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使用声涡旋捕获的微泡的 3-D 超快速超声成像。

3-D Ultrafast Ultrasound Imaging of Microbubbles Trapped Using an Acoustic Vortex.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2021 Dec;68(12):3507-3514. doi: 10.1109/TUFFC.2021.3095241. Epub 2021 Nov 23.

Abstract

Increasing the local concentration of microbubbles (MBs) within the blood flow plays a crucial role in several medical applications, but there are few imaging modalities available for volumetric tracking of the aggregated MBs in real time. Here we describe a device integrating acoustic vortex tweezers (AVTs) and ultrasound plane-wave imaging (PWI) to achieve the goal of controlling the spatial distribution of MBs in blood vessels and simultaneously monitoring this process using the same probe. Experiments were conducted using a 5-MHz 2-D array ultrasound probe (with three cycles of excitation at an acoustic pressure of 2000 kPa) and 1.2- [Formula: see text]-diameter MBs at a flow rate of 20 mm/s. The AVT waveform was produced by modulating the repetition frequency of the transmitted pulse asymmetrically (4 and 8 kHz at the inflow and outflow ends, respectively). In order to simultaneously capture MBs and carry out imaging with the same probe, the asymmetric AVT pulse signal and the ultrasound-imaging pulse signal were arranged in a staggered series, and the imaging was carried out using plane-wave pulses at nine angles (-7° to 7°) in compounded PWI (volume rate: 200 Hz). Microscopy observations showed that freely suspended MBs could indeed be gathered by the asymmetric AVT in the flow field to form an MBs cluster with a spot size of about [Formula: see text], which could resist the flow to remain at a fixed location for about 22 s. After the asymmetric AVT signal and the ultrasound-imaging pulse signal were turned on for 1 s, the ultrasound 3-D image showed that the signal intensity of the MB clusters increased by 13.1 dB ± 2.9 dB in relation to the background area. These results show that the proposed strategy can be used to accumulate flowing MBs at a desired location and to simultaneously observe this phenomenon. This tool could be used in the future to improve the outcomes of MB-related treatments for various diseases.

摘要

提高血流中微泡(MBs)的局部浓度在许多医学应用中起着至关重要的作用,但目前可用的用于实时体积跟踪聚集 MBs 的成像方式却很少。在这里,我们描述了一种集成声涡旋镊子(AVTs)和超声平面波成像(PWI)的设备,以实现控制血管中 MBs 空间分布的目标,并使用同一探头同时监测这一过程。实验使用了一个 5MHz 的 2D 阵列超声探头(在 2000kPa 的声压下激励三个周期)和 1.2- [Formula: see text]-直径的 MBs,流速为 20mm/s。AVT 波形通过不对称地调制发射脉冲的重复频率来产生(流入端和流出端分别为 4kHz 和 8kHz)。为了同时用同一探头捕获 MBs 并进行成像,将不对称 AVT 脉冲信号和超声成像脉冲信号交错排列,使用平面波脉冲在复合 PWI 中以九个角度(-7°至 7°)进行成像(体率:200Hz)。显微镜观察表明,自由悬浮的 MBs 确实可以被流场中的不对称 AVT 聚集在一起,形成一个大小约为 [Formula: see text] 的 MBs 团簇,该团簇可以抵抗流动,在固定位置停留约 22s。在不对称 AVT 信号和超声成像脉冲信号开启 1s 后,超声 3D 图像显示,与背景区域相比,MB 团簇的信号强度增加了 13.1dB±2.9dB。这些结果表明,所提出的策略可用于将流动的 MBs 聚集在所需位置,并同时观察这一现象。该工具将来可用于提高与各种疾病相关的 MB 治疗的效果。

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