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Published on: December 16, 2022
Translational paradigms in scientific and clinical imaging of cardiac development
Chelsea L Gregg1, Jonathan T Butcher
1Department of Biomedical Engineering, Cornell University, Ithaca, NY 14853, USA.
Insights
Congenital heart defects (CHD) are a major cause of infant mortality. Advanced imaging techniques are crucial for early diagnosis and improved outcomes in fetal cardiac development.
Area of Science:
- Cardiovascular Development
- Medical Imaging
- Congenital Malformations
Background:
- Congenital heart defects (CHD) are the most common congenital disease, leading to significant mortality.
- While surgical advances have reduced perinatal deaths, many CHD patients face lifelong complications.
- Early and accurate diagnosis of fetal cardiac defects is critical for intervention and improved outcomes.
Purpose of the Study:
- To review current clinical and scientific imaging technologies for studying cardiogenesis.
- To analyze research utilizing these modalities and relevant animal models.
- To discuss the translational impact and future directions in cardiovascular development imaging.
Main Methods:
- Review of existing literature on imaging technologies for fetal cardiac assessment.
- Analysis of ultrasound (2D, 3D/4D, M-mode), OCT, micro-CT, and MRI.
- Integration of imaging with computational fluid dynamics for quantitative analysis.
Main Results:
- Ultrasound is the primary clinical tool, with advanced modalities offering quantitative data.
- Other techniques like OCT, micro-CT, and MRI aid in studying basic cardiogenesis.
- Each imaging method presents unique advantages and limitations in resolution, penetration, and cost.
Conclusions:
- Quantitative, multidimensional imaging is essential for understanding normal and abnormal heart development.
- Further research and technological advancements are needed to improve diagnosis and patient outcomes.
- Translational research in cardiovascular development imaging holds significant promise for future clinical applications.
Abstract:
Congenital heart defects (CHD) are the most prevalent congenital disease, with 45% of deaths resulting from a congenital defect due to a cardiac malformation. Clinically significant CHD permit survival upon birth, but may become immediately life threatening. Advances in surgical intervention have significantly reduced perinatal mortality, but the outcome for many malformations is bleak. Furthermore, patients living while tolerating a CHD often acquire additional complications due to the long-term systemic blood flow changes caused by even subtle anatomical abnormalities. Accurate diagnosis of defects during fetal development is critical for interventional planning and improving patient outcomes. Advances in quantitative, multidimensional imaging are necessary to uncover the basic scientific and clinically relevant morphogenetic changes and associated hemodynamic consequences influencing normal and abnormal heart development. Ultrasound is the most widely used clinical imaging technology for assessing fetal cardiac development. Ultrasound-based fetal assessment modalities include motion mode (M-mode), two dimensional (2D), and 3D/4D imaging. These datasets can be combined with computational fluid dynamics analysis to yield quantitative, volumetric, and physiological data. Additional imaging modalities, however, are available to study basic mechanisms of cardiogenesis, including optical coherence tomography, microcomputed tomography, and magnetic resonance imaging. Each imaging technology has its advantages and disadvantages regarding resolution, depth of penetration, soft tissue contrast considerations, and cost. In this review, we analyze the current clinical and scientific imaging technologies, research studies utilizing them, and appropriate animal models reflecting clinically relevant cardiogenesis and cardiac malformations. We conclude with discussing the translational impact and future opportunities for cardiovascular development imaging research.
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