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Relationship between excitation energy transfer,trapping,and antenna size in photosystem II

机译:光系统II中激发能的传递,俘获和天线尺寸之间的关系

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摘要

We present a systematic study of the effect of antenna size on energy transfer and trapping in photosystem II. Time-resolved fluorescence experiments have been used to probe a range of particles isolated from both higher plants and the cyanobacterium Synechocystis 6803. The isolated reaction center dynamics are represented by a quasi-phenomenological model that fits the extensive time-resolved data from photosystem II reaction centers and reaction center mutants. This representation of the photosystem II “trapping engine” is found to correctly predict the extent of, and time scale for, charge separation in a range of photosystem II particles of varying antenna size (8—250 chlorins). This work shows that the presence of the shallow trap and slow charge separation kinetics, observed in isolated D l/D2/cyt b559 reaction centers, are indeed retained in larger particles and that these properties are reflected in the trapping dynamics of all larger photosystem II preparations. A shallow equilibrium between the antennae and reaction center in photosystem II will certainly facilitate regulation via nonphotochemical quenching, and one possible interpretation of these findings is therefore that photosystem II is optimized for regulation rather than for efficiency.
机译:我们目前对天线尺寸对光系统II中能量转移和俘获的影响进行系统研究。时间分辨荧光实验已被用来探测从高等植物和蓝藻Synechocystis 6803分离的一系列颗粒。分离的反应中心动力学由准现象学模型表示,该模型适合光系统II反应的大量时间分辨数据中心和反应中心突变体。发现这种对光系统II“捕获引擎”的表示可以正确预测一系列天线尺寸不同(8-250余氢二氢卟酚)的光系统II粒子的电荷分离程度和时间尺度。这项工作表明,在孤立的D1 / D2 / cyt b559反应中心观察到的浅陷阱和慢的电荷分离动力学确实存在于较大的粒子中,并且这些性质反映在所有较大的光系统II的俘获动力学中准备。光系统II中触角和反应中心之间的浅平衡肯定会促进通过非光化学猝灭进行调节,因此,对这些发现的一种可能解释是光系统II针对调节而非效率进行了优化。

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