IruO is a reductase for heme degradation by IsdI and IsdG proteins in Staphylococcus aureus

Slade A Loutet1, Marek J Kobylarz1, Crystal H T Chau1

  • 1From the Department of Microbiology and Immunology, Life Sciences Institute, The University of British Columbia, Vancouver, British Columbia V6T 1Z3, Canada.

Insights

Staphylococcus aureus needs iron for infection. Researchers identified IruO as a crucial enzyme that aids in heme degradation, a key step in iron acquisition, potentially revealing new therapeutic targets.

Area of Science:

  • Microbiology
  • Biochemistry
  • Molecular Biology

Background:

  • Staphylococcus aureus is a multidrug-resistant bacterium causing severe infections.
  • Iron acquisition is essential for S. aureus pathogenesis.
  • Heme degradation pathways are potential therapeutic targets.

Purpose of the Study:

  • To identify the function of the S. aureus gene NWMN2274 in heme metabolism.
  • To characterize the enzymatic activity of the protein encoded by NWMN2274.
  • To determine the role of this protein in the iron acquisition pathway.

Main Methods:

  • Biochemical characterization of recombinant NWMN2274 (renamed IruO) as an NADPH-dependent reductase.
  • Enzymatic assays measuring heme degradation rates by IsdG/IsdI in the presence of IruO and NADPH.
  • Spectroscopic and chromatographic analysis to identify heme degradation products.
  • Bioinformatic analysis to identify homologs of IruO in other bacteria.

Main Results:

  • NWMN2274, renamed IruO, is an FAD-containing NADPH-dependent reductase.
  • IruO significantly accelerates heme degradation by IsdG and IsdI, acting as an electron donor.
  • The major heme degradation products are staphylobilins (5-oxo-δ-bilirubin and 15-oxo-β-bilirubin).
  • Homologs of IruO are found in Gram-positive bacteria with IsdG-family heme oxygenases.

Conclusions:

  • IruO is the likely in vivo reductant for heme degradation by S. aureus.
  • This enzyme plays a critical role in the bacterial iron acquisition system.
  • IruO and its homologs represent potential targets for novel antimicrobial therapies.

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