Flow Dynamics in Anomalous Aortic Origin of a Coronary Artery in Children: Importance of the Intramural Segment
Hoda Hatoum1, Rajesh Krishnamurthy2, Jayanthi Parthasarathy3
1Department of Biomedical Engineering, Georgia Institute of Technology, Atlanta, Georgia.
Insights
Anomalous aortic origin of a coronary artery can cause significant pressure drops and reduced coronary flow, leading to ischemia. Surgical repair improves these biomechanical factors, potentially preventing sudden cardiac death.
Area of Science:
- Cardiovascular Medicine
- Biomedical Engineering
- Medical Imaging
Background:
- Anomalous aortic origin of a coronary artery (AAOCA) is a congenital condition that can lead to myocardial ischemia.
- The intramural course of anomalous coronary arteries is a key factor in the development of ischemic events.
- Understanding the biomechanical consequences of AAOCA is crucial for effective treatment strategies.
Purpose of the Study:
- To assess pressure, fractional flow reserve (FFR), and coronary flow dynamics in patients with AAOCA.
- To compare these parameters in patients with and without ischemic events, and before and after surgical repair.
- To evaluate the differences compared to individuals with normal coronary arteries.
Main Methods:
- Patient-specific 3D flow models of anomalous right coronary arteries were created.
- Models were tested in a pulse duplicator system to quantify FFR and coronary flow rate.
- Measurements were taken at various points along the anomalous coronary artery course.
Main Results:
- Ischemic AAOCA models showed a significant drop in FFR (to 0.48) in the intramural segment.
- Non-ischemic and normal coronary artery models maintained FFR above 0.9.
- Surgical repair of ischemic AAOCA improved FFR from 0.44 to 0.86 and altered coronary flow dynamics.
Conclusions:
- A biomechanical basis for ischemia in AAOCA is supported by pressure and FFR drops in the intramural segment.
- Reduced coronary flow rate with increasing aortic pressure in ischemic AAOCA models was observed.
- Surgical unroofing surgery improves hemodynamic parameters, potentially reducing the risk of ischemia and sudden cardiac death.
Abstract:
This study aims to assess the differences in pressure, fractional flow reserve (FFR) and coronary flow (with increasing pressure) of the proximal coronary artery in patients with anomalous aortic origin of a coronary artery with a confirmed ischemic event, without ischemic events, and before and after unroofing surgery, and compare to a patient with normal coronary arteries. Patient-specific flow models were 3D printed for 3 subjects with anomalous right coronary arteries with intramural course, 2 of them had documented ischemia, and compared with a patient with normal coronaries. The models were placed in the aortic position of a pulse duplicator and precise measurements to quantify FFR and coronary flow rate were performed from the aortic to the mediastinal segment of the anomalous right coronary artery. In an ischemic model, a gradual FFR drop (emulating that of pressure) was shown from the ostium location (∼1.0) to the distal intramural course (0.48). In nonischemic and normal patient models, FFR for all locations did not drop below 0.9. In a second ischemic model prior to repair, a drop to 0.44 was encountered at the intramural and mediastinal intersection, improving to 0.86 postrepair. There is a difference in instantaneous coronary flow rate with increasing aortic pressure in the ischemic models (slope 0.2846), compared to the postrepair and normal models (slope >0.53). These observations on patient models support a biomechanical basis for ischemia and potentially sudden cardiac death in aortic origin of a coronary artery, with a drop in pressure and FFR in the intramural segment, and a decrease in coronary flow rate with increasing aortic pressure, with both improving after corrective surgery.
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