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.

Infection and Immunity
|April 17, 2013
PubMed

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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