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Regulation of chloride transport in parotid secretory granules by membrane fluidity.

Zymogen granule membranes contain Cl- conductance and Cl/anion exchange activities that become important for primary fluid production after fusion with the apical plasma membrane of the acinar cell. We have used steady-state fluorescence anisotropy of diphenylhexatriene derivatives and measurements of Cl- transport in isolated secretory granules to determine the contribution of membrane fluidity to the regulation of transport across the granule membrane. Secretory granules from several unstimulated glands (rat pancreas and parotid, rabbit gastric glands) were shown to have low membrane fluidity compared to plasma membranes. In addition, Cl- transport activity in different granule preparations showed a strong correlation to the membrane fluidity when measured with 1-[4-(trimethylammonio)phenyl]-6-phenyl-1,3,5-hexatriene p-toluenesulfonate (TMA-DPH), but not with 3-[p-(6-phenyl)-1,3,5-hexatrienyl)-phenyl]propionic acid (PA-DPH). These data suggest that TMA-DPH preferentially partitions into a specific lipid environment associated with, or which exerts an influence on, the Cl- transport proteins and that increases in the fluidity of this environment are associated with higher transport rates. Data from other types of plasma membranes indicate that TMA-DPH partitions much more than PA-DPH into the cytoplasmic leaflet, suggesting that this part of the granule membrane is involved in the observed fluidity changes. Furthermore, increasing the bulk membrane fluidity with the local anesthetics benzyl alcohol and n-alkanols increased the Cl- transport rates up to 10-fold. This increase was apparently through specific transporters as anion selectivity was maintained in spite of the higher absolute rates.(ABSTRACT TRUNCATED AT 250 WORDS)

Alcohols↗

Decreased platelet membrane fluidity due to glycation or acetylation of membrane proteins.

Platelets from diabetic subjects and animals are hypersensitive to agonists in vitro. Membrane fluidity modulates cell function and previously we observed reduced membrane fluidity in platelets from diabetic patients associated with hypersensitivity to thrombin. We previously reported that decreased fluidity of isolated platelet membranes from diabetic patients is associated with increased glycation of platelet membrane proteins, but not with any change in the cholesterol to phospholipid molar ratio. We have now examined in vitro whether incubation of platelet membranes in a high glucose medium causes sufficient glycation to reduce membrane fluidity. Incubation of platelet membranes from control subjects in a high glucose (16.1 mM) medium for 10 days at 37 degrees C led to an increase in the extent of glycation of membrane proteins and a decrease in membrane fluidity (indicated by an increase in steady state fluorescence polarization); most of the changes occurred within the first 3 days of incubation. Incubation of platelet membranes with 5.4 mM glucose had less effect. In contrast, incubation of platelet membranes with the same concentrations of 1-0-methylglucose did not cause a change in either the extent of glycation of proteins or membrane fluidity. We also determined if acetylation by aspirin or acetyl chloride of the sites available for glycation on platelet membrane proteins leads to a similar reduction in membrane fluidity. Pretreatment of platelet membranes with aspirin or acetyl chloride diminished the extent of glycation that occurred when platelet membranes were subsequently incubated with glucose, but membrane fluidity was reduced even in the absence of glucose; subsequent incubation with glucose caused no further reduction in membrane fluidity.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylation↗

Effect of hyperbaric oxygenation on the Na+, K(+)-ATPase and membrane fluidity of cerebrocortical membranes after experimental subarachnoid hemorrhage.

It is reported that CNS hemorrhage causes membrane dysfunction and may exacerbate this damage as a result of secondary ischemia or hypoxia. Since hyperbaric oxygenation improves oxygen metabolism, it may reduce this membrane damage. The present study was conducted to reveal whether hyperbaric oxygenation influences membrane alteration after hemorrhage. Thirty minutes after subarachnoid hemorrhage induction, rats were treated with hyperbaric oxygenation 2 ATA for 1 hour. Rats were decapitated 2 hours after subarachnoid hemorrhage induction. Na+, K(+)-ATPase activity measurement and spin-label studies were performed on crude synaptosomal membranes. Subarachnoid hemorrhage decreased Na+, K(+)-ATPase activity. Spin label studies showed that hydrophobic portions of near the membrane surface became more rigid and the mobility of the membrane protein labeled sulfhydryl groups decreased after subarachnoid hemorrhage. Hyperbaric oxygenation significantly ameliorated most of the subarachnoid hemorrhage induced alterations. We conclude that hyperbaric oxygenation may be a beneficial treatment for acute subarachnoid hemorrhage.

Animals↗

The lipid composition and membrane fluidity of Dictyostelium discoideum plasma membranes at various stages during differentiation.

There are only minor changes in the amounts of the major lipid constituents of Dictyostelium discoideum plasma membranes during the early stages in the differentiation of this organism. By the time cells reach the pseudoplasmodial stage of development there are small increases in the amounts of phosphatidylinositol, phosphatidylglycerol, and lysophosphatidylethanolamine, and small decreases in the amounts of phosphatidylethanolamine and its plasmalogen form. There is also a slight decrease in the total amount of sterol in the plasma membrane during the transition from aggregation to pseudoplasmodium formation. However, no significant change in membrane fluidity as determined by electron paramagnetic resonance (EPR) accompanies these minor changes in lipid composition. It can be concluded that the establishment of cell-cell interaction in D. discoideum does not involve gross changes in plasma membrane fluidity or lipid composition. It was found that the plasmalogen form of phosphatidylethanolamine is a major phospholipid constituent in D. discoideum, and that this species is somewhat enriched in the plasma membrane.-Weeks, G., and F. G. Herring. The lipid composition and membrane fluidity of Dictyostelium discoideum plasma membranes at various stages during differentiation.

Cell Membrane↗

Membrane fluidity and sodium transport by renal membranes from dogs with spontaneous idiopathic Fanconi syndrome.

To comprehend the renal defect underlying the idiopathic Fanconi syndrome in the Basenji dog, we have used isolated renal brush border membrane vesicles to examine two factors that influence membrane nonelectrolyte transport processes, sodium flux and membrane fluidity. We have found that there is no significant difference in the rate of uptake of 100 mmol/L 22Na+ and conclude that the previously observed defects in the sodium gradient-stimulated overshoot of glucose and of proline are not related to an alteration in the flux of sodium at physiological concentrations. Since carrier proteins exist in a lipid milieu, alteration in the physical state of the lipid membrane can determine transport function. Renal brush border preparations from normal and affected animals were studied by measuring fluorescence polarization to assess differences in the physical state of the membranes using the fluorescent probe, DPH, which quantitates inner core membrane fluidity. Membranes from affected dogs consistently showed a higher fluidity as measured by eta, a parameter of DPH fluorescence polarization. Since membrane fluidity is related to lipid composition, the data suggest that there may be an important alteration in the lipids in renal membranes of affected animals.

Animals↗

Modulation of sulfate renal transport by alterations in cell membrane fluidity.

Changes in membrane fluidity have been shown to alter the sodium-dependent renal transport of glucose and phosphate; however, this has not been examined for sodium/sulfate cotransport in the renal proximal tubule. Sodium/sulfate cotransport regulates the homeostasis of sulfate in mammals. The objective of this study was to investigate the influence of alterations of membrane fluidity on sodium-coupled sulfate transport in the Madin-Darby canine kidney cells, which have been stably transfected with sodium/sulfate cotransporter (NaSi-1) cDNA (MDCK-Si). Preincubation of cells with 0. 2 mM cholesterol significantly decreased the V(max) for sodium/sulfate cotransport (13.69 +/- 1.11 vs 10.15 +/- 1.17 nmol/mg protein/5 min, mean +/- SD, n = 4, p < 0.01) with no significant alteration in K(m). The addition of benzyl alcohol (20 mM) to cells increased the V(max) of sulfate uptake by 20% (11.97 +/- 0.91 vs 14. 35 +/- 0.56 nmol/mg protein/5 min, mean +/- SD, n = 3, p < 0.05) with no significant change in K(m). Membrane fluidity, as measured by the fluorescence polarization of 1,6-diphenyl 1,3,5-hexatriene (DPH), was significantly increased in MDCK-Si cells treated with 20 mM benzyl alcohol and decreased in the cells preincubated with 0.2 mM cholesterol, compared with control cells. Our results suggest that alterations in membrane fluidity that may occur as a result of disease states, aging, and pregnancy may play an important role in the modulation of renal sodium/sulfate cotransport.

Animals↗

Concanavalin A-induced increase in the membrane fluidity of chicken erythrocytes.

To determine the fluidity of the membrane lipid phase, chicken erythrocytes were labeled with a stearic acid derivative spin label. When chicken erythrocytes were treated with concanavalin A (Con A), ESR spectra showed a change in the peaks of the labels in membrane lipids, indicating an increase of membrane fluidity. The degree of the increase in fluidity of the membrane lipid phase depended on the valency of the lectin used. Tetravalent Con A induced an increase of membrane fluidity at a concentration as low as 30 micrograms/ml, while a monovalent derivative of Con A did not affect membrane fluidity. This increase in membrane fluidity was observed within 10 min after the addition of Con A. If bound Con A was removed with methyl alpha-D-mannoside later than 60 min after its addition, a complete return of the fluidity to the normal level could not be observed. However, no change was found in the composition of phospholipids or in the fatty acid compositions of phosphatidylcholine and phosphatidylethanolamine of chicken erythrocytes after the addition of Con A, indicating that this increase in membrane fluidity is not caused by a change of lipid composition. The clustering of membrane receptors of chicken erythrocytes for Con A was demonstrated when the two-dimensional distribution of ferritin-conjugated Con A on the membranes was assayed by transmission electron microscopy. Furthermore, it was shown that major receptors for Con A of chicken erythrocytes were transmembrane glycoproteins having apparent molecular weights of 100K, 45, and 33K.

Animals↗

Effect of liposome type and membrane fluidity on drug-membrane partitioning analyzed by immobilized liposome chromatography.

Immobilized liposome chromatography (ILC) has been proven to be a useful method for the study or rapid screening of drug-membrane interactions. To obtain an adequate liposomal membrane phase for ILC, unilamellar liposomes were immobilized in gel beads by avidin-biotin binding. The retardation of 15 basic drugs on the liposome column could be converted to membrane partitioning coefficients, K(LM). The effects of small or large unilamellar liposomes and multilamellar liposomes on the drug-membrane partitioning were compared. The K(LM) values for both small and large liposomes were similar, but higher than those for the multilamellar liposomes. The basic drugs showed stronger partitioning into negatively charged liposomes than into either neutral liposomes or positively charged liposomes. The membrane fluidity of the immobilized liposomes was modulated by incorporating cholesterol into the liposomal membranes, by changing the acyl chain length and degree of unsaturation of the phospholipids, and by changing the temperature for ILC runs. Our data show that K(LM) obtained using ILC correlated well with those reported by batch studies using free liposomes. It is concluded that negatively charged or cholesterol-containing large unilamellar liposomes are suitable models for the ILC analysis of drug-membrane interactions.

Chromatography, Liquid↗

Electron paramagnetic resonance studies of ethanol on membrane fluidity.

An optimum level of fluidity in the membrane appears to be important for some physiological functions. The present studies examined the effects of ethanol in erythrocyte and brain membrane preparations from Swiss Webster mice using electron paramagnetic resonance (EPR) techniques with a fatty acid spin label. The spectral parameter measured was the order parmeter, S, an index of membrane fluidity. Synaptosomal membranes were more fluid than myelin but less fluid than mitochondrial membranes. In low concentrations of 1 and 2 mg/ml of ethanol membrane fluidity was increased in mitochondrial, synaptosomal, and erythrocyte membranes. Dose-related increases in membrane fluidity were also observed at higher concentrations of 4, 8 and 16 mg/ml of ethanol for all of the membranes except myelin. These data indicate that non-lethal concentrations of ethanol may increase membrane fluidity in vivo.

Animals↗

Blood platelet membrane fluidity and the exposition of membrane protein receptors in Alzheimer disease (AD) patients--preliminary Study.

We estimated membrane fluidity by the (ESR) spectroscopy and the expression of membrane P-selectin and glycoproteins GP Ib alpha and GP IIb/IIIa by flow cytometry in platelets (plts) from 12 AD sufferers. In AD patients membrane fluidity was significantly increased at two different depths (p < 0.05 or less). Platelet reactivity was significantly decreased, as reflected by reduced expression of GP Ib alpha in the resting (p < 0.0001) and activated (p < 0.005) platelets, as well as the expression of P-selectin and beta 3 subunit of GP IIb/IIIa in activated platelets (p < 0.0001; p < 0.04).

Aged↗

Myotonic muscular dystrophy. Time-dependent alterations in erythrocyte membrane fluidity.

The muscle cell membrane may be the site of the basic molecular defect in myotonic muscular dystrophy. Many laboratories, including our own, have suggested that this defect may also be manifested in membrane of extraneural tissue. In previous studies, we found that electron spin resonance results suggested an increased membrane fluidity in erythrocyte membranes that had aged two days in buffer, but we and others could find no such changes in fresh erythrocyte membranes. To investigate these findings further, the results of an initial study of the time course of the membrane fluidity changes in erythrocytes in myotonic muscular dystrophy are given in the present report. They suggested that increased membrane fluidity changes in erythrocytes in myotonic muscular dystrophy are given in the present report. They suggested that increased membrane fluidity in myotonic dystrophy is manifested after two days of in vivo ageing and confirm our original findings. These results are discussed in relation to possible effects of metabolic deprivation or of protein-lipid alterations in erythrocytes.

Electron Spin Resonance Spectroscopy↗

Membrane fluidity is a key modulator of membrane binding, insertion, and activity of 5-lipoxygenase.

Mammalian 5-lipoxygenase (5-LO) catalyzes conversion of arachidonic acid to leukotrienes, potent mediators of inflammation and allergy. Upon cell stimulation, 5-LO selectively binds to nuclear membranes and becomes activated, yet the mechanism of recruitment of 5-LO to nuclear membranes and the mode of 5-LO-membrane interactions are poorly understood. Here we show that membrane fluidity is an important determinant of membrane binding strength of 5-LO, penetration into the membrane hydrophobic core, and activity of the enzyme. The membrane binding strength and activity of 5-LO increase with the degree of lipid acyl chain cis-unsaturation and reach a plateau with 1-palmitoyl-2-arachidonolyl-sn-glycero-3-phosphocholine (PAPC). A fraction of tryptophans of 5-LO penetrate into the hydrocarbon region of fluid PAPC membranes, but not into solid 1,2-dipalmitoyl-sn-glycero-3-phosphocholine membranes. Our data lead to a novel concept of membrane binding and activation of 5-LO, suggesting that arachidonic-acid-containing lipids, which are present in nuclear membranes at higher fractions than in other cellular membranes, may facilitate preferential membrane binding and insertion of 5-LO through increased membrane fluidity and may thereby modulate the activity of the enzyme. The data presented in this article and earlier data allow construction of a model for membrane-bound 5-LO, including the angular orientation and membrane insertion of the protein.

Animals↗

Effects of alcohol on membrane fluidity of human erythrocyte.

Membrane fluidity in human erythrocytes was measured by a spin label method using an electron spin resonance spectrometer in healthy volunteers after ingestion of alcohol (1.5 ml of whisky/kg body weight). Fluidity in the lipid bilayer closer to the hydrophilic face decreased at 30 min and 90 min, and fluidity in the hydrophobic core decreased at 90 min after ingestion of alcohol. In the same experiment, the level of thiobarbituric acid reactive substances in the serum decreased 30 min after ingestion of alcohol, and the triglyceride level increased and free fatty acid level decreased, and serum superoxide dismutase activity increased 150 min after ingestion. Furthermore, membrane fluidity in human erythrocytes was examined in patients with alcohol dependence syndrome who had not any alcohol for about 26 months. Erythrocyte membrane fluidity of patients with alcohol dependence syndrome was not different from that of healthy controls. However, erythrocyte membrane fluidity of the lipid bilayer closer to the hydrophilic face increased in patients who had concomitant liver cirrhosis compared with those who did not. These results suggest that alcohol affects temporal change of membrane fluidity in human erythrocytes.

Adult↗

Disaccharide modulation of the mitochondrial membrane fluidity changes induced by the membrane potential.

The influence of the medium composition on the dynamic properties of mitochondrial membranes on depolarization was studied by following the fluorescence anisotropy changes of mitochondria-bound 1,6-diphenyl-1,3,5-hexatriene (DPH) and hematoporphyrin (HP) as reporters, respectively, of lipid and protein regions. On collapse of the potential, the membrane fluidity increased in NaCl-, KCl-, and monosaccharide-based media and decreased in disaccharides. Infrared spectroscopy experiments suggested that disaccharides likely change water's structure and association on the membrane surface. These results indicate that disaccharides induce membrane perturbation, which may interfere in the study of structure-function correlation in biological membranes.

Animals↗

The dependence on membrane fluidity of calcium oxalate crystal attachment to IMCD membranes.

The development of urolithiasis is a multifaceted process, starting with urine supersaturation and ending with the formation of mature renal calculi. The retention of microcrystals by kidney tubule epithelium cell membranes has been proposed as a critical event in the process. To date, attachment of kidney stone constituent crystals to urothelial cells has been demonstrated both in vitro and in vivo yet the mechanism of crystal attachment remains unknown. We hypothesize that for effective stone crystal attachment to the epithelium there must be cell membrane rearrangement that would allow for long-range bonding between the stone crystal and the cell membrane. This rearrangement may be influenced by the physical state of the membrane. The current study examines calcium oxalate monohydrate (COM) crystal attachment to inner medullary collecting duct (IMCD) cells following changes in cell membrane fluidity. Radioactively labeled COM crystals were used to quantitate crystal attachment. Membrane fluidity was altered by changing temperature, cell membrane cholesterol content, or extended length of cell culture. Crystal attachment to IMCD cells was directly correlated to changes in membrane fluidity. This finding was consistently observed regardless of the method used to alter membrane fluidity. The results are consistent with the theory that the ability to form a crystal attachment region on the cell surface may be related to the ease of rearrangement of membrane components at the cell surface. Variations in the urothelial cell environment during certain pathological conditions in the kidney could induce these physical perturbations and prime kidney epithelial cells at or near the papillary tip to bind COM crystals.

Animals↗

Membrane fluidity and its roles in the perception of environmental signals.

Poikilothermic organisms are exposed to frequent changes in environmental conditions and their survival depends on their ability to acclimate to such changes. Changes in ambient temperature and osmolarity cause fluctuations in the fluidity of cell membranes. Such fluctuations are considered to be critical to the initiation of the regulatory reactions that ultimately lead to acclimation. The mechanisms responsible for the perception of changes in membrane fluidity have not been fully characterized. However, the analysis of genome-wide gene expression using DNA microarrays has provided a powerful new approach to studies of the contribution of membrane fluidity to gene expression and to the identification of environmental sensors. In this review, we focus on the mechanisms that regulate membrane fluidity, on putative sensors that perceive changes in membrane fluidity, and on the subsequent expression of genes that ensures acclimation to a new set of environmental conditions.

Adaptation, Physiological↗