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Computational modelling of the fetal circulation: what could cardiovascular system models teach us about the
Nipuni D Nagahawatte1, Anandita Umapathy2, Joanna L James3
1Auckland Bioengineering Institute, University of Auckland, Auckland, New Zealand.
Insights
Computational modeling can improve understanding of fetal heart development and function. This approach addresses limitations in current diagnostic tools, potentially enhancing early detection and lifelong health outcomes for cardiovascular conditions.
Area of Science:
- Cardiovascular Physiology
- Computational Biology
- Developmental Biology
Background:
- Fetal cardiovascular development is crucial for long-term health.
- Congenital heart defects and placental dysfunction increase later-life disease risk.
- Current diagnostic tools for fetal cardiac dysfunction are limited.
Purpose of the Study:
- To review computational models of the fetal heart and circulation.
- To analyze how these models represent fetal physiology and developmental adaptations.
- To identify needs for fetal-specific refinements in cardiovascular modeling.
Main Methods:
- Literature review of computational models in fetal cardiovascular research.
- Analysis of existing models' adaptation from adult cardiovascular frameworks.
- Focus on biomechanical interactions between the fetal heart and placenta.
Main Results:
- Existing models often adapt adult frameworks, not fully capturing fetal specifics like shunts and placental resistance.
- There's a need to differentiate and refine models for fetal cardiovascular dynamics.
- Computational models offer a framework to integrate knowledge and generate insights into fetal cardiovascular evolution.
Conclusions:
- Advanced computational models are needed to accurately represent fetal cardiovascular physiology.
- Improved modeling can enhance early detection and management of fetal cardiac dysfunction.
- This can lead to better lifelong cardiovascular health outcomes.
Abstract:
Fetal life plays a pivotal role in shaping long-term health, with cardiovascular development exerting particular influence. Defects that arise during this critical window, such as congenital heart abnormalities or maladaptive remodeling related to placental dysfunction, increase vulnerability to cardiovascular disease, hypertension, and metabolic disorders later in life. Yet, despite the importance of early cardiovascular development, current diagnostic tools remain limited in their ability to detect or manage fetal cardiac dysfunction. Computational modelling offers a powerful means to address this gap, providing a framework to integrate physiological knowledge, capture developmental adaptations, and generate new insights into how the fetal heart and circulation evolve over gestation. However, existing models are often adapted from adult cardiovascular frameworks, which, while well established, do not fully account for fetal-specific features such as circulatory shunts, placental resistance, and shifting pressure-loading conditions. This creates a critical need to examine how current modelling approaches relate to and diverge from adult systems, in order to identify where fetal-specific refinements are required and where shared principles can be leveraged. This review aims to synthesize computational models of the fetal heart in relation to cardiovascular system function, with a focus on the biomechanical interaction between the heart and key fetal organs such as the placenta. We highlight how current approaches represent fetal physiology, the unique challenges that remain, and how advancing such models could improve early detection and intervention, ultimately supporting better lifelong health outcomes.
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