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利用单阵元换能器进行超声治疗的同时监测声空化微泡。

Simultaneous Ultrasound Therapy and Monitoring of Microbubble-Seeded Acoustic Cavitation Using a Single-Element Transducer.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2017 Aug;64(8):1234-1244. doi: 10.1109/TUFFC.2017.2718513. Epub 2017 Jun 22.

Abstract

Ultrasound-driven microbubble (MB) activity is used in therapeutic applications such as blood clot dissolution and targeted drug delivery. The safety and performance of these technologies are linked to the type and distribution of MB activities produced within the targeted area, but controlling and monitoring these activities in vivo and in real time has proven to be difficult. As therapeutic pulses are often milliseconds long, MB monitoring currently requires a separate transducer used in a passive reception mode. Here, we present a simple, inexpensive, integrated setup, in which a focused single-element transducer can perform ultrasound therapy and monitoring simultaneously. MBs were made to flow through a vessel-mimicking tube, placed within the transducer's focus, and were sonicated with therapeutic pulses (peak rarefactional pressure: 75-827 kPa, pulse lengths: [Formula: see text] and 20 ms). The MB-seeded acoustic emissions were captured using the same transducer. The received signals were separated from the therapeutic signal with a hybrid coupler and a high-pass filter. We discriminated the MB-generated cavitation signal from the primary acoustic field and characterized MB behavior in real time. The simplicity and versatility of our circuit could make existing single-element therapeutic transducers also act as cavitation detectors, allowing the production of compact therapeutic systems with real time monitoring capabilities.

摘要

超声驱动的微泡(MB)活性用于治疗应用,如血栓溶解和靶向药物输送。这些技术的安全性和性能与在目标区域内产生的 MB 活性的类型和分布有关,但在体内和实时控制和监测这些活性已被证明是困难的。由于治疗脉冲通常只有几毫秒长,因此 MB 监测目前需要单独的换能器以被动接收模式使用。在这里,我们提出了一种简单、廉价、集成的设置,其中聚焦的单元件换能器可以同时进行超声治疗和监测。将 MB 制成流过放置在换能器焦点内的血管模拟管,并使用治疗脉冲(峰值稀疏压力:75-827 kPa,脉冲长度:[公式:见文本]和 20 ms)进行声处理。使用相同的换能器捕获 MB 引发的声发射。通过混合耦合器和高通滤波器从治疗信号中分离出接收信号。我们从主要声场中区分出 MB 产生的空化信号,并实时表征 MB 的行为。我们的电路的简单性和多功能性可以使现有的单元件治疗换能器也充当空化探测器,从而能够产生具有实时监测功能的紧凑型治疗系统。

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