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质子/氢转移影响水分解过程中P680+还原的S态依赖微秒相。

Proton/hydrogen transfer affects the S-state-dependent microsecond phases of P680+ reduction during water splitting.

作者信息

Schilstra M J, Rappaport F, Nugent J H, Barnett C J, Klug D R

机构信息

Department of Biochemistry and Chemistry, Imperial College, London, United Kingdom.

出版信息

Biochemistry. 1998 Mar 17;37(11):3974-81. doi: 10.1021/bi9713815.

Abstract

To investigate a possible coupling between P680+ reduction and hydrogen transfer, we studied the effects of H2O/D2O exchange on the P680+ reduction kinetics in the nano- and microsecond domains. We concentrated on studying the period-4 oscillatory (i.e., S-state-related) part of the reduction kinetics, by analyzing the differences between the P680+ reduction curves, rather than the full kinetics. Earlier observations that P680+ reduction kinetics have microsecond components were confirmed: the longest observable lifetime whose amplitude showed period-4 oscillations was 30 microseconds. We found that solvent isotope exchange left the nanosecond phases of the P680+ reduction unaltered. However, a significant effect on the oscillatory microsecond components was observed. We propose that, at least in the S0/S1 and S3/S0 transitions, hydrogen (proton) transfer provides an additional decrease in the free energy of the YZ+P680 state with respect to the YZP680+ state. This implies that relaxation of the state YZ+P680 is required for complete reduction of P680+ and for efficient water splitting. The kinetics of the P680+ reduction suggest that it is intraprotein proton/hydrogen rearrangement/transfer, rather than proton release to the bulk, which is occurring on the 1-30 microseconds time scale.

摘要

为了研究P680⁺还原与氢转移之间可能存在的耦合关系,我们研究了H₂O/D₂O交换对纳秒和微秒时间域内P680⁺还原动力学的影响。我们专注于通过分析P680⁺还原曲线之间的差异来研究还原动力学的第4周期振荡(即与S态相关)部分,而不是完整的动力学。早期关于P680⁺还原动力学具有微秒成分的观察结果得到了证实:可观察到的振幅呈现第4周期振荡的最长寿命为30微秒。我们发现溶剂同位素交换并未改变P680⁺还原的纳秒阶段。然而,观察到对振荡微秒成分有显著影响。我们提出,至少在S₀/S₁和S₃/S₀转变中,氢(质子)转移相对于YZP680⁺状态使YZ⁺P680状态的自由能进一步降低。这意味着P680⁺的完全还原和高效的水分解需要YZ⁺P680状态的弛豫。P680⁺还原的动力学表明,在1 - 30微秒时间尺度上发生的是蛋白质内质子/氢的重排/转移,而不是向主体释放质子。

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