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On the chordae structure and dynamic behaviour of the mitral valve

We develop a fluid–structure interaction (FSI) model of the mitral valve (MV) that uses an anatomically and physiologically realistic description of the MV leaflets and chordae tendineae. Three different chordae models—complex, ‘pseudo-fibre’ and simplified chordae—are compared to determine how diff...

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Autores principales: Feng, Liuyang, Qi, Nan, Gao, Hao, Sun, Wei, Vazquez, Mariano, Griffith, Boyce E, Luo, Xiaoyu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6328065/
https://www.ncbi.nlm.nih.gov/pubmed/30655652
http://dx.doi.org/10.1093/imamat/hxy035
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author Feng, Liuyang
Qi, Nan
Gao, Hao
Sun, Wei
Vazquez, Mariano
Griffith, Boyce E
Luo, Xiaoyu
author_facet Feng, Liuyang
Qi, Nan
Gao, Hao
Sun, Wei
Vazquez, Mariano
Griffith, Boyce E
Luo, Xiaoyu
author_sort Feng, Liuyang
collection PubMed
description We develop a fluid–structure interaction (FSI) model of the mitral valve (MV) that uses an anatomically and physiologically realistic description of the MV leaflets and chordae tendineae. Three different chordae models—complex, ‘pseudo-fibre’ and simplified chordae—are compared to determine how different chordae representations affect the dynamics of the MV. The leaflets and chordae are modelled as fibre-reinforced hyperelastic materials, and FSI is modelled using an immersed boundary–finite element method. The MV model is first verified under static boundary conditions against the commercial finite element software ABAQUS and then used to simulate MV dynamics under physiological pressure conditions. Interesting flow patterns and vortex formulation are observed in all three cases. To quantify the highly complex system behaviour resulting from FSI, an energy budget analysis of the coupled MV FSI model is performed. Results show that the complex and pseudo-fibre chordae models yield good valve closure during systole but that the simplified chordae model leads to poorer leaflet coaptation and an unrealistic bulge in the anterior leaflet belly. An energy budget analysis shows that the MV models with complex and pseudo-fibre chordae have similar energy distribution patterns but the MV model with the simplified chordae consumes more energy, especially during valve closing and opening. We find that the complex chordae and pseudo-fibre chordae have similar impact on the overall MV function but that the simplified chordae representation is less accurate. Because a pseudo-fibre chordal structure is easier to construct and less computationally intensive, it may be a good candidate for modelling MV dynamics or interaction between the MV and heart in patient-specific applications.
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spelling pubmed-63280652019-01-15 On the chordae structure and dynamic behaviour of the mitral valve Feng, Liuyang Qi, Nan Gao, Hao Sun, Wei Vazquez, Mariano Griffith, Boyce E Luo, Xiaoyu IMA J Appl Math Article We develop a fluid–structure interaction (FSI) model of the mitral valve (MV) that uses an anatomically and physiologically realistic description of the MV leaflets and chordae tendineae. Three different chordae models—complex, ‘pseudo-fibre’ and simplified chordae—are compared to determine how different chordae representations affect the dynamics of the MV. The leaflets and chordae are modelled as fibre-reinforced hyperelastic materials, and FSI is modelled using an immersed boundary–finite element method. The MV model is first verified under static boundary conditions against the commercial finite element software ABAQUS and then used to simulate MV dynamics under physiological pressure conditions. Interesting flow patterns and vortex formulation are observed in all three cases. To quantify the highly complex system behaviour resulting from FSI, an energy budget analysis of the coupled MV FSI model is performed. Results show that the complex and pseudo-fibre chordae models yield good valve closure during systole but that the simplified chordae model leads to poorer leaflet coaptation and an unrealistic bulge in the anterior leaflet belly. An energy budget analysis shows that the MV models with complex and pseudo-fibre chordae have similar energy distribution patterns but the MV model with the simplified chordae consumes more energy, especially during valve closing and opening. We find that the complex chordae and pseudo-fibre chordae have similar impact on the overall MV function but that the simplified chordae representation is less accurate. Because a pseudo-fibre chordal structure is easier to construct and less computationally intensive, it may be a good candidate for modelling MV dynamics or interaction between the MV and heart in patient-specific applications. Oxford University Press 2018-11 2018-08-30 /pmc/articles/PMC6328065/ /pubmed/30655652 http://dx.doi.org/10.1093/imamat/hxy035 Text en © The Author(s) 2018. Published by Oxford University Press. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Article
Feng, Liuyang
Qi, Nan
Gao, Hao
Sun, Wei
Vazquez, Mariano
Griffith, Boyce E
Luo, Xiaoyu
On the chordae structure and dynamic behaviour of the mitral valve
title On the chordae structure and dynamic behaviour of the mitral valve
title_full On the chordae structure and dynamic behaviour of the mitral valve
title_fullStr On the chordae structure and dynamic behaviour of the mitral valve
title_full_unstemmed On the chordae structure and dynamic behaviour of the mitral valve
title_short On the chordae structure and dynamic behaviour of the mitral valve
title_sort on the chordae structure and dynamic behaviour of the mitral valve
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6328065/
https://www.ncbi.nlm.nih.gov/pubmed/30655652
http://dx.doi.org/10.1093/imamat/hxy035
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