Hydroxo-bridged active site of flavodiiron NO reductase revealed by NRVS and DFT

F Filipe Folgosa (Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa) V Vladimir Pelmenschikov (Institut für Chemie, Technische Universität Berlin) G Giorgio Caserta (Institut für Chemie, Technische Universität Berlin, Straße des 17. Juni 135, 10623 Berlin, Germany) M Matthias Keck (Department of Chemistry, Humboldt-Universität zu Berlin) C Christian Lorent K Konstantin Laun (Institut für Chemie, Technische Universität Berlin, Straße des 17. Juni 135, 10623 Berlin, Germany) Y Yoshitaka Yoda (Japan Synchrotron Radiation Research Institute, SPring-8) L Leland B. Gee (Linac Coherent Light Source, SLAC National Accelerator Laboratory, 2575 Sand Hill Road, Menlo Park, California 94025, United States) M Martin Kaupp (Institut für Chemie, Technische Universität Berlin, Straße des 17. Juni 135, Berlin 10623, Germany) K Kenji Tamasaku (RIKEN SPring-8 Center) J James A. Birrell (School of Life Science, University of Essex) I Ilya Sergueev (Deutsches Elektronen-Synchrotron, Notkestraße 85, 22607 Hamburg, Germany) C Christian Limberg (Institut für Chemie, Humboldt-Universität zu Berlin, Brook-Taylor-Straße 2, 12489 Berlin, Germany) M Miguel Teixeira (Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa) L Lars Lauterbach (Institute of Applied Microbiology, Rheinisch-Westfälische Technische Hochschule (RWTH) Aachen University)

Abstract

The use of oxygen and nitrate as terminal electron acceptors provides organisms with a huge amount of available energy but necessitates methods to detoxify reactive intermediates. The mechanisms of NO and O 2 detoxification in many organisms involve flavodiiron proteins (FDPs). Although the proteinaceous ligands that coordinate the diiron active site of these enzymes are well established, its exact coordination environment remains under debate due to conflicting interpretations of crystallographic and spectroscopic/theoretical studies. Using 57 Fe nuclear resonance vibrational spectroscopy (NRVS), complemented by Mössbauer spectroscopy and density functional theory, we elucidated the redox-linked structural changes in the FDP from Escherichia coli . The as-isolated diferric state is best described as a dihydroxo-bridged Fe(III)–(μOH − ) 2 –Fe(III) core, which upon reduction converts to a monohydroxo Fe(II)–(μOH − )–Fe(II) center through the loss of one bridging ligand. This ligand rearrangement defines the structural basis for redox-linked reactivity in FDPs. The study further demonstrates that photoreduction of a stable metalloprotein species can occur under NRVS conditions, indicating that synchrotron-based vibrational measurements may induce subtle redox changes even under low photon flux. These findings provide a mechanistic framework for interpreting redox-linked ligand dynamics in diiron enzymes and highlight the need to collect damage-free X-ray crystal structures avoiding potential beam-induced reduction. Furthermore, diiron active sites are found in numerous other enzyme classes (e.g., methane monooxygenase), and therefore, our findings have implications way beyond the FDPs.

Article Details

Volume / Issue Vol. 123, Issue 2
Published January 13, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (15)

F

Filipe Folgosa

Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa

V

Vladimir Pelmenschikov

Institut für Chemie, Technische Universität Berlin

G

Giorgio Caserta

Institut für Chemie, Technische Universität Berlin, Straße des 17. Juni 135, 10623 Berlin, Germany

M

Matthias Keck

Department of Chemistry, Humboldt-Universität zu Berlin

C

Christian Lorent

K

Konstantin Laun

Institut für Chemie, Technische Universität Berlin, Straße des 17. Juni 135, 10623 Berlin, Germany

Y

Yoshitaka Yoda

Japan Synchrotron Radiation Research Institute, SPring-8

L

Leland B. Gee

Linac Coherent Light Source, SLAC National Accelerator Laboratory, 2575 Sand Hill Road, Menlo Park, California 94025, United States

M

Martin Kaupp

Institut für Chemie, Technische Universität Berlin, Straße des 17. Juni 135, Berlin 10623, Germany

K

Kenji Tamasaku

RIKEN SPring-8 Center

J

James A. Birrell

School of Life Science, University of Essex

I

Ilya Sergueev

Deutsches Elektronen-Synchrotron, Notkestraße 85, 22607 Hamburg, Germany

C

Christian Limberg

Institut für Chemie, Humboldt-Universität zu Berlin, Brook-Taylor-Straße 2, 12489 Berlin, Germany

M

Miguel Teixeira

Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa

L

Lars Lauterbach

Institute of Applied Microbiology, Rheinisch-Westfälische Technische Hochschule (RWTH) Aachen University