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February 2, 20262 citationsOpen Access

Tetralogy of Fallot: Genetic, Epigenetic and Clinical Insights into a Multifactorial Congenital Heart Disease

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MGMario GagliardiOspedali Riuniti San Giovanni di Dio e Ruggi d'AragonaEMEmanuele MicaglioMultiMedicaAMAngelo Micheletti

Key Points

  • This review aims to explore the genetic and epigenetic factors contributing to tetralogy of Fallot and their clinical implications.
  • Reviewed recent molecular and genomic research
  • Discussed phenotypic variability in tetralogy and related conditions
  • Examined key genetic variants and pathways involved in cardiac development
  • Integrated insights on epigenetic mechanisms affecting phenotypic expressivity
  • Identified several key genes associated with conotruncal development, including NOTCH1 and GATA6
  • Highlighted the role of epigenetic factors in modifying disease presentation
  • Showed that known genetic variants account for only part of the overall genetic landscape
  • Emphasized the importance of genotype-phenotype correlations for clinical management.

Abstract

Tetralogy of Fallot (TOF) is the most common cyanotic congenital heart disease, classically characterized by right ventricular outflow tract obstruction, ventricular septal defect, overriding aorta, and right ventricular hypertrophy. Recent advances in molecular and genomic research indicate that TOF is part of a phenotypic continuum encompassing Trilogy, Tetralogy, and Pentalogy of Fallot, in which the variability of anatomical presentation reflects shared genetic and epigenetic mechanisms with highly variable penetrance and expressivity. Variants in NOTCH1, FLT4, KDR, GATA6, and TBX1 highlight key pathways in conotruncal development and endothelial–mesenchymal transition, yet these well-known genes explain only a fraction of the genetic landscape. Emerging studies have identified additional candidate genes and networks involved in cardiac morphogenesis, including transcriptional regulators, signaling mediators, chromatin-remodeling factors, and splicing-associated genes such as PUF60 and DVL3. Epigenetic mechanisms, including DNA methylation, histone modifications, and non-coding RNA expression, further modulate phenotypic expressivity and contribute to variability along the Trilogy–Tetralogy–Pentalogy spectrum. This review integrates current genomic and clinical evidence to provide a comprehensive overview of the molecular architecture of Fallot-type conotruncal malformations, emphasizing the interplay between genetic and epigenetic mechanisms, genotype–phenotype correlations, and implications for diagnosis, risk stratification, counseling, and personalized management in the era of precision cardiology.

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Cite This Study

Gagliardi et al. (2026) studied this question.

synapsesocial.com/papers/6980fff5c1c9540dea812d7dhttps://doi.org/10.3390/genes17020181
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