Comparative transcriptomics of infectious spores from the fungal pathogen Histoplasma capsulatum reveals a core set

Diane O Inglis1, Mark Voorhies, Davina R Hocking Murray

  • 1Department of Microbiology and Immunology, University of California San Francisco, San Francisco, California, USA.

Eukaryotic Cell
|April 9, 2013
PubMed

Insights

Histoplasma capsulatum conidia, the infectious spores, were purified and analyzed. These spores initiate infection in hosts, revealing unique molecular states crucial for understanding this fungal pathogen.

Area of Science:

  • Medical Mycology
  • Molecular Biology
  • Infectious Diseases

Background:

  • Histoplasma capsulatum is a soil-dwelling fungus causing respiratory and systemic disease.
  • It exists as mycelia in soil and yeast in hosts, with spores (conidia) initiating infection.
  • The molecular biology of H. capsulatum conidia remains largely unexplored.

Purpose of the Study:

  • To develop methods for purifying H. capsulatum conidia.
  • To characterize the molecular state of conidia.
  • To understand conidia's role in initiating infection and disease.

Main Methods:

  • Purification of H. capsulatum conidia.
  • Germination studies at different temperatures (room temperature vs. 37°C).
  • In vitro macrophage infection assays and in vivo mouse infection models.
  • Whole-genome expression profiling of conidia, yeast, and mycelia.
  • Homology and protein domain analysis for gene annotation.

Main Results:

  • Purified conidia germinate into filaments at room temperature and yeast at 37°C.
  • Conidia successfully initiate infection in macrophages and mice, yielding yeast-form cells.
  • Genome-wide expression profiling identified unique transcript sets for conidia, yeast, and mycelia.
  • Manual gene annotation provided insights into the molecular differences between developmental forms.

Conclusions:

  • H. capsulatum conidia are viable infectious particles capable of initiating disease.
  • Distinct molecular profiles exist for conidia, yeast, and mycelial forms.
  • This study provides a foundation for understanding conidia's molecular mechanisms in H. capsulatum pathogenesis.

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