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Hemodynamics in a giant intracranial aneurysm characterized by in vitro 4D flow MRI

Experimental and computational data suggest that hemodynamics play a critical role in the development, growth, and rupture of cerebral aneurysms. The flow structure, especially in aneurysms with a large sac, is highly complex and three-dimensional. Therefore, volumetric and time-resolved measurement...

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Autores principales: Amili, Omid, Schiavazzi, Daniele, Moen, Sean, Jagadeesan, Bharathi, Van de Moortele, Pierre-François, Coletti, Filippo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5754057/
https://www.ncbi.nlm.nih.gov/pubmed/29300738
http://dx.doi.org/10.1371/journal.pone.0188323
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author Amili, Omid
Schiavazzi, Daniele
Moen, Sean
Jagadeesan, Bharathi
Van de Moortele, Pierre-François
Coletti, Filippo
author_facet Amili, Omid
Schiavazzi, Daniele
Moen, Sean
Jagadeesan, Bharathi
Van de Moortele, Pierre-François
Coletti, Filippo
author_sort Amili, Omid
collection PubMed
description Experimental and computational data suggest that hemodynamics play a critical role in the development, growth, and rupture of cerebral aneurysms. The flow structure, especially in aneurysms with a large sac, is highly complex and three-dimensional. Therefore, volumetric and time-resolved measurements of the flow properties are crucial to fully characterize the hemodynamics. In this study, phase-contrast Magnetic Resonance Imaging is used to assess the fluid dynamics inside a 3D-printed replica of a giant intracranial aneurysm, whose hemodynamics was previously simulated by multiple research groups. The physiological inflow waveform is imposed in a flow circuit with realistic cardiovascular impedance. Measurements are acquired with sub-millimeter spatial resolution for 16 time steps over a cardiac cycle, allowing for the detailed reconstruction of the flow evolution. Moreover, the three-dimensional and time-resolved pressure distribution is calculated from the velocity field by integrating the fluid dynamics equations, and is validated against differential pressure measurements using precision transducers. The flow structure is characterized by vortical motions that persist within the aneurysm sac for most of the cardiac cycle. All the main flow statistics including velocity, vorticity, pressure, and wall shear stress suggest that the flow pattern is dictated by the aneurysm morphology and is largely independent of the pulsatility of the inflow, at least for the flow regimes investigated here. Comparisons are carried out with previous computational simulations that used the same geometry and inflow conditions, both in terms of cycle-averaged and systolic quantities.
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spelling pubmed-57540572018-01-26 Hemodynamics in a giant intracranial aneurysm characterized by in vitro 4D flow MRI Amili, Omid Schiavazzi, Daniele Moen, Sean Jagadeesan, Bharathi Van de Moortele, Pierre-François Coletti, Filippo PLoS One Research Article Experimental and computational data suggest that hemodynamics play a critical role in the development, growth, and rupture of cerebral aneurysms. The flow structure, especially in aneurysms with a large sac, is highly complex and three-dimensional. Therefore, volumetric and time-resolved measurements of the flow properties are crucial to fully characterize the hemodynamics. In this study, phase-contrast Magnetic Resonance Imaging is used to assess the fluid dynamics inside a 3D-printed replica of a giant intracranial aneurysm, whose hemodynamics was previously simulated by multiple research groups. The physiological inflow waveform is imposed in a flow circuit with realistic cardiovascular impedance. Measurements are acquired with sub-millimeter spatial resolution for 16 time steps over a cardiac cycle, allowing for the detailed reconstruction of the flow evolution. Moreover, the three-dimensional and time-resolved pressure distribution is calculated from the velocity field by integrating the fluid dynamics equations, and is validated against differential pressure measurements using precision transducers. The flow structure is characterized by vortical motions that persist within the aneurysm sac for most of the cardiac cycle. All the main flow statistics including velocity, vorticity, pressure, and wall shear stress suggest that the flow pattern is dictated by the aneurysm morphology and is largely independent of the pulsatility of the inflow, at least for the flow regimes investigated here. Comparisons are carried out with previous computational simulations that used the same geometry and inflow conditions, both in terms of cycle-averaged and systolic quantities. Public Library of Science 2018-01-04 /pmc/articles/PMC5754057/ /pubmed/29300738 http://dx.doi.org/10.1371/journal.pone.0188323 Text en © 2018 Amili et al 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 use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Amili, Omid
Schiavazzi, Daniele
Moen, Sean
Jagadeesan, Bharathi
Van de Moortele, Pierre-François
Coletti, Filippo
Hemodynamics in a giant intracranial aneurysm characterized by in vitro 4D flow MRI
title Hemodynamics in a giant intracranial aneurysm characterized by in vitro 4D flow MRI
title_full Hemodynamics in a giant intracranial aneurysm characterized by in vitro 4D flow MRI
title_fullStr Hemodynamics in a giant intracranial aneurysm characterized by in vitro 4D flow MRI
title_full_unstemmed Hemodynamics in a giant intracranial aneurysm characterized by in vitro 4D flow MRI
title_short Hemodynamics in a giant intracranial aneurysm characterized by in vitro 4D flow MRI
title_sort hemodynamics in a giant intracranial aneurysm characterized by in vitro 4d flow mri
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5754057/
https://www.ncbi.nlm.nih.gov/pubmed/29300738
http://dx.doi.org/10.1371/journal.pone.0188323
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