Back to Search
Start Over
Reductive activation in periplasmic nitrate reductase involves chemical modifications of the Mo-cofactor beyond the first coordination sphere of the metal ion
- Source :
- Biochimica biophysica acta (BBA)-Bioenergetics, Biochimica biophysica acta (BBA)-Bioenergetics, 2014, 1837 (2), pp.277-286. ⟨10.1016/j.bbabio.2013.10.013⟩, Biochimica biophysica acta (BBA)-Bioenergetics, Elsevier, 2014, 1837 (2), pp.277-286. ⟨10.1016/j.bbabio.2013.10.013⟩
- Publication Year :
- 2014
- Publisher :
- HAL CCSD, 2014.
-
Abstract
- International audience; In Rhodobacter sphaeroides periplasmic nitrate reductase NapAB, the major Mo(V) form (the “high g” species) in air-purified samples is inactive and requires reduction to irreversibly convert into a catalytically competent form (Fourmond et al., J. Phys. Chem., 2008). In the present work, we study the kinetics of the activation process by combining EPR spectroscopy and direct electrochemistry. Upon reduction, the Mo (V) “high g” resting EPR signal slowly decays while the other redox centers of the protein are rapidly reduced, which we interpret as a slow and gated (or coupled) intramolecular electron transfer between the [4Fe–4S] center and the Mo cofactor in the inactive enzyme. Besides, we detect spin–spin interactions between the Mo(V) ion and the [4Fe–4S]1 + cluster which are modified upon activation of the enzyme, while the EPR signatures associated to the Mo cofactor remain almost unchanged. This shows that the activation process, which modifies the exchange coupling pathway between the Mo and the [4Fe–4S]1 + centers, occurs further away than in the first coordination sphere of the Mo ion. Relying on structural data and studies on Mo-pyranopterin and models, we propose a molecular mechanism of activation which involves the pyranopterin moiety of the molybdenum cofactor that is proximal to the [4Fe–4S] cluster. The mechanism implies both the cyclization of the pyran ring and the reduction of the oxidized pterin to give the competent tricyclic tetrahydropyranopterin form.
- Subjects :
- Iron-Sulfur Proteins
Models, Molecular
Coenzymes
Photochemistry
Ligands
01 natural sciences
Biochemistry
law.invention
chemistry.chemical_compound
law
Pterin
Electron paramagnetic resonance
0303 health sciences
biology
Pteridines
Temperature
Protein film voltammetry
Periplasm
Molybdenum cofactor
Oxidation-Reduction
EPR spectroscopy
Coordination sphere
Biophysics
Rhodobacter sphaeroides
010402 general chemistry
Nitrate reductase
Redox
Electron transfer
03 medical and health sciences
Metalloproteins
[CHIM]Chemical Sciences
030304 developmental biology
Ions
Molybdenum
[PHYS.PHYS]Physics [physics]/Physics [physics]
Electron Spin Resonance Spectroscopy
Electrochemical Techniques
Cell Biology
biology.organism_classification
0104 chemical sciences
Pterins
Pyranopterin
Enzyme Activation
Crystallography
Kinetics
chemistry
Spin Labels
Molybdenum Cofactors
Subjects
Details
- Language :
- English
- ISSN :
- 00052728 and 18792650
- Database :
- OpenAIRE
- Journal :
- Biochimica biophysica acta (BBA)-Bioenergetics, Biochimica biophysica acta (BBA)-Bioenergetics, 2014, 1837 (2), pp.277-286. ⟨10.1016/j.bbabio.2013.10.013⟩, Biochimica biophysica acta (BBA)-Bioenergetics, Elsevier, 2014, 1837 (2), pp.277-286. ⟨10.1016/j.bbabio.2013.10.013⟩
- Accession number :
- edsair.doi.dedup.....8ae796a6fd01f09834e6bcdb7b8bc856