Developmental cell fate and virulence are linked to trehalose homeostasis in Cryptococcus neoformans

Michael R Botts1, Mingwei Huang1, Regen K Borchardt1

  • 1Department of Biomolecular Chemistry, School of Medicine and Public Health, University of Wisconsin-Madison, Madison, Wisconsin, USA.

Eukaryotic Cell
|July 9, 2014
PubMed

Insights

Trehalose metabolism is crucial for Cryptococcus neoformans spore development and viability. Disrupting trehalose regulation impacts fungal development and enhances virulence in host infections.

Area of Science:

  • Medical Mycology
  • Fungal Pathogenesis
  • Molecular Biology

Background:

  • Pathogenic fungi like Cryptococcus neoformans produce spores as infectious particles.
  • Spore biogenesis and germination in C. neoformans are poorly understood at the molecular level.
  • Environmental adaptation mechanisms may influence fungal virulence.

Purpose of the Study:

  • Investigate the role of trehalose homeostasis in C. neoformans spore formation and germination.
  • Determine the impact of trehalose metabolism on fungal development and virulence.
  • Identify key genes involved in trehalose regulation during fungal sporulation.

Main Methods:

  • Genome transcript analysis of C. neoformans spores.
  • Molecular genetic approaches, including gene deletion studies.
  • Murine model of infection to assess virulence.

Main Results:

  • Trehalose homeostasis is essential for C. neoformans sporulation, spore viability, and virulence.
  • Genes involved in trehalose metabolism, including NTH2, are abundant in dormant spores.
  • Deletion of trehalase genes (NTH1, NTH2) caused defects in spore production, germination, and altered developmental pathways.
  • Deletion of NTH2 led to hypervirulence in a murine infection model.

Conclusions:

  • Trehalose metabolism plays a critical role in regulating C. neoformans sexual development and spore formation.
  • Environmental metabolic adaptations in fungi can have significant implications for host pathogenesis.
  • Targeting trehalose pathways may offer novel strategies for controlling C. neoformans infections.

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