Department of Chemistry, University of Jyväskylä, P.O. Box 35, FIN-40014 Jyväskylä, Finland.
J Phys Chem B. 2011 May 12;115(18):5536-44. doi: 10.1021/jp111340w. Epub 2011 Apr 5.
The semiempirical ZINDO/S CIS configuration interaction method has been used to study the ground- and excited-state absorption spectra of wild type and heterodimer M202HL reaction centers from purple bacterium Rhodobacter sphaeroides as well as of peripheral LH2 and LH3 light harvesting complexes from purple bacterium Rhodopseudomonas acidophila. The calculations well reproduce the experimentally observed excited-state absorption spectra between 1000 and 17,000 cm(-1), despite the necessarily limited number of chromophores and protein subunits involved in the calculations. The electron density analysis reveals that the charge transfer between adjacent chromophores dominates the excited-state absorption spectra. Clear spectroscopic differences observed between the wild type and heterodimer reaction centers as well as between the LH2 and LH3 antenna complexes arise from differences in the energy level manifolds of the complexes, particularly those of the charge transfer states. The calculations also imply that the lowest excited state of the bacterial reaction centers has charge transfer character that is related to charge transfer within the special pair and between the special pair and the accessory bacteriochlorophyll of the photosynthetically active electron transfer branch.
采用半经验 ZINDO/S CIS 组态相互作用方法研究了野生型和异二聚体 M202HL 反应中心以及来自嗜酸性红假单胞菌的外周 LH2 和 LH3 光捕获复合物的基态和激发态吸收光谱。尽管计算中涉及的发色团和蛋白质亚基数量有限,但计算结果很好地再现了实验观测到的 1000 至 17000 cm(-1) 之间的激发态吸收光谱。电子密度分析表明,相邻发色团之间的电荷转移主导着激发态吸收光谱。在野生型和异二聚体反应中心以及 LH2 和 LH3 天线复合物之间观察到的明显光谱差异源自复合物能级简并的差异,特别是那些电荷转移态的差异。计算还表明,细菌反应中心的最低激发态具有电荷转移特征,这与光合作用活性电子转移分支中特殊对和辅助细菌叶绿素之间的电荷转移有关。