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基于实时 3D 超声的运动跟踪技术在磁共振引导高强度聚焦超声治疗运动器官中的应用。

Real-time 3D ultrasound based motion tracking for the treatment of mobile organs with MR-guided high-intensity focused ultrasound.

机构信息

a IHU Liryc, Electrophysiology and Heart Modeling Institute, Fondation Bordeaux Universite´ , Pessac-Bordeaux , France.

b Centre de Recherche Cardio-Thoracique de Bordeaux , Univ. Bordeaux , Bordeaux , France.

出版信息

Int J Hyperthermia. 2018 Dec;34(8):1225-1235. doi: 10.1080/02656736.2018.1433879. Epub 2018 Feb 21.

Abstract

INTRODUCTION

Magnetic resonance-guided high-intensity focused ultrasound (MRgHIFU) treatments of mobile organs require locking the HIFU beam on the targeted tissue to maximise heating efficiency. We propose to use a standalone 3 D ultrasound (US)-based motion correction technique using the HIFU transducer in pulse-echo mode. Validation of the method was performed in vitro and in vivo in the liver of pig under MR-thermometry.

METHODS

3 D-motion estimation was implemented using ultrasonic speckle-tracking between consecutive acquisitions. Displacement was estimated along four sub-apertures of the HIFU transducer by computing the normalised cross-correlation of backscattered signals followed by a triangulation algorithm. The HIFU beam was steered accordingly and energy was delivered under real-time MR-thermometry (using the proton resonance frequency shift method with online motion compensation and correction of associated susceptibility artefacts). An MR-navigator echo was used to assess the quality of the US-based motion correction.

RESULTS

Displacement estimations from US measurements were in good agreement with 1 D MR-navigator echo readings. In vitro, the maximum temperature increase was improved by 37% as compared to experiments performed without motion correction and temperature distribution remained much more focussed. Similar results were reported in vivo, with an increase of 35% on the maximum temperature using this US-based HIFU target locking.

CONCLUSION

This standalone 3D US-based motion correction technique is robust and allows maintaining the HIFU focal spot in the presence of motion without adding any burden or complexity to MR thermal imaging. In vitro and in vivo results showed about 35% improvement in heating efficiency when focus position was locked on the target using the proposed technique.

摘要

简介

磁共振引导高强度聚焦超声(MRgHIFU)治疗移动器官需要将 HIFU 光束锁定在目标组织上,以最大限度地提高加热效率。我们提出使用一种基于独立的 3D 超声(US)的运动校正技术,该技术在脉冲回波模式下使用 HIFU 换能器。该方法在体外和猪肝的 MR 测温体内进行了验证。

方法

使用连续采集之间的超声散斑跟踪实现 3D 运动估计。通过计算背散射信号的归一化互相关,然后使用三角算法,沿着 HIFU 换能器的四个子孔径来估计位移。相应地引导 HIFU 光束,并在实时 MR 测温下(使用质子共振频率偏移方法,带有在线运动补偿和校正相关的磁化率伪影)输送能量。使用 MR 导航回波来评估基于 US 的运动校正的质量。

结果

US 测量的位移估计与 1D MR 导航回波读数吻合良好。在体外,与未进行运动校正的实验相比,最大温度升高提高了 37%,并且温度分布更加集中。在体内也得到了类似的结果,使用这种基于 US 的 HIFU 目标锁定,最大温度提高了 35%。

结论

这种独立的 3D US 基运动校正技术是鲁棒的,可以在存在运动的情况下保持 HIFU 焦点位置,而不会给 MR 热成像增加任何负担或复杂性。体外和体内结果表明,当使用所提出的技术将焦点位置锁定在目标上时,加热效率提高了约 35%。

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