Literature DB >> 26183963

Fluid-Structure Interaction Analysis of Papillary Muscle Forces Using a Comprehensive Mitral Valve Model with 3D Chordal Structure.

Milan Toma1, Morten Ø Jensen1, Daniel R Einstein2, Ajit P Yoganathan1, Richard P Cochran3, Karyn S Kunzelman4.   

Abstract

Numerical models of native heart valves are being used to study valve biomechanics to aid design and development of repair procedures and replacement devices. These models have evolved from simple two-dimensional approximations to complex three-dimensional, fully coupled fluid-structure interaction (FSI) systems. Such simulations are useful for predicting the mechanical and hemodynamic loading on implanted valve devices. A current challenge for improving the accuracy of these predictions is choosing and implementing modeling boundary conditions. In order to address this challenge, we are utilizing an advanced in vitro system to validate FSI conditions for the mitral valve system. Explanted ovine mitral valves were mounted in an in vitro setup, and structural data for the mitral valve was acquired with [Formula: see text]CT. Experimental data from the in vitro ovine mitral valve system were used to validate the computational model. As the valve closes, the hemodynamic data, high speed leaflet dynamics, and force vectors from the in vitro system were compared to the results of the FSI simulation computational model. The total force of 2.6 N per papillary muscle is matched by the computational model. In vitro and in vivo force measurements enable validating and adjusting material parameters to improve the accuracy of computational models. The simulations can then be used to answer questions that are otherwise not possible to investigate experimentally. This work is important to maximize the validity of computational models of not just the mitral valve, but any biomechanical aspect using computational simulation in designing medical devices.

Entities:  

Keywords:  Chordal structure; Comprehensive computational model; Fluid–structure interaction; Forces; Mitral valve; Papillary muscle

Mesh:

Year:  2015        PMID: 26183963      PMCID: PMC4715994          DOI: 10.1007/s10439-015-1385-5

Source DB:  PubMed          Journal:  Ann Biomed Eng        ISSN: 0090-6964            Impact factor:   3.934


  36 in total

1.  Fluid-Structure Interactions of the Mitral Valve and Left Heart: Comprehensive Strategies, Past, Present and Future.

Authors:  Daniel R Einstein; Facundo Del Pin; Xiangmin Jiao; Andrew P Kuprat; James P Carson; Karyn S Kunzelman; Richard P Cochran; Julius M Guccione; Mark B Ratcliffe
Journal:  Int J Numer Methods Eng       Date:  2010-03       Impact factor: 3.477

2.  Incorporation of experimentally-derived fiber orientation into a structural constitutive model for planar collagenous tissues.

Authors:  Michael S Sacks
Journal:  J Biomech Eng       Date:  2003-04       Impact factor: 2.097

3.  Power Watershed: A Unifying Graph-Based Optimization Framework.

Authors:  Camille Couprie; Leo Grady; Laurent Najman; Hugues Talbot
Journal:  IEEE Trans Pattern Anal Mach Intell       Date:  2010-11-18       Impact factor: 6.226

4.  Stress/strain characteristics of porcine mitral valve tissue: parallel versus perpendicular collagen orientation.

Authors:  K S Kunzelman; R P Cochran
Journal:  J Card Surg       Date:  1992-03       Impact factor: 1.620

5.  Effect of papillary muscle position on mitral valve function: relationship to homografts.

Authors:  R P Cochran; K S Kunzelman
Journal:  Ann Thorac Surg       Date:  1998-12       Impact factor: 4.330

6.  Finite element analysis of the mitral valve.

Authors:  K S Kunzelman; R P Cochran; C Chuong; W S Ring; E D Verrier; R D Eberhart
Journal:  J Heart Valve Dis       Date:  1993-05

7.  Mitral valve repair using ePTFE sutures for ruptured mitral chordae tendineae: a computational simulation study.

Authors:  Yonghoon Rim; Susan T Laing; David D McPherson; Hyunggun Kim
Journal:  Ann Biomed Eng       Date:  2013-09-26       Impact factor: 3.934

Review 8.  Computational mitral valve evaluation and potential clinical applications.

Authors:  Krishnan B Chandran; Hyunggun Kim
Journal:  Ann Biomed Eng       Date:  2014-08-19       Impact factor: 3.934

9.  Mitral valve mechanics following posterior leaflet patch augmentation.

Authors:  Azadeh Rahmani; Ann Q Rasmussen; Jesper L Honge; Bjorn Ostli; Robert A Levine; Albert Hagège; Hans Nygaard; Sten L Nielsen; Morten O Jensen
Journal:  J Heart Valve Dis       Date:  2013-01

10.  A novel left heart simulator for the multi-modality characterization of native mitral valve geometry and fluid mechanics.

Authors:  Jean-Pierre Rabbah; Neelakantan Saikrishnan; Ajit P Yoganathan
Journal:  Ann Biomed Eng       Date:  2012-09-11       Impact factor: 3.934

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  19 in total

1.  Extraction of open-state mitral valve geometry from CT volumes.

Authors:  Lennart Tautz; Mathias Neugebauer; Markus Hüllebrand; Katharina Vellguth; Franziska Degener; Simon Sündermann; Isaac Wamala; Leonid Goubergrits; Titus Kuehne; Volkmar Falk; Anja Hennemuth
Journal:  Int J Comput Assist Radiol Surg       Date:  2018-08-03       Impact factor: 2.924

2.  Commentary on the integration of model sharing and reproducibility analysis to scholarly publishing workflow in computational biomechanics.

Authors:  Ahmet Erdemir; Trent M Guess; Jason P Halloran; Luca Modenese; Jeffrey A Reinbolt; Darryl G Thelen; Brian R Umberger; Ahmet Erdemir; Trent M Guess; Jason P Halloran; Luca Modenese; Jeffrey A Reinbolt; Darryl G Thelen; Brian R Umberger; Brian R Umberger; Ahmet Erdemir; Darryl G Thelen; Trent M Guess; Jeffrey A Reinbolt; Luca Modenese; Jason P Halloran
Journal:  IEEE Trans Biomed Eng       Date:  2016-10       Impact factor: 4.538

3.  In Vitro Mitral Valve Model with Unrestricted Ventricular Access: Using Vacuum to Close the Valve and Enable Static Trans-Mitral Pressure.

Authors:  Sam E Stephens; Alexander J Kammien; Jacob C Paris; Alexis P Applequist; Neil B Ingels; Hanna K Jensen; Drew E Rodgers; Charles R Cole; Jonathan F Wenk; Morten O Jensen
Journal:  J Cardiovasc Transl Res       Date:  2022-01-06       Impact factor: 3.216

4.  Ex Vivo Methods for Informing Computational Models of the Mitral Valve.

Authors:  Charles H Bloodworth; Eric L Pierce; Thomas F Easley; Andrew Drach; Amir H Khalighi; Milan Toma; Morten O Jensen; Michael S Sacks; Ajit P Yoganathan
Journal:  Ann Biomed Eng       Date:  2016-10-03       Impact factor: 3.934

5.  Fluid-Structure Interaction Analysis of Ruptured Mitral Chordae Tendineae.

Authors:  Milan Toma; Charles H Bloodworth; Eric L Pierce; Daniel R Einstein; Richard P Cochran; Ajit P Yoganathan; Karyn S Kunzelman
Journal:  Ann Biomed Eng       Date:  2016-09-13       Impact factor: 3.934

6.  Fluid-structure interaction and structural analyses using a comprehensive mitral valve model with 3D chordal structure.

Authors:  Milan Toma; Daniel R Einstein; Charles H Bloodworth; Richard P Cochran; Ajit P Yoganathan; Karyn S Kunzelman
Journal:  Int J Numer Method Biomed Eng       Date:  2016-07-28       Impact factor: 2.747

Review 7.  Biomechanical Behavior of Bioprosthetic Heart Valve Heterograft Tissues: Characterization, Simulation, and Performance.

Authors:  Joao S Soares; Kristen R Feaver; Will Zhang; David Kamensky; Ankush Aggarwal; Michael S Sacks
Journal:  Cardiovasc Eng Technol       Date:  2016-08-09       Impact factor: 2.495

Review 8.  Finite Element Modeling of Mitral Valve Repair.

Authors:  Ashley E Morgan; Joe Luis Pantoja; Jonathan Weinsaft; Eugene Grossi; Julius M Guccione; Liang Ge; Mark Ratcliffe
Journal:  J Biomech Eng       Date:  2016-02       Impact factor: 2.097

9.  An investigation of the anisotropic mechanical properties and anatomical structure of porcine atrioventricular heart valves.

Authors:  Samuel Jett; Devin Laurence; Robert Kunkel; Anju R Babu; Katherine Kramer; Ryan Baumwart; Rheal Towner; Yi Wu; Chung-Hao Lee
Journal:  J Mech Behav Biomed Mater       Date:  2018-07-18

10.  High resolution imaging of the mitral valve in the natural state with 7 Tesla MRI.

Authors:  Sam E Stephens; Serguei Liachenko; Neil B Ingels; Jonathan F Wenk; Morten O Jensen
Journal:  PLoS One       Date:  2017-08-30       Impact factor: 3.240

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