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1.
  • 1.1. Cycloheximide and puromycin inhibited leucine transport and incorporation into isolated bullfrog tadpole tail and hepatic cells.
  • 2.2. However, high concentrations of these 2 inhibitors did not affect alanine incorporation appreciably in either tissue.
  • 3.3. NEM and DNP inhibited leucine and alanine incorporation in both cell types, but at different concentrations.
  • 4.4. NEM stimulated leucine transport only in hepatocytes; alanine transport was inhibited by NEM in tail fin cells.
  • 5.5. The results suggest different mechanisms of transport and protein synthesis for the 2 types of amino acids by tadpole liver and tail fin cells.
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2.
  • 1.1. The effects of ovine prolactin on sodium and water transport across the intestine of 9-day old cockerels were studied by an in vitro everted gut sac technique and by an in vivo balance technique.
  • 2.2. Prolactin was found to reduce sodium and water transport across the jejunum and the rectum. AVP was ineffective.
  • 3.3. Plasma sodium levels tended to decrease in prolactin treated birds.
  • 4.4. It is suggested that the action of prolactin on intestinal salt and water transport is important in maintaining electrolyte homeostasis.
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3.
  • 1.Yellow and orange chromatophore pigments in the fins and tail of Mugil cephalus, Solea vulgaris and Serranus scriba were extracted with methanol and chloroform and characterized as xanthophylls.
  • 2.The xanthophylls, which were responsible for the yellow-orange colour of the tissues, were found to be in a stable association with the particulate matter of tissue homogenates.
  • 3.In Serranus scriba about 25 per cent of fin and tail xanthophylls disappeared after 2 days in captivity.
  • 4.The injection of cortisol succinate did not affect the concentration of xanthophylls in Serranus.
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4.
  • 1.1. Heart rates of adult aquatic red-spotted newts can be conveniently recorded using an impedance pneumograph.
  • 2.2. Heart rates decrease linearly with decreasing temperature.
  • 3.3. Submergence in normoxic and hypoxic water at 10°, 15°, and 20°C results in bradycardia which is more pronounced in hypoxic water.
  • 4.4. At 5°C one newt exhibited the above pattern, but bradycardia was not exhibited by the other newt during normoxic submergence.
  • 5.5. Diminishing heart rates are probably due to oxygen deficiency, not immersion alone.
  • 6.6. Recovery from bradycardia in air is rapid and not linked with resumption of aerial breathing.
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5.
  • 1.1. A charcoal adsorption assay demonstrated a large variance in androgen binding ability in female spotted hyaenas.
  • 2.2. A positive correlation between plasma androgen binding ability and ovarian steroid concentrations was demonstrated in adult females.
  • 3.3. The strong plasma binding affinity for testosterone and dihydrotestosterone (DHT) (nM) together with the lack of cortisol and weaker oestradiol-17β binding suggests that a specific androgen binding substance, possibly a protein, is present in adult females of this species.
  • 4.4. The lack of high affinity binding in male spotted hyaenas is unusual and deserves further investigation.
  • 5.5. Some androgen binding in all, including males and immature animals suggests that albumin may bind some plasma androgens in this species.
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6.
  • 1.1. In sea-water, adult salmon (S. salar) exchange an average of 12.6% of total body sodium/hr.
  • 2.2. Following transfer to fresh water sodium uptake follows Michaelis-Menton kinetics. Fmax = 2.40 mmol Na/1 ECF/hr, Km = 0.26 mmol Na/1. The uptake system is fully activated immediately following transfer to fresh water.
  • 3.3. Post smolts adapted to sea-water for 3 months take up sodium at only one third of the rate of adult fish following return to fresh water.
  • 4.4. The concentration of prolactin in the plasma is low in sea-water adapted fish and does not rise during the first 8 hr in fresh water.
  • 5.5. At pH 5 sodium uptake is reduced by almost 90%, even in the absence of aluminium, but recovers immediately on return to neutral water.
  • 6.6. At pH 5 and 20 μmol Al/1 there is little further effect on sodium uptake but after 6 hr in aluminium the inhibition of sodium uptake continues after return to neutral aluminium fresh water and uptake is only 50% of normal 24 hr later.
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7.
  • 1.1. Lipid changes occur in the developing tadpole of A. dacnicolor. The phosphatidylcholine content of liver and tail decrease during metamorphosis.
  • 2.2. In liver, the fatty acids of phosphatidylcholine and phosphatidylethanolamine become more unsaturated.
  • 3.3. In skin, phosphatidylcholine becomes more unsaturated and phosphatidylethanolamine becomes more saturated.
  • 4.4. In tail, phosphatidylcholine becomes more saturated and phosphatidylethanolamine shows no change.
  • 5.5. Triglycerides become more unsaturated in skin but become more saturated in tail.
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8.
  • 1.1. Freshwater nonanadromous rainbow trout, Salmo gairdneri, were injected three times a week with either saline, 10μg cortisol/g, 1.0μg thyroxine/g or 10μg cortisol/g + 1.0μg thyroxine/g during a period of 28 days (12 injections). A separate group was derived as a subgroup from the thyroxine group on day 14 and received Cortisol + thyroxine from day 14 until day 28 (six injections).
  • 2.2. Gill chloride cell number and Na+/K+-ATPase activity increased by cortisol treatment, the changes being significant on days 7 and 14, respectively.
  • 3.3. Thyroxine treatment did not affect gill Na+/K+-ATPase activity or chloride cell number directly. Neither did it modify the stimulatory effect of cortisol on these parameters.
  • 4.4. Muscle water decreased in cortisol-treated fish and increased in thyroxine-treated fish, while no changes were observed in the combined hormone groups.
  • 5.5. No changes were observed in plasma chloride in any group during the experiment.
  • 6.6. The results demonstrate a putative role of cortisol in stimulating hypo-osmoregulatory mechanisms and suggest that thyroxine is without a direct or a supportive effect for cortisol action.
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9.
  • 1.1. Diurnal and seasonal variations of certain aspects of carbohydrate and lipid metabolism to ovine prolactin (PRL) treatment in the goldfish, Carassius auratus, were examined.
  • 2.2. PRL treatment late in the light phase of a long photoperiod during spring depletes liver glycogen stores. During fall liver glycogen levels are not affected by PRL treatment in fishes acclimated to long or short photoperiods. PRL is hypoglycaemic in fall and spring.
  • 3.3. PRL administered late in the light phase of a long photoperiod during spring increases plasma and liver total lipids and plasma cholesterol, while decreasing plasma triglycerides. In fall PRL may increase or decrease plasma organic-bound P levels dependent upon injection time.
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10.
  • 1.1. Changes in the hemoglobins present in many vertebrates have been observed during development and during anemic episodes.
  • 2.2. A change in the number of hemoglobins present and their relative amounts was observed when adult Triturus cristalus newts were made anemic by injection of acetylphenylhydrazine.
  • 3.3. Hemoglobin IV, which is a minor hemoglobin in healthy adults, was found to be a major component during the subsequent erythropoietic response to hemolytic anemia.
  • 4.4. No new hemoglobin not already present in the non-anemic state was detected during the response to induced anemia.
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11.
  • 1.1. Plasma prolactin levels did not differ significantly between groups of birds collected at different times during the first year of life.
  • 2.2. In adult males and females, highest plasma prolactin concentrations were evident in June (20.7 ± 7.8 and 20.4 ± 4.4 ng/ml respectively), probably associated with the incubation of eggs and rearing of young in the nest, whereas plasma prolactin levels in adult males and females collected at other times of the year were relatively stable and did not differ significantly between groups.
  • 3.3. With the exception of the adults sampled in June, the prolactin levels in the adults were in the same range as those in the embryo gosling and yearling Snow Geese.
  • 4.4. The concentrations of fat in both mature and immature birds was not related to the plasma prolactin concentration; maximal concentrations of carcass fat were observed during the northerly migration whereas maximum concentrations of prolactin were observed at the end of incubation when fat deposits were depleted.
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12.
  • 1.1. The calcitonin content of the ultimobranchial body (UBB) and plasma levels of calcitonin, calcium and phosphate were measured in rainbow trout (Salmo gairdnerii) following their transfer from fresh to sea water.
  • 2.2. The plasma calcium level remained unchanged throughout the experiment while the UBB calcitonin content, plasma calcitonin and plasma phosphate rose significantly during the hours immediately following transfer.
  • 3.3. The levels of all three subsequently fall so that, 8–15 days later, a new equilibrium was established with lower than control (fresh water) levels of UBB calcitonin, plasma calcitonin and plasma phosphate.
  • 4.4. It would appear, from these data, that calcitonin plays some part in the endocrine regulation of sea water transfer.
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13.
  • 1.1. Experiments were performed to evaluate the effects of 8-arginine vasotocin on the effective water potential and on the hydraulic conductance of leopard frogs (Rana pipiens) during water uptake through their ventral integument.
  • 2.2. Vasotocin apparently decreases the effective water potential of intact frogs, thus bringing the effective water potential into close correspondence with the osmotic potential of extracellular fluids.
  • 3.3. Thus, well-hydrated frogs, which release little AVT, have effective water potentials considerably higher (more positive) than the osmotic potentials of their plasma, and therefore, demonstrate a diminished capacity to absorb water.
  • 4.4. Dehydrated frogs release AVT which causes their effective water potential to become essentially identical to the osmotic potential of their plasma.
  • 5.5. We hypothesize that the action of AVT is to mobilize water from the site of absorption by the frog, thereby resulting in maintenance of a high water potential gradient between the environment and the frog. and in increased rates of water uptake.
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14.
  • 1.1. Hatching Caretta caretta may lose up to 12% of their initial hatched weight from water loss during emergence from the nest.
  • 2.2. After subsequent osmotic and excretory water loss in sea water, hatchlings will drink sea water (166 μl 100 g−1 hr−1) and return to their initial weight within 10–15 days, without feeding.
  • 3.3. There were no significant changes in plasma osmolarity or sodium levels over this period.
  • 4.4. This osmoregulatory strategy is in marked contrast to that seen in the estuarine crocodile, Crocodylus porosus.
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15.
  • 1.1. Dogfish (Squalus acanthias) were acclimated to reduced salinities and their plasma, muscle tissue and erythrocytes subsequently analysed.
  • 2.2. Decrease in the osmolarity of the plasma was principally due to a fall in urea concentration and a significant fall in the concentrations of sodium and chloride.
  • 3.3. Changes in the muscle and erythrocytes in dilute media were a decrease in urea, potassium, sodium and chloride concentrations.
  • 4.4. The concentrations of the free amino acids in the muscle and the red blood cells decreased more than would be expected by the movements of water only.
  • 5.5. The results were discussed in relation to the regulation of cellular volume and the involvement of the free amino acid pool of the tissues in this process.
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16.
  • 1.1. Water turnover rate, glomerular nitration rate and renal plasma and blood flow rates have been measured in individuals of the Australian desert rodent Notomys alexis under conditions of acute and chronic water deprivation and high nitrogen diet.
  • 2.2. When these parameters are compared with values predicted allometrically the extreme ability of the species to conserve water is apparent only in those groups subjected to water stress.
  • 3.3. Whilst a reversible reduction in renal function is evident upon water deprivation, the major factor in water conservation under these conditions is the renal reabsorption of water at a post-filtration stage.
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17.
  • 1.1. Carp red cells were treated with drugs that affect the cell membranes. The water content of the cells and the accumulation of cAMP in the cells were measured in normoxia and in hypoxia using non-stimulated and adrenergically stimulated cells.
  • 2.2. WGA, DIDS + CCCP and A23187 increased the water content of nonstimulated normoxic cells.
  • 3.3. In hypoxia ouabain and DIDS + CCCP increased the water content but cytochalasin B, NPM, DIDS, CCCP and A23187 + CA2+ abolished the hypoxia-induced swelling.
  • 4.4. Any membrane perturbation induced some cAMP formation, Sophora and Anquilla lectins being most potent.
  • 5.5. Also in adrenergically stimulated cells, membrane perturbation generally increased cAMP formation.
  • 6.6. However, cAMP accumulation diminished in cells treated with cytochalasin B, CCCP and DIDS + CCCP.
  • 7.7. The adrenergic swelling of carp red cells was reduced in normoxia by DIDS. NPM and CCCP increased the adrenergic swelling in normoxia to hypoxic level.
  • 8.8. In hypoxia WGA and Anquilla lectin decreased the swelling.
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18.
  • 1.1. AMP deaminase from Palaemon serratus tail muscle was partially purified by chromatography on cellulose phosphate.
  • 2.2. Muscle homogenates expressed very low enzyme activities and the presence of ATP was necessary to detect AMP deaminase. The specific activity and substrate affinity of the purified enzyme were also very low.
  • 3.3. The purified prawn muscle AMP deaminase was contaminated by contractile proteins, one of the major contaminants being actin.
  • 4.4. The enzyme displayed a very high affinity for actomyosin which was only partially abolished by pyrophosphate.
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19.
  • 1.1. The capacity of five anuran Amphibians (Bufo viridis B. regularis, Rana ridibunda, Hyla arborea and Pelobates syriacus) to acclimate to NaCl and urea solutions was investigated.
  • 2.2. All species could be acclimated to relatively high concentrations of urea solutions, while only Bufo viridis and Hyla arborea could be acclimated to 500 mOsm/kg or higher NaCl solutions.
  • 3.3. The plasma urea concentration in B. viridis and H. arborea was elevated to levels over 140 mmol/1.
  • 4.4. The sum of plasma sodium and chloride concentrations did not increase over 400 mmol/l in any species.
  • 5.5. Urine osmolality, which was normally low, increased, but never exceeded the plasma osmolality.
  • 6.6. In the urea acclimation conditions, urine electrolytes diminished, similarly in all species in this study.
  • 7.7. It is concluded that anuran Amphibians can tolerate high plasma urea concentrations, but only those species which can elevate it, either through retention or net synthesis, can be acclimated to high salt solutions.
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20.
  • 1.1. Patterns of osmoregulation were studied in three species of Swan river atherinids (Leptatherina presbyteroides, lower estuarine and marine; Craterocephalus mugiloides, mid estuarine; Leptatherina wallacei, upper estuarine) over a wide range of salinities.
  • 2.2. The plasma Na+ concentration was elevated with an increase in salinity.
  • 3.3. Haematocrit and body water content decreased with acclimation to higher salinity.
  • 4.4. All three species of atherinids osmotically regulated over a salinity range greater than that which these fish are reported to occur in.
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