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在Förster理论框架内阐明并说明蓝藻别藻蓝蛋白三聚体和六聚体聚集状态下的电子能量转移途径。

Clarifying and illustrating the electronic energy transfer pathways in trimeric and hexameric aggregation state of cyanobacteria allophycocyanin within the framework of Förster theory.

作者信息

Ren Yanliang, Melhem Osama, Li Yongjian, Chi Bo, Han Xinya, Zhu Hao, Feng Lingling, Wan Jian, Xu Xin

机构信息

Key Laboratory of Pesticide & Chemical Biology (CCNU), Ministry of Education, Department of Chemistry, Central China Normal University, Wuhan, 430079, People's Republic of China.

出版信息

J Comput Chem. 2015 Jan 30;36(3):137-45. doi: 10.1002/jcc.23770. Epub 2014 Nov 3.

Abstract

Within the framework of the Förster theory, the electronic excitation energy transfer pathways in the cyanobacteria allophycocyanin (APC) trimer and hexamer were studied. The associated physical quantities (i.e., excitation energy, oscillator strength, and transition dipole moments) of the phycocyanobilins (PCBs) located in APC were calculated at time-dependent density functional theory (TDDFT) level of theory. To estimate the influence of protein environment on the preceding calculated physical quantities, the long-range interactions were approximately considered with the polarizable continuum model at the TDDFT level of theory, and the short-range interaction caused by surrounding aspartate residue of PCBs were taken into account as well. The shortest energy transfer time calculated in the framework of the Förster model at TDDFT/B3LYP/6-31+G* level of theory are about 0.10 ps in the APC trimer and about 170 ps in the APC monomer, which are in qualitative agreement with the experimental finding that a very fast lifetime of 0.43-0.44 ps in APC trimers, whereas its monomers lacked any corresponding lifetime. These results suggest that the lifetime of 0.43-0.44 ps in the APC trimers determined by Sharkov et al. was most likely attributed to the energy transfer of α(1) -84 ↔ β(3) -84 (0.23 ps), β(1) -84 ↔ α(2) -84 (0.11 ps) or β(2) -84 ↔ α(3) -84 (0.10 ps). So far, no experimental or theoretical energy transfer rates between two APC trimmers were reported, our calculations predict that the predominate energy transfer pathway between APC trimers is likely to occur from α(3) -84 in one trimer to α(5) -84 in an adjacent trimer with a rate of 32.51 ps.

摘要

在Förster理论框架内,研究了蓝藻别藻蓝蛋白(APC)三聚体和六聚体中的电子激发能量转移途径。在含时密度泛函理论(TDDFT)水平上计算了位于APC中的藻胆素(PCB)的相关物理量(即激发能量、振子强度和跃迁偶极矩)。为了估计蛋白质环境对上述计算的物理量的影响,在TDDFT理论水平上用可极化连续介质模型近似考虑了长程相互作用,同时也考虑了PCB周围天冬氨酸残基引起的短程相互作用。在TDDFT/B3LYP/6-31+G*理论水平的Förster模型框架内计算得到的最短能量转移时间,在APC三聚体中约为0.10皮秒,在APC单体中约为170皮秒,这与实验结果定性一致,即APC三聚体的寿命非常短,为0.43 - 0.44皮秒,而其单体没有任何相应的寿命。这些结果表明,Sharkov等人测定的APC三聚体中0.43 - 0.44皮秒的寿命很可能归因于α(1)-84↔β(3)-84(0.23皮秒)、β(1)-84↔α(2)-84(0.11皮秒)或β(2)-84↔α(3)-84(0.10皮秒)的能量转移。到目前为止,尚未报道两个APC三聚体之间的实验或理论能量转移速率,我们的计算预测,APC三聚体之间主要的能量转移途径可能是从一个三聚体中的α(3)-84到相邻三聚体中的α(5)-84,速率为32.51皮秒。

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