Bis-phosphatidic acid plasmalogen in brain of Amia calva and its correlation with the infarct plasmalogen and the cardiolipin (diphosphatidyl glycerol) series of phosphatides.
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Triggered release from liposomes composed of semi-synthetic 1-alk-1'-enyl-2-acyl-sn-glycero-3-phosphocholine (plasmalogen) lipids has been demonstrated using either aerobic visible illumination or low pH to induce leakage. The photodynamic release system consists of three functional components: (1) small (less than 1000 A) unilamellar plasmalogen vesicles (SUVs) containing encapsulated glucose, (2) oxygen and (3) zinc phthalocyanine (ZnPc) incorporated within the hydrophobic region of the SUV membrane. Irradiation (lambda greater than 640 nm) at 37 degrees C of air-saturated 1-alk-1'-enyl-2-palmitoyl-sn-glycero-3-phosphocholine (PlasPPC)/1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DPPC) (8:1, mol/mol) liposomes at physiologically relevant temperatures results in glucose release rates that are twice those of the corresponding dark control. Photolysis of argon-saturated PlasPPC/DPPC liposomes or of identical vesicles lacking either ZnPc or the plasmalogen vinyl ether bond exhibit glucose release curves which are indistinguishable from the dark control. Irradiation under identical conditions, but in the presence of 100 mM sodium azide, also results in no increased rate of glucose release above that of the dark control. TLC analysis indicates that oxidized lipid species are produced only in air-saturated, irradiated plasmalogen liposomes. The acid lability of the plasmalogen vinyl ether linkage has also been used to trigger release of entrapped calcein. At pH 4.2, the release rate at 37 degrees C is increased 4-fold over rates observed at pH 8. TLC analysis indicates formation of a lysoplasmalogen product. Taken together, these results indicate that both photodynamic and acid triggering can be used to increase plasmalogen liposome permeability and suggest that these liposomes are potentially useful for drug delivery applications.
Ethanol-soluble mycardial material which reacts with anti-streptococcal sera in a number of immunological tests has been isolated and identified as ethanolamine plasmalogen. The reactions of cardiac plasmalogen with antistreptococcal sera was specific and could be inhibited by streptococcus-derived materials. Guinea-pigs sensitized to streptococci gave positive skin reactions when challenged with myocardial plasmalogen. The pattern of the immunofluorescent staining given by antiplasmalogen sera was very much like that given by antistreptococcal sera. Nevertheless, the plasmalogen failed to compete for tissue-bound myocardial antigens when tried as an inhibitor of the immunofluorescent staining of myocardium either by antistreptococcal sera or by antiplasmalogen sera. A hypothesis of the role of the plasmalogen in the formation of complexes between streptococci and myocardium-derived material in the initiation of autoimmune processes is presented.
In search of a common biochemical denominator of the action of the nootropic drug 2-oxo-pyrrolidine-1-acetamide (piracetam, Normabrain, Nootrop) the effects of the substance on the neuronal respiratory chain were investigated. The activity of the electron transport system of the respiratory chain was measured by the conversion of the ether to the enolether bond (plasmalogen) of ethanolamine containing glycerophosphatides. Piracetam enhances the formation of ethanolamine-plasmalogen from the corresponding ether lipid by neuronal microsomes and thus resembles the action of cytochrome b5. The addition of antibody against cytochrome b5 was able to inhibit the piracetam-dependent stimulation of the plasmalogen biosynthesis. Thus it appears that the stimulatory effect of piracetam on the formation of ethanolamine-plasmalogen is mediated by an increased synthesis or turnover of cytochrome b5.
Following upon previous studies on the lipid composition of the developing human brain, a further study is presented with the main object of tracing the chemical changes underlying the period of brain 'growth spurt'. Gangliosides and plasmalogens were selected as approximate markers of synaptogenesis and myelination, respectively, and these lipids were compared in cerebrum and cerebellum to establish the time, if any, at which their rate of accretion increases in a significant way. In the forebrain the rate of increase in concentration of these lipids accelerated at about the 32nd week of gestational age. Although there were too few postnatal cases to draw very firm conclusions, it seemed that the ganglioside concentration levelled off at about two months postnatal age and that the plasmalogen concentration reached a plateau between the 4th and the 6th postnatal months. In the cerebellum the concentration of gangliosides was clearly lower than that in the forebrain until about one year of age, the maximum rate of increase occurring between the last weeks of gestation and the second postnatal month. The plasmalogen concentration was somewhat higher in the cerebellum than in the forebrain but the concentration profile was similar to that followed by the gangliosides. In clear contrast with the concentration profiles in the cerebrum, in the cerebellum both lipids apparently continued to increase up to the second postnatal year. A mainly perinatal period of vulnerability is suggested for the forebrain, and a more prolonged one (probably until the second year of life) for the cerebellum.
Ethanolamine plasmalogens (1-alk-1'-enyl-2-acyl-sn-glycero-3-phosphoethanolamines) of many tissues contain high levels of arachidonate at their 2-position, and in certain tissues have been implicated as possible donors of arachidonate required in the synthesis of prostaglandins and thromboxanes. In the present study, [3H]arachidonate-labeled phospholipids of HSDM1C1 cells, a cell line derived from a mouse fibrosarcoma, were examined to determine the donor of the arachidonic acid released upon bradykinin stimulation of the synthesis of PGE2. HSDM1C1 cells labeled with [3H]arachidonic acid for 24 hr in serum-free medium were used in most of the experiments and had the following distribution of label among the cellular lipids; phosphatidylcholine (33%), phosphatidylinositol (20%), diacyl-sn-glycero-3-phosphoethanolamine (15%), ethanolamine plasmalogen (15%), and less polar lipids )16%). Bradykinin treatment stimulated a rapid hydrolysis of [3H]arachidonate from the cellular lipids and conversion of the released acid to PGE2, which was secreted into the medium. The label was released predominantly from phosphatidylinositol and possibly from phosphatidylcholine with no detectable change in the labeling of diacyl- or 1-alk-1'-enyl-2-acyl-sn-glycero-3-phosphoethanolamine. The ethanolamine plasmalogens, therefore, do not appear to be involved in the stimulated release of arachidonate in the HSDM1C1 cells. Indomethacin blocked the bradykinin-stimulated synthesis of PGE2 and to a lesser degree inhibited the release of [3H]arachidonate from the cellular lipids into the medium.
By the use of the Langendorff technique, surviving isolated rat hearts were perfused with [1-14 C] palmitate, [1-14C] hexadecanol or [1-14C,1-3H] hexadecanol under normal or anoxic conditions. After perfusion for 30min with either precursor, when oxygenated or in an hypoxic condition, or when 1mM-KCN was included in the system, the heart tissues showed no significant chemical changes in their content of total lipids, total phospholipids or total ethanolamine-containing phospholipids. Changes were observed in the ratio of alkyl-to alk-1-enyl-glycerophosphorylethanolamine in the tissue perfused with N2+CO1 plus CN-. A slight increase from 4.0+/-0.3 to 4.9+/-0.2% in alkyl derivatives and a decrease from 11.2+/-0.4 to 9.4+/-0.3% in alk-1-enyl derivatives was observed. The incorporation of the [14C] palmitate and the [14C] hexadecanol into the recovered phospholipids and plasmalogens was severely decreased in the tissues perfused with CN-: in the hypoxic state only a mild inhibition was observed compared with the oxygenated systems. Considerable 3H from [1-14C, 1-3H] hexadecanol was retained (25-35%) in the alk-1-enylether chains of plasmalogens under both the oxygenated conditions and with CN-, suggesting that the same mechanism of incorporation is operational at high or low O2 concentrations. The results are consistent with an O2-dependent, CN-sensitive step in the biosynthesis of plasmalogens in the rat heart.
The terminal step during aerobic plasmalogen biosynthesis is catalyzed by a microsomal desaturase system which converts 1-O-alkyl-2-acyl-sn-glycerophosphoethanolamine to 1-O-alk-1'-enyl-2-acyl-sn-glycerophosphoethanolamine (ethanolamine plasmalogen). The reaction depends on oxygen and NAD(P)H and is stimulated 3-10-fold by soluble activating factors contained in the 100 000 X g supernatant. Two stimulating proteins have been isolated from pig kidney; the partially purified proteins have identical molecular weights (27 000) but differ in their respective isoelectric points (protein I, 5.1 and protein II, 4.9). Both proteins behave identically in the biochemical studies conducted. Exogenous substrate binds to the stimulating proteins; the transfer of ethanolamine, but not of choline phospholipids, from liposomes to microsomes is enhanced by the stimulating proteins. They stimulate plasmalogen synthesis from either exogenous or endogenous substrate (synthesized from alkylglycerophosphoethanolamine by microsomal transacylases). The stimulating proteins have no enzymatic activity themselves; it is suggested that they affect events within the membrane and function as specific mediators between the membrane-bound enzyme system and the lipophilic substrate.
A relatively nonpolar unidentified phospholipid (phospholipid X) , isolated from the gram-negative marine bacterium MB 45, was characterized both chromatographically and by chemical analysis. Phospholipid X was shown to be an acidic phospholipid without vicinal hydroxyl, free-amino, or amide groups. The presence of O-alkenyl groups was indicated by a positive reaction for plasmalogen. Mild alkaline methanolysis of phospholipid X yielded only glycerophosphoryglycerol as the derivative. Acetolysis produced only diacyl-glycerol monoacetate. Clevage of O-alkenyl chains by methanolic hydrochloride resulted in the formation of three lyso derivatives. It was estimated that 18.2% of phospholipid X was plasmalogen. From these data, together with chromatographic comparisons with standards, infrared spectra, a molecular weight estimation, and the determination of the glycerol-phosphate-acyl ester ratio, it was concluded that phospholipid X was bisphosphatidic acid mixed with its plasmalogen analogues.
Plasmalogens have been determined in blood plasma, arterial and myocardial tissue of rats intubated with an atherogenic diet (vitamin D2 + cholesterol). These lipids are significantly decreased in arterial tissue after the administration of these substances for 5 consecutive days. Folic acid involved in the synthesis of plasmalogens and a powerful inhibitor of xanthine oxidase, on the contrary, increases enormously the concentration of plasmalogens in arterial tissue even with an atherogenic diet.
The biosynthesis of 1-alk-1'-enyl-2-acyl-sn-glycero-3-phosphoethanolamine (ethanolamine plasmalogens) was studied using 1-[1-14C]hexadecyl-sn-glycero-3-phosphoethanolamine as the substrate and EDTA-washed microsomes from brains of 14-day-old rats. It was found that the 1-E11-14C]hexadecyl-sn-glycero-3-phosphoethanolamine was first acylated to form 1-[1-14C]hexadecyl-2-acyl-sn-glycero-3-phosphoethanolamine, then was desaturated to form 1-[1-14C]hexadec-1'-enyl-2-acyl-sn-glycero-3-phosphoethanolamine. The desaturation required O2 and NADH or NADPH and was inhibited by KCN but not by CO. The data indicated that the desaturation is carried out by a mixed-function oxidase system similar to that involved in the desaturation of fatty acids and that the pathway for the biosynthesis of plasmalogens in brain is similar to that previously found in other tissues. The desaturase was not stimulated by ATP and Mg2plus nor inhibited by EDTA. The specific activity of microsomes from brains of rats of different ages was determined; the activity decreased with age until in adults the activity was only 15% that of the 12--14-day-old rats.
The polar lipids of Anaeroplasma contained 33.1 percent alk-1'-enyl glyceryl ether (plasmalogen) form. Phosphatidylglycerol was the major polar lipid (55.2 percent) and contained nearly all of the plasmalogen. The alk-1'-enyl glyceryl ether form accounted for 58.3 percent of the phosphatidylglycerol.
1-O-[1'-14C]Hexadecyloxyethyl rac-glycerol was administered to 18-day-old rats by intracerebral injection, and incorporation of radioactivity into the brain lipids was determined after 6, 24 and 48 h. Some of the substrate was catabolized by oxidative cleavage of either of the two ether bonds. Cleavage in the hexadecyloxyethyl moiety yielded labeled palmitic acid, whereas oxidative cleaveage of the glycol glycerol ether bond produced O-hexadecyl glycolic acid. The substrate was also incorporated as such into both ethanolamine and choline phospholipids. Evidence is presented for the desaturation by rat brain of 1-O-hexadecyloxyethyl-2-acyl-sn-glycero-3-phosphoethanolamine to the plasmalogen analogue, while the corresponding choline phospholipid was not desaturated.
The uptake of 14C labelled alkyl chains into the alkenyl chains of plasmalogens was estimated 12, 24, 48 and 72 h after intracerebral administration of different substrates to 14 day-old rats We used as substrates 1-[1-14C] alkyl-3-sn-glycerophosphoethanolamines, containing in the 2-position of the glycerol residue a stearoyl (substrate I), an oleoyl (II), an archidonoyl (III), a 4, 7, 10, 13, 16, 19-docosahexaenoyl (IV) or no acyl residue (substrate V, so-called lysoether phosphatide). 1) If the fatty acid in the 2-position of the substrate is a saturated one (as in experiment I), the recovery of radioactive alkyl chains is relatively high, but their desaturation is very slow and seems not to reach its maximum even after 72 h. 2) If a substrate with an unsaturated fatty acid in the 2-position is applied, the number of radioactive chains (alkyl plus alkenyl) depends on the chain length and/or the number of double bonds in the fatty acids. The desaturation of the alkyl chains, however, reaches its maximum about 48 h after application (except for substrate IV). 3) Not only is the recovery of radioactivity in the glycerophosphoethanolamine lipids by far the highest in experiment V at any time, but also the total activity of the alkenyl chains has already reached a maximum 24 h after application.
In this study, we demonstrate the presence of a unique membrane-associated transacetylase that transfers the acetate group from platelet-activating factor (PAF) to lysoplasmalogen (in the presence of EDTA and sodium acetate) with the formation of 1-alk-1-enyl-2-acetyl-sn-glycero-3-phosphoethanolamine (alk-1-enylacetyl-GPE). The identity of alk-1-enylacetyl-GPE was confirmed by acid hydrolysis, phospholipases A2 or C treatment and derivatization by fluorodinitrobenzene. The transacetylase has no requirement for Ca2+, Mg2+, or CoA and a broad pH optimum (7.0-8.0) with Km values of 12.0 microM for PAF and 106.4 microM for lysoplasmalogens. The enzyme activity from the isolated membrane fraction is not changed when whole cells are supplemented with 20:4, induced to differentiate into granulocytes, or treated with ionophore A23187. Radyllyso-sn-glycero-3-phosphocholine (GPC), radyllyso-GPE, acyllyso-sn-glycero-3-phosphoserine (GPS), acyllyso-sn-glycero-3-phosphoinositol (GPI), alkyllyso-sn-glycero-3-phosphate (GP), acyllyso-GP, or cis-9-octadecen-1-ol can also serve as acetate acceptors, whereas alkylglycerol, acylglycerol, or cholesterol are inactive. Differences in substrate acceptor specificity, sensitivity toward phenylmethylsulfonyl fluoride, and response to temperature suggest that the CoA-independent transacetylase and the CoA-independent transacylase that transfers long-chain acyl moieties are two separate enzymes. With intact differentiated HL-60 cells, [3H]acetate from [3H]PAF can be incorporated into alk-1-enylacetyl-GPE in the presence of ionophore A23187, but not in its absence. Moreover, phospholipase A2 inhibitors (p-bromophenacyl bromide and mepacrine) block the transacetylation process in whole cell system. These results indicate the production of alk-1-enyllyso-GPE is a rate-limiting factor for the subsequent transacetylation step during cell activation. We conclude that the transacetylase may participate in the biosynthesis of ethanolamine plasmalogen and acyl analogs of PAF, in vivo, fine-tuning of PAF biological responses, and cross-talk between de novo and remodeling pathways of PAF biosynthesis.
Studies have been made on the composition of fatty aldehydes of plasmalogen form of ethanolamine phospholipid in the brain of 28 fish species (13 cartilaginous and 15 teleost species, exhibiting different level of organization of the nervous system, marine and freshwater, dwelling in different habitats), as well as in the brain of other vertebrates. It was found that in all primitive species of cartilaginous fish high degree of unsaturation of fatty aldehydes is observed; in higher species the degree of unsaturation is much lower. The highest degree of unsaturation of fatty aldehydes was demonstrated for abyssal species of cartilaginous and teleost fishes. In warm-water species which dwell in the upper layers, unlike all other fishes investigated, almost all fatty aldehydes are saturated. The ratio of unsaturated and saturated fatty aldehydes in fish brain depends on the entity of phylogenetic and ecological factors. Studies on other vertebrates show that in warm-blooded animals saturated fatty aldehydes predominate, whereas in cold-blooded-unsaturated ones are more abundant.
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