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.

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