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Hemodynamic Impact of the Aberrant Subclavian Artery: A CFD Investigation
Edoardo Ugolini1, Giorgio La Civita2, Marco Ferraresi3
1Industrial Engineering Department, University of Bologna, 40126 Bologna, Italy.
Insights
Aberrant subclavian artery (ASA) is linked to altered blood flow dynamics, including higher Wall Shear Stress (WSS) and Drag Forces (DF), potentially causing Kommerell diverticulum. Computational Fluid Dynamics (CFD) aids in understanding these mechanisms.
Area of Science:
- Cardiovascular Imaging and Hemodynamics
- Biomechanical Engineering
- Congenital Vascular Anomalies
Background:
- Aberrant subclavian artery (ASA) is the most common aortic arch anomaly, often associated with Kommerell diverticulum.
- This condition poses risks of rupture and dissection, with hemodynamic alterations suspected in its development.
- Computational Fluid Dynamics (CFD) offers a non-invasive method to study biomechanical stresses in vascular abnormalities.
Purpose of the Study:
- To investigate hemodynamic alterations in patients with ASA and Kommerell diverticulum using CFD.
- To correlate specific hemodynamic metrics with anatomical variations and disease progression.
- To assess the utility of CFD in understanding disease mechanisms and guiding endovascular planning.
Main Methods:
- Analysis of thoracic CT angiography scans from six patients with ASA and six controls.
- CFD simulations performed using OpenFOAM with standardized boundary conditions.
- Evaluation of Wall Shear Stress (WSS), Oscillatory Shear Index (OSI), Drag Forces (DF), and Turbulent Viscosity Ratio (TVR) in defined aortic arch zones.
Main Results:
- Patients with ASA showed significantly altered hemodynamics (elevated WSS, OSI, DF, TVR) in zones 1-3 compared to controls.
- Most pronounced abnormalities were observed in zones 2-3, near the aberrant vessel origin, with disturbed flow patterns.
- Elevated drag forces and TVR in the distal arch correlated with distal aneurysm and right-sided arch in specific cases.
Conclusions:
- Aberrant hemodynamics contribute to Kommerell diverticulum formation and progression in ASA.
- CFD is feasible for clarifying disease mechanisms and characterizing flow patterns in these anomalies.
- CFD can inform endovascular planning by identifying hemodynamically favorable landing zones.
Abstract:
Background/Objectives: The aberrant subclavian artery (ASA) represents the most common congenital anomaly of the aortic arch, and is frequently associated with a Kommerell diverticulum, an aneurysmal dilation at the anomalous vessel origin. This condition carries a significant risk of rupture and dissection, and growing evidence indicates that local hemodynamic alterations may contribute to its development and progression. Computational Fluid Dynamics (CFD) provides a valuable non-invasive modality to assess biomechanical stresses and elucidate the pathophysiological mechanisms underlying these vascular abnormalities. Methods: In this study, twelve thoracic CT angiography scans were analyzed: six from patients with ASA and six from individuals with normal aortic anatomy. CFD simulations were performed using OpenFOAM, with standardized boundary conditions applied across all cases to isolate the influence of anatomical differences in flow behavior. Four key hemodynamic metrics were evaluated-Wall Shear Stress (WSS), Oscillatory Shear Index (OSI), Drag Forces (DF), and Turbulent Viscosity Ratio (TVR). The aortic arch was subdivided into Ishimaru zones 0-3, with an adapted definition accounting for ASA anatomy. For each region, time- and space-averaged quantities were computed to characterize mean values and oscillatory behavior. Conclusions: The findings demonstrate that patients with ASA exhibit markedly altered hemodynamics in zones 1-3 compared to controls, with consistently elevated WSS, OSI, DF, and TVR. The most pronounced abnormalities occurred in zones 2-3 near the origin of the aberrant vessel, where disturbed flow patterns and off-axis mechanical forces were observed. These features may promote chronic wall stress, endothelial dysfunction, and localized aneurysmal degeneration. Notably, two patients (M1 and M6) displayed particularly elevated drag forces and TVR in the distal arch, correlating with the presence of a distal aneurysm and right-sided arch configuration, respectively. Overall, this work supports the hypothesis that aberrant hemodynamics contribute to Kommerell diverticulum formation and progression, and highlights the CFD's feasibility for clarifying disease mechanisms, characterizing flow patterns, and informing endovascular planning by identifying hemodynamically favorable landing zones.
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