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The Catalytic Cycle of Water Oxidation in Crystallized Photosystem II Complexes: Performance and Requirements for Formation of Intermediates

DOI:10.1021/acscatal.8b04513 期刊:ACS Catalysis 出版年份:2019 更新时间:2025-09-23 15:22:29
摘要: Crystals of Photosystem II (PSII) contain the most homogeneous copies of the water-oxidizing reaction center where O2 is evolved (WOC). However, few functional studies of PSII operation in crystals have been carried out, despite their widespread use in structural studies. Here we apply oximetric methods to determine the quantum efficiency and lifetimes of intermediates of the WOC cycle as a function of added electron acceptors (quinones and ferricyanide), both aerobically and anaerobically. PSII crystals exhibit the highest quantum yield of O2 production yet observed of any native or isolated PSII (61.6%, theoretically 59,000 μmol O2/mg Chl/h). WOC cycling can be sustained for thousands of turnovers using an irreversible electron acceptor (ferricyanide). Simulations of the catalytic cycle identify four distinct photochemical inefficiencies in both PSII crystals and dissolved PSII cores that are nearly the same. The exogenous acceptors equilibrate with the native plastoquinone acceptor at the QB (or QC) site(s), for which two distinct redox couples are observable that regulate flux through PSII. Flux through the catalytic cycle of water oxidation is shown to be kinetically restricted by the QAQB two-electron gate. The lifetimes of the S2 and S3 states are greatly extended (especially S2) by electron acceptors and depend on their redox reversibility. PSII performance can be pushed in vitro far beyond what it is capable of in vivo. With careful use of precautions and monitoring of populations, PSII microcrystals enable the exploration of WOC intermediates and the mechanism of catalysis.
作者: Gennady Ananyev,Shatabdi Roy-Chowdhury,Colin Gates,Petra Fromme,Gerard Charles Dismukes
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To provide a quantitative description of the PSII photocycle in microcrystals, including S state populations, lifetimes, and quantum yields, to inform crystallographic and spectroscopic studies.

PSII microcrystals achieve the highest quantum yield of oxygen production observed, up to 61.6%, and sustain cycling with appropriate electron acceptors. The lifetimes of S2 and S3 states are extended, and the catalytic cycle is more efficient in crystals than in vivo. This enables detailed exploration of WOC intermediates and mechanisms, with implications for understanding photosynthesis and potential applications in solar energy conversion.

The study is limited to in vitro conditions with PSII microcrystals and may not fully replicate in vivo behavior. The use of exogenous electron acceptors could alter natural processes, and the high light intensities required might cause photoinhibition. The method relies on oximetry, which has a slow response time limiting flash rates.

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