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优化相变对比剂的声激活:激活压力匹配方法综述。

Optimizing Acoustic Activation of Phase Change Contrast Agents With the Activation Pressure Matching Method: A Review.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2017 Jan;64(1):264-272. doi: 10.1109/TUFFC.2016.2616304. Epub 2016 Oct 12.

Abstract

Submicrometer phase-change contrast agents (PCCAs) consist of a liquid perfluorocarbon (PFC) core that can be vaporized by ultrasound (acoustic droplet vaporization) to generate contrast with excellent spatial and temporal control. When these agents, commonly referred to as nanodroplets, are formulated with cores of low boiling-point PFCs such as decafluorobutane and octafluoropropane, they can be activated with low-mechanical-index (MI) imaging pulses for diagnostic applications. Since the utilization of minimum MI is often desirable to avoid unnecessary biological effects, enabling consistent activation of these agents in an acoustic field is a challenge because the energy that must be delivered to achieve the vaporization threshold increases with depth due to attenuation. A novel vaporization approach called activation pressure matching (APM) has been developed to deliver the same pressure throughout a field of view in order to produce uniform nanodroplet vaporization and to limit the amount of energy that is delivered. In this paper, we discuss the application of this method with a Verasonics V1 Research Ultrasound System to modulate the output pressure from an ATL L11-5 transducer. Vaporization-pulse spacing optimization can be used in addition to matching the activation pressure through depth, and we demonstrate the feasibility of this approach both in vivo and in vitro. The use of optimized vaporization parameters increases the amount of time a single bolus of nanodroplets can generate useful contrast and provides consistent image enhancement in vivo. Therefore, APM is a useful technique for maximizing the efficacy of PCCA while minimizing delivered acoustic energy.

摘要

亚微米级的相变化对比剂(PCCAs)由液态全氟碳(PFC)核心组成,可以通过超声(声致空化)蒸发以产生对比度,具有出色的时空控制能力。当这些通常被称为纳米液滴的试剂用低沸点 PFC(如全氟丁烷和全氟丙烷)作为核心进行配方时,它们可以用低机械指数(MI)成像脉冲激活,用于诊断应用。由于通常希望最小化 MI 的使用以避免不必要的生物学效应,因此在声场中一致地激活这些试剂是一项挑战,因为为了达到蒸发阈值而必须传递的能量随着深度的增加而衰减。已经开发出一种称为激活压力匹配(APM)的新型蒸发方法,以在整个视场中传递相同的压力,从而产生均匀的纳米液滴蒸发并限制传递的能量。在本文中,我们讨论了使用 Verasonics V1 研究型超声系统应用这种方法来调制 ATL L11-5 换能器的输出压力。除了通过深度匹配激活压力之外,还可以优化蒸发脉冲的间隔,我们展示了这种方法在体内和体外的可行性。优化的蒸发参数的使用可以增加单个纳米液滴团块产生有用对比度的时间,并在体内提供一致的图像增强。因此,APM 是一种在最小化传递声能的同时最大化 PCCA 功效的有用技术。

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