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Published on: July 6, 2016
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.
Abstract:
Coxiella burnetii, the causative agent of Query (Q) fever in humans, is a highly infectious obligate intracellular bacterium. Following uptake into a host cell, C. burnetii replicates within a phagolysosome-derived compartment referred to as the Coxiella-containing vacuole (CCV). During infection, C. burnetii exhibits tropism for tissues related to iron storage and recycling (e.g., the liver and splenic red pulp), suggesting that pathogen physiology is linked to host iron metabolism. Iron has been described to have a limited role in C. burnetii virulence regulation, despite evidence that C. burnetii-infected host cells increase expression of transferrin receptors, thereby suggesting that active iron acquisition by the bacterium occurs upon infection. Through the use of host cell-free culture, C. burnetii was separated from the host cell in order to directly assess the role of different forms of iron in C. burnetii replication and viability, and therefore virulence. Results indicate that C. burnetii tolerates molecular iron over a broad concentration range (i.e., ∼0.001 to 1 mM) and undergoes gross loss of viability upon iron starvation. C. burnetii protein synthesis and energy metabolism, however, occur nearly uninhibited under iron concentrations not permissive to replication. Despite the apparent absence of genes related to acquisition of host-associated iron-containing proteins, C. burnetii replication is supported by hemoglobin, transferrin, and ferritin, likely due to release of iron from such proteins under acidic conditions. Moreover, chelation of host iron pools inhibited pathogen replication during infection of cultured cells.IMPORTANCE Host organisms restrict the availability of iron to invading pathogens in order to reduce pathogen replication. To counteract the host's response to infection, bacteria can rely on redundant mechanisms to obtain biologically diverse forms of iron during infection. C. burnetii appears specifically dependent on molecular iron for replication and viability and exhibits a response to iron akin to bacteria that colonize iron-rich environments. Physiological adaptation of C. burnetii to the unique acidic and degradative environment of the CCV is consistent with access of this pathogen to molecular iron.
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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