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1.
  • 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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2.
  • 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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3.
  • 1.1. Ferredoxin reductase and ferredoxin were purified from the bovine corpus luteum and their properties compared to the corresponding adrenal proteins.
  • 2.2. The luteal and adrenal proteins had similar absorbance spectra and molecular weights.
  • 3.3. Evidence was obtained from spectrophotometric titrations for formation of 1:1 complexes between luteal ferredoxin reductase and ferredoxin and between ferredoxin and cytochrome P-450scc.
  • 4.4. Adrenal ferredoxin reductase and ferredoxin were equally as effective as luteal ferredoxin reductase and ferredoxin in supporting cholesterol side-chain cleavage by luteal cytochrome P-450scc.
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4.
Investigation of ligand binding to native cytochrome c, carboxymethyl-Met 80-cytochrome c, myoglobin and haemhexapeptide revealed that the binding of exogenous ligands is modulated by the following factors:
  • 1.Hydrophobicity of the haem environment.
  • 2.Haem accessibility to exogenous ligands, termed the haem crevice ‘open-closed’ parameter.
  • 3.Steric interactions between the protein and the bound ligand.
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5.
  • 1.1. A non-radioisotopic method utilizing a biotin-avidin approach was used to characterize lactoferrin binding to the clonal MAC-T bovine mammary epithelial cell line.
  • 2.2. Binding of lactoferrin to MAC-T cells and isolated membranes was specific and saturable.
  • 3.3. Unlabeled lactoferrin competed for and displaced biotin-labeled lactoferrin from binding sites on mammary epithelial cells. In contrast, unlabeled transferrin did not compete.
  • 4.4. Scatchard analysis of lactoferrin binding to MAC-T cell crude membranes was nonlinear, revealing two classes of binding sites with association constants (Ka) of 2.36 × 107 and 3.36 × 106M−1.
  • 5.5. Binding of lactoferrin to MAC-T cells may be associated with the initial events which result in decreased MAC-T cell proliferation.
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6.
  • 1.1. Various tissues of the porcupine Hystrix hodgesoni including liver, intestine, stomach, spleen, kidney, brain and lung were examined for the presence of growth hormone binding sites.
  • 2.2. Membranes were prepared from the aforementioned tissues and tested for binding to 125I-bovine growth hormone (125I-bGH).
  • 3.3. Porcupine kidney membranes yielded 1.3 and 2.7% specific binding when tested at 1000 and 2500 μg protein, respectively. Porcupine liver membranes demonstrated approximately 1% specific binding at 3000 μg protein. The other tissues gave low specific binding. The results indicate that porcupine kidney contained binding sites for growth hormone.
  • 4.4. Various tissues of two teleosts, the snakehead Channa maculata and the winter founder Pleuronectes americanus, were similarly processed and tested for binding to 125I-bGH. It was found that among the different tissues studied, the liver membranes of Channa maculata and the gonad membranes of Pleuronectes americanus gave the highest specific binding of 125I-bGH.
  • 5.5. Liver and intestine membranes of the lamprey Petromyzon marinus did not bind 125I-bGH.
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7.
  • 1.1. Weanling rats were fed diets differing in fatty acid composition to determine if changes induced in cardiac mitochondrial membrane structural components alter the sensitivity of mitochondrial ATPase to inhibition by oligomycin and stimulation by 2,4-dinitrophenol.
  • 2.2. Mitochondrial ATPase assayed in situ within the mitochondrial membrane isolated from animals fed diets higher in fatty acids of longer chain length, exhibited greater oligomycin sensitivity and lower 2,4-dinitrophenol-induced stimulation.
  • 3.3. Concomitant diet-induced changes occur in the fatty acid, composition of phosphatidylcholine, phosphatidylethanolamine and cardiolipin, increasing overall length of fatty-acyl tails in the membrane phospholipids.
  • 4.4. Diet fat mediated alterations in oligomycin sensitivity of mitochondrial ATPase and membrane fatty acid chain length suggest that vivo changes in thickness of the lipid bilayer may alter mitochindrial ATPase functions.
  • 5.5. The present study extends the concept that dietary fat affects mitochondrial membrane structure and function by demonstrating that the membrane-dependent sensitivity of mitochondrial ATPase to inhibitors and stimulators may be modulated by dietary fat.
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8.
  • 1.1. Subcellular fractions of rat liver were assayed for PLA2 activity.
  • 2.2. The PLA2 assay measures the release of [3 H]oleic acid from phospholipids, using labeled E. coli as substrate.
  • 3.3. Nuclear fractions contained PLA2 activity, which was Ca2+ dependent and could not be explained from mitochondrial, microsomal or plasma membrane contamination.
  • 4.4. The Vmax value of nuclear PLA2 is 0.30 ± 0.04 pmol oleic acid/min/mg protein; its Km value is 0.86±0.12μM, similar to that of mitochondrial PLA2.
  • 5.5. We conclude that rat liver nuclei contain PLA2 activity.
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9.
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Highlights
  • •microRNA-222 attenuates TGEV-induced mitochondrial dysfunction.
  • •microRNA-222 downregulates THBS1 and CD47.
  • •THBS1 is the target of microRNA-222 during TGEV infection.
  • •THBS1 and CD47 increase mitochondrial Ca2+ level and reduced mitochondrial membrane potential (MMP).
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10.
  • 1.1. Platelets bind specifically lactoferrin.
  • 2.2. The lactoferrin binding to the platelets depends on the concentration of labelled lactoferrin, the number of platelets, the time of incubation and pH.
  • 3.3. The binding was characterized by two types of binding site: one with high affinity and low capacity, and another with low affinity and high capacity (respectively kaff 1 = 13.6 × 1091/mol and about 40 binding sites, and Kaff 2 = 1.23 × 1091/mol and about 135 binding sites per platelet).
  • 4.4. Both human transferrin and bovine lactoferrin compete with human lactoferrin for the receptors.
  • 5.5. The presence of lactoferrin receptors on the platelet membrane surface is connected most probably with the effect(s) on the cell function(s) of these cells.
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11.
  • 1.1. The cytoplasmic glucocorticoid receptor of rat liver cells is in part recovered in the plasma membrane fraction.
  • 2.2. After in vivo administration of [3H]dexamethasone, 0.35% of the radioactivity recovered is bound on plasma membranes.
  • 3.3. Dexamethasone also binds in vitro specifically to plasma membranes. Expressed as fmol/mg protein, binding of dexamethasone to plasma membranes is comparable to binding to the soluble cytoplasmic fraction (cytosol).
  • 4.4. Using polyclonal antibody to the glucocorticoid receptor and the indirect immunofluorescence technic, an intense decoration of the plasma membranes is observed, denoting a high concentration of glucocorticoid receptor on plasma membranes.
  • 5.5. The localization of the receptor on plasma membranes could be of potential importance for its interaction with agents (mitogens, growth factors) initially acting on the cell membrane, regulating subsequent cell proliferation and growth at the level of the cell nucleus.
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12.
  • 1.1. Glycerolphosphate acyltransferase (GPAT) was solubilized from the rat liver mitochondrial membranes using sodium cholate. Dithiothreitol was necessary to stabilize the solubilized enzyme on storage.
  • 2.2. Unlike the enzyme in situ in mitochondrial membranes, the solubilized mitochondrial GPAT was susceptible to inhibition by N-ethylmaleimide; a property more characteristic of the distinct microsomal form of GPAT.
  • 3.3. Solubilized mitochondrial GPAT retained its very high preference for saturated acyl-CoA substrate (palmitoyl-CoA) and had no activity whatever with any tested concentration of the unsaturated substrate oleoyl-CoA.
  • 4.4. Solubilization increased the affinity of mitochondrial GPAT for palmitoyl-CoA whilst decreasing the Km for glycerol phosphate.
  • 5.5. After separation of liver mitochondrial outer and inner membranes and estimation of cross-contamination by appropriate markers it was concluded that the mitochondrial inner membrane contains significant GPAT activity. This was established with preparations from fed, 48 hr-starved and streptozotocin-diabetic rats.
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13.
  • 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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14.
  • 1.1. The mechanism of action of disulfiram on the respiratory electron transport system of the liver mitochondria was studied in vitro.
  • 2.2. Disulfiram inhibited the respiration supported by malate-glutamate as well as succinate.
  • 3.3. Mitochondrial respiration inhibition was dependent upon alteration of —SH groups.
  • 4.4. The inhibitory action of disulfiram might be related to the crosslinking of several proteins of the inner mitochondrial membrane.
  • 5.5. The effects described above could be attributed to disulfiram per se and not to the main metabolite diethyldithiocarbamate.
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15.
  • 1.1. The pyridoxal phosphate (PLP) modification of the lysine amino groups in cytochrome c causes decrease in the reaction rate with cytochrome c oxidase.
  • 2.2. The rate constants for (PLP);-cyt. c, PLP(Lys 86)-cyt. c, PLP(Lys 79)-cyt. c and native cytochrome c (at pH 7.4, 1=0.02) are 3.6 × 10−3'sec-', 5.5 × 10−3, 5.2 × 10−3-'sec−1 and 9.8 × 10−3sec−1, respectively.
  • 3.3. In spite of the same positive charge of singly PLP-cytochromes c the reaction between PLP(Lys 86)-cyt. c and cyt. c oxidase exhibits the ionic strength dependence that differs from those of the PLP(Lys 79)-cyt. c.
  • 4.4. The rate constants at zero and infinite ionic strength for PLP(Lys 86)-cyt. c is 2-fold less than that for PLP(Lys 79)-cyt. c.
  • 5.5. The positively charged cytochrome c lysines 86 and 79 form two from four or five predicted complementary charge interactions with carboxyl groups on cytochrome c oxidase.
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16.
  • 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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17.
  • 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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18.
19.
  • 1.1. Plasma membranes were isolated from caudal flank skeletal musculature of rainbow trout by discontinuous sucrose gradient centrifugation.
  • 2.2. Na+−K+-ATPase was enriched 8-fold and 5′-nucleotidase activities 4-fold in a fraction isolated at the 8–25% sucrose interface.
  • 3.3. A cholesterol: phospholipid ratio of 0.37 in the plasma membrane fraction was 85% greater than that observed in adjacent subcellular fractions.
  • 4.4. Electron microscopy provided morphological confirmation of enrichment and integrity of skeletal muscle plasma membranes at the 8–25% sucrose interface.
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20.
  • 1.1. It is shown that Ca2+-dependent activation of respiration of liver mitochondria from hibernating ground squirrels is accompanied by mitochondrial swelling.
  • 2.2. The swelling of mitochondria from hibernating ground squirrels, as well as the activation of mitochondrial respiration, is precluded by cyclosporin A, p-bromphenacylbromide and oligomycin. Carboxyatractiloside, on the contrary, under these conditions favors the swelling and the acceleration of respiration.
  • 3.3. It was concluded that Ca2+-dependent activation of hibernating ground squirrel liver mitochondrial respiration resulted from the appearance of a non-specific permeability pathway and from swelling of mitochondria.
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