Histoplasma capsulatum depends on de novo vitamin biosynthesis for intraphagosomal proliferation

Andrew L Garfoot1, Olga Zemska, Chad A Rappleye

  • 1Department of Microbiology, Department of Microbial Infection and Immunity, Ohio State University, Columbus, Ohio, USA.

Infection and Immunity
|November 6, 2013
PubMed

Insights

Histoplasma yeasts require riboflavin and pantothenate synthesis to replicate within macrophages, highlighting vitamin synthesis as a potential therapeutic target against fungal infections.

Area of Science:

  • Mycology
  • Immunology
  • Molecular Biology

Background:

  • Histoplasma capsulatum yeasts survive within macrophage phagosomes during infection.
  • The intracellular environment presents nutritional challenges for yeast growth and replication.
  • Understanding nutrient acquisition is crucial for developing anti-fungal strategies.

Purpose of the Study:

  • To investigate the role of vitamin biosynthesis pathways in Histoplasma capsulatum virulence.
  • To determine if Histoplasma yeasts can synthesize essential vitamins within the macrophage phagosome.
  • To identify potential therapeutic targets based on vitamin synthesis dependencies.

Main Methods:

  • Genome-wide identification and annotation of vitamin synthesis pathways in Histoplasma.
  • Generation of auxotrophic mutants for riboflavin, pantothenate, and biotin biosynthesis.
  • Assessment of yeast growth and virulence in vitro (macrophage infection) and in vivo (murine model).

Main Results:

  • Histoplasma yeasts can synthesize most essential vitamins, except thiamine.
  • Disruption of riboflavin (RIB2) and pantothenate (Pan6) biosynthesis impaired yeast growth and virulence.
  • Riboflavin and pantothenate auxotrophs showed reduced replication within macrophages and attenuated virulence in mice.

Conclusions:

  • The Histoplasma-containing phagosome is nutritionally limited in riboflavin and pantothenate.
  • De novo synthesis of riboflavin and pantothenate is essential for Histoplasma virulence.
  • Vitamin synthesis pathways represent promising druggable targets for histoplasmosis therapeutics.

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