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Biomedical subjects

D Schachter

Publications and source records attributed to D Schachter.

At least 73 records · Page 4Linked to original sources

Lipid dynamics and lipid-protein interactions in rat hepatocyte plasma membranes.

Rat hepatocyte plasma membranes were isolated and examined by differential scanning calorimetry and by steady state fluorescence polarization of 1,6-diphenyl-1,3,5-hexatriene, 12-anthroyl stearate, and 2-anthroyl stearate. Calorimetry of the intact membranes revealed a reversible lipid thermotropic transition with lower and upper critical temperatures of 18 degrees and 31 degrees C, respectively. The transition was also observed in lipid extracts of the membrane, both dried and rehydrated. The transition enthalpies estimated for intact membranes, dried membrane lipids, and rehydrated lipids, respectively, were approximately 0.3, 1.2 to 1.4, and 0.5 to 0.7 cal/g of lipid. The transition observed in the native membranes is broad and of low enthalpy, owing in part to the relatively high cholesterol content and to protein-lipid interactions. Fluorescence polarization studies detect the lower critical temperature of the transition in the membranes and in sonicated dispersions of the membrane lipid. Arrhenius studies of membrane 5'-nucleotidase and alkaline phosphatase give two-slope plots with breakpoints, respectively, of approximately 17 degrees and 26 degrees C. These break points and others reported for a number of hepatocyte membrane protein activities cluster uniformly at either the lower or the upper critical temperature of the lipid transition observed by differential scanning calorimetry.

Animals↗

Calcium modulates the lipid dynamics of rat hepatocyte plasma membranes by direct and indirect mechanisms.

Calcium ion decreases the motional freedom of lipid molecules in isolated rat hepatocyte plasma membranes and in sonicated dispersions (liposomes) of the membrane lipid. The decrease in lipid fluidity was monitored by estimation of the fluorescence polarization of 1,6-diphenyl-1,3,5-hexatriene. At least two processes are involved in the mode of action of the cation. The first is direct, i.e., observed on addition of calcium to the liposomes, relatively rapid, with a half-time of 10-15 at 37 degrees C, proportional to the calcium concentration in the range 0-4 mM, and readily reversed on addition of excess EDTA. The second mechanism is indirected and requires the presence of the membrane proteins. It occurs relatively slowly, with a half-time of 75 min at 37 degrees C, tends to plateau with a calcium half-saturation concentration of approximately 1 mM, is of greater magnitude than the direct effect, and cannot be reversed on chelation of calcium by EDTA. Moreover, the indirect effect is specific for Ca2+ as compared to other divalent cations and it results in changes in the lipid composition. Stimulation of phospholipase A activity is likely but does not account for the change in fluidity. The direct action of calcium is ascribed to binding to the lipid bilayer, whereas the indirect action probably results from modulation of membrane-bound enzymes which can alter the lipid composition. The effects of calcium on the membrane lipid fluidity may underly certain of its regulatory actions on membrane functions.

Animals↗

Membrane lipids can modulate guanylate cyclase activity of rat intestinal microvillus membranes.

Studies of the temperature dependence (10-40 degrees C) of guanylate cyclase in rat intestinal microbillus membranes reveal a change in energy of activation (slope of the Arrhenius plot) at 30 +/- 1 degree C. The break point temperature corresponds to the lipid thermotropic transition in these membranes previously characterized by differential scanning calorimetry (range: 23-39 degrees C; peak temperature, 31 degrees C). The break point temperature for guanylate cyclase also corresponds to that of a number of other microbillus membrane enzymes and of D-glucose transport. These activities are defined as "intrinsic" membrane activities by this operational criterion. Treatment with the nonionic detergent Lubrol WX increased the guanylate cyclase activity 4- to 8-fold and removed the discontinuity in the Arrhenius plot.

Animals↗

Functional interactions of lipids and proteins in rat intestinal microvillus membranes.

Interactions of lipids and proteins in isolated rat intestinal microvillus membranes were examined by studying the temperature dependence of enzyme activities and of D-glucose transport in relation to the membrane lipid thermotropic transition observed by fluorescence polarization (26 +/- 2 degrees C) and differential scanning calorimetry (23--39 degrees C). Two groups of activities were defined. Enzymes of the first group, comprising lactase, maltase, sucrase, leucine aminopeptidase, and gamma-glutamyl transpeptidase, all yielded a single slope on the Arrhenius plot in the range 10--40 degrees C and did not appear to experience functionally the effects of the lipid thermotropic transition. Each activity of the second group, comprising calcium- and magnesium-dependent adenosine triphosphatases, p-nitrophenylphosphatase, and D-glucose transport, showed a change in the slope of the Arrhenius plot in the range 25--30 degrees C, corresponding to the lower region of the lipid transition. The terms "extrinsic" and "intrinsic" activities could be applied to these groups. Delipidation of the particulate p-nitrophenylphosphatase removed the discontinuity in the Arrhenius plot. Subsequent relipidation with a variety of lipids restored a break point, but the temperature corresponded to the original discontinuity (25--29 degrees C) rather than to the phase transition temperature of the exogenous lipid added.

4-Nitrophenylphosphatase↗

Modulation of erythrocyte membrane proteins by membrane cholesterol and lipid fluidity.

Human erythrocyte membranes were enriched or depleted of cholesterol and effects on membrane proteins assessed with a membrane-impermeant sulfhydryl reagent, [35S]glutathione-maleimide. Reaction of the probe with intact cells quantifies exofacial sulfhydryl groups and reaction with leaky ghost membranes permits quantification of endofacial sulfhydryl groups. The mean endofacial sulfhydryl titer of cholesterol-enriched membranes exceeded that of cholesterol-depleted membrane by approximately 45 nmol/mg of protein or 64%. The corresponding exofacial titer of cholesterol-enriched cells was less than that of cholesterol-depleted cells by approximately 0.4 nmol/mg of protein, or 14%. Labeled membranes were examined by autoradiography of sodium dodecyl sulfate-polyacrylamide gel electropherograms to determine the labeling patterns of individual protein bands. Cholesterol enrichment enhanced the surface labeling of Coomassie brilliant blue stained bands 1,2,3, and 5, decreased the labeling of band 6, and did not change significantly that of band 4. The results demonstrate that changes in membrane cholesterol which influence lipid fluidity can alter the surface labeling of both intrinsic and extrinsic membrane proteins.

Cholesterol↗

Fluorescence polarization studies of rat intestinal microvillus membranes.

Rat intestinal microvillus membranes and lipid extracts prepared from them have been studied by fluorescence polarization with three lipid-soluble fluorophores: diphenylhexatriene, retinol, and anthroyl-stearate. The degree of fluorescence polarization of diphenylhexatriene, which provides an index of the "microviscosity" of the lipid regions of the membrane, is exceptionally high in microvillus membranes, the highest yet reported in normal biological membranes. Both the membrane proteins and lipids were found to contribute to the high values. With each of the three probes the polarization values are higher in ileal microvillus membranes as compared to membranes from proximal intestinal segments. Temperature-dependence studies of the fluorescence polarization of diphenylhexatriene and anthroylstearate demonstrate a phase transition in microvillus membranes and in liposomes prepared from their lipid extracts at approximately 26+/-2 degrees C. Ambient pH influences markedly the diphenylhexatriene fluorescence polarization in microvillus membranes but has little effect on that of human erythrocyte ghost membranes. The "microviscosity" of jejunal microvillus membranes is maximal at pH 6.5-7.0 and decreases as much as 50% at pH 3.0, an effect which depends largely upon the membrane proteins. Addition of calcium ions to suspensions of microvillus membranes increases the fluorescence polarization of retinol and anthroyl-stearate, but not that of diphenyl-hexatriene. This confirms the localization of the last compound to the hydrophobic interior of the membrane, relatively distant from the hydrophilic head groups of the polar lipids. Microvillus membrane proteins solubilized with Triton X-100 give relatively high fluorescence polarization and intensity values with retinol, suggesting the presence of binding proteins which could play a role in the normal absorptive mechanism for the vitamin.

Animals↗

Impermeant maleimides. Oriented probes of erythrocyte membrane proteins.

Maleimides impermeant to human erythrocyte membranes have been synthesized and applied to studies of the sulfhydryl groups of the membrane. Reaction of radioactive dextran-maleimide and glutathione-maleimide with either intact erythrocytes or ghosts yields sulfhydryl titers for the outer (exofacial) and inner (endofacial) surfaces, respectively, of 1.5 to 1.7 and 27 to 28 amol/cell. Corresponding values for sulfhydryl groups within the membrane interior, as estimated with radioactive N-ethylmaleimide, are 16 to 22 amol/cell. After exofacial labeling of intact cells with [35S]glutathione-maleimide, autoradiography of sodium dodecyl sulfate-polyacrylamide gels demonstrates four bands (alpha, beta, gamma, and delta) containing, respectively, 13%, 63%, 11%, and 13% of the radioactivity. The major beta-band corresponds in position to polypeptides of molecular weight 40,000 to 70,000 and to Coomassie brilliant blue-stained Band 5. Selective extraction demonstrates that the major Band 5 protein is not identical with the labeled beta-band polypeptides. Following endofacial labeling of ghosts with [35S]glutathione-maleimide, autoradiography reveals radioactivity in all of the major Coomassie brilliant blue bands. The impermeant maleimides described are also applicable to studies of discrete functional proteins of the erythrocyte membrane, including the hexose transport mechanism and the major Rho antigenic site.

Blood Protein Electrophoresis↗

Impermeant maleimides. Identification of an exofacial component of the human erythrocyte hexose transport mechanism.

The facilitated diffusion of D-glucose across human erythrocyte membranes requires an exofacial (outer surface) sulfhydryl group which can be alkylated by the impermeant reagents glutathione-maleimide and dextran-maleimide. The irreversible inhibition produced by these reagents is asymmetric; inhibition of glucose efflux considerably exceeds that of influx when transport is assayed in the absence of glucose on the opposite side of the membrane. Both D-glucose and cytochalasin B protect the exofacial transport site from alkylation by the impermeant maleimides. This masking effect provides the basis for a two-step procedure for differential labeling of the outer transport site with radioactive glutathione-maleimide. The method labels clearly and consistently a component of the membrane proteins which migrates in sodium dodecyl sulfate-polyacrylamide gels between Coomassie brilliant blue-stained Bands 4.2 and 5, corresponding to an apparent molecular weight of 65,000 to 70,000. Transport studies after inhibition with N-ethylmaleimide suggest that the hexose mechanism also requires a second sulfhydryl group which is not accessible at the cell surface.

Binding Sites↗