Flow instability detected in ruptured versus unruptured cerebral aneurysms at the internal carotid artery.
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[1] S. Dowd,et al. The Frequency Dependent Response of the Vascular Endothelium to Pulsatile Shear Stress , 2006, American journal of physiology. Heart and circulatory physiology.
[2] D. Nichols,et al. Unruptured intracranial aneurysms: natural history, clinical outcome, and risks of surgical and endovascular treatment , 2003, The Lancet.
[3] S. Juvela,et al. Natural History of Unruptured Intracranial Aneurysms: A Long-term Follow-up Study , 2013, Stroke.
[4] D. Wiebers. Natural history of unruptured intracranial aneurysms , 2000 .
[5] C. Putman,et al. Quantitative Characterization of the Hemodynamic Environment in Ruptured and Unruptured Brain Aneurysms , 2010, American Journal of Neuroradiology.
[6] Toshihiro Ishibashi,et al. Development of the PHASES score for prediction of risk of rupture of intracranial aneurysms: a pooled analysis of six prospective cohort studies , 2014, The Lancet Neurology.
[7] J. Mocco,et al. Hemodynamic–Morphologic Discriminants for Intracranial Aneurysm Rupture , 2011, Stroke.
[8] Yiannis Ventikos,et al. Transitional flow in aneurysms and the computation of haemodynamic parameters , 2015, Journal of The Royal Society Interface.
[9] Kendall D Dennis,et al. Grid convergence errors in hemodynamic solution of patient-specific cerebral aneurysms. , 2012, Journal of biomechanics.
[10] Bu-Lang Gao,et al. Identification of a dichotomy in morphological predictors of rupture status between sidewall- and bifurcation-type intracranial aneurysms. , 2012, Journal of neurosurgery.
[11] A. Malek,et al. Wall shear stress association with rupture status in volume matched sidewall aneurysms , 2013, Journal of NeuroInterventional Surgery.
[12] K. Katada,et al. Detection of Pulsation in Unruptured Cerebral Aneurysms by ECG-Gated 3D-CT Angiography (4D-CTA) with 320-Row Area Detector CT (ADCT) and Follow-up Evaluation Results: Assessment Based on Heart Rate at the Time of Scanning , 2014, Clinical Neuroradiology.
[13] Hao Liu,et al. Sensitivity of flow patterns in aneurysms on the anterior communicating artery to anatomic variations of the cerebral arterial network. , 2016, Journal of biomechanics.
[14] C. Ogilvy,et al. Unruptured Cerebral Aneurysms do not Shrink When They Rupture: Multicenter Collaborative Aneurysm Study Group 917 , 2009, Neurosurgery.
[15] Toshio Kobayashi,et al. Influence of wall elasticity in patient-specific hemodynamic simulations , 2007 .
[16] D. Steinman,et al. Narrowing the Expertise Gap for Predicting Intracranial Aneurysm Hemodynamics: Impact of Solver Numerics versus Mesh and Time-Step Resolution , 2015, American Journal of Neuroradiology.
[17] M. Gunel,et al. The critical role of hemodynamics in the development of cerebral vascular disease. , 2010, Journal of neurosurgery.
[18] Tom Verwijlen,et al. Microvascular endothelial cells migrate upstream and align against the shear stress field created by impinging flow. , 2014, Biophysical journal.
[19] J. Mocco,et al. Unruptured Cerebral Aneurysms Do Not Shrink When They Rupture: Multicenter Collaborative Aneurysm Study Group , 2011, Neurosurgery.
[20] J. Sayre,et al. Morphologic and Hemodynamic Risk Factors in Ruptured Aneurysms Imaged before and after Rupture , 2014, American Journal of Neuroradiology.
[21] Ying Zhang,et al. Clinical, morphological, and hemodynamic independent characteristic factors for rupture of posterior communicating artery aneurysms , 2015, Journal of NeuroInterventional Surgery.
[22] Yuri Bazilevs,et al. A fully-coupled fluid-structure interaction simulation of cerebral aneurysms , 2010 .
[23] Yiqian,et al. Hemodynamic Differences Between Unruptured and Ruptured Intracranial Aneurysms During Observation , 2012 .
[24] G E Karniadakis,et al. Flow instability and wall shear stress variation in intracranial aneurysms , 2010, Journal of The Royal Society Interface.
[25] Lixu Gu,et al. Exploring potential association between flow instability and rupture in patients with matched-pairs of ruptured–unruptured intracranial aneurysms , 2016, BioMedical Engineering OnLine.
[26] F. Ishida,et al. Novel Dynamic Four-Dimensional CT Angiography Revealing 2-Type Motions of Cerebral Arteries , 2011, Stroke.
[27] Jianping Xiang,et al. Newtonian viscosity model could overestimate wall shear stress in intracranial aneurysm domes and underestimate rupture risk , 2011, Journal of NeuroInterventional Surgery.
[28] Shengzhang Wang,et al. Influence of Hemodynamic Factors on Rupture of Intracranial Aneurysms: Patient-Specific 3D Mirror Aneurysms Model Computational Fluid Dynamics Simulation , 2011, American Journal of Neuroradiology.
[29] Baruch B. Lieber,et al. Physical Factors Effecting Cerebral Aneurysm Pathophysiology , 2013, Annals of Biomedical Engineering.
[30] F. Liang,et al. A computational model study of the influence of the anatomy of the circle of willis on cerebral hyperperfusion following carotid artery surgery , 2011, Biomedical engineering online.
[31] C M Putman,et al. Computational fluid dynamics modeling of intracranial aneurysms: effects of parent artery segmentation on intra-aneurysmal hemodynamics. , 2006, AJNR. American journal of neuroradiology.
[32] David A Steinman,et al. High-resolution CFD detects high-frequency velocity fluctuations in bifurcation, but not sidewall, aneurysms. , 2013, Journal of biomechanics.
[33] David A Steinman,et al. High-resolution computational fluid dynamics detects flow instabilities in the carotid siphon: implications for aneurysm initiation and rupture? , 2014, Journal of biomechanics.
[34] Nicole Varble,et al. Flow Instability Detected by High-Resolution Computational Fluid Dynamics in Fifty-Six Middle Cerebral Artery Aneurysms. , 2016, Journal of biomechanical engineering.
[35] Marie Oshima,et al. Numerical Study of Cerebroarterial Hemodynamic Changes Following Carotid Artery Operation: A Comparison Between Multiscale Modeling and Stand-Alone Three-Dimensional Modeling. , 2015, Journal of biomechanical engineering.
[36] G. Rinkel,et al. Unruptured intracranial aneurysms: development, rupture and preventive management , 2017, Nature Reviews Neurology.
[37] H. Marquering,et al. Rupture-Associated Changes of Cerebral Aneurysm Geometry: High-Resolution 3D Imaging before and after Rupture , 2014, American Journal of Neuroradiology.
[38] H. Langtangen,et al. Direct numerical simulation of transitional flow in a patient-specific intracranial aneurysm. , 2011, Journal of biomechanics.
[39] Kristian Valen-Sendstad,et al. A study of wall shear stress in 12 aneurysms with respect to different viscosity models and flow conditions. , 2013, Journal of biomechanics.
[40] Paul Vespa,et al. Guidelines for the Management of Aneurysmal Subarachnoid Hemorrhage: A Guideline for Healthcare Professionals From the American Heart Association/American Stroke Association , 2012, Stroke.
[41] D A Steinman,et al. Non‐Newtonian versus numerical rheology: Practical impact of shear‐thinning on the prediction of stable and unstable flows in intracranial aneurysms , 2017, International journal for numerical methods in biomedical engineering.
[42] H A Marquering,et al. Hemodynamic Differences in Intracranial Aneurysms before and after Rupture , 2015, American Journal of Neuroradiology.
[43] Hui Meng,et al. High Wall Shear Stress and Spatial Gradients in Vascular Pathology: A Review , 2012, Annals of Biomedical Engineering.
[44] Ugo Piomelli,et al. Exploring high frequency temporal fluctuations in the terminal aneurysm of the basilar bifurcation. , 2012, Journal of biomechanical engineering.
[45] C F Dewey,et al. Turbulent fluid shear stress induces vascular endothelial cell turnover in vitro. , 1986, Proceedings of the National Academy of Sciences of the United States of America.
[46] David A. Steinman,et al. An image-based modeling framework for patient-specific computational hemodynamics , 2008, Medical & Biological Engineering & Computing.
[47] L. Jou,et al. Wall Shear Stress on Ruptured and Unruptured Intracranial Aneurysms at the Internal Carotid Artery , 2008, American Journal of Neuroradiology.
[48] T. Tezduyar,et al. Influencing factors in image‐based fluid–structure interaction computation of cerebral aneurysms , 2011 .
[49] M Umezu,et al. Risk Analysis of Unruptured Aneurysms Using Computational Fluid Dynamics Technology: Preliminary Results , 2011, American Journal of Neuroradiology.