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Biomedical subjects

D Larrey

Publications and source records attributed to D Larrey.

At least 163 records · Page 9Linked to original sources

Effect of liver disease on dextromethorphan oxidation capacity and phenotype: a study in 107 patients.

1. The O-demethylation of dextromethorphan to dextrorphan exhibits a genetically-controlled polymorphism, co-segregating with that of debrisoquine hydroxylation. Dextromethorphan has been proposed as a test compound to assess drug oxidation polymorphism. 2. We studied the effects of liver disease of varying severity on dextromethorphan oxidation capacity. Phenotyping was performed using the urinary dextromethorphan/dextrorphan metabolic ratio after oral administration of 40 mg dextromethorphan hydrobromide in 56 patients with cirrhosis and in 51 patients with moderately severe liver disease. 3. Dextromethorphan oxidation capacity was impaired in cirrhotic patients and, to lesser extent, in non cirrhotic patients, as compared with 103 control subjects. 4. The impairment in dextromethorphan oxidation induced by liver disease, was however, much less than that caused by the genetic deficiency. As a result, the prevalence of the poor metabolizer phenotype remained in the same range in patients with cirrhosis (1.8%) and with moderately severe disease (2.0%) as in controls (3.9%). 5. This observation shows that, although liver disease causes some impairment of dextromethorphan O-demethylation, this impairment is not sufficient to modify the assignment of phenotypes.

Adult↗

Suicide inactivation of cytochrome P-450 by methoxsalen. Evidence for the covalent binding of a reactive intermediate to the protein moiety.

Incubation of rat liver microsomes with [3H]methoxsalen and NADPH resulted in the covalent binding of a methoxsalen intermediate to proteins comigrating with cytochromes P-450 UT-A, PB-B/D, ISF-G and PCN-E. Binding was increased by pretreatments with phenobarbital, beta-naphthoflavone (beta NF) and dexamethasone. Such pretreatments also increased the loss of CO-binding capacity either after administration of methoxsalen, or after incubation of hepatic microsomes with methoxsalen and NADPH. Immunoprecipitation of the methoxsalen metabolite-protein adducts in phenobarbital-induced microsomes was moderate with anti-UT-A antibodies, but marked with anti-PB-B/D and anti-PCN-E antibodies. Immunoprecipitation was observed also with anti-ISF-G (anti-beta NF-B) antibodies in beta NF-induced microsomes. Methoxsalen (0.25 mM) inhibited markedly the benzphetamine demethylase activity of phenobarbital-induced microsomes and the erythromycin demethylase activity of dexamethasone-induced microsomes. Whereas methoxsalen itself did not produce any binding spectrum, in contrast either in vivo administration of methoxsalen or incubation in vitro with methoxsalen and NADPH resulted in a low-to-high spin conversion of cytochrome P-450 as suggested by the appearance of a spectrum analogous to a type I binding spectrum. This low-to-high spin conversion was apparently due to a methoxsalen intermediate (probably, covalently bound to the protein and preventing partial sixth ligation of the iron). We conclude that suicide inactivation of cytochrome P-450 by methoxsalen is related to the covalent binding of a methoxsalen intermediate to the protein moiety of several cytochrome P-450 isoenzymes (including UT-A, PB-B/D, PCN-E as well as ISF-G and/or beta NF-B).

Animals↗

Effects of clarithromycin on cytochrome P-450. Comparison with other macrolides.

Repeated administration of clarithromycin (0.5 mmol.kg-1 p.o. daily for 5 days) to rats increased markedly the same cytochrome P-450 isoenzyme (P-450p) as that induced by troleandomycin. Clarithromycin, however, did not form cytochrome P-450 Fe(II)-metabolite complexes in vitro with microsomes from clarithromycin-treated rats or in vivo after repeated doses of clarithromycin. Nevertheless, clarithromycin formed cytochrome P-450 Fe(II)-metabolite complexes with microsomes from dexamethasone-treated rats in vitro, or after administration to dexamethasone-treated rats in vivo. Similar effects were observed with roxithromycin. In contrast, erythromycin and troleandomycin formed metabolic complexes when given alone, whereas josamycin, midecamycin and spiramycin did not form complexes, even in dexamethasone-treated rats. We conclude that clarithromycin and roxithromycin induce cytochrome P-450p, but do not form complexes with this isoenzyme, although they do form complexes with other glucocorticoid-inducible isoenzymes. We propose that macrolides may be classified into three groups, those forming complexes when given alone (e.g., erythromycin and troleandomycin), those forming complexes only in glucocorticoid-pretreated rats (clarithromycin and roxithromycin) and those not forming complexes (josamycin, midecamycin and spiramycin).

Animals↗

[Hepatitis probably caused by exifone (Adlone)].

Exifone, a drug recently proposed for the treatment of cognitive deficiencies of old age, has been marketed in France beginning in April 1988. This report concerns 2 patients who developed jaundice after taking this drug for 2 and 5 months, respectively. Serum aminotransferase was markedly increased. There was no hepatic failure. In both cases, histologic examination of a liver sample showed centrilobular hepatocyte necrosis and cholestasis. Necrotic cells were infiltrated with numerous red blood cells and scarce inflammatory cells. These lesions were associated with alterations of the walls of centrilobular veins. Discontinuation of exifone was followed by the prompt disappearance of jaundice. Complete recovery occurred within 6 and 12 weeks, respectively.

Aged↗

Amitriptyline-induced prolonged cholestasis.

We report the case of a patient in whom amitriptyline administration for 5 wk was followed by prolonged cholestasis. Jaundice and pruritus lasted 19 and 20 mo, respectively. Three liver biopsies were performed at different stages of the disease showing the course of liver lesions. Cholestasis initially located in the region of the hepatic venule came to be associated with the progressive development of portal tract lesions consisting of inflammatory infiltration, fibrosis, and disappearance of interlobular bile ducts. Amitriptyline hydroxylation and dextromethorphan O-demethylation are deficient in subjects with the poor metabolizer phenotype of debrisoquine. Drug oxidation phenotyping with dextromethorphan showed that this patient had the extensive metabolizer phenotype. This observation demonstrates that amitriptyline can induce prolonged cholestasis and suggests that the susceptibility to develop liver injury while taking this drug may not be related to a genetic deficiency of its hydroxylation.

Adult↗

Acute and chronic drug-induced hepatitis.

Adverse drug reactions may mimic almost any kind of liver disease. Acute hepatitis is often due to the formation of reactive metabolites in the liver. Despite several protective mechanisms (epoxide hydrolases, conjugation with glutathione), this formation may lead to predictable toxic hepatitis after hugh overdoses (e.g. paracetamol), or to idiosyncratic toxic hepatitis after therapeutic doses (e.g. isoniazid). Both genetic factors (e.g. constitutive levels of cytochrome P-450 isoenzymes, or defects in protective mechanisms) and acquired factors (e.g. malnutrition, or chronic intake of alcohol or other microsomal enzyme inducers) may explain the unique susceptibility of some patients. Formation of chemically reactive metabolites may also lead to allergic hepatitis, probably through immunization against plasma membrane protein epitopes modified by the covalent binding of the reactive metabolites. This may be the mechanism for acute hepatitis produced by many drugs (e.g. amineptine, erythromycin derivatives, halothane, imipramine, isaxonine, alpha-methyldopa, tienilic acid, etc.). Genetic defects in several protective mechanisms (e.g. epoxide hydrolase, acetylation) may explain the unique susceptibility of some patients, possibly by increasing exposure to allergenic, metabolite-altered plasma membrane protein epitopes. Like toxic idiosyncratic hepatitis, allergic hepatitis occurs in a few patients only. Unlike toxic hepatitis, allergic hepatitis is frequently associated with fever, rash or other hypersensitivity manifestations; it may be hepatocellular, mixed or cholestatic; it promptly recurs after inadvertent drug rechallenge. Lysosomal phospholipidosis occurs frequently with three antianginal drugs (diethylaminoethoxyhexestrol, amiodarone and perhexiline). These cationic, amphiphilic drugs may form phospholipid-drug complexes within lysosomes. Such complexes resist phospholipases and accumulate within enlarged lysosomes, forming myeloid figures. This phospholipidosis has little clinical importance. In a few patients, however, it is associated with alcoholic-like liver lesions leading to overt liver disease and, at times, cirrhosis. Subjects with a deficiency in a particular isoenzyme of cytochrome P-450 poorly metabolize perhexiline and are at higher risk of developing liver lesions. Prolonged, drug-induced liver-cell necrosis may also lead to subacute hepatitis, chronic hepatitis or even cirrhosis. This usually occurs when the drug administration is continued, either because the liver disease remains undetected or because its drug aetiology is overlooked. Several autoantibodies may be present.(ABSTRACT TRUNCATED AT 400 WORDS)

Acute Disease↗

Drug-induced cholestasis.

Acute, drug-induced hepatocellular cholestasis (either pure or cholestatic hepatitis) is a common manifestation of drug-induced hepatic injury. The drugs most frequently responsible are hormonal steroids and psychopharmacological agents (in particular phenothiazines and some antidepressants). Cholestasis usually subsides without sequelae in less than six months. Acute, drug-induced ductular cholestasis is uncommon and can resemble biliary tract obstruction. Complete recovery occurs promptly after the withdrawal of the causative drug in most cases. The pathogenetic mechanism may be immunoallergic. Prolonged ductular or ductal cholestasis can follow drug-induced acute hepatitis despite prompt withdrawal of the offending drug. This syndrome, observed mainly with chlorpromazine and uncommonly with twenty other drugs, is characterized by the progressive disappearance of small bile ducts and by manifestations mimicking primary biliary cirrhosis. However, its prognosis appears to be better than that of primary biliary cirrhosis, the condition being reversible in the majority of cases or even subsiding completely. The mechanism is still unknown, but several features suggest some form of autoimmunity. Extrahepatic cholestasis related to sclerosing cholangitis is a frequent and long-term complication of intra-arterial infusion of floxuridine in patients treated for hepatic metastases from colorectal carcinoma. Although it may be reversible, floxuridine-induced sclerosing cholangitis has a poor prognosis and can lead to death in a few patients. The mechanism is probably related to the vascular supply of the common hepatic duct and its relationship to the perfusion territory of floxuridine.

Bile↗

Amodiaquine-induced fulminant hepatitis.

Three patients suffered from fulminant hepatitis within 23, 59 and 22 weeks after having ingested a total dose of 16, 26 and 15 g, respectively, of amodiaquine for the prophylaxis of malaria. Amodiaquine administration was continued for 44, 21 and 25 days after the onset of jaundice, respectively. One patient underwent emergency orthotopic liver transplantation and survived. The other two died. Fulminant hepatitis threatens patients in whom amodiaquine administration is protracted for several months and not interrupted when jaundice occurs.

Adolescent↗

Peliosis hepatis induced by 6-thioguanine administration.

A patient with acute myeloblastic leukaemia developed jaundice revealing peliosis hepatis after receiving 6-thioguanine for two months. Peliosis hepatis was severe and was associated with mild lesions of centrilobular veins. Withdrawal of 6-thioguanine was followed by a progressive improvement of liver dysfunction. This report shows that 6-thioguanine, a thiopurine already reported to be responsible for veno-occlusive disease of the liver, can induce peliosis hepatis. This suggests that some liver vascular disorders caused by thiopurines (6-thioguanine, azathioprine and 6-mercaptopurine), particularly peliosis hepatis, veno-occlusive disease, sinusoidal dilatation and perisinusoidal fibrosis, might be related syndromes caused by similar lesions at different sites.

Chemical and Drug Induced Liver Injury↗

Amineptine, a tricyclic antidepressant, inhibits the mitochondrial oxidation of fatty acids and produces microvesicular steatosis of the liver in mice.

Microvesicular steatosis of the liver has been reported in two subjects receiving amineptine (a tricyclic antidepressant metabolized by beta-oxidation of its acyl chain). A similar disease is observed after ingestion of drugs which inhibit hepatic mitochondrial fatty acid beta-oxidation, or in subjects with various inborn defects in this metabolic pathway. We therefore determined the effects of amineptine on the mitochondrial oxidation of fatty acids in mice. In vitro, the formation of beta-oxidation products during incubation of palmitic acid with mouse liver mitochondria and the various cofactors necessary for beta-oxidation was inhibited by 27, 33, 46 and 57% respectively, in the presence of 0.25, 0.5, 1 and 2 mM of amineptine. Inhibition was reversible. Tricarboxylic acid cycle activity, assessed by the in vitro formation of [14C]CO2 from [1-14C]acetyl coenzyme A by mouse liver mitochondria, was inhibited by 22, 23, 47, 54, 60 and 62%, respectively, in the presence of 0.0625, 0.125, 0.25, 0.5, 1 and 2 mM of amineptine. In vivo, administration of amineptine, 0.5 and 0.75 mmol.kg-1, inhibited by 70 and 84%, respectively, the exhalation of [14C] CO2 during the first 3 hr after the administration of a tracer dose of [U-14C]palmitic acid. Administration of amineptine, 0.0625, 0.25, 0.5 or 1 mmol.kg-1, 6 hr before the measurement, increased hepatic triglycerides by 73, 139, 295 and 320%, respectively. After 1 mmol.kg-1, accumulation of hepatic triglycerides was maximum at 24 hr, reaching 5-fold the control value; liver histology at that time showed microvesicular steatosis.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetyl Coenzyme A↗

[Hepatitis probably caused by Plethoryl. Apropos of 7 cases].

Seven patients developed acute hepatitis after receiving Plethoryl for obesity for 4 to 16 weeks. Jaundice was generally associated with or preceded by asthenia, nausea and pruritus. Serum aminotransferase activities were markedly increased whereas alkaline phosphatase and gamma-glutamyltransferase activities were moderately elevated. There was no hepatic failure. In all cases, Plethoryl administration was promptly discontinued. In 6 cases, jaundice disappeared within 2 to 4 weeks, and recovery occurred within 2 to 5 months. In one case, however, jaundice disappeared within 12 weeks and recovery took 10 months.

Acute Disease↗

Effects of methoxsalen on the metabolism of acetaminophen in humans.

We reported recently that the drug methoxsalen, a potent suicide inhibitor of hepatic cytochrome P-450, decreases the metabolic activation of acetaminophen and prevents its hepatotoxicity in mice. We have now studied the effects of methoxsalen on the metabolism of acetaminophen in humans. In vitro, 100 microM methoxsalen decreased by 40% the covalent binding of a [3H]acetaminophen metabolite to microsomal proteins after incubation of [3H]acetaminophen with human liver microsomes and an NADPH-generating system. In vivo, a single oral dose of methoxsalen (30 mg), given 3 hr before acetaminophen (1 g), decreased by 38% the partial apparent oral salivary clearance of acetaminophen into glutathione-derived conjugates (the end products of its oxidative metabolism) in nine human volunteers. These observations demonstrate that methoxsalen decreases the metabolic activation of acetaminophen in humans.

Acetaminophen↗