Programmable Multi-State Fluorescence Switching on a Dynamic Molecular System via Sequential Dynamic Covalent
Xiangkun Si1, Liren Xu1, Yifan Wen1
1The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, No. 28 West Xianning Road, Xi'an 710049, People's Republic of China.
Abstract:
Dynamic molecular systems capable of controlled transformations are foundational for developing next-generation intelligent materials and sensors. However, achieving sequential, multistate switching with distinct optical outputs on a single molecular platform remains challenging. Here, we introduce a class of dynamic fluorescent systems built upon a single benzo-conjugated acceptor. This system undergoes programmed molecular reconfiguration and fluorescence switching through sequential chemical and pH-driven triggers, leveraging intramolecular oxa/thiol-Michael addition-elimination reactions via dynamic covalent bonding in aqueous medias. Each distinct molecular state exhibits unique, trackable absorbance and fluorescence signatures, governed by precisely controlled pseudo-pK a values. We demonstrate the utility of this system by achieving real-time, noninvasive optical tracking of topological transitions in soft materials, specifically monitoring hydrogel degradation and reformation (gel-sol-gel). Furthermore, by tuning the molecular scaffold, we developed derivatives for live-cell imaging, enabling dynamic visualization of intracellular pH fluctuations. This work presents a versatile platform for designing programmable, multistimuli-responsive molecular systems with potential in adaptive materials, chemical sensing, and advanced biomedical diagnostics.
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