Routine metabolism of Antarctic krill (Euphausia superba) in South Georgia waters: absence of metabolic compensation at its range edge

被引:17
作者
Tarling, Geraint A. [1 ]
机构
[1] British Antarctic Survey, Nat Environm Res Council, Madingley Rd, Cambridge CB3 0ET, England
基金
英国自然环境研究理事会;
关键词
MEGANYCTIPHANES-NORVEGICA; NORTHERN KRILL; INTERANNUAL VARIABILITY; VERTICAL MIGRATION; THERMAL TOLERANCE; RESPIRATION; OCEAN; TEMPERATURE; AGGREGATION; PREDATORS;
D O I
10.1007/s00227-020-03714-w
中图分类号
Q17 [水生生物学];
学科分类号
071004 ;
摘要
Routine respiration rates in the South Georgia stock of Antarctic krill (Euphausia superba) were measured to compare with previously published measurements on stocks from colder locations further south. Within the natural temperature range of this species (-1.8 degrees to 5.5 degrees C), respiration rate data from both the present and previous studies were adequately fitted by a single Arrhenius regression (Q(10) of 2.8), although South Georgia krill showed an upward deviation from this regression between 0 degrees and 2 degrees C (the lower temperature range at South Georgia). Metabolic compensation (i.e. the comparative lowering of respiration rate) at the high temperatures experienced at South Georgia was not apparent, although the higher than predicted metabolic rates at low temperatures suggests acclimation of South Georgia krill to a warm water lifestyle. Weight-specific respiration rate was significantly higher in sub-adults and adults compared to juveniles, highlighting the metabolic burden of reproduction. South Georgia krill showed no further increase in respiration rate when exposed to acute temperatures (5.5-12.2 degrees C), indicating that they were already at the limit of aerobic capacity by 5.5 degrees C. Overall, this study shows that even small degrees of additional warming to South Georgia waters are likely to make conditions there metabolically unsustainable for Antarctic krill.
引用
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页数:15
相关论文
共 66 条
[1]   COLD RESISTANCE AND METABOLIC RESPONSES TO SALINITY VARIATIONS IN THE AMPHIPOD EUSIRUS-ANTARCTICUS AND THE KRILL EUPHAUSIA-SUPERBA [J].
AARSET, AV ;
TORRES, JJ .
POLAR BIOLOGY, 1989, 9 (08) :491-497
[2]  
[Anonymous], 1991, Scaling, Why Is Animal Size So Important?
[3]   Oceanic circumpolar habitats of Antarctic krill [J].
Atkinson, A. ;
Siegel, V. ;
Pakhomov, E. A. ;
Rothery, P. ;
Loeb, V. ;
Ross, R. M. ;
Quetin, L. B. ;
Schmidt, K. ;
Fretwell, P. ;
Murphy, E. J. ;
Tarling, G. A. ;
Fleming, A. H. .
MARINE ECOLOGY PROGRESS SERIES, 2008, 362 :1-23
[4]   Natural growth rates in Antarctic krill (Euphausia superba):: II.: Predictive models based on food, temperature, body length, sex, and maturity stage [J].
Atkinson, A ;
Shreeve, RS ;
Hirst, AG ;
Rothery, P ;
Tarling, GA ;
Pond, DW ;
Korb, RE ;
Murphy, EJ ;
Watkins, JL .
LIMNOLOGY AND OCEANOGRAPHY, 2006, 51 (02) :973-987
[5]   South Georgia, Antarctica: a productive, cold water, pelagic ecosystem [J].
Atkinson, A ;
Whitehouse, MJ ;
Priddle, J ;
Cripps, GC ;
Ward, P ;
Brandon, MA .
MARINE ECOLOGY PROGRESS SERIES, 2001, 216 :279-308
[6]   Shapes of Krill Swarms and Fish Schools Emerge as Aggregation Members Avoid Predators and Access Oxygen [J].
Brierley, Andrew S. ;
Cox, Martin J. .
CURRENT BIOLOGY, 2010, 20 (19) :1758-1762
[7]   Concordance of interannual fluctuations in acoustically estimated densities of Antarctic krill around South Georgia and Elephant Island: biological evidence of same-year teleconnections across the Scotia Sea [J].
Brierley, AS ;
Demer, DA ;
Watkins, JL ;
Hewitt, RP .
MARINE BIOLOGY, 1999, 134 (04) :675-681
[8]   Diversification, Evolution and Sub-Functionalization of 70kDa Heat-Shock Proteins in Two Sister Species of Antarctic Krill: Differences in Thermal Habitats, Responses and Implications under Climate Change [J].
Cascella, Kevin ;
Jollivet, Didier ;
Papot, Claire ;
Leger, Nelly ;
Corre, Erwan ;
Ravaux, Juliette ;
Clark, Melody S. ;
Toullec, Jean-Yves .
PLOS ONE, 2015, 10 (04)
[9]   TOWARDS AN ENERGY BUDGET FOR KRILL - THE PHYSIOLOGY AND BIOCHEMISTRY OF EUPHAUSIA-SUPERBA DANA [J].
CLARKE, A ;
MORRIS, DJ .
POLAR BIOLOGY, 1983, 2 (02) :69-86
[10]  
Croxall J.P., 1988, P261