Related Experiment Video
Updated: Aug 7, 2026

Ultrasound Based Assessment of Coronary Artery Flow and Coronary Flow Reserve Using the Pressure Overload Model in Mice
Published on: April 13, 2015
Hemodynamic Effects of Aortic Stenosis on Coronary Flow Dynamics
Roy Banay1, Shiri Polak1, Matan Danon2
1The Department of Mechanical Engineering & Mechatronics, Ariel University, P.O. Box 3, 40700, Ariel, Israel.
Insights
Severe aortic stenosis (AS) creates conditions promoting atherosclerosis in coronary arteries. Transcatheter aortic valve replacement (TAVR) significantly reduces these harmful hemodynamic effects, improving coronary artery health.
Area of Science:
- Cardiovascular Physiology
- Biomedical Engineering
- Fluid Dynamics
Background:
- Aortic stenosis (AS) frequently coexists with coronary artery disease (CAD).
- The direct hemodynamic link between aortic valve function and coronary artery disease remains unclear.
- Altered coronary blood flow and wall shear stress (WSS) in AS may promote atherosclerosis.
Purpose of the Study:
- To quantify how AS-induced flow alterations create atheroprone coronary environments.
- To investigate the hemodynamic impact of transcatheter aortic valve replacement (TAVR) on coronary WSS.
- To establish the direct link between valve hemodynamics and coronary artery disease risk.
Main Methods:
- An in vitro mock circulation loop simulated severe AS and post-TAVR conditions across various physiological states.
- Time-resolved coronary blood flow (CBF) measurements informed patient-specific computational fluid dynamics (CFD) simulations.
- Atherosclerotic risk was assessed by analyzing WSS patterns, including OSI, RRT, ECAP, and TAWSS.
Main Results:
- Severe AS led to higher transvalvular pressure gradients and altered diastolic CBF, especially at higher heart rates.
- CFD simulations revealed larger areas of atheroprone WSS in AS, particularly on convex arterial surfaces.
- TAVR demonstrated a 30-50% reduction in adverse WSS exposure compared to severe AS.
Conclusions:
- AS induces hemodynamic disturbances that create atheroprone coronary environments.
- TAVR effectively mitigates these adverse hemodynamic effects.
- Valve design optimization could further improve the coronary fluid-dynamic environment post-TAVR.
Purpose:
Aortic stenosis (AS) commonly coexists with coronary artery disease (CAD), yet the direct hemodynamic link between valve function, coronary flow waveforms, and spatial wall shear stress (WSS) remains poorly defined. This study isolates and quantifies how AS-induced flow alterations generate atheroprone coronary environments.
Methods:
An in vitro mock circulation loop modeled severe AS (effective orifice area 0.7 cm2) and post-transcatheter aortic valve replacement (TAVR, Evolut R™) under 54 physiological states (heart rate 80-150 bpm; stroke volume 40-65 ml). Time-resolved coronary blood flow (CBF) measurements served as inlet boundary conditions for patient-specific computational fluid dynamics (CFD) simulations of coronary hemodynamics. Atherosclerotic risk was assessed using surface areas exposed to shear thresholds associated with plaque initiation or vulnerability: oscillatory shear index (OSI > 0.2), relative residence time (RRT > 4 Pa⁻1), endothelial cell activation potential (ECAP > 0.5 Pa⁻1), and time-averaged WSS (TAWSS < 0.45 Pa or > 4 Pa).
Results:
Compared to TAVR, severe AS produced higher systolic transvalvular pressure gradients (45-70 mmHg vs. 10-25 mmHg) and lower aortic-sinus gradients, particularly at elevated heart rates (HR). Diastolic CBF was elevated at normal HR but declined with increasing HR, resulting in increased pulsatility and reduced coronary flow reserve. CFD revealed larger regions of atheroprone WSS in AS, predominantly on convex arterial curvatures, while elevated WSS localized to concave regions. TAVR reduced adverse WSS exposure by 30-50%.
Conclusion:
AS induces hemodynamic disturbances associated with atheroprone environments through altered coronary flow and adverse WSS patterns. TAVR mitigates these effects, highlighting opportunities for valve design optimization to improve the local coronary fluid-dynamic environment.
Related Concept Videos
Mitral Stenosis I: Introduction
Aortic Regurgitation II: Clinical Features and Diagnostic Tests
Aortic Regurgitation I: Introduction
Aortic Regurgitation III: Medical Management
Pathophysiology of Cardiac Performance
Heart Failure II: Pathophysiology

