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Updated: Jun 11, 2026

Essential Metal Uptake in Gram-negative Bacteria: X-ray Fluorescence, Radioisotopes, and Cell Fractionation
Published on: February 1, 2018
Structure and function of P19, a high-affinity iron transporter of the human pathogen Campylobacter jejuni
Anson C K Chan1, Tzanko I Doukov, Melanie Scofield
1Department of Microbiology and Immunology, Life Sciences Institute, 2350 Health Sciences Mall, The University of British Columbia, Vancouver, BC, Canada V6T 1Z3.
Insights
Campylobacter jejuni protein P19 is crucial for growth under iron scarcity, binding both copper and iron. Its metal-dependent dimerization, revealed by crystal structures, is vital for iron acquisition in this common bacterial diarrhea pathogen.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Campylobacter jejuni causes acute bacterial diarrhea.
- Iron import proteins are essential for bacterial survival.
- P19 and Ftr1 expression increases during iron limitation.
Purpose of the Study:
- Investigate the function of P19 in iron acquisition.
- Determine the metal-binding properties and structure of P19.
Main Methods:
- Genetic analysis of P19 knockout mutants.
- Metal binding assays using recombinant P19.
- X-ray crystallography to determine P19 structure.
- In vitro and in vivo dimerization studies.
Main Results:
- Loss of P19 impairs C. jejuni growth on iron-restricted media.
- Recombinant P19 binds both copper and iron at distinct sites.
- Crystal structures reveal an immunoglobulin-like fold and a metal-dependent homodimer.
- Copper coordination involves His42, His95, His132, and Met88.
- A second metal binding site, potentially for iron, is identified in a solvent channel.
Conclusions:
- P19 plays a critical role in iron acquisition for C. jejuni.
- Metal binding and dimerization are key features of P19 function.
- Structural insights provide a basis for understanding P19's role in iron transport.
Abstract:
Campylobacter jejuni, a major cause of acute bacterial diarrhea in humans, expresses numerous proteins to import diverse forms of essential iron. The expression of p19 and an adjacent iron transporter homologue (ftr1) is strongly induced upon iron limitation, suggesting a function in iron acquisition. Here, we show that the loss of P19 alone is detrimental to growth on iron-restricted media. Furthermore, metal binding analysis demonstrates that recombinant P19 has distinct copper and iron binding sites. Crystal structures of P19 have been solved to 1.41 A resolution, revealing an immunoglobulin-like fold. A P19 homodimer in which both monomers contribute ligands to two equivalent copper sites located adjacent to methionine-rich patches is observed. Copper coordination occurs via three histidine residues (His42, His95, and His132) and Met88. A solvent channel lined with conserved acidic residues leads to the copper site. Soaking crystals with a solution of manganese as iron analog reveals a second metal binding site in this solvent channel (metal-metal distance, 7.7 A). Glu44 lies between the metal sites and displays multiple conformations in the crystal structures, suggesting a role in regulating metal-metal interaction. Dimerization is shown to be metal dependent in vitro and is detected in vivo by cross-linking.
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