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Rapid formation of the stable tyrosyl radical in photosystem II

机译:在光系统II中快速形成稳定的酪氨酰基自由基

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摘要

Two symmetrically positioned redox active tyrosine residues are present in the photosystem II (PSII) reaction center. One of them, TyrZ, is oxidized in the ns–μs time scale by P680+ and reduced rapidly (μs to ms) by electrons from the Mn complex. The other one, TyrD, is stable in its oxidized form and seems to play no direct role in enzyme function. Here, we have studied electron donation from these tyrosines to the chlorophyll cation (P680+) in Mn-depleted PSII from plants and cyanobacteria. In particular, a mutant lacking TyrZ was used to investigate electron donation from TyrD. By using EPR and time-resolved absorption spectroscopy, we show that reduced TyrD is capable of donating an electron to P680+ with t1/2 ≈ 190 ns at pH 8.5 in approximately half of the centers. This rate is ≈105 times faster than was previously thought and similar to the TyrZ donation rate in Mn-depleted wild-type PSII (pH 8.5). Some earlier arguments put forward to rationalize the supposedly slow electron donation from TyrD (compared with that from TyrZ) can be reassessed. At pH 6.5, TyrZ (t1/2 = 2–10 μs) donates much faster to P680+ than does TyrD (t1/2 > 150 μs). These different rates may reflect the different fates of the proton released from the respective tyrosines upon oxidation. The rapid rate of electron donation from TyrD requires at least partial localization of P680+ on the chlorophyll (PD2) that is located on the D2 side of the reaction center.
机译:在光系统II(PSII)反应中心中存在两个对称放置的氧化还原活性酪氨酸残基。其中之一TyrZ在ns–μs的时间尺度内被P680 +氧化,并被Mn络合物中的电子迅速还原(μs至ms)。另一个是TyrD,其氧化形式稳定,似乎对酶功能没有直接作用。在这里,我们研究了这些酪氨酸给植物和蓝细菌中缺锰的PSII中的叶绿素阳离子(P680 +)的电子捐赠。特别是,缺少TyrZ的突变体用于研究TyrD的电子捐赠。通过使用EPR和时间分辨吸收光谱,我们证明了还原的TyrD能够在大约一半的中心中,在pH 8.5时,在t1 / 2≈190 ns的情况下向P680 +提供电子。该速率比以前认为的快约105倍,与Mn耗尽的野生型PSII(pH 8.5)中的TyrZ捐赠速率相似。可以重新评估一些较早提出的论点,以合理化TyrD(与TyrZ相比)缓慢的电子捐赠。在pH值为6.5时,TyrZ(t1 / 2 = 2–10μs)向P680 +的捐赠要比TyrD(t1 / 2> 150μs)快得多。这些不同的速率可以反映出在氧化时从各自的酪氨酸释放的质子的不同命运。从TyrD迅速提供电子,需要将P680 +至少部分定位在位于反应中心D2侧的叶绿素(PD2)上。

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