首页> 外文期刊>JBIC Journal of Biological Inorganic Chemistry >Density functional study of the catalytic cycle of nickel–iron [NiFe] hydrogenases and the involvement of high-spin nickel(II)
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Density functional study of the catalytic cycle of nickel–iron [NiFe] hydrogenases and the involvement of high-spin nickel(II)

机译:镍铁[NiFe]氢酶催化循环的密度泛函研究和高自旋镍的参与(II)

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摘要

In light of recent experiments suggesting high-spin (HS) Ni(II) species in the catalytic cycle of [NiFe] hydrogenase, a series of models of the Ni(II) forms Ni-SI(I,II), SI-CO and Ni-R(I,II,III) were examined in their high-spin states via density functional calculations. Because of its importance in the catalytic cycle, the Ni–C form was also included in this study. Unlike the Ni(II) forms in previous studies, in which a low-spin (LS) state was assumed and a square–planar structure found, the optimized geometries of these HS Ni(II) forms resemble those observed in the crystal structures: a distorted tetrahedral to distorted pyramidal coordination for the NiS4. This resemblance is particularly significant because the LS state is 20–30 kcal/mol less stable than the HS state for the geometry of the crystal structure. If these Ni(II) forms in the enzyme are not high spin, a large change in geometry at the active site is required during the catalytic cycle. Furthermore, only the HS state for the CO-inhibited form SI-CO has CO stretching frequencies that match the experimental results. As in the previous work, these new results show that the heterolytic cleavage reaction of dihydrogen (where H2 is cleaved with the metal acting as a hydride acceptor and a cysteine as the proton acceptor) has a lower energy barrier and is more exothermic when the active site is oxidized to Ni(III). The enzyme models described here are supported by a calibrated correlation of the calculated and measured CO stretching frequencies of the forms of the enzyme. The correlation coefficient for the final set of models of the forms of [NiFe] hydrogenase is 0.8.
机译:鉴于最近的实验表明[NiFe]氢化酶的催化循环中存在高自旋(HS)Ni(II)物种,Ni(II)的一系列模型形成了Ni-SI(I,II),SI-CO Ni-R(I,II,III)在高自旋状态下通过密度泛函计算进行了研究。由于其在催化循环中的重要性,因此本研究还包括Ni–C形式。不同于以前的研究中的Ni(II)形式,其中假定为低自旋(LS)状态并发现了方平面结构,这些HS Ni(II)形式的优化几何形状类似于在晶体结构中观察到的形状: NiS4的四面体变形到棱锥的锥体配位。这种相似性特别重要,因为对于晶体结构的几何形状,LS状态的稳定性比HS状态的稳定性低20-30 kcal / mol。如果酶中的这些Ni(II)形式不是高度自旋,则在催化循环过程中需要在活性位点处发生较大的几何形状变化。此外,只有CO抑制形式SI-CO的HS状态具有与实验结果匹配的CO拉伸频率。与以前的工作一样,这些新结果表明,二氢的杂相裂解反应(其中H2 被作为氢化物受体的金属裂解,而半胱氨酸作为质子受体的裂解)具有较低的能垒,并且具有更高的能级。当活性位被氧化成Ni(III)时放热。在此描述的酶模型得到了酶形式的计算和测量的CO延伸频率的校准相关性的支持。 [NiFe]氢化酶形式的最后一组模型的相关系数为0.8。

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