PubMed HealthSearch

SEARCH · PubMed Health

Results for “Nortriptyline”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Displacement of nortriptyline and uptake of 14C-lidocaine in the lung after administration of 14C-lidocaine to nortriptyline intoxicated pigs.

Six anaesthetized Swedish land-race pigs were intoxicated by an intravenous infusion of nortriptyline-HCl (NT) up to a concentration of 4.58 +/- 0.58 (mean +/- S.E.M.) microM in arterial whole blood. A rapid injection of 2 mg/kg b.wt. lidocaine-HCl in the right atrium was followed by a rise in arterial whole blood concentration of NT up to a maximum of 7.32 +/- 0.28 microM NT. Amount displaced NT from the cardio-pulmonary circulation after the 14C-lidocaine bolus, was calculated to be 0.66 +/- 0.03 mumol. Lung uptake of 14C-lidocaine during first-pass through the lung was not influenced to any statistically signficant degree compared to a control group. Thus, first pass uptake (FPU) was 30 +/- 8 (mean +/- S.E.M.)% and 39 +/- 5% respectively. The duration of the QRS-complex of the ECG was increased (P less than 0.01) during the infusion of NT from 0.07 +/- 0.01 (mean +/- S.E.M.) sec. to 0.14 +/- 0.02 sec. when 250 mg NT-HCl had been administered. The QRS-duration was decreased (P less than 0.01) after the injection of the 14C-lidocaine bolus to 0.09 +/- 0.01 sec. Mean arterial blood pressure and heartrate decreased slightly during the infusion of NT, but did not change immediately after the 14C-lidocaine bolus.

Animals

Quantitative determination of amitriptyline and its principal metabolite, nortriptyline, by GLC-chemical ionization mass spectrometry.

A quantitative GLC-mass spectrometry assay was developed for the determination of the tricyclic antidepressant amitriptyline and its desmethyl metabolite (nortriptyline) in human plasma. The assay utilizes selective ion detection to monitor in a GLC effluent the MH+ molecular ions of amitriptyline and nortriptyline generated by isobutane chemical ionization. The procedure, which utilizes deuterated analogs of amitriptyline and nortriptyline as internal standards, requires 1 ml of plasma and can measure 1 ng/ml of amitriptyline and 0.5 ng/ml of nortriptyline. The curves relating the amounts of amitriptyline and nortriptyline added versus the amounts found over a 100-fold range of amitriptyline and nortriptyline concentrations are straight lines with intercepts of approximately zero and slopes of unity. Analyses of plasma samples from three subjects receiving 50 mg of amitriptyline orally, three times a day, gave an average plasma concentration of 115 +/- 42 ng/ml for amitriptyline and 109 +/- 20 ng/ml for nortriptyline. Similar analyses of the plasma of three subjects who had received a single 50-mg oral dose of amitriptyline showed an average maximum plasma concentration of 25 +/- 10 ng/ml for amitriptyline and 10 +/- 4 ng/ml for nortriptyline. Seventy-two hours after adminis-ration, the average plasma amitriptyline and nortriptyline levels were 3 +/- 2 ng/ml, respectively.

Adult

Plasma nortriptyline and cardiac responses in young and old rats.

1. The relationship between plasma concentrations and cardiac effects of nortriptyline was studied in anaesthetized young and old rats. 2. Nortriptyline was administered by two consecutive intravenous infusions which resulted in a peak plasma concentration followed by steady state values. Increasing infusion rates were followed by proportional increases in the drug plasma concentrations ranging from 0.15 to 6.0 microgram/ml. 3. In young rats, nortriptyline induced an increase in the heart rate, a right rotation of the electrical axis and a prolongation of the PQ interval. Heart rate changes were not correlated with nortriptyline plasma concentrations, while significant correlations were found for the other two parameters. Plasma concentrations inducing 20% increase of the PQ interval and 40 degrees rotation of the electrical axis were 1.65 microgram/ml respectively. Arrhythmias occurred at concentrations higher than 5.2 microgram/ml. 4. Nortriptyline caused more severe cardiac effects in old than in young animals. However, plasma concentrations of nortriptyline in old rats were two to five times higher than those found in young rats at similar infusion rates. A higher concentration of the drug at its sites of action seems to be responsible for the more severe cardiac toxicity of nortriptyline observed in old rats.

Aging

A comparison study of amitriptyline and nortriptyline with plasma levels.

Forty-one depressed outpatients were treated for six weeks after random assignment to amitriptyline hydrochloride (N = 22) or nortriptyline hydrochloride (N = 19). On a mean daily dose of 119 mg, amitriptyline-treated patients had a mean tricyclic level (amitriptyline plus nortriptyline) of 120 ng/ml. Nortriptyline-treated patients on a mean dose of 117 mg/day had a mean nortriptyline level of 141 ng/ml. The two drugs were equally effective in the treatment of depression. The correlation between the Hamilton Score and the mean tricyclic level was negative in the amitriptyline-treated patients (r = -0.54, P less than .025) and positive in the nortriptyline-treated patients (r = -0.49, P less than .05). Patients treated with amitriptyline or nortriptyline with plasma levels within the therapeutic range, defined in other laboratories, had a better response, as measured by the Hamilton Score (P less than .001), Zung Score (P less than .01), and percent recovered (P less than .001), than those above or below the therapeutic range.

Administration, Oral

Clinical response and plasma concentration of amitriptyline and its metabolite nortriptyline.

Plasma levels of amitriptyline and nortriptyline were measured twice weekly in 62 patients treated for three weeks with i.m. amitriptyline 120 mg/day. In half the patients the ratio of amitriptyline to nortriptyline was under 1 and in the other half it was greater than 1. 30 of these 62 patients were clinically monitored with the Hamilton Rating Scale and the side effects of the drug were recorded. There was no correlation between plasma level of the drug and its side effects, but there was a statistically significant curvilinear correlation between the plasma levels of amitriptyline plus nortriptyline and nortriptyline alone, and the clinical effect. The practical value of this type of investigation was demonstrated by showing that patients whose drug plasma level was not in the therapeutic range, were clinically improved after adjustment of the dose. The plasma level of amitriptyline plus nortriptyline must lie between 60 to 220 ng/ml, and that of nortriptyline between 60 to 140 ng/ml, to obtain the best clinical effect. Associated treatments, age, weight and sex of patients, and the type of depression did not appear significantly to affect the plasma level of the drug.

Adult

High plasma nortriptyline levels in the treatment of depression. I.

Following a 3-day single-dose kinetic study, 21 moderate to severely depressed inpatients were treated with 100 mg of nortriptyline nightly. Eighteen patients completed the 4-wk trial. The severity of depression was measured by weekly Hamilton Rating Scale and global rating. Blood for plasma nortriptyline estimation was taken at weekly intervals 12 h following the nighttime dose. There was a 6-fold variation in mean plasma nortriptyline levels, ranging from 120 microgram/L to 681 microgram/L. Patients with high plasma levels (greater than 200 microgram/L) showed significantly poorer clinical responses than those with levels in routine treatment, high plasma nortriptyline levels are significantly less effective than intermediate levels. Single-dose pharmacokinetic data obtained on the same patients showed a highly significant correlation with mean steady-state plasma levels obtained, which themselves correlated with clinical response. The value of predicting high plasma nortriptyline levels which are associated with poor response is discussed.

Adult

A method for the determination of amitriptyline and its metabolites nortriptyline, 10-hydroxyamitriptyline, and 10-hydroxynortriptyline in human plasma using stable isotope dilution and gas chromatography-chemical ionization mass spectrometry (GC-CIMS).

A gas chromatography--mass spectrometry (GC-MS) method has been developed to measure amitriptyline and its metabolites nortriptyline, 10-hydroxyamitriptyline, and 10-hydroxynortriptyline in human plasma. Deuterated analogs of each compound were synthesized as internal standards. Isobutane was used as both gas chromatography (GC) carrier gas and chemical ionization (CI) reagent gas. In order to obtain compounds with satisfactory GC and mass spectrometry (MS) properties, the two alcohol metabolites were dehydrated without loss of label during sample preparation. Selective ion monitoring of the MH+ ions of the protio- and deuterio- compounds gave ion ratios which were converted to plasma concentrations using standard curves. For amitriptyline and nortriptyline, which are assayed using multiple deuterated analogs as internal standards, the curves are straight lines. For 10-hydroxyamitriptyline and 10-hydroxynortriptyline, which are assayed using monodeuterated analogs as internal standards, the curves are nonlinear and are analyzed using an iterative computer procedure. Assay sensitivity is 0.5 ng/ml for amitriptyline, nortriptyline, and 10-hydroxyamitriptyline and 1 ng/ml for 10-hydroxynortriptyline. Assay precision and accuracy in terms of percent error are both less than 5%. Following oral administration of a single 75-mg dose of amitriptyline to two subjects, the mean plasma levels of amitriptyline, nortriptyline, 10-hydroxyamitriptyline, conjugated 10-hydroxyamitriptyline, 10-hydroxynortriptyline, and conjugated 10-hydroxynortriptyline were 36, 8, 10, 66, 16, and 46 ng/ml, respectively, at 2 hr after dosing and 3, 4, 0.5, 1, 6, and 17 ng/ml, respectively, at 72 hr after dosing. Analyses of plasma samples from 12 subjects who had been receiving 50 mg amitriptyline therapy three times a day for an average +/- SD of 32 +/- 5 days gave a mean concentration of 81 +/- 40 ng/ml for amitriptyline, 71 +/- 57 ng/ml for nortriptyline, 12 +/- 5 ng/ml for 10-hydroxyamitriptyline, 91 +/- 30 ng/ml for conjugated 10-hydroxyamitriptyline, 82 +/- 27 ng/ml for 10-hydroxynortriptyline, and 176 +/- 64 ng/ml for conjugated 10-hydroxynortriptyline.

Amitriptyline

Effect of simultaneous treatment with low doses of perphenazine on plasma and urine concentrations of nortriptyline and 10-hydroxynortriptyline.

Plasma levels of nortriptyline and perphenazine were measured in six patients on continuous nortriptyline treatment before, during and after oral administration of perphenazine 4 mg t.i.d. In four patients the plasma levels of the conjugated and unconjugated principal metabolite 10-hydroxynortriptyline were also measured. Urinary excretion of conjugated and unconjugated 10-hydroxynortriptyline and plasma levels of perphenazine were determined in all six patients. During treatment with perphenazine two patients showed a slight increase in the plasma level of nortriptyline. The changes in metabolite excretion rate were inconclusive. Thus, there did not appear to be any important pharmacokinetic interaction between the two drugs at the doses used, which were normal therapeutic doses. The previously reported inhibitory effect of perphenazine on the metabolism of nortriptyline probably depended therefore, either on administration of a higher dose of perphenazine, or on treatment in the reverse sequence--a single dose of nortriptyline was given to patients already receiving perphenazine.

Adult

Effect of activated charcoal on absorption of nortriptyline.

The ability of 'Medicoal', a new effervescent, activated charcoal preparation, to adsorb nortriptyline, has been investigated both in vitro and in vivo. A single dose of the effervescent charcoal 30 min after a dose of 75 mg nortriptyline produced a 60% mean reduction in both peak plasma levels and nortriptyline availability in healthy volunteers. Multiple doses of the effervescent charcoal produced 70% mean reduction in peak nortriptyline levels and availabiltiy. Activated charcoal is recommended for the treatment of tricyclic antidepressant poisoning. In in-vitro tests, a 10 g packet of the effervescent preparation containing 5 g activated charcoal) had an adsorptive capacity of approximately 3000 mg nortriptyline, a dose not usually exceeded in most cases of trycyclic antidepressant overdose.

Absorption

Specific radioimmunoassay of amitriptyline and nortriptyline.

1 Antisera to nortriptyline were prepared by immunizing rabbits with N-succinylnortriptyline--bovine serum albumin conjugate. 2 A sensitive radioimmunoassay has been developed for the tricyclic antidepressants amitriptyline and nortriptyline. 3 amitriptyline and nortriptyline are separated from each other and from interfering metabolites before assay. 4 Using [3H]-imipramine and [3H]-succinylnortriptyline as tracers the radioimmunoassay can measure amitriptyline and nortriptyline levels down to 2--3 ng/ml using 0.05 ml plasma sample. 5 Agreement between the radioimmunoassay and a gas-chromatographic assay was excellent for both amitriptyline and nortriptyline.

Amitriptyline

Novel 125I-labeled nortriptyline derivatives and their use in liquid-phase or magnetizable solid-phase second-antibody radioimmunoassays.

Nortriptyline derivatives prepared by reaction with fluorescein isothiocyanate or conjugation to N-acetyl-L-histidine were radioiodinated and the products purified with Sephadex LH-20 columns to obtain two novel nortriptyline radioligands. Antisera were raised in rabbits by immunization with nortriptyline conjugated to succinylated ovine albumin. By use of the iodinated fluorescein derivative we developed a liquid-phase second-antibody radioimmunoassay that gives results correlating closely (r = 0.98) with those by an established radioimmunoassay of similar specificity in the assay of apparent total amitriptyline and its metabolite nortriptyline in serum or plasma from patients being treated with these drugs. With the iodinated N-acetyl-L-histidine derivative we developed a magnetizable solid-phase second-antibody radioimmunoassay. The cross reactivities of amitriptyline and nortriptyline could be made equal by performing the assay at pH 9.0, which makes it possible to measure true total active drug concentrations in patients receiving amitriptyline.

Amitriptyline

Gas chromatographic determination of amitriptyline, nortriptyline and perphenazine in plasma of schizophrenic patients after administration of the combination of amitriptyline with perphenazine.

A specific and sensitive gas-chromatographic technique using a common extraction procedure for the quantitative determination of amitriptyline, endogenous nortriptyline and perphenazine in plasma of schizophrenic patients receiving therapeutic doses of a combination of amitriptyline and perphenazine (Etrafon) has been developed. The lower limits of detection are 20 ng/ml for amitriptyline, 1 ng/ml for nortriptyline and 5 ng/ml for perphenazine. Amitriptyline is estimated with a flame ionization detector. Nortriptyline is quantitated using an electron capture detector after converting it to its heptafluorobutyryl derivative by reaction with the appropriate anhydride. Perphenazine is also determined using an electron capture detector after forming its stable, trimethylsilyl derivative by reaction with N,O-bis-(trimethylsilyl)-acetamide. In individual patients, the steady-state plasma levels ranged from 44 to 215 ng/ml for amitriptyline, from 49 to 270 ng/ml for nortriptyline and from less than 5 to 20 ng/ml for perphenazine. Steady-state plasma levels data on amitriptyline, nortriptyline and perphenazine in 23 patients treated with Etrafon are presented.

Adult

Saliva secretion following long-term antidepressant treatment with nortriptyline controlled by plasma levels.

Eight patients undergoing antidepressant therapy with nortriptyline for 1--4 years were investigated. The period of the investigation was 7 weeks and included a 2-week placebo period, blind for the patients. Total saliva secretion measurement, the nortriptyline plasma level, and signs and symptoms of depression and side effects were obtained once a week during the study. The results of the investigation were: (1) long-term treatment with nortriptyline is followed by hyposecretion or xerostomia, (2) the reduction of the secretion is reversible, (3) re-establishment of treatment with dosage leading to the same serum level of nortriptyline is immediately followed by a drop in saliva secretion, and (4) the changes in salivary secretion are useful as an indicator of side effects. The practical importance of the investigation is discussed.

Aged

Anomalous results of studies on drug interaction in man. I. Nortriptyline and antipyrine.

Conflicting results were obtained in three drug interaction experiments designed to determine in man effects of chronic nortriptyline administration on plasma antipyrine half-lives. In an apparently similar design, each experiment utilized normal volunteers whose plasma antipyrine half-lives were measured before and after chronic nortriptyline administration. The same dose of liquid nortriptyline (0.2 mg/kg p.o. t.i.d. for 8 days) was used in each experiment. All subjects in the first study prolonged their plasma antipyrine half-lives, whereas seven of nine subjects in the second study significantly shortened their plasma antipyrine half-lives. In the third experiment seven of nine subjects showed no significant change in plasma antipyrine half-life. An explanation for these conflicting results obtained in the same laboratory under apparently similar experimental conditions was sought in the nature of the volunteers and in subtle changes in such variables as differences in the batches and length of storage of liquid nortriptyline.

Adult

Sampling time, dosage schedule, and nortriptyline plasma levels.

Steady-state nortriptyline plasma levels were determined in eight patients at 9 AM, 12 PM, 3 PM, and 6 PM during treatment with nortriptyline hydrochloride administered as a single daily bedtime (hs) dose at 10 PM and repeated after changing the dosage schedule to three times a day (tid) with divided doses at 10 AM, 4 PM, and 10 PM. Overall, the mean levels were stable during the sampling period and comparable on the two schedules. As expected, the plasma level decreased at the later sampling times on the hs schedule and increased on the tid schedule. In seven of the eight patients, the differences on the two dosage schedules were less than 30 ng/ml, which is not considered clinically significant. One patient had a higher plasma nortriptyline level on the tid schedule, which was clinically significant. Standardization of sampling time is of importance when comparing plasma levels and therapeutic response in treatment studies.

Depression

Effect of delayed administration of activated charcoal on nortriptyline absorption.

Activated charcoal is known to reduce the absorption of therapeutic doses of nortriptyline in vivo when administered 30 min after drug ingestion. In a group of volunteers, one sachet (10 g) of a new activated charcoal preparation, 'Medicoal' was found to produce a highly significant reduction in nortriptyline absorption when given as long as four hours after nortriptyline dosing. Activated charcoal may therefore be useful in the treatment of tricyclic antidepressant poisoning even if a delay of several hours ensues before medical help is sought.

Adult

A double-blind comparison of flupenthixol, nortriptyline and diazepam in neurotic depression.

A double-blind trial of flupenthixol, nortriptyline and diazepam in neurotic depression using flexible dose schedules suggested that each drug is an efficient treatment for this category of depression although the patterns of response and prevalence of side-effects varied. No differences reaching a level of significance could be shown on rating scales of depression or anxiety, but trends favoured flupenthixol. However, clinical evaluation suggested flupenthixol to be more effective than diazepam on mental state examination (P less than 0.05) and to have a greater overall therapeutic effect than nortriptyline (P less than 0.05). It also had fewer side-effects than nortriptyline (P less than 0.05).

Adjustment Disorders

Interaction of perphenazine with the kinetics of nortriptyline.

The kinetics of nortriptyline in four patients were investigated before and during treatment with perphenazine (24-36 mg/day) by administering 57 mg nortriptyline hydrochloride as an intravenous infusion and evaluating the resulting plasma concentration data according to a two compartment open model. In all patients an increased biological half-life as well as a decreased systemic clearance and rate of metabolism were found in the perphenazine-period, thus confirming the inhibitory effect of perphenazine on the metabolism of nortriptyline found in earlier studies. Some interaction with distribution parameters was also indicated, but on the whole the model parameters did not provide much further information about the interaction. Although the most pronounced changes were found with the patient getting the highest dose of perphenazine, the dose-effect relationship remains obscure.

Dose-Response Relationship, Drug