首页> 外文OA文献 >Conformational differences between the methoxy groups of QA and QB site ubisemiquinones in bacterial reaction centers: A key role for methoxy group orientation in modulating ubiquinone redox potential
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Conformational differences between the methoxy groups of QA and QB site ubisemiquinones in bacterial reaction centers: A key role for methoxy group orientation in modulating ubiquinone redox potential

机译:细菌反应中心Qa和QB位点ubisemiquinones的甲氧基之间的构象差异:甲氧基取向在调节泛醌氧化还原电位中的关键作用

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摘要

Ubiquinone is an almost universal, membrane-associated redox mediator. Its ability to accept either one or two electrons allows it to function in critical roles in biological electron transport. The redox properties of ubiquinone in vivo are determined by its environment in the binding sites of proteins and by the dihedral angle of each methoxy group relative to the ring plane. This is an attribute unique to ubiquinone among natural quinones and could account for its widespread function with many different redox complexes. In this work, we use the photosynthetic reaction center as a model system for understanding the role of methoxy conformations in determining the redox potential of the ubiquinone/semiquinone couple. Despite the abundance of X-ray crystal structures for the reaction center, quinone site resolution has thus far been too low to provide a reliable measure of the methoxy dihedral angles of the primary and secondary quinones, QA and QB. We performed 2D ESEEM (HYSCORE) on isolated reaction centers with ubiquinones 13C-labeled at the headgroup methyl and methoxy substituents, and have measured the 13C isotropic and anisotropic components of the hyperfine tensors. Hyperfine couplings were compared to those derived by DFT calculations as a function of methoxy torsional angle allowing estimation of the methoxy dihedral angles for the semiquinones in the QA and QB sites. Based on this analysis, the orientation of the 2-methoxy groups are distinct in the two sites, with QB more out of plane by 20-25. This corresponds to an ≈50 meV larger electron affinity for the QB quinone, indicating a substantial contribution to the experimental difference in redox potentials (60-75 mV) of the two quinones. The methods developed here can be readily extended to ubiquinone-binding sites in other protein complexes. © 2013 American Chemical Society.
机译:泛醌是一种几乎通用的,与膜相关的氧化还原介体。它接受一个或两个电子的能力使其能够在生物电子传输中发挥关键作用。泛醌体内的氧化还原特性取决于其在蛋白质结合位点中的环境以及每个甲氧基相对于环平面的二面角。这是天然醌中泛醌独有的属性,可以解释其在许多不同的氧化还原络合物中的广泛功能。在这项工作中,我们使用光合作用反应中心作为模型系统,以了解甲氧基构象在确定泛醌/半醌对的氧化还原电势中的作用。尽管有大量的X射线晶体结构可用于反应中心,但到目前为止,醌的位点分辨率仍然太低,无法可靠地测量一级和二级醌QA和QB的甲氧基二面角。我们在分离的反应中心进行了二维ESEEM(HYSCORE),在头基甲基和甲氧基取代基处标记了泛醌13C,并测量了超精细张量的13C各向同性和各向异性成分。将超精细偶合与通过DFT计算得出的偶合作为甲氧基扭转角的函数进行比较,从而可以估算QA和QB位点中半醌的甲氧基二面角。基于该分析,在两个位置上2-甲氧基的取向是不同的,QB的平面外偏差为20-25。这相当于对QB醌的电子亲和力大了≈50meV,表明对这两种醌的氧化还原电势(60-75 mV)的实验差异有重大贡献。本文开发的方法可以轻松扩展到其他蛋白质复合物中的泛醌结合位点。 ©2013美国化学学会。

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