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Dynamics of Blood Flows in Aortic Stenosis: Mild, Moderate, and Severe
Choon-Sik Jhun1, Raymond Newswanger1, Joshua P Cysyk1
1From the Department of Surgery, College of Medicine, The Pennsylvania State University, Hershey, Pennsylvania.
Insights
This study quantifies blood flow changes in aortic stenosis (AS), linking altered flow dynamics and shear stress to potential hemostatic abnormalities. Findings may aid in diagnosing and timing treatments for AS patients.
Area of Science:
- Cardiovascular fluid dynamics
- Biomedical engineering
- Hemodynamics
Background:
- Calcific aortic stenosis (AS) causes abnormal blood flow and shear stress.
- The precise relationship between AS severity, complex blood flow, and hemostatic issues remains unclear.
Purpose of the Study:
- To systematically characterize blood flow patterns and shear stresses across mild, moderate, and severe AS.
- To establish a potential link between altered hemodynamics in AS and hemostatic abnormalities.
Main Methods:
- Large eddy simulations (LES) on physiologically representative AS models.
- Validation of simulations using particle image velocimetry.
- Evaluation of velocity fields, pressure gradients, and shear stresses at peak flow (18 L/min).
Main Results:
- Peak velocities increased with AS severity (2.0, 4.0, 8.0 m/s for mild, moderate, severe).
- Severe AS exhibited high-velocity jets (>8 m/s) along the posterior aortic wall.
- Mean laminar wall shear stress (WSS) and maximum turbulent shear stress (RSSmax) significantly increased with AS severity (WSS: 40-180 Pa; RSSmax: 260-2500 Pa).
Conclusions:
- Altered blood flow and elevated shear stresses in AS are quantifiable and increase with severity.
- These hemodynamic changes may explain hemostatic abnormalities like acquired von Willebrand syndrome and hemolysis.
- Findings could inform AS diagnosis and treatment timing.
Abstract:
Supraphysiologic high shear stresses created in calcific aortic stenosis (AS) are known to cause hemostatic abnormalities, however, the relationship between the complex blood flows over the severity of AS and hemostatic abnormalities still remains unclear. This study systematically characterized the blood flow in mild, moderate, and severe AS. A series of large eddy simulations (LES) validated by particle image velocimetry were performed on physiologically representative AS models with a peak physiologic flow condition of 18 liter per minute. Time-accurate velocity fields, transvalvular pressure gradient, and laminar viscous-and turbulent (or Reynolds) shear stresses (RSSmax) were evaluated for each degree of severity. The peak velocities of mild, moderate, and severe AS were on the order of 2.0, 4.0, and 8.0 m/s, respectively. Jet velocity in severe AS was highly skewed with extremely high velocity (as high as 8 m/s) and mainly traveled through the posterior aortic wall up to the aortic arch while still carrying a relatively high velocity, that is, >4 m/s. The mean laminar viscous wall shear stresses (WSS) for mild, moderate, and severe AS were on the order of 40, 100, and 180 Pa, respectively. The RSSmax were on the order of 260, 490, and 2,500 Pa for mild, moderate, and severe AS, respectively. This study may provide a link between altered flows in AS and hemostatic abnormalities such as acquired von Willebrand syndrome and hemolysis, thus, help diagnosing and timing of the treatment.
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