Visual monitoring of biocatalytic processes using small molecular fluorescent probes: strategies-mechanisms-applications

Guang Chen, Jie Xu, Siyue Ma, Xinrui Ji, Jared B. Carney, Chao Wang, Xiaoyong Gao, Pu Chen, Baolei Fan, Ji Chen, Yanfeng Yue, Tony D. James

Research output: Contribution to journalReview articlepeer-review

2 Citations (SciVal)

Abstract

Real-time monitoring of biocatalytic-based processes is significantly improved and simplified when they can be visualized. Visual monitoring can be achieved by integrating a fluorescent unit with the biocatalyst. Herein, we outline the design strategies of fluorescent probes for monitoring biocatalysis: (1) probes for monitoring biocatalytic transfer: γ-glutamine is linked to the fluorophore as both a recognition group and for intramolecular charge transfer (ICT) inhibition; the probe is initially in an off state and is activated via the transfer of the γ-glutamine group and the release of the free amino group, which results in restoration of the “Donor–π–Acceptor” (D–π–A) system and fluorescence recovery. (2) Probes for monitoring biocatalytic oxidation: a propylamine is connected to the fluorophore as a recognition group, which cages the hydroxyl group, leading to the inhibition of ICT; propylamine is oxidized and subsequently β-elimination occurs, resulting in exposure of the hydroxyl group and fluorescence recovery. (3) Probes for monitoring biocatalytic reduction: a nitro group attached to a fluorophore as a fluorescence quenching group, this is converted to an amino group by catalytic reduction, resulting in fluorescence recovery. (4) Probes for monitoring biocatalytic hydrolysis: β-D-galactopyranoside or phosphate acts as a recognition group attached to hydroxyl groups of the fluorophore; the subsequent biocatalytic hydrolysis reaction releases the hydroxyl group resulting in fluorescence recovery. Following these 4 mechanisms, fluorophores including cyanine, coumarin, rhodamine, and Nile-red, have been used to develop systems for monitoring biocatalytic reactions. We anticipate that these strategies will result in systems able to rapidly diagnose and facilitate the treatment of serious diseases.
Original languageEnglish
Pages (from-to)2716-2731
Number of pages16
JournalChemical Communications
Volume60
Issue number20
Early online date14 Feb 2024
DOIs
Publication statusPublished - 11 Mar 2024

Funding

This work supported by the National Natural Science Foundation of China (22174090); the Natural Science Basic Research Program of Shaanxi (2022JM-089); Long-term Project of high-level talents innovation in Shaanxi Province (Guang Chen); XJ and PC wishes to thank the High-end project of National Foreign Expert Program (G2021041002L); SM thanks the fellowship of China Postdoctoral Science Foundation (2022M711994); Key R&D Program of Shaanxi Province (2022GY-203); Science and Technology Plan Project of Weiyang District (202114); Science and Technology Plan Project of Xi’an (21NYYF0057). TDJ wishes to thank the University of Bath and the Open Research Fund of the School of Chemistry and Chemical Engineering, Henan Normal University (2020ZD01) for support. BF wishes to thank the Key R&D Plan of Hubei Province for local special support in the field of general health (2022BCE066).

FundersFunder number
Key R&D Plan of Hubei Province2022BCE066
Long-term Project of high-level talents innovation in Shaanxi Province
National Foreign Expert Program G2021041002L
Science and Technology Plan Project of Weiyang District202114
Science and Technology Plan Project of Xi’an21NYYF0057
Henan Normal University2020ZD01
University of Bath
National Natural Science Foundation of China22174090
China Postdoctoral Science Foundation2022M711994
Key Research and Development Projects of Shaanxi Province2022GY-203
Natural Science Basic Research Program of Shaanxi Province2022JM-089

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