Generation of a μ-1,2-hydroperoxo Fe<sup>III</sup>Fe<sup>III</sup> and a μ-1,2-peroxo Fe<sup>IV</sup>Fe<sup>III</sup> Complex.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 35296656.
- Also identified by DOI 10.1038/s41467-022-28894-5 and PMC identifier 8927127.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
μ-1,2-Peroxo-diferric intermediates (P) of non-heme diiron enzymes are proposed to convert upon protonation either to high-valent active species or to activated P' intermediates via hydroperoxo-diferric intermediates. Protonation of synthetic μ-1,2-peroxo model complexes occurred at the μ-oxo and not at the μ-1,2-peroxo bridge. Here we report a stable μ-1,2-peroxo complex {Fe<sup>III</sup>(μ-O)(μ-1,2-O<sub>2</sub>)Fe<sup>III</sup>} using a dinucleating ligand and study its reactivity. The reversible oxidation and protonation of the μ-1,2-peroxo-diferric complex provide μ-1,2-peroxo Fe<sup>IV</sup>Fe<sup>III</sup> and μ-1,2-hydroperoxo-diferric species, respectively. Neither the oxidation nor the protonation induces a strong electrophilic reactivity. Hence, the observed intramolecular C-H hydroxylation of preorganized methyl groups of the parent μ-1,2-peroxo-diferric complex should occur via conversion to a more electrophilic high-valent species. The thorough characterization of these species provides structure-spectroscopy correlations allowing insights into the formation and reactivities of hydroperoxo intermediates in diiron enzymes and their conversion to activated P' or high-valent intermediates.
Medical subject headings
- Ferric Compounds
- Oxygen