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用于表征聚焦超声治疗热机制的连续超声处理之间的相互作用。

Interactions between consecutive sonications for characterizing the thermal mechanism in focused ultrasound therapy.

作者信息

Liu Hao-Li, Chen Yung-Yaw, Chen Wen-Shiang, Shih Tzu-Ching, Chen Jhao-Syong, Lin Win-Li

机构信息

Department of Electrical Engineering, Chang-Gung University, Taoyuan, Taiwan.

出版信息

Ultrasound Med Biol. 2006 Sep;32(9):1411-21. doi: 10.1016/j.ultrasmedbio.2006.05.008.

Abstract

The use of focused ultrasound for thermal ablation or therapy has become a promising modality due to its high selectivity and noninvasiveness. The temperature increase that induces thermal necrosis in the focal beam area has been reported to be attributed to the absorption of ultrasound energy and heating enhancement by acoustic cavitation. The purpose of this study is to propose a novel experimental arrangement to observe the thermal lesion formation and to demonstrate that the presence of the ultrasound-induced, macroscopically-visible bubbles may exert a key effect in thermal lesion formation. In our experiments, consecutive sonications with orthogonal intersections were applied to observe the thermal lesion interaction induced by 577- or 1155-kHz ultrasound. Results showed that the 1155-kHz heating was dominated by ultrasound energy absorption, with blocking of consecutive sonications being evident only rarely. However, in 577-kHz sonications, the thermal process was dominated by inertial cavitation and the corresponding ultrasound-induced, macroscopically-visible bubbles, which was verified from the later lesion being blocked by the former one and direct observation from light microscopy. This study demonstrates that the operating frequency for ultrasound thermal ablation should be selected based on the intended specific thermal mechanisms to be induced.

摘要

由于聚焦超声具有高选择性和非侵入性,其在热消融或治疗中的应用已成为一种很有前景的方式。据报道,在聚焦束区域引起热坏死的温度升高归因于超声能量的吸收和声空化导致的加热增强。本研究的目的是提出一种新颖的实验装置来观察热损伤的形成,并证明超声诱导的、宏观可见的气泡的存在可能在热损伤形成中发挥关键作用。在我们的实验中,采用具有正交交叉点的连续超声处理来观察由577kHz或1155kHz超声诱导的热损伤相互作用。结果表明,1155kHz的加热主要由超声能量吸收主导,连续超声处理的阻断仅很少见。然而,在577kHz的超声处理中,热过程主要由惯性空化和相应的超声诱导的、宏观可见的气泡主导,这从后一个损伤被前一个损伤阻断以及光学显微镜的直接观察中得到了证实。本研究表明,应根据预期诱导的特定热机制来选择超声热消融的工作频率。

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