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.

PubMed

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.