Key result
Coronary artery geometry links to atherosclerotic plaque burden via altered local hemodynamics.
Why the study?
Recent research highlights the importance of coronary vasculature geometrical features on atherosclerosis complexity and vulnerability, warranting a review of available literature and potential imaging biomarkers.
Coronary arterial geometry assessed via CCTA correlates with atherosclerotic plaque burden and could serve as a non-invasive imaging biomarker (geometric risk score) for early CAD risk detection.
Geometric features on CCTA may support early CAD risk stratification; leaves open prospective validation as imaging biomarker.
Coronary artery disease (CAD) represents a modern pandemic associated with significant morbidity and mortality. The multi-faceted pathogenesis of this entity has long been investigated, highlighting the contribution of systemic factors such as hyperlipidemia and hypertension. Nevertheless, recent research has drawn attention to the importance of geometrical features of coronary vasculature on the complexity and vulnerability of coronary atherosclerosis. Various parameters have been investigated so far, including vessel-length, coronary artery volume index, cross-sectional area, curvature, and tortuosity, using primarily invasive coronary angiography (ICA) and recently non-invasive cardiac computed tomography angiography (CCTA). It is clear that there is correlation between geometrical parameters and both the haemodynamic alterations augmenting the atherosclerosis-prone environment and the extent of plaque burden. The purpose of this review is to discuss the currently available literature regarding this issue and propose a potential non-invasive imaging biomarker, the geometric risk score, which could be of importance to allow the early detection of individuals at increased risk of developing CAD.
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Rampidis et al. (2022) conducted a review in Coronary artery disease. Coronary arterial geometry parameters was evaluated. Coronary arterial geometric features, such as curvature, tortuosity, and bifurcation angles, influence local hemodynamics and are associated with the presence and extent of atherosclerotic plaque burden.
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