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紫细菌 LH3 复合物中的激子。

Excitons in the LH3 complexes from purple bacteria.

机构信息

Institute of Physics, Center for Physical Sciences and Technology , Gostauto 11, LT-01108 Vilnius, Lithuania.

出版信息

J Phys Chem B. 2013 Sep 26;117(38):11058-68. doi: 10.1021/jp400239z. Epub 2013 Apr 30.

DOI:10.1021/jp400239z
PMID:23570515
Abstract

The noncovalently bound and structurally identical bacteriochlorophyll a chromophores in the peripheral light-harvesting complexes LH2 (B800-850) and LH3 (B800-820) from photosynthetic purple bacteria ensure the variability of the exciton spectra in the near-infrared (820-850 nm) wavelength region. As a result, the spectroscopic properties of the antenna complexes, such as positions of the maxima in the exciton absorption spectra, give rise to very efficient excitation transfer toward the reaction center. In this work, we investigated the possible molecular origin of the excitonically coupled B820 bacteriochlorophylls in LH3 using femtosecond transient absorption spectroscopy, deconvolution of steady-state absorption spectra, and modeling of the electrostatic intermolecular interactions using a charge density coupling approach. Compared to LH2, the upper excitonic level is red-shifted from 755 to 790 nm and is associated with an approximate 2-fold decrease of B820 intrapigment coupling. The absorption properties of LH3 cannot be reproduced by only changing the B850 site energy but also require a different scaling factor to be used to calculate interpigment couplings and a change of histidine protonation state. Several protonation patterns for distinct amino acid groups are presented, giving values of 162-173 cm(-1) at 100 K for the intradimer resonance interaction in the B820 ring.

摘要

来自光合紫色细菌的非共价结合且结构相同的细菌叶绿素 a 发色团位于周围的光捕获复合物 LH2(B800-850)和 LH3(B800-820)中,确保了近红外(820-850nm)波长区域中激子光谱的可变性。因此,天线复合物的光谱性质,例如激子吸收光谱中的最大值位置,导致向反应中心非常有效地进行激发转移。在这项工作中,我们使用飞秒瞬态吸收光谱、稳态吸收光谱的解卷积以及使用电荷密度耦合方法对静电分子间相互作用进行建模,研究了 LH3 中激子耦合 B820 细菌叶绿素的可能分子起源。与 LH2 相比,上激子能级从 755nm 红移到 790nm,并且与 B820 分子内偶联的大约 2 倍降低相关。LH3 的吸收性质不能仅通过改变 B850 位能来重现,还需要使用不同的缩放因子来计算分子间偶联,并改变组氨酸质子化状态。提出了几个不同氨基酸基团的质子化模式,在 100K 下,B820 环中二聚体共振相互作用的值为 162-173cm(-1)。

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