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Redundant catalases detoxify phagocyte reactive oxygen and facilitate Histoplasma capsulatum pathogenesis
Eric D Holbrook1, Katherine A Smolnycki, Brian H Youseff
1Department of Microbiology, Ohio State University, Columbus, Ohio, USA.
Abstract:
Histoplasma capsulatum is a respiratory pathogen that infects phagocytic cells. The mechanisms allowing Histoplasma to overcome toxic reactive oxygen molecules produced by the innate immune system are an integral part of Histoplasma's ability to survive during infection. To probe the contribution of Histoplasma catalases in oxidative stress defense, we created and analyzed the virulence defects of mutants lacking CatB and CatP, which are responsible for extracellular and intracellular catalase activities, respectively. Both CatB and CatP protected Histoplasma from peroxide challenge in vitro and from antimicrobial reactive oxygen produced by human neutrophils and activated macrophages. Optimal protection required both catalases, as the survival of a double mutant lacking both CatB and CatP was lower than that of single-catalase-deficient cells. Although CatB contributed to reactive oxygen species defenses in vitro, CatB was dispensable for lung infection and extrapulmonary dissemination in vivo. Loss of CatB from a strain also lacking superoxide dismutase (Sod3) did not further reduce the survival of Histoplasma yeasts. Nevertheless, some catalase function was required for pathogenesis since simultaneous loss of both CatB and CatP attenuated Histoplasma virulence in vivo. These results demonstrate that Histoplasma's dual catalases comprise a system that enables Histoplasma to efficiently overcome the reactive oxygen produced by the innate immune system.
Insights
Histoplasma capsulatum uses two catalases, CatB and CatP, to defend against reactive oxygen species. Both are crucial for survival against immune cells, with dual deficiency significantly impairing fungal virulence.
Area of Science:
- Mycology
- Immunology
- Pathogen Biology
Background:
- Histoplasma capsulatum is an opportunistic fungal pathogen.
- Innate immune cells produce reactive oxygen species (ROS) to combat pathogens.
- Understanding fungal ROS resistance mechanisms is key to controlling Histoplasma infections.
Purpose of the Study:
- To investigate the role of Histoplasma catalases (CatB and CatP) in defending against oxidative stress.
- To determine the contribution of these catalases to fungal virulence in vivo.
Main Methods:
- Generation and analysis of single (CatB, CatP) and double (CatB/CatP) catalase deletion mutants.
- In vitro assessment of fungal survival against peroxide and ROS from phagocytic cells.
- In vivo virulence studies in a murine model of infection.
Main Results:
- Both CatB and CatP confer protection against peroxide and ROS in vitro.
- A double mutant lacking both catalases showed significantly reduced survival compared to single mutants.
- CatB was dispensable for virulence in vivo, but combined loss of CatB and CatP attenuated virulence.
- Loss of CatB did not further impact survival in a sod3 mutant strain.
Conclusions:
- Histoplasma employs a dual catalase system (CatB and CatP) for effective ROS detoxification.
- This system is essential for fungal survival against innate immune defenses.
- While CatB is less critical in vivo, the combined activity of both catalases is necessary for full Histoplasma pathogenesis.
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