Advanced Raman Spectroscopy Detection of Oxidative Damage in Nucleic Acid Bases: Probing Chemical Changes and Intermolecular Interactions in Guanosine at Ultralow Concentration.
Francesca RipantiClaudia FasolatoFlavia MazzardaSimonetta PalleschiMarina CeccariniChunchun LiMargherita BignamiEnrico BodoSteven E J BellFilomena MazzeiPaolo PostorinoPublished in: Analytical chemistry (2021)
DNA/RNA synthesis precursors are especially vulnerable to damage induced by reactive oxygen species occurring following oxidative stress. Guanosine triphosphates are the prevalent oxidized nucleotides, which can be misincorporated during replication, leading to mutations and cell death. Here, we present a novel method based on micro-Raman spectroscopy, combined with ab initio calculations, for the identification, detection, and quantification of oxidized nucleotides at low concentration. We also show that the Raman signature in the terahertz spectral range (<100 cm-1) contains information on the intermolecular assembly of guanine in tetrads, which allows us to further boost the oxidative damage detection limit. Eventually, we provide evidence that similar analyses can be carried out on samples in very small volumes at very low concentrations by exploiting the high sensitivity of surface-enhanced Raman scattering combined with properly designed superhydrophobic substrates. These results pave the way for employing such advanced spectroscopic methods for quantitatively sensing the oxidative damage of nucleotides in the cell.
Keyphrases
- raman spectroscopy
- nucleic acid
- oxidative stress
- cell death
- reactive oxygen species
- loop mediated isothermal amplification
- label free
- real time pcr
- single molecule
- molecular dynamics simulations
- dna damage
- optical coherence tomography
- cell therapy
- stem cells
- healthcare
- molecular docking
- cell free
- mesenchymal stem cells
- energy transfer
- ischemia reperfusion injury
- cell proliferation
- quantum dots
- induced apoptosis
- health information
- monte carlo