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Kinetic Modelling of Processes Behind S2,3-states Deactivation in Photosynthetic Oxygen Evolution

机译:在光合氧气演化过程中,S2,3-态失活过程的动力学模型

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Photosynthetic water splitting, localized in photosystem II, is the source of atmospheric oxygen and possible alternative energy source. It is therefore important to understand the related processes which influence the efficiency of water splitting. We have employed kinetic models of photosystem II to study deactivation processes of higher S-states (redox states of water splitting) in the dark. Our analysis of spinach samples, treated or untreated by electron acceptor phenyl-parabenzoquinone (PPBQ) indicated an unknown mechanism, decay, related to S_(2,3)-state deactivation. We concluded that: (1) S_3-state decay occurs independently on the PPBQ treatment, i.e., independently on the redox state of the acceptor side of photosystem II, (2) S_2-state decay can be fully described by S_2-Q_(A,B)~- charge recombination, neglected in previous models, and (3) the mechanism of S_3-state decay can be explained by the involvement of slow cooperation within photosystem II dimer between S_3~(PSIIa) and S_(3,2,1)~(PSIIb) in higher plants. Finally, the slow cooperation is able to explain experimental data both from PPBQ-free and PPBQ treated samples.
机译:位于光系统II中的光合水分解是大气中氧气的来源和可能的替代能源。因此,重要的是要了解影响水分解效率的相关过程。我们已经使用了光系统II的动力学模型来研究在黑暗中更高的S状态(水分解的氧化还原状态)的失活过程。我们对菠菜样品的分析,用电子受体苯基-对苯并醌(PPBQ)处理或未处理的菠菜样品均显示出与S_(2,3)状态失活有关的未知机理,即衰变。我们得出以下结论:(1)S_3状态衰减独立于PPBQ处理,即独立于光系统II受体侧的氧化还原状态发生,(2)S_2状态衰减可以由S_2-Q_(A ,B)〜-电荷复合,在以前的模型中被忽略,以及(3)S_3态衰变的机理可以通过S_3〜(PSIIa)和S_(3,2, 1)〜(PSIIb)在高等植物中。最后,缓慢的合作能够解释来自无PPBQ和经PPBQ处理的样品的实验数据。

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