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Computed Tomography-Based Assessment of Transvalvular Pressure Gradient in Aortic Stenosis

Background: In patients with aortic stenosis, computed tomography (CT) provides important information about cardiovascular anatomy for treatment planning but is limited in determining relevant hemodynamic parameters such as the transvalvular pressure gradient (TPG). Purpose: In the present study, we...

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Autores principales: Franke, Benedikt, Brüning, Jan, Yevtushenko, Pavlo, Dreger, Henryk, Brand, Anna, Juri, Benjamin, Unbehaun, Axel, Kempfert, Jörg, Sündermann, Simon, Lembcke, Alexander, Solowjowa, Natalia, Kelle, Sebastian, Falk, Volkmar, Kuehne, Titus, Goubergrits, Leonid, Schafstedde, Marie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8457381/
https://www.ncbi.nlm.nih.gov/pubmed/34568450
http://dx.doi.org/10.3389/fcvm.2021.706628
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author Franke, Benedikt
Brüning, Jan
Yevtushenko, Pavlo
Dreger, Henryk
Brand, Anna
Juri, Benjamin
Unbehaun, Axel
Kempfert, Jörg
Sündermann, Simon
Lembcke, Alexander
Solowjowa, Natalia
Kelle, Sebastian
Falk, Volkmar
Kuehne, Titus
Goubergrits, Leonid
Schafstedde, Marie
author_facet Franke, Benedikt
Brüning, Jan
Yevtushenko, Pavlo
Dreger, Henryk
Brand, Anna
Juri, Benjamin
Unbehaun, Axel
Kempfert, Jörg
Sündermann, Simon
Lembcke, Alexander
Solowjowa, Natalia
Kelle, Sebastian
Falk, Volkmar
Kuehne, Titus
Goubergrits, Leonid
Schafstedde, Marie
author_sort Franke, Benedikt
collection PubMed
description Background: In patients with aortic stenosis, computed tomography (CT) provides important information about cardiovascular anatomy for treatment planning but is limited in determining relevant hemodynamic parameters such as the transvalvular pressure gradient (TPG). Purpose: In the present study, we aimed to validate a reduced-order model method for assessing TPG in aortic stenosis using CT data. Methods: TPG(CT) was calculated using a reduced-order model requiring the patient-specific peak-systolic aortic flow rate (Q) and the aortic valve area (AVA). AVA was determined by segmentation of the aortic valve leaflets, whereas Q was quantified based on volumetric assessment of the left ventricle. For validation, invasively measured TPG(catheter) was calculated from pressure measurements in the left ventricle and the ascending aorta. Altogether, 84 data sets of patients with aortic stenosis were used to compare TPG(CT) against TPG(catheter). Results: TPG(catheter) and TPG(CT) were 50.6 ± 28.0 and 48.0 ± 26 mmHg, respectively (p = 0.56). A Bland–Altman analysis revealed good agreement between both methods with a mean difference in TPG of 2.6 mmHg and a standard deviation of 19.3 mmHg. Both methods showed good correlation with r = 0.72 (p < 0.001). Conclusions: The presented CT-based method allows assessment of TPG in patients with aortic stenosis, extending the current capabilities of cardiac CT for diagnosis and treatment planning.
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spelling pubmed-84573812021-09-23 Computed Tomography-Based Assessment of Transvalvular Pressure Gradient in Aortic Stenosis Franke, Benedikt Brüning, Jan Yevtushenko, Pavlo Dreger, Henryk Brand, Anna Juri, Benjamin Unbehaun, Axel Kempfert, Jörg Sündermann, Simon Lembcke, Alexander Solowjowa, Natalia Kelle, Sebastian Falk, Volkmar Kuehne, Titus Goubergrits, Leonid Schafstedde, Marie Front Cardiovasc Med Cardiovascular Medicine Background: In patients with aortic stenosis, computed tomography (CT) provides important information about cardiovascular anatomy for treatment planning but is limited in determining relevant hemodynamic parameters such as the transvalvular pressure gradient (TPG). Purpose: In the present study, we aimed to validate a reduced-order model method for assessing TPG in aortic stenosis using CT data. Methods: TPG(CT) was calculated using a reduced-order model requiring the patient-specific peak-systolic aortic flow rate (Q) and the aortic valve area (AVA). AVA was determined by segmentation of the aortic valve leaflets, whereas Q was quantified based on volumetric assessment of the left ventricle. For validation, invasively measured TPG(catheter) was calculated from pressure measurements in the left ventricle and the ascending aorta. Altogether, 84 data sets of patients with aortic stenosis were used to compare TPG(CT) against TPG(catheter). Results: TPG(catheter) and TPG(CT) were 50.6 ± 28.0 and 48.0 ± 26 mmHg, respectively (p = 0.56). A Bland–Altman analysis revealed good agreement between both methods with a mean difference in TPG of 2.6 mmHg and a standard deviation of 19.3 mmHg. Both methods showed good correlation with r = 0.72 (p < 0.001). Conclusions: The presented CT-based method allows assessment of TPG in patients with aortic stenosis, extending the current capabilities of cardiac CT for diagnosis and treatment planning. Frontiers Media S.A. 2021-09-08 /pmc/articles/PMC8457381/ /pubmed/34568450 http://dx.doi.org/10.3389/fcvm.2021.706628 Text en Copyright © 2021 Franke, Brüning, Yevtushenko, Dreger, Brand, Juri, Unbehaun, Kempfert, Sündermann, Lembcke, Solowjowa, Kelle, Falk, Kuehne, Goubergrits and Schafstedde. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cardiovascular Medicine
Franke, Benedikt
Brüning, Jan
Yevtushenko, Pavlo
Dreger, Henryk
Brand, Anna
Juri, Benjamin
Unbehaun, Axel
Kempfert, Jörg
Sündermann, Simon
Lembcke, Alexander
Solowjowa, Natalia
Kelle, Sebastian
Falk, Volkmar
Kuehne, Titus
Goubergrits, Leonid
Schafstedde, Marie
Computed Tomography-Based Assessment of Transvalvular Pressure Gradient in Aortic Stenosis
title Computed Tomography-Based Assessment of Transvalvular Pressure Gradient in Aortic Stenosis
title_full Computed Tomography-Based Assessment of Transvalvular Pressure Gradient in Aortic Stenosis
title_fullStr Computed Tomography-Based Assessment of Transvalvular Pressure Gradient in Aortic Stenosis
title_full_unstemmed Computed Tomography-Based Assessment of Transvalvular Pressure Gradient in Aortic Stenosis
title_short Computed Tomography-Based Assessment of Transvalvular Pressure Gradient in Aortic Stenosis
title_sort computed tomography-based assessment of transvalvular pressure gradient in aortic stenosis
topic Cardiovascular Medicine
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8457381/
https://www.ncbi.nlm.nih.gov/pubmed/34568450
http://dx.doi.org/10.3389/fcvm.2021.706628
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