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分形网络维数和黏弹性幂律行为:二、磁共振弹性成像对结构模拟体模的实验研究。

Fractal network dimension and viscoelastic powerlaw behavior: II. An experimental study of structure-mimicking phantoms by magnetic resonance elastography.

机构信息

Department of Radiology, Charité-Universitätsmedizin Berlin, Germany.

出版信息

Phys Med Biol. 2012 Jun 21;57(12):4041-53. doi: 10.1088/0031-9155/57/12/4041.

Abstract

The dynamics of the complex shear modulus, G*, of soft biological tissue is governed by the rigidity and topology of multiscale mechanical networks. Multifrequency elastography can measure the frequency dependence of G* in soft biological tissue, providing information about the structure of tissue networks at multiple scales. In this study, the viscoelastic properties of structure-mimicking phantoms containing tangled paper stripes embedded in agarose gel are investigated by multifrequency magnetic resonance elastography within the dynamic range of 40–120 Hz. The effective media viscoelastic properties are analyzed in terms of the storage modulus (the real part of G*), the loss modulus (the imaginary part of G*) and the viscoelastic powerlaw given by the two-parameter springpot model. Furthermore, diffusion tensor imaging is used for investigating the effect of network structures on water mobility. The following observations were made: the random paper networks with fractal dimensions between 2.481 and 2.755 had no or minor effects on the storage modulus, whereas the loss modulus was significantly increased about 2.2 kPa per fractal dimension unit (R = 0.962, P < 0.01). This structural sensitivity of the loss modulus was significantly correlated with the springpot powerlaw exponent (0.965, P < 0.01), while for the springpot elasticity modulus, a trend was discernable (0.895, P < 0.05). No effect of the paper network on water diffusion was observed. The gel phantoms with embedded paper stripes presented here are a feasible way for experimentally studying the effect of network topology on soft-tissue viscoelastic parameters. In the dynamic range of in vivo elastography, the fractal network dimension primarily correlates to the loss behavior of soft tissue as can be seen from the loss modulus or the powerlaw exponent of the springpot model. These findings represent the experimental underpinning of structure-sensitive elastography for an improved characterization of various soft-tissue diseases.

摘要

软生物组织的复杂剪切模量 G的动力学由多尺度力学网络的刚性和拓扑结构决定。多频弹性成像可以测量软生物组织中 G的频率依赖性,提供有关组织网络在多个尺度上结构的信息。在这项研究中,通过多频磁共振弹性成像在 40-120 Hz 的动态范围内研究了含有嵌入琼脂糖凝胶中的纠结纸条纹的结构模拟体模的粘弹性特性。根据存储模量(G的实部)、损耗模量(G的虚部)和双参数弹簧模型给出的粘弹性幂律,分析了有效介质粘弹性特性。此外,扩散张量成像用于研究网络结构对水流动性的影响。观察到以下结果:具有分形维数在 2.481 和 2.755 之间的随机纸网络对存储模量没有或只有很小的影响,而损耗模量则显著增加了约 2.2 kPa 分形维度单位(R = 0.962,P <0.01)。损耗模量的这种结构敏感性与弹簧模型幂律指数显著相关(0.965,P <0.01),而对于弹簧模型弹性模量,则可以看出一种趋势(0.895,P <0.05)。未观察到纸网络对水扩散的影响。本文提出的嵌入纸带的凝胶体模是一种可行的方法,可用于实验研究网络拓扑对软组织粘弹性参数的影响。在体内弹性成像的动态范围内,分形网络维度主要与软组织的损耗行为相关,如可以从损耗模量或弹簧模型的幂律指数看出。这些发现为结构敏感弹性成像提供了实验基础,有助于改善各种软组织疾病的特征化。

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