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Investigating the relationship between geometry and hemodynamics in an experimentally derived murine coronary
Elisa Serafini1, Antonio Martino2, Enrico Sangiorgio3
1Center for Precision Surgery, Houston Methodist Research Institute, Houston, TX, 77030, USA; LaSIE, UMR 7356, CNRS, La Rochelle Université, La Rochelle, 17000, France.
Insights
Murine coronary arteries show complex geometry and high wall shear stress (WSS), differing significantly from humans. Integrating these factors is crucial for developing accurate coronary artery disease (CAD) models in mice.
Area of Science:
- Cardiovascular Research
- Translational Medicine
- Biomedical Engineering
Background:
- Coronary artery disease (CAD) development is linked to coronary morphology and hemodynamics.
- Comprehensive analyses of these factors in murine models are limited, hindering translational research.
Purpose of the Study:
- To precisely measure and analyze coronary morphology and hemodynamics in mouse left coronary arteries.
- To investigate the interrelationship between geometric and hemodynamic factors in murine CAD models.
- To establish a foundation for mouse-specific predictive models of CAD.
Main Methods:
- Integration of in vivo approaches with computational fluid dynamic (CFD) simulations.
- Advanced micro-computed tomography (micro-CT) imaging with Microfil® coronary perfusion.
- Morphometric analysis of coronary geometry and hemodynamic parameters.
Main Results:
- Coronary bifurcations exhibit high geometric complexity, leading to disturbed hemodynamics and endothelial dysfunction.
- Murine vascular endothelial cells experience significantly higher wall shear stress (WSS) than humans due to smaller vessel size.
- Reduced helical flow patterns observed in mice compared to humans warrant further investigation for potential protective roles.
Conclusions:
- Strong correlations between geometric and hemodynamic indices underscore the need for integrated analysis in preclinical CAD studies.
- Findings highlight critical differences between murine and human coronary hemodynamics, cautioning against interspecies extrapolation.
- This study provides essential data for developing accurate, mouse-specific CAD predictive models for improved translational research.
Abstract:
Despite the critical role of coronary morphology and hemodynamics in the development of coronary artery disease (CAD), comprehensive analyses of these factors in murine models are limited. Our study integrates in vivo approaches with computational methods to yield a complete set of precise and reliable morphologic and hemodynamic measurements and to investigate their interrelationship in the left coronary artery of healthy C57BL/6 mice. The work utilizes advanced micro-computed tomography imaging, enhanced with Microfil® coronary perfusion, complemented by morphometric analysis and computational fluid dynamic simulation. Our results in murine coronary arteries show: i) bifurcations are the most geometrically complex regions, susceptible to disturbed hemodynamics and, consequently, endothelial dysfunction; ii) vascular endothelial cells experience wall shear stress (WSS) an order of magnitude greater than in humans, primarily due to their smaller size, although minimal WSS multi-directionality is noted in both species; iii) intravascular flow exhibits reduced helical patterns compared to human coronaries, indicating a need for further investigation into their potential protective role against disease onset; and iv) strong correlations between geometric and hemodynamic indices highlight the need to integrate these factors for a comprehensive understanding of CAD initiation and progression in preclinical models. Thus, to optimize research based on murine models, it is essential not only to move beyond idealized geometries, but also to avoid uncritically relying on hemodynamic measurements from different species. This study grounds future development of mouse-specific predictive models of CAD, a critical step toward advancing translational research to understand and prevent CAD in humans.
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