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Updated: May 28, 2026

Rapid Quantification of Oxidized and Reduced Forms of Glutathione Using Ortho -phthalaldehyde in Cultured Mammalian Cells In Vitro
Published on: June 28, 2024
Defect engineering of VN nanowires enables dual-mode SERS-colorimetric quantification of glutathione in serum
1Key Laboratory of Low-Dimensional Quantum Structures and Quantum Control of Ministry of Education, Key Laboratory for Matter Microstructure and Function of Hunan Province, Department of Physics and Synergetic Innovation Center for Quantum Effects and Applications, School of Physics and Electronics, Hunan Normal University, Changsha 410081, China. zxg@hunnu.edu.cn.
Abstract:
The concentration of glutathione (GSH) in human blood is closely associated with various diseases, making rapid and accurate quantification of serum GSH levels crucial for health monitoring. In this study, we developed a dual-mode biosensor based on phosphorus-doped vanadium nitride@carbon nanowire (P-VN@C) derived from vanadium-based metal-organic frameworks (V-MOF), which integrates surface-enhanced Raman scattering (SERS) activity and catalase-mimicking catalytic functionality for quantitative detection of GSH in human serum. Experimental results demonstrate that V-MOF nanowires as precursors effectively retain their nanostructure through a high-temperature pyrolysis strategy. Phosphorus doping synergistically enhances both SERS performance (12-fold improvement compared to undoped VN) and enzymatic activity by introducing lattice defects and modulating the electronic structure of VN. In clinical serum analysis, the dual-mode sensor demonstrated consistent GSH quantification results between SERS and colorimetric detection modes (0.5 mM vs. 0.6 mM), with both values aligning within established clinical reference ranges. Density functional theory (DFT) calculations revealed that the SERS enhancement mechanism of P-VN@C stems from its superior charge transfer capability (0.4653 e per unit), representing an 8.4-fold increase over the undoped system (0.0554 e per unit). This work provides a novel material design strategy for developing high-performance, non-precious-metal-based sensors in clinical diagnostics.
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