Literature DB >> 29993652

Quantitative Assessment of Thin-Layer Tissue Viscoelastic Properties Using Ultrasonic Micro-Elastography With Lamb Wave Model.

Cho-Chiang Shih, Xuejun Qian, Teng Ma, Zhaolong Han, Chih-Chung Huang, Qifa Zhou, K Kirk Shung.   

Abstract

Characterizing the viscoelastic properties of thin-layer tissues with micro-level thickness has long remained challenging. Recently, several micro-elastography techniques have been developed to improve the spatial resolution. However, most of these techniques have not considered the medium boundary conditions when evaluating the viscoelastic properties of thin-layer tissues such as arteries and corneas; this might lead to estimation bias or errors. This paper aims to integrate the Lamb wave model with our previously developed ultrasonic micro-elastography imaging system for obtaining accurate viscoelastic properties in thin-layer tissues. A 4.5-MHz ring transducer was used to generate an acoustic radiation force for inducing tissue displacements to produce guided wave, and the wave propagation was detected using a confocally aligned 40-MHz needle transducer. The phase velocity and attenuation were obtained from k-space by both the impulse and the harmonic methods. The measured phase velocity was fit using the Lamb wave model with the Kelvin-Voigt model. Phantom experiments were conducted using 7% and 12% gelatin and 1.5% agar phantoms with different thicknesses (2, 3, and 4 mm). Biological experiments were performed on porcine cornea and rabbit carotid artery ex vivo. Thin-layer phantoms with different thicknesses were confirmed to have the same elasticity; this was consistent with the estimates of bulk phantoms from mechanical tests and the shear wave rheological model. The trend of the measured attenuations was also confirmed with the viscosity results obtained using the Lamb wave model. Through the impulse and harmonic methods, the shear viscoelasticity values were estimated to be 8.2 kPa for $0.9~\text {Pa}{\cdot} \text {s}$ and 9.6 kPa for $0.8~\text {Pa}{\cdot} \text {s}$ in the cornea and 27.9 kPa for $0.1~\text {Pa}\cdot \text {s}$ and 26.5 kPa for $0.1~\text {Pa}\cdot \text {s}$ in the artery.

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Year:  2018        PMID: 29993652     DOI: 10.1109/TMI.2018.2820157

Source DB:  PubMed          Journal:  IEEE Trans Med Imaging        ISSN: 0278-0062            Impact factor:   10.048


  11 in total

1.  In vivo evaluation of posterior eye elasticity using shaker-based optical coherence elastography.

Authors:  Xuejun Qian; Runze Li; Yan Li; Gengxi Lu; Youmin He; Mark S Humayun; Zhongping Chen; Qifa Zhou
Journal:  Exp Biol Med (Maywood)       Date:  2020-01-07

2.  High-Frequency Ultrasound Elastography to Assess the Nonlinear Elastic Properties of the Cornea and Ciliary Body.

Authors:  Junhang Zhang; Javier Murgoitio-Esandi; Xuejun Qian; Runze Li; Chen Gong; Amir Nankali; Liang Hao; Benjamin Y Xu; K Kirk Shung; Assad Oberai; Qifa Zhou
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2022-08-26       Impact factor: 3.267

3.  Quantitative Assessment of Biomechanical Properties of the Human Keratoconus Cornea Using Acoustic Radiation Force Optical Coherence Elastography.

Authors:  Yanzhi Zhao; Hongwei Yang; Yingjie Li; Yongbo Wang; Xiao Han; Yirui Zhu; Yubao Zhang; Guofu Huang
Journal:  Transl Vis Sci Technol       Date:  2022-06-01       Impact factor: 3.048

4.  Layer-specific ultrasound elastography using a multi-layered shear wave dispersion model for assessing the viscoelastic properties.

Authors:  Gengxi Lu; Runze Li; Xuejun Qian; Ruimin Chen; Laiming Jiang; Zeyu Chen; K Kirk Shung; Mark S Humayun; Qifa Zhou
Journal:  Phys Med Biol       Date:  2021-01-26       Impact factor: 3.609

5.  High resolution optical coherence elastography of retina under prosthetic electrode.

Authors:  Runze Li; Zhaodong Du; Xuejun Qian; Yan Li; Juan-Carlos Martinez-Camarillo; Laiming Jiang; Mark S Humayun; Zhongping Chen; Qifa Zhou
Journal:  Quant Imaging Med Surg       Date:  2021-03

6.  Ultrasonic elastography to assess biomechanical properties of the optic nerve head and peripapillary sclera of the eye.

Authors:  Xuejun Qian; Runze Li; Gengxi Lu; Laiming Jiang; Haochen Kang; K Kirk Shung; Mark S Humayun; Qifa Zhou
Journal:  Ultrasonics       Date:  2020-10-10       Impact factor: 2.890

7.  2-D Ultrasonic Array-Based Optical Coherence Elastography.

Authors:  Haochen Kang; Xuejun Qian; Ruimin Chen; Robert Wodnicki; Yizhe Sun; Runze Li; Yan Li; K Kirk Shung; Zhongping Chen; Qifa Zhou
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2021-03-26       Impact factor: 2.725

8.  High-Resolution Shear Wave Imaging of the Human Cornea Using a Dual-Element Transducer.

Authors:  Pei-Yu Chen; Cho-Chiang Shih; Wei-Chen Lin; Teng Ma; Qifa Zhou; K Kirk Shung; Chih-Chung Huang
Journal:  Sensors (Basel)       Date:  2018-12-03       Impact factor: 3.576

9.  In vivo evaluation of corneal biomechanical properties by optical coherence elastography at different cross-linking irradiances.

Authors:  Yuheng Zhou; Yuanyuan Wang; Meixiao Shen; Zi Jin; Yihong Chen; Yue Zhou; Jia Qu; Dexi Zhu
Journal:  J Biomed Opt       Date:  2019-10       Impact factor: 3.170

10.  Quantitative confocal optical coherence elastography for evaluating biomechanics of optic nerve head using Lamb wave model.

Authors:  Zhaodong Du; Runze Li; Xuejun Qian; Gengxi Lu; Yan Li; Youmin He; Yueqiao Qu; Laiming Jiang; Zeyu Chen; Mark S Humayun; Zhongping Chen; Qifa Zhou
Journal:  Neurophotonics       Date:  2019-11-15       Impact factor: 3.593

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