Search PubMed⌕ Search

Biomedical subjects

L Bertilsson

Publications and source records attributed to L Bertilsson.

245 records · Page 14Linked to original sources

Pharmacokinetics: time-dependent changes--autoinduction of carbamazepine epoxidation.

Drugs labeled with stable isotopes have been useful to study time-dependent changes in kinetics. Early studies suggested that carbamazepine (CBZ) may induce its own metabolism, but this could not be proved until tetradeuterium-labeled CBZ (CBZ-D4) was synthesized and then given to patients. CBZ-D4 was administered to three children during long-term treatment of epilepsy with CBZ. After 17 to 32 days of treatment, the plasma clearance of CBZ-D4 was doubled, but during the next four months, there was no further increase, indicating that autoinduction was complete within one month. Two patients with chronic alcoholism were treated with CBZ for five days. Half of the first dose of 600 mg was comprised of CBZ-D4. The half-life of this CBZ-D4 dose in the two patients (20 and 26 hr, respectively) was similar to the post-steady-state half-life of CBZ (23 hr in both patients) measured later. A single dose of CBZ given one week after the last maintenance dose had a longer half-life (46 and 45 hr, respectively), which probably is close to the disposition of the drug before starting the treatment with CBZ. This shows that autoinduction of CBZ metabolism was completed during the very first doses of CBZ. Autoinduction also disappeared rapidly after stopping the treatment. We have shown that it is mainly the epoxide-diol pathway that is induced, both during autoinduction and after induction with other antiepileptic agents.

Biotransformation↗

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↗

Clinical pharmacokinetics of carbamazepine.

Carbamazepine seems to as effect as phenytoin in the treatment of grand mal and psychomotor epilepsy. It is the drug of first choice in trigeminal neuralgia. After single oral doses of carbamazepine, the absorption is fairly complete and the elimination half-life is about 35 hours (range 18 to 65 hours). During multiple dosing, the half-life is decreased to 10-20 hours, probably due to autoinduction of the oxidative metabolism of the drug. Phenytoin and barbiturates also induce the metabolism of carbamazepine. After single doses of carbamazepine, elimination follows dose-dependent first order kinetics. Carbamazepine is metabolised by oxidation before excretion in the urine. In experimental animals, the metabolite carbamazepine-10,11-epoxide has anticonvulsant activity comparable with that of the parent drug. The plasma concentration of the metabolite during long-term treatment of epileptic patients varies between 5 and 81% of that of the parent drug. The plasma protein binding of the metabolite is about 50% compared with about 75% for the parent drug. Less than 50% of a given carbamazepine doses has been identified as metabolites in the urine. The quantitatively most important metabolites is the trans-10,11-dihydro-10,11-diol. The kinetics of carbamazepine have been explored to some extent in pregnant women, newborns and children. Plasma levels of carbamazepine seem to decrease during pregnancy, possibly as a result of increased metabolism. The drug readily crosses the placenta and the levels measured in newborns are comparable with maternal plasma concentrations. In newborns exposed to the drug during fetal life, the plasma half-lives were relatively short (8.2 to 28.1 hours) indicating an induction of carbamazepine metabolism during gestation. The pharmacokinetics of carbamazepine in children aged 0.3 to 15 years are comparable with that in adults. A single daily dose of carbamazepine is insufficient; 2 doses per day are appropriate in most cases, but some patients may benefit from more frequent dosing to avoid side-effects. Compared with phenytoin, for example, very few controlled studies have been performed to establish the plasma level range of carbamazepine associated with the best therapeutic outcome. However, the best anticonvulsant effect of carbamazepine seems to be obtained at plasma levels of about 5 to 10microgram/ml (20 to 40mumol/L). Side-effects are most frequent at higher levels but may also be seen at lower levels.

Carbamazepine↗

Carbamazepine metabolism in man. Induction and pharmacogenetic aspects.

The metabolism of carbamazepine (CBZ) was studied in 3 groups of subjects: (1) 6 healthy volunteers given a single dose of 200mg carbamazepine; (2) 4 epileptic patients on carbamazepine monotherapy; and (3) 5 patients receiving carbamazepine in combination with other anticonvulsants. Carbamazepine kinetics in the patients were investigated by use of 15N-CBZ. The mean plasma clearances of carbamazepine were 19.8, 54.6 and 113.3 ml/h/kg in groups 1, 2 and 3, respectively. The increased clearance in the patients was mainly due to an induction of the epoxide-diol pathway, as reflected by an increased urinary excretion of the trans-CBZ-diol metabolite. The urinary excretion (as a percentage of the administered dose) of 9-hydroxymethyl-10-carbamoyl-acridan (9-OH-CBZ) was also increased, whereas the excretion of 2-OH-CBZ and 3-OH-CBZ in groups 2 and 3 were decreased in comparison with group 1. As it has been suggested that 9-OH-CBZ is formed from carbamazepine-10,11-epoxide (CBZ-E) or trans-CBZ-diol, the formation of 9-OH-CBZ was investigated in 3 patients with trigeminal neuralgia treated with carbamazepine or CBZ-E as monotherapy on separate occasions. The urinary excretion of 9-OH-CBZ was 1.9, 3.3 and 4.0% of the trans-CBZ-diol excretion during CBZ-E therapy and 23, 32 and 24%, respectively, during carbamazepine administration. Thus only a minor part of the 9-OH-CBZ excreted in urine during carbamazepine therapy is formed via the epoxide-diol pathway. Data on plasma concentrations of carbamazepine and CBZ-E, and on urinary excretion of trans-CBZ-diol from 4 patients on carbamazepine therapy were used to calculate the plasma clearance of CBZ-E. The hydration of CBZ-E during carbamazepine therapy was found to be induced, but to a lesser extent than the epoxidation of carbamazepine. The interrelationship between carbamazepine-epoxidation and oxidative metabolic reactions of some other drugs was also studied in 8 healthy volunteers. Carbamazepine-epoxidation was not correlated to 4-hydroxylation of debrisoquine, oxidation of sparteine, 3- and 4-hydroxylation and demethylation of antipyrine, demethylation of amitriptyline, or total metabolism of theophylline.

Adult↗

Clinical pharmacokinetics and pharmacological effects of carbamazepine and carbamazepine-10,11-epoxide. An update.

Carbamazepine is a first-line drug in the treatment of most forms of epilepsy and also the drug of first choice in trigeminal neuralgia. Furthermore, it is now frequently used in bipolar depression. Most oral formulations of carbamazepine are well absorbed with high bioavailability. The drug is 75% bound to plasma proteins. The degree of protein binding shows little variation between different subjects, and there is no need to monitor free rather than total plasma concentrations. Carbamazepine is metabolised in the liver by oxidation before excretion in the urine. A major metabolite is carbamazepine-10,11-epoxide which is further metabolised by hydration before excretion. This epoxide-diol pathway is induced during long term treatment with carbamazepine. Co-medication with phenytoin or phenobarbitone further induces this metabolic pathway. Some but not all studies indicate an increased metabolism of carbamazepine during pregnancy. The drug crosses the placenta, and the newborns who are exposed to the drug during fetal life eliminate the drug readily after birth. There seems to be no problem to nurse children during treatment with carbamazepine. Metabolism of carbamazepine is comparable in children and adults. Several studies have tried to establish a relationship between plasma carbamazepine and clinical effect in epilepsy, but very few of these are controlled. The best anticonvulsant effect seems to be obtained at plasma concentrations of 15 to 40 mumol/L and a similar optimal plasma concentration range was found in a controlled study in trigeminal neuralgia. Side effects are more frequent at higher plasma concentrations but are also seen within that range. In some patients, with pronounced fluctuation of plasma concentrations during the dosage interval, side effects may be avoided by more frequent dosing. Carbamazepine-10,11-epoxide is a potent anticonvulsant in animal models. During treatment with carbamazepine the plasma concentrations of this metabolite are usually 10 to 50% of those of the parent drug. It has not been possible to establish the relative contribution of the two compounds to the pharmacological effects. The epoxide has therefore been given to humans with the aim of determining the relative potency of the parent drug and its metabolite. After single oral doses of carbamazepine-10,11-epoxide to healthy subjects, the compound was rapidly absorbed. As a mean of 90% of the given dose was recovered in urine as trans-10,11-dihydroxy-10,11-dihydro-carbamazepine, a complete absorption of unchanged epoxide was shown.(ABSTRACT TRUNCATED AT 400 WORDS)

Adult↗

Metabolism of carbamazepine and its epoxide metabolite in human and rat liver in vitro.

The epoxidation of carbamazepine (CBZ) and the hydration of the primary epoxide metabolite was studied in microsomes isolated from ten human livers. To study the epoxide hydrolase activity a high-performance liquid-chromatographic method was developed for the analysis of dihydro-CBZ-trans-diol. There was a pronounced variation between the specimens in the activity of both enzymes. There appeared to be a positive correlation between the activity of the two enzymes. In rats pretreated with either CBZ or phenobarbital for 4 days, the microsomal epoxidation of CBZ was induced. The epoxide hydrolase activity was also increased, although less so than in epoxidation.

Animals↗

E- and Z-10-hydroxylation of nortriptyline by human liver microsomes--methods and characterization.

To enable in vitro characterization of nortriptyline 10-hydroxylase activity of microsomal fractions of human liver, methods for the determination of E- and Z-10-hydroxynortriptyline were developed. High performance liquid chromatography (HPLC) with UV-detection or HPLC separation followed by quantitation by gas chromatography-mass spectrometry were used. The microsomal 10-hydroxylation of nortriptyline was linear to 60 min with a protein concentration of 1 mg x ml-1. In 15 human livers a 5-fold variation in activity was found. The formation of the Z-isomer comprised 13 +/- 3% (mean +/- SD) of the total 10-hydroxylase activity. The 10-hydroxylation was inhibited by debrisoquine, sparteine, propranolol, and encainide. No effect or a stimulation of the activity was seen with p-nitroanisole and acetanilide.

Adult↗