Aortic Expansion Induces Lumen Narrowing in Anomalous Coronary Arteries: A Parametric Structural Finite Element

Giovanni Maria Formato1, Mauro Lo Rito2, Ferdinando Auricchio3

  • 1Department of Civil Engineering andArchitecture (DICAr),University of Pavia,Pavia 27100, Italye-mail: giovannimaria.formato01@universitadipavia.it.

Insights

Anomalous aortic origin of coronary arteries (AAOCA) can cause sudden cardiac death. This study reveals how geometric features of AAOCA lead to coronary narrowing during aortic expansion, clarifying the biomechanical mechanisms.

Area of Science:

  • Cardiovascular Research
  • Biomechanical Engineering
  • Congenital Heart Disease

Background:

  • Anomalous aortic origin of coronary arteries (AAOCA) is a congenital heart defect linked to sudden cardiac death in young individuals.
  • The precise mechanisms causing coronary occlusion during physical exertion in AAOCA remain unclear.

Purpose of the Study:

  • To investigate the relationship between the geometric characteristics of AAOCA and coronary lumen narrowing.
  • To elucidate the biomechanical factors contributing to coronary occlusion during aortic root dilation.

Main Methods:

  • Creation of idealized parametric computer-aided design (CAD) models of aortic roots with normal and anomalous coronary origins.
  • Performance of static finite element (FE) simulations under increasing aortic root expansion.
  • Evaluation of various coronary take-off angles and intramural penetrations to assess their impact on lumen narrowing.

Main Results:

  • Normal coronary arteries showed lumen expansion with increased pressure, unlike anomalous coronaries, which exhibited impaired expansion, particularly at the ostium.
  • Acute coronary take-off angles resulted in elongated and eccentric coronary ostia that worsened with aortic expansion.
  • Coronary intramural penetration had a limited effect on lumen narrowing.

Conclusions:

  • This study provides biomechanical evidence for coronary lumen narrowing in AAOCA during aortic expansion.
  • Computational simulations are valuable tools for understanding the mechanisms of AAOCA pathology.

Keywords:
Biomechanics

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