Issue 3, 2012

Structure, electronic configuration, and Mössbauer spectral parameters of an antiferromagnetic Fe2-peroxo intermediate of methane monooxygenase

Abstract

Determining structures of reaction intermediates is crucial for understanding catalytic cycles of metalloenzymes. However, short life times or experimental difficulties have prevented obtaining such structures for many enzymes of interest. We report geometric and electronic structures of a peroxo intermediate in the catalytic cycle of methane monooxygenase hydroxylase (MMOH) for which there is no crystallographic characterization. The structure was predicted via spin density functional theory using 57Fe Mössbauer spectral parameters as a reference. Computed isomer shifts (δFe = +0.68, +0.66 mm s−1) and quadrupole splittings (ΔEQ = −1.49, −1.48 mm s−1) for the predicted structure are in excellent agreement with experimental values of a peroxo MMOH intermediate. Predicted peroxo to iron charge transfer bands agree with UV-Vis spectroscopy. Peroxide binds in a cis μ-1,2 fashion and plays a dominant role in the active site's electronic structure. This induces a ferromagnetic to antiferromagnetic transition of the diiron core weakening the O–O bond in preparation for cleavage in subsequent steps of the catalytic cycle.

Graphical abstract: Structure, electronic configuration, and Mössbauer spectral parameters of an antiferromagnetic Fe2-peroxo intermediate of methane monooxygenase

Supplementary files

Article information

Article type
Paper
Submitted
02 Sep 2011
Accepted
11 Oct 2011
First published
21 Nov 2011

Dalton Trans., 2012,41, 995-1003

Structure, electronic configuration, and Mössbauer spectral parameters of an antiferromagnetic Fe2-peroxo intermediate of methane monooxygenase

T. Chachiyo and J. H. Rodriguez, Dalton Trans., 2012, 41, 995 DOI: 10.1039/C1DT11656H

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