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Assigningthe EPR Fine Structure Parameters of theMn(II) Centers in Bacillus subtilis Oxalate Decarboxylase by Site-Directed Mutagenesis and DFT/MM Calculations

机译:分配的EPR细结构参数枯草芽孢杆菌草酸脱羧酶中的Mn(II)中心通过定点诱变和DFT / MM计算

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摘要

Oxalate decarboxylase (OxDC) catalyzes the Mn-dependent conversion of the oxalate monoanion into CO2 and formate. EPR-based strategies for investigating the catalytic mechanism of decarboxylation are complicated by the difficulty of assigning the signals associated with the two Mn(II) centers located in the N- and C-terminal cupin domains of the enzyme. We now report a mutational strategy that has established the assignment of EPR fine structure parameters to each of these Mn(II) centers at pH 8.5. These experimental findings are also used to assess the performance of a multistep strategy for calculating the zero-field splitting parameters of protein-bound Mn(II) ions. Despite the known sensitivity of calculated D and E values to the computational approach, we demonstrate that good estimates of these parameters can be obtained using cluster models taken from carefully optimized DFT/MM structures. Overall, our results provide new insights into the strengths and limitations of theoretical methods for understanding electronic properties of protein-bound Mn(II) ions, thereby setting the stage for future EPR studies on the electronicproperties of the Mn(II) centers in OxDC and site-specific variants.
机译:草酸脱羧酶(OxDC)催化草酸单阴离子向CO2和甲酸的Mn依赖性转化。由于难以分配与位于酶N和C末端铜蛋白结构域中的两个Mn(II)中心相关的信号,因此很难研究基于EPR的脱羧催化机理的策略。现在,我们报告了一种突变策略,该策略确定了在pH 8.5时将EPR精细结构参数分配给这些Mn(II)中心的每个。这些实验结果还用于评估多步策略的性能,该策略用于计算蛋白质结合的Mn(II)离子的零场分裂参数。尽管已知计算的D和E值对计算方法具有敏感性,但我们证明,使用从精心优化的DFT / MM结构中获取的聚类模型,可以获得这些参数的良好估计。总体而言,我们的研究结果为理解蛋白质结合的Mn(II)离子电子性质的理论方法的优势和局限性提供了新的见解,从而为未来电子EPR研究奠定了基础Mn(II)中心的性质在OxDC和特定于位置的变体中。

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