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使用粘弹性模型的监测稳态激发与恢复(MSSER)辐射力成像

Monitored steady-state excitation and recovery (MSSER) radiation force imaging using viscoelastic models.

作者信息

Mauldin F W, Haider M A, Loboa E G, Behler R H, Euliss L E, Pfeiler T W, Gallippi C M

机构信息

Univ. of Virginia, Charlottesville, VA, USA.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2008 Jul;55(7):1597-610. doi: 10.1109/TUFFC.2008.836.

DOI:10.1109/TUFFC.2008.836
PMID:18986950
Abstract

Acoustic radiation force imaging methods distinguish tissue structure and composition by monitoring tissue responses to applied radiation force excitations. Although these responses are a complex, multidimensional function of the geometric and viscoelastic nature of tissue, simplified discrete biomechanical models offer meaningful insight to the physical phenomena that govern induced tissue motion. Applying Voigt and standard linear viscoelastic tissue models, we present a new radiation force technique - monitored steady-state excitation and recovery (MSSER) imaging - that tracks both steady-state displacement during prolonged force application and transient response following force cessation to estimate tissue mechanical properties such as elasticity and viscosity. In concert with shear wave elasticity imaging (SWEI) estimates for Young's modulus, MSSER methods are useful for estimating tissue mechanical properties independent of the applied force magnitude. We test our methods in gelatin phantoms and excised pig muscle, with confirmation through mechanical property measurement. Our results measured 10.6 kPa, 14.7 kPa, and 17.1 kPa (gelatin) and 122.4 kPa (pig muscle) with less than 10% error. This work demonstrates the feasibility of MSSER imaging and merits further efforts to incorporate relevant mechanical tissue models into the development of novel radiation force imaging techniques.

摘要

声辐射力成像方法通过监测组织对施加的辐射力激发的响应来区分组织结构和成分。尽管这些响应是组织几何和粘弹性性质的复杂多维函数,但简化的离散生物力学模型为控制诱导组织运动的物理现象提供了有意义的见解。应用沃伊特模型和标准线性粘弹性组织模型,我们提出了一种新的辐射力技术——监测稳态激发和恢复(MSSER)成像,该技术可跟踪长时间施加力期间的稳态位移和力停止后的瞬态响应,以估计组织的力学特性,如弹性和粘度。与剪切波弹性成像(SWEI)对杨氏模量的估计相结合,MSSER方法可用于估计与所施加力大小无关的组织力学特性。我们在明胶模型和切除的猪肌肉中测试了我们的方法,并通过力学性能测量进行了验证。我们的结果测量得到明胶的弹性模量为10.6 kPa、14.7 kPa和17.1 kPa,猪肌肉的弹性模量为122.4 kPa,误差小于10%。这项工作证明了MSSER成像的可行性,值得进一步努力将相关的组织力学模型纳入新型辐射力成像技术的开发中。

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