Transposition of great arteries: new insights into the pathogenesis

Marta Unolt1, Carolina Putotto1, Lucia M Silvestri1

  • 1Department of Pediatrics, "Sapienza" University of Rome , Rome , Italy.

Frontiers in Pediatrics
|January 9, 2014
PubMed

Insights

Transposition of great arteries (TGA) is a severe congenital heart defect linked to lateralization defects, not typical genetic syndromes. Research suggests a connection between TGA, heterotaxy, and specific gene mutations.

Area of Science:

  • Developmental Biology
  • Cardiology
  • Genetics

Background:

  • Transposition of great arteries (TGA) is a common and severe congenital heart disease (CHD) with largely unknown etiology and morphogenesis.
  • TGA is rarely associated with common genetic syndromes but frequently occurs in Heterotaxy and lateralization defects, such as asplenia syndrome.
  • TGA is also observed in isolated dextrocardia with situs solitus, indicating a link to visceral situs defects.

Purpose of the Study:

  • To investigate the underlying pathogenesis and etiological factors of Transposition of great arteries (TGA).
  • To explore the relationship between TGA, other congenital heart defects (CHDs), and genetic factors, particularly laterality defects.
  • To re-evaluate the classification of TGA within the spectrum of CHDs.

Main Methods:

  • Experimental induction of TGA in pregnant mice using retinoic acid or its inhibitors.
  • Analysis of genetic mutations in laterality genes (e.g., Nodal, ZIC3) in families with TGA and CCTGA.
  • Epidemiological and genetic data review of TGA associations with genetic syndromes and situs abnormalities.

Main Results:

  • Retinoic acid treatment in mice induced TGA and congenitally corrected TGA (CCTGA), and Heterotaxy, suggesting a shared pathway.
  • Familial aggregation of TGA and CCTGA supports monogenic inheritance with variable expression.
  • Mutations in laterality genes (Nodal, ZIC3) were identified in families with TGA and CCTGA, confirming a pathogenetic link to Heterotaxy.

Conclusions:

  • TGA pathogenesis is strongly associated with laterality defects, challenging its traditional classification.
  • A potential link exists between TGA, CCTGA, and Heterotaxy, possibly mediated by mutations in laterality genes.
  • TGA should be considered within the pathogenetic group of laterality defects rather than conotruncal abnormalities.

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