| Literature DB >> 35322325 |
David A Flesher1, Jinchan Liu1, Jessica M Wiwczar1, Krystle Reiss2, Ke R Yang2, Jimin Wang1, Mikhail Askerka2, Christopher J Gisriel2, Victor S Batista2, Gary W Brudvig3,4.
Abstract
The oxygen-evolving complex (OEC) of photosystem II (PSII) cycles through redox intermediate states Si (i = 0-4) during the photochemical oxidation of water. The S2 state involves an equilibrium of two isomers including the low-spin S2 (LS-S2) state with its characteristic electron paramagnetic resonance (EPR) multiline signal centered at g = 2.0, and a high-spin S2 (HS-S2) state with its g = 4.1 EPR signal. The relative intensities of the two EPR signals change under experimental conditions that shift the HS-S2/LS-S2 state equilibrium. Here, we analyze the effect of glycerol on the relative stability of the LS-S2 and HS-S2 states when bound at the narrow channel of PSII, as reported in an X-ray crystal structure of cyanobacterial PSII. Our quantum mechanics/molecular mechanics (QM/MM) hybrid models of cyanobacterial PSII show that the glycerol molecule perturbs the hydrogen-bond network in the narrow channel, increasing the pKa of D1-Asp61 and stabilizing the LS-S2 state relative to the HS-S2 state. The reported results are consistent with the absence of the HS-S2 state EPR signal in native cyanobacterial PSII EPR spectra and suggest that the narrow water channel hydrogen-bond network regulates the relative stability of OEC catalytic intermediates during water oxidation.Entities:
Keywords: Electron paramagnetic resonance; Glycerol; Hydrogen-bond network; Oxygen evolution; Photosystem II; Quantum mechanics/molecular mechanics; S2 state
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Year: 2022 PMID: 35322325 PMCID: PMC9427693 DOI: 10.1007/s11120-022-00911-0
Source DB: PubMed Journal: Photosynth Res ISSN: 0166-8595 Impact factor: 3.429