Sugiura Miwa, Boussac Alain, Noguchi Takumi, Rappaport Fabrice
Department of Plant Biosciences, School of Life and Environmental Sciences, Osaka Prefecture University, 1-1 Gakuen-cho, Sakai, Osaka, 599-8531, Japan.
Biochim Biophys Acta. 2008 Apr;1777(4):331-42. doi: 10.1016/j.bbabio.2008.01.007. Epub 2008 Jan 26.
The influence of the histidine axial ligand to the PD1 chlorophyll of photosystem II on the redox potential and spectroscopic properties of the primary electron donor, P680, was investigated in mutant oxygen-evolving photosystem II (PSII) complexes purified from the thermophilic cyanobacterium Thermosynechococcus elongatus. To achieve this aim, a mutagenesis system was developed in which the psbA1 and psbA2 genes encoding D1 were deleted from a His-tagged CP43 strain (to generate strain WT*) and mutations D1-H198A and D1-H198Q were introduced into the remaining psbA3 gene. The O2-evolving activity of His-tagged PSII isolated from WT* was found to be significantly higher than that measured from His-tagged PSII isolated from WT in which psbA1 is expected to be the dominantly expressed form. PSII purified from both the D1-H198A and D1-H198Q mutants exhibited oxygen-evolving activity as high as that from WT*. Surprisingly, a variety of kinetic and spectroscopic measurements revealed that the D1-H198A and D1-H198Q mutations had little effect on the redox and spectroscopic properties of P680, in contrast to the earlier results from the analysis of the equivalent mutants constructed in Synechocystis sp. PCC 6803 [B.A. Diner, E. Schlodder, P.J. Nixon, W.J. Coleman, F. Rappaport, J. Lavergne, W.F. Vermaas, D.A. Chisholm, Site-directed mutations at D1-His198 and D2-His197 of photosystem II in Synechocystis PCC 6803: sites of primary charge separation and cation and triplet stabilization, Biochemistry 40 (2001) 9265-9281]. We conclude that the nature of the axial ligand to PD1 is not an important determinant of the redox and spectroscopic properties of P680 in T. elongatus.
在从嗜热蓝藻细长聚球藻中纯化得到的突变放氧光系统II(PSII)复合物中,研究了组氨酸轴向配体对光系统II的PD1叶绿素的影响,以及其对原初电子供体P680的氧化还原电位和光谱性质的影响。为实现这一目标,开发了一种诱变系统,其中从带有组氨酸标签的CP43菌株中删除编码D1的psbA1和psbA2基因(以产生WT菌株),并将突变D1-H198A和D1-H198Q引入剩余的psbA3基因中。发现从WT中分离得到的带有组氨酸标签的PSII的放氧活性明显高于从WT中分离得到的带有组氨酸标签的PSII,在WT中预计psbA1是主要表达形式。从D1-H198A和D1-H198Q突变体中纯化得到的PSII表现出与WT*一样高的放氧活性。令人惊讶的是,各种动力学和光谱测量表明,与在集胞藻属PCC 6803中构建的等效突变体的早期分析结果相反,D1-H198A和D1-H198Q突变对P680的氧化还原和光谱性质几乎没有影响[B.A.迪纳、E.施洛德、P.J.尼克松、W.J.科尔曼、F.拉帕波特、J.拉韦尔涅、W.F.韦尔马斯、D.A.奇泽姆,集胞藻属PCC 6803中光系统II的D1-组氨酸198和D2-组氨酸197位点的定点突变:原初电荷分离以及阳离子和三重态稳定的位点,《生物化学》40(2001)9265-9281]。我们得出结论,在细长聚球藻中,PD1的轴向配体的性质不是P680的氧化还原和光谱性质的重要决定因素。