Salp/krill interactions in the Southern Ocean: spatial segregation and implications for the carbon flux

被引:163
作者
Pakhomov, EA
Froneman, PW
Perissinotto, R
机构
[1] Univ Ft Hare, Dept Zool, ZA-5700 Alice, South Africa
[2] Rhodes Univ, Dept Zool & Entomol, So Ocean Grp, ZA-6140 Grahamstown, South Africa
[3] Univ Natal, Sch Life & Environm Sci, ZA-4041 Durban, South Africa
基金
新加坡国家研究基金会;
关键词
D O I
10.1016/S0967-0645(02)00017-6
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Available data on the spatial distribution and feeding ecophysiology of Antarctic krill, Euphausia superba, and the tunicate, Salpa thompsoni, in the Southern Ocean are summarized in this study. Antarctic krill and salps generally display pronounced spatial segregation at all spatial scales. This appears to be the result of a clear biotopical separation of these key species in the Antarctic pelagic food web. Krill and salps are found in different water masses or water mass modifications, which are separated by primary or secondary frontal features. On the small-scale (<100 km), Antarctic krill and salps are usually restricted to the specific water parcels, or are well segregated vertically. Krill and salp grazing rates estimated using the in situ gut fluorescence technique are among the highest recorded in the Antarctic pelagic food web. Although krill and salps at times may remove the entire daily primary production, generally their grazing impact is moderate (less than or equal to50% of primary production). The regional ecological consequences of years of high salp densities may be dramatic. If the warming trend, which is observed around the Antarctic Peninsula and in the Southern Ocean, continues, salps may become a more prominent player in the trophic structure of the Antarctic marine ecosystem. This likely would be coupled with a dramatic decrease in krill productivity, because of a parallel decrease in the spatial extension of the krill biotope. The high Antarctic regions, particularly the Marginal Ice Zone, have, however, effective physiological mechanisms that may provide protection against the salp invasion. (C) 2002 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:1881 / 1907
页数:27
相关论文
共 172 条
[1]  
Ainley D.G., 1988, P140
[2]  
Ainley D.G., 1991, Journal of Marine Systems, V2, P111, DOI 10.1016/0924-7963(91)90017-O
[3]   Antarctic zooplankton metabolism: carbon requirements and ammonium excretion of salps and crustacean zooplankton in the vicinity of the Bransfield Strait during January 1994 [J].
Alcaraz, M ;
Saiz, E ;
Fernandez, JA ;
Trepat, I ;
Figueiras, F ;
Calbet, A ;
Bautista, B .
JOURNAL OF MARINE SYSTEMS, 1998, 17 (1-4) :347-359
[4]  
[Anonymous], J ICHTHYOL
[5]  
[Anonymous], 1986, Mem Natl Inst Polar Res
[6]  
ANTEZANA T, 1982, POLAR BIOL, V1, P77
[7]  
*ATL EC RES GROUP, 1994, LJ9413 ATL EC RES GR
[8]  
BATHMANN U, 1991, POLAR BIOL, V11, P185
[9]  
Bibik V. A., 1988, Interdisciplinary investigations of pelagic ecosystem in the commonwealth and cosmonaut seas, P16
[10]   TEMPORAL VARIATION IN THE STRUCTURE OF AUTOTROPHIC AND HETEROTROPHIC COMMUNITIES IN THE SUB-ARCTIC PACIFIC [J].
BOOTH, BC ;
LEWIN, J ;
POSTEL, JR .
PROGRESS IN OCEANOGRAPHY, 1993, 32 (1-4) :57-99