低频超声条件下纳米气泡的体积被动声成像与空化检测

IF 5.7 Q2 CHEMISTRY, PHYSICAL
Hila Shinar,  and , Tali Ilovitsh*, 
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引用次数: 0

摘要

通常用于医学超声(US)的气泡见证了纳米气泡(NB)的进步,提供了比微气泡(MB)更好的能力。在全身注射后,NBs可以增强对毛细血管的渗透和向肿瘤外渗的能力,同时延长循环和持续的声学造影剂。NBs的低频声波(1mhz)在诱导显著生物效应方面具有巨大潜力,因此监测其声学反应对于实现治疗目标至关重要。我们介绍了一种US引导聚焦US系统,该系统包括一个位于低频治疗传感器(中心频率为105和200 kHz)内的一维(1D)机动旋转成像传感器,有助于在三维(3D)中精确监测NB空化活动,并与mb进行比较。被动空化检测(PCD)显示出频率相关的响应,当中心频率为105 kHz,峰值负压范围为100至350 kPa时,NBs的稳定和惯性空化剂量明显高于相同气体体积的mb。在200 kHz时,MBs表现出比NBs更高的空化剂量。PCD显示,与200 kHz相比,105 kHz增强了nb ‘和mb ’的振荡。该系统进一步用于3D被动声学测绘(PAM),以提供PCD监测的空间分辨率。每个旋转角度捕获二维PAM,并用于生成完整的三维PAM重建。实验结果表明,对比PAM全宽半最大值(FWHM)随旋转角度的变化是一致的,MBs和NBs之间的FWHM相似。频率选择性PAM图通过谐波、超谐波和宽带内容区分了稳定空化和惯性空化,提供了对空化动力学的见解。这些发现突出了nb在较低频率下的优越性能。开发的3D-PAM技术与1D换能器提供了一种有前途的技术,用于实时,无创监测基于空腔的US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。
Volumetric Passive Acoustic Mapping and Cavitation Detection of Nanobubbles under Low-Frequency Insonation

Gas bubbles, commonly used in medical ultrasound (US), witness advancements with nanobubbles (NB), providing improved capabilities over microbubbles (MB). NBs offer enhanced penetration into capillaries and the ability to extravasate into tumors following systemic injection, alongside prolonged circulation and persistent acoustic contrast. Low-frequency insonation (<1 MHz) with NBs holds great potential in inducing significant bioeffects, making the monitoring of their acoustic response critical to achieving therapeutic goals. We introduce a US-guided focused US system comprising a one-dimensional (1D) motorized rotating imaging transducer positioned within a low-frequency therapeutic transducer (center frequencies of 105 and 200 kHz), facilitating precise monitoring of NB cavitation activity in three-dimensional (3D) and comparison with MBs. Passive cavitation detection (PCD) revealed frequency-dependent responses, with NBs exhibiting significantly higher stable and inertial cavitation doses compared to MBs of the same gas volume when excited at a center frequency of 105 kHz and peak negative pressures ranging from 100 to 350 kPa. At 200 kHz, MBs showed higher cavitation doses than NBs. PCD showed that 105 kHz enhanced both NBs’ and MBs’ oscillations compared to 200 kHz. The system was further used for 3D passive acoustic mapping (PAM) to provide spatial resolution alongside PCD monitoring. Two-dimensional PAM was captured for each rotation angle and used to generate a complete 3D PAM reconstruction. Experimental results obtained from a tube phantom demonstrated consistent contrast PAM full-width half-maximum (FWHM) as a function of rotation angle, with similar FWHM between MBs and NBs. Frequency-selective PAM maps distinguished between stable and inertial cavitation via the harmonic, ultraharmonic and broadband content, offering insights into cavitation dynamics. These findings highlight NBs’ superior performance at lower frequencies. The developed 3D-PAM technique with a 1D transducer presents a promising technology for real-time, noninvasive monitoring of cavitation-based US therapies.

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来源期刊
ACS Materials Au
ACS Materials Au 材料科学-
CiteScore
5.00
自引率
0.00%
发文量
0
期刊介绍: ACS Materials Au is an open access journal publishing letters articles reviews and perspectives describing high-quality research at the forefront of fundamental and applied research and at the interface between materials and other disciplines such as chemistry engineering and biology. Papers that showcase multidisciplinary and innovative materials research addressing global challenges are especially welcome. Areas of interest include but are not limited to:Design synthesis characterization and evaluation of forefront and emerging materialsUnderstanding structure property performance relationships and their underlying mechanismsDevelopment of materials for energy environmental biomedical electronic and catalytic applications
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