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Biomedical subjects

J Fauvel

Publications and source records attributed to J Fauvel.

49 records · Page 3Linked to original sources

Lipocortin-like anti-phospholipase A2 activity of endonexin.

Endonexin (protein II, 32.5 kDa) has been purified to homogeneity from bovine liver in the following steps: selective extraction by EGTA from membranes precipitated with Triton X-100/calcium; chromatography on DEAF-TSK 545 at pH 7.0, endonexin being eluted at 0.1 M NaCl; affinity chromatography on polyacrylamide-immobilized phosphatidylserine; gel filtration on TSK 3000. The amino acid composition was essentially similar to that previously reported. Using [3H]oleic acid-labelled Escherichia coli membranes as substrate, endonexin inhibited phospholipase A2 from pig pancreas. Maximal inhibition was 55 and 70%, whereas 50% inhibition occurred at 480 and 120 nM endonexin and lipocortin II, respectively. These data could be related to common features shared by both lipocortins/calpactins and endonexin, i.e. the presence of a consensus sequence and the ability to bind to anionic phospholipids in a calcium-dependent manner.

Amino Acid Sequence↗

Intestinal absorption of ester and ether glycerophospholipids in guinea pig. Role of a phospholipase A2 from brush border membrane.

In vivo intestinal perfusion was used to follow the absorption of three different choline glycerophospholipids (CGP) in guinea pig. These included 1-[3H]palmitoyl-2-acyl-sn-glycero-3-phosphocholine (diacyl-GPC), 1-[3H]-O-hexadecyl-2-acyl-sn-glycero-3-phosphocholine (alkylacyl-GPC) and 1,2-di-O-hexadecyl-sn-glycero-3-phospho-[3H]-choline (dialkyl-GPC). About 80% of diacyl-GPC was absorbed within 4 hr, compared to 60% of alkylacyl-GPC and 30% of dialkyl-GPC. The radioactivity disappearing from the perfusion fluid was recovered in intestinal lipids, mostly triacylglycerol, free fatty acid and CGP from diacyl-GPC, CGP from alkylacyl-GPC and dialkyl-GPC. These results indicated that the nonhydrolyzable substrate dialkyl-GPC was much less absorbed, whereas diacyl-GPC, which released over 80% of [3H]palmitic acid in the perfusion fluid, displayed the highest absorption rate. The intermediate picture observed for alkylacyl-GPC suggested the possible involvement of a phospholipase A2, which was detected in the entire intestinal tract. This enzyme was further found to concentrate in villus cells, where it is localized in the brush border membrane, as shown using two different subcellular fractionation procedures. These data suggest a possible role of this new enzyme in the digestion of alimentary phospholipids.

Alkaline Phosphatase↗

Biochemical characterization of plasma membranes and intracellular membranes isolated from human platelets using Percoll gradients.

Two kinds of membranes (plasma membranes and intracellular membranes) have been separated from human platelets by fractionation on Percoll gradients (successively at pH 7.4 and pH 9.6). On alkaline Percoll gradient, plasma membranes floated at low density, as shown with specific markers such as [3H]concanavalin A and monoacylglycerol lipase, whereas intracellular membranes sedimented in the higher densities and displayed a 5.6-12.4-fold enrichment in NADH diaphorase, antimycin insensitive NADH-cytochrome-c oxidoreductase and Ca2+-ATPase. Another criterion allowing differentiation of two membrane populations of human platelets was their lipid composition, which showed a cholesterol/phospholipid molar ratio of 0.5 in plasma membranes against 0.2 in intracellular membranes. Phospholipid analysis of the two kinds of membranes displayed also quite different profiles, since phosphatidylcholine increased from 30-32% in the plasma membrane to 52-66% in the intracellular membranes. This was at the expense of sphingomyelin (20-23% in plasma membrane, against 6.8-7.7% in intracellular membranes) and of phosphatidylserine (12-13% in plasma membrane, against 2-6% in intracellular membranes). Other striking differences between plasma membranes and intracellular membranes were obtained by SDS-polyacrylamide gel electrophoresis, which revealed the absence of actin and myosin in the intracellular membrane, whereas both proteins were present in significant amounts in plasma membranes. Finally, intracellular membranes but not plasma membranes were able to incorporate calcium. These results suggest that intracellular membrane fractions are derived from the dense tubular system and plasma membranes should correspond to the whole surface membrane of human platelets.

Blood Platelets↗

Relationship between phospholipid metabolism and intracellular calcium mobilization during platelet activation.

This paper reviews some of our most recent studies concerning the relationship between phospholipid metabolism and calcium mobilization in thrombin-stimulated platelets. Evidence is provided that phospholipase C activation does not require any increase in cytoplasmic calcium but is subsequent to a yet unknown membrane modification rendering the substrate accessible to the enzyme upon thrombin-receptor binding. In contrast, the much higher calcium dependence of phospholipase A2 led us to conclude that cytoplasmic free calcium might increase to in excess of 1.6 microM even in the absence of external calcium. This is supported by our estimation that calcium is present in dense tubular system in rather large excess, as measured on purified vesicles derived from this organelle. We thus suggest that the level of inositol-1,4,5-tris-phosphate is rate limiting in the process of calcium mobilization which implies that calcium influx through the plasma membrane might become a critical event with weak agonist poorly activating phospholipase C.

Aminoquinolines↗

Studies on enzymes related to diacylglycerol production in activated platelets. II. Subcellular distribution, enzymatic properties and positional specificity of diacylglycerol- and monoacylglycerol-lipases.

The subcellular distribution of diacylglycerol- and monoacylglycerol-lipases has been studied in human platelets. Using a fractionation procedure on Percoll gradient (Perret, B., Chap, H. and Douste-Blazy, L. (1979) Biochim. Biophys. Acta 556, 434-446), the enzyme activity displayed the same profile as that of [3H]concanavalin A, a plasma membrane marker. This result was confirmed with highly purified platelet plasma membranes prepared by adsorption onto polyethylenimine-bonded polyacrylamide beads (Kinoshita, T., Nachman, R.L. and Minick, R. (1979) J. Cell Biol. 82, 688-696). Studies with isolated membranes or crude homogenate revealed that the enzyme requires calcium or magnesium and displays an optimal pH of 6.2, showing that it is able to hydrolyse diacylglycerol under conditions where phosphatidylinositol-specific phospholipase C is fully active. Using diacylglycerol labelled in the 1- or 2-position, it was found that the two fatty acids are released at the same rate, which is supported by the lack of monoacylglycerol accumulation and by the observation that monoacylglycerol is hydrolysed at a 20-fold faster rate than diacylglycerol. Increasing concentrations of Mg-ATP promote the conversion of diacylglycerol into phosphatidic acid by diacylglycerol kinase, but only high concentrations become inhibitory for diacylglycerol lipase. These results are discussed in the light of our former hypothesis that arachidonic acid release from platelet phospholipids might occur through the sequential action of a phosphatidylinositol-specific phospholipase C coupled to a diacylglycerol lipase (Mauco, G., Chap, H., Simon, M.F. and Douste-Blazy, L. (1978) Biochimie 60, 553-561). The possible role of this enzyme in the regulation of the activity of protein kinase C is also emphasized.

Blood Platelets↗

Studies on ether phospholipids. I. A new method of determination using phospholipase A1 from guinea pig pancreas: application to Krebs II ascites cells.

A new method for ether phospholipid analysis has been devised, based on the selective destruction of diacyl phospholipids by guinea pig phospholipase A1 and of plasmalogens by acidolysis. The paper describes optimal conditions allowing a specific degradation of diacyl phospholipids by the enzyme(s). This requires the incubation of a total lipid extract in the presence of 2.4 mM sodium deoxycholate, at pH 8.0, at a temperature of 42 degrees C. As shown with various radioactive markers, all the diacyl phospholipids become degraded, whereas sphingomyelin and ether phospholipids remain refractory to phospholipase A1 attack. Phospholipids are then separated by a bidimensional thin-layer chromatography involving the exposure of the plates to HCl fumes between the two runs, in order to hydrolyse plasmalogens. Selectivity of both hydrolytic procedures is further demonstrated upon analysis of acetyl diacylglycerol derived from phospholipids. Various phospholipids can thus be determined by phosphorus measurement using sphingomyelin as an internal standard. By this way, it is shown that Krebs II cells present a very high content of ether phospholipid species (around 25% of total). Among these, about 50% are alkyl forms in ethanolamine phosphoglycerides, whereas this value reaches 70% in choline phosphoglycerides.

Animals↗

Studies on ether phospholipids. II. Comparative composition of various tissues from human, rat and guinea pig.

The ether phospholipid composition of various tissues (brain, heart, lung, liver, kidney, testis, erythrocytes and plasma) has been investigated in human, rat and guinea pig, using a new method of determination (El Tamer, A., Record, M., Fauvel, J., Chap, H. and Douste-Blazy, L. (1984) Biochim. Biophys. Acta 793, 213-220). This is based on the selective removal of diacyl phospholipid species by phospholipase A1 degradation followed by acidolysis of the plasmalogens. Our results fit rather well with other literature data available for human and rat tissues, illustrating the good reliability of the method. Among various differences noted between the three mammalian species, guinea pig is characterized by a relatively higher content of 1-alkyl-2-acyl-sn-glycero-3-phosphocholine (alkylacyl-GPC) and of ethanolamine plasmalogens in blood plasma. Alkylacyl-GPC, a putative precursor of platelet activating factor (PAF-acether or 1-alkyl-2-acetyl-GPC), is also more abundant in guinea pig lung and in human kidney. This study also revealed a striking parallelism between the tissue content of alkylacyl-GPC and alkylacyl-GPE (1-alkyl-2-acyl-sn-glycero-3-phosphoethanolamine). This new observation is discussed in relation to a possible metabolic link between these two phospholipids.

Animals↗

Substrate specificity of two cationic lipases with high phospholipase A1 activity purified from guinea pig pancreas. I. Studies on neutral glycerides.

The substrate specificity of two cationic lipases with high phospholipase A1 activity purified from guinea pig pancreas has been tested towards various neutral glycerides. Triolein hydrolysis proceeded in the absence of di- and monoolein accumulation. Optimal conditions for di- and monoolein hydrolysis included an alkaline pH (9-10), a substrate concentration of 10 mM, and the presence of sodium deoxycholate (12 and 24 mM, respectively). Pancreatic colipase (bovine) had no effect on the activity of the two lipases. The comparison between the rates of hydrolysis of various substrates revealed the following order of decreasing enzyme activity: diolein greater than 1(3)-monoolein greater than tributyrin = triacetin greater than or equal to triolein = 2-monoolein. No hydrolysis of p-nitrophenylacetate and cholesteryloleate could be detected. Using 1-[3H]palmitoyl-2-[14C]linoleoyl-sn-glycerol, both enzymes displayed a strong preference for the 1-position, leading to the accumulation of 2-[14C]linoleoyl-sn-glycerol. Identical activities were found for the two lipases. It is concluded that the two cationic lipases from guinea pig pancreas represent a unique group of lipolytic enzymes different from other previously described enzymes, including classical pancreatic lipase, gastric and lingual enzymes, mold lipases and carboxylesterhydrolase.

Animals↗

Substrate specificity of two cationic lipases with high phospholipase A1 activity purified from guinea pig pancreas. II. Studies on glycerophospholipids.

The substrate specificity of two cationic lipases with high phospholipase A1 activity purified from guinea pig pancreas has been tested towards various natural and synthetic phospholipids. Natural glycerophospholipids carrying a 1-acyl-bond were degraded in the following order of decreasing activity: phosphatidylcholine = phosphatidylinositol greater than 1-acyl-sn-glycero-3-phosphocholine greater than phosphatidylethanolamine greater than phosphatidylglycerol. Sodium deoxycholate was an activator with all the phospholipids tested, each one requiring its own optimal concentration of detergent. Whereas 1-alkyl-2-acyl-sn-glycero-3-phosphocholine remained fully insensitive to enzyme degradation, 2-acyl-sn-glycero-3-phosphocholine was hydrolysed to some extent. However, additional experiments involving time-course hydrolysis revealed that this was entirely due to the migration of the 2-acyl-chain to the sn-1 position. From studies using racemic or enantiomeric phosphatidylcholines, it was concluded that the enzymes are not stereospecific. Activity against 1-acylpropanediolphosphocholine was much lower than with 1-acyl-sn-glycero-3-phosphocholine, indicating that the 2-hydroxyl group (or the 2-acyl-ester group) participates in the substrate reactivity through a strong inductive effect. Some activity could be detected against 1,3-diacylglycero-2-phosphocholine (beta-phosphatidylcholine) and 1-acylglycol-2-phosphocholine. It is thus concluded that the failure of the lipases to hydrolyse the 2-acyl-bond in a natural phospholipid is due to the steric hindrance brought about by the acyl, alkyl or hydroxyl group present in the sn-1 position. The lipases might also be unable to hydrolyse acyl-ester bonds involving a secondary alcohol.

Animals↗

Evidence for the lack of classical secretory phospholipase A2 in guinea-pig pancreas.

Several lipolytic enzymes from guinea-pig pancreas have been determined in a soluble extract and in a purified zymogen granule fractions. The positional specificity of phospholipolytic enzymes was detected using phospholipids bearing various radioactive labels. It is shown that guinea-pig pancreatic extracts are able to release both fatty acids from phosphatidylcholine, but with more efficiency towards the fatty acid occupying the 1-position of sn-glycerol. Evidence is given that guinea-pig pancreas lacks the classical secretory phospholipase A2 and that phospholipid digestion is achieved through the sequential action of phospholipase A1 and lysophospholipase.

Animals↗

Purification of two lipases with high phospholipase A1 activity from guinea-pig pancreas.

1. Two cationic lipases (Ia and Ib) were purified from homogenates of fresh guinea-pig pancreas by ion-exchange chromatography on DEAE-Sepharose and CM-Sepharose (twice for the latter) followed by gel filtration on Sephadex G-100. 2. Both enzymes were homogeneous upon polyacrylamide gel electrophoresis. Their molecular weights are 37,000 and 42,000 for lipases Ia and Ib, respectively, as determined by gel filtration on Sephadex G-100. Very close values for isoelectric points were found in the pH range 9.3-9.4. 3. The cationic lipases are characterized by a high phospholipase A activity (500 IU/mg protein using a potentiometric assay with egg yolk lecithin as substrate), resulting in an unusual phospholipase/lipase activity ratio of 1. 4. Using doubly labelled phosphatidylcholine, a specificity, A1, was described for the two enzymes, which are unaffected by N-ethylmaleimide, diisopropylfluorophosphate and p-bromophenacylbromide. The enzymes are insensitive to EDTA and slightly inhibited by CaCl2 and MgCl2, whereas sodium deoxycholate is required for maximal activity.

Animals↗

Studies on the substrate specificity of a carboxyl ester hydrolase from human pancreatic juice. I. Action on carboxyl esters, glycerides and phospholipids.

Purified carboxyl ester hydrolase (carboxylic-ester hydrolase, EC 3.1.1.1) from human pancreatic juice was found to hydrolyze triacetin, methyl butyrate and glycerides solubilized by bile salts. It has no activity on substrate presented as emulsoin or monomolecular films. The human enzyme was found to deacylate phospholipids and lysophospholipids at different rates. The hydrolysis of short-chain phosphatidylcholines was dependent of substrate solubility and dioctanoyl phosphatidylcholine was deacylated with the highest rate. Long-chain phosphatidylcholines and lysophosphatidylcholines present in microsomal membranes were deacylated with very low rates, only lysophosphatidylcholine deacylation was faster. Evidence is presented that human carboxyl ester hydrolase is the lyophosphatidyl-choline-hydrolyzing enzyme corresponding to bovine lysophospholipase. Bile salts play an important part on the activity of human carboxyl ester hydrolase, in addition to the role of detergent that they have on insoluble substrates.

Bile Acids and Salts↗