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Structural dynamic and energetic aspects of long-range electron transfer in photosynthetic reaction centers

机译:光合作用中心中远距离电子转移的结构动态和能量方面

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摘要

Intramolecular electron transfer within proteins plays an essential role in biological energy transduction. Electron donor and acceptor cofactors are bound in the protein matrix at specific locations, and protein–cofactor interactions as well as protein conformational changes can markedly influence the electron transfer rates. To assess these effects, we have investigated charge recombination from the primary quinone acceptor to the special pair bacteriochlorophyll dimer in wild-type reaction centers of Rhodobacter sphaeroides and four mutants with widely modified free energy gaps. After light-induced charge separation, the recombination kinetics were measured in the light- and dark-adapted forms of the protein from 10 to 300 K. The data were analyzed by using the spin-boson model, which allowed us to self-consistently determine the electronic coupling energy, the distribution of energy gaps, the spectral density of phonons, and the reorganization energy. The analysis revealed slow changes of the energy gap after charge separation. Interesting correlations of the control parameters governing electron transfer were found and related to structural and dynamic properties of the protein.
机译:蛋白质内的分子内电子转移在生物能量转导中起重要作用。电子供体和受体辅因子在特定位置结合在蛋白质基质中,蛋白质-辅因子相互作用以及蛋白质构象变化会显着影响电子传输速率。为了评估这些影响,我们研究了在球形球形红球菌和具有广泛修饰的自由能缺口的四个突变体的野生型反应中心中,从初级醌受体到特殊对细菌叶绿素二聚体的电荷重组。光诱导的电荷分离后,在10 K至300 K的蛋白质的亮和暗适应形式下测量重组动力学。使用自旋玻色子模型分析数据,这使我们能够自洽地确定电子耦合能,能隙的分布,声子的光谱密度和重组能。分析揭示了电荷分离后能隙的缓慢变化。发现控制电子转移的控制参数有趣的关联,并与蛋白质的结构和动力学特性有关。

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