H2 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 (Hox, Hred/Hred and Hsred) 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 (Hhyd) for three wild-type [FeFe]-hydrogenases. Applying a novel set-up for real-time attenuated total- reflection...
Formaldehyde (HCHO), a strong electrophile and a rapid and reversible inhibitor of hydrogen producti...
[FeFe] hydrogenases, which are considered the most active naturally occurring catalysts for hydrogen...
Over the past two decades, the bioinorganic chemistry of hydrogenases has attracted much interest fr...
Hydrogenases are metalloenzymes that catalyze the conversion of protons and molecular hydrogen, H2. ...
[FeFe] hydrogenases are highly efficient catalysts for reversible dihydrogen evolution. H2 turnover ...
[FeFe] hydrogenases are highly efficient catalysts for reversible dihydrogen evolution. H2 turnover ...
[FeFe] hydrogenases are highly efficient catalysts for reversible dihydrogen evolution. H2 turnover ...
In nature, [FeFe]-hydrogenases catalyze the uptake and release of molecular hydrogen (H2) at a uniq...
[FeFe]-Hydrogenases contain a H2-converting cofactor (H-cluster) in which a canonical [4Fe–4S] clust...
Hydrogenases are bidirectional redox enzymes that catalyze hydrogen turnover in archaea, bacteria, a...
The six-iron cofactor of [FeFe]-hydrogenases (H-cluster) is the most efficient H2-forming catalyst i...
[FeFe]-hydrogenases are superior hydrogen conversion catalysts. They bind a cofactor (H-cluster) co...
[FeFe]-Hydrogenases are the most efficient enzymes for catalytic hydrogen turnover. Their H2 product...
The [FeFe]-hydrogenases of bacteria and algae are the most efficient hydrogen conversion catalysts i...
The unmatched catalytic turnover rates of [FeFe]-hydrogenases require an exceptionally efficient pro...
Formaldehyde (HCHO), a strong electrophile and a rapid and reversible inhibitor of hydrogen producti...
[FeFe] hydrogenases, which are considered the most active naturally occurring catalysts for hydrogen...
Over the past two decades, the bioinorganic chemistry of hydrogenases has attracted much interest fr...
Hydrogenases are metalloenzymes that catalyze the conversion of protons and molecular hydrogen, H2. ...
[FeFe] hydrogenases are highly efficient catalysts for reversible dihydrogen evolution. H2 turnover ...
[FeFe] hydrogenases are highly efficient catalysts for reversible dihydrogen evolution. H2 turnover ...
[FeFe] hydrogenases are highly efficient catalysts for reversible dihydrogen evolution. H2 turnover ...
In nature, [FeFe]-hydrogenases catalyze the uptake and release of molecular hydrogen (H2) at a uniq...
[FeFe]-Hydrogenases contain a H2-converting cofactor (H-cluster) in which a canonical [4Fe–4S] clust...
Hydrogenases are bidirectional redox enzymes that catalyze hydrogen turnover in archaea, bacteria, a...
The six-iron cofactor of [FeFe]-hydrogenases (H-cluster) is the most efficient H2-forming catalyst i...
[FeFe]-hydrogenases are superior hydrogen conversion catalysts. They bind a cofactor (H-cluster) co...
[FeFe]-Hydrogenases are the most efficient enzymes for catalytic hydrogen turnover. Their H2 product...
The [FeFe]-hydrogenases of bacteria and algae are the most efficient hydrogen conversion catalysts i...
The unmatched catalytic turnover rates of [FeFe]-hydrogenases require an exceptionally efficient pro...
Formaldehyde (HCHO), a strong electrophile and a rapid and reversible inhibitor of hydrogen producti...
[FeFe] hydrogenases, which are considered the most active naturally occurring catalysts for hydrogen...
Over the past two decades, the bioinorganic chemistry of hydrogenases has attracted much interest fr...