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Evaluation of Coronary Flow Reserve After Myocardial Ischemia Reperfusion in Rats
Published on: June 28, 2019
Diagnostic cutoff for pressure drop coefficient in relation to fractional flow reserve and coronary flow reserve: A
Kranthi K Kolli1,2, Tim P van de Hoef3, Mohamed A Effat2,4
1Department of Mechanical and Materials Engineering, University of Cincinnati, Cincinnati, Ohio.
Insights
Coronary pressure drop (CDP) effectively assesses coronary stenosis severity, showing strong agreement with fractional flow reserve (FFR). This new index, derived from pressure and flow, offers improved functional assessment during cardiac catheterization.
Area of Science:
- Cardiovascular physiology
- Medical diagnostics
- Fluid dynamics
Background:
- Intermediate coronary stenosis assessment relies on parameters like FFR, CFR, HSR, and HMR.
- Current methods may be enhanced by novel indices derived from fluid dynamics.
Purpose of the Study:
- To evaluate Coronary Pressure Drop (CDP) as a functional parameter for assessing coronary stenosis severity.
- To compare CDP with established parameters like FFR, CFR, HSR, and HMR.
Main Methods:
- Analysis of 350 patient-level intracoronary pressure and flow measurements.
- Calculation of CDP using the formula (ΔP)/(0.5 × ρ × APV(2)).
- Correlation analysis and ROC curve evaluation against FFR and HSR.
Main Results:
- CDP showed significant correlation with FFR (r=0.81) and HSR (r=0.98).
- CDP demonstrated high diagnostic efficiency (ROC AUC 86%) for detecting FFR < 0.80.
- Optimal CDP cut-off for FFR < 0.80 was identified as >25.4.
Conclusions:
- CDP, integrating pressure and flow, closely agrees with FFR for stenosis severity assessment.
- CDP presents a promising new tool for functional evaluation during cardiac catheterization.
Objectives And Background:
Functional assessment of intermediate coronary stenosis during cardiac catheterization is conducted using diagnostic parameters like fractional flow reserve (FFR), coronary flow reserve (CFR), hyperemic stenosis resistance index (HSR), and hyperemic microvascular resistance (HMR). CDP (ratio of pressure drop across a stenosis to distal dynamic pressure), a nondimensional index derived from fundamental fluid dynamic principles, based on a combination of intracoronary pressure, and flow measurements may improve the functional assessment of coronary lesion severity.
Methods:
Patient-level data pertaining to 350 intracoronary pressure and flow measurements across coronary stenoses was assessed to evaluate CFR, FFR, HSR, HMR, and CDP. CDP was calculated as (ΔP)/(0.5 × ρ × APV(2)). The density of blood (ρ) was assumed to be 1.05 g/cm(3). The correlation of current diagnostic parameters (CFR, FFR, HSR, and HMR) with CDP was evaluated. The receiver operating characteristic (ROC) curve was used to identify the optimal cut-off point of CDP, corresponding to the clinically used cut-off values (FFR = 0.80 and CFR = 2.0).
Results:
CDP correlated significantly with FFR (r = 0.81, P < 0.05) and had significant diagnostic efficiency (ROC-area under curve of 86%), specificity (72%) and sensitivity (85%) at FFR < 0.8. The corresponding cut-off value for CDP to detect FFR < 0.8 was at CDP>25.4. CDP also correlated significantly (r = 0.98, P < 0.05) with epicardial-specific parameter, HSR.
Conclusions:
CDP, a functional parameter based on both intracoronary pressure and flow measurements, has close agreement (area under ROC curve = 86%) with FFR, the frequently used method of evaluating stenosis severity.
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