Unimolecular Organic Afterglow Luminophore With Anti‐Kasha/Kasha Emission for in Vivo Activatable Imaging

M Meng Zhao Q Qingchuan Li (School of Nuclear Science and Technology) Y Yongqi Li L Liangyou Zhao (School of Nuclear Science and Technology) W Weihao An (School of Nuclear Science and Technology University of Science and Technology of China Hefei China) G Gege Li Q Qing Li Q Qingqing Miao (School of Nuclear Science and Technology)

Abstract

ABSTRACT Afterglow luminescence holds great promise for biomedical imaging by eliminating tissue autofluorescence. Unimolecular afterglow systems avoid the need for nanoencapsulation, providing enhanced simplicity and structure flexibility as well as in vivo stability over common nanoparticle‐based designs. However, rational design remains challenging, and only a few unimolecular systems have been reported. These systems often exhibit low signal intensity, which restricts their biomedical applications. To resolve it, we design a hemicyanine‐based unimolecular organic afterglow platform (CyIA) with high afterglow brightness and structural tunability for in vivo activatable imaging. CyIA displays anti‐Kasha/Kasha dual‐emission with bright afterglow signal in aqueous solution, up to 10 8 p/s/cm 2 /sr, which is nearly three orders of magnitude higher than previously reported unimolecular organic afterglow probes. Leveraging the structural flexibility, a butyrylcholinesterase (BChE)‐activatable afterglow probe (CyIAB‐T) is fabricated. This probe enables a specific and sensitive detection of BChE in Alzheimer's disease (AD) model mice with higher contrast relative to fluorescence imaging. Importantly, this probe permits dynamic tracking of the age‐dependent upregulation of BChE during AD progression. Therefore, this study establishes a versatile unimolecular organic afterglow scaffold with high intensity and structural flexibility for developing activatable afterglow probes for high‐contrast biomedical imaging.

Article Details

Volume / Issue Vol. 65, Issue 23
Published June 01, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

M

Meng Zhao

Q

Qingchuan Li

School of Nuclear Science and Technology

Y

Yongqi Li

L

Liangyou Zhao

School of Nuclear Science and Technology

W

Weihao An

School of Nuclear Science and Technology University of Science and Technology of China Hefei China

G

Gege Li

Q

Qing Li

Q

Qingqing Miao

School of Nuclear Science and Technology