An in silico framework to analyze the anisotropic shear wave mechanics in cardiac shear wave elastography

被引:20
作者
Caenen, Annette [1 ]
Pernot, Mathieu [2 ]
Peirlinck, Mathias [1 ]
Mertens, Luc [4 ]
Swillens, Abigail [1 ,3 ]
Segers, Patrick [1 ]
机构
[1] Univ Ghent, IBiTech bioMMeda, Ghent, Belgium
[2] Ecole Super Phys & Chim Ind Ville Paris, CNRS, INSERM, Inst Langevin,UMR 7587,U979, Paris, France
[3] Barco Healthcare, Kortrijk, Belgium
[4] Univ Toronto, Hosp Sick Children, Toronto, ON, Canada
关键词
shear wave elastography; heart; finite element method; anisotropy; group velocity analysis; phase velocity analysis; ACOUSTIC-RADIATION-FORCE; FINITE-ELEMENT-METHOD; HUMAN LEFT-VENTRICLE; PASSIVE MYOCARDIUM; ELASTIC PROPERTIES; WFUMB GUIDELINES; CLINICAL-USE; MODEL; TISSUE; HEART;
D O I
10.1088/1361-6560/aaaffe
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Shear wave elastography (SWE) is a potential tool to non-invasively assess cardiac muscle stiffness. This study focused on the effect of the orthotropic material properties and mechanical loading on the performance of cardiac SWE, as it is known that these factors contribute to complex 3D anisotropic shear wave propagation. To investigate the specific impact of these complexities, we constructed a finite element model with an orthotropic material law subjected to different uniaxial stretches to simulate SWE in the stressed cardiac wall. Group and phase speed were analyzed in function of tissue thickness and virtual probe rotation angle. Tissue stretching increased the group and phase speed of the simulated shear wave, especially in the direction of the muscle fiber. As the model provided access to the true fiber orientation and material properties, we assessed the accuracy of two fiber orientation extraction methods based on SWE. We found a higher accuracy (but lower robustness) when extracting fiber orientations based on the location of maximal shear wave speed instead of the angle of the major axis of the ellipsoidal group speed surface. Both methods had a comparable performance for the center region of the cardiac wall, and performed less well towards the edges. Lastly, we also assessed the (theoretical) impact of pathology on shear wave physics and characterization in the model. It was found that SWE was able to detect changes in fiber orientation and material characteristics, potentially associated with cardiac pathologies such as myocardial fibrosis. Furthermore, the model showed clearly altered shear wave patterns for the fibrotic myocardium compared to the healthy myocardium, which forms an initial but promising outcome of this modeling study.
引用
收藏
页数:17
相关论文
共 53 条
  • [1] WFUMB GUIDELINES AND RECOMMENDATIONS FOR CLINICAL USE OF ULTRASOUND ELASTOGRAPHY: PART 2: BREAST
    Barr, Richard G.
    Nakashima, Kazutaka
    Amy, Dominique
    Cosgrove, David
    Farrokh, Andre
    Schafer, Fritz
    Bamber, Jeffrey C.
    Castera, Laurent
    Choi, Byung Ihn
    Chou, Yi-Hong
    Dietrich, Christoph F.
    Ding, Hong
    Ferraioli, Giovanna
    Filice, Carlo
    Friedrich-Rust, Mireen
    Hall, Timothy J.
    Nightingale, Kathryn R.
    Palmeri, Mark L.
    Shiina, Tsuyoshi
    Suzuki, Shinichi
    Sporea, Ioan
    Wilson, Stephanie
    Kudo, Masatoshi
    [J]. ULTRASOUND IN MEDICINE AND BIOLOGY, 2015, 41 (05) : 1148 - 1160
  • [2] BECKER AE, 1982, BRIT HEART J, V47, P527
  • [3] The role of viscosity in the impulse diffraction field of elastic waves induced by the acoustic radiation force
    Bercoff, J
    Tanter, M
    Muller, M
    Fink, M
    [J]. IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2004, 51 (11) : 1523 - 1536
  • [4] In Vivo Cardiac, Acoustic-Radiation-Force-Driven, Shear Wave Velocimetry
    Bouchard, Richard R.
    Hsu, Stephen J.
    Wolf, Patrick D.
    Trahey, Gregg E.
    [J]. ULTRASONIC IMAGING, 2009, 31 (03) : 201 - 213
  • [5] Caenen A, 2017, IEEE INT ULTR S IUS, P1
  • [6] Effect of Ultrafast Imaging on Shear Wave Visualization and Characterization: An Experimental and Computational Study in a Pediatric Ventricular Model
    Caenen, Annette
    Pernot, Mathieu
    Ekroll, Ingvild Kinn
    Shcherbakova, Darya
    Mertens, Luc
    Swillens, Abigail
    Segers, Patrick
    [J]. APPLIED SCIENCES-BASEL, 2017, 7 (08):
  • [7] Investigating Shear Wave Physics in a Generic Pediatric Left Ventricular Model via In Vitro Experiments and Finite Element Simulations
    Caenen, Annette
    Pernot, Mathieu
    Shcherbakova, Darya Alexandrovna
    Mertens, Luc
    Kersemans, Mathias
    Segers, Patrick
    Swillens, Abigail
    [J]. IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2017, 64 (02) : 349 - 361
  • [8] An orthotropic viscoelastic material model for passive myocardium: theory and algorithmic treatment
    Cansiz, F. Baris Can
    Dal, Huesnue
    Kaliske, Michael
    [J]. COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2015, 18 (11) : 1160 - 1172
  • [9] THE DISTRIBUTION OF FIBROSIS IN THE LEFT-VENTRICLE IN CONGENITAL AORTIC-STENOSIS AND COARCTATION OF THE AORTA
    CHEITLIN, MD
    ROBINOWITZ, M
    MCALLISTER, H
    HOFFMAN, JIE
    BHARATI, S
    LEV, M
    [J]. CIRCULATION, 1980, 62 (04) : 823 - 830
  • [10] Ultrafast Harmonic Coherent Compound (UHCC) Imaging for High Frame Rate Echocardiography and Shear-Wave Elastography
    Correia, Mafalda
    Provost, Jean
    Chatelin, Simon
    Villemain, Olivier
    Tanter, Mickael
    Pernot, Mathieu
    [J]. IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2016, 63 (03) : 420 - 431