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The molecular mechanisms of light adaption in light-harvesting complexes of purple bacteria revealed by a multiscale modeling

机译:多尺度建模揭示紫色细菌集光体中光适应的分子机制

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The light-harvesting in photosynthetic purple bacteria can be tuned in response to the light conditions during cell growth. One of the used strategies is to change the energy of the excitons in the major fight-harvesting complex, commonly known as LH2. In the present study we report the first systematic investigation of the microscopic origin of the exciton tuning using three complexes, namely the common (high-light) and the low-light forms of LH2 from Rps. acidophila plus a third complex analogous to the PucD complex from Rps. palustris . The study is based on the combination of classical molecular dynamics of each complex in a lipid membrane and excitonic calculations based on a multiscale quantum mechanics/molecular mechanics approach including a polarizable embedding. From the comparative analysis, it comes out that the mechanisms that govern the adaptation of the complex to different light conditions use the different H-bonding environment around the bacteriochlorophyll pigments to dynamically control both internal and inter-pigment degrees of freedom. While the former have a large effect on the site energies, the latter significantly change the electronic couplings, but only the combination of the two effects can fully reproduce the tuning of the final excitons and explain the observed spectroscopic differences.
机译:可以根据细胞生长过程中的光照条件来调整光合紫色细菌的采光。使用的策略之一是在主要的战斗收割系统(通常称为LH2)中改变激子的能量。在本研究中,我们报告了使用三种复合物,即来自Rps的LH2的常见(高光)和低光形式,对激子调谐的微观起源进行的首次系统研究。嗜酸菌,再加上类似于Rps的PucD复合物的第三种复合物。 palustris。该研究基于脂质膜中每个复合物的经典分子动力学与基于包括可极化嵌入的多尺度量子力学/分子力学方法的激子计算相结合。从比较分析中可以看出,控制配合物适应不同光照条件的机制使用了细菌叶绿素颜料周围的不同H键环境来动态控制内部和颜料间的自由度。尽管前者对位能有很大影响,但后者会显着改变电子耦合,但是只有这两种作用的组合才能充分再现最终激子的调谐并解释观察到的光谱差异。

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