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Author Spotlight: Enhancing Coronary Artery Revascularization
Published on: September 15, 2023
The Hemodynamic Mechanism of FFR-Guided Coronary Artery Bypass Grafting
Bao Li1, Boyan Mao1,2, Yue Feng1,3
1College of Life Science and Bio-Engineering, Beijing University of Technology, Beijing, China.
Insights
Fractional flow reserve (FFR)-guided coronary artery bypass grafting (CABG) is clinically effective. Hemodynamic analysis reveals that high FFR stenosis can lead to graft issues, potentially causing anastomotic blockage and graft failure.
Area of Science:
- Cardiovascular Surgery
- Biomedical Engineering
- Medical Imaging
Background:
- Coronary artery bypass grafting (CABG) is a common treatment for coronary artery disease.
- Fractional flow reserve (FFR) is a valuable metric for assessing the functional significance of coronary stenoses.
- The hemodynamic mechanisms underlying FFR-guided CABG outcomes require further elucidation.
Purpose of the Study:
- To investigate the hemodynamic mechanisms of FFR-guided CABG using a multiscaled computational model.
- To evaluate the accuracy of a novel 0-3D coupled multiscaled model for FFR calculation.
- To analyze graft flow, wall shear stress (WSS), and oscillatory shear index (OSI) after virtual CABG.
Main Methods:
- Constructed a 0-3D coupled multiscaled computational model based on clinical data from two patients with 70% coronary stenosis and varying FFR values.
- Validated the model's accuracy by comparing calculated FFR with clinical measurements.
- Performed virtual CABG surgery on the models to simulate graft performance and hemodynamic parameters.
Main Results:
- The computational model accurately predicted FFR values (0.67 and 0.91) compared to clinical results (0.7 and 0.95).
- Patient 1 (FFR=0.7) showed a stenosis-to-graft flow ratio of 0.12, while Patient 2 (FFR=0.95) had a ratio of 0.42.
- Patient 2's graft exhibited a significantly higher OSI (0.1264) at the anastomosis, indicating potential for adverse outcomes.
Conclusions:
- FFR values are critical considerations for successful CABG surgery.
- Grafting stenoses with high FFR values can induce unfavorable hemodynamic conditions, including high OSI at the anastomosis.
- These hemodynamic changes may predispose grafts to long-term complications such as anastomotic blockage and failure.
Abstract:
Clinically, fractional flow reserve (FFR)-guided coronary artery bypass grafting (CABG) is more effective than CABG guided by coronary angiography alone. However, no scholars have explained the mechanism from the perspective of hemodynamics. Two patients were clinically selected; their angiography showed 70% coronary stenosis, and the FFRs were 0.7 (patient 1) and 0.95 (patient 2). The FFR non-invasive computational model of the two patients was constructed by a 0-3D coupled multiscaled model, in order to verify that the model can accurately calculate the FFR results. Virtual bypass surgery was performed on these two stenoses, and a CABG multiscaled model was constructed. The flow rate of the graft and the stenosis coronary artery, as well as the wall shear stress (WSS) and the oscillatory shear index (OSI) in the graft were calculated. The non-invasive calculation results of FFR are 0.67 and 0.91, which are close to the clinical results, which proves that our model is accurate. According to the CABG model, the flow ratios of the stenosis coronary artery to the graft of patient 1 and patient 2 were 0.12 and 0.42, respectively. The time-average wall shear stress (TAWSS) results of patient 1 and patient 2 grafts were 2.09 and 2.16 Pa, respectively, and WSS showed uniform distribution on the grafts. The OSI results of patients 1 and 2 grafts were 0.0375 and 0.1264, respectively, and a significantly high OSI region appeared at the anastomosis of patient 2. The FFR value of the stenosis should be considered when performing bypass surgery. When the stenosis of high FFR values is grafted, a high OSI region is created at the graft, especially at the anastomosis. In the long term, this can cause anastomotic blockage and graft failure.
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