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December 8, 2025Analytical Chemistry10 citations

A Turn-On Fluorescent and Ratiometric Electrochemical Dual-Mode Probe for Hydrogen Peroxide Detection in Brain Microdialysates of Alzheimer’s Disease Mice

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HDHui DongWCWeitian ChenTWTao Wang

Key Points

  • To develop a dual-mode probe for selective detection of hydrogen peroxide in models of Alzheimer's disease.
  • Constructed a dual-mode probe integrating turn-on fluorescence and ratiometric electrochemistry.
  • Utilized resorufin as a dual-signal reporter and a pentafluorobenzenesulfonyl group for H2O2 detection.
  • Performed in vivo microdialysis to measure H2O2 levels in brain microdialysates of AD mice.
  • Achieved a detection limit of 50 nM for fluorescence mode.
  • Electrochemical detection ranged from 1.0-50 μM.
  • Significantly elevated H2O2 levels found in AD mice (28.6 ± 3.2 μM) compared to wild-type mice (10.3 ± 1.8 μM).

Abstract

Hydrogen peroxide (H2O2), a pivotal reactive oxygen species (ROS), is closely linked to oxidative stress in the pathogenesis of Alzheimer's disease (AD). Herein, we report a dual-mode probe (Re-PS) integrating turn-on fluorescence and ratiometric electrochemistry for the selective detection of H2O2 in brain microdialysates of AD model mice. The probe is constructed using resorufin (Re) as a dual-signal reporter and a pentafluorobenzenesulfonyl (PS) group as the H2O2-responsive unit. Upon reaction with H2O2, the PS group undergoes nucleophilic substitution, leading to the release of Re; this process triggers a fluorescence "turn-on" response and generates a ratiometric electrochemical signal. Compared with ester-based probes, Re-PS shows superior stability due to the strong electron-withdrawing effect of fluorine atoms in the PS group. The fluorescence mode achieves a detection limit (LOD) of 50 nM, while the electrochemical detection mode (using a carbon fiber microelectrode modified with carbon nanotubes (CFME/CNT)) has a detection range of 1.0-50 μM. Both modes exhibit excellent selectivity against other ROS and biomolecules. In vivo microdialysis analysis reveals significantly elevated H2O2 levels in the brains of AD mice (28.6 ± 3.2 μM) compared with wild-type mice (10.3 ± 1.8 μM). This dual-mode strategy enables cross-validation, providing a reliable tool for monitoring oxidative stress in neurodegenerative diseases.

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Cite This Study

Dong et al. (2025) studied this question.

synapsesocial.com/papers/693624ce4fa91c937236cf35https://doi.org/10.1021/acs.analchem.5c05358
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