Sigfridsson Kajsa G V, Leidel Nils, Sanganas Oliver, Chernev Petko, Lenz Oliver, Yoon Ki-Seok, Nishihara Hirofumi, Parkin Alison, Armstrong Fraser A, Dementin Sébastien, Rousset Marc, De Lacey Antonio L, Haumann Michael
Freie Universität Berlin, Institut für Experimentalphysik, 14195 Berlin, Germany.
Humboldt-Universität zu Berlin, Mikrobiologie, 10115 Berlin, Germany.
Biochim Biophys Acta. 2015 Feb;1847(2):162-170. doi: 10.1016/j.bbabio.2014.06.011. Epub 2014 Oct 12.
The class of [NiFe]-hydrogenases comprises oxygen-sensitive periplasmic (PH) and oxygen-tolerant membrane-bound (MBH) enzymes. For three PHs and four MBHs from six bacterial species, structural features of the nickel-iron active site of hydrogen turnover and of the iron-sulfur clusters functioning in electron transfer were determined using X-ray absorption spectroscopy (XAS). Fe-XAS indicated surplus oxidized iron and a lower number of ~2.7 Å Fe-Fe distances plus additional shorter and longer distances in the oxidized MBHs compared to the oxidized PHs. This supported a double-oxidized and modified proximal FeS cluster in all MBHs with an apparent trimer-plus-monomer arrangement of its four iron atoms, in agreement with crystal data showing a [4Fe3S] cluster instead of a [4Fe4S] cubane as in the PHs. Ni-XAS indicated coordination of the nickel by the thiol group sulfurs of four conserved cysteines and at least one iron-oxygen bond in both MBH and PH proteins. Structural differences of the oxidized inactive [NiFe] cofactor of MBHs in the Ni-B state compared to PHs in the Ni-A state included a ~0.05 Å longer Ni-O bond, a two times larger spread of the Ni-S bond lengths, and a ~0.1 Å shorter Ni-Fe distance. The modified proximal [4Fe3S] cluster, weaker binding of the Ni-Fe bridging oxygen species, and an altered localization of reduced oxygen species at the active site may each contribute to O2 tolerance.
[NiFe]氢化酶家族包括对氧气敏感的周质(PH)酶和耐氧的膜结合(MBH)酶。利用X射线吸收光谱法(XAS),确定了来自六种细菌的三种PH酶和四种MBH酶在氢周转过程中镍铁活性位点以及在电子转移中起作用的铁硫簇的结构特征。铁XAS表明,与氧化的PH酶相比,氧化的MBH酶中铁有多余的氧化态,~2.7 Å的Fe-Fe距离数量减少,还有额外的更短和更长的距离。这支持了所有MBH酶中近端FeS簇为双氧化且经过修饰,其四个铁原子呈现明显的三聚体加单体排列,这与晶体数据一致,晶体数据显示其为[4Fe3S]簇而非PH酶中的[4Fe4S]立方烷簇。镍XAS表明,在MBH和PH蛋白中,镍均由四个保守半胱氨酸的巯基硫配位,且至少有一个铁-氧键。与处于Ni-A状态的PH酶相比,处于Ni-B状态的MBH酶氧化态无活性[NiFe]辅因子的结构差异包括Ni-O键长约长0.05 Å、Ni-S键长分布扩大两倍以及Ni-Fe距离约短0.1 Å。经过修饰的近端[4Fe3S]簇、Ni-Fe桥连氧物种的较弱结合以及活性位点处还原氧物种的定位改变可能各自促成了对氧气的耐受性。