic conformity, especially for the Bacillariophyceae, where the major fatty acids were 14:0, 16:0, 16:1, and 20:5n-3. Thesefatty acids were dominant also in the Prymnesiophyceae together with 22:6n-3. An exception was I. galbana, in which 18:1 was the major monounsaturated fatty acid and 20:5n-3 was absent. The fatty acids of N. atomus and Tetraselmis sp. varied somewhat, but 16:0, 16:1, 18:1, 18:3n-3, and 20:5n-3 were most abundant. Gymnodinum sp. contained mainly 16:0, 18:4n-3, 20: 5n-3, and 22:6n-3. An increased level of nutrient limitation (probably phosphorus) resulted in a higher relative content of 16:0 and 18:1 and a lower relative content of 18:4n-3, 20:5n-3, and 22:6n-3. The nutrient limitation probably reduced the synthesis of n-3 polyunsaturated fatty acids.
引用
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页码:972 / 979
页数:8
相关论文
共 50 条
[1]   MARINE PHYTOPLANKTER FATTY ACIDS [J].
ACKMAN, RG ;
TOCHER, CS ;
MCLACHLA.J .
JOURNAL OF THE FISHERIES RESEARCH BOARD OF CANADA, 1968, 25 (08) :1603-+
[2]   FATTY-ACID CONTENT AND CHEMICAL-COMPOSITION OF FRESH-WATER MICROALGAE [J].
AHLGREN, G ;
GUSTAFSSON, IB ;
BOBERG, M .
JOURNAL OF PHYCOLOGY, 1992, 28 (01) :37-50
[3]   CHEMICAL-COMPOSITION OF DIETARY SPECIES OF MARINE UNICELLULAR ALGAE AND ROTIFERS WITH EMPHASIS ON FATTY-ACIDS [J].
BENAMOTZ, A ;
FISHLER, R ;
SCHNELLER, A .
MARINE BIOLOGY, 1987, 95 (01) :31-36
[4]  
BENAMOTZ A, 1985, J PHYCOL, V21, P72
[5]  
BLIGH EG, 1959, CAN J BIOCHEM PHYS, V37, P911
[6]   THE FATTY-ACID COMPOSITION OF 3 UNICELLULAR ALGAL SPECIES USED AS FOOD SOURCES FOR LARVAE OF THE AMERICAN OYSTER (CRASSOSTREA-VIRGINICA) [J].
CHU, FLE ;
DUPUY, JL .
LIPIDS, 1980, 15 (05) :356-364
[7]   COMPONENT FATTY ACIDS OF TOTAL LIPIDS OF SOME MARINE PHYTOPLANKTON [J].
CHUECAS, L ;
RILEY, JP .
JOURNAL OF THE MARINE BIOLOGICAL ASSOCIATION OF THE UNITED KINGDOM, 1969, 49 (01) :97-+
[8]  
COHEN Z, 1986, HDB MICROALGAL MASS, P421
[9]   NUTRIENT STATUS OF ALGAL CELLS IN CONTINUOUS CULTURE [J].
DROOP, MR .
JOURNAL OF THE MARINE BIOLOGICAL ASSOCIATION OF THE UNITED KINGDOM, 1974, 54 (04) :825-855
[10]   FORMATION AND TRANSFER OF FATTY-ACIDS IN AN ENCLOSED MARINE FOOD-CHAIN COMPRISING PHYTOPLANKTON, ZOOPLANKTON AND HERRING (CLUPEA-HARENGUS L) LARVAE [J].
FRASER, AJ ;
SARGENT, JR ;
GAMBLE, JC ;
SEATON, DD .
MARINE CHEMISTRY, 1989, 27 (1-2) :1-18