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Properties and Optimization of Respiratory Navigator Gating for Spiral Cine Dense Cardiac MRI

机译:螺旋电影密集心脏MRI呼吸导航器门控的特性和优化

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摘要

Cardiac magnetic resonance (MR) imaging can non-invasively assess heart function. Displacement encoding with stimulated echoes (DENSE) is an advanced cardiac MR imaging technique that measures tissue displacement and can be used to quantify cardiac mechanics (e.g. strain and torsion). When combined with clinical risk factors, cardiac mechanics have been shown to be better predictors of mortality than traditional measures of heart function.;End-expiratory breath-holds are typically used to minimize respiratory motion artifacts. Unfortunately, requiring subjects to breath-hold introduces limitations with the duration of image acquisition and quality of data acquired, especially in patients with limited ability to hold their breath. Thus, DENSE acquisitions often require respiratory navigator gating, which works by measuring the diaphragm during normal breathing and only acquiring data when the diaphragm is within a pre-defined acceptance window.;Unfortunately, navigator gating results in long scan durations due to inconsistent breathing patterns. Also, the navigator echo can be used in different ways to accept or reject image data, which creates several navigator configuration options. Each respiratory navigator configuration has distinct advantages and disadvantages that directly affect scan duration and image quality, which can affect derived cardiac mechanics. Scan duration and image quality need to be optimized to improve the clinical utility of DENSE. Thus, the goal of this project was to optimize those parameters. To accomplish this goal, we set out to complete 3 aims: 1) understand how respiratory gating affects the reproducibility of measures of cardiac mechanics, 2) determine the optimal respiratory navigator configuration, and 3) reduce scan duration by developing and using an interactive videogame to optimize navigator efficiency.;Aim 1 of this project demonstrated that the variability in torsion, but not strain, could be significantly reduced through the use of a respiratory navigator compared to traditional breath-holds. Aim 2 demonstrated that, among the configuration options, the dual-navigator configuration resulted in the best image quality compared to the reference standard (traditional breath-holds), but also resulted in the longest scan duration. In Aim 3, we developed an interactive breathing-controlled videogame and demonstrated that its use during cardiac MR can significantly reduce scan duration compared to traditional free-breathing and also led to a small improvement in signal-to-noise ratio of the acquired images.;In summary, respiratory navigator gating with DENSE 1) reduces the variability in measured LV torsion, 2) results in the best image quality with the dual-navigator configuration, and 3) results in significantly shorter scan durations through the use of an interactive videogame. Selecting the optimal navigator configuration and using an interactive videogame can improve the clinical utility of DENSE.
机译:心脏磁共振(MR)成像可以无创地评估心脏功能。带有刺激回声的位移编码(DENSE)是一种先进的心脏MR成像技术,可测量组织位移,并可用于量化心脏力学(例如应变和扭转)。当与临床危险因素结合使用时,与传统的心功能测量方法相比,心脏力学已被证明是更好的死亡率预测指标。呼气末屏气通常用于最大程度地减少呼吸运动伪影。不幸的是,要求受试者屏气会限制图像采集时间和采集数据的质量,特别是在屏气能力有限的患者中。因此,DENSE采集通常需要呼吸导航器门控,这是通过在正常呼吸过程中测量隔膜来实现的,并且仅当隔膜在预定义的接受窗口内时才获取数据;不幸的是,由于呼吸模式不一致,导航器门控导致扫描时间长。而且,导航器回显可以以不同的方式用于接受或拒绝图像数据,从而创建了多个导航器配置选项。每种呼吸导航仪配置都有直接影响扫描持续时间和图像质量的独特优势和劣势,这会影响衍生的心脏力学。需要优化扫描时间和图像质量,以提高DENSE的临床效用。因此,该项目的目标是优化那些参数。为了实现此目标,我们着手完成以下3个目标:1)了解呼吸门控如何影响心脏力学指标的可重复性; 2)确定最佳呼吸导航器配置; 3)通过开发和使用交互式视频游戏来减少扫描时间该项目的目标1表明,与传统的屏气相比,使用呼吸导航仪可以显着降低扭力而不是劳损。目标2证明,在配置选项中,双导航器配置与参考标准(传统屏气)相比,可获得最佳的图像质量,但扫描时间也最长。在目标3中,我们开发了一种交互式呼吸控制视频游戏,并证明了与常规的自由呼吸相比,在心脏MR中使用它可以显着减少扫描时间,并且还可以使所获取图像的信噪比略有改善。 ;总之,使用DENSE进行呼吸导航的门控1)减小了测得的LV扭转的变异性; 2)使用双导航器配置获得了最佳的图像质量; 3)通过使用交互式视频游戏,显着缩短了扫描时间。选择最佳的导航仪配置并使用交互式视频游戏可以提高DENSE的临床效用。

著录项

  • 作者

    Hamlet, Sean Michael.;

  • 作者单位

    University of Kentucky.;

  • 授予单位 University of Kentucky.;
  • 学科 Electrical engineering.;Medicine.;Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:25

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