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1.
  • 1.1. Lipid, glucose and glycogen concentrations were measured in different tissues of the crab Chasmagnathus granulata during emersion.
  • 2.2. After 6 hr of emersion no reduction in the total amount of carbohydrates was found to occur, suggesting that a general metabolic arrest was taking place.
  • 3.3. A transitory increase in haemolymphatic glucose and lipid levels was observed. Possible causes are therefore discussed in relation to changes in the flux of substrates for energy production.
  • 4.4. The mobilization of carbohydrates and lipids to the gills, observed only during summer, may be concerned with energy supplying for ionic regulation.
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2.
  • 1.1. Glycogen and galactogen contents of the albumen gland of the freshwater snail Lymnaea stagnalis were determined under different conditions, known to influence these polysaccharides viz egg laying, photoperiod and starvation.
  • 2.2. After oviposition, the galactogen content is restored within 32 hr, whereas glycogen remains constant during this period. Short-day photoperiods favour accumulation, long-day photoperiods induce depletion of glycogen. In contrast, the galactogen content is not affected by the photoperiod.
  • 3.3. Since glycogen and galactogen are present in the same cells of the albumen gland, the independent variation of these polysaccharides would imply the presence of separate intracellular regulation mechanisms.
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3.
  • 1.1. Changes in the glycogen content, condition, stomach content and acetic acid concentration of mussels Mytilus edulis and cockles Cerastoderma edule were followed during periods of up to 14 days of exposure (to air) at temperatures of 5 and 20°C.
  • 2.2. In animals with a high glycogen content the glycogen is not used during the first 3 to 7 days, at high and low temperature respectively.
  • 3.3. After this latent period the glycogen concentration often decreased, coinciding with a high mortality and an increase of the concentration of acetic acid.
  • 4.4. In cockles with a low glycogen content, and kept at a high temperature, glycogen can be used from the beginning of the stress period.
  • 5.5. Between species no clear differences were found.
  • 6.6. The stomach content decreased during exposure; however, the stomach content amounted to only 0.5 to 0.7% of the body weight, and is thought to be of minor importance as an energy source during the stress period.
  • 7.7. Especially at the higher temperatures glycogen finally is transformed into acetic acid.
  • 8.8. It is concluded that during exposure, the animals do not die because of a lack of energy reserves, but because of a high accumulation of acids.
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4.
  • 1.1. Since glucose is one of the main energetic substrates for general metabolic processes in crustaceans, analysis of carbohydrate levels can furnish information on the energy metabolism of intact animals during osmoregulation.
  • 2.2. Different groups of Chasmagnathus granulata were transferred to different salinities (0 and 40%), and the glucose and glycogen concentrations in blood, gills, muscle and hepatopancreas were determined at the beginning of the experiment and 24, 72, 168 and 360 hr after the salinity changes.
  • 3.3. Differences in tissues carbohydrate levels were observed between summer and winter, that reflected differences in reserve mobilization.
  • 4.4. In the summer, hypo- and hyperosmotic shocks induced an increase in carbohydrate levels in almost all tissues studied, indicating gluconeogenesis.
  • 5.5. In the winter, a carbohydrate mobilization occurred only in the gills and hepatopancreas after both osmotic shocks.
  • 6.6. Thus, the substrate reserve used for energy production required for osmoregulation seems to be dependent on the season and tissues.
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5.
  • 1.1. The effect of cadmium administration on female Bufo regularis was studied. The median lethal doses were 22, 18, 15 and 6.2 Cd2+/kg after 24, 48, 72 and 96 hr respectively.
  • 2.2. After a single intramuscular injection of 6.2 Cd2+/kg (representing 96-hr ld50), the results indicated that Cd2+ causes severe physiological abnormalities to this experimental animal.
  • 3.3. The serums alanine aminotransferase (AlAt), aspartate aminotransferase (AAt), alkaline phosphatase (A1P) and lactic dehydrogenase (LDH) were elevated while the calcium serum was not influenced by Cd2+ throughout the experimental period
  • 4.4. On the other hand, phosphorus, total protein and total bilirubin were increased.
  • 5.5. EDTA treatment (0.2 mmole/kg protected female toads from mortality up to 20 mg Cd2+/kg. It overcame the physiological alterations that were caused by the Cd2+ injection.
  • 6.6. This may be due to the fact that Cd2+ is bound to EDTA in a strong complex which is readily excreted via the kidneys.
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6.
  • 1.1. Eel were exposed to a sublethal concentration of lindane (0.335 ppm) for 6, 12, 24, 48, 72 and 96 hr.
  • 2.2. Concentrations of glycogen, glucose, lactate, pyruvate and lipids were determined in gill tissue after lindane exposure.
  • 3.3. Gill glycogen descreased and glucose levels increased at 6 hr of treatment, lactate and pyruvate concentration increased between 6 and 48 hr. Total lipid values decreased between 6 and 24 hr; thereafter, the levels increased up to 72 hr of exposure.
  • 4.4. Clear changes were found in all parameters tested in gill tissues. The observed effects of lindane on metabolism in fish are discussed in relation to acute stress syndrome.
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7.
  • 1.1. Daphnia magna were exposed for 24 hr to 14C-labelled pentachlorophenol (PCP) at an initial concentration of 20μg/l in the incubation water. Occurrence of free PCP and its metabolites were measured both from the animals and the water.
  • 2.2. Hydrophilic metabolites excreted into water were analysed, after acid or enzymatic hydrolyses, with a liquid-liquid extraction and TLC.
  • 3.3. PCP was metabolized and excreted, perhaps solely, via the sulphate conjugation. The average excretion rate, 2.65nmol/g/hr, accounted for 35% of the absorption rate measured at the start of exposure.
  • 4.4. Neonate daphnids had an equal ability to metabolize PCP as the older animals. Bioconcentration in young animals was, however, only 23% of that in adult ones.
  • 5.5. Effect of naturally humic water on metabolization and excretion of PCP was negligible.
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8.
  • 1.I. Trehalose synthase and trehalase behaviour has been analysed in cultured yeast cells isolated from baker's yeast to increase the understanding of the mechanisms involved in trehalose content modifications observed in anyhydrobiois and hydrobiosis.
  • 2.2. After desiccating yeast cells to a constant weight, trehalose levels sharply increased, whereas the glycogen content decreased, trehalose synthase was stimulated and trehalase was significantly inhibited.
  • 3.3. In desiccated cells after a rehydration for 15 min, trehalose levels dropped, the glycogen content further decreased, the activity of trehalose synthase declined while that of trehalase was dramatically stimulated.
  • 4.4. After rehydration for 12hr, while the trehalose and glycogen content decreased even more, the behaviour of the two enzymes was completely reversed, trehalose synthase being activated and trehalase inhibited.
  • 5.5. The reasons for such impressive enzyme activity alterations in desiccated and rehydrated cells for the moment remain unknown.
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9.
  • 1.1. A glycogen/protein complex which contains the major portion of glycogen synthase activity in Ascaris suum muscle has been purified.
  • 2.2. The complex contains two proteins which can be dissociated from a glycoprotein component.
  • 3.3. The glycoprotein contains glycogen-like domains and is resistant to trypsin digestion.
  • 4.4. The glycogen synthase activity in the purified complex catalyzes glycogen synthesis in the absence of exogenous glycogen, but demonstrates an absolute glucose 6-phosphate requirement for activity.
  • 5.5. The data support the hypothesis that this isozyme of glycogen synthase is significantly different from the cyclic AMP-regulated enzyme.
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10.
  • 1.1. Several pathways of carbohydrate metabolism were evaluated in three different tissues—liver, gonad and kidney—of a hatchery-reared population of rainbow trout (Oncorhynchus mykiss) which characterised two different stages of their gonadal maturation, i.e. previtellogenesis and established exogenous vitellogenesis.
  • 2.2. A fall in liver glycogen levels was observed during exogenous vitellogenesis. A decrease in activity of the enzymes involved in glycolysis and in the pentose phosphate shunt was also observed, suggesting that at the end of exogenous vitellogenesis the necessity of energy and reducing power has decreased compared to the situation at the onset of this period.
  • 3.3. The main changes observed in gonad during vitellogenesis were the decreased activity of glycolysis and the pentose phosphate shunt as well as increased glycogen levels. The stored glycogen should be used later in association with the embryo development.
  • 4.4. No major changes were observed in kidney metabolism throughout the vitellogenic process.
  • 5.5. Exogenous vitellogenesis in rainbow trout is mainly associated with increased glycogen levels in the gonad and decreased metabolic activity in the liver.
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11.
  • 1.1. Larval Musca domestica lipophorin biosynthesis was studied in vitro.
  • 2.2. The newly synthesized lipophorin has a density a little lower than the circulating lipophorin after 1 hr of incubation. After 3 hr of incubation the fat body cells transfer lipids to the lipophorin that attains the density of circulating lipophorin.
  • 3.3. The lipophorin synthesized in vitro is identical to circulating lipophorin in density and in electrophoretical behavior.
  • 4.4. However these two molecules must have differences since the circulating lipophorin transfers lipids to fat body cells while the synthesized in vitro does not.
  • 5.5. The biosynthesis of Musca lipophorin shows differences with the Manduca sexta lipophorin biosynthesis.
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12.
  • 1.1. A novel glycogen phosphorylase inhibitor was partially purified from crayfish hepatopancreas.
  • 2.2. The inhibitor was found only in two species of crayfish examined, and not in lobster, fresh and salt water clams, mussels or cockroaches.
  • 3.3. The inhibitor is a small protein (Mr = 23,000) which did not show proteolytic activity.
  • 4.4. Preliminary kinetic analysis of the inhibitory mechanism indicated that it bound to both glycogen and the glycogen phosphorylase protein.
  • 5.5. Inhibitor binding to glycogen resulted in a competitive inhibition pattern with respect to glycogen phosphorylase (inhibition constant of ca 10 μg/ml).
  • 6.6. The inhibitor also bound glycogen phosphorylase directly with a binding coefficient of 100 μg/ml resulting in a partially non-competitive inhibition pattern with respect to phosphate.
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13.
  • 1.1. Accumulation and excretion of propionate and acetate during experimental anaerobiosis were investigated in the lugworm Arenicola marina.
  • 2.2. The rate of accumulation and the ratio propionate/acetate were found to be tissue-specific.
  • 3.3. The excretion of the volatile fatty acids showed a characteristic time course.
  • 4.4. The results of experiments analyzing the role of different organs indicate that the excretion of these metabolites proceeded via the undifferentiated surface of the body.
  • 5.5. The rate of excretion depended on the concentration gradient between animal and the ambient water, the chain-length of the fatty acid and the pH of the water. Propionate excretion was inhibited by butyrate.
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14.
  • 1.1. The effects of seasonal variation on the carbohydrate and lipid metabolism of the Chasmagnathus granulata were investigated.
  • 2.2. Glycemia is high in winter and summer and low in spring and fall.
  • 3.3. The glycogen content in the hepatopancreas and muscle is higher in fall and winter, and decreases during spring and summer.
  • 4.4. The muscle lipids are higher in summer, and decrease during fall and winter whereas hepatopancreas lipids are higher except in the fall.
  • 5.5. The crabs show change in the metabolic pattern of lipids and carbohydrates during the seasons of the year.
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15.
  • 1.1. Haemolymph volume decreases during the initial 16 hr post-ecdysial period, increases after water ingestion and subsequently drops until the inter-ecdysial level is reached.
  • 2.2. Total body water follows a similar pattern, but the changes are not as pronounced.
  • 3.3. Tissue water is inversely proportional to the total body water.
  • 4.4. Soluble cuticle protein declines throughout the initial 16 hr period while both β-glucosidase and alkaline phosphatase activity is lost within 6 hr after ecdysis.
  • 5.5. Dehydration of the cuticle also occurs during the immediate 6 hr post-ecdysial period.
  • 6.6. These data suggest that the formation of the protein-insoluble matrix is linked with water loss.
  • 7.7. Water removal may decrease the distance between molecules allowing specific reactions to take place.
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16.
  • 1.1. To evaluate changes in high-energy phosphate metabolism in the water scorpion (Ranatra chinensis) under restraint and cold water-warm water stresses, in vivo [31P]NMR spectra were obtained.
  • 2.2. Under restraint stress, arginine phosphate (Arg-P) decreased by 10% after 1 hr and remained at that level thereafter, while β-ATP showed negligible changes over 6 hr.
  • 3.3. As the water temperature gradually increased or decreased, the relative concentration of Arg-P decreased due to enzyme regulation.
  • 4.4. Repeated cold water-warm water stress, which consisted of repeated 15 min exposures to cold water (5°C) followed by 15 min exposures to warm water (30°C) caused distinct decreases in Arg-P and β-ATP concentration. These decreases were dependent on the frequency of exposure.
  • 5.5. Phosphomonoesters (PME) increased not only with restraint stress but also with cold water-warm water stress.
  • 6.6. The effect of cold water-warm water stress on high-energy phosphate metabolism was greater than that of restraint stress.
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17.
  • 1.1. Activity of topoisomerase I and incorporation of [3H]uridine and [14C]thymidine were monitored during light-induced sporulation of the slime mold Physarum polycephalun.
  • 2.2. A 4-fold transient increase of topoisomerase I activity but not of [3H]uridine or [14C]thymidine incorporation was observed after 42 hr of illumination with 6 hr impulses.
  • 3.3. The activity of topoisomerase I did not increase in the absence of light impulses. However, ca 5-fold increase of the activity was observed in dark when 100 μ M dibutyryl-cAMP was administered 12 hr before harvesting of plasmodia.
  • 4.4. Fluorodeoxyuridine and cycloheximide administered 36 hr after starting of the illumination cancelled the increase of the activity of topoisomerase I.
  • 5.5. After 7 days of the illumination, when fruiting bodies appeared, the activity of topoisomerase I dropped to about 15% of the initial value.
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18.
  • 1.1. A purification procedure for a thioredoxin from the extremophilic archaeon Sulfolobus solfataricus is described.
  • 2.2. The thioredoxin is active in the dithiothreitol-dependent reduction of insulin disulfide bonds.
  • 3.3. The thioredoxin is a monomer of 24,800 Da; it is an acidic protein with a pi of 4.5.
  • 4.4. The protein is stable to heating for 3 hr at 90°C.
  • 5.5. The amino acid composition of S. solfataricus thioredoxin is reported.
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19.
  • 1.1. Administration of a carbohydrate-rich diet increased haemolymph glucose levels and glycogen concentration in hepatopancreas, mantle and muscle.
  • 2.2. Glycogen concentration in tissues decreases after 2 weeks of starvation and haemolymph glucose levels did not change significantly.
  • 3.3. However, starvation did not induce a decrease in the intrinsic synthetic capacity in tissues.
  • 4.4. Glycogen synthesis in tissues from animals fed with lettuce or a carbohydrate-rich diet, increases with increasing glucose concentration in the media.
  • 5.5. However, in mantle slices from snails adapted on a carbohydrate-rich diet, the glycogen synthetic capacity was lower than in slices from snails fed with lettuce.
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20.
  • 1.1. The mechanism of action of glyburide (a sulfonylurea) on muscle has been investigated by measuring glucose uptake and glucose transporter (GLUT4) protein levels after chronic glyburide treatment.
  • 2.2. A dietary induced insulin resistant rat model (4 wk of high-fat, high-sucrose feeding) was given glyburide (2mg/kg/day) for 10 days and glucose uptake was measured in a perfused hindquarter preparation.
  • 3.3. Protein levels of the GLUT4 glucose transporter were determined by Western analysis.
  • 4.4. After 7 days of treatment, rats fed glyburide had lower blood glucose concentrations 2 hr (72 ± 5 vs 103 ± 12 mg/dl) and 24 hr (97 ± 7 vs 123 ± 7 mg/dl) after glyburide administration with no difference in serum insulin levels compared to vehicle treated animals.
  • 5.5. Glucose uptake was approx doubled in basal state (0 insulin) in response to glyburide (2.8 + 0.4 vs 1.7 ± 0.2μ mol/g per hr).
  • 6.6. Maximal insulin (100 nM) stimulated glucose uptake tended to be higher in the glyburide treated group, but did not reach statistical significance (8.0 ± 0.7 vs 7.0 ± 0.6 μmol/g per hr).
  • 7.7. Western analysis revealed no significant effect of glyburide on the GLUT4 protein level in skeletal muscle.
  • 8.8. These results suggest that glyburide alters glucose uptake through some mechanism other than alterations in the level of the GLUT4 glucose transporter protein.
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