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1.
  • 1.1. Cytosolic and microsomal epoxide hydrolyzing enzymes of human skin and liver were compared and found to be different.
  • 2.2. Epidermal and hepatic cytosolic epoxide hydrolases were different in terms of substrate selectivity, pI, inhibitor sensitivity and affinity Chromatographic properties.
  • 3.3. Microsomal epoxide hydrolases had the same pIs but different substrate selectivities.
  • 4.4. Cytosolic epoxide hydrolase from adults had higher specific activity than that from neonates or cultured epidermis, but lower activity than adult hepatic enzymes.
  • 5.5. The sizes of cytosolic epoxide hydrolase from epidermis and liver were similar and lower than that from cultured fibroblasts.
  • 6.6. Cytosolic epoxide hydrolase from all sources shared similar antigenic determinants.
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2.
  • 1.1. Mitochondria with high respiratory control ratios (RCR) have been isolated from the ventricle of the marine clam Mercenaria mercenaria.
  • 2.2. Proline is the preferred substrate of the mitochondria of the ventricle based on state 3 rates.
  • 3.3. Pyruvate, ornithine and succinate are oxidized at rates 3/4 that of proline.
  • 4.4. α-Glycerophosphate was oxidized at rates 1/2 that of proline.
  • 5.5. The pH optimum for proline oxidation lies between 6.5 and 7.5 based on RCR and ADP/O and between 7.0 and 7.4 based on state 3 rates.
  • 6.6. KCl concentrations between 250 and 450 mM gave optimal values for the oxidation of proline based on RCR and state 3 rates.
  • 7.7. KCl concentration had little effect on ADP/O between 100 and 850 mM.
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3.
  • 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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4.
  • 1.1. Arginase, ornithine decarboxylase and S-adenosylmethionine decarboxylase are active in both retina and brain. Activity is higher in cerebellum than in the cerebral hemispheres and optical lobes.
  • 2.2. Arginase and ornithine decarboxylase are very active in the retina of very young chicks, while S-adenosylmethionine decarboxylase is poorly active. By contrast, S-adenosylmethionine decarboxylase is much more active in brain.
  • 3.3. The pattern of activity during development is different; only ornithine decarboxylase is very active during embryonal life; S-adenosylmethionine decarboxylase, at all events in brain, is more active in adult life.
  • 4.4. Ornithine decarboxylase is inhibited in vitro by α-difluoromethylornithine, but not in vivo. Diaminopropane inhibits brain ornithine decarboxylase, but does not induce an ornithine decarboxylase-antizyme.
  • 5.5. Methylglyoxal bis(guanylhydrazone) promotes an increase of S-adenosylmethionine decarboxylase activity in both the brain and the retina in vivo.
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5.
  • 1.1. Rainbow trout were fed either graded levels of lysine (0.8, 1.8 and 3%) at a constant level of arginine (1.4%) or excess arginine (2.4%) at a fixed level of lysine (1.8%).
  • 2.2. Increasing the dietary lysine level affected plasma urea, plasma arginine and ammonia excretion.
  • 3.3. Trout fed graded levels of lysine received an arginine challenge (U14C-l-arginine) and it was found that excess dietary lysine led to a decrease in arginine degradation.
  • 4.4. Injection of l-lysine induced a decrease in urea excretion, while injection of l-arginine increased both urea and ammonia excretion in control well-fed trout.
  • 5.5. These results are discussed in the light of current knowledge on the antagonism between lysine and arginine.
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6.
  • 1.1. Endothelial cells were cultured in tissue culture flasks or on microcarrier beads and labeled with a lipid specific spin-label.
  • 2.2. Exposure of endothelial cells to benzyl alcohol caused a dose- and time-dependent increase in membrane fluidity using electron spin resonance (ESR). Maximum fluidity was reached after a 5-min exposure to 100 mM benzyl alcohol.
  • 3.3. Albumin permeability across endothelial cells cultured on micropore filters was used as an indication of endothelial monolayer integrity.
  • 4.4. A significant increase in permeability occurred with 50 mM benzyl alcohol. Maximal albumin permeability was reached after a 5-min exposure to 100 mM benzyl alcohol.
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7.
  • 1.1. The effect of diabetes on some enzymes of polyamine metabolism was studied in male rats 1–12 days after administration of streptozotocin.
  • 2.2. Hepatic ornithine decarboxylase activity decreased in the first days after the administration, but increased thereafter. The decrease was not due to an alteration of the ODC-antizyme concentration, nor to a posttranslational modification catalyzed by transglutaminase.
  • 3.3. S-adenosylmethionine decarboxylase and ornithine transaminase were both increased.
  • 4.4. Spermicline acetyltransferase activity was practically unchanged, while its inactivating factor was markedly decreased.
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8.
  • 1.1. The effect of incorporating D2O into the incubation medium on glycolysis and gluconeogenesis by hepatocytes from fasted rats was examined.
  • 2.2. The substitution by heavy water, D2O, at concentrations from 10 to 40%, stimulated glucose uptake, lactate production and CO2 yields from glucose. At 10 mM glucose, 40% D2O doubled glucose uptake, increased CO2 production by 40%, and increased lactate production by 350%.
  • 3.3. The stimulation of lactate production decreased at higher glucose concentrations, but was still substantial even at 80 mM glucose.
  • 4.4. There was no effect on CO2 production above glucose concentrations of 30 mM.
  • 5.5. Ten percent D2O showed little inhibition of lactate uptake, its oxidation and gluconeogenesis. At 40% D2O the inhibition ranged from 10 to 20%.
  • 6.6. No effect of D2O on the rate of glucokinase or glucose-6-phosphatase was observed.
  • 7.7. The concentration of fructose, 2,6-P was not affected by D2O
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9.
  • 1.1. Three DNA dependent RNA polymerases have been purified from chromatin and chloroplast fractions of wheat leaves.
  • 2.2. The purified enzymes were completely dependent on exogenous DNA after purification by glycerol gradient, DEAE-Sephadex and phosphocellulose chromatography.
  • 3.3. The nuclear enzymes, I and II, showed a strong preference for denatured nuclear DNA, whereas the chloroplast enzyme preferred denatured chloroplast DNA.
  • 4.4. The three enzymes require either Mg2+ or Mn2+ for activity.
  • 5.5. α-amanitin specifically inhibited RNA polymerase II but has no effect on polymerase I and chloroplast polymerase.
  • 6.6. Enzyme I is most active at very low ionic strength (0.10 mM KC1), whereas enzyme II and chloroplast enzyme show maximum activity at 150mM and 50 mM KC1 respectively.
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10.
  • 1.1. Fundamental chitin digestion characteristics of Crassostrea virginica crystalline style were investigated.
  • 2.2. Optimum temperature and pH were 34°C and 4.8. respectively.
  • 3.3. The colloidal regenerated chitin (0.56mol/0.5 ml: GlcNAc equivalents) was saturating under all enzyme levels encountered.
  • 4.4. There was no evidence of end product inhibition, even after 100 hr incubation.
  • 5.5. Calculated Km for the chitinase complex was 1.19mM when determined using a 30 min assay, but was only 0.70 mM when determined using a 4.6 hr assay.
  • 6.6. Both Km values are lower than reported for similar assays in other molluscs and for most bacteria.
  • 7.7. Effect of substrate preparation on the kinetics are discussed.
  • 8.8. Eight peaks of chitinase activity were resolved by DEAE-Fractogel ion exchange chromatography.
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11.
  • 1.1. Stearoyl-CoA desaturase (Δ9-desaturase) activity was measured in chicken primary hepatocytes, as a function of time in culture.
  • 2.2. When using fasted donor animals, the desaturase activity was low at the beginning of culture and then increased steadily to a maximum value between 30 and 70 hr of culture. When hepatocyte cultures were prepared from fed animals, enzyme activity was high at the beginning of culture and maintained thereafter at similar values to those obtained in cultured hepatocytes from fasted animals after 30 hr of culture.
  • 3.3. Insulin significantly enhanced enzyme activity when added to the culture medium at a 10−9M concentration, and a small stimulating effect was also observed with 10−6M dexamethasone.
  • 4.4. Linoleic acid (0.5 mM) added to the culture medium as albuminic complex partly inhibited Δ9-desaturase activity.
  • 5.5. Cordycepin (3' deoxyadenosine) decreased enzyme activity when present at a 3 μg/ml concentration in the culture medium.
  • 6.6. Taken together, the induction of enzyme activity in culture, its impairment by cordycepin and response to insulin and linoleic acid strongly suggest that synthesis and translation of the Δ9-desaturase mRNA occur in chicken hepatocytes in primary culture, and that this cellular model may be a useful tool for further studies on Δ9-desaturase regulatory mechanisms.
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12.
  • 1.1. Particulate guanylate cyclase and receptors for E. coli heat-stable enterotoxin were solubilized from the rat intestinal cytoskeletal compartment using Lubrol-PX and KC1.
  • 2.2. Thirty to forty percent of the ST receptor and guanylate cyclase activities were extracted from the lipid layer with Lubrol-PX alone.
  • 3.2. Seventy percent of the remaining activities were solubilized from the cytoskeleton with Lubrol-PX and KCl.
  • 4.3. Guanylate cyclase solubilized from either compartment exhibited similar reaction kinetics.
  • 5.4. Both high- and low-affinity classes of ST receptors were solubilized from the lipid and cytoskeleton compartments.
  • 6.5. In the presence of ATPγS, ST selectively activated the guanylate cyclase solubilized from the cytoskeleton compared to that solubilized from the lipid bilayer.
  • 7.6. Crosslinking experiments demonstrated a preferential solubilization of the 130 kDa receptor subunit from the cytoskeleton and the 56 kDa subunit from the lipid bilayer.
  • 8.7. Development of a procedure to solubilize ST receptors and guanylate cyclase from the intestinal membrane cytoskeleton will permit purification and further detailed studies of the coupling of these activities.
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13.
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Highlights
  • •A global lysine succinylome was investigated in A. hydrophila.
  • •The lysine succinylation modifications play crucial role on various metabolic pathways.
  • •Reversible succinylation on Lys23 and Lys30 regulates the activity of S-ribosylhomocysteine lyase LuxS.
  • •Lysine succinylation modifications of LuxS affect quorum sensing and metabolism.
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14.
  • 1.1. A lipoxygenase preparation was obtained from Thermoactinomyces vulgaris and was purified by affinity chromatography on a linoleyl aminoethyl sepharose column.
  • 2.2. Two active fractions were obtained.
  • 3.3. The fraction obtained by elution with 100 mM borate buffer pH 9.0 was used in the subsequent work.
  • 4.4. Th. vulgaris lipoxygenase oxidized linoleic acid into two products: 13-HPOD and 9-HPOD at a ratio of 44 to 56, respectively.
  • 5.5. The identification and characterization of the isomers was done by HPLC, I.R. and mass spectrometry.
  • 6.6. When arachidonic acid was used as substrate, 15-HPETE and 15-HETE were found to be the main enzymatic products.
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15.
  • 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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16.
  • 1.1. Inorganic phosphate (Pi) was absorbed rapidly by suspension-cultured cells of Catharanthus roseus which had previously been cultured in Pi-free Murashige Skoog medium.
  • 2.2. The intracellular levels of ATP, ADP and 5-phosphoribosyl-l-pyrophosphate (PRPP) increased markedly during the 24 hr which followed the addition of Pi (1.25mM).
  • 3.3. Availability of PRPP in vivo, estimated by the measurement of nucleotide synthesis from [8-14C]adenine, was also increased by addition of Pi.
  • 4.4. Only a 20% increase in the maximum catalytic activity of PRPP synthetase was observed in extracts of cells, prepared 24 hr after addition of Pi.
  • 5.5. In contrast to results for mammalian PRPP synthetase, the activity of PRPP synthetase, partially purified from Catharanthus roseus, was inhibited by concentration of Pi greater than 5mM.
  • 6.6. The mechanisms involved in the increased availability of PRPP and the synthesis of adenine nucleotides in the plant cells cultured in Pi-containing medium are discussed.
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17.
  • 1.1. Isolated hepatocytes synthesize fatty acids and cholesterol from lactate and acetate with lactate being the more effective substrate.
  • 2.2. Biotin deficiency decreased fatty add synthesis from both substrates but stimulated cholesterogenesis.
  • 3.3. Exposure of intact hepatocytes to oxalate inhibited fatty acid and cholesterol synthesis from lactate, this effect was enhanced in biotin-deficient chicks. A similar effect was not observed when acetate was the substrate.
  • 4.4. Synthesis of fatty acids from lactate and acetate was stimulated by glucose, biotin deficiency increased this response. Cholesterogenesis was reduced in control but not biotin-deficient chicks.
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18.
  • 1.1. Halobacterium halobium has two chromatographically distinct forms of glutamate dehydrogenase which differ in their thermolability and other properties. One glutamate dehydrogenase utilizes NAD, the other NADP as a coenzyme.
  • 2.2. The NADP-specific glutamate dehydrogenase (EC 1.4.1.4) was purified 65-fold from crude extracts of H. halobium.
  • 3.3. The Michaelis constants for 2-oxoglutarate (13.3 mM), ammonium (3.1 mM) and NADPH (0.077 mM) indicate that the enzyme catalyzes in vivo the formation of glutamate from ammonium and 2-oxoglutarate.
  • 4.4. The amination of 2-oxoglutarate by NADP-specific glutamate dehydrogenase is optimal at the pH value of 8.0–8.5. The optimal NaCl or KCl concentration for the reaction is 1.6 M.
  • 5.5. None of the several metabolites tested for a possible role in the regulation of glutamate dehydrogenase activity appeared to exert an appreciable influence on the enzyme.
  • 6.6. NAD- and NADP-dependent glutamate dehydrogenases from H. halobium showed apparent molecular weights of 148,000 and 215,000 respectively.
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19.
  • 1.1. The specific activity of GMP synthetase was measured in several human tissues and found to be highest in cultured skin fibroblasts, followed by bone marrow, leukocytes, erythrocytes. placenta, and liver.
  • 2.2. The enzyme from fibroblasts was purified approximately 50-fold by ammonium sulfate fractionation and gel filtration.
  • 3.3. The Km values were determined to be 4.9μM for XMP, 270μM for ATP. and 340 μM for glutamine.
  • 4.4. Ammonium sulfate could replace glutamine as the amino donor but was much less efficient.
  • 5.5. The enzyme was specific for ATP as the energy source.
  • 6.6. Unlike the calf thymus enzyme, the human enzyme has no requirement for a reduced sulfhydryl compound.
  • 7.7. Human GMP synthetase is inhibited by ATP, dATP, azaserine, and hydroxylamine.
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20.
  • 1.1. Subcellular location of dihydropyrimidinase and NCβA-amidohydrolase2 was studied in a cell suspension culture of tomato (Lycopersicon esculentum cv. Lukullus) and in Euglena gracilis.
  • 2.2. By differential centrifugation, crude extracts were separated into ten fractions. Activities of both enzymes were found mainly in cytosolic fractions marked by EDH (tomato) and glu-6-P-DH (E. gracilis).
  • 3.3. A cytosolic location was also found by a 20–60% and a 17.5–30% sucrose density gradients.
  • 4.4. Using mitochondrial marker enzymes such as fumarase, SDH, CS and MDH, a mitochondrial occurrence of both enzymes or their release from mitochondria can be excluded by sucrose gradient centrifugations. This can also be achieved using purified mitochondria prepared from tomato cells by two subsequent sucrose gradients.
  • 5.5. A possible vacuolar location of dihydropyrimidinase and NCβA-amidohydrolase was excluded by comparing their activities in isolated protoplasts and purified vacuoles which were characterized by their marker enzyme α-mannosidase.
  • 6.6. A nuclear location of both enzymes and/or their release from the nucleus during procedures used cannot be excluded.
  • 7.7. The results are discussed in relation to subcellular location to other pyrimidine-metabolizing enzymes in plant cells.
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