Matthew effect: General design strategy of ultra‐fluorogenic nanoprobes with amplified dark–bright states in aggregates

Author:

Segawa Shinsuke12ORCID,Ou Xinwen2,Shen Tianruo3ORCID,Ryu Tomohiro4ORCID,Ishii Yuki4,Sung Herman H. Y.2,Williams Ian D.2,Kwok Ryan T. K.2,Onda Ken4,Miyata Kiyoshi4,He Xuewen5ORCID,Liu Xiaogang23ORCID,Tang Ben Zhong26

Affiliation:

1. Translational and Advanced Bioimaging Laboratory, Department of Chemical and Biological Engineering School of Engineering The Hong Kong University of Science and Technology Kowloon Hong Kong China

2. Department of Chemistry Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration and Reconstruction and Institute for Advanced Study The Hong Kong University of Science and Technology Kowloon Hong Kong China

3. Science, Mathematics and Technology Cluster Singapore University of Technology and Design Singapore Singapore

4. Department of Chemistry Graduate School of Science Kyushu University Nishi‐ku Fukuoka Japan

5. The Key Lab of Health Chemistry and Molecular Diagnosis of Suzhou College of Chemistry Chemical Engineering and Materials Science Soochow University Suzhou Jiangsu China

6. School of Science and Engineering Shenzhen Institute of Aggregate Science and Technology The Chinese University of Hong Kong Shenzhen Guangdong China

Abstract

AbstractFluorescence imaging, a key technique in biological research, frequently utilizes fluorogenic probes for precise imaging in living systems. Tetrazine is an effective emission quencher in fluorogenic probe designs, which can be selectively damaged upon bioorthogonal click reactions, leading to considerable emission enhancement. Despite significant efforts to increase the emission enhancement ratio (IAC/IBC) of tetrazine‐functionalized fluorogenic probes, the influence of molecular aggregation on the emission properties has been largely overlooked in these probe designs. In this study, we reveal that an ultrahigh IAC/IBC can be realized in the aggregate system when tetrazine is paired with aggregation‐induced emission (AIE) luminogens. Tetrazine amplifies its quenching efficiency upon aggregation and drastically reduce background emissions. Subsequent click reactions damage tetrazine and trigger significant AIE, leading to considerably enhanced IAC/IBC. We further showcase the capability of these ultra‐fluorogenic systems in selective imaging of multiple organelles in living cells. We term this unique fluorogenicity of AIE luminogen‐quencher complexes with amplified dark‐bright states as “Matthew effect” in aggregate emission, potentially providing a universal approach to attain ultrahigh IAC/IBC in diverse fluorogenic systems.

Funder

National Natural Science Foundation of China

Innovation and Technology Commission

Publisher

Wiley

Subject

General Medicine,General Chemistry

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