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1.
  • 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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2.
  • 1.1. The transport of amino acids into membrane vesicles prepared from epidermal tentacle tissue of the sea anemone, Anemonia sulcata, depends on an electrochemical potential difference caused, e.g. by sodium chloride gradients.
  • 2.2. Potassium or choline chloride gradients energized the transport less effectively than sodium chloride gradients. Both Na+-ions and Cl-ions were required for the amino acid transport.
  • 3.3. The uphill transport of amino acids along the downhill movement of driver ions (sodium chloride gradient conditions) was characterized by an overshoot; under sodium chloride equilibrium conditions, however, an accumulation of amino acids within the vesicles could not be measured.
  • 4.4. Potassium diffusion potentials in combination with valinomycin indicated that hyperpolarization (vesicle inside negative) and hypopolarization (vesicle inside positive) enhanced or depressed the accumulation of amino acids within the vesicles.
  • 5.5. Being at the phylogenetic base of the Eumetazoa, cnidarians show characteristics for the transmembrane transport of amino acids comparable to those established for vertebrates.
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3.
  • 1.1. Metabolism of tritiated water and 22sodium was studied in six beef cows under Mediterranean summer conditions in order to find whether the turnover of these tracers can be used to evaluate pasture intake.
  • 2.2. The diet of the cows included ad libitum access to two components which were given separately in different troughs: one was poultry litter and the other was wheat straw, to simulate the dry pasture.
  • 3.3. Voluntary daily dry matter intake (111 g/kg0.75) was unexpectedly high considering the low digestibility of the feed.
  • 4.4. The assumptions of constant ratios of water intake to water turnover and of dry matter intake to water intake were confirmed. Consequently, dry matter intake was determined accurately from water turnover measurements.
  • 5.5. Sodium intake was practically equal to sodium turnover and most of the sodium secreted in feces was of endogenous origin.
  • 6.6. Pasture intake can be predicted from sodium turnover once the concentration in feed and water consumed is known.
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4.
  • 1.1. The role of aldosterone on active potassium transport across lizard colon under voltage-clamped conditions has been investigated.
  • 2.2. Control colons exhibited no net potassium flux (Jknet) despite of the existence of active opposite unidi ectional fluxes.
  • 3.3. An important net secretory potassium flux was found in short-circuited aldosterone-stimulated colons.
  • 4.4. Mucosal amiloride did not change (Jknet) either in control or aldosterone-stimulated colons.
  • 5.5. Luminal barium alters K + transport in a manner consistent with the presence of barium-sensitive conductances at the apical membrane of both control and aldosterone-treated colons.
  • 6.6. The effects of ouabain and barium on control and aldosterone-induced potassium flows were consistent with a model involving basolateral uptake by an Na +-K +-ATPase and conductive exit across the apical membrane.
  • 7.7. The stimulatory effect of aldosterone on potassium secretion is associated with parallel increases of both basolateral K + entry and the apical conductive pathway.
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5.
  • 1.l. High amino acid concentrations were found in the anterior coelomic fluid of a Polychaeta (Sabella pavonina Savigny).
  • 2.2. The concentrations being much higher in the fluid which penetrates the nephrostomia into the nephridia lumen than in the final urine indicates that the nephridia reabsorbs large amounts of amino acids.
  • 3.3. Nephridial perfusion experiments showed that an amino acid analogue (α-amino-iso-butyric acid, AIB) is transported by the nephidia.
  • 4.4. The transport took place across the nephridial wall owing to the presence of a carrier-mediated transport system and a diffusion system.
  • 5.5. For the carrier-mediated transport, the Vmax was 0.234 ± 0.025 nmol·min and the Km 3.715 ± 0.315mmol·l.
  • 6.6. AIB accumulated in the nephridial cells up to a maximum rate of 01.17 nmol·min.
  • 7.7. Intracellular accumulation stopped increasing when the Vmax for reabsorption was reached.
  • 8.8. These results indicate that the carrier-mediated transport of AIB is located at the apical membrane of the nephridial cell, and that AIB transport by simple diffusion takes place through the paracellular pathway.
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6.
  • 1.1. Studies characterizing glucose transport in the frog sartorius were performed.
  • 2.2. For nonstimulated and stimulated muscles, intracellular 2-deoxyglucose exceeded 2-deoxyglucose-6-phosphate at 15 min, showed little further increase, and was maintained below the extracellular concentration for 2 hr.
  • 3.3. Accumulated 2-deoxyglucose-6-phosphate did not inhibit glucose transport.
  • 4.4. Unlike in adipocytes, basal and stimulated 2-deoxyglucose transport showed no difference in sensitivity to N-carbobenzoxy-glycyl-l-phenylalaninamide.
  • 5.5. Phenylarsine oxide blocked contraction-enhanced 2-deoxyglucose uptake.
  • 6.6. These results suggest that the glucose transporter of the sartorius exhibits auto-regulation, and that basal transport is not regulated by the same process as in adipocytes.
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7.
 
  • 1.The levels of water, Na, K, Ca and Mg in blood serum, brain and kidney and aldosterone level in blood of Naja haje haje were studied during the different phases of the annual cycle.
  • 2.The water content in the tissues studied displayed only minor changes as the animals passed from one phase to the other.
  • 3.A significant increase in Na was recorded in the brain during the different phases indicating a depressed sodium pump, whereas the blood Na level showed a significant decrease during hibernation.
  • 4.K increased in blood serum, brain and kidney during hibernation, while a nonsignificant decrease was found in blood serum during arousal. The brain may act as a potassium reservoir.
  • 5.An increase in Ca and Mg concentration was recorded in blood serum, brain and kidney during prehibernation and hibernation. The data suggested a homeostatic function in the transport and metabolism of these cations.
  • 6.Aldosterone exhibited a highly significant decrease especially during hibernation. The aldosterone regulation of ionic composition is discussed.
  • 7.Na/K and Ca/Mg ratios in the brain may explain the decreased excitability during winter torpor.
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8.
  • 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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9.
  • 1.1. Respiratory trees of Holothuria glaberrima exposed to solutions in which sodium has been replaced by choline, Tris pH 6.1, Tris pH 8.0 or lithium show a net loss of intracellular water, potassium, sodium and chloride. Intracellular content of neutral orgainc osmotic effectors remains unmodified.
  • 2.2. Extracellular lithium and Tris pH 8.0 decrease intracellular potassium concentration to half that in sodium, choline and Tris pH 6.1. Intracellular sodium concentration falls markedly while that of chloride falls moderately in sodium-free solutions. Sodium substitutes appear to enter the cells.
  • 3.3. A model based on Donnan considerations accounts for the patterns of ion and water distribution.
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10.
  • 1.1. Cells of tentacles and body wall of the sea anemone Condylactis gigantea behaved as simple osmometers during 5hr exposure to 50, 67, 83, 100 and 125% sea-water.
  • 2.2. All intracellular water appeared to be osmotically active.
  • 3.3. Cell sodium, chloride and total osmolyte content remained invariable, with taurine decreasing and potassium increasing as sea-water concentration was reduced.
  • 4.4. Tissues, as a whole, exhibited a pseudoregulatory response to changes in salinity as the large and osmotically inert extracellular space buffered volume changes to a considerable extent.
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11.
  • 1.1. The mechanism of action of disulfiram on the respiratory electron transport system of the liver mitochondria was studied in vitro.
  • 2.2. Disulfiram inhibited the respiration supported by malate-glutamate as well as succinate.
  • 3.3. Mitochondrial respiration inhibition was dependent upon alteration of —SH groups.
  • 4.4. The inhibitory action of disulfiram might be related to the crosslinking of several proteins of the inner mitochondrial membrane.
  • 5.5. The effects described above could be attributed to disulfiram per se and not to the main metabolite diethyldithiocarbamate.
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12.
  • 1.1. Pseudomonas aeruginosa phospholipase C from culture supernatants of bacteria grown in high-Pi basal salt medium with choline, as the sole carbon and nitrogen source, was purified by precipitation with 70% saturation ammonium sulfate in the presence of celite.
  • 2.2. The PLC activity was eluted of this mixture by the use of a reverse gradient of 70-0% ammonium sulfate.
  • 3.3. The peak containing the PLC activity revealed a single protein after SDS-PAGE.
  • 4.4. The method could also be applied to purify PLC produced in a low-Pi complex medium. The resultant preparation was not homogeneous.
  • 5.5. The molecular weight for both PLC preparations was about 70 kDa.
  • 6.6. Both PLC used phosphatydilcholine and sphingomyelin as substrates, displayed hemolytic activity an exhibited an apparent KM of 25 mM for p-nitrophenylphosphorylcholine.
  • 7.7. They were not inhibited by 1% sodium deoxycholate but were 30% inhibited by 1% Triton X-100.
  • 8.8. 2% sodium dodecylsulfate and 1% tetradecyltrimethylammonium bromide inhibited the PLC from the HPl-BSM plus choline but not the enzyme from the LPl-CM.
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13.
  • 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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14.
  • 1.1. American crocodiles (C. acutus) weighing less than 200 g are unable to grow when kept in 35 ppt sea water in the laboratory. Yet paradoxically there are some highly saline areas in south Florida where rapid growth occurs. It is possible that these conflicting observations can be reconciled by behavioral osmoregulation of young crocodiles.
  • 2.2. Hatching occurs during the rainy season and small crocodiles may drink from the brackish “lens” available during and after rainfall.
  • 3.3. Using a weekly regime of alternating exposure to 35 ppt (6 days) and 4 ppt (12–24 hr), it has been demonstrated that growth of small crocodiles occurs. Feeding takes place primarily when brackish water is available. Salinities as high as 18 ppt were drunk when crocodiles were dehydrated by 15–20% of initial mass.
  • 4.4. C. acutus and Alligator have a rather low rate of water efflux in sea water (0.2ml/100g-hr).
  • 5.5. Sodium influx in sea water of C. acutus is low, but higher than efflux. Thus there is no evidence yet for a significant role of the lingual salt glands in sodium excretion.
  • 6.6. The major adaptations to saline water of hatchling C. acutus are a low intake of sodium, an ability to selectively drink water of lower salinities, and to grow very rapidly (within 3–4 months) to a size much more tolerant of immersion in 35 ppt sea water.
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15.
  • 1.1. The effect of myo-inositol on the ability of three species of nematodes to survive desiccation has been studied.
  • 2.2. Survival rates obtained from worms treated with an inositol bathing medium were compared with survival rates of worms treated with distilled or tapwater media.
  • 3.3. Highest survival rates were found in those nematodes that were placed in an inositol solution prior to desiccation.
  • 4.4. Tapwater facilitated higher revival rates than did distilled water in both D. dipsaci and D. myceliophagous.
  • 5.5. No such differences were found for A. tritici.
  • 6.6. The results are discussed in relation to the possible mechanisms of protection afforded by the different bathing media.
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16.
  • 1.1. Active transport of d-glucose was shown using intestinal sac preparations, in vitro, made from two marine fish, the scup, Stenotomus versicolor and the puffer, Spheroides maculatus.
  • 2.2. Differences in absorption characteristics were evident in populations from year to year.
  • 3.3. Anaerobiotic conditions, i.e. 100 per cent nitrogen gassing of the incubation medium, inhibit the active transport of d-glucose in scup and puffer intestine.
  • 4.4. Phlorizin, 5 × 10−4 M, inhibits the active transport of d-glucose in scup intestine.
  • 5.5. Intestinal transmural glucose transport mechanisms operate well at incubation temperatures, 20°–27°C, i.e. temperatures close to habitat and holding tank temperatures, whereas movement of the sugar against a concentration gradient is interrupted at higher incubation temperatures, 29° and 30°C.
  • 6.6. Detailed comparison of procedures and results with those used by other workers in the field of in vitro intestinal absorption of poikilotherms suggests that aerobic metabolism may not be a uniformly significant energy source in intestinal active transport.
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17.
  • 1.1. The oxygen consumption of red and green Carcinus in normoxic and hypoxic sea water was determined, using an oxygen electrode in a sealed respirometer.
  • 2.2. The red crabs had significantly higher “excited” oxygen uptake rates and a lower ability to compensate for hypoxia than the green crabs.
  • 3.3. Red Carcinus display an emersion response to declining oxygen at lower oxygen tensions than the green crabs.
  • 4.4. Mortality of red crabs exposed to prolonged anoxia was much greater.
  • 5.5. The relationship of these findings to the zonation of the two colour forms on the shore is discussed.
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18.
  • 1.1. In the leopard frog, Rana pipiens, in vivo Ca loss occurs in similar amounts across the skin and the urine. No change was detected in Ca loss when frogs were injected with either calcitonin or parathyroid hormone. Large doses of 1,25-(OH)2vitamin D3 increased urinary Ca loss.
  • 2.2. 45Ca accumulation across the skin in vivo each day is equivalent to 0.04% of total body Ca or 14% of the total Ca in the extracellular fluids. This accumulation was enhanced by prior adaptation of the frogs to a low Ca pond water.
  • 3.3. Unidirectional influx (from 0.2 mM Ca on pond side) was remarkably similar in vitro: 0.56 and in vivo: 0.65 nmol cm−2 h−1. Based on in vitro measurements, an active transport process does not appear to be involved in this transcutaneous Ca movement.
  • 4.4. Substantial deposits of Ca equivalent to five times the total in other “soft” tissues and eleven times that in the total extracellular fluids are found in R. pipiens skin.
  • 5.5. Although cutaneous Ca does “turnover” slowly as shown by exchange with external 45Ca. the skin Ca concentration does not change with the environmental Ca concentration.
  • 6.6. Possible role(s) of cutaneous Ca in frogs' overall Ca metabolism are discussed.
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19.
  • 1.1. Orchestia gammarellus maintained in air and provided with food in the form of agar was found to be very tolerant of changes in the ionic content of the food and was shown to have well-developed powers of ionic regulation over the salinity range 5–40‰ at 10°C.
  • 2.2. There was an inverse relationship between haemolymph protein and acclimation salinity.
  • 3.3. The concentration of sodium and protein ions in the haemolymph of O. gammarellus from above high water mark (H.W.M.) was markedly different from animals collected below H.W.M. Individuals taken from above H.W.M. characteristically had low haemolymph sodium but elevated haemolymph protein concentrations.
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20.
  • 1.1. Morphological similarities and differences for the urticating apparatus of three Lepidoptera were studied using a scanning electron microscope.
  • 2.2. Complementary anatomical studies of the urticant apparatus were undertaken to explain the morphological results.
  • 3.3. Biochemical identity of a thaumetopoein-like protein (an urticating protein) was demonstrated for Thaumatopoea urticating hairs but not for Hylesia moth spicules.
  • 4.4. Urticating mechanisms appear to be different across species of Lepidoptera.
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