Title :
Noninvasive vascular elastography: theoretical framework
Author :
Maurice, Roch L. ; Ohayon, Jacques ; Frétigny, Yves ; Bertrand, Michel ; Soulez, Gilles ; Cloutier, Guy
Author_Institution :
Lab. of Biorheology & Med. Ultrasonics, Univ. of Montreal Hosp., Que., Canada
Abstract :
Changes in vessel wall elasticity may be indicative of vessel pathologies. It is known, for example, that the presence of plaque stiffens the vascular wall, and that the heterogeneity of its composition may lead to plaque rupture and thrombosis. Another domain of application where ultrasound elastography may be of interest is the study of vascular wall elasticity to predict the risk of aneurysmal tissue rupture. In this paper, this technology is introduced as an approach to noninvasively characterize superficial arteries. In such a case, a linear array ultrasound transducer is applied on the skin over the region of interest, and the arterial tissue is dilated by the normal cardiac pulsation. The elastograms, the equivalent elasticity images, are computed from the assessment of the vascular tissue motion. Investigating the forward problem, it is shown that motion parameters might be difficult to interpret; that is because tissue motion occurs radially within the vessel wall while the ultrasound beam propagates axially. As a consequence of that, the elastograms are subjected to hardening and softening artefacts, which are to be counteracted. In this paper, the Von Mises (VM) coefficient is proposed as a new parameter to circumvent such mechanical artefacts and to appropriately characterize the vessel wall. Regarding the motion assessment, the Lagrangian estimator was used; that is because it provides the full two-dimensional strain tensor necessary to compute the VM coefficient. The theoretical model was validated with biomechanical simulations of the vascular wall properties. The results allow believing in the potential of the method to differentiate hard plaques and lipid pools from normal vascular tissue. Potential in vivo implementation of noninvasive vascular elastography to characterize abdominal aneurysms and superficial arteries such as the femoral and the carotid is discussed.
Keywords :
biomechanics; biomedical transducers; biomedical ultrasonics; blood vessels; elasticity; skin; ultrasonic transducer arrays; Lagrangian estimator; Von Mises coefficient; aneurysmal tissue rupture; arterial tissue; biomechanical simulations; carotid; elastograms; femoral; hardening artefacts; linear array ultrasound transducer; lipid pools; noninvasive vascular elastography; normal cardiac pulsation; plaque rupture; skin; softening artefacts; thrombosis; two-dimensional strain tensor; ultrasound elastography; vascular tissue motion; vessel pathologies; vessel wall elasticity; Arteries; Elasticity; Lagrangian functions; Pathology; Skin; Softening; Ultrasonic imaging; Ultrasonic transducer arrays; Ultrasonic transducers; Virtual manufacturing; Algorithms; Animals; Arteries; Computer Simulation; Elasticity; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Models, Cardiovascular; Motion; Movement; Reproducibility of Results; Sensitivity and Specificity; Stress, Mechanical; Ultrasonography;
Journal_Title :
Medical Imaging, IEEE Transactions on
DOI :
10.1109/TMI.2003.823066