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分子柔性对光系统II中叶绿素位点能量转移的影响。

Impact of molecular flexibility on the site energy shift of chlorophylls in Photosystem II.

作者信息

Narzi Daniele, Coccia Emanuele, Manzoli Marco, Guidoni Leonardo

机构信息

Institute of Chemical Sciences and Engineering, Ècole Polytechnique Fèdèrale de Lausanne, Av. F.-A. Forel 2, Lausanne 1015, Switzerland.

S3 Center, CNR Institute of Nanoscience, Via Campi 213/A, Modena 41125, Italy.

出版信息

Biophys Chem. 2017 Oct;229:93-98. doi: 10.1016/j.bpc.2017.06.013. Epub 2017 Jul 8.

Abstract

Light harvesting from the Sun by antenna complexes surrounding the reaction center of Photosystem II represents the first step of the natural oxygenic photosynthesis performed by plants, algae and cyanobacteria. The excitation energy derived from the sunlight is absorbed by the chlorophylls of the antenna and subsequently conveyed to the reaction center of Photosystem II through resonant energy transfer mechanisms. In the special pair of chlorophylls of the reaction center the charge separation occurs, eventually leading to the oxidation of water molecules into protons, electrons and molecular oxygen. The adsorption properties of the antenna chlorophylls are ad hoc modulated by the protein environment to guarantee fast energy transfer and minimize side and back reactions. At the same time these properties are influenced by the molecular fluctuations occurring at physiological temperature. In the present work, combining classical molecular dynamics simulations with the Charge Density Coupling method, we estimated the impact of the thermal fluctuations on the site energy shift of the chlorophylls embedded in the Photosystem II complex. Our results show how the effect of the molecular fluctuations is not homogeneous throughout the complex, although the symmetry of the homodimer is maintained. Many peripheral chromophores undergo fluctuations larger then 10kJ/mol around the average values. Possible physiological roles of such fluctuations are discussed.

摘要

植物、藻类和蓝细菌进行的自然产氧光合作用的第一步是通过围绕光系统II反应中心的天线复合体从太阳收集光能。来自太阳光的激发能被天线中的叶绿素吸收,随后通过共振能量转移机制传递到光系统II的反应中心。在反应中心的特殊叶绿素对中发生电荷分离,最终导致水分子氧化成质子、电子和分子氧。天线叶绿素的吸附特性由蛋白质环境进行特殊调节,以确保快速的能量转移并使副反应和反向反应最小化。同时,这些特性受生理温度下发生的分子波动影响。在本工作中,我们将经典分子动力学模拟与电荷密度耦合方法相结合,估算了热波动对嵌入光系统II复合体中的叶绿素位点能量位移的影响。我们的结果表明,尽管同型二聚体保持对称,但分子波动的影响在整个复合体中并不均匀。许多外围发色团在平均值附近经历大于10kJ/mol的波动。文中讨论了这种波动可能的生理作用。

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