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March 31, 2026Annals of Biomedical Engineering0 citations

Impact of the Design of Aortic Bioprostheses on Valve Function: A Parametric Study

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NBNicolas BuenoCentre National de la Recherche ScientifiqueVSViktória StanováInstitut Universitaire de Cardiologie et de Pneumologie de QuébecJFJulien FavierCentre National de la Recherche Scientifique

Key Result

Geometric variations in aortic bioprostheses significantly impacted function, with increased leaflet thickness and smaller diameters reducing hemodynamic performance (p<0.01).

Key Points

  • This research aims to explore how different geometric parameters of aortic bioprosthetic valves impact their function and performance.
  • Ten aortic bioprosthetic valve models tested under controlled conditions in a cardiac simulator.
  • The Trifecta valve TF-25 used as reference for normal valve geometry; silicone valves tested similarly.
  • Doppler echocardiography assessed hemodynamic performance, with leaflet motion analyzed via stereophotogrammetry.
  • No significant difference in hemodynamic performance between Trifecta valve and normal silicone valve (p > 0.05).
  • Increased leaflet thickness, smaller diameters, and greater belly curvature reduced hemodynamic performance (p < 0.01).
  • Taller leaflets and larger free-edge angles improved valve performance; increased spacing between leaflets minimized deformation.

Structured PICO

Do variations in geometric parameters affect the hemodynamic performance and leaflet strain of aortic bioprosthetic heart valves in vitro?

P
Population
10 silicone aortic bioprosthetic heart valve models with variations in geometric parameters and 1 reference Trifecta TF-25 valve tested in a cardiac simulator
I
Intervention
Variations in geometric parameters (leaflet thickness, diameter, belly curvature, leaflet height, free-edge angle)
C
Comparator
Reference 'normal' mathematical valve design based on the Trifecta TF-25 valve
O
Outcome
Hemodynamic performance assessed by Doppler echocardiography and leaflet motion/strain fields analyzed with stereophotogrammetry and digital image correlationsurrogate

In vitro parametric analysis demonstrates that specific geometric variations, such as leaflet thickness and free-edge angle, significantly impact the hemodynamic performance and mechanical strain of aortic bioprosthetic heart valves.

Main Result

p-value: p=<0.01

Abstract

PURPOSE: Structural valve deterioration of aortic bioprosthetic heart valves (BHV) is influenced by leaflet mechanical stress, dependent on design parameters. This study provides a mathematical description of BHV geometry based on these geometric parameters and investigates their influence on valve function. METHODS: Ten BHV models with variations in geometric parameters were tested under controlled conditions in a cardiac simulator. The Trifecta valve TF-25 (Abbott) was used as a reference geometry to define the "normal" mathematical valve design and was also experimentally tested. The valves were made of silicone using 3D-printed molds. Hemodynamic performance was assessed by Doppler echocardiography. Leaflet motion and strain fields were analyzed with stereophotogrammetry and digital image correlation. RESULTS: There was no significant difference in hemodynamic performance between the Trifecta valve and the "normal" silicone valve (p > 0.05). Increased leaflet thickness, smaller diameters, and greater belly curvature reduced significantly (p < 0.01) the hemodynamic performance, while taller leaflets and greater free-edge angle relative to the commissural plane improved the valve performance. Strains during diastole were highest near the commissures. Increased leaflet thickness reduced leaflets deformation, whereas smaller diameters resulted in localized deformation peaks. A greater free-edge angle minimized deformation and increased spacing between leaflets caused inward pulling near stent posts. Excess leaflet height promoted leaflet pinwheeling. CONCLUSION: The in vitro analysis reveals the differences between various geometries, emphasizing the importance of valve design for BHV function and durability. The development of new BHVs could be improved through in vitro testing. Furthermore, these in vitro experiments can be replicated to evaluate the geometry of native valves.

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Cite This Study

Bueno et al. (2026) studied Aortic bioprosthetic heart valves (n=10). Variations in geometric parameters (leaflet thickness, diameter, belly curvature, height, free-edge angle) vs. Trifecta valve TF-25 (Abbott) and 'normal' silicone valve was evaluated on Hemodynamic performance assessed by Doppler echocardiography (p=<0.01). Geometric variations in aortic bioprostheses significantly impacted function, with increased leaflet thickness and smaller diameters reducing hemodynamic performance (p<0.01).

synapsesocial.com/papers/6a025c7eedf6f481385946behttps://doi.org/10.1007/s10439-026-04080-2
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