Regulation of airway fumarate by host and pathogen promotes Staphylococcus aureus pneumonia

Ying-Tsun Chen1, Zihua Liu2, Dario Fucich1

  • 1Department of Pediatrics, Columbia University, New York, NY, USA.

Nature Communications
|July 31, 2025
PubMed

Insights

Staphylococcus aureus adaptation to lung infections relies on the fumC enzyme to metabolize harmful fumarate. This enzyme helps the bacteria survive and form biofilms in the infected airway.

Area of Science:

  • Microbiology
  • Immunology
  • Metabolic Biochemistry

Background:

  • Staphylococcus aureus is a major cause of hospital-acquired pneumonia.
  • S. aureus colonizes the respiratory tract and must adapt metabolically to infect the lungs.
  • Fumarate, a pro-inflammatory metabolite, accumulates in infected lungs.

Purpose of the Study:

  • To investigate the role of the fumC gene and fumarate metabolism in S. aureus adaptation during lung infection.
  • To understand how S. aureus utilizes host-derived metabolites for survival and virulence in the pulmonary environment.

Main Methods:

  • Analysis of fumC conservation in clinical isolates.
  • In vitro studies on the effects of fumarate and itaconate on S. aureus metabolism.
  • Assessment of a ΔfumC mutant's virulence in a mouse model of pneumonia.

Main Results:

  • The fumC gene is highly conserved in S. aureus from chronic lung infections.
  • Accumulated fumarate inhibits S. aureus glycolysis and oxidative phosphorylation.
  • Staphylococcal FumC degrades fumarate and channels it into essential metabolic pathways (TCA cycle, gluconeogenesis, hexosamine synthesis).
  • Itaconate enhances FumC activity.
  • A ΔfumC mutant showed reduced virulence in a mouse pneumonia model, especially in fumarate- and itaconate-rich conditions.

Conclusions:

  • Staphylococcal FumC is crucial for adapting to the lung environment by metabolizing fumarate and itaconate.
  • Metabolic adaptation mediated by FumC supports S. aureus survival, biofilm formation, and virulence in pneumonia.
  • Immunometabolites play a key role in driving S. aureus pulmonary adaptation.

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