Title :
Analysis of shear wave propagation derived from MR elastography in 3D thigh skeletal muscle using subject specific finite element model
Author :
Tien Tuan Dao ; Pouletaut, Philippe ; Charleux, Fabrice ; Tho, Marie-Christine Ho Ba ; Bensamoun, Sabine
Author_Institution :
Biomech. & Bioeng., Univ. of Technol. of Compiegne, Compiegne, France
Abstract :
The purpose of this study was to develop a subject specific finite element model derived from MRI images to numerically analyze the MRE (magnetic resonance elastography) shear wave propagation within skeletal thigh muscles. A sagittal T2 CUBE MRI sequence was performed on the 20-cm thigh segment of a healthy male subject. Skin, adipose tissue, femoral bone and 11 muscles were manually segmented in order to have 3D smoothed solid and meshed models. These tissues were modeled with different constitutive laws. A transient modal dynamics analysis was applied to simulate the shear wave propagation within the thigh tissues. The effects of MRE experimental parameters (frequency, force) and the muscle material properties (shear modulus: C10) were analyzed through the simulated shear wave displacement within the vastus medialis muscle. The results showed a plausible range of frequencies (from 90Hz to 120 Hz), which could be used for MRE muscle protocol. The wave amplitude increased with the level of the force, revealing the importance of the boundary condition. Moreover, different shear displacement patterns were obtained as a function of the muscle mechanical properties. The present study is the first to analyze the shear wave propagation in skeletal muscles using a 3D subject specific finite element model. This study could be of great value to assist the experimenters in the set-up of MRE protocols.
Keywords :
biomedical MRI; bone; elastic waves; finite element analysis; image sequences; medical image processing; muscle; skin; 3D subject specific finite element model; 3D thigh skeletal muscle; MR elastography; MRE muscle protocol; MRI images; adipose tissue; femoral bone; frequency 90 Hz to 120 Hz; magnetic resonance elastography; muscle mechanical property; sagittal T2 CUBE MRI sequence; shear displacement pattern; shear wave displacement; shear wave propagation analysis; skeletal thigh muscles; skin; transient modal dynamics analysis; vastus medialis muscle; wave amplitude; Biological system modeling; Biomechanics; Finite element analysis; Muscles; Numerical models; Thigh;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
DOI :
10.1109/EMBC.2014.6944507