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Evaluating the severity of tandem coronary stenoses: Insights from simulated FFR and iFR techniques
Navid Freidoonimehr1, Tam Atkins2, Jessica A Marathe3
1School of Mechanical, Medical and Process Engineering, Queensland University of Technology, Queensland 4000, Australia; Centre for Biomedical Technologies, Queensland University of Technology, Brisbane, QLD 4000, Australia; School of Electrical and Mechanical Engineering, The University of Adelaide, South Australia 5005, Australia.
Insights
Understanding coronary tandem lesions is crucial for heart disease management. This study reveals how lesion location and severity impact hemodynamic assessments like FFR and iFR, improving diagnostic accuracy.
Area of Science:
- Cardiovascular Medicine
- Biomedical Engineering
- Interventional Cardiology
Background:
- Coronary tandem lesions present diagnostic challenges in coronary artery disease.
- Accurate assessment of lesion significance is vital for effective treatment strategies.
Purpose of the Study:
- To investigate hemodynamic interactions between tandem coronary stenoses.
- To evaluate the impact of lesion configuration on FFR and iFR diagnostic parameters.
Main Methods:
- Utilized a computational fluid dynamics (CFD) model.
- Validated the CFD model against in vitro experimental data.
- Simulated various combinations of moderate and severe stenoses in tandem configurations.
Main Results:
- Rest-based parameters (iFR) show shorter recovery distances than hyperaemic-based parameters (FFR).
- Pressure drops downstream of stenoses can overestimate their physiological significance.
- A distal moderate stenosis following a severe stenosis accelerates FFR recovery.
Conclusions:
- Findings clarify the diagnostic nuances of FFR and iFR in tandem lesions.
- Improved understanding aids in tailoring therapeutic approaches for coronary artery disease management.
Abstract:
The presence of coronary tandem lesions poses a significant challenge for the accurate diagnosis and management of coronary artery diseases. This study set out to provide a deeper understanding of the haemodynamic interactions between tandem obstructive coronary lesions and their impact on different haemodynamic diagnostic parameters. Using a computational fluid dynamic model, validated against in vitro laboratory experiments, we investigated the various combinations of moderate and severe stenoses interchangeably located in the proximal and distal segments of the artery. The investigation was conducted using two diagnostic parameters: one hyperaemic-based, i.e., FFR, and one rest-based, i.e., iFR, technique, both of which are commonly used to assess the physiological significance of coronary stenoses. The three main findings of this work are: (a) the recovery distance (the immediate local distance affected by the presence of stenosis) is much shorter for the rest-measured diagnostic parameter compared with the hyperaemic-measured diagnostic parameter; (b) pressure drop measurements immediately downstream of the stenotic sections overestimate the significance of stenoses, and (c) the presence of a moderate stenosis downstream of a severe stenosis increases FFR value (faster FFR recovery). These findings enhance our understanding of the diagnostic accuracy of hyperaemic-based and rest-based physiological diagnostic coronary assessments and the nuances of using these different techniques when assessing tandem coronary stenoses. This understanding can help inform tailored therapeutic approaches for the management of coronary artery disease.
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