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Kinetics energetics and electronic coupling of the primary electron transfer reactions in mutated reaction centers of Blastochloris viridis.

机译:动力学的能量学的和电子耦合反应在绿藻中突变的反应中心的一次电子转移反应。

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摘要

Femtosecond spectroscopy in combination with site-directed mutagenesis has been used to study the dynamics of primary electron transfer in native and 12 mutated reaction centers of Blastochloris (B) (formerly called Rhodopseudomonas) viridis. The decay times of the first excited state P* vary at room temperature between of 0.6 and 50 ps, and at low temperatures between 0.25 and 90 ps. These changes in time constants are discussed within the scope of nonadiabatic electron transfer theory using different models: 1) If the mutation is assumed to predominantly influence the energetics of the primary electron transfer intermediates, the analysis of the room temperature data for the first electron transfer step to the intermediate P(+)B(A)(-) yields a reorganization energy lambda = 600 +/- 200 cm(-1) and a free energy gap Delta G ranging from -600 cm(-1) to 800 cm(-1). However, this analysis fails to describe the temperature dependence of the reaction rates. 2) A more realistic description of the temperature dependence of the primary electron transfer requires different values for the energetics and specific variations of the electronic coupling upon mutation. Apparently the mutations also lead to pronounced changes in the electronic coupling, which may even dominate the change in the reaction rate. One main message of the paper is that a simple relationship between mutation and a change in one reaction parameter cannot be given and that at the very least the electronic coupling is changed upon mutation.
机译:飞秒光谱技术结合定点诱变技术已被用于研究绿藻(Blastochloris)(B)(以前称为Rhodopseudomonas)的天然和12个突变反应中心的一次电子转移动力学。第一激发态P *的衰减时间在室温下在0.6和50ps之间变化,而在低温下在0.25和90ps之间变化。在非绝热电子传递理论的范围内,使用不同模型讨论了这些时间常数的变化:1)如果假定突变主要影响一次电子传递中间体的能级,则对第一次电子传递的室温数据进行分析过渡到中间体P(+)B(A)(-)产生重组能量lambda = 600 +/- 200 cm(-1)和自由能隙Delta G介于-600 cm(-1)至800 cm (-1)。但是,该分析不能描述反应速率的温度依赖性。 2)对一次电子传递的温度依赖性的更现实的描述需要不同的能量值和突变时电子耦合的特定变化。显然,突变还导致电子偶联的显着变化,甚至可能主导反应速率的变化。该论文的一个主要信息是,不能给出突变与一个反应参数的变化之间的简单关系,并且至少在突变时会改变电子耦合。

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