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1.
  • 1. Oxygen equilibria ofHypostomus andPterygoplichthys hemoglobins and their sensitivities to the erythrocytic nucleotide triphosphates (NTP), ATP and guanosine triphosphate (GTP) are studied to investigate the mechanisms by which blood adapts to air- and water-breathing (cf. Weberet al., 1979).
  • 2. Hemoglobins of both species are heterogeneous. All hemoglobin fractions isolated by iso-electric focusing reveal a high sensitivity to NTP, but GTP depresses O2 affinity about twice as effectively as ATP. A cathodal hemoglobin component with a reversed Bohr effect was found inPterygoplichthys but not inHypostomus.
  • 3. The data are discussed in relation to thein vivo cofactor modulation of blood O2 affinity and the adaptive significance of functional heterogeneity of fish hemoglobins.
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2.
  • 1. Respiratory properties of piranha blood are distinguished from those of other fish primarily by the high CO2 buffering capacity (ΔHCO3/ΔpH= 19.6mmol/l for oxygenated blood and 39.1 mmol/l for deoxygenated blood).
  • 2. The concentration of nucleoside triphosphates (NTP) and the half-saturation tension (P50) of whole blood were found to be inversely related to body size.
  • 3. The higherP50 in smaller fish, analogous to values obtained in previous studies involving interspecies comparisons, could be adaptive to a higher weight-specific metabolic rate.
  • 4. Both ATP and guanosine triphosphate (GTP) lowered the oxygen affinity of purified hemoglobin solutions, accounting for the size-dependent correlation ofP50 and NTP concentration in whole blood.
  • 5. While similar in concentration in red cells, GTP is more potent than ATP as an allosteric modifier of hemoglobin function.
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3.
  • 1.1. Oxygen consumption of low salinity (20‰) acclimated whelks decreases markedly upon acute exposure to hypoxia (PWO2 = 35 Torr), but almost regenerates its original level within 48 hr exposure to the hypoxic condition.
  • 2.2. This ability to regain the original level of oxygen consumption is not seen in high salinity (35‰) acclimated whelks.
  • 3.3. Oxygen consumption in air at 10°C is more than twice the rate shown by low salinity acclimated whelks in normoxic water (PWO2 = 150 Torr).
  • 4.4. Q10 for oxygen consumption in air is about 1.0 in the temperature range 10–20°C.
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4.
  • 1.Loricariichthys sp., an air-breathing fish from the Amazon River has one major hemoglobin component.
  • 2. Quantitative studies on the kinetics of O2 dissociation and CO combination to the protein were performed by stopped-flow experiments at different pH values and a constant ATP concentration of 1.25 mM.
  • 3. The oxygen dissociation shows a simple first order behavior and a strong pH dependence.
  • 4. The CO combination kinetics, on the other hand, were homogeneous and fast at higher pH values and slow and clearly autocatalytic at pH values below 7.0.
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5.
  • 1.1. The oxygen consumption of the marine teleost, Lichia amia was investigated under controlled laboratory conditions.
  • 2.2. The routine oxygen consumption showed a strong circadian rhythm with the fish being mainly active during the light period.
  • 3.3. The specific mass exponent (dimension: μg O2/g/hr) is temperature independent and ranges from 0.27–0.29.
  • 4.4. Starving the fish results in a mean decrease in active, routine and standard oxygen consumption of 21%, 24% and 20%, respectively.
  • 5.5. Feecling led to an increase in the oxygen consumption of the teleosts, with the mean metabolic rate over the 24 hr that followed, being 58% and 50% higher for fish that had been starved for 162hr and 40 hr, respectively.
  • 6.6. Apparent SDA showed some variation and ranged from 6.0 to 35.5%.
  • 7.7. The results obtained are generally in agreement with those recorded for other teleosts.
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6.
  • 1.1. The cardiovascular physiology of adult Carcinus maenas (L.) emerging into air has been investigated at three different air temperatures.
  • 2.2. Transition from seawater to air or vice versa triggered transient increases in cardiac and locomotor activity.
  • 3.3. However, crabs became inactive 5–10 min after emerging from seawater (15°C) into air at the same temperature (15°C) or at lower temperatures (12–13°C) and heart rate fell.
  • 4.4. At higher air temperatures (18–20°C) heart rate rose but to a lesser extent than predicted from aquatic Q10 heart-rate values.
  • 5.5. Crabs were again quiescent in aerial conditions.
  • 6.6. Mean arterial oxygen tension (Pao2) was ~ 74 mmHg in submerged crabs but fell to ~ 38 mmHg in air while mean arterial carbon dioxide tension (Pao2) increased from 1 to 4 mmHg resulting in respiratory acidosis.
  • 7.7. A model of gill function is proposed to explain the development of internal hypoxia in air.
  • 8.8. The results are discussed in relation to the distribution of adult and juvenile C. maenas in situ.
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7.
  • 1.1. The respiratory status of the embryonic quail during the two days prior to hatching was assessed by measuring the gas tensions within the air space of the egg and of blood collected from the chorioallantois.
  • 2.2. When the lungs became inflated there was a significant decrease in the pO2 of the gas in the air space.
  • 3.3. After pipping, there was a rise in the pO2 and fall in the pCO2 within the air space, together with corresponding changes in the blood.
  • 4.4. The outer shell membrane remained intact until the onset of hatching.
  • 5.5. These results were compared with those obtained by other workers using the domestic fowl.
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8.
  • 1.1. Cutaneous O2 uptake in the carp, Cyprinus carpio, was determined at various water flow rates across the skin (.V) ranging from 2.5 to 40 ml/min, using flow-through respirometers.
  • 2.2. When thickness of water flow was 2mm, cutaneous O2 uptake remained stable (about 3.8 nmol/cm2/min) at a .V of 20–40 ml/min and decreased with .V below 20 ml/min.
  • 3.3. When thickness of water flow was 4 mm, cutaneous O2 uptake decreased with .V below 40 ml/min.
  • 4.4. Apparent water velocity (U') was calculated dividing .V by an area of a cross section of the water flow (0.5 and 1.0 cm2 respectively). In both experiments, cutaneous O2 uptake decreased with U' below 0.7 cm/sec.
  • 5.5. This suggests that cutaneous O2 uptake in the carp is limited at a low water velocity by a resistance of the hypoxic boundary layer.
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9.
  • 1.1. Adult male Atremia salina L. were acclimated to five different oxygen concentrations and their respiration in response to environmental oxygen concentrations was determined.
  • 2.2. Anemia is a respiratory regulator over a wide range of partial O2 pressures. A critical oxygen tension exists and decreases with acclimation to lower pO2.
  • 3.3. Hypoxic conditions induce the production of hemoglobin III.
  • 4.4. Lactic acid is produced during anaerobiosis.
  • 5.5. Production of Hb III and lactic acid, being inversely proportional to the acclimation level, has to be considered as a long term or short term adaptation to hypoxic conditions.
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10.
  • 1.1. 3,3',4,4'-tetrachlorobiphenyl (PCB 77), but not hexachlorobenzene, induced liver micro-somal cytochrome P-450 (Cyt P-450), ethoxycoumarin-O-deethylase (ECOD) and ethoxyresorufin-O-deethylase (EROD) in rainbow trout. Maximum induction was observed in a PCB 77 injected group of fish (1.0mg/kg, i.p. injection) 13 days after the injections being 2, 10 and 50 times the values of non-induced fish, respectively.
  • 2.2. The apparent Km value of ethoxyresorufin of this induced group of fish differed only slightly from that of non-induced fish. The apparent Vmax value (EROD) was 50 times higher.
  • 3.3. Freezing small pieces of liver in liquid nitrogen did not produce cytochrome P-420.
  • 4.4. Fluorimetric and spectrophotometric measurements of EROD correlated.
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11.
  • 1.1. The oxygen consumption of crabs in normoxic and hypoxic (50% O2) seawater was measured directly after collection.
  • 2.2. The influences of size and lunar cycles were removed by scaling the data.
  • 3.3. Strong negative correlations between low individual levels of O2 consumption and the ability to compensate for hypoxia were apparent in Wicklow (subtidal) crabs.
  • 4.4. Compensation for hypoxia was much greater on the flood tide than on the ebb.
  • 5.5. Crabs from Roscoff (intertidal) had lower levels of compensation than those from Wicklow.
  • 6.6. Size, sex and condition had no apparent effect upon these relationships.
  • 7.7. Crabs acclimated to laboratory conditions have not shown this tidal variation in compensation for hypoxia.
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12.
  • 1.1. All age groups gained mass during the active season, but mass-gain of adult females was delayed during lactation.
  • 2.2. The relationship of body mass to metabolic rate varied widely; when the relationship was significant, R2 varied from 10.3 to 72.6%. Body mass affects VO2 more during lactation than at any other period.
  • 3.3. Mean VinO2 of adult males was higher in June than that of adult, non-lactating females.
  • 4.4. VO2 of reproductive females was significantly higher during lactation than during gestation or postlactation because specific VO2 varied. Specific VO2 of non-reproductive females declined over the active season.
  • 5.5. Specific VO2 of all age groups declined between the premolt and postmolt periods. The reduced maintenance costs can contribute 20–46% to daily growth.
  • 6.6. Observed VO2 was lower than the value predicted from intraspecific or interspecific Bm:M regressions.
  • 7.7. VO2 of wild-caught marmots was lower than that of marmots maintained in the laboratory, probably because of dietary differences.
  • 8.8. Because basal metabolism is a stage on a food-deprivation curve, we suggest that basal metabolic rate is not an appropriate measure of the metabolic activity of free-ranging animals.
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13.
  • 1. The whole blood of the non-air-breathing gymnotid teleost,Sternopygus macrurus, is half-saturated with oxygen at 5.2 mm Hg (apparent value) at 30°C in the absence of CO2. Addition of 5.6% CO2 causes the apparentP50 value to increase over 3-fold.
  • 2. The oxygen affinity of the stripped single-component hemoglobin at 20°C increases about 20-fold between pH 5.8 and 8.6 in the absence of ATP. This difference increases to 100-fold in the presence of 1 mM ATP.
  • 3. A substantial Root effect is present: the stripped hemoglobin is only 70% saturated with O2 at pH less than 6 when equilibrated with air.
  • 4. The value of the Hill coefficient,n, is maximal near pH 7.0–7.5, and approaches 1.0 at high pH. The value is about 1.5 at low pH in the absence of ATP and 1.0 in the presence of 1 mM ATP.
  • 5. The O2 dissociation kinetics are heterogeneous at all pH values but most heterogeneous at low pH. The rate increases substantially as the pH decreases.
  • 6. The CO combination kinetics as measured by the stopped flow technique are largely homogeneous except at high pH, but the CO combination kinetics after flash photolysis are markedly heterogeneous.
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14.
  • 1.1. Metabolic rates were measured in two xeric-adapted gekkonid lizards, Anarbylus switaki sind Coleonyx variegatus.
  • 2.2. Standard metabolic rates (SMR) were 0.074 ml O2/g hr in A. switaki and were 70% of the value predicted on the basis of mass from regression equations. The SMR of 0.146ml O2/ghr in C. variegatus is similar to the predicted value for a lizard of this mass.
  • 3.3. During intense activity, metabolic rates of 0.378 and 0.804ml O2/g hr were measured in A. switaki and C. variegatus, respectively.
  • 4.4. Various theories to explain reduced SMR in lizards are discussed, and it is concluded that none is entirely satisfactory, and caution should be exercised in interpreting the adaptive significance of reduced SMR.
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15.
  • 1.1. Cellular and intracellular localization of catalase and acid phosphomonoesterase in the midgut of Lumbricus terrestris was studied by use of tissue fractionation.
  • 2.2. At least 60–70% of the catalase resides in the chloragocyte cytosol and the remaining 30–40% resides in gut epithelium peroxisomes.
  • 3.3. One of the main functions of the chloragocyte catalase is probably scavenging for H2O2 arising from the interaction between blood heme-protein and oxygen.
  • 4.4. A simple method for the histochemical detection of cytosol catalase is proposed.
  • 5.5. About 10% of the gut acid phosphatase resides in chloragocyte lysosomes. The chloragosomes contain no acid phosphatase.
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16.
  • 1.1. Observation of ventilation in immersed Pholis gunnellus showed a linear relationship between ventilatory rate and temperature between 8 and 20°C.
  • 2.2. At 13°C and after 30 min emersion, ventilatory rate was initially lower than prior to emersion, providing evidence of adequate uptake of O2 for standard metabolism during the emersion period.
  • 3.3. This species has a laterally elongate body form with reduced scales and extensive mucus secretion.
  • 4.4. During emersion, gaping behaviour probably exposes the gills and extensively vascularised oesophageal regions to air.
  • 5.5. These are considered to be morphological and behavioural adaptations by P. gunnellus, to aerial respiration in the intertidal habitats occupied by this species.
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17.
  • 1.1. Carp (Cyprinus carpio) were stressed to exercise by rolling in a respiration chamber. Ventilatory water flow rate, cardiac output and blood respiratory parameters were determined.
  • 2.2. During exercise, oxygen uptake increased about 3.5-fold and returned to pre-exercise level within 15 min.
  • 3.3. This exercise-stress resulted in no plasma acidosis and in no swelling of the erythrocytes.
  • 4.4. Ventilatory water flow rate increased 6-fold, whereas cardiac output increased 2-fold. Hence the ventilation-perfusion ratio increased during exercise.
  • 5.5. During exercise, arterial O2 content (CaO2) increased due to increases in O2 tension (PaO2), O2 saturation of hemoglobin (SaO2) and hemoglobin concentration (Hb). On the other hand, Pv̄O2 and Sv̄O2 remained at the resting levels but Cv̄O2 slightly increased due to an increase in Hb.
  • 6.6. Arterial-venous O2 difference (CaO2-Cv̄O2) increased by 38%, which was met by a much greater increase in CaO2 than Cv̄O2.
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18.
  • 1.1. Directly determined heats of embryogenesis were measured for Tribolium confusum eggs in a microcalorimeter fitted with air exchange, at 30°C.
  • 2.2. Parallel oxygen uptake measurements were made at 30°C, and combined with the heats to give the Calorific Equivalent of Oxygen Respiration quotient (the C.O.R.).
  • 3.3. The average C.O.R. values for the eggs in the 70 hr interval before hatch was 3.6 ± 0.2 kcal/l O2. This is somewhat lower than other (e.g. homoiothermic vertebrate) tissue. The C.O.R. increases to large values, in excess of 5 kcal/l O2 after hatch.
  • 4.4. The specific heat production during embryogenesis was 0.43 × 10−6cal/sec per mg live weight.
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19.
  • 1.1. O2 consumption of suspended Bullia digitalis is not related to water current speed or degree of turbulence, where these are kept constant.
  • 2.2. The highest levels of O2 uptake at 15°C are obtained by producing fluctuating surges of turbulence, the animals responding to changes in the movement of water.
  • 3.3. In buried animals O2 consumption decreases with time in the absence of water movements.
  • 4.4. Burrowing and surface crawling require less energy than transport in the surf.
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20.
  • 1.1. Healthy 6- to 12-day-old Heliothis zea (bollworm) larvae showed a mean oxygen uptake of 3.1 μl O2/mg body wt per hr.
  • 2.2. Similar larvae infected with the fungus Nomuraea rileyi had a mean uptake of 4.01 μl O2/mg per hr.
  • 3.3. The weights of the two groups of insects did not differ.
  • 4.4. T-test showed a significant (P < 0.01) difference in oxygen uptake between healthy and infected larvae.
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