Title :
Dynamic micro-elastography applied to the viscoelastic characterization of a mimicking artery and a porcine aorta
Author :
Schmitt, Cédric ; Henni, Anis Hadj ; Cloutier, Guy
Author_Institution :
Lab. of Biorheology & Med. Ultrasonics, Univ. of Montreal Hosp. Res. Center (CRCHUM), Montreal, QC
Abstract :
Because early signs of most cardiovascular diseases involve hardening of arteries, the development of non-invasive methods to provide in vivo assessment of mechanical properties of vessel walls could be of great importance in clinical practice. Most important limitations of methods proposed so far are the investigation of only the mean longitudinal wall elasticity parameters along a vessel segment in a restricted frequency range below 500 Hz. We propose to adapt the dynamic microelastography method to study the radial viscoelasticity of thin-walled cylindrical geometry phantoms. The technique firstly implies the generation of a low frequency (300-600 Hz) plane transient shear wave in the vascular phantom and the tracking of this wave with an ultrasound biomicroscope (Vevo 770, Visualsonics) providing in post-processing a very high frame rate (16000 images per second). An inverse problem was formulated as a least-square minimization between analytical simulations and experimental measurements to retrieve storage (G\´) and loss (G") moduli as functions of the shearing frequency. Result on a 3-mm wall mimicking artery permitted to validate the feasibility and the reliability of the inverse problem formulation. Then, G\´ and G" of a porcine aorta showed that both parameters are strongly dependant on frequency increasing, allowing to assume that such a biological tissue is mechanically governed by complex viscoelastic laws.
Keywords :
acoustic microscopy; biomechanics; biomedical ultrasonics; blood vessels; cardiovascular system; diseases; elastic moduli; inverse problems; least squares approximations; medical image processing; phantoms; viscoelasticity; cardiovascular diseases; dynamic microelastography method; frequency 300 Hz to 600 Hz; image post-processing; in vivo assessment; inverse problem; least-square minimization; longitudinal wall elasticity parameters; loss moduli; mimicking artery; noninvasive method; plane transient shear wave; porcine aorta; radial viscoelastic characterization; size 3 mm; storage moduli; thin-walled cylindrical geometry phantoms; ultrasound biomicroscope; vascular phantom; vessel segment; vessel walls; Arteries; Cardiovascular diseases; Elasticity; Frequency; Imaging phantoms; In vivo; Inverse problems; Mechanical factors; Thin wall structures; Viscosity; aorta viscoelastic characterization; hypertension; micro dynamic vascular elastography; ultrasound imaging; vascular phantoms; viscoelasticity imaging;
Conference_Titel :
Ultrasonics Symposium, 2008. IUS 2008. IEEE
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-2428-3
Electronic_ISBN :
978-1-4244-2480-1
DOI :
10.1109/ULTSYM.2008.0154