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Correlation of mammalian cell killing by heat shock to intramembranous particle aggregation and lateral phase separation using fluorescence-activated cell sorting.

Heat shock induces a dose-dependent increase in the fraction of Chinese hamster ovary cells that stain the fluorescent membrane probe N-epsilon-dansyl-L-lysine (DL). Dansyl lysine has previously been shown to select for cholesterol-free membrane domains in phospholipid liposomes. We found that the fraction of cells excluding DL could be closely correlated to cell survival as assayed by 37 degrees C incubation following heat treatment. Fluorescence-activated cell sorting indicated that essentially all of the DL-staining cells were nonviable. Freeze fracture electron microscopy of sorted cells showed that all the cells that stained with DL also had highly suggested intramembranous particle (IMP) aggregation while DL-excluding cells did not. Furthermore, IMP aggregation was shown to occur immediately after heat shock and to precede DL staining. Treatment with other membrane-active agents such as ethanol, amphotericin B, filipin, procaine, and lidocaine (i) induced DL staining that was closely correlated to survival, (ii) induced dramatic cytotoxic sensitization when combined with heat, and (iii) induced aggregated IMPs at relevant cytotoxic concentrations. Several nonmembrane-active agents were examined; none induced DL staining, dramatic cytotoxic sensitization, or IMP aggregation. These results raise the possibility that heat shock inactivates mammalian cells primarily via nonspecific aggregation and denaturation of membrane proteins resulting in a lateral phase separation of membrane components, including the generation of phospholipid domains.

Animals

Isolation of flagella from the archaebacterium Methanococcus voltae by phase separation with Triton X-114.

The flagella of Methanococcus voltae were isolated by using three procedures. Initially, cells were sheared to release the filaments, which were purified by differential centrifugation and banding in KBr gradients. Flagella were also prepared by solubilization of cells with 1% (vol/vol) Triton X-100 and purified as described above. Both of these techniques resulted in variable recovery and poor yield of flagellar filaments. Purification of intact flagella (filament, hook, and basal body) was achieved by using phase transition separation with Triton X-114. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis of purified flagella revealed two major proteins, with molecular weights of 33,000 and 31,000. This result indicates the likely presence of two flagellins. The filament had a diameter of 13 nm. The basal structure consisted of a small knob, while a slight thickening of the filament immediately adjacent to this area was the only evidence of a hook region. Flagella from three other Methanococcus species were isolated by this technique and found to have the same ultrastructure as flagella from M. voltae. Isolation of flagella from three eubacteria and another methanogen (Methanospirillum hungatei [M. hungatii]) by the phase separation technique indicated that the detergent treatment did not affect the structure of basal bodies. Intact ring structures and well-differentiated hook regions were apparent in each of these flagellar preparations.

Archaea

Phase separation of biomolecules in polyoxyethylene glycol nonionic detergents.

The advantage of aqueous two-phase systems based on polyoxyethylene detergents over other liquid-liquid two-phase systems lies in their capacity to fractionate membrane proteins simply by heating the solution over a biocompatible range of temperatures (20 to 37 degrees C). This permits the peripheral membrane proteins to be effectively separated from the integral membrane proteins, which remain in the detergent-rich phase due to the interaction of their hydrophobic domains with detergent micelles. Since the first reports of this special characteristic of polyoxyethylene glycol detergents in 1981, numerous reports have consolidated this procedure as a fundamental technique in membrane biochemistry and molecular biology. As examples of their use in these two fields, this review summarizes the studies carried out on the topology, diversity, and anomalous behavior of transmembrane proteins on the distribution of glycosyl-phosphatidylinositol-anchored membrane proteins, and on a mechanism to describe the pH-induced translocation of viruses, bacterial endotoxins, and soluble cytoplasmic proteins related to membrane fusion. In addition, the phase separation capacity of these polyoxyethylene glycol detergents has been used to develop quick fractionation methods with high recoveries, on both a micro- and macroscale, and to speed up or increase the efficiency of bioanalytical assays.

Animals

Diffusion and chemical reactions in phase-separated membranes.

The biological membrane may be viewed as a two-dimensional solvent system, the lipid bilayer, in which the membrane components are either dissolved (intrinsic) or to the surface of which they are adsorbed (extrinsic). The solvent bilayer is made up of a large number of lipid chemical species derived from a few lipid classes. Experience with model systems has shown that in mixed lipid bilayers immiscibility of components is the rule rather than the exception. This suggests that the bilayer in a biological membrane is not a homogenous two-dimensional fluid but rather a heterogenous system consisting of a mosaic of co-existing phase domains in which the phases differ both chemically and physically from each other. A consequence of this is the physical separation of membrane components, including proteins, based on their phase solubility. The percolation in such a phase-separated system then determines the range over which free lateral diffusion is possible and bimolecular reactions can occur. Phase percolation and long-range translational diffusion have been studied in model systems using the fluorescence recovery after photobleaching (FRAP) technique, and theoretical work shows that bimolecular reaction yields can be seriously reduced in phase-separated membranes. Transitions between percolating and non-percolating states in biomembranes is proposed as a potential trigger mechanism in the control of membrane physiology.

Cell Membrane

A lipid-phase separation model of low-temperature damage to biological membranes.

An hypothesis is proposed to explain the damage caused to biological membranes exposed to low temperatures. The thesis rests on the general observation that the lipid components of most membranes are heterogeneous and undergo phase transitions from gel-phase lamellae to liquid-crystalline lamellae and some to a non-lamellar, hexagonal-II phase over a wide range of temperatures. As a consequence of these phase transitions the lateral distribution of the lipids characteristic of the growth temperature is disturbed and redistribution takes place on the basis of the temperature at which phase transitions occur. When membranes are cooled, first the non-lamellar forming lipids pass through a transition to a fluid lamellar phase and are miscible with bilayer-forming lipids into which they diffuse. On further cooling the high-melting-point lipids begin to crystallize and separate into a lamellar gel phase, in the process excluding the low-melting point lipids and intrinsic proteins. The lipids in these remaining regions form a gel phase at the lowest temperature. It is suggested that, because the non-lamellar lipids tend to undergo a liquid-crystalline to gel-phase transition at higher temperatures than lamellar-forming lipids, these will tend to phase separate into a gel phase domain rich in these lipids. Damage results when the membrane is reheated, whereupon the hexagonal-II-forming lipids give rise to non-lamellar structures. These probably take the form of inverted micelles sandwiched within the lipid bilayer and they completely destroy the permeability barrier properties of the membrane. The model is consistent with the phase behavior of membrane lipids and the action of cryoprotective agents in modifying lipid phase properties.

Cold Temperature

A simple robust assay for testosterone in male plasma using an 125I-radioligand and a solid-phase separation technique.

A radioimmunoassay for testosterone in male plasma utilising a gamma-emitting radioligand and a solid-phase antiserum is described. The radioligand is testosterone-3-(O-carboxymethyl)-oxime coupled to 125I-iodohistamine, and the solid-phase antiserum is prepared by coupling antitestosterone-3-bovine serum albumin to cyanogen bromide activated cellulose. The new procedure retains much of the specificity associated with a published, specific radioimmunoassay using an antiserum raised against testosterone-11 alpha-BSA and a tritium radioligand and incorporating a dextra-coated charcoal separation procedure; values obtained by the two procedures are in excellent agreement (r = 0.98, n = 20). The combination of an 125I-radioligand and a solid-phase separation technique greatly increases sample throughput and has the further advantage of reduced running costs and a greater potential for automation. The method gives satisfactory levels of sensitivity, precision, and accuracy.

Animals

Phase separation of the receptor for immunoglobulin E and its subunits in Triton X-114.

Above its critical micelle concentration, Triton X-114 in solution forms two phases at room temperature: a lower phase containing supramicellar aggregates and an upper phase largely depleted of detergent. This property of the detergent is potentially useful for separating under mild conditions proteins that bind detergent from those that do not (Bordier, C. (1981) J. Biol. Chem. 256, 1604-1607). We studied the distribution of the receptor for immunoglobulin E (IgE) and its subunits in the two phases. IgE and IgE complexed either with intact receptors or with the alpha chains of the receptor alone are principally partitioned into the upper phase, whereas the unliganded receptor as well as the isolated alpha, and especially the beta and gamma chains of the receptor, preferentially partition into the lower detergent phase. Chromatography of IgE and of the subunits of the receptor on a hydrophobic support showed that the beta and gamma chains have a considerably greater hydrophobic surface than the alpha chains or IgE. These results indicate that the distribution of a protein in the two phases of phase-separated Triton X-114 is not an all-or-none effect based upon whether it binds detergent or not. Rather, it reflects the overall balance between the hydrophobic and hydrophilic properties of the protein's surface.

Animals

Fractionation of membrane proteins by temperature-induced phase separation in Triton X-114. Application to subcellular fractions of the adrenal medulla.

After solubilization with the detergent Triton X-114, membrane proteins may be separated into three groups: if the membrane is sufficiently lipid-rich, one family of hydrophobic constituents separates spontaneously at low temperature; warming at 30 degrees C leads to separation of a detergent-rich phase and an aqueous phase. Using the chromaffin-granule membrane as a model, we found that many intrinsic membrane glycoproteins are found in the latter phase, probably maintained in solution by adherent detergent. They precipitate, however, when this is removed by dialysis, leaving in solution those truly hydrophilic proteins that were originally adhering to the membranes. We have used this method with mitochondria, and with Golgi- and rough-endoplasmic-reticulum-enriched microsomal fractions: it has proved to be a rapid and convenient method for effecting a partial separation of proteins from a variety of different membranes.

Adenosine Triphosphatases

Circulating antitriiodothyronine autoantibodies in two euthyroid patients: apparent lack of interference in total T3 radioimmunoassay based on second antibody or solid phase separation techniques.

Two clinically euthyroid patients were noted to have low total T3 levels as assessed by RIA using either dextran-charcoal (DC) or polyethylene glycol (PEG) for separation of bound from unbound T3, in spite of normal free T3, total and free T4 and basal and TRH-stimulated TSH concentrations. The presence of circulating substances binding T3 was suggested by high nonspecific binding in total T3 RIA system using either DC or PEG separation. The presence of anti-T3 autoantibodies was then suspected and confirmed by the presence of [125]-T3 bound to patients' gammaglobulins, precipitated with rabbit anti-human immunoglobulins. Serum T3 concentration determined by extracting T3 from patients' sera with methanol was 166 and 226 ng/dl. Similar or even lower values were unexpectedly obtained in RIA systems with solid phase or second antibody (anti-rabbit) separation and with competitive protein binding assay. To face this paradoxical finding, simulated experiments were carried out by incubating T3- and T4-free sera added with various amounts of stable T3 and T4 in the presence of goat anti-T3 or anti-T4 serum. These samples were then radioimmunoassayed. The DC separation caused a consistent underestimation of the actual T3 and T4 concentration. The second antibody separation caused a T3 and T4 overestimation for actual levels below 200 ng/dl and 10 micrograms/dl, respectively, while at the higher T3 or T4 concentrations, an overlap or, even, an underestimation of actual T3 or T4 levels were found. These data provide evidence that, with second antibody or solid phase separation methods, there could be an apparent lack of interfering effect of endogenously occurring antibodies.

Adult

Binary liquid phase separation and critical phenomena in a protein/water solution.

We have investigated the phase diagram of aqueous solutions of the bovine lens protein gamma II-crystallin. For temperatures T less than Tc = 278.5 K, we find that these solutions exhibit a reversible coexistence between two isotropic liquid phases differing in protein concentration. The dilute and concentrated branches of the coexistence curve were characterized, consistently, both by measurements of the two coexisting concentrations, c(T), and by measuring the cloud temperatures for various initial concentrations. We estimate that the critical concentration, cc, is 244 mg of protein per ml solution. The coexistence curve is well represented by the absolute value of (c - cc)/cc = 5.2 square root (Tc - T)/Tc. Using the temperature dependence of the scattered light intensity along isochores parallel to the critical isochore, we estimated the location of the spinodal line and found it to have the form (c - cc)/cc = 3.0 square root (Tc - T)/Tc. The ratio of the widths of the coexistence curve and the spinodal line, (5.2/3.0), is close to the mean-field value square root 3. We have also observed the growth of large crystals of gamma II-crystallin in some of these aqueous solutions and have made preliminary observations as to the factors that promote or delay the onset of crystallization. These findings suggest that selected protein/water systems can serve as excellent model systems for the study of phase transitions and critical phenomena.

Animals

Phase separation in frozen erythrocyte membrane preparations.

The reversible formation of a lipid-like phase in frozen preparations of erythrocyte membranes has been studied by X-ray diffraction and by electron microscopy of freeze-fracture replicas. The observations provide strong evidence for lateral migration or displacement at specific temperatures of intra-membrane particles. This creates large areas of particle-free membranes which fracture preferentially so as to dominate the freeze-fracture image.

Erythrocyte Membrane

Model of protein conformation in the reversed-phase separation of interleukin-2 muteins.

Thirty muteins* of interleukin-2 were studied by reversed-phase high-performance liquid chromatography in a gradient mode. Values of the stoichiometry-factor Z [from Geng and Regnier, J. Chromatogr., 296 (1984) 15] varied over a 2.5-fold range for these proteins of similar molecular weight and composition. It is proposed that the more hydrophobic and/or more stable proteins have smaller values of Z while the larger Z-values correspond to a higher degree of protein unfolding during reversed-phase retention. The practical utility of this approach was demonstrated when these Z values were used to predict correctly a reversal in elution order for two closely related interleukin-2 muteins, when shallower gradients were used.

Amino Acids

Solid-phase separation of 14C-labelled urea and aminoisobutyric acid for membrane transport studies.

A sorbent extraction method has been developed for separating 14C-labelled urea and aminoisobutyric acid (AIB) in blood. The use of commercial solid-phase extraction cartridges containing aminopropyl-bonded silica provided a convenient and rapid separation of urea and AIB with better than 92% recovery of each and less than 5% cross-contamination. This allows these compounds, together with [3H]methylglucose, to be used as marker compounds for investigating three aspects of membrane transport. The facility to separate any two of the three compounds permits their simultaneous measurement, greatly increasing the amount of data obtainable from each in vivo preparation.

3-O-Methylglucose

Separable phases of light-evoked depolarizations in the retina of Strombus.

The waveforms of light-evoked depolarizations in Strombus retinal neurones can exhibit two sequential peaks or phases, the relative amplitudes of which vary with changes in stimulus intensity and interstimulus interval. Experiments employing either the passage of constant intracellular current or voltage clamp techniques indicate that both phases reverse polarity at intracellular potentials less negative than the resting potential. The potential at which the first phase reverses its polarity is considerably more positive than that of the second phase. The results indicate that the light-evoked depolarizations are generated by at least two different processes; these appear to be separate conductance changes, neither of which is voltage dependent. Under certain conditions, the second phase was inhibited by high extracellular concentrations of Mg2+, indicating that it may arise as a result of chemically mediated synaptic transmission. The first phase did not show such inhibition and appears to be caused by the direct action of light on the cell.

Animals

Lipid phase separations and intramembranous particle movements in the yeast tonoplast.

The tonoplast of Saccharomyces cerevisiae contains regions depleted of intramembranous particles as the cells enter stationary phase. Freeze-fracture studies on intact cells from this growth stage show that a dispersed particle distribution predominates if the cell temperature is raised to 40 degrees C but that particle-depleted areas prevail at or below the cell growth temperature of 30 degrees C. Tonoplasts of isolated vacuoles also contain particle-depleted regions. Differential thermal analysis of lipids extracted from isolated vacuoles show an endothermic transition which encompasses the cell growth temperature. These results suggest that the tonoplast at this stage contains patches of gel-phase lipid and that these patches correspond to the intramembranous particle-depleted areas of the freeze-fractured tonoplast.

Cell Membrane