[FeFe]-hydrogenases are superior hydrogen conversion catalysts. They bind a cofactor (H-cluster) comprising a four-iron and a diiron unit with three carbon monoxide (CO) and two cyanide (CN−) ligands. Hydrogen (H2) and oxygen (O2) binding at the H-cluster was studied in the C169A variant of [FeFe]-hydrogenase HYDA1, in comparison to the active oxidized (Hox) and CO- inhibited (Hox-CO) species in wildtype enzyme. 57Fe labeling of the diiron site was achieved by in vitro maturation with a synthetic cofactor analogue. Site-selective X-ray absorption, emission, and nuclear inelastic/forward scattering methods and infrared spectroscopy were combined with quantum chemical calculations to determine the molecular and electronic structure a...
Mitigation of climate change motivates researchers to explore hydrogen as a potential energy carrier...
[FeFe]-hydrogenases are efficient biological hydrogen conversion catalysts and blueprints for techno...
[FeFe]-hydrogenases are efficient metalloenzymes that catalyze the oxidation and evolution of molecu...
The [FeFe]-hydrogenase (HydA1) from green algae is the minimal enzyme for efficient biological hydro...
[FeFe]-Hydrogenases contain a H2-converting cofactor (H-cluster) in which a canonical [4Fe–4S] clust...
The six-iron cofactor of [FeFe]-hydrogenases (H-cluster) is the most efficient H2-forming catalyst i...
Hydrogenases are bidirectional redox enzymes that catalyze hydrogen turnover in archaea, bacteria, a...
The [FeFe]-hydrogenases of bacteria and algae are the most efficient hydrogen conversion catalysts i...
[FeFe]-hydrogenases efficiently catalyzes hydrogen conversion at a unique [4Fe–4S]-[FeFe] cofactor, ...
In nature, [FeFe]-hydrogenases catalyze the uptake and release of molecular hydrogen (H2) at a uniq...
[FeFe]-hydrogenases efficiently catalyzes hydrogen conversion at a unique [4Fe–4S]-[FeFe] cofa...
[FeFe]-hydrogenases efficiently catalyzes hydrogen conversion at a unique [4Fe–4S]-[FeFe] cofa...
[FeFe]-hydrogenases efficiently catalyzes hydrogen conversion at a unique [4Fe–4S]-[FeFe] cofactor, ...
Over the past two decades, the bioinorganic chemistry of hydrogenases has attracted much interest fr...
Mitigation of climate change motivates researchers to explore hydrogen as a potential energy carrier...
Mitigation of climate change motivates researchers to explore hydrogen as a potential energy carrier...
[FeFe]-hydrogenases are efficient biological hydrogen conversion catalysts and blueprints for techno...
[FeFe]-hydrogenases are efficient metalloenzymes that catalyze the oxidation and evolution of molecu...
The [FeFe]-hydrogenase (HydA1) from green algae is the minimal enzyme for efficient biological hydro...
[FeFe]-Hydrogenases contain a H2-converting cofactor (H-cluster) in which a canonical [4Fe–4S] clust...
The six-iron cofactor of [FeFe]-hydrogenases (H-cluster) is the most efficient H2-forming catalyst i...
Hydrogenases are bidirectional redox enzymes that catalyze hydrogen turnover in archaea, bacteria, a...
The [FeFe]-hydrogenases of bacteria and algae are the most efficient hydrogen conversion catalysts i...
[FeFe]-hydrogenases efficiently catalyzes hydrogen conversion at a unique [4Fe–4S]-[FeFe] cofactor, ...
In nature, [FeFe]-hydrogenases catalyze the uptake and release of molecular hydrogen (H2) at a uniq...
[FeFe]-hydrogenases efficiently catalyzes hydrogen conversion at a unique [4Fe–4S]-[FeFe] cofa...
[FeFe]-hydrogenases efficiently catalyzes hydrogen conversion at a unique [4Fe–4S]-[FeFe] cofa...
[FeFe]-hydrogenases efficiently catalyzes hydrogen conversion at a unique [4Fe–4S]-[FeFe] cofactor, ...
Over the past two decades, the bioinorganic chemistry of hydrogenases has attracted much interest fr...
Mitigation of climate change motivates researchers to explore hydrogen as a potential energy carrier...
Mitigation of climate change motivates researchers to explore hydrogen as a potential energy carrier...
[FeFe]-hydrogenases are efficient biological hydrogen conversion catalysts and blueprints for techno...
[FeFe]-hydrogenases are efficient metalloenzymes that catalyze the oxidation and evolution of molecu...