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Early Bacteriopheophytin Reduction in Charge Separation in Reaction Centers of Rhodobacter sphaeroides

机译:球形细菌红球菌反应中心电荷分离中的早期细菌营养植物素还原。

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摘要

A question at the forefront of biophysical sciences is, to what extent do quantum effects and protein conformational changes play a role in processes such as biological sensing and energy conversion? At the heart of photosynthetic energy transduction lie processes involving ultrafast energy and electron transfers among a small number of tetrapyrrole pigments embedded in the interior of a protein. In the purple bacterial reaction center (RC), a highly efficient ultrafast charge separation takes place between a pair of bacteriochlorophylls: an accessory bacteriochlorophyll (B) and bacteriopheophytin (H). In this work, we applied ultrafast spectroscopy in the visible and near-infrared spectral region to Rhodobacter sphaeroides RCs to accurately track the timing of the electron on BA and HA via the appearance of the BA and HA anion bands. We observed an unexpectedly early rise of the HA band that challenges the accepted simple picture of stepwise electron transfer with 3 ps and 1 ps time constants. The implications for the mechanism of initial charge separation in bacterial RCs are discussed in terms of a possible adiabatic electron transfer step between BA and HA, and the effect of protein conformation on the electron transfer rate.
机译:生物物理科学最前沿的问题是,量子效应和蛋白质构象变化在何种程度上在生物传感和能量转换等过程中发挥作用?光合作用能量传导的核心是涉及超快能量和电子转移的过程,这些过程在嵌入蛋白质内部的少量四吡咯颜料之间进行。在紫色细菌反应中心(RC)中,一对细菌叶绿素之间发生了高效的超快电荷分离:辅助细菌叶绿素(B)和细菌脱镁叶绿素(H)。在这项工作中,我们将球形和球形红细菌RCs在可见光和近红外光谱区域中应用了超快光谱,以通过BA和HA阴离子带的出现准确跟踪BA和HA上电子的时间。我们观察到HA -谱带出乎意料的提早上升,这挑战了3 ps和1 ps时间常数的逐步电子转移的公认简单图景。细菌RC中初始电荷分离机理的含义是根据BA和HA之间可能的绝热电子转移步骤以及蛋白质构象对电子转移速率的影响进行讨论的。

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