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使用谐波运动成像(HMI)进行高强度聚焦超声(HIFU)焦点定位。

High intensity focused ultrasound (HIFU) focal spot localization using harmonic motion imaging (HMI).

作者信息

Han Yang, Hou Gary Yi, Wang Shutao, Konofagou Elisa

机构信息

Department of Biomedical Engineering, Columbia University, New York, NY 10027, USA.

出版信息

Phys Med Biol. 2015 Aug 7;60(15):5911-24. doi: 10.1088/0031-9155/60/15/5911. Epub 2015 Jul 17.

Abstract

Several ultrasound-based imaging modalities have been proposed for image guidance and monitoring of high-intensity focused ultrasound (HIFU) treatment. However, accurate localization and characterization of the effective region of treatment (focal spot) remain important obstacles in the clinical implementation of HIFU ablation. Harmonic motion imaging for focused ultrasound (HMIFU) is a HIFU monitoring technique that utilizes radiation-force-induced localized oscillatory displacement. HMIFU has been shown to correctly identify the formation and extent of HIFU thermal ablation lesions. However a significant problem remains in identifying the location of the HIFU focus, which is necessary for treatment planning. In this study, the induced displacement was employed to localize the HIFU focal spot inside the tissue prior to treatment. Feasibility was shown with two separate systems. The 1D HMIFU system consisted of a HIFU transducer emitting an amplitude-modulated HIFU beam for mechanical excitation and a confocal single-element, pulse-echo transducer for simultaneous RF acquisition. The 2D HIFU system consists of a HIFU phased array, and a co-axial imaging phased array for simultaneous imaging. Initial feasibility was first performed on tissue-mimicking gelatin phantoms and the focal zone was defined as the region corresponding to the -3dB full width at half maximum of the HMI displacement. Using the same parameters, in vitro experiments were performed in canine liver specimens to compare the defined focal zone with the lesion. In vitro measurements showed good agreement between the HMI predicted focal zone and the induced HIFU lesion location. HMIFU was experimentally shown to be capable of predicting and tracking the focal region in both phantoms and in vitro tissues. The accuracy of focal spot localization was evaluated by comparing with the lesion location in post-ablative tissues, with a R(2) = 0.821 at p < 0.002 in the 2D HMI system. We demonstrated the feasibility of using this HMI-based technique to localize the HIFU focal spot without inducing thermal changes during the planning phase. The focal spot localization method has also been applied on ex vivo human breast tissue ablation and can be fully integrated into any HMI system for planning purposes.

摘要

已经提出了几种基于超声的成像方式用于高强度聚焦超声(HIFU)治疗的图像引导和监测。然而,在HIFU消融的临床应用中,治疗有效区域(焦点)的准确定位和特征描述仍然是重要障碍。聚焦超声谐波运动成像(HMIFU)是一种利用辐射力诱导的局部振荡位移的HIFU监测技术。HMIFU已被证明能够正确识别HIFU热消融病灶的形成和范围。然而,在确定HIFU焦点的位置方面仍然存在一个重大问题,而这对于治疗规划是必要的。在本研究中,诱导位移被用于在治疗前定位组织内的HIFU焦点。在两个独立的系统中展示了其可行性。一维HMIFU系统由一个发射调幅HIFU束以进行机械激发的HIFU换能器和一个用于同步射频采集的共焦单元素脉冲回波换能器组成。二维HIFU系统由一个HIFU相控阵和一个用于同步成像的同轴成像相控阵组成。首先在仿组织明胶模型上进行了初步可行性研究,焦点区域被定义为对应于HMI位移半高宽-3dB处的区域。使用相同参数,在犬肝标本上进行了体外实验,以将定义的焦点区域与病灶进行比较。体外测量表明,HMI预测的焦点区域与诱导的HIFU病灶位置之间具有良好的一致性。实验表明,HMIFU能够在模型和体外组织中预测和跟踪焦点区域。通过与消融后组织中的病灶位置进行比较来评估焦点定位的准确性,在二维HMI系统中,R(2) = 0.821,p < 0.002。我们证明了在规划阶段使用这种基于HMI的技术定位HIFU焦点而不引起热变化的可行性。焦点定位方法也已应用于离体人乳腺组织消融,并且可以完全集成到任何用于规划目的的HMI系统中。

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