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首页> 外文期刊>International journal of hyperthermia: The official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group >Evaluation of an MRI receive head coil for use in transcranial MR guided focused ultrasound for functional neurosurgery
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Evaluation of an MRI receive head coil for use in transcranial MR guided focused ultrasound for functional neurosurgery

机译:用于MRI接收头圈的评估用于经颅MR引导的聚焦超声用于功能性神经外科

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Background Trans-cranial MR guided focused ultrasound (tcMRgFUS) ablation targets are 5mm from critical neurological structures, creating a need for improved MR imaging and thermometry. The purpose of this study was to evaluate the performance of a dual-channel radiofrequency receive-only head coil designed specifically for integrated use in tcMRgFUS. Methods Imaging used a 3?T MRI and the ExAblate Neuro System (INSIGHTEC Inc., Israel). Sensitivity maps determined receive-only coil uniformity. The head coil was compared to the volume body coil at the level of the thalamus using 1) T2-weighted imaging and 2) multi-echo MR thermometry of volunteers in the transducer helmet. Thermal sonications (40?W, 24s) were acquired in a heating phantom. Thermal maps in were constructed to evaluate temperature uncertainty, focal heating, and temperature evolution. Results The normalized signal intensity showed up to a 35% variation. On T2wFSE images the SNR with the head coil is improved by 4x in the axial plane, and 3x in sagittal and coronal planes. The head coil provided better visualization of the thalamus and globus pallidus (axial), and of the anterior/posterior commissure, and brain stem/cerebellum (sagittal) compared to the body coil. MR thermometry showed a 4x gain in SNR in the thalamus. Thermometry showed a preserved focal spot with 20?°C temperature rise. The average temperature uncertainty (mean?±?std) was reduced from σ T = 0.96?°C?±?0.55?°C for the body coil to σ T = 0.41?°C?±?0.24?°C for the head coil. Conclusions Greater SNR from the dual-channel head coil provides access to better treatment day visualization for treatment planning and higher precision intra-operative thermometry.
机译:背景技术跨颅MR引导聚焦超声(TCMRGFU)消融靶靶向临界神经结构的末端末端(TCMRGFU)消融靶标。需要改进MR成像和温度测量的需要。本研究的目的是评估专门为TCMRGFUS综合使用设计的双通道射频接收接收头圈的性能。方法成像使用3?T MRI和展开的神经系统(Insightec Inc.,以色列)。灵敏度映射确定仅接收线圈均匀性。将头部线圈与丘脑水平的体积体线圈进行比较,使用1)T2加权成像和2)换能器头盔中的志愿者的多回波MR温度。在加热体验中获得热超声处理(40℉,24秒)。构建热图以评估温度不确定性,焦点加热和温度进化。结果归一化信号强度显示出高达35%的变化。在T2WFSE图像上,在轴向平面中,带头圈的SNR改善了4倍,并且在矢状和冠状平面中得到3倍。头部线圈提供与体线圈相比的丘脑和球状粘膜(轴向)和前部/后部外壳(轴向)和脑干/小脑(矢状)的更好的可视化。 MR Thermetry在丘脑中显示出4倍的增益。温度呈现具有20℃的保存焦点,温度升高。对于主线圈,平均温度不确定度(平均值?±STD)从σt=0.96Ω°C =±0.55Ω°C减少到σt=0.41Ω·°C?±0.24?°C线圈。结论来自双通道头部线圈的更大的SNR提供了对治疗规划和更高精密术中测温的更好的治疗日可视化。

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