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Viscoelastic characterization of soft tissues by Dynamic Micro-Elastography (DME) in the frequency range of 300#x2013;1500 Hz

机译:动态微弹素(DME)在300-1500 Hz的频率范围内粘弹性表征软组织

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Mechanical characterization of living tissues and organs are of interest because information on their viscoelastic properties in the presence of diseases can affect therapy planning. This article proposes the Dynamic Micro-Elastography (DME) method to characterize elasticity and viscosity parameters from the acoustical properties (velocity and attenuation) of monochromatic and transient shear waves in a large frequency range (300 – 1500 Hz). To overcome spatial and temporal limitations of conventional systems, we used a high frequency transducer (25 MHz) and a shear wave gated strategy to reconstruct ultra fast RF frame sequences (16000 images per second). Viscoelasticity of agar-gelatin materials, porcine blood clots and porcine liver samples were investigated. As previously observed in the literature at lower frequencies, the liver tissue appeared highly viscous between 300 – 1500 Hz, whereas the gel and blood clot presented constant elasticity values over that range of frequency. A second experiment undertaken on a small animal organ (rat liver) proved that such high frequency waves, tracked with our high resolution system, permit to study its mechanical properties. To conclude, this characterization tool is adequate to investigate soft tissue rheological behavior evolution as a function of frequency. Moreover, because wavelengths of propagating shear waves are very small (≪ 2 mm at 1500 Hz) and the motion tracking system very accurate, DME could also be applied to characterize millimetric organs.
机译:生物组织和器官的机械表征是感兴趣的,因为关于疾病存在的粘弹性的信息可能会影响治疗计划。本文提出了动态微弹性摄影(DME)方法,以表征来自大频率范围(300-1500Hz)的单色和瞬态剪切波的声学性质(速度和衰减)的弹性和粘度参数。为了克服传统系统的空间和时间局限,我们使用了高频传感器(25MHz)和剪切波门控策略来重建超快速RF帧序列(每秒16000图像)。研究了琼脂 - 明胶材料,猪血凝块和猪肝样的粘弹性。如前所述在较低频率的文献中观察到,肝脏组织在300-1500Hz之间出现高粘性,而凝胶和血凝块在该频率范围内呈现恒定的弹性值。在小型动物器官(大鼠肝脏)上进行的第二个实验证明,使用我们的高分辨率系统跟踪了这种高频波,允许研究其机械性能。为了得出结论,作为频率的函数,该表征工具足以研究软组织流变行为演进。此外,由于传播剪切波的波长非常小(«2mm处为1500 Hz)和运动跟踪系统非常准确,也可以应用DME来表征毫毫升器官。

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