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Acoustic radiation force impulse-driven shear wave velocimetry in cardiac tissue.

机译:心脏组织中的声辐射力脉冲驱动剪切波测速仪。

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摘要

Acoustic radiation force impulses (ARFI) have been used to generated transverse-traveling mechanical waves in various biological tissues. The velocity of these waves is related to a medium's stiffness and thus can offer useful diagnostic information. Consequently, shear wave velocimetry has the potential to investigate cardiac disease states that manifest themselves as changes in tissue stiffness (e.g., ischemia).;The work contained herein focuses on employing ARFI-based shear wave velocimetry techniques, similar to those previously utilized on other organs (e.g., breast, liver), for the investigation of cardiac tissue. To this end, ARFI excitations were used to generate slow-moving (under 3 m/s) mechanical waves in exposed myocardium (with access granted through a thoracotomy); these waves were then tracked with ultrasonic methods. Imaging techniques to increase frame-rate, decrease transducer/tissue heating, and reduce the effects of physiological motion were developed. These techniques, along with two shear wave velocimetry methods (i.e., the Lateral Time-to-Peak and Radon sum transformation algorithms), were utilized to successfully track shear wave propagation through the mid-myocardial layer in vitro and in vivo. In vitro experiments focused on the investigation of a shear wave anisotropy through the myocardium. This experimentation suggests a moderate shear wave velocity anisotropy through regions of the mid-myocardial layer. In vivo experiments focused on shear wave anisotropy dynamics (which tend to corroborate the aforementioned in vitro results), temporal/spatial stability of shear wave velocity estimates, and estimation of wave velocity through the cardiac cycle. Shear wave velocity was found to cyclically vary through the cardiac cycle, with the largest estimates occurring during systole and the smallest occurring during diastole. This result suggests a cyclic stiffness variation of the myocardium through the cardiac cycle. A novel, on-axis technique, the displacement ratio rate (DRR) method, was developed and compared to conventional shear wave velocimetry and ARFI imaging results; all three techniques suggest a similar cyclic stiffness variation.;Shear wave velocimetry shows promise in future investigations of myocardial elasticity. The DRR method may offer a means for transthoracic characterization of myocardial stiffness. Additionally, the future use of transesophageal and catheter-based transducers presents a way of generating and tracking shear waves in a clinical setting (i.e., when epicardial imaging is not feasible). Lastly, it is hoped that continued investigations into the physical basis of these ARFI-generated mechanical waves may further clarify the relationship between their velocity in myocardium and material stiffness.
机译:声辐射力脉冲(ARFI)已用于在各种生物组织中产生横向移动的机械波。这些波的速度与介质的硬度有关,因此可以提供有用的诊断信息。因此,剪切波测速仪有可能研究表现为组织刚度变化(例如,局部缺血)的心脏病状态。;本文中的工作着重于采用基于ARFI的剪切波测速仪技术,类似于先前在其他技术上使用的技术。器官(例如,乳房,肝脏),以检查心脏组织。为此,使用ARFI激发在暴露的心肌中产生慢速运动(低于3 m / s)的机械波(通过开胸术获得进入)。然后用超声波方法跟踪这些波。开发了提高帧速率,减少换能器/组织发热并减少生理运动影响的成像技术。这些技术与两种剪切波测速方法(即,横向峰时间和Radon总和变换算法)一起被用于成功跟踪体外和体内穿过心肌中层的剪切波传播。体外实验侧重于研究穿过心肌的剪切波各向异性。该实验表明穿过心肌中间层区域的中等剪切波速度各向异性。体内实验的重点是剪切波各向异性动力学(倾向于证实上述体外结果),剪切波速度估计的时间/空间稳定性以及整个心动周期的波速度估计。发现剪切波速度在整个心动周期中呈周期性变化,最大的估计发生在心脏收缩期,最小的发生在心脏舒张期。该结果表明在整个心动周期中心肌的周期性刚度变化。开发了一种新颖的同轴技术,即位移比率(DRR)方法,并将其与常规剪切波测速仪和ARFI成像结果进行了比较;这三种技术都表明了类似的循环刚度变化。剪切波测速法显示了在未来心肌弹性研究中的希望。 DRR方法可以为经胸腔表征心肌僵硬度提供一种手段。另外,基于食道和基于导管的换能器的未来使用提出了一种在临床环境中(即,当心外膜成像不可行时)产生和跟踪剪切波的方式。最后,希望继续研究这些由ARFI产生的机械波的物理基础,可以进一步阐明它们在心肌中的速度与材料硬度之间的关系。

著录项

  • 作者

    Bouchard, Richard R.;

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Engineering Biomedical.;Biophysics Medical.;Health Sciences Radiology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 181 p.
  • 总页数 181
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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