Greco Claudio, Bruschi Maurizio, Heimdal Jimmy, Fantucci Piercarlo, De Gioia Luca, Ryde Ulf
Department of Biotechnology and Biosciences, University of Milan-Bicocca, Piazza della Scienza 2, 20126 Milan, Italy.
Inorg Chem. 2007 Sep 3;46(18):7256-8. doi: 10.1021/ic701051h. Epub 2007 Aug 4.
[FeFe]-hydrogenases harbor a {2Fe3S} assembly bearing two CO and two CN- groups, a mu-CO ligand, and a vacant coordination site trans to the mu-CO group. Recent theoretical results obtained studying the isolated {2Fe3S} subsite indicated that one of the CN- ligands can easily move from the crystallographic position to the coordination site trans to the mu-CO group; such an isomerization would have a major impact on substrates and inhibitors binding regiochemistry and, consequently, on the catalytic mechanism. To shed light on this crucial issue, we have carried out hybrid QM/MM and free energy perturbation calculations on the whole enzyme, which demonstrate that the protein environment plays a crucial role and maintains the CN- group fixed in the position observed in the crystal structure; these results strongly support the hypothesis that the vacant coordination site trans to the mu-CO group has a crucial functional relevance both in the context of CO-mediated inhibition of the enzyme and in dihydrogen oxidation/evolution catalysis.
[铁铁]氢化酶含有一个{2Fe3S}组件,带有两个CO和两个CN-基团、一个μ-CO配体,以及一个与μ-CO基团相对的空配位位点。最近对分离出的{2Fe3S}亚位点进行研究获得的理论结果表明,其中一个CN-配体可以很容易地从晶体学位置移动到与μ-CO基团相对的配位位点;这种异构化将对底物和抑制剂结合区域化学产生重大影响,进而对催化机制产生影响。为了阐明这一关键问题,我们对整个酶进行了混合量子力学/分子力学和自由能微扰计算,结果表明蛋白质环境起着关键作用,并使CN-基团固定在晶体结构中观察到的位置;这些结果有力地支持了这样一个假设,即与μ-CO基团相对的空配位位点在CO介导的酶抑制以及二氢氧化/生成催化过程中都具有至关重要的功能相关性。