» Articles » PMID: 21106956

Hemodynamic-morphologic Discriminants for Intracranial Aneurysm Rupture

Overview
Journal Stroke
Date 2010 Nov 26
PMID 21106956
Citations 263
Authors
Affiliations
Soon will be listed here.
Abstract

Background And Purpose: the purpose of this study was to identify significant morphological and hemodynamic parameters that discriminate intracranial aneurysm rupture status using 3-dimensional angiography and computational fluid dynamics.

Methods: one hundred nineteen intracranial aneurysms (38 ruptured, 81 unruptured) were analyzed from 3-dimensional angiographic images and computational fluid dynamics. Six morphological and 7 hemodynamic parameters were evaluated for significance with respect to rupture. Receiver operating characteristic analysis identified area under the curve (AUC) and optimal thresholds separating ruptured from unruptured aneurysms for each parameter. Significant parameters were examined by multivariate logistic regression analysis in 3 predictive models-morphology only, hemodynamics only, and combined-to identify independent discriminants, and the AUC receiver operating characteristic of the predicted probability of rupture status was compared among these models.

Results: morphological parameters (size ratio, undulation index, ellipticity index, and nonsphericity index) and hemodynamic parameters (average wall shear stress [WSS], maximum intra-aneurysmal WSS, low WSS area, average oscillatory shear index, number of vortices, and relative resident time) achieved statistical significance (P<0.01). Multivariate logistic regression analysis demonstrated size ratio to be the only independently significant factor in the morphology model (AUC, 0.83; 95% CI, 0.75 to 0.91), whereas WSS and oscillatory shear index were the only independently significant variables in the hemodynamics model (AUC, 0.85; 95% CI, 0.78 to 0.93). The combined model retained all 3 variables, size ratio, WSS, and oscillatory shear index (AUC, 0.89; 95% CI, 0.82 to 0.96).

Conclusions: all 3 models-morphological (based on size ratio), hemodynamic (based on WSS and oscillatory shear index), and combined-discriminate intracranial aneurysm rupture status with high AUC values. Hemodynamics is as important as morphology in discriminating aneurysm rupture status.

Citing Articles

Mechanical Evaluation of Stenting for Saccular Abdominal Aortic Aneurysm Using Fluid Structure Interaction Analysis.

Murakami M, Jiang F, Yew S, Chen X Ann Vasc Dis. 2025; 18(1).

PMID: 40007798 PMC: 11858217. DOI: 10.3400/avd.oa.24-00131.


Hemodynamics of asymmetrically stenotic vertebral arteries based on fluid-solid coupling.

Yilin Z, Haiquan F, Chen H, Juan S J Biol Phys. 2025; 51(1):10.

PMID: 39961896 PMC: 11833003. DOI: 10.1007/s10867-025-09673-x.


Coil embolization strategy after flow diverter deployment in patients with intracranial vertebral artery dissection aneurysms: a study from a hemodynamic viewpoint.

Zhang T, Zhong W, Zhou D, Xu Y, Li M, Zhuang J Neurosurg Rev. 2025; 48(1):231.

PMID: 39939415 PMC: 11821696. DOI: 10.1007/s10143-025-03207-8.


Analysis of the safety and efficacy of flow diverter device in the treatment of tandem aneurysms in the internal carotid artery.

Wan J, Xu L, Jiang Y, Zhang L, Wang Z, Zhang X Front Neurol. 2025; 16:1462108.

PMID: 39911455 PMC: 11797207. DOI: 10.3389/fneur.2025.1462108.


Improving Prediction of Intracranial Aneurysm Rupture Status Using Temporal Velocity-Informatics.

Rezaeitaleshmahalleh M, Lyu Z, Mu N, Nainamalai V, Tang J, Gemmete J Ann Biomed Eng. 2025; .

PMID: 39904865 DOI: 10.1007/s10439-025-03686-2.


References
1.
Jou L, Lee D, Morsi H, Mawad M . Wall shear stress on ruptured and unruptured intracranial aneurysms at the internal carotid artery. AJNR Am J Neuroradiol. 2008; 29(9):1761-7. PMC: 8118791. DOI: 10.3174/ajnr.A1180. View

2.
Castro M, Putman C, Radaelli A, Frangi A, Cebral J . Hemodynamics and rupture of terminal cerebral aneurysms. Acad Radiol. 2009; 16(10):1201-7. DOI: 10.1016/j.acra.2009.03.022. View

3.
Lee S, Antiga L, Steinman D . Correlations among indicators of disturbed flow at the normal carotid bifurcation. J Biomech Eng. 2009; 131(6):061013. DOI: 10.1115/1.3127252. View

4.
Oka S, Nakai M . Optimality principle in vascular bifurcation. Biorheology. 1987; 24(6):737-51. DOI: 10.3233/bir-1987-24624. View

5.
Passerini A, Polacek D, Shi C, Francesco N, Manduchi E, Grant G . Coexisting proinflammatory and antioxidative endothelial transcription profiles in a disturbed flow region of the adult porcine aorta. Proc Natl Acad Sci U S A. 2004; 101(8):2482-7. PMC: 356976. DOI: 10.1073/pnas.0305938101. View