Critical Role for Molecular Iron in Coxiella burnetii Replication and Viability

Savannah E Sanchez1,2, Anders Omsland3

  • 1Paul G. Allen School for Global Animal Health, Washington State University, Pullman, Washington, USA.

Msphere
|July 24, 2020
PubMed

Insights

Coxiella burnetii, the cause of Q fever, requires iron for replication and survival. This study shows the bacterium can use various iron sources, adapting to host iron restriction for virulence.

Area of Science:

  • Microbiology
  • Infectious Diseases
  • Bacterial Pathogenesis

Background:

  • Coxiella burnetii causes Q fever and replicates within host cells.
  • The bacterium targets iron-rich host tissues, suggesting a link to iron metabolism.
  • Host cells upregulate transferrin receptors during C. burnetii infection, implying bacterial iron acquisition.

Purpose of the Study:

  • To investigate the direct role of iron in C. burnetii replication and viability.
  • To assess C. burnetii's ability to utilize different iron sources.
  • To understand C. burnetii's adaptation to host iron restriction.

Main Methods:

  • Host cell-free culture of C. burnetii to isolate bacterial iron requirements.
  • Testing C. burnetii viability and replication across a range of iron concentrations.
  • Assessing replication in the presence of hemoglobin, transferrin, and ferritin.
  • Inhibiting C. burnetii replication by chelating host iron pools.

Main Results:

  • C. burnetii tolerates a wide range of iron concentrations (0.001–1 mM) but requires iron for viability.
  • Protein synthesis and energy metabolism are largely unaffected by iron levels that inhibit replication.
  • C. burnetii utilizes hemoglobin, transferrin, and ferritin for replication, likely via acid-dependent iron release.
  • Host iron chelation significantly inhibits C. burnetii replication in cell cultures.

Conclusions:

  • C. burnetii is critically dependent on molecular iron for replication and survival.
  • The bacterium possesses mechanisms to acquire iron from diverse host sources, adapting to iron-limited environments.
  • C. burnetii's physiology, including adaptation to the acidic CCV, supports its ability to access and utilize iron during infection.

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