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Biomedical subjects

J H Cavanaugh

Publications and source records attributed to J H Cavanaugh.

At least 37 records · Page 2Linked to original sources

Lack of pharmacokinetic interaction between zileuton and phenytoin in humans.

A randomised double-blind crossover study was undertaken in 20 healthy adult male volunteers to assess the effects of multiple oral dose administration of zileuton (600mg every 6 hours for 8 days) on the single dose pharmacokinetics of phenytoin 300mg. Serial blood samples were collected up to 72 hours after phenytoin administration and plasma concentrations were determined by high performance liquid chromatography. Pharmacokinetic data were analysed utilising noncompartmental and Michaelis-Menten-based population pharmacokinetic analysis. Zileuton did not significantly alter the peak plasma concentration, time to peak plasma concentration, and area under the plasma concentration-time curve of phenytoin. Moreover, population analysis revealed no significant effect of zileuton on the Michaelis-Menten parameters of phenytoin. Thus, coadministration of multiple doses of zileuton (2.4 g/day) did not significantly affect the single dose pharmacokinetics of phenytoin.

Administration, Oral↗

Assessment of the pharmacokinetic interaction between zileuton and digoxin in humans.

The effects of coadministration of zileuton on the pharmacokinetic profile of digoxin were investigated in a double-blind placebo-controlled crossover study in 12 healthy male volunteers. During each study phase, the subjects received zileuton 600mg every 6 hours (regimen A) or placebo (regimen B) for 13 days. In addition, all subjects received concomitant digoxin 0.25 mg/day on study days 1 to 11 during both study phases. The study results provide no evidence of any significant overall effect of zileuton on digoxin plasma concentration-time profiles. Although the mean time to reach the maximum plasma concentration for digoxin was significantly shorter after concomitant administration of digoxin and zileuton than after concomitant administration of digoxin and placebo (0.95 vs 1.43 hours), there were no significant differences between the 2 regimens in the values for maximum plasma concentration, area under the plasma concentration-time curve from 0 to 24 hours, elimination half-life, oral clearance, and apparent volume of distribution associated with the terminal phase. Therefore, it is concluded that digoxin and zileuton may be coadministered without risk of clinically relevant effects on the pharmacokinetic profile of digoxin.

Administration, Oral↗

Pharmacokinetic interactions between zileuton and prednisone.

A randomized double-blind placebo-controlled crossover study evaluated the effects of zileuton 600mg 4 time daily on the pharmacokinetics of prednisolone after a single 400mg oral dose of prednisone. the effects of the single prednisone dose on the steady-state pharmacokinetics of zileuton were also evaluated. Multiple doses of zileuton had no significant effects on mean peak plasma concentration (Cmax), time to Cmax(tmax), or area under the plasma concentration-time curve from 0 to infinity (AUC0-infinity) values for prednisolone after oral administration of prednisone 40mg. A slight but statistically significant increase in the mean half-life (t1/2) of prednisolone was detected with zileuton + prednisone administration compared with prednisone + placebo (from 2.8 to 2.9 hours); however, this change was of no clinical relevance. Mean Cmax values of zileuton after coadministration with prednisone were similar to those of zileuton alone. While the single 40mg dose of prednisone resulted in a slight but statistically significant decrease in the mean zileuton AUC value from 0 to 6 hours (AUC0-6) [from 23 to 20 mg/L/h] and a reduction in tMAX (from 2.3 to 1.7 hours), these results were not considered to be clinically significant. Therefore, it is considered that zileuton and prednisone may be coadministered with minimal risk of a clinically significant pharmacokinetic interaction.

Administration, Oral↗

The pharmacokinetic and pharmacodynamic interactions between the 5-lipoxygenase inhibitor zileuton and the cyclo-oxygenase inhibitor naproxen in human volunteers.

The potential pharmacokinetic and pharmacodynamic interactions between zileuton, a 5-lipoxygenase inhibitor, and naproxen, a nonsteroidal anti-inflammatory drug that acts as a cyclo-oxygenase inhibitor, have been investigated in 24 healthy volunteers. Coadministration of these 2 drugs had no effect upon the plasma concentration-time curves of either zileuton (800mg) or naproxen (500mg) when compared with each drug administered alone. Both naproxen plasma concentrations during the elimination phase and area under the plasma concentration-time curve values were statistically significantly raised upon coadministration with zileuton, when compared with naproxen alone. However, these differences in these 2 values were sufficiently small to be of no clinical significance. There is no evidence that the combination of zileuton and naproxen had an effect on leukotriene B4 levels that was different from the inhibitory effect of zileuton alone, or had an effect on serum thromboxane B2 levels that was different from the effect of naproxen alone. Moreover, inhibition of the 5-lipoxygenase pathway by zileuton did not appear to aggravate the gastrointestinal adverse events commonly associated with naproxen administration. It is concluded that zileuton and naproxen may be coadministered with minimal risk of a clinically significant interaction.

Administration, Oral↗

Pharmacokinetics of valproate after multiple-dose oral and intravenous infusion administration: gastrointestinal-related diurnal variation.

A randomized, crossover study was conducted in healthy male volunteers to assess the diurnal variation in the steady-state pharmacokinetics of valproate after multiple 250-mg oral and intravenous infusion doses after an intravenous 750-mg loading dose. Multiple blood samples were collected throughout each 168-hour study period, and plasma valproate concentrations were quantitated using a gas chromatographic technique. Within-regimen comparisons indicated statistically significant differences for mean steady-state peak (Cmax) and trough (Cmin) plasma concentrations and area under the plasma concentration-versus-time curve (AUC) between the second and third doses on day 4 after oral dosing, indicating a diurnal variation in the rate of valproate absorption from the delayed-release tablet preparation. Between-regimen steady-state comparisons of pharmacokinetic parameters revealed some significant differences in mean time to Cmax (Tmax), Cmax, Cmin, AUC, and total body clearance for respective day-4 dosing intervals, but not for the entire day 4, except for Cmin and Tmax. Mean elimination rate constant and half-life did not significantly differ between the regimens. The regimens were bio-equivalent at steady state, as assessed by 90% confidence intervals (two one-sided test procedures) for Cmax, Cmin, and AUC, with similarity in degrees of fluctuation ((Cmax-Cmin)/Caverage). Despite the presence of diurnal variation in valproate absorption after oral dose administration, the steady-state plasma concentration-versus-time profile was well maintained by both regimens within the accepted therapeutic range of 50 to 100 micrograms/mL.

Administration, Oral↗

Effect of infusion duration on valproate pharmacokinetics.

The pharmacokinetics of intravenously administered valproic acid (VPA) were investigated in 16 healthy male volunteers in a single-dose, fasting, four-period, randomized, double-blind, placebo-controlled, parallel design study. Subjects were randomly assigned to be infused a single dose of sodium valproate equivalent to 1000 mg VPA or placebo over each of four different time periods. Valproate concentrations in plasma were determined using gas chromatography with flame ionization detection. The pharmacokinetic parameters were determined by both non-compartmental and model-dependent techniques. Analyses of variance (ANOVAs) were performed to detect any statistical differences among the regimens. Overall, the pharmacokinetic of valproate were similar after infusions of 5, 10, 30, and 60 min, with an average terminal-phase half-life of 15.9 h. There were modest differences in overall clearances among the regimens, with the 5 min infusion producing a mean area under the plasma concentration-time curve (AUC; 1877 micrograms.h ml-1) that was significantly (13 to 16 per cent) higher than the means for the longer infusions (1614-1656 micrograms.h ml-1). Differences in distribution were also noted as a function of infusion duration. The shortest duration produced a significantly smaller terminal volume of distribution (12.8 vs 14.2-15.1 l) and more rapid tissue equilibration. The alpha-phase rate constant declined from a mean of 5.1 h-1 after the 5 min infusion to a mean of 0.9 h-1 after the 60 min infusion. The distributional differences are almost certainly related to the saturable protein binding of valproate. However, the lower clearance after the 5 min infusion indicates that there may have also been partial saturation of one of the metabolic pathways of valproate during the distributive phase, and that the increase in fu was smaller than the decrease in CL'int, such that the product of fu.CL'int showed a net decrease.

Adolescent↗

Single- and multiple-dose pharmacokinetics of clarithromycin, a new macrolide antimicrobial.

The pharmacokinetics of clarithromycin and its active 14(R)-hydroxy metabolite were evaluated after single and multiple oral doses of 250 and 500 mg of clarithromycin. Multiple-dose regimens used 12-hour dosing intervals for 7 doses. Plasma and urine concentrations were measured using high-performance liquid chromatography. Appearance of clarithromycin and its metabolite in plasma were rapid, as reflected by mean times to maximum plasma concentration ranging from 1.8 to 2.6 and 1.8 to 2.9 hours, respectively. The rises in clarithromycin peak plasma concentration (Cmax) and area under the plasma concentration versus time curve (AUC) were disproportionate to increase in dose, suggesting nonlinearity in parent compound pharmacokinetics. Clarithromycin terminal disposition half-life (t1/2) also exhibited dose dependency, ranging from harmonic means of 2.7 to 4.8 hours. In contrast, based on Cmax AUC, and predicted/observed accumulation ratios, nonlinearity in metabolite pharmacokinetics was not observed. Plasma accumulation of metabolite occurred to a much lesser degree than that of the parent compound despite a substantially longer t1/2 for the metabolite (metabolite accumulation ratios based on AUC dose 7/AUC dose 1:250-mg regimen = 1.03 +/- 0.33, 500-mg regimen = 0.81 +/- 0.29, parent accumulation ratios: 250-mg regimen = 1.64 +/- 0.47, 500-mg regimen = 1.65 +/- 0.69). This would suggest that formation of this metabolite is capacity-limited and that this may in part account for the nonlinearity observed in clarithromycin pharmacokinetics. Urinary excretion constituted a relatively important route of elimination of clarithromycin, with renal clearance accounting for 17 to 31% of apparent total body clearance.

Administration, Oral↗

Gastrointestinal motor effects of erythromycin in humans.

The effects of an antibacterially effective IV dose of erythromycin on gastrointestinal motor activity were investigated in eight normal healthy human volunteers in the fasted state and the fed state. Motor activity was recorded by a multilumen manometric tube. Data were analyzed visually and by a computer method. Blood samples were obtained for erythromycin and motilin assays. In the gastric antrum, erythromycin significantly increased the total duration, amplitude, and area under contractions from 0 to 60 minutes and frequency of contractions from 0 to 30 minutes from the start of its infusion in the fasted state. A similar response in the fed state occurred mostly from 0 to 30 minutes after the start of erythromycin infusion. By contrast, erythromycin inhibited the frequency and decreased the duration of small intestinal contractions in the fed state but had no effect in the fasted state. The gastric motor response was related to the plasma concentration of erythromycin, but not to plasma motilin. Erythromycin significantly shortened the duration of migrating motor complex disruption by a meal. Erythromycin also induced symptoms of upper abdominal pain, bloating, and nausea. Abdominal pain was related to strong antral contractions in both fasted and fed states; bloating occurred only in the fed state. Nausea occurred in both fasted and fed states, but it was not related to any specific pattern of motor activity. It is concluded that the strong antral contractions induced by erythromycin may accelerate the rate of gastric emptying, but they may also be responsible for causing the sensations of upper abdominal pain and bloating. The motor response to erythromycin is less during the fed than during the fasted state. The strong antral contractions induced by erythromycin are not mediated by the release of motilin.

Abdominal Pain↗

Absorption characteristics of a new valproate formulation: divalproex sodium-coated particles in capsules (Depakote Sprinkle).

To determine the absorption characteristics of a new dosage form of divalproex sodium consisting of coated particles in a pull-apart capsule (Depakote Sprinkle, Abbott Laboratories, North Chicago, IL), two absorption studies were conducted in adult volunteers. Ten fasting men participated in a single-dose, crossover study comparing absorption from Sprinkle capsules versus enteric-coated tablets (study 1). Eleven men participated in a multidose study (study 2) in which Sprinkle capsules or enteric-coated tablets were given once every 24 hours for three doses under fasting and nonfasting conditions. In study 1, the extent of absorption from Sprinkle capsules equalled that from enteric-coated tablets. Compared to enteric-coated tablets, Sprinkle capsules had earlier absorption onset, 1 versus 2.6 hours (P less than .05), slightly slower absorption rate, time to reach peak (tmax) of 4.0 versus 3.4 hours (P less than .1), and lower maximum peak plasma drug concentration (Cmax), 20.7 versus 25.9 mcg/mL (P less than .05). In study 2, food intake did not affect onset or extent of absorption nor maximum concentration, but did slow rate of absorption. Time to reach peak concentration was 2.7 hours for tablet (fasting), 3.3 hours for capsule (fasting), and 4.8 hours for capsule (nonfasting) (P less than .05). Intrasubject absorption performance from the three doses was highly consistent, regardless of food intake. These data indicate that Sprinkle capsules possess desirable absorption characteristics in a form that makes ingestion easier for patients who have difficulty taking other valproate dosage forms.

Adolescent↗

Prolonged duration of blood pressure response to enalkiren, the novel dipeptide renin inhibitor, in essential hypertension.

The effects of sustained renin inhibition by repeated administration of enalkiren (A-64662), the novel dipeptide renin inhibitor, were evaluated in a randomized, double-blind, placebo-controlled, parallel-group study of 32 inpatients (eight per group) with essential hypertension who were maintained on a diet containing 60 meq/day sodium. Three different dosage regimens of enalkiren were studied: 1) 1.2 mg/kg quotid., 2) 0.3 mg/kg q.i.d., and 3) 0.1 mg/kg q.i.d. Each patient received an intravenous infusion every 6 hours for 1 week. Placebo infusions were used to mimic the 4 times/day dosing schedule. Blood pressure was measured periodically via 24-hour automated monitoring equipment. Mean plasma renin activity in the patient groups ranged from 1.58 to 2.68 ng angiotensin I/ml/hr. Plasma renin activity was promptly suppressed in all groups receiving enalkiren. Prolonged duration of plasma renin activity suppression (greater than or equal to 24 hours) was demonstrated after the administration of 1.2 mg/kg enalkiren. The 0.3 mg/kg q.i.d. and 1.2 mg/kg quotid. regimens produced statistically significant reductions (p less than or equal to 0.05) in systolic and diastolic blood pressures with clear evidence of persistent antihypertensive activity for 12 hours or more when compared with the placebo group. Despite relatively large reductions in mean systolic and diastolic blood pressure, mean pulse rates were essentially unchanged. The prolonged reduction in blood pressure with enalkiren without evidence of tachyphylaxis after 1 week of treatment suggests that renin inhibitors may emerge as useful therapeutic agents for the treatment of hypertension.

Adult↗

Beta-blocking effect of single oral doses of carteolol.

Carteolol is a nonselective beta-adrenergic blocking agent with intrinsic sympathomimetic activity. The duration of beta blockade after single oral doses of carteolol was studied in normal men for 72 hr by determining the heart rate response to an external stimulus, bolus intravenous isoproterenol, and an internal stimulus (graded treadmill exercise designed to achieve 85% of the subjects' maximal heart rate in 12 min). Each subject first received 5 mg of carteolol and then, at 3-wk intervals, 2.5, 15, and 60 mg carteolol and placebo in a randomized, double-blind fashion. Beta blockade was maximal 1 to 2 hr after dosing and the heart rate response to isoproterenol and exercise remained less (P less than 0.05) than placebo responses for the 72 hr after each dose of carteolol. The double product (maximal exercise heart rate x systolic blood pressure during the twelfth minute of exercise) was below (P less than 0.05) baseline values for 24 hr after all doses, for 48 hr after 15 mg, and for 72 hr after 60 mg of carteolol.

Administration, Oral↗

Trials with an adenosine analogue as antianginal medication.

The potential antianginal effects of orally administered ethyl-adenosine-5-carboxylate hydrochloride (EACH) were assessed in 9 patients with stable angina pectoris who underwent two standardized exercise tests for 3 consecutive days. The first daily exercise performed after placebo revealed no daily variation. The second test was preceded by placebo, 26 mg EACH or 33 mg EACH administered in a double-blind fashion with the use of crossover design. After the completion of the study in the first 6 patients, the 33-mg dose of EACH had to be discontinued because 3 patients had severe angina and another one had nausea and diffuse numbness after this dose. In the remaining 3 patients a 6-mg dose of EACH was used instead of 33 mg, after which the study was terminated because no difference could be determined. EACH, 26-mg and 6-mg, had no significant effect on resting and exercise heart rate, on blood pressure, on onset or duration of angina and positive-exercise electrocardiogram, or on exercise duration. Our study revealed that EACH had no potential antianginal effect and that at a dosage of 33 mg it may induce angina.

Adenosine↗

Effects of a false neurotransmitter, p-hydroxynorephedrine, on the function of adrenergic neurons in hypertensive patients.

Previous studies have shown that amphetamine and p-hydroxyamphetamine impair adrenergic transmission, and it has been suggested that this effect is mediated by an active metabolite, p-hydroxynorephedrine (PHN). Studies in experimental animals have shown that PHN can deplete and substitute for norepinephrine (NE) in the transmitter pool, thus meeting the criteria of a false neurotransmitter. The pharmacologic effects of PHN on adrenergic function and NE synthesis were studied in eight hypertensive patients and compared with placebo. Mean erect and supine blood pressure (BP) decreased 22/14 and 9/6 mm Hg, respectively, during PHN 600 mg daily. The post-Valsalva diastolic overshoot was abolished. The pressor sensitivity to tyramine decreased whereas the pressor response to NE was enhanced. A mild natriuresis occurred. The 24 h urinary excretion of catecholamines and catecholamine metabolites during the administration of PHN compared with placebo changed as follows: vanillylmandelic acid (VMA), 42% decrease; NE. 42% decrease; normetanephrine (NM), 400% increase: metanephrine, unchanged; dopamine, 40% decrease; while homovanillic acid was unchanged. The sum of VMA, NE, and NM decreased 23%. The posttreatment urinary excretion of PHN was biexponential with first and second phase half-lives of 13 and 55 h. respectively. The time of the second phase closely approximated the recovery of the changes in BP and excretion of VMA. No effects of PHN on the central nervous system were observed. These studies show that PHN acts peripherally to interfere with adrenergic function and NE synthesis in hypertensive patients with a resultant decrease in BP.

Adult↗

Guanethidine and related agents. 3. Antagonism by drugs which inhibit the norepinephrine pump in man.

Antagonism of the antihypertensive action of guanethidine by the tricyclic antidepressants, desipramine and protriptyline, has been demonstrated in controlled studies. These antidepressants also prevent the effect of the related ring-substituted guanidinium adrenergic neuron blockers, bethanidine and debrisoquin. That the rise in blood pressure when desipramine is added to guanethidine therapy is not due simply to a pressor action of the two drugs in combination was demonstrated by the lack of an increase in blood pressure when guanethidine was added to desipramine therapy. Investigations were conducted to determine whether antagonism of guanethidine's clinical effect could result from blockade by the tricyclic antidepressants of the norepinephrine pump in the adrenergic neuron membrane, thereby preventing the uptake of guanethidine into the neuron by this pump. Like guanethidine, the indirectly acting pressor amine, tyramine, enters the neuron via the norepinephrine pump. Desipramine, protriptyline, and amitriptyline in clinical doses all were found to block the pressor action of tyramine while potentiating the pressor effect of norepinephrine. The amino acid, methyldopa, does not enter the neuron via the norepinephrine pump, and its antihypertensive action is not altered by concomitant administration of tricyclic antidepressants. It is concluded from the evidence in this investigation together with the results of previous studies in experimental animals that clinical doses of desipramine-like drugs inhibit the norepinephrine pump in the peripheral adrenergic neuron in man and thereby prevent uptake of guanethidine to its site of action.

Antidepressive Agents↗