Real‐time MR elastography for viscoelasticity quantification in skeletal muscle during dynamic exercises
暂无分享,去创建一个
I. Sack | J. Braun | C. Warmuth | T. Elgeti | Jing Guo | H. Tzschätzsch | Felix Schrank | Y. O. Uca | Tom Meyer | Steffen Görner
[1] I. Sack,et al. Cardiac-gated steady-state multifrequency magnetic resonance elastography of the brain: Effect of cerebral arterial pulsation on brain viscoelasticity , 2020, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[2] I. Sack,et al. Brain maturation is associated with increasing tissue stiffness and decreasing tissue fluidity. , 2019, Acta biomaterialia.
[3] Prateek Kalra,et al. Magnetic resonance elastography of brain: Comparison between anisotropic and isotropic stiffness and its correlation to age , 2019, Magnetic resonance in medicine.
[4] Jürgen Braun,et al. Fast tomoelastography of the mouse brain by multifrequency single‐shot MR elastography , 2018, Magnetic resonance in medicine.
[5] M. Nash,et al. Estimation of transversely isotropic material properties from magnetic resonance elastography using the optimised virtual fields method , 2018, International journal for numerical methods in biomedical engineering.
[6] A. Nordez,et al. Shear wave sonoelastography of skeletal muscle: basic principles, biomechanical concepts, clinical applications, and future perspectives , 2017, Skeletal Radiology.
[7] Jürgen Braun,et al. Magnetic Resonance Elastography: Physical Background and Medical Applications , 2017 .
[8] P V Bayly,et al. Requirements for accurate estimation of anisotropic material parameters by magnetic resonance elastography: A computational study , 2017, Magnetic resonance in medicine.
[9] A. Amis,et al. The influence of muscle pennation angle and cross-sectional area on contact forces in the ankle joint , 2016, The Journal of strain analysis for engineering design.
[10] Jing Guo,et al. Tomoelastography by multifrequency wave number recovery from time-harmonic propagating shear waves , 2016, Medical Image Anal..
[11] Jürgen Braun,et al. Three‐parameter shear wave inversion in MR elastography of incompressible transverse isotropic media: Application to in vivo lower leg muscles , 2016, Magnetic resonance in medicine.
[12] A. Nordez,et al. Elastography for Muscle Biomechanics: Toward the Estimation of Individual Muscle Force , 2015, Exercise and sport sciences reviews.
[13] L. Bilston,et al. Measurement of Passive Skeletal Muscle Mechanical Properties In Vivo: Recent Progress, Clinical Applications, and Remaining Challenges , 2015, Annals of Biomedical Engineering.
[14] V. Paradis,et al. In vivo anisotropic mechanical properties of dystrophic skeletal muscles measured by anisotropic MR elastographic imaging: the mdx mouse model of muscular dystrophy. , 2014, Radiology.
[15] Bernd Hamm,et al. Shear-wave amplitudes measured with cardiac MR elastography for diagnosis of diastolic dysfunction. , 2014, Radiology.
[16] Sebastian Hirsch,et al. MR Elastography of the Liver and the Spleen Using a Piezoelectric Driver, Single‐Shot Wave‐Field Acquisition, and Multifrequency Dual Parameter Reconstruction , 2014, Magnetic resonance in medicine.
[17] Edwin J R van Beek,et al. Statistical mapping of the effect of knee extension on thigh muscle viscoelastic properties using magnetic resonance elastography , 2013, Physiological measurement.
[18] M. Palmeri,et al. Finite element modeling of impulsive excitation and shear wave propagation in an incompressible, transversely isotropic medium. , 2013, Journal of biomechanics.
[19] L E Bilston,et al. Measuring anisotropic muscle stiffness properties using elastography , 2013, NMR in biomedicine.
[20] Jürgen Braun,et al. Structure-sensitive elastography: on the viscoelastic powerlaw behavior of in vivo human tissue in health and disease , 2013 .
[21] Brett Byram,et al. Imaging Transverse Isotropic Properties of Muscle by Monitoring Acoustic Radiation Force Induced Shear Waves Using a 2-D Matrix Ultrasound Array , 2013, IEEE Transactions on Medical Imaging.
[22] F. Schaefer,et al. EFSUMB Guidelines and Recommendations on the Clinical Use of Ultrasound Elastography. Part 1: Basic Principles and Technology , 2013, Ultraschall in der Medizin.
[23] Jürgen Braun,et al. In vivo waveguide elastography of white matter tracts in the human brain , 2012, Magnetic resonance in medicine.
[24] Dieter Klatt,et al. Viscoelasticity-based MR elastography of skeletal muscle , 2010, Physics in medicine and biology.
[25] Armando Manduca,et al. Magnetic resonance elastography as a method for the assessment of effective myocardial stiffness throughout the cardiac cycle , 2010, Magnetic resonance in medicine.
[26] M. Fink,et al. Viscoelastic and anisotropic mechanical properties of in vivo muscle tissue assessed by supersonic shear imaging. , 2010, Ultrasound in medicine & biology.
[27] Mathias Fink,et al. Application of DENSE‐MR‐elastography to the human heart , 2009, Magnetic resonance in medicine.
[28] Thomas Deffieux,et al. Shear Wave Spectroscopy for In Vivo Quantification of Human Soft Tissues Visco-Elasticity , 2009, IEEE Transactions on Medical Imaging.
[29] Kenneth Hoyt,et al. Quantitative sonoelastography for the in vivo assessment of skeletal muscle viscoelasticity , 2008, Physics in medicine and biology.
[30] Qingshan Chen,et al. Rapid magnetic resonance elastography of muscle using one‐dimensional projection , 2008, Journal of magnetic resonance imaging : JMRI.
[31] K. An,et al. Thigh muscle stiffness assessed with magnetic resonance elastography in hyperthyroid patients before and after medical treatment , 2007, Journal of magnetic resonance imaging : JMRI.
[32] Armando Manduca,et al. Applications of magnetic resonance elastography to healthy and pathologic skeletal muscle , 2007, Journal of magnetic resonance imaging : JMRI.
[33] Dieter Klatt,et al. Fractional encoding of harmonic motions in MR elastography , 2007, Magnetic resonance in medicine.
[34] Jürgen Braun,et al. Shear wave group velocity inversion in MR elastography of human skeletal muscle , 2006, Magnetic resonance in medicine.
[35] M. Taupitz,et al. Alterations of the proton‐T2 time in relaxed skeletal muscle induced by passive extremity flexions , 2006, Journal of magnetic resonance imaging : JMRI.
[36] Richard L Ehman,et al. Determination of thigh muscle stiffness using magnetic resonance elastography , 2006, Journal of magnetic resonance imaging : JMRI.
[37] Mathias Fink,et al. Human muscle hardness assessment during incremental isometric contraction using transient elastography. , 2005, Journal of biomechanics.
[38] Jürgen Braun,et al. Two-dimensional waveform analysis in MR elastography of skeletal muscles , 2005, Physics in medicine and biology.
[39] Mark E Ladd,et al. In vivo elasticity measurements of extremity skeletal muscle with MR elastography , 2004, NMR in biomedicine.
[40] Mathias Fink,et al. Transient elastography in anisotropic medium: application to the measurement of slow and fast shear wave speeds in muscles. , 2003, The Journal of the Acoustical Society of America.
[41] Richard L Ehman,et al. Measurement of muscle activity with magnetic resonance elastography. , 2003, Clinical biomechanics.
[42] G. H. Rose,et al. Magnetic resonance elastography of skeletal muscle , 2001, Journal of magnetic resonance imaging : JMRI.
[43] A. Manduca,et al. Magnetic resonance elastography by direct visualization of propagating acoustic strain waves. , 1995, Science.
[44] J.M.A. Lenihan,et al. Biomechanics — Mechanical properties of living tissue , 1982 .
[45] J. P. Paul,et al. Biomechanics , 1966 .
[46] Heiko Tzschätzsch,et al. Methods and Approaches in Ultrasound Elastography , 2018 .
[47] F. Wedel,et al. Quantification of Biophysical Parameters in Medical Imaging , 2018, Springer International Publishing.
[48] Max A. Viergever,et al. elastix: A Toolbox for Intensity-Based Medical Image Registration , 2010, IEEE Transactions on Medical Imaging.