Department of Radiological Sciences, David Geffen School of Medicine, University of California Los Angeles, Los Angeles, California.
Physics in Biology and Medicine Interdepartmental Graduate Program, University of California Los Angeles, Los Angeles, California.
Magn Reson Med. 2019 Dec;82(6):2062-2076. doi: 10.1002/mrm.27883. Epub 2019 Jun 30.
To develop and evaluate a variable-flip-angle golden-angle-ordered 3D stack-of-radial MRI technique for simultaneous proton resonance frequency shift (PRF) and T -based thermometry in aqueous and adipose tissues, respectively.
The proposed technique acquires multiecho radial k-space data in segments with alternating flip angles to measure 3D temperature maps dynamically on the basis of PRF and T . A sliding-window k-space weighted image contrast filter is used to increase temporal resolution. PRF is measured in aqueous tissues and T in adipose tissues using fat/water masks. The accuracy for T quantification was evaluated in a reference T /T phantom. In vivo nonheating experiments were conducted in healthy subjects to evaluate the stability of PRF and T in the brain, prostate, and breast. The proposed technique was used to monitor high-intensity focused ultrasound (HIFU) ablation in ex vivo porcine fat/muscle tissues and compared to temperature probe readings.
The proposed technique achieved 3D coverage with 1.1-mm to 1.3-mm in-plane resolution and 2-s to 5-s temporal resolution. During 20 to 30 min of nonheating in vivo scans, the temporal coefficient of variation for T was <5% in the brain, prostate, and breast fatty tissues, while the standard deviation of relative PRF temperature change was within 3°C in aqueous tissues. During ex vivo HIFU ablation, the temperatures measured by PRF and T were consistent with temperature probe readings, with an absolute mean difference within 2°C.
The proposed technique achieves simultaneous PRF and T -based dynamic 3D MR temperature mapping in aqueous and adipose tissues. It may be used to improve MRI-guided thermal procedures.
开发并评估一种可变翻转角黄金角有序 3D 堆叠径向 MRI 技术,用于分别在水和脂肪组织中进行质子共振频率偏移(PRF)和 T 基于的测温。
所提出的技术以 PRF 和 T 为基础,通过在分段中交替翻转角获取多回波径向 k 空间数据,动态地测量 3D 温度图。使用滑动窗口 k 空间加权图像对比滤波器来提高时间分辨率。在水组织中测量 PRF,在脂肪组织中测量 T 使用脂肪/水掩模。在 T / T 参考体模中评估 T 定量的准确性。在健康受试者中进行非加热实验,以评估脑、前列腺和乳房中 PRF 和 T 的稳定性。该技术用于监测高强度聚焦超声(HIFU)消融离体猪脂肪/肌肉组织,并与温度探头读数进行比较。
该技术实现了 3D 覆盖,具有 1.1mm 至 1.3mm 的面内分辨率和 2s 至 5s 的时间分辨率。在 20 至 30 分钟的非加热体内扫描期间,脑、前列腺和乳房脂肪组织中 T 的时间变异系数<5%,而水组织中相对 PRF 温度变化的标准差在 3°C 以内。在离体 HIFU 消融期间,PRF 和 T 测量的温度与温度探头读数一致,绝对平均差值在 2°C 以内。
所提出的技术实现了水和脂肪组织中同时进行的 PRF 和 T 基于的动态 3D MR 温度映射。它可用于改善 MRI 引导的热程序。