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Biomechanical engineering analysis of an acute papillary muscle rupture disease model using an innovative 3D-printed left heart simulator

OBJECTIVES: The severity of acute papillary muscle (PM) rupture varies according to the extent and site of the rupture. However, the haemodynamic effects of different rupture variations are still poorly understood. Using a novel ex vivo model, we sought to study acute PM rupture to improve clinical...

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Autores principales: Marin-Cuartas, Mateo, Zhu, Yuanjia, Imbrie-Moore, Annabel M, Park, Matthew H, Wilkerson, Robert J, Leipzig, Matthew, Pandya, Pearly K, Paulsen, Michael J, Borger, Michael A, Woo, Y Joseph
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9153378/
https://www.ncbi.nlm.nih.gov/pubmed/35022737
http://dx.doi.org/10.1093/icvts/ivab373
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author Marin-Cuartas, Mateo
Zhu, Yuanjia
Imbrie-Moore, Annabel M
Park, Matthew H
Wilkerson, Robert J
Leipzig, Matthew
Pandya, Pearly K
Paulsen, Michael J
Borger, Michael A
Woo, Y Joseph
author_facet Marin-Cuartas, Mateo
Zhu, Yuanjia
Imbrie-Moore, Annabel M
Park, Matthew H
Wilkerson, Robert J
Leipzig, Matthew
Pandya, Pearly K
Paulsen, Michael J
Borger, Michael A
Woo, Y Joseph
author_sort Marin-Cuartas, Mateo
collection PubMed
description OBJECTIVES: The severity of acute papillary muscle (PM) rupture varies according to the extent and site of the rupture. However, the haemodynamic effects of different rupture variations are still poorly understood. Using a novel ex vivo model, we sought to study acute PM rupture to improve clinical management. METHODS: Using porcine mitral valves (n = 32) mounted within an ex vivo left heart simulator, PM rupture was simulated. The mitral valve was divided into quadrants for analysis according to the PM heads. Acute PM rupture was simulated by incrementally cutting from 1/3 to the total number of chordae arising from 1 PM head of interest. Haemodynamic parameters were measured. RESULTS: Rupture >2/3 of the chordae from 1 given PM head or regurgitation fraction >60% led to markedly deteriorated haemodynamics. Rupture at the anterolateral PM had a stronger negative effect on haemodynamics than rupture at the posteromedial PM. Rupture occurring at the anterior head of the anterolateral PM led to more marked haemodynamic instability than rupture occurring at the other PM heads. CONCLUSIONS: The haemodynamic effects of acute PM rupture vary considerably according to the site and extent of the rupture. Rupture of ≤2/3 of chordae from 1 PM head or rupture at the posteromedial PM lead to less marked haemodynamics effects, suggesting a higher likelihood of tolerating surgery. Rupture at the anterolateral PM, specifically the anterior head, rupture of >2/3 of chordae from 1 PM head or regurgitation fraction >60% led to marked haemodynamic instability, suggesting the potential benefit from bridging strategies prior to surgery.
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spelling pubmed-91533782022-06-04 Biomechanical engineering analysis of an acute papillary muscle rupture disease model using an innovative 3D-printed left heart simulator Marin-Cuartas, Mateo Zhu, Yuanjia Imbrie-Moore, Annabel M Park, Matthew H Wilkerson, Robert J Leipzig, Matthew Pandya, Pearly K Paulsen, Michael J Borger, Michael A Woo, Y Joseph Interact Cardiovasc Thorac Surg Experimental OBJECTIVES: The severity of acute papillary muscle (PM) rupture varies according to the extent and site of the rupture. However, the haemodynamic effects of different rupture variations are still poorly understood. Using a novel ex vivo model, we sought to study acute PM rupture to improve clinical management. METHODS: Using porcine mitral valves (n = 32) mounted within an ex vivo left heart simulator, PM rupture was simulated. The mitral valve was divided into quadrants for analysis according to the PM heads. Acute PM rupture was simulated by incrementally cutting from 1/3 to the total number of chordae arising from 1 PM head of interest. Haemodynamic parameters were measured. RESULTS: Rupture >2/3 of the chordae from 1 given PM head or regurgitation fraction >60% led to markedly deteriorated haemodynamics. Rupture at the anterolateral PM had a stronger negative effect on haemodynamics than rupture at the posteromedial PM. Rupture occurring at the anterior head of the anterolateral PM led to more marked haemodynamic instability than rupture occurring at the other PM heads. CONCLUSIONS: The haemodynamic effects of acute PM rupture vary considerably according to the site and extent of the rupture. Rupture of ≤2/3 of chordae from 1 PM head or rupture at the posteromedial PM lead to less marked haemodynamics effects, suggesting a higher likelihood of tolerating surgery. Rupture at the anterolateral PM, specifically the anterior head, rupture of >2/3 of chordae from 1 PM head or regurgitation fraction >60% led to marked haemodynamic instability, suggesting the potential benefit from bridging strategies prior to surgery. Oxford University Press 2022-01-12 /pmc/articles/PMC9153378/ /pubmed/35022737 http://dx.doi.org/10.1093/icvts/ivab373 Text en © The Author(s) 2022. Published by Oxford University Press on behalf of the European Association for Cardio-Thoracic Surgery. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Experimental
Marin-Cuartas, Mateo
Zhu, Yuanjia
Imbrie-Moore, Annabel M
Park, Matthew H
Wilkerson, Robert J
Leipzig, Matthew
Pandya, Pearly K
Paulsen, Michael J
Borger, Michael A
Woo, Y Joseph
Biomechanical engineering analysis of an acute papillary muscle rupture disease model using an innovative 3D-printed left heart simulator
title Biomechanical engineering analysis of an acute papillary muscle rupture disease model using an innovative 3D-printed left heart simulator
title_full Biomechanical engineering analysis of an acute papillary muscle rupture disease model using an innovative 3D-printed left heart simulator
title_fullStr Biomechanical engineering analysis of an acute papillary muscle rupture disease model using an innovative 3D-printed left heart simulator
title_full_unstemmed Biomechanical engineering analysis of an acute papillary muscle rupture disease model using an innovative 3D-printed left heart simulator
title_short Biomechanical engineering analysis of an acute papillary muscle rupture disease model using an innovative 3D-printed left heart simulator
title_sort biomechanical engineering analysis of an acute papillary muscle rupture disease model using an innovative 3d-printed left heart simulator
topic Experimental
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9153378/
https://www.ncbi.nlm.nih.gov/pubmed/35022737
http://dx.doi.org/10.1093/icvts/ivab373
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