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首页> 外文期刊>Biochemistry >High-frequency electron nuclear double-resonance spectroscopy studies of the mechanism of proton-coupled electron transfer at the tyrosine-D residue of photosystem II
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High-frequency electron nuclear double-resonance spectroscopy studies of the mechanism of proton-coupled electron transfer at the tyrosine-D residue of photosystem II

机译:高频电子核双共振光谱研究光系统II酪氨酸-D残基上质子耦合电子的转移机理

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The solar water-splitting protein complex, photosystem II, catalyzes one of the most energetically demanding reactions in Nature by using light energy to drive the catalytic oxidation of water. Photosystem II contains two symmetrically placed tyrosine residues, Y_D and Y_Z, one on each subunit of the heterodimeric core. The Y_Z residue is kinetically competent and is proposed to be directly involved in the proton-coupled electron transfer reactions of water oxidation. In contrast, the Y_D proton-coupled electron transfer redox poises the catalytic tetranuclear manganese cluster and may electrostatically tune the adjacent monomeric redox-active chlorophyll and β-carotene in the secondary electron transfer pathway of photosystem II. In this study, we apply pulsed high-frequency electron paramagnetic resonance (EPR) and electron nuclear double-resonance (ENDOR) spectroscopy to study the photochemical proton-coupled electron transfer (PCET) intermediates of Y_D. We detect the "unrelaxed" and "relaxed" photoinduced PCET intermediates of Y_D using high-frequency EPR spectroscopy and observe an increase of the g anisotropy upon temperature-induced relaxation of the unrelaxed intermediate to the relaxed state as previously observed by Faller et al. [(2002) Biochemistry 41, 12914-12920; (2003) Proc. Natl. Acad. Sci. U.S.A. 100, 8732-8735]. This observation suggests the presence of structural differences between the two intermediates. We probe the possible structural differences by performing high-frequency ~2H ENDOR spectroscopy experiments. On the basis of numerical simulations of the experimental ~2H ENDOR spectra, we confirm that (i) there is a significant change in the H-bond length of the tyrosyl radical in the unrelaxed (1.49 ?) and relaxed (1.75 ?) PCET intermediates. This observation suggests that the D2-His189 residue is deprotonated prior to electron transfer at the Y_D residue and (ii) there are negligible changes in the conformation of the tyrosyl ring in the unrelaxed and relaxed PCET intermediates of Y_D.
机译:太阳光分解水的蛋白质复合物光系统II通过利用光能驱动水的催化氧化作用,催化自然界中最耗能的反应之一。光系统II在异二聚体核心的每个亚基上包含两个对称放置的酪氨酸残基Y_D和Y_Z。 Y_Z残留物具有动力学能力,被建议直接参与水氧化的质子耦合电子转移反应。相反,Y_D质子偶联的电子转移氧化还原保持催化四核锰簇的平衡,并可能在光系统II的二次电子转移路径中静电调节相邻的单体氧化还原活性叶绿素和β-胡萝卜素。在这项研究中,我们应用脉冲高频电子顺磁共振(EPR)和电子核双共振(ENDOR)光谱研究Y_D的光化学质子耦合电子转移(PCET)中间体。我们使用高频EPR光谱检测Y_D的“无松弛”和“松弛”光诱导PCET中间体,并观察到Fallen等人先前观察到的温度诱导的无松弛中间体松弛到松弛态后g各向异性的增加。 [(2002)Biochemistry 41,12914-12920; (2003年)过程。 Natl。学院科学美国专利100,8732-8735]。该观察结果表明两种中间体之间存在结构差异。我们通过进行高频〜2H ENDOR光谱实验来探究可能的结构差异。根据实验〜2H ENDOR光谱的数值模拟,我们确认(i)在未松弛(1.49?)和松弛(1.75?)的PCET中间体中,酪氨酰基的H键长有很大变化。 。该观察结果表明D2-His189残基在电子转移之前在Y_D残基处去质子化,并且(ii)在Y_D的未松弛和松弛的PCET中间体中酪氨酰基环的构象变化可忽略不计。

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