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Published on: June 27, 2014
Mechanism of the Oxygen-Evolving Process in the Water-Oxidizing Complex of Photosystem II, as Revealed by
Kiichi Sugie1, Yuki Kato1, Ryo Nagao1
1Department of Physics, Graduate School of Science, Nagoya University, Furo-cho, Chikusa-ku, Nagoya 464-8602, Japan.
Abstract:
The molecular mechanism of photosynthetic water oxidation in photosystem II was investigated, focusing on the elusive O2-evolving S3 → S0 transition using time-resolved infrared spectroscopy, supported by quantum mechanics/molecular mechanics calculations. It was suggested that the initial ∼ 200 μs phase, which was significantly retarded by Cl- → NO3- substitution but not much by Ca2+ → Sr2+ substitution, is attributed to proton release from W1, promoted by YZ oxidation, via the Cl-1 channel. The resultant W1 = OH- form is in thermal equilibrium with the W2 = OH- form. The slow millisecond phase was significantly retarded by both Sr2+ and NO3- substitutions, maintaining electron transfer to YZ• as the rate-limiting step even in very slow kinetics with simultaneous Sr2+/NO3- substitution, indicating that the hydrogen-bond network of water molecules between the Cl and Ca sites plays a crucial role in the electron transfer to form the transient S4 state. It is proposed that electron transfer is coupled with internal proton transfer from O6H- to W2(OH-) through this hydrogen-bond network. These results highlight the key role of the hydrogen-bond network in the catalytic site in the molecular mechanism of the O2-evolving process, the slowest step in photosynthetic water oxidation.
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