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Potential Applications of Computational Fluid Dynamics for Predicting Hemolysis in Mitral Paravalvular Leaks

Paravalvular leaks (PVLs) may lead to hemolysis. In vitro shear stress forces above 300 Pa cause erythrocyte destruction. PVL channel dimensions may determine magnitude of shear stress forces that affect erythrocytes; however, this has not been tested. It remains unclear how different properties of...

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Autores principales: Kozłowski, Michał, Wojtas, Krzysztof, Orciuch, Wojciech, Jędrzejek, Marek, Smolka, Grzegorz, Wojakowski, Wojciech, Makowski, Łukasz
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708986/
https://www.ncbi.nlm.nih.gov/pubmed/34945048
http://dx.doi.org/10.3390/jcm10245752
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author Kozłowski, Michał
Wojtas, Krzysztof
Orciuch, Wojciech
Jędrzejek, Marek
Smolka, Grzegorz
Wojakowski, Wojciech
Makowski, Łukasz
author_facet Kozłowski, Michał
Wojtas, Krzysztof
Orciuch, Wojciech
Jędrzejek, Marek
Smolka, Grzegorz
Wojakowski, Wojciech
Makowski, Łukasz
author_sort Kozłowski, Michał
collection PubMed
description Paravalvular leaks (PVLs) may lead to hemolysis. In vitro shear stress forces above 300 Pa cause erythrocyte destruction. PVL channel dimensions may determine magnitude of shear stress forces that affect erythrocytes; however, this has not been tested. It remains unclear how different properties of PVL channels contribute to presence of hemolysis. A model of a left ventricle was created based on data from computer tomography with Slicer software PVLs of various shapes and sizes were introduced. Blood flow was simulated using ANSYS Fluent software. The following variables were examined: wall shear stress, shear stress in fluid, volume of PVL channel with shear stress exceeding 300 Pa, and duration of exposure of erythrocytes to shear stress values above 300 Pa. In all models, shear stress forces exceeded 300 Pa. Shear stress increased with blood flow rates and cross-sectional areas of any PVL. There was no linear relationship between cross-sectional area of a PVL and volume of a PVL channel with shear stress > 300 Pa. Blood flow through mitral PVLs is associated with shear stress above 300 Pa. Cross-sectional area of a PVL does not correlate with volume of a PVL channel with shear stress > 300 Pa and duration of exposure of erythrocytes to shear stress > 300 Pa.
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spelling pubmed-87089862021-12-25 Potential Applications of Computational Fluid Dynamics for Predicting Hemolysis in Mitral Paravalvular Leaks Kozłowski, Michał Wojtas, Krzysztof Orciuch, Wojciech Jędrzejek, Marek Smolka, Grzegorz Wojakowski, Wojciech Makowski, Łukasz J Clin Med Article Paravalvular leaks (PVLs) may lead to hemolysis. In vitro shear stress forces above 300 Pa cause erythrocyte destruction. PVL channel dimensions may determine magnitude of shear stress forces that affect erythrocytes; however, this has not been tested. It remains unclear how different properties of PVL channels contribute to presence of hemolysis. A model of a left ventricle was created based on data from computer tomography with Slicer software PVLs of various shapes and sizes were introduced. Blood flow was simulated using ANSYS Fluent software. The following variables were examined: wall shear stress, shear stress in fluid, volume of PVL channel with shear stress exceeding 300 Pa, and duration of exposure of erythrocytes to shear stress values above 300 Pa. In all models, shear stress forces exceeded 300 Pa. Shear stress increased with blood flow rates and cross-sectional areas of any PVL. There was no linear relationship between cross-sectional area of a PVL and volume of a PVL channel with shear stress > 300 Pa. Blood flow through mitral PVLs is associated with shear stress above 300 Pa. Cross-sectional area of a PVL does not correlate with volume of a PVL channel with shear stress > 300 Pa and duration of exposure of erythrocytes to shear stress > 300 Pa. MDPI 2021-12-09 /pmc/articles/PMC8708986/ /pubmed/34945048 http://dx.doi.org/10.3390/jcm10245752 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kozłowski, Michał
Wojtas, Krzysztof
Orciuch, Wojciech
Jędrzejek, Marek
Smolka, Grzegorz
Wojakowski, Wojciech
Makowski, Łukasz
Potential Applications of Computational Fluid Dynamics for Predicting Hemolysis in Mitral Paravalvular Leaks
title Potential Applications of Computational Fluid Dynamics for Predicting Hemolysis in Mitral Paravalvular Leaks
title_full Potential Applications of Computational Fluid Dynamics for Predicting Hemolysis in Mitral Paravalvular Leaks
title_fullStr Potential Applications of Computational Fluid Dynamics for Predicting Hemolysis in Mitral Paravalvular Leaks
title_full_unstemmed Potential Applications of Computational Fluid Dynamics for Predicting Hemolysis in Mitral Paravalvular Leaks
title_short Potential Applications of Computational Fluid Dynamics for Predicting Hemolysis in Mitral Paravalvular Leaks
title_sort potential applications of computational fluid dynamics for predicting hemolysis in mitral paravalvular leaks
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8708986/
https://www.ncbi.nlm.nih.gov/pubmed/34945048
http://dx.doi.org/10.3390/jcm10245752
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