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Biomedical subjects

E Spina

Publications and source records attributed to E Spina.

At least 91 records · Page 5Linked to original sources

Differences in the inhibitory effect of cimetidine on desipramine metabolism between rapid and slow debrisoquin hydroxylators.

The disposition of a 25 mg single oral dose of desipramine was investigated in five rapid and four slow hydroxylators of debrisoquin before and during oral administration of 1200 mg cimetidine daily. AUC and elimination half-life of desipramine increased during cimetidine administration in rapid but not in slow hydroxylators. This was the result of a decrease in overall clearance. The urinary recovery of 2-hydroxydesipramine was significantly decreased in rapid hydroxylators during cimetidine administration. We conclude that cimetidine inhibits the metabolism of desipramine in rapid but not in slow hydroxylators.

Adult↗

Hydroxylation of desmethylimipramine: dependence on the debrisoquin hydroxylation phenotype.

The 2-hydroxylation of desmethylimipramine (DMI) was studied in 14 healthy subjects previously phenotyped with respect to debrisoquin hydroxylation. After a single oral dose (25 mg), slow hydroxylators of debrisoquin had significantly lower total and metabolic clearances and longer plasma half-lives of DMI and excreted less 2-hydroxydesmethylimipramine than did rapid hydroxylators. These findings strengthen the hypothesis that the hydroxylations of debrisoquin and DMI may be under common enzymatic control.

Adult↗

Urinary desipramine hydroxylation index and steady-state plasma concentrations of imipramine and desipramine.

An index of desipramine (DMI) hydroxylation, calculated as the ratio between the amounts of DMI and 2-hydroxydesipramine (2-OH-DMI) excreted in urine after 25 mg orally, was determined in 16 depressed patients. The index varied almost 100-fold between the patients and correlated significantly to the steady-state plasma concentrations of DMI (rs = 0.85; p less than 0.01) but not to the plasma levels of imipramine (IMI) when the patients were treated with 75 mg of IMI daily. Eleven of the 16 patients were subsequently treated with DMI and a significant relationship was again found between the plasma levels of DMI and the urinary DMI-hydroxylation index (rs = 0.87; p less than 0.01). The latter may be utilized in therapeutic drug monitoring to identify individuals with unusually rapid or slow hydroxylation of DMI.

Adult↗

Pharmacokinetics of the antidepressant drug viloxazine in normal subjects and in epileptic patients receiving chronic anticonvulsant treatment.

In order to evaluate the influence of chronic antiepileptic drug treatment on the kinetics of the antidepressant viloxazine (VLX), six drug-free control subjects and six epileptic patients treated with one or two anticonvulsants (phenobarbital, carbamazepine or phenytoin) were given a single oral dose of VLX (200 mg). On a separate occasion, the patients were also given 200 mg VLX by IV infusion. Plasma VLX levels were determined by GLC. Following oral dosing, VLX was rapidly absorbed from the gastrointestinal tract (peak levels at 0.5-4 h); plasma level profiles showed a considerable interindividual variability but did not differ significantly between patients and controls. Terminal half-lives were 4.3 +/- 1.5 h in the patients and 4.3 +/- 1.8 h in the controls. Clearance and volume of distribution calculated after IV dosing in the patients were 124 +/- 11 ml h-1 kg-1 and 0.73 +/- 0.28 l/kg, respectively. The absolute oral availability was 85 +/- 14%. At variance with findings reported for other antidepressants, VLX kinetics do not appear to be significantly altered by concurrent treatment with enzyme-inducing antiepileptic drugs.

Adult↗

Differential effects of cimetidine and ranitidine on imipramine demethylation and desmethylimipramine hydroxylation by human liver microsomes.

The effect of cimetidine and ranitidine on the demethylation of imipramine (IMI) and on the hydroxylation of desmethylimipramine (DMI) was studied in microsomes from four human livers. Cimetidine inhibited both demethylation of IMI and 2-hydroxylation of DMI, whilst the effect of ranitidine was not statistically significant. 2-hydroxylation of DMI is probably mediated by debrisoquine hydroxylase, a cytochrome P-450 isozyme that is monogenically controlled. The results suggest that cimetidine inhibits this enzyme.

Cimetidine↗

Characterization of desmethylimipramine 2-hydroxylation in human foetal and adult liver microsomes.

The rate of formation of 2-hydroxydesmethylimipramine was studied in microsomes from four human foetal and adult livers. The concentrations of desmethylimipramine ranged between 5 and 100 microM. The concentration of 2-hydroxydesmethylimipramine was measured by high pressure liquid chromatography with fluorescence detection. The kinetic parameters (Vmax and Km) were measured by Eadie-Hofstee plot. The Vmax (mean +/- S.E.M.) was 2.80 +/- 0.84 (foetal liver) and 73.1 +/- 11.6 (adult liver) pmol X min.-1 X mg-1. The corresponding values for Km (microM) were 36.3 +/- 6.5 (foetal liver) and 14.1 +/- 1.3 (adult liver). Both parameters were significantly different in foetal and in adult liver. The inhibitory effects of thioridazine, metoprolol, carbamazepine and cimetidine on the 2-hydroxylation of desmethylimipramine were studied in the foetal liver microsomes. Thioridazine and carbamazepine were the most powerful inhibitors.

Adult↗

Oxidation of tricyclic antidepressant drugs, debrisoquine and 7-ethoxyresorufin, by human liver preparations.

Data obtained from human studies in vivo show that the dispositions of the tricyclic antidepressant drugs desmethylimipramine (DMI) and nortriptyline are related to the debrisoquine hydroxylation phenotype. To obtain insight into the enzymic mechanisms behind this, the metabolism of debrisoquine and antidepressant drugs by human liver preparations have been studied. The 2-hydroxylation of DMI in vitro correlates with the 4-hydroxylation of debrisoquine among various livers (rs = 0.90). Debrisoquine inhibits DMI hydroxylation competitively, and DMI inhibits debrisoquine hydroxylation, suggesting that DMI hydroxylation is catalysed by the debrisoquine hydroxylase in human liver. By monitoring the hydroxylation of DMI in various fractions during separation and purification of cytochrome P-450 from human liver microsomes we have purified a cytochrome P-450 which efficiently hydroxylates this drug. The apparently electrophoretically homogeneous enzyme had a molecular weight of 51,500 and hydroxylated DMI and debrisoquine at rates of up to 0.95 and 0.45 nmol/min . nmol P-450, respectively. This is probably the major debrisoquine hydroxylating cytochrome P-450 in man. Nortriptyline 10-hydroxylation correlates strongly (r = 0.96) with debrisoquine hydroxylation in human liver microsomes. Nortriptyline inhibits DMI-hydroxylation competitively, and the drug also inhibits the 4-hydroxylation of debrisoquine. Thus it is probable that nortriptyline is hydroxylated by debrisoquine hydroxylase. Imipramine N-demethylation did not correlate significantly (P greater than 0.1) with debrisoquine hydroxylation among microsomes from nine livers. However, if a liver from a subject, which was a poor metabolizer of debrisoquine in vivo, was included, a correlation was obtained (r = 0.79, P less than 0.01, N = 10). Imipramine demethylation also correlated with DMI-hydroxylation only if the 'poor metabolizer' liver was included (r = 0.75, P less than 0.05, N = 10). Debrisoquine inhibited imipramine demethylation competitively. The data indicate that imipramine can interact with debrisoquine- and DMI-hydroxylase, but it is uncertain if this enzyme plays an important quantitative role in its demethylation. Ethoxyresorufin O-deethylation correlated with DMI hydroxylation (r = 0.80) in human liver preparations, and DMI inhibited the former reaction in what is probably a mixed competitive-non-competitive inhibition. Liver preparations from a subject who was a poor oxidizer of debrisoquine both in vivo and in vitro had unusually low capacity to metabolize ethoxyresorufin. Thus ethoxyresorufin, at least partly, seems to interact with an enzyme that can metabolize DMI in human liver.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult↗

Inhibition of desmethylimipramine 2-hydroxylation by drugs in human liver microsomes.

The 2-hydroxylation of desmethylimipramine (DMI) correlates strongly with the 4-hydroxylation of debrisoquine (D) both in human volunteers and in vitro comparing human liver microsomes from different individuals. D competitively inhibits the 2-hydroxylation of DMI in vitro suggesting that DMI is hydroxylated by the 'debrisoquine hydroxylase' which is under monogenic control in man. We have characterized the effect of drugs on the hydroxylation of DMI in human liver microsomes by measuring the formation of 2-OH-DMI with HPLC using fluorescence detection. Amitriptyline, nortriptyline and metoprolol inhibited the hydroxylation of DMI competitively indicating interaction with the catalytical site for DMI 2-hydroxylation. Antipyrine and amylobarbitone at concentrations similar to their Km-values for metabolism did not inhibit DMI-hydroxylation. Thus, for these compounds there was a good correspondence between the drugs' capacity to inhibit DMI 2-hydroxylation competitively in vitro and their apparent metabolism by the 'debrisoquine hydroxylase' in vivo in man. Thioridazine, chlorpromazine, quinidine and quinine also inhibited DMI-hydroxylation competitively. Thioridazine was an unusually potent inhibitor (apparent inhibition constant Ki = 0.75 microM). Quinidine was also an unusually potent inhibitor (Ki = 0.27 microM) and much more efficient than its isomer quinine (Ki = 12 microM). Theophylline could inhibit DMI hydroxylation but with atypical kinetics. We suggest that this simple DMI in vitro test as well as earlier described inhibition tests with debrisoquine, sparteine and bufuralol can be used to screen if drugs interact with the 'debrisoquine hydroxylase' in human liver.

Amitriptyline↗

Desmethylimipramine overdose: nonlinear kinetics in a slow hydroxylator.

A case of desmethylimipramine (DMI) overdose is described. The analysis of DMI and its main metabolite, 2-hydroxydesmethylimipramine (2-OH-DMI), in plasma was performed by high performance liquid chromatography with fluorescence detection. Characterization of the elimination kinetics of DMI by using the SAAM 25 computer program indicated Michaelis-Menten kinetics. The patient was phenotyped with respect to debrisoquine hydroxylation and classified as a slow hydroxylator. Both nonlinear kinetics and slow hydroxylation might have contributed to the marked difference between the concentration of DMI and 2-OH-DMI in plasma in this patient.

Desipramine↗

Phenotypic consistency in hydroxylation of desmethylimipramine and debrisoquine in healthy subjects and in human liver microsomes.

The 2-hydroxylation of desmethylimipramine (DMI) and the 4-hydroxylation of debrisoquine (D) were studied in healthy subjects and in human liver microsomes. A single oral dose of DMI (25 mg) was given to 18 healthy subjects previously phenotyped with D (13 rapid and five slow hydroxylators). Urine was collected for 24 hr and DMI and total 2-hydroxydesmethylimipramine (2-OH-DMI) levels were determined by HPLC. The urinary ratio DMI/2-OH-DMI correlated strongly (r = 0.92) with the urinary ratio of D to 4-hydroxydebrisoquine (D/4-OH-D). The two hydroxylations were also studied in human liver microsomes from 10 different subjects. Formation rates of the hydroxylated metabolites correlated strongly (r = 0.869). Moreover, D competitively inhibited the 2-hydroxylation of DMI. These findings suggest that both are hydroxylated by the same cytochrome P-450 isozyme.

Adult↗

Intra-daily oscillations in dipropylacetic acid plasma levels with two or three daily doses of dipropylacetamide in epileptic patients.

The diurnal fluctuations in dipropylacetic acid (DPA) plasma levels were examined in ten epileptic patients following a chronic treatment with 3 or 2 daily doses of dipropylacetamide (DPM). The highest/lowest DPA levels ratios observed throughout 24 hrs were 1.18 and 1.36, respectively, but the difference in the data was not statistically significant (p greater than 0.05). The present results indicate that a reduction of the frequency of the daily administrations of the drug can be made with consequent possible improvement in the patient's compliance. The clinical value of the oscillations in DPA serum levels is also revised in the light of the data reported in the literature.

Adolescent↗

Interaction of carbamazepine-10,11-epoxide, an active metabolite of carbamazepine, with valproate: a pharmacokinetic study.

The mechanism responsible for the valproate (VPA)-induced elevation of serum carbamazepine-10,11-epoxide (CBZ-E) levels was investigated in 6 normal subjects who received single oral doses of CBZ-E (100 mg) in a control session and during concurrent treatment with sodium VPA [500 mg twice daily (b.i.d.)]. VPA caused a significant prolongation of CBZ-E terminal half-life (t1/2 from 6.3 +/- 1.2 to 9.0 +/- 2.0 h, mean values +/- SD) and decreased CBZ-E clearance (from 90.6 +/- 18.8 to 63.2 +/- 16.1 ml h-1 kg-1, mean values +/- SD) without affecting CBZ-E apparent volume of distribution (from 0.82 +/- 0.19 to 0.81 +/- 0.24 l kg-1, mean values +/- SD). These findings indicate that VPA impairs the elimination of CBZ-E, presumably by inhibiting its metabolism.

Absorption↗

Prevalence of cardiac conduction disturbances during carbamazepine treatment: preliminary data.

Twenty-five epileptic patients chronically treated with carbamazepine underwent 24 h electrocardiogram (ECG) monitoring in order to evaluate the prevalence of cardiac conduction abnormalities. Plasma levels of carbamazepine and its metabolite, carbamazepine-10,11-epoxide, were determined by liquid chromatography. Six patients had mild ECG abnormalities. These patients did not differ from the others with respect to plasma concentrations of the drug and its metabolite.

Adult↗