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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Computational study of the non-heme iron active site in superoxide reductase and its reaction with superoxide
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Computational study of the non-heme iron active site in superoxide reductase and its reaction with superoxide

机译:超血红素还原酶中非血红素铁活性位点及其与超氧化物反应的计算研究

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The ferrous square-pyramidal [Fe(NHis)(4)(SCYs)] site of superoxide reductases (SORs) has been shown to reduce superoxide at a nearly diffusion-controlled rate. The final products of the reaction are hydrogen peroxide and the ferric hexacoordinated SOR site, with a carboxylate group from a conserved glutamate serving as the sixth ligand trans to the cysteine sulfur. A transient intermediate absorbing at similar to600 nm in the reaction of the ferrous pentacoordinated site with superoxide has been proposed to be a ferric-(hydro)peroxo complex (Coulter, E.; Emerson, J.; Kurtz, D. M., Jr.; Cabelli, D. J. Am. Chem. Soc. 2000, 122, 11555-11556.). In the present study, DFT and ZINDO/S-Cl results are shown to support the description of the 600-nm intermediate as an end-on, low-spin ferric-peroxo or -hydroperoxo complex. Side-on peroxo coordination was found to be significantly less stable than end- on because of constraints on the imidazole ligand ring orientations imposed mostly by the protein. The modeled ferric-hydroperoxo complex had a decidedly nonplanar CysCbeta-S-Fe-O-O geometry that appears to be imposed by the same constraints. A single prominent visible absorption of the (hydro)peroxo model is shown to be due mainly to a CysS --> Fe(ill) pi charge transfer (CT) transition with a minor portion of His --> Fe(III) pi CT character and very little peroxo --> Fe(III) CT character. On the basis of calculations of models with various mono- and diprotonated peroxo ligands, protonation of the iron-bound peroxo oxygen is a key step in the decay of the ferric(hydro)peroxo complex favoring release of hydrogen peroxide over cleavage of the O-O bond, as occurs in the heme structural analogue, cytochrome P450. [References: 32]
机译:已显示超氧化物还原酶(SOR)的亚铁方形锥体[Fe(NHis)(4)(SCYs)]位点以几乎受扩散控制的速率还原过氧化物。反应的最终产物是过氧化氢和六配位的三价铁,其中来自保守谷氨酸的羧酸酯基团作为第六个配体转化为半胱氨酸硫。已提出在五价铁亚铁位点与超氧化物反应中吸收接近600 nm的瞬态中间体是铁-(氢)过氧络合物(Coulter,E .; Emerson,J .; Kurtz,DM,Jr .; Cabelli ,DJ Am.Chem.Soc.2000,122,11555-11556。)。在本研究中,DFT和ZINDO / S-Cl的结果表明支持将600 nm中间体描述为端基,低旋铁-过氧或-氢过氧配合物。由于对主要由蛋白质施加的咪唑配体环取向的限制,发现过氧自由基的配伍稳定性比末端氧稳定性差。建模的铁-氢过氧配合物具有明显非平面的CysCbeta-S-Fe-O-O几何形状,似乎受相同的约束所强加。 (氢)过氧物模型的单个明显可见吸收被证明主要是由于CysS-> Fe(ill)pi电荷转移(CT)跃迁和一小部分His-> Fe(III)pi CT特性和过氧化物很少-> Fe(III)CT特性。根据具有各种单质子化和双质子化的过氧配体的模型的计算,与铁结合的过氧氧的质子化是铁(氢)过氧配合物衰变的关键步骤,有利于过氧化氢的释放而不是OO键的裂解就像血红素结构类似物细胞色素P450一样。 [参考:32]

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