Integrated Open-Source Framework for Simulation of Transcatheter Pulmonary Valves in Native Right Ventricular Outflow Tracts
Christopher N. Zelonis, Jalaj Maheshwari, Wensi Wu, Steve A. Maas, Seda Aslan, Kyle Sunderland, Stephen Ching, Ashley Koluda, Yuval Barak-Corren, Nicolas Mangine, Patricia M. Sabin, Andras Lasso, Devin W. Laurence, Christian Herz, Matthew J. Gillespie, Jeffrey A. Weiss

TL;DR
This paper presents an open-source, rapid simulation workflow for transcatheter pulmonary valve replacement in native right ventricular outflow tracts, aiding personalized device selection and assessment.
Contribution
The study introduces a novel, integrated open-source framework that enables quick, patient-specific simulation of TPVR, combining machine learning, 3D modeling, and finite element analysis.
Findings
Simulation creation under 1 minute
Device placement mimics actual procedures
Variability in mechanical metrics across anatomies
Abstract
Background - Pulmonary insufficiency is a consequence of transannular patch repair in Tetralogy of Fallot (ToF), leading to late morbidity and mortality. Transcatheter native outflow tract pulmonary valve replacement (TPVR) has become common, but assessment of patient candidacy and selection of the optimal device remains challenging. We demonstrate an integrated open-source workflow for simulation of TPVR in image-derived models to inform device selection. Methods - Machine learning-based segmentation of CT scans was implemented to define the right ventricular outflow tract (RVOT). A custom workflow for device positioning and pre-compression was implemented in SlicerHeart. Resulting geometries were exported to FEBio for simulation. Visualization of results and quantification were performed using custom metrics implemented in SlicerHeart and FEBio. Results - RVOT model creation and…
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Taxonomy
TopicsCongenital Heart Disease Studies · Cardiac Valve Diseases and Treatments · Aortic Disease and Treatment Approaches
