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Myocardial Architecture, Mechanics, and Fibrosis in Congenital Heart Disease
Sarah Ghonim1,2,3, Inga Voges1,2, Peter D Gatehouse2
1Adult Congenital Heart Unit, Royal Brompton Hospital, London, UK.
Insights
Cardiovascular magnetic resonance (CMR) offers advanced techniques to assess myocardial mechanics and fibrosis in congenital heart disease (CHD) patients, aiding long-term management and understanding of disease pathophysiology.
Area of Science:
- Cardiology
- Medical Imaging
- Biomedical Engineering
Background:
- Congenital heart disease (CHD) is a prevalent birth defect impacting 1% of newborns, often necessitating early cardiovascular surgery.
- Survivors of CHD now reach adulthood, but frequently experience residual defects and postoperative complications, leading to altered hemodynamics and scar formation.
- Cardiovascular magnetic resonance (CMR) is crucial for long-term CHD management, providing detailed insights beyond standard ventricular assessment.
Purpose of the Study:
- To review available and emerging CMR techniques for evaluating myocardial mechanics and fibrosis in CHD.
- To describe the clinical value of these advanced CMR methods.
- To illustrate how CMR can detect abnormalities in myocardial architecture and mechanics specific to CHD.
Main Methods:
- Utilizing CMR diffusion tensor imaging to assess left ventricular microstructure alignment.
- Employing myocardial tissue tagging and feature tracking (including 3D) to analyze myocardial deformation, strain, and ventricular twisting.
- Applying late gadolinium enhancement and T1 mapping for detecting myocardial fibrosis and characterizing tissue changes.
Main Results:
- Advanced CMR techniques provide detailed information on myocardial architecture, ventricular mechanics, and fibrosis in CHD.
- These methods can non-invasively interrogate microstructural alignments and assess myocardial deformation and twisting.
- Late gadolinium enhancement and T1 mapping aid in identifying fibrotic changes, enhancing understanding of CHD pathophysiology.
Conclusions:
- Advanced CMR techniques are invaluable for assessing myocardial mechanics and fibrosis in congenital heart disease.
- These methods offer a comprehensive, non-invasive approach to detect and understand cardiac abnormalities in long-term CHD management.
- CMR's evolving capabilities significantly contribute to deciphering the pathophysiology of CHD and guiding patient care.
Abstract:
Congenital heart disease (CHD) is the most common category of birth defect, affecting 1% of the population and requiring cardiovascular surgery in the first months of life in many patients. Due to advances in congenital cardiovascular surgery and patient management, most children with CHD now survive into adulthood. However, residual and postoperative defects are common resulting in abnormal hemodynamics, which may interact further with scar formation related to surgical procedures. Cardiovascular magnetic resonance (CMR) has become an important diagnostic imaging modality in the long-term management of CHD patients. It is the gold standard technique to assess ventricular volumes and systolic function. Besides this, advanced CMR techniques allow the acquisition of more detailed information about myocardial architecture, ventricular mechanics, and fibrosis. The left ventricle (LV) and right ventricle have unique myocardial architecture that underpins their mechanics; however, this becomes disorganized under conditions of volume and pressure overload. CMR diffusion tensor imaging is able to interrogate non-invasively the principal alignments of microstructures in the left ventricular wall. Myocardial tissue tagging (displacement encoding using stimulated echoes) and feature tracking are CMR techniques that can be used to examine the deformation and strain of the myocardium in CHD, whereas 3D feature tracking can assess the twisting motion of the LV chamber. Late gadolinium enhancement imaging and more recently T1 mapping can help in detecting fibrotic myocardial changes and evolve our understanding of the pathophysiology of CHD patients. This review not only gives an overview about available or emerging CMR techniques for assessing myocardial mechanics and fibrosis but it also describes their clinical value and how they can be used to detect abnormalities in myocardial architecture and mechanics in CHD patients.
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