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在液氦温度下通过电子顺磁共振(EPR)探测从菠菜中分离出的光系统II核心复合物中的酪氨酸Z氧化。

Probing tyrosine Z oxidation in Photosystem II core complex isolated from spinach by EPR at liquid helium temperatures.

作者信息

Ren Yanan, Zhang Chunxi, Bao Han, Shen Jianren, Zhao Jingquan

机构信息

Laboratory of Photochemistry, Beijing National Laboratory of Molecular Sciences, Institute of Chemistry, Chinese Academy of Sciences, Beijing, China.

出版信息

Photosynth Res. 2009 Feb;99(2):127-38. doi: 10.1007/s11120-009-9410-x. Epub 2009 Feb 13.

Abstract

Tyrosine Z (Tyr(Z)) oxidation observed at liquid helium temperatures provides new insights into the structure and function of Tyr(Z) in active Photosystem II (PSII). However, it has not been reported in PSII core complex from higher plants. Here, we report Tyr(Z) oxidation in the S(1) and S(2) states in PSII core complex from spinach for the first time. Moreover, we identified a 500 G-wide symmetric EPR signal (peak position g = 2.18, trough position g = 1.85) together with the g = 2.03 signal induced by visible light at 10 K in the S(1) state in the PSII core complex. These two signals decay with a similar rate in the dark and both disappear in the presence of 6% methanol. We tentatively assign this new feature to the hyperfine structure of the S(1)Tyr(Z)() EPR signal. Furthermore, EPR signals of the S(2) state of the Mn-cluster, the oxidation of the non-heme iron, and the S(1)Tyr(Z)() in PSII core complexes and PSII-enriched membranes from spinach are compared, which clearly indicate that both the donor and acceptor sides of the reaction center are undisturbed after the removal of LHCII. These results suggest that the new spinach PSII core complex is suitable for the electron transfer study of PSII at cryogenic temperatures.

摘要

在液氦温度下观察到的酪氨酸Z(Tyr(Z))氧化为研究活性光系统II(PSII)中Tyr(Z)的结构和功能提供了新的见解。然而,在高等植物的PSII核心复合物中尚未有相关报道。在此,我们首次报道了菠菜PSII核心复合物中S(1)和S(2)状态下的Tyr(Z)氧化。此外,我们在PSII核心复合物的S(1)状态下于10 K时,识别出一个500 G宽的对称电子顺磁共振(EPR)信号(峰值位置g = 2.18,谷值位置g = 1.85)以及由可见光诱导的g = 2.03信号。这两个信号在黑暗中以相似的速率衰减,并且在存在6%甲醇的情况下均消失。我们初步将这一新特征归因于S(1)Tyr(Z)() EPR信号的超精细结构。此外,还比较了菠菜PSII核心复合物和富含PSII的膜中Mn簇S(2)状态的EPR信号、非血红素铁的氧化以及S(1)Tyr(Z)(),这清楚地表明去除LHCII后反应中心的供体侧和受体侧均未受到干扰。这些结果表明,新的菠菜PSII核心复合物适用于低温下PSII的电子转移研究。

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