Computer modeling of deployment and mechanical expansion of neurovascular flow diverter in patient-specific intracranial aneurysms

被引:113
作者
Ma, Ding [1 ]
Dargush, Gary F.
Natarajan, Sabareesh K. [2 ]
Levy, Elad I. [2 ]
Siddiqui, Adnan H. [2 ,3 ]
Meng, Hui [1 ,2 ]
机构
[1] SUNY Buffalo, Dept Mech & Aerosp Engn, Toshiba Stroke Res Ctr, Buffalo, NY 14214 USA
[2] SUNY Buffalo, Dept Neurosurg, Buffalo, NY 14214 USA
[3] SUNY Buffalo, Dept Radiol, Buffalo, NY 14214 USA
关键词
Braided self-expandable stent; Braided stent; Flow-diverting stent; Pipeline embolization device; Finite element analysis; PIPELINE EMBOLIZATION DEVICE; HEMODYNAMICS; STENTS; DIVERSION; RECONSTRUCTION; EXPERIENCE; THROMBOSIS; FRICTION; RUPTURE; ARTERY;
D O I
10.1016/j.jbiomech.2012.06.013
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Flow diverter (FD) is an emerging neurovascular device based on self-expandable braided stent for treating intracranial aneurysms. Variability in FD outcome has underscored a need for investigating the hemodynamic effect of fully deployed FD in patient-specific aneurysms. Image-based computational fluid dynamics, which can provide important hemodynamic insight, requires accurate representation of FD in deployed states. We developed a finite element analysis (FEA) based workflow for simulating mechanical deployment of FD in patient-specific aneurysms. We constructed FD models of interlaced wires emulating the Pipeline Embolization Device, using 3D finite beam elements to account for interactions between stent strands, and between the stent and other components. The FEA analysis encompasses all steps that affect the final deployed configuration including stent crimping, delivery and expansion. Besides the stent, modeling also includes key components of the FD delivery system such as microcatheter, pusher, and distal coil. Coordinated maneuver of these components allowed the workflow to mimic clinical operation of FD deployment and to explore clinical strategies. The workflow was applied to two patient-specific aneurysms. Parametric study indicated consistency of the deployment result against different friction conditions, but excessive intra-stent friction should be avoided. This study demonstrates for the first time mechanical modeling of braided FD stent deployment in cerebral vasculature to produce realistic deployed configuration, thus paving the way for accurate CFD analysis of flow diverters for reliable prediction and optimization of treatment outcome. Published by Elsevier Ltd.
引用
收藏
页码:2256 / 2263
页数:8
相关论文
共 27 条
[1]   Computational fluid dynamics of stented intracranial aneurysms using adaptive embedded unstructured grids [J].
Appanaboyina, S. ;
Mut, F. ;
Lohner, R. ;
Putman, C. A. ;
Cebral, J. R. .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2008, 57 (05) :475-493
[2]  
Black J., 1998, HDB BIOMATERIAL PROP
[3]   Early Experience in the Treatment of Intra-Cranial Aneurysms by Endovascular Flow Diversion: A Multicentre Prospective Study [J].
Byrne, James V. ;
Beltechi, Radu ;
Yarnold, Julia A. ;
Birks, Jacqueline ;
Kamran, Mudassar .
PLOS ONE, 2010, 5 (09) :1-8
[4]   Aneurysm Rupture Following Treatment with Flow-Diverting Stents: Computational Hemodynamics Analysis of Treatment [J].
Cebral, J. R. ;
Mut, F. ;
Raschi, M. ;
Scrivano, E. ;
Ceratto, R. ;
Lylyk, P. ;
Putman, C. M. .
AMERICAN JOURNAL OF NEURORADIOLOGY, 2011, 32 (01) :27-33
[5]   Incomplete stent apposition and very late stent thrombosis after drug-eluting stent implantation [J].
Cook, Stephane ;
Wenaweser, Peter ;
Togni, Mario ;
Billinger, Michael ;
Morger, Cyrill ;
Seiler, Christian ;
Vogel, Rolf ;
Hess, Otto ;
Meier, Bernhard ;
Windecker, Stephan .
CIRCULATION, 2007, 115 (18) :2426-2434
[6]   Flow Diversion for Intracranial Aneurysms A Review [J].
D'Urso, Pietro I. ;
Lanzino, Giuseppe ;
Cloft, Harry J. ;
Kallmes, David F. .
STROKE, 2011, 42 (08) :2363-2368
[7]   Virtual optimization of self-expandable braided wire stents [J].
De Beule, Matthieu ;
Van Cauter, Sofie ;
Mortier, Peter ;
Van Loo, Denis ;
Van Impe, Rudy ;
Verdonck, Pascal ;
Verhegghe, Benedict .
MEDICAL ENGINEERING & PHYSICS, 2009, 31 (04) :448-453
[8]   Numerical simulation of hemodynamics in stented internal carotid aneurysm based on patient-specific model [J].
Fu, Wenyu ;
Gu, Zhaoyong ;
Meng, Xianlong ;
Chu, Bo ;
Qiao, Aike .
JOURNAL OF BIOMECHANICS, 2010, 43 (07) :1337-1342
[9]  
Fuller J., 2009, SPINCALC NATL I AERO
[10]   Retrograde Trans-Posterior Communicating Artery Snare-Assisted Rescue of Lost Access to a Foreshortened Pipeline Embolization Device: Complication Management [J].
Hauck, Erik F. ;
Natarajan, Sabareesh K. ;
Langer, David J. ;
Hopkins, L. Nelson ;
Siddiqui, Adnan H. ;
Levy, Elad I. .
NEUROSURGERY, 2010, 67 :ons495-ons502