Ultrasound and Optical Imaging Laboratory, Department of Bioengineering, The University of Texas at Arlington, Arlington, TX, 76019, USA.
Joint Biomedical Engineering Program, The University of Texas at Arlington and The University of Texas Southwestern Medical Center, Dallas, TX, 75390, USA.
Sci Rep. 2019 Jul 22;9(1):10552. doi: 10.1038/s41598-019-47156-x.
Fluorescence imaging in centimeter-deep tissues with high resolution is highly desirable for many biomedical applications. Recently, we have developed a new imaging modality, ultrasound-switchable fluorescence (USF) imaging, for achieving this goal. In our previous work, we successfully achieved USF imaging with several types of USF contrast agents and imaging systems. In this study, we introduced a new USF imaging system: an intensified charge-coupled device (ICCD) camera-based, time-domain USF imaging system. We demonstrated the principle of time-domain USF imaging by using two USF contrast agents. With a series of USF imaging experiments, we demonstrated the tradeoffs among different experimental parameters (i.e., data acquisition time, including CCD camera recording time and intensifier gate delay; focused ultrasound (FU) power; and imaging depth) and the image qualities (i.e., signal-to-noise ratio, spatial resolution, and temporal resolution). In this study, we also discussed several imaging strategies for achieving a high-quality USF image via this time-domain system.
在许多生物医学应用中,人们非常希望能够对厘米深的组织进行高分辨率的荧光成像。最近,我们开发了一种新的成像模式,即超声可切换荧光(USF)成像,以实现这一目标。在我们之前的工作中,我们使用几种类型的 USF 对比剂和成像系统成功地实现了 USF 成像。在这项研究中,我们引入了一种新的 USF 成像系统:基于增强型电荷耦合器件(ICCD)相机的时域 USF 成像系统。我们使用两种 USF 对比剂演示了时域 USF 成像的原理。通过一系列 USF 成像实验,我们研究了不同实验参数(即 CCD 相机记录时间和增强器门延迟时间、聚焦超声(FU)功率和成像深度)和图像质量(即信噪比、空间分辨率和时间分辨率)之间的权衡。在这项研究中,我们还讨论了通过该时域系统获得高质量 USF 图像的几种成像策略。