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.
Abstract:
During infection of the mammalian host, Histoplasma capsulatum yeasts survive and reside within macrophages of the immune system. Whereas some intracellular pathogens escape into the host cytosol, Histoplasma yeasts remain within the macrophage phagosome. This intracellular Histoplasma-containing compartment imposes nutritional challenges for yeast growth and replication. We identified and annotated vitamin synthesis pathways encoded in the Histoplasma genome and confirmed by growth in minimal medium that Histoplasma yeasts can synthesize all essential vitamins with the exception of thiamine. Riboflavin, pantothenate, and biotin auxotrophs of Histoplasma were generated to probe whether these vitamins are available to intracellular yeasts. Disruption of the RIB2 gene (riboflavin biosynthesis) prevented growth and proliferation of yeasts in macrophages and severely attenuated Histoplasma virulence in a murine model of respiratory histoplasmosis. Rib2-deficient yeasts were not cleared from lung tissue but persisted, consistent with functional survival mechanisms but inability to replicate in vivo. In addition, depletion of Pan6 (pantothenate biosynthesis) but not Bio2 function (biotin synthesis) also impaired Histoplasma virulence. These results indicate that the Histoplasma-containing phagosome is limiting for riboflavin and pantothenate and that Histoplasma virulence requires de novo synthesis of these cofactor precursors. Since mammalian hosts do not rely on vitamin synthesis but instead acquire essential vitamins through diet, vitamin synthesis pathways represent druggable targets for therapeutics.
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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