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September 26, 2025Nature Communications9 citationsOpen Access

Shared genetic architecture contributes to risk of major cardiovascular diseases

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JQJun QiaoLJLei JiangLCLiuyang Cai

Key Points

  • Shared genetic architecture contributes significantly to the risk of cardiovascular diseases.
  • Thirty-eight genomic loci with pleiotropic influence across cardiovascular diseases were identified, highlighting their interconnected risk.
  • Multi-trait analysis methods were employed to uncover genetic overlaps and causal connections among major cardiovascular diseases.
  • Distinct patterns driven by conditions like coronary artery disease and atrial fibrillation reveal disparities in clinical classifications and biological mechanisms.

Abstract

The extensive co-occurrence of cardiovascular diseases (CVDs), as evidenced by epidemiological studies, is supported by positive genetic correlations identified in comprehensive genetic investigations, suggesting a shared genetic basis. However, the precise genetic mechanisms underlying these associations remain elusive. By assessing genetic correlations, genetic overlap, and causal connections, we aim to shed light on common genetic underpinnings among major CVDs. Employing multi-trait analysis, we pursue diverse strategies to unveil shared genetic elements, encompassing SNPs, genes, gene sets, and functional categories with pleiotropic implications. Our study systematically quantifies genetic overlap beyond genome-wide genetic correlations across CVDs, while identifying a putative causal relationship between coronary artery disease (CAD) and heart failure (HF). We then pinpointed 38 genomic loci with pleiotropic influence across CVDs, of which the most influential pleiotropic locus is located at the LPA gene. Notably, 12 loci present high evidence of multi-trait colocalization and display congruent directional effects. Examination of genes and gene sets linked to these loci unveiled robust associations with circulatory system development processes. Intriguingly, distinct patterns predominantly driven by atrial fibrillation, coronary artery disease, and venous thromboembolism underscore the significant disparities between clinically defined CVD classifications and underlying shared biological mechanisms, according to functional annotation findings. Cardiovascular diseases often co-occur. Here the authors conduct cross-disease genome wide association studies using multi-trait analyses to uncover shared genetic mechanisms contributing to overlapping risk profiles.

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Cite This Study

Qiao et al. (2025) studied this question.

synapsesocial.com/papers/68d6c671b1249cec298b2157https://doi.org/10.1038/s41467-025-62419-0
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