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Biomedical subjects

M A Pronzato

Publications and source records attributed to M A Pronzato.

At least 55 records · Page 3Linked to original sources

Modulation of rat liver protein kinase C during "in vivo" CC14-induced oxidative stress.

Rat intoxication with a single dose of the hepatotoxin carbon tetrachloride induces a significant modification of liver protein kinase C total activity which depends on the degree of the intrahepatocyte oxidative unbalance provoked by various concentrations of the haloalkane. Low carbon tetrachloride amounts stimulate total protein kinase C activity, while one order of magnitude higher amounts exert strong enzyme inhibition. The latter effect is due to an early inactivation followed with progress of time by a proteolytic degradation of the enzyme. A pathological recruitment of the calcium-dependent protein kinase C regulatory enzymes calpain and calpastatin appears responsible for protein kinase C loss. The prolonged excess of cytosolic calcium which characterizes the single high dose carbon tetrachloride poisoning also leads to inactivation of calpain II and calpastatin in a time-dependent manner.

Animals↗

[Changes in lipoglycoprotein metabolism in toxic fatty liver].

BACKGROUND: A number of agents that produce liver injury also cause the accumulation of an abnormal amount of fat, predominantly triglycerides (TGs) in the parenchymal cells. Fatty liver (FL) is the result of an hepatocyte imbalance between the rate of synthesis and output of TGs into the plasma. TGs are not secreted as such, but combined with a glycoprotein moiety, and particularly with the very low density lipoproteins (VLDLs). This fraction is involved in the transport of hepatic TGs to extrahepatic tissues. FL can be induced by either acute or chronic administration of ethanol (EtOH), and/or several haloalkanes (carbon tetrachloride, CCl4; 1.2-dichloroethane, DCE; 1.1.2.2-tetrachloroethane, TTCE), both in laboratory animals and in man. Since the pathogenesis of this disease is a crucial problem, as yet undefined, the purpose of this article is to summarize the studies which have unraveled some of the mechanisms involved in FL, particularly the role played by impaired lipoglycoproteins (LGP) metabolism in rat liver. DISCUSSION: An important element in the pathogenesis of EtOH- and haloalkanes-induced FL is the impairment of hepatic secretion of VLDLs, which occurs soon after poisoning. Various steps of the secretory pathway are probably involved in the expression of such damage. The intoxication of rats with these xenobiotics leads to an early impairment of the hepatocyte system responsible for terminal glycosylation and maturation of LGP at the level of three different subfractions (F1, F2 and F3) of purified Golgi apparatus (GA). The earliest functional change is a block of LGP transit through the GA cisternae and vesicles, both in isolated hepatocyte model and in the whole animal. The glycosylation of LGP is a multistep process which starts in the rough endoplasmic reticulum (RER), and comes to its end in the GA. Dolichols (Dol) are a family of long-chain polyisoprenoid alcohols, present either as neutral free-Dol and dolichyl-phosphate (Dol-P). The latter acts as a glycosyl carrier across the RER membranes in the initial steps of LGP biosynthesis. Nearly all the other reactions occur in GA, where free-Dol have a role either in terminal LGP processing or in their secretion into the blood stream. Several investigations indicated that both EtOH and haloalkanes (CCl4, DCE, and TTCE) may selectively and precociously impair the total microsomes (TM) and GA pool of Dol, particularly in F1. Lipid peroxidation appears to be the fundamental mechanism involved. CONCLUSIONS: Such results, obtained in several works, point out a key role played in FL by selective impairment of MT and GA processes which provide for the synthesis, maturation and release of hepatic LGP.

Animals↗

Acetaldehyde-induced impairment of protein glycosylation in liver Golgi apparatus.

The effects of acute ethanol intoxication on the glycoprotein metabolism of rat liver Golgi apparatus have been investigated. A marked reduction of the galactosyltransferase and sialyltransferase activities was observed in Golgi membranes 6 h after ethanol administration (6g/Kg body wt) together with the retention of glycoproteins in the hepatocyte. Methylpyrazole, an inhibitor of alcohol dehydrogenase, administrated "in vivo" (10 mg/Kg body wt) prevented the ethanol-induced inhibition of both the transferase activities. Acetaldehyde formed "in vitro" unstable and stable adducts with Golgi membrane proteins and with purified galactosyltransferase. These results suggest that the impairment of glycoprotein metabolism at the level of liver Golgi apparatus may be mediated, at least in part, through the acetaldehyde formation during ethanol oxidation.

Acetaldehyde↗

In vivo and in vitro evidence concerning the role of lipid peroxidation in the mechanism of hepatocyte death due to carbon tetrachloride.

Isolated rat hepatocytes exposed to CCl4 showed a stimulated formation of malonaldehyde after only 30-60 min incubation. Conversely, the onset of hepatocyte death was a relatively late event, being significant only after 2-3 h of treatment. A cause-effect relationship between the two phenomena has been demonstrated by using hepatocytes isolated from rats pretreated with alpha-tocopherol. Comparable results were obtained in vivo where supplementation with alpha-tocopherol 15 h before CCl4 dosing induced a partial or complete protection against the drug's necrogenic effect, depending on the concentration of the haloalkane used. Moreover, the vitamin supplementation prevented the CCl4-induced increase of liver total calcium content, probably by blocking alterations in the liver cell plasma membranes due to lipid peroxidation.

Animals↗

Inactivation of hepatocyte protein kinase C by carbon tetrachloride: involvement of drug's metabolic activation and prooxidant effect.

The involvement of CCl4 biotransformation mechanism in decreasing the Protein Kinase C activity has been analyzed in hepatocytes isolated from phenobarbital-pretreated rats. A significant inhibition (55%) and an almost total disappearance (87%) of the enzyme activity were observed at 15 min and at 30 min incubation with CCl4, respectively. Cell preincubation with Trolox or desferrioxamine allowed a marked whilst not complete protection of both cytosolic and particulate Protein Kinase C activity. These results show that the CCl4 reactive metabolites play a primary role in hepatocyte Protein Kinase C impairment and suggest that besides lipid peroxidation other mechanisms -possibly a derangement of Ca2+ homeostasis- may be involved in this process.

Animals↗

Lipid peroxidation and covalent binding in the early functional impairment of liver Golgi apparatus by carbon tetrachloride.

The onset of the lipoprotein secretory block provoked by CCl4 in the whole animal was monitored after purification of liver Golgi membranes. Both lipid transit through the apparatus and hexosylation of the lipoprotein are markedly inhibited 5-15 min after poisoning. Pre-treating the animal with alpha-tocopherol, shown to prevent lipid peroxidation without modifying the covalent binding due to CCl4 metabolites, affords little protection against lipid accumulation in the Golgi, but total preservation of galactosyl transferase activity. While haloalkylation therefore appears to be the major mechanism of damage in the early phases of CCl4-induced derangement of lipid secretion, lipid peroxidation is probably more involved later; this is indicated by the marked, though never complete, protection against fatty liver afforded at 24 h after CCl4 poisoning by supplementation of the membrane with alpha-tocopherol.

Animals↗

Effects of CCl4 poisoning on metabolism of dolichol in rat liver microsomes and Golgi apparatus.

Carbon tetrachloride (CCl4) poisoning affects glycoprotein processing and maturation at the level of rat liver microsomes and Golgi apparatus. HPLC analysis showed that within 5-60 min after CCl4 administration the levels of total dolichol, free dolichol and dolichyl-phosphate strongly decreased both in total microsomes and in Golgi apparatus. The most marked and early reduction of total dolichol was observed in the secretory membranes of Golgi area already 15 min after CCl4 poisoning. The incubation of CCl4-pretreated isolated hepatocytes with [3H]-mevalonate showed a significant slowing down of the label incorporation into both free-dolichol and dolichyl-phosphate. Moreover, lipid peroxidation might cause alterations in the molecular structure of both free-dolichol and dolichyl-phosphate. A notable prevention of dolichol decrease was observed in animals pretreated with vitamin E. The results suggest that the prooxidant activity of CCl4 is able to affect the metabolism of dolichol either by increasing the oxidative degradation or impairing the biosynthetic pathway.

Animals↗

Carbon tetrachloride-induced inhibition of protein kinase C in isolated rat hepatocytes.

Isolated rat hepatocytes exposed to CCl4 showed a dramatic decrease in [32P] incorporation into proteins which was evident as early as 5 min after the haloalkane addition. DEAE cellulose separation of protein kinases present in both particulated and cytosolic fractions of hepatocytes revealed that only the calcium and phospholipids dependent protein kinase C was affected by the treatment with CCl4, while kinases not requiring these factors for their activity were unmodified. Several 4-hydroxyunsaturated aldehydes known to be produced during CCl4-stimulated lipid peroxidation were found to inhibit protein kinase C at micromolar concentrations, suggesting the possibility that peroxidative events might be responsible for the impairment of protein kinase C during CCl4 intoxication.

Aldehydes↗

Phosphatidylserine increases in vivo the synaptosomal uptake of exogenous GABA in rats.

A sonicated liposome suspension of gamma-aminobutyric acid (GABA) and phosphatidylserine (liposome-entrapped GABA), intraperitoneally administered in rats, inhibited EEG epileptic activity induced by penicillin, whereas GABA did not. A significant increase (20.4%) in brain radioactivity accumulation occurred at 5 min after i.p. administration of [14C]GABA associated with phosphatidylserine in comparison with the administration of [14C]GABA; such an increase persisted after 20 min. However, the accumulation of radioactivity into brain synaptosomes demonstrated a 24.1% increase at 5 min and subsequently showed a 43.3% increase at 20 min after injection of liposome-entrapped GABA. The above findings suggest that phosphatidylserine stimulates exogenous GABA uptake into brain GABAergic nerve terminals.

Animals↗

Inhibition of liver Golgi glycosylation activities by carbonyl products of lipid peroxidation.

The present report deals with the investigation of the effect of 4-hydroxy-trans 2,3-nonenal (HNE), hexanal (HEX) and malondialdehyde (MDA), the major products of lipid peroxidation, on the glycosylation pathway of rat liver Golgi apparatus. Defined concentrations of the aldehydes were added to isolated fractions of formative (F3) and secretory (F1 + F2) Golgi compartments, then incubated at 37 degrees C for 10 min. At the end of the incubation the activity of galactosyl-(GT) and sialyl-(ST)transferases, the main enzymes of the terminal protein and lipoprotein glycosylation, was evaluated. A significant impairment of both these activities was observed with HNE and HEX but not with MDA. These data suggest that aldehydes generated during peroxidation reactions are able to impair the protein and lipoprotein maturation mechanism which is normally achieved through a complete glycosylation.

Aldehydes↗

Investigation of the role of ubiquinone in rat liver subcellular compartments.

The role of ubiquinone in the Golgi apparatus is still unknown, even if it might be considered as a lipid marker of the Golgi compartment because of its high content in these subcellular fractions. In vivo modulation of ubiquinone with ethanol and in vitro pentane extraction show that ubiquinone is not required either for NADH-ferricyanide reductase, acetaldehyde dehydrogenase activity, or Ca2+ and Mg2+ stimulated ATPases. Since ubiquinone does not seem to be involved in these enzymic activities in Golgi compartments, other possible functions are discussed, related to a role in membrane fluidity or as a barrier to the propagation of free radicals.

Aldehyde Oxidoreductases↗

Phospholipids, vitamin A and ubiquinone of the Golgi apparatus subfractions from rat liver after acute ethanol intoxication.

Previous investigations from our laboratory have shown that during acute ethanol intoxication the Golgi apparatus seems involved in impaired dismission of lipoproteins. In the present paper the phospholipid distributions of Golgi subfractions have been analyzed in livers of normal and ethanol intoxicated rats. No significant differences in the phospholipid classes have been observed in this study. On the contrary, a decrease of vitamin A and ubiquinone in Golgi subfractions is evident. The results are briefly discussed in view of the role played by these endogenous antioxidants in the Golgi membranes and in the pathogenesis of ethanol induced fatty liver.

Alcoholic Intoxication↗

Phospholipids of Golgi subfractions determined with an enzymatic method.

Golgi apparatus subfractions are still under consideration both for morphological, biochemical and functional characterization. In this note, we determined glycerophospholipids and Golgi subfractions from rat liver by a method that requires the complete enzymatic hydrolysis of phospholipids with phospholipase C from CL perfringens. The main advantages of this procedure are that small amounts of protein membranes are required, the precision and the rapidity.

Animals↗

Analysis of rat liver Golgi apparatus proteins and apolipoproteins in acute ethanol intoxication.

Protein patterns of rat liver secretive (F1, F2) and formative (F3) Golgi fractions and their corresponding VLDLs content have been analyzed by disc-electrophoresis in normal conditions and after acute ethanol intoxication and compared with serum proteins and isolated lipoproteins. The major bands of the normal nascent VLDLs isolated from both formative and secretive Golgi fractions migrate in the same area of serum apo-C and apo-ARP apolipoproteins; in the same density interval of VLDLs another major lipoprotein band, called U, may be separated showing a slower electrophoretic mobility of apo-ARP. After ethanol intoxication apo-C bands seem to be concentrated in secretive and decreased in formative fractions, while apo-ARP and U bands show an overlapping in both Golgi fractions. The possible mechanisms of these behaviours are discussed.

Alcoholic Intoxication↗

Effects of cicloxilic acid on liver subcellular fractions triglyceride content in acute ethanol intoxication.

The action of cis-2-hydroxy-2-phenyl-cyclohexanecarboxilic acid (cicloxilic acid) on the concentration of triglycerides in the subcellular compartments of the liver was investigated in acutely ethanol-intoxicated rats. Cicloxilic acid is able to significantly reduce the accumulation of neutral fats in the homogenate and in the cytosol and to shorten the steatosis regression time. The triglyceride content in total microsomes results slightly higher in the animals treated with cicloxilic acid than in those treated with ethanol only. The data are discussed in relation to the pathogenesis of ethanol fatty liver and to the possible mechanism of action of cicloxilic acid.

Alcoholic Intoxication↗

Influence of cicloxilic acid on energy production by hepatocyte mitochondria during acute ethanol intoxication.

Liver mitochondria from acute ethanol intoxicated rats show a highly significant uncoupling of oxidative phosphorylation. cis-2-Hydroxy-2-phenyl-cyclohexanecarboxylic acid (cicloxilic acid) early normalizes the P/O ratio and, therefore, the mitochondrial energy producing mechanisms. The significance of these phenomena and the possible role of cicloxilic acid on mitochondrial energy-production are discussed.

Alcoholic Intoxication↗