Three-dimensional hemodynamics analysis of the circle of Willis in the patient-specific nonintegral arterial
Xin Liu1, Zhifan Gao1,2, Huahua Xiong3
1Institute of Biomedical and Health Engineering, Shenzhen Institutes of Advanced Technology, Shenzhen, 518055, China.
Insights
Geometric variations in the Circle of Willis (CoW) impact cerebral blood flow and can cause strokes. This study developed a computational model to analyze blood flow in incomplete CoW structures, improving diagnostic accuracy for brain blood supply.
Area of Science:
- Biomedical Engineering
- Computational Fluid Dynamics
- Cerebrovascular Hemodynamics
Background:
- Geometric variations in the Circle of Willis (CoW) can lead to cerebral ischemia due to altered hemodynamics.
- Understanding blood flow in incomplete CoW structures is crucial for assessing brain blood supply.
- Existing models may not fully capture patient-specific arterial resistance and complex flow dynamics.
Purpose of the Study:
- To develop and validate a coupled computational fluid dynamics (CFD) and lumped parameter model for analyzing blood flow in incomplete CoW.
- To investigate hemodynamic alterations in patient-specific CoW geometries with structural impairments.
- To assess the model's accuracy against Doppler ultrasound measurements and compare it with traditional boundary conditions.
Main Methods:
- Developed a 3D CFD model of the CoW vasculature coupled with a 0D lumped parameter model for outflow boundaries.
- Incorporated patient-specific arterial geometries from the aorta to cerebral arteries to account for innate resistance.
- Performed numerical simulations to analyze blood flow redistribution in incomplete CoW structures and validated against Doppler ultrasound data in five patient cases.
Main Results:
- The coupled model accurately predicted velocity profiles in patient-specific CoW structures, showing close agreement with Doppler ultrasound measurements.
- Achieved improved accuracy (to [Formula: see text]%) compared to pure-resistance boundary conditions (43.5 ± 28%).
- Demonstrated that unilateral vertebral artery occlusion reduces flow in posterior cerebral arteries, and anterior cerebral artery flow correlates with posterior structural variations.
Conclusions:
- The developed coupling approach effectively provides comprehensive hemodynamic information for pathological CoW arterial structures.
- This methodology enables the evaluation of both functional and structural aspects of cerebrovascular conditions.
- The findings can assist in clinical decision-making for patients with impaired CoW hemodynamics.
Abstract:
The hemodynamic alteration in the cerebral circulation caused by the geometric variations in the cerebral circulation arterial network of the circle of Wills (CoW) can lead to fatal ischemic attacks in the brain. The geometric variations due to impairment in the arterial network result in incomplete cerebral arterial structure of CoW and inadequate blood supply to the brain. Therefore, it is of great importance to understand the hemodynamics of the CoW, for efficiently and precisely evaluating the status of blood supply to the brain. In this paper, three-dimensional computational fluid dynamics of the main CoW vasculature coupled with zero-dimensional lumped parameter model boundary condition for the CoW outflow boundaries is developed for analysis of the blood flow distribution in the incomplete CoW cerebral arterial structures. The geometric models in our study cover the arterial segments from the aorta to the cerebral arteries, which can allow us to take into account the innate patient-specific resistance of the arterial trees. Numerical simulations of the governing fluid mechanics are performed to determine the CoW arterial structural hemodynamics, for illustrating the redistribution of the blood flow in CoW due to the structural variations. We have evaluated our coupling methodology in five patient-specific cases that were diagnosed with the absence of efferent vessels or impairment in the connective arteries in their CoWs. The velocity profiles calculated by our approach in the segments of the patient-specific arterial structures are found to be very close to the Doppler ultrasound measurements. The accuracy and consistency of our hemodynamic results have been improved (to [Formula: see text] %) compared to that of the pure-resistance boundary conditions (of 43.5 [Formula: see text] 28 %). Based on our grouping of the five cases according to the occurrence of unilateral occlusion in vertebral arteries, the inter-comparison has shown that (i) the flow reduction in posterior cerebral arteries is the consequence of the unilateral vertebral arterial occlusion, and (ii) the flow rate in the anterior cerebral arteries is correlated with the posterior structural variations. This study shows that our coupling approach is capable of providing comprehensive information of the hemodynamic alterations in the pathological CoW arterial structures. The information generated by our methodology can enable evaluation of both the functional and structural status of the clinically significant symptoms, for assisting the treatment decision-making.
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