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Inability to detect plasma etretinate and acitretin is a poor predictor of the absence of these teratogens in tissue after stopping acitretin treatment.

1. Concentrations of etretinate, acitretin and its main metabolite 13-cis-acitretin were measured in plasma and subcutaneous fat samples from 37 women of childbearing age exposed to acitretin before November 1990. Twenty of the women still used acitretin and 17 had stopped therapy for a period ranging from 1 to 29 months. 2. The prevalences of detectable etretinate concentrations were 45% and 83% in plasma and subcutaneous tissue, respectively, among current acitretin users and 18% and 86% among those who had stopped acitretin therapy. Thus, inability to detect plasma etretinate is a poor predictor of the absence of etretinate in fat. 3. Acitretin and/or etretinate were detectable in fat and in some cases in plasma from women who had ceased acitretin therapy for up to 29 months. 4. We suggest that (cis)-acitretin and etretinate should be monitored in subcutaneous tissue when plasma measurements are negative. The recommended contraception period of 2 years after cessation of acitretin therapy should be reconsidered to avoid the risk of teratogenicity.

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Skin, adipose tissue and plasma levels of acitretin with rare occurrence of esterified acitretin during long-term treatment.

In a previous study acitretin and its 13-cis-metabolite were monitored in the plasma and epidermis of healthy volunteers. They were given 50 mg of trans-acitretin daily. No drug accumulation was observed in the skin, nor in the plasma. The purpose of the present study was to extend the data from non-psoriatic to psoriatic (n = 11) subjects, treated for at least 1 month with 25 mg acitretin. Plasma, skin biopsies and subcutaneous fat samples were analysed using HPLC. Trough levels of acitretin in skin were below the quantification limit, increasing to 28 +/- 16 ng/g within 5 h after dosing. Fat tissue levels exceeded those of skin, with values of 98 +/- 71 ng/g within 5 h after drug intake. In 2 patients, additional samples were taken 3 days post-therapy. Here, concentrations were below the quantification limit in adipose tissue, confirming that acitretin is not stored in subcutaneous fat. Esterification of acitretin into etretinate was observed in 2 subjects. This observation illustrates the recently described new metabolic pathway for acitretin. On both occasions, the unexpected ethylester metabolite was extensively stored in fat tissue.

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Combined treatment of psoriasis with acitretin and UVB phototherapy compared with acitretin alone and UVB alone.

The administration of UVB phototherapy and low-dose acitretin (0.34-0.44 mg/kg body weight) was compared with the effect of acitretin alone and UVB phototherapy alone in 41 patients with plaque-type psoriasis. Of these patients, 32 received standard UVB phototherapy without acitretin. The other nine were treated with acitretin and the effect of UVB irradiation (Sylvania UV 21-tubes), applied to one half of the body, was assessed. Clearance was defined as 80-100% improvement and this occurred in eight out of the nine patients (89%) treated with acitretin-UVB (ReUVB) and, in two of them (23%), on the untreated side. Clearance occurred in 20 of the 32 (62.5%) patients given UVB alone. The improvement score was significantly higher for the ReUVB side than the acitretin side. Patients treated with ReUVB showed a statistically higher therapeutic score (95-100% clearance) than those receiving UVB alone. However, taking 80-100% improvement as the criterion, no significant difference was found. The number of treatments to clearance was significantly less for the patients treated with ReUVB than for the UVB (19.3 as compared with 24.9). The total UVB dose and the number of minimal erythema doses (MEDs) could be reduced by approximately 20% in the ReUVB group relative to the UVB group.

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Determination of acitretin and 13-cis-acitretin in skin.

The aim of the study was to investigate the concentrations of Ro 10-1670 (acitretin) and its isomeric metabolite Ro 13-7652 (cis-acitretin) after multiple oral dosing of acitretin. We used a highly sensitive HPLC method for simultaneous determination of the 2 retinoids with a quantification limit of 2 ng/ml in plasma and 10 ng/g in total skin (epidermis and dermis). In hairless rats receiving orally 8 mg/kg acitretin once daily during 8 days, blood and skin samples were taken at different time points between 5 and 96 h after the last dose. After 96 h, appreciable concentrations of Ro 10-1670, but not Ro 13-7652 could be measured in the skin, whereas both isomers were below the quantification limit in plasma. In psoriatic patients treated with a once daily dose of 30 mg acitretin, blood samples and biopsies were taken after 1 month of treatment (i.e. under steady state conditions). 24 h after the last drug intake, skin concentrations of acitretin were approximately 10 times higher than those observed in plasma. Ro 10-1670 concentrations in the skin were approximately 3-5 times higher than for Ro 13-7652 and concentrations of both isomers were higher in lesional compared to uninvolved skin.

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Acitretin plus UVB therapy for psoriasis. Comparisons with placebo plus UVB and acitretin alone.

UVB radiation is beneficial for the treatment of psoriasis vulgaris. Patients with recalcitrant disease, however, are slow to respond to UVB phototherapy with and without the use of coal tars or emollients. Etretinate and, more recently, acitretin have proved useful, but clinical improvement is slow when they are used as monotherapy in plaque psoriasis. Each drug also produces side effects, some of which are dose related. This study was designed to compare results of treatment with UVB combined with either acitretin (50 mg/day) or placebo to determine if psoriasis would respond faster and to less cumulative exposure to UVB and acitretin. The psoriatic disease cleared to a greater degree in patients treated with acitretin-UVB with fewer treatments and smaller amounts of UVB radiation than in patients treated with either placebo-UVB or acitretin alone.

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Acitretin (Ro 10-1670) in the treatment of severe psoriasis. A randomized double-blind parallel study comparing acitretin and etretinate.

A randomized double-blind parallel trial comparing acitretin and etretinate was performed in 20 patients with severe psoriasis during a treatment period of 12 weeks. The initial dose was 30 mg/day for 4 weeks, and the mean dose at the end of the study was slightly lower in the acitretin group when compared to the etretinate group (30.7 mg/day and 33.4 mg/day, respectively). Follow-up examinations were carried out every 2 weeks, and the efficacy of treatment was evaluated by using the PASI score. Percentage improvement in the PASI score was 50% at week 10 in both groups, and the difference between them at week 12 was insignificant. Both quantitatively and qualitatively, acitretin and etretinate do not significantly differ.

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Use of direct injection precolumn techniques for the high-performance liquid chromatographic determination of the retinoids acitretin and 13-cis-acitretin in plasma.

A previously developed highly sensitive high-performance liquid chromatographic method for the determination of retinoids, using direct injection of large plasma volumes, on-line solid-phase extraction and ultraviolet detection, was improved and fully validated for the determination of acitretin and 13-cis-acitretin in plasma samples. The addition of acetonitrile to improve the recovery was performed on-line by a T-piece, avoiding any cis-trans isomerization which could occur when acetonitrile was added prior to storage in the autosampler. About 30 injections could be made onto one precolumn despite the large injection volume (1 ml of plasma containing the internal standard). Full automation was attained by the use of automated precolumn replacement. In addition, forward- and back-flush purging of the precolumn enhanced the longevity of the analytical column. This consisted of three coupled C18 columns of 125 mm length each. The quantification limit was 0.3 ng/ml, using ultraviolet detection at 360 nm, and the mean inter-assay precision was 3.8% for the two compounds.

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Quantitative analysis of retinoids in biological fluids by high-performance liquid chromatography using column switching. II. Simultaneous determination of etretinate, acitretin and 13-cis-acitretin in plasma.

An automated gradient high-performance liquid chromatographic method for the determination of etretinate, acitretin and 13-cis-acitretin in plasma was developed, using a column-switching technique. After protein precipitation with ethanol, 0.5 ml of the supernatant was injected onto a precolumn (17 mm x 4.6 mm I.D.), filled with 37-53 microns C18 Corasil. Polar plasma components were washed out using 1% ammonium acetate and 1% acetic acid-acetonitrile (8:2, v/v); the retained retinoids were then transferred to the analytical column (125 mm x 4 mm I.D., filled with 5-microns ODS material) in the backflush mode, separated by gradient elution and detected at 360 nm by UV detection. The limit of quantification was 2 ng/ml and the inter-assay precision in the concentration range 20-1000 ng/ml was between 0.9 and 4.0% for all three compounds. To optimize the recovery for etretinate (greater than 60%), protein was precipitated from plasma with ethanol before injection, instead of direct injection of plasma samples, and a mobile phase containing 20% acetonitrile, instead of pure water or buffer, was used.

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[Pharmacokinetics of etretinate, acitretin and 13-cis-acitretin: new results and advantages of blood level oriented clinical use].

Plasma concentrations of etretinate (E), acitretin (A) and 13-cis-acitretin (13-cis A) were measured using a reverse phase HPLC assay in patients with psoriasis during 24h after the first dose (0.8 mg/kg) and after 3 weeks (group A), and in a second group with various skin diseases (B) under long-term treatment after 3 months. Group A (n = 8) showed median peak plasma concentration levels (Cmax) 578 ng/ml for E. and 161 ng/ml for A 4h after dosing (tmax). The plasma concentration profile of 13-cis A. was plateau-like with Cmax-levels of 138 ng/ml after 4 to 10 hours. In group B treated with 0.3 to 0.4 mg/kg etretinate a trend to increased Cmax-values with 123 ng/ml for E., 44 ng/ml for A. and, more pronounced, 210 ng/ml for 13-cis A. occurred (steady state). In a third group C (n = 17) it was found that after an eight month treatment free period measurements of the 13-cis A. plasma concentration are more sensitive than that of E. or A. Comparing the pharmacokinetics in two patients with the same clinical conditions under E. and A., resp., two fold higher Cmax-values of A. after A. were found than for A. after E. However, 13-cis A. values were higher after E. than after A. Our observations have shown that the metabolisation of A. to 13-cis A. may be disturbed and the clinical efficacy may appear only after dramatic increase of the oral doses. Routine monitoring of plasma concentration profiles of oral retinoids and their metabolites under short or long-term treatment enable us to early identify and understand better the so-called "non-responders", either due to a disturbed metabolism of retinoids or to non-compliance. Furthermore, monitoring of 13-cis A in plasma after cessation of treatment with E. or A. in women in childbearing age seems to be more sensitive than measurement of plasma levels of E. or A. These measurements are helpful for defining the strategy of oral retinoid therapy and for reliable information of females who wish to become pregnant after interrupting the drug.

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Response of the clinically uninvolved skin of psoriatic patients to tape stripping during acitretin treatment.

The aromatic retinoids etretinate and acitretin are widely used in the systemic treatment of severe psoriasis. The purpose of the present investigation was to further elucidate the mode of action of acitretin on abnormal keratinization and epidermal hyperproliferation in an in vivo model. Studies on the interference of acitretin with epidermal hyperproliferation and abnormal keratinization in psoriatic plaques are difficult to interpret, as acitretin-induced changes might be due to direct effects of acitretin or be the indirect effect of retinoid-induced modulation of cutaneous inflammation. Using an immunohistochemical assessment, we examined the in vivo effect of systemic acitretin ( > 35 mg daily) on the expression of filaggrin, involucrin, and on the recruitment of cycling epidermal cells, in the tape-stripped uninvolved skin of psoriatic patients, a model which provides the opportunity to study epidermal regeneration in the absence of significant accumulation of T-lymphocytes. During acitretin therapy and 3 weeks after withdrawal of acitretin, we took biopsies from uninvolved skin following tape-stripping in 6 patients with psoriasis. Six patients with psoriasis who had never used acitretin served as controls. We did not observe a Koebner response in our patients after tape stripping. Filaggrin expression was decreased, while the recruitment of cycling epidermal cells and the involucrin expression were increased in the biopsies taken from patients who did not use acitretin. During acitretin treatment, however, the filaggrin expression was similar, whereas the Ki-67 positive nuclei and the involucrin expression showed a statistically significant decrease compared to those parameters in the patients who did not use acitretin. Our findings indicate that epidermal hyperproliferation and abnormal keratinization are modulated directly by acitretin.

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Acitretin versus etretinate in psoriasis. Clinical and pharmacokinetic results of a German multicenter study.

175 patients with severe psoriasis of different types were treated with 10, 25, or 50 mg acitretin and compared with patients receiving 50 mg etretinate over a period of 8 weeks in a randomized, double-blind multicenter study in the Federal Republic of Germany. Plasma concentrations of etretinate and its metabolite acitretin were measured during therapy and also 3 weeks after cessation of treatment. After 4 weeks of treatment, a trend toward clinical improvement was shown in all groups with increasing dosage. Those groups receiving the lower acitretin doses (i.e., 10 and 25 mg/day) had more dropouts than the groups taking 50 mg acitretin or 50 mg etretinate. Complete remissions before the end of therapy occurred only among those receiving higher doses. Enlargement of psoriatic lesions, however, could be observed during treatment with both retinoids, despite improvement of other parameters, as measured by psoriasis area and severity index (PASI) and psoriasis severity index (PSI). After 8 weeks, a significant improvement was calculated by the PASI score and by a newly defined, corrected PASI score for all four dose regimens compared with baseline levels. A greater than 50% PSI score improvement was seen in 50% of patients treated with 10 mg acitretin, 40.5% with 25 mg acitretin, 53.8% with 50 mg acitretin, and 61.1% with 50 mg etretinate. No statistical differences were found among these groups at any time during the 8-week period. No new or unexpected side effects occurred during acitretin treatment. Moreover, cholesterol levels did not significantly change. Three weeks after cessation of drug administration, the plasma concentrations of acitretin were below the sensitivity level of the assay, whereas etretinate was still quantifiable. It is interesting that acitretin plasma concentrations during therapy with 50 mg acitretin were markedly lower (means = 18 ng/ml) than were acitretin levels during treatment with 50 mg etretinate (means = 36 ng/ml).

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Acitretin is converted to etretinate only during concomitant alcohol intake.

BACKGROUND: Acitretin has replaced etretinate in the treatment of various disorders of keratinization due to a considerably shorter terminal half-life. Possible esterification of acitretin to etretinate in the presence of ethanol has been reported. OBJECTIVES: To determine the plasma concentrations of etretinate as a metabolite in patients with various disorders of keratinization after multiple acitretin dosing, and to assess the influence of alcohol consumption using a questionnaire. In addition, to study the influence of alcohol consumption on the risk of metabolic formation of etretinate. PATIENTS/METHODS: Eighty-six acitretin (Neotigason(R), Roche)-treated outpatients from three centres provided pre-dose (trough) samples for determining plasma concentrations of acitretin and its metabolites 13-cis-acitretin and etretinate. Patients received acitretin doses of between 0.1 and 1.3 mg kg-1 daily. The concentrations of etretinate, acitretin and 13-cis-acitretin were determined by reverse-phase high-performance liquid chromatography. RESULTS: Of the 86 patients, 30 had detectable plasma etretinate levels. No etretinate was found in 20 patients who reported that they never drank alcohol, while etretinate was found in all 16 patients with an average weekly alcohol consumption of > 200 g ethanol, corresponding to about 15 U (1 U equals half a pint of standard beer or a wine glass of non-fortified wine). Etretinate was detected in 14 of 50 patients with a moderate weekly alcohol intake of up to 200 g ethanol. A trend linking higher alcohol intake with both higher risk of etretinate formation and higher etretinate levels was observed. The study also revealed that the ethylesterification only relates to acitretin (13-trans-) and not to the main metabolite 13-cis-acitretin, although the latter compound showed higher plasma trough concentration levels at steady state. CONCLUSIONS: Owing to the teratogenic potential and possible side-effects of oral retinoids, fertile women especially should be informed about the importance of strict alcohol abstinence during treatment and for at least 2 months after stopping therapy. In case of non-compliance with alcohol abstinence a post-therapy contraceptive period of 2-3 years should be recommended.

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N-linked glycoside and glucuronide conjugates of the retinoid, acitretin, are biologically active in cornea and conjunctiva.

The purpose of this study was to test two water-soluble, synthetic retinoids, glucoseamido acitretin and glucuronamido acitretin, for biological activity in cells of the cornea and conjunctiva. Vitamin A-deficient, xerophthalmic rats were treated topically with these retinoids, and corneas were examined histologically for effects on epithelial keratinization. The effect of these retinoids on the proliferation of rabbit conjunctival fibroblasts in culture was also investigated. Glucoseamido acitretin treatment restored a normal cornea after eight to nine days of treatment, while no improvement was observed in the vehicle-treated corneas. Likewise, glucuronamido acitretin application restored a normal corneal surface and reversed keratinization after eight to ten days of treatment. These retinoids caused no irritation of the eye or ocular adnexa. In culture, exposure of conjunctival fibroblasts to glucoseamide acitretin inhibited cell proliferation. Cultures exposed to glucoseamido acitretin at 10(-8) M or 10(-6) M had cell densities 77.3% and 51.9% of control, respectively, after seven days. Glucuronamido acitretin also inhibited cell proliferation. Cultures exposed to glucuronamido acitretin at 10(-8) M had a cell density of 69.2% of control at day seven, while at 10(-6) M this retinoid completely inhibited cell proliferation. These results show that glucoseamide acitretin and glucuronamido acitretin are biologically active in the cornea and conjunctiva, and may be considered for ophthalmic use in diseases involving abnormalities of ocular surface cell differentiation or hyperproliferation of fibroblasts.

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Conversion of acitretin to etretinate in psoriatic patients is influenced by ethanol.

Acitretin has recently been introduced to replace etretinate in the treatment of severe psoriasis due to a considerable shorter terminal half-life. The previously recommended 2-month anticonceptive period after acitretin treatment has been extended to 2 years after the detection of etretinate in certain acitretin recipients. In the present study, 10 patients with severe psoriasis were treated with 30 mg acitretin daily for 3 months. Seven patients had detectable mean steady-state plasma etretinate concentrations in the range of 2.5 to 56.7 ng/ml. Four of the patients showed teratogenic levels of plasma etretinate. Consumption of alcohol appeared to be an important contributing factor for the formation of etretinate. As judged from the dose- and body-weight-normalized AUC values (AUCcor) there was a great inter-individual variation (sixfold) in the systemic availability of acitretin. After discontinuation of therapy, the rate of elimination of both acitretin (t1/2 range 1.0 to 25.4 d) and 13-cis-acitretin (t1/2 range 1.5 to 25.7 d) was found to be related to the observed mean steady-state level of etretinate as evidenced by a longer terminal t1/2 of patients with high levels of etretinate in plasma. A mean terminal elimination half-life of etretinate was found to be 45.7 d +/- 10.6 (mean +/- SD; range 27.0 to 59.3 d). The risk of metabolic formation of etretinate in acitretin recipients makes it impossible to draw any definite conclusion with regard to recommendation of length of anticonceptive period following acitretin therapy in psoriatics. Monitoring of plasma etretinate levels in acitretin-treated fertile women is advisable.

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Oral acitretin in psoriasis: drug and vitamin A concentrations in plasma, skin and adipose tissue.

The purpose of the present study was to determine the concentrations of acitretin and its main metabolite, 13-cis acitretin, in epidermis, subcutis and plasma in twelve psoriatic patients treated with 30 mg acitretin orally daily for 6 months. In addition, endogenous concentrations of vitamin A were monitored. Blood samples and biopsies from normal appearing skin were obtained prior to therapy, after 1 and 6 months of treatment and finally 1 month after cessation of therapy. Using a highly sensitive liquid chromatography method concentrations of synthetic retinoids and endogenous retinoid (retinol, 3,4-didehydroretinol) were analysed in hydrolyzed tissue samples and plasma. Steady-state concentration of acitretin in epidermis (17 +/- 9 ng/g) was reached within 1 month of therapy. There was a significant correlation between the individual plasma trough value and the epidermal concentration of acitretin after 1 month of therapy. The acitretin concentrations in subcutis varied from 15 to 1437 ng/g, but the mean values at 1 and 6 months of therapy were similar (177 and 227 ng/g, respectively). After stopping therapy the acitretin level was below the detection limit in both epidermis and serum within 1 month in 9 out of 12 patients. In contrast, only 3 of the patients were negative for acitretin in subcutis biopsies obtained 1 month after stopping therapy. The occurrence of a presumed tissue contaminator with characteristics similar to 13-cis acitretin prevented quantitation of this metabolite in many subcutis samples. The epidermal, subcutis and serum composition of retinol and 3,4-didehydroretinol remained unchanged during therapy, indicating no or only minimal interaction between acitretin and endogenous vitamin A metabolism.

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Cis-trans interconversion of acitretin in man.

The major plasma metabolite of acitretin (trans-acitretin) is its 13-cis isomer, cis-acitretin. Interconversion of cis-acitretin to trans-acitretin was demonstrated in man following administration of a single oral dose of cis-acitretin. Plasma concentrations of Ro 13-7652 (cis-acitretin) and Ro 10-1670 (trans-acitretin) were much higher after cis-acitretin administration than after trans-acitretin administration. Surprisingly, these high concentrations were not associated with a clear therapeutic effect in dermatoses (e.g. psoriasis) which are usually responsive to oral retinoids. Interactions between the cis and trans isomers formed in vivo may explain the difference in therapeutic activity of each stereoisomer when administered orally.

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Kinetics of tissue distribution and elimination of retinoid drugs in the rat. I. Acitretin.

Rats were injected with single intravenous doses of acitretin (6 mg/kg), and concentrations of the drug and its metabolite, 13-cis-acitretin, were determined in plasma and nine tissues up to 6 hr postdose. A newly developed sensitive method for the determination by HPLC of acitretin, 13-cis-acitretin, and etretinate was used. Acitretin rapidly appeared in liver and muscle, where it underwent redistribution into skin and adipose tissue. Tissue/plasma concentration ratios of acitretin ranged from 2.8 to 0.3 in the order adipose tissue > brain, liver > lung, heart, kidney, spleen > skin, muscle. Adipose tissue storage was moderate and short-lived. The metabolite, 13-cis-acitretin, was detected in all tissues but not in plasma; it accounted for < 10% of the administered dose at any time. No etretinate could be detected as a metabolite in plasma or tissues. After 6 hr, < 1% of the dose remained in the body as acitretin and 13-cis-acitretin. Disappearance was monophasic, with an elimination half-life of 70 min in plasma and 68 +/- 9 min in the nine tissues. The volume of distribution was 0.6 liters/kg and clearance 6 ml.min-1.kg-1. Acitretin was characterized by rapid first-order elimination and the absence of storage in a deep compartment.

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