Laurent Maron, Nicolas Giraud, Christelle Hureau, Camille Blanc, Lauriane Oriol, Thayalan Rajeshkumar, Christian Bijani, Charles-Louis Serpentini, Emilie Mathieu
Journal: Journal of inorganic biochemistry 2025;270():112924
PMID: 40328142
The mechanism by which pyrroloquinoline quinone (PQQ)-dependent methanol dehydrogenases (MDH), bearing either a Ca or a lanthanide (Ln ion in their active site, oxidize methanol has been intensely debated. In particular, the Ln-dependent activity of Ln-MDH remains poorly understood. The lack of experimental evidence represents a significant limitation to improve our understanding of these enzymes. In this work, we propose that insights on Ca- and Ln-MDH reactivity can be gained by examining a model reaction, the hydration of PQQ. Indeed, this reaction is similar to the first step of the putative methanol addition-elimination mechanism and is expected to be similarly influenced by the metal ion. The apparent affinity constants of PQQ for Ca and Ln were determined by UVvis absorption spectroscopy. Ln-PQQ complexes in aqueous solution were analyzed by steady-state and time-resolved fluorescence spectroscopy. The thermodynamic and kinetic parameters describing the equilibrium were obtained by variable-temperature and proton exchange spectroscopy (EXSY) NMR, as well as DFT calculations. Results demonstrated a Ln-dependent exchange rate for PQQ hydration equilibrium, the late and more Lewis acidic Ln having the stronger impact.
Copyright © 2025 The Authors. Published by Elsevier Inc. All rights reserved.
Full Text Sources:
Miscellaneous:
© Copyright 2026, Nutrition Evidence
We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.