Jeremy M Moix, Jianlan Wu, P. Huo, D. Coker, Jianshu Cao
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First, it is shown that the oscillations that are often observed in the population relaxation of the dimer composed of sites one and two may be completely suppressed in the eight site model. The presence of the coherent oscillations is shown to depend upon the particular initial preparation of the dimer state. Secondly it is demonstrated that while the presence of the eighth chromophore does not cause a dramatic change in the energy transfer efficiency, it does however lead to a dominant energy transfer pathway which can be characterized by an effective three site system arranged in an equally spaced downhill configuration. Such a configuration leads to an optimal value of the site energy of the eighth chromophore which is shown to be near to its suggested value. Finally we confirm that the energy transfer process in the eight site FMO complex remains efficient and robust. 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引用次数: 127
摘要
Fenna-Matthews-Olson (FMO)蛋白复合物的最新晶体结构表明,每个亚基含有额外的第八个发色团。有人提出,这个额外的位点在FMO中起着连接叶绿体天线复合体和其余7个发色团的作用[Schmidt am Busch et al ., J. Phys]。化学。列托人。, {\bf 2}, 93(2011)]。在这里,我们通过使用广义Bloch-Redfield (GBR)方程和非相互作用的光点近似(NIBA)进行数值计算来研究这种情况的含义。对FMO的种群动态和能量转移效率提供了三个关键的见解。首先,研究表明,在由1位和2位组成的二聚体的种群松弛中经常观察到的振荡在8位模型中可能完全被抑制。相干振荡的存在取决于二聚体状态的特定初始制备。其次,虽然第八发色团的存在不会引起能量传递效率的剧烈变化,但它确实导致了一个主要的能量传递途径,其特征可以是一个有效的三位点系统,排列在一个等间距的下坡构型中。这种结构导致第八种发色团的位置能量的最佳值,该值显示接近其建议值。最后,我们证实了八位点FMO配合物的能量传递过程是有效和稳健的。计算了浴池参数的最佳值,并显示出比先前计算的七站点系统更接近实验拟合值。
Efficient energy transfer in light-harvesting systems, III: The influence of the eighth bacteriochlorophyll on the dynamics and efficiency in FMO
The most recent crystal structure of the Fenna-Matthews-Olson (FMO) protein complex indicates that each subunit contains an additional eighth chromophore. It has been proposed that this extra site functions as a link between the chlorosome antenna complex and the remaining seven chromophores in FMO [Schmidt am Busch et al, J. Phys. Chem. Lett., {\bf 2}, 93 (2011)]. Here, we investigate the implications of this scenario through numerical calculations with the generalized Bloch-Redfield (GBR) equation and the non-interacting blip approximation (NIBA). Three key insights into the population dynamics and energy transfer efficiency in FMO are provided. First, it is shown that the oscillations that are often observed in the population relaxation of the dimer composed of sites one and two may be completely suppressed in the eight site model. The presence of the coherent oscillations is shown to depend upon the particular initial preparation of the dimer state. Secondly it is demonstrated that while the presence of the eighth chromophore does not cause a dramatic change in the energy transfer efficiency, it does however lead to a dominant energy transfer pathway which can be characterized by an effective three site system arranged in an equally spaced downhill configuration. Such a configuration leads to an optimal value of the site energy of the eighth chromophore which is shown to be near to its suggested value. Finally we confirm that the energy transfer process in the eight site FMO complex remains efficient and robust. The optimal values of the bath parameters are computed and shown to be closer to the experimentally fitted values than those calculated previously for the seven site system.