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On Ammonia Binding to the Oxygen-Evolving Complex of Photosystem II: A Quantum Chemical Study

机译:氨与光化学体系的析氧复合物的结合:量子化学研究

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摘要

A recent EPR study (M. Perrez Navarro et al., Proc. Natl. Acad. Sci. 2013, 110, 15561) provided evidence that ammonia binding to the oxygen-evolving complex (OEC) of photosystem II in its S_2 state takes place at a terminal-water binding position (W1) on the “dangler” manganese center MnA. This contradicted earlier interpretations of ~(14)N electronspin- echo envelope modulation (ESEEM) and extended X-ray absorption fine-structure (EXAFS) data, which were taken to indicate replacement of a bridging oxo ligand by an NH_2 unit. Here we have used systematic broken-symmetry density functional theory calculations on large (ca. 200 atom) model clusters of an extensive variety of substitution patterns and core geometries to examine these contradictory pieces of evidence. Computed relative energies clearly favor the terminal substitution pattern over bridging-ligand arrangements(by about 20–30 kcalmol~(-1)) and support W1 as the preferred binding site. Computed ~(14)N EPR nuclear-quadrupole coupling tensors confirm previous assumptions that the appreciable asymmetry may be accounted for by strong, asymmetric hydrogen bonding to the bound terminal NH_3 ligand (mainly by Asp61). Indeed, bridging NH_2 substitution would lead to exaggerated asymmetries. Although our computed structures confirm that the reported elongation of an Mn–Mn distance by about 0.15 ? inferred from EXAFS experiments may only be reproduced by bridging NH_2 substitution, it seems possible that the underlying EXAFS data were skewed by problems due to radiation damage. Overall, the present data clearly support the suggested terminal NH_3 coordination at the W1 site. The finding is significant for the proposed mechanistic scenarios of OEC catalysis, as this is not a water substrate site, and effects of this ammonia binding on catalysis thus must be due to more indirect influences on the likely substrate binding site at the O5 bridgingoxygen position.
机译:最近的EPR研究(M. Perrez Navarro等人,Proc。Natl。Acad。Sci。2013,110,15561)提供了证据,表明氨在S_2状态下与光系统II的析氧复合物(OEC)发生了结合。在“悬挂器”锰中心MnA的末端水结合位置(W1)处。这与〜(14)N电子自旋回波包络调制(ESEEM)和扩展的X射线吸收精细结构(EXAFS)数据的早期解释相矛盾,后者被认为是用NH_2单元取代了架桥的氧代配体。在这里,我们已经使用了系统的破碎对称性密度泛函理论对大量(大约200个原子)替代模型和核心几何结构模型簇进行系统计算,以检验这些矛盾的证据。计算出的相对能量显然比桥配体排列更倾向于末端取代模式(大约20-30 kcalmol〜(-1)),并支持W1作为优选的结合位点。计算的〜(14)N EPR核四极偶合张量证实了先前的假设,即明显的不对称性可能是由于与键合的末端NH_3配体的牢固,不对称氢键结合(主要由Asp61引起)。实际上,桥接NH_2取代将导致夸大的不对称性。尽管我们的计算结构证实了报告的Mn-Mn距离延长了0.15?。从EXAFS实验推论得出的结论只能通过桥接NH_2替代来再现,似乎潜在的EXAFS数据可能由于辐射损伤而出现问题。总体而言,当前数据清楚地支持W1站点建议的终端NH_3协调。该发现对于拟议的OEC催化机理是重要的,因为它不是水底物位点,因此这种氨结合对催化的影响必须归因于对O5桥联氧位置可能的底物结合位点的更多间接影响。

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