Does size matter for hypoxia tolerance in fish?

被引:198
作者
Nilsson, Goeran E. [1 ]
Ostlund-Nilsson, Sarea [2 ]
机构
[1] Univ Oslo, Dept Mol Biosci, Physiol Programme, N-0316 Oslo, Norway
[2] Univ Oslo, Dept Biol, N-0316 Oslo, Norway
关键词
anoxia; hypoxia; scaling; aerobic metabolism; anaerobic metabolism; lactate;
D O I
10.1111/j.1469-185X.2008.00038.x
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Fish cover a large size range, from milligrams to tonnes, and many of them are regularly exposed to large variations in ambient oxygen levels. For more than half a century, there have been various, often divergent, claims regarding the effect of body size on hypoxia tolerance in fish. Here, we attempt to link old and new empirical data with the current understanding of the physiological mechanisms behind hypoxia tolerance. Three main conclusions are drawn: (1) body size per se has little or no impact on the ability to take up oxygen during hypoxic conditions, primarily because the respiratory surface area matches metabolic rate over a wide size range. If size-related differences are seen in the ability for oxygen uptake in a species, these are likely to reflect adaptation to different life-styles or habitat choice. (2) During severe hypoxia and anoxia, where fish have to rely on anaerobic ATP production (glycolysis) for survival, large individuals have a clear advantage over smaller ones, because small fish will run out of glycogen or reach lethal levels of anaerobic end-products (lactate and H+) much faster due to their higher mass-specific metabolic rate. (3) Those fish species that have evolved extreme adaptations to hypoxia, including haemoglobins with exceptionally high oxygen affinities and an alternative anaerobic end-product (ethanol), reveal that natural selection can be a much more powerful determinant of hypoxia tolerance than scaling of physiological functions.
引用
收藏
页码:173 / 189
页数:17
相关论文
共 140 条
[31]   Organ-tissue mass measurement allows modeling of REE and metabolically active tissue mass [J].
Gallagher, D ;
Belmonte, D ;
Deurenberg, P ;
Wang, ZM ;
Krasnow, N ;
Pi-Sunyer, FX ;
Heymsfield, SB .
AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 1998, 275 (02) :E249-E258
[32]  
GAMPERL AK, 1994, J EXP BIOL, V193, P209
[33]  
Goolish Edward M., 1995, Biochemistry and Molecular Biology of Fishes, V4, P335
[34]   Hypoxia-induced gene expression profiling in the euryoxic fish Gillichthys mirabilis [J].
Gracey, AY ;
Troll, JV ;
Somero, GN .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (04) :1993-1998
[35]   EFFECT OF ANOXIA ON ION DISTRIBUTION IN THE BRAIN [J].
HANSEN, AJ .
PHYSIOLOGICAL REVIEWS, 1985, 65 (01) :101-148
[36]   Hematological and biochemical parameters in common carp, Cyprinus carpio, following herbal treatment for Aeromonas hydrophila infection [J].
Harikrishnan, R ;
Rani, MN ;
Balasundaram, C .
AQUACULTURE, 2003, 221 (1-4) :41-50
[37]  
Hochachka PW, 2002, BIOCH ADAPTATION
[38]   ANOXIC BRAIN FAILURE IN AN ECTOTHERMIC VERTEBRATE - RELEASE OF AMINO-ACIDS AND K+ IN RAINBOW-TROUT THALAMUS [J].
HYLLAND, P ;
NILSSON, GE ;
JOHANSSON, D .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 1995, 269 (05) :R1077-R1084
[39]   Extracellular levels of amino acid neurotransmitters during anoxia and forced energy deficiency in crucian carp brain [J].
Hylland, P ;
Nilsson, GE .
BRAIN RESEARCH, 1999, 823 (1-2) :49-58
[40]   ANAEROBIC WINTERING OF CRUCIAN CARP (CARASSIUS-CARASSIUS L) .1. ANNUAL DYNAMICS OF GLYCOGEN RESERVES IN NATURE [J].
HYVARINEN, H ;
HOLOPAINEN, IJ ;
PIIRONEN, J .
COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY A-PHYSIOLOGY, 1985, 82 (04) :797-803