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运动器官中高强度聚焦超声手术的皮肤接触控制的运动补偿。

Motion compensation with skin contact control for high intensity focused ultrasound surgery in moving organs.

机构信息

The BioRobotics Institute, Scuola Superiore Sant'Anna, Pisa, Italy. These authors equally contributed to the work.

出版信息

Phys Med Biol. 2018 Jan 26;63(3):035017. doi: 10.1088/1361-6560/aa9c22.

Abstract

High intensity focused ultrasound (HIFU) is an emerging therapeutic solution that enables non-invasive treatment of several pathologies, mainly in oncology. On the other hand, accurate targeting of moving abdominal organs (e.g. liver, kidney, pancreas) is still an open challenge. This paper proposes a novel method to compensate the physiological respiratory motion of organs during HIFU procedures, by exploiting a robotic platform for ultrasound-guided HIFU surgery provided with a therapeutic annular phased array transducer. The proposed method enables us to keep the same contact point between the transducer and the patient's skin during the whole procedure, thus minimizing the modification of the acoustic window during the breathing phases. The motion of the target point is compensated through the rotation of the transducer around a virtual pivot point, while the focal depth is continuously adjusted thanks to the axial electronically steering capabilities of the HIFU transducer. The feasibility of the angular motion compensation strategy has been demonstrated in a simulated respiratory-induced organ motion environment. Based on the experimental results, the proposed method appears to be significantly accurate (i.e. the maximum compensation error is always under 1 mm), thus paving the way for the potential use of this technique for in vivo treatment of moving organs, and therefore enabling a wide use of HIFU in clinics.

摘要

高强度聚焦超声(HIFU)是一种新兴的治疗方法,可实现多种疾病的非侵入性治疗,主要用于肿瘤学。另一方面,准确靶向移动的腹部器官(如肝、肾、胰腺)仍然是一个尚未解决的挑战。本文提出了一种新的方法,通过利用配备治疗性环形相控阵换能器的超声引导 HIFU 手术机器人平台,在 HIFU 手术过程中补偿器官的生理呼吸运动。该方法可在整个手术过程中保持换能器与患者皮肤的接触点不变,从而最大限度地减少呼吸过程中声窗的变化。通过围绕虚拟枢轴点旋转换能器来补偿目标点的运动,同时由于 HIFU 换能器的轴向电子转向能力,连续调整焦点深度。在模拟呼吸引起的器官运动环境中,验证了角运动补偿策略的可行性。基于实验结果,该方法具有很高的准确性(即最大补偿误差始终低于 1mm),为该技术在活体移动器官治疗中的潜在应用铺平了道路,从而使 HIFU 在临床上得到更广泛的应用。

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