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Published on: June 28, 2019
Impairment of coronary flow reserve in aortic stenosis
Damien Garcia1, Paolo G Camici, Louis-Gilles Durand
1Dept. of Radiology, University of Montreal Hospital, Montreal, Quebec H2L 2W5, Canada. Damien.Garcia@crchum.qc.ca
Insights
Severe aortic valve stenosis significantly impairs coronary flow reserve (CFR) by reducing blood supply and increasing heart workload. The effective orifice area of the valve is the primary factor affecting CFR in these patients.
Area of Science:
- Cardiovascular Physiology
- Biomedical Engineering
- Mathematical Modeling
Background:
- Coronary flow reserve (CFR) is critically reduced in patients with severe aortic valve stenosis (AS).
- The precise mechanisms behind CFR impairment in AS are not fully understood.
- Reduced CFR is linked to myocardial ischemia symptoms and adverse outcomes in AS patients.
Purpose of the Study:
- To develop a mathematical model detailing AS effects on coronary inflow and CFR.
- To identify key physiological determinants of CFR reduction in AS.
Main Methods:
- Combined the V(3) (ventricular-valvular-vascular) model with a lumped-parameter coronary inflow model.
- Performed 1000 Monte-Carlo simulations across a spectrum of AS severity and physiological conditions.
- Validated model-computed CFR against patient data (r = 0.77).
Main Results:
- The effective orifice area (EOA) was identified as the major determinant of CFR (total sensitivity index = 0.87).
- CFR significantly decreased with severe AS (EOA < 1.0 cm(2)) and was severely limited (EOA < 0.5-0.6 cm(2)).
- AS-related CFR reduction results from decreased coronary perfusion pressure and increased left ventricular workload.
Conclusions:
- The developed model accurately reflects CFR impairment in AS.
- Reduced myocardial supply and increased demand explain AS-induced CFR reduction.
- EOA is a critical factor in assessing CFR in AS patients.
Abstract:
Coronary flow reserve (CFR) is markedly reduced in patients with severe aortic valve stenosis (AS), but the exact mechanisms underlying this impairment of CFR in AS remain unclear. Reduced CFR is the key mechanism leading to myocardial ischemia symptoms and adverse outcomes in AS patients. The objective of this study was to develop an explicit mathematical model formulated with a limited number of parameters that describes the effect of AS on left coronary inflow patterns and CFR. We combined the mathematical V(3) (ventricular-valvular-vascular) model with a new lumped-parameter model of coronary inflow. One thousand Monte-Carlo computational simulations with AS graded from mild up to very severe were performed within a wide range of physiological conditions. There was a good agreement between the CFR values computed with this new model and those measured in 24 patients with isolated AS (r = 0.77, P < 10(-4)). A global sensitivity analysis showed that the valve effective orifice area (EOA) was the major physiological determinant of CFR (total sensitivity index = 0.87). CFR was markedly reduced when AS became severe, i.e., when EOA was <1.0 cm(2), and was generally exhausted when the EOA was <0.5-0.6 cm(2). The reduction of CFR that is associated with AS can be explained by the concomitance of 1) reduced myocardial supply as a result of decreased coronary perfusion pressure, and 2) increased myocardial metabolic demand as a result of increased left ventricular workload.
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