EFFECTS OF OPEN-SYSTEM AND CLOSED-SYSTEM TEMPERATURE-CHANGES ON BLOOD-OXYGEN DISSOCIATION CURVES OF SKIPJACK TUNA, KATSUWONUS-PELAMIS, AND YELLOWFIN TUNA, THUNNUS-ALBACARES

被引:30
作者
BRILL, RW [1 ]
BUSHNELL, PG [1 ]
机构
[1] UNIV BRITISH COLUMBIA,DEPT ZOOL,VANCOUVER V6T 2A9,BC,CANADA
来源
CANADIAN JOURNAL OF ZOOLOGY-REVUE CANADIENNE DE ZOOLOGIE | 1991年 / 69卷 / 07期
关键词
ACID-BASE REGULATION; FISH HEMOGLOBINS; SALMO-GAIRDNERI; AMBIENT OXYGEN; RAINBOW-TROUT; BLUEFIN TUNA; HEAT; THERMOREGULATION; RESPONSES; EXCHANGE;
D O I
10.1139/z91-250
中图分类号
Q95 [动物学];
学科分类号
071002 ;
摘要
Tunas often experience rapid temperature changes of 10-degrees-C or more during their daily vertical movements. Their blood is therefore subjected to open-system (i.e., constant O2 and CO2 partial pressure, variable O2 and CO2 content) temperature changes during passage through the gills. In addition, tunas possess vascular countercurrent heat exchangers and can have deep red muscle temperatures as much as 20-degrees-C above ambient. Their blood also experiences closed-system (i.e., constant O2 and CO2 content, variable O2 and CO2 partial pressure) temperature changes during passage through the heat exchangers. Temperature-independent blood O2 binding could be expected. We found blood oxygen dissociation curves of skipjack tuna (Katsuwonus pelamis) and yellowfin tuna (Thunnus albacares) to be temperature independent during open-system temperature changes. Although blood from both species showed unsually large Bohr effects (-0.986 and -0.865 DELTA-log P50 . DELTA-pH-1 for skipjack and yellowfin tuna, respectively) when subjected to CO2 partial pressure alterations in the open system, the oxygen dissociation curves of skipjack tuna blood were nearly temperature independent during closed-system temperature changes. In other words, blood from skipjack tuna showed a reduced Bohr effect when subjected to the inevitable CO2 partial pressure changes that accompany closed-system temperature shifts. Since skipjack tuna blood shows temperature-independent O2 binding during closed-system temperature changes whereas yellowfin tuna blood does not, this unusual feature is not obligatory in thermoconserving fishes.
引用
收藏
页码:1814 / 1821
页数:8
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