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Published on: July 27, 2022
QM/MM Reveals Coordination Shift behind Early Lanthanide Preference in Methanol Dehydrogenase XoxF
Emiliano Isaías Alanís-Manzano1, José Luis Velázquez-Libera2, César Millan Pacheco3
1Instituto de Ciencias Físicas, Universidad Nacional Autónoma de México, Cuernavaca Morelos62210, México.
Abstract:
Lanthanides serve as essential catalytic cofactors in methanol dehydrogenase (MDH), yet the structural and energetic basis for the biological preference for early lanthanides (La-Gd) remains poorly understood. Here, we present a systematic Quantum-Mechanics/Molecular-Mechanics (QM/MM) study of the full Ln series (La-Lu) using the ωB97X-D4rev exchange-correlation functional. Structurally, we identify a substrate-dependent coordination switch: in the Michaelis-Menten complex, the biologically relevant light Ln (La-Gd) maintains a 10-coordinate geometry, whereas a discrete transition to a 9-coordinate state occurs from Tb onward, driven by the shift of the essential Asp301 from bidentate to monodentate coordination mode. Notably, this shift is absent in the substrate-free enzyme, indicating that substrate binding enforces the steric crowding that disfavors heavier metals. Energetic analysis reveals that within the biologically relevant window (La-Gd), substrate affinity is mostly uniform, while enzyme binding affinity exhibits a clear and steady preference for the lighter metals. These results demonstrate that biological lanthanide selection in MDH arises from a combination of higher binding affinity for early lanthanides and their ability to preserve a catalytically competent 10-coordinate geometry, rather than from differential substrate binding. Taken together, our findings provide a structural and energetic framework for understanding the coordination properties of the lanthanide series in the active site of the MDH and may guide further QM/MM studies on the reaction mechanism of this enzyme as well as the engineering of lanthanide-dependent biocatalysts.
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