体内
生物医学中的光声成像
分子成像
原位
脚手架
正电子发射断层摄影术
荧光团
Pet成像
临床前影像学
化学
纳米技术
材料科学
生物医学工程
荧光
核医学
光学
物理
生物技术
有机化学
生物
医学
量子力学
作者
Yuqi Wang,He Bai,Yinxing Miao,Jianhui Weng,Zheng Huang,Jiayu Fu,Yan Zhang,Jianguo Lin,Deju Ye
标识
DOI:10.1002/anie.202200369
摘要
Abstract Enzyme‐triggered macrocyclization and in situ self‐assembly of small molecules into nanoparticles has shown promise to design activatable probes for molecular imaging. However, controlling macrocyclization and self‐assembly to concurrently augment positron emission tomography (PET) and photoacoustic (PA) signals for bimodality imaging is challenging. Herein, we report the engineering of a triazole‐IR780 fluorophore as a versatile macrocyclization scaffold for controlling in situ self‐assembly and design a caspase‐3‐activatable PA/PET bimodal probe ( [ 18 F]‐IR780‐1 ) for in vivo imaging of tumor apoptosis. By leveraging the high‐sensitivity whole‐body imaging signals offered by PET with the high‐resolution imaging signals offered by PA, [ 18 F]‐IR780‐1 can provide a promising tool for the early evaluation of antitumor efficacy, helpful for optimizing the therapeutic protocol for patients. This scaffold may be adopted to design other activatable bimodal probes for in vivo imaging.
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