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Biomedical subjects

C J Paul

Publications and source records attributed to C J Paul.

At least 19 recordsLinked to original sources

Enalapril cytotoxicity in primary cultures of rat hepatocytes. I. Effects of cytochrome P450 inducers and inhibitors.

Enalapril maleate (EN) incubated with primary cultures of rat hepatocytes was cytotoxic in concentrations of 0.5 mM or greater. Toxicity was measured by release of lactate dehydrogenase (LDH) into the culture medium at 24 h. SKF525A, alpha-naphthoflavone (alpha NF) and metyrapone (MTP) reduced the toxicity of EN. In vivo pretreatment with phenobarbital (PB) and beta-naphthoflavone (beta NF) had minor protective effects on the responses of hepatocytes to EN exposure. However, in vivo pretreatment with pregnenolone-16 alpha-carbonitrile (PCN) substantially potentiated EN cytotoxicity. These results suggest that the cytocidal hepatotoxicity of EN in primary culture depends to some degree on metabolic activation by a cytochrome P450 species.

Animals

Enalapril cytotoxicity in primary cultures of rat hepatocytes. II. Role of glutathione.

The cytotoxicity of enalapril maleate (EN) in primary cultures of rat hepatocytes, at concentrations of 0.5 mM or greater, was measured by the release of lactate dehydrogenase (LDH) into the culture medium. Pretreatment of the hepatocytes with L-buthionine-(S,R)-sulfoximine (BSO) and diethyl maleate (DEM) potentiated the toxicity whereas N-acetyl-L-cysteine (NAC) provided protection. EN produced a dose-dependent reduction in intracellular glutathione (GSH) concentration. This was an early effect, apparent after only 1 h of exposure to the drug, whereas loss of cell viability occurred after 6-18 h. These results suggest that the mechanism of EN cytotoxicity involves a GSH-dependent detoxification pathway.

Acetylcysteine

Excretion of phenazopyridine and its metabolites in the urine of humans, rats, mice, and guinea pigs.

The metabolism of the urinary tract analgesic phenazopyridine [2,6-diamino-3-(phenylazo)pyridine; PAP] was studied in the urine of humans, rats, mice, and guinea pigs. Urinary excretion was rapid in human and guinea pig, but in the rat and mouse it was slower and there was significant fecal excretion. Metabolism of PAP was extensive in all four species, and there were marked quantitative differences in the routes of metabolism. The extent of azo bond cleavage was high in the mouse and guinea pig, moderate in the rat, and low in humans. Hydroxylation of both the phenyl and pyridyl rings of PAP was observed in all species. In the human, 5-hydroxyl PAP was the major metabolite (48.3% of the dose). It was concluded that there are marked species differences in the metabolism of PAP, and that none of the species studied resembles the human; the rat comes closest, but cannot be considered a particularly good model.

Aminopyridines

Antinociceptive activity of propionyl esters of morphine: a reevaluation.

The antinociceptive activity of the propionyl homologues of 3-O- and 6-O-acetyl- and 3,6-O-diacetylmorphine was re-investigated using materials of unequivocally established structure. Testing was in male Wistar rats at 60 min following subcutaneous administration by the rat tail-flick method. Results indicate that the antinociceptive activity of 3-O-propionylmorphine was similar to that of 3-O-acetylmorphine. 6-O-Propionylmorphine and 3,6-O-dipropionylmorphine had similar antinociceptive activity and, like 6-O-acetylmorphine, 6-O-propionylmorphine may be the pharmacologically active principle responsible for the antinociceptive activity of its disubstituted homologue.

Analgesics

Hepatic effects of ketoconazole in the male Swiss Webster mouse: temporal changes in drug metabolic parameters.

There have been conflicting observations regarding the effects of ketoconazole on hepatic metabolism. The objectives of these studies were to determine whether ketoconazole was an enzyme inducer or inhibitor in the mouse and then to establish the time frame of these ketoconazole-induced enzyme changes. Ketoconazole was administered (150 mg/kg p.o. X 4 days) to male Swiss Webster mice. Biochemical observations over a period of 6 days following treatment indicated that ketoconazole had a temporal biphasic effect on the liver. Although liver weight and microsomal protein were elevated, all other parameters monitored were lower at 2 h following ketoconazole treatment. At 24 h after the last dose of ketoconazole, hepatic biochemical parameters (liver wt., % liver wt./body wt., microsomal protein, and cytochrome P-450) were statistically elevated, while enzyme activities (benzphetamine N-demethylation, 6 beta- and 7 alpha-hydroxylation of testosterone, formation of androstenedione and UDP-glucuronyltransferase) were inhibited. At 72 h the ketoconazole-induced changes in the hepatic biochemical parameters were comparable to those observed at 24 h, and enzymatic parameters generally appeared to be induced by ketoconazole, with the exception of benzphetamine N-demethylase and UDP-glucuronyltransferase, which exhibited lower enzyme activities. Ethoxyresorufin O-deethylase, 7 alpha-hydroxylation of testosterone and glutathione S-transferase, on the other hand, were unaltered by ketoconazole treatment. The opposing effects of ketoconazole on benzphetamine N-demethylase and ethylmorphine N-demethylase at 72 h were further examined. Enzyme kinetics studies indicated that ketoconazole did not effect the Michaelis constants (Km) of the two substrates, but the maximum velocity (Vmax) of the reactions was altered.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Ketoconazole-induced hepatic lysosomal phospholipidosis: the effect of concurrent barbiturate treatment.

An unusual hepatic phospholipidosis produced by repeated high doses of ketoconazole in the mouse was investigated. This abnormal phospholipid accumulation was dose dependent after seven days of daily oral treatment over a 150-350 mg/kg ketoconazole dose range. The accumulation continued after 21 days at the 250 mg/kg dose level. Ultrastructural and biochemical studies revealed that ketoconazole produced a hepatic lysosomal accumulation of concentric lamellar bodies, as typically produced by many cationic amphiphilic drugs. Ketoconazole administered orally in mice at 250 mg/kg also induced total hepatic protein, microsomal protein, cytochrome p-450, and ethylmorphine N-demethylation. Concurrent phenobarbital and ketoconazole administration appeared to further increase hepatic drug metabolizing parameters and to reduce the extent of the hepatic phospholipid accumulation.

Animals

Metastatic Crohn's disease responding to metronidazole.

Metastatic Crohn's disease is a rare cutaneous manifestation of intestinal Crohn's disease, for which existing treatment is unsatisfactory. We report a case of perianal and vulval Crohn's disease which cleared completely on a 4-month course of metronidazole without adverse effects. The patient remained in remission I year later. The merits of long-term treatment with metronidazole are discussed.

Anus Diseases

Plasma sorbitol dehydrogenase determination in experimental hepatotoxicity using the Abbott Bichromatic Analyzer.

An automated single reagent micro-assay for the determination of sorbitol dehydrogenase (EC 1.1.1.14) catalytic activity concentration in mouse plasma was developed for the Abbott Bichromatic Analyzer (ABA-100). The kinetic rate determination was linear up to 250 U/l, had a CV of 2.65%, and required only 25 microliters of sample. Experimentally induced hepatotoxicity in the mouse by acetaminophen produced a dose dependent increase in blood sorbitol dehydrogenase activity.

Acetaminophen

Postabsorption antidotal effects of N-acetylcysteine on acetaminophen-induced hepatotoxicity in the mouse.

Male Swiss Webster mice, treated with N-acetylcysteine (NAC, 500 mg/kg po) 1 h following acetaminophen (NAPA, 350 mg/kg po) administration, had control levels of transaminases indicating that NAC protects against NAPA-induced hepatotoxicity by postabsorption antidotal mechanism(s). Hepatic congestion induced by NAPA was reduced by NAC. Significantly higher elimination rate constants (K) for indocyanine green (500 micrograms/kg, iv) in mice treated with NAPA and NAC (K = 0.676 +/- 0.062) than in animals receiving NAPA alone (0.341 +/- 0.105) suggested NAC improved or preserved the hepatic circulation of the compromised liver. This NAC-induced improvement and (or) preservation of hepatic circulation was reflected in biliary and urinary excretion of acetaminophen and its metabolites by a general increase in elimination during the first 6 h (70.2 +/- 2.6 vs. 32.6 +/- 7.1%), and in the repletion of glutathione (GSH) in the liver by a return to control levels more quickly (3 vs. greater than 5 h) following depletion by NAPA. The metabolic consequences of the postabsorption antidotal effect of NAC in the compromised liver was a preferential excretion of sulphydryl-derived metabolites in the 1-4 h bile (GSH conjugate 11.30 +/- 1.25 vs. 7.25 +/- 0.39%) which was subsequently observed in the urine by preferential excretion of glutathione degradation products.

Acetaminophen

Devil's Claw (Harpagophytum procumbens): no evidence for anti-inflammatory activity in the treatment of arthritic disease.

Devil's Claw (Harpagophytum procumbens), an herbal product being marketed in Canada as a home remedy for the relief of arthritic disease, was screened for efficacy with standard preclinical screening methods. At doses 100 times or greater than the recommended daily dose for humans, Devil's Claw was completely ineffective in reducing edema of the rat hind foot induced by either lambda-carrageenan or Mycobacterium butyricum. At concentrations of up to 1 x 10(5) microgram/ml, Devil's Claw was also ineffective as an in-vitro inhibitor of prostaglandin synthetase. These results indicate that Devil's Claw lacks the anti-inflammatory properties possessed by all antiarthritic drugs of the nonsteroidal, anti-inflammatory analgesic type.

Animals

Isoniazid-induced hepatic steatosis in rabbits: an explanation for susceptibility and its antagonism by pyridoxine hydrochloride.

Steatosis was induced in rabbits by subacute administration of isoniazid (INH, 50 mg/kg po). Concomitant treatment with pyridoxine (vitamin B6, 25 mg/kg po) antagonized both development of the hepatic lesions and the elevation of plasma concentrations of lipids. Rabbit acetylating ability was sixfold that of male Wistar rats, a species susceptible to hepatic cell necrosis, whereas hepatic cytochrome P-450 and NADPH-cytochrome c reductase were significantly lower than that observed in control or phenobarbital-induced rats. Examination of the hepatic hydrolysis of the amide bonds of INH and acetylisoniazid (AcINH) indicated that the isonicotinoyl bond of AcINH was the bond most susceptible to amidase hydrolysis in both species; but rabbits possessed the greater amidase activity: 5- to 20-fold greater than control rats and 2- to 7-fold greater than the phenobarbital-induced rats. Consequently, INH-induced hepatic fatty degeneration in rabbits was attributed to increased hepatic exposure to INH-derived primary amine functional groups, and its antagonism by vitamin B6 was attributed to the deactivation of the primary amine by pyridoxal hydrazone formation.

Animals

N-acetylcysteine-induced inhibition of gastric emptying: a mechanism affording protection to mice from the hepatotoxicity of concomitantly administered acetaminophen.

Swiss Webster male mice, 22 +/- 3 g, killed 17-18 h following the concomitant oral administration of acetaminophen (350 mg/kg) and N-acetyl-cysteine (NAC, 100-500 mg/kg, treated) had statistically significant lower plasma transaminases (GOT and GPT) than control mice (acetaminophen + water). Possible mechanisms underlying this protective effect of NAC were examined. NAC (500 mg/kg) reduced [14C]acetaminophen-derived radioactivity in the blood and tissues but increased the percentage of the dose in the gastrointestinal tract. Depletion of hepatic sulphydryl compounds below 75% of the control value was prevented by NAC treatment, whereas urinary excretion of mercapturate and sulfate, metabolites derived from sulphydryls, were proportionally increased and excretion of unchanged drug was decreased by NAC. Absorption of acetaminophen from the small intestine was prevented by NAC and this was attributed to an inhibition in gastric emptying. Since all changes observed following NAC treatment could be attributed to inhibition of gastric emptying, it was considered the major mechanism responsible for affording in mice protection from acetaminophen-induced hepatocellular damage following concomitant oral administration.

Acetaminophen

Pathways of disposition of acetaminophen conjugates in the mouse.

After a single dose of [14C]acetaminophen (50 mg/kg) was administered orally to bile duct cannulated mice, 13.9% of the radioactivity was recovered in the bile while 41.2% was found in the urine in the first 3 h after administration. Analyses of biles revealed that the major biliary metabolite was acetaminophen glutathione (AG) conjugate which was derived from the hepatotoxic acetaminophen intermediate. Examination of urines showed that they contained mostly glucuronide and sulfate conjugates with no AG or its degradation products (cysteine and mercapturate). Analysis of urines collected from non-cannulated animals at 4 h showed that they contained glucuronide, sulfate, cysteine and mercapturate metabolites. Our results suggest that after formation in the liver, the majority of the glucuronide and sulfate conjugates were directly eliminated by the kidney. On the other hand, the pathway for the disposition of the glutathione conjugate was first into the bile, then reabsorption, and finally disposition into the urine as cysteine and mercapturate metabolites.

Acetaminophen