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Fractional Flow Reserve and Instantaneous Wave-Free Ratio Predict Pathological Wall Shear Stress in Coronary
Christopher C Y Wong1, Ashkan Javadzadegan1,2, Cuneyt Ada1
1Department of Cardiology Concord HospitalUniversity of Sydney Australia.
Insights
Fractional flow reserve and instantaneous wave-free ratio predict low wall shear stress in coronary arteries, independent of microcirculatory resistance. This finding clarifies the role of coronary physiology in atherosclerotic plaque vulnerability.
Area of Science:
- Cardiovascular Medicine
- Biomedical Engineering
- Interventional Cardiology
Background:
- The mechanisms linking coronary artery stenosis and microcirculatory dysfunction to adverse outcomes are not fully understood.
- Wall shear stress (WSS) is crucial in atherosclerotic plaque development and rupture.
- Investigating the interplay between epicardial stenosis, microcirculation, and WSS is vital.
Purpose of the Study:
- To determine the relationship between WSS, functionally significant epicardial coronary stenoses, and microcirculatory dysfunction.
- To assess if invasive coronary physiology indices predict WSS parameters in stenotic lesions.
- To clarify the role of microcirculatory resistance in modulating WSS.
Main Methods:
- Inclusion of patients undergoing invasive coronary physiology testing (FFR, iFR, IMR).
- Quantitative coronary angiography for stenosis assessment and computational fluid dynamics for WSS calculation.
- Multiple regression analysis to identify independent predictors of WSS parameters.
Main Results:
- Fractional flow reserve (FFR) and instantaneous wave-free ratio (iFR) independently predicted low WSS and maximum lesion WSS.
- These correlations remained significant after adjusting for stenosis severity and microcirculatory resistance.
- Index of microcirculatory resistance (IMR) did not show a predictive relationship with either low or high WSS.
Conclusions:
- FFR and iFR are independent predictors of the total burden of low WSS and maximum lesion WSS in coronary arteries.
- Microcirculatory dysfunction, as assessed by IMR, is not directly related to WSS in this cohort.
- These findings highlight the importance of coronary flow dynamics in plaque vulnerability assessment.
Abstract:
Background The pathophysiological mechanism behind adverse outcomes associated with ischemia-inducing epicardial coronary stenoses and microcirculatory dysfunction remains unclear. Wall shear stress (WSS) plays an important role in atherosclerotic plaque progression and vulnerability. We aimed to evaluate the relationship between WSS, functionally significant epicardial coronary stenoses, and microcirculatory dysfunction. Methods and Results Patients undergoing invasive coronary physiology testing were included. Fractional flow reserve, instantaneous wave-free ratio, and the index of microcirculatory resistance were measured. Quantitative coronary angiography was used to obtain the lesion percentage diameter stenosis. Computational fluid dynamics analysis was performed to calculate WSS parameters. Multiple regression analysis was performed to calculate the standardized regression coefficient (β) for the coronary physiology indices. A total of 107 vessels from 88 patients were included. Fractional flow reserve independently predicted the total area of low WSS (β=-0.44; 95% CI, -0.62 to -0.25; P<0.001) and maximum lesion WSS (β=-0.53; 95% CI, -0.70 to -0.36; P<0.001) after adjusting for percentage diameter stenosis and index of microcirculatory resistance. Similarly, instantaneous wave-free ratio also independently predicted the total area of low WSS (β=-0.45; 95% CI, -0.62 to -0.28; P<0.001) and maximum lesion WSS (β=-0.58; 95% CI, -0.73 to -0.43; P<0.001). The index of microcirculatory resistance did not predict either low or high WSS. Conclusions Fractional flow reserve and instantaneous wave-free ratio independently predicted the total burden of low WSS and maximum lesion WSS in coronary arteries. No relationship was found between microcirculatory dysfunction and WSS.
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