Search PubMed⌕ Search

Biomedical subjects

L Bertilsson

Publications and source records attributed to L Bertilsson.

At least 163 records · Page 9Linked to original sources

Clinical and biochemical effects during treatment of depression with nortriptyline: the role of 10-hydroxynortriptyline.

Plasma concentrations of nortriptyline (NT) and its major metabolite 10-hydroxy-NT (10-OH-NT) were measured in 30 patients with depression, treated with NT for 3 weeks. Nine patients who recovered completely had plasma concentrations of NT and 10-OH-NT ranging from 358 to 728 nmol/L and from 428 to 688 nmol/L, respectively. Of the 21 patients who did not recover completely, only four had plasma concentrations within the window limited by these two plasma concentration ranges. A correlation was found between the degree of amelioration and the plasma concentration of NT (rs = 0.469; P less than 0.01). Lumbar punctures were performed in 26 patients before and after 3 weeks of NT treatment. During treatment there was a 30.9% mean decrease in the noradrenaline metabolite 4-hydroxy-3-methoxyphenylglycol (HMPG) in cerebrospinal fluid (CSF). We could not evaluate the extent to which this decrease was caused by NT or 10-OH-NT, respectively, because both are strong inhibitors of noradrenaline uptake. The ratio between the concentration of NT and 10-OH-NT in CSF correlated to the reduction of HMPG in CSF (r = 0.397; P less than 0.05) and to the amelioration of depression (rs = 0.623; P less than 0.001). This might indicate that NT and 10-OH-NT interact on the noradrenaline system in a nonadditive way. During treatment there was a 15.2% decrease in CSF concentration of the serotonin metabolite 5-hydroxyindoleacetic acid. The reduction was significantly correlated to the CSF concentration of NT but not to that of 10-OH-NT. This is in accordance with the fact that NT is a more potent inhibitor of serotonin uptake than is 10-OH-NT. The dopamine metabolite homovanillic acid in CSF decreased significantly by 10.0%. The biochemical data indicate that noradrenergic, serotoninergic, and dopaminergic systems are affected by NT treatment and that 10-OH-NT might be more selective on noradrenergic neurons than the parent drug.

Administration, Oral↗

Little anticholinergic effect of E-10-hydroxynortriptyline compared with nortriptyline in healthy subjects.

Six healthy male subjects were randomly given nortriptyline (NT) (25 and 50 mg) and placebo in a double-blind, crossover study. An NT dose of 50 mg (but not 25 mg) clearly reduced saliva flow (P less than 0.05) and was therefore used for comparison with the major and active metabolite of NT, E-10-hydroxynortriptyline (E-10-OH-NT). Equimolar doses of both compounds (and placebo) were randomly given to eight healthy male subjects in another double-blind, crossover study aimed to assess the reduction of saliva flow. NT significantly depressed saliva flow compared with both placebo (P less than 0.01) and E-10-OH-NT (P less than 0.05). By contrast, there was no difference between E-10-OH-NT and placebo. This study confirms previous indications that the anticholinergic effect of E-10-OH-NT is considerably less than that of the parent drug NT.

Adult↗

Acute dystonic reactions in Saudi Arabian psychiatric patients treated with haloperidol.

The work described in this paper arose from a clinical observation that Saudi Arabian patients treated with haloperidol appeared to suffer extrapyramidal side effects - particularly acute dystonic reactions, more frequently than European patients. It was decided to study sequential drug free patients requiring haloperidol treatment and the results are presented.

Adolescent↗

Extensive metabolizers of debrisoquine become poor metabolizers during quinidine treatment.

Seven male patients (age 55-75 years) were debrisoquine-tested immediately before and after one week of treatment with quinidine sulphate (200 mg X 3-4 day-1). Before quinidine all patients were classified as extensive metabolizers (metabolic ratio 0.1-3.6). During quinidine the formation of 4-OH-debrisoquine was practically abolished and the phenotype of the patients was altered to PM (metabolic ratio 15-51). This is probably due to an inhibition of debrisoquine hydroxylation by quinidine. Inhibition of 4-OH-debrisoquine formation was associated with a disproportionate increase in debrisoquine excretion.

Aged↗

Glucuronidation of the enantiomers of E-10-hydroxynortriptyline in human and rat liver microsomes.

Conjugation of racemic E-10-hydroxynortriptyline (E-10-OH-NT) with glucuronic acid was studied in the liver microsomal fraction of rats and humans. The diastereomeric glucuronides of E-10-OH-NT were resolved and quantitated by HPLC. Only the (+)-enantiomer was glucuronidated in liver microsomes from humans. Rat liver microsomes catalyzed the formation of both glucuronides. Phenobarbital pretreatment of rats increased the glucuronidation of both enantiomers about five-fold. The formation rate of (+)-E-10-OH-NT glucuronide varied from 5.5 to 33.2 pmol/mg x min, in microsomes from 13 humans. High activity was found in individuals previously treated with pentobarbital. Inhibition experiments with human liver microsomes showed that amitriptyline is a potent competitive inhibitor of (+)-E-10-OH-NT glucuronidation. p-Nitrophenol, paracetamol and 2-hydroxydesipramine also inhibited this reaction.

Adult↗

Formation of a quaternary N-glucuronide of amitriptyline in human liver microsomes.

Amitriptyline N-glucuronide was isolated from urine of a patient treated with therapeutic doses of amitriptyline. The glucuronide was hydrolyzed by hot alkaline treatment and, to a lesser degree, by treatment with beta-glucuronidase. A method for the direct measurement of amitriptyline glucuronide by HPLC was developed. Human liver microsomes were shown to glucuronidate amitriptyline in the presence of UDPGA, and the activity varied 7-fold among microsomes from 13 different human livers. The glucuronidation of amitriptyline was inhibited by p-nitrophenol but not by morphine. E-10-hydroxynortriptyline, a major metabolite of amitriptyline, had only a slight inhibitory effect on the glucuronidation of amitriptyline. No significant correlation was found between the glucuronidation of amitriptyline and that of E-10-hydroxynortriptyline in the microsomes studied.

Amitriptyline↗

Steady-state concentrations of imipramine and its metabolites in relation to the sparteine/debrisoquine polymorphism.

Thirty-five imipramine treated patients were phenotyped with regard to polymorphic drug oxidation using sparteine and/or debrisoquine. During treatment with 100 mg imipramine per day the mean steady-state concentrations and ratios in 28 extensive metabolizers were: imipramine 169 nmol/l; desipramine 212 nmol/l; 2-OH-imipramine/imipramine 0.25; 2-OH-desipramine/desipramine 0.57. The corresponding values in two poor metabolizers were: imipramine 455 and 302 nmol/l; desipramine 1148 and 1721 nmol/l; 2-OH-imipramine/imipramine 0.06 and 0.05; 2-OH-desipramine/desipramine: 0.09 and 0.04 respectively. The metabolic ratios (MR) sparteine/dehydrosparteine and debrisoquine/4-OH-debrisoquine (% of dose in 12-h urine samples) correlated poorly with the imipramine steady-state concentrations during administration of 100 mg per day, but quite well with the desipramine steady-state concentrations. Significant negative correlations were found between sparteine and debrisoquine MR and the 2-OH-imipramine/imipramine and 2-OH-desipramine/desipramine ratios. In most patients the initial dose was changed to obtain concentrations in the therapeutic range, and concentrations for imipramine + desipramine of (mean +/- SD) 713 +/- 132 nmol/l were achieved in 33 patients. The therapeutic dose was 50 mg per day in one poor metabolizer and ranged from 50-400 mg per day in 32 extensive metabolizers. There was a weak negative correlation between sparteine MR and daily dose. Treatment with imipramine inhibited metabolism of both sparteine and debrisoquine (MR values about doubled), but did not affect the interpatient correlations.

Adult↗

Disposition of single oral doses of E-10-hydroxynortriptyline in healthy subjects, with some observations on pharmacodynamic effects.

The active and major metabolite of nortriptyline (NT), E-10-hydroxynortriptyline (E-10-OH-NT), was taken orally as the hydrogen maleate in single doses by nine healthy subjects. The doses (10 to 100 mg) were completely absorbed, as shown by the high urinary recovery of 86.1% +/- 9.9%. Of the given dose, 51.2% +/- 8.7% was recovered as conjugated E-10-OH-NT and 23.9% +/- 4.3% was recovered as unchanged compound. The plasma t1/2 of E-10-OH-NT was 8.0 +/- 1.2 hours and total plasma clearance was 47.5 +/- 10.3 L/hr. The rate of elimination varied little between individuals. There was no indication of dose-dependent elimination. The mean apparent volume of distribution was 7.7 +/- 2.1 L/kg. Single oral doses of 50 mg E-10-OH-NT significantly increased the plasma levels of norepinephrine in both the supine and standing positions (P less than 0.01). Pulse rate increased in the standing but not the supine position. These effects might result from inhibition of neuronal uptake of norepinephrine by E-10-OH-NT. Coupled with its low affinity for muscarinic receptors, these kinetic and pharmacodynamic features of E-10-OH-NT call for further phase I studies.

Administration, Oral↗

Amitriptyline metabolism: association with debrisoquin hydroxylation in nonsmokers.

Eleven healthy nonsmokers with wide variation in the ability to hydroxylate debrisoquin (D) were given single oral doses of amitriptyline and nortriptyline on different occasions. The urinary D/4-hydroxy-D ratio correlated significantly (P less than 0.01) with all three parameters of amitriptyline disposition measured (total plasma clearance, clearance by demethylation, and clearance by pathways other than demethylation), with rs = -0.89, -0.78, and -0.83, respectively. In contrast, we failed to demonstrate such correlations in a previous sample of smokers. Our data suggest that there may be a common regulation of the hydroxylation of D and the oxidative metabolism of amitriptyline in nonsmokers. It is hypothesized that an additional demethylase/hydroxylase is induced in smokers that is not involved in D hydroxylation.

Administration, Oral↗

Slow hydroxylation of tricyclic antidepressants--relationship to polymorphic drug oxidation.

There are marked interindividual differences in Css of tricyclic antidepressants. These are due mainly to corresponding differences in the rate of oxidative metabolism of these drugs. Twin, family, and cross-over studies with nortriptyline (NT) and desmethylimipramine (DMI) show that their kinetics and hydroxylation (Css, Kel, and Vd) are controlled mainly by genetic factors (in drug-free individuals). Slow hydroxylators are at risk of developing excessive plasma concentrations of NT and DMI when given per se or when formed from the tertiary amines amitriptyline and imipramine. Classic antidepressants have fairly well established concentration-effect curves in endogenous depression. Severe toxicity usually occurs at supratherapeutic plasma levels and might be prevented by tailoring the dosage according to the individual's drug hydroxylating capacity. Monitoring drug plasma levels is particularly relevant in slow hydroxylators (Sjöqvist et al, 1980). There is a strong association between an individual's ability to hydroxylate NT and DMI and his debrisoquine (D) hydroxylation phenotype. The D hydroxylation index will predict the patient's capacity to hydroxylate NT and DMI and hence Css during therapy. Possibly, similar hydroxylases are involved in the 4-hydroxylation of debrisoquine, in the stereospecific E-10-hydroxylation of NT, and in the 2-hydroxylation of DMI. By contrast, demethylation of AT (and probably other tertiary tricyclics) does not significantly correlate to debrisoquine hydroxylation except in non-smoking individuals. The increasing knowledge about the clinical pharmacokinetics of tricyclic antidepressants is a distinct advantage over that of the new generation of antidepressants, where little is known about concentration-effect relationships and factors governing their rate of metabolism. Possible interethnic differences in the metabolism of these essential drugs should be explored in epidemiologically sound investigations.

Amitriptyline↗

Plasma concentrations of nortriptyline and its 10-hydroxy metabolite in depressed patients--relationship to the debrisoquine hydroxylation metabolic ratio.

In 20 depressed patients treated with nortriptyline (NT) there was a significant relationship between the plasma concentration of NT and the debrisoquine metabolic ratio (rs = 0.77; P less than 0.01). (The debrisoquine test was performed after stopping NT treatment). This is in agreement with the hypothesis that the hydroxylations of NT and debrisoquine are mediated by similar enzymatic mechanisms. In contrast there was no significant relationship between the debrisoquine metabolic ratio and the plasma concentrations of the active metabolite 10-hydroxy-nortriptyline. In 11 of the patients the debrisoquine metabolic ratio was significantly higher during than after NT treatment. This may be due to an inhibition of the debrisoquine hydroxylation by NT.

Debrisoquin↗

CSF and plasma levels of nortriptyline and its 10-hydroxy metabolite.

After 3 weeks' nortriptyline (NT) treatment the mean plasma concentration of its 10-hydroxy metabolite (10-OH-NT) (599 +/- 207 nmol l-1) was higher than that of the parent drug (433 +/- 199 nmol l-1) in 25 depressed patients. Also in the cerebrospinal fluid (CSF) the mean level of 10-OH-NT (67 +/- 20 nmol l-1) was higher than that of NT (39 +/- 23 nmol l-1). There was a strong correlation (P less than 0.001) between the CSF and plasma concentration of both NT (r = 0.92) and 10-OH-NT (r = 0.77). The interindividual variation in the CSF/plasma ratio of both compounds was small, compared to the variation in plasma levels. These results show that 10-OH-NT passes the blood-brain barrier as it is present in concentrations higher than those of NT in the CSF. 10-OH-NT has previously been shown to be a potent blocker of noradrenaline uptake and to have much less affinity for muscarinic receptors than NT itself. This active metabolite might therefore be a potential antidepressant with less disturbing anticholinergic side-effects.

Aged↗

Homicide, suicide and CSF 5-HIAA.

Concentrations of 5-hydroxyindoleacetic acid (5-HIAA), homovanillic acid (HVA), and 4-hydroxy-3-methoxyphenyl glycol (HMPG) in lumbar spinal fluid were measured by mass fragmentography in 16 men convicted for criminal homicide, 22 men who had attempted suicide, and 39 healthy male control subjects. Those men who had killed a sexual partner, and those who had attempted suicide, had lower levels of the serotonin metabolite, 5-HIAA in spinal fluid than the controls. It is suggested that low levels of 5-HIAA in spinal fluid reflect a disorder of serotonin turnover, which makes the individual more prone to acts of violence in states of emotional turmoil.

Adult↗