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Author Spotlight: Characterizing DNA G-Quadruplex by Bis-3-Chloropiperidine Based Chemical Mapping
Published on: May 12, 2023
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.
Abstract:
Oxaliplatin (OXP) is a platinum-based chemotherapeutic agent that induces DNA damage by forming intra- and interstrand crosslinks, mainly at the N7s of adenine (A) and guanine (G) bases. In addition to double-stranded DNA, G-rich G-quadruplex (G4)-forming sequences can also be targeted by OXP. However, high doses of OXP can lead to drug resistance and cause serious adverse effects during treatment. To better understand the targeting of G4 structures by OXP, their interactions as well as the molecular mechanisms underlying OXP resistance and adverse effects, there is a need for a rapid, quantitative, and cost-effective method to detect OXP and the damage it causes. In this study, we successfully fabricated a graphite electrode biosensor modified with gold nanoparticles (AuNPs) to investigate the interactions between OXP and the G4-forming promoter region (Pu22) of Vascular endothelial growth factor (VEGF). The overexpression of VEGF is known to be associated with tumor progression and the stabilization of VEGF G4 by small molecules is shown to suppresses VEGF transcription in different cancer cell lines. Differential pulse voltammetry (DPV) was used to investigate the interactions between OXP and Pu22-G4 DNA by monitoring the decrease in the oxidation signal of guanine with increasing OXP concentration. Under the optimized conditions (37 °C, 1:2 v/v AuNPs/water as electrode surface modifier, and 180 min incubation time) the developed probe showed 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 spectroscopy was also used to support the electrochemical studies. We observed a decrease in the fluorescence emission of Thioflavin T in the presence of Pu22 upon addition of OXP. To our knowledge, this is the first electrochemical sensor developed to study OXP-induced damage to G4 DNA structures. Our findings provide new insights into the interactions between VEGF G4 and OXP, which could aid in targeting VEGF G4 structures and the development of new strategies to overcome OXP resistance.
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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