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Full Characterization of in vivo Muscle as an Elastic, Incompressible, Transversely Isotropic Material Using Ultrasonic Rotational 3D Shear Wave Elasticity Imaging.

Publication ,  Journal Article
Knight, AE; Trutna, CA; Rouze, NC; Hobson-Webb, LD; Caenen, A; Jin, FQ; Palmeri, ML; Nightingale, KR
Published in: IEEE Trans Med Imaging
January 2022

Using a 3D rotational shear wave elasticity imaging (SWEI) setup, 3D shear wave data were acquired in the vastus lateralis of a healthy volunteer. The innate tilt between the transducer face and the muscle fibers results in the excitation of multiple shear wave modes, allowing for more complete characterization of muscle as an elastic, incompressible, transversely isotropic (ITI) material. The ability to measure both the shear vertical (SV) and shear horizontal (SH) wave speed allows for measurement of three independent parameters needed for full ITI material characterization: the longitudinal shear modulus μL , the transverse shear modulus μT , and the tensile anisotropy χE . Herein we develop and validate methodology to estimate these parameters and measure them in vivo, with μL = 5.77±1.00 kPa, μT = 1.93±0.41 kPa (giving shear anisotropy χμ = 2.11±0.92 ), and χE = 4.67±1.40 in a relaxed vastus lateralis muscle. We also demonstrate that 3D SWEI can be used to more accurately characterize muscle mechanical properties as compared to 2D SWEI.

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Published In

IEEE Trans Med Imaging

DOI

EISSN

1558-254X

Publication Date

January 2022

Volume

41

Issue

1

Start / End Page

133 / 144

Location

United States

Related Subject Headings

  • Ultrasonics
  • Nuclear Medicine & Medical Imaging
  • Muscles
  • Humans
  • Elasticity Imaging Techniques
  • Elasticity
  • Elastic Modulus
  • Anisotropy
  • 46 Information and computing sciences
  • 40 Engineering
 

Citation

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Knight, A. E., Trutna, C. A., Rouze, N. C., Hobson-Webb, L. D., Caenen, A., Jin, F. Q., … Nightingale, K. R. (2022). Full Characterization of in vivo Muscle as an Elastic, Incompressible, Transversely Isotropic Material Using Ultrasonic Rotational 3D Shear Wave Elasticity Imaging. IEEE Trans Med Imaging, 41(1), 133–144. https://doi.org/10.1109/TMI.2021.3106278
Knight, Anna E., Courtney A. Trutna, Ned C. Rouze, Lisa D. Hobson-Webb, Annette Caenen, Felix Q. Jin, Mark L. Palmeri, and Kathryn R. Nightingale. “Full Characterization of in vivo Muscle as an Elastic, Incompressible, Transversely Isotropic Material Using Ultrasonic Rotational 3D Shear Wave Elasticity Imaging.IEEE Trans Med Imaging 41, no. 1 (January 2022): 133–44. https://doi.org/10.1109/TMI.2021.3106278.
Knight AE, Trutna CA, Rouze NC, Hobson-Webb LD, Caenen A, Jin FQ, et al. Full Characterization of in vivo Muscle as an Elastic, Incompressible, Transversely Isotropic Material Using Ultrasonic Rotational 3D Shear Wave Elasticity Imaging. IEEE Trans Med Imaging. 2022 Jan;41(1):133–44.
Knight, Anna E., et al. “Full Characterization of in vivo Muscle as an Elastic, Incompressible, Transversely Isotropic Material Using Ultrasonic Rotational 3D Shear Wave Elasticity Imaging.IEEE Trans Med Imaging, vol. 41, no. 1, Jan. 2022, pp. 133–44. Pubmed, doi:10.1109/TMI.2021.3106278.
Knight AE, Trutna CA, Rouze NC, Hobson-Webb LD, Caenen A, Jin FQ, Palmeri ML, Nightingale KR. Full Characterization of in vivo Muscle as an Elastic, Incompressible, Transversely Isotropic Material Using Ultrasonic Rotational 3D Shear Wave Elasticity Imaging. IEEE Trans Med Imaging. 2022 Jan;41(1):133–144.

Published In

IEEE Trans Med Imaging

DOI

EISSN

1558-254X

Publication Date

January 2022

Volume

41

Issue

1

Start / End Page

133 / 144

Location

United States

Related Subject Headings

  • Ultrasonics
  • Nuclear Medicine & Medical Imaging
  • Muscles
  • Humans
  • Elasticity Imaging Techniques
  • Elasticity
  • Elastic Modulus
  • Anisotropy
  • 46 Information and computing sciences
  • 40 Engineering