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1.
  • 1.1. The kinetics of porphyrin accumulation in cultured mammalian epithelial cells (CNCM-I-221) during exposure to ALA was investigated.
  • 2.2. The total porphyrin synthesized is a function of ALA concentration and the incubation time. The cellular porphyrin content exhibited a saturation pattern, reaching a plateau at about 0.04 fmol porphyrins/cell. A biphasic time-dependent increase in the total porphyrin synthesized was observed.
  • 3.3. After 3 hr of exposure to ALA the rate of synthesis increased to ahnost twice the initial rate, reaching between 0.02 and 0.05 fmol porphyrins/cell/hr depending on serum concentration in the medium.
  • 4.4. Two effects of FBS on ALA-stimulated porphyrin accumulation were observed. Greater total porphyrin synthesis was found when incubations were made in 10% FBS compared to those in 1% FBS.
  • 5.5. The higher serum concentration also caused a greater release into the medium of the porphyrins generated in the cells with a calculated half-life of 24 min in 10% serum-supplemented medium compared with 62 min in 1% serum.
  • 6.6. The results obtained from cell synchronization experiments suggest that there is little obvious cell cycle-dependent variation in the synthesis of porphyrins from ALA.
  • 7.7. The small differences in the intracellular porphyrin content that were observed may be attributed to a slight reduction in the rate of loss of porphyrins in G2/M cells.
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2.
  • 1.1. Some effects of restricting feed intake for 96 or 168 hr were determined in male Nubian goats.
  • 2.2. Goats restricted for 96 hr lost 11.6% of their body weight, and goats restricted for 168 hr lost 19.8%.
  • 3.3. Feed restriction for up to 168 hr did not produce significant effects on the heart rate, respiratory rate or rectal temperature.
  • 4.4. Haemoglobin concentration, packed cell volume and erythrocyte number were all decreased by feed restriction. There was also a tendency towards eosinopenia and lymphopenia.
  • 5.5. Feed restriction for 96 or 168 hr raised the plasma activity of aspartate transaminase, and did not affect significantly cholinesterase activity. Plasma amine oxidase activity was significantly reduced in goats restricted for 168 hr.
  • 6.6. Feed restriction produced significant increases in the blood or plasma concentrations of lactate. pyruvate, non-esterified fatty acids, cholesterol, ketone bodies and bilirubin.
  • 7.7. Significant decreases were found in the concentrations of total protein and calcium.
  • 8.8. No significant changes were observed in the plasma concentrations of glucose, sodium or potassium.
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3.
  • 1.1. Short-chain fatty acid absorption in hen colon is protonated across the apical border coupled to an apical electrogenic proton pump.
  • 2.2. The surface pH of the isolated colonic epithelium was 6.27 ± 0.05, when incubated in Krebs-phosphate buffer pH 7.0.
  • 3.3. Propionate 7 and 40mmol/l in the incubation medium (pH 7.0) increased microclimate pH to 6.47 ± 0.04 and 6.56 ± 0.04. Inhibition of metabolic activity by potassium cyanide 1 mmol/1 increased surface pH to 6.66 ± 0.06.
  • 4.4. The calculated concentration of propionic acid in the microclimate is near-linearly related to the propionate concentration. Thus, the acid microclimate is not responsible for the Michaelis-Menten like kinetics of propionate transport.
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4.
  • 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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5.
  • 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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6.
  • 1.1. Isolated mitochondria from rat liver were incubated in the presence of [U-14C]palmitate, ATP, CoA, carnitine, EGTA (ethylene glycol bis (β-aminoethyl ether) N,N′-tetraacetic acid) and varying amounts of calcium.
  • 2.2. When a KCl-based incubation medium was used, the oxidation of palmitate was inhibited when the concentration of free calcium was increased from about 0.1–10μM.
  • 3.3. When a sucrose-based incubation medium was used, the basal rate of palmitate oxidation was about half of that observed with the KCl-medium and calcium had a stimulatory effect.
  • 4.4. With the KCl-medium the rate of oxygen consumption was inhibited by calcium with α-ketoglutarate as well as palmitate as the respiratory substrate.
  • 5.5. No inhibitory effect of calcium was observed with succinate or β-hydroxybutyrate.
  • 6.6. With the KCl-medium and with α-ketoglutarate as the respiratory substrate, state 3 respiration but not state 4 respiration was inhibited by calcium.
  • 7.7. When the sucrose-medium was used, state 3 respiration was first inhibited by calcium, but this inhibition was gradually relieved and the respiratory rate finally became higher than it was before calcium addition.
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7.
  • 1.1. Plasma glucose, non-esterified fatty acid, triglyceride, cholesterol and lactate concentrations were measured during 90 min treadmill exercise at a work intensity of 55–60% maximum.
  • 2.2. After 90 min exercise plasma glucose fell by 35% whilst the non-esterified fatty acid concentration rose to as much as 3–4 times resting.
  • 3.3. Exercise had no significant effect on plasma cholesterol, triglyceride or lactate concentrations.
  • 4.4. The findings indicate a progressive increase in fat utilization during prolonged exercise. Possible hormonal mechanisms underlying exercise-induced changes in lipid and carbohydrate metabolism are discussed.
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8.
  • 1.1. Treatment of isolated rat liver mitochondria with methyl methacrylate (MM) produced membrane disruption as evidenced by the release of citrate synthase, and changes in the ultrastructure of mitochondria.
  • 2.2. At concentration 0.1%, MM uncoupled oxidative phosphorylation as evidenced by stimulation of state 4 respiration supported either by pyruvate plus malate or succinate (+rotenone) and ATP-ase activity in intact mitochondria.
  • 3.3. At concentration 1% MM stimulated ATP-ase activity in intact mitochondria and succinate (+rotenone) oxidation at state 4 and was without effect on this substrate oxidation at state 3.
  • 4.4. MM inhibited pyruvate plus malate oxidation either at state 3 or in the presence of uncoupling agents.
  • 5.5. MM inhibited the NADH oxidase of electron transport particles at a concentration which failed to inhibit either succinic oxidase or the NADH-ferricyanide reductase activity.
  • 6.6. The data presented suggest that in the isolated mitochondria MM inhibits NADH oxidation in the vicinity of the rotenone sensitive site of complex I.
  • 7.7. The general conclusion is that MM may block an electron transport and to uncouple oxidative phosphorylation in rat liver mitochondria. The overall in vitro effect would be to prevent ATP synthesis which could result in cell death under in vivo conditions.
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9.
  • 1.1. In the presence of insulin, 10−5 M 3,3',5-triiodothyronine (T3) treatment for 1/2 hr decreased fatty acid synthesis 35% only in adipocytes from lean rats, whereas at 10−11 M through 10−7M T3 the obese adipocytes had nearly a 20% increase in fatty acid synthesis.
  • 2.2. A 2 hr pretreatment of adipocytes with 10−9 and 10−7 M T3 decreased insulin-stimulated fatty acid synthesis by nearly 20% in both lean and obese adipocytes.
  • 3.3. In the absence of insulin, the 2 hr pretreatment with 10−9 M T3 resulted in a 45% increase in lean adipocyte fatty acid synthesis, though the obese adipocytes required at least 10−7 M T3 for 2 hr to increase the non-insulin-stimulated fatty acid synthesis by 50%.
  • 4.4. At 10−9M T3 concentrations non-insulin-stimulated fatty acid synthesis was increased by 200% in lean adipose tissue explants, but obese adipose expiants were not significantly affected under these conditions.
  • 5.5. The addition of 10−9 M T3 plus insulin to the explant media decreased fatty acid synthesis by 35% in both the lean and obese tissues.
  • 6.6. The results also imply that the low T3 status of the obese rat may be contributory to the elevated fatty acid synthesis observed in obese adipocytes.
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10.
  • 1.1. The effects on growth of supplementing the medium with (n-3) and (n-6) polyunsaturated fatty acids (PUFA) were investigated in Atlantic salmon (AS) and turbot (TF) cell lines.
  • 2.2. Neither cell line grew in the absence of serum, and addition of increasing percentages of serum resulted in graded increases in cell growth in both cell lines.
  • 3.3. The growth of AS cells was stimulated by supplementing the medium with both (n-6)PUFA and (n-3)PUFA at 5–25 μM, especially 18:3(n-3) and 20:5(n-3).
  • 4.4. Intermediate concentrations (15–20 μM) of 18:2(n-6) and 18:3(n-3) increased cell growth in TF cells, although only after 8 days in culture.
  • 5.5. In contrast, both (n-3) and (n-6)PUFA at 25 μM tended to inhibit the growth of TF cells, and in longer incubations caused cell death.
  • 6.6. The inhibition of TF cell growth rate and, in particular, the cell death induced by 25 μM PUFA could be abolished by the addition of vitamin E to the medium.
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11.
  • 1.1. The rates at which the pulmonate snail B. glabrata takes up soluble glucose and maltose from a defined medium were evaluated by measuring the buccal mass pulsation rate, the drinking rate, net changes in the concentrations of sugars in the medium and the rate of accumulation of 14C labelled maltose.
  • 2.2. It was demonstrated that B. glabrata was capable of net accumulation of maltose and glucose via the mouth and integument, respectively.
  • 3.3. Some of the maltose in the medium was also hydrolysed to glucose by exogenous snail enzymes.
  • 4.4. The mechanisms involved in the accumulation of the sugars and the relevance of the results to the biochemical ecology of the snails and other aquatic invertebrates are discussed.
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12.
  • 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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13.
  • 1.1. Since soluble corn bran hemicellulose (CBH) was found to reduce serum cholesterol level in the rat fed with a high cholesterol diet, rats were fed with diets containing orotic acid (OA) to investigate the effect of CBH on lipid metabolism.
  • 2.2. Hepatic lipid accumulation induced by OA was reduced by feeding with CBH in rats. The reduction was not due to inhibition of intestinal absorption of OA by CBH.
  • 3.3. Administration of acetate or propionate, colonie fermentation products of CBH, tended to alleviate the hepatic lipid accumulation by OA in rats.
  • 4.4. OA feeding decreased activities of some hepatic enzymes involved in fatty acid synthesis except for acetyl CoA carboxylase. The decreases were reversed by the concurrent feeding of CBH.
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14.
  • 1.1. Comparative studies of EGF, TGF-α, and TGF-βl action on the synthesis of DNA and cellular proteins in rat L6 myogenic cells and fetal bovine myoblasts demonstrated considerable differences between particular growth factors, dependent on dose and target cells.
  • 2.2. Among examined growth factors only EGF exerted mitostimulatory action, more pronounced at lower concentrations. EGF, progressively with dose, stimulated protein synthesis much more effectively in fetal bovine myoblasts than in L6 cells.
  • 3.3. The dynamics of stimulation of protein synthesis by TGF-α was greater than by EGF in both examined types of cell cultures.
  • 4.4. The maximal response of fetal bovine myoblasts to TGF-α in a concentration of 100 ng/ml reached 370%, whereas EGF in a 10 times higher concentration stimulated protein synthesis only to 123% of control.
  • 5.5. In contrast to EGF, TGF-α significantly inhibits DNA synthesis. Inhibition of the mitogenic response with simultaneous stimulation of protein synthesis by TGF-α may indicate changes toward cell differentiation.
  • 6.6. TGF-β 1 in smallest concentration inhibits both DNA and protein synthesis. The suppressive action of TGF-β 1 was more distinct in fetal bovine myoblasts than in the L6 cell line.
  • 7.7. Increasing concentrations of TGF-β l diminished its inhibitory effect, even leading to stimulation of protein synthesis at higher doses in L6 myoblasts.
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15.
  • 1.1. The taurine content of erythrocytes from 15 avian species contained levels of taurine in the range of 20–70 mmol/kg of hemoglobin, about 100-fold that of mammalian red blood cells.
  • 2.2. This high taurine content did not appear to be related to the nucleation of these cells as nucleated amphibian erythrocytes and human reticulocytes contained low levels.
  • 3.3. The erythrocytes lacked cysteine sulfinic acid decarboxylase, a key enzyme in the synthesis of taurine from cysteine, indicating a probable lack of synthetic capabilities.
  • 4.4. The cells were able to accumulate labeled taurine against a concentration gradient. This uptake was inhibited by β-alanine and was Na+-dependent.
  • 5.5. When incubated in hypotonic medium, the cell volume of pigeon erythrocytes rapidly increased and was followed by a much slower return to normal size. The cell volume reduction was accompanied by a slow efflux of taurine into the medium.
  • 6.6. These data suggest that taurine plays a role in cell volume maintenance and osmotic regulation in avian erythrocytes.
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16.
  • 1.1. The major metabolic changes associated with repeated capture, aquarium transfer, anaesthesia and blood sampling were investigated in an Australian freshwater fish, the golden perch (Macquaria ambigua),
  • 2.2. A compounded stress response was seen after repetition of the procedure, in which the plasma glucose rose within 3 hr and amino acid concentrations rose and the serum free fatty acids concentration fell after 24 hr.
  • 3.3. Alanine was identified as an important circulating energy store in the stress response of golden perch.
  • 4.4. No change was noted in the serum protein, plasma lactate or β-hydroxybutyrate concentrations, indicating that tissue damage and hypoxia were absent, and that degradation of free fatty acids did not produce metabolites excess to the requirements of gluconeogenesis and the tricarboxylic acid cycle.
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17.
  • 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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18.
  • 1.1. Extensive digestion of nuclei with micrococcal nuclease (MNase), commonly used in the analysis of chromatin structure, results in the production of mono- and dinucleosomal chromatin fragments.
  • 2.2. Digestion of nuclei from a range of cell types with low enzyme concentrations solubilized high molecular weight polynucleosomal fragments, some ⪢ 22 kb long.
  • 3.3. Such digestion conditions also resulted in extensive solubilization of nascent RNA which contributed considerably to the nucleic acid content of the soluble fraction.
  • 4.4. We conclude that the contribution of RNA to total nucleic acid content of the soluble fraction should be taken into consideration when nuclei are digested with low concentrations of MNase.
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19.
  • 1.1. Thiamin deprived Euglena cells contained twice as high a concentration of Fru-2,6-P2 in sufficient cells and the rate of the uptake of glucose from the medium was twice as great as that found in sufficient cells, indicating that Fru-2,6-P2 is responsible for the glycolysis.
  • 2.2. Moreover, incubation of thiamin deprived cells with increasing thiamin concentrations caused a decrease of Fru-2,6-P2. The activity of Fru-6-P, 2-kinase was affected by thiamin and the activity of PFK-2 in thiamin deprived cells was 2.3 times greater than that observed in sufficient cells.
  • 3.3. Incubating thiamin-deficient cells in a thiamin-containing medium, the activity of Fru-6-P, 2-kinase decreased rapidly and became the same activity as that found in thiamin sufficient cells.
  • 4.4. In contrast, the two thiamin dependent 2-OGDC and PNOR activities showed a reverse relationship, being higher in thiamin-sufficient cells and lower in thiamin deficient cells.
  • 5.5. We concluded that the carbohydrate metabolism of Euglena is regulated by Fru-2,6-P2 through an intracellular concentration of thiamin based on the present evidence.
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20.
  • 1.1. The ciliary membrane lipid composition and electrophysiology of the behavioral mutant of Paramecium tetraurelia, barium A (d4–592), were previously shown to differ from those of wild-type 51S when both strains were grown in low sterol medium.
  • 2.2. In this study, the phospholipid fatty acid composition of the two strains was shown to differ regardless of the level of sterol supplementation or culture age (growth phase).
  • 3.3. The ratio of linoleic to γ-linolenic acid, 18:2(9,12)/18:3(6,9,12), was consistently higher in baA compared to wild-type phospholipids, largely because of a dramatic shift in the ratio of these two fatty acids esterified at the 2 position of 1-alkyl-2-acyl-sn-glycero-3-phosphorylcholine (GPC).
  • 4.4. These data support the hypothesis that a specific Δ6 fatty-acyl desaturase, which directly desaturates phospholipid and shows a preference for GPC as its substrate, is impaired as a result of the barium A mutation.
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