Journal Article
Probing substrate water access through the O1 channel of Photosystem II by single site mutations and membrane inlet mass spectrometry
A. Orkun Aydin; Casper de Lichtenberg; Feiyan Liang; Jack Forsman; André T. Graça; Petko Chernev; Shaochun Zhu; André Mateus; Ann Magnuson; Mun Hon Cheah; Wolfgang P. Schröder; Felix Ho; Peter Lindblad; Richard J. Debus; Fikret Mamedov; Johannes Messinger
Photosynthesis Research · Vol. 163, Issue 3 · 2025
Abstract
Light-driven water oxidation by photosystem II sustains life on Earth by providing the electrons and protons for the reduction of CO 2 to carbohydrates and the molecular oxygen we breathe. The inorganic core of the oxygen evolving complex is made of the earth-abundant elements manganese, calcium and oxygen (Mn 4 CaO 5 cluster), and is situated in a binding pocket that is connected to the aqueous surrounding via water-filled channels that allow water intake and proton egress. Recent serial crystallography and infrared spectroscopy studies performed with PSII isolated from Thermosynechococcus vestitus ( T. vestitus ) support that one of these channels, the O1 channel, facilitates water access to the Mn 4 CaO 5 cluster during its S 2 →S 3 and S 3 →S 4 →S 0 state transitions, while a subsequent CryoEM study concluded that this channel is blocked in the cyanobacterium Synechocystis sp. PCC 6803, questioning the role of the O1 channel in water delivery. Employing site-directed mutagenesis we modified the two O1 channel bottleneck residues D1-E329 and CP43-V410 ( T. vestitus numbering) and probed water access and substrate exchange via time resolved membrane inlet mass spectrometry. Our data demonstrates that water reaches the Mn 4 CaO 5 cluster via the O1 channel in both wildtype and mutant PSII. In addition, the detailed analysis provides functional insight into the intricate protein-water-cofactor network near the Mn 4 CaO 5 cluster that includes the pentameric, near planar ‘water wheel’ of the O1 channel.