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腈水合酶的硫 K 边 X 射线吸收光谱和密度泛函理论计算:非血红素铁活性位点的几何结构和电子结构

Sulfur K-edge XAS and DFT calculations on nitrile hydratase: geometric and electronic structure of the non-heme iron active site.

作者信息

Dey Abhishek, Chow Marina, Taniguchi Kayoko, Lugo-Mas Priscilla, Davin Steven, Maeda Mizuo, Kovacs Julie A, Odaka Masafumi, Hodgson Keith O, Hedman Britt, Solomon Edward I

机构信息

Department of Chemistry, Stanford University, California 94305, USA.

出版信息

J Am Chem Soc. 2006 Jan 18;128(2):533-41. doi: 10.1021/ja0549695.

Abstract

The geometric and electronic structure of the active site of the non-heme iron enzyme nitrile hydratase (NHase) is studied using sulfur K-edge XAS and DFT calculations. Using thiolate (RS(-))-, sulfenate (RSO(-))-, and sulfinate (RSO(2)(-))-ligated model complexes to provide benchmark spectral parameters, the results show that the S K-edge XAS is sensitive to the oxidation state of S-containing ligands and that the spectrum of the RSO(-) species changes upon protonation as the S-O bond is elongated (by approximately 0.1 A). These signature features are used to identify the three cysteine residues coordinated to the low-spin Fe(III) in the active site of NHase as CysS(-), CysSOH, and CysSO(2)(-) both in the NO-bound inactive form and in the photolyzed active form. These results are correlated to geometry-optimized DFT calculations. The pre-edge region of the X-ray absorption spectrum is sensitive to the Z(eff) of the Fe and reveals that the Fe in FeNO NHase species has a Z(eff) very similar to that of its photolyzed Fe(III) counterpart. DFT calculations reveal that this results from the strong pi back-bonding into the pi antibonding orbital of NO, which shifts significant charge from the formally t(2)(6) low-spin metal to the coordinated NO.

摘要

利用硫 K 边 X 射线吸收光谱(XAS)和密度泛函理论(DFT)计算研究了非血红素铁酶腈水合酶(NHase)活性位点的几何结构和电子结构。使用硫醇盐(RS(-))、亚磺酸盐(RSO(-))和亚磺酸盐(RSO₂(-))配位的模型配合物来提供基准光谱参数,结果表明 S K 边 XAS 对含硫配体的氧化态敏感,并且 RSO(-)物种的光谱在质子化时会随着 S - O 键的伸长(约 0.1 Å)而发生变化。这些特征用于确定在 NHase 活性位点与低自旋 Fe(III)配位的三个半胱氨酸残基在 NO 结合的无活性形式和光解后的活性形式中均为 CysS(-)、CysSOH 和 CysSO₂(-)。这些结果与几何优化的 DFT 计算相关。X 射线吸收光谱的前缘区域对 Fe 的有效核电荷(Zeff)敏感,并表明FeNO NHase 物种中的 Fe 的 Zeff 与其光解后的 Fe(III)对应物非常相似。DFT 计算表明,这是由于强烈的π反馈键合到 NO 的π反键轨道中,这将大量电荷从形式上的 t₂(6)低自旋金属转移到配位的 NO 上。

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