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Biomedical subjects

P K Honig

Publications and source records attributed to P K Honig.

At least 19 recordsLinked to original sources

Temporal decline in filling prescriptions for terfenadine closely in time with those for either ketoconazole or erythromycin.

Temporal changes in the rates of filling terfenadine prescriptions within 2 days of those for either oral erythromycin or oral ketoconazole were described with use of paid pharmacy claims data from 1988 through 1994 in state Medicaid programs from Michigan and Ohio and in a large health maintenance organization. There were rapid and significant declines in the rates of filling prescriptions for either erythromycin or ketoconazole within 2 days of prescriptions for terfenadine in all three databases that coincided with 1992 publicity about the cardiovascular risk of terfenadine. These findings suggest that the use of terfenadine with contraindicated medications has declined in response to relabeling and publicity concerning the safe use of terfenadine. Further study is necessary to estimate the absolute level of concurrent use of terfenadine with contraindicated medications.

Adolescent↗

Grapefruit juice alters the systemic bioavailability and cardiac repolarization of terfenadine in poor metabolizers of terfenadine.

A prospective cohort study was conducted to examine the effects of double-strength grapefruit juice on the pharmacokinetics and electrocardiographic repolarization pharmacodynamics of terfenadine in poor metabolizers of terfenadine. Six healthy volunteers who were previously found to be poor metabolizers of terfenadine were studied, with each participant serving as his or her own control. In phase I of the study, terfenadine was given to participants at recommended dosages until steady state was achieved (60 mg twice daily for 7 days). In phase II, participants began receiving concomitant twice-daily, double-strength servings of grapefruit juice for 7 days. Serial pharmacokinetic and pharmacodynamic determinations were made after each phase of the study. The main outcome measures were serum concentrations of terfenadine and terfenadine acid metabolite, and corrected QT intervals as determined by 12-lead electrocardiogram. Significant changes occurred in time to maximum concentration (t(max)) and area under the concentration-time curve (AUC) of terfenadine and terfenadine acid metabolite after addition of grapefruit juice. All participants had detectable concentrations of unmetabolized terfenadine at the end of Phase I, which were quantified in three of the six participants. Further, all participants had increased and quantifiable levels of unmetabolized terfenadine after addition of grapefruit juice that were associated with prolongation of the QT interval relative to the baseline control period without terfenadine. Grapefruit juice did not alter the elimination half-life (t1/2) of terfenadine acid metabolite. Because of the intraindividual variability in the pharmacokinetics of terfenadine, further study is needed to confirm these results.

Adolescent↗

Grapefruit juice alters terfenadine pharmacokinetics, resulting in prolongation of repolarization on the electrocardiogram.

OBJECTIVES: To establish whether the pharmacokinetics and electrocardiographic pharmacodynamics of terfenadine are affected by concomitant administration of grapefruit juice and to determine whether any effect of grapefruit juice is dependent on the timing of administration in relation to the dose of terfenadine. METHODS: Twelve healthy volunteers were studied in a prospective randomized trial. The primary end points were QT prolongation on the surface electrocardiogram and the pharmacokinetic parameters: area under the concentration-time curve (AUC), maximum concentration, and time to maximum concentration of terfenadine and its acid metabolite terfenadine carboxylate. All subjects received 60 mg terfenadine twice a day with 240 ml water for 7 days. They were then randomized to drink 240 ml of double-strength grapefruit juice simultaneously with terfenadine (simultaneous group) for an additional 7 days or to drink the same dose of grapefruit juice 2 hours after terfenadine for 7 days (delayed group). Twelve timed electrocardiograms and plasma terfenadine and metabolite levels were measured on days 7 and 14. RESULTS: None of the 12 subjects had quantifiable levels of terfenadine when the drug was administered with water. All six subjects who took terfenadine and drank grapefruit juice simultaneously had quantifiable terfenadine levels. Only two of six who drank grapefruit juice 2 hours after terfenadine had quantifiable levels. The AUC of the acid metabolite increased 55% (p < 0.05) in the simultaneous group and 22% (p = NS) in the delayed group. The mean QT interval increased from 420 to 434 msec (p < 0.05) in the simultaneous group and decreased from 408 to 407 msec (p = NS) in the delayed group. CONCLUSIONS: Administration of grapefruit juice concomitantly with terfenadine may lead to an increase in systemic terfenadine bioavailability and result in increases in QT interval. The clinical significance of an increase in QT interval of this magnitude is unclear.

Adult↗

Drug interactions between prescribed and over-the-counter medication.

The use and availability of over-the-counter (OTC) medication is increasing. Although regulatory agencies take care to assure than nonprescription medications are safe and effective, these drugs still have the potential to have clinically significant interactions with prescription medicines. The major classes of OTC medication to be considered in this light include antacids, histamine H2 receptor antagonists, NSAIDs, cough and cold preparations and the antiasthma products. Healthcare providers and patients/consumers should be educated regarding possible drug interactions, patient drug regimens should be simplified where possible, and all therapeutic failures and adverse reactions should be investigated with regard to the potential contribution of OTC drug products. Regulatory agencies and pharmaceutical manufacturers should ensure that nonprescription drug labelling is complete and intelligible to meet these objectives. Consideration should be given to improving the postmarketing surveillance of OTC medications.

Antacids↗

Itraconazole affects single-dose terfenadine pharmacokinetics and cardiac repolarization pharmacodynamics.

The object of this study was to examine prospectively the effects of itraconazole on the pharmacokinetics and electrocardiographic repolarization pharmacodynamics (QTc intervals) of single-dose terfenadine in six healthy volunteers. It was designed as a prospective cohort study with each subject serving as his own control, set in an outpatient cardiology clinic. The participants were six healthy volunteers (two men, four women; ages 24-35) not taking any prescription or over-the-counter medications. Single-dose terfenadine administration (120 mg) was accompanied by pharmacokinetic profiles and serial determination of the QTc interval for 12 hours. The subjects then began daily oral itraconazole (200 mg each morning) for 7 days. Repeat pharmacokinetic and pharmacodynamic determinations were made after administration of a second dose (120 mg) of terfenadine while receiving itraconazole. The main outcome measures were terfenadine and acid metabolite serum concentrations; corrected QT intervals as determined by 12-lead electrocardiogram (ECG); and presence or absence of late potentials as determined by signal-averaged ECGs over 150 cardiac cycles. There were significant changes in the pharmacokinetic parameters of acid metabolite after treatment with itraconazole. All subjects had detectable levels of unmetabolized terfenadine after addition of itraconazole, which was associated with QT prolongation. There was no evidence of late depolarization as manifested by an increase in QRS duration found using signal-averaged electrocardiography. Itraconazole influences the metabolism of terfenadine in normal volunteers and results in the accumulation of unmetabolized parent drug associated with altered cardiac repolarization. This drug combination should be avoided.

Adult↗

Effect of concomitant administration of cimetidine and ranitidine on the pharmacokinetics and electrocardiographic effects of terfenadine.

Terfenadine is a widely prescribed non-sedating antihistamine which undergoes rapid and almost complete first pass biotransformation to an active carboxylic acid metabolite. It is unusual to find unmetabolised terfenadine in the plasma of patients taking the drug. Terfenadine in vitro is a potent blocker of the myocardial potassium channel. Overdose, hepatic compromise and the coadministration of ketoconazole and erythromycin result in the accumulation of terfenadine, which is thought to be responsible of QT prolongation and Torsades de Pointes ventricular arrhythmia in susceptible individuals. Cimetidine and ranitidine are two popular H2 antagonists which are often taken with terfenadine. The effects of cimetidine and ranitidine on terfenadine metabolism were studied in two cohorts of 6 normal volunteers given the recommended dose of terfenadine (60 mg every 12 h) for 1 week prior to initiation of cimetidine 600 mg every 12 h or ranitidine 150 mg every 12 h. Pharmacokinetic profiles and morning pre-dose electrocardiograms were obtained whilst the patients were on terfenadine alone and after the addition of cimetidine or rantidine. One of the subjects in each cohort had a detectable plasma level of parent compound after 1 week of terfenadine therapy alone; it did not accumulate further after addition of the H2 antagonist. The pharmacokinetics of the carboxylic acid metabolite of terfenadine (Cmax, tmax, AUC) were not significantly changed after co-administration of either H2 antagonist. None of the remaining 5 subjects in either cohort demonstrated accumulation of unmetabolised terfenadine after addition of the respective H2 antagonist and electrocardiographic QT intervals and T-U morphology in them was not changed during the course of the study.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent↗

The effect of fluconazole on the steady-state pharmacokinetics and electrocardiographic pharmacodynamics of terfenadine in humans.

Terfenadine is rapidly and nearly completely biotransformed during a first pass to an active acid metabolite. Accumulation of unmetabolized terfenadine has been associated with altered cardiac repolarization. Drug-drug interactions resulting in the accumulation of terfenadine have been reported for ketoconazole and erythromycin. Six subjects were given the recommended dose of terfenadine (60 mg every 12 hours) for 7 days before initiation of oral fluconazole (200 mg once daily). The mean metabolite area under the concentration-time curve increased by 34% and the time to maximum concentration of the metabolite was delayed from 2.3 to 4 hours by concurrent fluconazole. Unmetabolized terfenadine was not present in any subject, and cardiac repolarization was not significantly changed from baseline during any phase of the study. We conclude that a pharmacokinetic interaction between terfenadine and fluconazole exists; however, the absence of accumulation of parent terfenadine in plasma suggests that a clinically significant interaction is unlikely.

Adult↗

Changes in the pharmacokinetics and electrocardiographic pharmacodynamics of terfenadine with concomitant administration of erythromycin.

Terfenadine is a nonsedating H1-antagonist that when overdosed, used with hepatic compromise, or when given with ketoconazole results in accumulation of parent terfenadine, prolongation of the QT interval, and torsades de pointes in susceptible patients. Nine subjects were given the recommended dose of terfenadine (60 mg every 12 hours) for 7 days before initiation of oral erythromycin (500 mg every 8 hours). All subjects increased metabolite concentrations after the addition of erythromycin for 1 week. The maximum concentration of metabolite increased by a mean of 107% and the mean metabolite area under the concentration-time curve increased by 170%. Three subjects accumulated unmetabolized terfenadine after administration of erythromycin for 1 week. Electrocardiographic data revealed changes in QT intervals and ST-U complexes in a subset of subjects who accumulated terfenadine. We conclude that erythromycin alters the metabolism of terfenadine, leading to accumulation of terfenadine in certain individuals that is associated with altered cardiac repolarization.

Administration, Oral↗