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Role of the Iron Axial Ligands of Heme Carrier HasA in Heme Uptake and Release
- Source :
- Journal of Biological Chemistry, Journal of Biological Chemistry, 2012, 287 (32), pp.26932-26943. ⟨10.1074/jbc.M112.366385⟩, Journal of Biological Chemistry, American Society for Biochemistry and Molecular Biology, 2012, 287 (32), pp.26932-26943. ⟨10.1074/jbc.M112.366385⟩
- Publication Year :
- 2012
- Publisher :
- Elsevier BV, 2012.
-
Abstract
- Erratum in : J Biol Chem. 2013 Jan 25;288(4):2190.; International audience; The hemophore protein HasA from Serratia marcescens cycles between two states as follows: the heme-bound holoprotein, which functions as a carrier of the metal cofactor toward the membrane receptor HasR, and the heme-free apoprotein fishing for new porphyrin to be taken up after the heme has been delivered to HasR. Holo- and apo-forms differ for the conformation of the two loops L1 and L2, which provide the axial ligands of the iron through His(32) and Tyr(75), respectively. In the apo-form, loop L1 protrudes toward the solvent far away from loop L2; in the holoprotein, closing of the loops on the heme occurs upon establishment of the two axial coordination bonds. We have established that the two variants obtained via single point mutations of either axial ligand (namely H32A and Y75A) are both in the closed conformation. The presence of the heme and one out of two axial ligands is sufficient to establish a link between L1 and L2, thanks to the presence of coordinating solvent molecules. The latter are stabilized in the iron coordination environment by H-bond interactions with surrounding protein residues. The presence of such a water molecule in both variants is revealed here through a set of different spectroscopic techniques. Previous studies had shown that heme release and uptake processes occur via intermediate states characterized by a Tyr(75)-iron-bound form with open conformation of loop L1. Here, we demonstrate that these states do not naturally occur in the free protein but can only be driven by the interaction with the partner proteins.
- Subjects :
- Models, Molecular
Protein Folding
Protein Conformation
MESH: Heme/metabolism
Ligands
Spectrum Analysis, Raman
01 natural sciences
Biochemistry
MESH: Bacterial Proteins/metabolism
chemistry.chemical_compound
Protein structure
MESH: Nuclear Magnetic Resonance, Biomolecular
MESH: Ligands
Metalloprotein
Heme
Serratia marcescens
Spectroscopy
chemistry.chemical_classification
0303 health sciences
biology
digestive, oral, and skin physiology
MESH: Serratia marcescens/metabolism
MESH: Mutagenesis, Site-Directed
Protein Structure and Folding
Additions and Corrections
Protein folding
Heme Iron Spin State
MESH: Models, Molecular
MESH: Bacterial Proteins/chemistry
Hemophore HasA
MESH: Membrane Proteins/chemistry
MESH: Carrier Proteins/chemistry
Stereochemistry
Iron
MESH: Protein Folding
MESH: Bacterial Proteins/genetics
010402 general chemistry
Cofactor
MESH: Membrane Proteins/genetics
03 medical and health sciences
Bacterial Proteins
MESH: Carrier Proteins/genetics
MESH: Carrier Proteins/metabolism
Metalloproteins
MESH: Membrane Proteins/metabolism
Molecule
[SDV.BBM]Life Sciences [q-bio]/Biochemistry, Molecular Biology
Nuclear Magnetic Resonance, Biomolecular
Molecular Biology
030304 developmental biology
MESH: Spectrum Analysis, Raman
MESH: Iron/metabolism
010405 organic chemistry
Ligand
Electron Spin Resonance Spectroscopy
Membrane Proteins
Cell Biology
Porphyrin
0104 chemical sciences
Iron Acquisition
chemistry
Mutagenesis, Site-Directed
biology.protein
MESH: Electron Spin Resonance Spectroscopy
Carrier Proteins
Subjects
Details
- ISSN :
- 00219258 and 1083351X
- Volume :
- 287
- Database :
- OpenAIRE
- Journal :
- Journal of Biological Chemistry
- Accession number :
- edsair.doi.dedup.....51c5ebf313bd819d32c39c6a8c339d97
- Full Text :
- https://doi.org/10.1074/jbc.m112.366385