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Predisposition to treatment response in major depressive episode: A peripheral blood gene coexpression network
Raoul Belzeaux1, Chien-Wei Lin2, Ying Ding2
1McGill Group for Suicide Studies, Department of Psychiatry, McGill University, Douglas Mental Health University Institute, Montreal, QC, Canada; Fondation FondaMental, Créteil, France; CRN2M-UMR7286, Aix-Marseille Université, CNRS, Marseille, France.
Abstract:
Antidepressant efficacy is insufficient, unpredictable and poorly understood in major depressive episode (MDE). Gene expression studies allow for the identification of significantly dysregulated genes but can limit the exploration of biological pathways. In the present study, we proposed a gene coexpression analysis to investigate biological pathways associated with treatment response predisposition and their regulation by microRNAs (miRNAs) in peripheral blood samples of MDE and healthy control subjects. We used a discovery cohort that included 34 MDE patients that were given 12-week treatment with citalopram and 33 healthy controls. Two replication cohorts with similar design were also analyzed. Expression-based gene network was built to define clusters of highly correlated sets of genes, called modules. Association between each module's first principal component of the expression data and clinical improvement was tested in the three cohorts. We conducted gene ontology analysis and miRNA prediction based on the module gene list. Nine of the 59 modules from the gene coexpression network were associated with clinical improvement. The association was partially replicated in other cohorts. Gene ontology analysis demonstrated that 4 modules were associated with cytokine production, acute inflammatory response or IL-8 functions. Finally, we found 414 miRNAs that may regulate one or several modules associated with clinical improvement. By contrast, only 12 miRNAs were predicted to specifically regulate modules unrelated to clinical improvement. Our gene coexpression analysis underlines the importance of inflammation-related pathways and the involvement of a large miRNA program as biological processes predisposing associated with antidepressant response.
Insights
This study identified inflammation-related pathways and microRNA (miRNA) networks linked to antidepressant treatment response in major depressive episode (MDE). These findings offer new insights into biological processes influencing treatment outcomes.
Area of Science:
- Genomics
- Molecular Biology
- Neuroscience
Background:
- Major depressive episode (MDE) treatment response is unpredictable and poorly understood.
- Gene expression studies identify dysregulated genes but may limit pathway exploration.
Purpose of the Study:
- Investigate biological pathways linked to antidepressant treatment response predisposition in MDE.
- Explore the regulation of these pathways by microRNAs (miRNAs).
Main Methods:
- Gene coexpression network analysis in peripheral blood from MDE patients and healthy controls.
- Module identification, association testing with clinical improvement, and gene ontology analysis.
- miRNA prediction for identified gene modules.
Main Results:
- Nine gene modules out of 59 were associated with clinical improvement, with partial replication across cohorts.
- Four modules were linked to inflammation-related functions (cytokine production, acute inflammatory response, IL-8).
- 414 miRNAs were predicted to regulate treatment response modules, versus 12 for non-responsive modules.
Conclusions:
- Gene coexpression analysis highlights the role of inflammation-related pathways in antidepressant response.
- A significant miRNA program is implicated in biological processes predisposing individuals to antidepressant response.
- Findings suggest potential biomarkers and therapeutic targets for MDE treatment.
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