Active-site protein dynamics and solvent accessibility in native Achromobacter cycloclastes copper nitrite reductase.
IUCrJ
; 4(Pt 4): 495-505, 2017 Jul 01.
Article
em En
| MEDLINE
| ID: mdl-28875036
Microbial nitrite reductases are denitrifying enzymes that are a major component of the global nitrogen cycle. Multiple structures measured from one crystal (MSOX data) of copper nitrite reductase at 240â
K, together with molecular-dynamics simulations, have revealed protein dynamics at the type 2 copper site that are significant for its catalytic properties and for the entry and exit of solvent or ligands to and from the active site. Molecular-dynamics simulations were performed using different protonation states of the key catalytic residues (AspCAT and HisCAT) involved in the nitrite-reduction mechanism of this enzyme. Taken together, the crystal structures and simulations show that the AspCAT protonation state strongly influences the active-site solvent accessibility, while the dynamics of the active-site 'capping residue' (IleCAT), a determinant of ligand binding, are influenced both by temperature and by the protonation state of AspCAT. A previously unobserved conformation of IleCAT is seen in the elevated temperature series compared with 100â
K structures. DFT calculations also show that the loss of a bound water ligand at the active site during the MSOX series is consistent with reduction of the type 2 Cu atom.
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Base de dados:
MEDLINE
Idioma:
En
Revista:
IUCrJ
Ano de publicação:
2017
Tipo de documento:
Article
País de afiliação:
Reino Unido