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An aggregation-induced emission dye-powered afterglow luminogen for tumor imaging.
Xu, Yan; Yang, Weitao; Yao, Defan; Bian, Kexin; Zeng, Weiwei; Liu, Kai; Wang, Dengbin; Zhang, Bingbo.
Affiliation
  • Xu Y; Department of Medical Ultrasound , Shanghai Tenth People's Hospital , Tongji University Cancer Center , Tongji University School of Medicine , Shanghai 200072 , China . Email: bingbozhang@tongji.edu.cn.
  • Yang W; Department of Medical Ultrasound , Shanghai Tenth People's Hospital , Tongji University Cancer Center , Tongji University School of Medicine , Shanghai 200072 , China . Email: bingbozhang@tongji.edu.cn.
  • Yao D; Department of Radiology , Xinhua Hospital , Shanghai Jiao Tong University School of Medicine , Shanghai 200092 , China.
  • Bian K; Department of Medical Ultrasound , Shanghai Tenth People's Hospital , Tongji University Cancer Center , Tongji University School of Medicine , Shanghai 200072 , China . Email: bingbozhang@tongji.edu.cn.
  • Zeng W; Department of Medical Ultrasound , Shanghai Tenth People's Hospital , Tongji University Cancer Center , Tongji University School of Medicine , Shanghai 200072 , China . Email: bingbozhang@tongji.edu.cn.
  • Liu K; Department of Medical Ultrasound , Shanghai Tenth People's Hospital , Tongji University Cancer Center , Tongji University School of Medicine , Shanghai 200072 , China . Email: bingbozhang@tongji.edu.cn.
  • Wang D; Department of Radiology , Xinhua Hospital , Shanghai Jiao Tong University School of Medicine , Shanghai 200092 , China.
  • Zhang B; Department of Medical Ultrasound , Shanghai Tenth People's Hospital , Tongji University Cancer Center , Tongji University School of Medicine , Shanghai 200072 , China . Email: bingbozhang@tongji.edu.cn.
Chem Sci ; 11(2): 419-428, 2020 Jan 14.
Article in En | MEDLINE | ID: mdl-32190262
ABSTRACT
Semiconducting polymer (SP)-based afterglow luminogens are showing increasing potential for in vivo imaging because of their long-life luminescence and the associated benefits (e.g., zero-autofluorescence background and high signal-to-noise ratio). However, such organic afterglow luminescence agents are still rare and their application is usually limited by their relatively low afterglow intensity and short afterglow duration. Herein, we report an aggregation-induced emission (AIE) dye-powered SP afterglow luminogen by leveraging on the unique characteristics of an AIE dye to circumvent the concentration-quenching effect, enhance afterglow intensity and prolong afterglow duration. The underlying working mechanism is investigated by a series of experiments and it is found that the AIE dye provides sufficient 1O2 to excite SPs and form massive amounts of high-energy intermediates, and then the SP intermediates emit photons that can activate the AIE dye to generate 1O2 and simultaneously trigger the energy transfer process between the SPs and AIE dye, resulting in a deep-red emission. It is this closed-loop of "photon-1O2-SP intermediates-photon" that provides the afterglow emission even after the cessation of the excitation light. The as-prepared luminogen shows good performance in in vivo tumour imaging. This study demonstrates the advantages of AIE-facilitated afterglow luminescence and discloses its mechanism, and hopefully it could inspire the development of other innovative designs for cancer theranostics.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2020 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2020 Document type: Article