State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University, Shanghai, 200438, China.
Key Laboratory of Coal Science and Technology, Ministry of Education and Shanxi Province, Taiyuan University of Technology, Taiyuan, 030024, China.
Angew Chem Int Ed Engl. 2020 Sep 21;59(39):17018-17025. doi: 10.1002/anie.202009077. Epub 2020 Aug 26.
The fact that the lifetime of photoluminescence is often difficult to access because of the weakness of the emission signals, seriously limits the possibility to gain local bioimaging information in time-resolved luminescence probing. We aim to provide a solution to this problem by creating a general photophysical strategy based on the use of molecular probes designed for single-luminophore dual thermally activated delayed fluorescence (TADF). The structural and conformational design makes the dual TADF strong in both diluted solution and in an aggregated state, thereby reducing sensitivity to oxygen quenching and enabling a unique dual-channel time-resolved imaging capability. As the two TADF signals show mutual complementarity during probing, a dual-channel means that lifetime mapping is established to reduce the time-resolved imaging distortion by 30-40 %. Consequently, the leading intracellular local imaging information is serialized and integrated, which allows comparison to any single time-resolved signal, and leads to a significant improvement of the probing capacity.
由于发射信号较弱,磷光寿命往往难以获取,这一事实严重限制了在时间分辨发光探测中获得局部生物成像信息的可能性。我们旨在通过创建一种基于使用专为单发光体双热激活延迟荧光 (TADF) 设计的分子探针的通用光物理策略来解决这一问题。结构和构象设计使双 TADF 在稀释溶液和聚集状态下都具有很强的强度,从而降低了对氧猝灭的敏感性,并实现了独特的双通道时间分辨成像能力。由于在探测过程中两个 TADF 信号相互补充,双通道意味着建立了寿命映射,从而将时间分辨成像的失真降低了 30-40%。因此,主要的细胞内局部成像信息被序列化和整合,这允许与任何单个时间分辨信号进行比较,并导致探测能力的显著提高。