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Published on: October 7, 2025
Peptide Nucleic Acid Probes for MicroRNA Detection: Mg2+ Ion Effect, Surface Hybridization, and Surface Plasmon
Vanessa Jungbluth1, Roberta D'Agata1,2, Noemi Bellassai1,2
1Department of Chemical Sciences, University of Catania, Viale Andrea Doria 6, 95122 Catania, Italy.
Abstract:
This study examines how Mg2+ ions affect the hybridization between surface-immobilized peptide nucleic acid (PNA) probes and microRNA targets (miR125 and miR141), which is important for the development of nucleic acid-based biosensors utilizing surface plasmon resonance (SPR). The results show that appropriate concentrations of Mg2+ significantly enhance microRNA hybridization with PNA probes, whereas Na+ does not yield similar results. Kinetic analysis demonstrated that 30 and 100 mM concentrations of Mg2+ facilitate the interaction between the PNA probe and its microRNA target by effectively screening the negative charges of the microRNA molecules as they approach the surface. These Mg2+ levels also stabilize the heteroduplexes formed on the surface by reducing the dissociation rate. However, a higher Mg2+ concentration (300 mM) was found to hinder the surface-confined hybridization. In comparison, Na+ showed a considerably smaller role in improving the hybridization. Melting curve analysis in solution indicated that the increase in T m of PNA/miRNA heteroduplexes in the presence of Mg2+ does not fully explain the enhanced surface interaction, underscoring the role of surface confinement. These findings demonstrate that optimizing the Mg2+ concentration can significantly improve the sensitivity and efficiency of PNA- and SPR-based microRNA biosensors. This optimization is particularly relevant for diagnostic and research applications involving the analysis of low concentrations of microRNAs in biofluids.
Insights
Magnesium ions (Mg2+) significantly enhance microRNA detection using peptide nucleic acid (PNA) probes in surface plasmon resonance (SPR) biosensors. Optimizing Mg2+ concentration improves biosensor sensitivity for microRNA analysis.
Area of Science:
- Biomolecular Engineering
- Biosensor Technology
- Analytical Chemistry
Background:
- MicroRNA detection is crucial for diagnostics.
- Peptide nucleic acid (PNA) probes offer stable hybridization for biosensors.
- Surface plasmon resonance (SPR) is a label-free detection technique.
Purpose of the Study:
- To investigate the effect of Mg2+ ions on PNA-microRNA hybridization for SPR biosensors.
- To determine optimal Mg2+ concentrations for enhanced microRNA detection.
- To elucidate the mechanism of Mg2+ influence on surface-confined hybridization.
Main Methods:
- Surface plasmon resonance (SPR) measurements of PNA-microRNA binding.
- Kinetic analysis of hybridization and dissociation rates.
- Melting curve analysis (Tm) of PNA/miRNA heteroduplexes in solution.
Main Results:
- Mg2+ ions significantly enhance PNA-microRNA hybridization at 30 and 100 mM.
- Mg2+ screens microRNA negative charges and stabilizes heteroduplexes.
- High Mg2+ (300 mM) or Na+ ions showed less effective enhancement.
- Surface confinement plays a key role, beyond solution Tm.
Conclusions:
- Optimized Mg2+ concentration is critical for sensitive PNA-SPR microRNA biosensors.
- This approach can improve detection of low-abundance microRNAs in biofluids.
- Findings support development of advanced diagnostic and research tools.
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