Bicarbonate-controlled reduction of oxygen by the Q<sub>A</sub> semiquinone in Photosystem II in membranes.

Fantuzzi, Andrea; Allgöwer, Friederike; Baker, Holly; McGuire, Gemma; Teh, Wee Kii; Gamiz-Hernandez, Ana P; Kaila, Ville R I; Rutherford, A William · Proc Natl Acad Sci U S A · 2022

basic_science · Level V

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Abstract

Photosystem II (PSII), the water/plastoquinone photo-oxidoreductase, plays a key energy input role in the biosphere. [Formula: see text], the reduced semiquinone form of the nonexchangeable quinone, is often considered capable of a side reaction with O<sub>2</sub>, forming superoxide, but this reaction has not yet been demonstrated experimentally. Here, using chlorophyll fluorescence in plant PSII membranes, we show that O<sub>2</sub> does oxidize [Formula: see text] at physiological O<sub>2</sub> concentrations with a <i>t</i><sub>1/2</sub> of 10 s. Superoxide is formed stoichiometrically, and the reaction kinetics are controlled by the accessibility of O<sub>2</sub> to a binding site near [Formula: see text], with an apparent dissociation constant of 70 ± 20 µM. Unexpectedly, [Formula: see text] could only reduce O<sub>2</sub> when bicarbonate was absent from its binding site on the nonheme iron (Fe<sup>2+</sup>) and the addition of bicarbonate or formate blocked the O<sub>2</sub>-dependant decay of [Formula: see text] These results, together with molecular dynamics simulations and hybrid quantum mechanics/molecular mechanics calculations, indicate that electron transfer from [Formula: see text] to O<sub>2</sub> occurs when the O<sub>2</sub> is bound to the empty bicarbonate site on Fe<sup>2+</sup> A protective role for bicarbonate in PSII was recently reported, involving long-lived [Formula: see text] triggering bicarbonate dissociation from Fe<sup>2+</sup> [Brinkert <i>et al</i>, <i>Proc. Natl. Acad. Sci. U.S.A.</i> 113, 12144-12149 (2016)]. The present findings extend this mechanism by showing that bicarbonate release allows O<sub>2</sub> to bind to Fe<sup>2+</sup> and to oxidize [Formula: see text] This could be beneficial by oxidizing [Formula: see text] and by producing superoxide, a chemical signal for the overreduced state of the electron transfer chain.

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