Use of Isotopically Labelled Spin-traps to Determine Definitively the Presence or Absence of Non-radical Addition Artefacts in EPR Spin-trapping Systems
Overview
Biology
Endocrinology
Affiliations
EPR spin-trapping, although a powerful, sensitive technique for the study of free radicals, can be susceptible to artefacts; one of the most intractable to determine has been the non-radical addition of a substrate to a spin-trap followed by oxidation of the product to an EPR-detectable nitroxide. This work details how differentially isotopically labelled spin-traps (either nitroso or nitrone) may be used to determine the presence (or absence) of such artefacts, and provide a semi-quantitative measure of the extent of their contribution to the total EPR spectra in spin-trapping reactions. Artefactual 'ene' addition of the nitroso spin-trap 3,5-dibromo-4-nitroso-benzenesulphonic acid (DBNBS) to tryptophan followed by oxidation to EPR-detectable products has been confirmed, as has its nucleophilic addition to the thiol of glutathione to give non-EPR detectable products. The nitrone α-phenyl-N-tert-butylnitrone (PBN) exhibited no such reactivity.
Investigation of spin-trapping artifacts formed by the Forrester-Hepburn mechanism.
Leinisch F, Jiang J, DeRose E, Khramtsov V, Mason R Free Radic Biol Med. 2013; 65:1497-1505.
PMID: 23851031 PMC: 3859841. DOI: 10.1016/j.freeradbiomed.2013.07.006.
Evaluation of the Forrester-Hepburn mechanism as an artifact source in ESR spin-trapping.
Leinisch F, Ranguelova K, DeRose E, Jiang J, Mason R Chem Res Toxicol. 2011; 24(12):2217-26.
PMID: 22004308 PMC: 3412421. DOI: 10.1021/tx2003323.
Simplified synthesis of isotopically labeled 5,5-dimethyl-pyrroline N-oxide.
Leinisch F, Jiang J, Deterding L, Mason R Molecules. 2011; 16(10):8428-36.
PMID: 21986521 PMC: 3258118. DOI: 10.3390/molecules16108428.
The fidelity of spin trapping with DMPO in biological systems.
Ranguelova K, Mason R Magn Reson Chem. 2011; 49(4):152-8.
PMID: 21246623 PMC: 3090771. DOI: 10.1002/mrc.2709.