Department of Molecular Medicine, School of Medicine, Kyungpook National University, Daegu 700-422, Republic of Korea.
Nucl Med Biol. 2011 Apr;38(3):321-9. doi: 10.1016/j.nucmedbio.2010.09.003. Epub 2010 Oct 27.
Nuclear and optical imaging are complementary in many aspects and there would be many advantages when optical imaging probes are prepared using radionuclides rather than classic fluorophores, and when nuclear and optical dual images are obtained using single imaging probe.
The luminescence intensities of various radionuclides having different decay modes have been assayed using luminescence imaging and in vitro luminometer. Radioiodinated Herceptin was injected into a tumor-bearing mouse, and luminescence and microPET images were obtained. The plant dipped in [(32)P]phosphate solution was scanned in luminescence mode. Radio-TLC plate was also imaged in the same imaging mode.
Radionuclides emitting high energy β(+)/β(-) particles showed higher luminescence signals. NIH3T6.7 tumors were detected in both optical and nuclear imaging. The uptake of [(32)P]phosphate in plant was easily followed by luminescence imaging. Radio-TLC plate was visualized and radiochemical purity was quantified using luminescence imaging.
Many radionuclides with high energetic β(+) or β(-) particles during decay were found to be imaged in luminescence mode due mainly to Cerenkov radiation. 'Cerenkov imaging' provides a new optical imaging platform and an invaluable bridge between optical and nuclear imaging. New optical imaging probes could be easily prepared using well-established radioiodination methods. Cerenkov imaging will have more applications in the research field of plant science and autoradiography.
核医学与光学成像在很多方面是互补的,当使用放射性核素来制备光学成像探针而不是经典荧光团时,以及当使用单成像探针获得核医学与光学双重图像时,会有许多优势。
使用发光成像和体外发光计测定了具有不同衰变模式的各种放射性核素的发光强度。将放射性碘标记的赫赛汀注入荷瘤小鼠体内,获得发光和 microPET 图像。将浸入 [(32)P]磷酸盐溶液中的植物在发光模式下进行扫描。放射性 TLC 板也在相同的成像模式下进行成像。
发射高能量 β(+) / β(-)粒子的放射性核素显示出更高的发光信号。在光学和核医学成像中均检测到 NIH3T6.7 肿瘤。植物中 [(32)P]磷酸盐的摄取很容易通过发光成像进行跟踪。使用发光成像可以可视化放射性 TLC 板并定量放射性化学纯度。
由于契伦科夫辐射,发现许多在衰变过程中发射高能量 β(+) 或 β(-) 粒子的放射性核素可以在发光模式下成像。“契伦科夫成像”提供了一个新的光学成像平台,是光学成像和核医学成像之间宝贵的桥梁。使用成熟的放射性碘标记方法可以很容易地制备新的光学成像探针。契伦科夫成像将在植物科学和放射自显影研究领域有更多的应用。