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Published on: February 7, 2018
A Novel Flavonol-based Fluorescent Probe for Detecting GSH Exhaustion in Polystyrene Microplastic-Induced Liver
Yuzhi Li1, Hang You2, Jianwei Cui2
1Chinese Medicine Germplasm Resources Innovation and Effective Uses Key Laboratory of Sichuan Province, School of Pharmacy, Chengdu University of Traditional Chinese Medicine, Chengdu 611137, China; Key Laboratory of Standardization of Chinese Medicine (Chengdu University of Traditional Chinese Medicine), Ministry of Education Chengdu, 611130, China.
Abstract:
Polystyrene microplastics (PS-MPs, <5 mm) are ubiquitous contaminants that accumulate in the liver through dietary exposure, leading to hepatocellular damage. However, the dynamic changes in glutathione (GSH) under PS-MPs exposure and its underlying mechanisms in liver injury remain poorly understood. In this study, we harnessed the tunable excited-state intramolecular proton transfer (ESIPT) properties of natural flavonols to develop a GSH-activated flavonol probe, BQ-N. Structurally, BQ-N incorporates a 2,4-dinitrobenzenesulfonyl (DNBS) moiety as a fluorescence-quenching group, enabling selective fluorescence restoration through a thiol-mediated nucleophilic substitution reaction. The BQ-N probe was successfully employed for real-time monitoring of GSH in living cells and in a mouse model of liver injury induced by PS-MPs exposure. Further mechanistic studies revealed that PS-MPs exposure downregulates the expression of Glutathione Peroxidase 4 (GPX4) and ferritin, while upregulating the expression of oxidative stress-related proteins heme oxygenase-1 (HO-1) and quinone oxidoreductase 1 (NQO1). These findings suggest that PS-MPs may mediate liver injury by activating the ferroptosis pathway through interference with GSH metabolism and redox balance. In summary, the BQ-N probe enables real-time visual monitoring of GSH via fluorescence imaging at both the cellular level and in isolated animal organs and provides an effective early detection tool for PS-MP-induced liver injury. Furthermore, it reveals partial molecular mechanisms of microplastic hepatotoxicity from the perspective of the GSH-ferroptosis axis, offering new insights for integrating environmental pollutant health risk assessment with molecular imaging technology.

