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1.
Psiquiatr. biol. (Internet) ; 27(3): 83-95, sept.-dic. 2020. tab, graf
Article in Spanish | IBECS | ID: ibc-198674

ABSTRACT

OBJETIVO: La Monitorización Terapéutica de Drogas (llamada en inglés TDM: therapeutic drug monitoring) combina la cuantificación de las concentraciones de medicamentos en la sangre, la interpretación farmacológica y las directrices de tratamiento. La TDM introduce una herramienta de medicina de precisión en una ípoca de gran conciencia de la necesidad de tratamientos personalizados en neurología y psiquiatría. Las indicaciones claras de la TDM incluyen la ausencia de respuesta clínica en el rango de dosis terapéuticas, la evaluación de la adherencia farmacológica, problemas de tolerancia e interacciones medicamentosas. MÉTODOS: Basándose en la literatura existente, se describieron los rangos de referencia terapéutica recomendables, los valores críticos de laboratorio y los niveles de recomendación para usar la TDM para la optimización de dosis sin indicaciones específicas, se calcularon los factores de conversión, los factores para el cálculo de concentraciones medicamentosas relacionadas con la dosis (en inglés DRC dose-to-ratioconcentration) y el cociente entre el metabolito y el compuesto original (en inglés se llama MPR: metabolite-to-parent ratio). RESULTADOS: Este resumen de las guías actualizadas del consenso por la Task Force del TDM del Arbeitsgemeinschaft für Neuropsychopharmakologie und Pharmakopsychiatrie, ofrece el conocimiento práctico y teórico para la integración de la TDM como parte de la farmacoterapia con medicamentos neuropsiquiátricos en la práctica clínica rutinaria. CONCLUSIONES: La presente traducción en español, de la guía para la aplicación del TDM en medicamentos neuropsiquiátricos, tiene como objetivo ayudar a los clínicos a mejorar la seguridad y la eficacia de los tratamientos


OBJECTIVES: Therapeutic drug monitoring (TDM) combines the quantification of drug concentrations in blood, pharmacological interpretation, and treatment guidance. TDM introduces a precision medicine tool in times of increasing awareness of the need for personalised treatment. In neurology and psychiatry, TDM can guide pharmacotherapy for patient subgroups such as children, adolescents, pregnant women, elderly patients, patients with intellectual disabilities, patients with substance use disorders, individuals with pharmacokinetic peculiarities, and forensic patients. Clear indications for TDM include lack of clinical response in the therapeutic dose range, assessment of drug adherence, tolerability issues, and drug-drug interactions. METHODS: Based upon existing literature, recommended therapeutic reference ranges, laboratory alert levels, and levels of recommendation to use TDM for dosage optimisation without specific indications, conversion factors, factors for calculation of dose-related drug concentrations, and metabolite-to-parent ratios were calculated. RESULTS: This summary of the updated consensus guidelines by the TDM task force of the Arbeitsgemeinschaft für Neuropsychopharmakologie und Pharmakopsychiatrie (AGNP) offers the practical and theoretical knowledge for the integration of TDM as part of pharmacotherapy with neuro- psychiatric agents into clinical routine. CONCLUSIONS: The present guidelines for TDM application for neuropsychiatric agents aim to assist clinicians in enhancing safety and efficacy of treatment


Subject(s)
Humans , Neuropharmacology/methods , Neuropharmacology/standards , Drug Monitoring/methods , Drug Monitoring/standards , Central Nervous System Agents/administration & dosage , Central Nervous System Agents/pharmacokinetics
2.
World J Biol Psychiatry ; 19(3): 162-174, 2018 04.
Article in English | MEDLINE | ID: mdl-29493375

ABSTRACT

OBJECTIVES: Therapeutic drug monitoring (TDM) combines the quantification of drug concentrations in blood, pharmacological interpretation and treatment guidance. TDM introduces a precision medicine tool in times of increasing awareness of the need for personalized treatment. In neurology and psychiatry, TDM can guide pharmacotherapy for patient subgroups such as children, adolescents, pregnant women, elderly patients, patients with intellectual disabilities, patients with substance use disorders, individuals with pharmacokinetic peculiarities and forensic patients. Clear indications for TDM include lack of clinical response in the therapeutic dose range, assessment of drug adherence, tolerability issues and drug-drug interactions. METHODS: Based upon existing literature, recommended therapeutic reference ranges, laboratory alert levels, and levels of recommendation to use TDM for dosage optimization without specific indications, conversion factors, factors for calculation of dose-related drug concentrations and metabolite-to-parent ratios were calculated. RESULTS: This summary of the updated consensus guidelines by the TDM task force of the Arbeitsgemeinschaft für Neuropsychopharmakologie und Pharmakopsychiatrie offers the practical and theoretical knowledge for the integration of TDM as part of pharmacotherapy with neuropsychiatric agents into clinical routine. CONCLUSIONS: The present guidelines for TDM application for neuropsychiatric agents aim to assist clinicians in enhancing safety and efficacy of treatment.


Subject(s)
Consensus , Drug Monitoring/standards , Neurology/standards , Practice Guidelines as Topic/standards , Psychiatry/standards , Psychopharmacology/standards , Humans
3.
J Clin Psychopharmacol ; 33(3): 289-98, 2013 Jun.
Article in English | MEDLINE | ID: mdl-23609392

ABSTRACT

Risperidone is metabolized by polymorphic enzymes, and a large variability in plasma concentration and therapeutic response is observed. Risperidone long-acting injection (RLAI) avoids the first-pass effect, and little is known about the influence of gene polymorphisms involved in its pharmacokinetics. The influence on plasma concentrations of risperidone (RIS), its metabolite 9-hydroxy-risperidone, and on adverse effects were investigated for polymorphisms of cytochrome P450 2D6 (CYP2D6) (*3, *4, *5, *6), CYP3A (CYP3A4*1B, CYP3A4 rs4646437, CYP3A5*3, CYP3A7*1C), ABCB1 (1236C>T, 2677G>T, 3435C>T), NR1/2 coding for pregnane X receptor (rs1523130, rs2472677, rs7643645), and for CYP3A activity measured by a phenotyping test. Forty-two patients with at least 4 consecutive unchanged doses of RLAI were included in a multicenter cross-sectional study. A 55% lower dose-adjusted plasma levels of RIS were observed for CYP2D6 ultrarapid metabolizers (n = 5) as compared with CYP2D6 intermediate metabolizers (P < 0.007). NR1/2 polymorphism (rs7643645A>G) influenced RIS exposure with a 2.8-fold lower active moiety (P = 0.031) in GG compared with the AA genotype. This was confirmed in a second independent cohort (n = 16). Furthermore, high-density lipoprotein cholesterol was positively correlated with CYP3A activity (P = 0.01), and the NR1/2 (rs2472677) polymorphism was associated with different adverse effects including prolactin plasma levels adjusted for age and sex. In conclusion, our results confirmed the influence of CYP2D6 genotype on plasma levels of RIS. This is the first report on the influence of NR1/2 polymorphisms on RLAI exposure and on drug-induced adverse effects. These results should be validated in larger cohorts.


Subject(s)
Antipsychotic Agents/pharmacokinetics , Cytochrome P-450 CYP2D6/genetics , Receptors, Steroid/genetics , Risperidone/pharmacokinetics , Adolescent , Adult , Antipsychotic Agents/administration & dosage , Antipsychotic Agents/adverse effects , Cohort Studies , Cross-Sectional Studies , Dose-Response Relationship, Drug , Female , Genotype , Humans , Injections , Male , Middle Aged , Pharmacogenetics , Polymorphism, Single Nucleotide , Pregnane X Receptor , Risperidone/administration & dosage , Risperidone/adverse effects , Young Adult
4.
J Clin Psychopharmacol ; 32(5): 622-9, 2012 Oct.
Article in English | MEDLINE | ID: mdl-22926595

ABSTRACT

Pharmacogenetic tests and therapeutic drug monitoring may considerably improve the pharmacotherapy of depression. The aim of this study was to evaluate the relationship between the efficacy of mirtazapine (MIR) and the steady-state plasma concentrations of its enantiomers and metabolites in moderately to severely depressed patients, taking their pharmacogenetic status into account. Inpatients and outpatients (n = 45; mean age, 51 years; range, 19-79 years) with major depressive episode received MIR for 8 weeks (30 mg/d on days 1-14 and 30-45 mg/d on days 15-56). Mirtazapine treatment resulted in a significant improvement in mean Hamilton Depression Rating Scale total score at the end of the study (P < 0.0001). There was no evidence for a significant plasma concentration-clinical effectiveness relationship regarding any pharmacokinetic parameter. The enantiomers of MIR and its hydroxylated (OH-MIR) and demethylated (DMIR) metabolites in plasma samples on days 14 and 56 were influenced by sex and age. Nonsmokers (n = 28) had higher mean MIR plasma levels than smokers (n = 17): S(+)-enantiomer of MIR, 9.4 (SD, 3.9) versus 6.2 (SD, 5.5) ng/mL (P = 0.005); R(-)-enantiomer of MIR, 24.4 (SD, 6.5) versus 18.5 (SD, 4.1) ng/mL (P = 0.003). Only in nonsmokers, plasma levels of S(+)-enantiomer of MIR and metabolites depended on the CYP2D6 genotype. Therefore, high CYP1A2 activity seen in smokers seems to mask the influence of the CYP2D6 genotype. In patients presenting the CYP2B6 *6/*6 genotype (n = 8), S-OH-MIR concentrations were higher those in the other patients (n = 37). Although it is not known if S-OH-MIR is associated with the therapeutic effect of MIR, the reduction of the Hamilton scores was significantly (P = 0.016) more pronounced in the CYP2B6 *6/*6-genotyped patients at the end of the study. The role of CYP2B6 in the metabolism and effectiveness of MIR should be further investigated.


Subject(s)
Antidepressive Agents, Tricyclic/therapeutic use , Cytochrome P-450 CYP2D6/genetics , Depressive Disorder, Major/drug therapy , Mianserin/analogs & derivatives , Adult , Age Factors , Aged , Antidepressive Agents, Tricyclic/chemistry , Antidepressive Agents, Tricyclic/pharmacokinetics , Cytochrome P-450 CYP1A2/metabolism , Depressive Disorder, Major/physiopathology , Drug Monitoring/methods , Female , Genotype , Humans , Male , Mianserin/chemistry , Mianserin/pharmacokinetics , Mianserin/therapeutic use , Middle Aged , Mirtazapine , Pharmacogenetics , Psychiatric Status Rating Scales , Sex Factors , Smoking/metabolism , Stereoisomerism , Treatment Outcome , Young Adult
5.
J Clin Psychopharmacol ; 29(4): 319-26, 2009 Aug.
Article in English | MEDLINE | ID: mdl-19593168

ABSTRACT

To examine the genetic factors influencing clozapine kinetics in vivo, 75 patients treated with clozapine were genotyped for CYPs and ABCB1 polymorphisms and phenotyped for CYP1A2 and CYP3A activity. CYP1A2 activity and dose-corrected trough steady-state plasma concentrations of clozapine correlated significantly (r = -0.61; P = 1 x 10), with no influence of the CYP1A2*1F genotype (P = 0.38). CYP2C19 poor metabolizers (*2/*2 genotype) had 2.3-fold higher (P = 0.036) clozapine concentrations than the extensive metabolizers (non-*2/*2). In patients comedicated with fluvoxamine, a strong CYP1A2 inhibitor, clozapine and norclozapine concentrations correlate with CYP3A activity (r = 0.44, P = 0.075; r = 0.63, P = 0.007, respectively). Carriers of the ABCB1 3435TT genotype had a 1.6-fold higher clozapine plasma concentrations than noncarriers (P = 0.046). In conclusion, this study has shown for the first time a significant in vivo role of CYP2C19 and the P-gp transporter in the pharmacokinetics of clozapine. CYP1A2 is the main CYP isoform involved in clozapine metabolism, with CYP2C19 contributing moderately, and CYP3A4 contributing only in patients with reduced CYP1A2 activity. In addition, ABCB1, but not CYP2B6, CYP2C9, CYP2D6, CYP3A5, nor CYP3A7 polymorphisms, influence clozapine pharmacokinetics.


Subject(s)
ATP Binding Cassette Transporter, Subfamily B, Member 1/genetics , Antipsychotic Agents/pharmacokinetics , Aryl Hydrocarbon Hydroxylases/genetics , Clozapine/pharmacokinetics , Cytochrome P-450 Enzyme System/genetics , Polymorphism, Genetic , ATP Binding Cassette Transporter, Subfamily B , ATP Binding Cassette Transporter, Subfamily B, Member 1/metabolism , Adult , Aged , Aged, 80 and over , Antipsychotic Agents/administration & dosage , Antipsychotic Agents/blood , Caffeine/metabolism , Clozapine/administration & dosage , Clozapine/analogs & derivatives , Clozapine/blood , Cytochrome P-450 CYP1A2/genetics , Cytochrome P-450 CYP2C19 , Cytochrome P-450 CYP3A , Cytochrome P-450 Enzyme Inhibitors , Cytochrome P-450 Enzyme System/metabolism , Enzyme Inhibitors/administration & dosage , Female , Fluvoxamine/administration & dosage , Genotype , Humans , Male , Midazolam/metabolism , Middle Aged , Phenotype , Substrate Specificity , Switzerland , Young Adult
6.
Drug Saf ; 29(9): 735-68, 2006.
Article in English | MEDLINE | ID: mdl-16944962

ABSTRACT

Therapeutic drug monitoring (TDM) and pharmacogenetic tests play a major role in minimising adverse drug reactions and enhancing optimal therapeutic response. The response to medication varies greatly between individuals, according to genetic constitution, age, sex, co-morbidities, environmental factors including diet and lifestyle (e.g. smoking and alcohol intake), and drug-related factors such as pharmacokinetic or pharmacodynamic drug-drug interactions. Most adverse drug reactions are type A reactions, i.e. plasma-level dependent, and represent one of the major causes of hospitalisation, in some cases leading to death. However, they may be avoidable to some extent if pharmacokinetic and pharmacogenetic factors are taken into consideration. This article provides a review of the literature and describes how to apply and interpret TDM and certain pharmacogenetic tests and is illustrated by case reports. An algorithm on the use of TDM and pharmacogenetic tests to help characterise adverse drug reactions is also presented. Although, in the scientific community, differences in drug response are increasingly recognised, there is an urgent need to translate this knowledge into clinical recommendations. Databases on drug-drug interactions and the impact of pharmacogenetic polymorphisms and adverse drug reaction information systems will be helpful to guide clinicians in individualised treatment choices.


Subject(s)
Drug Monitoring/methods , Drug-Related Side Effects and Adverse Reactions , Pharmacogenetics , Adverse Drug Reaction Reporting Systems , Algorithms , Drug Interactions , Humans
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