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Biomedical subjects

M Mourelle

Publications and source records attributed to M Mourelle.

At least 55 records · Page 3Linked to original sources

CCl4-induced lipoperoxidation triggers a lethal defect in the liver plasma membranes.

Loss of calcium regulation across the plasma membrane of hepatocytes is responsible for irreversible cell damage by CCl4. The mode of action of colchicine in CCl4 acute liver damage is not completely understood. We followed the time courses of the changes in lipoperoxidation, the activities of liver plasma membrane Ca2(+)-ATPase, gamma-glutamyl transpeptidase and alkaline phosphatase, as well as the time courses of serum markers of liver damage in rats acutely intoxicated with CCl4. We assessed the effects of colchicine in this model and evaluated the effect of this drug on liver cytochrome P-450. Increased lipoperoxidation is the earliest and shortest lasting effect of CCl4 in the liver and is followed by a decrease in the activities of plasma membrane-bound enzymes. The alterations in serum enzymes showed a slower onset and were more protracted. Colchicine pretreatment produced a small decrease in cytochrome P-450 in the liver but completely prevented most of the changes produced by CCl4 in lipoperoxidation, liver plasma membrane enzyme activities and serum enzyme activities. We conclude that CCl4 metabolites trigger lipoperoxidation and then produce a longer lasting change in the plasma membrane, which thus allows calcium accumulation. Colchicine prevents the early mechanisms of CCl4 damage, and its effect on cytochrome P-450 perhaps plays only a contributory role.

Animals↗

Prevention by silymarin of membrane alterations in acute CCl4 liver damage.

The effect of silymarin on liver lipid peroxidation and membrane lipid alterations induced by an acute dose of CCl4 was studied. Four groups of animals were treated with CCl4, CCl4 + silymarin, silymarin and its vehicles. CCl4 was given orally (0.4 g 100 g-1 body wt.) and silymarin was administered i.p. All animals were sacrificed 24 h after the treatments. Liver lipid peroxidation was measured and plasma membranes were isolated. Alkaline phosphatase (AP) and gamma-glutamyl transpeptidase (GGTP) were measured in plasma membranes. Membrane lipids were extracted and then analysed by thin-layer chromatography by measuring the phosphorus of the phospholipids in each spot. Liver lipid peroxidation was increased about three times in the group receiving CCl4 only. Silymarin cotreatment prevented this increase. Phosphatidylethanolamine (PEA) decreased, while phosphatidylinositol (PI) increased in the plasma membranes isolated from the CCl4-treated group. Animals that received CCl4 + silymarin showed no decrease in PEA content. A partial prevention of the decrease in phosphatidylinositol content was also observed in plasma membranes of animals treated with silymarin in addition to CCl4. CCl4 decreased gamma-glutamyl transpeptidase (GGTP) and alkaline phosphatase (AP) membrane activities. Silymarin cotreatment prevented the AP (completely) and the GGTP (partially) falls caused by CCl4. Silymarin by itself increased AP membrane activity. A significant relationship between the membrane content of phosphatidylethanolamine (PEA) and the AP activity was observed in plasma membranes of treated animals and in normal liver membranes enriched with PEA. These results indicate that silymarin can protect against the alterations induced by CCl4 on the liver plasma membrane through its antioxidant properties by modifying the plasma membrane phospholipid content.

Acute Disease↗

The role of membrane composition in ATPase activities of cirrhotic rat liver: effect of silymarin.

The activities of Ca2(+)- and Na+, K(+)-ATPases were studied in liver plasma membranes from CCl4-cirrhotic rats and from livers of rats treated with silymarin in addition to CCl4. CCl4 chronic treatment produced significant decreases in Na+, K(+)- and Ca2(+)-ATPase activities; however, the animals treated with silymarin along with CCl4 showed no differences in ATPase activities as compared to controls. The lipid analysis performed in plasma membranes revealed increases in the cholesterol/phospholipid (CH/PL) and sphingomyelin/phosphatidylcholine (SM/PC) ratios in the cirrhotic group. Again, the membranes isolated from rats receiving CCl4 + silymarin showed normal CH/PL and SM/PC values. Considering that CH/PL and SM/PC ratios are related to membrane microviscosity, this study suggests that a lower fluidity of the membrane may be responsible for the observed decreases in ATPase activities in the cirrhotic group. Additionally, the role of silymarin to improve liver function in CCl4-cirrhosis can be attributed partially to its action at membrane level by preventing the increases in CH/PL and SM/PC ratios.

Adenosine Triphosphatases↗

Protective effect of colchiceine against acute liver damage.

Pretreatment of rats with colchiceine (10 micrograms/day/rat) for seven days protected against CCl4-induced liver damage. CCl4 intoxication was demonstrated histologically and by increased serum activities of alanine amino transferase (ALT), alkaline phosphatase (Alk. Phosph.) gamma glutamyl transpeptidase (GGTP), bilirubins and decreased activity of glucose-6-phosphatase (G-6Pase). Furthermore, an increase in liver lipid peroxidation and a decrease in plasma membrane GGTP and Alk. Phosph. activities were found. Colchiceine increased 1.5-fold the LD50 of CCl4 and prevented the release of intracellular enzymes as well as the decrease in GGTP and Alk. Phosph. activities in plasma membranes. It also completely prevented the lipid peroxidation induced by CCl4 and limited the extent of the histological changes.

Alanine Transaminase↗

Colchicine prevents D-galactosamine-induced hepatitis.

The hepatoprotective effect of colchicine in a model of liver intoxication with galactosamine (GalN), 375 mg/kg, i.p., was studied in rats. At 0.5, 1, 3, 6, 18 and 24 h after GalN intoxication the following markers of liver damage were measured: serum activity of alanine aminotransferase, alkaline phosphatase, gamma-glutamyltranspeptidase, hepatic calcium and glycogen contents, liver lipoperoxidation, and liver plasma membrane activity of alkaline phosphatase, gamma-glutamyltranspeptidase and high-affinity Ca2+-ATPase. 24 h after GalN intoxication increases in serum levels of alanine aminotransferase, alkaline phosphatase and gamma-glutamyltranspeptidase were observed along with decreases in plasma membrane activities of alkaline phosphatase, gamma-glutamyltranspeptidase, and high-affinity Ca2+-ATPase. A sharp increase of lipoperoxidative processes measured as malondialdehyde production was also observed. Pretreatment of rats with colchicine 10 micrograms/rat/day p.o. for 7 days before GalN injection prevented partially the toxic effects of GalN. When a dose of 50 micrograms/rat/day for 7 days was given the drug prevented almost completely the damage induced by galactosamine, with the exception of glycogen and serum alkaline phosphatase that remained different from controls. Time-course experiments showed that malondialdehyde formation increased 30 min after intoxication while all other changes became apparent from 6 h after treatment, suggesting that lipoperoxidation may be a prerequisite for galactosamine-induced damage. The protection offered by colchicine was related to its capacity to inhibit lipoperoxidation. Histochemical findings paralleled the biochemical results. The possible role of lipoperoxidation in galactosamine-induced liver damage is discussed.

Alanine Transaminase↗

Prevention of CCL4-induced liver cirrhosis by silymarin.

The efficacy of silymarin treatment in preventing biochemical and histological alterations in CCL4-induced liver cirrhosis in rats was studied. Four groups of rats were treated with: (1) CCL4; (2) mineral oil; (3) CCL4 + silymarin; and (4) silymarin. All animals were sacrificed 72 h after the end of treatments. The activities of alkaline phosphatase (alk. phosp.), gamma-glutamyl transpeptidase (GGTP), glutamic pyruvic transaminase (GPT) and glucose-6-phosphatase (G6Pase), and bilirubin content were determined in serum. Na+, K+-ATPase and Ca++-ATPase activities were measured in isolated plasma membranes. Lipoperoxidation, triglycerides (TG), and glycogen contents were also measured in liver homogenates. Liver cirrhosis was evidenced by significant increases in liver collagen, lipoperoxidation, serum activities of alk. phosp., GGTP, GPT, G6Pase, bilirubin content, and liver TG. Activities of ATPases determined in plasma membranes were significantly reduced, as was liver glycogen content. Silymarin cotreatment (50 mg/kg b.wt) completely prevented all the changes observed in CCL4-cirrhotic rats, except for liver collagen content which was reduced only 30% as compared to CCL4-cirrhotic rats. Silymarin protection can be attributed to the agent's antioxidant and membrane-stabilizing actions.

Animals↗

Plasma membrane lipids modulate the response to water deprivation in rat kidney.

The lipid composition of biological membranes determines many of the cellular responses to stimuli such as hormones and drugs. It is known that the neonate has differences in renal function compared to the adult individual, which determine the characteristics of pharmacokinetics and pharmacodynamics at this age. We studied the lipid composition of renal plasma membranes, the renal response to water deprivation, and the activity of plasma membrane gamma-glutamyl transpeptidase (GGTP) in newborn, 21-d-old, and adult rat. It was found that the cholesterol/phospholipid (CH/PL) ratio of newborn membranes was significantly higher than that of membranes from 21-d-old and adult rats, which were similar. These findings paralleled low ability to concentrate urine in the newborn and higher sensitivity of the neonatal kidney to water deprivation. Kidney membranes from 21-d-old and adult rats showed similar lipid composition, and the response to water deprivation was also similar. The changes observed in GGTP activity at different ages varied with the cholesterol content of kidney plasma membranes. These findings suggest participation of the lipid composition of kidney membranes in modulation of the renal response to water deprivation.

Aging↗

Sea urchin sperm head plasma membranes: characteristics and egg jelly induced Ca2+ and Na+ uptake.

Sea urchin sperm respond to egg factors with changes in the ionic permeability of their plasma membrane. It has been previously shown that plasma membranes isolated preferentially from sea urchin sperm flagella respond to egg jelly increasing their Ca2+ and Na+ uptake (Darszon et al. (1984) Eur. J. Biochem. 144, 515-522). However, the egg jelly induced acrosome reaction occurs in the sperm head, and there is evidence for an heterogeneous distribution of plasma membrane components within the various regions of this cell. We here report a method for purifying sperm head membranes using positively charged beads according to Jacobson (1977) Biochim. Biophys. Acta 471, 331-335). Under the transmission electron microscope these membranes appeared homogeneous and apparently free of internal membranes. The yield of the preparation was 0.9% of the total protein in the sperm homogenate. The preparation contained less than 5% of the mitochondrial marker cytochrome oxidase, and 10% of the total DNA/mg protein. Surface labeling with 125I indicated a 2.5-3-fold enrichment in specific activity of the head membranes with respect to whole sperm. The SDS band pattern and the lipid composition of this preparation were different from those of isolated flagellar membranes. Phosphatidylcholine was higher in the head membranes, while phosphatidylserine and phosphatidylethanolamine were lower. The head membranes displayed a 1.7-2.3-fold higher Ca2+-ATPase activity and a 2.5-fold lower Na+/K+-ATPase activity, than the flagellar membranes. These results are consistent with a heterogeneous distribution of membrane components along the sea urchin sperm plasma membranes. Isolated head membranes sonicated in the presence of soybean phospholipid liposomes responded to egg jelly with a species-specific increase in Ca2+ and Na+ uptake. As in whole sperm, Ca2+ uptake was inhibited by the Ca2+ channel blocker nisoldipine. A close analog of this compound, [3H]nitrendipine, binds with high affinity to head membranes in a saturable, reversible manner, showing a Kd and Bmax of 31 nM and 5.3 pmol/mg protein, respectively.

Animals↗

Protection against thallium hepatotoxicity by silymarin.

The effect of silymarin (100 mg/kg i.p.) on the biochemical indicators of liver damage induced by thallium (10 mg/kg p.o.) was studied in rats. The production of malondialdehyde and the content of reduced glutathione in the liver were measured as indicators of lipid peroxidation. Thallium intoxication increased the serum activities of glutamic pyruvic transaminase, gamma-glutamyl transpeptidase, alkaline phosphatase and the liver concentration of triglycerides. Thallium decreased the activity of alkaline phosphatase and increased that of gamma-glutamyl transpeptidase in the liver cell membrane. It also abolished the membrane activity of Na+/K+ ATPase. Lipid peroxidation was enhanced by thallium as malondialdehyde production was increased and the content of reduced glutathione was decreased in the liver. Silymarin completely prevented all these changes. It is suggested that thallium toxicity is due, at least in part, to the promotion of lipid peroxidation. The membrane stabilizing effect of silymarin observed in this and in other models of liver toxicity is due to some antioxidant property, possibly related to its ability to scavenge free oxygen radicals.

Animals↗

Silymarin improves metabolism and disposition of aspirin in cirrhotic rats.

The profile of urinary salicylate metabolites was determined after an i.p. administration of acetylsalicylic acid (ASA) to CCl4-cirrhotic rats to rats which in addition to CCl4 received an oral dose of silymarin throughout the CCl4 treatment to produce cirrhosis and to control groups. ASA esterase activity was determined in serum and livers. The time course of plasma concentration of salicylates in similar groups was followed after the i.p. injection of ASA. The cirrhotic animals showed a lack of urinary glucuronides and an increase in urinary gentisic and salicylic acids. The activities of plasma and serum ASA esterase were significantly increased in cirrhosis and the plasma half-life of ASA was reduced. The simultaneous administration of silymarin (50 mg/kg of b.w.) along with CCl4, completely prevented all the alterations. The mechanism by which silymarin prevented those alterations is not completely known but our results establish the potential use of silymarin in cirrhotic patients to prevent disorders in drug metabolism and disposition frequently found in patients with liver diseases.

Animals↗

Protective effect of colchicine on acute liver damage induced by carbon tetrachloride.

Pretreatment of rats with colchicine (10 micrograms/day) for 7 days protected against CCl4-induced acute liver damage. CCl4 intoxication was demonstrated histologically and by increased serum activities of glutamic-pyruvic transaminase, alkaline phosphatase and gamma-glutamyl transpeptidase. Furthermore, an increase in liver lipid peroxidation and a decrease in plasma membrane gamma-glutamyl transpeptidase activity were found. Colchicine increased the LD50 of CCl4 2.5-fold and prevented the release of intracellular enzymes, as well as the decrease in gamma-glutamyl transpeptidase activity in the plasma membrane. It also completely prevented the lipid peroxidation produced by CCl4 and limited the extent of the histological changes. Our results suggest that the protective effect of colchicine may be mediated through its action on an early toxic event, because treatment of the animals with colchicine produced a significant decrease in CCl4-induced lipid peroxidation.

Animals↗

Lipid quantitation in formalin-fixed liver sections.

We describe a simple, sensitive, and quantitative procedure for measurement of triglycerides and protein contents in formalin-fixed liver sections. The method can detect as little as 0.27 microgram of triglycerides per mg of protein. It is based on selective binding of Sudan IV and Fast Green FCF to fat and total proteins, respectively, and their sequential elution with solvents. Sudan IV is eluted readily with acetone and Fast Green with NaOH-methanol, and the absorbances obtained at 500 and 610 nm can be used to determine the amount of triglycerides and total protein. The color equivalence for Fast Green was obtained after destaining the sections and measuring the protein contents by micro-Kjeldahl analysis. The color equivalence of Sudan IV was estimated by determining the triglyceride content in liver homogenates by an enzymatic procedure and then measuring the amount of dye bound to multiple fixed sections. There was a strong linear correlation between the triglyceride content as determined chemically and that obtained using the equivalence colors (r2 = 0.98). This method is useful to measure fat content in tissue samples and could be applied to evaluate the progression of liver disease.

Animals↗

Heterogeneity of changes on the disposition of aspirin in rats with CCl4-induced chronic liver damage.

The profile of urinary salicylate metabolites was determined after the oral administration of acetylsalicylic acid (ASA) to CCl4-cirrhotic rats, CCl4-cirrhotic rats treated with colchicine for 1 month, and control groups. The following enzymatic activities were determined: liver and plasma ASA-esterase, liver UDP-glucuronyltransferase, and liver aniline hydroxylase. The time-course of plasma concentration of salicylates in similar groups was followed after the intraperitoneal administration of salicylic acid (SA) or gentisic acid (GA). The cirrhotic animals showed a lack of urinary glucuronates and an increase in urinary gentisic and salicylic acids. The activities of plasma and liver ASA-esterases were increased significantly in cirrhosis, whereas aniline hydroxylase was reduced and UDP-glucuronyltransferase remained unchanged. The plasma half-lives of salicylates were reduced in the cirrhotic animals regardless of the administered parent compound. Colchicine treatment reversed almost completely the alterations. The heterogeneity of liver metabolic dysfunctions present in chronic liver disease was demonstrated. It is emphasized that the pharmacokinetic alterations produced by liver damage are the result of a complex set of factors involving changes in the hepatic circulation, protein binding, and the existence of other routes of elimination.

Aniline Hydroxylase↗

Reduction of apparent indicators of liver cirrhosis in rats by the arachidonate lipoxygenase inhibitor BW755C.

We have compared the effects of BW755C, a dual inhibitor of the arachidonic acid cyclo-oxygenase and lipoxygenase, with the effects of colchicine and indomethacin on the reversion of the biochemical and histochemical signs of rat liver cirrhosis. This was induced by i.p. administration of CCl4 for 11 weeks. At this point the rats were divided into four groups (10 animals each). CCl4 administration was continued for one month along with either colchicine, BW755C or indomethacin. No additional treatment was given to the control group. BW755C consistently improved all the parameters studied. Although colchicine also improved all but two markers (serum ALT activity and serum proteins) it ranked lower than BW755C in most of them. Indomethacin only modified favourably serum alkaline phosphatase activity, serum proteins, cholesterol and bilirubins and liver collagen content. The effects of BW755C could be mainly attributed to the inhibition of the lipoxygenase pathway. A common feature of colchicine, adrenal steroids and BW755C was the ability to inhibit the formation of leukotriene and other lipoxygenase products. The possibility that this property might contribute to their anti-cirrhotic actions is discussed.

4,5-Dihydro-1-(3-(trifluoromethyl)phenyl)-1H-pyraz↗

Aspirin disposition in rats acutely intoxicated with CCl4.

The profile of urinary salicylate metabolites was determined after an oral administration of acetylsalicylic acid (ASA) to: 1, control rats; 2, rats treated with CCl4 and 3, rats intoxicated with CCl4 and also pretreated with colchicine for 7 days. The following enzymatic activities were determined: liver and plasma ASA-esterase, liver UDP-glucuronyltransferase and liver aniline hydroxylase. The time course of plasma concentration of salicylates in similar groups were followed after the intraperitoneal administration of acetylsalicylic acid (ASA), salicylic acid (SA) or gentisic acid (GA). The animals acutely intoxicated with CCl4 showed a reduction in urinary excretion of glucuronates and an increased urinary excretion of gentisic and salicylic acids. The activities of plasma and liver ASA-esterases were significantly increased in CCl4-treated rats while the aniline hydroxylase was reduced and the UDP-glucuronyltransferase remained unchanged. The plasma half lives of salicylates were reduced in CCl4-treated rats regardless of the administered parent compound. Colchicine pre-treatment completely prevented the alterations produced by acute intoxication with CCl4. The heterogeneity of liver metabolic dysfunctions present in acute liver damage was evidenced. It is emphasized that the pharmacokinetic alterations produced by acute liver injury can be the result of complex factors that may involve changes in circulation, hepatic binding protein and other routes of elimination.

Animals↗

Effect of rioprostil and colchicine on CCl4-acute liver damage in rats. Relationship with plasma membrane lipids.

The effects of colchicine (10 g/day p.o. for 7 days) and rioprostil (2-decarboxy, 2-hydroxymethyl-15-deoxy-16-RS-hydroxy-16-methyl-prostaglandin-E1) (20 g/kg s.c., a single dose) on the enzymatic and histological markers of acute liver damage were studied in rats intoxicated with a single oral dose of CCl4. The rats were sacrificed 24 h after CCl4. The lipid composition of the liver plasma membranes was also determined. The increase in Alk. Phosp., GGTP and GPT activities and bilirubin concentration in serum as well as the histological images produced by CCl4 were equally prevented by the treatments with colchicine or rioprostil. CCl4 changed the lipid composition of the liver plasma membrane by increasing PI and PC and decreasing SM, PS and PEA. There was a decrease in the cholesterol/phospholipid ratio at the expense of a reduction of cholesterol/protein ratio and elevation in phospholipid/protein ratio. Colchicine and rioprostil also prevented these lipid alterations. The results suggest that the plasma membrane is an important site of action of CCl4 and of the 2 drugs studied. We postulate that the plasma membrane rather than other organelles is the target for the cytoprotective actions of prostaglandins.

Alanine Transaminase↗