Home LiteratureArticle Details
PMID: 40891037 Published · ppublish English Journal Article

Localized hemodynamic assessment and rupture risk evaluation of intracranial aneurysms using the TESLA framework via computational fluid dynamics.

Medical physics ·Vol. 52 ·No. 9 ·2025-09-00 ·页码 e18071

Ali S, Chen ZY, Wu TC, Huang WC, Shih TC

Abstract

Intracranial aneurysms, particularly saccular types, are localized dilations of cerebral vessels prone to rupture, leading to life-threatening complications such as subarachnoid hemorrhage. This study aimed to characterize the localized hemodynamic environment within the aneurysm dome and evaluate how spatial interactions among key flow parameters contribute to rupture risk, using a synergistic analytical framework. We applied the targeted evaluation of synergistic links in aneurysms (TESLA) framework to analyze 18 intracranial aneurysms from 15 patients. Patient-specific vascular geometries were reconstructed from high-resolution three-dimensional (3D) time-of-flight magnetic resonance angiography (TOF-MRA), acquired using a 1.5T magnetic resonance imaging (MRI) scanner (MAGNETOM Aera, Siemens Healthineers) with a 20-channel head and neck coil. TOF-MRA employed a gradient-echo sequence leveraging the inflow effect to enhance signal intensity from flowing blood, obviating the need for contrast agents. Imaging parameters were: TR/TE = 24/7 ms, flip angle = 22°, field of view (FOV) = 230 × 200 mm2, matrix size = 320 × 196, 100 contiguous slices with a slice thickness of 0.7 mm, and voxel dimensions = 0.72 × 1.02 × 0.7 mm3 (acquired) and 0.7 × 0.7 × 0.7 mm3 (reconstructed isotropic). Computational fluid dynamics (CFD) simulations were performed to wall shear stress (WSS), time-averaged WSS (TAWSS), oscillatory shear index (OSI), relative residence time (RRT), pressure gradient (PG), and vorticity. A standardized pulsatile inflow waveform (mean flow rate: 275 mL min-1) was applied uniformly at the inlet of each model. Outflow boundary conditions assumed constant pressure at distal locations, with resistance equalization via extension segments. Hemodynamic parameters were compared between ruptured and unruptured aneurysms. The CFD analysis of 18 intracranial aneurysms revealed marked hemodynamic heterogeneity within the aneurysm dome, with WSS ranging from an average of 0.7042 Pa in low-stress zones associated with stagnant flow to peaks of 54.0371 Pa in high-stress regions indicative of mechanical strain, while TAWSS averaged 12.4875 Pa with maximum values reaching 25.9159 Pa, highlighting localized stress amplifications. Vorticity averaged 2,422.34 s-1 with peaks up to 4,645.50 s-1, reflecting turbulent and recirculating flow, complemented by an OSI averaging 0.4557 and peaking at 0.4952, and RRT averaging 6.2278 Pa-1, both signifying oscillatory flow and stagnation linked to increased wall vulnerability. Comparative analysis between ruptured and unruptured aneurysms demonstrated markedly higher maximum values of WSS, TAWSS, OSI, PGs, and vorticity (averaging 33,635.322 Pa m-1 and peaking at 47,390.5 Pa m-1) in ruptured cases, alongside elevated RRT, underscoring the association of extreme hemodynamic disturbances with rupture risk. The TESLA framework effectively captured localized hemodynamic extremes-elevated stress, oscillatory flow, and prolonged residence time-that were more pronounced in ruptured aneurysms. These findings support TESLA's utility in improving rupture risk assessment and guiding personalized clinical management.

Keywords
aneurysm rupture risk computational fluid dynamics hemodynamics parameters intracranial aneurysms target evaluation of synergistic links in aneurysms (TESLA) framework
MeSH 主题词
Intracranial Aneurysm/physiopathology,diagnostic imaging Humans Hemodynamics Hydrodynamics Aneurysm, Ruptured/physiopathology,diagnostic imaging Male Middle Aged Female Magnetic Resonance Angiography Adult Aged
作者与单位
共 5 位作者,点击展开单位 / ORCID
Ali Sajid
Graduate Institute of Biomedical Sciences, China Medical University, Taichung, Taiwan.
Chen Zhen-Ye
Graduate Institute of Biomedical Sciences, China Medical University, Taichung, Taiwan.
Wu Te-Chang
Department of Medical Imaging, Chi-Mei Medical Center, Tainan, Taiwan. | Department of Medical Sciences Industry, Chang Jung Christian University, Tainan, Taiwan.
Huang Wei-Chien
Graduate Institute of Biomedical Sciences, China Medical University, Taichung, Taiwan. | Center for Molecular Medicine, China Medical University Hospital, Taichung, Taiwan. | School of Pharmacy, China Medical University, Taichung, Taiwan.
Shih Tzu-Ching
Department of Biomedical Imaging and Radiological Science, China Medical University, Taichung, Taiwan.
Article Info
Journal
Medical physics
Abbr.
Med Phys
ISSN
2473-4209
Published
2025-09-00
页码
e18071
Language
English
Country/Region
United States
NLM ID
0425746
基金资助
National Science and Technology Council · NSTC 112-2221-E-039-003-MY2
China Medical University · CMU113-MF-41
China Medical University · CMU112-MF-54
China Medical University · CMU111-MF-94
China Medical University Hsinchu Hospital · CMUHCH-DMR-114-022
China Medical University Hsinchu Hospital · CMUHCH-CMU-113-007
China Medical University Hsinchu Hospital · CMUHCH-DMR-113-024
China Medical University Hsinchu Hospital · CMUHCH-CMU-112-004
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]