International audience[NiFe]-hydrogenases catalyse the cleavage of molecular hydrogen into protons and electrons and represent promising tools for H2-based technologies such as biofuel cells. However, many aspects of these enzymes remain to be understood, in particular how the catalytic center can be protected from irreversible inactivation by O2. In this work, we combined homology modelling, all-atom Molecular Dynamics, and coarse-grain Brownian Dynamics simulations to investigate and compare the dynamic and mechanical properties of two [NiFe]-hydrogenases: the soluble O2-sensitive enzyme from Desulfovibrio fructosovorans, and the O2-tolerant membrane-bound hydrogenase from Aquifex aeolicus. We investigated the diffusion pathways of H2 fro...
International audienceNature has evolved three different ways of metabolizing hydrogen, represented ...
SummaryWe report on a computational investigation of the passive transport of H2 and O2 between the ...
Catalytic long-range proton transfer in [NiFe]-hydrogenases has long been associated with a highly c...
International audience[NiFe]-hydrogenases catalyse the cleavage of molecular hydrogen into protons a...
[NiFe]-hydrogenases catalyze the cleavage of molecular hydrogen into protons and electrons and repre...
[NiFe] hydrogenases are enzymes that catalyze the splitting of molecular hydrogen according to the r...
AbstractHydrogenases catalyze the reversible oxidation of molecular hydrogen (H2), but little is kno...
Hydrogenase enzymes are natural biocatalysts that might be harnessed to reduce the cost of hydrogen ...
AbstractPossible proton transport pathways in Clostridium pasteurianum (CpI) [FeFe]-hydrogenase were...
Hydrogenases are efficient biocatalysts for H2 production and oxidation with various potential biote...
Designing O<sub>2</sub>-tolerant hydrogenases is a major challenge in applying [Fe–Fe]H<sub>2</sub>...
© 2016 Macmillan Publishers Limited, part of Springer Nature. All rights reserved. FeFe hydrogenases...
The H<sub>2</sub> production potential of [FeFe]-hydrogenase, a hydrogen-producing enzyme from green...
[FeFe] hydrogenase enzymes can reversibly catalyze the conversion of protons into molecular hydrogen...
International audienceFeFe hydrogenases are the most efficient H$_2$-producing enzymes. However, ina...
International audienceNature has evolved three different ways of metabolizing hydrogen, represented ...
SummaryWe report on a computational investigation of the passive transport of H2 and O2 between the ...
Catalytic long-range proton transfer in [NiFe]-hydrogenases has long been associated with a highly c...
International audience[NiFe]-hydrogenases catalyse the cleavage of molecular hydrogen into protons a...
[NiFe]-hydrogenases catalyze the cleavage of molecular hydrogen into protons and electrons and repre...
[NiFe] hydrogenases are enzymes that catalyze the splitting of molecular hydrogen according to the r...
AbstractHydrogenases catalyze the reversible oxidation of molecular hydrogen (H2), but little is kno...
Hydrogenase enzymes are natural biocatalysts that might be harnessed to reduce the cost of hydrogen ...
AbstractPossible proton transport pathways in Clostridium pasteurianum (CpI) [FeFe]-hydrogenase were...
Hydrogenases are efficient biocatalysts for H2 production and oxidation with various potential biote...
Designing O<sub>2</sub>-tolerant hydrogenases is a major challenge in applying [Fe–Fe]H<sub>2</sub>...
© 2016 Macmillan Publishers Limited, part of Springer Nature. All rights reserved. FeFe hydrogenases...
The H<sub>2</sub> production potential of [FeFe]-hydrogenase, a hydrogen-producing enzyme from green...
[FeFe] hydrogenase enzymes can reversibly catalyze the conversion of protons into molecular hydrogen...
International audienceFeFe hydrogenases are the most efficient H$_2$-producing enzymes. However, ina...
International audienceNature has evolved three different ways of metabolizing hydrogen, represented ...
SummaryWe report on a computational investigation of the passive transport of H2 and O2 between the ...
Catalytic long-range proton transfer in [NiFe]-hydrogenases has long been associated with a highly c...