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Modulation of membrane receptor endocytosis by chemical effectors of membrane fluidity.

Several chemical effectors were used to induce changes in spleen B cell membrane fluidity. Membrane fluidity was monitored by fluorescence polarization analysis of the hydrophobic probe 1,6-diphenyl-1,3,5-hexatriene (DPH) and cell viability was checked not to be affected by the treatments. Membrane immunoglobulin (Ig) endocytosis by the living B cells with modified or unmodified membranes was quantitatively measured by flow cytometry, using a previously described method (Métézeau et al., 1982, 1984). The kinetics of endocytosis of membrane Ig was not affected by chemical effectors increasing membrane fluidity. On the contrary, increasing membrane microviscosity resulted in the slowing down and eventually the blocking of membrane Ig endocytosis. It is suggested that a step depending on membrane microviscosity is involved in the process of endocytosis; this step may become rate limiting when membranes are artificially rendered or naturally become (i.e. for pathological or particularly differentiated cells) more viscous.

Animals↗

Role of lindane in membranes. Effects on membrane fluidity and activity of membrane-bound proteins.

The influence of lindane (gamma-hexachlorocyclohexane) on fluidity of plasma membranes from rat renal cortical tubules has been investigated. Preincubation with lindane increased membrane fluidity. This effect was accompanied by (i) a decrease in the transport of glucose with regard to the controls and (ii) an inhibition of the beta-adrenergic stimulatory activity upon cyclic AMP accumulation. However, a significant decrease of the membrane fluidity was found when rats were injected with lindane for 12 days. The injection of lindane exerted the opposite effect on the membrane proteins, the glucose transporter and the beta-adrenergic receptor, enhancing the glucose uptake and increasing the isoproterenol-stimulated cycle AMP accumulation. A possible explanation of the difference could involve a resistance to membrane disordering by lindane through a regulatory mechanism that would balance the activity of many lindane-sensitive proteins in insecticide-injected rats.

Animals↗

Decreased erythrocyte membrane fluidity in poorly controlled IDDM. Influence of ketone bodies.

OBJECTIVE: To examine the factors that might alter the fluidity of erythrocyte membrane in insulin-dependent diabetes mellitus (IDDM) patients. RESEARCH DESIGN AND METHODS: The subjects were 10 health men and 30 IDDM mem: 10 with good blood glucose (BG) control (HbA1c 5.88 +/- 0.60% [mean +/- SD]), 10 with poor BG control (HbA1C 9.48 +/- 1.05%), and 10 with poor BG control and mild to moderate diabetic ketoacidosis (DKA) (HbA1C 9.12 +/-2.25%, strongly positive ketonuria 3+ and elevated plasma beta-hydroxybutyrate). Erythrocyte membrane fluidity was determined by fluorescence polarization using 6-(9-anthroyloxy stearic acid as fluorescent probe. RESULTS: Membrane fluidity was normal in the diabetic patients with good BG control but significantly lower in the two groups of patients with poor BG control than in the healthy subjects (P < 0.01). The membrane fluidity in the poor BG control groups was also lower in the patients with DKA than in those without DKA (P < 0.01). CONCLUSIONS: The factors that most influence membrane fluidity in IDDM patients appear to be hyperglycemia and ketone bodies.

Adult↗

Relation of ADH effects to altered membrane fluidity in toad urinary bladder.

Membrane fluidity, urea permeability, and osmotic water permeability in toad urinary bladder are regularly enhanced by antidiuretic hormone (ADH). In addition, organized intramembranous particle aggregates, which correlate specifically with hormonally stimulated water permeability, are found in granular cell luminal membranes consequent to ADH stimulation. In this investigation ADH-stimulated changes in urea and osmotic water permeability and luminal membrane aggregates at room temperature (24.8 +/- 0.4 degrees C) and in the cold 10.6 +/- 0.2 degrees) were compared with corresponding changes in membrane fluidity, as assessed by n-butyramide permeability. Although a critical level of membrane fluidity is undoubtedly required, the occurrence of aggregates in the luminal membrane is independent of an accompanying hormonally induced change of membrane fluidity. ADH-stimulated osmotic water permeability in toad bladder is also independent of the coincident change in membrane fluidity, and as a process almost certainly involves membrane channels, not a solubility-diffusion process through membrane lipids. For ADH-stimulated transbladder urea movement, channels seem to be involved as well, and the change induced in membrane fluidity by ADH could be an underlying factor in their formation.

Animals↗

Effect of 17 beta-estradiol on chondrocyte membrane fluidity and phospholipid metabolism is membrane-specific, sex-specific, and cell maturation-dependent.

In this study we examined the hypothesis that 17 beta-estradiol exerts both rapid and direct, nongenomic effects of cells in the endochondral pathway. To do this, we used a cell culture model in which chondrocytes at two distinct stages of cell maturation are isolated from the costochondral cartilage of male and female rats, and examined the short-term effect of 17 alpha- and 17 beta-estradiol on [14C]arachidonic acid turnover in the cell layer and phospholipase A2 specific activity in plasma membranes and extracellular matrix vesicles isolated from similarly prepared cultures. In addition, the effect of 17 alpha- and 17 beta-estradiol on plasma membrane and matrix vesicle membrane fluidity was assessed. The effect of hormone on arachidonic acid turnover was rapid, time- and concentration-dependent, stereo-specific, and cell maturation-specific. Only resting zone cells from female rats were affected, and only 17 beta-estradiol elicited a response. Similarly, only female rat resting zone chondrocytes exhibited a change in phospholipase A2 activity after a 24 h exposure to hormone, causing an increase in enzyme activity in the matrix vesicles, but not plasma membranes. When isolated membranes were incubated directly with hormone, membrane fluidity was decreased in both plasma membranes and matrix vesicles isolated from female rat resting zone chondrocyte cultures. This nongenomic effect was dose-dependent and stereo-specific and differentially expressed in the two membrane fractions with respect to time course and magnitude of response. These results support the hypothesis that 17 beta-estradiol has a rapid action on chondrocyte membrane lipid metabolism and suggest that specific membrane components, characteristic of a particular sex and state of cell maturation, are involved in the nongenomic effects of this sex hormone on isolated matrix vesicles and plasma membranes.

Animals↗

Membrane fluidity of microsomal and thymocyte membranes after X-ray and UV irradiation.

A brief literature review shows that ionizing radiation in biological membranes and in pure lipid membranes causes malondialdehyde formation, indicating lipid peroxidation processes. With respect to membrane fluidization by ionizing radiation, in pure lipid membranes rigidization effects are always reported, whereas contradictory results exist for biological membranes. Starting from the assumption that membrane proteins at least partly compensate for radiation effects leading to a rigidization of membrane lipid regions, pig liver microsomes, as a representative protein-rich intracellular membrane system, were irradiated with X-rays or UV-C with doses up to 120 Gy at a dose rate of 0.67 Gy min-1 and up to 0.73 J cm-2 at an exposure rate of 16.2 mJ cm-2 min-1, respectively. For both irradiation types a weak but significant positive correlation between malondialdehyde formation and membrane fluidity is revealed throughout the applied dose ranges. We conclude that the membraneous protein lipid interface increases its fluidity under radiation conditions. Also, thymocyte ghosts showed an increased fluidity after X-ray irradiation. Fluidity measurements were performed by the pyrene excimer method.

Animals↗

Effect of temperature on membrane fluidity and calcium conductance of the excitable ciliary membrane from Paramecium.

Fluorescence anisotropy and average fluorescence lifetime of diphenylhexatriene were measured in artificial lipid membrane vesicles. Within the temperature range investigated (15-52 degrees C) both parameters correlate and can be used interchangeably to measure membrane fluidity. Fluorescence anisotropy of DPH in membrane vesicles of cilia from the protozoan Paramecium tetraurelia decreased slightly from 5 to 37 degrees C, yet, no phase transition was observed. An estimated flow activation energy of approx. 2 kcal/mol indicated that the ciliary membrane is very rigid and not readily susceptible to environmental stimuli. The ciliary membrane contains two domains of different membrane fluidity as indicated by two distinct fluorescence lifetimes of diphenylhexatriene of 7.9 and 12.4 ns, respectively. Ca2+ flux into ciliary membrane vesicles of Paramecium as measured with the Ca2+ indicator dye arsenazo III showed a nonlinear temperature dependency from 5 to 35 degrees C with a minimum around 15 degrees C and increasing flux rates at higher and lower temperatures. The fraction of vesicles permeable for Ca2+ remained unaffected by temperature. The differences in temperature dependency of Ca2+ conductance and membrane fluidity indicate that the Ca2+ permeability of the ciliary membrane is a membrane property which is not directly affected by the fluidity of its lipid environment.

Animals↗

Effect of prostaglandins E2 and F2 alpha on membrane calcium binding, Ca2+/Mg2+-ATPase activity and membrane fluidity in rat myometrial plasma membranes.

Myometrial plasma membrane (MPM) preparations from rats treated with oestradiol were obtained by discontinuous sucrose-gradient centrifugation. The preparations contained calcium-stimulated and magnesium-dependent ATPase (Ca2+/Mg2+-ATPase). A dramatic decrease in the activity of Ca2+/Mg2+-ATPase was observed when preparations were treated with 0.025-10 mumol prostaglandins E2 and F2 alpha (PGE2 and PGF2 alpha)/l. In contrast, there was a marked increase in MPM-bound 5'-nucleotidase activity at low concentrations (up to 2 mumol/l) of PGE2 and PGF2 alpha; higher concentrations (up to 10 mumol/l), however, led to a progressive inhibition of enzyme activity. Association (specific and non-specific binding) of PGE2 and PGF2 alpha with MPM at pH 7 was found to require Ca2+ (half-maximal concentration approximately 0.7 mmol/l). Changes in the allosteric properties of MPM-bound 5'-nucleotidase by concanavalin A (as reflected by changes in the Hill coefficient) indicated a fluidization of the membrane induced by PGE2 and PGF2 alpha. The steady-state fluorescence anisotropy of 1,6-diphenyl-1,3,5-hexatriene-labelled MPM decreased in PGE2- and PGF2 alpha-treated MPM from 1.24 +/- 0.04 (S.D.) to 0.66 +/- 0.01 and 0.74 +/- 0.01 respectively, which is consistent with a general increase in membrane fluidity. It is suggested that PGE2 and PGF2 alpha promote changes in the physical properties of MPM which may be relevant to the induction of uterine contractions by enzymatic regulation of intracellular calcium concentrations.

Animals↗

The influence of dietary lipids on the composition and membrane fluidity of rat hepatocyte plasma membrane.

Weanling male Wistar rats were fed for five weeks on standard rat chow (23 g fat/kg diet) or one of four synthetic diets with butterfat, coconut oil, corn oil, or fish oil as the main lipid source (100 g fat/kg diet). In all diets, 10% of the fat was provided as corn oil to prevent essential fatty acid deficiency. Significant differences were observed in the saturated, monounsaturated, and polyunsaturated fatty acid composition, and in the ratio of cholesterol to phospholipid, in the hepatocyte membranes. The fluidity of hepatocyte plasma membranes was assessed using the fluorescence recovery after photobleaching technique and steady-state fluorescence anisotropy of diphenylhexatriene. No significant differences were found in the fluidity of plasma membranes between animals on the different fat diets, despite diet-induced changes in their fatty acid composition. However, the proportion of lipid free to diffuse in the plasma membrane varied with diet, being significantly greater (P < 0.05) in animals fed chow (63.7%), coconut oil (61.5%), and butterfat (57.6%) diets than in those fed the corn oil (47.3%) diet. Animals fed fish oil showed an intermediate (50.0%) proportion of lipid free to diffuse. The data support the hypothesis that dietary lipids can change both the chemical composition and lateral organization (lipid domain structure) of rat hepatocyte plasma membranes.

Animals↗

Difference in changes of membrane fluidity of polymorphonuclear leukocytes stimulated with phorbol myristate acetate and formyl-methionyl-leucyl-phenylalanine: role of excited oxygen species.

Polymorphonuclear leukocytes (PMN) were stimulated with phorbol myristate acetate (PMA) and N-formyl-methionyl-leucyl phenylalanine (FMLP) to clarify the role of excited oxygen species in inducing changes of membrane fluidity. Membrane fluidity was assessed by the excimer-forming lipid technique using pyrenedecanoic acid and flow cytometry. Membrane fluidity of PMN decreased following stimulation with PMA, and the extent of decrease was both time- and dose-dependent. FMLP at 10(-5) M induced a decrease, while FMLP at 10(-7) M induced a rapid increase. On stimulation with 10(-7) M FMLP as well as in a resting condition, the change of membrane fluidity of PMN from patients with chronic granulomatous disease (CGD) was similar to that of normal PMN. However, on stimulation with PMA or 10(-5) M FMLP, CGD PMN did not show a significant decrease. In addition, normal PMN incubated with catalase inhibited the decrease. These findings suggest that the generation of excited oxygen species, particularly of H2O2, is important in inducing a decrease of PMN membrane fluidity.

Adult↗

Evaluation of membrane fluidity in cerebral microvasculature.

Cerebromicrovascular membrane fluidity was studied in two model systems: 1) hepatic encephalopathy and 2) cultured endothelium exposed to free arachidonic acid alone or with H2O2. The membrane fluidity was measured by fluorescence anisotropy using 1, 6-diphenyl-1,3,5-hexatriene as a fluorescent probe. In addition, the effect of arachidonic acid with or without H2O2 on cellular permeability to trypan blue-albumin was investigated in endothelial cultures. The findings indicate that the hepatic encephalopathy and the arachidonic acid treatment of endothelium causes an increase in membrane fluidity. This modulation of endothelial membrane fluidity is not associated with changes in cellular permeability to trypan blue-albumin complex. An increased cellular permeability to trypan blue-albumin complex was seen after endothelial exposure to arachidonic acid and H2O2.

Animals↗

Regulation of enzymatic activity and gene expression by membrane fluidity.

Changes in the cellular environment can lead to alterations in the fluidity of the membranes of prokaryotes and eukaryotes. Changes in temperature and osmotic conditions are two of the best-studied stresses that can affect membrane fluidity. Los and Murata discuss the types of sensors that detect these changes in membrane fluidity and the types of signals that are generated.

Animals↗

Membrane fluidity changes of liposomes in response to various odorants. Complexity of membrane composition and variety of adsorption sites for odorants.

Three kinds of liposomes prepared from phosphatidylcholine (PC), azolectin, and azolectin-containing membrane proteins of the canine erythrocytes were used as models for olfactory cells. To explore properties of the adsorption sites of odorants, membrane fluidity changes in response to various odorants were measured with various fluorescence dyes which monitor the fluidity at different depths and different regions of the membranes. (a) Application of various odorants changed the membrane fluidity of azolectin liposomes. The patterns of membrane fluidity changes in response to odorants having a similar odor were similar to each other and those in response to odorants having different odors were different from each other. These results suggested that odorants having a similar odor are adsorbed on a similar site and odorants having different odors are adsorbed on different sites. (b) Such variation of the pattern was not seen in liposomes of a simple composition (PC liposome). (c) In the proteoliposomes whose composition was more complex than that of azolectin liposomes, the patterns of membrane fluidity changes varied among odorants having a similar odor. It was concluded that liposomes of complex membrane composition have the variety of adsorption sites for odorants.

Acyclic Monoterpenes↗

Met-enkephalin receptor-mediated increase of membrane fluidity modulates nitric oxide (NO) and cGMP production in rat brain synaptosomes.

The association of [3H]-Met-enkephalin with synaptosomes isolated from rat brain cortex, when incubated for 30 min at 25 degrees C follows a sigmoid path with a Hill coefficient h = 1.25 +/- 0.04. Binding of Met-enkephalin into synaptosomes was saturable, with an apparent binding constant of 8.33 +/- 0.48 nM. At saturation, Met-enkephalin specific receptors corresponded to 65.5 +/- 7.2 nmol/mg synaptosomal protein. The Hill plot in combination with the biphasic nature of the curve to obtain the equilibrium constant, showed a moderate degree of positive cooperativity in the binding of Met-enkephalin into synaptosomes of at least one class of high affinity specific receptors. Met-enkephalin increased the lipid fluidity of synaptosomal membranes labelled with 1,6-diphenyl-1,3,5-hexatriene (DPH), as indicated by the steady-state fluorescence anisotropy [(ro/r)-1]-1. Arrhenius-type plots of [(ro/r)-1]-1 indicated that the lipid separation of the synaptosomal membranes at 23.4 +/- 1.2 degrees C was perturbed by Met-enkephalin such that the temperature was reduced to 15.8 +/- 0.8 degrees C. Naloxone reversed the fluidizing effect of Met-enkephalin, consistent with the receptor-mediated modulation of membrane fluidity. Naloxone alone had no effect on membrane fluidity. NO release and cGMP production by NO-synthase (NOS) and soluble guanylate cyclase (sGC), both located in the soluble fraction of synaptosomes (synaptosol) were decreased by 82% and 80% respectively, after treatment of synaptosomes with Met-enkephalin (10(-10)-10(-4) M). These effects were reversed by naloxone (10(-4) M) which alone was ineffective in changing NO and cGMP production.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Oxidoreductases↗

The membrane fluidity concept revisited by polarized fluorescence spectroscopy on different model membranes containing unsaturated lipids and sterols.

Quantitative analysis of time-resolved anisotropy measurements of DPH or TMA-DPH in lipid vesicles yields more than one mathematically correct solution. The solutions differ with respect to the average orientation and to the reorientational dynamics of the probe molecules in the bilayer. This leads to quite opposite results regarding the effects of cholesterol on membrane fluidity. One solution predicts an increase in fluidity, the other a decrease. Angle-resolved fluorescence depolarization (AFD) measurements of probes in oriented lipid bilayers enable determination of the average orientation of the probes in the bilayer and, if the fluorescence decay function is known, of the reorientational dynamics. Analysis of AFD measurements of DPH and TMA-DPH show that increasing unsaturation leads to a decrease in molecular order and a decrease in reorientational dynamics (= fluidity) of the probes. At temperatures above the phase transition of the lipids, the addition of cholesterol causes an increase in molecular order and an increase in reorientational dynamics (= fluidity). The plant sterol stigmaterol, which is structurally closely related to cholesterol, has different effects than cholesterol. The effects vary with the structure of the surrounding lipids. The membrane fluidity concept as it was originally proposed by Chapman attempts to describe the structural and dynamic properties of lipids in a membrane using one single parameter indicated as 'membrane fluidity'. Our results show that it is necessary to distinguish between structural parameters describing molecular order and motion parameters describing molecular dynamics, thus supporting a similar suggestion by Seelig and Seelig. In order to be useful, the membrane fluidity concept has to be limited to the parameters describing molecular dynamics.

Cholesterol↗

[Effects of age and ginsenoside RG1 on membrane fluidity of cortical cells in rats].

Membrane fluidity was measured using fluorescence spectrophotometer in cortical cells isolated from Wistar rats of five age groups (fetal); neonatal (3 days), young (3 months), adult (9 months) and old (27 months). Neurons were enzymatically isolated and loaded with the fluorescent dye, DPH (1,6-diphenyl-1,3,5-hexatriene). The membrane fluidity of neonatal cells was shown to be significantly higher (eta 1.485 +/- 0.211) than that in young cells (eta 2.220 +/- 0.169), and that in young cells was significantly higher than that in old cells (eta 2.842 +/- 0.143). No significant difference in fluidity, neither between fetal and neonatal cortical cells nor between young and adult ones was observed. Ginsenoside Rg1 (Rg1) is one of the important active principles of ginseng and shares many pharmacological effects of this plant. When treated with Rg1 (10, 20, 40 mg.kg-1), the membrane fluidity of old cortical cells significantly increased (eta 2.670 +/- 0.108, 2.381 +/- 0.123, 2.000 +/- 0.101). These findings indicate a substantial alteration of membrane fluidity with neuronal aging. Increment of membrane fluidity provides an aspect in elucidating the mechanisms of Rg1's antiaging action.

Aging↗

Effect of tocopherol and taurine on membrane fluidity of retinal rod outer segments.

The deficiency of taurine and alpha-tocopherol results in disturbances of the structure of retinal rod outer segments. In this study the effect of alpha-tocopherol (vitamin E) and taurine on the fluidity of membranes from frog retinal rod outer segments and of liposomes prepared with lecithin or with lipids from outer segment membranes was examined by steady-state fluorescence polarization of diphenyl-hexatriene (DPH). alpha-Tocopherol increased the DPH anisotropy parameter in both preparations. The vitamin modified the breakpoint temperature of Arrhenius plots of DPH anisotropy, and decreased the activation energy. Taurine failed to modify any of the parameters examined in both outer segment membranes and lecithin liposomes. These results suggest a stabilizer role for tocopherol in rod outer segment membranes. In contrast, the requirement of taurine to maintain outer segment structure seems unrelated to an effect on the physical state of membrane lipids.

Animals↗