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1.
  • 1.1. Platelets bind specifically to lactoferrin. A significant similarity between human lactoferrin and some bovine milk proteins has been established.
  • 2.2. Because of the structural homology of lactoferrin and cows milk proteins they are able to influence lactoferrins regulatory function on the level of its binding to membrane receptors on platelets.
  • 3.3. An inhibitory effect of bovine α-lactalbumin and of β-lactoglobulin on lactoferrin-receptor interaction was shown.
  • 4.4. Bovine α-lactalbumin competes with lactoferrin for the binding sites.
  • 5.5. Scatchard plot analysis of data shows one binding site for lactoferrin in the presence of α-lactalbumin with an affinity constant, Ka = 0.46 × 109 mol/1 and 335 receptors/cell.
  • 6.6. The inhibitory effect of β-lactoglobulin reaches 62% and is different for the common fraction ⨿-lactoglobulin and the genetic variants β-lactoglobulin A and B.
  • 7.7. β-lactoglobulin does not compete with lactoferrin for the membrane receptors.
  • 8.8. Bovine casein and egg lysozyme stimulate 59Fe-lactoferrin binding to the receptors. The mechanism of these effects is still unknown.
  • 9.9. Tested alimentary antigens are able to interact with lactoferrin and also with some platelet membrane structures.
  • 10.10. Established changes in lactoferrin binding to the platelet membrane might be in relation to lactoferrins regulatory function and (or) eliminating mechanisms of these alimentary antigens.
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2.
  • 1.1. Four GTP-binding proteins (23–27 kDa) were identified in membranes from PC12 cells by [α32P]GTP binding to nitrocellulose blots of SDS-polyacrylamide gels.
  • 2.2. The GTP-binding proteins remained associated with membranes during stimulation of intact cells by K+-depolarization or even after addition of C2+to digitonin-permeabilized cells.
  • 3.3. By two-dimensional gel electrophoresis, six GTP-binding proteins were resolved and based on their mobility, their phosphorylation state appeared independent of Ca2+.
  • 4.4. Fractionation of PC12 membranes showed that these GTP-binding proteins were broadly distributed in post-nuclear membranes with the plasma membranes containing the highest specific GTP-binding activity.
  • 5.5. Membrane fractions from bovine adrenal medulla contain similar GTP-binding proteins with GTP-binding intensity also being highest in the plasma membrane.
  • 6.6. The GTP-binding proteins could be concentrated in the detergent-rich fraction upon Triton X-114 phase separation.
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3.
  • 1.1. Human red cell membranes were trace iodinated with [125I]ICI and the distribution of label in membrane components examined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis.
  • 2.2. With intact erythrocytes over 84% of the bound iodine was associated with the membrane.
  • 3.3. Two membrane components accounted for almost all of the label, band 3 and PAS-1.
  • 4.4. Spectrin was not labeled in resealed ghosts.
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4.
  • 1.1. Replacing chloride (Cl) with sulfate (SO42−) in the bathing medium drastically reduced the mucosal membrane potential difference (ψm).
  • 2.2. The voltage divider ratio was significantly greater than one.
  • 3.3. Mucosal d-glucose decreased the input resistance of the intestinal epithelium.
  • 4.4. Addition of furosemide to the mucosal bathing medium inhibited transepithelial potential difference and short-circuit current.
  • 5.5. Addition of SITS to the mucosal bathing medium partially inhibited transepithelial potential difference and short-circuit current.
  • 6.6. Diffusion potentials in the intestinal epithelium were symmetrical.
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5.
  • 1.1. The incorporation of 32P into the contractile proteins of the anterior byssus retractor muscle of Mytilus edilus L. was analyzed during the different stages of a contraction-catch-relaxatin cycle.
  • 2.2. The experiments were performed with saponin-skinned fibers preincubated with γ-32P-ATP.
  • 3.3. The total amount of 32P incorporated into the fiber proteins was anlyzed by measuring the label of TCA-insoluble protein in a scintillation counter.
  • 4.4. The dose incorporated was about twice as high during Ca2+ induced contraction and serotonin induced accelerated relaxation as during test and catch.
  • 5.5. The molecular mass of the phosphorylated proteins was analyzed by autoradiography of the proteins separated by SDS-PAGE.
  • 6.6. Up to 26 protein spots of different molecular masses were labelled, including such well characterized protein spe+cies as myosin heavy and light chains, paramyosin and tropomyosin.
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6.
  • 1.1. The plasma membrane of slime-forming, encapsulated Streptococcus cremoris from “viili” was isolated in hypotonie conditions in the presence of lysozyme (EC 3.2.1.17) using density gradient centrifugation as the last purification step.
  • 2.2. The membrane yield was 15.8% of wet weight cells and the preparation contained 64.4% protein. 19.1% carbohydrate, 5.8% aminosugars, 5.1% RNA and 0.07% DNA.
  • 3.3. Buffered 1% (w/v) Triton X-100 solubilized 33.6% of membrane proteins. The number of polypeptides detected by SDS-polyacrylamide gel electrophoresis was 59 when the membrane was isolated without a protease inhibitor and 44 in the presence of a protease inhibitor.
  • 4.4. The molecular weights of the polypeptides varied from 13,500 to 100,000.
  • 5.5. Ultrathin-layer electrofocusing analysis revealed the range of protein pi values to be between 3.50 and 5.85 concerning 77.3% of proteins and between pI 5.85 and 8.15 concerning 18.2% of proteins.
  • 6.6. The isoelectric point of the only basic protein component was 9.3.
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7.
  • 1.1. A method for purifying undischarged nematocysts from Hydra and other cnidarians is described.
  • 2.2. Isolated cysts (relative densities 1.22–1.24) evaginate their tubular content even after previous dehydration.
  • 3.3. The cyst wall is permeable to dyes of mol. wts up to 600,000.
  • 4.4. Approximately two-thirds of the cyst's dry wt are soluble proteins. Eighty per cent of them are of low mol. wt and highly anionic, presumably serving as binding sites for Ca2+ and Mg2+.
  • 5.5. The other 20% includes 30 different proteins amongst them toxins and enzymes (phospholipase and little proteases but no collagenase, chitinase or hyaluronidase).
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8.
  • 1.1. Carp red cells were treated with drugs that affect the cell membranes. The water content of the cells and the accumulation of cAMP in the cells were measured in normoxia and in hypoxia using non-stimulated and adrenergically stimulated cells.
  • 2.2. WGA, DIDS + CCCP and A23187 increased the water content of nonstimulated normoxic cells.
  • 3.3. In hypoxia ouabain and DIDS + CCCP increased the water content but cytochalasin B, NPM, DIDS, CCCP and A23187 + CA2+ abolished the hypoxia-induced swelling.
  • 4.4. Any membrane perturbation induced some cAMP formation, Sophora and Anquilla lectins being most potent.
  • 5.5. Also in adrenergically stimulated cells, membrane perturbation generally increased cAMP formation.
  • 6.6. However, cAMP accumulation diminished in cells treated with cytochalasin B, CCCP and DIDS + CCCP.
  • 7.7. The adrenergic swelling of carp red cells was reduced in normoxia by DIDS. NPM and CCCP increased the adrenergic swelling in normoxia to hypoxic level.
  • 8.8. In hypoxia WGA and Anquilla lectin decreased the swelling.
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9.
  • 1.1. Uptake of [14C]-labelled d-glucose, l-arabinose and d-fructose by intestinal and renal brush border and basolateral membrane vesicles was studied in the absence of Na+ .
  • 2.2. The Na+-independent d-glucose transport system in these membrane vesicles was saturable, sensitive to phloretin, stereospecific and accessible only to d-glucose and d-galactose.
  • 3.3. Na+-independent l-arabinose transport was not saturable even when its concentration was raised to 300 mM and it was insensitive to phloretin.
  • 4.4. Na+-independent d-fructose transport demonstrated saturation kinetics with only renal brush border membrane vesicles, but it was not inhibited by either phloretin or phlorizin.
  • 5.5. These studies indicated that the Na+-independent carrier-mediated d-glucose/d-galactose transport system of intestinal and renal brush border and basolateral membranes is clearly not shared by other monosaccharides.
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10.
  • 1.1. Nicotine at 10 mM, but not caffeine or theophylline, reduced by 20% the overshoot of the Na+-dependent d-glucose transport in ratjejunal brush border membrane vesicles.
  • 2.2. Since nicotine did not affect the transport of Na+, its inhibition on Na+-dependent d-glucose transport must be due to a direct effect upon the d-glucose transport system.
  • 3.3. Folate transport in these membrane vesicles was found to a be a free diffusion process at pH 7.4.
  • 4.4. Neither caffeine, theophylline nor nicotine has any effect on folate transport.
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11.
  • 1.1. Adenylylation, a posttranslational modification of proteins, was investigated in saponin-permeabilized acinar cells of the rat parotid gland.
  • 2.2. When cells were incubated with [2,8-3H]ATP, several proteins, including a 26 kDa protein in the particulate fraction, were labeled.
  • 3.3. Upon incubation of cells with [α-32P]ATP in the presence of cAMP and 3-isobutyl-lmethylxanthine, 32P-labeling of the 26 kDa protein was observed.
  • 4.4. After treatment with snake venom phosphodiesterase, [32P]AMP was released from the 26kDa protein. Such release was not observed when cells were labeled with [γ-32P]ATP.
  • 5.5. The 32P-labeling pattern of proteins with [α-32P]ATP was clearly different from that with [adenylate-32P]NAD+.
  • 6.6. The results suggest that the 26 kDa protein is one of the adenylylation substrates in rat parotid acinar cells.
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12.
  • 1.1. Is the activity of l-lysine on calcium absorption related to the fact that its phosphorylation is competitive with that of the microvilli proteins involved in the mineral transfer?
  • 2.2. The microvilli proteins phosphorylation is not cyclic GMP-dependent but is actually inhibited by l-lysine, used in general at a 100 mM concentration.
  • 3.3. The electrophoresis is followed by an autoradiograph which reveals the existence of a phosphorylated protein with a molecular weight of 140,000 daltons. Another phosphorylable protein, clearly visible in some preparations but only detectable in others, has a molecular weight close to 70,000 daltons.
  • 4.4. The inhibition by lysine of the microvilli proteins phosphorylation is not specific to a given protein, but is also observed for phosphorylable cytosolic proteins.
  • 5.5. A scheme for calcium transfer is proposed. It involves a protein whose phosphorylation should reduce the membrane permeability to calcium.
  • 6.6. The following three attributes of the phosphorylable membrane protein—its molecular weight; the fact that another protein (probably its monomer) is also phosphorylable; its well known capacity for phosphorylation—suggest that this protein might actually be alkaline phosphatase whose correlations in calcium metabolism are well known.
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13.
  • 1.1. The effects of Ba2+ and K+ ions on the membrane currents of Paramecium tetraurelia under a voltage clamp were investigated.
  • 2.2. External Ba2+ suppresses the inward-going K-current and the Ca-induced K-outward current and changes the activation and inactivation kinetics of transient inward current through the Ca-channel.
  • 3.3. K+ increases the Ca-induced K-conductances but little affects the leakage conductance.
  • 4.4. The resting potentials by changing those ionic concentrations shift the voltage sensitivities of all voltage sensitive channels, simultaneously.
  • 5.5. The competition between ions to the channel responses was discussed.
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14.
  • 1.1. Protein phosphorylation in intact chicken latissimus dorsi muscle, slow anterior (ALD) and fast posterior (PLD), was compared.
  • 2.2. A major difference in [32P]phosphate incorporation was found between the ALD and PLD in a 25,000-dalton heat soluble protein.
  • 3.3. The 25,000-dalton protein was purified from both the ALD and PLD.
  • 4.4. The two proteins had similar amino acid composition and both contained approximately 1 mole phosphate per mole of protein.
  • 5.5. The difference in their content of radioactive phosphate was determined to be due to faster turnover in the ALD.
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15.
  • 1.1. The role of aldosterone on active potassium transport across lizard colon under voltage-clamped conditions has been investigated.
  • 2.2. Control colons exhibited no net potassium flux (Jknet) despite of the existence of active opposite unidi ectional fluxes.
  • 3.3. An important net secretory potassium flux was found in short-circuited aldosterone-stimulated colons.
  • 4.4. Mucosal amiloride did not change (Jknet) either in control or aldosterone-stimulated colons.
  • 5.5. Luminal barium alters K + transport in a manner consistent with the presence of barium-sensitive conductances at the apical membrane of both control and aldosterone-treated colons.
  • 6.6. The effects of ouabain and barium on control and aldosterone-induced potassium flows were consistent with a model involving basolateral uptake by an Na +-K +-ATPase and conductive exit across the apical membrane.
  • 7.7. The stimulatory effect of aldosterone on potassium secretion is associated with parallel increases of both basolateral K + entry and the apical conductive pathway.
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16.
  • 1.1. The regulation of ions at similar concentrations in most individuals of a species suggests the existence of internal reference standards.
  • 2.2. Few have been identified, but many probably relate to cell membrane properties, including potentials, surface charge densities and equilibrium constants of receptor molecules.
  • 3.3. Solubility may sometimes determine the product [Ca2+][CO32−].
  • 4.4. Reference standards must generally each relate to more than one ionic species.
  • 5.5. For some concentrations, including osmolality, there may be no direct reference standard.
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17.
  • 1.1. In a continuing investigation of phycocyanin-membrane surface interaction, fluorescence quenching experiments were performed with a mixture of two populations of fluorescence probe-encapsulated phospholipid bilayer vesicles in the presence and absence of phycocyanin.
  • 2.2. These membrane vesicles were prepared with 1,2-dimyristoyl phosphatidylcholine (DMPC), cholesterol and a probe molecule.
  • 3.3. A fluorophore was encapsulated in one population of membrane vesicles, while a quencher was encapsulated in another population of membrane vesicles.
  • 4.4. The result was compared with those of experiments in the presence of other biomolecules, including albumin, cytochrome c, hemoglobin, myoglobin or RNA.
  • 5.5. Interestingly, a one-third reduction of the fluorescence intensity was observed in the mixture of these two populations of membrane vesicles in phycocyanin's presence.
  • 6.6. In contrast, the other biomolecules caused no significant reduction in the fluorescence intensity.
  • 7.7. These findings were evidence of a phycocyanin-induced membrane perturbation.
  • 8.8. This was further demonstrated by a phycocyanin-induced change in the thermotropic behavior of DMPC vesicles, as measured by differential scanning microcalorimetry.
  • 9.9. Such a unique property of phycocyanin is believed to be associated with its known membrane surface-interacting character.
  • 10.10. A possible phycocyanin-modulated membrane-membrane interaction was discussed.
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18.
  • 1.1. Synaptic plasma membrane vesicles (SPMV) from rat brain synthesized ceramide-phosphoethanolamine (SpE), an analogue of sphingomyelin (SpC) from phosphatidylethanolamine (PE) and ceramide.
  • 2.2. This reaction was catalyzed by PE: ceramide-phosphotransferase.
  • 3.3. The presence of PC did not modify the SpE synthesis and PI and PS at twice PE concentration seemed to be activators; only PG was an inhibitor at all concentrations.
  • 4.4. Some cations (Mg2+, Mn2+) were without effect, while Ca2+ increased transferase activity, so was interesting to study.
  • 5.5. Transferase was compared with sialidase (external enzyme).
  • 6.6. Kinetics other than those already performed by us were undertaken in order to confirm its location.
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19.
  • 1.1. Compositions of lipids and proteins of erythrocytes (RBC) and gills from Japanese charr (Salvelinus leucomaenis) which were exposed to 0.4 and 0.7 ppm ozone for 30 min were compared with those of the control.
  • 2.2. On exposure to ozone, both RBC and gill membrane phospholipid content, especially phosphatidylethanolamine (PE), dropped.
  • 3.3. The decrease of PE was brought about by the decrease of docosahexaenoic acid content which comprised the major component of PE.
  • 4.4. RBC membrane protein with 215 and 225 kDa, which is equivalent to cytoskeletal protein, selectively disappeared on exposure to ozone.
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20.
  • 1.1. Long lasting synaptic inhibitions (LLI) were recorded in the silent cells LPL1 and RPL1 of Helix pomatia.
  • 2.2. During LLI the excitability of the cell was strongly reduced.
  • 3.3. The membrane conductance changes during LLI were characterized using the voltage-clamp technique.
  • 4.4. LLI in the silent cell LPL1 is mediated by a synaptically induced inhibition of the voltage-dependent inward Ca2+ -current.
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