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Rapid evolution of the Photosystem II electronic structure during water splitting.


ABSTRACT: Photosynthetic water oxidation is a fundamental process that sustains the biosphere. A Mn4Ca cluster embedded in the photosystem II protein environment is responsible for the production of atmospheric oxygen. Here, time-resolved x-ray emission spectroscopy (XES) was used to observe the process of oxygen formation in real time. These experiments reveal that the oxygen evolution step, initiated by three sequential laser flashes, is accompanied by rapid (within 50 ?s) changes to the Mn K? XES spectrum. However, no oxidation of the Mn4Ca core above the all MnIV state was detected to precede O-O bond formation, and the observed changes were therefore assigned to O-O bond formation dynamics. We propose that O-O bond formation occurs prior to the transfer of the final (4th) electron from the Mn4Ca cluster to the oxidized tyrosine YZ residue. This model resolves the kinetic limitations associated with O-O bond formation, and suggests an evolutionary adaptation to avoid releasing of harmful peroxide species.

SUBMITTER: Davis KM 

PROVIDER: S-EPMC6588194 | biostudies-literature | 2018 Oct-Dec

REPOSITORIES: biostudies-literature

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Rapid evolution of the Photosystem II electronic structure during water splitting.

Davis Katherine M KM   Sullivan Brendan T BT   Palenik Mark C MC   Yan Lifen L   Purohit Vatsal V   Robison Gregory G   Kosheleva Irina I   Henning Robert W RW   Seidler Gerald T GT   Pushkar Yulia Y  

Physical review. X 20181023 4


Photosynthetic water oxidation is a fundamental process that sustains the biosphere. A Mn<sub>4</sub>Ca cluster embedded in the photosystem II protein environment is responsible for the production of atmospheric oxygen. Here, time-resolved x-ray emission spectroscopy (XES) was used to observe the process of oxygen formation in real time. These experiments reveal that the oxygen evolution step, initiated by three sequential laser flashes, is accompanied by rapid (within 50 μs) changes to the Mn K  ...[more]

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