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February 8, 2026Nature Communications0 citationsOpen Access

Integrative functional genomics analysis identifies pleiotropic genes for vascular diseases

CSCharles U. SolomonDMDavid G. McVeyCACatherine Andreadi

Key Points

  • The study aims to identify causal genes linked to vascular diseases and their potential therapeutic implications.
  • Conducted integrative functional genomics analysis on genetic loci associated with vascular diseases.
  • Performed pooled CRISPR knockout screens on likely causal genes to study their impacts.
  • Validated selected genes through experiments to confirm their effects on vascular smooth muscle cells.
  • Found a panel of likely causal genes that are pleiotropic for multiple vascular diseases.
  • Identified specific genes (FES, BCAR1, CARF, SMARCA4) that influence vascular smooth muscle cell behavior.
  • Demonstrated that FES affects vascular remodeling and knockout in mice leads to increased atherosclerosis and blood pressure.

Abstract

Abstract Several vascular diseases including coronary artery disease, hypertension, stroke, and abdominal aortic aneurysm, have significant genetic underpinnings. Genome-wide association studies have unveiled many genetic loci associated with one or more of these diseases. However, the causative genes at most of these loci are yet to be determined, which hampers the translation of the genetic findings into a better understanding of the disease mechanisms and the identification of new therapeutic targets. Here, in an integrative functional genomics analysis of these loci, we identify a panel of likely causal genes, some of which are pleiotropic for more than one of these vascular diseases. Pooled CRISPR knockout screen analyses of these likely causal genes indicate that many of them influence vascular smooth muscle cell behaviour, and validation experiments of selected genes confirm that FES , BCAR1, CARF and SMARCA4 exert such effects. Further functional experiments focusing on FES , a pleiotropic gene for both coronary artery disease and hypertension, show that it modulates the expression of genes involved in vascular remodeling and that Fes knockout in mice promotes atherosclerosis as well as raises blood pressure. These findings provide an insight into the genetic basis of vascular diseases and inform targets for therapeutic development.

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Cite This Study

Solomon et al. (2026) studied this question.

synapsesocial.com/papers/698827c90fc35cd7a8846b24https://doi.org/10.1038/s41467-026-69273-8
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