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Published on: March 16, 2018
Histoplasma capsulatum utilizes siderophores for intracellular iron acquisition in macrophages
Jeremy Hilty1, A George Smulian, Simon L Newman
1Department of Internal Medicine, Division of Infectious Diseases, University of Cincinnati College of Medicine, Cincinnati, OH 45267-0560, USA.
Abstract:
Histoplasma capsulatum is a dimorphic fungal pathogen that survives and replicates within macrophages (MΦ). Studies in human and murine MΦ demonstrate that the intracellular growth of H. capsulatum yeasts is exquisitely sensitive to the availability of iron. As H. capsulatum produces hydroxamate siderophores, we sought to determine if siderophores were required for intracellular survival in MΦ, and in a murine model of pulmonary histoplasmosis. The expression of SID1 (coding for L-ornithine-N(5)-monooxygenase) was silenced by RNA interference (RNAi) in H. capsulatum strain G217B, and abolished by gene targeting in strain G186AR. G217B SID1-silenced yeasts grew normally in rich medium, did not synthesize siderophores, and were unable to grow on apotransferrin-chelated medium. Their intracellular growth in human and murine MΦ was significantly decreased compared to wild type (WT) yeasts, but growth was restored to WT levels by the addition of exogenous iron, or restoration of SID1 expression. Similar results were obtained with G186AR Δsid1 yeasts. Compared to WT yeasts, G217B SID1-silenced yeasts demonstrated in C57BL/6 mice significantly reduced growth in the lungs and spleens seven days after infection, and 40% of the mice given a normally lethal inoculum of G217B SID1-silenced yeasts survived. These experiments demonstrate that: (1) SID1 expression is required for siderophore biosynthesis by H. capsulatum strain G217B, (2) SID1 expression is required for optimum intracellular growth in MΦ, and (3) inhibition of SID1 expression in vivo reduces the virulence of H. capsulatum yeasts.
Insights
Histoplasma capsulatum requires siderophores for growth within macrophages. Inhibiting SID1, which is essential for siderophore production, significantly reduces fungal virulence in mice and intracellular survival.
Area of Science:
- Medical Mycology
- Infectious Diseases
- Molecular Biology
Background:
- Histoplasma capsulatum is a fungal pathogen that thrives inside macrophages.
- Intracellular growth of H. capsulatum is highly dependent on iron availability.
- H. capsulatum produces hydroxamate siderophores, suggesting a role in iron acquisition.
Purpose of the Study:
- To investigate the necessity of siderophores for H. capsulatum intracellular survival in macrophages.
- To determine the role of siderophores in a murine model of pulmonary histoplasmosis.
- To assess the impact of SID1 gene silencing on fungal virulence.
Main Methods:
- Silencing of the SID1 gene (encoding L-ornithine-N(5)-monooxygenase) using RNA interference (RNAi) in H. capsulatum strain G217B.
- Gene targeting to abolish SID1 expression in H. capsulatum strain G186AR.
- Assessment of yeast growth in vitro, intracellular growth in human and murine macrophages, and virulence in C57BL/6 mice.
Main Results:
- SID1-silenced yeasts did not synthesize siderophores and showed reduced intracellular growth in macrophages.
- Restoration of SID1 expression or addition of exogenous iron normalized intracellular growth.
- In vivo, SID1-silenced yeasts exhibited significantly reduced growth in mouse lungs and spleens, with 40% survival in mice challenged with a lethal dose.
Conclusions:
- SID1 expression is crucial for siderophore biosynthesis in H. capsulatum.
- SID1-mediated siderophore production is essential for optimal intracellular growth within macrophages.
- Inhibition of SID1 expression significantly attenuates H. capsulatum virulence in a murine model.
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