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超声造影剂破坏成像用于血流定量的验证。

Validation of ultrasound contrast destruction imaging for flow quantification.

作者信息

Lucidarme Olivier, Kono Yuko, Corbeil Jacqueline, Choi Sang-Hee, Mattrey Robert F

机构信息

Department of Radiology, University of California, San Diego, California, USA.

出版信息

Ultrasound Med Biol. 2003 Dec;29(12):1697-704. doi: 10.1016/s0301-5629(03)00987-6.

Abstract

Our purpose was to validate in vitro a kinetic flow model based on microbubble signal decay curve. Using a 3.5 MHz transducer and phase-inversion (1.8 MHz central transmit frequency), a renal dialysis cartridge oriented vertically was imaged in the transverse plane as 1:1000 dilution of AF0150 was infused at 50, 100, 200, 300 and 400 mL/min. Ten gray-scale images were acquired at each infusion rate using 2.5, 5 and 10 frames/s at 100%, 40%, 15% or 1% of maximum transmit power. Video-intensity measured on each 10 images was fit to a kinetic model using Sigma Plot that yielded microbubble concentration, velocity and destruction per frame. These were correlated with the experimental conditions. At 100% power, video-intensity on the first frame (microbubble concentration at equilibrium) was similar for all flow and frame rates. The model fit the experimental data for all flows at 10 frames/s and for flows lower than 400 and 100 mL/min at 5 frames/s and 2.5 frames/s, respectively. The calculated flow was similar to the experimental flow rates, regardless of technique (r(2) = 0.98). Microbubble fraction destroyed per frame was similar for all flow and frame rates and increased linearly with transmit power (r(2) > 0.98). These results suggest that using appropriate power and frame rate for a given flow rate, estimates of fractional blood volume, flow and destruction fraction can be calculated from the decay curve using 10 frames that can be acquired in 1 to 4 s.

摘要

我们的目的是在体外验证基于微泡信号衰减曲线的动力学血流模型。使用3.5 MHz换能器和相位反转技术(中心发射频率1.8 MHz),在横向平面成像垂直放置的肾透析盒,以50、100、200、300和400 mL/min的速率注入AF0150的1:1000稀释液。在每个注入速率下,分别以100%、40%、15%或1%的最大发射功率,使用2.5、5和10帧/秒的帧率采集10幅灰度图像。使用Sigma Plot将在每10幅图像上测量的视频强度拟合到动力学模型,该模型可得出每帧的微泡浓度、速度和破坏情况。将这些与实验条件相关联。在100%功率下,对于所有流速和帧率,第一帧上的视频强度(平衡时的微泡浓度)相似。该模型分别在10帧/秒时适用于所有流速的数据,以及在5帧/秒和2.5帧/秒时适用于低于400和100 mL/min的流速的数据。无论采用何种技术,计算得到的流速与实验流速相似(r(2) = 0.98)。对于所有流速和帧率,每帧破坏的微泡分数相似,并且随发射功率呈线性增加(r(2) > 0.98)。这些结果表明,对于给定的流速,使用适当的功率和帧率,可根据1至4秒内采集的10帧衰减曲线计算出血液体积分数、流速和破坏分数的估计值。

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