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首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Cofactor-specific photochemical function resolved by ultrafast spectroscopy in photosynthetic reaction center crystals
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Cofactor-specific photochemical function resolved by ultrafast spectroscopy in photosynthetic reaction center crystals

机译:超快光谱法在光合作用反应中心晶体中解析的辅因子特异性光化学功能

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摘要

High-resolution mapping of cofactor-specific photochemistry in photosynthetic reaction centers (RCs) from Rhodobacter sphaer-oides was achieved by polarization selective ultrafast spectroscopy in single crystals at cryogenic temperature. By exploiting the fixed orientation of cofactors within crystals, we isolated a single transition within the multicofactor manifold, and elucidated the site-specific photochemical functions of the cofactors associated with the symmetry-related active A and inactive B branches. Transient spectra associated with the initial excited states were found to involve a set of cofactors that differ depending upon whether the monomeric bacteriochlorophylls, BChl_A, BChl_B, or the special pair bacteriochlorophyll dimer, P, was chosen for excitation. Proceeding from these initial excited states, characteristic photochemical functions were resolved. Specifically, our measurements provide direct evidence for an alternative charge separation pathway initiated by excitation of BChl_A that does not involve P*. Conversely, the initial excited state produced by excitation of BChl_B was found to decay by energy transfer to P. A clear sequential kinetic resolution of BChl_A and the A-side bacteriopheophytin, BPh_A, in the electron transfer proceeding from P* was achieved. These experiments demonstrate the opportunity to resolve photochemical function of individual cofactors within the multicofactor RC complexes using single crystal spectroscopy.
机译:在低温下,通过偏振选择性超快光谱法在单晶中实现了球形红球藻光合反应中心(RCs)中辅因子特异性光化学的高分辨率映射。通过利用辅助因子在晶体中的固定方向,我们分离了多辅助因子流形内的单个过渡,并阐明了与对称相关活性A和非活性B分支相关的辅助因子的位点特异性光化学功能。发现与初始激发态相关的瞬态光谱涉及一组辅因子,这些辅因子取决于是选择单体细菌叶绿素BChl_A,BChl_B还是特殊的一对细菌叶绿素二聚体P来激发。从这些初始激发态开始,解析了特征光化学功能。具体而言,我们的测量提供了由不涉及P *的BChl_A激发引发的另一种电荷分离途径的直接证据。相反,发现由BChl_B激发产生的初始激发态会因能量转移至P而衰减。在从P *开始的电子转移过程中,实现了BChl_A和A侧噬菌体蛋白BPh_A的清晰连续动力学拆分。这些实验证明了使用单晶光谱法解决多辅因子RC络合物中各个辅因子的光化学功能的机会。

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