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Kinetics and mechanism of iron(III) complexation by ferric binding protein: the role of phosphate.

Publication ,  Journal Article
Gabricević, M; Anderson, DS; Mietzner, TA; Crumbliss, AL
Published in: Biochemistry
May 2004

Iron transport across the periplasmic space to the cytoplasmic membrane of certain Gram-negative bacteria is mediated by a ferric binding protein (Fbp). This requires Fe(3+) loading of Fbp at the inner leaflet of the outer membrane. A synergistic anion is required for tight Fe(3+) sequestration by Fbp. Although phosphate fills this role in the protein isolated from bacterial cell lysates, nitrilotriacetate anion (NTA) can also satisfy this requirement in vitro. Here, we report the kinetics and mechanism of Fe(3+) loading of Fbp from Fe(NTA)(aq) in the presence of phosphate at pH 6.5. The reaction proceeds in four kinetically distinguishable steps to produce Fe(3+)Fbp(PO(4)) as a final product. The first three steps exhibit half-lives ranging from ca. 20 ms to 0.5 min, depending on the concentrations, and produce Fe(3+)Fbp(NTA) as an intermediate product of significant stability. The rate for the first step is accelerated with an increasing phosphate concentration, while that of the third step is retarded by phosphate. Conversion of Fe(3+)Fbp(NTA) to Fe(3+)Fbp(PO(4)) in the fourth step is a slow process (half-life approximately 2 h) and is facilitated by free phosphate. A mechanism for the Fe(3+)-loading process is proposed in which the synergistic anions, phosphate and NTA, play key roles. These data suggest that not only is a synergistic anion required for tight Fe(3+) sequestration by Fbp, but also the synergistic anion plays a critical role in the process of inserting Fe(3+) into the Fbp binding site.

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Published In

Biochemistry

DOI

EISSN

1520-4995

ISSN

0006-2960

Publication Date

May 2004

Volume

43

Issue

19

Start / End Page

5811 / 5819

Related Subject Headings

  • Thermodynamics
  • Phosphates
  • Periplasmic Binding Proteins
  • Nitrilotriacetic Acid
  • Neisseria meningitidis
  • Models, Chemical
  • Ligands
  • Kinetics
  • Iron-Binding Proteins
  • Iron
 

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Gabricević, M., Anderson, D. S., Mietzner, T. A., & Crumbliss, A. L. (2004). Kinetics and mechanism of iron(III) complexation by ferric binding protein: the role of phosphate. Biochemistry, 43(19), 5811–5819. https://doi.org/10.1021/bi036217y
Gabricević, Mario, Damon S. Anderson, Timothy A. Mietzner, and Alvin L. Crumbliss. “Kinetics and mechanism of iron(III) complexation by ferric binding protein: the role of phosphate.Biochemistry 43, no. 19 (May 2004): 5811–19. https://doi.org/10.1021/bi036217y.
Gabricević M, Anderson DS, Mietzner TA, Crumbliss AL. Kinetics and mechanism of iron(III) complexation by ferric binding protein: the role of phosphate. Biochemistry. 2004 May;43(19):5811–9.
Gabricević, Mario, et al. “Kinetics and mechanism of iron(III) complexation by ferric binding protein: the role of phosphate.Biochemistry, vol. 43, no. 19, May 2004, pp. 5811–19. Epmc, doi:10.1021/bi036217y.
Gabricević M, Anderson DS, Mietzner TA, Crumbliss AL. Kinetics and mechanism of iron(III) complexation by ferric binding protein: the role of phosphate. Biochemistry. 2004 May;43(19):5811–5819.
Journal cover image

Published In

Biochemistry

DOI

EISSN

1520-4995

ISSN

0006-2960

Publication Date

May 2004

Volume

43

Issue

19

Start / End Page

5811 / 5819

Related Subject Headings

  • Thermodynamics
  • Phosphates
  • Periplasmic Binding Proteins
  • Nitrilotriacetic Acid
  • Neisseria meningitidis
  • Models, Chemical
  • Ligands
  • Kinetics
  • Iron-Binding Proteins
  • Iron