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高强度聚焦超声碎石术联合空化微泡。

High intensity focused ultrasound lithotripsy with cavitating microbubbles.

机构信息

Department of Electrical and Communication Engineering, Tohoku University, Sendai, Japan.

出版信息

Med Biol Eng Comput. 2009 Aug;47(8):851-60. doi: 10.1007/s11517-009-0471-y. Epub 2009 Apr 10.

Abstract

In the medical ultrasound field, microbubbles have recently been the subject of much interest. Controlling actively the effect of the microbubbles, a novel therapeutic method has been investigated. In this paper, our works on high intensity focused ultrasound (HIFU) lithotripsy with cavitating microbubbles are reviewed and the cavitation detection method to optimize the HIFU intensity is investigated. In the HIFU lithotripsy, collapse of the cloud cavitation is used to fragment kidney stones. Cloud cavitation is potentially the most destructive form of cavitation. When the cloud cavitation is acoustically forced into a collapse, it has the potential to concentrate a very high pressure. For the control of the cloud cavitation collapse, a novel two-frequency wave (cavitation control [C-C] waveform) is designed; a high-frequency ultrasound pulse (1-4 MHz) to create the cloud cavitation and a low-frequency trailing pulse (500 kHz) following the high-frequency pulse to force the cloud into collapse. High-speed photography showed the cavitation collapse on the stone and the shock-wave emission from the cloud. In vitro erosion tests of model and natural stones were also conducted. In the case of model stones, the erosion rate of the C-C waveform showed a distinct advantage with the combined high- and low-frequency waves over either wave alone. For the optimization of the high-frequency ultrasound intensity, the subharmonic acoustic pressure was examined. The results showed relationship between the subharmonic pressure from cavitating bubbles induced by the high-frequency ultrasound and eroded volume of the model stones. Natural stones were eroded and most of the resulting fragments were less than 1 mm in diameter. The method has the potential to provide a novel lithotripsy system with small fragments and localized cavitating bubbles on a stone.

摘要

在医学超声领域,微泡最近引起了广泛关注。通过主动控制微泡的作用,研究了一种新的治疗方法。本文综述了我们在高强度聚焦超声(HIFU)碎石中应用空化微泡的工作,并研究了用于优化 HIFU 强度的空化检测方法。在 HIFU 碎石中,利用云空化的崩溃来击碎肾结石。云空化具有潜在的破坏性。当云空化被声强迫崩溃时,它有可能集中很高的压力。为了控制云空化的崩溃,设计了一种新型双频波(空化控制[C-C]波形);一个高频超声脉冲(1-4 MHz)来产生云空化,一个低频尾随脉冲(500 kHz)跟随高频脉冲以迫使云空化崩溃。高速摄影显示了结石上的空化崩溃和云空化的冲击波发射。还进行了模型和天然结石的体外侵蚀试验。在模型结石的情况下,C-C 波形的侵蚀率显示出明显的优势,高频和低频联合波比单独使用任何一种波都具有优势。为了优化高频超声强度,研究了次谐波声压。结果表明,高频超声诱导的空化气泡的次谐波压力与模型结石的侵蚀体积之间存在关系。天然结石被侵蚀,大部分产生的碎片直径小于 1 毫米。该方法有可能提供一种新的碎石系统,具有较小的结石碎片和局部空化气泡。

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