IEEE Trans Ultrason Ferroelectr Freq Control. 2019 Dec;66(12):1845-1855. doi: 10.1109/TUFFC.2019.2933952. Epub 2019 Aug 8.
Tissue biomechanical properties are known to be sensitive to pathological changes. Accordingly, various techniques have been developed to estimate tissue mechanical properties. Shear-wave elastography (SWE) measures shear-wave speed (SWS) in tissues, which can be related to shear modulus. Although viscosity or stress-strain nonlinearity may act as confounder of SWE, their explicit characterization may also provide additional information about tissue composition as a contrast modality. Viscosity can be related to frequency dispersion of SWS, which can be characterized using multi-frequency measurements, herein called spectral SWE (SSWE). Additionally, nonlinear shear modulus can be quantified and parameterized based on SWS changes with respect to applied stress, a phenomenon called acoustoelasticity (AE). In this work, we characterize the nonlinear parameters of tissue as a function of excitation frequency by utilizing both AE and SSWE together. For this, we apply incremental amounts of quasi-static stress on a medium, while imaging and quantifying SWS dispersion via SSWE. Results from phantom and ex vivo porcine liver experiments demonstrate the feasibility of measuring frequency-dependent nonlinear parameters using the proposed method. SWS propagation in porcine liver tissue was observed to change from 1.8 m/s at 100 Hz to 3.3 m/s at 700 Hz, while increasing by approximately 25% from a strain of 0% to 12% across these frequencies.
组织生物力学特性已知对病理变化敏感。因此,已经开发了各种技术来估计组织的机械性能。剪切波弹性成像(SWE)测量组织中的剪切波速度(SWS),这可以与剪切弹性模量相关联。尽管粘度或应力-应变非线性可能是 SWE 的混杂因素,但它们的明确特征也可能提供有关组织成分的额外信息,作为对比模态。粘度可以与 SWS 的频率色散相关,这可以通过多频率测量来进行特征描述,在此称为光谱 SWE(SSWE)。此外,可以基于 SWS 相对于施加的应力的变化来定量和参数化非线性剪切弹性模量,这一现象称为声弹性(AE)。在这项工作中,我们通过同时利用 AE 和 SSWE 来描述组织的非线性参数随激励频率的变化。为此,我们在介质上施加递增的准静态应力,同时通过 SSWE 成像和量化 SWS 色散。来自体模和离体猪肝脏实验的结果证明了使用所提出的方法测量频率相关的非线性参数的可行性。在猪肝脏组织中,SWS 传播从 100 Hz 时的 1.8 m/s 变化到 700 Hz 时的 3.3 m/s,而在这些频率范围内,应变从 0%增加到 12%时增加了约 25%。