Electrochemical detection of Oxaliplatin induced DNA damage in G-quadruplex structures

Sıla Can Osmanoğulları1, Mehrdad Forough1, Özgül Persil Çetinkol1

  • 1Department of Chemistry, Middle East Technical University, 06800, Ankara, Turkey.

Insights

This study developed a novel gold nanoparticle-modified biosensor to detect oxaliplatin (OXP) interactions with G-quadruplex (G4) DNA. This electrochemical method offers a sensitive way to study OXP-G4 DNA damage, aiding in overcoming drug resistance.

Area of Science:

  • Biomedical Engineering
  • Electrochemistry
  • Molecular Biology

Background:

  • Oxaliplatin (OXP) is a platinum-based chemotherapy agent causing DNA damage, but high doses lead to resistance and adverse effects.
  • G-quadruplex (G4) DNA structures, including those in the Vascular Endothelial Growth Factor (VEGF) promoter, can also be targeted by OXP.
  • Understanding OXP-G4 interactions is crucial for developing strategies to improve chemotherapy efficacy and reduce toxicity.

Purpose of the Study:

  • To develop a rapid, quantitative, and cost-effective biosensor for detecting oxaliplatin (OXP) and its damage to G-quadruplex (G4) DNA.
  • To investigate the interaction between OXP and the G4-forming promoter region (Pu22) of Vascular Endothelial Growth Factor (VEGF).
  • To provide insights into the molecular mechanisms of OXP resistance and adverse effects related to G4 targeting.

Main Methods:

  • Fabrication of a graphite electrode biosensor modified with gold nanoparticles (AuNPs).
  • Electrochemical detection using differential pulse voltammetry (DPV) to monitor changes in guanine oxidation signals.
  • Fluorescence spectroscopy using Thioflavin T to confirm OXP-G4 DNA interactions.

Main Results:

  • The developed AuNP-modified biosensor successfully detected OXP interactions with VEGF Pu22 G4 DNA.
  • DPV showed a decrease in guanine oxidation signal with increasing OXP concentration, indicating binding.
  • The sensor demonstrated a linear dynamic range of 1.0-10.0 μM, with a detection limit of 0.88 μM and limit of quantification of 2.92 μM.
  • Fluorescence studies corroborated the electrochemical findings, showing reduced Thioflavin T emission in the presence of OXP and G4 DNA.

Conclusions:

  • This is the first electrochemical sensor developed to study OXP-induced damage to G4 DNA structures.
  • The findings offer new insights into the interactions between VEGF G4 and OXP.
  • The developed biosensor can aid in developing strategies to target VEGF G4 structures and overcome OXP resistance.

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