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Protein dynamics-induced variation of excitation energy transfer pathways

机译:蛋白质动力学诱导的激发能传递途径变化

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Strong anticorrelation between the fluorescence emission of different emitters is observed by employing single-molecule fluorescence spectroscopy on photosystem I at cryogenic temperatures. This anticorrelation demonstrates a time-dependent interaction between pigments participating in the exciton transfer chain, implying that uniquely defined energy transfer pathways within the complex do not exist. Fluctuations of the chromophores themselves or their immediate protein surroundings induce changes in their site energy, and, as a consequence, these fluctuations change the coupling within the excitation transfer pathways. The time scales of the site energy fluctuations of the individual emitters do not meet the time scales of the observed correlated emission behavior. Therefore, the emitters must be fed individually by energetically higher lying states, causing the observed intensity variations. This phenomenon is shown for photosystem I pigment-protein complexes from 2 different cyanobacteria (Thermosyn-echococcus elongatus and Synechocystis sp. PCC 6803) with strongly different spectral properties underlining the general character of the findings. The variability of energy transfer pathways might play a key role in the extreme robustness of light-harvesting systems in general.
机译:通过在低温下在光系统I上使用单分子荧光光谱法,可以观察到不同发射器的荧光发射之间的强抗相关性。这种反相关性表明参与激子转移链的颜料之间存在时间依赖性相互作用,这意味着在复合物中不存在唯一定义的能量转移途径。发色团本身或它们周围蛋白质的周围环境的波动会引起其位能的变化,因此,这些波动会改变激发转移途径之间的耦合。各个发射器的站点能量波动的时间标度不符合观察到的相关发射行为的时间标度。因此,必须以能量较高的躺卧状态分别给发射器供电,从而导致观察到的强度变化。对于来自2种不同的蓝藻的光系统I色素-蛋白质复合物(长形嗜热球菌和Synechocystis sp。PCC 6803)具有明显不同的光谱特性,表明了该现象的一般特征。一般而言,能量传递路径的可变性可能在光收集系统的极端鲁棒性中起关键作用。

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