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A multilayer network analysis of cardiovascular-depression comorbidity reveals symptom-specific molecular biomarkers
Jie Li1, Jos A Bosch2, Arja O Rydin3,4
1Computational Science Lab, Informatics Institute, https://ror.org/04dkp9463University of Amsterdam, Amsterdam, The Netherlands.
Insights
This study identified specific molecular biomarkers, including metabolites and lipids, that link depressive symptoms to cardiovascular disease indicators. These findings offer new insights into the shared biological mechanisms of this common comorbidity.
Area of Science:
- Biomedical research
- Network analysis
- Metabolomics and lipidomics
Background:
- Cardiovascular diseases (CVD) and depression frequently co-occur, but underlying biological mechanisms are poorly understood.
- Complex, non-linear associations across multiple biological pathways may explain the comorbidity.
- This study aimed to identify molecular biomarkers linking depressive symptoms and cardiovascular phenotypes.
Purpose of the Study:
- To identify molecular biomarkers connecting depressive symptoms and cardiovascular phenotypes.
- To elucidate shared biological pathways using a network-based integrative approach.
- To explore symptom-specific links between depression and cardiovascular health.
Main Methods:
- Utilized data from the Young Finns Study (N=1,686) including depressive symptoms, CVD indicators, and omics data.
- Employed mutual information to capture linear and non-linear associations.
- Constructed a multipartite projection network to visualize connections and ranked biomarkers by contribution, with validation in the UK Biobank.
Main Results:
- Specific depressive symptoms (crying, appetite changes, loss of interest in sex) were strongly associated with blood pressure and cardiovascular health scores.
- Key mediating biomarkers included creatinine, valine, leucine, HDL and LDL lipids, and apolipoprotein B.
- Significant overlap in metabolite profiles was observed in the UK Biobank validation cohort, supporting generalizability.
Conclusions:
- A network-based analysis revealed symptom-specific biological pathways linking cardiovascular diseases and depression.
- Identified biomarkers provide insights into shared mechanisms for cardiometabolic-psychiatric comorbidity.
- These findings may inform future prevention and treatment strategies.
Background:
Cardiovascular diseases (CVD) and depression frequently co-occur, yet the biological mechanisms underpinning this comorbidity remain poorly understood. This may reflect complex, non-linear associations across multiple biological pathways. We aimed to identify molecular biomarkers linking depressive symptoms and cardiovascular phenotypes using a network-based integrative approach.
Methods:
Data were obtained from the Young Finns Study (N = 1,686; mean age = 37.7 years; 58.3% female), including 21 depressive symptoms (Beck Depression Inventory), 17 CVD-related indicators, 6 risk factors, 228 metabolomic, and 437 lipidomic variables. Mutual information was used to capture both linear and non-linear associations among variables. A multipartite projection network was constructed to quantify how depressive symptoms and cardiovascular phenotypes are biologically connected via shared metabolites and lipids. Biomarkers were ranked by their contribution to these projected associations. Results were validated in an independent cohort from the UK Biobank.
Results:
Specific depressive symptoms - crying, appetite changes, and loss of interest in sex - showed strong projected associations with diastolic blood pressure, systolic blood pressure, and cardiovascular health scores. Key mediators included creatinine, valine, leucine, phospholipids in very large HDL, triglycerides in small LDL, and apolipoprotein B. Important lipid mediators included sphingomyelins, phosphatidylcholines, triacylglycerols, and diacylglycerols. Replication analysis in the UK Biobank identified many overlaps in metabolite profiles, supporting generalizability.
Conclusions:
This network-based analysis revealed symptom-specific biological pathways linking CVD and depression. The identified biomarkers may offer insights into shared mechanisms and support future prevention and treatment strategies for cardiometabolic-psychiatric comorbidity.
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