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基于在PW91优化的蛋白质结构上进行的CAM - B3LYP计算,对来自嗜热栖热放线菌的光系统I的Qy吸收光谱进行归属。

Assignment of the Qy absorption spectrum of photosystem-I from Thermosynechococcus elongatus based on CAM-B3LYP calculations at the PW91-optimized protein structure.

作者信息

Yin Shiwei, Dahlbom Mats G, Canfield Peter J, Hush Noel S, Kobayashi Rika, Reimers Jeffrey R

机构信息

School of Chemistry, The University of Sydney, NSW 2006, Australia.

出版信息

J Phys Chem B. 2007 Aug 23;111(33):9923-30. doi: 10.1021/jp070030p. Epub 2007 Aug 2.

Abstract

The Qy absorption spectrum of Photosystem-I from Thermosynecochoccus elongatus (formerly Synecochoccus elongatus) is calculated using the CAM-B3LYP density functional and INDO schemes based on a quantum-mechanically refined structure for the entire photosystem obtained using the PW91 density functional. These methods present a priori predictions of the absorption and linear dichroism spectra and include protein electrostatic effects, short range inductive effects, long-range and short-range exciton couplings, and superexchange effects involving aromatic residues and carotenes. CAM-B3LYP is used as it is the only known density functional that correctly describes the Q bands of chlorophylls, all other methods contaminating them with erroneous charge-transfer excitations. A critical feature is found to be the use of fully optimized heavy-atom coordinates, with those obtained from just X-ray crystallography providing a poor description of the electronic properties of the chromophores. The result is a realistic first-principles prediction of the observed absorption band that identifies the nature of the red-shifted chlorophylls as well as the energies of the reaction-center chlorophylls and the exciton couplings acting between them. The "special pair" appears more like a dimer of dimers than a self-contained functional unit, with the exciton couplings between its members and the accessory chlorophylls exceeding the internal coupling.

摘要

使用CAM - B3LYP密度泛函和INDO方案,基于使用PW91密度泛函获得的整个光系统的量子力学优化结构,计算了嗜热栖热放线菌(原伸长聚球藻)光系统I的Qy吸收光谱。这些方法对吸收光谱和线性二色性光谱进行了先验预测,包括蛋白质静电效应、短程诱导效应、长程和短程激子耦合以及涉及芳香族残基和类胡萝卜素的超交换效应。使用CAM - B3LYP是因为它是唯一已知能正确描述叶绿素Q带的密度泛函,所有其他方法都会因错误的电荷转移激发而污染这些Q带。发现一个关键特征是使用完全优化的重原子坐标,仅从X射线晶体学获得的坐标对发色团的电子性质描述不佳。结果是对观察到的吸收带进行了现实的第一性原理预测,确定了红移叶绿素的性质以及反应中心叶绿素的能量和它们之间的激子耦合。“特殊对”看起来更像是二聚体的二聚体,而不是一个独立的功能单元,其成员与辅助叶绿素之间的激子耦合超过了内部耦合。

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