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桥连连二次硝酸根配合物{[Fe(OEP)]₂(μ-N₂O₂)}的表征:连二次硝酸根配合物的反应活性及生物学意义

Characterization of the bridged hyponitrite complex {[Fe(OEP)](2)(μ-N(2)O(2))}: reactivity of hyponitrite complexes and biological relevance.

作者信息

Berto Timothy C, Xu Nan, Lee Se Ryeon, McNeil Anne J, Alp E Ercan, Zhao Jiyong, Richter-Addo George B, Lehnert Nicolai

机构信息

Department of Chemistry and Department of Biophysics, University of Michigan , 930 N. University Avenue, Ann Arbor, Michigan 48109, United States.

出版信息

Inorg Chem. 2014 Jul 7;53(13):6398-414. doi: 10.1021/ic5002573. Epub 2014 Jun 27.

Abstract

The detoxification of nitric oxide (NO) by bacterial NO reductase (NorBC) represents a paradigm of how NO can be detoxified anaerobically in cells. In order to elucidate the mechanism of this enzyme, model complexes provide a convenient means to assess potential reaction intermediates. In particular, there have been many proposed mechanisms that invoke the formation of a hyponitrite bridge between the heme b3 and nonheme iron (FeB) centers within the NorBC active site. However, the reactivity of bridged iron hyponitrite complexes has not been investigated much in the literature. The model complex {[Fe(OEP)]2(μ-N2O2)} offers a unique opportunity to study the electronic structure and reactivity of such a hyponitrite-bridged complex. Here we report the detailed characterization of {[Fe(OEP)]2(μ-N2O2)} using a combination of IR, nuclear resonance vibrational spectroscopy, electron paramagnetic resonance, and magnetic circular dichroism spectroscopy along with SQUID magnetometry. These results show that the ground-state electronic structure of this complex is best described as having two intermediate-spin (S = (3)/2) iron centers that are weakly antiferromagnetically coupled across the N2O2(2-) bridge. The analogous complex {[Fe(PPDME)]2(μ-N2O2)} shows overall similar properties. Finally, we report the unexpected reaction of {[Fe(OEP)]2(μ-N2O2)} in the presence and absence of 1-methylimidizole to yield [Fe(OEP)(NO)]. Density functional theory calculations are used to rationalize why {[Fe(OEP)]2(μ-N2O2)} cannot be formed directly by dimerization of [Fe(OEP)(NO)] and why only the reverse reaction is observed experimentally. These results thus provide insight into the general reactivity of hyponitrite-bridged iron complexes with general relevance for the N-N bond-forming step in NorBC.

摘要

细菌一氧化氮还原酶(NorBC)对一氧化氮(NO)的解毒作用代表了细胞中NO如何在厌氧条件下解毒的范例。为了阐明这种酶的作用机制,模型配合物提供了一种评估潜在反应中间体的便捷方法。特别是,已经提出了许多机制,这些机制涉及在NorBC活性位点内的血红素b3和非血红素铁(FeB)中心之间形成连二次硝酸根桥。然而,文献中对桥连铁连二次硝酸根配合物的反应性研究不多。模型配合物{[Fe(OEP)]2(μ-N2O2)}提供了一个独特的机会来研究这种连二次硝酸根桥连配合物的电子结构和反应性。在此,我们报告了{[Fe(OEP)]2(μ-N2O2)}的详细表征,采用了红外光谱、核共振振动光谱、电子顺磁共振和磁圆二色光谱以及超导量子干涉仪磁强计相结合的方法。这些结果表明,该配合物的基态电子结构最好描述为具有两个中间自旋(S = 3/2)的铁中心,它们通过N2O2(2-)桥弱反铁磁耦合。类似的配合物{[Fe(PPDME)]2(μ-N2O2)}表现出总体相似的性质。最后,我们报告了{[Fe(OEP)]2(μ-N2O2)}在有和没有1-甲基咪唑存在下的意外反应,生成[Fe(OEP)(NO)]。密度泛函理论计算用于解释为什么{[Fe(OEP)]2(μ-N2O2)}不能通过[Fe(OEP)(NO)]的二聚直接形成,以及为什么实验中只观察到逆反应。因此,这些结果为连二次硝酸根桥连铁配合物的一般反应性提供了见解,这与NorBC中N-N键形成步骤具有普遍相关性。

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