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1.
  • 1.1. A half platelet preparation from Chinese crab (Eriocheir sinensis) gill is described which allows electrophysiological investigations of ion transport by gill epithelial monolayer when mounted in a modified Ussing chamber.
  • 2.2. The resistance of these preparations equals half that of complete gill platelets (containing the gill epithelium and cuticle twice) indicating that cell damage during preparation of half platelets is negligible.
  • 3.3. The transepithelial resistance (resistance of cuticle subtracted previously) was determined to be about 140 Ω cm2 when both sides are bathed with identical salines.
  • 4.4. Similarities to the results obtained with perfused complete gills demonstrates the reliability of this preparation.
  • 5.5. When identical salines are applied on both sides of the epithelium an outside positive transepithelial potential difference (PDte) up to 40 mV was measured.
  • 6.6. The occurrence of such a high PDte under symmetric conditions and its sensitivity to CN suggests the PDte to be generated by active transport processes.
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2.
  • 1.1. Subcellular distribution of (NA+, K+-ATPase and ouabain-insensitive ATPase (Mg2+-ATPase) are compared in branchial tissues of the euryhaline crab, Eriocheir sinensis, acclimated to fresh water.
  • 2.2. Both the anterior and posterior gills contain cAMP-dependent protein kinase and endogenous protein substrate for phosphorylation.
  • 3.3. Phosphorylation occurs in both “particulate” and “soluble” subcellular fractions but its stimulation by cAMP is restricted to the “soluble” fraction.
  • 4.4. serotonin (5-HT) and dopamine receptors are present only in the “light particulate” fraction isolated from the posterior gills.
  • 1.(a) Serotonin and dopamine have no effect on the phosphorylation observed in a subcellular fraction alone.
  • 2.(b) Activation of the phosphorylation by serotonin and dopamine is found when the soluble fraction (source of cAMP-dependent protein kinase) is added to the fraction P3 from the posterior gills.
  • 3.(c) No activation occurs with the fractions P3 as well as P1 or P2 (not shown) from anterior gills of fresh water crab.
  • 4.(d) Cyproheptadine, a serotonin receptor antagonist, inhibits the 5-HT dependent increase in phosphorylation.
  • 5.(e) The dopamine receptor antagonist, chlorpromazine, inhibits dopamine-stimulated phosphorylation.
  • 6.5. Ouabain mimics the effect of cyproheptadine on the serotonin-stimulated phosphorylation found in the posterior gills.
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3.
  • 1.1. The actions of piroxicam, a nonsteroidal and noncarboxylic anti-inflammatory drug, on the metabolism of the isolated perfused rat liver were investigated. The main purpose was to verify if piroxicam is also active on glycogenolysis and energy metabolism, as demonstrated for several carboxylic nonsteroidal anti-inflammatories.
  • 2.2. Piroxicam increased oxygen consumption in livers from both fed and fasted rats.
  • 3.3. Piroxicam increased glucose release and glycolysis from endogenous glycogen (glycogenolysis).
  • 4.4. Gluconeogenesis from lactate plus pyruvate was inhibited.
  • 5.5. The action of piroxicam on oxygen consumption was blocked by antimycin A, but not by atractyloside.
  • 6.6. The action of piroxicam in the perfused rat liver metabolism seems to be a consequence of its action on mitochondria.
  • 7.7. It can be concluded that inhibition of energy metabolism and stimulation of glycogenolysis are not specific properties of carboxylic nonsteroidal anti-inflammatory drugs.
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4.
  • 1.1. The interaction of insulin with purified brush-border membranes from rat kidney was studied with the use of [125I]insulin.
  • 2.2. The specific binding of insulin by brush-borders could be demonstrated, and was time- and temperature-dependent.
  • 3.3. [125I]insulin was displaced by unlabelled insulin. A1-B29 dodecoyl insulin and insulin A- and B-chains in proportion to their relative bioactivity.
  • 4.4. Brush-border membranes showed high insulin-degrading activity with an apparent Km of 2.2 μM.
  • 5.5. A number of proteinase inhibitors were effective in inhibiting insulin degradation but the greatest degree of inhibition was achieved by the use of thiol-blocking reagents.
  • 6.6. No evidence was obtained for the involvement of the enzyme glutathione-insulin transhydrogenase.
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5.
  • 1.1. L-Glutamine conversion into ammonia, urea and glucose by the perfused liver of 48 hr starved guinea-pigs was concentration dependent attaining the maximal rate at 4 mM.
  • 2.2. The activity of glutaminase I (EC 3.5.12), measured in isolated liver mitochondria was high enough to account for the observed rate of ammonia, urea and glucose formation by the perfused liver. Neither NH4C1 (5 mM) nor aminooxyacetate (0.5 mM) affected the rate of glutamine conversion into glutamate by isolated liver mitochondria.
  • 3.3. Gluconeogenesis and ureogenesis from glutamine was inhibited by octanoate, Dt-3-hydroxybutyrate, aminooxyacetate, ethanol and p-hydroxyphenylpyruvate while ammonia formation was stimulated by aminooxyacetate. 2,4-Dinitrophenol stimulated the rate of the formation of all three metabolites from glutamine.
  • 4.4. The major changes induced by aminooxyacetate, as determined in livers perfused with glutamine and stopped by freeze-clamping technique, consisted in a decrease in the content of ATP, aspartate and malate and in a slight increase in the content of glutamate.
  • 5.5. Glutamine is an effective precursor of phosphoenolpyruvate in isolated liver mitochondria. Its formation was inhibited by octanoate and by DL-3-hydroxybutyrate.
  • 6.6. The data are discussed in terms of regulation of glutamine catabolism in liver with emphasis on ureogenesis and gluconeogenesis.
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6.
  • 1.1. The subcellular distribution of nine transition metals (plus four additional elements) was measured in the kidney tissue of the quahog, Mercenaria mercenaria.
  • 2.2. Elemental analyses of the subcellular fractions indicated three main patterns of metal distribution within kidney cells.
  • 3.3. Barium, iron, manganese and lead were associated primarily with kidney granules.
  • 4.4. Cadmium, copper, potassium and magnesium were found mainly in the cytosolic fraction.
  • 5.5. Calcium, phosphorus and zinc were found in all isolated fractions, probably reflecting the important roles that these elements play in bivalve metabolism.
  • 6.6. The organelle composition of the isolated subcellular fractions was determined using marker enzyme assays and microscopic techniques.
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7.
  • 1.1. A non-radioisotopic method utilizing a biotin-avidin approach was used to characterize lactoferrin binding to the clonal MAC-T bovine mammary epithelial cell line.
  • 2.2. Binding of lactoferrin to MAC-T cells and isolated membranes was specific and saturable.
  • 3.3. Unlabeled lactoferrin competed for and displaced biotin-labeled lactoferrin from binding sites on mammary epithelial cells. In contrast, unlabeled transferrin did not compete.
  • 4.4. Scatchard analysis of lactoferrin binding to MAC-T cell crude membranes was nonlinear, revealing two classes of binding sites with association constants (Ka) of 2.36 × 107 and 3.36 × 106M−1.
  • 5.5. Binding of lactoferrin to MAC-T cells may be associated with the initial events which result in decreased MAC-T cell proliferation.
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8.
  • 1.1. Replacing chloride (Cl) with sulfate (SO42−) in the bathing medium drastically reduced the mucosal membrane potential difference (ψm).
  • 2.2. The voltage divider ratio was significantly greater than one.
  • 3.3. Mucosal d-glucose decreased the input resistance of the intestinal epithelium.
  • 4.4. Addition of furosemide to the mucosal bathing medium inhibited transepithelial potential difference and short-circuit current.
  • 5.5. Addition of SITS to the mucosal bathing medium partially inhibited transepithelial potential difference and short-circuit current.
  • 6.6. Diffusion potentials in the intestinal epithelium were symmetrical.
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9.
  • 1.1. A standard procedure for lipid-extraction of lyophilized hen brain material is decribed.
  • 2.2. Nine carboxylesterase isoenzymes (EC 3.1.1.1) are identified in lipid-extracted lyophilized material (LELM) using kinetic analysis of organophosphate inhibition. Total phenyl valerate (PV) hydrolysing carboxylesterase activity in LELM is 43.3U.g−1
  • 3.3. Two carboxylesterase isoenzymes of LELM are classified as neurotoxic esterases (NTEA and NTEgB).
  • 4.4. Using n-octylglucoside 51% of the water-insoluble neurotoxic esterase activity from LELM are solubilized.
  • 5.5. Six carboxylesterase isoenzymes including NTEA (6.5 U-l−1) and NTEB (4.2 U-l−1) are present in the solubilized preparation.
  • 6.6. Throughout purification and separation steps carboxylesterase isoenzymes are identified by their rate constants for the reaction with organophosphorus inhibitors.
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10.
  • 1.1. Superoxide was generated during the auto-oxidation of the antituberculous drug, isonicotinic acid hydrazide (INH), but not with its meta-isomer, nicotinic acid hydrazide (NH). During Fe2+-stimulated oxidation of INH and NH, aromatic hydroxylation occurred which was inhibited by the chelating agent, phytic acid.
  • 2.2. A mixture of myeloperoxidase (MPO) and a hydrazide induced formation of compound III (oxyperoxidase) and aromatic hydroxylation which was stimulated by phytic acid. INH was considerably more potent than NH.
  • 3.3. Co-oxidation of a hydrazide and thyroxine (T4) in the MPO system resulted in the formation of a pink-coloured product (maximum absorbance at 504 nm) which was more stable with NH than with INH.
  • 4.4. The hydrazides and Cl acted synergistically on MPO haem modification when co-oxidised in the MPO-H2O2 system. INH was more destructive than NH.
  • 5.5. The different oxidative pathways of the hydrazides are consistent with the fact that an acyl intermediate of INH, unlike that of NH, is resonance stabilized.
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11.
  • 1.1.|The high-energy phosphorylation metabolism in crayfish, Procambarus clarkii eggs during brooding and juvenile crayfish after hatching was studied by in vivo31P nuclear magnetic resonance (31P NMR) spectroscopy.
  • 2.2.|Inorganic phosphoric acid (Pi) and adenosine-5′-triphosphate ATP(γ-,α-,β-) were detected in the dark brownish red eggs after oviposition.
  • 3.3.|In orange unhatched eggs, only sugar phosphate (SP), Pi and resolved phosphometabolite from ATP were observed.
  • 4.4.|Peaks of SP, Pi, arginine phosphate (Arg-P), and ATP (γ,α,β) appeared in larvae of crayfish after hatching (nauplius, zoea and juvenile crayfish).
  • 5.5.|The high-energy phosphorylation metabolism changed to an anaerobic condition along with a decrease in the concentration of dissolved oxygen in fresh water.
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12.
  • 1.1. Experiments performed on isolated hepatocytes and perfused liver of starved chickens showed that gluconeogenesis from lactate, glycerol and fructose was inhibited by 22–100% on addition of urate precursors.
  • 2.2. The inhibition was associated with an increased rate of urate formation.
  • 3.3. 2,4-Dinitrophenol (40 μM), 2-bromooctanoate (2 mM) and 3-mercaptopicolinate (3MPA) (0.5 mM) were inhibitory with respect to gluconeogenesis but did not significantly affect the rate of urate formation.
  • 4.4. The possible interrelationships between gluconeogenesis and uricogenesis are considered in terms of a competition for ATP and for other metabolites between the two pathways.
  • 5.5. An interplay of both pathways at the level of anion transfer across the inner mitochondrial membrane is also discussed.
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13.
  • 1.1. A method is described to measure cytosolic and mitochondrial metabolites in isolated kidney tubule suspensions.
  • 2.2. With the use of digitonin, 95% of cytosolic metabolites are released into the supernatant fraction whereas mitochondrial matrix enzymes are retained in the pellet fraction.
  • 3.3. In a study of adaptation to acidosis, different α-oxoglutarate gradients between the tubular cell compartments are obtained, when medium pH is changed from 7.0 to 7.8.
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14.
  • 1.1. In rat heart perfused with adenosine (10−6M), dilazep (10−4M) inhibited incorporation of adenosine into nucleotides (an index of nucleoside transport and phosphorylation) to a greater extent (70%) than metabolism to inosine and uric acid (40%) and actually increased the recovery of inosine to 30% of the adenosine infused.
  • 2.2. Extrapolating for complete inhibition of transport suggested that 60% of adenosine metabolism was intracellular and 40% extracellular.
  • 3.3. Static incubations of atria also gave an estimate for extracellular metabolism of 40%.
  • 4.4. Adenosine deaminase was localised by immunocytochemistry to the extracellular surface of endothelial cells of small coronary arteries.
  • 5.5. Extracellular deamination may explain the lack of effect of nucleoside transport inhibitors on responses to adenosine in rat heart.
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15.
  • 1.1. Total content of DNA and RNA in liver, kidney and spleen were measured in young and aged rats. At the same time the incorporation of [14C]thymidine, a DNA precursor, and [3H]uridine, an RNA precursor, were also determined.
  • 2.2. Changes in total organ DNA and RNA correlated with sexual maturation as did incorporation of precursors.
  • 3.3. Young animals have more DNA per organ relative to RNA. with kidney and spleen DNA showing a decrease between maturity and senescence.
  • 4.4. However, liver RNA increases with age. a change probably due to decreased catabolism of RNA since [3H]uridine uptake decreases.
  • 5.5. Liver polyploid differentiation, and [14C]thymidine and [3H]uridine uptake, are correlated.
  • 6.6. In kidney, incorporation of [3H]uridine is inversely related to [14C]thymidine incorporation.
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16.
  • 1.1. When two male mice fight to establish social rank, the subordinate exhibits marked splenomegaly, reticulocytosis and decreased hematocrit.
  • 2.2. Individuals were isolated at weaning, paired 3 weeks later for two 30-min encounter periods daily for up to 3 weeks.
  • 3.3. After 2 days and 1 week encounter periods, subordinates had significantly decreased levels of hemoglobin in the kidney compared to dominants and controls.
  • 4.4. Subordinates had increased ATP levels in blood after 1, 2 and 3 weeks of encounter, bone marrow erythroid hyperplasia, as well as a substantial increase in the erythropoietin litre and Fe59 incorporation in spleen and blood.
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17.
  • 1.1. The non-specific hen's egg yolk alkaline phosphatase is a metalloprotein (Zn2+?) composed of two identical inactive subunits.
  • 2.2. A second metal site preferably binds Mg2+ (15-fold activation). Me(II))H2O)H+, a charged arginine, and tyrosine in the active site are involved in positioning and binding of the substrate and metal ion.
  • 3.3. Substrate inhibition differs with pH. This may be related to the presence of two active sites in the enzyme, one in each subunit.
  • 4.4. Uncompetitive inhibition with L-phenylalanine and analogues suggests a phosphorylated intermediate.
  • 5.5. Inhibition is weakly competitive with Pi strong non-competitive with PPi as compared to Mg2+-free PPi, and partially competitive with arsenate.
  • 6.6. The purified enzyme is stabilized and activated by amines and proteins.
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18.
  • 1.1. A study has been made of phosphate-containing metabolites in single barnacle muscle fibers using phosphorus-31 nuclear magnetic resonance.
  • 2.2. Spectra from single fibers (∼50 mg in wet weight) show major resonances from sugar phosphates, inorganic phosphate, arginine phosphate and the α, β and γ phosphorus atoms of ATP.
  • 3.3. The approximate “free” concentration of each metabolite was determined by integration of the spectrum, using a sample of 1 M-methylene diphosphonic acid as a reference. A notable feature of the results obtained is that the concentrations of SP&Pi in freshly dissected fibers are low.
  • 4.4. Time-dependent changes in 31P-NMR spectra indicate that ArP declines fairly slowly, while SP and Pi rises. The half-life of ArP at 26°C turns out to be about 8 hr. ATP remains relatively constant for the first 8 hr but disappears following the disappearance of ArP. As the intensity of the Pi resonance increases with time, it broadens and moves upfield, suggesting internal acidosis.
  • 5.5. These results demonstrate that 31P-NMR can provide useful information about metabolism and its regulation in single barnacle muscle fibers.
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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 response to light of Hermissenda photoreceptors when recorded intracellularly without interference from synaptic and action potentials consisted of three phases: an early depolarization (ED) followed by hyperpolarization (dip) and subsequent depolarization (tail).
  • 2.2. The ED and the dip were associated with increased membrane conductance while decreased membrane conductance was involved with the tail.
  • 3.3. The dip reversal potential was − 82.1 ± 5.3 mV and its amplitude varied inversely with the log of [K+].
  • 4.4. Perfusing with agents which block K+ current like 4AP, Quinine, Quinidine or injection of TEA eliminated the dip and its associated increased membrane conductance, thus further supporting the role of K+ conductance in producing the dip.
  • 5.5. The dip was enhanced by increased [Ca2+]o, reduced by decreased [Ca2+]o and abolished together with its associated increased membrane conductance when perfused with either D600, Cd2+, Mg2+, Mn2+, or Co2+, which block transmembrane Ca2+ current.
  • 6.6. The dip and its associated increased membrane conductance were abolished by intracellular injection of EGTA and enhanced by perfusion with Ruthenium red.
  • 7.7. Intracellular injection of Ca2+ mimicked the dip: membrane conductance was increased and the cell hyperpolarized.
  • 8.8. These results indicate that the increase in intracellular [Ca2+] is primarily responsible for the light-induced increase of K+ conductance during the dip. The possible source of the Ca2+ is, at least in part, extracellular due to activation of an inward Ca2+ current.
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