The [NiFe] hydrogenases use an electron transfer relay of three FeS clusters - proximal, medial and distal - to release the electrons from the principal reaction, H2 → 2H+ + 2e-, that occurs at the Ni-Fe catalytic site. This site is normally inactivated by O2, but the subclass of O2-tolerant [NiFe] hydrogenases are able to counter this inactivation through the agency of an unusual and unprecedented proximal cluster, with composition [Fe4S3(Scys)6], that is able to transfer two electrons back to the Ni-Fe site and effect crucial reduction of O2-derived species and thereby reactivate the Ni-Fe site. This proximal cluster gates both the direction and the number of electrons flowing through it, and can reverse the normal flow during O2 attack. ...
Hydrogenase enzymes catalyse the reversible conversion of protons and electrons into molecular hydro...
International audienceNature has evolved three different ways of metabolizing hydrogen, represented ...
International audienceNature has evolved three different ways of metabolizing hydrogen, represented ...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can s...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can s...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can s...
[NiFe] hydrogenases are enzymes that catalyze the splitting of molecular hydrogen according to the r...
The bacterial [NiFe]-hydrogenases have been classified as either 'standard' or 'O-2-tolerant' based ...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can ...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can s...
International audience"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-...
The origin of the tolerance of a subclass of [NiFe]-hydrogenases to the presence of oxygen was uncle...
The origin of the tolerance of a subclass of [NiFe]-hydrogenases to the presence of oxygen was uncle...
“Hyd-1”, produced by Escherichia coli, exemplifies a special class of [NiFe]-hydrogenase that can su...
Hydrogenase enzymes catalyse the reversible conversion of protons and electrons into molecular hydro...
Hydrogenase enzymes catalyse the reversible conversion of protons and electrons into molecular hydro...
International audienceNature has evolved three different ways of metabolizing hydrogen, represented ...
International audienceNature has evolved three different ways of metabolizing hydrogen, represented ...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can s...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can s...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can s...
[NiFe] hydrogenases are enzymes that catalyze the splitting of molecular hydrogen according to the r...
The bacterial [NiFe]-hydrogenases have been classified as either 'standard' or 'O-2-tolerant' based ...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can ...
"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-hydrogenase that can s...
International audience"Hyd-1", produced by Escherichia coli , exemplifies a special class of [NiFe]-...
The origin of the tolerance of a subclass of [NiFe]-hydrogenases to the presence of oxygen was uncle...
The origin of the tolerance of a subclass of [NiFe]-hydrogenases to the presence of oxygen was uncle...
“Hyd-1”, produced by Escherichia coli, exemplifies a special class of [NiFe]-hydrogenase that can su...
Hydrogenase enzymes catalyse the reversible conversion of protons and electrons into molecular hydro...
Hydrogenase enzymes catalyse the reversible conversion of protons and electrons into molecular hydro...
International audienceNature has evolved three different ways of metabolizing hydrogen, represented ...
International audienceNature has evolved three different ways of metabolizing hydrogen, represented ...