Organochlorine contamination in deep-sea fish from the Davis Strait

被引:46
作者
Berg, V
Ugland, KI
Hareide, NR
Aspholm, PE
Polder, A
Skaare, JU
机构
[1] NATL VET INST, NORWEGIAN COLL VET MED, N-0033 OSLO, NORWAY
[2] UNIV OSLO, DEPT BIOL, SECT MARINE ZOOL, N-0316 OSLO 3, NORWAY
[3] MOREFORSKING, SECT FISHERY, N-6021 ALESUND, NORWAY
关键词
D O I
10.1016/S0141-1136(96)00107-9
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Eight species of deep-sea fish caught at various depths off the west coast of Greenland exhibited low to moderate organochlorine (OC) contamination. Polychlorinated biphenyls (PCBs) and dichlorodiphenyltrichloroethane metabolites (DDTs) were the dominating organochlorines. Hepatic levels of sum-PCB (19 individual PCB congeners) ranged from 110 ng g(-1) lipid weight in jelly wolf-fish (Anarhichas denticulatus) to 1156 ng g(-1) in blue hake (Antimora rostrata). Sum-DDT (p,p'-DDE, o,p'-DDD, p,p'-DDD, multiplied by a factor (1.11), and p,p'-DDT) ranged from 70 ng g(-1) in jelly wolf-fish to 1446 ng/g in blue hake. Sum-chlordanes (oxychlordane and trans-nonachlor) ranged from 28 ng g(-1) in jelly wolf-fish to 309 ng g(-1) in roughhead grenadier (Macrourus berglax). HCB (hexachlorobenzene) ranged from 3.6 ng g(-1) in smalleyed rabbit-fish (Hydrolagus affinis) to 73 ng g(-1) in tusk (Brosme brosme). Sum-HCH (hexachlorocyclohexanes alpha-HCH, beta-HCH and gamma-HCH) was of minor importance with levels ranging from 9.3 ng g(-1) in Greenland halibut (Reinhardtius hippoglossoides) to 22 ng g(-1) in tusk. The levels are lower than most of the corresponding published data from deep-seafish and probably reflect a moderately contaminated area. No simple relationship was found between organochlorine contamination and depth range of the investigated species. (C) 1997 Published by Elsevier Science Ltd.
引用
收藏
页码:135 / 148
页数:14
相关论文
共 50 条
[21]   VISUAL PIGMENTS OF DEEP-SEA FISH [J].
DENTON, EJ ;
WARREN, FJ .
NATURE, 1956, 178 (4541) :1059-1059
[22]   TROPHIC DIVERSITY IN DEEP-SEA FISH [J].
MAUCHLINE, J ;
GORDON, JDM .
JOURNAL OF FISH BIOLOGY, 1985, 26 (05) :527-535
[23]   Carbon capture by deep-sea fish ... [J].
不详 .
MARINE POLLUTION BULLETIN, 2014, 84 (1-2) :5-5
[24]   Deep-sea fish assemblages in the Colombian Caribbean Sea [J].
Paramo, Jorge ;
Wolff, Matthias ;
Saint-Paul, Ulrich .
FISHERIES RESEARCH, 2012, 125 :87-98
[25]   Deep-sea benthic habitats and the impacts of trawling on them in the offshore Greenland halibut fishery, Davis Strait, west Greenland [J].
Long, Stephen ;
Blicher, Martin E. ;
Arboe, Nanette Hammeken ;
Fuhrmann, Mona ;
Darling, Michael ;
Kemp, Kirsty M. ;
Nygaard, Rasmus ;
Zinglersen, Karl ;
Yesson, Chris .
ICES JOURNAL OF MARINE SCIENCE, 2021, 78 (08) :2724-2744
[26]   Organotin pollution in deep-sea fish from the northwestern Mediterranean [J].
Borghi, V ;
Porte, C .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2002, 36 (20) :4224-4228
[27]   Meiobenthos and nematode assemblages from different deep-sea habitats of the Strait of Sicily (Central Mediterranean Sea) [J].
Sandulli, R. ;
Miljutin, D. ;
Angeletti, L. ;
Taviani, M. .
MEDITERRANEAN MARINE SCIENCE, 2015, 16 (02) :402-412
[28]   THE VISUAL PIGMENTS OF DEMERSAL DEEP-SEA FISH [J].
DOUGLAS, RH ;
PARTRIDGE, JC .
INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 1994, 35 (04) :1710-1710
[29]   The unexploited potential of listening to deep-sea fish [J].
Bolgan, Marta ;
Parmentier, Eric .
FISH AND FISHERIES, 2020, 21 (06) :1238-1252
[30]   Visual acuity in deep-sea fish and mollusks [J].
Gagnon, Y. L. ;
Johnsen, S. .
INTEGRATIVE AND COMPARATIVE BIOLOGY, 2013, 53 :E73-E73