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Biomedical subjects

F Paltauf

Publications and source records attributed to F Paltauf.

At least 91 records · Page 5Linked to original sources

Influence of plasmalogen deficiency on membrane fluidity of human skin fibroblasts: a fluorescence anisotropy study.

The influence of plasmalogen deficiency on membrane lipid mobility was determined by measuring fluorescence anisotropy of trimethylammoniumdiphenylhexatriene (TMA-DPH) and diphenylhexatrienylpropanoylhydrazylstachyose (glyco-DPH) inserted in the plasma membranes of human skin fibroblasts deficient in plasmalogens. The cells used were from patients affected with cerebrohepatorenal (Zellweger) syndrome (CHRS) or rhizomelic chondrodysplasia punctata. Their plasmalogen content (0-5% of total phospholipid) is significantly reduced compared with that of control cells from healthy donors (13-15% of total phospholipid) or of CHRS fibroblasts supplemented with the plasmalogen precursor, hexadecylglycerol. Plasmalogen-deficient cells consistently showed lower fluorescence anisotropies of membrane-bound DPH fluorophores corresponding to higher membrane lipid mobilities as compared to controls. However, very similar lipid mobilities were found for sonicated aqueous dispersions of phospholipids extracted either from CHRS or control cells. Therefore, the differences observed with living cells are not due to differences in the overall physical properties of the membrane lipid constituents. Other phenomena such as lipid asymmetry and/or plasmalogen-protein interactions may be responsible for the effects observed in the biomembranes.

Cell Membrane↗

Fluorescence lifetime distributions of diphenylhexatriene-labeled phosphatidylcholine as a tool for the study of phospholipid-cholesterol interactions.

Fluorescence lifetimes of 1-palmitoyl-2-diphenylhexatrienylpro-pionyl-phosphatidylc hol ine in vesicles of palmitoyloleoyl phosphatidylcholine (POPC) (1:300, mol/mol) in the liquid crystalline state were determined by multifrequency phase fluorometry. On the basis of statistic criteria (chi 2red) the measured phase angles and demodulation factors were equally well fitted to unimodal Lorentzian, Gaussian, or uniform lifetime distributions. No improvement in chi 2red could be observed if the experimental data were fitted to bimodal Lorentzian distributions or a double exponential decay. The unimodal Lorentzian lifetime distribution was characterized by a lifetime center of 6.87 ns and a full width at half maximum of 0.57 ns. Increasing amounts of cholesterol in the phospholipid vesicles (0-50 mol% relative to POPC) led to a slight increase of the lifetime center (7.58 ns at 50 mol% sterol) and reduced significantly the distributional width (0.14 ns at 50 mol% sterol). Lifetime distributions of POPC-cholesterol mixtures containing greater than 20 mol% sterol were within the resolution limit and could not be distinguished from monoexponential decays on the basis of chi 2red. Cholesterol stabilizes and rigidifies phospholipid bilayers in the fluid state. Considering its effect on lifetime distributions of fluorescent phospholipids it may also act as a membrane homogenizer.

Cholesterol↗

Genetic and phenotypic heterogeneity in disorders of peroxisome biogenesis--a complementation study involving cell lines from 19 patients.

Disorders of peroxisomal biogenesis include the Zellweger syndrome, neonatal adrenoleukodystrophy, infantile Refsum syndrome, and hyperpipecolic acidemia. These names were assigned before the recognition of the peroxisomal defect and the distinction between phenotypes is uncertain. Recent studies have identified at least four complementation groups, and indicate the presence of at least that number of distinct genotypes. The purpose of the present study was to examine the relationship between genotype and phenotype. We studied cultured skin fibroblasts from 19 patients in whom deficiency of peroxisomes had been established. Complementation analysis was performed with the criterion of complementation being the restoration of the capacity to synthesize plasmalogens when fibroblasts from two patients were fused. Six complementation groups were identified, and consisted of one 13 member group, one two member group, and four groups comprising single cases. The phenotype of each group was examined with respect to age of survival, clinical manifestations, and biochemical alterations. The 13 member group included patients with all of the four currently designated phenotypic entities, while the most common phenotype (Zellweger syndrome) was distributed among five of the six groups. We conclude that the currently used clinical categories do not represent distinct genotypes. Apparently different genes code for a similar phenotype and one defective gene may lead to variant phenotypes. Definitive classification and understanding of these disorders await definition of the specific biochemical defect in each of the genotypes.

Adrenoleukodystrophy↗

Lipid topology and physical properties of the outer mitochondrial membrane of the yeast, Saccharomyces cerevisiae.

The outer membrane of yeast mitochondria was studied with respect to its lipid composition, phospholipid topology and membrane fluidity. This membrane is characterized by a high phospholipid to protein ratio (1.20). Like other yeast cellular membranes the outer mitochondrial membrane contains predominantly phosphatidylcholine (44% of total phospholipids), phosphatidylethanolamine (34%) and phosphatidylinositol (14%). Cardiolipin, the characteristic phospholipid of the inner mitochondrial membrane (13% of total phospholipids) is present in the outer membrane only to a moderate extent (5%). The ergosterol to phospholipid ratio is higher in the inner (7.0 wt%) as compared to the outer membrane (2.1 wt.%). Attempts to study phospholipid asymmetry by selective degradation of phospholipids of the outer leaflet of the outer mitochondrial membrane failed, because isolated right-side-out vesicles of this membrane became leaky upon treatment with phospholipases. Selective removal of phospholipids of the outer leaflet with the aid of phospholipid transfer proteins and chemical modification with trinitrobenzenesulfonic acid on the other hand, gave satisfactory results. Phosphatidylcholine and phosphatidylinositol are more or less evenly distributed between the two sides of the outer mitochondrial membrane, whereas the majority of phosphatidylethanolamine is oriented towards the intermembrane space. The fluidity of mitochondrial membranes was determined by measuring fluorescence anisotropy using diphenylhexatriene (DPH) as a probe. The lower anisotropy of DPH in the outer as compared to the inner membrane, which is an indication for an increased lipid mobility in the outer membrane, was attributed to the higher phospholipid to protein and the lower ergosterol to phospholipid ratio. The data presented here show, that the outer mitochondrial membrane, in spite of its close contact to the inner membrane, is distinct not only with respect to its protein pattern, but also with respect to its lipid composition and physical membrane properties.

Ergosterol↗

Selective hydrolysis of ether-containing glycerophospholipids by phospholipase A2 in rabbit lung.

The role of phospholipase A2 (PLA2) in the simultaneous generation of lyso-platelet-activating factor and arachidonic acid was investigated by examining the calcium dependency and substrate specificity of PLA2 activities in rabbit lung microsomes. Alkylarachidonoylglycerophosphocholine (alkylarachidonoyl-GPC) was preferentially hydrolyzed as compared to acylarachidonoyl-GPC, and both arachidonate-containing substrates were cleaved to a greater extent as compared to alkyl- and acyl-substrates with oleate at the sn-2 position. Hydrolysis of alkylacyl-GPC substrates was not dependent on calcium in the presence of EGTA (1 mM); however, addition of calcium (2 mM) increased hydrolysis of acylarachidonoyl-GPC 2-fold and hydrolysis of acyloleoyl-GPC 10-fold. Substitution of an alkenyl group in the sn-1 position further enhanced calcium-independent PLA2 hydrolysis, and another substitution of arachidonic acid at the sn-2 position of the plasmalogen substrates substantially increased hydrolysis as compared to hydrolysis of substrates containing oleic acid. Hydrolysis of the choline plasmalogen was 3-fold greater than hydrolysis of the ethanolamine plasmalogen containing arachidonate. Preferential calcium-independent hydrolysis of alkylacyl-GPC substrates was observed in several tissues, including adult and fetal rabbit lung and adult rabbit kidney and human amnion. PLA2 substrate specificity may account for the preferential hydrolysis of arachidonoyl-containing alkyl-GPC in several cell types and explain the simultaneous generation of the precursors of two potent autacoids, platelet-activating factor and eicosanoids.

Aging↗

Lipid requirements of human T lymphocytes stimulated with mitogen in serum-free medium. Membrane "fluidity" changes are an artefact of lipid (AL721) uptake by monocytes.

A correlation has been sought between the effects of lipids on membrane fluidity and mitogen responsiveness of human peripheral blood lymphocytes (PBL). Cholesterol and the reputedly potent membrane fluidizing agent AL721 (1) were used for these studies. However, the large AL721 induced increase in membrane "fluidity", assessed by steady state polarization of the probe 1,6-diphenyl-1,3,5-hexatriene (DPH), was found to be an artefact arising from lipid uptake by monocytes. Mitogen responses were enhanced by AL721 but unaffected by cholesterol. It is concluded that AL721 does not exert its effect through enhanced triggering of cells by altered membrane fluidity but rather that lymphocytes require an exogenous source of phospholipids/triglycerides for optimal growth in vitro, although they can synthesize sufficient cholesterol to meet their own needs.

Adult↗

Identification of mitochondrial and microsomal phosphatidylserine synthase in Saccharomyces cerevisiae as the gene product of the CHO1 structural gene.

In Saccharomyces cerevisiae, the membrane-associated enzyme phosphatidylserine synthase (EC 2.7.8.8) is present in the mitochondria and the endoplasmic reticulum. The enzyme from both membrane fractions reacted with antiserum raised against a hybrid protein expressed from a TRPE-CHO1 fusion gene in Escherichia coli and was absent in a cho1 null mutant, strongly suggesting that both the mitochondrial and microsomal forms of phosphatidylserine synthase are the products of the CHO1 gene. The highest degree of purification of enzymatically active protein was 380- and 420-fold from the mitochondrial and the microsomal compartments, respectively. In both cases, the enzymatically active and immunoreactive material comigrated with a protein band of 30,000 apparent molecular weight. In the absence of protease inhibitors during the preparation of membranes, the enzyme underwent degradation to an enzymatically active protein of 23,000 apparent molecular weight.

CDPdiacylglycerol-Serine O-Phosphatidyltransferase↗

Monolayer characteristics and thermal behavior of natural and synthetic phosphatidylserines.

The monolayer properties and thermal behavior of different phosphatidylserines are presented. At neutral pH and 22 degrees C, saturated phosphatidylserines form condensed monolayers while unsaturated phosphatidylserines form liquid-expanded films. Under similar conditions, dimyristoylphosphatidylserine undergoes a transition from the liquid-expanded to the condensed state. At pH 4 and 22 degrees C, the surface pressure-area isotherms are shifted to smaller areas relative to the monolayers recorded at neutral pH. The condensation observed at pH 4 is close to that produced at pH 7.4 by the addition of 10 mM CaCl2. As regards the molecular packing in monolayers and the thermal behavior, 1,2-dipalmitoyl-sn-glycero-3-phospho-L-serine (DPPS) and its ether analogue are similar, albeit not identical. Below 30 mN/m, monolayers of the ether analogue are even more condensed than those of DPPS. The order-disorder transition of the ether analogue occurs usually at higher temperatures than that of the diacyl compound. Sonicated phosphatidylserine dispersions consisting of small unilamellar vesicles show anomalous thermal properties compared to sonicated phosphatidylcholine dispersions. They exhibit sharp order-disorder transitions at similar or even slightly elevated temperatures compared to unsonicated phosphatidylserine dispersions. This anomaly is explained in terms of a pH gradient across the bilayer membrane of the small unilamellar phosphatidylserine vesicle. The internal surface pH is more acidic than the external pH, leading to some protonation of phosphatidylserine molecules. This in turn leads to a condensation of phosphatidylserine molecules on the inner bilayer surface. Such a gradient is proposed to be responsible for the thermodynamic stability of highly curved negatively charged bilayer vesicles.

Hydrogen-Ion Concentration↗

Infrared studies of fully hydrated unsaturated phosphatidylserine bilayers. Effect of Li+ and Ca2+.

Infrared spectroscopy has been used to characterize the thermal-phase behavior of fully hydrated 1-palmitoyl-2-oleoyl-sn-glycero-3-phospho-L-serine (POPS) and 1,2-dioleoyl-sn-glycero-3-phospho-L-serine (DOPS) as well as their interaction with Li+ and Ca2+. The order-disorder transition of POPS-NH4+ is at 17 degrees C; in the presence of Li+ a POPS-Li+ complex is formed, and the transition temperature of this complex is 40 degrees C. DOPS-NH4+ has an order-disorder transition at -11 degrees C, and unlike POPS the addition of Li+ has no effect on the thermal behavior of DOPS-NH4+. This indicates that the binding of Li+ to DOPS is negligible or very weak. Li+ binds to the phosphate and carboxylate groups of POPS, and as a result these groups lose their water of hydration. Li+ binding induces a conformational change, probably in the glycerol backbone of POPS; however, the conformation of the two P-O ester bonds remains gauche-gauche as in POPS-NH4+. Both POPS and DOPS form crystalline complexes with Ca2+. As a result of Ca2+ binding to the phosphate, this group loses its water of hydration and there is a conformational change in the P-O ester bonds from gauche-gauche to antiplanar-antiplanar. In contrast to the POPS-Li+ complex, the carboxylate group remains hydrated in the Ca2+ complexes. Furthermore, in these PS-Ca2+ complexes a new hydrogen bond is formed between one of the ester C=O groups and probably water. Such a situation is not found in the NH4+ and Li+ salts of phosphatidylserine.

Calcium↗

Structure and dynamics of plasmalogen model membranes containing cholesterol: a deuterium NMR study.

Deuterium nuclear magnetic resonance (2H-NMR) was used to investigate the structure and dynamics of the sn-2 hydrocarbon chain of semi-synthetical choline and ethanolamine plasmalogen in bilayers containing 0, 30, and 50 mol% cholesterol. The deuterium NMR spectra of the choline plasmalogen yielded well-resolved quadrupolar splittings which could be assigned to the corresponding hydrocarbon chain deuterons. The sn-2 acyl chain was found to adopt a similar conformation as observed in the corresponding diacyl phospholipid, however, the flexibility at the level of the C-2 methylene segment of the plasmalogen was increased. Deuterium NMR spectra of bilayers composed of the ethanolamine plasmalogen yielded quadrupolar splittings of the C-2 segment much larger than those of the corresponding diacyl lipids, suggesting that the sn-2 chain is oriented perpendicular to the membrane surface at all segments. Cholesterol increased the ordering of the choline plasmalogen acyl chain to the same extent as in diacyl lipid bilayers. T1 relaxation time measurements demonstrated only minor dynamical differences between choline plasmalogen and diacyl lipids in model membranes.

Cholesterol↗

Infrared and 31P-NMR studies of the effect of Li+ and Ca2+ on phosphatidylserines.

Infrared and 31P-NMR spectra of solid samples of 1,2-dimyristoyl-sn-glycero-3-phospho-L-serine (DMPS), 1-palmitoyl-2-oleoyl-sn-glycero-3-phospho-L-serine (POPS) and 1,2-dioleoyl-sn-glycero-3-phospho-L-serine (DOPS) have been recorded. Comparison of the spectra of the Na+ salts of these phospholipids with those of complexes formed with Li+ and Ca2+ ions allows the characterization of conformational changes induced by complexation with Li+ and Ca2+. Ca2+ forms tight, crystalline complexes with these phosphatidylserines (PS), irrespective of the degree of unsaturation in the hydrocarbon chains. In these PS-Ca2+ complexes the torsion angles of the two P-O ester bonds exhibit the antiplanar-antiplanar conformation which is significantly different from the standard gauche-gauche conformation commonly found in phosphodiesters. In contrast, complexation with Li+ does not induce this conformational change in the phosphodiester group. It is shown that the degree of unsaturation in the hydrocarbon chains, and related to it, the cross-sectional area of the phospholipid or the surface charge density, determine the affinity of the phosphatidylserine for the metal ion. In general, the affinity of phosphatidylserines for both Li+ and Ca2+ decreases with increasing unsaturation in the hydrocarbon chains or decreasing surface charge density; it is in the order DMPS greater than POPS greater than DOPS.

Ammonia↗

Intracellular transfer of phospholipids in the yeast, Saccharomyces cerevisiae.

In Saccharomyces cerevisiae, unlike in higher eukaryotic cells, most of the reactions involved in phospholipid biosynthesis occur both in mitochondria and in the endoplasmic reticulum. Some of the key enzymes involved, however, are restricted to one compartment. Thus, the formation of phosphatidylethanolamine by decarboxylation of phosphatidylserine occurs only in mitochondria, while phosphatidylcholine synthesis via methylation of phosphatidylethanolamine is restricted to microsomes. When yeast cells were pulse labelled with [3H]serine,[3H] phosphatidylethanolamine formed in mitochondria was found not only in the organelle but also, with even higher specific radioactivity, in the endoplasmic reticulum. Translocation of phosphatidylethanolamine between organelles was blocked immediately after poisoning cells with cyanide, azide and fluoride. Part of the [3H]phosphatidylcholine formed in the endoplasmic reticulum by methylation of [3H]phosphatidylethanolamine was transferred to mitochondria. This process continued in deenergized cells, although at a lower rate as compared to metabolizing cells. This result indicates rapid movement of both phosphatidylethanolamine and phosphatidylcholine requires metabolic energy, but that phosphatidylinositol-specific phospholipid transfer protein that has been found in saccharomyces cerevisiae (Daum, G. and Paltauf, F. (1984) Biochim. Biophys. Acta 784, 385-391). The mechanism of movement of phospholipids from internal membranes to the cell surface was studied with temperature-sensitive secretory mutants (Schekman, R. (1982) Trends Biochem. Sci. 7, 243-246) of Saccharomyces cerevisiae. A shift from the permissive to the restrictive temperature, which blocks the flow of vesicles involved in the secretion of proteins, had no effect on the transfer of phosphatidylinositol to the plasma membrane.

Biological Transport↗

Subcellular and submitochondrial localization of phospholipid-synthesizing enzymes in Saccharomyces cerevisiae.

Using highly enriched membrane preparations from lactate-grown Saccharomyces cerevisiae cells, the subcellular and submitochondrial location of eight enzymes involved in the biosynthesis of phospholipids was determined. Phosphatidylserine decarboxylase and phosphatidylglycerolphosphate synthase were localized exclusively in the inner mitochondrial membrane, while phosphatidylethanolamine methyltransferase activity was confined to microsomal fractions. The other five enzymes tested in this study were common both to the outer mitochondrial membrane and to microsomes. The transmembrane orientation of the mitochondrial enzymes was investigated by protease digestion of intact mitochondria and of outside-out sealed vesicles of the outer mitochondrial membrane. Glycerolphosphate acyltransferase, phosphatidylinositol synthase, and phosphatidylserine synthase were exposed at the cytosolic surface of the outer mitochondrial membrane. Cholinephosphotransferase was apparently located at the inner aspect or within the outer mitochondrial membrane. Phosphatidate cytidylyltransferase was localized in the endoplasmic reticulum, on the cytoplasmic side of the outer mitochondrial membrane, and in the inner mitochondrial membrane. Inner membrane activity of this enzyme constituted 80% of total mitochondrial activity; inactivation by trypsin digestion was observed only after preincubation of membranes with detergent (0.1% Triton X-100). Total activity of those enzymes that are common to mitochondria and the endoplasmic reticulum was about equally distributed between the two organelles. Data concerning susceptibility to various inhibitors, heat sensitivity, and the pH optima indicate that there is a close similarity of the mitochondrial and microsomal enzymes that catalyze the same reaction.

CDP-Diacylglycerol-Inositol 3-Phosphatidyltransfer↗

Utilization of exogenous glycerophosphodiesters and glycerol 3-phosphate by inositol-starved yeast, Saccharomyces uvarum.

Inositol-starved Saccharomyces uvarum cells hydrolyse exogenous glycerophosphodiesters to glycerol 3-phosphate and the corresponding alcohol. Glycerophosphodiesterase activity is highest with glycerophosphoinositol as the substrate, followed by glycerophosphoethanolamine and glycerophosphocholine; the artificial substrate for phosphodiesterases, bis-p-nitrophenylphosphate,is hydrolysed at a similar rate as compared with glycerophosphoinositol. Competition experiments suggest that distinct phosphodiesterases are involved in the hydrolysis of the respective substrates. An Mg2+-dependent glycerophosphate phosphohydrolase with a pH-optimum around neutral cleaves glycerol 3-phosphate to glycerol and orthophosphate. The latter is taken up into cells without first entering the pool of orthophosphate present in the growth medium. Accessibility to substrates with whole cells, adhesion of enzymes to spheroplasts, and solubilization of enzymes by treatment of whole cells with Triton X-100 under mild conditions suggest that phosphodiesterases and glycerol-3-phosphate phosphohydrolase are loosely associated with the outer side of the yeast plasma membrane. Enzyme activities are only marginal in inositol-supplemented cells, but are derepressed not only by inositol deficiency, but also by starvation of orthophosphate.

Glycerophosphates↗

The cerebrohepatorenal (Zellweger) syndrome: an improved method for the biochemical diagnosis and its potential value for prenatal detection.

The sequence of reactions involved in plasmalogen biosynthesis has been evaluated in cultured fibroblasts of patients with the cerebrohepatorenal syndrome. A double-label, double-substrate incubation using [1-14C] hexadecanol and 1-0-[9', 10'-3H]hexadecylglycerol was performed to monitor the relative rates of peroxisomal and microsomal biosynthesic steps. [14C] radioactivity associated with 1'-alkenyl groups of plasmalogens was found to be drastically reduced in fibroblasts of affected patients whereas [3H] incorporation was apparently normal. This finding is specific for cerebrohepatorenal syndrome fibroblasts since cell lines of patients with childhood adrenoleukodystrophy and neuronal ceroidlipofuscinosis utilized the lipid precursors of plasmalogen biosynthesis at normal rates. The results show that the defect in plasmalogen synthesis in the cerebro-hepato-renal syndrome is restricted to the peroxisomal steps. The finding of normal microsomal biosynthetic steps was exploited to devise a novel diagnostic assay in fibroblasts and amniocytes based on the comparison of [3H/14C] isotope ratios within aldehydes released from plasmalogens by acid hydrolysis. The procedure can be completed with a minimal amount of cells since it renders quantitative analyses unnecessary. Therefore, this technique appears ideally suited for the sensitive and safe prenatal diagnosis of the cerebro-hepato-renal syndrome.

Abnormalities, Multiple↗

The effect of myo-inositol deficiency on phosphatases of yeast.

Activities of several phosphohydrolases are significantly enhanced when cells of the inositol-requiring yeast, Saccharomyces uvarum ATCC 9080, are deprived of inositol. This effect is most pronounced for the external acid phosphatase and cannot be explained simply by limitation of cellular growth, because starvation for vitamins or sulphate has no effect on acid phosphatase activities. Excessive secretion of acid phosphatase by spheroplasts prepared from inositol-deficient cells is greatly reduced when the spheroplast medium is supplemented with inositol and is immediately suppressed by the addition of cycloheximide. These results together with data obtained from experiments with whole cells, employing cycloheximide and actinomycin D, point to a regulatory effect of inositol limitation at the level of transcription. The external enzymes beta-D-fructofuranosidase, alpha-D-galactosidase and L-asparaginase, and the vacuolar enzyme carboxypeptidase Y are not affected by inositol deficiency indicating that inositol deficiency has no general effect on protein secretion.

Acid Phosphatase↗

Uptake of fatty acids by the yeasts, Saccharomyces uvarum and Saccharomycopsis lipolytica.

Yeast cells take up exogenous fatty acids with subsequent rapid incorporation into glycerolipids. beta-Oxidation does not occur in Saccharomyces uvarum and is observed in Saccharomycopsis lipolytica only 2-5 min after addition of radioactively labeled fatty acid. Rates of fatty acid uptake are linear up to 30 s with S. lipolytica and up to 2 min with S. uvarum. The uptake kinetics are consistent with a dual mode of transport, comprising a saturable component with KT values in the range 10(-5)-10(-6) M, and apparently simple diffusion that predominates at high substrate concentrations. Kinetics of fatty acid permeation are independent of metabolic energy and membrane potential. At least two fatty acid carrier systems exist in both S. lipolytica and S. uvarum, one being specific for fatty acids with 12 and 14 C atoms, respectively, the other for C16 and C18 saturated or unsaturated fatty acids. Octanoic acid and decanoic acid are not taken up by S. lipolytica. Internalization of lauric acid and oleic acid by S. lipolytica cells is preceded by a rapid (less than 5 s) initial uptake which most likely represents irreversible adsorption. This phenomenon was not observed with heat-inactivated S. lipolytica cells or with viable S. uvarum. In azide-poisoned cells of S. lipolytica an up to 20-fold accumulation of unesterified fatty acid was observed within 30 s after the addition of substrate.

Adsorption↗

Interaction between ether glycerophospholipid vesicles and serum proteins in vitro.

The effect of blood serum on the stability of small unilamellar vesicles consisting of 1-O-(1'-alkenyl)-2-acyl-sn-glycerophosphocholine (choline plasmalogen) or of the alkylacyl-, dialkyl- and diacyl analogs was evaluated by measuring either release of entrapped calcein or transfer of phospholipids from vesicles to serum high-density lipoproteins. The following order of stability was found: alkenyloleoylGPC greater than dioleoylGPC greater than di-O-octadecenylGPC greater than acyloleoylGPC = egg phosphatidylcholine = alkyloleoylGPC. AlkyloleoylGPC and acyloleoylGPC had aliphatic chain compositions similar to that of alkenyloleoylGPC. From the results obtained it is concluded that stability of vesicles in the presence of serum depends on vesicle size (larger vesicles are more stable) and on the type of bond (ether or ester) in position 2 of glycerol. Dioctadecenyl vesicles are about the same size as alkylacylGPC vesicles, but are significantly more stable in the presence of serum. Thus, it appears that an ester bond in position 2 of glycerol (which is replaced by an ether bond in dioctadecenylglycerol) favors the interaction of phospholipids with serum high-density lipoproteins or lipid-exchange proteins. The addition of cholesterol greatly enhances vesicle stability; among the vesicles used in this study those composed of alkenylacylGPC plus 30 mol% cholesterol were most resistant to disruption by serum. Experiments with sn-1 and sn-3 enantiomers of alkylacylGPC and diacylGPC have shown that interaction of vesicle membranes with serum components is independent of the steric configuration of vesicle phospholipids.

Blood Proteins↗