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Updated: May 30, 2025

Lumped-Parameter and Finite Element Modeling of Heart Failure with Preserved Ejection Fraction
Published on: February 13, 2021
Computational modeling of cardiac hemodynamics including chordae tendineae, papillaries, and valves dynamics
Lorenzo Bennati1, Andrea Crispino2, Christian Vergara2
1Department of Surgery, Dentistry, Pediatrics, and Obstetrics/Gynecology, University of Verona, O. C. M. Piazzale Stefani 1, 37129, Verona, Italy.
Insights
Dynamic image-based computational fluid dynamics (DIB-CFD) modeling reveals sub-valvular apparatus minimally impacts global cardiac flow but alters local stress. Sophisticated mitral valve dynamics are crucial for accurately simulating ventricular turbulence.
Area of Science:
- Cardiovascular fluid dynamics
- Medical imaging
- Computational modeling
Background:
- Dynamic image-based computational fluid dynamics (DIB-CFD) is increasingly used for cardiac modeling.
- The influence of sub-valvular apparatus and mitral valve dynamics on DIB-CFD results is not well understood.
Purpose of the Study:
- To investigate the impact of sub-valvular apparatus and varying mitral valve (MV) dynamics on DIB-CFD simulations.
- To compare DIB-CFD results with and without sub-valvular structures and with different MV opening/closure models.
- To analyze these effects in both a healthy subject and a patient with mitral valve regurgitation.
Main Methods:
- Performed DIB-CFD numerical experiments in the left ventricle, left atrium, and aortic root.
- Reconstructed systolic wall motion from dynamic Cine-MRI images as a boundary condition.
- Modeled two scenarios: inclusion of sub-valvular apparatus (chordae tendineae, papillary muscles) and different MV dynamics based on imaging segmentation.
Main Results:
- Sub-valvular apparatus did not significantly affect global fluid dynamics but induced local flow variations and altered stress distribution.
- Different MV dynamics models, particularly those accounting for diastolic phases (diastasis, A-wave), significantly impacted the simulation of disturbed flow and ventricular turbulence.
Conclusions:
- While sub-valvular apparatus have a limited effect on overall fluid dynamics, their inclusion can refine local stress analysis.
- Accurate modeling of mitral valve dynamics, especially during diastole, is essential for capturing complex intraventricular flow patterns and turbulence.
Abstract:
In the context of dynamic image-based computational fluid dynamics (DIB-CFD) modeling of cardiac system, the role of sub-valvular apparatus (chordae tendineae and papillary muscles) and the effects of different mitral valve (MV) opening/closure dynamics, have not been systemically determined. To provide a partial filling of this gap, in this study we performed DIB-CFD numerical experiments in the left ventricle, left atrium and aortic root, with the aim of highlighting the influence on the numerical results of two specific modeling scenarios: (i) the presence of the sub-valvular apparatus, consisting of chordae tendineae and papillary muscles; (ii) different MV dynamics models accounting for different use of leaflet reconstruction from imaging. This is performed for one healthy subject and one patient with mitral valve regurgitation. Specifically, a systolic wall motion is reconstructed from dynamic Cine-MRI images and imposed as boundary condition for the CFD numerical simulation. Analyzing the numerical results, we found that sub-valvular apparatus do not affect the global fluid dynamics quantities, although it creates local variations, such as the developing of vortexes or flow disturbances, which lead to different stress distributions on cardiac structures. Moreover, different MV dynamics are considered starting from Cine-MRI MV segmentation at different temporal configurations, and then they are compared and managed numerically through a resistive approach. The obtained results highlight the importance of including a sophisticated diastolic model of MV dynamics, which accounts for MV geometries during diastasis and A-wave, in terms of describing the disturbed flow and ventricular turbulence.
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