生物发光
显微镜
荧光
亚历山福禄
青色
绿色荧光蛋白
费斯特共振能量转移
荧光显微镜
荧光素酶
生物物理学
临床前影像学
化学
体内
生物
光学
生物化学
转染
物理
基因
生物技术
作者
Jun Chu,Young‐Hee Oh,Alex Sens,Niloufar Ataie,Hod Dana,John J. Macklin,Tal Laviv,Erik S. Welf,Kevin M. Dean,Feijie Zhang,Benjamin Kim,Clement Tran Tang,Michelle Hu,Michelle A. Baird,Michael W. Davidson,Mark A. Kay,Reto Fiolka,Ryohei Yasuda,Douglas S. Kim,Ho Leung Ng,Michael Z. Lin
摘要
Orange-red fluorescent proteins (FPs) are widely used in biomedical research for multiplexed epifluorescence microscopy with GFP-based probes, but their different excitation requirements make multiplexing with new advanced microscopy methods difficult. Separately, orange-red FPs are useful for deep-tissue imaging in mammals owing to the relative tissue transmissibility of orange-red light, but their dependence on illumination limits their sensitivity as reporters in deep tissues. Here we describe CyOFP1, a bright, engineered, orange-red FP that is excitable by cyan light. We show that CyOFP1 enables single-excitation multiplexed imaging with GFP-based probes in single-photon and two-photon microscopy, including time-lapse imaging in light-sheet systems. CyOFP1 also serves as an efficient acceptor for resonance energy transfer from the highly catalytic blue-emitting luciferase NanoLuc. An optimized fusion of CyOFP1 and NanoLuc, called Antares, functions as a highly sensitive bioluminescent reporter in vivo, producing substantially brighter signals from deep tissues than firefly luciferase and other bioluminescent proteins.
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