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PMID: 35983495 Published · ppublish English Journal Article

Leveraging Patient-Specific Simulated Angiograms to Characterize Cerebral Aneurysm Hemodynamics using Computational Fluid Dynamics.

Proceedings of SPIE--the International Society for Optical Engineering ·Vol. 12036 ·2022-00-00

Chivukula V, White R, Shields A, Davies J, Mokin M, Bednarek DR, Rudin S, Ionita C

Abstract

Cerebral aneurysms (CA) affect nearly 6% of the US population and its rupture is one of the major causes of hemorrhagic stroke. Neurointerventionalists performing endovascular therapy (ET) to treat CA rely on qualitative image sequences obtained under fluoroscopy guidance alone, and do not have access to crucial quantitative information regarding blood flow before, during and after treatment - partially contributing to a failure rate of up to 30%. Computational fluid dynamics (CFD) is a powerful tool that can provide a wealth of quantitative data; however, CFD has found limited utility in the clinic due to the challenges in obtaining hemodynamic boundary conditions for each patient. In this work, we present a novel CFD-based simulated angiogram approach (SAA) that resolves the blood flow physics and interaction between blood and injected contrast agent to extract quantitative hemodynamic parameters which can be used to design real-time parametric imaging analysis. The SAA enables correlating contrast agent transport to the underlying hemodynamic conditions via time-density curves (TDC) obtained at several points in the region of interest. The ability of the TDC and the SAA to provide critical hemodynamic parameters in and around CA anatomies, such as washout and local flow changes is explored and presented. This provides invaluable quantitative data to the clinician at the time of intervention, since it incorporates the physics of blood flow and correlates the contrast transport to hemodynamic parameters quantitatively - thereby enabling the clinician to take informed decisions that improve treatment outcomes.

Keywords
Cerebral Aneurysms Computational Fluid Dynamics Hemodynamics Simulated Angiogram Time Density Curve
作者与单位
共 8 位作者,点击展开单位 / ORCID
Chivukula V
Biomedical Engineering, Florida Institute of Technology.
White R
Biomedical Engineering, Florida Institute of Technology.
Shields A
Medical Physics, State University of New York at Buffalo. | Canon Stroke and Vascular Research Center, State University of New York at Buffalo.
Davies J
Department of Neurosurgery, State University of New York at Buffalo.
Mokin M
Department of Neurology and Neurosurgery, University of South Florida.
Bednarek D R
Medical Physics, State University of New York at Buffalo. | Canon Stroke and Vascular Research Center, State University of New York at Buffalo.
Rudin S
Medical Physics, State University of New York at Buffalo. | Canon Stroke and Vascular Research Center, State University of New York at Buffalo. | Department of Neurosurgery, State University of New York at Buffalo.
Ionita C
Medical Physics, State University of New York at Buffalo. | Canon Stroke and Vascular Research Center, State University of New York at Buffalo. | Department of Neurosurgery, State University of New York at Buffalo.
Article Info
Journal
Proceedings of SPIE--the International Society for Optical Engineering
Abbr.
Proc SPIE Int Soc Opt Eng
ISSN
0277-786X
Published
2022-00-00
电子出版
2022-00-04
Language
English
Country/Region
United States
NLM ID
101524122
基金资助
NIBIB NIH HHS · R01 EB030092 · United States
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