Title :
Vulnerable Atherosclerotic Plaque Elasticity Reconstruction Based on a Segmentation-Driven Optimization Procedure Using Strain Measurements: Theoretical Framework
Author :
Le Floc, Simon ; Ohayon, Jacques ; Tracqui, Philippe ; Finet, Gérard ; Gharib, Ahmed M. ; Maurice, Roch L. ; Cloutier, Guy ; Pettigrew, Roderic I.
Author_Institution :
Lab. TIMC, CNRS, Grenoble
fDate :
7/1/2009 12:00:00 AM
Abstract :
It is now recognized that prediction of the vulnerable coronary plaque rupture requires not only an accurate quantification of fibrous cap thickness and necrotic core morphology but also a precise knowledge of the mechanical properties of plaque components. Indeed, such knowledge would allow a precise evaluation of the peak cap-stress amplitude, which is known to be a good biomechanical predictor of plaque rupture. Several studies have been performed to reconstruct a Young´s modulus map from strain elastograms. It seems that the main issue for improving such methods does not rely on the optimization algorithm itself, but rather on preconditioning requiring the best estimation of the plaque components´ contours. The present theoretical study was therefore designed to develop: (1) a preconditioning model to extract the plaque morphology in order to initiate the optimization process, and (2) an approach combining a dynamic segmentation method with an optimization procedure to highlight the modulogram of the atherosclerotic plaque. This methodology, based on the continuum mechanics theory prescribing the strain field, was successfully applied to seven intravascular ultrasound coronary lesion morphologies. The reconstructed cap thickness, necrotic core area, calcium area, and the Young´s moduli of the calcium, necrotic core, and fibrosis were obtained with mean relative errors of 12%, 4% and 1%, 43%, 32%, and 2%, respectively.
Keywords :
Young´s modulus; biomechanics; biomedical ultrasonics; blood vessels; cardiovascular system; diseases; elasticity; image reconstruction; image segmentation; medical image processing; optimisation; strain measurement; wounds; Young modulus map; atherosclerotic plaque elasticity reconstruction; biomechanical predictor; coronary lesion morphology; coronary plaque rupture; dynamic segmentation method; fibrous cap thickness; intravascular ultrasound image; modulogram; necrotic core area; segmentation-driven optimization procedure; strain elastogram; strain measurement; Calcium; Capacitive sensors; Design optimization; Elasticity; Lesions; Mechanical factors; Morphology; Optimization methods; Strain measurement; Ultrasonic imaging; Coronary arteries; elastography; inverse problem; linear elasticity; modulography; vulnerable plaques; Algorithms; Artifacts; Computer Simulation; Coronary Artery Disease; Coronary Vessels; Elastic Modulus; Elasticity Imaging Techniques; Fibrosis; Finite Element Analysis; Humans; Image Interpretation, Computer-Assisted; Models, Cardiovascular; Necrosis; Ultrasonography, Interventional;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2009.2012852