Computational Design of Radical Recognition Assay with the Possible Application of Cyclopropyl Vinyl Sulfides as Tunable Sensors

Int J Mol Sci. 2021 Jul 16;22(14):7637. doi: 10.3390/ijms22147637.

Abstract

The processes involving the capture of free radicals were explored by performing DFT molecular dynamics simulations and modeling of reaction energy profiles. We describe the idea of a radical recognition assay, where not only the presence of a radical but also the nature/reactivity of a radical may be assessed. The idea is to utilize a set of radical-sensitive molecules as tunable sensors, followed by insight into the studied radical species based on the observed reactivity/selectivity. We utilize this approach for selective recognition of common radicals-alkyl, phenyl, and iodine. By matching quantum chemical calculations with experimental data, we show that components of a system react differently with the studied radicals. Possible radical generation processes were studied involving model reactions under UV light and metal-catalyzed conditions.

Keywords: molecular dynamics; radical clock; radical traps; radicals; recognition assay; sensors.

MeSH terms

  • Catalysis
  • Free Radicals / analysis*
  • Free Radicals / chemistry*
  • Metals
  • Models, Theoretical
  • Molecular Dynamics Simulation
  • Sulfides / chemistry*

Substances

  • Free Radicals
  • Metals
  • Sulfides
  • ethylene sulfide