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Excitation Energy Transfer and Trapping in Higher Plant Photosystem II Complexes with Different Antenna Sizes

机译:不同天线尺寸的高等植物光系统II复合物中的激发能转移和俘获

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摘要

We performed picosecond fluorescence measurements on well-defined Photosystem II (PSII) supercomplexes from Arabidopsis with largely varying antenna sizes. The average excited-state lifetime ranged from 109 ps for PSII core to 158 ps for the largest C2S2M2 complex in 0.01% α-DM. Excitation energy transfer and trapping were investigated by coarse-grained modeling of the fluorescence kinetics. The results reveal a large drop in free energy upon charge separation (>700 cm−1) and a slow relaxation of the radical pair to an irreversible state (∼150 ps). Somewhat unexpectedly, we had to reduce the energy-transfer and charge-separation rates in complexes with decreasing size to obtain optimal fits. This strongly suggests that the antenna system is important for plant PSII integrity and functionality, which is supported by biochemical results. Furthermore, we used the coarse-grained model to investigate several aspects of PSII functioning. The excitation trapping time appears to be independent of the presence/absence of most of the individual contacts between light-harvesting complexes in PSII supercomplexes, demonstrating the robustness of the light-harvesting process. We conclude that the efficiency of the nonphotochemical quenching process is hardly dependent on the exact location of a quencher within the supercomplexes.
机译:我们对拟南芥定义良好的Photosystem II(PSII)超复合物进行了皮秒荧光测量,天线尺寸变化很大。平均激发态寿命范围为PSII磁芯的109ps至0.01%α-DM中最大的C2S2M2复合物的158ps。通过荧光动力学的粗粒度模型研究了激发能的转移和俘获。结果表明,电荷分离后(> 700 cm -1 )的自由能大大降低,自由基对缓慢弛豫至不可逆状态(〜150 ps)。出乎意料的是,我们不得不降低尺寸减小的配合物中的能量转移和电荷分离率,以获得最佳拟合。这有力地表明,天线系统对于植物PSII的完整性和功能性至关重要,这一点得到了生化结果的支持。此外,我们使用了粗粒度模型来研究PSII功能的几个方面。激发捕获时间似乎与PSII超复合物中光收集复合物之间大多数独立触点的存在与否无关,这证明了光收集过程的鲁棒性。我们得出结论,非光化学猝灭过程的效率几乎不取决于猝灭剂在超配合物中的确切位置。

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