Segmental Analysis of Cardiac Short-Axis Views Using Lagrangian Radial and Circumferential Strain.

Annual review of gerontology & geriatrics Pub Date : 2016-11-01 Epub Date: 2015-11-16 DOI:10.1177/0161734615613322
Chi Ma, Xiao Wang, Tomy Varghese
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Abstract

Accurate description of myocardial deformation in the left ventricle is a three-dimensional problem, requiring three normal strain components along its natural axis, that is, longitudinal, radial, and circumferential strains. Although longitudinal strains are best estimated from long-axis views, radial and circumferential strains are best depicted in short-axis views. An algorithm that utilizes a polar grid for short-axis views previously developed in our laboratory for a Lagrangian description of tissue deformation is utilized for radial and circumferential displacement and strain estimation. Deformation of the myocardial wall, utilizing numerical simulations with ANSYS, and a finite-element analysis-based canine heart model were adapted as the input to a frequency-domain ultrasound simulation program to generate radiofrequency echo signals. Clinical in vivo data were also acquired from a healthy volunteer. Local displacements estimated along and perpendicular to the ultrasound beam propagation direction are then transformed into radial and circumferential displacements and strains using the polar grid based on a pre-determined centroid location. Lagrangian strain variations demonstrate good agreement with the ideal strain when compared with Eulerian results. Lagrangian radial and circumferential strain estimation results are also demonstrated for experimental data on a healthy volunteer. Lagrangian radial and circumferential strain tracking provide accurate results with the assistance of the polar grid, as demonstrated using both numerical simulations and in vivo study.

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利用拉格朗日径向和环向应变对心脏短轴视图进行分段分析
准确描述左心室的心肌变形是一个三维问题,需要沿左心室自然轴的三个正常应变分量,即纵向应变、径向应变和周向应变。虽然纵向应变最好通过长轴视图估算,但径向和周向应变最好通过短轴视图描述。我们实验室之前开发了一种极坐标网格短轴视图算法,用于组织变形的拉格朗日描述,该算法可用于径向和周向位移和应变估算。利用 ANSYS 数值模拟的心肌壁变形和基于有限元分析的犬心脏模型被改编为频域超声模拟程序的输入,以生成射频回波信号。此外,还从一名健康志愿者身上获取了临床活体数据。沿超声束传播方向和垂直于超声束传播方向估算的局部位移,然后根据预先确定的中心点位置,利用极坐标网格转换成径向和周向位移和应变。与欧拉结果相比,拉格朗日应变变化与理想应变非常吻合。拉格朗日径向和周向应变估算结果也在一名健康志愿者的实验数据中得到了验证。拉格朗日径向和周向应变跟踪在极坐标网格的帮助下提供了精确的结果,数值模拟和活体研究均证明了这一点。
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