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1.
  • 1.1. Homogenates of gills from the freshwater shrimp M. amazonicum exhibit the following ATPase activities: (i) a basal, Mg2+-dependent ATPase; (ii) an ouabain-sensitive, Na+ + K+-stimulated ATPase; (iii) an ouabain-insensitive, Na+-stimulated ATPase; and (iv) an ouabain-insensitive, K+-stimulated ATPase.
  • 2.2. K+ suppresses the Na+-stimulated ATPase activity in a mixed-type kind of inhibition, whereas Na+ does not exert any noticeable effect on the K+-stimulated ATPase activity.
  • 3.3. The Na+- and the K+-stimulated ATPase activities are totally inhibited by 5 mM ethacrynic acid in the incubation medium.
  • 4.4. The Na+- and the K+-stimulated ATPase activities are not expressions of the activation of a Ca-ATPase.
  • 5.5. The possible localization and roles of the described ATPases within the gill epithelium are briefly discussed and evaluated.
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2.
  • 1.1. Activities of Na+-K+ ATPase and carbonic anhydrase were measured through the early post-embryonic development of Penaeusjaponicus. In adults, only the Na+-K+ ATPase activity was measured.
  • 2.2. ATPase activity was variable in the successive development stages. From zero in nauplii, the activity slightly increased in zoeae, and rose sharply in mysis stages 2 and 3.
  • 3.3. A further significant increase in activity was noted at the transition from late mysis to early postlarvae, concomitant with a change from the larval osmoconforming pattern of osmoregulation to the postlarval and adult hyper-hyporegulating pattern.
  • 4.4. The activity of Na+-K+ ATPase, measured in isolated cephalothorax, increased from PL3 to PL4 to its maximum value in PL5; at this stage, osmoregulatory capacity was fully efficient.
  • 5.5. In young stages of P. japonicus, the variations in Na+-K+ ATPase activity appear correlated with the development of osmoregulatory ultrastructures, and with osmoregulation and salinity tolerance.
  • 6.6. These results are discussed with regard to their ecological and physiological implications.
  • 7.7. In adults, the activity of Na+-K+ ATPase was high in gills and epipodites and no activity was detected in branchiostegites. These results are related to the ultrastructure of these organs.
  • 8.8. The activity of carbonic anhydrase did not change significantly in larval and postlarval stages.
  • 9.9. From these results, it is proposed that the effector sites of osmoregulation are located in branchiostegites, pleurae and epipodites in postlarvae, and in epipodites and mainly in gills in adults.
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3.
  • 1.1. Mineral balance was studied in meadow voles (Microtus pennsylvanicus) maintained in the laboratory.
  • 2.2. Urine and fecal Na+ contents of voles on low-Na+ diets were comparable to those reported for other herbivore species, but urine and fecal K levels were higher.
  • 3.3. Voles approached Na+ balance (input = output) on diets with Na+ content as low as 56 ppm.
  • 4.4. There was not a clearcut hypertrophy of the adrenal-gland zona glomerulosa in voles maintained on low-Na+ diets.
  • 5.5. Plasma K content and bone water content were higher in voles maintained on high-Na + vegetation diets, suggesting expansion of extracellular fluid volume.
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4.
  • 1.1. Ion dependence and vanadium-induced inhibition on branchial sac ATPase in five species of ascidian Phlebobranchiata (vanadium-accumulating) and Stolidobranchiata (iron-accumulating) were studied.
  • 2.2. The ATPase was obtained from the microsomal fraction, which was prepared from each ascidian branchial sac.
  • 3.3. The ATPase was dependent on Mg2+ and activated by exogenous Na+ + K+.
  • 4.4. Ouabain inhibited the ATPase activity in vitro, 10 μM to 100 μM vanadate, in vitro, suppressed the (Na+, K+)-ATPase.
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5.
  • 1.1. Na+,K+-ATPase, which mediates the active transport of Na+ and K+ across the plasma membrane, is found in equivalent amounts in both plasma membranes of the electrocyte, the anterior, non-innervated (fraction P2) and the posterior, innervated (fraction P3) obtained by differential centrifu gation of Electrophorus electricus (L.) electric organ.
  • 2.2. The kinetic effects of Hg2+ and A13+, described as neurotoxic metals, on the Na+,K+-ATPase activity of the two membrane fractions (P2 and P3) were analysed with respect to Na+ and K+ ions, after the I50 estimation of each metal.
  • 3.3. Mercury is a potent Na+,K+-ATPase inhibitor in the nanomolar range. In all cases, it behaved as a mixed partial hyperbolic inhibitor.
  • 4.4. Aluminum was shown to be a poor enzyme inhibitor. Changing the K+ concentration, it behaved as a mixed linear inhibitor (P2 fraction) and as a non-essential mixed activator (fraction P3). Aluminum behaved as a partial hyperbolic inhibitor for both P2 and P3 fractions with respect to Na+ concentration.
  • 5.5. The observation of the variable kinetic behaviour of P2 and P3 led us to attribute these differences to the Na+,K+-ATPase electrocyte isoenzymes which occur in different proportions in these fractions (Gomes-Quintana et al., 1992 Comp. biochem. Physiol.103B/3 623–628).
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6.
  • 1.1. Membrane-bound (Na+ + K+)-ATPase activity from the non-innervated and innervated faces of Electrophorus electricus (L.) electric organ, obtained by differential centrifugation, was measured using AChE as an enzyme marker for membranes derived from the post-synaptic area (fraction P3) of the electrolyte.
  • 2.2. The effect of Li+ and Ba2+ on (Na+ + K+)-ATPase activity of the two membrane fractions (P2 and P3) was analysed with respect to K+ and Mg2+ ions, after the I50 estimation.
  • 3.3. The kinetics of the reactions with these cations were investigated showing that Li+ inhibits P2 uncompetitively and for P3 presented a mixed type inhibition.
  • 4.4. Ba2+ behaved as an hyperbolic mixed type inhibitor for P2 and a linear mixed type inhibitor for P3 fraction.
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7.
  • 1.1. The properties of Na+/K+-transporting ATPase in microsomal fractions from the nervous tissue of the grasshopper, Poekilocerus bufonius were investigated.
  • 2.2. Two components of ATPase activity are present.
  • 3.3. Inclusion of 1 mM ouabain in the incubation media reduced the activity of total and Na+/K+-ATPase by 57 and 79%, respectively.
  • 4.4. The maximum velocity (Vmax) was decreased by the addition of 1 mM ouabain, whereas the apparent Km value was not affected indicating a non-competitive type of inhibition.
  • 5.5. The calculated value of the pI50 was 6.4 (I50 = 3.98 × 10−7M) for ouabain inhibition of the enzyme showing great sensitivity to the cardiac glycoside ouabain.
  • 6.6. The present results show that the physicochemical properties of Na+/K+-transporting ATPase from the brain of P. bufonius are essentially the same as for the enzyme prepared from the excretory system of the insect which has been previously investigated.
  • 7.7. Dissimilarities were also observed between these tissues in the way that the enzyme from the brain was sensitive to ouabain inhibition with a non-competitive type rather than a ouabain-resistance and a competitive type of inhibition for the enzyme from the excretory system.
  • 8.8. These dissimilarities are probably due to different isoenzyme patterns available in the same insect.
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8.
  • 1.1. Unidirectional Na+ influx in lamprey red blood cells was determined using 22Na as a tracer.
  • 2.2. Total Na+ uptake and amiloride-inhibitable Na+ influx increased in a saturable fashion as a function of external Na+ concentration (Nae).
  • 3.3. At 141 mM Nae, the average value of net Na+ influx was 13 ± 1.1 and the amiloride-sensitive Na+ influx was 5.3±1.1 mmol/l cells per hr (±SE).
  • 4.4. The amiloride-sensitive component of Na+ influx was significantly activated by 10−5 M isoproterenol, by 2 × 10−5 M DNP, and by cell shrinkage.
  • 5.5. Furosemide (1 mM) had no effect on the Na+ transport in red cells.
  • 6.6. The residual amiloride-insensitive component of Na+ transport was a linear function of Nae in the range of 5–141 mM. This transport seems to be accounted for by simple diffusion.
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9.
  • 1.1. Kidney, oesophagus and gill Na+-K+ ATPase activity and serum Na+, K+ and Cl concentrations are evaluated in European sea bass during experimental acclimation to fresh water.
  • 2.2. Kidney and oesophagus ATPase increase in low salinity and reach a maximum in fresh water.
  • 3.3. Gill ATPase decreases during the acclimation trials and rises again to normal values after a 3-week stay in fresh water.
  • 4.4. Na+ and K+ serum concentrations decrease during the trials and increase back after a 3-week stay in fresh water.
  • 5.5. The correlations between enzymatic activities, serum ion concentrations, morphological changes and environmental salinity are discussed.
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10.
  • 1.1. Eyestalk unablated and unilaterally ablated Penaeus monodon juveniles had survival rates after 5 months of 75–72.5 and 67.5–60%, respectively.
  • 2.2. Unilaterally ablated shrimps had significantly higher (P < 0.05) growth rate than unablated shrimps.
  • 3.3. Eyestalk-ablatement resulted in a decrease in the haemolymph sodium concentration and an increase in the potassium and calcium concentration of shrimps.
  • 4.4. The osmolarity of haemolymph and total protein concentration of unablated shrimps were demonstrated to be higher than those of unilaterally ablated shrimps.
  • 5.5. The eyestalk-ablated shrimps possess higher total ATPase and Na+,K+-ATPase activities in the gill than those of unablated shrimps.
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11.
  • 1.1. The influx and transepithelial movements of l-methionine and its effects on the electrophysiology and Na-Cl-transport in upper and lower intestine of the cultured fish, Spanis aurata, were measured.
  • 2.2. The Km and Vmax of l-methionine influx into the tissues were higher in lower intestine than in upper intestine. A prominent diffusion-like transport component was also measured in both segments during influx experiments.
  • 3.3. Net transepithelial fluxes of l-methionine (1 mM) were observed in both upper and lower intestine, this transport being Na+-dependent.
  • 4.4. The two intestinal segments exhibited an electrical potential difference (PD) and a short circuit current (Isc) serosa negative or near zero. Tissue conductance (Gt) was higher in posterior than in lower intestine.
  • 5.5. Addition of l-methionine to the mucosal side of lower or upper intestine did not induce changes in PD in either part.
  • 6.6. Isotopic fluxes of Cl or Na+ measurements under short circuit conditions showed that there were no net Cl or Na+ transport in either part.
  • 7.7. l-Methionine additions to the mucosa did not induce changes in unidirectional fluxes of Cl or Na+ or in the (Isc) in either the anterior or posterior intestine.
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12.
  • 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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13.
  • 1.1. In crayfish, light stimulation of the retinular cells induces a depolarizing receptor potential.
  • 2.2. Experiments were designed to determine the role of Na+ and Ca2+ on receptor potential during dark And light states.
  • 3.3. Depolarization depends on Na+ and Ca2+ availability to the retinular cell.
  • 4.4. Repolarization velocity and response duration depend on extracellular Ca2+ availability.
  • 5.5. Light adaptation increases receptor potential dependence on calcium and sodium ions.
  • 6.6. We analyse these results with respect to other invertebrate photoreceptors.
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14.
  • 1.1. Blood volume and plasma biochemical changes and feed and water consumption in response to a hemorrhage by phlebotomy of 30% of the calculated total blood volume with and without replacement of blood volume with physiological saline were determined in juvenile male Coturnix coturnix japonica.
  • 2.2. Plasma protein and osmolality decreased rapidly posthemorrhage and did not recover by 72 hr posthemorrhage.
  • 3.3. Plasma glucose, Na+ and K+ increased within Ihr postphlebotomy. Plasma Na+ returned to nonphlebotomized levels within 6 hr postphlebotomy.
  • 4.4. Saline replacement of blood volume resulted in hypervolemia within 3–5 min postphlebotomy.
  • 5.5. Phlebotomized quail receiving no saline recovered blood volume to 0 hr (nonphlebotomized) levels within l hr postphlebotomy.
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15.
  • 1.1. A pathway for a-methylnoradrenaline oxidation to α-methylnoradrenochrome, by tyrosinase, is proposed. Characterization of intermediates in this oxidative reaction and stoichiometry determination have both been performed.
  • 2.2. It has been possible to detect spectrophotometrically o-quinone-H+ as the first intermediate in this pathway after oxidizing α-methylnoradrenaline with mushroom tyrosinase or sodium periodate in a pH range from 5 to 6.
  • 3.3. The steps for α-methylnoradrenaline transformation into its aminochrome could be: α-methylnoradrenaline → o -α-methylnoradrenaline — H+oα -methylnoradrenalinequinone → leuko — α — methylnora — drenochrome→α-methylnoradrenochrome.
  • 4.4. No participation of oxygen was detected in the conversion of leuko-α-mehtylnoradrenochrome into α -methylnoradrenochrome.
  • 5.5. Matrix analysis of the spectra obtained with a rapid scan spetrophotometer verified that o-quinone-H+ was transformed into aminochrome in a constant ratio.
  • 6.6. The stoichiometry for this conversion followed the equation: 2 α-methylnoradrenalinequinone-H+α-methylnoradrenaline + α-methylnoradrenochrome.
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16.
  • 1.1. Weekly injections of bovine growth hormone (bGH) increased the maximal transport rate of both Na+-dependent and Na+ -independent l-leucine transport with little effect on the affinity constants in the intestine of striped bass hybrids.
  • 2.2. The Na+-dependent and the Na+-independent transport of the non-metabolizable analog cycloleucine was also stimulated by bGH.
  • 3.3. The Na+ -dependent active transport was stimulated 2 days after the hormone treatment, while the stimulation of the Na+-independent diffusional transport was not observed until after 2 weeks of treatment.
  • 4.4. Studies of intestinal morphometry and l-leucine transport using brush border membrane vesicles suggested that bGH affects intestinal amino acid absorption initially by increasing the number of transporters per cell.
  • 5.5. This phase is followed by a general increase of the intestinal mass after long-term treatment with the hormone.
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17.
  • 1.1. Behavioural observations and haemolymphatic measurements of Na+ K+ and Ca+ were performed in Chasmagnalhus granulata during emersion.
  • 2.2. Activity levels were found to be higher during voluntary emersion periods than when the animals were submerged. A lt50 of 39.45 hr was observed when no access to water was allowed.
  • 3.3. The Na+ and K+ and Ca+ levels increased during aerial exposure. The Na+ and K+ levels were restored prior the end of the experimental period. Mechanisms for such regulation are therefore discussed. The Ca2+ levels, remaining high during emersion, are probably a result of acid-base balance adjustments.
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18.
  • 1.1. Adenine nucleotide concentrations and metabolism in red blood cells (RBC)2 and RBC ghosts from psoriatic patients and healthy subjects were compared.
  • 2.2. The ATP and total adenine nucleotide levels and the adenylate energy charge (EC) were elevated in the blood from psoriatic patients.
  • 3.3. The rate of glycolytic production of ATP by intact RBC was unchanged, but the Na+, K+-ATPase activity of RBC ghosts was decreased significantly in psoriasis.
  • 4.4. Results suggest that the defect in adenine nucleotide metabolism is a systemic manifestation of psoriasis, and that the quantification of adenine nucleotides in RBC and in whole blood samples may be of pathophysiological value in psoriatic lesion.
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19.
  • 1.1. In brush border membrane vesicles isolated from eel kidneys, adapted either to sea water or freshwater environments, a Na+/H+ antiporter is present.
  • 2.2. Using a calibration plot it is possible to evaluate the amount of protons that this antiporter can accumulate inside the vesicular space.
  • 3.3. The activity of the antiporter seems to be affected by the salinity of the water; it is higher in animals adapted to seawater.
  • 4.4. This adaptation seems to occur by a Jmax regulation of the antiporter.
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20.
  • 1.1. The (Na+ + K+)- and Na+-ATPases, both present in kidney microsomes of Sparus auratus L., have different activities and optimal assay conditions as, in the first of the two stocks of fish used (A), the spec. act. of the former is 51.7 μmol Pi mg prot−1 hr−1 at pH 7.5, 100 mM Na+, 10 mM K+, 17.5 mM Mg2+, 7.5 mM ATP and that of the latter is 6.5 μmol Pi mg prot−1 hr−1 at pH 6.5, 40 mM Na+, 4.0 mM Mg2+, 2.5 mM ATP.
  • 2.2. Ouabain and vanadate specifically inhibit the (Na+ + K+)-ATPase but not the Na+-ATPase that is preferentially inhibited by ethacrynic acid.
  • 3.3. While the (Na+ + K+)-ATPase is strictly specific for ATP and Na+, Na+-ATPase can be activated by various monovalent cations and, apart from ATP, hydrolyses CTP, though less efficiently.
  • 4.4. The second stock B, subjected to higher salinity than A, shows an acidic shifted Na+-ATPase optimal pH, opposed to the stability of that of the (Na+ + K+)-ATPase, a decreased (Na+ + K+)-ATPase and a strikingly depressed Na+-ATPase.
  • 5.5. The results are compared with literature data and discussed on the basis of the presumptive different roles as well as functional prevalence in various salinities of the two ATPases.
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