Classical molecular force-field parameters describing the structure and motion of metal clusters in [NiFe] hydrogenase enzymes can be used to compare the dynamics and thermodynamics of [NiFe] under different oxidation, protonation, and ligation circumstances. Using density functional theory (DFT) calculations of small model clusters representative of the active site and the proximal, medial, and distal Fe/S metal centers and their attached protein side chains, we have calculated classical force-field parameters for [NiFe] in reduced and oxidized states, including internal coordinates, force constants, and atom-centered charges. Derived force constants revealed that cysteinate ligands bound to the metal ions are more flexible in the Ni–B act...
In the intricate maturation process of [NiFe]-hydrogenases, the Fe(CN)2CO cofactor is first assemble...
A new class of synthetic models for the active site of [NiFe]-hydrogenases are described. The Ni<sup...
Trabajo presentado en la 10th International Hydrogenase Conference celebrada en Szeged (Hungría) del...
Comprising at least a bipartite architecture, the large subunit of [NiFe]-hydrogenase harbors the ca...
A comparative analysis of a series of DFT models of [NiFe]-hydrogenases, ranging from minimal NiFe c...
The hydrogenases are metalloenzymes that act to catalytically interconvert dihydrogen with protons a...
Controversial issues of the catalytic mechanism of NiFe hydrogenases are investigated through high l...
As humans continue to rely heavily on fossil fuels for our energy sources, many scientists are resea...
The application of classical molecular dynamics simulations to the study of metalloenzymes has been ...
We have studied the geometry and singlet-triplet energy difference of two mono-nuclear Ni2+ models r...
The light-induced Ni–L state of [NiFe] hydrogenases is well suited to investigate the identity of th...
[Fe] hydrogenase is a hydrogen activating enzyme that features a monoiron active site, which can be ...
Hydrogenase enzymes are natural biocatalysts that might be harnessed to reduce the cost of hydrogen ...
The [NiFe] hydrogenases catalyse the reversible conversion of H2 to protons and electrons. The activ...
[NiFe] hydrogenases catalyse the reversible conversion of molecular hydrogen to protons and electron...
In the intricate maturation process of [NiFe]-hydrogenases, the Fe(CN)2CO cofactor is first assemble...
A new class of synthetic models for the active site of [NiFe]-hydrogenases are described. The Ni<sup...
Trabajo presentado en la 10th International Hydrogenase Conference celebrada en Szeged (Hungría) del...
Comprising at least a bipartite architecture, the large subunit of [NiFe]-hydrogenase harbors the ca...
A comparative analysis of a series of DFT models of [NiFe]-hydrogenases, ranging from minimal NiFe c...
The hydrogenases are metalloenzymes that act to catalytically interconvert dihydrogen with protons a...
Controversial issues of the catalytic mechanism of NiFe hydrogenases are investigated through high l...
As humans continue to rely heavily on fossil fuels for our energy sources, many scientists are resea...
The application of classical molecular dynamics simulations to the study of metalloenzymes has been ...
We have studied the geometry and singlet-triplet energy difference of two mono-nuclear Ni2+ models r...
The light-induced Ni–L state of [NiFe] hydrogenases is well suited to investigate the identity of th...
[Fe] hydrogenase is a hydrogen activating enzyme that features a monoiron active site, which can be ...
Hydrogenase enzymes are natural biocatalysts that might be harnessed to reduce the cost of hydrogen ...
The [NiFe] hydrogenases catalyse the reversible conversion of H2 to protons and electrons. The activ...
[NiFe] hydrogenases catalyse the reversible conversion of molecular hydrogen to protons and electron...
In the intricate maturation process of [NiFe]-hydrogenases, the Fe(CN)2CO cofactor is first assemble...
A new class of synthetic models for the active site of [NiFe]-hydrogenases are described. The Ni<sup...
Trabajo presentado en la 10th International Hydrogenase Conference celebrada en Szeged (Hungría) del...