Abstract
BACKGROUND AND PURPOSE: Previous studies have reported that MCA bifurcation aneurysms usually emerge on inclined bifurcations; however, the reason is unclear. We designed this study to explore hemodynamic mechanisms that correlate with the initiation of MCA bifurcation aneurysms.
MATERIALS AND METHODS: Fifty-four patients with unilateral MCA bifurcation aneurysms and 54 control patients were enrolled in this study after propensity score matching, and their clinical and CTA data were collected. We extracted the morphologic features of aneurysmal MCA bifurcations to build a simplified MCA bifurcation model and performed a computational fluid dynamics analysis.
RESULTS: The presence of MCA aneurysms correlated with smaller parent-daughter angles of MCA bifurcations (P < .001). Aneurysmal MCA bifurcations usually presented with inclined shapes. The computational fluid dynamics analysis demonstrated that when arterial bifurcations became inclined, the high-pressure regions and low wall shear stress regions shifted from the apexes of the arterial bifurcations to the inclined daughter arteries, while the initial sites of MCA bifurcation aneurysms often overlapped with the shifted high-pressure regions and low wall shear stress regions.
CONCLUSIONS: Our results suggest that the initiation of MCA bifurcation aneurysms may correlate with shifts of high-pressure regions and low wall shear stress regions that occur on inclined MCA bifurcations.
ABBREVIATIONS:
- CFD
- computational fluid dynamics
- HPR
- high-pressure region
- LWSS
- low wall shear stress
- LWSSR
- low wall shear stress region
- PSM
- propensity score matching
- RD
- ratio of diameter
- ROC
- receiver operating characteristic
Footnotes
This work was supported by National Natural Science Foundation of China (grant No. 81873756).
Disclosures: Zheng Huang—RELATED: Grant: National Natural Science Foundation of China (grant No. 81873756), Comments: The grant was used to buy some software for this study.* Feiyue Y. Zeng—RELATED: Grant: National Science Foundation of China (grant No.81873756).* Longbo B. Zhang—RELATED: Grant: National Natural Science Foundation of China (grant No.81873756).* Fenghua H. Chen—RELATED: Grant: National Natural Science Foundation of China (grant No. 81873756).* *Money paid to the institution.
- © 2020 by American Journal of Neuroradiology
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