Max Planck Institute for Chemical Energy Conversion , Stiftstraße 34-36, D-45470 Mülheim an der Ruhr, Germany.
J Am Chem Soc. 2017 Oct 25;139(42):15122-15134. doi: 10.1021/jacs.7b08193. Epub 2017 Oct 2.
[FeFe] hydrogenases catalyze proton reduction and hydrogen oxidation displaying high rates at low overpotential. Their active site is a complex cofactor consisting of a unique [2Fe] subcluster ([2Fe]) covalently bound to a canonical [4Fe-4S] cluster ([4Fe-4S]). The [FeFe] hydrogenase from Desulfovibrio desulfuricans is exceptionally active and bidirectional. This enzyme features two accessory [4Fe-4S] clusters for exchanging electrons with the protein surface. A thorough understanding of the mechanism of this efficient enzyme will facilitate the development of synthetic molecular catalysts for hydrogen conversion. Here, it is demonstrated that the accessory clusters influence the catalytic properties of the enzyme through a strong redox interaction between the proximal [4Fe-4S] cluster and the [4Fe-4S] subcluster of the H-cluster. This interaction enhances proton-coupled electronic rearrangement within the H-cluster increasing the apparent pK of its one electron reduced state. This may help to sustain H production at high pH values. These results may apply to all [FeFe] hydrogenases containing accessory clusters.
[FeFe]氢化酶催化质子还原和氢气氧化,在低过电势下显示出高反应速率。它们的活性位点是一个复杂的辅因子,由一个独特的[2Fe]亚簇([2Fe])与一个规范的[4Fe-4S]簇([4Fe-4S])共价结合而成。脱硫弧菌的[FeFe]氢化酶具有异常的活性和双向性。该酶具有两个辅助[4Fe-4S]簇,用于与蛋白质表面交换电子。深入了解这种高效酶的机制将有助于开发用于氢气转化的合成分子催化剂。在这里,证明了辅助簇通过近端[4Fe-4S]簇与 H 簇的[4Fe-4S]亚簇之间的强烈氧化还原相互作用影响酶的催化性质。这种相互作用增强了 H 簇内质子耦合的电子重排,增加了其单电子还原态的表观 pK 值。这可能有助于在高 pH 值下维持 H 的产生。这些结果可能适用于所有含有辅助簇的[FeFe]氢化酶。