OXYGEN-BINDING BY AMPHIPOD (CRUSTACEA) HEMOCYANINS

被引:14
作者
SPICER, JI
机构
来源
MARINE BEHAVIOUR AND PHYSIOLOGY | 1993年 / 24卷 / 02期
关键词
AMPHIPODA; HEMOCYANIN; OXYGEN BINDING; COLONIZATION OF LAND;
D O I
10.1080/10236249309378885
中图分类号
Q17 [水生生物学];
学科分类号
071004 ;
摘要
Haemocyanin (Hc) occurs in the haemolymph of all gammaroidean amphipods examined to date. Amphipod haemolymph is characterised by its comparatively low protein content, much of which is Hc, resulting in a low O2 carrying capacity. However, Hc has been shown to function as a respiratory pigment in vivo in at least some of the larger species during sustained activity. Amphipod Hcs seem to exist as hexamer aggregates. The number and types of subunit(s) present has still not satisfactorily been determined. The functional properties of amphipod Hcs are qualitatively similar to those of decapod and isopod crustaceans. They possess a moderate to large Bohr effect. Hc O2 affinity tends to be moderate in gammarid amphipods but higher than found in talitrid amphipods. Temperature affects O2 binding by some Hcs but not others: such effects could not be correlated with the ecology of all of the species examined. The colonisation of land by talitrid amphipods is accompanied by a reduction in both Hc O2 affinity and the Bohr effect together with a decrease in Hc effector sensitivity. The Bohr effect for Hc for semi-/euterrestrial amphipods was remarkably similar (DELTA log P50/DELTA pH = -0.77 +/- 0.06) and consistently smaller than that observed for Hc from aquatic species (DELTA log P50 DELTA pH = -1.44 +/- 0.20). It was not possible to relate the functional differences in O2 binding evident between Hcs from aquatic (gammarid) and Hcs from semi-/euterrestrial (talitrid) amphipods to Hc structure. Similarly relating changes in Hc O2 binding to changes in respiratory exchange organs is difficult until we know the extent to which extrabranchial gas exchange occurs.
引用
收藏
页码:123 / 136
页数:14
相关论文
共 59 条
[1]  
ALIKHAN MA, 1974, CURR SCI, V3, P136
[2]  
BERTHET J, 1963, ARCH INT PHYS BIOCH, V71, P124
[3]  
BERTHET J, 1965, ARCH INT PHYSL BIOCH, V72, P676
[4]   OXYGEN-UPTAKE AND THE POTENTIATING EFFECTS OF INCREASED HEMOLYMPH LACTATE ON OXYGEN-TRANSPORT DURING EXERCISE IN THE BLUE-CRAB, CALLINECTES-SAPIDUS [J].
BOOTH, CE ;
MCMAHON, BR ;
PINDER, AW .
JOURNAL OF COMPARATIVE PHYSIOLOGY, 1982, 148 (01) :111-121
[5]  
Bridges C.R., 1986, P341
[6]   PHENOTYPIC VARIATION AND LABILITY OF THE SUBUNIT COMPOSITION OF THE HEMOCYANIN OF UCA-PUGILATOR [J].
CALLICOTT, KA ;
MANGUM, CP .
JOURNAL OF EXPERIMENTAL MARINE BIOLOGY AND ECOLOGY, 1993, 165 (02) :143-159
[7]   THE SUBUNIT STRUCTURAL COMPOSITION OF AMPHIPOD HEMOCYANIN (CRUSTACEA, AMPHIPODA, TALITRIDAE) [J].
CHAN, HM ;
WEEKS, JM .
COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY B-BIOCHEMISTRY & MOLECULAR BIOLOGY, 1992, 101 (04) :567-572
[8]  
DRESEL EIB, 1950, J EXP BIOL, V27, P210
[9]   HEMOCYANIN - A CURRENT PERSPECTIVE [J].
ELLERTON, HD ;
ELLERTON, NF ;
ROBINSON, HA .
PROGRESS IN BIOPHYSICS & MOLECULAR BIOLOGY, 1983, 41 (03) :143-248
[10]   HAEMOGLOBIN IN BRANCHIURA [J].
FOX, HM .
NATURE, 1957, 179 (4565) :873-873