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Arterial elasticity imaging: comparison of finite-element analysis models with high-resolution ultrasound speckle tracking

机译:动脉弹性成像:有限元分析模型与高分辨率超声斑点跟踪的比较

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Background The nonlinear mechanical properties of internal organs and tissues may be measured with unparalleled precision using ultrasound imaging with phase-sensitive speckle tracking. The many potential applications of this important noninvasive diagnostic approach include measurement of arterial stiffness, which is associated with numerous major disease processes. The accuracy of previous ultrasound measurements of arterial stiffness and vascular elasticity has been limited by the relatively low strain of nonlinear structures under normal physiologic pressure and the measurement assumption that the effect of the surrounding tissue modulus might be ignored in both physiologic and pressure equalized conditions. Methods This study performed high-resolution ultrasound imaging of the brachial artery in a healthy adult subject under normal physiologic pressure and the use of external pressure (pressure equalization) to increase strain. These ultrasound results were compared to measurements of arterial strain as determined by finite-element analysis models with and without a surrounding tissue, which was represented by homogenous material with fixed elastic modulus. Results Use of the pressure equalization technique during imaging resulted in average strain values of 26% and 18% at the top and sides, respectively, compared to 5% and 2%, at the top and sides, respectively, under physiologic pressure. In the artery model that included surrounding tissue, strain was 19% and 16% under pressure equalization versus 9% and 13% at the top and sides, respectively, under physiologic pressure. The model without surrounding tissue had slightly higher levels of strain under physiologic pressure compared to the other model, but the resulting strain values under pressure equalization were > 60% and did not correspond to experimental values. Conclusions Since pressure equalization may increase the dynamic range of strain imaging, the effect of the surrounding tissue on strain should be incorporated into models of arterial strain, particularly when the pressure equalization technique is used.
机译:背景技术使用具有相敏斑点跟踪的超声成像可以无与伦比的精度测量内部器官和组织的非线性机械性能。这种重要的非侵入性诊断方法的许多潜在应用包括动脉僵硬度的测量,这与许多主要的疾病过程有关。先前超声测量动脉僵硬度和血管弹性的准确性受到正常生理压力下非线性结构相对较低的应变和测量假设的影响,即在生理和压力均等条件下,周围组织模量的影响都可以忽略。方法:本研究在正常生理压力和使用外部压力(压力均衡)增加应变的情况下,对健康成人受试者的肱动脉进行了高分辨率超声成像。将这些超声结果与通过有和没有周围组织的有限元分析模型确定的动脉应变测量值进行比较,该模型由具有固定弹性模量的均质材料表示。结果在成像过程中使用压力均衡技术,在生理压力下,顶部和侧面的平均应变值分别为26%和18%,而顶部和侧面的平均应变值分别为5%和2%。在包括周围组织的动脉模型中,在压力均衡下,应变为19%和16%,而在生理压力下,在顶部和侧面分别为9%和13%。与其他模型相比,没有周围组织的模型在生理压力下的应变水平略高,但是在压力均衡下所得的应变值> 60%,并且与实验值不符。结论由于压力均衡可能会增加应变成像的动态范围,因此应将周围组织对应变的影响纳入动脉应变模型中,尤其是在使用压力均衡技术时。

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