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基于贝塞尔函数的时谐超声弹性成像(B-THE)快速宽带粘弹性材料特性表征。

Rapid wideband characterization of viscoelastic material properties by Bessel function-based time harmonic ultrasound elastography (B-THE).

机构信息

Department of Radiology, Charité-Universitätsmedizin Berlin, Corporate Member of Freie Universität Berlin and Humboldt-Universität zu Berlin, Berlin, Germany.

Department of Electrical and Computer Engineering, University of Rochester, Rochester, NY, USA.

出版信息

J Mech Behav Biomed Mater. 2024 Dec;160:106746. doi: 10.1016/j.jmbbm.2024.106746. Epub 2024 Sep 16.

DOI:10.1016/j.jmbbm.2024.106746
PMID:39303417
Abstract

Elastography is an emerging diagnostic technique that uses conventional imaging modalities such as sonography or magnetic resonance imaging to quantify tissue stiffness. However, different elastography methods provide different stiffness values, which require calibration using well-characterized phantoms or tissue samples. A comprehensive, fast, and cost-effective elastography technique for phantoms or tissue samples is still lacking. Therefore, we propose ultrasound Bessel-fit-based time harmonic elastography (B-THE) as a novel tool to provide rapid feedback on stiffness-related shear wave speed (SWS) and viscosity-related wave penetration rate (PR) over a wide range of harmonic vibration frequencies. The method relies on external induction and B-mode capture of cylindrical shear waves that satisfy the Bessel wave equation for efficient fit-based parameter recovery. B-THE was demonstrated in polyacrylamide phantoms in the frequency range of 20-200 Hz and was cross-validated by magnetic resonance elastography (MRE) using clinical 3-T MRI and compact 0.5-T tabletop MRI scanners. Frequency-independent material parameters were derived from rheological models and validated by numerical simulations. B-THE quantified frequency-resolved SWS and PR 13 to 176 times faster than more expensive clinical MRE and tabletop MRE and have a good accuracy (relative deviation to reference: 6 %, 10 % and 4 % respectively). Simulations of liver-mimicking material phantoms showed that a simultaneous fit of SWS and PR based on the fractional Maxwell rheological model outperformed a fit on PR solely. B-THE provides a comprehensive and fast elastography technique for the quantitative characterization of the viscoelastic behavior of soft tissue mimicking materials.

摘要

弹性成像是一种新兴的诊断技术,它使用传统的成像方式,如超声或磁共振成像,来量化组织的硬度。然而,不同的弹性成像方法提供了不同的硬度值,这需要使用具有良好特征的体模或组织样本进行校准。目前仍然缺乏一种全面、快速且具有成本效益的体模或组织样本弹性成像技术。因此,我们提出了基于超声贝塞尔拟合的时谐弹性成像(B-THE),作为一种新的工具,可在广泛的谐频振动频率范围内提供与硬度相关的剪切波速度(SWS)和与粘度相关的波穿透率(PR)的快速反馈。该方法依赖于外部感应和 B 模式捕获满足贝塞尔波方程的圆柱剪切波,以便高效地进行基于拟合的参数恢复。B-THE 在频率范围为 20-200 Hz 的聚丙烯酰胺体模中进行了验证,并通过临床 3-T MRI 和紧凑型 0.5-T 台式 MRI 扫描仪的磁共振弹性成像(MRE)进行了交叉验证。从流变学模型中得出了与频率无关的材料参数,并通过数值模拟进行了验证。B-THE 以比更昂贵的临床 MRE 和台式 MRE 快 13 到 176 倍的速度量化了频率分辨的 SWS 和 PR,并且具有很好的准确性(相对于参考值的相对偏差分别为 6%、10%和 4%)。对类肝材料体模的模拟表明,基于分数型 Maxwell 流变学模型的 SWS 和 PR 的同时拟合优于仅对 PR 的拟合。B-THE 为定量表征类软组织的粘弹性行为提供了一种全面而快速的弹性成像技术。

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