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Updated: Oct 9, 2026

An Integrated Raman Spectroscopy and Mass Spectrometry Platform to Study Single-Cell Drug Uptake, Metabolism, and Effects
Published on: January 9, 2020
Single-cell Raman spectroscopy reveals multidimensional spectral phenotypes associated with curcumin protection in
Ting Xie1, Siyu Gong1, Jinghan Wu1
1The School of Medical Technology and Engineering, Fujian Medical University, Fuzhou 350122, China; Key Laboratory of Clinical Laboratory Technology for Precision Medicine (Fujian Medical University), Fujian Province University, Fuzhou 350122, China.
Abstract:
High-glucose-induced oxidative stress plays a critical role in retinal cellular dysfunction associated with diabetic retinopathy. We investigated the protective effects of curcumin in high-glucose-exposed 661 W cone cells and evaluated single-cell Raman spectroscopy for label-free characterization of treatment-associated cellular responses. Cells were exposed to 55 mmol/L glucose for 24 h and then treated with 1.5 μmol/L curcumin for 6 h. Cell viability, reactive oxygen species (ROS) accumulation, TUNEL positivity, and Nrf2/HO-1 expression were assessed alongside Raman spectra from individual intact cells. Exposure to high glucose resulted in reduced cell viability, increased ROS accumulation and TUNEL-positive ratio, alongside downregulated levels of Nrf2, HO-1 mRNA and corresponding immunofluorescence signals. Curcumin attenuated ROS accumulation and TUNEL positivity, and increased the mRNA and protein expression of Nrf2 and HO-1. Raman analysis identified high-glucose-associated changes at 408, 525, 633, 683, 1046, and 1536 cm-1 (all adjusted P ≤ 0.00216). Five of these regions shifted toward control values after curcumin treatment (adjusted P values ranging from 6.58 × 10-11 to 0.00128). Literature-based assignments suggested overlapping contributions from carbohydrates, amino acids, coenzymes, and redox-related molecules. Candidate-based pathway association analysis ranked starch and sucrose metabolism highest after FDR correction (FDR = 0.00323). A 20-band CRT achieved 77.9 ± 1.5% accuracy and 77.8 ± 1.5% balanced accuracy in repeated nested cross-validation; corresponding run-held-out values were 70.1% and 70.0%. These findings show that single-cell Raman spectroscopy captures a coordinated, treatment-responsive spectral phenotype that complements conventional measures of oxidative injury and antioxidant responses.
