Delivery of Cavitation Therapy With a Modified Clinical Scanner: In Vitro Evaluation

IF 3 2区 工程技术 Q1 ACOUSTICS
Lance H. De Koninck;Kaleb S. Vuong;Seonghun Shin;Jeffry E. Powers;Michalakis A. Averkiou
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引用次数: 0

Abstract

In this study, we design and implement pulses [1.67 MHz, 20–1000 cycles, 0.8–2.5 MPa, and 5–100 ms pulse repetition time (PRT)] suitable for microbubble cavitation treatments with a phased array of a clinical ultrasound scanner. A range of acoustic parameters was evaluated in a tissue-mimicking phantom with suspended Sonazoid microbubbles. Hydrophone measurements were used to optimize the transmit beamforming. A passive cavitation detection (PCD) system was designed to measure the microbubble scattered signals over a 1 s exposure. Postprocessing of the scattered signals evaluated frequency content to extract broadband energy and calculate the inertial cavitation dose (ICD). ICD was maximized at 1000 cycles (maximum pulse length), 5 ms (fastest firing rate), and 2.5 MPa peak negative pressure (PNP) (maximum pressure). Inertial cavitation was only sustained for about three pulses (out of hundreds fired) occurring within the first 100 ms of treatment. Temporal analysis of the first 1000-cycle pulse revealed that broadband energy is sustained for the entire pulse. We also demonstrate that while inertial cavitation is possible with clinically available pulse wave Doppler settings, ICD can be significantly increased using the new conditions suggested in this work. We have delivered successful image-guided cavitation treatment after modifying a clinical scanner and monitored the cavitation dose with a PCD system on a gel phantom with suspended microbubbles. We plan to apply this technique in vivo in animal tumor models next. This work demonstrates the first implementation of long, high-pressure pulses on a clinical scanner that users can optimize for cavitation treatments.
用改良的临床扫描仪进行空化治疗:体外评估。
在本研究中,我们设计并实现了适用于临床超声扫描仪相控阵治疗微泡空化的脉冲(1.67 MHz, 20-1000个周期,0.8-2.5 MPa, 5-100 ms脉冲重复时间)。一系列声学参数被评估在一个组织模拟幻影与悬浮索那唑类微泡。采用水听器测量优化发射波束形成。设计了一种被动空化检测系统,用于测量暴露时间为1 s的微泡散射信号。对散射信号进行后处理,评估频率含量提取宽带能量,计算惯性空化剂量(ICD)。ICD在1000次循环(最大脉冲长度)、5ms(最快发射速率)和2.5 MPa峰值负压(最大压力)下达到最大。在治疗的前100毫秒内,惯性空化只持续了大约3个脉冲(发射了100个脉冲)。前1000周期脉冲的时间分析表明,宽带能量在整个脉冲中持续存在。我们还证明,虽然临床上可用的脉冲波多普勒设置是可能的惯性空化,但使用本工作中建议的新条件可以显着增加ICD。在改进了临床扫描仪后,我们成功地提供了图像引导的空化治疗,并在带有悬浮微泡的凝胶幻影上使用PCD系统监测空化剂量。下一步,我们计划将该技术应用于动物体内肿瘤模型。这项工作首次在临床扫描仪上实现了长高压脉冲,用户可以优化空化治疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.70
自引率
16.70%
发文量
583
审稿时长
4.5 months
期刊介绍: IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control includes the theory, technology, materials, and applications relating to: (1) the generation, transmission, and detection of ultrasonic waves and related phenomena; (2) medical ultrasound, including hyperthermia, bioeffects, tissue characterization and imaging; (3) ferroelectric, piezoelectric, and piezomagnetic materials, including crystals, polycrystalline solids, films, polymers, and composites; (4) frequency control, timing and time distribution, including crystal oscillators and other means of classical frequency control, and atomic, molecular and laser frequency control standards. Areas of interest range from fundamental studies to the design and/or applications of devices and systems.
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