2026/05/27 by Adrián García-Martínez, Miguel de la Puente, Marion Cunin +4 · 1 voice
Biochemistry, Genetics and Molecular Biology · Chemistry · #ATP Synthase and ATPases Research #Chemical Reaction Mechanisms #Coordination Chemistry and Organometallics
paper · pdf · doi:10.1038/s41467-026-73697-7
openalex publication_date 2026/05/27 · openalex created_date 2026/05/28 · openalex updated_date 2026/07/30
Phosphoanhydride hydrolysis is a central reaction in biochemistry, powering processes from biosynthesis to molecular motors. Yet, its solution mechanism and the molecular origins of the catalytic effects of protonation and magnesium ions remain elusive both to experiments and simulations. Here we use machine learning potentials trained at density functional theory accuracy combined with extensive reaction path sampling and free-energy methods to dissect pyrophosphate hydrolysis in solution, a model for ATP and GTP reactivity. Our simulations reveal multiple mechanistic pathways and identify a dominant mechanism involving synchronous P-O bond formation and cleavage, followed by solvent-assisted proton transfer. Protonation and Mg²⁺ coordination both stabilize tighter transition-state ensembles and lower activation barriers, although our simulations show that the intrinsic catalytic effect of the metal ion has been overestimated. These results establish the key drivers of phosphate hydrolysis. This study shows how pyrophosphate hydrolysis in water proceeds through multiple pathways shaped by protonation and magnesium ions, with magnesium mainly acting by shifting protonation equilibria rather than directly catalysing the reaction.