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处于S2状态的光系统II放氧复合体的结构、配体与底物配位:电子顺磁共振和密度泛函理论联合研究

Structure, ligands and substrate coordination of the oxygen-evolving complex of photosystem II in the S2 state: a combined EPR and DFT study.

作者信息

Lohmiller Thomas, Krewald Vera, Navarro Montserrat Pérez, Retegan Marius, Rapatskiy Leonid, Nowaczyk Marc M, Boussac Alain, Neese Frank, Lubitz Wolfgang, Pantazis Dimitrios A, Cox Nicholas

机构信息

Max-Planck-Institut für Chemische Energiekonversion, Stiftstrasse 34-36, D-45470 Mülheim an der Ruhr, Germany.

出版信息

Phys Chem Chem Phys. 2014 Jun 28;16(24):11877-92. doi: 10.1039/c3cp55017f.

Abstract

The S2 state of the oxygen-evolving complex of photosystem II, which consists of a Mn4O5Ca cofactor, is EPR-active, typically displaying a multiline signal, which arises from a ground spin state of total spin ST = 1/2. The precise appearance of the signal varies amongst different photosynthetic species, preparation and solvent conditions/compositions. Over the past five years, using the model species Thermosynechococcus elongatus, we have examined modifications that induce changes in the multiline signal, i.e. Ca(2+)/Sr(2+)-substitution and the binding of ammonia, to ascertain how structural perturbations of the cluster are reflected in its magnetic/electronic properties. This refined analysis, which now includes high-field (W-band) data, demonstrates that the electronic structure of the S2 state is essentially invariant to these modifications. This assessment is based on spectroscopies that examine the metal centres themselves (EPR, (55)Mn-ENDOR) and their first coordination sphere ligands ((14)N/(15)N- and (17)O-ESEEM, -HYSCORE and -EDNMR). In addition, extended quantum mechanical models from broken-symmetry DFT now reproduce all EPR, (55)Mn and (14)N experimental magnetic observables, with the inclusion of second coordination sphere ligands being crucial for accurately describing the interaction of NH3 with the Mn tetramer. These results support a mechanism of multiline heterogeneity reported for species differences and the effect of methanol [Biochim. Biophys. Acta, Bioenerg., 2011, 1807, 829], involving small changes in the magnetic connectivity of the solvent accessible outer MnA4 to the cuboidal unit Mn3O3Ca, resulting in predictable changes of the measured effective (55)Mn hyperfine tensors. Sr(2+) and NH3 replacement both affect the observed (17)O-EDNMR signal envelope supporting the assignment of O5 as the exchangeable μ-oxo bridge and it acting as the first site of substrate inclusion.

摘要

光系统II放氧复合体的S2态由Mn4O5Ca辅因子组成,具有电子顺磁共振(EPR)活性,通常显示多线信号,该信号源自总自旋ST = 1/2的基态自旋态。信号的确切表现因不同的光合物种、制备方法以及溶剂条件/组成而异。在过去五年中,我们使用模式生物嗜热栖热菌,研究了诱导多线信号变化的修饰,即Ca(2+)/Sr(2+)取代和氨的结合,以确定簇的结构扰动如何反映在其磁/电子性质中。这种精细分析现在包括高场(W波段)数据,表明S2态的电子结构对这些修饰基本不变。该评估基于研究金属中心本身(EPR、(55)Mn-ENDOR)及其第一配位层配体((14)N/(15)N-和(17)O-ESEEM、-HYSCORE和-EDNMR)的光谱学。此外,来自破缺对称性密度泛函理论(DFT)的扩展量子力学模型现在能够重现所有EPR、(55)Mn和(14)N的实验磁可观测量,纳入第二配位层配体对于准确描述NH3与锰四聚体的相互作用至关重要。这些结果支持了针对物种差异和甲醇效应所报道的多线异质性机制[《生物化学与生物物理学报,生物能量学》,2011年,1807卷,829页],该机制涉及溶剂可及的外层MnA4与立方单元Mn3O3Ca的磁连通性的微小变化,导致测量的有效(55)Mn超精细张量发生可预测的变化。Sr(2+)和NH3取代均影响观察到的(17)O-EDNMR信号包络,支持将O5指定为可交换的μ-氧桥,并将其作为底物包含的第一个位点。

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