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Innovations involving balanced steady state free precession MRI.

机译:涉及平衡稳态自由进动MRI的创新。

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摘要

MRI provides different types of exquisite soft tissue and functional contrast. However, depending on the desired contrast and spatial resolution properties, the acquisition time can be quite long. The long-term objective of this work is to improve methods to quickly and accurately diagnose human disease using MRI and provide resources that can be used for image-guided therapy and real-time imaging.;Balanced steady state free precession (bSSFP) or True-FISP provides the highest signal-to-noise ratio efficiency of any pulse sequence. However, in bSSFP, contrast is a mixture of T1 and T2 weightings, which is often not desired clinically, and the signal from flowing blood is hyperintense, which can obscure the vessel wall and create artifacts. Also, there are obstructive saturation band artifacts at intersections of rapidly-acquired multiplanar images. The objective of this work was to modify the magnetization preparation and readout properties of the bSSFP sequence to: (1) improve methods that eliminate T1 and isolate T2 contrast, (2) suppress the signal from flowing blood, and (3) characterize and reduce the saturation banding artifacts.;A new T-One insensitive Steady State Imaging (TOSSI)-bSSFP combined acquisition technique, Resolution Enhanced TOSSI (RE-TOSSI), has been developed by using a partial Fourier acquisition and eliminating the inversion pulses from TOSSI after the data around the center of k-space is acquired. Results show that TOSSI contrast is maintained, while spatial resolution degradation is reduced. Additional benefits include reduced RF power deposition and faster imaging time. Application to high-resolution, non-subtraction thermal ablation monitoring is demonstrated.;An improved dark blood bSSFP pulse sequence (HEFEWEIZEN) has been developed by introducing spatial saturation in True-FISP. This method does not increase the repetition time (TR) or substantially alter stationary tissue contrast and allows for directional suppression of blood flow (e.g. arterial vs. venous). Comparison to diffusion-prepared SSFP in the common carotid artery demonstrated significantly improved vessel wall-lumen contrast-to-noise ratio efficiency (p = 0.02).;Intersecting-plane saturation band artifacts were characterized in three common steady-state pulse sequences (FLASH, FISP, and bSSFP). Substantial temporal and pulse sequence dependencies were found. Reverse centric phase encoding is demonstrated to be a simple and effective way of minimizing this artifact.
机译:MRI提供不同类型的精致软组织和功能对比。但是,取决于所需的对比度和空间分辨率属性,采集时间可能会很长。这项工作的长期目标是改进使用MRI快速准确地诊断人类疾病的方法,并提供可用于图像指导治疗和实时成像的资源。平衡的无状态进动(bSSFP)或True -FISP提供任何脉冲序列中最高的信噪比效率。但是,在bSSFP中,对比度是T1和T2权重的混合,这在临床上通常是不希望的,并且来自流动血液的信号是高强度的,会掩盖血管壁并产生伪影。同样,在快速获取的多平面图像的相交处存在阻塞性饱和带伪影。这项工作的目的是修改bSSFP序列的磁化制备和读出特性,以:(1)改进消除T1并分离T2对比度的方法,(2)抑制血液流动的信号,以及(3)表征和降低一种新的T型不敏感稳态成像(TOSSI)-bSSFP联合采集技术,即分辨率增强型TOSSI(RE-TOSSI),通过使用部分傅里叶采集并消除了TOSSI后的反转脉冲而开发出来的获取围绕k空间中心的数据。结果表明,TOSSI对比度得以保持,而空间分辨率的下降得以减少。其他好处包括减少射频功率沉积和更快的成像时间。证明了其在高分辨率,非减法热消融监测中的应用。;通过在True-FISP中引入空间饱和度,开发了一种改进的暗血bSSFP脉冲序列(HEFEWEIZEN)。该方法不会增加重复时间(TR)或基本不改变静止组织的对比度,并且可以定向抑制血流(例如,动脉与静脉)。与在颈总动脉中扩散制备的SSFP的比较表明,血管壁腔内腔的对噪比效率显着提高(p = 0.02);相交平面饱和带伪像在三种常见的稳态脉冲序列(FLASH)中进行了表征,FISP和bSSFP)。发现大量的时间和脉冲序列依赖性。反向中心相位编码被证明是最小化这种伪像的简单有效的方法。

著录项

  • 作者

    Derakhshan, Jamal Jon.;

  • 作者单位

    Case Western Reserve University.;

  • 授予单位 Case Western Reserve University.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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