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Nickel binding properties of Helicobacter pylori UreF,an accessory protein in the nickel-based activation of urease
Authors:Barbara Zambelli  Andrea Berardi  Vlad Martin-Diaconescu  Luca Mazzei  Francesco Musiani  Michael J. Maroney  Stefano Ciurli
Affiliation:1. Laboratory of Bioinorganic Chemistry, Department of Pharmacy and Biotechnology, University of Bologna, Viale Giuseppe Fanin 40, 40127, Bologna, Italy
5. Biomolecular NMR Laboratory, Dulbecco Telethon Institute, c/o Ospedale S.Raffaele Via Olgettina 58, 20132, Milan, Italy
3. Department of Chemistry, University of Massachusetts, Amherst, MA, 01003, USA
6. Max Planck Institute for Bioinorganic Chemistry, Stiftstrasse 34–36, 45470, Mülheim an der Ruhr, Germany
4. International School for Advanced Studies (Sissa/ISAS), Trieste, Italy
2. Center for Magnetic Resonance (CERM), University of Florence, Florence, Italy
Abstract:Helicobacter pylori UreF (HpUreF) is involved in the insertion of Ni2+ in the urease active site. The recombinant protein in solution is a dimer characterized by an extensive α-helical structure and a well-folded tertiary structure. HpUreF binds two Ni2+ ions per dimer, with a micromolar dissociation constant, as shown by calorimetry. X-ray absorption spectroscopy indicated that the Ni2+ ions reside in a five-coordinate pyramidal geometry comprising exclusively N/O-donor ligands derived from the protein, including one or two histidine imidazole and carboxylate ligands. Binding of Ni2+ does not affect the solution properties of the protein. Mutation to alanine of His229 and/or Cys231, a pair of residues located on the protein surface that interact with H. pylori UreD, altered the affinity of the protein for Ni2+. This result, complemented by the findings from X-ray absorption spectroscopy, indicates that the Ni2+ binding site involves His229, and that Cys231 has an indirect structural role in metal binding. An in vivo assay of urease activation demonstrated that H229A HpUreF, C231A HpUreF, and H229/C231 HpUreF are significantly less competent in this process, suggesting a role for a Ni2+ complex with UreF in urease maturation. This hypothesis was supported by calculations revealing the presence of a tunnel that joins the Cys-Pro-His metal binding site on UreG and an opening on the UreD surface, passing through UreF close to His229 and Cys231, in the structure of the H. pylori UreDFG complex. This tunnel could be used to transfer nickel into the urease active site during apoenzyme-to-holoenzyme activation.
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