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在体定量绘制心脏周期中心肌僵硬度和跨壁各向异性的变化。

In vivo quantitative mapping of myocardial stiffening and transmural anisotropy during the cardiac cycle.

机构信息

Supersonic Imagine, 13857 Aix en Provence, France.

出版信息

IEEE Trans Med Imaging. 2011 Feb;30(2):295-305. doi: 10.1109/TMI.2010.2076829. Epub 2010 Sep 16.

Abstract

Shear wave imaging was evaluated for the in vivo assessment of myocardial biomechanical properties on ten open chest sheep. The use of dedicated ultrasonic sequences implemented on a very high frame rate ultrasonic scanner ( > 5000 frames per second) enables the estimation of the quantitative shear modulus of myocardium several times during one cardiac cycle. A 128 element probe remotely generates a shear wave thanks to the radiation force induced by a focused ultrasonic burst. The resulting shear wave propagation is tracked using the same probe by cross-correlating successive ultrasonic images acquired at a very high frame rate. The shear wave speed estimated at each location in the ultrasonic image gives access to the local myocardial stiffness (shear modulus μ). The technique was found to be reproducible (standard deviation ) and able to estimate both systolic and diastolic stiffness on each sheep (respectively μ(dias) ≈ 2 kPa and μ(syst) ≈ 30 kPa). Moreover, the ability of the proposed method to polarize the shear wave generation and propagation along a chosen axis permits the study the local elastic anisotropy of myocardial muscle. As expected, myocardial elastic anisotropy is found to vary with muscle depth. The real time capabilities and potential of Shear Wave Imaging using ultrafast scanners for cardiac applications is finally illustrated by studying the dynamics of this fractional anisotropy during the cardiac cycle.

摘要

剪切波成像是一种评估心肌生物力学特性的非侵入性方法,我们在十只开胸绵羊的体内进行了评估。使用专门的超声序列,在超高帧率超声扫描仪(>5000 帧/秒)上实现,使我们能够在一个心动周期内多次估计心肌的定量剪切模量。一个 128 元的探头通过聚焦超声脉冲产生的辐射力远程产生剪切波。通过在非常高的帧率下对连续的超声图像进行互相关,使用相同的探头跟踪产生的剪切波传播。在超声图像中的每个位置估计的剪切波速度可以获得局部心肌硬度(剪切模量 μ)。该技术具有可重复性(标准偏差),并且能够估计每只绵羊的收缩期和舒张期硬度(分别为 μ(dias) ≈ 2 kPa 和 μ(syst) ≈ 30 kPa)。此外,所提出的方法能够沿选定轴极化剪切波的产生和传播的能力,允许研究心肌肌肉的局部弹性各向异性。如预期的那样,心肌弹性各向异性随肌肉深度而变化。最后,通过研究心动周期期间这种分数各向异性的动力学,说明了使用超快扫描仪进行心脏应用的剪切波成像的实时能力和潜力。

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