A Single-Molecule Insight into the Ionic Strength-dependent, Cationic Peptide Nucleic Acids-Oligonucleotides Interactions

Chem Asian J. 2022 Jun 15;17(12):e202200261. doi: 10.1002/asia.202200261. Epub 2022 May 2.

Abstract

To alleviate solubility-related shortcomings associated with the use of neutral peptide nucleic acids (PNA), a powerful strategy is incorporate various charged sidechains onto the PNA structure. Here we employ a single-molecule technique and prove that the ionic current blockade signature of free poly(Arg)-PNAs and their corresponding duplexes with target ssDNAs interacting with a single α-hemolysin (α-HL) nanopore is highly ionic strength dependent, with high salt-containing electrolytes facilitating both capture and isolation of such complexes. Our data illustrate the effect of low ionic strength in reducing the effective volume of free poly(Arg)-PNAs and augmentation of their electrophoretic mobility while traversing the nanopore. We found that unlike in high salt electrolytes, the specific hybridization of cationic moiety-containing PNAs with complementary negatively charged ssDNAs in a salt concentration as low as 0.5 M is dramatically impeded. We suggest a scenario in which reduced charge screening by counterions in low salt electrolytes enables non-specific, electrostatic interactions with the anionic backbone of polynucleotides, thus reducing the ability of PNA-DNA complementary association via hydrogen bonding patterns. We applied an experimental strategy with spatially-separated poly(Arg)-PNAs and ssDNAs, and present evidence at the single-molecule level suggestive of the real-time, long-range interactions-driven formation of poly(Arg)-PNA-DNA complexes, as individual strands entering the nanopore from opposite directions collide inside a nanocavity.

Keywords: electrophysiology; ionic strength; nanopore; oligonucleotides; peptide nucleic acids.

MeSH terms

  • Cations / chemistry
  • DNA / chemistry
  • DNA, Single-Stranded
  • Nanopores*
  • Oligonucleotides
  • Osmolar Concentration
  • Peptide Nucleic Acids* / chemistry
  • Peptide Nucleic Acids* / genetics

Substances

  • Cations
  • DNA, Single-Stranded
  • Oligonucleotides
  • Peptide Nucleic Acids
  • DNA