Solvent Channels and Electric Fields Guide Proton Delivery to the Active Site of Heme Peroxidases

R Reynier Suardiaz (Department of Physical Chemistry) S Shakir Ali Siddiqui (Molecular Simulation Lab, Department of Chemistry, School of Natural Sciences) H Hanna Kwon (School of Chemistry University of Bristol Cantock's Close Bristol BS8 1TS UK) M Marc W. van der Kamp (School of Biochemistry University of Bristol University Walk Bristol BS8 1TD UK) L Lola González‐Sánchez (Department of Physical Chemistry University of Salamanca Salamanca 37008 Spain) P Peter C. E. Moody (Institute for Structural and Chemical Biology, Department Molecular and Cell Biology) E Emma L. Raven A Adrian J. Mulholland (Centre for Computational Chemistry, School of Chemistry, Cantock’s Close)

Abstract

Abstract The active sites of heme enzymes have evolved to control the formation of highly reactive intermediates in oxidative catalysis. Proton delivery to the heme is essential, yet the mechanisms of proton delivery remain poorly understood. Here, we identify routes and drivers of proton delivery in a heme peroxidase (ascorbate peroxidase) using computational approaches that combine classical, quantum, and hybrid methods with enhanced sampling and local electric field (LEF) analyses. Our results show that networks of active‐site water molecules facilitate proton exchange with Arg38, which may act as a transient proton carrier at the γ‐heme edge where the substrate binds. The distal His42 residue aids proton transfer into the active site via solvent at the δ‐edge. Molecular dynamics simulations of three heme peroxidases identify hydrated channels leading to both γ‐ and δ‐edges, allowing solvent protons to reach the active site. Comparison with eight other heme peroxidases shows that these channels are conserved. LEF analyses reveal a continuous electrostatic funnel drawing protons toward the heme from the γ‐ and δ‐edges, a feature that is broadly conserved across other peroxidases. These results suggest that nature pre‐organizes electrostatic funnels and solvent channels to provide multiple well‐defined routes for proton delivery in peroxidase catalysis.

Article Details

Volume / Issue Vol. 64, Issue 50
Published December 08, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

R

Reynier Suardiaz

Department of Physical Chemistry

S

Shakir Ali Siddiqui

Molecular Simulation Lab, Department of Chemistry, School of Natural Sciences

H

Hanna Kwon

School of Chemistry University of Bristol Cantock's Close Bristol BS8 1TS UK

M

Marc W. van der Kamp

School of Biochemistry University of Bristol University Walk Bristol BS8 1TD UK

L

Lola González‐Sánchez

Department of Physical Chemistry University of Salamanca Salamanca 37008 Spain

P

Peter C. E. Moody

Institute for Structural and Chemical Biology, Department Molecular and Cell Biology

E

Emma L. Raven

A

Adrian J. Mulholland

Centre for Computational Chemistry, School of Chemistry, Cantock’s Close