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March 13, 2026Molecules0 citationsOpen Access

Electrochemical Sensing of Doxorubicin in Breast Cancer Cells Based on Membrane-Permeation Strategy

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LYLizhen YuDWDandan WangZHZ.Q. Hu

Key Result

The electrochemical platform enabled doxorubicin detection in MCF-7 cells with a wide range of 0.05–300 μmol/L and a detection limit of 0.01 μmol/L.

Key Points

  • The study aims to develop a method for monitoring doxorubicin concentration inside breast cancer cells.
  • Developed an electrochemical platform using a modified gold electrode.
  • Synthesized silica nanosphere/gold nanocluster-circular transmembrane peptide nanoparticles.
  • Co-incubated nanoparticles with MCF-7 cells and doxorubicin.
  • Characterized electrode modifications and nanoparticle morphology using various imaging techniques.
  • The detection method exhibited a range of 0.05–300 μmol/L and a detection limit of 0.01 μmol/L.
  • The modified electrode showed good regenerability, reproducibility, and stability.
  • The technique provides a novel approach for real-time drug concentration measurement inside cancer cells.

Structured PICO

P
Population
MCF-7 breast cancer cells in vitro
I
Intervention
Electrochemical platform using SiO2/AuNCs-iRGD composite nanoparticles and a DNA-modified gold electrode
O
Outcome
Intracellular doxorubicin (DOX) concentration detectionsurrogate

The developed electrochemical platform enables real-time assessment of intracellular doxorubicin concentration in cultured breast cancer cells.

Abstract

Monitoring the concentration of doxorubicin (DOX) was critical for tumor treatment, but existing methods failed to cross cell membrane. Here, an electrochemical platform for intracellular DOX detection in MCF-7 cells based on membrane-permeation strategy was developed. A modified gold electrode was prepared via electrodepositing AuNPs and assembling SH-DNA. Concurrently, the silica nanosphere/gold nanocluster-circular transmembrane peptide (SiO2/AuNCs-iRGD) composite nanoparticles with membrane permeability, tumor targeting, and imaging capability were synthesized. After co-incubation of SiO2/AuNCs-iRGD with MCF-7 cells and DOX, followed by co-incubation with the DNA-modified electrode, intracellular DOX intercalated into the DNA backbone, and redox-generated electrons were transferred to the electrode to produce a concentration-correlated electrochemical signal. The modification of the electrode, the morphology of the composite nanoparticles and the detection process were characterized by means of SEM, TEM, CV, EIS, DPV, fluorescence spectroscopy and laser confocal imaging. Under the optimized conditions, the proposed method exhibited a wide detection range of 0.05–300 μmol/L, with a detection limit of 0.01 μmol/L. Moreover, the modified electrode demonstrated satisfactory regenerability, and the proposed method showed excellent reproducibility and stability. The development platform could offer a new strategy for real-time assessment of drug concentration within cultured breast cancer cells in vitro.

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Cite This Study

Yu et al. (2026) studied this question. The electrochemical platform enabled doxorubicin detection in MCF-7 cells with a wide range of 0.05–300 μmol/L and a detection limit of 0.01 μmol/L.

synapsesocial.com/papers/69b3acb202a1e69014cce900https://doi.org/10.3390/molecules31060931
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