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Published on: November 11, 2014
Extracellular superoxide dismutase protects Histoplasma yeast cells from host-derived oxidative stress
Brian H Youseff1, Eric D Holbrook, Katherine A Smolnycki
1Departments of Microbiology and Microbial Infection and Immunity, Ohio State University, Columbus, Ohio, United States of America.
Abstract:
In order to establish infections within the mammalian host, pathogens must protect themselves against toxic reactive oxygen species produced by phagocytes of the immune system. The fungal pathogen Histoplasma capsulatum infects both neutrophils and macrophages but the mechanisms enabling Histoplasma yeasts to survive in these phagocytes have not been fully elucidated. We show that Histoplasma yeasts produce a superoxide dismutase (Sod3) and direct it to the extracellular environment via N-terminal and C-terminal signals which promote its secretion and association with the yeast cell surface. This localization permits Sod3 to protect yeasts specifically from exogenous superoxide whereas amelioration of endogenous reactive oxygen depends on intracellular dismutases such as Sod1. While infection of resting macrophages by Histoplasma does not stimulate the phagocyte oxidative burst, interaction with polymorphonuclear leukocytes (PMNs) and cytokine-activated macrophages triggers production of reactive oxygen species (ROS). Histoplasma yeasts producing Sod3 survive co-incubation with these phagocytes but yeasts lacking Sod3 are rapidly eliminated through oxidative killing similar to the effect of phagocytes on Candida albicans yeasts. The protection provided by Sod3 against host-derived ROS extends in vivo. Without Sod3, Histoplasma yeasts are attenuated in their ability to establish respiratory infections and are rapidly cleared with the onset of adaptive immunity. The virulence of Sod3-deficient yeasts is restored in murine hosts unable to produce superoxide due to loss of the NADPH-oxidase function. These results demonstrate that phagocyte-produced ROS contributes to the immune response to Histoplasma and that Sod3 facilitates Histoplasma pathogenesis by detoxifying host-derived reactive oxygen thereby enabling Histoplasma survival.
Insights
Histoplasma yeasts use extracellular superoxide dismutase (Sod3) to neutralize host immune defenses. This enzyme is crucial for fungal survival against reactive oxygen species (ROS) during infection.
Area of Science:
- Mycology
- Immunology
- Pathogenesis
Background:
- Pathogens must evade host immune defenses, including reactive oxygen species (ROS).
- Histoplasma capsulatum survives within immune cells, but mechanisms are unclear.
- ROS are produced by neutrophils and macrophages, posing a threat to invading fungi.
Purpose of the Study:
- To elucidate the mechanisms of Histoplasma capsulatum survival within phagocytic immune cells.
- To investigate the role of superoxide dismutase (Sod3) in Histoplasma pathogenesis.
- To determine how Histoplasma neutralizes host-derived ROS.
Main Methods:
- Investigated the secretion and localization of Histoplasma superoxide dismutase (Sod3).
- Assessed yeast survival during co-incubation with neutrophils and macrophages.
- Utilized Sod3-deficient yeasts and NADPH-oxidase-deficient murine models.
- Evaluated fungal virulence in vivo through respiratory infection models.
Main Results:
- Histoplasma yeasts secrete Sod3 to their cell surface for protection against extracellular ROS.
- Sod3 enables yeast survival against ROS produced by neutrophils and activated macrophages.
- Sod3-deficient yeasts exhibit attenuated virulence and are cleared during infection.
- Virulence is restored in hosts lacking ROS production, confirming Sod3's protective role.
Conclusions:
- Phagocyte-derived ROS are a significant component of the immune response to Histoplasma.
- Extracellular Sod3 is a key virulence factor enabling Histoplasma survival by detoxifying host ROS.
- Targeting Sod3 may represent a strategy to combat Histoplasma infections.
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