Effects of H2-receptor antagonists on blood alcohol levels.
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Biomedical subjects
Publications and source records attributed to S Toon.
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Plasma and synovial fluid concentrations of the enantiomers of flurbiprofen were measured in 15 rheumatoid patients receiving 100 mg racemic flurbiprofen twice daily. Pharmacokinetic parameters showed considerable variability within the group of patients, although differences in S(+)/R(-) plasma concentration ratios were small. The average values (+/- s.d.) of oral plasma clearance, volume of distribution and elimination half-life for R(-)-flurbiprofen were 0.075 (+/- 0.066) l min-1, 12.47 (+/- 5.79) l and 138 (+/- 61) min, respectively. The average values (+/- s.d.) of oral plasma clearance, volume of distribution and elimination half-life for S(+)-flurbiprofen were 0.057 (+/- 0.035) l min-1, 12.81 (+/- 4.43) l and 155 (+/- 49) min, respectively. S(+)/R(-) ratios (+/- s.d.) rose from 1.06 (+/- 0.12) to 1.75 (+/- 0.61) at the end of the 12 h interval in plasma and from 1.18 (+/- 0.13) to 1.47 (+/- 0.24) over the measured time course in synovial fluid. Increases in S(+)/R(-) ratios may be clinically important as they demonstrate accumulation of the pharmacologically active species.
The urinary profile of R- and S-warfarin, following administration of a single (25 mg) oral dose of racemic warfarin, alone or on day 4 of a 9-day chronic administration of cimetidine (800 mg once daily), was investigated in eight healthy male volunteers. Based on estimated apparent formation clearance values, cimetidine inhibited significantly only the formation of R-6-hydroxywarfarin and R-7-hydroxywarfarin.
Ranitidine may be used at doses of up to 300 mg twice daily in the healing of duodenal ulcers, and this study investigated the potential for a pharmacokinetic or pharmacodynamic interaction between nifedipine 10 mg three times daily and ranitidine 300 mg twice daily compared with cimetidine 800 mg daily and placebo in a randomised crossover study in 18 healthy male subjects. Twelve blood samples were taken on the fifth day in each treatment period and assayed for nifedipine by h.p.l.c. Pulse, blood pressure and ECG recordings were also taken. Cimetidine, but not ranitidine, produced significant changes in the pharmacokinetics of nifedipine at steady state. Mean +/- s.d. values of AUC were 105 +/- 40 micrograms l-1 for placebo treatment, 111 +/- 45 micrograms l-1 h for ranitidine and 211 +/- 64 micrograms l-1 h for cimetidine (P less than 0.001), and Cmax values were 33 +/- 14, 39 +/- 27 and 76 +/- 40 micrograms l-1 (P less than 0.001), respectively. Neither ranitidine nor cimetidine produced statistically significant changes in the pharmacological response to nifedipine.
To assess if any pharmacokinetic or pharmacodynamic interaction at steady-state occurs between the new antidepressant tianeptine and a benzodiazepine (oxazepam) following multiple oral dosing of both drugs, 12 healthy male volunteers entered a balanced three-way double blind cross-over study. Tianeptine (12.5 mg) and/or oxazepam (10 mg) were given three times daily for 4 days. Pharmacokinetic data within a dosing interval at steady-state showed that there were no statistically significant changes in the pharmacokinetics of either tianeptine (and its two major metabolites) or oxazepam when both drugs were co-administered. Psychometric data showed that there was no synergistic negative interaction between the two drugs and that their combination may result in beneficial effects on "alertness" and "happiness".
1. The oral pharmacokinetics of fluconazole were studied in three groups of volunteers (n = 5) with various degrees of renal function (GFR greater than 70 ml min-1; 20-70 ml min-1; less than 20 ml min-1) and in a group of patients with chronic end-stage renal failure requiring regular haemodialysis. 2. The pharmacokinetics of fluconazole were markedly affected by impaired renal function with the elimination of half-life in Group III (GFR less than 20 ml min-1) being approximately three times that observed in normal volunteers (Group I). 3. Fluconazole renal clearance was positively correlated with GFR. 4. Non-renal clearance of fluconazole decreased with decreasing renal function. 5. Approximately 38% of the 50 mg dose of fluconazole was removed by haemodialysis extending over a 3 h period.
1. The potential interaction between racemic warfarin given as a 25 mg single oral dose and chronically administered ketorolac was studied in 12 young healthy male volunteers. 2. Ketorolac produced no major change in the pharmacokinetics of (R)- or (S)-warfarin. 3. Ketorolac did not alter the pharmacodynamic profile of racemic warfarin. 4. Ketorolac increased template bleeding time by a factor of 1.35 as compared with placebo. 5. The results suggest that the ketorolac-warfarin interaction is unlikely to be of major clinical significance; however, combined use of ketorolac and warfarin in patients should be undertaken with due caution and appropriate monitoring.
The in-vivo performance of a clonidine transdermal therapeutic system (TTS 3.5 cm2, 2.5 mg) was assessed in 12 healthy normal volunteers. Particular attention was paid to the rate and extent of absorption of clonidine from the TTS dosage form by reference to a 2 h i.v. infusion of clonidine. The absolute bioavailability of clonidine from the TTS dosage form was found to be approximately 60% with clonidine being released from the TTS at a relatively reproducible and consistent rate of 4.32 micrograms h-1 over a 7-day period.
The effects of concomitant administration of cimetidine and ranitidine on the pharmacokinetics and pharmacodynamics of multiple-dose metoprolol were investigated in 12 normal, healthy male volunteers. The pharmacokinetics of metoprolol were assessed in terms of racemic metoprolol and the individual (R)- and (S)-enantiomers with a stereoselective assay. Ranitidine had no effect on the pharmacodynamics or pharmacokinetics of metoprolol. Although not affecting the pharmacodynamics of metoprolol, cimetidine did produce an increase in the bioavailability of metoprolol through inhibition of enzymes responsible for the first-pass elimination of the beta-blocker. The effect was stereoselective, with the major effect being on the less pharmacologically active (R)-enantiomer.
Rolipram is an antidepressant with a novel mechanism of action: enhanced noradrenaline (first messenger) synthesis and release, and inhibition of cAMP (second messenger) breakdown. This study was aimed at objectively assessing potential anticholinergic effects of rolipram in healthy elderly volunteers by measurement of saliva production and pupil size. Eight male volunteers between 67 and 77 years of age first received in a randomized manner either a single dose of 50 mg amitriptyline or a placebo control. After a minimum washout period of seven days, they then received a multiple dosing regimen of a) 0.75 mg and b) 1.5 mg rolipram given every eight hours over a 5-day period with a two day washout between a) and b). Whereas no changes at all in pupil size could be observed, amitripyline significantly reduced salivary flow. Rolipram however had no effect on saliva production after either single or repeated administration of 0.75 or 1.5 mg. The results are discussed in connection with pharmacokinetic parameters obtained in the study.
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Stereochemical aspects of the potential interaction between the oral anticoagulant warfarin and the H2-antagonists, cimetidine and ranitidine, were investigated. A single 25 mg oral dose of racemic warfarin was administered on Day 4 of a randomised 9-day multiple dosing regimen of either cimetidine (800 mg o.d.) ranitidine (300 mg o.d.) or placebo. The degree of anticoagulation produced by warfarin was quantificated by the determination of both the prothrombin and Factor VII clotting times. Ranitidine had no effect on the pharmacodynamics of warfarin or the pharmacokinetics of the individual warfarin enantiomers. Cimetidine whilst producing no statistically significant change in the pharmacodynamics of warfarin or in the pharmacokinetics of the pharmacologically more potent (S) enantiomer, did produce a statistically significant decrease in the clearance of the (R) enantiomer, possibly due to metabolic inhibition of this species.
Statistical methods for validating assays used in pharmacokinetic studies are discussed. Methods for assessing linearity, variability, and sensitivity are derived. It is proposed that a calibration experiment, in which samples are replicated at three different concentrations, will provide the necessary information to validate an assay prior to commencement of a pharmacokinetic study and during its routine use. A two-stage weighted least squares regression is used to analyze the calibration data. High performance liquid chromatography calibration data are used to illustrate the principles and techniques involved.
The interaction between the new quinoline-azaquinoline antibiotic enoxacin and the oral anticoagulant warfarin was investigated in six healthy male volunteers. Enoxacin was found not to affect the hypoprothrombinemic response produced by warfarin but did produce a decrease in the clearance of the less pharmacologically potent enantiomer of warfarin, (R)-warfarin. The decreased clearance of (R)-warfarin produced by concomitant enoxacin administration was found to be a consequence of inhibition by enoxacin of the (R)-6-hydroxywarfarin metabolic pathway.
The effect of sulfinpyrazone on the pharmacokinetics and disposition of the enantiomers of pseudoracemic phenprocoumon was assessed by analyzing serial plasma, urine, and fecal samples for parent drug and metabolites by GC/MS. Essentially all of the administered dose could be accounted for either as parent drug, known metabolites, or their conjugates. Phenprocoumon and the 7-hydroxymetabolite represented the major materials recovered. All drug-related materials excreted into the urine were extensively conjugated. Sulfinpyrazone treatment did not affect the hypoprothrombinemia produced by phenprocoumon nor did it significantly alter the plasma elimination kinetics of the individual (R)- and (S)-enantiomers. However, an apparent increased free fraction of both enantiomers in plasma and inhibition of 7-hydroxylation of (S)-phenprocoumon were observed in the presence of sulfinpyrazone. The results of this study are contrasted with those of a previous study on the interaction between sulfinpyrazone and the structurally similar coumarin anticoagulant warfarin.
The pharmacokinetics of imipenem and cilastatin were studied in a group of six healthy elderly male volunteers following the combined intravenous administration of 500 mg imipenem and 500 mg cilastatin sodium as either single or multiple (6 hourly for 6 days) 20 min constant-rate infusions. The pharmacokinetics of both imipenem and cilastatin in the elderly were similar to those of young individuals with mild renal failure (Verpooten et al., 1984). There was no change in the pharmacokinetics of either species with time following multiple-dosing. Correlations existed between total clearance and the glomerular filtration-rate (51Cr-EDTA) for both imipenem and cilastatin.
To allow the simultaneous evaluation of the interaction between sulfinpyrazone and each enantiomer of racemic warfarin, pseudoracemic warfarin (1:1 12C-R(+) and 13C-S(-)warfarin) was given to six normal subjects both before and during oral sulfinpyrazone dosing. Serial blood and urine samples were analyzed for unchanged warfarin and its metabolic products by GC/MS. A mass balance of an oral dose of pseudoracemic warfarin, containing a tracer quantity of 14C-warfarin, was carried out in one of the subjects by monitoring 14C levels in urine and feces for 15 days. Concomitant sulfinpyrazone dosing markedly increased hypoprothrombinemia, decreased clearance of (S)-warfarin, and increased clearance of (R)-warfarin. Sulfinpyrazone also decreased the urinary excretion of warfarin-related products but increased their fecal excretion by an equivalent amount. Virtually all of the administered warfarin dose could be accounted for either as unchanged drug or known metabolites. Pharmacokinetic analysis of the data suggests the following: At least four distinct enzymes (two oxidases and two reductases) are involved in the metabolism of warfarin. Sulfinpyrazone increases the hypoprothrombinemia caused by warfarin primarily by inhibition of the cytochrome P-450-mediated oxidation of (S)-warfarin, the biologically more potent enantiomer. The increased clearance of (R)-warfarin results not from induction, but from its selective displacement from plasma protein binding sites.
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