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Biomedical subjects

M J Mattila

Publications and source records attributed to M J Mattila.

At least 19 recordsLinked to original sources

150 mg fluconazole does not substantially increase the effects of 10 mg midazolam or the plasma midazolam concentrations in healthy subjects.

Fluconazole, an azole antifungal agent, moderately inhibits the CYP3A-mediated metabolism of midazolam in vitro. We therefore studied whether such an interaction takes place in vivo following oral administration of these drugs, given as relevant double blinded doses in capsule form. In study I parallel groups of healthy subjects received oral midazolam 10 mg (MID 10) or 15 mg (MID 15), placebo, or MID 10 mg + 150 mg fluconazole (FLU) given 2 h earlier. Objective and subjective performance tests were made before, and 30 and 90 min after the intake of midazolam. MID 10 and MID 15 moderately impaired performance on digit symbol substitution, letter cancellation and flicker fusion tests, and visual analogue scales revealed mild sedation. FLU + MID 10 had similar or slightly stronger effects than MID 10; it differed from MID 10 in that it lowered the flicker fusion threshold and produced subjective slowness and overall impairment. In study II 5 subjects received MID 10 after placebo, after FLU, and after 750 mg erythromycin (ERY) at 1-week intervals, following a crossover and double-blinded study design. Blood was sampled before MID intake and 30, 60 and 90 min after it, and performance was measured. FLU and ERY increased the effect of MID on flicker fusion and letter cancellation performances, and increased the HPLC-assayed plasma midazolam (ERY + 100%, FLU + 50%) in comparison to that measured after MID ingested alone. When the concentrations of midazolam together with its active metabolite alpha-OH-midazolam were assayed by radioreceptor technique the increases caused by ERY and FLU were less and compatible with the pharmacodynamic data.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Suriclone enhances the actions of chlorpromazine on human psychomotor performance but not on memory or plasma prolactin in healthy subjects.

Twelve healthy subjects received single oral doses of 0.4 mg suriclone (SU), 7.5 mg zopiclone (ZO) and placebo, alone and together with 50 mg chlorpromazine (CP), double blind and crossover, in Latin square order, at one-week intervals. Performance tests administered before and 1.5, 3.5 and 6 h after drug intake included digit symbol substitution and simulated driving combined in a "Global test", flicker fusion frequency, body balance and memory and subjective assessments. Changes from baseline were examined statistically. Performance and memory data were analysed from only 11 subjects. Compared to placebo, SU minimally affected "global" performance, although it slowed reactions and tended to impair digit substitution. ZO impaired "global" performance at 1.5 h, affected performance in several separate tests, and produced subjective muzziness. CP did not impair "global" performance, although it did impair digit substitution and render the subjects drowsy, weak and dreamy. The combinations SU + CP and ZO + CP definitely impaired "global" performance more than CP alone. This difference was also found in most objective tests but less so in the subjective tests. CP and its combinations produced similar increases in plasma prolactin. Active drugs and their combinations variably lowered blood pressure and increased heart rate, and one subject collapsed after CP. The treatments irregularly impaired spatial memory and learning acquisition. No pharmacokinetic interactions were seen in the plasma levels of suriclone, zopiclone and chlorpromazine. The impairment of performance after these combinations resembles that previously encountered after 2.5 mg lorazepam, or 15 mg diazepam + 100 mg remoxipride.

Adult

Azithromycin does not alter the effects of oral midazolam on human performance.

Since macrolide antibiotics inhibit the oxidative hepatic metabolism of various drugs, including midazolam, the present double blind studies were conducted to find out if azithromycin, a new macrolide of the azalide type, would inhibit the metabolism of midazolam and enhance the effects of midazolam on human performance. In Study I, 64 healthy medical students, divided in four parallel groups received placebo, midazolam (10 mg or 15 mg), and midazolam 10 mg combined with azithromycin (500 mg + 250 mg). In Study II, three males received oral midazolam 10 mg in combination with placebo, azithromycin or erythromycin 750 mg (as a positive control) in a cross-over trial. Objective and subjective tests were done before the intake of midazolam and 30 and 90 min after it, and venous blood was sampled for the assay of midazolam. In the placebo group in Study I, the mean numbers of letters cancelled (LC) at baseline, 30 min and 90 min were 21, 20 and 20, respectively, and the corresponding mean numbers of correct digit symbol substitutions (DSS) were 126, 137 and 140, indicating a practice effect. Midazolam 10 mg impaired these performances (21, 13 and 12 for LC, and 127, 113 and 111 for DSS). Either dose of midazolam produced clumsiness, mental slowness and poor subjective performance, midazolam 15 mg being slightly more active. The corresponding, scores in the azithromycin+midazolam group were 21, 16, 16 for LC, and 132, 121 and 119 for DSS, the only significant difference from placebo being the impairment of DSS at 90 min.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Ethanol antagonism by atipamezole on motor performance in mice.

The interactions of an alpha 2-adrenoceptor antagonist, atipamezole, and an alpha 2-adrenoceptor agonist, dexmedetomidine, with ethanol were studied in male NIH Swiss mice. The mice were given (i.p.) atipamezole 0.1, 0.3, 1, 3 and 10 mg/kg and dexmedetomidine 0.01, 0.03, 0.1, 0.3, 1, 3 and 10 mg/kg; the ethanol doses were 1, 2 or 3 g/kg. Motor performance was measured by spontaneous locomotor activity and rotarod test. Dexmedetomidine impaired performance in both tests. The effect of dexmedetomidine peaked at the dose of 1 mg/kg. Three mg/kg of atipamezole abolished totally the effects of 0.3 mg/kg of dexmedetomidine and partially those of 1 mg/kg of dexmedetomidine. Atipamezole counteracted and dexmedetomidine enchanced ethanol effects in both tests. The interactions were not of pharmacokinetic origin since blood and brain ethanol and dexmedetomidine levels were unaltered at the time of testing. The results suggest that ethanol effects on motor performance in mice are mediated in part via central noradrenergic mechanisms, and blockade of alpha 2-adrenoceptors by atipamezole leads to considerable antagonism of these ethanol effects.

Adrenergic alpha-Agonists

Pharmacokinetics of oxicam nonsteroidal anti-inflammatory agents.

Oxicam nonsteroidal anti-inflammatory drugs (NSAIDs) are a group of structurally closely related substances with anti-inflammatory, analgesic and antipyretic activities. They have a weakly acidic character and are extensively bound to plasma proteins. Piroxicam, the most widely used oxicam, is well absorbed after oral administration. Peak plasma concentrations (Cmax) of the drug are reached within 2 to 4 hours. Piroxicam has a small volume of distribution and a low plasma clearance. It undergoes hepatic metabolism and only 5 to 10% is excreted unchanged in urine. The elimination half-life varies between 30 and 70 hours. Age of the patient and renal or hepatic dysfunction do not seem to have any major effect on the pharmacokinetics of piroxicam. The drug reduces the renal excretion of lithium to a clinically significant extent, but the clinical significance of piroxicam-aspirin (acetylsalicylic-acid) and piroxicam-acenocoumarol interaction has not been established. Ampiroxicam, droxicam and pivoxicam are prodrugs of piroxicam that have been synthesised to reduce piroxicam-related gastrointestinal irritation. All prodrugs are well absorbed, but Cmax values are reached later than those following administration of piroxicam. Tenoxicam is used in the management of rheumatic and inflammatory diseases. Mean Cmax values are achieved 2 hours postdose. Food reduces the rate but not the extent of absorption. The oral bioavailability of tenoxicam is 100% and rectal bioavailability is 80%. Like piroxicam, tenoxicam has a low volume of distribution and low plasma clearance. It is eliminated through hepatic metabolism. The mean elimination half-life is 60 to 75 hours. The pharmacokinetics of tenoxicam are independent of patient age, or concurrent liver or renal diseases. High doses of aspirin have been shown to increase the elimination of tenoxicam, but this has little clinical significance. Isoxicam was in widespread clinical use until its worldwide marketing was suspended because of fatal skin reactions. Isoxicam is completely absorbed, but Cmax values are not reached until 10 hours postdose. It has a low plasma clearance, approximately 5 ml/min (0.3 L/h), and low volume of distribution. The mean elimination half-life is 30 hours and does not appear to be affected by the age of the patient. Isoxicam potentiated the anticoagulant effect of warfarin, necessitating a 20% dosage reduction. Lornoxicam differs from other oxicam NSAIDs because it has a short elimination half-life of 3 to 4 hours. On the basis of limited data, some individuals seem to eliminate lornoxicam very slowly, suggesting the presence of polymorphic metabolism. The pharmacokinetics of cinnoxicam and sudoxicam have not been studied thoroughly.(ABSTRACT TRUNCATED AT 400 WORDS)

Aging

Diazepam effects on the performance of healthy subjects are not enhanced by treatment with the antihistamine ebastine.

1. We have given 12 healthy subjects the H1-antihistamine ebastine (20 mg) or placebo in a randomized double-blind and crossover study for 1 week each. The subjects were tested for drug effects on day 6 of each period, and for interactions of ebastine with oral 15 mg diazepam (DZ) on day 7. On both days, the testing runs were at baseline and 1.5, 3, 4.5 and 6 h after intake. 2. The performance was evaluated both objectively (digit symbol substitution, flicker fusion, Maddox wing, simulated driving, body balance) and subjectively (visual analogue scales, questionnaires). Venous blood was sampled daily during the maintenance and during each testing round for the assay of plasma carebastine (the active metabolite of ebastine) by high pressure liquid chromatography and plasma diazepam by radioreceptor assay. Three-way ANOVA, paired t-test, Wilcoxon rank sign test and Fisher's fourfold table test were used for data analysis. 3. Plasma carebastine reached steady levels from day 3 onwards. The mean concentrations in the morning were 82 micrograms l-1 on day 6 and 85 micrograms l-1 on day 7. The rise (+ 150%) in plasma carebastine after an extra 20 mg ebastine was not modified by DZ. Ebastine did not affect performance objectively or subjectively, yet borderline drowsiness was recorded during the first 3 h. On day 7, plasma DZ concentrations peaked (mean 480 micrograms l-1) at 1.5 h after the intake. DZ produced impaired performance in various objective tests, and drowsiness, weakness, clumsiness, mental slowness and poor performance were reported on visual analogue scales.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral

Oral single doses of erythromycin and roxithromycin may increase the effects of midazolam on human performance.

Macrolide antibiotics are known to inhibit the metabolism of triazolam and midazolam in vitro and in vivo. To find out if significant interactions take place after single oral doses of these agents to man, 0.25 mg triazolam and 5, 10 and 15 mg of midazolam in capsule from were given with and without 750 mg erythromycin or 300 mg roxithromycin to parallel groups of healthy subjects in four placebo-controlled double-blind studies. Objective tests and subjective assessments were made before the intake of hypnotics and 30 and 90 min after it. In Study I, triazolam impaired letter cancellation, the combination triazolam+erythromycin impaired digit symbol substitution and letter cancellation, and triazolam+roxithromycin impaired digit symbol substitution, all at 90 min. In Study II, midazolam 5 mg and midazolam 10 mg proved quite inert but the combination midazolam 5 mg+erythromycin impaired digit symbol substitution. In Study III, both midazolam 10 mg and midazolam 15 mg impaired digit substitution and letter cancellation, the effects of 15 mg being more prominent. The strongest drug effects were found with midazolam 10 mg+erythromycin which differed from placebo and midazolam (10 mg and 15 mg) in several objective and subjective test variables. In Study IV, the combination midazolam 10 mg+roxithromycin impaired several objective and subjective variables but it was not stronger than midazolam 15 mg. These results were supported by the direct measurements of plasma midazolam in three subjects: erythromycin increased plasma midazolam more than roxithromycin and enhanced midazolam effects following the intake of midazolam 10 mg.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Oral

Lack of pharmacodynamic and pharmacokinetic interactions of the antihistamine ebastine with ethanol in healthy subjects.

We have given 12 healthy subjects the H1-antihistamine ebastine (20 mg) or placebo in a double-blind, crossover study for one week each. The subjects were tested for drug effects on Day 6 of each period, and for interactions of ebastine with ethanol (0.8 g.kg-1) on Day 7. On both days, the testing runs were done at baseline and at 2, 4, and 6 h after the drug. Performance was evaluated both objectively (digit symbol substitution, flicker fusion, Madox wing, nystagmus, simulated driving, body balance) and subjectively (visual analogue scales) and with questionnaires. Venous blood samples were taken daily during maintenance and during each test run for assay of plasma carebastine. Blood ethanol concentrations were assayed with an Alcolmeter in the breath and directly in the blood. Plasma carebastine concentration reached a steady-state from Day 3 on; the mean concentrations in the morning were 92 micrograms.l-1 on Day 6 and 104 micrograms.l-1 on Day 7. The rise in plasma carebastine after an extra 20 mg of ebastine was accelerated but not increased by ethanol. Ebastine did not impair performance objectively or subjectively. It slightly improved body balance and reduced errors during simple tracking at 4 h. Blood ethanol concentrations peaked (mean 0.76 g.l-1) at 1.5 h after ethanol intake. Ethanol impaired performance in most objective tests and produced clumsiness, muzziness, and mental slowness, but little drowsiness. Ebastine neither modified the blood ethanol concentrations nor increased the effects of ethanol.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Caffeine moderately antagonizes the effects of triazolam and zopiclone on the psychomotor performance of healthy subjects.

To determine whether caffeine antagonizes the decremental effects of triazolam and zopiclone on human performance, oral single doses of 0.250 mg triazolam, 7.5 mg zopiclone, or respective placebos, with and without 300 mg caffeine, were given to parallel groups of student volunteers in two double-blind studies. Objective tests and subjective visual analogue ratings were done at baseline and 30 min. and 90 min. after the intake. In Study I, triazolam produced drowsiness at 30 min. but did not differ from the placebo in other tests. Caffeine induced alerting effects in various tests and differed from triazolam in some (digit substitution, drowsiness, calmness, mental slowness) but not all variables measured. Caffeine and triazolam were interpreted as being antagonists. In Study II, zopiclone impaired digit substitution and flicker fusion, produced exophoria and lowered systolic blood pressure. Caffeine differed from zopiclone in several test functions, but it also differed from caffeine + zopiclone whereas zopiclone differed from caffeine + zopiclone only in two tests (Maddox wing, systolic blood pressure). Thus, zopiclone counteracted the effects of caffeine more easily than caffeine counteracted the decremental effects of zopiclone. We conclude that triazolam may not differ importantly from diazepam as regards their antagonism towards caffeine, whereas further research on the antagonism between zopiclone and caffeine needs to be done.

Anti-Anxiety Agents

Steady state pharmacokinetics of piroxicam in children with rheumatic diseases.

Ten children with rheumatoid arthritis, aged 7-16 y and weighing 20-63 kg, were treated with piroxicam mean dose 0.4 mg.kg-1 once daily for 2 weeks. On Day 15, blood was sampled from 2-120 h after the last dose. The Cmax for piroxicam ranged from 3.6 to 9.8 (mean 6.6) mg.l-1 and its half-life by log linear computation was 22 to 40 (mean 32.6) h. The volumes of distribution and the total body clearance were estimated as the ratio of actual volumes of distribution and actual clearances to availability. The volumes of distribution (V/F) were 0.12 to 0.25 (mean 0.16) l.kg-1, and the total body clearances (CL/F) were 2.1 to 5.0 (mean 3.4) ml.kg-1.h-1. Thus, piroxicam clearance in these patients was higher and its half-life was shorter than those previously reported in young adults, yet V appeared similar.

Adolescent

Effect of dexmedetomidine and midazolam on human performance and mood.

The effects of dexmedetomidine (DXM), a novel alpha 2-adrenoceptor agonist, on human performance and mood were studied in a double-blind randomized crossover study in 12 healthy student volunteers. Single IM doses of dexmedetomidine, 0.6 microgram/kg (DXM1) and 1.2 micrograms/kg (DXM2), 80 micrograms/kg midazolam (MID) and saline placebo, were given at one-week intervals. Performance was measured objectively and mood was assessed subjectively with visual analogue scales (VAS) at baseline and 40 min, 2 h, 4 h and 6 h after each injection. Blood pressure and heart rate in the sitting position were measured and venous blood was sampled during each testing round. DXM1 did not significantly impair cognitive (digit symbol substitution), coordinative (tracking) or reactive skills, and at 6 h it shortened reaction time and reduced errors in complex tracking. It produced exophoria, increased body sway with the eyes open and impaired subjective performance on VAS. The higher dose dexmedetomidine also caused impaired cognitive, coordinative and reactive skills (although a trend towards improved coordination was found at 6 h), reduced attention, produced exophoria, increased body sway with the eyes open and caused drowsiness, clumsiness, passiveness and mental slowness on the appropriate VAS scales. MID resembled DXM2 in impaired objective and subjective measures of skilled performance, although the objective effects of MID were of speedier onset and shorter duration. In contrast to MID, DXM caused a significant and dose-dependent decrease in systolic and diastolic blood pressure still detectable 6 h after injection.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenergic alpha-Agonists

Efficacy and side-effects of prazosin as a symptomatic treatment of benign prostatic obstruction.

This randomized double-blind crossover trial was conducted to assess the effects of prazosin, an alpha 1-adrenoceptor blocking drug, on the voiding of 35 patients with benign prostatic obstruction. Maximum and mean flow rates, residual urine, blood pressure and heart rate were measured at baseline and 2, 4, 6, and 8 weeks after starting the treatment with placebo or prazosin. At 4 weeks the treatments were switched over. The patients filled micturition charts at home and scored their voiding associated feelings. The maximum and mean flow rates increased significantly during prazosin treatment, as also did the maximum and mean voided volumes. Residual urine decreased and voiding improved subjectively but these changes were not statistically significant. Blood pressure was lowered and heart rate increased. Prazosin caused postural dizziness more often than placebo. Prazosin seems to offer an alternative to improve voiding in some patients with prostatic obstruction.

Aged

Actions of zopiclone and carbamazepine, alone and in combination, on human skilled performance in laboratory and clinical tests.

1. Possible interactions of zopiclone and carbamazepine on human skilled performance were studied in a randomized, double-blind, crossover trial with 12 healthy young subjects. 2. Psychomotor performance (coordination, reactions, attention, cognition) and subjective effects (VAS) were measured and venous blood sampled before and 1.5, 3, 4.5 and 6 h after single oral doses of placebo, 7.5 mg of zopiclone and 600 mg of carbamazepine, which were given alone or combined. Clinical test for drunkenness (CTD) was done 2 and 5 h after drug intake. 3. Both zopiclone and carbamazepine, when administered alone, impaired performance on laboratory tests, the decrements being recorded 1.5 to 6 h after intake. In line with the plasma concentrations, the zopiclone effects peaked earlier (at 1.5 h) and lasted for a shorter time than those of carbamazepine. Zopiclone had a more pronounced effect on perceptual and cognitive functions (digit substitution) and it affected extraocular muscle tone (Maddox wing), whereas carbamazepine had stronger effects on attention. Additive pharmacodynamic actions were found in most tests after the combined treatment with zopiclone and carbamazepine. 4. CTD proved to be less sensitive than the laboratory tests in revealing drug-induced decrement of performance after administration of one agent alone. However, it revealed the combined decremental effects of zopiclone and carbamazepine. 5. When the drugs were given together, the absorption of drugs was retarded. Carbamazepine-10,11-epoxide levels were lower after intake of the drug combination than those measured after intake of carbamazepine alone. 6. The results suggest that the clinical tests developed to detect alcohol effects do not necessarily reveal drug-induced impairment of performance.

Adult

Effects of remoxipride on psychomotor performance, alone and in combination with ethanol and diazepam.

The effects of remoxipride, alone and in combination with ethanol and diazepam, on sensory, cognitive, and neuromotor performance were studied in 12 healthy volunteers (7 men, 5 women). The study was of double-blind randomized, crossover design with each subject receiving six different single-dose experimental treatments at six sessions. Tests of sensory, cognitive, and neuromotor functions were carried out, together with subjective assessments. Remoxipride alone seemed to have no effect on the sensory functions measured, but it affected cognitive and neuromotor functions to a limited extent. In general the effects of ethanol and diazepam alone were more pronounced than those of remoxipride. When remoxipride was combined with either ethanol or diazepam, there was a tendency for the effect to be additive.

Administration, Oral

Morphine and oxycodone in the management of cancer pain: plasma levels determined by chemical and radioreceptor assays.

Morphine and oxycodone were administered to ten patients suffering from severe cancer pain in a double-blind cross-over study. The patients titrated themselves pain-free, first intravenously, using a patient-controlled analgesia device, and then orally. Each titration phase lasted for 48 hours. Blood samples were drawn after 36 hr of each administration phase. The plasma levels of morphine, morphine-6- and morphine-3 glucoronides were determined with high performance liquid chromatography (HPLC), whereas the oxycodone samples were assayed with gas chromatography (GC). Twin samples were analyzed for plasma opioid activity with a radioreceptor assay (RRA) using 3H-dihydromorphine and 3H-naloxone as radioligands. Adequate analgesia was achieved with both morphine and oxycodone. About 30% more oxycodone was needed intravenously, whereas 25% less oxycodone than morphine was consumed orally. There was a good linear correlation between the morphine concentrations measured with HPLC and RRA. The mean morphine-6-glucuronide to morphine concentration ratio was 2.3 after intravenous and 4.6 after oral administration. Results from RRA indicate that oxycodone in vivo is a potent mu-agonist and that at least part of its analgesic action is mediated by active metabolites. In vitro morphine glucuronides enhanced morphine in displacing radioligands from the opioid receptors, thus suggesting their complex interactions in vivo.

Administration, Oral

Alcohol and drug interactions.

Interactions of ethyl alcohol with various drugs are common. Their consequences vary depending on the effects of the drugs concerned, the doses of drugs and alcohol given and their mode of administration. Pharmacokinetic interactions refer to altered tissue concentrations of alcohol or drugs or both and their metabolites which sometimes lead to serious toxic reactions. The kinetic interactions take place in the absorption or metabolism of alcohol or the drug, whereas significant interactions in their distribution phase are rare. Pharmacodynamic interactions refer to the combined actions, even serious ones, which primarily take place at the tissue (receptor?) level, with or without an important pharmacokinetic component of interaction. Acute substantial doses of alcohol given quickly tend to inhibit microsomal drug metabolism and thus enhance the effects of drugs. Chronic administration of alcohol usually induces the synthesis of cytochrome P-450 isoenzyme P-450 II E1, thus accelerating the metabolism of its own and, depending on the circumstances, of various drugs as well. Reduced actions of the agents may then ensue. If the (toxic) effect of a drug (e.g., paracetamol) depends on the formation of active metabolites acute intake of alcohol may, paradoxically, reduce the drug effect, while chronic alcohol intake enhances it. Induction of hepatic enzymes by alcohol may affect the turnover of endogenous vitamins and hormones, or even produce carcinogenic substances.(ABSTRACT TRUNCATED AT 250 WORDS)

Anti-Anxiety Agents

Actions and interactions of hypnotics on human performance: single doses of zopiclone, triazolam and alcohol.

Actions and interactions with ethanol (0.8 g/kg) of triazolam (TRZ, 0.25 mg) and zopiclone (ZOP, 7.5 mg) on performance and memory were studied with 12 healthy young subjects. The randomized double-blind and crossover test sessions were carried out at 1-week intervals. Each time a set of performance tests and self-assessments on visual analogue scales were done before the treatment and 1.5, 3, 4.5, 6 and 8 h after it. The clinical test for drunkenness (CTD) was done 2 and 5 h after drug intake. Venous blood was sampled after each set of tests. Both TRZ and ZOP impaired coordinative and reactive skills, but not peripheral attention or body balance. They also impaired cognitive test performance (digit substitution, symbol copying), and lowered flicker fusion threshold. The psychomotor effects of the two hypnotics and measures of subjective sedation peaked at 1.5 and 3 h. Spatial memory was impaired by TRZ at 4.5 h. Cognitive tests and tracking were most sensitive to alcohol. Furthermore alcohol impaired both motor and vestibular aspects of the CTD while both ZOP and TRZ alone had only minor effects. Alcohol enhanced and prolonged the effects of both hypnotics without modifying their plasma concentrations. Drug-alcohol interactions were mainly additive though more obvious with TRZ. Interactions were evident also on the CTD. The hypnotics were free from residual psychomotor and cognitive effects at 8 h even after the coadministration of alcohol. It is concluded that ZOP and TRZ have a mainly additive interaction with alcohol but pharmacokinetic mechanisms do not seem to contribute essentially to this.

Adult