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1.
  • 1.1. The carnitine-responsive mutant yeast, Candida pintolopesii ATCC 26014 and the wild type strain (ATCC 22987) were used to investigate the role of carnitine and the carnitine acetyltransferase system.
  • 2.2. [3H]l-Carnitine, supplied to the cells, was incorporated into acetylcamitine and [14C]pantothenate was incorporated into CoA and its derivatives.
  • 3.3. Both bioautography and quantitative assays indicated that the relative amounts of CoA and acetylCoA were very different in the mutant and wild type cells.
  • 4.4. The wild type yeast maintained an acetylCoA/CoA ratio of 0.33 ± 0.09 indicating that most of the CoA in the cell is in the free CoA form. Carnitine was not required to establish this ratio nor did its presence lower it further.
  • 5.5. In contrast, the mutant cells contained a high acetylCoA/CoA ratio (12.8 ± 3.0).
  • 6.6. In the mutant cells, carnitine lowered the ratio by decreasing the intracellular acetylCoA concentration and releasing free CoA.
  • 7.7. These data indicated that wild type yeast possess an effective mechanism that is not related to the CAT system for regulating the acetylCoA/CoA ratio.
  • 8.8. This mechanism appears to be lacking in the mutant. The CAT system decreased the acetylCoA/CoA ratio in the mutant cells but not to the value which is found in the wild type strain.
  • 9.9. In both stains of Candida pintolopesii, in the presence of carnitine, an acetylcamitine pool can be created whose concentration exceeds that of acetylCoA.
  • 10.10. The intracellular apparent equilibrium constant (Kapp) for carnitine acetyltransferase for wild type Candida pintolopesii ATCC 22987 was 0.73 ± 0.12, close to the established value of 0.6, indicating that the CAT system ran close to equilibrium.
  • 11.11. The Kapp for the CAT system of the carnitine-responsive mutant yeast was 7.7 ± 1.7 indicating that this reaction was not at equilibrium.
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2.
  • 1.1. Two columnar cacti in the Sonoran Desert, agria and organpipe, contain medium chain (C8−C12) fatty acids.
  • 2.2. Necrotic tissues of these cacti serve as feeding and breeding substrates for Drosophila mojavensis but not D. nigrospiracula.
  • 3.3. Results show that capric and lauric acids are the predominant fatty acids of both cacti.
  • 4.4. Fatty acid chain length exhibits a differential effect on larval viability with caprylic acid (Q) having the greatest and myristic acid (C14) having the least effect.
  • 5.5. Drosophila mojavensis is more tolerant of free fatty acids than D. nigrospiracula, and this partly explains the ability of D. mojavensis to utilize agria and organpipe cacti.
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3.
  • 1.1. In eels captured in Roskilde Fjord in 1972 and 1975, a specifically enhanced synthesis was found from 14C-acetate of 14C-labelled mono-unsaturated fatty acids (C16:1 and C18:1) relative to saturated fatty acids (C16:0 and C18:0) in sea water 4 days after irradiation (10 Gy, 60Co).
  • 2.2. Corresponding experiments in 1976 and 1982 showed rather the opposite: irradiation resulted in more 14C-labelled saturated fatty acids relative to unsaturated fatty acids, both in fresh and sea water.
  • 3.3. The latter effect was less marked than that in 1972 and 1975, but still statistically clearly significant.
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4.
  • 1.1. Carp (Cyprinus carpio) were stressed to exercise by rolling in a respiration chamber. Ventilatory water flow rate, cardiac output and blood respiratory parameters were determined.
  • 2.2. During exercise, oxygen uptake increased about 3.5-fold and returned to pre-exercise level within 15 min.
  • 3.3. This exercise-stress resulted in no plasma acidosis and in no swelling of the erythrocytes.
  • 4.4. Ventilatory water flow rate increased 6-fold, whereas cardiac output increased 2-fold. Hence the ventilation-perfusion ratio increased during exercise.
  • 5.5. During exercise, arterial O2 content (CaO2) increased due to increases in O2 tension (PaO2), O2 saturation of hemoglobin (SaO2) and hemoglobin concentration (Hb). On the other hand, Pv̄O2 and Sv̄O2 remained at the resting levels but Cv̄O2 slightly increased due to an increase in Hb.
  • 6.6. Arterial-venous O2 difference (CaO2-Cv̄O2) increased by 38%, which was met by a much greater increase in CaO2 than Cv̄O2.
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5.
  • 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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6.
  • 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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7.
  • 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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8.
  • 1.1. The cardiovascular physiology of adult Carcinus maenas (L.) emerging into air has been investigated at three different air temperatures.
  • 2.2. Transition from seawater to air or vice versa triggered transient increases in cardiac and locomotor activity.
  • 3.3. However, crabs became inactive 5–10 min after emerging from seawater (15°C) into air at the same temperature (15°C) or at lower temperatures (12–13°C) and heart rate fell.
  • 4.4. At higher air temperatures (18–20°C) heart rate rose but to a lesser extent than predicted from aquatic Q10 heart-rate values.
  • 5.5. Crabs were again quiescent in aerial conditions.
  • 6.6. Mean arterial oxygen tension (Pao2) was ~ 74 mmHg in submerged crabs but fell to ~ 38 mmHg in air while mean arterial carbon dioxide tension (Pao2) increased from 1 to 4 mmHg resulting in respiratory acidosis.
  • 7.7. A model of gill function is proposed to explain the development of internal hypoxia in air.
  • 8.8. The results are discussed in relation to the distribution of adult and juvenile C. maenas in situ.
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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. A series of diesters of isohematoporphyrin (isoHp), from dimethyl to dioctyl were prepared according to Rimington et al. (1989b). Their optical absorption, fluorescence spectra and high performance liquid chromatography (HPLC) retention times were recorded.
  • 2.2. A plot of HPLC retention time against number of C atoms in the alcohol used for esterification was approximately linear at first then rising steeply from diamyl to diocyi ester, whether a gradient elution was used or only methanol: water, 95/5, at pH 7.5.
  • 3.3. Preparation of the diethers of isoHp was much more difficult than that of the corresponding derivatives of hematoporphyrin (Hp). Several different methods were investigated, varying both times and temperatures.
  • 4.4. These methods included reaction of isoHp or its demethyl ester with
    • 4.1.(i) a bromoalkane in presence of anhydrous K2CO3;
    • 4.2.(ii) reaction with bromoalkane and Ag2O;
    • 4.3.(iii) reaction of brominated-isoHp, prepared by using thionylbromide, with the selected alcohol, or corresponding sodium alcoholate;
    • 4.4.(iv) heating of isoHp alone with an alcohol containing 20% (w/v) H2SCO4 (temp. range from 45° to 118°C),
    • 4.5.(v) refluxing as in (iv) at the b.p. of the alcohol; and
    • 4.6.(vi) carrying out this reaction in refluxing ethyleneglycoldimethyl ether (b.p. 85°C) or diethyleneglycoldimethyl ether (b.p. 155°C).
  • 5.5. Some diether formation was observable by all these methods but yields were small, a considerable quantity of unreacted isoHp and other products remaining.
  • 6.6. Examined by HPLC, the diethers consistently afforded a forked peak which on thin layer chromatography was only resolved into two very closely associated bands by a solvent mixture carefully selected for development.
  • 7.7. On elution these materials had virtually identical optical absorption and fluoresence spectra.
  • 8.8. The nature of the association is discussed, atropisomers (Gottwald and Ullman, 1969) and possible stacked monomer: dimers (Abraham et al., 1963) being considered as possibilities.
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11.
  • 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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12.
  • 1.1. The sterol composition of the sponge Homaxinella balfourensis (Ridley and Dendy) has been analysed and seven components detected.
  • 2.2. These were separated by argentic column chromatography and studied by gas chromatography-mass spectrometry and by proton magnetic resonance spectroscopy.
  • 3.3. It was established that the components were C27, C28 and C29 fully saturated or side chain unsaturated stanols and colest-5-en-3β-ol as traces.
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13.
  • 1.1. The oxygen consumption of crabs in normoxic and hypoxic (50% O2) seawater was measured directly after collection.
  • 2.2. The influences of size and lunar cycles were removed by scaling the data.
  • 3.3. Strong negative correlations between low individual levels of O2 consumption and the ability to compensate for hypoxia were apparent in Wicklow (subtidal) crabs.
  • 4.4. Compensation for hypoxia was much greater on the flood tide than on the ebb.
  • 5.5. Crabs from Roscoff (intertidal) had lower levels of compensation than those from Wicklow.
  • 6.6. Size, sex and condition had no apparent effect upon these relationships.
  • 7.7. Crabs acclimated to laboratory conditions have not shown this tidal variation in compensation for hypoxia.
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14.
  • 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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15.
  • 1.1. The cuticular and internal hydrocarbons of the khapra beetle Trogoderma granarium were studied by capillary column gas chromatography and mass spectrometry. n-Alkanes, 3-methyl-, 5-methyl-, 11-methyl-, 12-methyl-, 13-methyl-, 14-methyl- and 15-methylalkanes were found in the cuticular and internal lipids.
  • 2.2. Some quantitative differences of the compositions were estimated for cuticular and internal hydrocarbons.
  • 3.3. The n-alkanes in the samples are mostly odd chain lengths from 23 to 33 carbon atoms. In turn, the branched hydrocarbons consist of even carbon numbers ranging from C26 to C32, but the branching points are situated on the odd carbon numbers.
  • 4.4. There are similarities in the n-alkanes patterns extracted from khapra beetle and wheat grains, the latter of which are the natural nutrition of this pest.
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16.
  • 1.1. To understand the physiological roles of the 90-kDa stress protein (HSP90), we investigated the heparin- and antibody-binding domains of the protein.
  • 2.2. For heparin-binding sites, HSP90 was digested completely with trypsin, and the digests were applied to a heparin-Sepharose column and eluted with 1.0 M NaCl, followed by 8.0 M urea.
  • 3.3. Each elutant was purified by a reverse-phase C18 column.
  • 4.4. Two peptides from the NaCl-eluted fraction and no peptide from the urea-eluted fraction were purified.
  • 5.5. The purified peptides were sequenced by an automated peptide sequencer.
  • 6.6. One of the heparin-binding sites was present between Leu-362 and Arg-365; another was present between Leu-645 and Lys-648.
  • 7.7. These two peptides were basic and considerably hydrophilic.
  • 8.8. For antibody-binding sites, HSP90 was mildly digested with trypsin, electrophoresed on SDS-polyacrylamide gels and transferred to PVDF membranes.
  • 9.9. The four bound of the trypsin fragments could be sequenced with a peptide sequencer.
  • 10.10. There was only one antibody-binding peptide, 38 kDa, starting from Pro-2. The others showed no cross-reactivity with the antibody and started from Leu-283.
  • 11.11. Therefore, the epitopes of HSP90 are present between Pro-2 and Leu-282.
  • 12.12. The heparin-binding sites are present from the middle region of the HSP90 molecule, and the antigen sites are at the N-terminal domain.
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17.
  • 1.1.|Resting metabolic rate of laboratory rabbits kept indoors is susceptible to seasonal fluctuations and is higher in winter than in summer.
  • 2.2.|Thermoneutral zone of rabbits under these conditions may shift downwards in winter and upwards in summer.
  • 3.3.|Both of these adjustments in thermoregulation seem to be related to the seasonally changing photoperiod.
  • 4.4.|Dehydration does not influence these thermoregulatory adaptive changes.
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18.
  • 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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19.
  • 1.1. Cholesterol feeding for 4 weeks of female and male rabbits of two inbred strains increased plasma cholesterol concentrations by about 11 and 48 mmole/I in the hypo- and hyperresponsive strain, respectively.
  • 2.2. On the low-cholesterol pre-experimental diet, the hyporesponsive animals had significantly higher plasma HDL (high density protein) cholesterol levels than hyperresponders.
  • 3.3. In both strains, cholesterol feeding caused elevations of cholesterol in all lipoprotein classes, the difference between the hypo- and hyperresponsive strains in essence only being observed in the VLDL (very low density lipoprotein) fraction.
  • 4.4. Basal plasma total arylesterase activity was significantly higher in the hypo- than in the hyperresponsive rabbits.
  • 5.5. Dietary cholesterol caused an increase in plasma esterase activity in both strains.
  • 6.6. We suggest that in rabbits a low plasma arylesterase activity and a low concentration of HDL cholesterol are associated with an increased sensitivity to dietary cholesterol.
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20.
  • 1.1. The generation of C2- and C3-deuterated l-lactate was monitored by 13C NMR in human erythrocytes exposed to d-[1-13glucose, d-[2-13C]glucose or d-te-13C]glucose and incubated in a medium prepared in D2O.
  • 2.2. The results suggested that the deuteration of the C1 of d-fructose 6-phosphate in the phosphoglucoisomerase reaction, the deuteration of the C1 of d-glyceraldehyde-3-phosphate in the sequence of reactions catalyzed by triose phosphate isomerase and aldolase and the deuteration of the C3 of pyruvate in the reaction catalyzed by pyruvate kinase were all lower than expected from equilibration with D2O.
  • 3.3. Moreover, about 40% of the molecules of pyruvate generated by glycolysis apparently underwent deuteration on their C3 during interconversion of the 2-keto acid and l-alanine in the reaction catalyzed by glutamate-pyruvate transaminase.
  • 4.4. The occurrence of the latter process was also documented in cells exposed to exogenous [3-13C]pyruvate.
  • 5.5. This methodological approach is proposed to provide a new tool to assess in intact cells the extent of back-and-forth interconversion of selected metabolic intermediates.
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