Metabolic Sources of Heat and Power in Tuna Muscles
Open Access
- 1 October 1979
- journal article
- Published by The Company of Biologists in Journal of Experimental Biology
- Vol. 82 (1) , 303-320
- https://doi.org/10.1242/jeb.82.1.303
Abstract
Tuna appear able to maintain their muscles at 5–10°C above ambient by balancing heat produced in situ and conserved by a counter-current heat exchanger with heat lost to the sea. Metabolite profiles under three different activity states (rest, burst swimming, and steady state swimming during feeding frenzies at sea) were used to identify which metabolic processes in white and red muscles could account for observed excess temperatures. During burst swimming, transient changes in metabolite levels indicate that the metabolism of both red and white muscle contributes to powering burst swimming; red muscle work is sustained mainly by oxidative metabolism while white muscle work depends upon an intense anaerobic glycolysis. The rate of metabolism in red muscle is easily high enough to account for the measured (10°C) increase in temperature at this time. However, in white muscle, anaerobic glycolysis can account for only about a 2°C maximum rise in temperature. The highest sustained swimming speeds and the highest muscle temperatures in skipjack are found during feeding frenzies at sea. As in burst swimming, during steady-state swimming red muscle temperatures can be accounted for by oxidative metabolism. In the case of white muscle, the lactate measurements indicate that anaerobic glycolysis could only lead to a 0.3°C temperature rise. However, if the fraction of utilized glycogen that is not fermented (about 60%) is assumed to be fully oxidized, enough heat is generated to raise white muscle temperatures by over 10°C. The observed excess temperature at this time is about 8–10°C, showing that areobic carbohydrate metabolism in white muscle is probably the major heat source during feeding frenzies. These interpretations are fully consistent with enzyme profiles of red and white muscles in tuna. They do not, however, explain why tuna have warm muscles. The latter problem is briefly discussed.Keywords
This publication has 42 references indexed in Scilit:
- Metabolic biochemistry of water- vs. air-breathing fishes: muscle enzymes and ultrastructureCanadian Journal of Zoology, 1978
- Adaptation of muscle pyruvate kinases to environmental temperatures and pressuresJournal of Experimental Zoology, 1976
- Activation of muscle glycolysis: A role for creatine phosphate in phosphofructokinase regulationFEBS Letters, 1974
- Warm-Bodied FishAmerican Zoologist, 1971
- Mitochondrial citric acid cycle and related enzymes: Adaptive response to exerciseBiochemical and Biophysical Research Communications, 1970
- On the activities of some enzymes concerned with glycolysis and glycogenolysis in extracts of rabbit skeletal musclesBiochemical and Biophysical Research Communications, 1968
- Exercise: Effects on Hexokinase Activity in Red and White Skeletal MuscleScience, 1968
- Muscle Glycogen and Muscle Electrolytes during Prolonged Physical Exercise1Acta Physiologica Scandinavica, 1967
- Role of Red and White Muscles in the Swimming of the Skipjack TunaNature, 1967
- The Effect of Intermittent Exercise on Carbohydrate Metabolism in Rainbow Trout,Salmo gairdneriJournal of the Fisheries Research Board of Canada, 1966