Tracking the route of molecular oxygen in O<sub>2</sub>-tolerant membrane-bound [NiFe] hydrogenase.

Kalms, Jacqueline; Schmidt, Andrea; Frielingsdorf, Stefan; Utesch, Tillmann; Gotthard, Guillaume; von Stetten, David; van der Linden, Peter; Royant, Antoine et al. · Proc Natl Acad Sci U S A · 2018

basic_science · Level V

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Abstract

[NiFe] hydrogenases catalyze the reversible splitting of H<sub>2</sub> into protons and electrons at a deeply buried active site. The catalytic center can be accessed by gas molecules through a hydrophobic tunnel network. While most [NiFe] hydrogenases are inactivated by O<sub>2</sub>, a small subgroup, including the membrane-bound [NiFe] hydrogenase (MBH) of <i>Ralstonia eutropha</i>, is able to overcome aerobic inactivation by catalytic reduction of O<sub>2</sub> to water. This O<sub>2</sub> tolerance relies on a special [4Fe3S] cluster that is capable of releasing two electrons upon O<sub>2</sub> attack. Here, the O<sub>2</sub> accessibility of the MBH gas tunnel network has been probed experimentally using a "soak-and-freeze" derivatization method, accompanied by protein X-ray crystallography and computational studies. This combined approach revealed several sites of O<sub>2</sub> molecules within a hydrophobic tunnel network leading, via two tunnel entrances, to the catalytic center of MBH. The corresponding site occupancies were related to the O<sub>2</sub> concentrations used for MBH crystal derivatization. The examination of the O<sub>2</sub>-derivatized data furthermore uncovered two unexpected structural alterations at the [4Fe3S] cluster, which might be related to the O<sub>2</sub> tolerance of the enzyme.

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