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    Hemodynamic Characterization of Geometric Cerebral Aneurysm Templates Treated With Embolic Coils

    Source: Journal of Biomechanical Engineering:;2016:;volume( 138 ):;issue: 002::page 21011
    Author:
    Nair, Priya
    ,
    Chong, Brian W.
    ,
    Indahlastari, Aprinda
    ,
    Ryan, Justin
    ,
    Workman, Christopher
    ,
    Haithem Babiker, M.
    ,
    Yadollahi Farsani, Hooman
    ,
    Baccin, Carlos E.
    ,
    Frakes, David
    DOI: 10.1115/1.4032046
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Embolic coiling is one of the most effective treatments for cerebral aneurysms (CAs), largely due to the hemodynamic modifications that the treatment effects in the aneurysmal environment. However, coiling can have very different hemodynamic outcomes in aneurysms with different geometries. Previous work in the field of biofluid mechanics has demonstrated on a general level that geometry is a driving factor behind aneurysmal hemodynamics. The goal of this study was to relate two specific geometric factors that describe CAs (i.e., dome size (DS) and parentvessel contactangle (PVCA)) and one factor that describes treatment (i.e., coil packing density (PD)) to three clinically relevant hemodynamic responses (i.e., aneurysmal rootmeansquare velocity (Vrms), aneurysmal wall shear stress (WSS), and crossneck flow (CNF)). Idealized models of basilar tip aneurysms were created in both virtual and physical forms to satisfy twolevel multifactorial experimental designs. Steady and pulsatile flow hemodynamics were then evaluated in the virtual models using computational fluid dynamics (CFD) (before and after virtual treatment with finite element (FE) embolic coil models), and hemodynamics were also evaluated in the physical models using particle image velocimetry (PIV) (before and after treatment with actual embolic coils). Results showed that among the factors considered, PD made the greatest contributions to effects on hemodynamic responses in and around the aneurysmal sac (i.e., Vrms and WSS), while DS made the greatest contributions to effects on hemodynamics at the neck (i.e., CNF). Results also showed that while a geometric factor (e.g., PVCA) may play a relatively minor role in dictating hemodynamics in the untreated case, the same factor can play a much greater role after coiling. We consider the significance of these findings in the context of aneurysmal recurrence and rupture, and explore potential roles for the proposed methods in endovascular treatment planning.
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      Hemodynamic Characterization of Geometric Cerebral Aneurysm Templates Treated With Embolic Coils

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    https://yetl.yabesh.ir/yetl1/handle/yetl/160327
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    • Journal of Biomechanical Engineering

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    contributor authorNair, Priya
    contributor authorChong, Brian W.
    contributor authorIndahlastari, Aprinda
    contributor authorRyan, Justin
    contributor authorWorkman, Christopher
    contributor authorHaithem Babiker, M.
    contributor authorYadollahi Farsani, Hooman
    contributor authorBaccin, Carlos E.
    contributor authorFrakes, David
    date accessioned2017-05-09T01:25:54Z
    date available2017-05-09T01:25:54Z
    date issued2016
    identifier issn0148-0731
    identifier otherbio_138_02_021011.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/160327
    description abstractEmbolic coiling is one of the most effective treatments for cerebral aneurysms (CAs), largely due to the hemodynamic modifications that the treatment effects in the aneurysmal environment. However, coiling can have very different hemodynamic outcomes in aneurysms with different geometries. Previous work in the field of biofluid mechanics has demonstrated on a general level that geometry is a driving factor behind aneurysmal hemodynamics. The goal of this study was to relate two specific geometric factors that describe CAs (i.e., dome size (DS) and parentvessel contactangle (PVCA)) and one factor that describes treatment (i.e., coil packing density (PD)) to three clinically relevant hemodynamic responses (i.e., aneurysmal rootmeansquare velocity (Vrms), aneurysmal wall shear stress (WSS), and crossneck flow (CNF)). Idealized models of basilar tip aneurysms were created in both virtual and physical forms to satisfy twolevel multifactorial experimental designs. Steady and pulsatile flow hemodynamics were then evaluated in the virtual models using computational fluid dynamics (CFD) (before and after virtual treatment with finite element (FE) embolic coil models), and hemodynamics were also evaluated in the physical models using particle image velocimetry (PIV) (before and after treatment with actual embolic coils). Results showed that among the factors considered, PD made the greatest contributions to effects on hemodynamic responses in and around the aneurysmal sac (i.e., Vrms and WSS), while DS made the greatest contributions to effects on hemodynamics at the neck (i.e., CNF). Results also showed that while a geometric factor (e.g., PVCA) may play a relatively minor role in dictating hemodynamics in the untreated case, the same factor can play a much greater role after coiling. We consider the significance of these findings in the context of aneurysmal recurrence and rupture, and explore potential roles for the proposed methods in endovascular treatment planning.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleHemodynamic Characterization of Geometric Cerebral Aneurysm Templates Treated With Embolic Coils
    typeJournal Paper
    journal volume138
    journal issue2
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4032046
    journal fristpage21011
    journal lastpage21011
    identifier eissn1528-8951
    treeJournal of Biomechanical Engineering:;2016:;volume( 138 ):;issue: 002
    contenttypeFulltext
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