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Fast magnetic resonance temperature imaging for focused ultrasound thermal therapy.

机译:快速磁共振温度成像,用于聚焦超声热疗。

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摘要

The current standard for temperature sensitive imaging using magnetic resonance (MR) is 2-D, spoiled, fast gradient-echo (fGRE) phase-difference imaging exploiting temperature dependent changes in the proton resonance frequency (PRF). The echo-time (TE) for optimal sensitivity is larger than the typical repetition time (TR) of an fGRE sequence. Since TE must be less than TR in the fGRE sequence, this limits the technique's achievable sensitivity, spatial, and temporal resolution. This adversely affects both accuracy and volume coverage of the measurements. Accurate measurement of the rapid temperature changes associated with pulsed thermal therapies, such as high-intensity focused ultrasound (FUS), at optimal temperature sensitivity requires faster acquisition times than those currently available.; Use of fast MR acquisition strategies, such as interleaved echo-planar and spiral imaging, can provide the necessary increase in temporal performance and sensitivity while maintaining adequate signal-to-noise and in-plane spatial resolution. This research explored the adaptation and optimization of several fast MR acquisition methods for thermal monitoring of pulsed FUS thermal therapy. Temperature sensitivity, phase-difference noise and phase-difference to phase-difference-to noise ratio for the different pulse sequences were evaluated under varying imaging parameters in an agar gel phantom to establish optimal sequence parameters for temperature monitoring. The temperature sensitivity coefficient of the gel phantom was measured, allowing quantitative temperature extrapolations.; Optimized fast sequences were compared based on the ability to accurately monitor temperature changes at the focus of a high-intensity focused ultrasound unit, volume coverage, and contrast-to-noise ratio in the temperature maps. Operating parameters, which minimize complex phase-difference measurement errors introduced by use of the fast-imaging methods, were established.
机译:利用磁共振(MR)进行温度敏感成像的当前标准是利用质子共振频率(PRF)中随温度变化的二维,变质,快速梯度回波(fGRE)相差成像。最佳灵敏度的回波时间(TE)大于fGRE序列的典型重复时间(TR)。由于在fGRE序列中TE必须小于TR,因此这限制了该技术可实现的灵敏度,空间和时间分辨率。这不利地影响了测量的准确性和体积覆盖率。要在最佳温度敏感性下准确测量与脉冲热疗法(例如高强度聚焦超声(FUS))相关的快速温度变化,所需的采集时间要比目前可用的时间更快。快速MR采集策略的使用,例如交错的回波平面和螺旋成像,可以在保持适当的信噪比和平面内空间分辨率的同时,提高时间性能和灵敏度。这项研究探索了几种快速MR采集方法对脉冲FUS热疗法的热监测的适应性和优化。在琼脂凝胶体模中,在不同的成像参数下评估了不同脉冲序列的温度敏感性,相差噪声和相差与相差噪声比,以建立用于温度监测的最佳序列参数。测量了凝胶体模的温度敏感性系数,可以进行定量的温度外推。基于精确监控高强度聚焦超声单元焦点温度变化的能力,体积覆盖率和温度图中的对比度噪声比,对优化的快速序列进行了比较。建立了使使用快速成像方法引入的复杂相差测量误差最小的工作参数。

著录项

  • 作者

    Stafford, Roger Jason.;

  • 作者单位

    The University of Texas Health Science Center at Houston Graduate School of Biomedical Sciences.;

  • 授予单位 The University of Texas Health Science Center at Houston Graduate School of Biomedical Sciences.;
  • 学科 Health Sciences Radiology.; Physics Radiation.; Biophysics Medical.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 201 p.
  • 总页数 201
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 预防医学、卫生学;原子核物理学、高能物理学;生物物理学;
  • 关键词

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