Genomic and proteogenomic insights into Spontaneous Coronary Artery Dissection (SCAD): A systematic review of

Alice Russo1, Mattia Alberti2, Filippo Biondi1

  • 1Department of Surgical, Medical and Molecular Pathology and Critical Area, Cardiology Division, University of Pisa, Pisa, Italy.

Insights

Spontaneous coronary artery dissection (SCAD) involves genetic factors and extracellular matrix issues. Integrating multi-omic data reveals disease mechanisms and potential precision medicine targets for SCAD.

Area of Science:

  • Integrative omics research
  • Cardiovascular disease mechanisms
  • Precision medicine

Background:

  • Spontaneous coronary artery dissection (SCAD) is a key cause of heart attacks in young women lacking traditional risk factors.
  • The biological basis of SCAD is not fully understood, and treatments rely on limited evidence.
  • SCAD awareness is increasing, but mechanistic insights are needed for improved clinical management.

Purpose of the Study:

  • To systematically integrate genomic, epitranscriptomic, proteomic, and metabolomic data for SCAD.
  • To characterize the multi-omic architecture underlying SCAD.
  • To identify potential biomarkers and therapeutic targets for SCAD.

Main Methods:

  • Conducted a systematic review following PRISMA 2020 guidelines.
  • Searched PubMed/MEDLINE for studies on SCAD genomic and multi-omic features.
  • Extracted data on study design, patient characteristics, variants, biomarkers, and pathways; performed functional enrichment analysis.

Main Results:

  • Genome-wide association studies identified SCAD susceptibility loci linked to arterial structure and extracellular matrix integrity (e.g., ADAMTSL4, PHACTR1/EDN1, LRP1, FBN1).
  • Rare variant analyses implicated genes in extracellular matrix remodeling and vascular smooth muscle cell function (e.g., COL3A1, COL4A1/2, SMAD3, TLN1).
  • Proteogenomic and epitranscriptomic analyses linked genetic factors to circulating proteins and microRNA profiles involved in vascular injury and repair.

Conclusions:

  • SCAD exhibits a complex biological architecture involving genetic susceptibility, extracellular matrix dysfunction, and altered vascular signaling.
  • Multi-omic data integration offers novel insights into SCAD pathogenesis.
  • Identified potential biomarkers and therapeutic targets for precision medicine in SCAD.
Abstract

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