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Computational Fluid Dynamics Study of Bifurcation Aneurysms Treated with Pipeline Embolization Device: Side Branch Diameter Study

An intracranial aneurysm, abnormal swelling of the cerebral artery, may lead to undesirable rates of mortality and morbidity upon rupture. Endovascular treatment involves the deployment of a flow-diverting stent that covers the aneurysm orifice, thereby reducing the blood flow into the aneurysm and...

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Autores principales: Tang, Abraham Yik-Sau, Chung, Wai-Choi, Liu, Eric Tian-Yang, Qu, Jie-Qiong, Tsang, Anderson Chun-On, Leung, Gilberto Ka-Kit, Leung, Kar-Ming, Yu, Alfred Cheuk-Hang, Chow, Kwok-Wing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Berlin Heidelberg 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4491114/
https://www.ncbi.nlm.nih.gov/pubmed/26167140
http://dx.doi.org/10.1007/s40846-015-0046-3
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author Tang, Abraham Yik-Sau
Chung, Wai-Choi
Liu, Eric Tian-Yang
Qu, Jie-Qiong
Tsang, Anderson Chun-On
Leung, Gilberto Ka-Kit
Leung, Kar-Ming
Yu, Alfred Cheuk-Hang
Chow, Kwok-Wing
author_facet Tang, Abraham Yik-Sau
Chung, Wai-Choi
Liu, Eric Tian-Yang
Qu, Jie-Qiong
Tsang, Anderson Chun-On
Leung, Gilberto Ka-Kit
Leung, Kar-Ming
Yu, Alfred Cheuk-Hang
Chow, Kwok-Wing
author_sort Tang, Abraham Yik-Sau
collection PubMed
description An intracranial aneurysm, abnormal swelling of the cerebral artery, may lead to undesirable rates of mortality and morbidity upon rupture. Endovascular treatment involves the deployment of a flow-diverting stent that covers the aneurysm orifice, thereby reducing the blood flow into the aneurysm and mitigating the risk of rupture. In this study, computational fluid dynamics analysis is performed on a bifurcation model to investigate the change in hemodynamics with various side branch diameters. The condition after the deployment of a pipeline embolization device is also simulated. Hemodynamic factors such as flow velocity, pressure, and wall shear stress are studied. Aneurysms with a larger side branch vessel might have greater risk after treatment in terms of hemodynamics. Although a stent could lead to flow reduction entering the aneurysm, it would drastically alter the flow rate inside the side branch vessel. This may result in side-branch hypoperfusion subsequent to stenting. In addition, two patient-specific bifurcation aneurysms are tested, and the results show good agreement with the idealized models. Furthermore, the peripheral resistance of downstream vessels is investigated by varying the outlet pressure conditions. This quantitative analysis can assist in treatment planning and therapeutic decision-making.
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spelling pubmed-44911142015-07-08 Computational Fluid Dynamics Study of Bifurcation Aneurysms Treated with Pipeline Embolization Device: Side Branch Diameter Study Tang, Abraham Yik-Sau Chung, Wai-Choi Liu, Eric Tian-Yang Qu, Jie-Qiong Tsang, Anderson Chun-On Leung, Gilberto Ka-Kit Leung, Kar-Ming Yu, Alfred Cheuk-Hang Chow, Kwok-Wing J Med Biol Eng Original Article An intracranial aneurysm, abnormal swelling of the cerebral artery, may lead to undesirable rates of mortality and morbidity upon rupture. Endovascular treatment involves the deployment of a flow-diverting stent that covers the aneurysm orifice, thereby reducing the blood flow into the aneurysm and mitigating the risk of rupture. In this study, computational fluid dynamics analysis is performed on a bifurcation model to investigate the change in hemodynamics with various side branch diameters. The condition after the deployment of a pipeline embolization device is also simulated. Hemodynamic factors such as flow velocity, pressure, and wall shear stress are studied. Aneurysms with a larger side branch vessel might have greater risk after treatment in terms of hemodynamics. Although a stent could lead to flow reduction entering the aneurysm, it would drastically alter the flow rate inside the side branch vessel. This may result in side-branch hypoperfusion subsequent to stenting. In addition, two patient-specific bifurcation aneurysms are tested, and the results show good agreement with the idealized models. Furthermore, the peripheral resistance of downstream vessels is investigated by varying the outlet pressure conditions. This quantitative analysis can assist in treatment planning and therapeutic decision-making. Springer Berlin Heidelberg 2015-06-30 2015 /pmc/articles/PMC4491114/ /pubmed/26167140 http://dx.doi.org/10.1007/s40846-015-0046-3 Text en © The Author(s) 2015 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Original Article
Tang, Abraham Yik-Sau
Chung, Wai-Choi
Liu, Eric Tian-Yang
Qu, Jie-Qiong
Tsang, Anderson Chun-On
Leung, Gilberto Ka-Kit
Leung, Kar-Ming
Yu, Alfred Cheuk-Hang
Chow, Kwok-Wing
Computational Fluid Dynamics Study of Bifurcation Aneurysms Treated with Pipeline Embolization Device: Side Branch Diameter Study
title Computational Fluid Dynamics Study of Bifurcation Aneurysms Treated with Pipeline Embolization Device: Side Branch Diameter Study
title_full Computational Fluid Dynamics Study of Bifurcation Aneurysms Treated with Pipeline Embolization Device: Side Branch Diameter Study
title_fullStr Computational Fluid Dynamics Study of Bifurcation Aneurysms Treated with Pipeline Embolization Device: Side Branch Diameter Study
title_full_unstemmed Computational Fluid Dynamics Study of Bifurcation Aneurysms Treated with Pipeline Embolization Device: Side Branch Diameter Study
title_short Computational Fluid Dynamics Study of Bifurcation Aneurysms Treated with Pipeline Embolization Device: Side Branch Diameter Study
title_sort computational fluid dynamics study of bifurcation aneurysms treated with pipeline embolization device: side branch diameter study
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4491114/
https://www.ncbi.nlm.nih.gov/pubmed/26167140
http://dx.doi.org/10.1007/s40846-015-0046-3
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