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研究兔跟腱拉伸粘弹性与无负荷超声剪切波速度的关系。

Investigation of the relationship between tensile viscoelasticity and unloaded ultrasound shear wave measurements in ex vivo tendon.

机构信息

Department of Orthopaedics, Balgrist University Hospital, University of Zurich, Switzerland; Institute for Biomechanics, ETH Zurich, Switzerland.

Institute for Biomechanics, ETH Zurich, Switzerland.

出版信息

J Biomech. 2023 Jan;146:111411. doi: 10.1016/j.jbiomech.2022.111411. Epub 2022 Dec 6.

Abstract

Mechanical properties of biological tissues are of key importance for proper function and in situ methods for mechanical characterization are sought after in the context of both medical diagnosis as well as understanding of pathophysiological processes. Shear wave elastography (SWE) and accompanying physical modelling methods provide valid estimates of stiffness in quasi-linear viscoelastic, isotropic tissue but suffer from limitations in assessing non-linear viscoelastic or anisotropic material, such as tendon. Indeed, mathematical modelling predicts the longitudinal shear wave velocity to be unaffected by the tensile but rather the shear viscoelasticity. Here, we employ a heuristic experimental testing approach to the problem to assess the most important potential confounders, namely tendon mass density and diameter, and to investigate associations between tendon tensile viscoelasticity with shear wave descriptors. Small oscillatory testing of animal flexor tendons at two baseline stress levels over a large frequency range comprehensively characterized tensile viscoelastic behavior. A broad set of shear wave descriptors was retrieved on the unloaded tendon based on high frame-rate plane wave ultrasound after applying an acoustic deformation impulse. Tensile modulus and strain energy dissipation increased logarithmically and linearly, respectively, with the frequency of the applied strain. Shear wave descriptors were mostly unaffected by tendon diameter but were highly sensitive to tendon mass density. Shear wave group and phase velocity showed no association with tensile elasticity or strain rate-stiffening but did show an association with tensile strain energy dissipation. The longitudinal shear wave velocity may not characterize tensile elasticity but rather tensile viscous properties of transversely isotropic collagenous tissues.

摘要

生物组织的力学性能对于其正常功能至关重要,因此人们在医学诊断和理解病理生理过程的背景下,都在寻求用于机械特性分析的原位方法。剪切波弹性成像(SWE)和相关的物理建模方法可以对近线性粘弹性各向同性组织的硬度进行有效估计,但在评估非线性粘弹性或各向异性材料(如肌腱)方面存在局限性。事实上,数学模型预测纵向剪切波速度不受拉伸影响,而是受剪切粘弹性影响。在这里,我们采用启发式实验测试方法来解决这个问题,以评估最重要的潜在混杂因素,即肌腱的质量密度和直径,并研究肌腱拉伸粘弹性与剪切波描述符之间的相关性。对动物屈肌腱在两个基线应力水平下进行小幅度的振荡测试,在较大的频率范围内全面描述了拉伸粘弹性行为。在对肌腱施加声变形脉冲后,基于高帧率平面波超声,在未加载的肌腱上获取了广泛的剪切波描述符。拉伸模量和应变能耗散分别随施加应变的频率呈对数和线性增加。剪切波描述符主要不受肌腱直径的影响,但对肌腱质量密度非常敏感。剪切波群速度和相速度与拉伸弹性或应变速率硬化无关,但与拉伸应变能耗散有关。纵向剪切波速度可能无法描述拉伸弹性,而是各向异性胶原组织的拉伸粘性特性。

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