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Handwriting Analysis Indicates Spontaneous Dyskinesias in Neuroleptic Naïve Adolescents at High Risk for Psychosis
Published on: November 21, 2013
A molecular pathway analysis informs the genetic risk for arrhythmias during antipsychotic treatment
Antonio Drago1, Ellen Kure Fischer
1Department of Clinical Medicine, Psychiatric Research Unit West, Aarhus University, Herning, Denmark.
Abstract:
Arrhythmias are a frequent and potentially fatal side effect of antipsychotic treatment. Strict ECG monitoring and clinical interviews are the standards used to prevent arrhythmias. A biologic predictive tool is missing. The identification of a genetic makeup at risk of antipsychotic-induced arrhythmias is the aim of the present investigation. The aim of this study was to identify a molecular pathway enriched in single nucleotide polymorphisms associated with antipsychotic-induced QTc modifications. In total, 661 schizophrenic individuals from the CATIE study, M=486 (73.52%), mean age=40.92±11.02, were included. QTc variation was measured as a phase-specific change-created variable. A nested mixed regression for a repeated-measures model served in R for the analysis of the clinical and treatment-related covariates and molecular pathway analysis. Plink was used for the genetic genome-wide analysis. Quality checking was the standard (genotype call rate>0.95; minor allele frequency>0.01; Hardy-Weinberg equilibrium<0.0001) and the inflation factor was controlled by λ values. Quetiapine and perphenazine were associated with QTc variation during phase 1. No other significant association was detected. No significant inflation was detected. A number of molecular pathways were associated with QT variation at a conservative (adjusted) P value less than 0.05, including pathways related to neuronal wiring and collagen biosynthesis, along with pathways related to K+ currents and cardiac contraction. Pathways related to neuronal wiring, collagen biosynthesis, and ion currents were identified as possibly involved in QTc modifications during antispsychotic treatment in SKZ patients.
Insights
Antipsychotic medications can cause dangerous heart rhythm changes (arrhythmias). This study identified genetic pathways, including neuronal wiring and collagen biosynthesis, linked to these QTc variations in schizophrenia patients.
Area of Science:
- Pharmacogenomics
- Cardiology
- Psychiatry
Background:
- Antipsychotic treatment can induce potentially fatal cardiac arrhythmias.
- Current monitoring relies on ECG and clinical interviews, lacking a biological predictive tool.
- Identifying genetic predispositions for antipsychotic-induced arrhythmias is crucial.
Purpose of the Study:
- To identify molecular pathways associated with antipsychotic-induced QTc interval modifications.
- To explore genetic factors contributing to cardiac side effects of antipsychotics in schizophrenia patients.
- To establish a potential biological marker for predicting arrhythmia risk.
Main Methods:
- Genome-wide association study (GWAS) in 661 schizophrenia patients from the CATIE study.
- Analysis of QTc variation using a nested mixed-effects model.
- Molecular pathway enrichment analysis using Plink and R, with stringent quality control.
Main Results:
- Quetiapine and perphenazine were associated with QTc variation.
- No significant inflation was detected in the genetic analysis.
- Pathways related to neuronal wiring, collagen biosynthesis, K+ currents, and cardiac contraction were associated with QTc variation.
Conclusions:
- Neuronal wiring, collagen biosynthesis, and ion current pathways may be involved in antipsychotic-induced QTc modifications.
- These findings suggest potential genetic targets for predicting and preventing antipsychotic-related arrhythmias.
- Further research can explore these pathways for developing personalized treatment strategies.
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