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Microbubble cavitation imaging

机译:微泡空化成像

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摘要

Ultrasound cavitation of microbubble contrast agents has a potential for therapeutic applications such as sonothrombolysis (STL) in acute ischemic stroke. For safety, efficacy, and reproducibility of treatment, it is critical to evaluate the cavitation state (moderate oscillations, stable cavitation, and inertial cavitation) and activity level in and around a treatment area. Acoustic passive cavitation detectors (PCDs) have been used to this end but do not provide spatial information. This paper presents a prototype of a 2-D cavitation imager capable of producing images of the dominant cavitation state and activity level in a region of interest. Similar to PCDs, the cavitation imaging described here is based on the spectral analysis of the acoustic signal radiated by the cavitating microbubbles: ultraharmonics of the excitation frequency indicate stable cavitation, whereas elevated noise bands indicate inertial cavitation; the absence of both indicates moderate oscillations. The prototype system is a modified commercially available ultrasound scanner with a sector imaging probe. The lateral resolution of the system is 1.5 mm at a focal depth of 3 cm, and the axial resolution is 3 cm for a therapy pulse length of 20 ??s. The maximum frame rate of the prototype is 2 Hz. The system has been used for assessing and mapping the relative importance of the different cavitation states of a microbubble contrast agent. In vitro (tissue-mimicking flow phantom) and in vivo (heart, liver, and brain of two swine) results for cavitation states and their changes as a function of acoustic amplitude are presented.
机译:微泡造影剂的超声空化具有潜在的治疗应用前景,例如在急性缺血性卒中中的超声溶栓(STL)。为了治疗的安全性,有效性和可重复性,评估治疗区域内和周围的空化状态(中等振荡,稳定的空化和惯性空化)和活动水平至关重要。为此目的,已经使用了声学无源汽蚀检测器(PCD),但没有提供空间信息。本文提出了一种二维空化成像仪的原型,该成像仪能够产生感兴趣区域中主要空化状态和活动水平的图像。与PCD相似,此处描述的空化成像是基于对空化微气泡辐射的声信号的频谱分析:激发频率的超谐波表示稳定的空化,而升高的噪声带表示惯性的空化;两者均不存在则表明存在中等振荡。原型系统是带有扇形成像探头的改进型商用超声扫描仪。该系统的横向分辨率在3 cm的焦深下为1.5 mm,轴向分辨率为20 cms的治疗脉冲时为3 cm。原型的最大帧速率为2 Hz。该系统已用于评估和绘制微泡造影剂的不同空化状态的相对重要性。给出了体外(组织模拟流动模型)和体内(两只猪的心脏,肝脏和大脑)空化状态的结果及其作为声振幅的函数的变化。

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