Accumulating the hydride state in the catalytic cycle of [FeFe]-hydrogenases.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 28722011.
- Also identified by DOI 10.1038/ncomms16115 and PMC identifier 5524980.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
H<sub>2</sub> turnover at the [FeFe]-hydrogenase cofactor (H-cluster) is assumed to follow a reversible heterolytic mechanism, first yielding a proton and a hydrido-species which again is double-oxidized to release another proton. Three of the four presumed catalytic intermediates (H<sub>ox</sub>, H<sub>red</sub>/H<sub>red</sub> and H<sub>sred</sub>) were characterized, using various spectroscopic techniques. However, in catalytically active enzyme, the state containing the hydrido-species, which is eponymous for the proposed heterolytic mechanism, has yet only been speculated about. We use different strategies to trap and spectroscopically characterize this transient hydride state (H<sub>hyd</sub>) for three wild-type [FeFe]-hydrogenases. Applying a novel set-up for real-time attenuated total-reflection Fourier-transform infrared spectroscopy, we monitor compositional changes in the state-specific infrared signatures of [FeFe]-hydrogenases, varying buffer pH and gas composition. We selectively enrich the equilibrium concentration of H<sub>hyd</sub>, applying Le Chatelier's principle by simultaneously increasing substrate and product concentrations (H<sub>2</sub>/H<sup>+</sup>). Site-directed manipulation, targeting either the proton-transfer pathway or the adt ligand, significantly enhances H<sub>hyd</sub> accumulation independent of pH.
Medical subject headings
- Hydrogen
- Hydrogenase
- Iron-Sulfur Proteins