» Articles » PMID: 19809530

In Vivo MRI-Based 3D FSI RV/LV Models for Human Right Ventricle and Patch Design for Potential Computer-Aided Surgery Optimization

Overview
Journal Comput Struct
Date 2009 Oct 8
PMID 19809530
Citations 14
Authors
Affiliations
Soon will be listed here.
Abstract

Right ventricular dysfunction is one of the more common causes of heart failure in patients with congenital heart defects. Use of computer-assisted procedures is becoming more popular in clinical decision making process and computer-aided surgeries. A 3D in vivo MRI-based RV/LV combination model with fluid-structure interaction (FSI), RV-LV interaction, and RV-patch interaction was introduced to perform mechanical analysis for human right ventricle with potential clinical applications. Patient-specific RV/LV morphologies were acquired by using planar tagged MRI. The 3D RV/LV FSI model was solved using a commercial finite element package ADINA. Our results indicated that flow and stress/strain distributions in the right ventricle are closely related to RV morphology, material properties and blood pressure conditions. Patches with material properties better matching RV tissue properties and smaller size lead to better RV function recoveries. Computational RV volumes showed very good agreement with MRI data (error < 3%). More patient studies are needed to establish baseline database so that computational simulations can be used to replace empirical and often risky clinical experimentation to examine the efficiency and suitability of various reconstructive procedures in diseased hearts and optimal design can be found.

Citing Articles

Accurate Reconstruction of Right Heart Shape and Motion From Cine-MRI for Image-Driven Computational Hemodynamics.

Renzi F, Vergara C, Fedele M, Giambruno V, Quarteroni A, Puppini G Int J Numer Method Biomed Eng. 2025; 41(1):e3891.

PMID: 39822179 PMC: 11740007. DOI: 10.1002/cnm.3891.


A Comparison of Vessel Patch Materials in Tetralogy of Fallot Patients Using Virtual Surgery Techniques.

Di Nardo A, Louvelle L, Romero D, Doyle M, Forbes T, Amon C Ann Biomed Eng. 2023; 51(7):1420-1435.

PMID: 36723833 DOI: 10.1007/s10439-023-03144-x.


Numerical Simulation Study on the Mechanism of Formation of Apical Aneurysm in Hypertrophic Cardiomyopathy With Midventricular Obstruction.

Deng L, Zuo H, Li A, Yang C, Huang X Front Physiol. 2021; 12:717717.

PMID: 34366902 PMC: 8334850. DOI: 10.3389/fphys.2021.717717.


Comparisons of simulation results between passive and active fluid structure interaction models for left ventricle in hypertrophic obstructive cardiomyopathy.

Huang X, Deng L, Zuo H, Yang C, Song Y, Lesperance M Biomed Eng Online. 2021; 20(1):9.

PMID: 33436013 PMC: 7805207. DOI: 10.1186/s12938-020-00838-4.


Computational Pre-surgical Planning of Arterial Patch Reconstruction: Parametric Limits and In Vitro Validation.

Lashkarinia S, Piskin S, Bozkaya T, Salihoglu E, Yerebakan C, Pekkan K Ann Biomed Eng. 2018; 46(9):1292-1308.

PMID: 29761422 PMC: 6097742. DOI: 10.1007/s10439-018-2043-5.


References
1.
Saber N, Gosman A, Wood N, Kilner P, Charrier C, Firmin D . Computational flow modeling of the left ventricle based on in vivo MRI data: initial experience. Ann Biomed Eng. 2001; 29(4):275-83. DOI: 10.1114/1.1359452. View

2.
Haber I, Metaxas D, Axel L . Three-dimensional motion reconstruction and analysis of the right ventricle using tagged MRI. Med Image Anal. 2001; 4(4):335-55. DOI: 10.1016/s1361-8415(00)00028-1. View

3.
Tang D, Yang C, Zheng J, Woodard P, Sicard G, Saffitz J . 3D MRI-based multicomponent FSI models for atherosclerotic plaques. Ann Biomed Eng. 2004; 32(7):947-60. DOI: 10.1023/b:abme.0000032457.10191.e0. View

4.
Vetter F, McCulloch A . Three-dimensional analysis of regional cardiac function: a model of rabbit ventricular anatomy. Prog Biophys Mol Biol. 1998; 69(2-3):157-83. DOI: 10.1016/s0079-6107(98)00006-6. View

5.
Sacks M, Chuong C . Biaxial mechanical properties of passive right ventricular free wall myocardium. J Biomech Eng. 1993; 115(2):202-5. DOI: 10.1115/1.2894122. View