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1.
  • 1.1. In the present study the major metabolic pathways of glucose metabolism were determined in isolated liver cells using [2-13C]acetate and 13C magnetic resonance spectroscopy.
  • 2.2. The relative reaction rates of glucose synthesis to the TCA cycle were determined from the 13C distribution in glucose where the overall 13C enrichment of glucose was 6.41 ± 1.94% (mean ± SD; n = 6) and the mean 13C enrichment of C1, C2, C5, C6 to C3, C4 was 2.63 ± 0.30.
  • 3.3. Since the distribution of tracer in glucose is a function of the relative entry rates of pyruvate to acetyl-CoA into the oxaloacetate pool this was calculated to be 0.32 ± 0.15 and the factor for carbon exchange (1/P) between the gluconeogenic pathway and the TCA cycle was calculated to be 1.03 ± 0.20.
  • 4.4. With this carbon exchange factor and the approximated 13C enrichment of acetyl-CoA the intramitochondrial 13C enrichment of phosphoenolpyruvate was calculated and the “true” rate of hepatic gluconeogenesis from phosphoenolpyruvate estimated.
  • 5.5. Since acetate was metabolized solely in liver cells the 13C enrichment of acetyl-CoA could be approximated from that of 3-hydroxybutyrate.
  • 6.6. The carbon 13 enrichment of 3-hydroxybutyrate and phosphoenolpyruvate was 5.89 ± 0.90% and 5.96 ± 1.67%, respectively.
  • 7.7. The per cent gluconeogenesis from phosphoenolpyruvate calculated as the ratio of the 13C enrichment of glucose to that of 3-hydroxybutyrate times 1/P was 107 ± 8%.
  • 8.8. In this study the validity of assessing isotopic exchange at oxaloacetate as suggested by Katz [Katz J. (1985) Am. J. Physiol.248, R391–R399] when interpretation of the data are not obscured by pseudoketogenesis.
  • 9.9. Magnetic resonance spectroscopy provides direct information about intramolecular tracer distribution by which flux rates in major metabolic pathways are derived.
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2.
  • 1.1. The potent tumor promoter 12-O-tetradecanoylphorbol-13-acetate (TPA) induced a rapid increase in glycolysis in rat thymocytes.
  • 2.2. The increase in the glycolytic flux was also reflected by elevated fructose 1,6-diphosphate levels.
  • 3.3. TPA treatment did not result in an increase of hexokinase, phosphofructokinase or pyruvate kinase when measured in cell homogenates.
  • 4.4. It is suggested that the early increase in glycolysis in TPA treated lymphocytes may result from TPA-mediated increase in glucose transport.
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3.
  • 1.1. Indian River male broiler chickens growing from 7 to 28 days of age were fed diets containing 12, 18, 24 and 30% protein + 0 or 1 mg triiodothyronine (T3)/kg of diet to study energetic costs of lipogenesis and the use of various substrates for in vitro lipogenesis.
  • 2.2. De novo lipid and CO2 production were determined in the presence of [1-14C]pyruvate, [2-14q]pyruvate, [3-14C]pyruvate, [2-14C]acetate and [U-14C]alanine.
  • 3.3. Oxygen consumption was determined in mitochondrial preparations to estimate the energetic costs in expiants synthesizing lipid.
  • 4.4. Radiolabeled CO2 derived from [1-14C]pyruvate was used as an estimate of coenzyme A availability in liver expiants. Lipids derived from [2-14C]pyruvate, [2-14C]acetate and [U-14C]alanine estimate relative substrate efficiency.
  • 5.5. Labeled CO2 production from [1-14C]pyruvate was greatest in that group fed a 12% protein diet and least in the group fed a 30% protein diet.
  • 6.6. In addition, T3 increased CO2 production from [1-14C]pyruvate.
  • 7.7. The production of 14CO2 from the second carbon of pyruvate or acetate was increased by T3.
  • 8.8. The low-protein diet (12% protein) increased (P <0.05) lipogenesis.
  • 9.9. Adding T3 to the diets decreased carbon flux into lipid from all substrates, but increased CO2 production from all substrates without changing stage 3 and 4 respiration rates in mitochondrial preparations.
  • 10.10. These observations imply that coenzyme A availability may have regulated de novo lipogenesis in the present study.
  • 11.11. It was also concluded that previously noted effects of T3 on intermediary metabolism may involve metabolic pathways that do not involve changes in mitochondrial function.
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4.
  • 1.1. Kinetic constant values of the reaction catalyzed by bass liver glucose 6-phosphate dehydrogenase show to be modified between 10 and 40°C.
  • 2.2. The Arrhenius plot between 10 and 50°C shows two slopes with different activation energies.
  • 3.3. These results suggest a regulation of this enzyme by environmental temperature.
  • 4.4. Kinetics of ATP inhibition were examined between pH 6.2 and 7.8: patterns and Ki values obtained are affected by the pH variation.
  • 5.5. NADH is an effective inhibitor of bass glucose 6-phosphate dehydrogenase but this enzyme does not show NAD-linked activity.
  • 6.6. Kinetics of pyridoxal 5′-phosphate inhibition have indicated the presence of a lysine in the catalytic site for NADP+.
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5.
  • 1.1. To evaluate the condition under which net glucose production from acetone, added as sole substrate, occurs different pretreatments of mice, in combination with starvation, were used; (i) acetone pretreatment (acetone is a known inducer of cytochrome P-450 isozymes involved in this pathway), (ii) fructose pretreatment (to induce NADPH + H+ generating enzymes) or (iii) their combination.
  • 2.2. There was net glucose formation from acetone only in that case, when the cells were prepared from 48 hr fasted animals pretreated with both acetone and fructose. However, using 2-14C-acetone, incorporation of 14C-carbon into glucose could be detected in all the cases and, at the same time, acetone was without any effect on protein synthesis.
  • 3.3. The addition of acetone increased gluconeogenesis from alanine in almost all the cases. The only exception from this general rule was that the case, when hepatocytes were prepared from acetone pretreated 48 hr starved mice where, instead of the elevation of glucose formation, a decrease of that was caused by acetone.
  • 4.4. Acetone decreased 14C-carbon incorporation into glucose from 14C-(U)-alanine added at saturating concentration in hepatocytes prepared from starved mice.
  • 5.5. Similarly to acetone there was no net glucose formation from acetol either when added alone, however, it enhanced gluconeogenesis from alanine at non-saturating concentrations of the amino acid.
  • 6.6. Methylglyoxal proved gluconeogenic in all the cases.
  • 7.7. It is concluded that net glucose formation from acetone as sole substrate occurs only under those conditions which are far from a physiological situation, however, when gluconeogenesis from another substrate takes place, acetone can contribute to net glucose formation in hepatocytes prepared from fasted mice.
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6.
[13C]Formaldehyde was selectively incorporated into the C-1 position of D-fructose 6-phosphate by condensation with D-ribulose 5-phosphate catalyzed by a partially purified enzyme system for formaldehyde fixation in Methylomonas aminofaciens 77a. Much of the [1-13C]D-fructose 6-phosphate produced in this reaction was converted to [1-13C]D-glucose 6-phosphate by the addition of glucose-6-phosphate isomerase. A fed-batch reaction with periodic additions of the substrates afforded 56.2 g/liter D-glucose 6-phosphate and 26.8g/liter D-fructose 6-phosphate. When [13C]methanol was used as the C1-donor, the yield of [1-13C]D-glucose 6-phosphate was high when alcohol oxidase was added. The optimum conditions for sugar phosphate production in the fed-batch reaction gave 45.6g/liter [1-13C]D-glucose 6-phosphate and 16.4g/liter [1-13C]D-fructose 6-phosphate in 165min. The molar yield of the total sugar phosphates to methanol added was 95%. The addition of H2O2 and catalase to the reaction system supplied molecular oxygen for methanol oxidation to formaldehyde by alcohol oxidase.  相似文献   

7.
  • 1.1. The effects of pressure on synaptic currents were examined in crayfish abdominal muscles.
  • 2.2. Helium pressure (10.1 MPa) considerably decreased extracellulariy-recorded excitatory junctional potentials associated with increased short-term facilitation.
  • 3.3. These effects could be mimicked by a reduction of [Ca2+]o, and partially compensated by an increase in [Ca2+]o.
  • 4.4. Pressure also reduced the amplitude of the extracellular nerve terminal potentials (ENTP) by up to 25%, and significantly increased synaptic delay in a [Ca2+]o-dependent manner.
  • 5.5. The interaction between compression and various [Ca2+]o were analysed in terms of an existing model of transmitter release. The results were consistent with the hypothesis that high pressure decreases the maximal Ca2+ influx into nerve terminals.
  • 6.6. The decreased ENTP and increased synaptic delay suggest that additional processes may be involved in pressure effects on synaptic transmission.
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8.
  • 1.1. The metabolic fate of 1-14C-acetate administered to the marine bivalve mollusc Mytilus edulis was investigated.
  • 2.2. The active incorporation of the label in 20:2 non-methylene-interrupted dienoic (NMID) fatty acids was found.
  • 3.3. Acetate incorporation patterns and specific radioactivity of mussel acids suggest that 22:2Δ7,13 and 22:2/gD7,15 arose by C2 elongation of 20:2Δ5,11 and 20:2Δ5,13 respectively.
  • 4.4. The proposed pathway of NMID fatty acid biosynthesis in molluscs is discussed.
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9.
  • 1.1. The fatty acid composition of the triglyceride fraction of mink milk sampled during mid-lactation (day 28 post partum) from two nursing mink was compared to that of plasma samples and to the fatty acid composition of the feed rations used.
  • 2.2. Chemical analysis of the triglyceride composition of mink milk demonstrated only minute concentrations of fatty acids with a chain length below C14.
  • 3.3. The saturated C16:0- and C18:0-unit fatty acids in mink milk made up for 24–40% of the total amount of fatty acids extracted, the remainder being represented by mono and polyunsaturated long-chain (C16-C24) fatty acids.
  • 4.4. Preliminary in vitro experiments proved the incorporation of14C-labelled glucose, acetate or palmitate into triacylglycerols in cultures of mink mammary tissue to be linear for at least 2 hr.
  • 5.5. The in vitro capacity for de novo fatty acid synthesis in mink mammary tissue using 14C-labelled glucose or acetate was low, i.e. ranging from 0.096–0.109 nmol/g (fresh tissue)/min, and amounted to only about 5% of that obtained in the case of [14C]palmitic acid incubation.
  • 6.6. Following 14C-labeIled acetic or palmitic acid incubation of mink mammary tissue neither desaturation nor chain elongation was observed.
  • 7.7. In response to long-term feeding on rations with two different sources of animal fat (F = fish oil or L = lard) the influence of compositional changes in dietary neutral lipids on the fatty acid composition of the lipids of mink milk is discussed.
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10.
  • 1.1. To characterize an enzyme which metabolizes retinal in liver microsomes, several properties of the enzymatic reaction from retinal to retinoic acid were investigated using rabbit liver microsomes.
  • 2.2. The maximum pH of the reaction in the liver microsomes was 7.6.
  • 3.3. The Km and Vmax values for all-trans, 9-cis and 13-cis-retinals were determined.
  • 4.4. The reaction proceeded in the presence of NADPH and molecular oxygen.
  • 5.5. The incorporation of one atom of molecular oxygen into retinal was confirmed by using oxygen-18, showing that the reaction comprised monooxygenation, not dehydrogenation.
  • 6.6. The monooxygenase activity was inhibited by carbon monoxide, phenylisocyanide and antiNADPH-cytochrome P-450 reductase IgG, but not by anti-cytochrome b5 IgG.
  • 7.7. The enzymatic activity inhibited by carbon monoxide was photoreversibly restored by light of a wavelength of around 450 nm.
  • 8.8. The retinal-induced spectra of liver microsomes with three isomeric retinals were type I spectra.
  • 9.9. The microsomal monooxygenase activity induced by phenobarbital or ethanol were more effective than that by 3-methylcholanthrene, clotrimazole or β-naphthoflavone.
  • 10.10. These results showed that the monooxygenase reaction from retinal to retinoic acid in liver microsomes is catalyzed by a cytochrome P-450-linked monooxygenase system.
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11.
  • 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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12.
  • 1.1. The effect of 13-hydroperoxy-9,11-octadecadienoic acid (13-HPODE) on the formation of thromboxane (TX) B2, 12-hydroxy-5,8,10-heptadecatrienoic acid (HHT) and 12-hydroxy-5,8,10,14-eicosatetraenoic acid (12-HETE) from exogenous arachidonic acid in washed rabbit platelets was examined.
  • 2.2. 13-HPODE inhibited TXB2 and HHT formation without affecting 12-HETE production.
  • 3.3. 13-Hydroxy-9,11-octadecadienoic acid which was produced rapidly from 13-HPODE, did not suppress the formation of TXB2 and HHT, indicating the requirement of the hydroperoxy moiety for the inhibitory effect of 13-HPODE on TXB2 and HHT formation.
  • 4.4. Experiments utilizing mannitol and dimethyl sulfoxide (hydroxy radical scavengers) revealed that the action of 13-HPODE is not due to hydroxy radicals which are expected to be formed from 13-HPODE.
  • 5.5. These results suggest that 13-HPODE is a selective inhibitor of platelet cyclo-oxygenase and may have functional effects within platelets.
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13.
  • 1.1. 14C-dichlorofarnesoate permeated rapidly into Haemonchus contortus (infective juveniles) and Panagrellus redivivus (mixed cultures) and was strongly bound by hydrophobic association (Ks > 10−4M).
  • 2.2. Uptake rose linearly with increases in temperature (5–38°C) and external concentration (C0; 0.07–2.15 × 10−4 M). Within 1 hr the internal concentration, C1 was >C C0.
  • 3.3. The pH of the medium (6–8) did not affect uptake.
  • 4.4. Efflux of dichlorofarnesoate was low: the half-time of release was > 18 hr.
  • 5.5. The uptake curve approximated to the expression C1/C0 = a(1 − e−bt) with a and b as constants and t in hr.
  • 6.6. These results clarify previous work on the inhibitory action of juvenile hormone on the development of nematodes.
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14.
  • 1.1. The role of protein kinase C in the mechanism of stimulation of glucose transport in rat adipocytes was investigated.
  • 2.2. Glucose transprt was stimulated by dioleoylglycerol (DOG), tetradecanoyl phorbol acetate (TPA) and phospholipase C (PLC).
  • 3.3. Agents that inhibit protein kinase C (polymyxin B, gossypol and quercitin) also inhibited glucose transport that had been stimulated by DOG, TPA, PLC and insulin.
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15.
  • 1.1. The regulation of the increase in the cytosolic calcium concentration ([Ca2+]c) induced by extracellular ATP in AS-30D hepatoma cells was studied.
  • 2.2. Homologous desensitization involving the refilling of intracellular calcium pools and the participation of protein kinase C was found.
  • 3.3. Isoproterenol, forskolin and dibutyril-cyclic AMP also induced an increase in [Ca2+]c.
  • 4.4. Interestingly, synergism was found for isoproterenol or forskolin and ATP.
  • 5.5. The results suggest that there are two pathways for mobilizing [Ca2+] in AS-30D hepatoma cells; one is activated by ATP receptors and the other by cyclic AMP.
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16.
  • 1.1. Annelid and molluscan red blood cells (RBC) may de differentiated metabolically from vertebrate RBC by their increased permeability to substrate, their magnitude of amino acid catabolism and their higher aerobic metabolism.
  • 2.2. At 22°C, Glycera and Noetia RBC oxidize glucose and glutamate to CO2 without accumulation of either d- or l-lactate. By comparison, the oxidation of glutamate by rat and chicken RBC is negligible at this temperature despite its incorporation into the cells.
  • 3.3. At 37°C, chicken RBC oxidize glutamate at a rate 4 times greater than at 22°C, with oxygen uptake still lower than that in Noetia RBC at 32°C. At 37°C, rat RBC do not increase their oxidation of glutamate above that at 22°C, but oxygen uptake increases to slightly more than half that of chicken RBC.
  • 4.4. Our finclings indicate that RBC of these two invertebrate species have both a higher aerobic metabolism and lower anerobic capacity than vertebrate RBC.
  • 5.5. Moreover, the annelid and molluscan RBC have a relatively lower activity of the pentose phosphate (PPO4) pathway than vertebrate RBC, as evidenced by their higher thermal sensitivity of oxygen uptake and their higher *C1O2/*C6O2 isotope ratio.
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17.
  • 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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18.
  • 1.1. Carnitine ester hydrolysis was observed in homogenates of normal rabbit (Oryctolagus cuniculus) aortas and in intact aortas from normal and cholesterol-fed rabbits using [14C]palmitoylcarnitine as a substrate.
  • 2.2. Hydrolytic activity was decreased approximately 50% in arterial tissue from cholesterol-fed rabbits and may account for the observation that carnitine esters accumulate in arteries of animals fed atherogenic diets.
  • 3.3. Long-chain acylcarnitines (C14–C18) were found to be moderate inhibitors of microsomal acylCoA:cholesterol acyltransferase (ACAT, EC 2.3.1.26); short-chain acylcarnitine (C2–C10) and carnitine itself were not inhibitors.
  • 4.4. The data suggest that the increase in activity of arterial ACAT that characteristically parallels the development of atherosclerosis does not occur as a result of carnitine ester accumulation.
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19.
  • 1.1. Using one force-fed meal, eight mature female rainbow trout received [14C]astaxanthin ([14C]Ax) with [3H]canthaxanthin ([3H]Cx; N = 3) or with [3H]zeaxanthin ([3H]Zx; N = 5).
  • 2.2. Approximately 200 μl of blood were collected via caudal puncture every 24 hr for 4 days. After 96 hr, the fish were killed and pyloric caeca (P.C.) from the duodenal intestine (D.I.) section, ileal intestine (I.I.), and posterior intestine (P.I.) were dissected out.
  • 3.3. In the blood, Ax levels were higher than Cx followed by Zx levels.
  • 4.4. This corresponds to their respective absorption by the trout as was confirmed by their relative concentrations in P.C., I.I. and P.I.
  • 5.5. However, blood clearance was similar for all three compounds. [14C]Phoenicoxanthin ([14C]Px) was detected as a reduced metabolite of [14C]Ax in all gut sections.
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20.
  • 1.1. The Dufour gland secretions of Formica fusca consist mainly of saturated straight and branched chain hydrocarbons (C9–C19), one unsaturated hydrocarbon (C13) and two sesquiterpenoids, farnesene and homofarnesene.
  • 2.2. In F. lemani, the Dufour gland contains branched, saturated and unsaturated hydrocarbons (C9–C19) and two farnesenes.
  • 3.3. The two species were distinguished chiefly by the presence of a relatively large proportion of farnesene in F. fusca, with very little homofarnesene and by contrast, little farnesene but much more homofarnesene in F. lemani.
  • 4.4. The contents of the Dufour gland can be used as a chemotaxonomic clue to distinguish between the species.
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