4.8 Article

Structure and reactivity of a mononuclear non-haem iron(III)-peroxo complex

Journal

NATURE
Volume 478, Issue 7370, Pages 502-505

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/nature10535

Keywords

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Funding

  1. NRF/MEST of Korea through the CRI
  2. NRF/MEST of Korea through the GRL [2010-00353]
  3. NRF/MEST of Korea through the WCU [R31-2008-000-10010-0]
  4. NIH [GM 40392, RR-001209]
  5. NSF [MCB 0919027]
  6. NSF EAPSI [OISE-1014685]
  7. University of Michigan
  8. Department of Energy (DOE) Office of Science
  9. DOE, Office of Biological and Environmental Research
  10. NIH, National Center for Research Resources [5P41RR001209]
  11. National Research Foundation of Korea [2010-00353] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Oxygen-containing mononuclear iron species-iron(III)-peroxo, iron(III)-hydroperoxo and iron(IV)-oxo-are key intermediates in the catalytic activation of dioxygen by iron-containing metalloenzymes(1-7). It has been difficult to generate synthetic analogues of these three active iron-oxygen species in identical host complexes, which is necessary to elucidate changes to the structure of the iron centre during catalysis and the factors that control their chemical reactivities with substrates. Here we report the high-resolution crystal structure of a mononuclear non-haem side-on iron(III)-peroxo complex, [Fe(III)(TMC)(OO)](+). We also report a series of chemical reactions in which this iron(III)-peroxo complex is cleanly converted to the iron(III)-hydroperoxo complex, [Fe(III)(TMC)(OOH)](2+), via a short-lived intermediate on protonation. This iron(III)-hydroperoxo complex then cleanly converts to the ferryl complex, [Fe(IV)(TMC)(O)](2+), via homolytic O-O bond cleavage of the iron(III)-hydroperoxo species. All three of these iron species-the three most biologically relevant iron-oxygen intermediates-have been spectroscopically characterized; we note that they have been obtained using a simple macrocyclic ligand. We have performed relative reactivity studies on these three iron species which reveal that the iron(III)-hydroperoxo complex is the most reactive of the three in the deformylation of aldehydes and that it has a similar reactivity to the iron(IV)-oxo complex in C-H bond activation of alkylaromatics. These reactivity results demonstrate that iron(III)-hydroperoxo species are viable oxidants in both nucleophilic and electrophilic reactions by iron-containing enzymes.

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