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Effect of trimipramine on depolarization-induced and Na(+)-Ca2+ exchange-induced 45calcium uptake in synaptosomes from the cortex of the rat brain.

The present study examined the inhibition of synaptosomal uptake of 45calcium by racemic trimipramine and nortrimipramine and by enantiomers of trimipramine. Trimipramine, nortrimipramine, (+)-trimipramine and (-)-trimipramine inhibited the net K(+)-induced uptake of 45calcium with IC50 values of 31, 39, 17 and 95 microM, respectively. No significant difference could be detected between the parent compound trimipramine and the metabolite nortrimipramine; however, the levorotatory isomer had an IC50 value significantly larger than the dextrorotatory isomer. At normal therapeutic doses, a 25-40% inhibition of net K(+)-induced uptake of 45calcium, could be expected with trimipramine or 30-50% inhibition for trimipramine and nortrimipramine combined; these data, therefore, do not exclude the possibility that inhibition of voltage-dependent calcium channels could contribute to the therapeutic effect of trimipramine. The order of potency of stereoisomers of trimipramine, for inhibition of calcium channels, was the same as their reported order of potency in the clinic; this parallelism adds support to the possible involvement of blockade of calcium channels in the antidepressant effect. With respect to uptake of 45calcium induced by the Na(+)-Ca2+ exchange process, all drugs inhibited this mechanism with a similar potency (IC50 74-91 microM); the drugs are not expected to have a significant effect on this exchange process, at therapeutic antidepressant doses.

Animals↗

Serum concentration of trimipramine (Surmontil) and gastric secretion of acid and pepsin following peroral administration of the drug in healthy humans.

Previous blind studies have shown an increased rate of healing of both duodenal and gastric ulcers following 4 weeks peroral administration of 50 mg trimipramine. The present study shows the effect of 50 mg trimipramine perorally on gastric secretion in relation to that of 25 mg of the drug and placebo. At regular intervals blood specimens were obtained for determination of the serum concentration of trimipramine. In 9 healthy young students it was found that the estimated stabilized values of volume and acid output following 50 mg trimipramine, 33 ml and 3.9 mmol/15 min, respectively, were significantly lower than those following the smallest dose, 37 ml and 4.6 mmol/15 min, respectively. On the other hand, no significant changes of gastric secretion were observed following the peroral administration of 25 mg trimipramine when compared to placebo. Following 50 mg trimipramine the output of pepsin was reduced by about 25%. The values of serum concentration of trimipramine were about 200 nmol/1 at 100 min after administration of 50 mg trimipramine and decreased gradually, whereas the values following the smaller dose were about half of those after the larger one. The results indicate that about 50 mg trimipramine is needed for obtaining a reduction of gastric secretions. Future studies may show whether 25 mg trimipramine, which does not suppress acid secretion when given perorally, is able to promote peptic ulcer healing.

Administration, Oral↗

Antipsychotic efficacy of the antidepressant trimipramine: a randomized, double-blind comparison with the phenothiazine perazine.

BACKGROUND: The tricyclic antidepressant trimipramine exhibits several features (e. g., dopaminergic effect, molecular structure similar to a neuroleptic, receptor-binding profile similar to clozapine) that suggest its potential as an antipsychotic medication. The aim of the study was to investigate the antipsychotic potential of trimipramine in a controlled clinical trial comparing its antipsychotic efficacy with that of a neuroleptic. METHOD: In a German multi-center, randomized, double-blind trial, the antipsychotic efficacy of trimipramine was compared with that of the phenothiazine neuroleptic perazine, using the Brief Psychiatric Rating Scale (BPRS), the Positive and Negative Syndrome Scale (PANSS), and Clinical Global Impressions (CGI). Antidepressant efficacy of both agents was measured by use of the Bech-Rafaelsen Melancholia Scale (BRMES). Ninety-five patients with acute schizophrenia (DSM-III-R) and a BPRS total score > 40 at baseline were treated with either 300-400 mg trimipramine or 450-600 mg perazine for 5 weeks. RESULTS: Therapeutic equivalence of both treatments (in the dosages used) could not be demonstrated (change in BPRS total score, per-protocol [PP] analysis, one-sided equivalence testing). However, intention-to-treat (ITT) as well as PP analysis showed a statistically significant decrease in the BPRS total scores in both treatment groups (PP: trimipramine, 56.5 +/- 9.8 to 44.1 +/- 17.9; perazine, 56.4 +/- 10.8 to 37.9 +/- 12.9). Significant decreases in all BPRS and PANSS subscores as well as CGI results and response rate support the antipsychotic efficacy of trimipramine. The BRMES total scores significantly decreased in both treatment groups without showing a significant difference between the two agents. Trimipramine was better tolerated than perazine and did not elicit extrapyramidal symptoms. CONCLUSION: Trimipramine failed to exhibit therapeutic equivalence to perazine in the dosages used. However, there was evidence of a substantial antipsychotic effect of trimipramine. It may be a useful medication if depressive symptoms in psychotic patients require antidepressant treatment or if other antipsychotics cannot be administered.

Antidepressive Agents↗

Trimipramine in primary insomnia: results of a polysomnographic double-blind controlled study.

In recent years, sedating antidepressants have been increasingly used to treat primary insomnia. Up to now, only one open pilot study with trimipramine and one double-blind placebo-controlled study with doxepin have provided scientific support for this approach in treating primary insomnia. In order to test the hypothesis that sedating antidepressants are useful in the treatment of primary insomnia, the effect of trimipramine on objectively and subjectively measured parameters of sleep was investigated in a double-blind placebo- and lormetazepam-controlled study in a sample of 55 patients with primary insomnia attending outpatient sleep-disorder clinics. Trimipramine was selected since it has shown positive effects on sleep continuity with a lack of REM sleep suppression in studies on depressed patients and in one pilot study on patients with primary insomnia. Trimipramine at an average dose of 100 mg over a period of 4 weeks significantly enhanced sleep efficiency, but not total sleep time (which had been the primary target variable) compared to placebo as measured by polysomnography. Changes in objective sleep parameters were paralleled by changes in subjective sleep parameters. Trimipramine did not suppress REM sleep. Lormetazepam decreased wake time and sleep stage 3 and increased REM sleep compared to placebo. After switching trimipramine to placebo, sleep parameters returned to baseline. There was no evidence of any rebound effect from trimipramine. Side effects from trimipramine were only marginal. This first double-blind placebo-controlled study with trimipramine suggests its efficacy in the treatment of primary insomnia. However, due to the large intra- and interindividual variance in the parameters of interest before and during treatment a larger sample size would have been necessary to strengthen the validity of our findings.

Adult↗

Galactorrhea during treatment with trimipramine. A case report.

Trimipramine, a tricyclic antidepressant, faced renewed attention in the last decade for its well-established antidepressant as well as its sleep-promoting properties. While the antidepressant mode of action of trimipramine is still unclear, its antihistaminic and anticholinergic potency is far better known, leading to side effects such as somnolence or dry mouth. Elevated prolactin serum levels, caused by antidopaminergic action, have been repeatedly observed. However, to our knowledge no case of galactorrhea while under treatment with trimipramine had been previously reported. A 31-year-old female inpatient, admitted to our hospital after an attempted suicide, was treated initially with paroxetine 20 mg/d. Because of persisting insomnia, after 5 weeks we gave a supplementary medication, trimipramine, with a successive increase in dose up to 150 mg/d. After another 9 weeks the patient reported a strong tension in both breasts together with galactorrhea. The prolactin serum level was 21.8 ng/ml. After reduction of the trimipramine dose to 50 mg/d, the symptoms disappeared within a few days. We discuss our case with special regard to the combination of trimipramine with a selective serotonin reuptake inhibitor (SSRI). This commonly used comedication could have led to an aggravation of the problem because (1) most SSRIs stimulate prolactin secretion and (2) trimipramine is metabolized by the cytochrome P450 2D6, which in turn is inhibited by all SSRIs, thus potentially leading to elevated trimipramine plasma levels. The problem can probably be kept to a minimum by giving lower doses of trimipramine (up to 50 mg/d) if co-administered with an SSRI.

Adult↗

Safety of liver donation after fatal intoxication with the tricyclic antidepressant trimipramine.

We report the case of a patient receiving long-term treatment with the tricyclic antidepressant trimipramine who died 10 days after a trimipramine overdose. A few hours before death, the serum trimipramine concentration had fallen to 80 microg/L. Similar values are reported for patients taking therapeutic trimipramine doses. At this serum concentration, the liver content of trimipramine and it's 2-hydroxy and N-desmethyl metabolites was 1750 microg/kg, 850 microg/kg, and 225 microg/kg, respectively. The liver was morphologically normal. Back calculations suggest that a liver transplant obtained from a donor dying from a trimipramine overdose should be safe, if the serum trimipramine concentration has fallen below 2000 microg/L. If higher serum trimipramine concentrations are present, harvesting should be delayed to avoid trimipramine toxicity in the recipient.

Adult↗

Trimipramine--an atypical neuroleptic?

Trimipramine and clozapine show some similarities in their receptor binding profiles. Since both have the same affinity for the D2 receptor and since the affinity for this receptor correlates closely with the antipsychotic potency of a drug, an antipsychotic efficacy of trimipramine in acute schizophrenia could be expected. Therefore 28 schizophrenic patients in an acute phase were treated with trimipramine up to 400 mg/d in an open clinical trial. For the whole group of patients the BPRS total score changed from 58 +/- 5 before treatment to 46 +/- 18 at the last rating (p less than 0.05). According to our clinical judgement the patients were divided into three subgroups. Thirteen patients showed a good remission under trimipramine so that they could be discharged on a trimipramine maintenance treatment. They improved on the BPRS from 58 +/- 6 before treatment to 32 +/- 8 at endpoint. Six patients deteriorated during the first week of treatment and had to be withdrawn from the study. Nine patients showed insufficient improvement or became worse after an initial improvement. The observed side-effects (dry mouth, sedation, sweating, increased appetite, constipation, tremor, vertigo) are well known under trimipramine and were therefore expected. Beyond these, one patient developed a cardiac insufficiency. No clinical relevant extrapyramidal side-effects occurred. Since the improvement of florid psychotic symptoms seems to be markedly higher under trimipramine than the one reported under placebo, our results indicate that trimipramine may have an antipsychotic potency.

Acute Disease↗

Clinical originality and new biology of trimipramine.

Trimipramine differs from other antidepressant drugs in a number of ways. Although trimipramine shares equivalent efficacy with doxepin, imipramine, maprotiline and amitriptyline, as evidenced by double-blind studies, it possesses a different side-effect profile. Trimipramine is considered to be less cardiotoxic, and data presented in this paper support its minimal effect on orthostatic hypotension, as compared with clomipramine. In addition, trimipramine has less epileptogenic potential than other antidepressants such as imipramine, amitriptyline and maprotiline. Besides this different side-effect profile, trimipramine exerts differing effects on neurotransmitter functions and their reuptake. For example, trimipramine does not inhibit reuptake of noradrenaline and serotonin, and does not down-regulate beta 1-adrenoceptors. Furthermore, in common with lithium, trimipramine produces enhancement of antidepressant action in treatment-resistant depressed patients. There is evidence that trimipramine enhances the sensitivity of cortical neurons to noradrenaline after prolonged administration and may also increase the activity of serotonin neurons.

Depressive Disorder↗

Pharmacokinetic and clinical parameters of zopiclone and trimipramine when administered simultaneously to volunteers.

Zopiclone is a new sedative showing a rapid onset of hypnotic effect and a relatively short duration of action. The goal of this study was to assess the kinetic parameters of zopiclone and its interaction with trimipramine when administered concomitantly. Ten normal subjects each received doses of zopiclone (7.5 mg), trimipramine (50 mg), and zopiclone (7.5 mg) + trimipramine (50 mg) orally at 7-day intervals. The absorption of zopiclone was rapid, the observed plasma peak concentration and 95 per cent of all absorption occurring within one hour. The average elimination half-life was 3.8 +/- 0.2 h. The volunteers reported a bitter taste at an average of 24 min after zopiclone administration at which time concentrations in saliva were approximately 50 ng ml-1. Trimipramine decreased the relative bioavailability determined for zopiclone by 13.7 per cent, while zopiclone decreased the relative bioavailability of trimipramine by an average of 26.6 per cent, although neither of these changes was statistically significant (p greater than 0.05); there were no substantial changes in other kinetic parameters. It is concluded that zopiclone presents advantages over some other sedative drugs as it is rapidly absorbed and eliminated. When zopiclone is administered with trimipramine, the decrease in the relative bioavailability of trimipramine may be clinically significant.

Adolescent↗

Effects of the atypical antidepressant trimipramine on neuronal excitability and long-term potentiation in guinea pig hippocampal slices.

Acute effects of the atypical tricyclic antidepressant (TCA) trimipramine on long-term potentiation (LTP) were investigated in this study. Electrically evoked population spikes (PS) were tested under the influence of trimipramine in the CA1 region of the hippocampus. A concentration of 10 microM trimipramine reduced PS amplitudes to 85.1 +/- 8.8%. They were reduced to 12.2 +/- 8.5% with 50 microM trimipramine. In experiments with LTP, trimipramine 10 microM was applied. Only 8 of 10 tested slices showed LTP. These potentiations were smaller than in the control experiments. LTP could not be induced with 50 microM trimipramine. In conclusion, the influence of trimipramine on LTP is similar to other TCA. It is contended that this contributes to the antidepressant effect of the drug.

Animals↗

Effects of the atypical antidepressant trimipramine on field potentials in the low Mg2+-model in guinea pig hippocampal slices.

Trimipramine has been classified as an atypical tricyclic antidepressant, because only weak inhibitory effects on serotonin and/or noradrenaline reuptake have been found. Since some antidepressive drugs (e.g. imipramine) and other agents used in the treatment of affective disorders (e.g. carbamazepine) modulate neuronal calcium channels, trimipramine was tested on field potential changes (fp) in the low Mg2+-model of epilepsy which has been shown to be affected by calcium antagonists. Trimipramine reduced the frequency of occurrence of fp in a dose dependent manner (5-100 microM). The threshold concentration of trimipramine which did not decrease the firing rate was approximately 1 microM. Simultaneous application of subthreshold concentrations (2 microM) of the organic calcium antagonist verapamil with trimipramine decreased the firing rate to 37.0+/-22.7% (means+/-SEM, n=7) with respect to baseline values. In contrast, no additive effects of N-methyl-D-aspartate antagonists and trimipramine were observed. In conclusion, the data suggests that the antidepressive effects observed with trimipramine treatment may be due to its inhibitory action on neuronal calcium channels.

2-Amino-5-phosphonovalerate↗

A review of trimipramine. 30 years of clinical use.

The hybrid chemical structure of trimipramine incorporates an imipramine nucleus and levomepromazine side chain. This structure predicts much of the clinical profile of trimipramine. The initial studies on trimipramine date back nearly 30 years. It now has a well-recognised clinical profile with some characteristics akin to other tricyclic antidepressants (TCA) and others which are quite distinct. It is well established as a highly effective antidepressant with an efficacy profile similar to the other TCAs. Clinically, its anxiolytic and sedative properties distinguish it from most other TCAs. Its effects on sleep architecture are unique and explain some of its unique properties. The side effect profile of trimipramine is in some ways similar to those of the tertiary amine TCAs with a preponderance of anticholinergic and sedative effects. Its cardiotoxic properties are minimal, with some findings suggesting a very favourable profile. Interactions with other drugs, psychotropic or non-psychotropic, are compatible with its pharmacological profile. These are reviewed with its clinical applications in mind. The pharmacokinetic characteristics of trimipramine differ from those of many of the other TCAs. The application of this to clinical situations is addressed. Based on experience using trimipramine, a profile of 'ideal' patient characteristics has been built up. Finally, the use of trimipramine in selected patient populations is reviewed.

Depressive Disorder↗

Trimipramine and imipramine exert different effects on the sleep EEG and on nocturnal hormone secretion during treatment of major depression.

In a 4-week double-blind clinical trial we compared the effects of the tricyclic antidepressants trimipramine and imipramine on the sleep EEG and on nocturnal bormone secretion in 20 male inpatients with major depression. Both treatments produced rapid significant clinical improvement in depression without severe adverse effects. However, the two drugs had markedly different neurobiologic profiles. Trimipramine enhanced rapid eye movement (REM) sleep and slow wave sleep, whereas imipramine suppressed REM sleep and showed no effect on slow wave sleep. Total sleep time and the sleep efficiency index increased under trimipramine but not under imipramine. Nocturnal cortisol secretion decreased with trimipramine but remained unchanged with imipramine. In contrast to imipramine, trimipramine induced an increase in prolactin secretion compatible with its known antagonism at dopamine (D2) receptors. Imipramine induced a decrease in growth hormone secretion during the first half of the night. Neither of the drugs induced significant changes in plasma testosterone concentration. We conclude that trimipramine is an antidepressant with sleep-improving qualities that possibly acts through inhibition of hypothalamic-pituitary-adrenocortical system activity by a yet unknown mechanism.

Adult↗

Trimipramine: pharmacological reevaluation and comparison with clozapine.

Trimipramine has been reported to differ from other typical tricyclic antidepressant drugs in several aspects, for instance it does not inhibit neuronal transmitter uptake and does not cause down-regulation of beta-adrenoceptors. Moreover, it may possess antipsychotic activity in schizophrenic patients. In the present investigation it was found that trimipramine did not alter the electrically-induced release of [3H]noradrenaline and [3H]5-hydroxytryptamine, from slices of the cerebral cortex of the rat, in concentrations of less than 1 microM. It did not antagonize the inhibitory effect of noradrenaline and 5-hydroxytryptamine on the release of transmitter, mediated by presynaptic autoreceptors. In radioligand binding studies, D,L-trimipramine showed fairly high affinities (KI 10-60 nM) for some dopamine (DA), noradrenaline and 5-hydroxytryptamine (5-HT) receptor subtypes (5-HT2 receptors = alpha 1A/B-adrenoceptors greater than or equal to D2 receptors), intermediate affinities (300-550 nM) for D1 receptors, alpha 2B-adrenoceptors and 5-HT1C receptors but only low affinities (greater than 1000 nM) for alpha 2A-adrenoceptors, 5-HT1A, 5-HT1D and 5-HT3 receptors. It may thus be classified as an atypical neuroleptic drug. Especially, its affinities for dopamine receptors, alpha 1-adrenoceptors and 5-HT2 receptors closely resembled the values measured for clozapine. The L-enantiomer of trimipramine showed higher affinities for these binding sites than D-trimipramine. The present findings may explain the mechanism of the potential antipsychotic action but not the antidepressant effect of trimipramine.

Animals↗

Trimipramine pharmacokinetics after intravenous and oral administration in carriers of CYP2D6 genotypes predicting poor, extensive and ultrahigh activity.

OBJECTIVE: The tricyclic antidepressant trimipramine is one of the drugs with the most pronounced differences in pharmacokinetics caused by the CYP2D6 genetic polymorphism. However, the effect of CYP2D6 genotype on steady state kinetics and on bioavailability has not been studied so far. In addition, we were interested in trimipramine pharmacokinetics in genetically defined ultra rapid metabolizers. METHODS: We studied intravenous and multiple dose oral application of 50 mg trimipramine in five, seven, and three healthy volunteers with CYP2D6 genotypes predicting deficient, highly active and ultrarapid metabolism. The latter group included carriers of one wild-type and one duplication allele. Trimipramine and desmethyltrimipramine concentrations were measured by HPLC over a time interval of 72 h after intravenous and after one oral application. RESULTS: Both bioavailability and systemic clearance significantly depended on CYP2D6 genotype with a linear gene dose relationship. Mean bioavailability was 44, 16 and 12% in carriers of zero, two and three active genes of CYP2D6, respectively, and the corresponding data for systemic clearance were 12.0, 24.2, and 30.3 l/h. Consequently, the mean total oral clearances were 27.3, 151, and 253 l/h in poor, extensive and ultrarapid metabolizers. CONCLUSIONS: High bioavailability combined with low systemic clearance of trimipramine in poor metabolizers of CYP2D6 substrates results in a very high exposure to trimipramine with the risk of adverse drug reactions. On the other hand, the extremely high systemic and presystemic elimination may result in sub-therapeutic drug concentrations in carriers of CYP2D6 gene duplications with a high risk of poor therapeutic response.

Administration, Oral↗

Influence of quinidine on the pharmacokinetics of trimipramine and on its effect on the waking EEG of healthy volunteers. A pilot study on two subjects.

The pharmacokinetics and pharmacodynamics (waking EEG) of 75 mg trimipramine taken orally were determined in two healthy volunteers on two separate occasions, once without and once after comedication with 2 x 50 mg quinidine. Quinidine, a potent cytochrome P-450IID6 inhibitor, is used as a pharmacological tool to mimic a lack of this enzyme in man. In this study, it markedly altered the pharmacokinetics of trimipramine, almost doubling its plasma half-life and decreasing its apparent clearance and volume of distribution. These results strongly suggest that trimipramine is a substrate of cytochrome P-450IID6. These modifications of trimipramine metabolism were accompanied by measurable changes in some EEG variables, most notably with regard to the relative power in the alpha and theta bands, which showed higher and longer-lasting effects of trimipramine. Since cytochrome P-450IID6 is deficient in 5-10% of Caucasian subjects, this may have consequences in trimipramine-treated subjects, especially with regard to the effects of the drug on the EEG.

Administration, Oral↗

Seizures associated with therapeutic doses of venlafaxine and trimipramine.

OBJECTIVE: To report a patient having a first-time seizure after receiving venlafaxine and trimipramine for depression. CASE SUMMARY: A 25-year-old white woman with chronic depression was treated with venlafaxine 150 mg/d and trimipramine 50 mg/d. Eleven days after increase of the trimipramine dosage to 100 mg/d, she was hospitalized because of seizures suggesting a secondary generalized grand-mal episode. The electroencephalogram showed a pathologic pattern with several generalized epileptiform discharges. Because of suspected drug-induced seizures, both antidepressants were stopped. After antidepressant drug cessation, the patient was symptom free and had no further seizure episodes within the following 12 months of follow-up. No other potential cause for the seizure episode could be identified. DISCUSSION: Both venlafaxine and trimipramine have been associated with seizures, mainly after overdose. Venlafaxine-associated seizures at therapeutic doses have not been reported in the literature. We hypothesize that a pharmacodynamic or pharmacokinetic drug interaction between venlafaxine and trimipramine involving the CYP2D6 isoenzyme may have played a role in inducing the seizures. CONCLUSIONS: Clinicians should be aware of the proepileptogenic effect of venlafaxine and trimipramine at therapeutic doses and that this combination may eventually increase the risk of seizures.

Antidepressive Agents, Second-Generation↗

A comparative double-blind controlled study of trimipramine and amitriptyline in major depression: lack of correlation with 5-hydroxytryptamine reuptake blockade.

Thirty-four hospitalized patients with major depression were enrolled in a 3-week double-blind parallel comparative study of trimipramine and amitriptyline. Following a 1-week washout period, patients randomly received one of the two drugs up to 100 mg twice daily on a fixed increment dosage schedule. Both treatments produced a rapid significant clinical improvement that occurred in a predominantly linear fashion. The pattern of improvement was very similar with both drugs. There was no significant correlation between plasma levels of trimipramine and desmethyl-trimipramine and clinical improvement. A negative correlation between amitriptyline plasma levels and clinical improvement was found, whereas a positive correlation occurred with the nortriptyline levels. Amitriptyline, and to a lesser extent trimipramine, prolonged intracardiac conduction. In the amitriptyline group only, this effect was accompanied by significant increases of heart rate and blood pressure. Platelet serotonin content was decreased by 57% by the amitriptyline treatment but remained unchanged in the trimipramine group. This finding constitutes the first clinical evidence that trimipramine does not exert its antidepressant effect through 5-hydroxytryptamine reuptake blockade. It is proposed that neuronal sensitization to 5-hydroxytryptamine might mediate the therapeutic effect of tricyclic antidepressant drugs.

Adult↗