Effect of Right Ventricular Outflow Tract Material Properties on Simulated Transcatheter Pulmonary Placement
Jalaj Maheshwari, Wensi Wu, Christopher N. Zelonis, Steve A. Maas, Kyle Sunderland, Yuval Barak-Corren, Stephen Ching, Patricia Sabin, Andras Lasso, Matthew J. Gillespie, Jeffrey A. Weiss, Matthew A. Jolley

TL;DR
This study uses finite element simulations to analyze how variations in right ventricular outflow tract tissue properties and patch stiffness affect transcatheter pulmonary valve deployment outcomes.
Contribution
It provides the first detailed sensitivity analysis of RVOT material properties and transannular patch effects during TPV deployment using patient-specific models.
Findings
Shear modulus, fiber modulus, and fiber orientation significantly affect stress and strain.
Patch location influences peak stress and strain during deployment.
Increased patch stiffness raises interface stress and reduces strain.
Abstract
Finite element (FE) simulations emulating transcatheter pulmonary valve (TPV) system deployment in patient-specific right ventricular outflow tracts (RVOT) assume material properties for the RVOT and adjacent tissues. Sensitivity of the deployment to variation in RVOT material properties is unknown. Moreover, the effect of a transannular patch stiffness and location on simulated TPV deployment has not been explored. A sensitivity analysis on the material properties of a patient-specific RVOT during TPV deployment, modeled as an uncoupled HGO material, was conducted using FEBioUncertainSCI. Further, the effects of a transannular patch during TPV deployment were analyzed by considering two patch locations and four patch stiffnesses. Visualization of results and quantification were performed using custom metrics implemented in SlicerHeart and FEBio. Sensitivity analysis revealed that the…
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Taxonomy
TopicsElasticity and Material Modeling · Cardiac Valve Diseases and Treatments · Cardiovascular Function and Risk Factors
