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A Arce

Publications and source records attributed to A Arce.

At least 73 records · Page 4Linked to original sources

Determination of the membrane-buffer partition coefficient of flunitrazepam, a lipophilic drug.

The partition coefficient (P) of a benzodiazepine, flunitrazepam (FNTZ), was determined in a synaptosomal membrane/buffer system. A two component model was used, one of the components reflecting the drug partitioning into the membrane, and the other the amount of drug in the aqueous phase retained by the pellet after the centrifugation. The quantity of [3H]FTNZ measured as nonspecifically bound to the membrane includes both components so, the second one had to be discounted and in order to determined its magnitude a parallel experiment was performed using a non-partitioning hydrophilic drug (gamma-[3H]aminobutyric acid, [3H]GABA). The assay required previous determination of the fraction of the total volume of the incubation system that corresponded to membrane (fm). The fm value was calculated from the density value (delta) determined by a picnometer method. The results obtained were: delta = 1.66 +/- 0.02; fm = (1.6 +/- 0.2) 10(-3); P = 18.5 +/- 0.8. This P value could explain nonspecific effects of BZDs on some functions of the neuronal membrane.

Animals↗

GABA interaction with lipids in organic medium.

The interaction of 3H-GABA (gamma-aminobutyric acid and 14C-glutamate with lipids in an aqueous organic partition system was studied. With this partition system 3H-GABA and 14C-glutamate were able to interact with sphingomyelin, sulfatide, phosphatidylcholine, phosphatidylserine, phosphatidylethanolamine and phosphatidic acid but not with cholesterol or ceramide. In an homogeneous aqueous medium we could not demonstrate any interaction between 3H-GABA and lipids. The apparent dissociation constants (Kd) for 3H-GABA-lipids or 14C-glutamate-lipids interactions in organic medium were in the millimolar range and maximal charge (Bmax) between 3 and 7 moles of GABA or glutamate by mole of lipid. Amino acids such as glutamic acid, beta-alanine and glycine displaced 3H-GABA with the same potency as GABA itself; thus these results show that the interaction lacks pharmacological specificity. To detect this interaction lipid concentrations higher than 2 microM were required and in the partition system 3H-GABA and lipid phosphorus were both concentrated at the interface. Therefore lipids tested with a biphasic partition system do not fulfill the classical criteria for a neurotransmitter receptor at least not for GABA and glutamate.

Amino Acids↗

The biosynthesis of brain gangliosides. Separation of membranes with different ratios of ganglioside sialylating activity to gangliosides.

Brain subcellular fractions were analysed for ganglioside-sialylating activity by measuring the incorporation of N-[3H]acetylneuraminic acid from CMP-N-[3H]acetylneuraminic acid into endogenous ganglioside acceptors (endogenous incorporation) and into exogenous lactosyceramide (haematoside synthetase activity). The ratios of endogenous incorporation to gangliosides and of haematoside synthetase to gangliosides for the synaptosomal and mitochondrial fractions from a washed crude mitochondrial fraction were lower than those obtained for other membrane fractions. The differences appear to reflect intrinsic characteristics of each membrane fraction. The results of labelling in vitro and the time course of labelling of gangliosides of the different subcellular fractions in vivo after injection of N-[3H]acetylmannosamine are consistent with the possibility of a subcellular site for synthesis of gangliosides different from that of ganglioside deposition.

Animals↗

Incorporation of sialyl groups into a brain unidentified compound with lipophilic properties.

Lactosylceramide (I), galactosylceramide (II) and lipids extracted from rat brain with methanol (III) were assayed as AcNeu acceptors from CMP-[3H] AcNeu. Rat brain microsomes in 3.2% Triton CF54 or the 100 000 g supernatant of these microsomes were used as enzyme source. For quantification of reaction products two methods were used: a) precipitation with a TCA-PTA reagent followed by extraction of the precipitate with C:M (2:1) ; b) extraction with C:M (2:1) and partition by Folch's method without salt; radioactivity was measured in the washed lower phase. No incorporation into II was detected. Using method a), incorporation into I and III was obtained. It was also found that 35% of the activity toward I and 65% of that toward III was solubilized. Using method b) of quantification, radioactivity was found in the lower phase when III was the acceptor. The product of sialylation of III was soluble in ether. Run in a column of Sephadex LH20 was eluted with chloroform in the same fraction in which a proteolipid fraction was eluted. The possibilities that the compound is either a proteolipid protein or a glycopeptide containing sialic acid are discussed.

Animals↗

Rat brain microsomal gangliosides. Accessibility to a neuraminidase preparation and the possible existence of different pools in relation to their biosynthesis.

1. Treatment of rat brain microsomal membranes with a neuraminidase preparation from Clostridium perfringens resulted in an almost complete conversion of polysialogangliosides into monosialogangliosides. 2. Neuraminidase treatment of the membranes did not increase the incorporation of N-[(3)H]acetylneuraminic acid from CMP-N-[(3)H]acetylneuraminic acid into the gangliosidic fraction, indicating that a monosialoganglioside is an acceptor of N-acetylneuraminic acid in these membranes only if, in addition to having the right chemical structure, it is in a proper position, probably in relation to the endogenous sialyltransferases. 3. These experiments also indicated that no independent turnover of the neuraminidase-labile N-acetylneuraminyl groups of gangliosides occurred in vitro. 4. N-[(3)H]Acetylneuraminic acid from endogenous polysialogangliosides labelled in vitro was released by neuraminidase at a slower rate than N-acetylneuraminic acid from unlabelled gangliosides of the same membranes. From this it was concluded that recently synthesized polysialogangliosides (completed in vitro) are in the membranes in a position less accessible to neuraminidase than are those synthesized earlier which were present in the membranes at the start of the labelling experiment.

Animals↗

The biosynthesis of gangliosides. The incorporation of galactose, N-acetylgalactosamine and N-acetylneuraminic acid into endogenous acceptors of subcellular particles from rat brain in vitro.

Gangliosides bound to subcellular particles from rat brain were labelled by incubation of the particles (i) with CMP-N[(3)H]-acetylneuraminic acid and (ii) simultaneously, with CMP-N[(3)H]-acetylneuraminic acid and UDP-N-acetyl-[(14)C(1)]galactosamine or with CMP-N[(3)H]-acetylneuraminic acid and UDP-[U-(14)C]-galactose. Analysis of the labelled gangliosides showed that in (i), (a) the labelling was mostly in the neuraminidase-labile sialyl groups, (b) rigid relationships exist between the enzymes and the sialyl acceptors; the enzymes are not free to interact with all the specific substrates present in the preparation and (c) the precursor of the trisialoganglioside was the major disialoganglioside with a sialyl 2-->8 sialyl group. In (ii), (a) precursor-product relationships between the main pools of each ganglioside apparently do not exist, (b) for the labelling of Tay-Sachs ganglioside the amount formed from hematoside was at least 2.5 times that from aminoglycolipid and (c) the major monosialoganglioside was the precursor for the major disialoganglioside with a sialyl 2-->8 sialyl group.

Animals↗

The biosynthesis of gangliosides. Labelling of rat brain gangliosides in vivo.

1. After injection of [6-(3)H]glucosamine into 8-day-old rats it was found that all the major brain gangliosides and their sialyl groups were labelled at essentially the same rate, except the hematoside, which was the least labelled. In 18-day-old rats it was found that the two major gangliosides with the sialyl (2-->8)-sialyl linkage, and their sialyl groups were more labelled than the hematoside, the Tay-Sachs ganglioside, the other two major gangliosides and their respective sialyl groups. 2. No difference was found in any of the cases studied between the specific radioactivities of the neuraminidase-resistant and -labile sialyl groups belonging to the same ganglioside. The same was found for the specific radioactivities of the galactosyl groups proximal and distal to the ceramide moiety of total brain gangliosides from rats injected with [U-(14)C]glucose. From this it was concluded that partial turnover of the ganglioside molecule does not occur. 3. A model for the synthesis of gangliosides is presented that accounts for results from previous experiments in vitro and the lack of precursor-product relationships observed in experiments in vivo.

Animals↗