Complex Congenital Heart Disease Associated With Disordered Myocardial Architecture in a Midtrimester Human Fetus

Patricia Garcia-Canadilla1,2, Hector Dejea3,4, Anne Bonnin3

  • 1Institute of Cardiovascular Science (P.G.-C., A.C.C.), University College London, United Kingdom.

Insights

Congenital heart disease (CHD) causes early myocardial remodeling in fetal hearts. Advanced imaging reveals disordered cardiomyocyte structure in the developing heart, impacting function and synchronicity.

Area of Science:

  • Cardiovascular Research
  • Developmental Biology
  • Medical Imaging

Background:

  • Myocardial remodeling is a significant factor in long-term outcomes for congenital heart disease (CHD) patients.
  • Understanding cardiac microstructure is crucial for developing effective, individualized treatment strategies for CHD.
  • Altered myocardial organization, mechanical properties, and blood supply contribute to impaired cardiac function in CHD.

Purpose of the Study:

  • To non-destructively describe, in 3D, the detailed cardiac microstructure remodeling in a human fetal heart with complex CHD.
  • To provide a comprehensive understanding of cardiomyocyte organization and integration in CHD.
  • To establish a baseline for early detection of myocardial alterations in fetal CHD.

Main Methods:

  • Utilized synchrotron X-ray phase-contrast imaging on a formalin-fixed, archival midgestation fetal heart with complex CHD.
  • Compared the CHD heart with a healthy control fetal heart.
  • Performed detailed analysis of myocyte aggregates and macroanatomic/conduction system changes.

Main Results:

  • Observed clear macroanatomic and conduction system abnormalities specific to complex CHD.
  • Identified disordered cardiomyocyte organization within the morphologically right ventricle myocardium.
  • Electrical activation simulations indicated altered synchronicity in the morphologically right ventricle.

Conclusions:

  • Demonstrated the potential of X-ray phase-contrast imaging for high-resolution study of cardiac microstructure in developing human fetal hearts.
  • Provided novel insights into cardiac development and disease, preserving valuable archival material.
  • Established that myocardial alterations in complex CHD can occur as early as midgestation.
Abstract

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