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A geometric and electrostatic study of the [4Fe-4S] cluster of adenosine-5´-phosphosulfate reductase from broken symmetry density functional calculations and extended X-ray absorption fine structure spectroscopy

机译:腺嘌呤-5'-磷酸硫酸还原酶[4Fe-4s]簇的几何和静电研究,来自破碎的对称密度泛函计算和扩展的X射线吸收精细结构光谱

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摘要

Adenosine-5′-phosphosulfate reductase (APSR) is an iron–sulfur protein that catalyzes the reduction of adenosine-5′-phosphosulfate (APS) to sulfite. APSR coordinates to a [4Fe-4S] cluster via a conserved CC-X80-CXXC motif, and the cluster is essential for catalysis. Despite extensive functional, structural, and spectroscopic studies, the exact role of the iron–sulfur cluster in APS reduction remains unknown. To gain an understanding into the role of the cluster, density functional theory (DFT) analysis and extended X-ray fine structure spectroscopy (EXAFS) have been performed to reveal insights into the coordination, geometry, and electrostatics of the [4Fe-4S] cluster. X-ray absorption near-edge structure (XANES) data confirms that the cluster is in the [4Fe-4S]2+ state in both native and substrate-bound APSR while EXAFS data recorded at 0.1 Å resolution indicates that there is no significant change in the structure of the [4Fe-4S] cluster between the native and substrate-bound forms of the protein. On the other hand, DFT calculations provide an insight into the subtle differences between the geometry of the cluster in the native and APS-bound forms of APSR. A comparison between models with and without the tandem cysteine pair coordination of the cluster suggests a role for the unique coordination in facilitating a compact geometric structure and “fine-tuning” the electronic structure to prevent reduction of the cluster. Further, calculations using models in which residue Lys144 is mutated to Ala confirm the finding that Lys144 serves as a crucial link in the interactions involving the [4Fe-4S] cluster and APS.
机译:5'-磷酸腺苷还原酶(APSR)是一种铁-硫蛋白,可催化5'-磷酸腺苷(APS)还原为亚硫酸盐。 APSR通过保守的CC-X80-CXXC基序与[4Fe-4S]簇协调,该簇对于催化至关重要。尽管进行了广泛的功能,结构和光谱学研究,铁硫簇在降低APS中的确切作用仍然未知。为了了解簇的作用,已经进行了密度泛函理论(DFT)分析和扩展的X射线精细结构光谱(EXAFS),以揭示对[4Fe-4S]的配位,几何和静电的见解。簇。 X射线吸收近边缘结构(XANES)数据证实,在天然和受底物结合的APSR中,团簇均处于[4Fe-4S] 2+状态,而以0.1Å分辨率记录的EXAFS数据表明没有明显变化在蛋白质的天然形式和底物结合形式之间的[4Fe-4S]簇的结构中的“α”。另一方面,DFT计算提供了对APSR本地形式和APS绑定形式的群集几何之间细微差异的深入了解。具有和不具有串联半胱氨酸对配位的簇的模型之间的比较表明,独特的协调在促进紧凑的几何结构和“微调”电子结构以防止簇减少方面发挥了作用。此外,使用其中残基Lys144突变为Ala的模型进行的计算证实了这一发现,即Lys144在涉及[4Fe-4S]簇与APS的相互作用中起着至关重要的作用。

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