Institute of Biomedical Engineering, Departmentof Engineering, University of Oxford, Oxford OX1 3PJ, UK.
IEEE Trans Biomed Eng. 2010 Jan;57(1):48-56. doi: 10.1109/TBME.2009.2026907. Epub 2009 Jul 21.
A novel method for mapping inertial cavitation activity during high-intensity focused ultrasound (HIFU) exposure is presented. Inertial cavitation has been previously shown to result in increased heat deposition and to be associated with broadband noise emissions that can be readily monitored using a passive receiver without interference from the main HIFU signal. In the present study, the signals received passively by each of 64 elements on a standard diagnostic array placed coaxially with the HIFU transducer are combined using time exposure acoustics to generate maps of inertially cavitating regions during HIFU exposure of an agar-based tissue-mimicking material. The technique is shown to be effective in localizing single-bubble activity, as well as contiguous and disjoint cavitating regions instigated by creating regions of lower cavitation threshold within the tissue phantom. The cavitation maps obtained experimentally are also found to be in good agreement with computational simulations and theoretical predictions. Unlike B-mode imaging, which requires interleaving with the HIFU pulse, passive array-based mapping of cavitation activity is possible during HIFU exposure. If cavitating regions can be directly correlated to increased tissue damage, this novel cavitation mapping technique could enable real-time HIFU treatment monitoring.
一种用于在高强度聚焦超声(HIFU)暴露期间绘制惯性空化活动的新方法。先前已经表明,惯性空化会导致热量沉积增加,并与宽带噪声排放有关,这些噪声排放可以使用无源接收器进行监测,而不会受到主 HIFU 信号的干扰。在本研究中,将同轴放置在 HIFU 换能器上的标准诊断阵列的 64 个元件中的每个元件被动接收的信号使用时程声学进行组合,以生成在 HIFU 暴露于基于琼脂的组织模拟材料期间惯性空化区域的地图。该技术被证明可有效地定位单个气泡活动,以及由在组织模拟物中创建较低空化阈值区域引发的连续和不连续的空化区域。实验获得的空化图也与计算模拟和理论预测非常吻合。与需要与 HIFU 脉冲交错的 B 模式成像不同,在 HIFU 暴露期间可以进行基于无源阵列的空化活动映射。如果可以将空化区域直接关联到增加的组织损伤,那么这种新型的空化映射技术可以实现实时 HIFU 治疗监测。