NMR Solution Structure of the Oxidized Form of MerP, a Mercuric Ion Binding Protein Involved in Bacterial Mercuric Ion Resistance,
- 1 June 1998
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 37 (26), 9316-9322
- https://doi.org/10.1021/bi9803628
Abstract
Mercuric ions are toxic to living organisms because of their strong affinity for cysteine residues in proteins. Some bacteria have developed a resistance mechanism whereby Hg2+ is transported into the cytoplasm and reduced to Hg0. One of the proteins involved in the transport of mercuric ion is the periplasmic binding protein MerP, which can exist both as oxidized (disulfide) and as reduced (dithiol) forms. Only the reduced form with Cys-17 and Cys-14 residues as free thiols is a potent receptor for mercuric ion. In this work the solution structure of the oxidized form of MerP has been determined by multidimensional NMR spectroscopy and compared to the NMR structures of the previously published structures of the reduced and mercury-bound forms of MerP. The mercury-bound and oxidized forms have similar tertiary structures, whereas in the reduced form there is a large rearrangement of the mercuric ion binding loop and the nearby loop comprising residues 38-41. The structural arrangement of the latter loop seems to be important for the stabilization of the surface location of the cysteine-containing loop. In the reduced form at low pH the cysteine-containing loop adopts a conformation similar to what is observed in the oxidized and mercury-bound forms. The oxidized form also differs with respect to the other two forms in the relative positions of some of the alpha-helices and beta-strands. Structural differences between the oxidized and reduced forms may help explain why the reduced form is stable in the periplasm, which is considered to be an oxidizing environment.Keywords
This publication has 14 references indexed in Scilit:
- A Mercuric Ion Uptake Role for the Integral Inner Membrane Protein, MerC, Involved in Bacterial Mercuric Ion ResistancePublished by Elsevier ,1997
- Atomic structure and specificity of bacterial periplasmic receptors for active transport and chemotaxis: variation of common themesMolecular Microbiology, 1996
- Statistical Basis for the Use of13CαChemical Shifts in Protein Structure DeterminationJournal of Magnetic Resonance, Series B, 1995
- Backbone 1H and 15N resonance assignments of the N-terminal SH3 domain of drk in folded and unfolded states using enhanced-sensitivity pulsed field gradient NMR techniquesJournal of Biomolecular NMR, 1994
- Gradient-Enhanced Triple-Resonance Three-Dimensional NMR Experiments with Improved SensitivityJournal of Magnetic Resonance, Series B, 1994
- Simultaneous Acquisition of 15N- and 13C-Edited NOE Spectra of Proteins Dissolved in H2OJournal of Magnetic Resonance, Series B, 1994
- 1H NMR studies of the mercuric ion binding protein MerP: Sequential assignment, secondary structure and global fold of oxidized MerPJournal of Biomolecular NMR, 1993
- Purification and properties of the mercuric‐ion‐binding protein MerPEuropean Journal of Biochemistry, 1992
- Empirical correlation between protein backbone conformation and C.alpha. and C.beta. 13C nuclear magnetic resonance chemical shiftsJournal of the American Chemical Society, 1991
- Determination of three-dimensional structures of proteins by simulated annealing with interproton distance restraints. Application to crambin, potato carboxypeptidase inhibitor and barley serine proteinase inhibitor 2Protein Engineering, Design and Selection, 1988