Mullins Christopher S, Pecoraro Vincent L
Department of Chemistry, The University of Michigan, 930 North University Avenue, Ann Arbor, MI 48109-1055, USA.
Coord Chem Rev. 2008 Feb;252(3-4):416-443. doi: 10.1016/j.ccr.2007.07.021.
Recent advances in the study of the Oxygen Evolving Complex (OEC) of Photosystem II (PSII) include structural information attained from several X-ray crystallographic (XRD) and spectroscopic (XANES and EXAFS) investigations. The possible structural features gleaned from these studies have enabled synthetic chemists to design more accurate model complexes, which in turn, offer better insight into the possible pathways used by PSII to drive photosynthetic water oxidation catalysis. Mononuclear model compounds have been used to advance the knowledge base regarding the physical properties and reactivity of high-valent (Mn(IV) or Mn(V)) complexes. Such investigations have been especially important in regard to the manganyl (Mn(IV)=O or Mn(V)≡O) species, as there are no reports, to date, of any structural characterized multinuclear model compounds that incorporate such a functionality. Dinuclear and trinuclear model compounds have also been thoroughly studied in attempts to draw further comparison to the physical properties observed in the natural system and to design systems of catalytic relevance. As the reactive center of the OEC has been shown to contain an oxo-Mn(4)Ca cluster, exact structural models necessitate a tetranuclear Mn core. The number of models that make use of Mn(4) clusters has risen substantially in recent years, and these models have provided evidence to support and refute certain mechanistic proposals. Further work is needed to adequately address the rationale for Ca (and Cl) in the OEC and to determine the sequence of events that lead to O(2) evolution.
光系统II(PSII)的析氧复合物(OEC)研究的最新进展包括从多项X射线晶体学(XRD)和光谱学(XANES和EXAFS)研究中获得的结构信息。从这些研究中收集到的可能结构特征使合成化学家能够设计出更精确的模型复合物,这反过来又能更好地洞察PSII用于驱动光合水氧化催化的可能途径。单核模型化合物已被用于推进关于高价(Mn(IV)或Mn(V))配合物的物理性质和反应性的知识库。这类研究对于锰氧基(Mn(IV)=O或Mn(V)≡O)物种尤为重要,因为迄今为止,尚无任何包含这种功能的结构表征多核模型化合物的报道。双核和三核模型化合物也得到了深入研究,旨在进一步与天然系统中观察到的物理性质进行比较,并设计具有催化相关性的系统。由于已证明OEC的反应中心包含一个氧代-Mn(4)Ca簇,精确的结构模型需要一个四核Mn核心。近年来,使用Mn(4)簇的模型数量大幅增加,这些模型为支持和反驳某些机理提议提供了证据。需要进一步开展工作,以充分阐明OEC中Ca(和Cl)的原理,并确定导致O(2)生成的事件顺序。