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通过联合建模和被动声映射方法实现高强度聚焦超声消融的实时温度估计和监测。

Real-time temperature estimation and monitoring of HIFU ablation through a combined modeling and passive acoustic mapping approach.

机构信息

Institute of Biomedical Engineering, Department of Engineering, University of Oxford, Old Road Campus Research Building, Oxford, OX3 7DQ, UK.

出版信息

Phys Med Biol. 2013 Sep 7;58(17):5833-50. doi: 10.1088/0031-9155/58/17/5833. Epub 2013 Aug 6.

Abstract

Passive acoustic mapping (PAM) has been recently demonstrated as a method of monitoring focused ultrasound therapy by reconstructing the emissions created by inertially cavitating bubbles (Jensen et al 2012 Radiology 262 252-61). The published method sums energy emitted by cavitation from the focal region within the tissue and uses a threshold to determine when sufficient energy has been delivered for ablation. The present work builds on this approach to provide a high-intensity focused ultrasound (HIFU) treatment monitoring software that displays both real-time temperature maps and a prediction of the ablated tissue region. This is achieved by determining heat deposition from two sources: (i) acoustic absorption of the primary HIFU beam which is calculated via a nonlinear model, and (ii) absorption of energy from bubble acoustic emissions which is estimated from measurements. The two sources of heat are used as inputs to the bioheat equation that gives an estimate of the temperature of the tissue as well as estimates of tissue ablation. The method has been applied to ex vivo ox liver samples and the estimated temperature is compared to the measured temperature and shows good agreement, capturing the effect of cavitation-enhanced heating on temperature evolution. In conclusion, it is demonstrated that by using PAM and predictions of heating it is possible to produce an evolving estimate of cell death during exposure in order to guide treatment for monitoring ablative HIFU therapy.

摘要

被动声学测绘(PAM)最近被证明是一种通过重建由惯性空化气泡产生的发射来监测聚焦超声治疗的方法(Jensen 等人,2012 年放射学 262 252-61)。已发表的方法对组织内焦点区域的空化发射能量进行求和,并使用阈值来确定何时已经输送了足够的能量用于消融。本工作基于该方法提供了一种高强度聚焦超声(HIFU)治疗监测软件,该软件显示实时温度图和消融组织区域的预测。这是通过确定两个来源的热沉积来实现的:(i)通过非线性模型计算的主要 HIFU 束的声吸收,以及(ii)从气泡声发射吸收的能量的估计,该估计来自测量。这两个热源被用作生物热方程的输入,该方程给出了组织温度的估计以及组织消融的估计。该方法已应用于离体牛肝样本,估计的温度与测量的温度进行了比较,结果吻合良好,捕捉到了空化增强加热对温度演化的影响。总之,结果表明,通过使用 PAM 和加热预测,可以在暴露期间产生细胞死亡的不断变化的估计,以指导治疗监测消融性 HIFU 治疗。

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