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G Labbe

Publications and source records attributed to G Labbe.

20 records · Page 2Linked to original sources

Inhibition of mitochondrial beta-oxidation of fatty acids by pirprofen. Role in microvesicular steatosis due to this nonsteroidal anti-inflammatory drug.

Administration of pirprofen may produce microvesicular steatosis of the liver in humans. The effects of pirprofen on the mitochondrial beta-oxidation of fatty acids have been investigated in mice. In vitro, addition of 2 mM pirprofen decreased by 50% the formation of [14C]acid-soluble beta-oxidation products, and decreased by 70% the formation of [14C]CO2 upon incubation of hepatic mitochondria with [14C]palmitic acid, ATP, carnitine and coenzyme A. In vivo, administration of pirprofen (2 mmol . kg-1 i.p.), 1 hr before that of [U-14C]palmitic acid, decreased by 70% the exhalation of [14C]CO2 during the next 6 hr. Administration of pirprofen (2 mmol . kg-1 i.p.), 1 hr before the measurement, decreased plasma beta-hydroxybutyrate by 60%, plasma acetoacetate by 30% and blood glucose by 40%. Administration of pirprofen (2 mmol . kg-1 i.p.) 6 hr before sacrifice, doubled hepatic triglycerides content and produced microvesicular steatosis of the liver. We conclude that pirprofen inhibits the mitochondrial beta-oxidation of fatty acids in mice, thus explaining the microvesicular steatosis observed in mice and in some human subjects.

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Inhibition of the mitochondrial oxidation of fatty acids by tetracycline in mice and in man: possible role in microvesicular steatosis induced by this antibiotic.

Intravenous administration of high doses of tetracycline may produce severe microvesicular steatosis of the liver in man. A similar disease is observed after ingestion of drugs which inhibit hepatic mitochondrial fatty acid beta-oxidation and in subjects with various inborn defects in this metabolic pathway. We therefore determined the effects of tetracycline on the mitochondrial oxidation of fatty acids in mice and in man. In vitro, addition of tetracycline 0.25, 0.5, 1 or 2 mM inhibited by 15, 38, 56 and 65%, respectively, the formation of beta-oxidation products during incubation of palmitic acid with mouse liver mitochondria and the various cofactors necessary for beta-oxidation. Inhibition was reversible. Inhibition appeared even greater with human liver mitochondria. Tricarboxylic acid cycle activity, assessed by the in vitro formation of [14C]CO2 from [1-14C]acetylcoenzyme A by mouse liver mitochondria, was inhibited by 25, 32 and 43%, respectively, in the presence of 0.5, 1 or 2 mM of tetracycline. In vivo, administration of tetracycline, 0.25 or 1 mmole per kg, inhibited by 53 and 84%, respectively, the exhalation of [14C]CO2 during the first 3 hours following the administration of a tracer dose of [U-14C]palmitic acid. Administration of tetracycline, 0.0625, 0.25 or 1 mmole per kg, 6 hr before the measurement, increased hepatic triglycerides by 100, 170 and 250%, respectively. After 1 mmole per kg, accumulation of hepatic triglycerides was maximum at 24 hr, reaching 9-fold the control value; liver histology showed microvesicular steatosis at 6 and 24 hr. We conclude that tetracycline inhibits the mitochondrial oxidation of fatty acids in mice and in man.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗