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Validating the Sensitivity and Performance of Near-Infrared Fluorescence Imaging and Tomography Devices Using a Novel Solid Phantom and Measurement Approach

机译:使用新型固体幻像和测量方法验证近红外荧光成像和层析成像设备的灵敏度和性能

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摘要

With the aid of indocyanine green (ICG), lymphatic architecture and function in both mice and humans has been successfully imaged non-invasively using near-infrared (NIR) fluorescence imaging devices. Maximal measurement sensitivity of NIR fluorescence imaging devices is needed for “first-in-humans” molecularly targeting NIR fluorescence agents that are brighter than non-specific ICG. In this study, we developed a solid phantom and measurement approach for the quantification of excitation light leakage and measurement sensitivity of NIR fluorescence imaging devices. The constructed solid phantom, consisting of quantum dots impregnated onto specularly reflective surface, shows long-term stability and can be used as a traceable fluorescence standard. With the constructed solid phantom, the intensified CCD (ICCD)-based device demonstrated more than 300% higher measurement sensitivity compared to the Electron Multiplying CCD (EMCCD) based device when integration time was maintained less than 1.0 s.
机译:借助吲哚菁绿(ICG),已使用近红外(NIR)荧光成像设备成功地以非侵入性方式对小鼠和人类的淋巴结构和功能进行了成像。对于“人类首创”分子靶向的NIR荧光剂,需要比NIR荧光成像设备具有最大的测量灵敏度,该NIR荧光剂比非特异性ICG的要亮。在这项研究中,我们开发了一种固体幻像和测量方法来量化激发光泄漏和近红外荧光成像设备的测量灵敏度。所构造的实心模型由浸渍在镜面反射表面上的量子点组成,具有长期稳定性,可以用作可追溯的荧光标准。借助构建的实体模型,当积分时间保持小于1.0 s时,与基于电子倍增CCD(EMCCD)的设备相比,基于CCD(ICCD)的设备显示出300%以上的测量灵敏度。

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