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临床磁共振引导高强度聚焦超声系统在磁体腔内的声场特性。

Acoustic field characterization of a clinical magnetic resonance-guided high-intensity focused ultrasound system inside the magnet bore.

机构信息

Department of Biomedical Engineering, Washington University in St. Louis, Saint Louis, MO, 63130, USA.

Department of Radiation Oncology, Washington University in St. Louis, Saint Louis, MO, 63108, USA.

出版信息

Med Phys. 2017 Sep;44(9):4890-4899. doi: 10.1002/mp.12412. Epub 2017 Jul 25.

Abstract

PURPOSE

With the expanding clinical application of magnetic resonance-guided high-intensity focused ultrasound (MR-HIFU), acoustic field characterization of MR-HIFU systems is needed for facilitating regulatory approval and ensuring consistent and safe power output of HIFU transducers. However, the established acoustic field measurement techniques typically use equipment that cannot be used in a magnetic resonance imaging (MRI) suite, thus posing a challenge to the development and execution of HIFU acoustic field characterization techniques. In this study, we developed and characterized a technique for HIFU acoustic field calibration within the MRI magnet bore, and validated the technique with standard hydrophone measurements outside of the MRI suite.

METHODS

A clinical Philips MR-HIFU system (Sonalleve V2, Philips, Vantaa, Finland) was used to assess the proposed technique. A fiber-optic hydrophone with a long fiber was inserted through a 24-gauge angiocatheter and fixed inside a water tank that was placed on the HIFU patient table above the acoustic window. The long fiber allowed the hydrophone control unit to be placed outside of the magnet room. The location of the fiber tip was traced on MR images, and the HIFU focal point was positioned at the fiber tip using the MR-HIFU therapy planning software. To perform acoustic field mapping inside the magnet, the HIFU focus was positioned relative to the fiber tip using an MRI-compatible 5-axis robotic transducer positioning system embedded in the HIFU patient table. To perform validation measurements of the acoustic fields, the HIFU table was moved out of the MRI suite, and a standard laboratory hydrophone measurement setup was used to perform acoustic field measurements outside the magnetic field.

RESULTS

The pressure field scans along and across the acoustic beam path obtained inside the MRI bore were in good agreement with those obtained outside of the MRI suite. At the HIFU focus with varying nominal acoustic powers of 10-500 W, the peak positive pressure and peak negative pressure measured inside the magnet bore were 3.87-68.67 MPa and 3.56-12.06 MPa, respectively, while outside the MRI suite the corresponding pressures were 3.27-67.32 MPa and 3.06-12.39 MPa, respectively. There was no statistically significant difference (P > 0.05) between measurements inside the magnet bore and outside the MRI suite for the p and p at any acoustic power level. The spatial-peak pulse-average intensities (I ) for these powers were 312-17816 W/cm and 220-15698 W/cm for measurements inside and outside the magnet room, respectively. In addition, when the scanning step size of the HIFU focus was increased from 100 μm to 500 μm, the execution time for scanning a 4 × 4 mm area decreased from 210 min to 10 min, the peak positive pressure decreased by 14%, the peak negative pressure decreased by 5%, and the lateral full width at half maximum dimension of pressure profiles increased from 1.15 mm to 1.55 mm.

CONCLUSIONS

The proposed hydrophone measurement technique offers a convenient and reliable method for characterizing the acoustic fields of clinical MR-HIFU systems inside the magnet bore. The technique was validated for use by measurements outside the MRI suite using a standard hydrophone calibration technique. This technique can be a useful tool in MR-HIFU quality assurance and acoustic field assessment.

摘要

目的

随着磁共振引导高强度聚焦超声(MR-HIFU)的临床应用不断扩展,需要对 MR-HIFU 系统的声场特性进行评估,以促进监管审批,并确保 HIFU 换能器的稳定和安全功率输出。然而,现有的声场测量技术通常使用磁共振成像(MRI)套件中无法使用的设备,这对 HIFU 声场特性评估技术的开发和实施构成了挑战。本研究旨在开发并验证一种在 MRI 磁体腔内进行 HIFU 声场校准的技术,并在 MRI 套件外使用标准水听器进行验证。

方法

采用临床 Philips MR-HIFU 系统(Sonalleve V2,Philips,Vantaa,芬兰)评估所提出的技术。将带有长光纤的光纤水听器通过 24 号血管造影套管插入,并固定在放置于 HIFU 患者检查台上方声窗的水箱中。长光纤允许将水听器控制单元放置在磁室外。在 MR 图像上追踪光纤尖端的位置,并使用 MR-HIFU 治疗计划软件将 HIFU 焦点定位在光纤尖端。为了在磁体内进行声场测绘,使用嵌入 HIFU 患者检查台的 MRI 兼容 5 轴机器人换能器定位系统,使 HIFU 焦点相对于光纤尖端进行定位。为了对外声场进行验证测量,将 HIFU 检查台移出 MRI 套房,使用标准的实验室水听器测量设置在磁场外进行声场测量。

结果

在 MRI 磁体内获得的声束路径沿线和跨线的压力场扫描结果与在 MRI 套件外获得的结果非常吻合。在标称声功率为 10-500 W 的 HIFU 焦点处,在磁体内测量的峰值正压和峰值负压分别为 3.87-68.67 MPa 和 3.56-12.06 MPa,而在 MRI 套件外测量的相应压力分别为 3.27-67.32 MPa 和 3.06-12.39 MPa。在任何声功率水平下,磁体内测量的 p 和 p 值与 MRI 套件外测量值之间均无统计学差异(P > 0.05)。对于这些功率,在磁体内和磁室外测量的空间峰值脉冲平均强度(I )分别为 312-17816 W/cm 和 220-15698 W/cm。此外,当 HIFU 焦点的扫描步长从 100 μm 增加到 500 μm 时,扫描 4×4 mm 区域的执行时间从 210 分钟减少到 10 分钟,峰值正压降低了 14%,峰值负压降低了 5%,压力分布的横向半最大值全宽尺寸从 1.15 mm 增加到 1.55 mm。

结论

所提出的水听器测量技术为在 MRI 磁体内对临床 MR-HIFU 系统的声场特性进行评估提供了一种便捷、可靠的方法。通过使用标准水听器校准技术,对 MRI 套件外的使用进行了验证。该技术可成为 MR-HIFU 质量保证和声场评估的有用工具。

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